ssl.c 1.1 MB

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  1. /* ssl.c
  2. *
  3. * Copyright (C) 2006-2021 wolfSSL Inc.
  4. *
  5. * This file is part of wolfSSL.
  6. *
  7. * wolfSSL is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * wolfSSL is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1335, USA
  20. */
  21. #ifdef HAVE_CONFIG_H
  22. #include <config.h>
  23. #endif
  24. #include <wolfssl/wolfcrypt/settings.h>
  25. #if defined(OPENSSL_EXTRA) && !defined(_WIN32)
  26. /* turn on GNU extensions for XISASCII */
  27. #undef _GNU_SOURCE
  28. #define _GNU_SOURCE
  29. #endif
  30. #if !defined(WOLFCRYPT_ONLY) || defined(OPENSSL_EXTRA) || \
  31. defined(OPENSSL_EXTRA_X509_SMALL)
  32. #include <wolfssl/internal.h>
  33. #include <wolfssl/error-ssl.h>
  34. #include <wolfssl/wolfcrypt/coding.h>
  35. #include <wolfssl/wolfcrypt/kdf.h>
  36. #ifdef NO_INLINE
  37. #include <wolfssl/wolfcrypt/misc.h>
  38. #else
  39. #define WOLFSSL_MISC_INCLUDED
  40. #include <wolfcrypt/src/misc.c>
  41. #endif
  42. #ifdef HAVE_ERRNO_H
  43. #include <errno.h>
  44. #endif
  45. #if !defined(WOLFSSL_ALLOW_NO_SUITES) && !defined(WOLFCRYPT_ONLY)
  46. #if defined(NO_DH) && !defined(HAVE_ECC) && !defined(WOLFSSL_STATIC_RSA) \
  47. && !defined(WOLFSSL_STATIC_DH) && !defined(WOLFSSL_STATIC_PSK) \
  48. && !defined(HAVE_CURVE25519) && !defined(HAVE_CURVE448)
  49. #error "No cipher suites defined because DH disabled, ECC disabled, and no static suites defined. Please see top of README"
  50. #endif
  51. #ifdef WOLFSSL_CERT_GEN
  52. /* need access to Cert struct for creating certificate */
  53. #include <wolfssl/wolfcrypt/asn_public.h>
  54. #endif
  55. #endif
  56. #if !defined(WOLFCRYPT_ONLY) && (defined(OPENSSL_EXTRA) \
  57. || defined(OPENSSL_EXTRA_X509_SMALL) \
  58. || defined(HAVE_WEBSERVER) || defined(WOLFSSL_KEY_GEN))
  59. #include <wolfssl/openssl/evp.h>
  60. /* openssl headers end, wolfssl internal headers next */
  61. #endif
  62. #include <wolfssl/wolfcrypt/wc_encrypt.h>
  63. #ifndef NO_RSA
  64. #include <wolfssl/wolfcrypt/rsa.h>
  65. #endif
  66. #ifdef OPENSSL_EXTRA
  67. /* openssl headers begin */
  68. #include <wolfssl/openssl/ssl.h>
  69. #include <wolfssl/openssl/aes.h>
  70. #ifndef WOLFCRYPT_ONLY
  71. #include <wolfssl/openssl/hmac.h>
  72. #include <wolfssl/openssl/cmac.h>
  73. #endif
  74. #include <wolfssl/openssl/crypto.h>
  75. #include <wolfssl/openssl/des.h>
  76. #include <wolfssl/openssl/bn.h>
  77. #include <wolfssl/openssl/buffer.h>
  78. #include <wolfssl/openssl/dh.h>
  79. #include <wolfssl/openssl/rsa.h>
  80. #include <wolfssl/openssl/fips_rand.h>
  81. #ifndef WOLFCRYPT_ONLY
  82. #include <wolfssl/openssl/pem.h>
  83. #endif
  84. #include <wolfssl/openssl/ec.h>
  85. #include <wolfssl/openssl/ec25519.h>
  86. #include <wolfssl/openssl/ed25519.h>
  87. #include <wolfssl/openssl/ec448.h>
  88. #include <wolfssl/openssl/ed448.h>
  89. #include <wolfssl/openssl/ecdsa.h>
  90. #include <wolfssl/openssl/ecdh.h>
  91. #include <wolfssl/openssl/err.h>
  92. #include <wolfssl/openssl/modes.h>
  93. #include <wolfssl/openssl/opensslv.h>
  94. #include <wolfssl/openssl/rc4.h>
  95. #include <wolfssl/openssl/stack.h>
  96. #include <wolfssl/openssl/x509_vfy.h>
  97. /* openssl headers end, wolfssl internal headers next */
  98. #include <wolfssl/wolfcrypt/hmac.h>
  99. #include <wolfssl/wolfcrypt/random.h>
  100. #include <wolfssl/wolfcrypt/des3.h>
  101. #include <wolfssl/wolfcrypt/ecc.h>
  102. #include <wolfssl/wolfcrypt/md4.h>
  103. #include <wolfssl/wolfcrypt/md5.h>
  104. #include <wolfssl/wolfcrypt/arc4.h>
  105. #include <wolfssl/wolfcrypt/curve25519.h>
  106. #include <wolfssl/wolfcrypt/ed25519.h>
  107. #include <wolfssl/wolfcrypt/curve448.h>
  108. #if defined(HAVE_PQC)
  109. #include <wolfssl/wolfcrypt/falcon.h>
  110. #endif
  111. #if defined(OPENSSL_ALL) || defined(HAVE_STUNNEL)
  112. #ifdef HAVE_OCSP
  113. #include <wolfssl/openssl/ocsp.h>
  114. #endif
  115. #include <wolfssl/openssl/lhash.h>
  116. #include <wolfssl/openssl/txt_db.h>
  117. #endif /* WITH_STUNNEL */
  118. #if defined(WOLFSSL_SHA512) || defined(WOLFSSL_SHA384)
  119. #include <wolfssl/wolfcrypt/sha512.h>
  120. #endif
  121. #if defined(WOLFCRYPT_HAVE_SRP) && !defined(NO_SHA256) \
  122. && !defined(WC_NO_RNG)
  123. #include <wolfssl/wolfcrypt/srp.h>
  124. #endif
  125. #if defined(HAVE_FIPS) || defined(HAVE_SELFTEST)
  126. #include <wolfssl/wolfcrypt/pkcs7.h>
  127. #endif
  128. #if defined(OPENSSL_ALL) && defined(HAVE_PKCS7)
  129. #include <wolfssl/openssl/pkcs7.h>
  130. #endif /* OPENSSL_ALL && HAVE_PKCS7 */
  131. #endif
  132. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  133. #include <wolfssl/openssl/x509v3.h>
  134. int SetIndividualInternal(WOLFSSL_BIGNUM* bn, mp_int* mpi);
  135. int SetIndividualExternal(WOLFSSL_BIGNUM** bn, mp_int* mpi);
  136. #endif
  137. #if defined(WOLFSSL_QT)
  138. #include <wolfssl/wolfcrypt/sha.h>
  139. #endif
  140. #ifdef NO_ASN
  141. #include <wolfssl/wolfcrypt/dh.h>
  142. #endif
  143. #endif /* !WOLFCRYPT_ONLY || OPENSSL_EXTRA */
  144. /*
  145. * OPENSSL_COMPATIBLE_DEFAULTS:
  146. * Enable default behaviour that is compatible with OpenSSL. For example
  147. * SSL_CTX by default doesn't verify the loaded certs. Enabling this
  148. * should make porting to new projects easier.
  149. * WOLFSSL_CHECK_ALERT_ON_ERR:
  150. * Check for alerts during the handshake in the event of an error.
  151. * NO_SESSION_CACHE_REF:
  152. * wolfSSL_get_session on a client will return a reference to the internal
  153. * ClientCache by default for backwards compatibility. This define will
  154. * make wolfSSL_get_session return a reference to ssl->session. The returned
  155. * pointer will be freed with the related WOLFSSL object.
  156. */
  157. #define WOLFSSL_EVP_INCLUDED
  158. #include "wolfcrypt/src/evp.c"
  159. #ifndef WOLFCRYPT_ONLY
  160. #define WOLFSSL_PK_INCLUDED
  161. #include "src/pk.c"
  162. #ifdef OPENSSL_EXTRA
  163. /* Global pointer to constant BN on */
  164. static WOLFSSL_BIGNUM* bn_one = NULL;
  165. /* WOLFSSL_NO_OPENSSL_RAND_CB: Allows way to reduce code size for
  166. * OPENSSL_EXTRA where RAND callbacks are not used */
  167. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  168. static const WOLFSSL_RAND_METHOD* gRandMethods = NULL;
  169. static int gRandMethodsInit = 0;
  170. static wolfSSL_Mutex gRandMethodMutex;
  171. #endif /* !WOLFSSL_NO_OPENSSL_RAND_CB */
  172. #endif /* OPENSSL_EXTRA */
  173. #if defined(OPENSSL_EXTRA) && defined(HAVE_ECC)
  174. const WOLF_EC_NIST_NAME kNistCurves[] = {
  175. {XSTR_SIZEOF("P-192"), "P-192", NID_X9_62_prime192v1},
  176. {XSTR_SIZEOF("P-256"), "P-256", NID_X9_62_prime256v1},
  177. {XSTR_SIZEOF("P-112"), "P-112", NID_secp112r1},
  178. {XSTR_SIZEOF("P-112-2"), "P-112-2", NID_secp112r2},
  179. {XSTR_SIZEOF("P-128"), "P-128", NID_secp128r1},
  180. {XSTR_SIZEOF("P-128-2"), "P-128-2", NID_secp128r2},
  181. {XSTR_SIZEOF("P-160"), "P-160", NID_secp160r1},
  182. {XSTR_SIZEOF("P-160-2"), "P-160-2", NID_secp160r2},
  183. {XSTR_SIZEOF("P-224"), "P-224", NID_secp224r1},
  184. {XSTR_SIZEOF("P-384"), "P-384", NID_secp384r1},
  185. {XSTR_SIZEOF("P-521"), "P-521", NID_secp521r1},
  186. {XSTR_SIZEOF("K-160"), "K-160", NID_secp160k1},
  187. {XSTR_SIZEOF("K-192"), "K-192", NID_secp192k1},
  188. {XSTR_SIZEOF("K-224"), "K-224", NID_secp224k1},
  189. {XSTR_SIZEOF("K-256"), "K-256", NID_secp256k1},
  190. {XSTR_SIZEOF("B-160"), "B-160", NID_brainpoolP160r1},
  191. {XSTR_SIZEOF("B-192"), "B-192", NID_brainpoolP192r1},
  192. {XSTR_SIZEOF("B-224"), "B-224", NID_brainpoolP224r1},
  193. {XSTR_SIZEOF("B-256"), "B-256", NID_brainpoolP256r1},
  194. {XSTR_SIZEOF("B-320"), "B-320", NID_brainpoolP320r1},
  195. {XSTR_SIZEOF("B-384"), "B-384", NID_brainpoolP384r1},
  196. {XSTR_SIZEOF("B-512"), "B-512", NID_brainpoolP512r1},
  197. #ifdef HAVE_PQC
  198. {XSTR_SIZEOF("KYBER_LEVEL1"), "KYBER_LEVEL1", WOLFSSL_KYBER_LEVEL1},
  199. {XSTR_SIZEOF("KYBER_LEVEL3"), "KYBER_LEVEL3", WOLFSSL_KYBER_LEVEL3},
  200. {XSTR_SIZEOF("KYBER_LEVEL5"), "KYBER_LEVEL5", WOLFSSL_KYBER_LEVEL5},
  201. {XSTR_SIZEOF("NTRU_HPS_LEVEL1"), "NTRU_HPS_LEVEL1", WOLFSSL_NTRU_HPS_LEVEL1},
  202. {XSTR_SIZEOF("NTRU_HPS_LEVEL3"), "NTRU_HPS_LEVEL3", WOLFSSL_NTRU_HPS_LEVEL3},
  203. {XSTR_SIZEOF("NTRU_HPS_LEVEL5"), "NTRU_HPS_LEVEL5", WOLFSSL_NTRU_HPS_LEVEL5},
  204. {XSTR_SIZEOF("NTRU_HRSS_LEVEL3"), "NTRU_HRSS_LEVEL3", WOLFSSL_NTRU_HRSS_LEVEL3},
  205. {XSTR_SIZEOF("SABER_LEVEL1"), "SABER_LEVEL1", WOLFSSL_SABER_LEVEL1},
  206. {XSTR_SIZEOF("SABER_LEVEL3"), "SABER_LEVEL3", WOLFSSL_SABER_LEVEL3},
  207. {XSTR_SIZEOF("SABER_LEVEL5"), "SABER_LEVEL5", WOLFSSL_SABER_LEVEL5},
  208. {XSTR_SIZEOF("KYBER_90S_LEVEL1"), "KYBER_90S_LEVEL1", WOLFSSL_KYBER_90S_LEVEL1},
  209. {XSTR_SIZEOF("KYBER_90S_LEVEL3"), "KYBER_90S_LEVEL3", WOLFSSL_KYBER_90S_LEVEL3},
  210. {XSTR_SIZEOF("KYBER_90S_LEVEL5"), "KYBER_90S_LEVEL5", WOLFSSL_KYBER_90S_LEVEL5},
  211. {XSTR_SIZEOF("P256_NTRU_HPS_LEVEL1"), "P256_NTRU_HPS_LEVEL1", WOLFSSL_P256_NTRU_HPS_LEVEL1},
  212. {XSTR_SIZEOF("P384_NTRU_HPS_LEVEL3"), "P384_NTRU_HPS_LEVEL3", WOLFSSL_P384_NTRU_HPS_LEVEL3},
  213. {XSTR_SIZEOF("P521_NTRU_HPS_LEVEL5"), "P521_NTRU_HPS_LEVEL5", WOLFSSL_P521_NTRU_HPS_LEVEL5},
  214. {XSTR_SIZEOF("P384_NTRU_HRSS_LEVEL3"), "P384_NTRU_HRSS_LEVEL3", WOLFSSL_P384_NTRU_HRSS_LEVEL3},
  215. {XSTR_SIZEOF("P256_SABER_LEVEL1"), "P256_SABER_LEVEL1", WOLFSSL_P256_SABER_LEVEL1},
  216. {XSTR_SIZEOF("P384_SABER_LEVEL3"), "P384_SABER_LEVEL3", WOLFSSL_P384_SABER_LEVEL3},
  217. {XSTR_SIZEOF("P521_SABER_LEVEL5"), "P521_SABER_LEVEL5", WOLFSSL_P521_SABER_LEVEL5},
  218. {XSTR_SIZEOF("P256_KYBER_LEVEL1"), "P256_KYBER_LEVEL1", WOLFSSL_P256_KYBER_LEVEL1},
  219. {XSTR_SIZEOF("P384_KYBER_LEVEL3"), "P384_KYBER_LEVEL3", WOLFSSL_P384_KYBER_LEVEL3},
  220. {XSTR_SIZEOF("P521_KYBER_LEVEL5"), "P521_KYBER_LEVEL5", WOLFSSL_P521_KYBER_LEVEL5},
  221. {XSTR_SIZEOF("P256_KYBER_90S_LEVEL1"), "P256_KYBER_90S_LEVEL1", WOLFSSL_P256_KYBER_90S_LEVEL1},
  222. {XSTR_SIZEOF("P384_KYBER_90S_LEVEL3"), "P384_KYBER_90S_LEVEL3", WOLFSSL_P384_KYBER_90S_LEVEL3},
  223. {XSTR_SIZEOF("P521_KYBER_90S_LEVEL5"), "P521_KYBER_90S_LEVEL5", WOLFSSL_P521_KYBER_90S_LEVEL5},
  224. #endif
  225. {0, NULL, 0},
  226. };
  227. #endif
  228. #if defined(WOLFSSL_RENESAS_TSIP_TLS) || defined(WOLFSSL_RENESAS_SCEPROTECT)
  229. #include <wolfssl/wolfcrypt/port/Renesas/renesas_cmn.h>
  230. #endif
  231. #ifdef WOLFSSL_SESSION_EXPORT
  232. /* Used to import a serialized TLS session.
  233. * WARNING: buf contains sensitive information about the state and is best to be
  234. * encrypted before storing if stored.
  235. *
  236. * @param ssl WOLFSSL structure to import the session into
  237. * @param buf serialized session
  238. * @param sz size of buffer 'buf'
  239. * @return the number of bytes read from buffer 'buf'
  240. */
  241. int wolfSSL_tls_import(WOLFSSL* ssl, const unsigned char* buf, unsigned int sz)
  242. {
  243. if (ssl == NULL || buf == NULL) {
  244. return BAD_FUNC_ARG;
  245. }
  246. return wolfSSL_session_import_internal(ssl, buf, sz, WOLFSSL_EXPORT_TLS);
  247. }
  248. /* Used to export a serialized TLS session.
  249. * WARNING: buf contains sensitive information about the state and is best to be
  250. * encrypted before storing if stored.
  251. *
  252. * @param ssl WOLFSSL structure to export the session from
  253. * @param buf output of serialized session
  254. * @param sz size in bytes set in 'buf'
  255. * @return the number of bytes written into buffer 'buf'
  256. */
  257. int wolfSSL_tls_export(WOLFSSL* ssl, unsigned char* buf, unsigned int* sz)
  258. {
  259. if (ssl == NULL || sz == NULL) {
  260. return BAD_FUNC_ARG;
  261. }
  262. return wolfSSL_session_export_internal(ssl, buf, sz, WOLFSSL_EXPORT_TLS);
  263. }
  264. #ifdef WOLFSSL_DTLS
  265. int wolfSSL_dtls_import(WOLFSSL* ssl, const unsigned char* buf, unsigned int sz)
  266. {
  267. WOLFSSL_ENTER("wolfSSL_session_import");
  268. if (ssl == NULL || buf == NULL) {
  269. return BAD_FUNC_ARG;
  270. }
  271. /* sanity checks on buffer and protocol are done in internal function */
  272. return wolfSSL_session_import_internal(ssl, buf, sz, WOLFSSL_EXPORT_DTLS);
  273. }
  274. /* Sets the function to call for serializing the session. This function is
  275. * called right after the handshake is completed. */
  276. int wolfSSL_CTX_dtls_set_export(WOLFSSL_CTX* ctx, wc_dtls_export func)
  277. {
  278. WOLFSSL_ENTER("wolfSSL_CTX_dtls_set_export");
  279. /* purposefully allow func to be NULL */
  280. if (ctx == NULL) {
  281. return BAD_FUNC_ARG;
  282. }
  283. ctx->dtls_export = func;
  284. return WOLFSSL_SUCCESS;
  285. }
  286. /* Sets the function in WOLFSSL struct to call for serializing the session. This
  287. * function is called right after the handshake is completed. */
  288. int wolfSSL_dtls_set_export(WOLFSSL* ssl, wc_dtls_export func)
  289. {
  290. WOLFSSL_ENTER("wolfSSL_dtls_set_export");
  291. /* purposefully allow func to be NULL */
  292. if (ssl == NULL) {
  293. return BAD_FUNC_ARG;
  294. }
  295. ssl->dtls_export = func;
  296. return WOLFSSL_SUCCESS;
  297. }
  298. /* This function allows for directly serializing a session rather than using
  299. * callbacks. It has less overhead by removing a temporary buffer and gives
  300. * control over when the session gets serialized. When using callbacks the
  301. * session is always serialized immediately after the handshake is finished.
  302. *
  303. * buf is the argument to contain the serialized session
  304. * sz is the size of the buffer passed in
  305. * ssl is the WOLFSSL struct to serialize
  306. * returns the size of serialized session on success, 0 on no action, and
  307. * negative value on error */
  308. int wolfSSL_dtls_export(WOLFSSL* ssl, unsigned char* buf, unsigned int* sz)
  309. {
  310. WOLFSSL_ENTER("wolfSSL_dtls_export");
  311. if (ssl == NULL || sz == NULL) {
  312. return BAD_FUNC_ARG;
  313. }
  314. if (buf == NULL) {
  315. *sz = MAX_EXPORT_BUFFER;
  316. return 0;
  317. }
  318. /* if not DTLS do nothing */
  319. if (!ssl->options.dtls) {
  320. WOLFSSL_MSG("Currently only DTLS export is supported");
  321. return 0;
  322. }
  323. /* copy over keys, options, and dtls state struct */
  324. return wolfSSL_session_export_internal(ssl, buf, sz, WOLFSSL_EXPORT_DTLS);
  325. }
  326. /* This function is similar to wolfSSL_dtls_export but only exports the portion
  327. * of the WOLFSSL structure related to the state of the connection, i.e. peer
  328. * sequence number, epoch, AEAD state etc.
  329. *
  330. * buf is the argument to contain the serialized state, if null then set "sz" to
  331. * buffer size required
  332. * sz is the size of the buffer passed in
  333. * ssl is the WOLFSSL struct to serialize
  334. * returns the size of serialized session on success, 0 on no action, and
  335. * negative value on error */
  336. int wolfSSL_dtls_export_state_only(WOLFSSL* ssl, unsigned char* buf,
  337. unsigned int* sz)
  338. {
  339. WOLFSSL_ENTER("wolfSSL_dtls_export_state_only");
  340. if (ssl == NULL || sz == NULL) {
  341. return BAD_FUNC_ARG;
  342. }
  343. if (buf == NULL) {
  344. *sz = MAX_EXPORT_STATE_BUFFER;
  345. return 0;
  346. }
  347. /* if not DTLS do nothing */
  348. if (!ssl->options.dtls) {
  349. WOLFSSL_MSG("Currently only DTLS export state is supported");
  350. return 0;
  351. }
  352. /* copy over keys, options, and dtls state struct */
  353. return wolfSSL_dtls_export_state_internal(ssl, buf, *sz);
  354. }
  355. /* returns 0 on success */
  356. int wolfSSL_send_session(WOLFSSL* ssl)
  357. {
  358. int ret;
  359. byte* buf;
  360. word32 bufSz = MAX_EXPORT_BUFFER;
  361. WOLFSSL_ENTER("wolfSSL_send_session");
  362. if (ssl == NULL) {
  363. return BAD_FUNC_ARG;
  364. }
  365. buf = (byte*)XMALLOC(bufSz, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  366. if (buf == NULL) {
  367. return MEMORY_E;
  368. }
  369. /* if not DTLS do nothing */
  370. if (!ssl->options.dtls) {
  371. XFREE(buf, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  372. WOLFSSL_MSG("Currently only DTLS export is supported");
  373. return 0;
  374. }
  375. /* copy over keys, options, and dtls state struct */
  376. ret = wolfSSL_session_export_internal(ssl, buf, &bufSz, WOLFSSL_EXPORT_DTLS);
  377. if (ret < 0) {
  378. XFREE(buf, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  379. return ret;
  380. }
  381. /* if no error ret has size of buffer */
  382. ret = ssl->dtls_export(ssl, buf, ret, NULL);
  383. if (ret != WOLFSSL_SUCCESS) {
  384. XFREE(buf, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  385. return ret;
  386. }
  387. XFREE(buf, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  388. return 0;
  389. }
  390. #endif /* WOLFSSL_DTLS */
  391. #endif /* WOLFSSL_SESSION_EXPORT */
  392. /* prevent multiple mutex initializations */
  393. static volatile WOLFSSL_GLOBAL int initRefCount = 0;
  394. static WOLFSSL_GLOBAL wolfSSL_Mutex count_mutex; /* init ref count mutex */
  395. static WOLFSSL_GLOBAL int count_mutex_valid = 0;
  396. /* Create a new WOLFSSL_CTX struct and return the pointer to created struct.
  397. WOLFSSL_METHOD pointer passed in is given to ctx to manage.
  398. This function frees the passed in WOLFSSL_METHOD struct on failure and on
  399. success is freed when ctx is freed.
  400. */
  401. WOLFSSL_CTX* wolfSSL_CTX_new_ex(WOLFSSL_METHOD* method, void* heap)
  402. {
  403. WOLFSSL_CTX* ctx = NULL;
  404. WOLFSSL_ENTER("wolfSSL_CTX_new_ex");
  405. if (initRefCount == 0) {
  406. /* user no longer forced to call Init themselves */
  407. int ret = wolfSSL_Init();
  408. if (ret != WOLFSSL_SUCCESS) {
  409. WOLFSSL_MSG("wolfSSL_Init failed");
  410. WOLFSSL_LEAVE("WOLFSSL_CTX_new", 0);
  411. if (method != NULL) {
  412. XFREE(method, heap, DYNAMIC_TYPE_METHOD);
  413. }
  414. return NULL;
  415. }
  416. }
  417. if (method == NULL)
  418. return ctx;
  419. ctx = (WOLFSSL_CTX*)XMALLOC(sizeof(WOLFSSL_CTX), heap, DYNAMIC_TYPE_CTX);
  420. if (ctx) {
  421. int ret;
  422. ret = InitSSL_Ctx(ctx, method, heap);
  423. #ifdef WOLFSSL_STATIC_MEMORY
  424. if (heap != NULL) {
  425. ctx->onHeapHint = 1; /* free the memory back to heap when done */
  426. }
  427. #endif
  428. if (ret < 0) {
  429. WOLFSSL_MSG("Init CTX failed");
  430. wolfSSL_CTX_free(ctx);
  431. ctx = NULL;
  432. }
  433. #if defined(OPENSSL_EXTRA) && defined(WOLFCRYPT_HAVE_SRP) \
  434. && !defined(NO_SHA256) && !defined(WC_NO_RNG)
  435. else {
  436. ctx->srp = (Srp*)XMALLOC(sizeof(Srp), heap, DYNAMIC_TYPE_SRP);
  437. if (ctx->srp == NULL){
  438. WOLFSSL_MSG("Init CTX failed");
  439. wolfSSL_CTX_free(ctx);
  440. return NULL;
  441. }
  442. XMEMSET(ctx->srp, 0, sizeof(Srp));
  443. }
  444. #endif
  445. }
  446. else {
  447. WOLFSSL_MSG("Alloc CTX failed, method freed");
  448. XFREE(method, heap, DYNAMIC_TYPE_METHOD);
  449. }
  450. #ifdef OPENSSL_COMPATIBLE_DEFAULTS
  451. if (ctx) {
  452. wolfSSL_CTX_set_verify(ctx, SSL_VERIFY_NONE, NULL);
  453. wolfSSL_CTX_set_mode(ctx, SSL_MODE_AUTO_RETRY);
  454. if (wolfSSL_CTX_set_min_proto_version(ctx,
  455. SSL3_VERSION) != WOLFSSL_SUCCESS ||
  456. #ifdef HAVE_ANON
  457. wolfSSL_CTX_allow_anon_cipher(ctx) != WOLFSSL_SUCCESS ||
  458. #endif
  459. wolfSSL_CTX_set_group_messages(ctx) != WOLFSSL_SUCCESS) {
  460. WOLFSSL_MSG("Setting OpenSSL CTX defaults failed");
  461. wolfSSL_CTX_free(ctx);
  462. ctx = NULL;
  463. }
  464. }
  465. #endif
  466. WOLFSSL_LEAVE("WOLFSSL_CTX_new", 0);
  467. return ctx;
  468. }
  469. WOLFSSL_ABI
  470. WOLFSSL_CTX* wolfSSL_CTX_new(WOLFSSL_METHOD* method)
  471. {
  472. #ifdef WOLFSSL_HEAP_TEST
  473. /* if testing the heap hint then set top level CTX to have test value */
  474. return wolfSSL_CTX_new_ex(method, (void*)WOLFSSL_HEAP_TEST);
  475. #else
  476. return wolfSSL_CTX_new_ex(method, NULL);
  477. #endif
  478. }
  479. /* increases CTX reference count to track proper time to "free" */
  480. int wolfSSL_CTX_up_ref(WOLFSSL_CTX* ctx)
  481. {
  482. int refCount = SSL_CTX_RefCount(ctx, 1);
  483. return ((refCount > 1) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE);
  484. }
  485. WOLFSSL_ABI
  486. void wolfSSL_CTX_free(WOLFSSL_CTX* ctx)
  487. {
  488. WOLFSSL_ENTER("SSL_CTX_free");
  489. if (ctx) {
  490. #if defined(OPENSSL_EXTRA) && defined(WOLFCRYPT_HAVE_SRP) \
  491. && !defined(NO_SHA256) && !defined(WC_NO_RNG)
  492. if (ctx->srp != NULL) {
  493. if (ctx->srp_password != NULL){
  494. XFREE(ctx->srp_password, ctx->heap, DYNAMIC_TYPE_SRP);
  495. ctx->srp_password = NULL;
  496. }
  497. wc_SrpTerm(ctx->srp);
  498. XFREE(ctx->srp, ctx->heap, DYNAMIC_TYPE_SRP);
  499. ctx->srp = NULL;
  500. }
  501. #endif
  502. FreeSSL_Ctx(ctx);
  503. }
  504. WOLFSSL_LEAVE("SSL_CTX_free", 0);
  505. }
  506. #ifdef HAVE_ENCRYPT_THEN_MAC
  507. /**
  508. * Sets whether Encrypt-Then-MAC extension can be negotiated against context.
  509. * The default value: enabled.
  510. *
  511. * ctx SSL/TLS context.
  512. * set Whether to allow or not: 1 is allow and 0 is disallow.
  513. * returns WOLFSSL_SUCCESS
  514. */
  515. int wolfSSL_CTX_AllowEncryptThenMac(WOLFSSL_CTX *ctx, int set)
  516. {
  517. ctx->disallowEncThenMac = !set;
  518. return WOLFSSL_SUCCESS;
  519. }
  520. /**
  521. * Sets whether Encrypt-Then-MAC extension can be negotiated against context.
  522. * The default value comes from context.
  523. *
  524. * ctx SSL/TLS context.
  525. * set Whether to allow or not: 1 is allow and 0 is disallow.
  526. * returns WOLFSSL_SUCCESS
  527. */
  528. int wolfSSL_AllowEncryptThenMac(WOLFSSL *ssl, int set)
  529. {
  530. ssl->options.disallowEncThenMac = !set;
  531. return WOLFSSL_SUCCESS;
  532. }
  533. #endif
  534. #ifdef SINGLE_THREADED
  535. /* no locking in single threaded mode, allow a CTX level rng to be shared with
  536. * WOLFSSL objects, WOLFSSL_SUCCESS on ok */
  537. int wolfSSL_CTX_new_rng(WOLFSSL_CTX* ctx)
  538. {
  539. WC_RNG* rng;
  540. int ret;
  541. if (ctx == NULL) {
  542. return BAD_FUNC_ARG;
  543. }
  544. rng = (WC_RNG*)XMALLOC(sizeof(WC_RNG), ctx->heap, DYNAMIC_TYPE_RNG);
  545. if (rng == NULL) {
  546. return MEMORY_E;
  547. }
  548. #ifndef HAVE_FIPS
  549. ret = wc_InitRng_ex(rng, ctx->heap, ctx->devId);
  550. #else
  551. ret = wc_InitRng(rng);
  552. #endif
  553. if (ret != 0) {
  554. XFREE(rng, ctx->heap, DYNAMIC_TYPE_RNG);
  555. return ret;
  556. }
  557. ctx->rng = rng;
  558. return WOLFSSL_SUCCESS;
  559. }
  560. #endif
  561. WOLFSSL_ABI
  562. WOLFSSL* wolfSSL_new(WOLFSSL_CTX* ctx)
  563. {
  564. WOLFSSL* ssl = NULL;
  565. int ret = 0;
  566. WOLFSSL_ENTER("SSL_new");
  567. if (ctx == NULL)
  568. return ssl;
  569. ssl = (WOLFSSL*) XMALLOC(sizeof(WOLFSSL), ctx->heap, DYNAMIC_TYPE_SSL);
  570. if (ssl)
  571. if ( (ret = InitSSL(ssl, ctx, 0)) < 0) {
  572. FreeSSL(ssl, ctx->heap);
  573. ssl = 0;
  574. }
  575. WOLFSSL_LEAVE("SSL_new", ret);
  576. (void)ret;
  577. return ssl;
  578. }
  579. WOLFSSL_ABI
  580. void wolfSSL_free(WOLFSSL* ssl)
  581. {
  582. WOLFSSL_ENTER("SSL_free");
  583. if (ssl)
  584. FreeSSL(ssl, ssl->ctx->heap);
  585. WOLFSSL_LEAVE("SSL_free", 0);
  586. }
  587. int wolfSSL_is_server(WOLFSSL* ssl)
  588. {
  589. if (ssl == NULL)
  590. return BAD_FUNC_ARG;
  591. return ssl->options.side == WOLFSSL_SERVER_END;
  592. }
  593. #ifdef HAVE_WRITE_DUP
  594. /*
  595. * Release resources around WriteDup object
  596. *
  597. * ssl WOLFSSL object
  598. *
  599. * no return, destruction so make best attempt
  600. */
  601. void FreeWriteDup(WOLFSSL* ssl)
  602. {
  603. int doFree = 0;
  604. WOLFSSL_ENTER("FreeWriteDup");
  605. if (ssl->dupWrite) {
  606. if (wc_LockMutex(&ssl->dupWrite->dupMutex) == 0) {
  607. ssl->dupWrite->dupCount--;
  608. if (ssl->dupWrite->dupCount == 0) {
  609. doFree = 1;
  610. } else {
  611. WOLFSSL_MSG("WriteDup count not zero, no full free");
  612. }
  613. wc_UnLockMutex(&ssl->dupWrite->dupMutex);
  614. }
  615. }
  616. if (doFree) {
  617. WOLFSSL_MSG("Doing WriteDup full free, count to zero");
  618. wc_FreeMutex(&ssl->dupWrite->dupMutex);
  619. XFREE(ssl->dupWrite, ssl->heap, DYNAMIC_TYPE_WRITEDUP);
  620. }
  621. }
  622. /*
  623. * duplicate existing ssl members into dup needed for writing
  624. *
  625. * dup write only WOLFSSL
  626. * ssl existing WOLFSSL
  627. *
  628. * 0 on success
  629. */
  630. static int DupSSL(WOLFSSL* dup, WOLFSSL* ssl)
  631. {
  632. /* shared dupWrite setup */
  633. ssl->dupWrite = (WriteDup*)XMALLOC(sizeof(WriteDup), ssl->heap,
  634. DYNAMIC_TYPE_WRITEDUP);
  635. if (ssl->dupWrite == NULL) {
  636. return MEMORY_E;
  637. }
  638. XMEMSET(ssl->dupWrite, 0, sizeof(WriteDup));
  639. if (wc_InitMutex(&ssl->dupWrite->dupMutex) != 0) {
  640. XFREE(ssl->dupWrite, ssl->heap, DYNAMIC_TYPE_WRITEDUP);
  641. ssl->dupWrite = NULL;
  642. return BAD_MUTEX_E;
  643. }
  644. ssl->dupWrite->dupCount = 2; /* both sides have a count to start */
  645. dup->dupWrite = ssl->dupWrite; /* each side uses */
  646. /* copy write parts over to dup writer */
  647. XMEMCPY(&dup->specs, &ssl->specs, sizeof(CipherSpecs));
  648. XMEMCPY(&dup->options, &ssl->options, sizeof(Options));
  649. XMEMCPY(&dup->keys, &ssl->keys, sizeof(Keys));
  650. XMEMCPY(&dup->encrypt, &ssl->encrypt, sizeof(Ciphers));
  651. /* dup side now owns encrypt/write ciphers */
  652. XMEMSET(&ssl->encrypt, 0, sizeof(Ciphers));
  653. dup->IOCB_WriteCtx = ssl->IOCB_WriteCtx;
  654. dup->CBIOSend = ssl->CBIOSend;
  655. #ifdef OPENSSL_EXTRA
  656. dup->cbioFlag = ssl->cbioFlag;
  657. #endif
  658. dup->wfd = ssl->wfd;
  659. dup->wflags = ssl->wflags;
  660. #ifndef WOLFSSL_AEAD_ONLY
  661. dup->hmac = ssl->hmac;
  662. #endif
  663. #ifdef HAVE_TRUNCATED_HMAC
  664. dup->truncated_hmac = ssl->truncated_hmac;
  665. #endif
  666. /* unique side dup setup */
  667. dup->dupSide = WRITE_DUP_SIDE;
  668. ssl->dupSide = READ_DUP_SIDE;
  669. return 0;
  670. }
  671. /*
  672. * duplicate a WOLFSSL object post handshake for writing only
  673. * turn existing object into read only. Allows concurrent access from two
  674. * different threads.
  675. *
  676. * ssl existing WOLFSSL object
  677. *
  678. * return dup'd WOLFSSL object on success
  679. */
  680. WOLFSSL* wolfSSL_write_dup(WOLFSSL* ssl)
  681. {
  682. WOLFSSL* dup = NULL;
  683. int ret = 0;
  684. (void)ret;
  685. WOLFSSL_ENTER("wolfSSL_write_dup");
  686. if (ssl == NULL) {
  687. return ssl;
  688. }
  689. if (ssl->options.handShakeDone == 0) {
  690. WOLFSSL_MSG("wolfSSL_write_dup called before handshake complete");
  691. return NULL;
  692. }
  693. if (ssl->dupWrite) {
  694. WOLFSSL_MSG("wolfSSL_write_dup already called once");
  695. return NULL;
  696. }
  697. dup = (WOLFSSL*) XMALLOC(sizeof(WOLFSSL), ssl->ctx->heap, DYNAMIC_TYPE_SSL);
  698. if (dup) {
  699. if ( (ret = InitSSL(dup, ssl->ctx, 1)) < 0) {
  700. FreeSSL(dup, ssl->ctx->heap);
  701. dup = NULL;
  702. } else if ( (ret = DupSSL(dup, ssl)) < 0) {
  703. FreeSSL(dup, ssl->ctx->heap);
  704. dup = NULL;
  705. }
  706. }
  707. WOLFSSL_LEAVE("wolfSSL_write_dup", ret);
  708. return dup;
  709. }
  710. /*
  711. * Notify write dup side of fatal error or close notify
  712. *
  713. * ssl WOLFSSL object
  714. * err Notify err
  715. *
  716. * 0 on success
  717. */
  718. int NotifyWriteSide(WOLFSSL* ssl, int err)
  719. {
  720. int ret;
  721. WOLFSSL_ENTER("NotifyWriteSide");
  722. ret = wc_LockMutex(&ssl->dupWrite->dupMutex);
  723. if (ret == 0) {
  724. ssl->dupWrite->dupErr = err;
  725. ret = wc_UnLockMutex(&ssl->dupWrite->dupMutex);
  726. }
  727. return ret;
  728. }
  729. #endif /* HAVE_WRITE_DUP */
  730. #ifdef HAVE_POLY1305
  731. /* set if to use old poly 1 for yes 0 to use new poly */
  732. int wolfSSL_use_old_poly(WOLFSSL* ssl, int value)
  733. {
  734. (void)ssl;
  735. (void)value;
  736. #ifndef WOLFSSL_NO_TLS12
  737. WOLFSSL_ENTER("SSL_use_old_poly");
  738. WOLFSSL_MSG("Warning SSL connection auto detects old/new and this function"
  739. "is depreciated");
  740. ssl->options.oldPoly = (word16)value;
  741. WOLFSSL_LEAVE("SSL_use_old_poly", 0);
  742. #endif
  743. return 0;
  744. }
  745. #endif
  746. WOLFSSL_ABI
  747. int wolfSSL_set_fd(WOLFSSL* ssl, int fd)
  748. {
  749. int ret;
  750. WOLFSSL_ENTER("SSL_set_fd");
  751. if (ssl == NULL) {
  752. return BAD_FUNC_ARG;
  753. }
  754. ret = wolfSSL_set_read_fd(ssl, fd);
  755. if (ret == WOLFSSL_SUCCESS) {
  756. ret = wolfSSL_set_write_fd(ssl, fd);
  757. }
  758. return ret;
  759. }
  760. int wolfSSL_set_read_fd(WOLFSSL* ssl, int fd)
  761. {
  762. WOLFSSL_ENTER("SSL_set_read_fd");
  763. if (ssl == NULL) {
  764. return BAD_FUNC_ARG;
  765. }
  766. ssl->rfd = fd; /* not used directly to allow IO callbacks */
  767. ssl->IOCB_ReadCtx = &ssl->rfd;
  768. #ifdef WOLFSSL_DTLS
  769. if (ssl->options.dtls) {
  770. ssl->IOCB_ReadCtx = &ssl->buffers.dtlsCtx;
  771. ssl->buffers.dtlsCtx.rfd = fd;
  772. }
  773. #endif
  774. WOLFSSL_LEAVE("SSL_set_read_fd", WOLFSSL_SUCCESS);
  775. return WOLFSSL_SUCCESS;
  776. }
  777. int wolfSSL_set_write_fd(WOLFSSL* ssl, int fd)
  778. {
  779. WOLFSSL_ENTER("SSL_set_write_fd");
  780. if (ssl == NULL) {
  781. return BAD_FUNC_ARG;
  782. }
  783. ssl->wfd = fd; /* not used directly to allow IO callbacks */
  784. ssl->IOCB_WriteCtx = &ssl->wfd;
  785. #ifdef WOLFSSL_DTLS
  786. if (ssl->options.dtls) {
  787. ssl->IOCB_WriteCtx = &ssl->buffers.dtlsCtx;
  788. ssl->buffers.dtlsCtx.wfd = fd;
  789. }
  790. #endif
  791. WOLFSSL_LEAVE("SSL_set_write_fd", WOLFSSL_SUCCESS);
  792. return WOLFSSL_SUCCESS;
  793. }
  794. /**
  795. * Get the name of cipher at priority level passed in.
  796. */
  797. char* wolfSSL_get_cipher_list(int priority)
  798. {
  799. const CipherSuiteInfo* ciphers = GetCipherNames();
  800. if (priority >= GetCipherNamesSize() || priority < 0) {
  801. return 0;
  802. }
  803. return (char*)ciphers[priority].name;
  804. }
  805. /**
  806. * Get the name of cipher at priority level passed in.
  807. */
  808. char* wolfSSL_get_cipher_list_ex(WOLFSSL* ssl, int priority)
  809. {
  810. if (ssl == NULL) {
  811. return NULL;
  812. }
  813. else {
  814. const char* cipher;
  815. if ((cipher = wolfSSL_get_cipher_name_internal(ssl)) != NULL) {
  816. if (priority == 0) {
  817. return (char*)cipher;
  818. }
  819. else {
  820. return NULL;
  821. }
  822. }
  823. else {
  824. return wolfSSL_get_cipher_list(priority);
  825. }
  826. }
  827. }
  828. int wolfSSL_get_ciphers(char* buf, int len)
  829. {
  830. const CipherSuiteInfo* ciphers = GetCipherNames();
  831. int ciphersSz = GetCipherNamesSize();
  832. int i;
  833. int cipherNameSz;
  834. if (buf == NULL || len <= 0)
  835. return BAD_FUNC_ARG;
  836. /* Add each member to the buffer delimited by a : */
  837. for (i = 0; i < ciphersSz; i++) {
  838. cipherNameSz = (int)XSTRLEN(ciphers[i].name);
  839. if (cipherNameSz + 1 < len) {
  840. XSTRNCPY(buf, ciphers[i].name, len);
  841. buf += cipherNameSz;
  842. if (i < ciphersSz - 1)
  843. *buf++ = ':';
  844. *buf = 0;
  845. len -= cipherNameSz + 1;
  846. }
  847. else
  848. return BUFFER_E;
  849. }
  850. return WOLFSSL_SUCCESS;
  851. }
  852. #ifndef NO_ERROR_STRINGS
  853. /* places a list of all supported cipher suites in TLS_* format into "buf"
  854. * return WOLFSSL_SUCCESS on success */
  855. int wolfSSL_get_ciphers_iana(char* buf, int len)
  856. {
  857. const CipherSuiteInfo* ciphers = GetCipherNames();
  858. int ciphersSz = GetCipherNamesSize();
  859. int i;
  860. int cipherNameSz;
  861. if (buf == NULL || len <= 0)
  862. return BAD_FUNC_ARG;
  863. /* Add each member to the buffer delimited by a : */
  864. for (i = 0; i < ciphersSz; i++) {
  865. #ifndef NO_CIPHER_SUITE_ALIASES
  866. if (ciphers[i].flags & WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS)
  867. continue;
  868. #endif
  869. cipherNameSz = (int)XSTRLEN(ciphers[i].name_iana);
  870. if (cipherNameSz + 1 < len) {
  871. XSTRNCPY(buf, ciphers[i].name_iana, len);
  872. buf += cipherNameSz;
  873. if (i < ciphersSz - 1)
  874. *buf++ = ':';
  875. *buf = 0;
  876. len -= cipherNameSz + 1;
  877. }
  878. else
  879. return BUFFER_E;
  880. }
  881. return WOLFSSL_SUCCESS;
  882. }
  883. #endif /* NO_ERROR_STRINGS */
  884. const char* wolfSSL_get_shared_ciphers(WOLFSSL* ssl, char* buf, int len)
  885. {
  886. const char* cipher;
  887. if (ssl == NULL)
  888. return NULL;
  889. cipher = wolfSSL_get_cipher_name_iana(ssl);
  890. len = min(len, (int)(XSTRLEN(cipher) + 1));
  891. XMEMCPY(buf, cipher, len);
  892. return buf;
  893. }
  894. int wolfSSL_get_fd(const WOLFSSL* ssl)
  895. {
  896. int fd = -1;
  897. WOLFSSL_ENTER("SSL_get_fd");
  898. if (ssl) {
  899. fd = ssl->rfd;
  900. }
  901. WOLFSSL_LEAVE("SSL_get_fd", fd);
  902. return fd;
  903. }
  904. int wolfSSL_dtls(WOLFSSL* ssl)
  905. {
  906. int dtlsOpt = 0;
  907. if (ssl)
  908. dtlsOpt = ssl->options.dtls;
  909. return dtlsOpt;
  910. }
  911. #if !defined(NO_CERTS)
  912. /* Set whether mutual authentication is required for connections.
  913. * Server side only.
  914. *
  915. * ctx The SSL/TLS CTX object.
  916. * req 1 to indicate required and 0 when not.
  917. * returns BAD_FUNC_ARG when ctx is NULL, SIDE_ERROR when not a server and
  918. * 0 on success.
  919. */
  920. int wolfSSL_CTX_mutual_auth(WOLFSSL_CTX* ctx, int req)
  921. {
  922. if (ctx == NULL)
  923. return BAD_FUNC_ARG;
  924. if (ctx->method->side == WOLFSSL_CLIENT_END)
  925. return SIDE_ERROR;
  926. ctx->mutualAuth = (byte)req;
  927. return 0;
  928. }
  929. /* Set whether mutual authentication is required for the connection.
  930. * Server side only.
  931. *
  932. * ssl The SSL/TLS object.
  933. * req 1 to indicate required and 0 when not.
  934. * returns BAD_FUNC_ARG when ssl is NULL, or not using TLS v1.3,
  935. * SIDE_ERROR when not a client and 0 on success.
  936. */
  937. int wolfSSL_mutual_auth(WOLFSSL* ssl, int req)
  938. {
  939. if (ssl == NULL)
  940. return BAD_FUNC_ARG;
  941. if (ssl->options.side == WOLFSSL_SERVER_END)
  942. return SIDE_ERROR;
  943. ssl->options.mutualAuth = (word16)req;
  944. return 0;
  945. }
  946. #endif /* NO_CERTS */
  947. #ifdef WOLFSSL_WOLFSENTRY_HOOKS
  948. int wolfSSL_CTX_set_AcceptFilter(
  949. WOLFSSL_CTX *ctx,
  950. NetworkFilterCallback_t AcceptFilter,
  951. void *AcceptFilter_arg)
  952. {
  953. if (ctx == NULL)
  954. return BAD_FUNC_ARG;
  955. ctx->AcceptFilter = AcceptFilter;
  956. ctx->AcceptFilter_arg = AcceptFilter_arg;
  957. return 0;
  958. }
  959. int wolfSSL_set_AcceptFilter(
  960. WOLFSSL *ssl,
  961. NetworkFilterCallback_t AcceptFilter,
  962. void *AcceptFilter_arg)
  963. {
  964. if (ssl == NULL)
  965. return BAD_FUNC_ARG;
  966. ssl->AcceptFilter = AcceptFilter;
  967. ssl->AcceptFilter_arg = AcceptFilter_arg;
  968. return 0;
  969. }
  970. int wolfSSL_CTX_set_ConnectFilter(
  971. WOLFSSL_CTX *ctx,
  972. NetworkFilterCallback_t ConnectFilter,
  973. void *ConnectFilter_arg)
  974. {
  975. if (ctx == NULL)
  976. return BAD_FUNC_ARG;
  977. ctx->ConnectFilter = ConnectFilter;
  978. ctx->ConnectFilter_arg = ConnectFilter_arg;
  979. return 0;
  980. }
  981. int wolfSSL_set_ConnectFilter(
  982. WOLFSSL *ssl,
  983. NetworkFilterCallback_t ConnectFilter,
  984. void *ConnectFilter_arg)
  985. {
  986. if (ssl == NULL)
  987. return BAD_FUNC_ARG;
  988. ssl->ConnectFilter = ConnectFilter;
  989. ssl->ConnectFilter_arg = ConnectFilter_arg;
  990. return 0;
  991. }
  992. #endif /* WOLFSSL_WOLFSENTRY_HOOKS */
  993. #ifndef WOLFSSL_LEANPSK
  994. int wolfSSL_dtls_set_peer(WOLFSSL* ssl, void* peer, unsigned int peerSz)
  995. {
  996. #ifdef WOLFSSL_DTLS
  997. void* sa;
  998. if (ssl == NULL)
  999. return WOLFSSL_FAILURE;
  1000. sa = (void*)XMALLOC(peerSz, ssl->heap, DYNAMIC_TYPE_SOCKADDR);
  1001. if (sa != NULL) {
  1002. if (ssl->buffers.dtlsCtx.peer.sa != NULL) {
  1003. XFREE(ssl->buffers.dtlsCtx.peer.sa,ssl->heap,DYNAMIC_TYPE_SOCKADDR);
  1004. ssl->buffers.dtlsCtx.peer.sa = NULL;
  1005. }
  1006. XMEMCPY(sa, peer, peerSz);
  1007. ssl->buffers.dtlsCtx.peer.sa = sa;
  1008. ssl->buffers.dtlsCtx.peer.sz = peerSz;
  1009. return WOLFSSL_SUCCESS;
  1010. }
  1011. return WOLFSSL_FAILURE;
  1012. #else
  1013. (void)ssl;
  1014. (void)peer;
  1015. (void)peerSz;
  1016. return WOLFSSL_NOT_IMPLEMENTED;
  1017. #endif
  1018. }
  1019. int wolfSSL_dtls_get_peer(WOLFSSL* ssl, void* peer, unsigned int* peerSz)
  1020. {
  1021. #ifdef WOLFSSL_DTLS
  1022. if (ssl == NULL) {
  1023. return WOLFSSL_FAILURE;
  1024. }
  1025. if (peer != NULL && peerSz != NULL
  1026. && *peerSz >= ssl->buffers.dtlsCtx.peer.sz
  1027. && ssl->buffers.dtlsCtx.peer.sa != NULL) {
  1028. *peerSz = ssl->buffers.dtlsCtx.peer.sz;
  1029. XMEMCPY(peer, ssl->buffers.dtlsCtx.peer.sa, *peerSz);
  1030. return WOLFSSL_SUCCESS;
  1031. }
  1032. return WOLFSSL_FAILURE;
  1033. #else
  1034. (void)ssl;
  1035. (void)peer;
  1036. (void)peerSz;
  1037. return WOLFSSL_NOT_IMPLEMENTED;
  1038. #endif
  1039. }
  1040. #if defined(WOLFSSL_SCTP) && defined(WOLFSSL_DTLS)
  1041. int wolfSSL_CTX_dtls_set_sctp(WOLFSSL_CTX* ctx)
  1042. {
  1043. WOLFSSL_ENTER("wolfSSL_CTX_dtls_set_sctp()");
  1044. if (ctx == NULL)
  1045. return BAD_FUNC_ARG;
  1046. ctx->dtlsSctp = 1;
  1047. return WOLFSSL_SUCCESS;
  1048. }
  1049. int wolfSSL_dtls_set_sctp(WOLFSSL* ssl)
  1050. {
  1051. WOLFSSL_ENTER("wolfSSL_dtls_set_sctp()");
  1052. if (ssl == NULL)
  1053. return BAD_FUNC_ARG;
  1054. ssl->options.dtlsSctp = 1;
  1055. return WOLFSSL_SUCCESS;
  1056. }
  1057. #endif /* WOLFSSL_DTLS && WOLFSSL_SCTP */
  1058. #if (defined(WOLFSSL_SCTP) || defined(WOLFSSL_DTLS_MTU)) && \
  1059. defined(WOLFSSL_DTLS)
  1060. int wolfSSL_CTX_dtls_set_mtu(WOLFSSL_CTX* ctx, word16 newMtu)
  1061. {
  1062. if (ctx == NULL || newMtu > MAX_RECORD_SIZE)
  1063. return BAD_FUNC_ARG;
  1064. ctx->dtlsMtuSz = newMtu;
  1065. return WOLFSSL_SUCCESS;
  1066. }
  1067. int wolfSSL_dtls_set_mtu(WOLFSSL* ssl, word16 newMtu)
  1068. {
  1069. if (ssl == NULL)
  1070. return BAD_FUNC_ARG;
  1071. if (newMtu > MAX_RECORD_SIZE) {
  1072. ssl->error = BAD_FUNC_ARG;
  1073. return WOLFSSL_FAILURE;
  1074. }
  1075. ssl->dtlsMtuSz = newMtu;
  1076. return WOLFSSL_SUCCESS;
  1077. }
  1078. #endif /* WOLFSSL_DTLS && (WOLFSSL_SCTP || WOLFSSL_DTLS_MTU) */
  1079. #ifdef WOLFSSL_SRTP
  1080. static const WOLFSSL_SRTP_PROTECTION_PROFILE gSrtpProfiles[] = {
  1081. /* AES CCM 128, Salt:112-bits, Auth HMAC-SHA1 Tag: 80-bits
  1082. * (master_key:128bits + master_salt:112bits) * 2 = 480 bits (60) */
  1083. {"SRTP_AES128_CM_SHA1_80", SRTP_AES128_CM_SHA1_80, (((128 + 112) * 2) / 8) },
  1084. /* AES CCM 128, Salt:112-bits, Auth HMAC-SHA1 Tag: 32-bits
  1085. * (master_key:128bits + master_salt:112bits) * 2 = 480 bits (60) */
  1086. {"SRTP_AES128_CM_SHA1_32", SRTP_AES128_CM_SHA1_32, (((128 + 112) * 2) / 8) },
  1087. /* NULL Cipher, Salt:112-bits, Auth HMAC-SHA1 Tag 80-bits */
  1088. {"SRTP_NULL_SHA1_80", SRTP_NULL_SHA1_80, ((112 * 2) / 8)},
  1089. /* NULL Cipher, Salt:112-bits, Auth HMAC-SHA1 Tag 32-bits */
  1090. {"SRTP_NULL_SHA1_32", SRTP_NULL_SHA1_32, ((112 * 2) / 8)},
  1091. /* AES GCM 128, Salt: 96-bits, Auth GCM Tag 128-bits
  1092. * (master_key:128bits + master_salt:96bits) * 2 = 448 bits (56) */
  1093. {"SRTP_AEAD_AES_128_GCM", SRTP_AEAD_AES_128_GCM, (((128 + 96) * 2) / 8) },
  1094. /* AES GCM 256, Salt: 96-bits, Auth GCM Tag 128-bits
  1095. * (master_key:256bits + master_salt:96bits) * 2 = 704 bits (88) */
  1096. {"SRTP_AEAD_AES_256_GCM", SRTP_AEAD_AES_256_GCM, (((256 + 96) * 2) / 8) },
  1097. };
  1098. static const WOLFSSL_SRTP_PROTECTION_PROFILE* DtlsSrtpFindProfile(
  1099. const char* profile_str, word32 profile_str_len, unsigned long id)
  1100. {
  1101. int i;
  1102. const WOLFSSL_SRTP_PROTECTION_PROFILE* profile = NULL;
  1103. for (i=0;
  1104. i<(int)(sizeof(gSrtpProfiles)/sizeof(WOLFSSL_SRTP_PROTECTION_PROFILE));
  1105. i++) {
  1106. if (profile_str != NULL) {
  1107. word32 srtp_profile_len = (word32)XSTRLEN(gSrtpProfiles[i].name);
  1108. if (srtp_profile_len == profile_str_len &&
  1109. XMEMCMP(gSrtpProfiles[i].name, profile_str, profile_str_len)
  1110. == 0) {
  1111. profile = &gSrtpProfiles[i];
  1112. break;
  1113. }
  1114. }
  1115. else if (id != 0 && gSrtpProfiles[i].id == id) {
  1116. profile = &gSrtpProfiles[i];
  1117. break;
  1118. }
  1119. }
  1120. return profile;
  1121. }
  1122. /* profile_str: accepts ":" colon separated list of SRTP profiles */
  1123. static int DtlsSrtpSelProfiles(word16* id, const char* profile_str)
  1124. {
  1125. const WOLFSSL_SRTP_PROTECTION_PROFILE* profile;
  1126. const char *current, *next = NULL;
  1127. word32 length = 0, current_length;
  1128. *id = 0; /* reset destination ID's */
  1129. if (profile_str == NULL) {
  1130. return WOLFSSL_FAILURE;
  1131. }
  1132. /* loop on end of line or colon ":" */
  1133. next = profile_str;
  1134. length = (word32)XSTRLEN(profile_str);
  1135. do {
  1136. current = next;
  1137. next = XSTRSTR(current, ":");
  1138. current_length = (!next) ? (word32)XSTRLEN(current)
  1139. : (word32)(next - current);
  1140. if (current_length < length)
  1141. length = current_length;
  1142. profile = DtlsSrtpFindProfile(current, current_length, 0);
  1143. if (profile != NULL) {
  1144. *id |= (1 << profile->id); /* selected bit based on ID */
  1145. }
  1146. } while (next != NULL && next++); /* ++ needed to skip ':' */
  1147. return WOLFSSL_SUCCESS;
  1148. }
  1149. int wolfSSL_CTX_set_tlsext_use_srtp(WOLFSSL_CTX* ctx, const char* profile_str)
  1150. {
  1151. int ret = WOLFSSL_FAILURE;
  1152. if (ctx != NULL) {
  1153. ret = DtlsSrtpSelProfiles(&ctx->dtlsSrtpProfiles, profile_str);
  1154. }
  1155. return ret;
  1156. }
  1157. int wolfSSL_set_tlsext_use_srtp(WOLFSSL* ssl, const char* profile_str)
  1158. {
  1159. int ret = WOLFSSL_FAILURE;
  1160. if (ssl != NULL) {
  1161. ret = DtlsSrtpSelProfiles(&ssl->dtlsSrtpProfiles, profile_str);
  1162. }
  1163. return ret;
  1164. }
  1165. const WOLFSSL_SRTP_PROTECTION_PROFILE* wolfSSL_get_selected_srtp_profile(
  1166. WOLFSSL* ssl)
  1167. {
  1168. const WOLFSSL_SRTP_PROTECTION_PROFILE* profile = NULL;
  1169. if (ssl) {
  1170. profile = DtlsSrtpFindProfile(NULL, 0, ssl->dtlsSrtpId);
  1171. }
  1172. return profile;
  1173. }
  1174. #ifndef NO_WOLFSSL_STUB
  1175. WOLF_STACK_OF(WOLFSSL_SRTP_PROTECTION_PROFILE)* wolfSSL_get_srtp_profiles(
  1176. WOLFSSL* ssl)
  1177. {
  1178. /* Not yet implemented - should return list of available SRTP profiles
  1179. * ssl->dtlsSrtpProfiles */
  1180. (void)ssl;
  1181. return NULL;
  1182. }
  1183. #endif
  1184. int wolfSSL_export_dtls_srtp_keying_material(WOLFSSL* ssl,
  1185. unsigned char* out, size_t* olen)
  1186. {
  1187. int ret = WOLFSSL_FAILURE;
  1188. const char* label = "EXTRACTOR-dtls_srtp";
  1189. const WOLFSSL_SRTP_PROTECTION_PROFILE* profile = NULL;
  1190. byte seed[SEED_LEN];
  1191. if (ssl == NULL || olen == NULL) {
  1192. return BAD_FUNC_ARG;
  1193. }
  1194. profile = DtlsSrtpFindProfile(NULL, 0, ssl->dtlsSrtpId);
  1195. if (profile == NULL) {
  1196. WOLFSSL_MSG("Not using DTLS SRTP");
  1197. return EXT_MISSING;
  1198. }
  1199. if (out == NULL) {
  1200. *olen = profile->kdfBits;
  1201. return LENGTH_ONLY_E;
  1202. }
  1203. if (*olen < (size_t)profile->kdfBits) {
  1204. return BUFFER_E;
  1205. }
  1206. #ifdef WOLFSSL_HAVE_PRF
  1207. XMEMCPY(seed, ssl->arrays->clientRandom, RAN_LEN);
  1208. XMEMCPY(seed + RAN_LEN, ssl->arrays->serverRandom, RAN_LEN);
  1209. PRIVATE_KEY_UNLOCK();
  1210. ret = wc_PRF_TLS(out, profile->kdfBits, /* out: generated keys / salt */
  1211. ssl->arrays->masterSecret, SECRET_LEN, /* existing master secret */
  1212. (const byte*)label, (int)XSTRLEN(label),/* label */
  1213. seed, SEED_LEN, /* seed: client/server random */
  1214. IsAtLeastTLSv1_2(ssl), ssl->specs.mac_algorithm,
  1215. ssl->heap, INVALID_DEVID);
  1216. if (ret == 0) {
  1217. *olen = profile->kdfBits;
  1218. ret = WOLFSSL_SUCCESS;
  1219. }
  1220. PRIVATE_KEY_LOCK();
  1221. #else
  1222. /* Pseudo random function must be enabled in the configuration */
  1223. ret = PRF_MISSING;
  1224. #endif
  1225. return ret;
  1226. }
  1227. #endif /* WOLFSSL_SRTP */
  1228. #ifdef WOLFSSL_DTLS_DROP_STATS
  1229. int wolfSSL_dtls_get_drop_stats(WOLFSSL* ssl,
  1230. word32* macDropCount, word32* replayDropCount)
  1231. {
  1232. int ret;
  1233. WOLFSSL_ENTER("wolfSSL_dtls_get_drop_stats()");
  1234. if (ssl == NULL)
  1235. ret = BAD_FUNC_ARG;
  1236. else {
  1237. ret = WOLFSSL_SUCCESS;
  1238. if (macDropCount != NULL)
  1239. *macDropCount = ssl->macDropCount;
  1240. if (replayDropCount != NULL)
  1241. *replayDropCount = ssl->replayDropCount;
  1242. }
  1243. WOLFSSL_LEAVE("wolfSSL_dtls_get_drop_stats()", ret);
  1244. return ret;
  1245. }
  1246. #endif /* WOLFSSL_DTLS_DROP_STATS */
  1247. #if defined(WOLFSSL_MULTICAST)
  1248. int wolfSSL_CTX_mcast_set_member_id(WOLFSSL_CTX* ctx, word16 id)
  1249. {
  1250. int ret = 0;
  1251. WOLFSSL_ENTER("wolfSSL_CTX_mcast_set_member_id()");
  1252. if (ctx == NULL || id > 255)
  1253. ret = BAD_FUNC_ARG;
  1254. if (ret == 0) {
  1255. ctx->haveEMS = 0;
  1256. ctx->haveMcast = 1;
  1257. ctx->mcastID = (byte)id;
  1258. #ifndef WOLFSSL_USER_IO
  1259. ctx->CBIORecv = EmbedReceiveFromMcast;
  1260. #endif /* WOLFSSL_USER_IO */
  1261. ret = WOLFSSL_SUCCESS;
  1262. }
  1263. WOLFSSL_LEAVE("wolfSSL_CTX_mcast_set_member_id()", ret);
  1264. return ret;
  1265. }
  1266. int wolfSSL_mcast_get_max_peers(void)
  1267. {
  1268. return WOLFSSL_MULTICAST_PEERS;
  1269. }
  1270. #ifdef WOLFSSL_DTLS
  1271. static WC_INLINE word32 UpdateHighwaterMark(word32 cur, word32 first,
  1272. word32 second, word32 high)
  1273. {
  1274. word32 newCur = 0;
  1275. if (cur < first)
  1276. newCur = first;
  1277. else if (cur < second)
  1278. newCur = second;
  1279. else if (cur < high)
  1280. newCur = high;
  1281. return newCur;
  1282. }
  1283. #endif /* WOLFSSL_DTLS */
  1284. int wolfSSL_set_secret(WOLFSSL* ssl, word16 epoch,
  1285. const byte* preMasterSecret, word32 preMasterSz,
  1286. const byte* clientRandom, const byte* serverRandom,
  1287. const byte* suite)
  1288. {
  1289. int ret = 0;
  1290. WOLFSSL_ENTER("wolfSSL_set_secret()");
  1291. if (ssl == NULL || preMasterSecret == NULL ||
  1292. preMasterSz == 0 || preMasterSz > ENCRYPT_LEN ||
  1293. clientRandom == NULL || serverRandom == NULL || suite == NULL) {
  1294. ret = BAD_FUNC_ARG;
  1295. }
  1296. if (ret == 0 && ssl->arrays->preMasterSecret == NULL) {
  1297. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  1298. ssl->arrays->preMasterSecret = (byte*)XMALLOC(ENCRYPT_LEN, ssl->heap,
  1299. DYNAMIC_TYPE_SECRET);
  1300. if (ssl->arrays->preMasterSecret == NULL) {
  1301. ret = MEMORY_E;
  1302. }
  1303. }
  1304. if (ret == 0) {
  1305. XMEMCPY(ssl->arrays->preMasterSecret, preMasterSecret, preMasterSz);
  1306. XMEMSET(ssl->arrays->preMasterSecret + preMasterSz, 0, ENCRYPT_LEN - preMasterSz);
  1307. ssl->arrays->preMasterSz = preMasterSz;
  1308. XMEMCPY(ssl->arrays->clientRandom, clientRandom, RAN_LEN);
  1309. XMEMCPY(ssl->arrays->serverRandom, serverRandom, RAN_LEN);
  1310. ssl->options.cipherSuite0 = suite[0];
  1311. ssl->options.cipherSuite = suite[1];
  1312. ret = SetCipherSpecs(ssl);
  1313. }
  1314. if (ret == 0)
  1315. ret = MakeTlsMasterSecret(ssl);
  1316. if (ret == 0) {
  1317. ssl->keys.encryptionOn = 1;
  1318. ret = SetKeysSide(ssl, ENCRYPT_AND_DECRYPT_SIDE);
  1319. }
  1320. if (ret == 0) {
  1321. if (ssl->options.dtls) {
  1322. #ifdef WOLFSSL_DTLS
  1323. WOLFSSL_DTLS_PEERSEQ* peerSeq;
  1324. int i;
  1325. ssl->keys.dtls_epoch = epoch;
  1326. for (i = 0, peerSeq = ssl->keys.peerSeq;
  1327. i < WOLFSSL_DTLS_PEERSEQ_SZ;
  1328. i++, peerSeq++) {
  1329. peerSeq->nextEpoch = epoch;
  1330. peerSeq->prevSeq_lo = peerSeq->nextSeq_lo;
  1331. peerSeq->prevSeq_hi = peerSeq->nextSeq_hi;
  1332. peerSeq->nextSeq_lo = 0;
  1333. peerSeq->nextSeq_hi = 0;
  1334. XMEMCPY(peerSeq->prevWindow, peerSeq->window, DTLS_SEQ_SZ);
  1335. XMEMSET(peerSeq->window, 0, DTLS_SEQ_SZ);
  1336. peerSeq->highwaterMark = UpdateHighwaterMark(0,
  1337. ssl->ctx->mcastFirstSeq,
  1338. ssl->ctx->mcastSecondSeq,
  1339. ssl->ctx->mcastMaxSeq);
  1340. }
  1341. #else
  1342. (void)epoch;
  1343. #endif
  1344. }
  1345. FreeHandshakeResources(ssl);
  1346. ret = WOLFSSL_SUCCESS;
  1347. }
  1348. else {
  1349. if (ssl)
  1350. ssl->error = ret;
  1351. ret = WOLFSSL_FATAL_ERROR;
  1352. }
  1353. WOLFSSL_LEAVE("wolfSSL_set_secret()", ret);
  1354. return ret;
  1355. }
  1356. #ifdef WOLFSSL_DTLS
  1357. int wolfSSL_mcast_peer_add(WOLFSSL* ssl, word16 peerId, int sub)
  1358. {
  1359. WOLFSSL_DTLS_PEERSEQ* p = NULL;
  1360. int ret = WOLFSSL_SUCCESS;
  1361. int i;
  1362. WOLFSSL_ENTER("wolfSSL_mcast_peer_add()");
  1363. if (ssl == NULL || peerId > 255)
  1364. return BAD_FUNC_ARG;
  1365. if (!sub) {
  1366. /* Make sure it isn't already present, while keeping the first
  1367. * open spot. */
  1368. for (i = 0; i < WOLFSSL_DTLS_PEERSEQ_SZ; i++) {
  1369. if (ssl->keys.peerSeq[i].peerId == INVALID_PEER_ID)
  1370. p = &ssl->keys.peerSeq[i];
  1371. if (ssl->keys.peerSeq[i].peerId == peerId) {
  1372. WOLFSSL_MSG("Peer ID already in multicast peer list.");
  1373. p = NULL;
  1374. }
  1375. }
  1376. if (p != NULL) {
  1377. XMEMSET(p, 0, sizeof(WOLFSSL_DTLS_PEERSEQ));
  1378. p->peerId = peerId;
  1379. p->highwaterMark = UpdateHighwaterMark(0,
  1380. ssl->ctx->mcastFirstSeq,
  1381. ssl->ctx->mcastSecondSeq,
  1382. ssl->ctx->mcastMaxSeq);
  1383. }
  1384. else {
  1385. WOLFSSL_MSG("No room in peer list.");
  1386. ret = -1;
  1387. }
  1388. }
  1389. else {
  1390. for (i = 0; i < WOLFSSL_DTLS_PEERSEQ_SZ; i++) {
  1391. if (ssl->keys.peerSeq[i].peerId == peerId)
  1392. p = &ssl->keys.peerSeq[i];
  1393. }
  1394. if (p != NULL) {
  1395. p->peerId = INVALID_PEER_ID;
  1396. }
  1397. else {
  1398. WOLFSSL_MSG("Peer not found in list.");
  1399. }
  1400. }
  1401. WOLFSSL_LEAVE("wolfSSL_mcast_peer_add()", ret);
  1402. return ret;
  1403. }
  1404. /* If peerId is in the list of peers and its last sequence number is non-zero,
  1405. * return 1, otherwise return 0. */
  1406. int wolfSSL_mcast_peer_known(WOLFSSL* ssl, unsigned short peerId)
  1407. {
  1408. int known = 0;
  1409. int i;
  1410. WOLFSSL_ENTER("wolfSSL_mcast_peer_known()");
  1411. if (ssl == NULL || peerId > 255) {
  1412. return BAD_FUNC_ARG;
  1413. }
  1414. for (i = 0; i < WOLFSSL_DTLS_PEERSEQ_SZ; i++) {
  1415. if (ssl->keys.peerSeq[i].peerId == peerId) {
  1416. if (ssl->keys.peerSeq[i].nextSeq_hi ||
  1417. ssl->keys.peerSeq[i].nextSeq_lo) {
  1418. known = 1;
  1419. }
  1420. break;
  1421. }
  1422. }
  1423. WOLFSSL_LEAVE("wolfSSL_mcast_peer_known()", known);
  1424. return known;
  1425. }
  1426. int wolfSSL_CTX_mcast_set_highwater_cb(WOLFSSL_CTX* ctx, word32 maxSeq,
  1427. word32 first, word32 second,
  1428. CallbackMcastHighwater cb)
  1429. {
  1430. if (ctx == NULL || (second && first > second) ||
  1431. first > maxSeq || second > maxSeq || cb == NULL) {
  1432. return BAD_FUNC_ARG;
  1433. }
  1434. ctx->mcastHwCb = cb;
  1435. ctx->mcastFirstSeq = first;
  1436. ctx->mcastSecondSeq = second;
  1437. ctx->mcastMaxSeq = maxSeq;
  1438. return WOLFSSL_SUCCESS;
  1439. }
  1440. int wolfSSL_mcast_set_highwater_ctx(WOLFSSL* ssl, void* ctx)
  1441. {
  1442. if (ssl == NULL || ctx == NULL)
  1443. return BAD_FUNC_ARG;
  1444. ssl->mcastHwCbCtx = ctx;
  1445. return WOLFSSL_SUCCESS;
  1446. }
  1447. #endif /* WOLFSSL_DTLS */
  1448. #endif /* WOLFSSL_MULTICAST */
  1449. #endif /* WOLFSSL_LEANPSK */
  1450. /* return underlying connect or accept, WOLFSSL_SUCCESS on ok */
  1451. int wolfSSL_negotiate(WOLFSSL* ssl)
  1452. {
  1453. int err = WOLFSSL_FATAL_ERROR;
  1454. WOLFSSL_ENTER("wolfSSL_negotiate");
  1455. #ifndef NO_WOLFSSL_SERVER
  1456. if (ssl->options.side == WOLFSSL_SERVER_END) {
  1457. #ifdef WOLFSSL_TLS13
  1458. if (IsAtLeastTLSv1_3(ssl->version))
  1459. err = wolfSSL_accept_TLSv13(ssl);
  1460. else
  1461. #endif
  1462. err = wolfSSL_accept(ssl);
  1463. }
  1464. #endif
  1465. #ifndef NO_WOLFSSL_CLIENT
  1466. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  1467. #ifdef WOLFSSL_TLS13
  1468. if (IsAtLeastTLSv1_3(ssl->version))
  1469. err = wolfSSL_connect_TLSv13(ssl);
  1470. else
  1471. #endif
  1472. err = wolfSSL_connect(ssl);
  1473. }
  1474. #endif
  1475. (void)ssl;
  1476. WOLFSSL_LEAVE("wolfSSL_negotiate", err);
  1477. return err;
  1478. }
  1479. WOLFSSL_ABI
  1480. WC_RNG* wolfSSL_GetRNG(WOLFSSL* ssl)
  1481. {
  1482. if (ssl) {
  1483. return ssl->rng;
  1484. }
  1485. return NULL;
  1486. }
  1487. #ifndef WOLFSSL_LEANPSK
  1488. /* object size based on build */
  1489. int wolfSSL_GetObjectSize(void)
  1490. {
  1491. #ifdef SHOW_SIZES
  1492. printf("sizeof suites = %lu\n", (unsigned long)sizeof(Suites));
  1493. printf("sizeof ciphers(2) = %lu\n", (unsigned long)sizeof(Ciphers));
  1494. #ifndef NO_RC4
  1495. printf("\tsizeof arc4 = %lu\n", (unsigned long)sizeof(Arc4));
  1496. #endif
  1497. printf("\tsizeof aes = %lu\n", (unsigned long)sizeof(Aes));
  1498. #ifndef NO_DES3
  1499. printf("\tsizeof des3 = %lu\n", (unsigned long)sizeof(Des3));
  1500. #endif
  1501. #ifdef HAVE_CHACHA
  1502. printf("\tsizeof chacha = %lu\n", (unsigned long)sizeof(ChaCha));
  1503. #endif
  1504. printf("sizeof cipher specs = %lu\n", (unsigned long)sizeof(CipherSpecs));
  1505. printf("sizeof keys = %lu\n", (unsigned long)sizeof(Keys));
  1506. printf("sizeof Hashes(2) = %lu\n", (unsigned long)sizeof(Hashes));
  1507. #ifndef NO_MD5
  1508. printf("\tsizeof MD5 = %lu\n", (unsigned long)sizeof(wc_Md5));
  1509. #endif
  1510. #ifndef NO_SHA
  1511. printf("\tsizeof SHA = %lu\n", (unsigned long)sizeof(wc_Sha));
  1512. #endif
  1513. #ifdef WOLFSSL_SHA224
  1514. printf("\tsizeof SHA224 = %lu\n", (unsigned long)sizeof(wc_Sha224));
  1515. #endif
  1516. #ifndef NO_SHA256
  1517. printf("\tsizeof SHA256 = %lu\n", (unsigned long)sizeof(wc_Sha256));
  1518. #endif
  1519. #ifdef WOLFSSL_SHA384
  1520. printf("\tsizeof SHA384 = %lu\n", (unsigned long)sizeof(wc_Sha384));
  1521. #endif
  1522. #ifdef WOLFSSL_SHA384
  1523. printf("\tsizeof SHA512 = %lu\n", (unsigned long)sizeof(wc_Sha512));
  1524. #endif
  1525. printf("sizeof Buffers = %lu\n", (unsigned long)sizeof(Buffers));
  1526. printf("sizeof Options = %lu\n", (unsigned long)sizeof(Options));
  1527. printf("sizeof Arrays = %lu\n", (unsigned long)sizeof(Arrays));
  1528. #ifndef NO_RSA
  1529. printf("sizeof RsaKey = %lu\n", (unsigned long)sizeof(RsaKey));
  1530. #endif
  1531. #ifdef HAVE_ECC
  1532. printf("sizeof ecc_key = %lu\n", (unsigned long)sizeof(ecc_key));
  1533. #endif
  1534. printf("sizeof WOLFSSL_CIPHER = %lu\n", (unsigned long)sizeof(WOLFSSL_CIPHER));
  1535. printf("sizeof WOLFSSL_SESSION = %lu\n", (unsigned long)sizeof(WOLFSSL_SESSION));
  1536. printf("sizeof WOLFSSL = %lu\n", (unsigned long)sizeof(WOLFSSL));
  1537. printf("sizeof WOLFSSL_CTX = %lu\n", (unsigned long)sizeof(WOLFSSL_CTX));
  1538. #endif
  1539. return sizeof(WOLFSSL);
  1540. }
  1541. int wolfSSL_CTX_GetObjectSize(void)
  1542. {
  1543. return sizeof(WOLFSSL_CTX);
  1544. }
  1545. int wolfSSL_METHOD_GetObjectSize(void)
  1546. {
  1547. return sizeof(WOLFSSL_METHOD);
  1548. }
  1549. #endif
  1550. #ifdef WOLFSSL_STATIC_MEMORY
  1551. int wolfSSL_CTX_load_static_memory(WOLFSSL_CTX** ctx, wolfSSL_method_func method,
  1552. unsigned char* buf, unsigned int sz,
  1553. int flag, int maxSz)
  1554. {
  1555. WOLFSSL_HEAP* heap;
  1556. WOLFSSL_HEAP_HINT* hint;
  1557. word32 idx = 0;
  1558. if (ctx == NULL || buf == NULL) {
  1559. return BAD_FUNC_ARG;
  1560. }
  1561. if (*ctx == NULL && method == NULL) {
  1562. return BAD_FUNC_ARG;
  1563. }
  1564. if (*ctx == NULL || (*ctx)->heap == NULL) {
  1565. if (sizeof(WOLFSSL_HEAP) + sizeof(WOLFSSL_HEAP_HINT) > sz - idx) {
  1566. return BUFFER_E; /* not enough memory for structures */
  1567. }
  1568. heap = (WOLFSSL_HEAP*)buf;
  1569. idx += sizeof(WOLFSSL_HEAP);
  1570. if (wolfSSL_init_memory_heap(heap) != 0) {
  1571. return WOLFSSL_FAILURE;
  1572. }
  1573. hint = (WOLFSSL_HEAP_HINT*)(buf + idx);
  1574. idx += sizeof(WOLFSSL_HEAP_HINT);
  1575. XMEMSET(hint, 0, sizeof(WOLFSSL_HEAP_HINT));
  1576. hint->memory = heap;
  1577. if (*ctx && (*ctx)->heap == NULL) {
  1578. (*ctx)->heap = (void*)hint;
  1579. }
  1580. }
  1581. else {
  1582. #ifdef WOLFSSL_HEAP_TEST
  1583. /* do not load in memory if test has been set */
  1584. if ((*ctx)->heap == (void*)WOLFSSL_HEAP_TEST) {
  1585. return WOLFSSL_SUCCESS;
  1586. }
  1587. #endif
  1588. hint = (WOLFSSL_HEAP_HINT*)((*ctx)->heap);
  1589. heap = hint->memory;
  1590. }
  1591. if (wolfSSL_load_static_memory(buf + idx, sz - idx, flag, heap) != 1) {
  1592. WOLFSSL_MSG("Error partitioning memory");
  1593. return WOLFSSL_FAILURE;
  1594. }
  1595. /* create ctx if needed */
  1596. if (*ctx == NULL) {
  1597. *ctx = wolfSSL_CTX_new_ex(method(hint), hint);
  1598. if (*ctx == NULL) {
  1599. WOLFSSL_MSG("Error creating ctx");
  1600. return WOLFSSL_FAILURE;
  1601. }
  1602. }
  1603. /* determine what max applies too */
  1604. if (flag & WOLFMEM_IO_POOL || flag & WOLFMEM_IO_POOL_FIXED) {
  1605. heap->maxIO = maxSz;
  1606. }
  1607. else { /* general memory used in handshakes */
  1608. heap->maxHa = maxSz;
  1609. }
  1610. heap->flag |= flag;
  1611. (void)maxSz;
  1612. (void)method;
  1613. return WOLFSSL_SUCCESS;
  1614. }
  1615. int wolfSSL_is_static_memory(WOLFSSL* ssl, WOLFSSL_MEM_CONN_STATS* mem_stats)
  1616. {
  1617. if (ssl == NULL) {
  1618. return BAD_FUNC_ARG;
  1619. }
  1620. WOLFSSL_ENTER("wolfSSL_is_static_memory");
  1621. /* fill out statistics if wanted and WOLFMEM_TRACK_STATS flag */
  1622. if (mem_stats != NULL && ssl->heap != NULL) {
  1623. WOLFSSL_HEAP_HINT* hint = ((WOLFSSL_HEAP_HINT*)(ssl->heap));
  1624. WOLFSSL_HEAP* heap = hint->memory;
  1625. if (heap->flag & WOLFMEM_TRACK_STATS && hint->stats != NULL) {
  1626. XMEMCPY(mem_stats, hint->stats, sizeof(WOLFSSL_MEM_CONN_STATS));
  1627. }
  1628. }
  1629. return (ssl->heap) ? 1 : 0;
  1630. }
  1631. int wolfSSL_CTX_is_static_memory(WOLFSSL_CTX* ctx, WOLFSSL_MEM_STATS* mem_stats)
  1632. {
  1633. if (ctx == NULL) {
  1634. return BAD_FUNC_ARG;
  1635. }
  1636. WOLFSSL_ENTER("wolfSSL_CTX_is_static_memory");
  1637. /* fill out statistics if wanted */
  1638. if (mem_stats != NULL && ctx->heap != NULL) {
  1639. WOLFSSL_HEAP* heap = ((WOLFSSL_HEAP_HINT*)(ctx->heap))->memory;
  1640. if (wolfSSL_GetMemStats(heap, mem_stats) != 1) {
  1641. return MEMORY_E;
  1642. }
  1643. }
  1644. return (ctx->heap) ? 1 : 0;
  1645. }
  1646. #endif /* WOLFSSL_STATIC_MEMORY */
  1647. /* return max record layer size plaintext input size */
  1648. int wolfSSL_GetMaxOutputSize(WOLFSSL* ssl)
  1649. {
  1650. WOLFSSL_ENTER("wolfSSL_GetMaxOutputSize");
  1651. if (ssl == NULL)
  1652. return BAD_FUNC_ARG;
  1653. if (ssl->options.handShakeState != HANDSHAKE_DONE) {
  1654. WOLFSSL_MSG("Handshake not complete yet");
  1655. return BAD_FUNC_ARG;
  1656. }
  1657. return wolfSSL_GetMaxFragSize(ssl, OUTPUT_RECORD_SIZE);
  1658. }
  1659. /* return record layer size of plaintext input size */
  1660. int wolfSSL_GetOutputSize(WOLFSSL* ssl, int inSz)
  1661. {
  1662. int maxSize;
  1663. WOLFSSL_ENTER("wolfSSL_GetOutputSize");
  1664. if (inSz < 0)
  1665. return BAD_FUNC_ARG;
  1666. maxSize = wolfSSL_GetMaxOutputSize(ssl);
  1667. if (maxSize < 0)
  1668. return maxSize; /* error */
  1669. if (inSz > maxSize)
  1670. return INPUT_SIZE_E;
  1671. return BuildMessage(ssl, NULL, 0, NULL, inSz, application_data, 0, 1, 0, CUR_ORDER);
  1672. }
  1673. #ifdef HAVE_ECC
  1674. int wolfSSL_CTX_SetMinEccKey_Sz(WOLFSSL_CTX* ctx, short keySz)
  1675. {
  1676. if (ctx == NULL || keySz < 0 || keySz % 8 != 0) {
  1677. WOLFSSL_MSG("Key size must be divisible by 8 or ctx was null");
  1678. return BAD_FUNC_ARG;
  1679. }
  1680. ctx->minEccKeySz = keySz / 8;
  1681. #ifndef NO_CERTS
  1682. ctx->cm->minEccKeySz = keySz / 8;
  1683. #endif
  1684. return WOLFSSL_SUCCESS;
  1685. }
  1686. int wolfSSL_SetMinEccKey_Sz(WOLFSSL* ssl, short keySz)
  1687. {
  1688. if (ssl == NULL || keySz < 0 || keySz % 8 != 0) {
  1689. WOLFSSL_MSG("Key size must be divisible by 8 or ssl was null");
  1690. return BAD_FUNC_ARG;
  1691. }
  1692. ssl->options.minEccKeySz = keySz / 8;
  1693. return WOLFSSL_SUCCESS;
  1694. }
  1695. #endif /* HAVE_ECC */
  1696. #ifndef NO_RSA
  1697. int wolfSSL_CTX_SetMinRsaKey_Sz(WOLFSSL_CTX* ctx, short keySz)
  1698. {
  1699. if (ctx == NULL || keySz < 0 || keySz % 8 != 0) {
  1700. WOLFSSL_MSG("Key size must be divisible by 8 or ctx was null");
  1701. return BAD_FUNC_ARG;
  1702. }
  1703. ctx->minRsaKeySz = keySz / 8;
  1704. ctx->cm->minRsaKeySz = keySz / 8;
  1705. return WOLFSSL_SUCCESS;
  1706. }
  1707. int wolfSSL_SetMinRsaKey_Sz(WOLFSSL* ssl, short keySz)
  1708. {
  1709. if (ssl == NULL || keySz < 0 || keySz % 8 != 0) {
  1710. WOLFSSL_MSG("Key size must be divisible by 8 or ssl was null");
  1711. return BAD_FUNC_ARG;
  1712. }
  1713. ssl->options.minRsaKeySz = keySz / 8;
  1714. return WOLFSSL_SUCCESS;
  1715. }
  1716. #endif /* !NO_RSA */
  1717. #ifndef NO_DH
  1718. /* server Diffie-Hellman parameters, WOLFSSL_SUCCESS on ok */
  1719. int wolfSSL_SetTmpDH(WOLFSSL* ssl, const unsigned char* p, int pSz,
  1720. const unsigned char* g, int gSz)
  1721. {
  1722. WOLFSSL_ENTER("wolfSSL_SetTmpDH");
  1723. if (ssl == NULL || p == NULL || g == NULL)
  1724. return BAD_FUNC_ARG;
  1725. if ((word16)pSz < ssl->options.minDhKeySz)
  1726. return DH_KEY_SIZE_E;
  1727. if ((word16)pSz > ssl->options.maxDhKeySz)
  1728. return DH_KEY_SIZE_E;
  1729. /* this function is for server only */
  1730. if (ssl->options.side == WOLFSSL_CLIENT_END)
  1731. return SIDE_ERROR;
  1732. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  1733. !defined(HAVE_SELFTEST)
  1734. ssl->options.dhKeyTested = 0;
  1735. ssl->options.dhDoKeyTest = 1;
  1736. #endif
  1737. if (ssl->buffers.serverDH_P.buffer && ssl->buffers.weOwnDH) {
  1738. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1739. ssl->buffers.serverDH_P.buffer = NULL;
  1740. }
  1741. if (ssl->buffers.serverDH_G.buffer && ssl->buffers.weOwnDH) {
  1742. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1743. ssl->buffers.serverDH_G.buffer = NULL;
  1744. }
  1745. ssl->buffers.weOwnDH = 1; /* SSL owns now */
  1746. ssl->buffers.serverDH_P.buffer = (byte*)XMALLOC(pSz, ssl->heap,
  1747. DYNAMIC_TYPE_PUBLIC_KEY);
  1748. if (ssl->buffers.serverDH_P.buffer == NULL)
  1749. return MEMORY_E;
  1750. ssl->buffers.serverDH_G.buffer = (byte*)XMALLOC(gSz, ssl->heap,
  1751. DYNAMIC_TYPE_PUBLIC_KEY);
  1752. if (ssl->buffers.serverDH_G.buffer == NULL) {
  1753. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1754. ssl->buffers.serverDH_P.buffer = NULL;
  1755. return MEMORY_E;
  1756. }
  1757. ssl->buffers.serverDH_P.length = pSz;
  1758. ssl->buffers.serverDH_G.length = gSz;
  1759. XMEMCPY(ssl->buffers.serverDH_P.buffer, p, pSz);
  1760. XMEMCPY(ssl->buffers.serverDH_G.buffer, g, gSz);
  1761. ssl->options.haveDH = 1;
  1762. if (ssl->options.side != WOLFSSL_NEITHER_END) {
  1763. word16 havePSK;
  1764. word16 haveRSA;
  1765. int keySz = 0;
  1766. #ifndef NO_PSK
  1767. havePSK = ssl->options.havePSK;
  1768. #else
  1769. havePSK = 0;
  1770. #endif
  1771. #ifdef NO_RSA
  1772. haveRSA = 0;
  1773. #else
  1774. haveRSA = 1;
  1775. #endif
  1776. #ifndef NO_CERTS
  1777. keySz = ssl->buffers.keySz;
  1778. #endif
  1779. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  1780. ssl->options.haveDH, ssl->options.haveECDSAsig,
  1781. ssl->options.haveECC, ssl->options.haveStaticECC,
  1782. ssl->options.haveFalconSig, ssl->options.haveAnon,
  1783. ssl->options.side);
  1784. }
  1785. WOLFSSL_LEAVE("wolfSSL_SetTmpDH", 0);
  1786. return WOLFSSL_SUCCESS;
  1787. }
  1788. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  1789. !defined(HAVE_SELFTEST)
  1790. /* Enables or disables the session's DH key prime test. */
  1791. int wolfSSL_SetEnableDhKeyTest(WOLFSSL* ssl, int enable)
  1792. {
  1793. WOLFSSL_ENTER("wolfSSL_SetEnableDhKeyTest");
  1794. if (ssl == NULL)
  1795. return BAD_FUNC_ARG;
  1796. if (!enable)
  1797. ssl->options.dhDoKeyTest = 0;
  1798. else
  1799. ssl->options.dhDoKeyTest = 1;
  1800. WOLFSSL_LEAVE("wolfSSL_SetEnableDhKeyTest", WOLFSSL_SUCCESS);
  1801. return WOLFSSL_SUCCESS;
  1802. }
  1803. #endif
  1804. /* server ctx Diffie-Hellman parameters, WOLFSSL_SUCCESS on ok */
  1805. int wolfSSL_CTX_SetTmpDH(WOLFSSL_CTX* ctx, const unsigned char* p, int pSz,
  1806. const unsigned char* g, int gSz)
  1807. {
  1808. WOLFSSL_ENTER("wolfSSL_CTX_SetTmpDH");
  1809. if (ctx == NULL || p == NULL || g == NULL) return BAD_FUNC_ARG;
  1810. if ((word16)pSz < ctx->minDhKeySz)
  1811. return DH_KEY_SIZE_E;
  1812. if ((word16)pSz > ctx->maxDhKeySz)
  1813. return DH_KEY_SIZE_E;
  1814. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  1815. !defined(HAVE_SELFTEST)
  1816. {
  1817. WC_RNG rng;
  1818. int error, freeKey = 0;
  1819. #ifdef WOLFSSL_SMALL_STACK
  1820. DhKey *checkKey = (DhKey*)XMALLOC(sizeof(DhKey), NULL, DYNAMIC_TYPE_DH);
  1821. if (checkKey == NULL)
  1822. return MEMORY_E;
  1823. #else
  1824. DhKey checkKey[1];
  1825. #endif
  1826. error = wc_InitRng(&rng);
  1827. if (!error)
  1828. error = wc_InitDhKey(checkKey);
  1829. if (!error) {
  1830. freeKey = 1;
  1831. error = wc_DhSetCheckKey(checkKey,
  1832. p, pSz, g, gSz, NULL, 0, 0, &rng);
  1833. }
  1834. if (freeKey)
  1835. wc_FreeDhKey(checkKey);
  1836. #ifdef WOLFSSL_SMALL_STACK
  1837. XFREE(checkKey, NULL, DYNAMIC_TYPE_DH);
  1838. #endif
  1839. wc_FreeRng(&rng);
  1840. if (error)
  1841. return error;
  1842. ctx->dhKeyTested = 1;
  1843. }
  1844. #endif
  1845. XFREE(ctx->serverDH_P.buffer, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1846. ctx->serverDH_P.buffer = NULL;
  1847. XFREE(ctx->serverDH_G.buffer, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1848. ctx->serverDH_G.buffer = NULL;
  1849. ctx->serverDH_P.buffer = (byte*)XMALLOC(pSz, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1850. if (ctx->serverDH_P.buffer == NULL)
  1851. return MEMORY_E;
  1852. ctx->serverDH_G.buffer = (byte*)XMALLOC(gSz, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1853. if (ctx->serverDH_G.buffer == NULL) {
  1854. XFREE(ctx->serverDH_P.buffer, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1855. ctx->serverDH_P.buffer = NULL;
  1856. return MEMORY_E;
  1857. }
  1858. ctx->serverDH_P.length = pSz;
  1859. ctx->serverDH_G.length = gSz;
  1860. XMEMCPY(ctx->serverDH_P.buffer, p, pSz);
  1861. XMEMCPY(ctx->serverDH_G.buffer, g, gSz);
  1862. ctx->haveDH = 1;
  1863. WOLFSSL_LEAVE("wolfSSL_CTX_SetTmpDH", 0);
  1864. return WOLFSSL_SUCCESS;
  1865. }
  1866. int wolfSSL_CTX_SetMinDhKey_Sz(WOLFSSL_CTX* ctx, word16 keySz_bits)
  1867. {
  1868. if (ctx == NULL || keySz_bits > 16000 || keySz_bits % 8 != 0)
  1869. return BAD_FUNC_ARG;
  1870. ctx->minDhKeySz = keySz_bits / 8;
  1871. return WOLFSSL_SUCCESS;
  1872. }
  1873. int wolfSSL_SetMinDhKey_Sz(WOLFSSL* ssl, word16 keySz_bits)
  1874. {
  1875. if (ssl == NULL || keySz_bits > 16000 || keySz_bits % 8 != 0)
  1876. return BAD_FUNC_ARG;
  1877. ssl->options.minDhKeySz = keySz_bits / 8;
  1878. return WOLFSSL_SUCCESS;
  1879. }
  1880. int wolfSSL_CTX_SetMaxDhKey_Sz(WOLFSSL_CTX* ctx, word16 keySz_bits)
  1881. {
  1882. if (ctx == NULL || keySz_bits > 16000 || keySz_bits % 8 != 0)
  1883. return BAD_FUNC_ARG;
  1884. ctx->maxDhKeySz = keySz_bits / 8;
  1885. return WOLFSSL_SUCCESS;
  1886. }
  1887. int wolfSSL_SetMaxDhKey_Sz(WOLFSSL* ssl, word16 keySz_bits)
  1888. {
  1889. if (ssl == NULL || keySz_bits > 16000 || keySz_bits % 8 != 0)
  1890. return BAD_FUNC_ARG;
  1891. ssl->options.maxDhKeySz = keySz_bits / 8;
  1892. return WOLFSSL_SUCCESS;
  1893. }
  1894. int wolfSSL_GetDhKey_Sz(WOLFSSL* ssl)
  1895. {
  1896. if (ssl == NULL)
  1897. return BAD_FUNC_ARG;
  1898. return (ssl->options.dhKeySz * 8);
  1899. }
  1900. #endif /* !NO_DH */
  1901. WOLFSSL_ABI
  1902. int wolfSSL_write(WOLFSSL* ssl, const void* data, int sz)
  1903. {
  1904. int ret;
  1905. WOLFSSL_ENTER("SSL_write()");
  1906. if (ssl == NULL || data == NULL || sz < 0)
  1907. return BAD_FUNC_ARG;
  1908. #ifdef WOLFSSL_EARLY_DATA
  1909. if (ssl->earlyData != no_early_data && (ret = wolfSSL_negotiate(ssl)) < 0) {
  1910. ssl->error = ret;
  1911. return WOLFSSL_FATAL_ERROR;
  1912. }
  1913. ssl->earlyData = no_early_data;
  1914. #endif
  1915. #ifdef HAVE_WRITE_DUP
  1916. { /* local variable scope */
  1917. int dupErr = 0; /* local copy */
  1918. ret = 0;
  1919. if (ssl->dupWrite && ssl->dupSide == READ_DUP_SIDE) {
  1920. WOLFSSL_MSG("Read dup side cannot write");
  1921. return WRITE_DUP_WRITE_E;
  1922. }
  1923. if (ssl->dupWrite) {
  1924. if (wc_LockMutex(&ssl->dupWrite->dupMutex) != 0) {
  1925. return BAD_MUTEX_E;
  1926. }
  1927. dupErr = ssl->dupWrite->dupErr;
  1928. ret = wc_UnLockMutex(&ssl->dupWrite->dupMutex);
  1929. }
  1930. if (ret != 0) {
  1931. ssl->error = ret; /* high priority fatal error */
  1932. return WOLFSSL_FATAL_ERROR;
  1933. }
  1934. if (dupErr != 0) {
  1935. WOLFSSL_MSG("Write dup error from other side");
  1936. ssl->error = dupErr;
  1937. return WOLFSSL_FATAL_ERROR;
  1938. }
  1939. }
  1940. #endif
  1941. #ifdef HAVE_ERRNO_H
  1942. errno = 0;
  1943. #endif
  1944. #ifdef OPENSSL_EXTRA
  1945. if (ssl->CBIS != NULL) {
  1946. ssl->CBIS(ssl, SSL_CB_WRITE, WOLFSSL_SUCCESS);
  1947. ssl->cbmode = SSL_CB_WRITE;
  1948. }
  1949. #endif
  1950. ret = SendData(ssl, data, sz);
  1951. WOLFSSL_LEAVE("SSL_write()", ret);
  1952. if (ret < 0)
  1953. return WOLFSSL_FATAL_ERROR;
  1954. else
  1955. return ret;
  1956. }
  1957. static int wolfSSL_read_internal(WOLFSSL* ssl, void* data, int sz, int peek)
  1958. {
  1959. int ret;
  1960. WOLFSSL_ENTER("wolfSSL_read_internal()");
  1961. if (ssl == NULL || data == NULL || sz < 0)
  1962. return BAD_FUNC_ARG;
  1963. #if defined(WOLFSSL_ERROR_CODE_OPENSSL) && defined(OPENSSL_EXTRA)
  1964. /* This additional logic is meant to simulate following openSSL behavior:
  1965. * After bidirectional SSL_shutdown complete, SSL_read returns 0 and
  1966. * SSL_get_error_code returns SSL_ERROR_ZERO_RETURN.
  1967. * This behavior is used to know the disconnect of the underlying
  1968. * transport layer.
  1969. *
  1970. * In this logic, CBIORecv is called with a read size of 0 to check the
  1971. * transport layer status. It also returns WOLFSSL_FAILURE so that
  1972. * SSL_read does not return a positive number on failure.
  1973. */
  1974. /* make sure bidirectional TLS shutdown completes */
  1975. if (ssl->error == WOLFSSL_ERROR_SYSCALL) {
  1976. /* ask the underlying transport the connection is closed */
  1977. if (ssl->CBIORecv(ssl, (char*)data, 0, ssl->IOCB_ReadCtx) ==
  1978. WOLFSSL_CBIO_ERR_CONN_CLOSE) {
  1979. ssl->options.isClosed = 1;
  1980. ssl->error = WOLFSSL_ERROR_ZERO_RETURN;
  1981. }
  1982. return WOLFSSL_FAILURE;
  1983. }
  1984. #endif
  1985. #ifdef HAVE_WRITE_DUP
  1986. if (ssl->dupWrite && ssl->dupSide == WRITE_DUP_SIDE) {
  1987. WOLFSSL_MSG("Write dup side cannot read");
  1988. return WRITE_DUP_READ_E;
  1989. }
  1990. #endif
  1991. #ifdef HAVE_ERRNO_H
  1992. errno = 0;
  1993. #endif
  1994. #ifdef WOLFSSL_DTLS
  1995. if (ssl->options.dtls) {
  1996. ssl->dtls_expected_rx = max(sz + DTLS_MTU_ADDITIONAL_READ_BUFFER,
  1997. MAX_MTU);
  1998. #ifdef WOLFSSL_SCTP
  1999. if (ssl->options.dtlsSctp)
  2000. #endif
  2001. #if defined(WOLFSSL_SCTP) || defined(WOLFSSL_DTLS_MTU)
  2002. /* Add some bytes so that we can operate with slight difference
  2003. * in set MTU size on each peer */
  2004. ssl->dtls_expected_rx = max(ssl->dtls_expected_rx,
  2005. ssl->dtlsMtuSz + (word32)DTLS_MTU_ADDITIONAL_READ_BUFFER);
  2006. #endif
  2007. }
  2008. #endif
  2009. ret = ReceiveData(ssl, (byte*)data, sz, peek);
  2010. #ifdef HAVE_WRITE_DUP
  2011. if (ssl->dupWrite) {
  2012. if (ssl->error != 0 && ssl->error != WANT_READ
  2013. #ifdef WOLFSSL_ASYNC_CRYPT
  2014. && ssl->error != WC_PENDING_E
  2015. #endif
  2016. ) {
  2017. int notifyErr;
  2018. WOLFSSL_MSG("Notifying write side of fatal read error");
  2019. notifyErr = NotifyWriteSide(ssl, ssl->error);
  2020. if (notifyErr < 0) {
  2021. ret = ssl->error = notifyErr;
  2022. }
  2023. }
  2024. }
  2025. #endif
  2026. WOLFSSL_LEAVE("wolfSSL_read_internal()", ret);
  2027. if (ret < 0)
  2028. return WOLFSSL_FATAL_ERROR;
  2029. else
  2030. return ret;
  2031. }
  2032. int wolfSSL_peek(WOLFSSL* ssl, void* data, int sz)
  2033. {
  2034. WOLFSSL_ENTER("wolfSSL_peek()");
  2035. return wolfSSL_read_internal(ssl, data, sz, TRUE);
  2036. }
  2037. WOLFSSL_ABI
  2038. int wolfSSL_read(WOLFSSL* ssl, void* data, int sz)
  2039. {
  2040. WOLFSSL_ENTER("wolfSSL_read()");
  2041. #ifdef OPENSSL_EXTRA
  2042. if (ssl == NULL) {
  2043. return BAD_FUNC_ARG;
  2044. }
  2045. if (ssl->CBIS != NULL) {
  2046. ssl->CBIS(ssl, SSL_CB_READ, WOLFSSL_SUCCESS);
  2047. ssl->cbmode = SSL_CB_READ;
  2048. }
  2049. #endif
  2050. return wolfSSL_read_internal(ssl, data, sz, FALSE);
  2051. }
  2052. #ifdef WOLFSSL_MULTICAST
  2053. int wolfSSL_mcast_read(WOLFSSL* ssl, word16* id, void* data, int sz)
  2054. {
  2055. int ret = 0;
  2056. WOLFSSL_ENTER("wolfSSL_mcast_read()");
  2057. if (ssl == NULL)
  2058. return BAD_FUNC_ARG;
  2059. ret = wolfSSL_read_internal(ssl, data, sz, FALSE);
  2060. if (ssl->options.dtls && ssl->options.haveMcast && id != NULL)
  2061. *id = ssl->keys.curPeerId;
  2062. return ret;
  2063. }
  2064. #endif /* WOLFSSL_MULTICAST */
  2065. /* helpers to set the device id, WOLFSSL_SUCCESS on ok */
  2066. WOLFSSL_ABI
  2067. int wolfSSL_SetDevId(WOLFSSL* ssl, int devId)
  2068. {
  2069. if (ssl == NULL)
  2070. return BAD_FUNC_ARG;
  2071. ssl->devId = devId;
  2072. return WOLFSSL_SUCCESS;
  2073. }
  2074. WOLFSSL_ABI
  2075. int wolfSSL_CTX_SetDevId(WOLFSSL_CTX* ctx, int devId)
  2076. {
  2077. if (ctx == NULL)
  2078. return BAD_FUNC_ARG;
  2079. ctx->devId = devId;
  2080. return WOLFSSL_SUCCESS;
  2081. }
  2082. /* helpers to get device id and heap */
  2083. WOLFSSL_ABI
  2084. int wolfSSL_CTX_GetDevId(WOLFSSL_CTX* ctx, WOLFSSL* ssl)
  2085. {
  2086. int devId = INVALID_DEVID;
  2087. if (ssl != NULL)
  2088. devId = ssl->devId;
  2089. if (ctx != NULL && devId == INVALID_DEVID)
  2090. devId = ctx->devId;
  2091. return devId;
  2092. }
  2093. void* wolfSSL_CTX_GetHeap(WOLFSSL_CTX* ctx, WOLFSSL* ssl)
  2094. {
  2095. void* heap = NULL;
  2096. if (ctx != NULL)
  2097. heap = ctx->heap;
  2098. else if (ssl != NULL)
  2099. heap = ssl->heap;
  2100. return heap;
  2101. }
  2102. #ifdef HAVE_SNI
  2103. WOLFSSL_ABI
  2104. int wolfSSL_UseSNI(WOLFSSL* ssl, byte type, const void* data, word16 size)
  2105. {
  2106. if (ssl == NULL)
  2107. return BAD_FUNC_ARG;
  2108. return TLSX_UseSNI(&ssl->extensions, type, data, size, ssl->heap);
  2109. }
  2110. WOLFSSL_ABI
  2111. int wolfSSL_CTX_UseSNI(WOLFSSL_CTX* ctx, byte type, const void* data,
  2112. word16 size)
  2113. {
  2114. if (ctx == NULL)
  2115. return BAD_FUNC_ARG;
  2116. return TLSX_UseSNI(&ctx->extensions, type, data, size, ctx->heap);
  2117. }
  2118. #ifndef NO_WOLFSSL_SERVER
  2119. void wolfSSL_SNI_SetOptions(WOLFSSL* ssl, byte type, byte options)
  2120. {
  2121. if (ssl && ssl->extensions)
  2122. TLSX_SNI_SetOptions(ssl->extensions, type, options);
  2123. }
  2124. void wolfSSL_CTX_SNI_SetOptions(WOLFSSL_CTX* ctx, byte type, byte options)
  2125. {
  2126. if (ctx && ctx->extensions)
  2127. TLSX_SNI_SetOptions(ctx->extensions, type, options);
  2128. }
  2129. byte wolfSSL_SNI_Status(WOLFSSL* ssl, byte type)
  2130. {
  2131. return TLSX_SNI_Status(ssl ? ssl->extensions : NULL, type);
  2132. }
  2133. word16 wolfSSL_SNI_GetRequest(WOLFSSL* ssl, byte type, void** data)
  2134. {
  2135. if (data)
  2136. *data = NULL;
  2137. if (ssl && ssl->extensions)
  2138. return TLSX_SNI_GetRequest(ssl->extensions, type, data);
  2139. return 0;
  2140. }
  2141. int wolfSSL_SNI_GetFromBuffer(const byte* clientHello, word32 helloSz,
  2142. byte type, byte* sni, word32* inOutSz)
  2143. {
  2144. if (clientHello && helloSz > 0 && sni && inOutSz && *inOutSz > 0)
  2145. return TLSX_SNI_GetFromBuffer(clientHello, helloSz, type, sni, inOutSz);
  2146. return BAD_FUNC_ARG;
  2147. }
  2148. #endif /* NO_WOLFSSL_SERVER */
  2149. #endif /* HAVE_SNI */
  2150. #ifdef HAVE_TRUSTED_CA
  2151. WOLFSSL_API int wolfSSL_UseTrustedCA(WOLFSSL* ssl, byte type,
  2152. const byte* certId, word32 certIdSz)
  2153. {
  2154. if (ssl == NULL)
  2155. return BAD_FUNC_ARG;
  2156. if (type == WOLFSSL_TRUSTED_CA_PRE_AGREED) {
  2157. if (certId != NULL || certIdSz != 0)
  2158. return BAD_FUNC_ARG;
  2159. }
  2160. else if (type == WOLFSSL_TRUSTED_CA_X509_NAME) {
  2161. if (certId == NULL || certIdSz == 0)
  2162. return BAD_FUNC_ARG;
  2163. }
  2164. #ifndef NO_SHA
  2165. else if (type == WOLFSSL_TRUSTED_CA_KEY_SHA1 ||
  2166. type == WOLFSSL_TRUSTED_CA_CERT_SHA1) {
  2167. if (certId == NULL || certIdSz != WC_SHA_DIGEST_SIZE)
  2168. return BAD_FUNC_ARG;
  2169. }
  2170. #endif
  2171. else
  2172. return BAD_FUNC_ARG;
  2173. return TLSX_UseTrustedCA(&ssl->extensions,
  2174. type, certId, certIdSz, ssl->heap);
  2175. }
  2176. #endif /* HAVE_TRUSTED_CA */
  2177. #ifdef HAVE_MAX_FRAGMENT
  2178. #ifndef NO_WOLFSSL_CLIENT
  2179. int wolfSSL_UseMaxFragment(WOLFSSL* ssl, byte mfl)
  2180. {
  2181. if (ssl == NULL)
  2182. return BAD_FUNC_ARG;
  2183. #ifdef WOLFSSL_ALLOW_MAX_FRAGMENT_ADJUST
  2184. /* The following is a non-standard way to reconfigure the max packet size
  2185. post-handshake for wolfSSL_write/wolfSSL_read */
  2186. if (ssl->options.handShakeState == HANDSHAKE_DONE) {
  2187. switch (mfl) {
  2188. case WOLFSSL_MFL_2_8 : ssl->max_fragment = 256; break;
  2189. case WOLFSSL_MFL_2_9 : ssl->max_fragment = 512; break;
  2190. case WOLFSSL_MFL_2_10: ssl->max_fragment = 1024; break;
  2191. case WOLFSSL_MFL_2_11: ssl->max_fragment = 2048; break;
  2192. case WOLFSSL_MFL_2_12: ssl->max_fragment = 4096; break;
  2193. case WOLFSSL_MFL_2_13: ssl->max_fragment = 8192; break;
  2194. default: ssl->max_fragment = MAX_RECORD_SIZE; break;
  2195. }
  2196. return WOLFSSL_SUCCESS;
  2197. }
  2198. #endif /* WOLFSSL_MAX_FRAGMENT_ADJUST */
  2199. /* This call sets the max fragment TLS extension, which gets sent to server.
  2200. The server_hello response is what sets the `ssl->max_fragment` in
  2201. TLSX_MFL_Parse */
  2202. return TLSX_UseMaxFragment(&ssl->extensions, mfl, ssl->heap);
  2203. }
  2204. int wolfSSL_CTX_UseMaxFragment(WOLFSSL_CTX* ctx, byte mfl)
  2205. {
  2206. if (ctx == NULL)
  2207. return BAD_FUNC_ARG;
  2208. return TLSX_UseMaxFragment(&ctx->extensions, mfl, ctx->heap);
  2209. }
  2210. #endif /* NO_WOLFSSL_CLIENT */
  2211. #endif /* HAVE_MAX_FRAGMENT */
  2212. #ifdef HAVE_TRUNCATED_HMAC
  2213. #ifndef NO_WOLFSSL_CLIENT
  2214. int wolfSSL_UseTruncatedHMAC(WOLFSSL* ssl)
  2215. {
  2216. if (ssl == NULL)
  2217. return BAD_FUNC_ARG;
  2218. return TLSX_UseTruncatedHMAC(&ssl->extensions, ssl->heap);
  2219. }
  2220. int wolfSSL_CTX_UseTruncatedHMAC(WOLFSSL_CTX* ctx)
  2221. {
  2222. if (ctx == NULL)
  2223. return BAD_FUNC_ARG;
  2224. return TLSX_UseTruncatedHMAC(&ctx->extensions, ctx->heap);
  2225. }
  2226. #endif /* NO_WOLFSSL_CLIENT */
  2227. #endif /* HAVE_TRUNCATED_HMAC */
  2228. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  2229. int wolfSSL_UseOCSPStapling(WOLFSSL* ssl, byte status_type, byte options)
  2230. {
  2231. WOLFSSL_ENTER("wolfSSL_UseOCSPStapling");
  2232. if (ssl == NULL || ssl->options.side != WOLFSSL_CLIENT_END)
  2233. return BAD_FUNC_ARG;
  2234. return TLSX_UseCertificateStatusRequest(&ssl->extensions, status_type,
  2235. options, NULL, ssl->heap, ssl->devId);
  2236. }
  2237. int wolfSSL_CTX_UseOCSPStapling(WOLFSSL_CTX* ctx, byte status_type,
  2238. byte options)
  2239. {
  2240. WOLFSSL_ENTER("wolfSSL_CTX_UseOCSPStapling");
  2241. if (ctx == NULL || ctx->method->side != WOLFSSL_CLIENT_END)
  2242. return BAD_FUNC_ARG;
  2243. return TLSX_UseCertificateStatusRequest(&ctx->extensions, status_type,
  2244. options, NULL, ctx->heap, ctx->devId);
  2245. }
  2246. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST */
  2247. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  2248. int wolfSSL_UseOCSPStaplingV2(WOLFSSL* ssl, byte status_type, byte options)
  2249. {
  2250. if (ssl == NULL || ssl->options.side != WOLFSSL_CLIENT_END)
  2251. return BAD_FUNC_ARG;
  2252. return TLSX_UseCertificateStatusRequestV2(&ssl->extensions, status_type,
  2253. options, ssl->heap, ssl->devId);
  2254. }
  2255. int wolfSSL_CTX_UseOCSPStaplingV2(WOLFSSL_CTX* ctx, byte status_type,
  2256. byte options)
  2257. {
  2258. if (ctx == NULL || ctx->method->side != WOLFSSL_CLIENT_END)
  2259. return BAD_FUNC_ARG;
  2260. return TLSX_UseCertificateStatusRequestV2(&ctx->extensions, status_type,
  2261. options, ctx->heap, ctx->devId);
  2262. }
  2263. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  2264. /* Elliptic Curves */
  2265. #if defined(HAVE_SUPPORTED_CURVES)
  2266. static int isValidCurveGroup(word16 name)
  2267. {
  2268. switch (name) {
  2269. case WOLFSSL_ECC_SECP160K1:
  2270. case WOLFSSL_ECC_SECP160R1:
  2271. case WOLFSSL_ECC_SECP160R2:
  2272. case WOLFSSL_ECC_SECP192K1:
  2273. case WOLFSSL_ECC_SECP192R1:
  2274. case WOLFSSL_ECC_SECP224K1:
  2275. case WOLFSSL_ECC_SECP224R1:
  2276. case WOLFSSL_ECC_SECP256K1:
  2277. case WOLFSSL_ECC_SECP256R1:
  2278. case WOLFSSL_ECC_SECP384R1:
  2279. case WOLFSSL_ECC_SECP521R1:
  2280. case WOLFSSL_ECC_BRAINPOOLP256R1:
  2281. case WOLFSSL_ECC_BRAINPOOLP384R1:
  2282. case WOLFSSL_ECC_BRAINPOOLP512R1:
  2283. case WOLFSSL_ECC_X25519:
  2284. case WOLFSSL_ECC_X448:
  2285. case WOLFSSL_FFDHE_2048:
  2286. case WOLFSSL_FFDHE_3072:
  2287. case WOLFSSL_FFDHE_4096:
  2288. case WOLFSSL_FFDHE_6144:
  2289. case WOLFSSL_FFDHE_8192:
  2290. #ifdef HAVE_PQC
  2291. case WOLFSSL_KYBER_LEVEL1:
  2292. case WOLFSSL_KYBER_LEVEL3:
  2293. case WOLFSSL_KYBER_LEVEL5:
  2294. case WOLFSSL_NTRU_HPS_LEVEL1:
  2295. case WOLFSSL_NTRU_HPS_LEVEL3:
  2296. case WOLFSSL_NTRU_HPS_LEVEL5:
  2297. case WOLFSSL_NTRU_HRSS_LEVEL3:
  2298. case WOLFSSL_SABER_LEVEL1:
  2299. case WOLFSSL_SABER_LEVEL3:
  2300. case WOLFSSL_SABER_LEVEL5:
  2301. case WOLFSSL_KYBER_90S_LEVEL1:
  2302. case WOLFSSL_KYBER_90S_LEVEL3:
  2303. case WOLFSSL_KYBER_90S_LEVEL5:
  2304. case WOLFSSL_P256_NTRU_HPS_LEVEL1:
  2305. case WOLFSSL_P384_NTRU_HPS_LEVEL3:
  2306. case WOLFSSL_P521_NTRU_HPS_LEVEL5:
  2307. case WOLFSSL_P384_NTRU_HRSS_LEVEL3:
  2308. case WOLFSSL_P256_SABER_LEVEL1:
  2309. case WOLFSSL_P384_SABER_LEVEL3:
  2310. case WOLFSSL_P521_SABER_LEVEL5:
  2311. case WOLFSSL_P256_KYBER_LEVEL1:
  2312. case WOLFSSL_P384_KYBER_LEVEL3:
  2313. case WOLFSSL_P521_KYBER_LEVEL5:
  2314. case WOLFSSL_P256_KYBER_90S_LEVEL1:
  2315. case WOLFSSL_P384_KYBER_90S_LEVEL3:
  2316. case WOLFSSL_P521_KYBER_90S_LEVEL5:
  2317. #endif
  2318. return 1;
  2319. default:
  2320. return 0;
  2321. }
  2322. }
  2323. int wolfSSL_UseSupportedCurve(WOLFSSL* ssl, word16 name)
  2324. {
  2325. if (ssl == NULL || !isValidCurveGroup(name))
  2326. return BAD_FUNC_ARG;
  2327. ssl->options.userCurves = 1;
  2328. return TLSX_UseSupportedCurve(&ssl->extensions, name, ssl->heap);
  2329. }
  2330. int wolfSSL_CTX_UseSupportedCurve(WOLFSSL_CTX* ctx, word16 name)
  2331. {
  2332. if (ctx == NULL || !isValidCurveGroup(name))
  2333. return BAD_FUNC_ARG;
  2334. ctx->userCurves = 1;
  2335. return TLSX_UseSupportedCurve(&ctx->extensions, name, ctx->heap);
  2336. }
  2337. #if defined(OPENSSL_EXTRA) && defined(WOLFSSL_TLS13)
  2338. int wolfSSL_CTX_set1_groups(WOLFSSL_CTX* ctx, int* groups,
  2339. int count)
  2340. {
  2341. int i;
  2342. int _groups[WOLFSSL_MAX_GROUP_COUNT];
  2343. WOLFSSL_ENTER("wolfSSL_CTX_set1_groups");
  2344. if (count == 0) {
  2345. WOLFSSL_MSG("Group count is zero");
  2346. return WOLFSSL_FAILURE;
  2347. }
  2348. for (i = 0; i < count; i++) {
  2349. if (isValidCurveGroup((word16)groups[i])) {
  2350. _groups[i] = groups[i];
  2351. }
  2352. #ifdef HAVE_ECC
  2353. else {
  2354. /* groups may be populated with curve NIDs */
  2355. int oid = nid2oid(groups[i], oidCurveType);
  2356. int name = (int)GetCurveByOID(oid);
  2357. if (name == 0) {
  2358. WOLFSSL_MSG("Invalid group name");
  2359. return WOLFSSL_FAILURE;
  2360. }
  2361. _groups[i] = name;
  2362. }
  2363. #else
  2364. else {
  2365. WOLFSSL_MSG("Invalid group name");
  2366. return WOLFSSL_FAILURE;
  2367. }
  2368. #endif
  2369. }
  2370. return wolfSSL_CTX_set_groups(ctx, _groups, count) == WOLFSSL_SUCCESS ?
  2371. WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  2372. }
  2373. int wolfSSL_set1_groups(WOLFSSL* ssl, int* groups, int count)
  2374. {
  2375. int i;
  2376. int _groups[WOLFSSL_MAX_GROUP_COUNT];
  2377. WOLFSSL_ENTER("wolfSSL_CTX_set1_groups");
  2378. if (count == 0) {
  2379. WOLFSSL_MSG("Group count is zero");
  2380. return WOLFSSL_FAILURE;
  2381. }
  2382. for (i = 0; i < count; i++) {
  2383. if (isValidCurveGroup((word16)groups[i])) {
  2384. _groups[i] = groups[i];
  2385. }
  2386. #ifdef HAVE_ECC
  2387. else {
  2388. /* groups may be populated with curve NIDs */
  2389. int oid = nid2oid(groups[i], oidCurveType);
  2390. int name = (int)GetCurveByOID(oid);
  2391. if (name == 0) {
  2392. WOLFSSL_MSG("Invalid group name");
  2393. return WOLFSSL_FAILURE;
  2394. }
  2395. _groups[i] = name;
  2396. }
  2397. #else
  2398. else {
  2399. WOLFSSL_MSG("Invalid group name");
  2400. return WOLFSSL_FAILURE;
  2401. }
  2402. #endif
  2403. }
  2404. return wolfSSL_set_groups(ssl, _groups, count) == WOLFSSL_SUCCESS ?
  2405. WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  2406. }
  2407. #endif /* OPENSSL_EXTRA && WOLFSSL_TLS13 */
  2408. #endif /* HAVE_SUPPORTED_CURVES */
  2409. /* Application-Layer Protocol Negotiation */
  2410. #ifdef HAVE_ALPN
  2411. WOLFSSL_ABI
  2412. int wolfSSL_UseALPN(WOLFSSL* ssl, char *protocol_name_list,
  2413. word32 protocol_name_listSz, byte options)
  2414. {
  2415. char *list, *ptr, **token;
  2416. word16 len;
  2417. int idx = 0;
  2418. int ret = WOLFSSL_FAILURE;
  2419. WOLFSSL_ENTER("wolfSSL_UseALPN");
  2420. if (ssl == NULL || protocol_name_list == NULL)
  2421. return BAD_FUNC_ARG;
  2422. if (protocol_name_listSz > (WOLFSSL_MAX_ALPN_NUMBER *
  2423. WOLFSSL_MAX_ALPN_PROTO_NAME_LEN +
  2424. WOLFSSL_MAX_ALPN_NUMBER)) {
  2425. WOLFSSL_MSG("Invalid arguments, protocol name list too long");
  2426. return BAD_FUNC_ARG;
  2427. }
  2428. if (!(options & WOLFSSL_ALPN_CONTINUE_ON_MISMATCH) &&
  2429. !(options & WOLFSSL_ALPN_FAILED_ON_MISMATCH)) {
  2430. WOLFSSL_MSG("Invalid arguments, options not supported");
  2431. return BAD_FUNC_ARG;
  2432. }
  2433. list = (char *)XMALLOC(protocol_name_listSz+1, ssl->heap,
  2434. DYNAMIC_TYPE_ALPN);
  2435. if (list == NULL) {
  2436. WOLFSSL_MSG("Memory failure");
  2437. return MEMORY_ERROR;
  2438. }
  2439. token = (char **)XMALLOC(sizeof(char *) * (WOLFSSL_MAX_ALPN_NUMBER+1), ssl->heap, DYNAMIC_TYPE_ALPN);
  2440. if (token == NULL) {
  2441. XFREE(list, ssl->heap, DYNAMIC_TYPE_ALPN);
  2442. WOLFSSL_MSG("Memory failure");
  2443. return MEMORY_ERROR;
  2444. }
  2445. XMEMSET(token, 0, sizeof(char *) * (WOLFSSL_MAX_ALPN_NUMBER+1));
  2446. XSTRNCPY(list, protocol_name_list, protocol_name_listSz);
  2447. list[protocol_name_listSz] = '\0';
  2448. /* read all protocol name from the list */
  2449. token[idx] = XSTRTOK(list, ",", &ptr);
  2450. while (idx < WOLFSSL_MAX_ALPN_NUMBER && token[idx] != NULL)
  2451. token[++idx] = XSTRTOK(NULL, ",", &ptr);
  2452. /* add protocol name list in the TLS extension in reverse order */
  2453. while ((idx--) > 0) {
  2454. len = (word16)XSTRLEN(token[idx]);
  2455. ret = TLSX_UseALPN(&ssl->extensions, token[idx], len, options,
  2456. ssl->heap);
  2457. if (ret != WOLFSSL_SUCCESS) {
  2458. WOLFSSL_MSG("TLSX_UseALPN failure");
  2459. break;
  2460. }
  2461. }
  2462. XFREE(token, ssl->heap, DYNAMIC_TYPE_ALPN);
  2463. XFREE(list, ssl->heap, DYNAMIC_TYPE_ALPN);
  2464. return ret;
  2465. }
  2466. int wolfSSL_ALPN_GetProtocol(WOLFSSL* ssl, char **protocol_name, word16 *size)
  2467. {
  2468. return TLSX_ALPN_GetRequest(ssl ? ssl->extensions : NULL,
  2469. (void **)protocol_name, size);
  2470. }
  2471. int wolfSSL_ALPN_GetPeerProtocol(WOLFSSL* ssl, char **list, word16 *listSz)
  2472. {
  2473. if (list == NULL || listSz == NULL)
  2474. return BAD_FUNC_ARG;
  2475. if (ssl->alpn_client_list == NULL)
  2476. return BUFFER_ERROR;
  2477. *listSz = (word16)XSTRLEN(ssl->alpn_client_list);
  2478. if (*listSz == 0)
  2479. return BUFFER_ERROR;
  2480. *list = (char *)XMALLOC((*listSz)+1, ssl->heap, DYNAMIC_TYPE_TLSX);
  2481. if (*list == NULL)
  2482. return MEMORY_ERROR;
  2483. XSTRNCPY(*list, ssl->alpn_client_list, (*listSz)+1);
  2484. (*list)[*listSz] = 0;
  2485. return WOLFSSL_SUCCESS;
  2486. }
  2487. /* used to free memory allocated by wolfSSL_ALPN_GetPeerProtocol */
  2488. int wolfSSL_ALPN_FreePeerProtocol(WOLFSSL* ssl, char **list)
  2489. {
  2490. if (ssl == NULL) {
  2491. return BAD_FUNC_ARG;
  2492. }
  2493. XFREE(*list, ssl->heap, DYNAMIC_TYPE_TLSX);
  2494. *list = NULL;
  2495. return WOLFSSL_SUCCESS;
  2496. }
  2497. #endif /* HAVE_ALPN */
  2498. /* Secure Renegotiation */
  2499. #ifdef HAVE_SERVER_RENEGOTIATION_INFO
  2500. /* user is forcing ability to use secure renegotiation, we discourage it */
  2501. int wolfSSL_UseSecureRenegotiation(WOLFSSL* ssl)
  2502. {
  2503. int ret = BAD_FUNC_ARG;
  2504. if (ssl)
  2505. ret = TLSX_UseSecureRenegotiation(&ssl->extensions, ssl->heap);
  2506. if (ret == WOLFSSL_SUCCESS) {
  2507. TLSX* extension = TLSX_Find(ssl->extensions, TLSX_RENEGOTIATION_INFO);
  2508. if (extension)
  2509. ssl->secure_renegotiation = (SecureRenegotiation*)extension->data;
  2510. }
  2511. return ret;
  2512. }
  2513. int wolfSSL_CTX_UseSecureRenegotiation(WOLFSSL_CTX* ctx)
  2514. {
  2515. if (ctx == NULL)
  2516. return BAD_FUNC_ARG;
  2517. ctx->useSecureReneg = 1;
  2518. return WOLFSSL_SUCCESS;
  2519. }
  2520. /* do a secure renegotiation handshake, user forced, we discourage */
  2521. static int _Rehandshake(WOLFSSL* ssl)
  2522. {
  2523. int ret;
  2524. if (ssl == NULL)
  2525. return BAD_FUNC_ARG;
  2526. if (ssl->secure_renegotiation == NULL) {
  2527. WOLFSSL_MSG("Secure Renegotiation not forced on by user");
  2528. return SECURE_RENEGOTIATION_E;
  2529. }
  2530. if (ssl->secure_renegotiation->enabled == 0) {
  2531. WOLFSSL_MSG("Secure Renegotiation not enabled at extension level");
  2532. return SECURE_RENEGOTIATION_E;
  2533. }
  2534. /* If the client started the renegotiation, the server will already
  2535. * have processed the client's hello. */
  2536. if (ssl->options.side != WOLFSSL_SERVER_END ||
  2537. ssl->options.acceptState != ACCEPT_FIRST_REPLY_DONE) {
  2538. if (ssl->options.handShakeState != HANDSHAKE_DONE) {
  2539. if (!ssl->options.handShakeDone) {
  2540. WOLFSSL_MSG("Can't renegotiate until initial "
  2541. "handshake complete");
  2542. return SECURE_RENEGOTIATION_E;
  2543. }
  2544. else {
  2545. WOLFSSL_MSG("Renegotiation already started. "
  2546. "Moving it forward.");
  2547. ret = wolfSSL_negotiate(ssl);
  2548. if (ret == WOLFSSL_SUCCESS)
  2549. ssl->secure_rene_count++;
  2550. return ret;
  2551. }
  2552. }
  2553. #ifndef NO_FORCE_SCR_SAME_SUITE
  2554. /* force same suite */
  2555. if (ssl->suites) {
  2556. ssl->suites->suiteSz = SUITE_LEN;
  2557. ssl->suites->suites[0] = ssl->options.cipherSuite0;
  2558. ssl->suites->suites[1] = ssl->options.cipherSuite;
  2559. }
  2560. #endif
  2561. /* reset handshake states */
  2562. ssl->options.sendVerify = 0;
  2563. ssl->options.serverState = NULL_STATE;
  2564. ssl->options.clientState = NULL_STATE;
  2565. ssl->options.connectState = CONNECT_BEGIN;
  2566. ssl->options.acceptState = ACCEPT_BEGIN_RENEG;
  2567. ssl->options.handShakeState = NULL_STATE;
  2568. ssl->options.processReply = 0; /* TODO, move states in internal.h */
  2569. XMEMSET(&ssl->msgsReceived, 0, sizeof(ssl->msgsReceived));
  2570. ssl->secure_renegotiation->cache_status = SCR_CACHE_NEEDED;
  2571. #if !defined(NO_WOLFSSL_SERVER) && defined(HAVE_SECURE_RENEGOTIATION)
  2572. if (ssl->options.side == WOLFSSL_SERVER_END) {
  2573. ret = SendHelloRequest(ssl);
  2574. if (ret != 0) {
  2575. ssl->error = ret;
  2576. return WOLFSSL_FATAL_ERROR;
  2577. }
  2578. }
  2579. #endif /* !NO_WOLFSSL_SERVER && HAVE_SECURE_RENEGOTIATION */
  2580. ret = InitHandshakeHashes(ssl);
  2581. if (ret != 0) {
  2582. ssl->error = ret;
  2583. return WOLFSSL_FATAL_ERROR;
  2584. }
  2585. }
  2586. ret = wolfSSL_negotiate(ssl);
  2587. if (ret == WOLFSSL_SUCCESS)
  2588. ssl->secure_rene_count++;
  2589. return ret;
  2590. }
  2591. /* do a secure renegotiation handshake, user forced, we discourage */
  2592. int wolfSSL_Rehandshake(WOLFSSL* ssl)
  2593. {
  2594. int ret;
  2595. WOLFSSL_ENTER("wolfSSL_Rehandshake");
  2596. if (ssl == NULL)
  2597. return WOLFSSL_FAILURE;
  2598. #ifdef HAVE_SESSION_TICKET
  2599. ret = WOLFSSL_SUCCESS;
  2600. #endif
  2601. if (ssl->options.side == WOLFSSL_SERVER_END) {
  2602. /* Reset option to send certificate verify. */
  2603. ssl->options.sendVerify = 0;
  2604. }
  2605. else {
  2606. /* Reset resuming flag to do full secure handshake. */
  2607. ssl->options.resuming = 0;
  2608. #ifdef HAVE_SESSION_TICKET
  2609. /* Clearing the ticket. */
  2610. ret = wolfSSL_UseSessionTicket(ssl);
  2611. #endif
  2612. }
  2613. /* CLIENT/SERVER: Reset peer authentication for full secure handshake. */
  2614. ssl->options.peerAuthGood = 0;
  2615. #ifdef HAVE_SESSION_TICKET
  2616. if (ret == WOLFSSL_SUCCESS)
  2617. #endif
  2618. ret = _Rehandshake(ssl);
  2619. return ret;
  2620. }
  2621. #ifndef NO_WOLFSSL_CLIENT
  2622. /* do a secure resumption handshake, user forced, we discourage */
  2623. int wolfSSL_SecureResume(WOLFSSL* ssl)
  2624. {
  2625. WOLFSSL_ENTER("wolfSSL_SecureResume");
  2626. if (ssl == NULL)
  2627. return BAD_FUNC_ARG;
  2628. if (ssl->options.side == WOLFSSL_SERVER_END) {
  2629. ssl->error = SIDE_ERROR;
  2630. return WOLFSSL_FATAL_ERROR;
  2631. }
  2632. return _Rehandshake(ssl);
  2633. }
  2634. #endif /* NO_WOLFSSL_CLIENT */
  2635. long wolfSSL_SSL_get_secure_renegotiation_support(WOLFSSL* ssl)
  2636. {
  2637. WOLFSSL_ENTER("wolfSSL_SSL_get_secure_renegotiation_support");
  2638. if (!ssl || !ssl->secure_renegotiation)
  2639. return WOLFSSL_FAILURE;
  2640. return ssl->secure_renegotiation->enabled;
  2641. }
  2642. #endif /* HAVE_SECURE_RENEGOTIATION_INFO */
  2643. #if defined(HAVE_SESSION_TICKET)
  2644. /* Session Ticket */
  2645. #if !defined(NO_WOLFSSL_SERVER)
  2646. int wolfSSL_CTX_NoTicketTLSv12(WOLFSSL_CTX* ctx)
  2647. {
  2648. if (ctx == NULL)
  2649. return BAD_FUNC_ARG;
  2650. ctx->noTicketTls12 = 1;
  2651. return WOLFSSL_SUCCESS;
  2652. }
  2653. int wolfSSL_NoTicketTLSv12(WOLFSSL* ssl)
  2654. {
  2655. if (ssl == NULL)
  2656. return BAD_FUNC_ARG;
  2657. ssl->options.noTicketTls12 = 1;
  2658. return WOLFSSL_SUCCESS;
  2659. }
  2660. /* WOLFSSL_SUCCESS on ok */
  2661. int wolfSSL_CTX_set_TicketEncCb(WOLFSSL_CTX* ctx, SessionTicketEncCb cb)
  2662. {
  2663. if (ctx == NULL)
  2664. return BAD_FUNC_ARG;
  2665. ctx->ticketEncCb = cb;
  2666. return WOLFSSL_SUCCESS;
  2667. }
  2668. /* set hint interval, WOLFSSL_SUCCESS on ok */
  2669. int wolfSSL_CTX_set_TicketHint(WOLFSSL_CTX* ctx, int hint)
  2670. {
  2671. if (ctx == NULL)
  2672. return BAD_FUNC_ARG;
  2673. ctx->ticketHint = hint;
  2674. return WOLFSSL_SUCCESS;
  2675. }
  2676. /* set user context, WOLFSSL_SUCCESS on ok */
  2677. int wolfSSL_CTX_set_TicketEncCtx(WOLFSSL_CTX* ctx, void* userCtx)
  2678. {
  2679. if (ctx == NULL)
  2680. return BAD_FUNC_ARG;
  2681. ctx->ticketEncCtx = userCtx;
  2682. return WOLFSSL_SUCCESS;
  2683. }
  2684. /* get user context - returns userCtx on success, NULL on failure */
  2685. void* wolfSSL_CTX_get_TicketEncCtx(WOLFSSL_CTX* ctx)
  2686. {
  2687. if (ctx == NULL)
  2688. return NULL;
  2689. return ctx->ticketEncCtx;
  2690. }
  2691. #ifdef WOLFSSL_TLS13
  2692. /* set the maximum number of tickets to send
  2693. * return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on fail
  2694. */
  2695. int wolfSSL_CTX_set_num_tickets(WOLFSSL_CTX* ctx, size_t mxTickets)
  2696. {
  2697. if (ctx == NULL)
  2698. return WOLFSSL_FAILURE;
  2699. ctx->maxTicketTls13 = (unsigned int)mxTickets;
  2700. return WOLFSSL_SUCCESS;
  2701. }
  2702. /* get the maximum number of tickets to send
  2703. * return number of tickets set to be sent
  2704. */
  2705. size_t wolfSSL_CTX_get_num_tickets(WOLFSSL_CTX* ctx)
  2706. {
  2707. if (ctx == NULL)
  2708. return 0;
  2709. return (size_t)ctx->maxTicketTls13;
  2710. }
  2711. #endif /* WOLFSSL_TLS13 */
  2712. #endif /* !NO_WOLFSSL_SERVER */
  2713. #if !defined(NO_WOLFSSL_CLIENT)
  2714. int wolfSSL_UseSessionTicket(WOLFSSL* ssl)
  2715. {
  2716. if (ssl == NULL)
  2717. return BAD_FUNC_ARG;
  2718. return TLSX_UseSessionTicket(&ssl->extensions, NULL, ssl->heap);
  2719. }
  2720. int wolfSSL_CTX_UseSessionTicket(WOLFSSL_CTX* ctx)
  2721. {
  2722. if (ctx == NULL)
  2723. return BAD_FUNC_ARG;
  2724. return TLSX_UseSessionTicket(&ctx->extensions, NULL, ctx->heap);
  2725. }
  2726. WOLFSSL_API int wolfSSL_get_SessionTicket(WOLFSSL* ssl,
  2727. byte* buf, word32* bufSz)
  2728. {
  2729. if (ssl == NULL || buf == NULL || bufSz == NULL || *bufSz == 0)
  2730. return BAD_FUNC_ARG;
  2731. if (ssl->session->ticketLen <= *bufSz) {
  2732. XMEMCPY(buf, ssl->session->ticket, ssl->session->ticketLen);
  2733. *bufSz = ssl->session->ticketLen;
  2734. }
  2735. else
  2736. *bufSz = 0;
  2737. return WOLFSSL_SUCCESS;
  2738. }
  2739. WOLFSSL_API int wolfSSL_set_SessionTicket(WOLFSSL* ssl, const byte* buf,
  2740. word32 bufSz)
  2741. {
  2742. if (ssl == NULL || (buf == NULL && bufSz > 0))
  2743. return BAD_FUNC_ARG;
  2744. if (bufSz > 0) {
  2745. /* Ticket will fit into static ticket */
  2746. if (bufSz <= SESSION_TICKET_LEN) {
  2747. if (ssl->session->ticketLenAlloc > 0) {
  2748. XFREE(ssl->session->ticket, ssl->session->heap,
  2749. DYNAMIC_TYPE_SESSION_TICK);
  2750. ssl->session->ticketLenAlloc = 0;
  2751. ssl->session->ticket = ssl->session->_staticTicket;
  2752. }
  2753. }
  2754. else { /* Ticket requires dynamic ticket storage */
  2755. if (ssl->session->ticketLen < bufSz) { /* is dyn buffer big enough */
  2756. if (ssl->session->ticketLenAlloc > 0) {
  2757. XFREE(ssl->session->ticket, ssl->session->heap,
  2758. DYNAMIC_TYPE_SESSION_TICK);
  2759. }
  2760. ssl->session->ticket = (byte*)XMALLOC(bufSz, ssl->session->heap,
  2761. DYNAMIC_TYPE_SESSION_TICK);
  2762. if(ssl->session->ticket == NULL) {
  2763. ssl->session->ticket = ssl->session->_staticTicket;
  2764. ssl->session->ticketLenAlloc = 0;
  2765. return MEMORY_ERROR;
  2766. }
  2767. ssl->session->ticketLenAlloc = (word16)bufSz;
  2768. }
  2769. }
  2770. XMEMCPY(ssl->session->ticket, buf, bufSz);
  2771. }
  2772. ssl->session->ticketLen = (word16)bufSz;
  2773. return WOLFSSL_SUCCESS;
  2774. }
  2775. WOLFSSL_API int wolfSSL_set_SessionTicket_cb(WOLFSSL* ssl,
  2776. CallbackSessionTicket cb, void* ctx)
  2777. {
  2778. if (ssl == NULL)
  2779. return BAD_FUNC_ARG;
  2780. ssl->session_ticket_cb = cb;
  2781. ssl->session_ticket_ctx = ctx;
  2782. return WOLFSSL_SUCCESS;
  2783. }
  2784. #endif /* !NO_WOLFSSL_CLIENT */
  2785. #endif /* HAVE_SESSION_TICKET */
  2786. #ifdef HAVE_EXTENDED_MASTER
  2787. #ifndef NO_WOLFSSL_CLIENT
  2788. int wolfSSL_CTX_DisableExtendedMasterSecret(WOLFSSL_CTX* ctx)
  2789. {
  2790. if (ctx == NULL)
  2791. return BAD_FUNC_ARG;
  2792. ctx->haveEMS = 0;
  2793. return WOLFSSL_SUCCESS;
  2794. }
  2795. int wolfSSL_DisableExtendedMasterSecret(WOLFSSL* ssl)
  2796. {
  2797. if (ssl == NULL)
  2798. return BAD_FUNC_ARG;
  2799. ssl->options.haveEMS = 0;
  2800. return WOLFSSL_SUCCESS;
  2801. }
  2802. #endif
  2803. #endif
  2804. #ifndef WOLFSSL_LEANPSK
  2805. int wolfSSL_send(WOLFSSL* ssl, const void* data, int sz, int flags)
  2806. {
  2807. int ret;
  2808. int oldFlags;
  2809. WOLFSSL_ENTER("wolfSSL_send()");
  2810. if (ssl == NULL || data == NULL || sz < 0)
  2811. return BAD_FUNC_ARG;
  2812. oldFlags = ssl->wflags;
  2813. ssl->wflags = flags;
  2814. ret = wolfSSL_write(ssl, data, sz);
  2815. ssl->wflags = oldFlags;
  2816. WOLFSSL_LEAVE("wolfSSL_send()", ret);
  2817. return ret;
  2818. }
  2819. int wolfSSL_recv(WOLFSSL* ssl, void* data, int sz, int flags)
  2820. {
  2821. int ret;
  2822. int oldFlags;
  2823. WOLFSSL_ENTER("wolfSSL_recv()");
  2824. if (ssl == NULL || data == NULL || sz < 0)
  2825. return BAD_FUNC_ARG;
  2826. oldFlags = ssl->rflags;
  2827. ssl->rflags = flags;
  2828. ret = wolfSSL_read(ssl, data, sz);
  2829. ssl->rflags = oldFlags;
  2830. WOLFSSL_LEAVE("wolfSSL_recv()", ret);
  2831. return ret;
  2832. }
  2833. #endif
  2834. /* WOLFSSL_SUCCESS on ok */
  2835. WOLFSSL_ABI
  2836. int wolfSSL_shutdown(WOLFSSL* ssl)
  2837. {
  2838. int ret = WOLFSSL_FATAL_ERROR;
  2839. WOLFSSL_ENTER("SSL_shutdown()");
  2840. if (ssl == NULL)
  2841. return WOLFSSL_FATAL_ERROR;
  2842. if (ssl->options.quietShutdown) {
  2843. WOLFSSL_MSG("quiet shutdown, no close notify sent");
  2844. ret = WOLFSSL_SUCCESS;
  2845. }
  2846. else {
  2847. /* try to send close notify, not an error if can't */
  2848. if (!ssl->options.isClosed && !ssl->options.connReset &&
  2849. !ssl->options.sentNotify) {
  2850. ssl->error = SendAlert(ssl, alert_warning, close_notify);
  2851. if (ssl->error < 0) {
  2852. WOLFSSL_ERROR(ssl->error);
  2853. return WOLFSSL_FATAL_ERROR;
  2854. }
  2855. ssl->options.sentNotify = 1; /* don't send close_notify twice */
  2856. if (ssl->options.closeNotify)
  2857. ret = WOLFSSL_SUCCESS;
  2858. else {
  2859. ret = WOLFSSL_SHUTDOWN_NOT_DONE;
  2860. WOLFSSL_LEAVE("SSL_shutdown()", ret);
  2861. return ret;
  2862. }
  2863. }
  2864. #ifdef WOLFSSL_SHUTDOWNONCE
  2865. if (ssl->options.isClosed || ssl->options.connReset) {
  2866. /* Shutdown has already occurred.
  2867. * Caller is free to ignore this error. */
  2868. return SSL_SHUTDOWN_ALREADY_DONE_E;
  2869. }
  2870. #endif
  2871. /* call wolfSSL_shutdown again for bidirectional shutdown */
  2872. if (ssl->options.sentNotify && !ssl->options.closeNotify) {
  2873. ret = ProcessReply(ssl);
  2874. if (ret == ZERO_RETURN) {
  2875. /* simulate OpenSSL behavior */
  2876. ssl->error = WOLFSSL_ERROR_SYSCALL;
  2877. ret = WOLFSSL_SUCCESS;
  2878. } else if (ssl->error == WOLFSSL_ERROR_NONE) {
  2879. ret = WOLFSSL_SHUTDOWN_NOT_DONE;
  2880. } else {
  2881. WOLFSSL_ERROR(ssl->error);
  2882. ret = WOLFSSL_FATAL_ERROR;
  2883. }
  2884. }
  2885. }
  2886. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  2887. /* reset WOLFSSL structure state for possible re-use */
  2888. if (ret == WOLFSSL_SUCCESS) {
  2889. if (wolfSSL_clear(ssl) != WOLFSSL_SUCCESS) {
  2890. WOLFSSL_MSG("could not clear WOLFSSL");
  2891. ret = WOLFSSL_FATAL_ERROR;
  2892. }
  2893. }
  2894. #endif
  2895. WOLFSSL_LEAVE("SSL_shutdown()", ret);
  2896. return ret;
  2897. }
  2898. /* get current error state value */
  2899. int wolfSSL_state(WOLFSSL* ssl)
  2900. {
  2901. if (ssl == NULL) {
  2902. return BAD_FUNC_ARG;
  2903. }
  2904. return ssl->error;
  2905. }
  2906. WOLFSSL_ABI
  2907. int wolfSSL_get_error(WOLFSSL* ssl, int ret)
  2908. {
  2909. WOLFSSL_ENTER("SSL_get_error");
  2910. if (ret > 0)
  2911. return WOLFSSL_ERROR_NONE;
  2912. if (ssl == NULL)
  2913. return BAD_FUNC_ARG;
  2914. WOLFSSL_LEAVE("SSL_get_error", ssl->error);
  2915. /* make sure converted types are handled in SetErrorString() too */
  2916. if (ssl->error == WANT_READ)
  2917. return WOLFSSL_ERROR_WANT_READ; /* convert to OpenSSL type */
  2918. else if (ssl->error == WANT_WRITE)
  2919. return WOLFSSL_ERROR_WANT_WRITE; /* convert to OpenSSL type */
  2920. else if (ssl->error == ZERO_RETURN)
  2921. return WOLFSSL_ERROR_ZERO_RETURN; /* convert to OpenSSL type */
  2922. return ssl->error;
  2923. }
  2924. /* retrieve alert history, WOLFSSL_SUCCESS on ok */
  2925. int wolfSSL_get_alert_history(WOLFSSL* ssl, WOLFSSL_ALERT_HISTORY *h)
  2926. {
  2927. if (ssl && h) {
  2928. *h = ssl->alert_history;
  2929. }
  2930. return WOLFSSL_SUCCESS;
  2931. }
  2932. #ifdef OPENSSL_EXTRA
  2933. /* returns SSL_WRITING, SSL_READING or SSL_NOTHING */
  2934. int wolfSSL_want(WOLFSSL* ssl)
  2935. {
  2936. int rw_state = SSL_NOTHING;
  2937. if (ssl) {
  2938. if (ssl->error == WANT_READ)
  2939. rw_state = SSL_READING;
  2940. else if (ssl->error == WANT_WRITE)
  2941. rw_state = SSL_WRITING;
  2942. }
  2943. return rw_state;
  2944. }
  2945. #endif
  2946. /* return TRUE if current error is want read */
  2947. int wolfSSL_want_read(WOLFSSL* ssl)
  2948. {
  2949. WOLFSSL_ENTER("SSL_want_read");
  2950. if (ssl->error == WANT_READ)
  2951. return 1;
  2952. return 0;
  2953. }
  2954. /* return TRUE if current error is want write */
  2955. int wolfSSL_want_write(WOLFSSL* ssl)
  2956. {
  2957. WOLFSSL_ENTER("SSL_want_write");
  2958. if (ssl->error == WANT_WRITE)
  2959. return 1;
  2960. return 0;
  2961. }
  2962. char* wolfSSL_ERR_error_string(unsigned long errNumber, char* data)
  2963. {
  2964. static char tmp[WOLFSSL_MAX_ERROR_SZ] = {0};
  2965. WOLFSSL_ENTER("ERR_error_string");
  2966. if (data) {
  2967. SetErrorString((int)errNumber, data);
  2968. return data;
  2969. }
  2970. else {
  2971. SetErrorString((int)errNumber, tmp);
  2972. return tmp;
  2973. }
  2974. }
  2975. void wolfSSL_ERR_error_string_n(unsigned long e, char* buf, unsigned long len)
  2976. {
  2977. WOLFSSL_ENTER("wolfSSL_ERR_error_string_n");
  2978. if (len >= WOLFSSL_MAX_ERROR_SZ)
  2979. wolfSSL_ERR_error_string(e, buf);
  2980. else {
  2981. char tmp[WOLFSSL_MAX_ERROR_SZ];
  2982. WOLFSSL_MSG("Error buffer too short, truncating");
  2983. if (len) {
  2984. wolfSSL_ERR_error_string(e, tmp);
  2985. XMEMCPY(buf, tmp, len-1);
  2986. buf[len-1] = '\0';
  2987. }
  2988. }
  2989. }
  2990. /* don't free temporary arrays at end of handshake */
  2991. void wolfSSL_KeepArrays(WOLFSSL* ssl)
  2992. {
  2993. if (ssl)
  2994. ssl->options.saveArrays = 1;
  2995. }
  2996. /* user doesn't need temporary arrays anymore, Free */
  2997. void wolfSSL_FreeArrays(WOLFSSL* ssl)
  2998. {
  2999. if (ssl && ssl->options.handShakeState == HANDSHAKE_DONE) {
  3000. ssl->options.saveArrays = 0;
  3001. FreeArrays(ssl, 1);
  3002. }
  3003. }
  3004. /* Set option to indicate that the resources are not to be freed after
  3005. * handshake.
  3006. *
  3007. * ssl The SSL/TLS object.
  3008. * returns BAD_FUNC_ARG when ssl is NULL and 0 on success.
  3009. */
  3010. int wolfSSL_KeepHandshakeResources(WOLFSSL* ssl)
  3011. {
  3012. if (ssl == NULL)
  3013. return BAD_FUNC_ARG;
  3014. ssl->options.keepResources = 1;
  3015. return 0;
  3016. }
  3017. /* Free the handshake resources after handshake.
  3018. *
  3019. * ssl The SSL/TLS object.
  3020. * returns BAD_FUNC_ARG when ssl is NULL and 0 on success.
  3021. */
  3022. int wolfSSL_FreeHandshakeResources(WOLFSSL* ssl)
  3023. {
  3024. if (ssl == NULL)
  3025. return BAD_FUNC_ARG;
  3026. FreeHandshakeResources(ssl);
  3027. return 0;
  3028. }
  3029. /* Use the client's order of preference when matching cipher suites.
  3030. *
  3031. * ssl The SSL/TLS context object.
  3032. * returns BAD_FUNC_ARG when ssl is NULL and 0 on success.
  3033. */
  3034. int wolfSSL_CTX_UseClientSuites(WOLFSSL_CTX* ctx)
  3035. {
  3036. if (ctx == NULL)
  3037. return BAD_FUNC_ARG;
  3038. ctx->useClientOrder = 1;
  3039. return 0;
  3040. }
  3041. /* Use the client's order of preference when matching cipher suites.
  3042. *
  3043. * ssl The SSL/TLS object.
  3044. * returns BAD_FUNC_ARG when ssl is NULL and 0 on success.
  3045. */
  3046. int wolfSSL_UseClientSuites(WOLFSSL* ssl)
  3047. {
  3048. if (ssl == NULL)
  3049. return BAD_FUNC_ARG;
  3050. ssl->options.useClientOrder = 1;
  3051. return 0;
  3052. }
  3053. #ifdef WOLFSSL_DTLS
  3054. const byte* wolfSSL_GetDtlsMacSecret(WOLFSSL* ssl, int verify, int epochOrder)
  3055. {
  3056. #ifndef WOLFSSL_AEAD_ONLY
  3057. Keys* keys = NULL;
  3058. (void)epochOrder;
  3059. if (ssl == NULL)
  3060. return NULL;
  3061. #ifdef HAVE_SECURE_RENEGOTIATION
  3062. switch (epochOrder) {
  3063. case PEER_ORDER:
  3064. if (IsDtlsMsgSCRKeys(ssl))
  3065. keys = &ssl->secure_renegotiation->tmp_keys;
  3066. else
  3067. keys = &ssl->keys;
  3068. break;
  3069. case PREV_ORDER:
  3070. keys = &ssl->keys;
  3071. break;
  3072. case CUR_ORDER:
  3073. if (DtlsUseSCRKeys(ssl))
  3074. keys = &ssl->secure_renegotiation->tmp_keys;
  3075. else
  3076. keys = &ssl->keys;
  3077. break;
  3078. default:
  3079. WOLFSSL_MSG("Unknown epoch order");
  3080. return NULL;
  3081. }
  3082. #else
  3083. keys = &ssl->keys;
  3084. #endif
  3085. if ( (ssl->options.side == WOLFSSL_CLIENT_END && !verify) ||
  3086. (ssl->options.side == WOLFSSL_SERVER_END && verify) )
  3087. return keys->client_write_MAC_secret;
  3088. else
  3089. return keys->server_write_MAC_secret;
  3090. #else
  3091. (void)ssl;
  3092. (void)verify;
  3093. (void)epochOrder;
  3094. return NULL;
  3095. #endif
  3096. }
  3097. #endif /* WOLFSSL_DTLS */
  3098. const byte* wolfSSL_GetMacSecret(WOLFSSL* ssl, int verify)
  3099. {
  3100. #ifndef WOLFSSL_AEAD_ONLY
  3101. if (ssl == NULL)
  3102. return NULL;
  3103. if ( (ssl->options.side == WOLFSSL_CLIENT_END && !verify) ||
  3104. (ssl->options.side == WOLFSSL_SERVER_END && verify) )
  3105. return ssl->keys.client_write_MAC_secret;
  3106. else
  3107. return ssl->keys.server_write_MAC_secret;
  3108. #else
  3109. (void)ssl;
  3110. (void)verify;
  3111. return NULL;
  3112. #endif
  3113. }
  3114. #ifdef ATOMIC_USER
  3115. void wolfSSL_CTX_SetMacEncryptCb(WOLFSSL_CTX* ctx, CallbackMacEncrypt cb)
  3116. {
  3117. if (ctx)
  3118. ctx->MacEncryptCb = cb;
  3119. }
  3120. void wolfSSL_SetMacEncryptCtx(WOLFSSL* ssl, void *ctx)
  3121. {
  3122. if (ssl)
  3123. ssl->MacEncryptCtx = ctx;
  3124. }
  3125. void* wolfSSL_GetMacEncryptCtx(WOLFSSL* ssl)
  3126. {
  3127. if (ssl)
  3128. return ssl->MacEncryptCtx;
  3129. return NULL;
  3130. }
  3131. void wolfSSL_CTX_SetDecryptVerifyCb(WOLFSSL_CTX* ctx, CallbackDecryptVerify cb)
  3132. {
  3133. if (ctx)
  3134. ctx->DecryptVerifyCb = cb;
  3135. }
  3136. void wolfSSL_SetDecryptVerifyCtx(WOLFSSL* ssl, void *ctx)
  3137. {
  3138. if (ssl)
  3139. ssl->DecryptVerifyCtx = ctx;
  3140. }
  3141. void* wolfSSL_GetDecryptVerifyCtx(WOLFSSL* ssl)
  3142. {
  3143. if (ssl)
  3144. return ssl->DecryptVerifyCtx;
  3145. return NULL;
  3146. }
  3147. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  3148. /**
  3149. * Set the callback, against the context, that encrypts then MACs.
  3150. *
  3151. * ctx SSL/TLS context.
  3152. * cb Callback function to use with Encrypt-Then-MAC.
  3153. */
  3154. void wolfSSL_CTX_SetEncryptMacCb(WOLFSSL_CTX* ctx, CallbackEncryptMac cb)
  3155. {
  3156. if (ctx)
  3157. ctx->EncryptMacCb = cb;
  3158. }
  3159. /**
  3160. * Set the context to use with callback that encrypts then MACs.
  3161. *
  3162. * ssl SSL/TLS object.
  3163. * ctx Callback function's context.
  3164. */
  3165. void wolfSSL_SetEncryptMacCtx(WOLFSSL* ssl, void *ctx)
  3166. {
  3167. if (ssl)
  3168. ssl->EncryptMacCtx = ctx;
  3169. }
  3170. /**
  3171. * Get the context being used with callback that encrypts then MACs.
  3172. *
  3173. * ssl SSL/TLS object.
  3174. * returns callback function's context or NULL if SSL/TLS object is NULL.
  3175. */
  3176. void* wolfSSL_GetEncryptMacCtx(WOLFSSL* ssl)
  3177. {
  3178. if (ssl)
  3179. return ssl->EncryptMacCtx;
  3180. return NULL;
  3181. }
  3182. /**
  3183. * Set the callback, against the context, that MAC verifies then decrypts.
  3184. *
  3185. * ctx SSL/TLS context.
  3186. * cb Callback function to use with Encrypt-Then-MAC.
  3187. */
  3188. void wolfSSL_CTX_SetVerifyDecryptCb(WOLFSSL_CTX* ctx, CallbackVerifyDecrypt cb)
  3189. {
  3190. if (ctx)
  3191. ctx->VerifyDecryptCb = cb;
  3192. }
  3193. /**
  3194. * Set the context to use with callback that MAC verifies then decrypts.
  3195. *
  3196. * ssl SSL/TLS object.
  3197. * ctx Callback function's context.
  3198. */
  3199. void wolfSSL_SetVerifyDecryptCtx(WOLFSSL* ssl, void *ctx)
  3200. {
  3201. if (ssl)
  3202. ssl->VerifyDecryptCtx = ctx;
  3203. }
  3204. /**
  3205. * Get the context being used with callback that MAC verifies then decrypts.
  3206. *
  3207. * ssl SSL/TLS object.
  3208. * returns callback function's context or NULL if SSL/TLS object is NULL.
  3209. */
  3210. void* wolfSSL_GetVerifyDecryptCtx(WOLFSSL* ssl)
  3211. {
  3212. if (ssl)
  3213. return ssl->VerifyDecryptCtx;
  3214. return NULL;
  3215. }
  3216. #endif /* HAVE_ENCRYPT_THEN_MAC !WOLFSSL_AEAD_ONLY */
  3217. const byte* wolfSSL_GetClientWriteKey(WOLFSSL* ssl)
  3218. {
  3219. if (ssl)
  3220. return ssl->keys.client_write_key;
  3221. return NULL;
  3222. }
  3223. const byte* wolfSSL_GetClientWriteIV(WOLFSSL* ssl)
  3224. {
  3225. if (ssl)
  3226. return ssl->keys.client_write_IV;
  3227. return NULL;
  3228. }
  3229. const byte* wolfSSL_GetServerWriteKey(WOLFSSL* ssl)
  3230. {
  3231. if (ssl)
  3232. return ssl->keys.server_write_key;
  3233. return NULL;
  3234. }
  3235. const byte* wolfSSL_GetServerWriteIV(WOLFSSL* ssl)
  3236. {
  3237. if (ssl)
  3238. return ssl->keys.server_write_IV;
  3239. return NULL;
  3240. }
  3241. int wolfSSL_GetKeySize(WOLFSSL* ssl)
  3242. {
  3243. if (ssl)
  3244. return ssl->specs.key_size;
  3245. return BAD_FUNC_ARG;
  3246. }
  3247. int wolfSSL_GetIVSize(WOLFSSL* ssl)
  3248. {
  3249. if (ssl)
  3250. return ssl->specs.iv_size;
  3251. return BAD_FUNC_ARG;
  3252. }
  3253. int wolfSSL_GetBulkCipher(WOLFSSL* ssl)
  3254. {
  3255. if (ssl)
  3256. return ssl->specs.bulk_cipher_algorithm;
  3257. return BAD_FUNC_ARG;
  3258. }
  3259. int wolfSSL_GetCipherType(WOLFSSL* ssl)
  3260. {
  3261. if (ssl == NULL)
  3262. return BAD_FUNC_ARG;
  3263. #ifndef WOLFSSL_AEAD_ONLY
  3264. if (ssl->specs.cipher_type == block)
  3265. return WOLFSSL_BLOCK_TYPE;
  3266. if (ssl->specs.cipher_type == stream)
  3267. return WOLFSSL_STREAM_TYPE;
  3268. #endif
  3269. if (ssl->specs.cipher_type == aead)
  3270. return WOLFSSL_AEAD_TYPE;
  3271. return -1;
  3272. }
  3273. int wolfSSL_GetCipherBlockSize(WOLFSSL* ssl)
  3274. {
  3275. if (ssl == NULL)
  3276. return BAD_FUNC_ARG;
  3277. return ssl->specs.block_size;
  3278. }
  3279. int wolfSSL_GetAeadMacSize(WOLFSSL* ssl)
  3280. {
  3281. if (ssl == NULL)
  3282. return BAD_FUNC_ARG;
  3283. return ssl->specs.aead_mac_size;
  3284. }
  3285. int wolfSSL_IsTLSv1_1(WOLFSSL* ssl)
  3286. {
  3287. if (ssl == NULL)
  3288. return BAD_FUNC_ARG;
  3289. if (ssl->options.tls1_1)
  3290. return 1;
  3291. return 0;
  3292. }
  3293. int wolfSSL_GetSide(WOLFSSL* ssl)
  3294. {
  3295. if (ssl)
  3296. return ssl->options.side;
  3297. return BAD_FUNC_ARG;
  3298. }
  3299. int wolfSSL_GetHmacSize(WOLFSSL* ssl)
  3300. {
  3301. /* AEAD ciphers don't have HMAC keys */
  3302. if (ssl)
  3303. return (ssl->specs.cipher_type != aead) ? ssl->specs.hash_size : 0;
  3304. return BAD_FUNC_ARG;
  3305. }
  3306. #ifdef WORD64_AVAILABLE
  3307. int wolfSSL_GetPeerSequenceNumber(WOLFSSL* ssl, word64 *seq)
  3308. {
  3309. if ((ssl == NULL) || (seq == NULL))
  3310. return BAD_FUNC_ARG;
  3311. *seq = ((word64)ssl->keys.peer_sequence_number_hi << 32) |
  3312. ssl->keys.peer_sequence_number_lo;
  3313. return !(*seq);
  3314. }
  3315. int wolfSSL_GetSequenceNumber(WOLFSSL* ssl, word64 *seq)
  3316. {
  3317. if ((ssl == NULL) || (seq == NULL))
  3318. return BAD_FUNC_ARG;
  3319. *seq = ((word64)ssl->keys.sequence_number_hi << 32) |
  3320. ssl->keys.sequence_number_lo;
  3321. return !(*seq);
  3322. }
  3323. #endif
  3324. #endif /* ATOMIC_USER */
  3325. #ifndef NO_CERTS
  3326. WOLFSSL_CERT_MANAGER* wolfSSL_CTX_GetCertManager(WOLFSSL_CTX* ctx)
  3327. {
  3328. WOLFSSL_CERT_MANAGER* cm = NULL;
  3329. if (ctx)
  3330. cm = ctx->cm;
  3331. return cm;
  3332. }
  3333. WOLFSSL_CERT_MANAGER* wolfSSL_CertManagerNew_ex(void* heap)
  3334. {
  3335. WOLFSSL_CERT_MANAGER* cm;
  3336. WOLFSSL_ENTER("wolfSSL_CertManagerNew");
  3337. cm = (WOLFSSL_CERT_MANAGER*) XMALLOC(sizeof(WOLFSSL_CERT_MANAGER), heap,
  3338. DYNAMIC_TYPE_CERT_MANAGER);
  3339. if (cm) {
  3340. XMEMSET(cm, 0, sizeof(WOLFSSL_CERT_MANAGER));
  3341. cm->refCount = 1;
  3342. if (wc_InitMutex(&cm->caLock) != 0) {
  3343. WOLFSSL_MSG("Bad mutex init");
  3344. wolfSSL_CertManagerFree(cm);
  3345. return NULL;
  3346. }
  3347. #ifndef SINGLE_THREADED
  3348. if (wc_InitMutex(&cm->refMutex) != 0) {
  3349. WOLFSSL_MSG("Bad mutex init");
  3350. wolfSSL_CertManagerFree(cm);
  3351. return NULL;
  3352. }
  3353. #endif
  3354. #ifdef WOLFSSL_TRUST_PEER_CERT
  3355. if (wc_InitMutex(&cm->tpLock) != 0) {
  3356. WOLFSSL_MSG("Bad mutex init");
  3357. wolfSSL_CertManagerFree(cm);
  3358. return NULL;
  3359. }
  3360. #endif
  3361. /* set default minimum key size allowed */
  3362. #ifndef NO_RSA
  3363. cm->minRsaKeySz = MIN_RSAKEY_SZ;
  3364. #endif
  3365. #ifdef HAVE_ECC
  3366. cm->minEccKeySz = MIN_ECCKEY_SZ;
  3367. #endif
  3368. #ifdef HAVE_PQC
  3369. cm->minFalconKeySz = MIN_FALCONKEY_SZ;
  3370. #endif
  3371. cm->heap = heap;
  3372. }
  3373. return cm;
  3374. }
  3375. WOLFSSL_CERT_MANAGER* wolfSSL_CertManagerNew(void)
  3376. {
  3377. return wolfSSL_CertManagerNew_ex(NULL);
  3378. }
  3379. void wolfSSL_CertManagerFree(WOLFSSL_CERT_MANAGER* cm)
  3380. {
  3381. int doFree = 0;
  3382. WOLFSSL_ENTER("wolfSSL_CertManagerFree");
  3383. if (cm) {
  3384. #ifndef SINGLE_THREADED
  3385. if (wc_LockMutex(&cm->refMutex) != 0) {
  3386. WOLFSSL_MSG("Couldn't lock cm mutex");
  3387. }
  3388. #endif
  3389. cm->refCount--;
  3390. if (cm->refCount == 0)
  3391. doFree = 1;
  3392. #ifndef SINGLE_THREADED
  3393. wc_UnLockMutex(&cm->refMutex);
  3394. #endif
  3395. if (doFree) {
  3396. #ifdef HAVE_CRL
  3397. if (cm->crl)
  3398. FreeCRL(cm->crl, 1);
  3399. #endif
  3400. #ifdef HAVE_OCSP
  3401. if (cm->ocsp)
  3402. FreeOCSP(cm->ocsp, 1);
  3403. XFREE(cm->ocspOverrideURL, cm->heap, DYNAMIC_TYPE_URL);
  3404. #if !defined(NO_WOLFSSL_SERVER) && \
  3405. (defined(HAVE_CERTIFICATE_STATUS_REQUEST) || \
  3406. defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2))
  3407. if (cm->ocsp_stapling)
  3408. FreeOCSP(cm->ocsp_stapling, 1);
  3409. #endif
  3410. #endif
  3411. FreeSignerTable(cm->caTable, CA_TABLE_SIZE, cm->heap);
  3412. wc_FreeMutex(&cm->caLock);
  3413. #ifdef WOLFSSL_TRUST_PEER_CERT
  3414. FreeTrustedPeerTable(cm->tpTable, TP_TABLE_SIZE, cm->heap);
  3415. wc_FreeMutex(&cm->tpLock);
  3416. #endif
  3417. #ifndef SINGLE_THREADED
  3418. if (wc_FreeMutex(&cm->refMutex) != 0) {
  3419. WOLFSSL_MSG("Couldn't free refMutex mutex");
  3420. }
  3421. #endif
  3422. XFREE(cm, cm->heap, DYNAMIC_TYPE_CERT_MANAGER);
  3423. }
  3424. }
  3425. }
  3426. int wolfSSL_CertManager_up_ref(WOLFSSL_CERT_MANAGER* cm)
  3427. {
  3428. if (cm) {
  3429. #ifndef SINGLE_THREADED
  3430. if (wc_LockMutex(&cm->refMutex) != 0) {
  3431. WOLFSSL_MSG("Failed to lock cm mutex");
  3432. return WOLFSSL_FAILURE;
  3433. }
  3434. #endif
  3435. cm->refCount++;
  3436. #ifndef SINGLE_THREADED
  3437. wc_UnLockMutex(&cm->refMutex);
  3438. #endif
  3439. return WOLFSSL_SUCCESS;
  3440. }
  3441. return WOLFSSL_FAILURE;
  3442. }
  3443. #if defined(OPENSSL_EXTRA) && !defined(NO_FILESYSTEM)
  3444. #if defined(WOLFSSL_SIGNER_DER_CERT)
  3445. /******************************************************************************
  3446. * wolfSSL_CertManagerGetCerts - retrieve stack of X509 certificates in a
  3447. * certificate manager (CM).
  3448. *
  3449. * RETURNS:
  3450. * returns stack of X509 certs on success, otherwise returns a NULL.
  3451. */
  3452. WOLFSSL_STACK* wolfSSL_CertManagerGetCerts(WOLFSSL_CERT_MANAGER* cm)
  3453. {
  3454. WOLFSSL_STACK* sk = NULL;
  3455. int numCerts = 0;
  3456. DerBuffer** certBuffers = NULL;
  3457. const byte* derBuffer = NULL;
  3458. Signer* signers = NULL;
  3459. word32 row = 0;
  3460. WOLFSSL_X509* x509 = NULL;
  3461. int i = 0;
  3462. int ret = 0;
  3463. if (cm == NULL)
  3464. return NULL;
  3465. sk = wolfSSL_sk_X509_new();
  3466. if (sk == NULL)
  3467. goto error;
  3468. if (wc_LockMutex(&cm->caLock) != 0)
  3469. goto error;
  3470. /* Iterate once to get the number of certs, for memory allocation
  3471. purposes. */
  3472. for (row = 0; row < CA_TABLE_SIZE; row++) {
  3473. signers = cm->caTable[row];
  3474. while (signers && signers->derCert && signers->derCert->buffer) {
  3475. ++numCerts;
  3476. signers = signers->next;
  3477. }
  3478. }
  3479. if (numCerts == 0) {
  3480. wc_UnLockMutex(&cm->caLock);
  3481. goto error;
  3482. }
  3483. certBuffers = (DerBuffer**)XMALLOC(sizeof(DerBuffer*) * numCerts, cm->heap,
  3484. DYNAMIC_TYPE_TMP_BUFFER);
  3485. if (certBuffers == NULL) {
  3486. wc_UnLockMutex(&cm->caLock);
  3487. goto error;
  3488. }
  3489. XMEMSET(certBuffers, 0, sizeof(DerBuffer*) * numCerts);
  3490. /* Copy the certs locally so that we can release the caLock. If the lock is
  3491. held when wolfSSL_d2i_X509 is called, GetCA will also try to get the
  3492. lock, leading to deadlock. */
  3493. for (row = 0; row < CA_TABLE_SIZE; row++) {
  3494. signers = cm->caTable[row];
  3495. while (signers && signers->derCert && signers->derCert->buffer) {
  3496. ret = AllocDer(&certBuffers[i], signers->derCert->length, CA_TYPE,
  3497. cm->heap);
  3498. if (ret < 0) {
  3499. wc_UnLockMutex(&cm->caLock);
  3500. goto error;
  3501. }
  3502. XMEMCPY(certBuffers[i]->buffer, signers->derCert->buffer,
  3503. signers->derCert->length);
  3504. certBuffers[i]->length = signers->derCert->length;
  3505. ++i;
  3506. signers = signers->next;
  3507. }
  3508. }
  3509. wc_UnLockMutex(&cm->caLock);
  3510. for (i = 0; i < numCerts; ++i) {
  3511. derBuffer = certBuffers[i]->buffer;
  3512. wolfSSL_d2i_X509(&x509, &derBuffer, certBuffers[i]->length);
  3513. if (x509 == NULL)
  3514. goto error;
  3515. if (wolfSSL_sk_X509_push(sk, x509) != WOLFSSL_SUCCESS)
  3516. goto error;
  3517. }
  3518. for (i = 0; i < numCerts && certBuffers[i] != NULL; ++i) {
  3519. FreeDer(&certBuffers[i]);
  3520. }
  3521. XFREE(certBuffers, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  3522. return sk;
  3523. error:
  3524. if (sk)
  3525. wolfSSL_sk_X509_pop_free(sk, NULL);
  3526. if (certBuffers != NULL) {
  3527. for (i = 0; i < numCerts && certBuffers[i] != NULL; ++i) {
  3528. FreeDer(&certBuffers[i]);
  3529. }
  3530. }
  3531. if (certBuffers)
  3532. XFREE(certBuffers, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  3533. return NULL;
  3534. }
  3535. #endif /* WOLFSSL_SIGNER_DER_CERT */
  3536. #endif /* OPENSSL_EXTRA && !NO_FILESYSTEM */
  3537. /* Unload the CA signer list */
  3538. int wolfSSL_CertManagerUnloadCAs(WOLFSSL_CERT_MANAGER* cm)
  3539. {
  3540. WOLFSSL_ENTER("wolfSSL_CertManagerUnloadCAs");
  3541. if (cm == NULL)
  3542. return BAD_FUNC_ARG;
  3543. if (wc_LockMutex(&cm->caLock) != 0)
  3544. return BAD_MUTEX_E;
  3545. FreeSignerTable(cm->caTable, CA_TABLE_SIZE, cm->heap);
  3546. wc_UnLockMutex(&cm->caLock);
  3547. return WOLFSSL_SUCCESS;
  3548. }
  3549. #ifdef WOLFSSL_TRUST_PEER_CERT
  3550. int wolfSSL_CertManagerUnload_trust_peers(WOLFSSL_CERT_MANAGER* cm)
  3551. {
  3552. WOLFSSL_ENTER("wolfSSL_CertManagerUnload_trust_peers");
  3553. if (cm == NULL)
  3554. return BAD_FUNC_ARG;
  3555. if (wc_LockMutex(&cm->tpLock) != 0)
  3556. return BAD_MUTEX_E;
  3557. FreeTrustedPeerTable(cm->tpTable, TP_TABLE_SIZE, cm->heap);
  3558. wc_UnLockMutex(&cm->tpLock);
  3559. return WOLFSSL_SUCCESS;
  3560. }
  3561. #endif /* WOLFSSL_TRUST_PEER_CERT */
  3562. #endif /* NO_CERTS */
  3563. #if !defined(NO_FILESYSTEM) && !defined(NO_STDIO_FILESYSTEM)
  3564. void wolfSSL_ERR_print_errors_fp(XFILE fp, int err)
  3565. {
  3566. char data[WOLFSSL_MAX_ERROR_SZ + 1];
  3567. WOLFSSL_ENTER("wolfSSL_ERR_print_errors_fp");
  3568. SetErrorString(err, data);
  3569. XFPRINTF(fp, "%s", data);
  3570. }
  3571. #if defined(OPENSSL_EXTRA) || defined(DEBUG_WOLFSSL_VERBOSE)
  3572. void wolfSSL_ERR_dump_errors_fp(XFILE fp)
  3573. {
  3574. wc_ERR_print_errors_fp(fp);
  3575. }
  3576. void wolfSSL_ERR_print_errors_cb (int (*cb)(const char *str, size_t len,
  3577. void *u), void *u)
  3578. {
  3579. wc_ERR_print_errors_cb(cb, u);
  3580. }
  3581. #endif
  3582. #endif
  3583. /*
  3584. * TODO This ssl parameter needs to be changed to const once our ABI checker
  3585. * stops flagging qualifier additions as ABI breaking.
  3586. */
  3587. WOLFSSL_ABI
  3588. int wolfSSL_pending(WOLFSSL* ssl)
  3589. {
  3590. WOLFSSL_ENTER("SSL_pending");
  3591. if (ssl == NULL)
  3592. return WOLFSSL_FAILURE;
  3593. return ssl->buffers.clearOutputBuffer.length;
  3594. }
  3595. int wolfSSL_has_pending(const WOLFSSL* ssl)
  3596. {
  3597. WOLFSSL_ENTER("wolfSSL_has_pending");
  3598. if (ssl == NULL)
  3599. return WOLFSSL_FAILURE;
  3600. return ssl->buffers.clearOutputBuffer.length > 0;
  3601. }
  3602. #ifndef WOLFSSL_LEANPSK
  3603. /* turn on handshake group messages for context */
  3604. int wolfSSL_CTX_set_group_messages(WOLFSSL_CTX* ctx)
  3605. {
  3606. if (ctx == NULL)
  3607. return BAD_FUNC_ARG;
  3608. ctx->groupMessages = 1;
  3609. return WOLFSSL_SUCCESS;
  3610. }
  3611. #endif
  3612. #ifndef NO_WOLFSSL_CLIENT
  3613. /* connect enough to get peer cert chain */
  3614. int wolfSSL_connect_cert(WOLFSSL* ssl)
  3615. {
  3616. int ret;
  3617. if (ssl == NULL)
  3618. return WOLFSSL_FAILURE;
  3619. ssl->options.certOnly = 1;
  3620. ret = wolfSSL_connect(ssl);
  3621. ssl->options.certOnly = 0;
  3622. return ret;
  3623. }
  3624. #endif
  3625. #ifndef WOLFSSL_LEANPSK
  3626. /* turn on handshake group messages for ssl object */
  3627. int wolfSSL_set_group_messages(WOLFSSL* ssl)
  3628. {
  3629. if (ssl == NULL)
  3630. return BAD_FUNC_ARG;
  3631. ssl->options.groupMessages = 1;
  3632. return WOLFSSL_SUCCESS;
  3633. }
  3634. /* make minVersion the internal equivalent SSL version */
  3635. static int SetMinVersionHelper(byte* minVersion, int version)
  3636. {
  3637. #ifdef NO_TLS
  3638. (void)minVersion;
  3639. #endif
  3640. switch (version) {
  3641. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  3642. case WOLFSSL_SSLV3:
  3643. *minVersion = SSLv3_MINOR;
  3644. break;
  3645. #endif
  3646. #ifndef NO_TLS
  3647. #ifndef NO_OLD_TLS
  3648. #ifdef WOLFSSL_ALLOW_TLSV10
  3649. case WOLFSSL_TLSV1:
  3650. *minVersion = TLSv1_MINOR;
  3651. break;
  3652. #endif
  3653. case WOLFSSL_TLSV1_1:
  3654. *minVersion = TLSv1_1_MINOR;
  3655. break;
  3656. #endif
  3657. #ifndef WOLFSSL_NO_TLS12
  3658. case WOLFSSL_TLSV1_2:
  3659. *minVersion = TLSv1_2_MINOR;
  3660. break;
  3661. #endif
  3662. #endif
  3663. #ifdef WOLFSSL_TLS13
  3664. case WOLFSSL_TLSV1_3:
  3665. *minVersion = TLSv1_3_MINOR;
  3666. break;
  3667. #endif
  3668. default:
  3669. WOLFSSL_MSG("Bad function argument");
  3670. return BAD_FUNC_ARG;
  3671. }
  3672. return WOLFSSL_SUCCESS;
  3673. }
  3674. /* Set minimum downgrade version allowed, WOLFSSL_SUCCESS on ok */
  3675. WOLFSSL_ABI
  3676. int wolfSSL_CTX_SetMinVersion(WOLFSSL_CTX* ctx, int version)
  3677. {
  3678. WOLFSSL_ENTER("wolfSSL_CTX_SetMinVersion");
  3679. if (ctx == NULL) {
  3680. WOLFSSL_MSG("Bad function argument");
  3681. return BAD_FUNC_ARG;
  3682. }
  3683. return SetMinVersionHelper(&ctx->minDowngrade, version);
  3684. }
  3685. /* Set minimum downgrade version allowed, WOLFSSL_SUCCESS on ok */
  3686. int wolfSSL_SetMinVersion(WOLFSSL* ssl, int version)
  3687. {
  3688. WOLFSSL_ENTER("wolfSSL_SetMinVersion");
  3689. if (ssl == NULL) {
  3690. WOLFSSL_MSG("Bad function argument");
  3691. return BAD_FUNC_ARG;
  3692. }
  3693. return SetMinVersionHelper(&ssl->options.minDowngrade, version);
  3694. }
  3695. /* Function to get version as WOLFSSL_ enum value for wolfSSL_SetVersion */
  3696. int wolfSSL_GetVersion(const WOLFSSL* ssl)
  3697. {
  3698. if (ssl == NULL)
  3699. return BAD_FUNC_ARG;
  3700. if (ssl->version.major == SSLv3_MAJOR) {
  3701. switch (ssl->version.minor) {
  3702. case SSLv3_MINOR :
  3703. return WOLFSSL_SSLV3;
  3704. case TLSv1_MINOR :
  3705. return WOLFSSL_TLSV1;
  3706. case TLSv1_1_MINOR :
  3707. return WOLFSSL_TLSV1_1;
  3708. case TLSv1_2_MINOR :
  3709. return WOLFSSL_TLSV1_2;
  3710. case TLSv1_3_MINOR :
  3711. return WOLFSSL_TLSV1_3;
  3712. default:
  3713. break;
  3714. }
  3715. }
  3716. return VERSION_ERROR;
  3717. }
  3718. int wolfSSL_SetVersion(WOLFSSL* ssl, int version)
  3719. {
  3720. word16 haveRSA = 1;
  3721. word16 havePSK = 0;
  3722. int keySz = 0;
  3723. WOLFSSL_ENTER("wolfSSL_SetVersion");
  3724. if (ssl == NULL) {
  3725. WOLFSSL_MSG("Bad function argument");
  3726. return BAD_FUNC_ARG;
  3727. }
  3728. switch (version) {
  3729. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  3730. case WOLFSSL_SSLV3:
  3731. ssl->version = MakeSSLv3();
  3732. break;
  3733. #endif
  3734. #ifndef NO_TLS
  3735. #ifndef NO_OLD_TLS
  3736. #ifdef WOLFSSL_ALLOW_TLSV10
  3737. case WOLFSSL_TLSV1:
  3738. ssl->version = MakeTLSv1();
  3739. break;
  3740. #endif
  3741. case WOLFSSL_TLSV1_1:
  3742. ssl->version = MakeTLSv1_1();
  3743. break;
  3744. #endif
  3745. #ifndef WOLFSSL_NO_TLS12
  3746. case WOLFSSL_TLSV1_2:
  3747. ssl->version = MakeTLSv1_2();
  3748. break;
  3749. #endif
  3750. #endif
  3751. #ifdef WOLFSSL_TLS13
  3752. case WOLFSSL_TLSV1_3:
  3753. ssl->version = MakeTLSv1_3();
  3754. break;
  3755. #endif
  3756. default:
  3757. WOLFSSL_MSG("Bad function argument");
  3758. return BAD_FUNC_ARG;
  3759. }
  3760. #ifdef NO_RSA
  3761. haveRSA = 0;
  3762. #endif
  3763. #ifndef NO_PSK
  3764. havePSK = ssl->options.havePSK;
  3765. #endif
  3766. #ifndef NO_CERTS
  3767. keySz = ssl->buffers.keySz;
  3768. #endif
  3769. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  3770. ssl->options.haveDH, ssl->options.haveECDSAsig,
  3771. ssl->options.haveECC, ssl->options.haveStaticECC,
  3772. ssl->options.haveFalconSig, ssl->options.haveAnon,
  3773. ssl->options.side);
  3774. return WOLFSSL_SUCCESS;
  3775. }
  3776. #endif /* !leanpsk */
  3777. #if !defined(NO_CERTS) || !defined(NO_SESSION_CACHE)
  3778. /* Make a work from the front of random hash */
  3779. static WC_INLINE word32 MakeWordFromHash(const byte* hashID)
  3780. {
  3781. return ((word32)hashID[0] << 24) | ((word32)hashID[1] << 16) |
  3782. ((word32)hashID[2] << 8) | (word32)hashID[3];
  3783. }
  3784. #endif /* !NO_CERTS || !NO_SESSION_CACHE */
  3785. #ifndef NO_CERTS
  3786. /* hash is the SHA digest of name, just use first 32 bits as hash */
  3787. static WC_INLINE word32 HashSigner(const byte* hash)
  3788. {
  3789. return MakeWordFromHash(hash) % CA_TABLE_SIZE;
  3790. }
  3791. /* does CA already exist on signer list */
  3792. int AlreadySigner(WOLFSSL_CERT_MANAGER* cm, byte* hash)
  3793. {
  3794. Signer* signers;
  3795. int ret = 0;
  3796. word32 row;
  3797. if (cm == NULL || hash == NULL) {
  3798. return ret;
  3799. }
  3800. row = HashSigner(hash);
  3801. if (wc_LockMutex(&cm->caLock) != 0) {
  3802. return ret;
  3803. }
  3804. signers = cm->caTable[row];
  3805. while (signers) {
  3806. byte* subjectHash;
  3807. #ifndef NO_SKID
  3808. subjectHash = signers->subjectKeyIdHash;
  3809. #else
  3810. subjectHash = signers->subjectNameHash;
  3811. #endif
  3812. if (XMEMCMP(hash, subjectHash, SIGNER_DIGEST_SIZE) == 0) {
  3813. ret = 1; /* success */
  3814. break;
  3815. }
  3816. signers = signers->next;
  3817. }
  3818. wc_UnLockMutex(&cm->caLock);
  3819. return ret;
  3820. }
  3821. #ifdef WOLFSSL_TRUST_PEER_CERT
  3822. /* hash is the SHA digest of name, just use first 32 bits as hash */
  3823. static WC_INLINE word32 TrustedPeerHashSigner(const byte* hash)
  3824. {
  3825. return MakeWordFromHash(hash) % TP_TABLE_SIZE;
  3826. }
  3827. /* does trusted peer already exist on signer list */
  3828. int AlreadyTrustedPeer(WOLFSSL_CERT_MANAGER* cm, DecodedCert* cert)
  3829. {
  3830. TrustedPeerCert* tp;
  3831. int ret = 0;
  3832. word32 row = TrustedPeerHashSigner(cert->subjectHash);
  3833. if (wc_LockMutex(&cm->tpLock) != 0)
  3834. return ret;
  3835. tp = cm->tpTable[row];
  3836. while (tp) {
  3837. if (XMEMCMP(cert->subjectHash, tp->subjectNameHash,
  3838. SIGNER_DIGEST_SIZE) == 0)
  3839. ret = 1;
  3840. #ifndef NO_SKID
  3841. if (cert->extSubjKeyIdSet) {
  3842. /* Compare SKID as well if available */
  3843. if (ret == 1 && XMEMCMP(cert->extSubjKeyId, tp->subjectKeyIdHash,
  3844. SIGNER_DIGEST_SIZE) != 0)
  3845. ret = 0;
  3846. }
  3847. #endif
  3848. if (ret == 1)
  3849. break;
  3850. tp = tp->next;
  3851. }
  3852. wc_UnLockMutex(&cm->tpLock);
  3853. return ret;
  3854. }
  3855. /* return Trusted Peer if found, otherwise NULL
  3856. type is what to match on
  3857. */
  3858. TrustedPeerCert* GetTrustedPeer(void* vp, DecodedCert* cert)
  3859. {
  3860. WOLFSSL_CERT_MANAGER* cm = (WOLFSSL_CERT_MANAGER*)vp;
  3861. TrustedPeerCert* ret = NULL;
  3862. TrustedPeerCert* tp = NULL;
  3863. word32 row;
  3864. if (cm == NULL || cert == NULL)
  3865. return NULL;
  3866. row = TrustedPeerHashSigner(cert->subjectHash);
  3867. if (wc_LockMutex(&cm->tpLock) != 0)
  3868. return ret;
  3869. tp = cm->tpTable[row];
  3870. while (tp) {
  3871. if (XMEMCMP(cert->subjectHash, tp->subjectNameHash,
  3872. SIGNER_DIGEST_SIZE) == 0)
  3873. ret = tp;
  3874. #ifndef NO_SKID
  3875. if (cert->extSubjKeyIdSet) {
  3876. /* Compare SKID as well if available */
  3877. if (ret != NULL && XMEMCMP(cert->extSubjKeyId, tp->subjectKeyIdHash,
  3878. SIGNER_DIGEST_SIZE) != 0)
  3879. ret = NULL;
  3880. }
  3881. #endif
  3882. if (ret != NULL)
  3883. break;
  3884. tp = tp->next;
  3885. }
  3886. wc_UnLockMutex(&cm->tpLock);
  3887. return ret;
  3888. }
  3889. int MatchTrustedPeer(TrustedPeerCert* tp, DecodedCert* cert)
  3890. {
  3891. if (tp == NULL || cert == NULL)
  3892. return BAD_FUNC_ARG;
  3893. /* subject key id or subject hash has been compared when searching
  3894. tpTable for the cert from function GetTrustedPeer */
  3895. /* compare signatures */
  3896. if (tp->sigLen == cert->sigLength) {
  3897. if (XMEMCMP(tp->sig, cert->signature, cert->sigLength)) {
  3898. return WOLFSSL_FAILURE;
  3899. }
  3900. }
  3901. else {
  3902. return WOLFSSL_FAILURE;
  3903. }
  3904. return WOLFSSL_SUCCESS;
  3905. }
  3906. #endif /* WOLFSSL_TRUST_PEER_CERT */
  3907. /* return CA if found, otherwise NULL */
  3908. Signer* GetCA(void* vp, byte* hash)
  3909. {
  3910. WOLFSSL_CERT_MANAGER* cm = (WOLFSSL_CERT_MANAGER*)vp;
  3911. Signer* ret = NULL;
  3912. Signer* signers;
  3913. word32 row = 0;
  3914. if (cm == NULL || hash == NULL)
  3915. return NULL;
  3916. row = HashSigner(hash);
  3917. if (wc_LockMutex(&cm->caLock) != 0)
  3918. return ret;
  3919. signers = cm->caTable[row];
  3920. while (signers) {
  3921. byte* subjectHash;
  3922. #ifndef NO_SKID
  3923. subjectHash = signers->subjectKeyIdHash;
  3924. #else
  3925. subjectHash = signers->subjectNameHash;
  3926. #endif
  3927. if (XMEMCMP(hash, subjectHash, SIGNER_DIGEST_SIZE) == 0) {
  3928. ret = signers;
  3929. break;
  3930. }
  3931. signers = signers->next;
  3932. }
  3933. wc_UnLockMutex(&cm->caLock);
  3934. return ret;
  3935. }
  3936. #ifndef NO_SKID
  3937. /* return CA if found, otherwise NULL. Walk through hash table. */
  3938. Signer* GetCAByName(void* vp, byte* hash)
  3939. {
  3940. WOLFSSL_CERT_MANAGER* cm = (WOLFSSL_CERT_MANAGER*)vp;
  3941. Signer* ret = NULL;
  3942. Signer* signers;
  3943. word32 row;
  3944. if (cm == NULL)
  3945. return NULL;
  3946. if (wc_LockMutex(&cm->caLock) != 0)
  3947. return ret;
  3948. for (row = 0; row < CA_TABLE_SIZE && ret == NULL; row++) {
  3949. signers = cm->caTable[row];
  3950. while (signers && ret == NULL) {
  3951. if (XMEMCMP(hash, signers->subjectNameHash,
  3952. SIGNER_DIGEST_SIZE) == 0) {
  3953. ret = signers;
  3954. }
  3955. signers = signers->next;
  3956. }
  3957. }
  3958. wc_UnLockMutex(&cm->caLock);
  3959. return ret;
  3960. }
  3961. #endif
  3962. #ifdef WOLFSSL_TRUST_PEER_CERT
  3963. /* add a trusted peer cert to linked list */
  3964. int AddTrustedPeer(WOLFSSL_CERT_MANAGER* cm, DerBuffer** pDer, int verify)
  3965. {
  3966. int ret, row;
  3967. TrustedPeerCert* peerCert;
  3968. DecodedCert* cert;
  3969. DerBuffer* der = *pDer;
  3970. WOLFSSL_MSG("Adding a Trusted Peer Cert");
  3971. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), cm->heap,
  3972. DYNAMIC_TYPE_DCERT);
  3973. if (cert == NULL) {
  3974. FreeDer(&der);
  3975. return MEMORY_E;
  3976. }
  3977. InitDecodedCert(cert, der->buffer, der->length, cm->heap);
  3978. if ((ret = ParseCert(cert, TRUSTED_PEER_TYPE, verify, cm)) != 0) {
  3979. FreeDecodedCert(cert);
  3980. XFREE(cert, NULL, DYNAMIC_TYPE_DCERT);
  3981. FreeDer(&der);
  3982. return ret;
  3983. }
  3984. WOLFSSL_MSG("\tParsed new trusted peer cert");
  3985. peerCert = (TrustedPeerCert*)XMALLOC(sizeof(TrustedPeerCert), cm->heap,
  3986. DYNAMIC_TYPE_CERT);
  3987. if (peerCert == NULL) {
  3988. FreeDecodedCert(cert);
  3989. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  3990. FreeDer(&der);
  3991. return MEMORY_E;
  3992. }
  3993. XMEMSET(peerCert, 0, sizeof(TrustedPeerCert));
  3994. #ifndef IGNORE_NAME_CONSTRAINTS
  3995. if (peerCert->permittedNames)
  3996. FreeNameSubtrees(peerCert->permittedNames, cm->heap);
  3997. if (peerCert->excludedNames)
  3998. FreeNameSubtrees(peerCert->excludedNames, cm->heap);
  3999. #endif
  4000. if (AlreadyTrustedPeer(cm, cert)) {
  4001. WOLFSSL_MSG("\tAlready have this CA, not adding again");
  4002. FreeTrustedPeer(peerCert, cm->heap);
  4003. (void)ret;
  4004. }
  4005. else {
  4006. /* add trusted peer signature */
  4007. peerCert->sigLen = cert->sigLength;
  4008. peerCert->sig = (byte *)XMALLOC(cert->sigLength, cm->heap,
  4009. DYNAMIC_TYPE_SIGNATURE);
  4010. if (peerCert->sig == NULL) {
  4011. FreeDecodedCert(cert);
  4012. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  4013. FreeTrustedPeer(peerCert, cm->heap);
  4014. FreeDer(&der);
  4015. return MEMORY_E;
  4016. }
  4017. XMEMCPY(peerCert->sig, cert->signature, cert->sigLength);
  4018. /* add trusted peer name */
  4019. peerCert->nameLen = cert->subjectCNLen;
  4020. peerCert->name = cert->subjectCN;
  4021. #ifndef IGNORE_NAME_CONSTRAINTS
  4022. peerCert->permittedNames = cert->permittedNames;
  4023. peerCert->excludedNames = cert->excludedNames;
  4024. #endif
  4025. /* add SKID when available and hash of name */
  4026. #ifndef NO_SKID
  4027. XMEMCPY(peerCert->subjectKeyIdHash, cert->extSubjKeyId,
  4028. SIGNER_DIGEST_SIZE);
  4029. #endif
  4030. XMEMCPY(peerCert->subjectNameHash, cert->subjectHash,
  4031. SIGNER_DIGEST_SIZE);
  4032. peerCert->next = NULL; /* If Key Usage not set, all uses valid. */
  4033. cert->subjectCN = 0;
  4034. #ifndef IGNORE_NAME_CONSTRAINTS
  4035. cert->permittedNames = NULL;
  4036. cert->excludedNames = NULL;
  4037. #endif
  4038. row = TrustedPeerHashSigner(peerCert->subjectNameHash);
  4039. if (wc_LockMutex(&cm->tpLock) == 0) {
  4040. peerCert->next = cm->tpTable[row];
  4041. cm->tpTable[row] = peerCert; /* takes ownership */
  4042. wc_UnLockMutex(&cm->tpLock);
  4043. }
  4044. else {
  4045. WOLFSSL_MSG("\tTrusted Peer Cert Mutex Lock failed");
  4046. FreeDecodedCert(cert);
  4047. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  4048. FreeTrustedPeer(peerCert, cm->heap);
  4049. FreeDer(&der);
  4050. return BAD_MUTEX_E;
  4051. }
  4052. }
  4053. WOLFSSL_MSG("\tFreeing parsed trusted peer cert");
  4054. FreeDecodedCert(cert);
  4055. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  4056. WOLFSSL_MSG("\tFreeing der trusted peer cert");
  4057. FreeDer(&der);
  4058. WOLFSSL_MSG("\t\tOK Freeing der trusted peer cert");
  4059. WOLFSSL_LEAVE("AddTrustedPeer", ret);
  4060. return WOLFSSL_SUCCESS;
  4061. }
  4062. #endif /* WOLFSSL_TRUST_PEER_CERT */
  4063. /* owns der, internal now uses too */
  4064. /* type flag ids from user or from chain received during verify
  4065. don't allow chain ones to be added w/o isCA extension */
  4066. int AddCA(WOLFSSL_CERT_MANAGER* cm, DerBuffer** pDer, int type, int verify)
  4067. {
  4068. int ret;
  4069. Signer* signer = NULL;
  4070. word32 row;
  4071. byte* subjectHash;
  4072. #ifdef WOLFSSL_SMALL_STACK
  4073. DecodedCert* cert = NULL;
  4074. #else
  4075. DecodedCert cert[1];
  4076. #endif
  4077. DerBuffer* der = *pDer;
  4078. WOLFSSL_MSG("Adding a CA");
  4079. if (cm == NULL) {
  4080. FreeDer(pDer);
  4081. return BAD_FUNC_ARG;
  4082. }
  4083. #ifdef WOLFSSL_SMALL_STACK
  4084. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), NULL,
  4085. DYNAMIC_TYPE_DCERT);
  4086. if (cert == NULL) {
  4087. FreeDer(pDer);
  4088. return MEMORY_E;
  4089. }
  4090. #endif
  4091. InitDecodedCert(cert, der->buffer, der->length, cm->heap);
  4092. ret = ParseCert(cert, CA_TYPE, verify, cm);
  4093. WOLFSSL_MSG("\tParsed new CA");
  4094. #ifndef NO_SKID
  4095. subjectHash = cert->extSubjKeyId;
  4096. #else
  4097. subjectHash = cert->subjectHash;
  4098. #endif
  4099. /* check CA key size */
  4100. if (verify) {
  4101. switch (cert->keyOID) {
  4102. #ifndef NO_RSA
  4103. case RSAk:
  4104. if (cm->minRsaKeySz < 0 ||
  4105. cert->pubKeySize < (word16)cm->minRsaKeySz) {
  4106. ret = RSA_KEY_SIZE_E;
  4107. WOLFSSL_MSG("\tCA RSA key size error");
  4108. }
  4109. break;
  4110. #endif /* !NO_RSA */
  4111. #ifdef HAVE_ECC
  4112. case ECDSAk:
  4113. if (cm->minEccKeySz < 0 ||
  4114. cert->pubKeySize < (word16)cm->minEccKeySz) {
  4115. ret = ECC_KEY_SIZE_E;
  4116. WOLFSSL_MSG("\tCA ECC key size error");
  4117. }
  4118. break;
  4119. #endif /* HAVE_ECC */
  4120. #ifdef HAVE_ED25519
  4121. case ED25519k:
  4122. if (cm->minEccKeySz < 0 ||
  4123. ED25519_KEY_SIZE < (word16)cm->minEccKeySz) {
  4124. ret = ECC_KEY_SIZE_E;
  4125. WOLFSSL_MSG("\tCA ECC key size error");
  4126. }
  4127. break;
  4128. #endif /* HAVE_ED25519 */
  4129. #ifdef HAVE_ED448
  4130. case ED448k:
  4131. if (cm->minEccKeySz < 0 ||
  4132. ED448_KEY_SIZE < (word16)cm->minEccKeySz) {
  4133. ret = ECC_KEY_SIZE_E;
  4134. WOLFSSL_MSG("\tCA ECC key size error");
  4135. }
  4136. break;
  4137. #endif /* HAVE_ED448 */
  4138. #if defined(HAVE_PQC) && defined(HAVE_FALCON)
  4139. case FALCON_LEVEL1k:
  4140. if (cm->minFalconKeySz < 0 ||
  4141. FALCON_LEVEL1_KEY_SIZE < (word16)cm->minFalconKeySz) {
  4142. ret = FALCON_KEY_SIZE_E;
  4143. WOLFSSL_MSG("\tCA Falcon level 1 key size error");
  4144. }
  4145. break;
  4146. case FALCON_LEVEL5k:
  4147. if (cm->minFalconKeySz < 0 ||
  4148. FALCON_LEVEL5_KEY_SIZE < (word16)cm->minFalconKeySz) {
  4149. ret = FALCON_KEY_SIZE_E;
  4150. WOLFSSL_MSG("\tCA Falcon level 5 key size error");
  4151. }
  4152. break;
  4153. #endif /* HAVE_PQC && HAVE_FALCON */
  4154. default:
  4155. WOLFSSL_MSG("\tNo key size check done on CA");
  4156. break; /* no size check if key type is not in switch */
  4157. }
  4158. }
  4159. if (ret == 0 && cert->isCA == 0 && type != WOLFSSL_USER_CA) {
  4160. WOLFSSL_MSG("\tCan't add as CA if not actually one");
  4161. ret = NOT_CA_ERROR;
  4162. }
  4163. #ifndef ALLOW_INVALID_CERTSIGN
  4164. else if (ret == 0 && cert->isCA == 1 && type != WOLFSSL_USER_CA &&
  4165. !cert->selfSigned && (cert->extKeyUsage & KEYUSE_KEY_CERT_SIGN) == 0) {
  4166. /* Intermediate CA certs are required to have the keyCertSign
  4167. * extension set. User loaded root certs are not. */
  4168. WOLFSSL_MSG("\tDoesn't have key usage certificate signing");
  4169. ret = NOT_CA_ERROR;
  4170. }
  4171. #endif
  4172. else if (ret == 0 && AlreadySigner(cm, subjectHash)) {
  4173. WOLFSSL_MSG("\tAlready have this CA, not adding again");
  4174. (void)ret;
  4175. }
  4176. else if (ret == 0) {
  4177. /* take over signer parts */
  4178. signer = MakeSigner(cm->heap);
  4179. if (!signer)
  4180. ret = MEMORY_ERROR;
  4181. }
  4182. if (ret == 0 && signer != NULL) {
  4183. #ifdef WOLFSSL_SIGNER_DER_CERT
  4184. ret = AllocDer(&signer->derCert, der->length, der->type, NULL);
  4185. }
  4186. if (ret == 0 && signer != NULL) {
  4187. XMEMCPY(signer->derCert->buffer, der->buffer, der->length);
  4188. #endif
  4189. signer->keyOID = cert->keyOID;
  4190. if (cert->pubKeyStored) {
  4191. signer->publicKey = cert->publicKey;
  4192. signer->pubKeySize = cert->pubKeySize;
  4193. }
  4194. if (cert->subjectCNStored) {
  4195. signer->nameLen = cert->subjectCNLen;
  4196. signer->name = cert->subjectCN;
  4197. }
  4198. signer->pathLength = cert->pathLength;
  4199. signer->maxPathLen = cert->maxPathLen;
  4200. signer->pathLengthSet = cert->pathLengthSet;
  4201. signer->selfSigned = cert->selfSigned;
  4202. #ifndef IGNORE_NAME_CONSTRAINTS
  4203. signer->permittedNames = cert->permittedNames;
  4204. signer->excludedNames = cert->excludedNames;
  4205. #endif
  4206. #ifndef NO_SKID
  4207. XMEMCPY(signer->subjectKeyIdHash, cert->extSubjKeyId,
  4208. SIGNER_DIGEST_SIZE);
  4209. #endif
  4210. XMEMCPY(signer->subjectNameHash, cert->subjectHash,
  4211. SIGNER_DIGEST_SIZE);
  4212. #ifdef HAVE_OCSP
  4213. XMEMCPY(signer->subjectKeyHash, cert->subjectKeyHash,
  4214. KEYID_SIZE);
  4215. #endif
  4216. signer->keyUsage = cert->extKeyUsageSet ? cert->extKeyUsage
  4217. : 0xFFFF;
  4218. signer->next = NULL; /* If Key Usage not set, all uses valid. */
  4219. cert->publicKey = 0; /* in case lock fails don't free here. */
  4220. cert->subjectCN = 0;
  4221. #ifndef IGNORE_NAME_CONSTRAINTS
  4222. cert->permittedNames = NULL;
  4223. cert->excludedNames = NULL;
  4224. #endif
  4225. #ifndef NO_SKID
  4226. row = HashSigner(signer->subjectKeyIdHash);
  4227. #else
  4228. row = HashSigner(signer->subjectNameHash);
  4229. #endif
  4230. if (wc_LockMutex(&cm->caLock) == 0) {
  4231. signer->next = cm->caTable[row];
  4232. cm->caTable[row] = signer; /* takes ownership */
  4233. wc_UnLockMutex(&cm->caLock);
  4234. if (cm->caCacheCallback)
  4235. cm->caCacheCallback(der->buffer, (int)der->length, type);
  4236. }
  4237. else {
  4238. WOLFSSL_MSG("\tCA Mutex Lock failed");
  4239. ret = BAD_MUTEX_E;
  4240. FreeSigner(signer, cm->heap);
  4241. }
  4242. }
  4243. #if defined(WOLFSSL_RENESAS_TSIP_TLS) || defined(WOLFSSL_RENESAS_SCEPROTECT)
  4244. /* Verify CA by TSIP so that generated tsip key is going to be able to */
  4245. /* be used for peer's cert verification */
  4246. /* TSIP is only able to handle USER CA, and only one CA. */
  4247. /* Therefore, it doesn't need to call TSIP again if there is already */
  4248. /* verified CA. */
  4249. if ( ret == 0 && signer != NULL ) {
  4250. signer->cm_idx = row;
  4251. if (type == WOLFSSL_USER_CA) {
  4252. if ((ret = wc_Renesas_cmn_RootCertVerify(cert->source, cert->maxIdx,
  4253. cert->sigCtx.CertAtt.pubkey_n_start,
  4254. cert->sigCtx.CertAtt.pubkey_n_len - 1,
  4255. cert->sigCtx.CertAtt.pubkey_e_start,
  4256. cert->sigCtx.CertAtt.pubkey_e_len - 1,
  4257. row/* cm index */))
  4258. < 0)
  4259. WOLFSSL_MSG("Renesas_RootCertVerify() failed");
  4260. else
  4261. WOLFSSL_MSG("Renesas_RootCertVerify() succeed or skipped");
  4262. }
  4263. }
  4264. #endif /* TSIP or SCE */
  4265. WOLFSSL_MSG("\tFreeing Parsed CA");
  4266. FreeDecodedCert(cert);
  4267. #ifdef WOLFSSL_SMALL_STACK
  4268. XFREE(cert, NULL, DYNAMIC_TYPE_DCERT);
  4269. #endif
  4270. WOLFSSL_MSG("\tFreeing der CA");
  4271. FreeDer(pDer);
  4272. WOLFSSL_MSG("\t\tOK Freeing der CA");
  4273. WOLFSSL_LEAVE("AddCA", ret);
  4274. return ret == 0 ? WOLFSSL_SUCCESS : ret;
  4275. }
  4276. #endif /* !NO_CERTS */
  4277. #ifndef NO_SESSION_CACHE
  4278. /* basic config gives a cache with 33 sessions, adequate for clients and
  4279. embedded servers
  4280. TITAN_SESSION_CACHE allows just over 2 million sessions, for servers
  4281. with titanic amounts of memory with long session ID timeouts and high
  4282. levels of traffic.
  4283. ENABLE_SESSION_CACHE_ROW_LOCK: Allows row level locking for increased
  4284. performance with large session caches
  4285. HUGE_SESSION_CACHE yields 65,791 sessions, for servers under heavy load,
  4286. allows over 13,000 new sessions per minute or over 200 new sessions per
  4287. second
  4288. BIG_SESSION_CACHE yields 20,027 sessions
  4289. MEDIUM_SESSION_CACHE allows 1055 sessions, adequate for servers that
  4290. aren't under heavy load, basically allows 200 new sessions per minute
  4291. SMALL_SESSION_CACHE only stores 6 sessions, good for embedded clients
  4292. or systems where the default of nearly 3kB is too much RAM, this define
  4293. uses less than 500 bytes RAM
  4294. default SESSION_CACHE stores 33 sessions (no XXX_SESSION_CACHE defined)
  4295. */
  4296. #if defined(TITAN_SESSION_CACHE)
  4297. #define SESSIONS_PER_ROW 31
  4298. #define SESSION_ROWS 64937
  4299. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  4300. #define ENABLE_SESSION_CACHE_ROW_LOCK
  4301. #endif
  4302. #elif defined(HUGE_SESSION_CACHE)
  4303. #define SESSIONS_PER_ROW 11
  4304. #define SESSION_ROWS 5981
  4305. #elif defined(BIG_SESSION_CACHE)
  4306. #define SESSIONS_PER_ROW 7
  4307. #define SESSION_ROWS 2861
  4308. #elif defined(MEDIUM_SESSION_CACHE)
  4309. #define SESSIONS_PER_ROW 5
  4310. #define SESSION_ROWS 211
  4311. #elif defined(SMALL_SESSION_CACHE)
  4312. #define SESSIONS_PER_ROW 2
  4313. #define SESSION_ROWS 3
  4314. #else
  4315. #define SESSIONS_PER_ROW 3
  4316. #define SESSION_ROWS 11
  4317. #endif
  4318. #define INVALID_SESSION_ROW (-1)
  4319. #ifdef NO_SESSION_CACHE_ROW_LOCK
  4320. #undef ENABLE_SESSION_CACHE_ROW_LOCK
  4321. #endif
  4322. typedef struct SessionRow {
  4323. int nextIdx; /* where to place next one */
  4324. int totalCount; /* sessions ever on this row */
  4325. WOLFSSL_SESSION Sessions[SESSIONS_PER_ROW];
  4326. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  4327. /* not included in import/export */
  4328. wolfSSL_Mutex row_mutex;
  4329. int mutex_valid;
  4330. #endif
  4331. } SessionRow;
  4332. #define SIZEOF_SESSION_ROW (sizeof(WOLFSSL_SESSION) + (sizeof(int) * 2))
  4333. static WOLFSSL_GLOBAL SessionRow SessionCache[SESSION_ROWS];
  4334. #if defined(WOLFSSL_SESSION_STATS) && defined(WOLFSSL_PEAK_SESSIONS)
  4335. static WOLFSSL_GLOBAL word32 PeakSessions;
  4336. #endif
  4337. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  4338. #define SESSION_ROW_LOCK(row) wc_LockMutex(&(row)->row_mutex)
  4339. #define SESSION_ROW_UNLOCK(row) wc_UnLockMutex(&(row)->row_mutex);
  4340. #else
  4341. static WOLFSSL_GLOBAL wolfSSL_Mutex session_mutex; /* SessionCache mutex */
  4342. static WOLFSSL_GLOBAL int session_mutex_valid = 0;
  4343. #define SESSION_ROW_LOCK(row) wc_LockMutex(&session_mutex)
  4344. #define SESSION_ROW_UNLOCK(row) wc_UnLockMutex(&session_mutex);
  4345. #endif
  4346. #if !defined(NO_SESSION_CACHE_REF) && defined(NO_CLIENT_CACHE)
  4347. #error ClientCache is required when not using NO_SESSION_CACHE_REF
  4348. #endif
  4349. #ifndef NO_CLIENT_CACHE
  4350. #ifndef CLIENT_SESSIONS_MULTIPLIER
  4351. #ifdef NO_SESSION_CACHE_REF
  4352. #define CLIENT_SESSIONS_MULTIPLIER 1
  4353. #else
  4354. /* ClientSession objects are lightweight (compared to
  4355. * WOLFSSL_SESSION) so to decrease chance that user will reuse
  4356. * thse wrong session, increase the ClientCache size. This will
  4357. * make the entire ClientCache about the size of one
  4358. * WOLFSSL_SESSION object. */
  4359. #define CLIENT_SESSIONS_MULTIPLIER 8
  4360. #endif
  4361. #endif
  4362. #define CLIENT_SESSIONS_PER_ROW \
  4363. (SESSIONS_PER_ROW * CLIENT_SESSIONS_MULTIPLIER)
  4364. #define CLIENT_SESSION_ROWS (SESSION_ROWS * CLIENT_SESSIONS_MULTIPLIER)
  4365. #if CLIENT_SESSIONS_PER_ROW > 65535
  4366. #error CLIENT_SESSIONS_PER_ROW too big
  4367. #endif
  4368. #if CLIENT_SESSION_ROWS > 65535
  4369. #error CLIENT_SESSION_ROWS too big
  4370. #endif
  4371. struct ClientSession {
  4372. word16 serverRow; /* SessionCache Row id */
  4373. word16 serverIdx; /* SessionCache Idx (column) */
  4374. word32 sessionIDHash;
  4375. };
  4376. #ifndef WOLFSSL_CLIENT_SESSION_DEFINED
  4377. typedef struct ClientSession ClientSession;
  4378. #define WOLFSSL_CLIENT_SESSION_DEFINED
  4379. #endif
  4380. typedef struct ClientRow {
  4381. int nextIdx; /* where to place next one */
  4382. int totalCount; /* sessions ever on this row */
  4383. ClientSession Clients[CLIENT_SESSIONS_PER_ROW];
  4384. } ClientRow;
  4385. static WOLFSSL_GLOBAL ClientRow ClientCache[CLIENT_SESSION_ROWS];
  4386. /* Client Cache */
  4387. /* uses session mutex */
  4388. static WOLFSSL_GLOBAL wolfSSL_Mutex clisession_mutex; /* ClientCache mutex */
  4389. static WOLFSSL_GLOBAL int clisession_mutex_valid = 0;
  4390. #endif /* !NO_CLIENT_CACHE */
  4391. #endif /* !NO_SESSION_CACHE */
  4392. #if !defined(WC_NO_RNG) && (defined(OPENSSL_EXTRA) || \
  4393. (defined(OPENSSL_EXTRA_X509_SMALL) && !defined(NO_RSA)))
  4394. #define HAVE_GLOBAL_RNG /* consolidate flags for using globalRNG */
  4395. static WC_RNG globalRNG;
  4396. static int initGlobalRNG = 0;
  4397. static wolfSSL_Mutex globalRNGMutex;
  4398. static int globalRNGMutex_valid = 0;
  4399. #if defined(OPENSSL_EXTRA) && defined(HAVE_HASHDRBG)
  4400. static WOLFSSL_DRBG_CTX* gDrbgDefCtx = NULL;
  4401. #endif
  4402. WC_RNG* wolfssl_get_global_rng(void)
  4403. {
  4404. WC_RNG* ret = NULL;
  4405. if (initGlobalRNG == 0)
  4406. WOLFSSL_MSG("Global RNG no Init");
  4407. else
  4408. ret = &globalRNG;
  4409. return ret;
  4410. }
  4411. #endif
  4412. #if defined(OPENSSL_EXTRA) && !defined(WOLFSSL_NO_OPENSSL_RAND_CB)
  4413. static int wolfSSL_RAND_InitMutex(void);
  4414. #endif
  4415. #if defined(OPENSSL_EXTRA) && defined(HAVE_ATEXIT)
  4416. static void AtExitCleanup(void)
  4417. {
  4418. if (initRefCount > 0) {
  4419. initRefCount = 1;
  4420. (void)wolfSSL_Cleanup();
  4421. }
  4422. }
  4423. #endif
  4424. WOLFSSL_ABI
  4425. int wolfSSL_Init(void)
  4426. {
  4427. int ret = WOLFSSL_SUCCESS;
  4428. #if !defined(NO_SESSION_CACHE) && defined(ENABLE_SESSION_CACHE_ROW_LOCK)
  4429. int i;
  4430. #endif
  4431. WOLFSSL_ENTER("wolfSSL_Init");
  4432. #if FIPS_VERSION_GE(5,1)
  4433. ret = wolfCrypt_SetPrivateKeyReadEnable_fips(1, WC_KEYTYPE_ALL);
  4434. if (ret != 0)
  4435. return ret;
  4436. else
  4437. ret = WOLFSSL_SUCCESS;
  4438. #endif
  4439. if (initRefCount == 0) {
  4440. /* Initialize crypto for use with TLS connection */
  4441. if (wolfCrypt_Init() != 0) {
  4442. WOLFSSL_MSG("Bad wolfCrypt Init");
  4443. ret = WC_INIT_E;
  4444. }
  4445. #ifdef HAVE_GLOBAL_RNG
  4446. if ((ret == WOLFSSL_SUCCESS) && (wc_InitMutex(&globalRNGMutex) != 0)) {
  4447. WOLFSSL_MSG("Bad Init Mutex rng");
  4448. ret = BAD_MUTEX_E;
  4449. }
  4450. else {
  4451. globalRNGMutex_valid = 1;
  4452. }
  4453. #endif
  4454. #ifdef WC_RNG_SEED_CB
  4455. wc_SetSeed_Cb(wc_GenerateSeed);
  4456. #endif
  4457. #ifdef OPENSSL_EXTRA
  4458. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  4459. if ((ret == WOLFSSL_SUCCESS) && (wolfSSL_RAND_InitMutex() != 0)) {
  4460. ret = BAD_MUTEX_E;
  4461. }
  4462. #endif
  4463. if ((ret == WOLFSSL_SUCCESS) &&
  4464. (wolfSSL_RAND_seed(NULL, 0) != WOLFSSL_SUCCESS)) {
  4465. WOLFSSL_MSG("wolfSSL_RAND_Seed failed");
  4466. ret = WC_INIT_E;
  4467. }
  4468. #endif
  4469. #ifndef NO_SESSION_CACHE
  4470. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  4471. for (i = 0; i < SESSION_ROWS; ++i) {
  4472. SessionCache[i].mutex_valid = 0;
  4473. }
  4474. for (i = 0; (ret == WOLFSSL_SUCCESS) && (i < SESSION_ROWS); ++i) {
  4475. if (wc_InitMutex(&SessionCache[i].row_mutex) != 0) {
  4476. WOLFSSL_MSG("Bad Init Mutex session");
  4477. ret = BAD_MUTEX_E;
  4478. }
  4479. else {
  4480. SessionCache[i].mutex_valid = 1;
  4481. }
  4482. }
  4483. #else
  4484. if ((ret == WOLFSSL_SUCCESS) && (wc_InitMutex(&session_mutex) != 0)) {
  4485. WOLFSSL_MSG("Bad Init Mutex session");
  4486. ret = BAD_MUTEX_E;
  4487. }
  4488. else {
  4489. session_mutex_valid = 1;
  4490. }
  4491. #endif
  4492. #ifndef NO_CLIENT_CACHE
  4493. if ((ret == WOLFSSL_SUCCESS) &&
  4494. (wc_InitMutex(&clisession_mutex) != 0)) {
  4495. WOLFSSL_MSG("Bad Init Mutex session");
  4496. ret = BAD_MUTEX_E;
  4497. }
  4498. else {
  4499. clisession_mutex_valid = 1;
  4500. }
  4501. #endif
  4502. #endif
  4503. if ((ret == WOLFSSL_SUCCESS) && (wc_InitMutex(&count_mutex) != 0)) {
  4504. WOLFSSL_MSG("Bad Init Mutex count");
  4505. ret = BAD_MUTEX_E;
  4506. }
  4507. else {
  4508. count_mutex_valid = 1;
  4509. }
  4510. #if defined(OPENSSL_EXTRA) && defined(HAVE_ATEXIT)
  4511. /* OpenSSL registers cleanup using atexit */
  4512. if ((ret == WOLFSSL_SUCCESS) && (atexit(AtExitCleanup) != 0)) {
  4513. WOLFSSL_MSG("Bad atexit registration");
  4514. ret = WC_INIT_E;
  4515. }
  4516. #endif
  4517. }
  4518. if ((ret == WOLFSSL_SUCCESS) && (wc_LockMutex(&count_mutex) != 0)) {
  4519. WOLFSSL_MSG("Bad Lock Mutex count");
  4520. ret = BAD_MUTEX_E;
  4521. }
  4522. else {
  4523. initRefCount++;
  4524. wc_UnLockMutex(&count_mutex);
  4525. }
  4526. if (ret != WOLFSSL_SUCCESS) {
  4527. initRefCount = 1; /* Force cleanup */
  4528. (void)wolfSSL_Cleanup(); /* Ignore any error from cleanup */
  4529. }
  4530. return ret;
  4531. }
  4532. #ifndef NO_CERTS
  4533. /* process user cert chain to pass during the handshake */
  4534. static int ProcessUserChain(WOLFSSL_CTX* ctx, const unsigned char* buff,
  4535. long sz, int format, int type, WOLFSSL* ssl,
  4536. long* used, EncryptedInfo* info, int verify)
  4537. {
  4538. int ret = 0;
  4539. void* heap = wolfSSL_CTX_GetHeap(ctx, ssl);
  4540. #ifdef WOLFSSL_TLS13
  4541. int cnt = 0;
  4542. #endif
  4543. if ((type == CA_TYPE) && (ctx == NULL)) {
  4544. WOLFSSL_MSG("Need context for CA load");
  4545. return BAD_FUNC_ARG;
  4546. }
  4547. /* we may have a user cert chain, try to consume */
  4548. if ((type == CERT_TYPE || type == CA_TYPE) && (info->consumed < sz)) {
  4549. #ifdef WOLFSSL_SMALL_STACK
  4550. byte staticBuffer[1]; /* force heap usage */
  4551. #else
  4552. byte staticBuffer[FILE_BUFFER_SIZE]; /* tmp chain buffer */
  4553. #endif
  4554. byte* chainBuffer = staticBuffer;
  4555. int dynamicBuffer = 0;
  4556. word32 bufferSz;
  4557. long consumed = info->consumed;
  4558. word32 idx = 0;
  4559. int gotOne = 0;
  4560. /* Calculate max possible size, including max headers */
  4561. bufferSz = (word32)(sz - consumed) + (CERT_HEADER_SZ * MAX_CHAIN_DEPTH);
  4562. if (bufferSz > sizeof(staticBuffer)) {
  4563. WOLFSSL_MSG("Growing Tmp Chain Buffer");
  4564. /* will shrink to actual size */
  4565. chainBuffer = (byte*)XMALLOC(bufferSz, heap, DYNAMIC_TYPE_FILE);
  4566. if (chainBuffer == NULL) {
  4567. return MEMORY_E;
  4568. }
  4569. dynamicBuffer = 1;
  4570. }
  4571. WOLFSSL_MSG("Processing Cert Chain");
  4572. while (consumed < sz) {
  4573. DerBuffer* part = NULL;
  4574. word32 remain = (word32)(sz - consumed);
  4575. info->consumed = 0;
  4576. if (format == WOLFSSL_FILETYPE_PEM) {
  4577. #ifdef WOLFSSL_PEM_TO_DER
  4578. ret = PemToDer(buff + consumed, remain, type, &part,
  4579. heap, info, NULL);
  4580. #else
  4581. ret = NOT_COMPILED_IN;
  4582. #endif
  4583. }
  4584. else {
  4585. int length = remain;
  4586. if (format == WOLFSSL_FILETYPE_ASN1) {
  4587. /* get length of der (read sequence) */
  4588. word32 inOutIdx = 0;
  4589. if (GetSequence(buff + consumed, &inOutIdx, &length,
  4590. remain) < 0) {
  4591. ret = ASN_NO_PEM_HEADER;
  4592. }
  4593. length += inOutIdx; /* include leading sequence */
  4594. }
  4595. info->consumed = length;
  4596. if (ret == 0) {
  4597. ret = AllocDer(&part, length, type, heap);
  4598. if (ret == 0) {
  4599. XMEMCPY(part->buffer, buff + consumed, length);
  4600. }
  4601. }
  4602. }
  4603. if (ret == 0) {
  4604. gotOne = 1;
  4605. #ifdef WOLFSSL_TLS13
  4606. cnt++;
  4607. #endif
  4608. if ((idx + part->length + CERT_HEADER_SZ) > bufferSz) {
  4609. WOLFSSL_MSG(" Cert Chain bigger than buffer");
  4610. ret = BUFFER_E;
  4611. }
  4612. else {
  4613. c32to24(part->length, &chainBuffer[idx]);
  4614. idx += CERT_HEADER_SZ;
  4615. XMEMCPY(&chainBuffer[idx], part->buffer, part->length);
  4616. idx += part->length;
  4617. consumed += info->consumed;
  4618. if (used)
  4619. *used += info->consumed;
  4620. }
  4621. /* add CA's to certificate manager */
  4622. if (type == CA_TYPE) {
  4623. /* verify CA unless user set to no verify */
  4624. ret = AddCA(ctx->cm, &part, WOLFSSL_USER_CA, verify);
  4625. gotOne = 0; /* don't exit loop for CA type */
  4626. }
  4627. }
  4628. FreeDer(&part);
  4629. if (ret == ASN_NO_PEM_HEADER && gotOne) {
  4630. WOLFSSL_MSG("We got one good cert, so stuff at end ok");
  4631. break;
  4632. }
  4633. if (ret < 0) {
  4634. WOLFSSL_MSG(" Error in Cert in Chain");
  4635. if (dynamicBuffer)
  4636. XFREE(chainBuffer, heap, DYNAMIC_TYPE_FILE);
  4637. return ret;
  4638. }
  4639. WOLFSSL_MSG(" Consumed another Cert in Chain");
  4640. }
  4641. WOLFSSL_MSG("Finished Processing Cert Chain");
  4642. /* only retain actual size used */
  4643. ret = 0;
  4644. if (idx > 0) {
  4645. if (ssl) {
  4646. if (ssl->buffers.weOwnCertChain) {
  4647. FreeDer(&ssl->buffers.certChain);
  4648. }
  4649. ret = AllocDer(&ssl->buffers.certChain, idx, type, heap);
  4650. if (ret == 0) {
  4651. XMEMCPY(ssl->buffers.certChain->buffer, chainBuffer,
  4652. idx);
  4653. ssl->buffers.weOwnCertChain = 1;
  4654. }
  4655. #ifdef WOLFSSL_TLS13
  4656. ssl->buffers.certChainCnt = cnt;
  4657. #endif
  4658. } else if (ctx) {
  4659. FreeDer(&ctx->certChain);
  4660. ret = AllocDer(&ctx->certChain, idx, type, heap);
  4661. if (ret == 0) {
  4662. XMEMCPY(ctx->certChain->buffer, chainBuffer, idx);
  4663. }
  4664. #ifdef WOLFSSL_TLS13
  4665. ctx->certChainCnt = cnt;
  4666. #endif
  4667. }
  4668. }
  4669. if (dynamicBuffer)
  4670. XFREE(chainBuffer, heap, DYNAMIC_TYPE_FILE);
  4671. }
  4672. return ret;
  4673. }
  4674. static int ProcessBufferTryDecode(WOLFSSL_CTX* ctx, WOLFSSL* ssl, DerBuffer* der,
  4675. int* keySz, word32* idx, int* resetSuites, int* keyFormat, void* heap, int devId)
  4676. {
  4677. int ret = 0;
  4678. (void)heap;
  4679. (void)devId;
  4680. if (ctx == NULL && ssl == NULL)
  4681. return BAD_FUNC_ARG;
  4682. if (!der || !keySz || !idx || !resetSuites || !keyFormat)
  4683. return BAD_FUNC_ARG;
  4684. #ifndef NO_RSA
  4685. if ((*keyFormat == 0 || *keyFormat == RSAk)) {
  4686. /* make sure RSA key can be used */
  4687. #ifdef WOLFSSL_SMALL_STACK
  4688. RsaKey* key;
  4689. #else
  4690. RsaKey key[1];
  4691. #endif
  4692. #ifdef WOLFSSL_SMALL_STACK
  4693. key = (RsaKey*)XMALLOC(sizeof(RsaKey), heap, DYNAMIC_TYPE_RSA);
  4694. if (key == NULL)
  4695. return MEMORY_E;
  4696. #endif
  4697. ret = wc_InitRsaKey_ex(key, heap, devId);
  4698. if (ret == 0) {
  4699. *idx = 0;
  4700. ret = wc_RsaPrivateKeyDecode(der->buffer, idx, key, der->length);
  4701. #ifdef WOLF_PRIVATE_KEY_ID
  4702. if (ret != 0 && (devId != INVALID_DEVID
  4703. #ifdef HAVE_PK_CALLBACKS
  4704. || wolfSSL_CTX_IsPrivatePkSet(ctx)
  4705. #endif
  4706. )) {
  4707. /* if using crypto or PK callbacks, try public key decode */
  4708. *idx = 0;
  4709. ret = wc_RsaPublicKeyDecode(der->buffer, idx, key, der->length);
  4710. }
  4711. #endif
  4712. if (ret != 0) {
  4713. #if !defined(HAVE_ECC) && !defined(HAVE_ED25519) && \
  4714. !defined(HAVE_ED448) && !defined(HAVE_PQC)
  4715. WOLFSSL_MSG("RSA decode failed and other algorithms "
  4716. "not enabled to try");
  4717. ret = WOLFSSL_BAD_FILE;
  4718. #else
  4719. ret = 0; /* continue trying other algorithms */
  4720. #endif
  4721. }
  4722. else {
  4723. /* check that the size of the RSA key is enough */
  4724. int minRsaSz = ssl ? ssl->options.minRsaKeySz :
  4725. ctx->minRsaKeySz;
  4726. *keySz = wc_RsaEncryptSize((RsaKey*)key);
  4727. if (*keySz < minRsaSz) {
  4728. ret = RSA_KEY_SIZE_E;
  4729. WOLFSSL_MSG("Private Key size too small");
  4730. }
  4731. if (ssl) {
  4732. ssl->buffers.keyType = rsa_sa_algo;
  4733. ssl->buffers.keySz = *keySz;
  4734. }
  4735. else {
  4736. ctx->privateKeyType = rsa_sa_algo;
  4737. ctx->privateKeySz = *keySz;
  4738. }
  4739. *keyFormat = RSAk;
  4740. if (ssl && ssl->options.side == WOLFSSL_SERVER_END) {
  4741. ssl->options.haveStaticECC = 0;
  4742. *resetSuites = 1;
  4743. }
  4744. }
  4745. wc_FreeRsaKey(key);
  4746. }
  4747. #ifdef WOLFSSL_SMALL_STACK
  4748. XFREE(key, heap, DYNAMIC_TYPE_RSA);
  4749. #endif
  4750. if (ret != 0)
  4751. return ret;
  4752. }
  4753. #endif
  4754. #ifdef HAVE_ECC
  4755. if ((*keyFormat == 0 || *keyFormat == ECDSAk)) {
  4756. /* make sure ECC key can be used */
  4757. #ifdef WOLFSSL_SMALL_STACK
  4758. ecc_key* key;
  4759. #else
  4760. ecc_key key[1];
  4761. #endif
  4762. #ifdef WOLFSSL_SMALL_STACK
  4763. key = (ecc_key*)XMALLOC(sizeof(ecc_key), heap, DYNAMIC_TYPE_ECC);
  4764. if (key == NULL)
  4765. return MEMORY_E;
  4766. #endif
  4767. if (wc_ecc_init_ex(key, heap, devId) == 0) {
  4768. *idx = 0;
  4769. ret = wc_EccPrivateKeyDecode(der->buffer, idx, key, der->length);
  4770. #ifdef WOLF_PRIVATE_KEY_ID
  4771. if (ret != 0 && (devId != INVALID_DEVID
  4772. #ifdef HAVE_PK_CALLBACKS
  4773. || wolfSSL_CTX_IsPrivatePkSet(ctx)
  4774. #endif
  4775. )) {
  4776. /* if using crypto or PK callbacks, try public key decode */
  4777. *idx = 0;
  4778. ret = wc_EccPublicKeyDecode(der->buffer, idx, key, der->length);
  4779. }
  4780. #endif
  4781. if (ret == 0) {
  4782. /* check for minimum ECC key size and then free */
  4783. int minKeySz = ssl ? ssl->options.minEccKeySz :
  4784. ctx->minEccKeySz;
  4785. *keySz = wc_ecc_size(key);
  4786. if (*keySz < minKeySz) {
  4787. WOLFSSL_MSG("ECC private key too small");
  4788. ret = ECC_KEY_SIZE_E;
  4789. }
  4790. *keyFormat = ECDSAk;
  4791. if (ssl) {
  4792. ssl->options.haveStaticECC = 1;
  4793. ssl->buffers.keyType = ecc_dsa_sa_algo;
  4794. ssl->buffers.keySz = *keySz;
  4795. }
  4796. else {
  4797. ctx->haveStaticECC = 1;
  4798. ctx->privateKeyType = ecc_dsa_sa_algo;
  4799. ctx->privateKeySz = *keySz;
  4800. }
  4801. if (ssl && ssl->options.side == WOLFSSL_SERVER_END) {
  4802. *resetSuites = 1;
  4803. }
  4804. }
  4805. else {
  4806. ret = 0; /* continue trying other algorithms */
  4807. }
  4808. wc_ecc_free(key);
  4809. }
  4810. #ifdef WOLFSSL_SMALL_STACK
  4811. XFREE(key, heap, DYNAMIC_TYPE_ECC);
  4812. #endif
  4813. if (ret != 0)
  4814. return ret;
  4815. }
  4816. #endif /* HAVE_ECC */
  4817. #if defined(HAVE_ED25519) && defined(HAVE_ED25519_KEY_IMPORT)
  4818. if ((*keyFormat == 0 || *keyFormat == ED25519k)) {
  4819. /* make sure Ed25519 key can be used */
  4820. #ifdef WOLFSSL_SMALL_STACK
  4821. ed25519_key* key;
  4822. #else
  4823. ed25519_key key[1];
  4824. #endif
  4825. #ifdef WOLFSSL_SMALL_STACK
  4826. key = (ed25519_key*)XMALLOC(sizeof(ed25519_key), heap,
  4827. DYNAMIC_TYPE_ED25519);
  4828. if (key == NULL)
  4829. return MEMORY_E;
  4830. #endif
  4831. ret = wc_ed25519_init_ex(key, heap, devId);
  4832. if (ret == 0) {
  4833. *idx = 0;
  4834. ret = wc_Ed25519PrivateKeyDecode(der->buffer, idx, key, der->length);
  4835. #ifdef WOLF_PRIVATE_KEY_ID
  4836. if (ret != 0 && (devId != INVALID_DEVID
  4837. #ifdef HAVE_PK_CALLBACKS
  4838. || wolfSSL_CTX_IsPrivatePkSet(ctx)
  4839. #endif
  4840. )) {
  4841. /* if using crypto or PK callbacks, try public key decode */
  4842. *idx = 0;
  4843. ret = wc_Ed25519PublicKeyDecode(der->buffer, idx, key,
  4844. der->length);
  4845. }
  4846. #endif
  4847. if (ret == 0) {
  4848. /* check for minimum key size and then free */
  4849. int minKeySz = ssl ? ssl->options.minEccKeySz :
  4850. ctx->minEccKeySz;
  4851. *keySz = ED25519_KEY_SIZE;
  4852. if (*keySz < minKeySz) {
  4853. WOLFSSL_MSG("ED25519 private key too small");
  4854. ret = ECC_KEY_SIZE_E;
  4855. }
  4856. if (ret == 0) {
  4857. if (ssl) {
  4858. ssl->buffers.keyType = ed25519_sa_algo;
  4859. ssl->buffers.keySz = *keySz;
  4860. }
  4861. else if (ctx) {
  4862. ctx->privateKeyType = ed25519_sa_algo;
  4863. ctx->privateKeySz = *keySz;
  4864. }
  4865. *keyFormat = ED25519k;
  4866. if (ssl != NULL) {
  4867. /* ED25519 requires caching enabled for tracking message
  4868. * hash used in EdDSA_Update for signing */
  4869. ssl->options.cacheMessages = 1;
  4870. if (ssl->options.side == WOLFSSL_SERVER_END) {
  4871. *resetSuites = 1;
  4872. }
  4873. }
  4874. }
  4875. }
  4876. else {
  4877. ret = 0; /* continue trying other algorithms */
  4878. }
  4879. wc_ed25519_free(key);
  4880. }
  4881. #ifdef WOLFSSL_SMALL_STACK
  4882. XFREE(key, heap, DYNAMIC_TYPE_ED25519);
  4883. #endif
  4884. if (ret != 0)
  4885. return ret;
  4886. }
  4887. #endif /* HAVE_ED25519 && HAVE_ED25519_KEY_IMPORT */
  4888. #if defined(HAVE_ED448) && defined(HAVE_ED448_KEY_IMPORT)
  4889. if ((*keyFormat == 0 || *keyFormat == ED448k)) {
  4890. /* make sure Ed448 key can be used */
  4891. #ifdef WOLFSSL_SMALL_STACK
  4892. ed448_key* key = NULL;
  4893. #else
  4894. ed448_key key[1];
  4895. #endif
  4896. #ifdef WOLFSSL_SMALL_STACK
  4897. key = (ed448_key*)XMALLOC(sizeof(ed448_key), heap, DYNAMIC_TYPE_ED448);
  4898. if (key == NULL)
  4899. return MEMORY_E;
  4900. #endif
  4901. ret = wc_ed448_init(key);
  4902. if (ret == 0) {
  4903. *idx = 0;
  4904. ret = wc_Ed448PrivateKeyDecode(der->buffer, idx, key, der->length);
  4905. #ifdef WOLF_PRIVATE_KEY_ID
  4906. if (ret != 0 && (devId != INVALID_DEVID
  4907. #ifdef HAVE_PK_CALLBACKS
  4908. || wolfSSL_CTX_IsPrivatePkSet(ctx)
  4909. #endif
  4910. )) {
  4911. /* if using crypto or PK callbacks, try public key decode */
  4912. *idx = 0;
  4913. ret = wc_Ed448PublicKeyDecode(der->buffer, idx, key,
  4914. der->length);
  4915. }
  4916. #endif
  4917. if (ret == 0) {
  4918. /* check for minimum key size and then free */
  4919. int minKeySz = ssl ? ssl->options.minEccKeySz :
  4920. ctx->minEccKeySz;
  4921. *keySz = ED448_KEY_SIZE;
  4922. if (*keySz < minKeySz) {
  4923. WOLFSSL_MSG("ED448 private key too small");
  4924. ret = ECC_KEY_SIZE_E;
  4925. }
  4926. }
  4927. if (ret == 0) {
  4928. if (ssl) {
  4929. ssl->buffers.keyType = ed448_sa_algo;
  4930. ssl->buffers.keySz = *keySz;
  4931. }
  4932. else if (ctx) {
  4933. ctx->privateKeyType = ed448_sa_algo;
  4934. ctx->privateKeySz = *keySz;
  4935. }
  4936. *keyFormat = ED448k;
  4937. if (ssl != NULL) {
  4938. /* ED448 requires caching enabled for tracking message
  4939. * hash used in EdDSA_Update for signing */
  4940. ssl->options.cacheMessages = 1;
  4941. if (ssl->options.side == WOLFSSL_SERVER_END) {
  4942. *resetSuites = 1;
  4943. }
  4944. }
  4945. }
  4946. wc_ed448_free(key);
  4947. }
  4948. #ifdef WOLFSSL_SMALL_STACK
  4949. XFREE(key, heap, DYNAMIC_TYPE_ED448);
  4950. #endif
  4951. if (ret != 0)
  4952. return ret;
  4953. }
  4954. #endif /* HAVE_ED448 && HAVE_ED448_KEY_IMPORT */
  4955. #if defined(HAVE_PQC) && defined(HAVE_FALCON)
  4956. if (((*keyFormat == 0) || (*keyFormat == FALCON_LEVEL1k) ||
  4957. (*keyFormat == FALCON_LEVEL5k))) {
  4958. /* make sure Falcon key can be used */
  4959. falcon_key* key = (falcon_key*)XMALLOC(sizeof(falcon_key), heap,
  4960. DYNAMIC_TYPE_FALCON);
  4961. if (key == NULL) {
  4962. return MEMORY_E;
  4963. }
  4964. ret = wc_falcon_init(key);
  4965. if (ret == 0) {
  4966. if (*keyFormat == FALCON_LEVEL1k) {
  4967. ret = wc_falcon_set_level(key, 1);
  4968. }
  4969. else if (*keyFormat == FALCON_LEVEL5k) {
  4970. ret = wc_falcon_set_level(key, 5);
  4971. }
  4972. else {
  4973. /* What if *keyformat is 0? We might want to do something more
  4974. * graceful here. */
  4975. wc_falcon_free(key);
  4976. ret = ALGO_ID_E;
  4977. }
  4978. }
  4979. if (ret == 0) {
  4980. *idx = 0;
  4981. ret = wc_falcon_import_private_only(der->buffer, der->length, key);
  4982. if (ret == 0) {
  4983. /* check for minimum key size and then free */
  4984. int minKeySz = ssl ? ssl->options.minFalconKeySz :
  4985. ctx->minFalconKeySz;
  4986. *keySz = FALCON_MAX_KEY_SIZE;
  4987. if (*keySz < minKeySz) {
  4988. WOLFSSL_MSG("Falcon private key too small");
  4989. ret = FALCON_KEY_SIZE_E;
  4990. }
  4991. if (ssl) {
  4992. if (*keyFormat == FALCON_LEVEL1k) {
  4993. ssl->buffers.keyType = falcon_level1_sa_algo;
  4994. }
  4995. else {
  4996. ssl->buffers.keyType = falcon_level5_sa_algo;
  4997. }
  4998. ssl->buffers.keySz = *keySz;
  4999. }
  5000. else {
  5001. if (*keyFormat == FALCON_LEVEL1k) {
  5002. ctx->privateKeyType = falcon_level1_sa_algo;
  5003. }
  5004. else {
  5005. ctx->privateKeyType = falcon_level5_sa_algo;
  5006. }
  5007. ctx->privateKeySz = *keySz;
  5008. }
  5009. if (ssl && ssl->options.side == WOLFSSL_SERVER_END) {
  5010. *resetSuites = 1;
  5011. }
  5012. }
  5013. wc_falcon_free(key);
  5014. }
  5015. XFREE(key, heap, DYNAMIC_TYPE_FALCON);
  5016. if (ret != 0)
  5017. return ret;
  5018. }
  5019. #endif /* HAVE_PQC && HAVE_FALCON */
  5020. return ret;
  5021. }
  5022. /* process the buffer buff, length sz, into ctx of format and type
  5023. used tracks bytes consumed, userChain specifies a user cert chain
  5024. to pass during the handshake */
  5025. int ProcessBuffer(WOLFSSL_CTX* ctx, const unsigned char* buff,
  5026. long sz, int format, int type, WOLFSSL* ssl,
  5027. long* used, int userChain, int verify)
  5028. {
  5029. DerBuffer* der = NULL;
  5030. int ret = 0;
  5031. int done = 0;
  5032. int keyFormat = 0;
  5033. int resetSuites = 0;
  5034. void* heap = wolfSSL_CTX_GetHeap(ctx, ssl);
  5035. int devId = wolfSSL_CTX_GetDevId(ctx, ssl);
  5036. word32 idx = 0;
  5037. int keySz = 0;
  5038. #if (defined(WOLFSSL_ENCRYPTED_KEYS) && !defined(NO_PWDBASED)) || \
  5039. defined(HAVE_PKCS8)
  5040. word32 algId = 0;
  5041. #endif
  5042. #ifdef WOLFSSL_SMALL_STACK
  5043. EncryptedInfo* info = NULL;
  5044. #else
  5045. EncryptedInfo info[1];
  5046. #endif
  5047. (void)devId;
  5048. (void)idx;
  5049. (void)keySz;
  5050. if (used)
  5051. *used = sz; /* used bytes default to sz, PEM chain may shorten*/
  5052. /* check args */
  5053. if (format != WOLFSSL_FILETYPE_ASN1 && format != WOLFSSL_FILETYPE_PEM)
  5054. return WOLFSSL_BAD_FILETYPE;
  5055. if (ctx == NULL && ssl == NULL)
  5056. return BAD_FUNC_ARG;
  5057. #ifdef WOLFSSL_SMALL_STACK
  5058. info = (EncryptedInfo*)XMALLOC(sizeof(EncryptedInfo), heap,
  5059. DYNAMIC_TYPE_ENCRYPTEDINFO);
  5060. if (info == NULL)
  5061. return MEMORY_E;
  5062. #endif
  5063. XMEMSET(info, 0, sizeof(EncryptedInfo));
  5064. #if defined(WOLFSSL_ENCRYPTED_KEYS) && !defined(NO_PWDBASED)
  5065. if (ctx) {
  5066. info->passwd_cb = ctx->passwd_cb;
  5067. info->passwd_userdata = ctx->passwd_userdata;
  5068. }
  5069. #endif
  5070. if (format == WOLFSSL_FILETYPE_PEM) {
  5071. #ifdef WOLFSSL_PEM_TO_DER
  5072. ret = PemToDer(buff, sz, type, &der, heap, info, &keyFormat);
  5073. #else
  5074. ret = NOT_COMPILED_IN;
  5075. #endif
  5076. }
  5077. else {
  5078. /* ASN1 (DER) */
  5079. int length = (int)sz;
  5080. if (format == WOLFSSL_FILETYPE_ASN1) {
  5081. /* get length of der (read sequence or octet string) */
  5082. word32 inOutIdx = 0;
  5083. if (GetSequence(buff, &inOutIdx, &length, (word32)sz) >= 0) {
  5084. length += inOutIdx; /* include leading sequence */
  5085. }
  5086. /* get length using octect string (allowed for private key types) */
  5087. else if (type == PRIVATEKEY_TYPE &&
  5088. GetOctetString(buff, &inOutIdx, &length, (word32)sz) >= 0) {
  5089. length += inOutIdx; /* include leading oct string */
  5090. }
  5091. else {
  5092. ret = ASN_PARSE_E;
  5093. }
  5094. }
  5095. info->consumed = length;
  5096. if (ret == 0) {
  5097. ret = AllocDer(&der, (word32)length, type, heap);
  5098. if (ret == 0) {
  5099. XMEMCPY(der->buffer, buff, length);
  5100. }
  5101. #ifdef HAVE_PKCS8
  5102. /* if private key try and remove PKCS8 header */
  5103. if (type == PRIVATEKEY_TYPE) {
  5104. if ((ret = ToTraditional_ex(der->buffer, der->length,
  5105. &algId)) > 0) {
  5106. /* Found PKCS8 header */
  5107. /* ToTraditional_ex moves buff and returns adjusted length */
  5108. der->length = ret;
  5109. keyFormat = algId;
  5110. }
  5111. ret = 0; /* failures should be ignored */
  5112. }
  5113. #endif
  5114. }
  5115. }
  5116. if (used) {
  5117. *used = info->consumed;
  5118. }
  5119. /* process user chain */
  5120. if (ret >= 0) {
  5121. /* Chain should have server cert first, then intermediates, then root.
  5122. * First certificate in chain is processed below after ProcessUserChain
  5123. * and is loaded into ssl->buffers.certificate.
  5124. * Remainder are processed using ProcessUserChain and are loaded into
  5125. * ssl->buffers.certChain. */
  5126. if (userChain) {
  5127. ret = ProcessUserChain(ctx, buff, sz, format, type, ssl, used, info,
  5128. verify);
  5129. if (ret == ASN_NO_PEM_HEADER) { /* Additional chain is optional */
  5130. unsigned long pemErr;
  5131. CLEAR_ASN_NO_PEM_HEADER_ERROR(pemErr);
  5132. ret = 0;
  5133. }
  5134. }
  5135. }
  5136. /* info is only used for private key with DER or PEM, so free now */
  5137. if (ret < 0 || type != PRIVATEKEY_TYPE) {
  5138. #ifdef WOLFSSL_SMALL_STACK
  5139. XFREE(info, heap, DYNAMIC_TYPE_ENCRYPTEDINFO);
  5140. #endif
  5141. }
  5142. /* check for error */
  5143. if (ret < 0) {
  5144. FreeDer(&der);
  5145. done = 1;
  5146. }
  5147. if (done == 1) {
  5148. /* No operation, just skip the next section */
  5149. }
  5150. /* Handle DER owner */
  5151. else if (type == CA_TYPE) {
  5152. if (ctx == NULL) {
  5153. WOLFSSL_MSG("Need context for CA load");
  5154. FreeDer(&der);
  5155. return BAD_FUNC_ARG;
  5156. }
  5157. /* verify CA unless user set to no verify */
  5158. ret = AddCA(ctx->cm, &der, WOLFSSL_USER_CA, verify);
  5159. done = 1;
  5160. }
  5161. #ifdef WOLFSSL_TRUST_PEER_CERT
  5162. else if (type == TRUSTED_PEER_TYPE) {
  5163. /* add trusted peer cert. der is freed within */
  5164. if (ctx != NULL)
  5165. ret = AddTrustedPeer(ctx->cm, &der, !ctx->verifyNone);
  5166. else
  5167. ret = AddTrustedPeer(SSL_CM(ssl), &der, !ssl->options.verifyNone);
  5168. if (ret != WOLFSSL_SUCCESS) {
  5169. WOLFSSL_MSG("Error adding trusted peer");
  5170. }
  5171. done = 1;
  5172. }
  5173. #endif /* WOLFSSL_TRUST_PEER_CERT */
  5174. else if (type == CERT_TYPE) {
  5175. if (ssl) {
  5176. /* Make sure previous is free'd */
  5177. if (ssl->buffers.weOwnCert) {
  5178. FreeDer(&ssl->buffers.certificate);
  5179. #ifdef KEEP_OUR_CERT
  5180. wolfSSL_X509_free(ssl->ourCert);
  5181. ssl->ourCert = NULL;
  5182. #endif
  5183. }
  5184. ssl->buffers.certificate = der;
  5185. #ifdef KEEP_OUR_CERT
  5186. ssl->keepCert = 1; /* hold cert for ssl lifetime */
  5187. #endif
  5188. ssl->buffers.weOwnCert = 1;
  5189. }
  5190. else if (ctx) {
  5191. FreeDer(&ctx->certificate); /* Make sure previous is free'd */
  5192. #ifdef KEEP_OUR_CERT
  5193. if (ctx->ourCert) {
  5194. if (ctx->ownOurCert)
  5195. wolfSSL_X509_free(ctx->ourCert);
  5196. ctx->ourCert = NULL;
  5197. }
  5198. #endif
  5199. ctx->certificate = der;
  5200. }
  5201. }
  5202. else if (type == PRIVATEKEY_TYPE) {
  5203. if (ssl) {
  5204. /* Make sure previous is free'd */
  5205. if (ssl->buffers.weOwnKey) {
  5206. FreeDer(&ssl->buffers.key);
  5207. }
  5208. ssl->buffers.key = der;
  5209. ssl->buffers.weOwnKey = 1;
  5210. }
  5211. else if (ctx) {
  5212. FreeDer(&ctx->privateKey);
  5213. ctx->privateKey = der;
  5214. }
  5215. }
  5216. else {
  5217. FreeDer(&der);
  5218. return WOLFSSL_BAD_CERTTYPE;
  5219. }
  5220. if (done == 1) {
  5221. /* No operation, just skip the next section */
  5222. }
  5223. else if (type == PRIVATEKEY_TYPE) {
  5224. ret = ProcessBufferTryDecode(ctx, ssl, der, &keySz, &idx, &resetSuites,
  5225. &keyFormat, heap, devId);
  5226. #if defined(WOLFSSL_ENCRYPTED_KEYS) && !defined(NO_PWDBASED)
  5227. /* for WOLFSSL_FILETYPE_PEM, PemToDer manages the decryption */
  5228. /* If private key type PKCS8 header wasn't already removed (algoId == 0) */
  5229. if ((ret != 0 || keyFormat == 0)
  5230. && format != WOLFSSL_FILETYPE_PEM && info->passwd_cb && algId == 0)
  5231. {
  5232. int passwordSz = NAME_SZ;
  5233. #ifndef WOLFSSL_SMALL_STACK
  5234. char password[NAME_SZ];
  5235. #else
  5236. char* password = (char*)XMALLOC(passwordSz, heap, DYNAMIC_TYPE_STRING);
  5237. if (password == NULL) {
  5238. XFREE(info, heap, DYNAMIC_TYPE_ENCRYPTEDINFO);
  5239. FreeDer(&der);
  5240. return MEMORY_E;
  5241. }
  5242. #endif
  5243. /* get password */
  5244. ret = info->passwd_cb(password, passwordSz, PEM_PASS_READ,
  5245. info->passwd_userdata);
  5246. if (ret >= 0) {
  5247. passwordSz = ret;
  5248. /* PKCS8 decrypt */
  5249. ret = ToTraditionalEnc(der->buffer, der->length,
  5250. password, passwordSz, &algId);
  5251. if (ret >= 0) {
  5252. der->length = ret;
  5253. }
  5254. /* ignore failures and try parsing as unencrypted */
  5255. ForceZero(password, passwordSz);
  5256. }
  5257. #ifdef WOLFSSL_SMALL_STACK
  5258. XFREE(password, heap, DYNAMIC_TYPE_STRING);
  5259. #endif
  5260. ret = ProcessBufferTryDecode(ctx, ssl, der, &keySz, &idx,
  5261. &resetSuites, &keyFormat, heap, devId);
  5262. }
  5263. #endif /* WOLFSSL_ENCRYPTED_KEYS && !NO_PWDBASED */
  5264. #ifdef WOLFSSL_SMALL_STACK
  5265. XFREE(info, heap, DYNAMIC_TYPE_ENCRYPTEDINFO);
  5266. #endif
  5267. if (ret != 0)
  5268. return ret;
  5269. if (keyFormat == 0) {
  5270. #ifdef OPENSSL_EXTRA
  5271. /* Reaching this point probably means that the
  5272. * decryption password is wrong */
  5273. if (info->passwd_cb)
  5274. EVPerr(0, EVP_R_BAD_DECRYPT);
  5275. #endif
  5276. WOLFSSL_ERROR(WOLFSSL_BAD_FILE);
  5277. return WOLFSSL_BAD_FILE;
  5278. }
  5279. (void)devId;
  5280. }
  5281. else if (type == CERT_TYPE) {
  5282. #ifdef WOLFSSL_SMALL_STACK
  5283. DecodedCert* cert;
  5284. #else
  5285. DecodedCert cert[1];
  5286. #endif
  5287. #ifdef WOLF_PRIVATE_KEY_ID
  5288. int keyType = 0;
  5289. #endif
  5290. #ifdef WOLFSSL_SMALL_STACK
  5291. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), heap,
  5292. DYNAMIC_TYPE_DCERT);
  5293. if (cert == NULL)
  5294. return MEMORY_E;
  5295. #endif
  5296. WOLFSSL_MSG("Checking cert signature type");
  5297. InitDecodedCert(cert, der->buffer, der->length, heap);
  5298. if (DecodeToKey(cert, 0) < 0) {
  5299. WOLFSSL_MSG("Decode to key failed");
  5300. FreeDecodedCert(cert);
  5301. #ifdef WOLFSSL_SMALL_STACK
  5302. XFREE(cert, heap, DYNAMIC_TYPE_DCERT);
  5303. #endif
  5304. return WOLFSSL_BAD_FILE;
  5305. }
  5306. if (ssl && ssl->options.side == WOLFSSL_SERVER_END) {
  5307. resetSuites = 1;
  5308. }
  5309. if (ssl && ssl->ctx->haveECDSAsig) {
  5310. WOLFSSL_MSG("SSL layer setting cert, CTX had ECDSA, turning off");
  5311. ssl->options.haveECDSAsig = 0; /* may turn back on next */
  5312. }
  5313. switch (cert->signatureOID) {
  5314. case CTC_SHAwECDSA:
  5315. case CTC_SHA256wECDSA:
  5316. case CTC_SHA384wECDSA:
  5317. case CTC_SHA512wECDSA:
  5318. case CTC_ED25519:
  5319. case CTC_ED448:
  5320. WOLFSSL_MSG("ECDSA/ED25519/ED448 cert signature");
  5321. if (ssl)
  5322. ssl->options.haveECDSAsig = 1;
  5323. else if (ctx)
  5324. ctx->haveECDSAsig = 1;
  5325. break;
  5326. case CTC_FALCON_LEVEL1:
  5327. case CTC_FALCON_LEVEL5:
  5328. WOLFSSL_MSG("Falcon cert signature");
  5329. if (ssl)
  5330. ssl->options.haveFalconSig = 1;
  5331. else if (ctx)
  5332. ctx->haveFalconSig = 1;
  5333. break;
  5334. default:
  5335. WOLFSSL_MSG("Not ECDSA cert signature");
  5336. break;
  5337. }
  5338. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  5339. defined(HAVE_PQC) || !defined(NO_RSA)
  5340. if (ssl) {
  5341. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  5342. (defined(HAVE_CURVE448) && defined(HAVE_ED448))
  5343. ssl->pkCurveOID = cert->pkCurveOID;
  5344. #endif
  5345. #ifndef WC_STRICT_SIG
  5346. if (cert->keyOID == ECDSAk) {
  5347. ssl->options.haveECC = 1;
  5348. }
  5349. #ifndef NO_RSA
  5350. else if (cert->keyOID == RSAk) {
  5351. ssl->options.haveRSA = 1;
  5352. }
  5353. #endif
  5354. #ifdef HAVE_ED25519
  5355. else if (cert->keyOID == ED25519k) {
  5356. ssl->options.haveECC = 1;
  5357. }
  5358. #endif
  5359. #ifdef HAVE_ED448
  5360. else if (cert->keyOID == ED448k) {
  5361. ssl->options.haveECC = 1;
  5362. }
  5363. #endif
  5364. #ifdef HAVE_PQC
  5365. else if (cert->keyOID == FALCON_LEVEL1k ||
  5366. cert->keyOID == FALCON_LEVEL5k) {
  5367. ssl->options.haveFalconSig = 1;
  5368. }
  5369. #endif
  5370. #else
  5371. ssl->options.haveECC = ssl->options.haveECDSAsig;
  5372. #endif
  5373. }
  5374. else if (ctx) {
  5375. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  5376. ctx->pkCurveOID = cert->pkCurveOID;
  5377. #endif
  5378. #ifndef WC_STRICT_SIG
  5379. if (cert->keyOID == ECDSAk) {
  5380. ctx->haveECC = 1;
  5381. }
  5382. #ifndef NO_RSA
  5383. else if (cert->keyOID == RSAk) {
  5384. ctx->haveRSA = 1;
  5385. }
  5386. #endif
  5387. #ifdef HAVE_ED25519
  5388. else if (cert->keyOID == ED25519k) {
  5389. ctx->haveECC = 1;
  5390. }
  5391. #endif
  5392. #ifdef HAVE_ED448
  5393. else if (cert->keyOID == ED448k) {
  5394. ctx->haveECC = 1;
  5395. }
  5396. #endif
  5397. #ifdef HAVE_PQC
  5398. else if (cert->keyOID == FALCON_LEVEL1k ||
  5399. cert->keyOID == FALCON_LEVEL5k) {
  5400. ctx->haveFalconSig = 1;
  5401. }
  5402. #endif
  5403. #else
  5404. ctx->haveECC = ctx->haveECDSAsig;
  5405. #endif
  5406. }
  5407. #endif
  5408. /* check key size of cert unless specified not to */
  5409. switch (cert->keyOID) {
  5410. #ifndef NO_RSA
  5411. case RSAk:
  5412. #ifdef WOLF_PRIVATE_KEY_ID
  5413. keyType = rsa_sa_algo;
  5414. #endif
  5415. /* Determine RSA key size by parsing public key */
  5416. idx = 0;
  5417. ret = wc_RsaPublicKeyDecode_ex(cert->publicKey, &idx,
  5418. cert->pubKeySize, NULL, (word32*)&keySz, NULL, NULL);
  5419. if (ret < 0)
  5420. break;
  5421. if (ssl && !ssl->options.verifyNone) {
  5422. if (ssl->options.minRsaKeySz < 0 ||
  5423. keySz < (int)ssl->options.minRsaKeySz) {
  5424. ret = RSA_KEY_SIZE_E;
  5425. WOLFSSL_MSG("Certificate RSA key size too small");
  5426. }
  5427. }
  5428. else if (ctx && !ctx->verifyNone) {
  5429. if (ctx->minRsaKeySz < 0 ||
  5430. keySz < (int)ctx->minRsaKeySz) {
  5431. ret = RSA_KEY_SIZE_E;
  5432. WOLFSSL_MSG("Certificate RSA key size too small");
  5433. }
  5434. }
  5435. break;
  5436. #endif /* !NO_RSA */
  5437. #ifdef HAVE_ECC
  5438. case ECDSAk:
  5439. #ifdef WOLF_PRIVATE_KEY_ID
  5440. keyType = ecc_dsa_sa_algo;
  5441. #endif
  5442. /* Determine ECC key size based on curve */
  5443. keySz = wc_ecc_get_curve_size_from_id(
  5444. wc_ecc_get_oid(cert->pkCurveOID, NULL, NULL));
  5445. if (ssl && !ssl->options.verifyNone) {
  5446. if (ssl->options.minEccKeySz < 0 ||
  5447. keySz < (int)ssl->options.minEccKeySz) {
  5448. ret = ECC_KEY_SIZE_E;
  5449. WOLFSSL_MSG("Certificate ECC key size error");
  5450. }
  5451. }
  5452. else if (ctx && !ctx->verifyNone) {
  5453. if (ctx->minEccKeySz < 0 ||
  5454. keySz < (int)ctx->minEccKeySz) {
  5455. ret = ECC_KEY_SIZE_E;
  5456. WOLFSSL_MSG("Certificate ECC key size error");
  5457. }
  5458. }
  5459. break;
  5460. #endif /* HAVE_ECC */
  5461. #ifdef HAVE_ED25519
  5462. case ED25519k:
  5463. #ifdef WOLF_PRIVATE_KEY_ID
  5464. keyType = ed25519_sa_algo;
  5465. #endif
  5466. /* ED25519 is fixed key size */
  5467. keySz = ED25519_KEY_SIZE;
  5468. if (ssl && !ssl->options.verifyNone) {
  5469. if (ssl->options.minEccKeySz < 0 ||
  5470. keySz < (int)ssl->options.minEccKeySz) {
  5471. ret = ECC_KEY_SIZE_E;
  5472. WOLFSSL_MSG("Certificate Ed key size error");
  5473. }
  5474. }
  5475. else if (ctx && !ctx->verifyNone) {
  5476. if (ctx->minEccKeySz < 0 ||
  5477. keySz < (int)ctx->minEccKeySz) {
  5478. ret = ECC_KEY_SIZE_E;
  5479. WOLFSSL_MSG("Certificate ECC key size error");
  5480. }
  5481. }
  5482. break;
  5483. #endif /* HAVE_ED25519 */
  5484. #ifdef HAVE_ED448
  5485. case ED448k:
  5486. #ifdef WOLF_PRIVATE_KEY_ID
  5487. keyType = ed448_sa_algo;
  5488. #endif
  5489. /* ED448 is fixed key size */
  5490. keySz = ED448_KEY_SIZE;
  5491. if (ssl && !ssl->options.verifyNone) {
  5492. if (ssl->options.minEccKeySz < 0 ||
  5493. keySz < (int)ssl->options.minEccKeySz) {
  5494. ret = ECC_KEY_SIZE_E;
  5495. WOLFSSL_MSG("Certificate Ed key size error");
  5496. }
  5497. }
  5498. else if (ctx && !ctx->verifyNone) {
  5499. if (ctx->minEccKeySz < 0 ||
  5500. keySz < (int)ctx->minEccKeySz) {
  5501. ret = ECC_KEY_SIZE_E;
  5502. WOLFSSL_MSG("Certificate ECC key size error");
  5503. }
  5504. }
  5505. break;
  5506. #endif /* HAVE_ED448 */
  5507. #if defined(HAVE_PQC) && defined(HAVE_FALCON)
  5508. case FALCON_LEVEL1k:
  5509. case FALCON_LEVEL5k:
  5510. /* Falcon is fixed key size */
  5511. keySz = FALCON_MAX_KEY_SIZE;
  5512. if (ssl && !ssl->options.verifyNone) {
  5513. if (ssl->options.minFalconKeySz < 0 ||
  5514. keySz < (int)ssl->options.minFalconKeySz) {
  5515. ret = FALCON_KEY_SIZE_E;
  5516. WOLFSSL_MSG("Certificate Falcon key size error");
  5517. }
  5518. }
  5519. else if (ctx && !ctx->verifyNone) {
  5520. if (ctx->minFalconKeySz < 0 ||
  5521. keySz < (int)ctx->minFalconKeySz) {
  5522. ret = FALCON_KEY_SIZE_E;
  5523. WOLFSSL_MSG("Certificate Falcon key size error");
  5524. }
  5525. }
  5526. break;
  5527. #endif /* HAVE_PQC && HAVE_FALCON */
  5528. default:
  5529. WOLFSSL_MSG("No key size check done on certificate");
  5530. break; /* do no check if not a case for the key */
  5531. }
  5532. #ifdef WOLF_PRIVATE_KEY_ID
  5533. if (ssl != NULL && ssl->buffers.keyType == 0) {
  5534. ssl->buffers.keyType = keyType;
  5535. ssl->buffers.keySz = keySz;
  5536. }
  5537. else if (ctx != NULL && ctx->privateKeyType == 0) {
  5538. ctx->privateKeyType = keyType;
  5539. ctx->privateKeySz = keySz;
  5540. }
  5541. #endif
  5542. FreeDecodedCert(cert);
  5543. #ifdef WOLFSSL_SMALL_STACK
  5544. XFREE(cert, heap, DYNAMIC_TYPE_DCERT);
  5545. #endif
  5546. if (ret != 0) {
  5547. done = 1;
  5548. }
  5549. }
  5550. if (done == 1) {
  5551. #if !defined(NO_WOLFSSL_CM_VERIFY) && (!defined(NO_WOLFSSL_CLIENT) || \
  5552. !defined(WOLFSSL_NO_CLIENT_AUTH))
  5553. if ((type == CA_TYPE) || (type == CERT_TYPE)) {
  5554. /* Call to over-ride status */
  5555. if ((ctx != NULL) && (ctx->cm != NULL) &&
  5556. (ctx->cm->verifyCallback != NULL)) {
  5557. ret = CM_VerifyBuffer_ex(ctx->cm, buff,
  5558. sz, format, (ret == WOLFSSL_SUCCESS ? 0 : ret));
  5559. }
  5560. }
  5561. #endif /* NO_WOLFSSL_CM_VERIFY */
  5562. return ret;
  5563. }
  5564. if (ssl && resetSuites) {
  5565. word16 havePSK = 0;
  5566. word16 haveRSA = 0;
  5567. #ifndef NO_PSK
  5568. if (ssl->options.havePSK) {
  5569. havePSK = 1;
  5570. }
  5571. #endif
  5572. #ifndef NO_RSA
  5573. haveRSA = 1;
  5574. #endif
  5575. keySz = ssl->buffers.keySz;
  5576. /* let's reset suites */
  5577. InitSuites(ssl->suites, ssl->version, keySz, haveRSA,
  5578. havePSK, ssl->options.haveDH, ssl->options.haveECDSAsig,
  5579. ssl->options.haveECC, ssl->options.haveStaticECC,
  5580. ssl->options.haveFalconSig, ssl->options.haveAnon,
  5581. ssl->options.side);
  5582. }
  5583. return WOLFSSL_SUCCESS;
  5584. }
  5585. /* CA PEM file for verification, may have multiple/chain certs to process */
  5586. static int ProcessChainBuffer(WOLFSSL_CTX* ctx, const unsigned char* buff,
  5587. long sz, int format, int type, WOLFSSL* ssl, int verify)
  5588. {
  5589. long used = 0;
  5590. int ret = 0;
  5591. int gotOne = 0;
  5592. WOLFSSL_MSG("Processing CA PEM file");
  5593. while (used < sz) {
  5594. long consumed = 0;
  5595. ret = ProcessBuffer(ctx, buff + used, sz - used, format, type, ssl,
  5596. &consumed, 0, verify);
  5597. if (ret < 0) {
  5598. #if defined(WOLFSSL_WPAS) && defined(HAVE_CRL)
  5599. DerBuffer* der = NULL;
  5600. EncryptedInfo info;
  5601. WOLFSSL_MSG("Trying a CRL");
  5602. if (PemToDer(buff + used, sz - used, CRL_TYPE, &der, NULL, &info,
  5603. NULL) == 0) {
  5604. WOLFSSL_MSG(" Processed a CRL");
  5605. wolfSSL_CertManagerLoadCRLBuffer(ctx->cm, der->buffer,
  5606. der->length, WOLFSSL_FILETYPE_ASN1);
  5607. FreeDer(&der);
  5608. used += info.consumed;
  5609. continue;
  5610. }
  5611. #endif
  5612. if (consumed > 0) { /* Made progress in file */
  5613. WOLFSSL_ERROR(ret);
  5614. WOLFSSL_MSG("CA Parse failed, with progress in file.");
  5615. WOLFSSL_MSG("Search for other certs in file");
  5616. }
  5617. else {
  5618. WOLFSSL_MSG("CA Parse failed, no progress in file.");
  5619. WOLFSSL_MSG("Do not continue search for other certs in file");
  5620. break;
  5621. }
  5622. }
  5623. else {
  5624. WOLFSSL_MSG(" Processed a CA");
  5625. gotOne = 1;
  5626. }
  5627. used += consumed;
  5628. }
  5629. if (gotOne) {
  5630. WOLFSSL_MSG("Processed at least one valid CA. Other stuff OK");
  5631. return WOLFSSL_SUCCESS;
  5632. }
  5633. return ret;
  5634. }
  5635. static WC_INLINE WOLFSSL_METHOD* cm_pick_method(void)
  5636. {
  5637. #ifndef NO_WOLFSSL_CLIENT
  5638. #if !defined(NO_OLD_TLS) && defined(WOLFSSL_ALLOW_SSLV3)
  5639. return wolfSSLv3_client_method();
  5640. #elif !defined(NO_OLD_TLS) && defined(WOLFSSL_ALLOW_TLSV10)
  5641. return wolfTLSv1_client_method();
  5642. #elif !defined(NO_OLD_TLS)
  5643. return wolfTLSv1_1_client_method();
  5644. #elif !defined(WOLFSSL_NO_TLS12)
  5645. return wolfTLSv1_2_client_method();
  5646. #elif defined(WOLFSSL_TLS13)
  5647. return wolfTLSv1_3_client_method();
  5648. #else
  5649. return NULL;
  5650. #endif
  5651. #elif !defined(NO_WOLFSSL_SERVER)
  5652. #if !defined(NO_OLD_TLS) && defined(WOLFSSL_ALLOW_SSLV3)
  5653. return wolfSSLv3_server_method();
  5654. #elif !defined(NO_OLD_TLS) && defined(WOLFSSL_ALLOW_TLSV10)
  5655. return wolfTLSv1_server_method();
  5656. #elif !defined(NO_OLD_TLS)
  5657. return wolfTLSv1_1_server_method();
  5658. #elif !defined(WOLFSSL_NO_TLS12)
  5659. return wolfTLSv1_2_server_method();
  5660. #elif defined(WOLFSSL_TLS13)
  5661. return wolfTLSv1_3_server_method();
  5662. #else
  5663. return NULL;
  5664. #endif
  5665. #else
  5666. return NULL;
  5667. #endif
  5668. }
  5669. /* like load verify locations, 1 for success, < 0 for error */
  5670. int wolfSSL_CertManagerLoadCABuffer(WOLFSSL_CERT_MANAGER* cm,
  5671. const unsigned char* in, long sz, int format)
  5672. {
  5673. int ret = WOLFSSL_FATAL_ERROR;
  5674. WOLFSSL_CTX* tmp;
  5675. WOLFSSL_ENTER("wolfSSL_CertManagerLoadCABuffer");
  5676. if (cm == NULL) {
  5677. WOLFSSL_MSG("No CertManager error");
  5678. return ret;
  5679. }
  5680. tmp = wolfSSL_CTX_new(cm_pick_method());
  5681. if (tmp == NULL) {
  5682. WOLFSSL_MSG("CTX new failed");
  5683. return ret;
  5684. }
  5685. /* for tmp use */
  5686. wolfSSL_CertManagerFree(tmp->cm);
  5687. tmp->cm = cm;
  5688. ret = wolfSSL_CTX_load_verify_buffer(tmp, in, sz, format);
  5689. /* don't loose our good one */
  5690. tmp->cm = NULL;
  5691. wolfSSL_CTX_free(tmp);
  5692. return ret;
  5693. }
  5694. #ifdef HAVE_CRL
  5695. int wolfSSL_CertManagerLoadCRLBuffer(WOLFSSL_CERT_MANAGER* cm,
  5696. const unsigned char* buff, long sz, int type)
  5697. {
  5698. WOLFSSL_ENTER("wolfSSL_CertManagerLoadCRLBuffer");
  5699. if (cm == NULL)
  5700. return BAD_FUNC_ARG;
  5701. if (cm->crl == NULL) {
  5702. if (wolfSSL_CertManagerEnableCRL(cm, 0) != WOLFSSL_SUCCESS) {
  5703. WOLFSSL_MSG("Enable CRL failed");
  5704. return WOLFSSL_FATAL_ERROR;
  5705. }
  5706. }
  5707. return BufferLoadCRL(cm->crl, buff, sz, type, VERIFY);
  5708. }
  5709. int wolfSSL_CertManagerFreeCRL(WOLFSSL_CERT_MANAGER* cm)
  5710. {
  5711. WOLFSSL_ENTER("wolfSSL_CertManagerFreeCRL");
  5712. if (cm == NULL)
  5713. return BAD_FUNC_ARG;
  5714. if (cm->crl != NULL){
  5715. FreeCRL(cm->crl, 1);
  5716. cm->crl = NULL;
  5717. }
  5718. return WOLFSSL_SUCCESS;
  5719. }
  5720. int wolfSSL_CTX_LoadCRLBuffer(WOLFSSL_CTX* ctx, const unsigned char* buff,
  5721. long sz, int type)
  5722. {
  5723. WOLFSSL_ENTER("wolfSSL_CTX_LoadCRLBuffer");
  5724. if (ctx == NULL)
  5725. return BAD_FUNC_ARG;
  5726. return wolfSSL_CertManagerLoadCRLBuffer(ctx->cm, buff, sz, type);
  5727. }
  5728. int wolfSSL_LoadCRLBuffer(WOLFSSL* ssl, const unsigned char* buff,
  5729. long sz, int type)
  5730. {
  5731. WOLFSSL_ENTER("wolfSSL_LoadCRLBuffer");
  5732. if (ssl == NULL || ssl->ctx == NULL)
  5733. return BAD_FUNC_ARG;
  5734. return wolfSSL_CertManagerLoadCRLBuffer(SSL_CM(ssl), buff, sz, type);
  5735. }
  5736. #endif /* HAVE_CRL */
  5737. /* turn on CRL if off and compiled in, set options */
  5738. int wolfSSL_CertManagerEnableCRL(WOLFSSL_CERT_MANAGER* cm, int options)
  5739. {
  5740. int ret = WOLFSSL_SUCCESS;
  5741. (void)options;
  5742. WOLFSSL_ENTER("wolfSSL_CertManagerEnableCRL");
  5743. if (cm == NULL)
  5744. return BAD_FUNC_ARG;
  5745. #ifdef HAVE_CRL
  5746. if (cm->crl == NULL) {
  5747. cm->crl = (WOLFSSL_CRL*)XMALLOC(sizeof(WOLFSSL_CRL), cm->heap,
  5748. DYNAMIC_TYPE_CRL);
  5749. if (cm->crl == NULL)
  5750. return MEMORY_E;
  5751. if (InitCRL(cm->crl, cm) != 0) {
  5752. WOLFSSL_MSG("Init CRL failed");
  5753. FreeCRL(cm->crl, 1);
  5754. cm->crl = NULL;
  5755. return WOLFSSL_FAILURE;
  5756. }
  5757. #if defined(HAVE_CRL_IO) && defined(USE_WOLFSSL_IO)
  5758. cm->crl->crlIOCb = EmbedCrlLookup;
  5759. #endif
  5760. }
  5761. cm->crlEnabled = 1;
  5762. if (options & WOLFSSL_CRL_CHECKALL)
  5763. cm->crlCheckAll = 1;
  5764. #else
  5765. ret = NOT_COMPILED_IN;
  5766. #endif
  5767. return ret;
  5768. }
  5769. int wolfSSL_CertManagerDisableCRL(WOLFSSL_CERT_MANAGER* cm)
  5770. {
  5771. WOLFSSL_ENTER("wolfSSL_CertManagerDisableCRL");
  5772. if (cm == NULL)
  5773. return BAD_FUNC_ARG;
  5774. cm->crlEnabled = 0;
  5775. return WOLFSSL_SUCCESS;
  5776. }
  5777. #ifndef NO_WOLFSSL_CM_VERIFY
  5778. void wolfSSL_CertManagerSetVerify(WOLFSSL_CERT_MANAGER* cm, VerifyCallback vc)
  5779. {
  5780. WOLFSSL_ENTER("wolfSSL_CertManagerSetVerify");
  5781. if (cm == NULL)
  5782. return;
  5783. cm->verifyCallback = vc;
  5784. }
  5785. #endif /* NO_WOLFSSL_CM_VERIFY */
  5786. #if !defined(NO_WOLFSSL_CLIENT) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  5787. /* Verify the certificate, WOLFSSL_SUCCESS for ok, < 0 for error */
  5788. int CM_VerifyBuffer_ex(WOLFSSL_CERT_MANAGER* cm, const byte* buff,
  5789. long sz, int format, int err_val)
  5790. {
  5791. int ret = 0;
  5792. DerBuffer* der = NULL;
  5793. #ifdef WOLFSSL_SMALL_STACK
  5794. DecodedCert* cert;
  5795. #else
  5796. DecodedCert cert[1];
  5797. #endif
  5798. WOLFSSL_ENTER("wolfSSL_CertManagerVerifyBuffer");
  5799. #ifdef WOLFSSL_SMALL_STACK
  5800. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), cm->heap,
  5801. DYNAMIC_TYPE_DCERT);
  5802. if (cert == NULL)
  5803. return MEMORY_E;
  5804. #endif
  5805. if (format == WOLFSSL_FILETYPE_PEM) {
  5806. #ifdef WOLFSSL_PEM_TO_DER
  5807. ret = PemToDer(buff, sz, CERT_TYPE, &der, cm->heap, NULL, NULL);
  5808. if (ret != 0) {
  5809. FreeDer(&der);
  5810. #ifdef WOLFSSL_SMALL_STACK
  5811. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  5812. #endif
  5813. return ret;
  5814. }
  5815. InitDecodedCert(cert, der->buffer, der->length, cm->heap);
  5816. #else
  5817. ret = NOT_COMPILED_IN;
  5818. #endif
  5819. }
  5820. else {
  5821. InitDecodedCert(cert, buff, (word32)sz, cm->heap);
  5822. }
  5823. if (ret == 0)
  5824. ret = ParseCertRelative(cert, CERT_TYPE, 1, cm);
  5825. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  5826. /* ret needs to be self-singer error for Qt compat */
  5827. if (ret == ASN_NO_SIGNER_E && cert->selfSigned)
  5828. ret = ASN_SELF_SIGNED_E;
  5829. #endif
  5830. #ifdef HAVE_CRL
  5831. if (ret == 0 && cm->crlEnabled)
  5832. ret = CheckCertCRL(cm->crl, cert);
  5833. #endif
  5834. #ifndef NO_WOLFSSL_CM_VERIFY
  5835. /* if verify callback has been set */
  5836. if (cm->verifyCallback) {
  5837. buffer certBuf;
  5838. #ifdef WOLFSSL_SMALL_STACK
  5839. ProcPeerCertArgs* args;
  5840. args = (ProcPeerCertArgs*)XMALLOC(
  5841. sizeof(ProcPeerCertArgs), cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  5842. if (args == NULL) {
  5843. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  5844. return MEMORY_E;
  5845. }
  5846. #else
  5847. ProcPeerCertArgs args[1];
  5848. #endif
  5849. certBuf.buffer = (byte*)buff;
  5850. certBuf.length = (unsigned int)sz;
  5851. XMEMSET(args, 0, sizeof(ProcPeerCertArgs));
  5852. args->totalCerts = 1;
  5853. args->certs = &certBuf;
  5854. args->dCert = cert;
  5855. args->dCertInit = 1;
  5856. if (err_val != 0) {
  5857. ret = err_val;
  5858. }
  5859. ret = DoVerifyCallback(cm, NULL, ret, args);
  5860. #ifdef WOLFSSL_SMALL_STACK
  5861. XFREE(args, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  5862. #endif
  5863. }
  5864. #else
  5865. (void)err_val;
  5866. #endif
  5867. FreeDecodedCert(cert);
  5868. FreeDer(&der);
  5869. #ifdef WOLFSSL_SMALL_STACK
  5870. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  5871. #endif
  5872. return ret == 0 ? WOLFSSL_SUCCESS : ret;
  5873. }
  5874. /* Verify the certificate, WOLFSSL_SUCCESS for ok, < 0 for error */
  5875. int wolfSSL_CertManagerVerifyBuffer(WOLFSSL_CERT_MANAGER* cm, const byte* buff,
  5876. long sz, int format)
  5877. {
  5878. return CM_VerifyBuffer_ex(cm, buff, sz, format, 0);
  5879. }
  5880. #endif /* !NO_WOLFSSL_CLIENT || !WOLFSSL_NO_CLIENT_AUTH */
  5881. /* turn on OCSP if off and compiled in, set options */
  5882. int wolfSSL_CertManagerEnableOCSP(WOLFSSL_CERT_MANAGER* cm, int options)
  5883. {
  5884. int ret = WOLFSSL_SUCCESS;
  5885. (void)options;
  5886. WOLFSSL_ENTER("wolfSSL_CertManagerEnableOCSP");
  5887. if (cm == NULL)
  5888. return BAD_FUNC_ARG;
  5889. #ifdef HAVE_OCSP
  5890. if (cm->ocsp == NULL) {
  5891. cm->ocsp = (WOLFSSL_OCSP*)XMALLOC(sizeof(WOLFSSL_OCSP), cm->heap,
  5892. DYNAMIC_TYPE_OCSP);
  5893. if (cm->ocsp == NULL)
  5894. return MEMORY_E;
  5895. if (InitOCSP(cm->ocsp, cm) != 0) {
  5896. WOLFSSL_MSG("Init OCSP failed");
  5897. FreeOCSP(cm->ocsp, 1);
  5898. cm->ocsp = NULL;
  5899. return WOLFSSL_FAILURE;
  5900. }
  5901. }
  5902. cm->ocspEnabled = 1;
  5903. if (options & WOLFSSL_OCSP_URL_OVERRIDE)
  5904. cm->ocspUseOverrideURL = 1;
  5905. if (options & WOLFSSL_OCSP_NO_NONCE)
  5906. cm->ocspSendNonce = 0;
  5907. else
  5908. cm->ocspSendNonce = 1;
  5909. if (options & WOLFSSL_OCSP_CHECKALL)
  5910. cm->ocspCheckAll = 1;
  5911. #ifndef WOLFSSL_USER_IO
  5912. cm->ocspIOCb = EmbedOcspLookup;
  5913. cm->ocspRespFreeCb = EmbedOcspRespFree;
  5914. cm->ocspIOCtx = cm->heap;
  5915. #endif /* WOLFSSL_USER_IO */
  5916. #else
  5917. ret = NOT_COMPILED_IN;
  5918. #endif
  5919. return ret;
  5920. }
  5921. int wolfSSL_CertManagerDisableOCSP(WOLFSSL_CERT_MANAGER* cm)
  5922. {
  5923. WOLFSSL_ENTER("wolfSSL_CertManagerDisableOCSP");
  5924. if (cm == NULL)
  5925. return BAD_FUNC_ARG;
  5926. cm->ocspEnabled = 0;
  5927. return WOLFSSL_SUCCESS;
  5928. }
  5929. /* turn on OCSP Stapling if off and compiled in, set options */
  5930. int wolfSSL_CertManagerEnableOCSPStapling(WOLFSSL_CERT_MANAGER* cm)
  5931. {
  5932. int ret = WOLFSSL_SUCCESS;
  5933. WOLFSSL_ENTER("wolfSSL_CertManagerEnableOCSPStapling");
  5934. if (cm == NULL)
  5935. return BAD_FUNC_ARG;
  5936. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  5937. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  5938. #ifndef NO_WOLFSSL_SERVER
  5939. if (cm->ocsp_stapling == NULL) {
  5940. cm->ocsp_stapling = (WOLFSSL_OCSP*)XMALLOC(sizeof(WOLFSSL_OCSP),
  5941. cm->heap, DYNAMIC_TYPE_OCSP);
  5942. if (cm->ocsp_stapling == NULL)
  5943. return MEMORY_E;
  5944. if (InitOCSP(cm->ocsp_stapling, cm) != 0) {
  5945. WOLFSSL_MSG("Init OCSP failed");
  5946. FreeOCSP(cm->ocsp_stapling, 1);
  5947. cm->ocsp_stapling = NULL;
  5948. return WOLFSSL_FAILURE;
  5949. }
  5950. }
  5951. #ifndef WOLFSSL_USER_IO
  5952. cm->ocspIOCb = EmbedOcspLookup;
  5953. cm->ocspRespFreeCb = EmbedOcspRespFree;
  5954. cm->ocspIOCtx = cm->heap;
  5955. #endif /* WOLFSSL_USER_IO */
  5956. #endif /* NO_WOLFSSL_SERVER */
  5957. cm->ocspStaplingEnabled = 1;
  5958. #else
  5959. ret = NOT_COMPILED_IN;
  5960. #endif
  5961. return ret;
  5962. }
  5963. int wolfSSL_CertManagerDisableOCSPStapling(WOLFSSL_CERT_MANAGER* cm)
  5964. {
  5965. int ret = WOLFSSL_SUCCESS;
  5966. WOLFSSL_ENTER("wolfSSL_CertManagerDisableOCSPStapling");
  5967. if (cm == NULL)
  5968. return BAD_FUNC_ARG;
  5969. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  5970. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  5971. cm->ocspStaplingEnabled = 0;
  5972. #else
  5973. ret = NOT_COMPILED_IN;
  5974. #endif
  5975. return ret;
  5976. }
  5977. /* require OCSP stapling response */
  5978. int wolfSSL_CertManagerEnableOCSPMustStaple(WOLFSSL_CERT_MANAGER* cm)
  5979. {
  5980. int ret;
  5981. WOLFSSL_ENTER("wolfSSL_CertManagerEnableOCSPMustStaple");
  5982. if (cm == NULL)
  5983. return BAD_FUNC_ARG;
  5984. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  5985. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  5986. #ifndef NO_WOLFSSL_CLIENT
  5987. cm->ocspMustStaple = 1;
  5988. #endif
  5989. ret = WOLFSSL_SUCCESS;
  5990. #else
  5991. ret = NOT_COMPILED_IN;
  5992. #endif
  5993. return ret;
  5994. }
  5995. int wolfSSL_CertManagerDisableOCSPMustStaple(WOLFSSL_CERT_MANAGER* cm)
  5996. {
  5997. int ret;
  5998. WOLFSSL_ENTER("wolfSSL_CertManagerDisableOCSPMustStaple");
  5999. if (cm == NULL)
  6000. return BAD_FUNC_ARG;
  6001. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  6002. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  6003. #ifndef NO_WOLFSSL_CLIENT
  6004. cm->ocspMustStaple = 0;
  6005. #endif
  6006. ret = WOLFSSL_SUCCESS;
  6007. #else
  6008. ret = NOT_COMPILED_IN;
  6009. #endif
  6010. return ret;
  6011. }
  6012. #ifdef HAVE_OCSP
  6013. /* check CRL if enabled, WOLFSSL_SUCCESS */
  6014. int wolfSSL_CertManagerCheckOCSP(WOLFSSL_CERT_MANAGER* cm, byte* der, int sz)
  6015. {
  6016. int ret;
  6017. #ifdef WOLFSSL_SMALL_STACK
  6018. DecodedCert* cert = NULL;
  6019. #else
  6020. DecodedCert cert[1];
  6021. #endif
  6022. WOLFSSL_ENTER("wolfSSL_CertManagerCheckOCSP");
  6023. if (cm == NULL)
  6024. return BAD_FUNC_ARG;
  6025. if (cm->ocspEnabled == 0)
  6026. return WOLFSSL_SUCCESS;
  6027. #ifdef WOLFSSL_SMALL_STACK
  6028. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), cm->heap, DYNAMIC_TYPE_DCERT);
  6029. if (cert == NULL)
  6030. return MEMORY_E;
  6031. #endif
  6032. InitDecodedCert(cert, der, sz, NULL);
  6033. if ((ret = ParseCertRelative(cert, CERT_TYPE, VERIFY_OCSP, cm)) != 0) {
  6034. WOLFSSL_MSG("ParseCert failed");
  6035. }
  6036. else if ((ret = CheckCertOCSP(cm->ocsp, cert, NULL)) != 0) {
  6037. WOLFSSL_MSG("CheckCertOCSP failed");
  6038. }
  6039. FreeDecodedCert(cert);
  6040. #ifdef WOLFSSL_SMALL_STACK
  6041. XFREE(cert, cm->heap, DYNAMIC_TYPE_DCERT);
  6042. #endif
  6043. return ret == 0 ? WOLFSSL_SUCCESS : ret;
  6044. }
  6045. WOLFSSL_API int wolfSSL_CertManagerCheckOCSPResponse(WOLFSSL_CERT_MANAGER *cm,
  6046. byte *response, int responseSz, buffer *responseBuffer,
  6047. CertStatus *status, OcspEntry *entry, OcspRequest *ocspRequest)
  6048. {
  6049. int ret;
  6050. WOLFSSL_ENTER("wolfSSL_CertManagerCheckOCSPResponse");
  6051. if (cm == NULL || response == NULL)
  6052. return BAD_FUNC_ARG;
  6053. if (cm->ocspEnabled == 0)
  6054. return WOLFSSL_SUCCESS;
  6055. ret = CheckOcspResponse(cm->ocsp, response, responseSz, responseBuffer, status,
  6056. entry, ocspRequest);
  6057. return ret == 0 ? WOLFSSL_SUCCESS : ret;
  6058. }
  6059. int wolfSSL_CertManagerSetOCSPOverrideURL(WOLFSSL_CERT_MANAGER* cm,
  6060. const char* url)
  6061. {
  6062. WOLFSSL_ENTER("wolfSSL_CertManagerSetOCSPOverrideURL");
  6063. if (cm == NULL)
  6064. return BAD_FUNC_ARG;
  6065. XFREE(cm->ocspOverrideURL, cm->heap, DYNAMIC_TYPE_URL);
  6066. if (url != NULL) {
  6067. int urlSz = (int)XSTRLEN(url) + 1;
  6068. cm->ocspOverrideURL = (char*)XMALLOC(urlSz, cm->heap, DYNAMIC_TYPE_URL);
  6069. if (cm->ocspOverrideURL != NULL) {
  6070. XMEMCPY(cm->ocspOverrideURL, url, urlSz);
  6071. }
  6072. else
  6073. return MEMORY_E;
  6074. }
  6075. else
  6076. cm->ocspOverrideURL = NULL;
  6077. return WOLFSSL_SUCCESS;
  6078. }
  6079. int wolfSSL_CertManagerSetOCSP_Cb(WOLFSSL_CERT_MANAGER* cm,
  6080. CbOCSPIO ioCb, CbOCSPRespFree respFreeCb, void* ioCbCtx)
  6081. {
  6082. WOLFSSL_ENTER("wolfSSL_CertManagerSetOCSP_Cb");
  6083. if (cm == NULL)
  6084. return BAD_FUNC_ARG;
  6085. cm->ocspIOCb = ioCb;
  6086. cm->ocspRespFreeCb = respFreeCb;
  6087. cm->ocspIOCtx = ioCbCtx;
  6088. return WOLFSSL_SUCCESS;
  6089. }
  6090. int wolfSSL_EnableOCSP(WOLFSSL* ssl, int options)
  6091. {
  6092. WOLFSSL_ENTER("wolfSSL_EnableOCSP");
  6093. if (ssl)
  6094. return wolfSSL_CertManagerEnableOCSP(SSL_CM(ssl), options);
  6095. else
  6096. return BAD_FUNC_ARG;
  6097. }
  6098. int wolfSSL_DisableOCSP(WOLFSSL* ssl)
  6099. {
  6100. WOLFSSL_ENTER("wolfSSL_DisableOCSP");
  6101. if (ssl)
  6102. return wolfSSL_CertManagerDisableOCSP(SSL_CM(ssl));
  6103. else
  6104. return BAD_FUNC_ARG;
  6105. }
  6106. int wolfSSL_EnableOCSPStapling(WOLFSSL* ssl)
  6107. {
  6108. WOLFSSL_ENTER("wolfSSL_EnableOCSPStapling");
  6109. if (ssl)
  6110. return wolfSSL_CertManagerEnableOCSPStapling(SSL_CM(ssl));
  6111. else
  6112. return BAD_FUNC_ARG;
  6113. }
  6114. int wolfSSL_DisableOCSPStapling(WOLFSSL* ssl)
  6115. {
  6116. WOLFSSL_ENTER("wolfSSL_DisableOCSPStapling");
  6117. if (ssl)
  6118. return wolfSSL_CertManagerDisableOCSPStapling(SSL_CM(ssl));
  6119. else
  6120. return BAD_FUNC_ARG;
  6121. }
  6122. int wolfSSL_SetOCSP_OverrideURL(WOLFSSL* ssl, const char* url)
  6123. {
  6124. WOLFSSL_ENTER("wolfSSL_SetOCSP_OverrideURL");
  6125. if (ssl)
  6126. return wolfSSL_CertManagerSetOCSPOverrideURL(SSL_CM(ssl), url);
  6127. else
  6128. return BAD_FUNC_ARG;
  6129. }
  6130. int wolfSSL_SetOCSP_Cb(WOLFSSL* ssl,
  6131. CbOCSPIO ioCb, CbOCSPRespFree respFreeCb, void* ioCbCtx)
  6132. {
  6133. WOLFSSL_ENTER("wolfSSL_SetOCSP_Cb");
  6134. if (ssl) {
  6135. ssl->ocspIOCtx = ioCbCtx; /* use SSL specific ioCbCtx */
  6136. return wolfSSL_CertManagerSetOCSP_Cb(SSL_CM(ssl),
  6137. ioCb, respFreeCb, NULL);
  6138. }
  6139. else
  6140. return BAD_FUNC_ARG;
  6141. }
  6142. int wolfSSL_CTX_EnableOCSP(WOLFSSL_CTX* ctx, int options)
  6143. {
  6144. WOLFSSL_ENTER("wolfSSL_CTX_EnableOCSP");
  6145. if (ctx)
  6146. return wolfSSL_CertManagerEnableOCSP(ctx->cm, options);
  6147. else
  6148. return BAD_FUNC_ARG;
  6149. }
  6150. int wolfSSL_CTX_DisableOCSP(WOLFSSL_CTX* ctx)
  6151. {
  6152. WOLFSSL_ENTER("wolfSSL_CTX_DisableOCSP");
  6153. if (ctx)
  6154. return wolfSSL_CertManagerDisableOCSP(ctx->cm);
  6155. else
  6156. return BAD_FUNC_ARG;
  6157. }
  6158. int wolfSSL_CTX_SetOCSP_OverrideURL(WOLFSSL_CTX* ctx, const char* url)
  6159. {
  6160. WOLFSSL_ENTER("wolfSSL_SetOCSP_OverrideURL");
  6161. if (ctx)
  6162. return wolfSSL_CertManagerSetOCSPOverrideURL(ctx->cm, url);
  6163. else
  6164. return BAD_FUNC_ARG;
  6165. }
  6166. int wolfSSL_CTX_SetOCSP_Cb(WOLFSSL_CTX* ctx, CbOCSPIO ioCb,
  6167. CbOCSPRespFree respFreeCb, void* ioCbCtx)
  6168. {
  6169. WOLFSSL_ENTER("wolfSSL_CTX_SetOCSP_Cb");
  6170. if (ctx)
  6171. return wolfSSL_CertManagerSetOCSP_Cb(ctx->cm, ioCb,
  6172. respFreeCb, ioCbCtx);
  6173. else
  6174. return BAD_FUNC_ARG;
  6175. }
  6176. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  6177. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  6178. int wolfSSL_CTX_EnableOCSPStapling(WOLFSSL_CTX* ctx)
  6179. {
  6180. WOLFSSL_ENTER("wolfSSL_CTX_EnableOCSPStapling");
  6181. if (ctx)
  6182. return wolfSSL_CertManagerEnableOCSPStapling(ctx->cm);
  6183. else
  6184. return BAD_FUNC_ARG;
  6185. }
  6186. int wolfSSL_CTX_DisableOCSPStapling(WOLFSSL_CTX* ctx)
  6187. {
  6188. WOLFSSL_ENTER("wolfSSL_CTX_DisableOCSPStapling");
  6189. if (ctx)
  6190. return wolfSSL_CertManagerDisableOCSPStapling(ctx->cm);
  6191. else
  6192. return BAD_FUNC_ARG;
  6193. }
  6194. int wolfSSL_CTX_EnableOCSPMustStaple(WOLFSSL_CTX* ctx)
  6195. {
  6196. WOLFSSL_ENTER("wolfSSL_CTX_EnableOCSPMustStaple");
  6197. if (ctx)
  6198. return wolfSSL_CertManagerEnableOCSPMustStaple(ctx->cm);
  6199. else
  6200. return BAD_FUNC_ARG;
  6201. }
  6202. int wolfSSL_CTX_DisableOCSPMustStaple(WOLFSSL_CTX* ctx)
  6203. {
  6204. WOLFSSL_ENTER("wolfSSL_CTX_DisableOCSPMustStaple");
  6205. if (ctx)
  6206. return wolfSSL_CertManagerDisableOCSPMustStaple(ctx->cm);
  6207. else
  6208. return BAD_FUNC_ARG;
  6209. }
  6210. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST || HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  6211. #endif /* HAVE_OCSP */
  6212. /* macro to get verify settings for AddCA */
  6213. #define GET_VERIFY_SETTING_CTX(ctx) \
  6214. ((ctx) && (ctx)->verifyNone ? NO_VERIFY : VERIFY)
  6215. #define GET_VERIFY_SETTING_SSL(ssl) \
  6216. ((ssl)->options.verifyNone ? NO_VERIFY : VERIFY)
  6217. #ifndef NO_FILESYSTEM
  6218. /* process a file with name fname into ctx of format and type
  6219. userChain specifies a user certificate chain to pass during handshake */
  6220. int ProcessFile(WOLFSSL_CTX* ctx, const char* fname, int format, int type,
  6221. WOLFSSL* ssl, int userChain, WOLFSSL_CRL* crl, int verify)
  6222. {
  6223. #ifdef WOLFSSL_SMALL_STACK
  6224. byte staticBuffer[1]; /* force heap usage */
  6225. #else
  6226. byte staticBuffer[FILE_BUFFER_SIZE];
  6227. #endif
  6228. byte* myBuffer = staticBuffer;
  6229. int dynamic = 0;
  6230. int ret;
  6231. long sz = 0;
  6232. XFILE file;
  6233. void* heapHint = wolfSSL_CTX_GetHeap(ctx, ssl);
  6234. #ifndef NO_CODING
  6235. const char* header = NULL;
  6236. const char* footer = NULL;
  6237. #endif
  6238. (void)crl;
  6239. (void)heapHint;
  6240. if (fname == NULL) return WOLFSSL_BAD_FILE;
  6241. file = XFOPEN(fname, "rb");
  6242. if (file == XBADFILE) return WOLFSSL_BAD_FILE;
  6243. if (XFSEEK(file, 0, XSEEK_END) != 0) {
  6244. XFCLOSE(file);
  6245. return WOLFSSL_BAD_FILE;
  6246. }
  6247. sz = XFTELL(file);
  6248. XREWIND(file);
  6249. if (sz > MAX_WOLFSSL_FILE_SIZE || sz <= 0) {
  6250. WOLFSSL_MSG("ProcessFile file size error");
  6251. XFCLOSE(file);
  6252. return WOLFSSL_BAD_FILE;
  6253. }
  6254. if (sz > (long)sizeof(staticBuffer)) {
  6255. WOLFSSL_MSG("Getting dynamic buffer");
  6256. myBuffer = (byte*)XMALLOC(sz, heapHint, DYNAMIC_TYPE_FILE);
  6257. if (myBuffer == NULL) {
  6258. XFCLOSE(file);
  6259. return WOLFSSL_BAD_FILE;
  6260. }
  6261. dynamic = 1;
  6262. }
  6263. if ((size_t)XFREAD(myBuffer, 1, sz, file) != (size_t)sz)
  6264. ret = WOLFSSL_BAD_FILE;
  6265. else {
  6266. /* Try to detect type by parsing cert header and footer */
  6267. if (type == DETECT_CERT_TYPE) {
  6268. #ifndef NO_CODING
  6269. if (wc_PemGetHeaderFooter(CA_TYPE, &header, &footer) == 0 &&
  6270. (XSTRNSTR((char*)myBuffer, header, (int)sz) != NULL)) {
  6271. type = CA_TYPE;
  6272. }
  6273. #ifdef HAVE_CRL
  6274. else if (wc_PemGetHeaderFooter(CRL_TYPE, &header, &footer) == 0 &&
  6275. (XSTRNSTR((char*)myBuffer, header, (int)sz) != NULL)) {
  6276. type = CRL_TYPE;
  6277. }
  6278. #endif
  6279. else if (wc_PemGetHeaderFooter(CERT_TYPE, &header, &footer) == 0 &&
  6280. (XSTRNSTR((char*)myBuffer, header, (int)sz) != NULL)) {
  6281. type = CERT_TYPE;
  6282. }
  6283. else
  6284. #endif
  6285. {
  6286. WOLFSSL_MSG("Failed to detect certificate type");
  6287. if (dynamic)
  6288. XFREE(myBuffer, heapHint, DYNAMIC_TYPE_FILE);
  6289. XFCLOSE(file);
  6290. return WOLFSSL_BAD_CERTTYPE;
  6291. }
  6292. }
  6293. if ((type == CA_TYPE || type == TRUSTED_PEER_TYPE)
  6294. && format == WOLFSSL_FILETYPE_PEM) {
  6295. ret = ProcessChainBuffer(ctx, myBuffer, sz, format, type, ssl,
  6296. verify);
  6297. }
  6298. #ifdef HAVE_CRL
  6299. else if (type == CRL_TYPE)
  6300. ret = BufferLoadCRL(crl, myBuffer, sz, format, verify);
  6301. #endif
  6302. else
  6303. ret = ProcessBuffer(ctx, myBuffer, sz, format, type, ssl, NULL,
  6304. userChain, verify);
  6305. }
  6306. XFCLOSE(file);
  6307. if (dynamic)
  6308. XFREE(myBuffer, heapHint, DYNAMIC_TYPE_FILE);
  6309. return ret;
  6310. }
  6311. /* loads file then loads each file in path, no c_rehash */
  6312. int wolfSSL_CTX_load_verify_locations_ex(WOLFSSL_CTX* ctx, const char* file,
  6313. const char* path, word32 flags)
  6314. {
  6315. int ret = WOLFSSL_SUCCESS;
  6316. #ifndef NO_WOLFSSL_DIR
  6317. int fileRet;
  6318. int successCount = 0;
  6319. int failCount = 0;
  6320. #endif
  6321. int verify;
  6322. WOLFSSL_MSG("wolfSSL_CTX_load_verify_locations_ex");
  6323. if (ctx == NULL || (file == NULL && path == NULL)) {
  6324. return WOLFSSL_FAILURE;
  6325. }
  6326. verify = GET_VERIFY_SETTING_CTX(ctx);
  6327. if (flags & WOLFSSL_LOAD_FLAG_DATE_ERR_OKAY)
  6328. verify = VERIFY_SKIP_DATE;
  6329. if (file) {
  6330. ret = ProcessFile(ctx, file, WOLFSSL_FILETYPE_PEM, CA_TYPE, NULL, 0,
  6331. NULL, verify);
  6332. #ifndef NO_WOLFSSL_DIR
  6333. if (ret == WOLFSSL_SUCCESS)
  6334. successCount++;
  6335. #endif
  6336. #if defined(WOLFSSL_TRUST_PEER_CERT) && defined(OPENSSL_COMPATIBLE_DEFAULTS)
  6337. ret = wolfSSL_CTX_trust_peer_cert(ctx, file, WOLFSSL_FILETYPE_PEM);
  6338. if (ret != WOLFSSL_SUCCESS) {
  6339. WOLFSSL_MSG("wolfSSL_CTX_trust_peer_cert error");
  6340. }
  6341. #endif
  6342. }
  6343. if (ret == WOLFSSL_SUCCESS && path) {
  6344. #ifndef NO_WOLFSSL_DIR
  6345. char* name = NULL;
  6346. #ifdef WOLFSSL_SMALL_STACK
  6347. ReadDirCtx* readCtx;
  6348. readCtx = (ReadDirCtx*)XMALLOC(sizeof(ReadDirCtx), ctx->heap,
  6349. DYNAMIC_TYPE_DIRCTX);
  6350. if (readCtx == NULL)
  6351. return MEMORY_E;
  6352. #else
  6353. ReadDirCtx readCtx[1];
  6354. #endif
  6355. /* try to load each regular file in path */
  6356. fileRet = wc_ReadDirFirst(readCtx, path, &name);
  6357. while (fileRet == 0 && name) {
  6358. WOLFSSL_MSG(name); /* log file name */
  6359. ret = ProcessFile(ctx, name, WOLFSSL_FILETYPE_PEM, CA_TYPE,
  6360. NULL, 0, NULL, verify);
  6361. if (ret != WOLFSSL_SUCCESS) {
  6362. /* handle flags for ignoring errors, skipping expired certs or
  6363. by PEM certificate header error */
  6364. if ( (flags & WOLFSSL_LOAD_FLAG_IGNORE_ERR) ||
  6365. ((flags & WOLFSSL_LOAD_FLAG_PEM_CA_ONLY) &&
  6366. (ret == ASN_NO_PEM_HEADER))) {
  6367. /* Do not fail here if a certificate fails to load,
  6368. continue to next file */
  6369. unsigned long err;
  6370. CLEAR_ASN_NO_PEM_HEADER_ERROR(err);
  6371. #if defined(WOLFSSL_QT)
  6372. ret = WOLFSSL_SUCCESS;
  6373. #endif
  6374. }
  6375. else {
  6376. WOLFSSL_ERROR(ret);
  6377. WOLFSSL_MSG("Load CA file failed, continuing");
  6378. failCount++;
  6379. }
  6380. }
  6381. else {
  6382. #if defined(WOLFSSL_TRUST_PEER_CERT) && defined(OPENSSL_COMPATIBLE_DEFAULTS)
  6383. ret = wolfSSL_CTX_trust_peer_cert(ctx, file, WOLFSSL_FILETYPE_PEM);
  6384. if (ret != WOLFSSL_SUCCESS) {
  6385. WOLFSSL_MSG("wolfSSL_CTX_trust_peer_cert error. Ignoring"
  6386. "this error.");
  6387. }
  6388. #endif
  6389. successCount++;
  6390. }
  6391. fileRet = wc_ReadDirNext(readCtx, path, &name);
  6392. }
  6393. wc_ReadDirClose(readCtx);
  6394. /* pass directory read failure to response code */
  6395. if (fileRet != WC_READDIR_NOFILE) {
  6396. ret = fileRet;
  6397. #if defined(WOLFSSL_QT)
  6398. if (ret == BAD_PATH_ERROR &&
  6399. flags & WOLFSSL_LOAD_FLAG_IGNORE_BAD_PATH_ERR) {
  6400. /* QSslSocket always loads certs in system folder
  6401. * when it is initialized.
  6402. * Compliant with OpenSSL when flag sets.
  6403. */
  6404. ret = WOLFSSL_SUCCESS;
  6405. }
  6406. else {
  6407. /* qssl socket wants to know errors. */
  6408. WOLFSSL_ERROR(ret);
  6409. }
  6410. #endif
  6411. }
  6412. /* report failure if no files were loaded or there were failures */
  6413. else if (successCount == 0 || failCount > 0) {
  6414. /* use existing error code if exists */
  6415. #if defined(WOLFSSL_QT)
  6416. /* compliant with OpenSSL when flag sets*/
  6417. if (!(flags & WOLFSSL_LOAD_FLAG_IGNORE_ZEROFILE))
  6418. #endif
  6419. {
  6420. ret = WOLFSSL_FAILURE;
  6421. }
  6422. }
  6423. else {
  6424. ret = WOLFSSL_SUCCESS;
  6425. }
  6426. #ifdef WOLFSSL_SMALL_STACK
  6427. XFREE(readCtx, ctx->heap, DYNAMIC_TYPE_DIRCTX);
  6428. #endif
  6429. #else
  6430. ret = NOT_COMPILED_IN;
  6431. (void)flags;
  6432. #endif
  6433. }
  6434. return ret;
  6435. }
  6436. WOLFSSL_ABI
  6437. int wolfSSL_CTX_load_verify_locations(WOLFSSL_CTX* ctx, const char* file,
  6438. const char* path)
  6439. {
  6440. int ret = wolfSSL_CTX_load_verify_locations_ex(ctx, file, path,
  6441. WOLFSSL_LOAD_VERIFY_DEFAULT_FLAGS);
  6442. return WS_RETURN_CODE(ret,WOLFSSL_FAILURE);
  6443. }
  6444. #ifdef WOLFSSL_TRUST_PEER_CERT
  6445. /* Used to specify a peer cert to match when connecting
  6446. ctx : the ctx structure to load in peer cert
  6447. file: the string name of cert file
  6448. type: type of format such as PEM/DER
  6449. */
  6450. int wolfSSL_CTX_trust_peer_cert(WOLFSSL_CTX* ctx, const char* file, int type)
  6451. {
  6452. WOLFSSL_ENTER("wolfSSL_CTX_trust_peer_cert");
  6453. if (ctx == NULL || file == NULL) {
  6454. return WOLFSSL_FAILURE;
  6455. }
  6456. return ProcessFile(ctx, file, type, TRUSTED_PEER_TYPE, NULL, 0, NULL,
  6457. GET_VERIFY_SETTING_CTX(ctx));
  6458. }
  6459. int wolfSSL_trust_peer_cert(WOLFSSL* ssl, const char* file, int type)
  6460. {
  6461. WOLFSSL_ENTER("wolfSSL_trust_peer_cert");
  6462. if (ssl == NULL || file == NULL) {
  6463. return WOLFSSL_FAILURE;
  6464. }
  6465. return ProcessFile(NULL, file, type, TRUSTED_PEER_TYPE, ssl, 0, NULL,
  6466. GET_VERIFY_SETTING_SSL(ssl));
  6467. }
  6468. #endif /* WOLFSSL_TRUST_PEER_CERT */
  6469. #if !defined(NO_WOLFSSL_CLIENT) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  6470. /* Verify the certificate, WOLFSSL_SUCCESS for ok, < 0 for error */
  6471. int wolfSSL_CertManagerVerify(WOLFSSL_CERT_MANAGER* cm, const char* fname,
  6472. int format)
  6473. {
  6474. int ret = WOLFSSL_FATAL_ERROR;
  6475. #ifdef WOLFSSL_SMALL_STACK
  6476. byte staticBuffer[1]; /* force heap usage */
  6477. #else
  6478. byte staticBuffer[FILE_BUFFER_SIZE];
  6479. #endif
  6480. byte* myBuffer = staticBuffer;
  6481. int dynamic = 0;
  6482. long sz = 0;
  6483. XFILE file = XFOPEN(fname, "rb");
  6484. WOLFSSL_ENTER("wolfSSL_CertManagerVerify");
  6485. if (file == XBADFILE) return WOLFSSL_BAD_FILE;
  6486. if(XFSEEK(file, 0, XSEEK_END) != 0) {
  6487. XFCLOSE(file);
  6488. return WOLFSSL_BAD_FILE;
  6489. }
  6490. sz = XFTELL(file);
  6491. XREWIND(file);
  6492. if (sz > MAX_WOLFSSL_FILE_SIZE || sz <= 0) {
  6493. WOLFSSL_MSG("CertManagerVerify file size error");
  6494. XFCLOSE(file);
  6495. return WOLFSSL_BAD_FILE;
  6496. }
  6497. if (sz > (long)sizeof(staticBuffer)) {
  6498. WOLFSSL_MSG("Getting dynamic buffer");
  6499. myBuffer = (byte*) XMALLOC(sz, cm->heap, DYNAMIC_TYPE_FILE);
  6500. if (myBuffer == NULL) {
  6501. XFCLOSE(file);
  6502. return WOLFSSL_BAD_FILE;
  6503. }
  6504. dynamic = 1;
  6505. }
  6506. if ((size_t)XFREAD(myBuffer, 1, sz, file) != (size_t)sz)
  6507. ret = WOLFSSL_BAD_FILE;
  6508. else
  6509. ret = wolfSSL_CertManagerVerifyBuffer(cm, myBuffer, sz, format);
  6510. XFCLOSE(file);
  6511. if (dynamic)
  6512. XFREE(myBuffer, cm->heap, DYNAMIC_TYPE_FILE);
  6513. return ret;
  6514. }
  6515. #endif
  6516. /* like load verify locations, 1 for success, < 0 for error */
  6517. int wolfSSL_CertManagerLoadCA(WOLFSSL_CERT_MANAGER* cm, const char* file,
  6518. const char* path)
  6519. {
  6520. int ret = WOLFSSL_FATAL_ERROR;
  6521. WOLFSSL_CTX* tmp;
  6522. WOLFSSL_ENTER("wolfSSL_CertManagerLoadCA");
  6523. if (cm == NULL) {
  6524. WOLFSSL_MSG("No CertManager error");
  6525. return ret;
  6526. }
  6527. tmp = wolfSSL_CTX_new(cm_pick_method());
  6528. if (tmp == NULL) {
  6529. WOLFSSL_MSG("CTX new failed");
  6530. return ret;
  6531. }
  6532. /* for tmp use */
  6533. wolfSSL_CertManagerFree(tmp->cm);
  6534. tmp->cm = cm;
  6535. ret = wolfSSL_CTX_load_verify_locations(tmp, file, path);
  6536. /* don't lose our good one */
  6537. tmp->cm = NULL;
  6538. wolfSSL_CTX_free(tmp);
  6539. return ret;
  6540. }
  6541. #endif /* NO_FILESYSTEM */
  6542. #ifdef HAVE_CRL
  6543. /* check CRL if enabled, WOLFSSL_SUCCESS */
  6544. int wolfSSL_CertManagerCheckCRL(WOLFSSL_CERT_MANAGER* cm, byte* der, int sz)
  6545. {
  6546. int ret = 0;
  6547. #ifdef WOLFSSL_SMALL_STACK
  6548. DecodedCert* cert = NULL;
  6549. #else
  6550. DecodedCert cert[1];
  6551. #endif
  6552. WOLFSSL_ENTER("wolfSSL_CertManagerCheckCRL");
  6553. if (cm == NULL)
  6554. return BAD_FUNC_ARG;
  6555. if (cm->crlEnabled == 0)
  6556. return WOLFSSL_SUCCESS;
  6557. #ifdef WOLFSSL_SMALL_STACK
  6558. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), NULL, DYNAMIC_TYPE_DCERT);
  6559. if (cert == NULL)
  6560. return MEMORY_E;
  6561. #endif
  6562. InitDecodedCert(cert, der, sz, NULL);
  6563. if ((ret = ParseCertRelative(cert, CERT_TYPE, VERIFY_CRL, cm)) != 0) {
  6564. WOLFSSL_MSG("ParseCert failed");
  6565. }
  6566. else if ((ret = CheckCertCRL(cm->crl, cert)) != 0) {
  6567. WOLFSSL_MSG("CheckCertCRL failed");
  6568. }
  6569. FreeDecodedCert(cert);
  6570. #ifdef WOLFSSL_SMALL_STACK
  6571. XFREE(cert, NULL, DYNAMIC_TYPE_DCERT);
  6572. #endif
  6573. return ret == 0 ? WOLFSSL_SUCCESS : ret;
  6574. }
  6575. int wolfSSL_CertManagerSetCRL_Cb(WOLFSSL_CERT_MANAGER* cm, CbMissingCRL cb)
  6576. {
  6577. WOLFSSL_ENTER("wolfSSL_CertManagerSetCRL_Cb");
  6578. if (cm == NULL)
  6579. return BAD_FUNC_ARG;
  6580. cm->cbMissingCRL = cb;
  6581. return WOLFSSL_SUCCESS;
  6582. }
  6583. #ifdef HAVE_CRL_IO
  6584. int wolfSSL_CertManagerSetCRL_IOCb(WOLFSSL_CERT_MANAGER* cm, CbCrlIO cb)
  6585. {
  6586. if (cm == NULL)
  6587. return BAD_FUNC_ARG;
  6588. cm->crl->crlIOCb = cb;
  6589. return WOLFSSL_SUCCESS;
  6590. }
  6591. #endif
  6592. #ifndef NO_FILESYSTEM
  6593. int wolfSSL_CertManagerLoadCRL(WOLFSSL_CERT_MANAGER* cm, const char* path,
  6594. int type, int monitor)
  6595. {
  6596. WOLFSSL_ENTER("wolfSSL_CertManagerLoadCRL");
  6597. if (cm == NULL)
  6598. return BAD_FUNC_ARG;
  6599. if (cm->crl == NULL) {
  6600. if (wolfSSL_CertManagerEnableCRL(cm, 0) != WOLFSSL_SUCCESS) {
  6601. WOLFSSL_MSG("Enable CRL failed");
  6602. return WOLFSSL_FATAL_ERROR;
  6603. }
  6604. }
  6605. return LoadCRL(cm->crl, path, type, monitor);
  6606. }
  6607. int wolfSSL_CertManagerLoadCRLFile(WOLFSSL_CERT_MANAGER* cm, const char* file,
  6608. int type)
  6609. {
  6610. WOLFSSL_ENTER("wolfSSL_CertManagerLoadCRLFile");
  6611. if (cm == NULL || file == NULL)
  6612. return BAD_FUNC_ARG;
  6613. if (cm->crl == NULL) {
  6614. if (wolfSSL_CertManagerEnableCRL(cm, 0) != WOLFSSL_SUCCESS) {
  6615. WOLFSSL_MSG("Enable CRL failed");
  6616. return WOLFSSL_FATAL_ERROR;
  6617. }
  6618. }
  6619. return ProcessFile(NULL, file, type, CRL_TYPE, NULL, 0, cm->crl,
  6620. VERIFY);
  6621. }
  6622. #endif
  6623. int wolfSSL_EnableCRL(WOLFSSL* ssl, int options)
  6624. {
  6625. WOLFSSL_ENTER("wolfSSL_EnableCRL");
  6626. if (ssl)
  6627. return wolfSSL_CertManagerEnableCRL(SSL_CM(ssl), options);
  6628. else
  6629. return BAD_FUNC_ARG;
  6630. }
  6631. int wolfSSL_DisableCRL(WOLFSSL* ssl)
  6632. {
  6633. WOLFSSL_ENTER("wolfSSL_DisableCRL");
  6634. if (ssl)
  6635. return wolfSSL_CertManagerDisableCRL(SSL_CM(ssl));
  6636. else
  6637. return BAD_FUNC_ARG;
  6638. }
  6639. #ifndef NO_FILESYSTEM
  6640. int wolfSSL_LoadCRL(WOLFSSL* ssl, const char* path, int type, int monitor)
  6641. {
  6642. WOLFSSL_ENTER("wolfSSL_LoadCRL");
  6643. if (ssl)
  6644. return wolfSSL_CertManagerLoadCRL(SSL_CM(ssl), path, type, monitor);
  6645. else
  6646. return BAD_FUNC_ARG;
  6647. }
  6648. int wolfSSL_LoadCRLFile(WOLFSSL* ssl, const char* file, int type)
  6649. {
  6650. WOLFSSL_ENTER("wolfSSL_LoadCRL");
  6651. if (ssl)
  6652. return wolfSSL_CertManagerLoadCRLFile(SSL_CM(ssl), file, type);
  6653. else
  6654. return BAD_FUNC_ARG;
  6655. }
  6656. #endif
  6657. int wolfSSL_SetCRL_Cb(WOLFSSL* ssl, CbMissingCRL cb)
  6658. {
  6659. WOLFSSL_ENTER("wolfSSL_SetCRL_Cb");
  6660. if (ssl)
  6661. return wolfSSL_CertManagerSetCRL_Cb(SSL_CM(ssl), cb);
  6662. else
  6663. return BAD_FUNC_ARG;
  6664. }
  6665. #ifdef HAVE_CRL_IO
  6666. int wolfSSL_SetCRL_IOCb(WOLFSSL* ssl, CbCrlIO cb)
  6667. {
  6668. WOLFSSL_ENTER("wolfSSL_SetCRL_Cb");
  6669. if (ssl)
  6670. return wolfSSL_CertManagerSetCRL_IOCb(SSL_CM(ssl), cb);
  6671. else
  6672. return BAD_FUNC_ARG;
  6673. }
  6674. #endif
  6675. int wolfSSL_CTX_EnableCRL(WOLFSSL_CTX* ctx, int options)
  6676. {
  6677. WOLFSSL_ENTER("wolfSSL_CTX_EnableCRL");
  6678. if (ctx)
  6679. return wolfSSL_CertManagerEnableCRL(ctx->cm, options);
  6680. else
  6681. return BAD_FUNC_ARG;
  6682. }
  6683. int wolfSSL_CTX_DisableCRL(WOLFSSL_CTX* ctx)
  6684. {
  6685. WOLFSSL_ENTER("wolfSSL_CTX_DisableCRL");
  6686. if (ctx)
  6687. return wolfSSL_CertManagerDisableCRL(ctx->cm);
  6688. else
  6689. return BAD_FUNC_ARG;
  6690. }
  6691. #ifndef NO_FILESYSTEM
  6692. int wolfSSL_CTX_LoadCRL(WOLFSSL_CTX* ctx, const char* path,
  6693. int type, int monitor)
  6694. {
  6695. WOLFSSL_ENTER("wolfSSL_CTX_LoadCRL");
  6696. if (ctx)
  6697. return wolfSSL_CertManagerLoadCRL(ctx->cm, path, type, monitor);
  6698. else
  6699. return BAD_FUNC_ARG;
  6700. }
  6701. int wolfSSL_CTX_LoadCRLFile(WOLFSSL_CTX* ctx, const char* file,
  6702. int type)
  6703. {
  6704. WOLFSSL_ENTER("wolfSSL_CTX_LoadCRL");
  6705. if (ctx)
  6706. return wolfSSL_CertManagerLoadCRLFile(ctx->cm, file, type);
  6707. else
  6708. return BAD_FUNC_ARG;
  6709. }
  6710. #endif
  6711. int wolfSSL_CTX_SetCRL_Cb(WOLFSSL_CTX* ctx, CbMissingCRL cb)
  6712. {
  6713. WOLFSSL_ENTER("wolfSSL_CTX_SetCRL_Cb");
  6714. if (ctx)
  6715. return wolfSSL_CertManagerSetCRL_Cb(ctx->cm, cb);
  6716. else
  6717. return BAD_FUNC_ARG;
  6718. }
  6719. #ifdef HAVE_CRL_IO
  6720. int wolfSSL_CTX_SetCRL_IOCb(WOLFSSL_CTX* ctx, CbCrlIO cb)
  6721. {
  6722. WOLFSSL_ENTER("wolfSSL_CTX_SetCRL_IOCb");
  6723. if (ctx)
  6724. return wolfSSL_CertManagerSetCRL_IOCb(ctx->cm, cb);
  6725. else
  6726. return BAD_FUNC_ARG;
  6727. }
  6728. #endif
  6729. #endif /* HAVE_CRL */
  6730. #ifndef NO_FILESYSTEM
  6731. #ifdef WOLFSSL_DER_LOAD
  6732. /* Add format parameter to allow DER load of CA files */
  6733. int wolfSSL_CTX_der_load_verify_locations(WOLFSSL_CTX* ctx, const char* file,
  6734. int format)
  6735. {
  6736. WOLFSSL_ENTER("wolfSSL_CTX_der_load_verify_locations");
  6737. if (ctx == NULL || file == NULL)
  6738. return WOLFSSL_FAILURE;
  6739. if (ProcessFile(ctx, file, format, CA_TYPE, NULL, 0, NULL,
  6740. GET_VERIFY_SETTING_CTX(ctx)) == WOLFSSL_SUCCESS) {
  6741. return WOLFSSL_SUCCESS;
  6742. }
  6743. return WOLFSSL_FAILURE;
  6744. }
  6745. #endif /* WOLFSSL_DER_LOAD */
  6746. WOLFSSL_ABI
  6747. int wolfSSL_CTX_use_certificate_file(WOLFSSL_CTX* ctx, const char* file,
  6748. int format)
  6749. {
  6750. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_file");
  6751. if (ProcessFile(ctx, file, format, CERT_TYPE, NULL, 0, NULL,
  6752. GET_VERIFY_SETTING_CTX(ctx)) == WOLFSSL_SUCCESS) {
  6753. return WOLFSSL_SUCCESS;
  6754. }
  6755. return WOLFSSL_FAILURE;
  6756. }
  6757. WOLFSSL_ABI
  6758. int wolfSSL_CTX_use_PrivateKey_file(WOLFSSL_CTX* ctx, const char* file,
  6759. int format)
  6760. {
  6761. WOLFSSL_ENTER("wolfSSL_CTX_use_PrivateKey_file");
  6762. if (ProcessFile(ctx, file, format, PRIVATEKEY_TYPE, NULL, 0, NULL,
  6763. GET_VERIFY_SETTING_CTX(ctx)) == WOLFSSL_SUCCESS) {
  6764. return WOLFSSL_SUCCESS;
  6765. }
  6766. return WOLFSSL_FAILURE;
  6767. }
  6768. #endif /* NO_FILESYSTEM */
  6769. /* Sets the max chain depth when verifying a certificate chain. Default depth
  6770. * is set to MAX_CHAIN_DEPTH.
  6771. *
  6772. * ctx WOLFSSL_CTX structure to set depth in
  6773. * depth max depth
  6774. */
  6775. void wolfSSL_CTX_set_verify_depth(WOLFSSL_CTX *ctx, int depth) {
  6776. WOLFSSL_ENTER("wolfSSL_CTX_set_verify_depth");
  6777. if (ctx == NULL || depth < 0 || depth > MAX_CHAIN_DEPTH) {
  6778. WOLFSSL_MSG("Bad depth argument, too large or less than 0");
  6779. return;
  6780. }
  6781. ctx->verifyDepth = (byte)depth;
  6782. }
  6783. /* get cert chaining depth using ssl struct */
  6784. long wolfSSL_get_verify_depth(WOLFSSL* ssl)
  6785. {
  6786. if(ssl == NULL) {
  6787. return BAD_FUNC_ARG;
  6788. }
  6789. #ifndef OPENSSL_EXTRA
  6790. return MAX_CHAIN_DEPTH;
  6791. #else
  6792. return ssl->options.verifyDepth;
  6793. #endif
  6794. }
  6795. /* get cert chaining depth using ctx struct */
  6796. long wolfSSL_CTX_get_verify_depth(WOLFSSL_CTX* ctx)
  6797. {
  6798. if (ctx == NULL) {
  6799. return BAD_FUNC_ARG;
  6800. }
  6801. #ifndef OPENSSL_EXTRA
  6802. return MAX_CHAIN_DEPTH;
  6803. #else
  6804. return ctx->verifyDepth;
  6805. #endif
  6806. }
  6807. #ifndef NO_FILESYSTEM
  6808. WOLFSSL_ABI
  6809. int wolfSSL_CTX_use_certificate_chain_file(WOLFSSL_CTX* ctx, const char* file)
  6810. {
  6811. /* process up to MAX_CHAIN_DEPTH plus subject cert */
  6812. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_chain_file");
  6813. if (ProcessFile(ctx, file, WOLFSSL_FILETYPE_PEM, CERT_TYPE, NULL, 1, NULL,
  6814. GET_VERIFY_SETTING_CTX(ctx)) == WOLFSSL_SUCCESS) {
  6815. return WOLFSSL_SUCCESS;
  6816. }
  6817. return WOLFSSL_FAILURE;
  6818. }
  6819. int wolfSSL_CTX_use_certificate_chain_file_format(WOLFSSL_CTX* ctx,
  6820. const char* file, int format)
  6821. {
  6822. /* process up to MAX_CHAIN_DEPTH plus subject cert */
  6823. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_chain_file_format");
  6824. if (ProcessFile(ctx, file, format, CERT_TYPE, NULL, 1, NULL,
  6825. GET_VERIFY_SETTING_CTX(ctx)) == WOLFSSL_SUCCESS) {
  6826. return WOLFSSL_SUCCESS;
  6827. }
  6828. return WOLFSSL_FAILURE;
  6829. }
  6830. #ifndef NO_DH
  6831. /* server Diffie-Hellman parameters */
  6832. static int wolfSSL_SetTmpDH_file_wrapper(WOLFSSL_CTX* ctx, WOLFSSL* ssl,
  6833. const char* fname, int format)
  6834. {
  6835. #ifdef WOLFSSL_SMALL_STACK
  6836. byte staticBuffer[1]; /* force heap usage */
  6837. #else
  6838. byte staticBuffer[FILE_BUFFER_SIZE];
  6839. #endif
  6840. byte* myBuffer = staticBuffer;
  6841. int dynamic = 0;
  6842. int ret;
  6843. long sz = 0;
  6844. XFILE file;
  6845. if (ctx == NULL || fname == NULL)
  6846. return BAD_FUNC_ARG;
  6847. file = XFOPEN(fname, "rb");
  6848. if (file == XBADFILE) return WOLFSSL_BAD_FILE;
  6849. if(XFSEEK(file, 0, XSEEK_END) != 0) {
  6850. XFCLOSE(file);
  6851. return WOLFSSL_BAD_FILE;
  6852. }
  6853. sz = XFTELL(file);
  6854. XREWIND(file);
  6855. if (sz > MAX_WOLFSSL_FILE_SIZE || sz <= 0) {
  6856. WOLFSSL_MSG("SetTmpDH file size error");
  6857. XFCLOSE(file);
  6858. return WOLFSSL_BAD_FILE;
  6859. }
  6860. if (sz > (long)sizeof(staticBuffer)) {
  6861. WOLFSSL_MSG("Getting dynamic buffer");
  6862. myBuffer = (byte*) XMALLOC(sz, ctx->heap, DYNAMIC_TYPE_FILE);
  6863. if (myBuffer == NULL) {
  6864. XFCLOSE(file);
  6865. return WOLFSSL_BAD_FILE;
  6866. }
  6867. dynamic = 1;
  6868. }
  6869. if ((size_t)XFREAD(myBuffer, 1, sz, file) != (size_t)sz)
  6870. ret = WOLFSSL_BAD_FILE;
  6871. else {
  6872. if (ssl)
  6873. ret = wolfSSL_SetTmpDH_buffer(ssl, myBuffer, sz, format);
  6874. else
  6875. ret = wolfSSL_CTX_SetTmpDH_buffer(ctx, myBuffer, sz, format);
  6876. }
  6877. XFCLOSE(file);
  6878. if (dynamic)
  6879. XFREE(myBuffer, ctx->heap, DYNAMIC_TYPE_FILE);
  6880. return ret;
  6881. }
  6882. /* server Diffie-Hellman parameters */
  6883. int wolfSSL_SetTmpDH_file(WOLFSSL* ssl, const char* fname, int format)
  6884. {
  6885. if (ssl == NULL)
  6886. return BAD_FUNC_ARG;
  6887. return wolfSSL_SetTmpDH_file_wrapper(ssl->ctx, ssl, fname, format);
  6888. }
  6889. /* server Diffie-Hellman parameters */
  6890. int wolfSSL_CTX_SetTmpDH_file(WOLFSSL_CTX* ctx, const char* fname, int format)
  6891. {
  6892. return wolfSSL_SetTmpDH_file_wrapper(ctx, NULL, fname, format);
  6893. }
  6894. #endif /* NO_DH */
  6895. #endif /* NO_FILESYSTEM */
  6896. #ifndef NO_CHECK_PRIVATE_KEY
  6897. /* Check private against public in certificate for match
  6898. *
  6899. * Returns WOLFSSL_SUCCESS on good private key
  6900. * WOLFSSL_FAILURE if mismatched */
  6901. static int check_cert_key(DerBuffer* cert, DerBuffer* key, void* heap,
  6902. int devId, int isKeyLabel, int isKeyId)
  6903. {
  6904. #ifdef WOLFSSL_SMALL_STACK
  6905. DecodedCert* der = NULL;
  6906. #else
  6907. DecodedCert der[1];
  6908. #endif
  6909. word32 size;
  6910. byte* buff;
  6911. int ret = WOLFSSL_FAILURE;
  6912. WOLFSSL_ENTER("check_cert_key");
  6913. if (cert == NULL || key == NULL) {
  6914. return WOLFSSL_FAILURE;
  6915. }
  6916. #ifdef WOLFSSL_SMALL_STACK
  6917. der = (DecodedCert*)XMALLOC(sizeof(DecodedCert), NULL, DYNAMIC_TYPE_DCERT);
  6918. if (der == NULL)
  6919. return MEMORY_E;
  6920. #endif
  6921. size = cert->length;
  6922. buff = cert->buffer;
  6923. InitDecodedCert(der, buff, size, heap);
  6924. if (ParseCertRelative(der, CERT_TYPE, NO_VERIFY, NULL) != 0) {
  6925. FreeDecodedCert(der);
  6926. #ifdef WOLFSSL_SMALL_STACK
  6927. XFREE(der, NULL, DYNAMIC_TYPE_DCERT);
  6928. #endif
  6929. return WOLFSSL_FAILURE;
  6930. }
  6931. size = key->length;
  6932. buff = key->buffer;
  6933. #ifdef WOLF_PRIVATE_KEY_ID
  6934. if (devId != INVALID_DEVID) {
  6935. int type = 0;
  6936. void *pkey = NULL;
  6937. #ifndef NO_RSA
  6938. if (der->keyOID == RSAk) {
  6939. type = DYNAMIC_TYPE_RSA;
  6940. }
  6941. #endif
  6942. #ifdef HAVE_ECC
  6943. if (der->keyOID == ECDSAk) {
  6944. type = DYNAMIC_TYPE_ECC;
  6945. }
  6946. #endif
  6947. ret = CreateDevPrivateKey(&pkey, buff, size, type,
  6948. isKeyLabel, isKeyId, heap, devId);
  6949. #ifdef WOLF_CRYPTO_CB
  6950. if (ret == 0) {
  6951. #ifndef NO_RSA
  6952. if (der->keyOID == RSAk) {
  6953. ret = wc_CryptoCb_RsaCheckPrivKey((RsaKey*)pkey,
  6954. der->publicKey, der->pubKeySize);
  6955. }
  6956. #endif
  6957. #ifdef HAVE_ECC
  6958. if (der->keyOID == ECDSAk) {
  6959. ret = wc_CryptoCb_EccCheckPrivKey((ecc_key*)pkey,
  6960. der->publicKey, der->pubKeySize);
  6961. }
  6962. #endif
  6963. }
  6964. #else
  6965. /* devId was set, don't check, for now */
  6966. /* TODO: Add callback for private key check? */
  6967. #endif
  6968. if (pkey != NULL) {
  6969. #ifndef NO_RSA
  6970. if (der->keyOID == RSAk) {
  6971. wc_FreeRsaKey((RsaKey*)pkey);
  6972. }
  6973. #endif
  6974. #ifdef HAVE_ECC
  6975. if (der->keyOID == ECDSAk) {
  6976. wc_ecc_free((ecc_key*)pkey);
  6977. }
  6978. #endif
  6979. XFREE(pkey, heap, type);
  6980. }
  6981. if (ret != CRYPTOCB_UNAVAILABLE) {
  6982. ret = (ret == 0) ? WOLFSSL_SUCCESS: WOLFSSL_FAILURE;
  6983. }
  6984. }
  6985. else {
  6986. /* fall through if unavailable */
  6987. ret = CRYPTOCB_UNAVAILABLE;
  6988. }
  6989. if (ret == CRYPTOCB_UNAVAILABLE)
  6990. #endif /* WOLF_PRIVATE_KEY_ID */
  6991. {
  6992. ret = wc_CheckPrivateKeyCert(buff, size, der);
  6993. ret = (ret == 1) ? WOLFSSL_SUCCESS: WOLFSSL_FAILURE;
  6994. }
  6995. FreeDecodedCert(der);
  6996. #ifdef WOLFSSL_SMALL_STACK
  6997. XFREE(der, NULL, DYNAMIC_TYPE_DCERT);
  6998. #endif
  6999. (void)devId;
  7000. (void)isKeyLabel;
  7001. (void)isKeyId;
  7002. return ret;
  7003. }
  7004. /* Check private against public in certificate for match
  7005. *
  7006. * ctx WOLFSSL_CTX structure to check private key in
  7007. *
  7008. * Returns WOLFSSL_SUCCESS on good private key
  7009. * WOLFSSL_FAILURE if mismatched. */
  7010. int wolfSSL_CTX_check_private_key(const WOLFSSL_CTX* ctx)
  7011. {
  7012. if (ctx == NULL) {
  7013. return WOLFSSL_FAILURE;
  7014. }
  7015. return check_cert_key(ctx->certificate, ctx->privateKey, ctx->heap,
  7016. ctx->privateKeyDevId, ctx->privateKeyLabel, ctx->privateKeyId);
  7017. }
  7018. #endif /* !NO_CHECK_PRIVATE_KEY */
  7019. #ifdef OPENSSL_ALL
  7020. /**
  7021. * Return the private key of the WOLFSSL_CTX struct
  7022. * @return WOLFSSL_EVP_PKEY* The caller doesn *NOT*` free the returned object.
  7023. */
  7024. WOLFSSL_EVP_PKEY* wolfSSL_CTX_get0_privatekey(const WOLFSSL_CTX* ctx)
  7025. {
  7026. const unsigned char *key;
  7027. int type;
  7028. WOLFSSL_ENTER("wolfSSL_CTX_get0_privatekey");
  7029. if (ctx == NULL || ctx->privateKey == NULL ||
  7030. ctx->privateKey->buffer == NULL) {
  7031. WOLFSSL_MSG("Bad parameter or key not set");
  7032. return NULL;
  7033. }
  7034. switch (ctx->privateKeyType) {
  7035. #ifndef NO_RSA
  7036. case rsa_sa_algo:
  7037. type = EVP_PKEY_RSA;
  7038. break;
  7039. #endif
  7040. #ifdef HAVE_ECC
  7041. case ecc_dsa_sa_algo:
  7042. type = EVP_PKEY_EC;
  7043. break;
  7044. #endif
  7045. default:
  7046. /* Other key types not supported either as ssl private keys
  7047. * or in the EVP layer */
  7048. WOLFSSL_MSG("Unsupported key type");
  7049. return NULL;
  7050. }
  7051. key = ctx->privateKey->buffer;
  7052. if (ctx->privateKeyPKey != NULL)
  7053. return ctx->privateKeyPKey;
  7054. else
  7055. return wolfSSL_d2i_PrivateKey(type,
  7056. (WOLFSSL_EVP_PKEY**)&ctx->privateKeyPKey, &key,
  7057. (long)ctx->privateKey->length);
  7058. }
  7059. #endif
  7060. #ifdef OPENSSL_EXTRA
  7061. WOLFSSL_PKCS8_PRIV_KEY_INFO* wolfSSL_d2i_PKCS8_PKEY(
  7062. WOLFSSL_PKCS8_PRIV_KEY_INFO** pkey, const unsigned char** keyBuf, long keyLen)
  7063. {
  7064. WOLFSSL_PKCS8_PRIV_KEY_INFO* pkcs8 = NULL;
  7065. #ifdef WOLFSSL_PEM_TO_DER
  7066. int ret;
  7067. DerBuffer* der = NULL;
  7068. if (keyBuf == NULL || *keyBuf == NULL || keyLen <= 0) {
  7069. WOLFSSL_MSG("Bad key PEM/DER args");
  7070. return NULL;
  7071. }
  7072. ret = PemToDer(*keyBuf, keyLen, PRIVATEKEY_TYPE, &der, NULL, NULL, NULL);
  7073. if (ret < 0) {
  7074. WOLFSSL_MSG("Not PEM format");
  7075. ret = AllocDer(&der, (word32)keyLen, PRIVATEKEY_TYPE, NULL);
  7076. if (ret == 0) {
  7077. XMEMCPY(der->buffer, *keyBuf, keyLen);
  7078. }
  7079. }
  7080. if (ret == 0) {
  7081. /* Verify this is PKCS8 Key */
  7082. word32 inOutIdx = 0;
  7083. word32 algId;
  7084. ret = ToTraditionalInline_ex(der->buffer, &inOutIdx, der->length, &algId);
  7085. if (ret >= 0) {
  7086. ret = 0; /* good DER */
  7087. }
  7088. }
  7089. if (ret == 0) {
  7090. pkcs8 = wolfSSL_EVP_PKEY_new();
  7091. if (pkcs8 == NULL)
  7092. ret = MEMORY_E;
  7093. }
  7094. if (ret == 0) {
  7095. pkcs8->pkey.ptr = (char*)XMALLOC(der->length, NULL,
  7096. DYNAMIC_TYPE_PUBLIC_KEY);
  7097. if (pkcs8->pkey.ptr == NULL)
  7098. ret = MEMORY_E;
  7099. }
  7100. if (ret == 0) {
  7101. XMEMCPY(pkcs8->pkey.ptr, der->buffer, der->length);
  7102. pkcs8->pkey_sz = der->length;
  7103. }
  7104. FreeDer(&der);
  7105. if (ret != 0) {
  7106. wolfSSL_EVP_PKEY_free(pkcs8);
  7107. pkcs8 = NULL;
  7108. }
  7109. if (pkey != NULL) {
  7110. *pkey = pkcs8;
  7111. }
  7112. #else
  7113. (void)bio;
  7114. (void)pkey;
  7115. #endif /* WOLFSSL_PEM_TO_DER */
  7116. return pkcs8;
  7117. }
  7118. #ifndef NO_BIO
  7119. /* put SSL type in extra for now, not very common */
  7120. /* Converts a DER format key read from "bio" to a PKCS8 structure.
  7121. *
  7122. * bio input bio to read DER from
  7123. * pkey If not NULL then this pointer will be overwritten with a new PKCS8
  7124. * structure.
  7125. *
  7126. * returns a WOLFSSL_PKCS8_PRIV_KEY_INFO pointer on success and NULL in fail
  7127. * case.
  7128. */
  7129. WOLFSSL_PKCS8_PRIV_KEY_INFO* wolfSSL_d2i_PKCS8_PKEY_bio(WOLFSSL_BIO* bio,
  7130. WOLFSSL_PKCS8_PRIV_KEY_INFO** pkey)
  7131. {
  7132. WOLFSSL_PKCS8_PRIV_KEY_INFO* pkcs8 = NULL;
  7133. #ifdef WOLFSSL_PEM_TO_DER
  7134. unsigned char* mem = NULL;
  7135. int memSz;
  7136. WOLFSSL_ENTER("wolfSSL_d2i_PKCS8_PKEY_bio");
  7137. if (bio == NULL) {
  7138. return NULL;
  7139. }
  7140. if ((memSz = wolfSSL_BIO_get_mem_data(bio, &mem)) < 0) {
  7141. return NULL;
  7142. }
  7143. pkcs8 = wolfSSL_d2i_PKCS8_PKEY(pkey, (const unsigned char**)&mem, memSz);
  7144. #else
  7145. (void)bio;
  7146. (void)pkey;
  7147. #endif /* WOLFSSL_PEM_TO_DER */
  7148. return pkcs8;
  7149. }
  7150. /* expecting DER format public key
  7151. *
  7152. * bio input bio to read DER from
  7153. * out If not NULL then this pointer will be overwritten with a new
  7154. * WOLFSSL_EVP_PKEY pointer
  7155. *
  7156. * returns a WOLFSSL_EVP_PKEY pointer on success and NULL in fail case.
  7157. */
  7158. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PUBKEY_bio(WOLFSSL_BIO* bio,
  7159. WOLFSSL_EVP_PKEY** out)
  7160. {
  7161. unsigned char* mem;
  7162. long memSz;
  7163. WOLFSSL_EVP_PKEY* pkey = NULL;
  7164. WOLFSSL_ENTER("wolfSSL_d2i_PUBKEY_bio()");
  7165. if (bio == NULL) {
  7166. return NULL;
  7167. }
  7168. (void)out;
  7169. memSz = wolfSSL_BIO_get_len(bio);
  7170. if (memSz <= 0) {
  7171. return NULL;
  7172. }
  7173. mem = (unsigned char*)XMALLOC(memSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  7174. if (mem == NULL) {
  7175. return NULL;
  7176. }
  7177. if (wolfSSL_BIO_read(bio, mem, (int)memSz) == memSz) {
  7178. pkey = wolfSSL_d2i_PUBKEY(NULL, (const unsigned char**)&mem, memSz);
  7179. if (out != NULL && pkey != NULL) {
  7180. *out = pkey;
  7181. }
  7182. }
  7183. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  7184. return pkey;
  7185. }
  7186. #endif /* !NO_BIO */
  7187. static WOLFSSL_EVP_PKEY* d2iGenericKey(WOLFSSL_EVP_PKEY** out,
  7188. const unsigned char** in, long inSz, int priv)
  7189. {
  7190. WOLFSSL_EVP_PKEY* pkey = NULL;
  7191. const unsigned char* mem;
  7192. long memSz = inSz;
  7193. WOLFSSL_ENTER("d2iGenericKey");
  7194. if (in == NULL || *in == NULL || inSz < 0) {
  7195. WOLFSSL_MSG("Bad argument");
  7196. return NULL;
  7197. }
  7198. mem = *in;
  7199. #if !defined(NO_RSA)
  7200. {
  7201. word32 keyIdx = 0;
  7202. int isRsaKey;
  7203. #ifdef WOLFSSL_SMALL_STACK
  7204. RsaKey *rsa = (RsaKey*)XMALLOC(sizeof(RsaKey), NULL, DYNAMIC_TYPE_RSA);
  7205. if (rsa == NULL)
  7206. return NULL;
  7207. #else
  7208. RsaKey rsa[1];
  7209. #endif
  7210. XMEMSET(rsa, 0, sizeof(RsaKey));
  7211. /* test if RSA key */
  7212. if (priv)
  7213. isRsaKey = wc_InitRsaKey(rsa, NULL) == 0 &&
  7214. wc_RsaPrivateKeyDecode(mem, &keyIdx, rsa, (word32)memSz) == 0;
  7215. else
  7216. isRsaKey = wc_InitRsaKey(rsa, NULL) == 0 &&
  7217. wc_RsaPublicKeyDecode(mem, &keyIdx, rsa, (word32)memSz) == 0;
  7218. wc_FreeRsaKey(rsa);
  7219. #ifdef WOLFSSL_SMALL_STACK
  7220. XFREE(rsa, NULL, DYNAMIC_TYPE_RSA);
  7221. #endif
  7222. if (isRsaKey) {
  7223. pkey = wolfSSL_EVP_PKEY_new();
  7224. if (pkey != NULL) {
  7225. pkey->pkey_sz = keyIdx;
  7226. pkey->pkey.ptr = (char*)XMALLOC(memSz, NULL,
  7227. priv ? DYNAMIC_TYPE_PRIVATE_KEY :
  7228. DYNAMIC_TYPE_PUBLIC_KEY);
  7229. if (pkey->pkey.ptr == NULL) {
  7230. wolfSSL_EVP_PKEY_free(pkey);
  7231. return NULL;
  7232. }
  7233. XMEMCPY(pkey->pkey.ptr, mem, keyIdx);
  7234. pkey->type = EVP_PKEY_RSA;
  7235. if (out != NULL) {
  7236. *out = pkey;
  7237. }
  7238. pkey->ownRsa = 1;
  7239. pkey->rsa = wolfSSL_RSA_new();
  7240. if (pkey->rsa == NULL) {
  7241. wolfSSL_EVP_PKEY_free(pkey);
  7242. return NULL;
  7243. }
  7244. if (wolfSSL_RSA_LoadDer_ex(pkey->rsa,
  7245. (const unsigned char*)pkey->pkey.ptr,
  7246. pkey->pkey_sz, priv ? WOLFSSL_RSA_LOAD_PRIVATE
  7247. : WOLFSSL_RSA_LOAD_PUBLIC) != 1) {
  7248. wolfSSL_EVP_PKEY_free(pkey);
  7249. return NULL;
  7250. }
  7251. return pkey;
  7252. }
  7253. else {
  7254. WOLFSSL_MSG("RSA wolfSSL_EVP_PKEY_new error");
  7255. }
  7256. }
  7257. }
  7258. #endif /* NO_RSA */
  7259. #ifdef HAVE_ECC
  7260. {
  7261. word32 keyIdx = 0;
  7262. int isEccKey;
  7263. #ifdef WOLFSSL_SMALL_STACK
  7264. ecc_key *ecc = (ecc_key*)XMALLOC(sizeof(ecc_key), NULL, DYNAMIC_TYPE_ECC);
  7265. if (ecc == NULL)
  7266. return NULL;
  7267. #else
  7268. ecc_key ecc[1];
  7269. #endif
  7270. XMEMSET(ecc, 0, sizeof(ecc_key));
  7271. if (priv)
  7272. isEccKey = wc_ecc_init(ecc) == 0 &&
  7273. wc_EccPrivateKeyDecode(mem, &keyIdx, ecc, (word32)memSz) == 0;
  7274. else
  7275. isEccKey = wc_ecc_init(ecc) == 0 &&
  7276. wc_EccPublicKeyDecode(mem, &keyIdx, ecc, (word32)memSz) == 0;
  7277. wc_ecc_free(ecc);
  7278. #ifdef WOLFSSL_SMALL_STACK
  7279. XFREE(ecc, NULL, DYNAMIC_TYPE_ECC);
  7280. #endif
  7281. if (isEccKey) {
  7282. pkey = wolfSSL_EVP_PKEY_new();
  7283. if (pkey != NULL) {
  7284. pkey->pkey_sz = keyIdx;
  7285. pkey->pkey.ptr = (char*)XMALLOC(keyIdx, NULL,
  7286. priv ? DYNAMIC_TYPE_PRIVATE_KEY :
  7287. DYNAMIC_TYPE_PUBLIC_KEY);
  7288. if (pkey->pkey.ptr == NULL) {
  7289. wolfSSL_EVP_PKEY_free(pkey);
  7290. return NULL;
  7291. }
  7292. XMEMCPY(pkey->pkey.ptr, mem, keyIdx);
  7293. pkey->type = EVP_PKEY_EC;
  7294. if (out != NULL) {
  7295. *out = pkey;
  7296. }
  7297. pkey->ownEcc = 1;
  7298. pkey->ecc = wolfSSL_EC_KEY_new();
  7299. if (pkey->ecc == NULL) {
  7300. wolfSSL_EVP_PKEY_free(pkey);
  7301. return NULL;
  7302. }
  7303. if (wolfSSL_EC_KEY_LoadDer_ex(pkey->ecc,
  7304. (const unsigned char*)pkey->pkey.ptr,
  7305. pkey->pkey_sz, priv ? WOLFSSL_RSA_LOAD_PRIVATE
  7306. : WOLFSSL_RSA_LOAD_PUBLIC) != 1) {
  7307. wolfSSL_EVP_PKEY_free(pkey);
  7308. return NULL;
  7309. }
  7310. return pkey;
  7311. }
  7312. else {
  7313. WOLFSSL_MSG("ECC wolfSSL_EVP_PKEY_new error");
  7314. }
  7315. }
  7316. }
  7317. #endif /* HAVE_ECC */
  7318. #if !defined(NO_DSA)
  7319. {
  7320. word32 keyIdx = 0;
  7321. int isDsaKey;
  7322. #ifdef WOLFSSL_SMALL_STACK
  7323. DsaKey *dsa = (DsaKey*)XMALLOC(sizeof(DsaKey), NULL, DYNAMIC_TYPE_DSA);
  7324. if (dsa == NULL)
  7325. return NULL;
  7326. #else
  7327. DsaKey dsa[1];
  7328. #endif
  7329. XMEMSET(dsa, 0, sizeof(DsaKey));
  7330. if (priv)
  7331. isDsaKey = wc_InitDsaKey(dsa) == 0 &&
  7332. wc_DsaPrivateKeyDecode(mem, &keyIdx, dsa, (word32)memSz) == 0;
  7333. else
  7334. isDsaKey = wc_InitDsaKey(dsa) == 0 &&
  7335. wc_DsaPublicKeyDecode(mem, &keyIdx, dsa, (word32)memSz) == 0;
  7336. wc_FreeDsaKey(dsa);
  7337. #ifdef WOLFSSL_SMALL_STACK
  7338. XFREE(dsa, NULL, DYNAMIC_TYPE_DSA);
  7339. #endif
  7340. /* test if DSA key */
  7341. if (isDsaKey) {
  7342. pkey = wolfSSL_EVP_PKEY_new();
  7343. if (pkey != NULL) {
  7344. pkey->pkey_sz = keyIdx;
  7345. pkey->pkey.ptr = (char*)XMALLOC(memSz, NULL,
  7346. priv ? DYNAMIC_TYPE_PRIVATE_KEY :
  7347. DYNAMIC_TYPE_PUBLIC_KEY);
  7348. if (pkey->pkey.ptr == NULL) {
  7349. wolfSSL_EVP_PKEY_free(pkey);
  7350. return NULL;
  7351. }
  7352. XMEMCPY(pkey->pkey.ptr, mem, keyIdx);
  7353. pkey->type = EVP_PKEY_DSA;
  7354. if (out != NULL) {
  7355. *out = pkey;
  7356. }
  7357. pkey->ownDsa = 1;
  7358. pkey->dsa = wolfSSL_DSA_new();
  7359. if (pkey->dsa == NULL) {
  7360. wolfSSL_EVP_PKEY_free(pkey);
  7361. return NULL;
  7362. }
  7363. if (wolfSSL_DSA_LoadDer_ex(pkey->dsa,
  7364. (const unsigned char*)pkey->pkey.ptr,
  7365. pkey->pkey_sz, priv ? WOLFSSL_RSA_LOAD_PRIVATE
  7366. : WOLFSSL_RSA_LOAD_PUBLIC) != 1) {
  7367. wolfSSL_EVP_PKEY_free(pkey);
  7368. return NULL;
  7369. }
  7370. return pkey;
  7371. }
  7372. else {
  7373. WOLFSSL_MSG("DSA wolfSSL_EVP_PKEY_new error");
  7374. }
  7375. }
  7376. }
  7377. #endif /* NO_DSA */
  7378. #if !defined(NO_DH) && (defined(WOLFSSL_QT) || defined(OPENSSL_ALL))
  7379. #if !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && \
  7380. (HAVE_FIPS_VERSION > 2))
  7381. {
  7382. int isDhKey;
  7383. word32 keyIdx = 0;
  7384. #ifdef WOLFSSL_SMALL_STACK
  7385. DhKey *dh = (DhKey*)XMALLOC(sizeof(DhKey), NULL, DYNAMIC_TYPE_DH);
  7386. if (dh == NULL)
  7387. return NULL;
  7388. #else
  7389. DhKey dh[1];
  7390. #endif
  7391. XMEMSET(dh, 0, sizeof(DhKey));
  7392. isDhKey = wc_InitDhKey(dh) == 0 &&
  7393. wc_DhKeyDecode(mem, &keyIdx, dh, (word32)memSz) == 0;
  7394. wc_FreeDhKey(dh);
  7395. #ifdef WOLFSSL_SMALL_STACK
  7396. XFREE(dh, NULL, DYNAMIC_TYPE_DH);
  7397. #endif
  7398. /* test if DH key */
  7399. if (isDhKey) {
  7400. pkey = wolfSSL_EVP_PKEY_new();
  7401. if (pkey != NULL) {
  7402. pkey->pkey_sz = (int)memSz;
  7403. pkey->pkey.ptr = (char*)XMALLOC(memSz, NULL,
  7404. priv ? DYNAMIC_TYPE_PRIVATE_KEY :
  7405. DYNAMIC_TYPE_PUBLIC_KEY);
  7406. if (pkey->pkey.ptr == NULL) {
  7407. wolfSSL_EVP_PKEY_free(pkey);
  7408. return NULL;
  7409. }
  7410. XMEMCPY(pkey->pkey.ptr, mem, memSz);
  7411. pkey->type = EVP_PKEY_DH;
  7412. if (out != NULL) {
  7413. *out = pkey;
  7414. }
  7415. pkey->ownDh = 1;
  7416. pkey->dh = wolfSSL_DH_new();
  7417. if (pkey->dh == NULL) {
  7418. wolfSSL_EVP_PKEY_free(pkey);
  7419. return NULL;
  7420. }
  7421. if (wolfSSL_DH_LoadDer(pkey->dh,
  7422. (const unsigned char*)pkey->pkey.ptr,
  7423. pkey->pkey_sz) != WOLFSSL_SUCCESS) {
  7424. wolfSSL_EVP_PKEY_free(pkey);
  7425. return NULL;
  7426. }
  7427. return pkey;
  7428. }
  7429. else {
  7430. WOLFSSL_MSG("DH wolfSSL_EVP_PKEY_new error");
  7431. }
  7432. }
  7433. }
  7434. #endif /* !HAVE_FIPS || HAVE_FIPS_VERSION > 2 */
  7435. #endif /* !NO_DH && (WOLFSSL_QT || OPENSSL_ALL) */
  7436. #if !defined(NO_DH) && defined(OPENSSL_EXTRA) && defined(WOLFSSL_DH_EXTRA)
  7437. #if !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && \
  7438. (HAVE_FIPS_VERSION > 2))
  7439. {
  7440. word32 keyIdx = 0;
  7441. DhKey* key = NULL;
  7442. int ret;
  7443. int elements;
  7444. #ifdef WOLFSSL_SMALL_STACK
  7445. DhKey* dh = (DhKey*)XMALLOC(sizeof(DhKey), NULL, DYNAMIC_TYPE_DH);
  7446. if (dh == NULL)
  7447. return NULL;
  7448. #else
  7449. DhKey dh[1];
  7450. #endif
  7451. XMEMSET(dh, 0, sizeof(DhKey));
  7452. /* test if DH-public key */
  7453. if (wc_InitDhKey(dh) != 0)
  7454. return NULL;
  7455. ret = wc_DhKeyDecode(mem, &keyIdx, dh, (word32)memSz);
  7456. wc_FreeDhKey(dh);
  7457. #ifdef WOLFSSL_SMALL_STACK
  7458. XFREE(dh, NULL, DYNAMIC_TYPE_DH);
  7459. #endif
  7460. if (ret == 0) {
  7461. pkey = wolfSSL_EVP_PKEY_new();
  7462. if (pkey != NULL) {
  7463. pkey->type = EVP_PKEY_DH;
  7464. pkey->pkey_sz = (int)memSz;
  7465. pkey->pkey.ptr = (char*)XMALLOC(memSz, NULL,
  7466. priv ? DYNAMIC_TYPE_PRIVATE_KEY :
  7467. DYNAMIC_TYPE_PUBLIC_KEY);
  7468. if (pkey->pkey.ptr == NULL) {
  7469. wolfSSL_EVP_PKEY_free(pkey);
  7470. return NULL;
  7471. }
  7472. XMEMCPY(pkey->pkey.ptr, mem, memSz);
  7473. if (out != NULL) {
  7474. *out = pkey;
  7475. }
  7476. pkey->ownDh = 1;
  7477. pkey->dh = wolfSSL_DH_new();
  7478. if (pkey->dh == NULL) {
  7479. wolfSSL_EVP_PKEY_free(pkey);
  7480. return NULL;
  7481. }
  7482. key = (DhKey*)pkey->dh->internal;
  7483. keyIdx = 0;
  7484. if (wc_DhKeyDecode(mem, &keyIdx, key, (word32)memSz) == 0)
  7485. {
  7486. elements = ELEMENT_P | ELEMENT_G | ELEMENT_Q | ELEMENT_PUB;
  7487. if (priv)
  7488. elements |= ELEMENT_PRV;
  7489. if(SetDhExternal_ex(pkey->dh, elements)
  7490. == WOLFSSL_SUCCESS ) {
  7491. return pkey;
  7492. }
  7493. }
  7494. else {
  7495. wolfSSL_EVP_PKEY_free(pkey);
  7496. return NULL;
  7497. }
  7498. }
  7499. }
  7500. }
  7501. #endif /* !HAVE_FIPS || HAVE_FIPS_VERSION > 2 */
  7502. #endif /* !NO_DH && OPENSSL_EXTRA && WOLFSSL_DH_EXTRA */
  7503. #ifdef HAVE_PQC
  7504. {
  7505. int isFalcon = 0;
  7506. #ifdef WOLFSSL_SMALL_STACK
  7507. falcon_key *falcon = (falcon_key *)MALLOC(sizeof(falcon_key), NULL,
  7508. DYNAMIC_TYPE_FALCON);
  7509. if (falcon == NULL) {
  7510. return NULL;
  7511. }
  7512. #else
  7513. falcon_key falcon[1];
  7514. #endif
  7515. if (wc_falcon_init(falcon) == 0) {
  7516. /* test if Falcon key */
  7517. if (priv) {
  7518. /* Try level 1 */
  7519. isFalcon = wc_falcon_set_level(falcon, 1) == 0 &&
  7520. wc_falcon_import_private_only(mem, (word32)memSz,
  7521. falcon) == 0;
  7522. if (!isFalcon) {
  7523. /* Try level 5 */
  7524. isFalcon = wc_falcon_set_level(falcon, 5) == 0 &&
  7525. wc_falcon_import_private_only(mem, (word32)memSz,
  7526. falcon) == 0;
  7527. }
  7528. } else {
  7529. /* Try level 1 */
  7530. isFalcon = wc_falcon_set_level(falcon, 1) == 0 &&
  7531. wc_falcon_import_public(mem, (word32)memSz, falcon)
  7532. == 0;
  7533. if (!isFalcon) {
  7534. /* Try level 5 */
  7535. isFalcon = wc_falcon_set_level(falcon, 5) == 0 &&
  7536. wc_falcon_import_public(mem, (word32)memSz,
  7537. falcon) == 0;
  7538. }
  7539. }
  7540. wc_falcon_free(falcon);
  7541. }
  7542. #ifdef WOLFSSL_SMALL_STACK
  7543. XFREE(falcon, NULL, DYNAMIC_TYPE_FALCON);
  7544. #endif
  7545. if (isFalcon) {
  7546. /* Create a fake Falcon EVP_PKEY. In the future, we might integrate
  7547. * Falcon into the compatibility layer. */
  7548. pkey = wolfSSL_EVP_PKEY_new();
  7549. if (pkey == NULL) {
  7550. WOLFSSL_MSG("Falcon wolfSSL_EVP_PKEY_new error");
  7551. return NULL;
  7552. }
  7553. pkey->type = EVP_PKEY_FALCON;
  7554. pkey->pkey.ptr = NULL;
  7555. pkey->pkey_sz = 0;
  7556. return pkey;
  7557. }
  7558. }
  7559. #endif /* HAVE_PQC */
  7560. if (pkey == NULL) {
  7561. WOLFSSL_MSG("wolfSSL_d2i_PUBKEY couldn't determine key type");
  7562. }
  7563. return pkey;
  7564. }
  7565. /* Converts a DER encoded public key to a WOLFSSL_EVP_PKEY structure.
  7566. *
  7567. * out pointer to new WOLFSSL_EVP_PKEY structure. Can be NULL
  7568. * in DER buffer to convert
  7569. * inSz size of in buffer
  7570. *
  7571. * returns a pointer to a new WOLFSSL_EVP_PKEY structure on success and NULL
  7572. * on fail
  7573. */
  7574. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PUBKEY(WOLFSSL_EVP_PKEY** out,
  7575. const unsigned char** in, long inSz)
  7576. {
  7577. WOLFSSL_ENTER("wolfSSL_d2i_PUBKEY");
  7578. return d2iGenericKey(out, in, inSz, 0);
  7579. }
  7580. /* helper function to get raw pointer to DER buffer from WOLFSSL_EVP_PKEY */
  7581. static int wolfSSL_EVP_PKEY_get_der(const WOLFSSL_EVP_PKEY* key, unsigned char** der)
  7582. {
  7583. unsigned char* pt;
  7584. int sz;
  7585. word16 pkcs8HeaderSz;
  7586. if (!key || !key->pkey_sz)
  7587. return WOLFSSL_FATAL_ERROR;
  7588. /* return the key without PKCS8 for compatibility */
  7589. /* if pkcs8HeaderSz is invalid, use 0 and return all of pkey */
  7590. pkcs8HeaderSz = 0;
  7591. if (key->pkey_sz > key->pkcs8HeaderSz)
  7592. pkcs8HeaderSz = key->pkcs8HeaderSz;
  7593. sz = key->pkey_sz - pkcs8HeaderSz;
  7594. if (der) {
  7595. pt = (unsigned char*)key->pkey.ptr;
  7596. if (*der) {
  7597. /* since this function signature has no size value passed in it is
  7598. * assumed that the user has allocated a large enough buffer */
  7599. XMEMCPY(*der, pt + pkcs8HeaderSz, sz);
  7600. *der += sz;
  7601. }
  7602. else {
  7603. *der = (unsigned char*)XMALLOC(sz, NULL, DYNAMIC_TYPE_OPENSSL);
  7604. if (*der == NULL) {
  7605. return WOLFSSL_FATAL_ERROR;
  7606. }
  7607. XMEMCPY(*der, pt + pkcs8HeaderSz, sz);
  7608. }
  7609. }
  7610. return sz;
  7611. }
  7612. int wolfSSL_i2d_PUBKEY(const WOLFSSL_EVP_PKEY *key, unsigned char **der)
  7613. {
  7614. return wolfSSL_EVP_PKEY_get_der(key, der);
  7615. }
  7616. static WOLFSSL_EVP_PKEY* _d2i_PublicKey(int type, WOLFSSL_EVP_PKEY** out,
  7617. const unsigned char **in, long inSz, int priv)
  7618. {
  7619. int ret = 0;
  7620. word32 idx = 0, algId;
  7621. word16 pkcs8HeaderSz = 0;
  7622. WOLFSSL_EVP_PKEY* local;
  7623. int opt;
  7624. (void)opt;
  7625. if (in == NULL || inSz < 0) {
  7626. WOLFSSL_MSG("Bad argument");
  7627. return NULL;
  7628. }
  7629. if (priv == 1) {
  7630. /* Check if input buffer has PKCS8 header. In the case that it does not
  7631. * have a PKCS8 header then do not error out. */
  7632. if ((ret = ToTraditionalInline_ex((const byte*)(*in), &idx,
  7633. (word32)inSz, &algId)) > 0) {
  7634. WOLFSSL_MSG("Found PKCS8 header");
  7635. pkcs8HeaderSz = (word16)idx;
  7636. if ((type == EVP_PKEY_RSA && algId != RSAk) ||
  7637. (type == EVP_PKEY_EC && algId != ECDSAk) ||
  7638. (type == EVP_PKEY_DSA && algId != DSAk) ||
  7639. (type == EVP_PKEY_DH && algId != DHk)) {
  7640. WOLFSSL_MSG("PKCS8 does not match EVP key type");
  7641. return NULL;
  7642. }
  7643. (void)idx; /* not used */
  7644. }
  7645. else {
  7646. if (ret != ASN_PARSE_E) {
  7647. WOLFSSL_MSG("Unexpected error with trying to remove PKCS8 "
  7648. "header");
  7649. return NULL;
  7650. }
  7651. }
  7652. }
  7653. if (out != NULL && *out != NULL) {
  7654. wolfSSL_EVP_PKEY_free(*out);
  7655. *out = NULL;
  7656. }
  7657. local = wolfSSL_EVP_PKEY_new();
  7658. if (local == NULL) {
  7659. return NULL;
  7660. }
  7661. local->type = type;
  7662. local->pkey_sz = (int)inSz;
  7663. local->pkcs8HeaderSz = pkcs8HeaderSz;
  7664. local->pkey.ptr = (char*)XMALLOC(inSz, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  7665. if (local->pkey.ptr == NULL) {
  7666. wolfSSL_EVP_PKEY_free(local);
  7667. local = NULL;
  7668. return NULL;
  7669. }
  7670. else {
  7671. XMEMCPY(local->pkey.ptr, *in, inSz);
  7672. }
  7673. switch (type) {
  7674. #ifndef NO_RSA
  7675. case EVP_PKEY_RSA:
  7676. local->ownRsa = 1;
  7677. local->rsa = wolfSSL_RSA_new();
  7678. if (local->rsa == NULL) {
  7679. wolfSSL_EVP_PKEY_free(local);
  7680. return NULL;
  7681. }
  7682. opt = priv ? WOLFSSL_RSA_LOAD_PRIVATE : WOLFSSL_RSA_LOAD_PUBLIC;
  7683. if (wolfSSL_RSA_LoadDer_ex(local->rsa,
  7684. (const unsigned char*)local->pkey.ptr, local->pkey_sz,
  7685. opt) != WOLFSSL_SUCCESS) {
  7686. wolfSSL_EVP_PKEY_free(local);
  7687. return NULL;
  7688. }
  7689. break;
  7690. #endif /* NO_RSA */
  7691. #ifdef HAVE_ECC
  7692. case EVP_PKEY_EC:
  7693. local->ownEcc = 1;
  7694. local->ecc = wolfSSL_EC_KEY_new();
  7695. if (local->ecc == NULL) {
  7696. wolfSSL_EVP_PKEY_free(local);
  7697. return NULL;
  7698. }
  7699. opt = priv ? WOLFSSL_EC_KEY_LOAD_PRIVATE :
  7700. WOLFSSL_EC_KEY_LOAD_PUBLIC;
  7701. if (wolfSSL_EC_KEY_LoadDer_ex(local->ecc,
  7702. (const unsigned char*)local->pkey.ptr, local->pkey_sz,
  7703. opt)
  7704. != WOLFSSL_SUCCESS) {
  7705. wolfSSL_EVP_PKEY_free(local);
  7706. return NULL;
  7707. }
  7708. break;
  7709. #endif /* HAVE_ECC */
  7710. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL) || defined(WOLFSSL_OPENSSH)
  7711. #ifndef NO_DSA
  7712. case EVP_PKEY_DSA:
  7713. local->ownDsa = 1;
  7714. local->dsa = wolfSSL_DSA_new();
  7715. if (local->dsa == NULL) {
  7716. wolfSSL_EVP_PKEY_free(local);
  7717. return NULL;
  7718. }
  7719. opt = priv ? WOLFSSL_DSA_LOAD_PRIVATE : WOLFSSL_DSA_LOAD_PUBLIC;
  7720. if (wolfSSL_DSA_LoadDer_ex(local->dsa,
  7721. (const unsigned char*)local->pkey.ptr, local->pkey_sz,
  7722. opt)
  7723. != WOLFSSL_SUCCESS) {
  7724. wolfSSL_EVP_PKEY_free(local);
  7725. return NULL;
  7726. }
  7727. break;
  7728. #endif /* NO_DSA */
  7729. #ifndef NO_DH
  7730. #if !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION>2))
  7731. case EVP_PKEY_DH:
  7732. local->ownDh = 1;
  7733. local->dh = wolfSSL_DH_new();
  7734. if (local->dh == NULL) {
  7735. wolfSSL_EVP_PKEY_free(local);
  7736. return NULL;
  7737. }
  7738. if (wolfSSL_DH_LoadDer(local->dh,
  7739. (const unsigned char*)local->pkey.ptr, local->pkey_sz)
  7740. != WOLFSSL_SUCCESS) {
  7741. wolfSSL_EVP_PKEY_free(local);
  7742. return NULL;
  7743. }
  7744. break;
  7745. #endif /* !HAVE_FIPS || HAVE_FIPS_VERSION > 2 */
  7746. #endif /* HAVE_DH */
  7747. #endif /* WOLFSSL_QT || OPENSSL_ALL || WOLFSSL_OPENSSH */
  7748. default:
  7749. WOLFSSL_MSG("Unsupported key type");
  7750. wolfSSL_EVP_PKEY_free(local);
  7751. return NULL;
  7752. }
  7753. /* advance pointer with success */
  7754. if (local != NULL) {
  7755. if (local->pkey_sz <= (int)inSz) {
  7756. *in += local->pkey_sz;
  7757. }
  7758. if (out != NULL) {
  7759. *out = local;
  7760. }
  7761. }
  7762. return local;
  7763. }
  7764. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PublicKey(int type, WOLFSSL_EVP_PKEY** out,
  7765. const unsigned char **in, long inSz)
  7766. {
  7767. WOLFSSL_ENTER("wolfSSL_d2i_PublicKey");
  7768. return _d2i_PublicKey(type, out, in, inSz, 0);
  7769. }
  7770. /* Reads in a DER format key. If PKCS8 headers are found they are stripped off.
  7771. *
  7772. * type type of key
  7773. * out newly created WOLFSSL_EVP_PKEY structure
  7774. * in pointer to input key DER
  7775. * inSz size of in buffer
  7776. *
  7777. * On success a non null pointer is returned and the pointer in is advanced the
  7778. * same number of bytes read.
  7779. */
  7780. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PrivateKey(int type, WOLFSSL_EVP_PKEY** out,
  7781. const unsigned char **in, long inSz)
  7782. {
  7783. WOLFSSL_ENTER("wolfSSL_d2i_PrivateKey");
  7784. return _d2i_PublicKey(type, out, in, inSz, 1);
  7785. }
  7786. #ifdef WOLF_PRIVATE_KEY_ID
  7787. /* Create an EVP structure for use with crypto callbacks */
  7788. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PrivateKey_id(int type, WOLFSSL_EVP_PKEY** out,
  7789. void* heap, int devId)
  7790. {
  7791. WOLFSSL_EVP_PKEY* local;
  7792. if (out != NULL && *out != NULL) {
  7793. wolfSSL_EVP_PKEY_free(*out);
  7794. *out = NULL;
  7795. }
  7796. local = wolfSSL_EVP_PKEY_new_ex(heap);
  7797. if (local == NULL) {
  7798. return NULL;
  7799. }
  7800. local->type = type;
  7801. local->pkey_sz = 0;
  7802. local->pkcs8HeaderSz = 0;
  7803. switch (type) {
  7804. #ifndef NO_RSA
  7805. case EVP_PKEY_RSA:
  7806. {
  7807. RsaKey* key;
  7808. local->ownRsa = 1;
  7809. local->rsa = wolfSSL_RSA_new_ex(heap, devId);
  7810. if (local->rsa == NULL) {
  7811. wolfSSL_EVP_PKEY_free(local);
  7812. return NULL;
  7813. }
  7814. key = (RsaKey*)local->rsa->internal;
  7815. #ifdef WOLF_CRYPTO_CB
  7816. key->devId = devId;
  7817. #endif
  7818. (void)key;
  7819. local->rsa->inSet = 1;
  7820. break;
  7821. }
  7822. #endif /* !NO_RSA */
  7823. #ifdef HAVE_ECC
  7824. case EVP_PKEY_EC:
  7825. {
  7826. ecc_key* key;
  7827. local->ownEcc = 1;
  7828. local->ecc = wolfSSL_EC_KEY_new_ex(heap, devId);
  7829. if (local->ecc == NULL) {
  7830. wolfSSL_EVP_PKEY_free(local);
  7831. return NULL;
  7832. }
  7833. key = (ecc_key*)local->ecc->internal;
  7834. #ifdef WOLF_CRYPTO_CB
  7835. key->devId = devId;
  7836. #endif
  7837. key->type = ECC_PRIVATEKEY;
  7838. /* key is required to have a key size / curve set, although
  7839. * actual one used is determined by devId callback function */
  7840. wc_ecc_set_curve(key, ECDHE_SIZE, ECC_CURVE_DEF);
  7841. local->ecc->inSet = 1;
  7842. break;
  7843. }
  7844. #endif /* HAVE_ECC */
  7845. default:
  7846. WOLFSSL_MSG("Unsupported private key id type");
  7847. wolfSSL_EVP_PKEY_free(local);
  7848. return NULL;
  7849. }
  7850. if (local != NULL && out != NULL) {
  7851. *out = local;
  7852. }
  7853. return local;
  7854. }
  7855. #endif /* WOLF_PRIVATE_KEY_ID */
  7856. #ifndef NO_CERTS // NOLINT(readability-redundant-preprocessor)
  7857. #ifndef NO_CHECK_PRIVATE_KEY
  7858. /* Check private against public in certificate for match
  7859. *
  7860. * ssl WOLFSSL structure to check private key in
  7861. *
  7862. * Returns WOLFSSL_SUCCESS on good private key
  7863. * WOLFSSL_FAILURE if mismatched. */
  7864. int wolfSSL_check_private_key(const WOLFSSL* ssl)
  7865. {
  7866. if (ssl == NULL) {
  7867. return WOLFSSL_FAILURE;
  7868. }
  7869. return check_cert_key(ssl->buffers.certificate, ssl->buffers.key, ssl->heap,
  7870. ssl->buffers.keyDevId, ssl->buffers.keyLabel, ssl->buffers.keyId);
  7871. }
  7872. #endif /* !NO_CHECK_PRIVATE_KEY */
  7873. #if defined(OPENSSL_ALL)
  7874. int wolfSSL_ASN1_BIT_STRING_set_bit(WOLFSSL_ASN1_BIT_STRING* str, int pos,
  7875. int val)
  7876. {
  7877. int bytes_cnt, bit;
  7878. byte* temp;
  7879. if (!str || (val != 0 && val != 1) || pos < 0) {
  7880. return WOLFSSL_FAILURE;
  7881. }
  7882. bytes_cnt = pos/8;
  7883. bit = 1<<(7-(pos%8));
  7884. if (bytes_cnt+1 > str->length) {
  7885. if (!(temp = (byte*)XREALLOC(str->data, bytes_cnt+1, NULL,
  7886. DYNAMIC_TYPE_OPENSSL))) {
  7887. return WOLFSSL_FAILURE;
  7888. }
  7889. XMEMSET(temp+str->length, 0, bytes_cnt+1 - str->length);
  7890. str->data = temp;
  7891. str->length = bytes_cnt+1;
  7892. }
  7893. str->data[bytes_cnt] &= ~bit;
  7894. str->data[bytes_cnt] |= val ? bit : 0;
  7895. return WOLFSSL_SUCCESS;
  7896. }
  7897. #endif /* OPENSSL_ALL */
  7898. #endif /* !NO_CERTS */
  7899. #endif /* OPENSSL_EXTRA */
  7900. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  7901. WOLFSSL_ASN1_BIT_STRING* wolfSSL_ASN1_BIT_STRING_new(void)
  7902. {
  7903. WOLFSSL_ASN1_BIT_STRING* str;
  7904. str = (WOLFSSL_ASN1_BIT_STRING*)XMALLOC(sizeof(WOLFSSL_ASN1_BIT_STRING),
  7905. NULL, DYNAMIC_TYPE_OPENSSL);
  7906. if (str) {
  7907. XMEMSET(str, 0, sizeof(WOLFSSL_ASN1_BIT_STRING));
  7908. }
  7909. return str;
  7910. }
  7911. void wolfSSL_ASN1_BIT_STRING_free(WOLFSSL_ASN1_BIT_STRING* str)
  7912. {
  7913. if (str) {
  7914. if (str->data) {
  7915. XFREE(str->data, NULL, DYNAMIC_TYPE_OPENSSL);
  7916. str->data = NULL;
  7917. }
  7918. XFREE(str, NULL, DYNAMIC_TYPE_OPENSSL);
  7919. }
  7920. }
  7921. int wolfSSL_ASN1_BIT_STRING_get_bit(const WOLFSSL_ASN1_BIT_STRING* str, int i)
  7922. {
  7923. if (!str || !str->data || str->length <= (i/8) || i < 0) {
  7924. return WOLFSSL_FAILURE;
  7925. }
  7926. return (str->data[i/8] & (1<<(7-(i%8)))) ? 1 : 0;
  7927. }
  7928. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  7929. #ifdef OPENSSL_EXTRA
  7930. int wolfSSL_use_PrivateKey(WOLFSSL* ssl, WOLFSSL_EVP_PKEY* pkey)
  7931. {
  7932. WOLFSSL_ENTER("wolfSSL_use_PrivateKey");
  7933. if (ssl == NULL || pkey == NULL ) {
  7934. return WOLFSSL_FAILURE;
  7935. }
  7936. return wolfSSL_use_PrivateKey_buffer(ssl, (unsigned char*)pkey->pkey.ptr,
  7937. pkey->pkey_sz, WOLFSSL_FILETYPE_ASN1);
  7938. }
  7939. int wolfSSL_use_PrivateKey_ASN1(int pri, WOLFSSL* ssl, const unsigned char* der,
  7940. long derSz)
  7941. {
  7942. WOLFSSL_ENTER("wolfSSL_use_PrivateKey_ASN1");
  7943. if (ssl == NULL || der == NULL ) {
  7944. return WOLFSSL_FAILURE;
  7945. }
  7946. (void)pri; /* type of private key */
  7947. return wolfSSL_use_PrivateKey_buffer(ssl, der, derSz, WOLFSSL_FILETYPE_ASN1);
  7948. }
  7949. /******************************************************************************
  7950. * wolfSSL_CTX_use_PrivateKey_ASN1 - loads a private key buffer into the SSL ctx
  7951. *
  7952. * RETURNS:
  7953. * returns WOLFSSL_SUCCESS on success, otherwise returns WOLFSSL_FAILURE
  7954. */
  7955. int wolfSSL_CTX_use_PrivateKey_ASN1(int pri, WOLFSSL_CTX* ctx,
  7956. unsigned char* der, long derSz)
  7957. {
  7958. WOLFSSL_ENTER("wolfSSL_CTX_use_PrivateKey_ASN1");
  7959. if (ctx == NULL || der == NULL ) {
  7960. return WOLFSSL_FAILURE;
  7961. }
  7962. (void)pri; /* type of private key */
  7963. return wolfSSL_CTX_use_PrivateKey_buffer(ctx, der, derSz, WOLFSSL_FILETYPE_ASN1);
  7964. }
  7965. #ifndef NO_RSA
  7966. int wolfSSL_use_RSAPrivateKey_ASN1(WOLFSSL* ssl, unsigned char* der, long derSz)
  7967. {
  7968. WOLFSSL_ENTER("wolfSSL_use_RSAPrivateKey_ASN1");
  7969. if (ssl == NULL || der == NULL ) {
  7970. return WOLFSSL_FAILURE;
  7971. }
  7972. return wolfSSL_use_PrivateKey_buffer(ssl, der, derSz, WOLFSSL_FILETYPE_ASN1);
  7973. }
  7974. #endif
  7975. int wolfSSL_use_certificate(WOLFSSL* ssl, WOLFSSL_X509* x509)
  7976. {
  7977. long idx;
  7978. WOLFSSL_ENTER("wolfSSL_use_certificate");
  7979. if (x509 != NULL && ssl != NULL && x509->derCert != NULL) {
  7980. if (ProcessBuffer(NULL, x509->derCert->buffer, x509->derCert->length,
  7981. WOLFSSL_FILETYPE_ASN1, CERT_TYPE, ssl, &idx, 0,
  7982. GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  7983. return WOLFSSL_SUCCESS;
  7984. }
  7985. }
  7986. (void)idx;
  7987. return WOLFSSL_FAILURE;
  7988. }
  7989. #endif /* OPENSSL_EXTRA */
  7990. int wolfSSL_use_certificate_ASN1(WOLFSSL* ssl, const unsigned char* der,
  7991. int derSz)
  7992. {
  7993. long idx;
  7994. WOLFSSL_ENTER("wolfSSL_use_certificate_ASN1");
  7995. if (der != NULL && ssl != NULL) {
  7996. if (ProcessBuffer(NULL, der, derSz, WOLFSSL_FILETYPE_ASN1, CERT_TYPE,
  7997. ssl, &idx, 0, GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  7998. return WOLFSSL_SUCCESS;
  7999. }
  8000. }
  8001. (void)idx;
  8002. return WOLFSSL_FAILURE;
  8003. }
  8004. #ifndef NO_FILESYSTEM
  8005. WOLFSSL_ABI
  8006. int wolfSSL_use_certificate_file(WOLFSSL* ssl, const char* file, int format)
  8007. {
  8008. WOLFSSL_ENTER("wolfSSL_use_certificate_file");
  8009. if (ssl == NULL) {
  8010. return BAD_FUNC_ARG;
  8011. }
  8012. if (ProcessFile(ssl->ctx, file, format, CERT_TYPE,
  8013. ssl, 0, NULL, GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  8014. return WOLFSSL_SUCCESS;
  8015. }
  8016. return WOLFSSL_FAILURE;
  8017. }
  8018. WOLFSSL_ABI
  8019. int wolfSSL_use_PrivateKey_file(WOLFSSL* ssl, const char* file, int format)
  8020. {
  8021. WOLFSSL_ENTER("wolfSSL_use_PrivateKey_file");
  8022. if (ssl == NULL) {
  8023. return BAD_FUNC_ARG;
  8024. }
  8025. if (ProcessFile(ssl->ctx, file, format, PRIVATEKEY_TYPE,
  8026. ssl, 0, NULL, GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  8027. return WOLFSSL_SUCCESS;
  8028. }
  8029. return WOLFSSL_FAILURE;
  8030. }
  8031. WOLFSSL_ABI
  8032. int wolfSSL_use_certificate_chain_file(WOLFSSL* ssl, const char* file)
  8033. {
  8034. /* process up to MAX_CHAIN_DEPTH plus subject cert */
  8035. WOLFSSL_ENTER("wolfSSL_use_certificate_chain_file");
  8036. if (ssl == NULL) {
  8037. return BAD_FUNC_ARG;
  8038. }
  8039. if (ProcessFile(ssl->ctx, file, WOLFSSL_FILETYPE_PEM, CERT_TYPE,
  8040. ssl, 1, NULL, GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  8041. return WOLFSSL_SUCCESS;
  8042. }
  8043. return WOLFSSL_FAILURE;
  8044. }
  8045. int wolfSSL_use_certificate_chain_file_format(WOLFSSL* ssl, const char* file,
  8046. int format)
  8047. {
  8048. /* process up to MAX_CHAIN_DEPTH plus subject cert */
  8049. WOLFSSL_ENTER("wolfSSL_use_certificate_chain_file_format");
  8050. if (ssl == NULL) {
  8051. return BAD_FUNC_ARG;
  8052. }
  8053. if (ProcessFile(ssl->ctx, file, format, CERT_TYPE, ssl, 1,
  8054. NULL, GET_VERIFY_SETTING_SSL(ssl)) == WOLFSSL_SUCCESS) {
  8055. return WOLFSSL_SUCCESS;
  8056. }
  8057. return WOLFSSL_FAILURE;
  8058. }
  8059. #endif /* !NO_FILESYSTEM */
  8060. #ifdef HAVE_ECC
  8061. /* Set Temp CTX EC-DHE size in octets, can be 14 - 66 (112 - 521 bit) */
  8062. int wolfSSL_CTX_SetTmpEC_DHE_Sz(WOLFSSL_CTX* ctx, word16 sz)
  8063. {
  8064. if (ctx == NULL)
  8065. return BAD_FUNC_ARG;
  8066. /* if 0 then get from loaded private key */
  8067. if (sz == 0) {
  8068. /* applies only to ECDSA */
  8069. if (ctx->privateKeyType != ecc_dsa_sa_algo)
  8070. return WOLFSSL_SUCCESS;
  8071. if (ctx->privateKeySz == 0) {
  8072. WOLFSSL_MSG("Must set private key/cert first");
  8073. return BAD_FUNC_ARG;
  8074. }
  8075. sz = (word16)ctx->privateKeySz;
  8076. }
  8077. /* check size */
  8078. if (sz < ECC_MINSIZE || sz > ECC_MAXSIZE)
  8079. return BAD_FUNC_ARG;
  8080. ctx->eccTempKeySz = sz;
  8081. return WOLFSSL_SUCCESS;
  8082. }
  8083. /* Set Temp SSL EC-DHE size in octets, can be 14 - 66 (112 - 521 bit) */
  8084. int wolfSSL_SetTmpEC_DHE_Sz(WOLFSSL* ssl, word16 sz)
  8085. {
  8086. if (ssl == NULL)
  8087. return BAD_FUNC_ARG;
  8088. /* check size */
  8089. if (sz < ECC_MINSIZE || sz > ECC_MAXSIZE)
  8090. return BAD_FUNC_ARG;
  8091. ssl->eccTempKeySz = sz;
  8092. return WOLFSSL_SUCCESS;
  8093. }
  8094. #endif /* HAVE_ECC */
  8095. #ifdef OPENSSL_EXTRA
  8096. #ifndef NO_FILESYSTEM
  8097. int wolfSSL_CTX_use_RSAPrivateKey_file(WOLFSSL_CTX* ctx,const char* file,
  8098. int format)
  8099. {
  8100. WOLFSSL_ENTER("SSL_CTX_use_RSAPrivateKey_file");
  8101. return wolfSSL_CTX_use_PrivateKey_file(ctx, file, format);
  8102. }
  8103. int wolfSSL_use_RSAPrivateKey_file(WOLFSSL* ssl, const char* file, int format)
  8104. {
  8105. WOLFSSL_ENTER("wolfSSL_use_RSAPrivateKey_file");
  8106. return wolfSSL_use_PrivateKey_file(ssl, file, format);
  8107. }
  8108. #endif /* NO_FILESYSTEM */
  8109. /* Copies the master secret over to out buffer. If outSz is 0 returns the size
  8110. * of master secret.
  8111. *
  8112. * ses : a session from completed TLS/SSL handshake
  8113. * out : buffer to hold copy of master secret
  8114. * outSz : size of out buffer
  8115. * returns : number of bytes copied into out buffer on success
  8116. * less then or equal to 0 is considered a failure case
  8117. */
  8118. int wolfSSL_SESSION_get_master_key(const WOLFSSL_SESSION* ses,
  8119. unsigned char* out, int outSz)
  8120. {
  8121. int size;
  8122. ses = ClientSessionToSession(ses);
  8123. if (outSz == 0) {
  8124. return SECRET_LEN;
  8125. }
  8126. if (ses == NULL || out == NULL || outSz < 0) {
  8127. return 0;
  8128. }
  8129. if (outSz > SECRET_LEN) {
  8130. size = SECRET_LEN;
  8131. }
  8132. else {
  8133. size = outSz;
  8134. }
  8135. XMEMCPY(out, ses->masterSecret, size);
  8136. return size;
  8137. }
  8138. int wolfSSL_SESSION_get_master_key_length(const WOLFSSL_SESSION* ses)
  8139. {
  8140. (void)ses;
  8141. return SECRET_LEN;
  8142. }
  8143. #endif /* OPENSSL_EXTRA */
  8144. typedef struct {
  8145. byte verifyPeer:1;
  8146. byte verifyNone:1;
  8147. byte failNoCert:1;
  8148. byte failNoCertxPSK:1;
  8149. byte verifyPostHandshake:1;
  8150. } SetVerifyOptions;
  8151. static SetVerifyOptions ModeToVerifyOptions(int mode)
  8152. {
  8153. SetVerifyOptions opts;
  8154. XMEMSET(&opts, 0, sizeof(SetVerifyOptions));
  8155. if (mode != WOLFSSL_VERIFY_DEFAULT) {
  8156. opts.verifyNone = (mode == WOLFSSL_VERIFY_NONE);
  8157. if (!opts.verifyNone) {
  8158. opts.verifyPeer =
  8159. (mode & WOLFSSL_VERIFY_PEER) != 0;
  8160. opts.failNoCertxPSK =
  8161. (mode & WOLFSSL_VERIFY_FAIL_EXCEPT_PSK) != 0;
  8162. opts.failNoCert =
  8163. (mode & WOLFSSL_VERIFY_FAIL_IF_NO_PEER_CERT) != 0;
  8164. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  8165. opts.verifyPostHandshake =
  8166. (mode & WOLFSSL_VERIFY_POST_HANDSHAKE) != 0;
  8167. #endif
  8168. }
  8169. }
  8170. return opts;
  8171. }
  8172. WOLFSSL_ABI
  8173. void wolfSSL_CTX_set_verify(WOLFSSL_CTX* ctx, int mode, VerifyCallback vc)
  8174. {
  8175. SetVerifyOptions opts;
  8176. WOLFSSL_ENTER("wolfSSL_CTX_set_verify");
  8177. if (ctx == NULL)
  8178. return;
  8179. opts = ModeToVerifyOptions(mode);
  8180. ctx->verifyNone = opts.verifyNone;
  8181. ctx->verifyPeer = opts.verifyPeer;
  8182. ctx->failNoCert = opts.failNoCert;
  8183. ctx->failNoCertxPSK = opts.failNoCertxPSK;
  8184. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  8185. ctx->verifyPostHandshake = opts.verifyPostHandshake;
  8186. #endif
  8187. ctx->verifyCallback = vc;
  8188. }
  8189. #ifdef OPENSSL_ALL
  8190. void wolfSSL_CTX_set_cert_verify_callback(WOLFSSL_CTX* ctx,
  8191. CertVerifyCallback cb, void* arg)
  8192. {
  8193. WOLFSSL_ENTER("SSL_CTX_set_cert_verify_callback");
  8194. if (ctx == NULL)
  8195. return;
  8196. ctx->verifyCertCb = cb;
  8197. ctx->verifyCertCbArg = arg;
  8198. }
  8199. #endif
  8200. void wolfSSL_set_verify(WOLFSSL* ssl, int mode, VerifyCallback vc)
  8201. {
  8202. SetVerifyOptions opts;
  8203. WOLFSSL_ENTER("wolfSSL_set_verify");
  8204. if (ssl == NULL)
  8205. return;
  8206. opts = ModeToVerifyOptions(mode);
  8207. ssl->options.verifyNone = opts.verifyNone;
  8208. ssl->options.verifyPeer = opts.verifyPeer;
  8209. ssl->options.failNoCert = opts.failNoCert;
  8210. ssl->options.failNoCertxPSK = opts.failNoCertxPSK;
  8211. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  8212. ssl->options.verifyPostHandshake = opts.verifyPostHandshake;
  8213. #endif
  8214. ssl->verifyCallback = vc;
  8215. }
  8216. void wolfSSL_set_verify_result(WOLFSSL *ssl, long v)
  8217. {
  8218. WOLFSSL_ENTER("wolfSSL_set_verify_result");
  8219. if (ssl == NULL)
  8220. return;
  8221. #ifdef OPENSSL_ALL
  8222. ssl->verifyCallbackResult = v;
  8223. #else
  8224. (void)v;
  8225. WOLFSSL_STUB("wolfSSL_set_verify_result");
  8226. #endif
  8227. }
  8228. #if defined(OPENSSL_EXTRA) && !defined(NO_CERTS) && \
  8229. defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  8230. /* For TLS v1.3 send handshake messages after handshake completes. */
  8231. /* Returns 1=WOLFSSL_SUCCESS or 0=WOLFSSL_FAILURE */
  8232. int wolfSSL_verify_client_post_handshake(WOLFSSL* ssl)
  8233. {
  8234. int ret = wolfSSL_request_certificate(ssl);
  8235. if (ret != WOLFSSL_SUCCESS) {
  8236. if (!IsAtLeastTLSv1_3(ssl->version)) {
  8237. /* specific error of wrong version expected */
  8238. WOLFSSL_ERROR(UNSUPPORTED_PROTO_VERSION);
  8239. }
  8240. else {
  8241. WOLFSSL_ERROR(ret); /* log the error in the error queue */
  8242. }
  8243. }
  8244. return (ret == WOLFSSL_SUCCESS) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  8245. }
  8246. int wolfSSL_CTX_set_post_handshake_auth(WOLFSSL_CTX* ctx, int val)
  8247. {
  8248. int ret = wolfSSL_CTX_allow_post_handshake_auth(ctx);
  8249. if (ret == 0) {
  8250. ctx->postHandshakeAuth = (val != 0);
  8251. }
  8252. return (ret == 0) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  8253. }
  8254. int wolfSSL_set_post_handshake_auth(WOLFSSL* ssl, int val)
  8255. {
  8256. int ret = wolfSSL_allow_post_handshake_auth(ssl);
  8257. if (ret == 0) {
  8258. ssl->options.postHandshakeAuth = (val != 0);
  8259. }
  8260. return (ret == 0) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  8261. }
  8262. #endif /* OPENSSL_EXTRA && !NO_CERTS && WOLFSSL_TLS13 && WOLFSSL_POST_HANDSHAKE_AUTH */
  8263. /* store user ctx for verify callback */
  8264. void wolfSSL_SetCertCbCtx(WOLFSSL* ssl, void* ctx)
  8265. {
  8266. WOLFSSL_ENTER("wolfSSL_SetCertCbCtx");
  8267. if (ssl)
  8268. ssl->verifyCbCtx = ctx;
  8269. }
  8270. /* store user ctx for verify callback */
  8271. void wolfSSL_CTX_SetCertCbCtx(WOLFSSL_CTX* ctx, void* userCtx)
  8272. {
  8273. WOLFSSL_ENTER("wolfSSL_CTX_SetCertCbCtx");
  8274. if (ctx)
  8275. ctx->verifyCbCtx = userCtx;
  8276. }
  8277. /* store context CA Cache addition callback */
  8278. void wolfSSL_CTX_SetCACb(WOLFSSL_CTX* ctx, CallbackCACache cb)
  8279. {
  8280. if (ctx && ctx->cm)
  8281. ctx->cm->caCacheCallback = cb;
  8282. }
  8283. #if defined(PERSIST_CERT_CACHE)
  8284. #if !defined(NO_FILESYSTEM)
  8285. /* Persist cert cache to file */
  8286. int wolfSSL_CTX_save_cert_cache(WOLFSSL_CTX* ctx, const char* fname)
  8287. {
  8288. WOLFSSL_ENTER("wolfSSL_CTX_save_cert_cache");
  8289. if (ctx == NULL || fname == NULL)
  8290. return BAD_FUNC_ARG;
  8291. return CM_SaveCertCache(ctx->cm, fname);
  8292. }
  8293. /* Persist cert cache from file */
  8294. int wolfSSL_CTX_restore_cert_cache(WOLFSSL_CTX* ctx, const char* fname)
  8295. {
  8296. WOLFSSL_ENTER("wolfSSL_CTX_restore_cert_cache");
  8297. if (ctx == NULL || fname == NULL)
  8298. return BAD_FUNC_ARG;
  8299. return CM_RestoreCertCache(ctx->cm, fname);
  8300. }
  8301. #endif /* NO_FILESYSTEM */
  8302. /* Persist cert cache to memory */
  8303. int wolfSSL_CTX_memsave_cert_cache(WOLFSSL_CTX* ctx, void* mem,
  8304. int sz, int* used)
  8305. {
  8306. WOLFSSL_ENTER("wolfSSL_CTX_memsave_cert_cache");
  8307. if (ctx == NULL || mem == NULL || used == NULL || sz <= 0)
  8308. return BAD_FUNC_ARG;
  8309. return CM_MemSaveCertCache(ctx->cm, mem, sz, used);
  8310. }
  8311. /* Restore cert cache from memory */
  8312. int wolfSSL_CTX_memrestore_cert_cache(WOLFSSL_CTX* ctx, const void* mem, int sz)
  8313. {
  8314. WOLFSSL_ENTER("wolfSSL_CTX_memrestore_cert_cache");
  8315. if (ctx == NULL || mem == NULL || sz <= 0)
  8316. return BAD_FUNC_ARG;
  8317. return CM_MemRestoreCertCache(ctx->cm, mem, sz);
  8318. }
  8319. /* get how big the the cert cache save buffer needs to be */
  8320. int wolfSSL_CTX_get_cert_cache_memsize(WOLFSSL_CTX* ctx)
  8321. {
  8322. WOLFSSL_ENTER("wolfSSL_CTX_get_cert_cache_memsize");
  8323. if (ctx == NULL)
  8324. return BAD_FUNC_ARG;
  8325. return CM_GetCertCacheMemSize(ctx->cm);
  8326. }
  8327. #endif /* PERSIST_CERT_CACHE */
  8328. #endif /* !NO_CERTS */
  8329. #ifndef NO_SESSION_CACHE
  8330. WOLFSSL_ABI
  8331. WOLFSSL_SESSION* wolfSSL_get_session(WOLFSSL* ssl)
  8332. {
  8333. WOLFSSL_ENTER("SSL_get_session");
  8334. if (ssl) {
  8335. #ifdef NO_SESSION_CACHE_REF
  8336. return ssl->session;
  8337. #else
  8338. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  8339. /* On the client side we want to return a persistant reference for
  8340. * backwards compatibility. */
  8341. #ifndef NO_CLIENT_CACHE
  8342. if (ssl->clientSession)
  8343. return (WOLFSSL_SESSION*)ssl->clientSession;
  8344. else {
  8345. /* Try to add a ClientCache entry to associate with the current
  8346. * session. Ignore any session cache options. */
  8347. int error;
  8348. const byte* id = NULL;
  8349. byte idSz = 0;
  8350. id = ssl->session->sessionID;
  8351. idSz = ssl->session->sessionIDSz;
  8352. if (ssl->session->haveAltSessionID) {
  8353. id = ssl->session->altSessionID;
  8354. idSz = ID_LEN;
  8355. }
  8356. error = AddSessionToCache(ssl->ctx, ssl->session, id, idSz,
  8357. NULL, ssl->session->side,
  8358. #ifdef HAVE_SESSION_TICKET
  8359. ssl->session->ticketLen > 0,
  8360. #else
  8361. 0,
  8362. #endif
  8363. &ssl->clientSession);
  8364. if (error == 0)
  8365. return (WOLFSSL_SESSION*)ssl->clientSession;
  8366. }
  8367. #endif
  8368. }
  8369. else
  8370. return ssl->session;
  8371. #endif
  8372. }
  8373. return NULL;
  8374. }
  8375. /* The get1 version requires caller to call SSL_SESSION_free */
  8376. WOLFSSL_SESSION* wolfSSL_get1_session(WOLFSSL* ssl)
  8377. {
  8378. WOLFSSL_SESSION* sess = NULL;
  8379. WOLFSSL_ENTER("SSL_get1_session");
  8380. if (ssl != NULL) {
  8381. sess = ssl->session;
  8382. if (sess != NULL) {
  8383. /* increase reference count if allocated session */
  8384. if (sess->type == WOLFSSL_SESSION_TYPE_HEAP) {
  8385. if (wolfSSL_SESSION_up_ref(sess) != WOLFSSL_SUCCESS)
  8386. sess = NULL;
  8387. }
  8388. }
  8389. }
  8390. return sess;
  8391. }
  8392. /*
  8393. * Sets the session object to use when establishing a TLS/SSL session using
  8394. * the ssl object. Therefore, this function must be called before
  8395. * wolfSSL_connect. The session object to use can be obtained in a previous
  8396. * TLS/SSL connection using wolfSSL_get_session.
  8397. *
  8398. * This function rejects the session if it has been expired when this function
  8399. * is called. Note that this expiration check is wolfSSL specific and differs
  8400. * from OpenSSL return code behavior.
  8401. *
  8402. * By default, wolfSSL_set_session returns WOLFSSL_SUCCESS on successfully
  8403. * setting the session, WOLFSSL_FAILURE on failure due to the session cache
  8404. * being disabled, or the session has expired.
  8405. *
  8406. * To match OpenSSL return code behavior when session is expired, define
  8407. * OPENSSL_EXTRA and WOLFSSL_ERROR_CODE_OPENSSL. This behavior will return
  8408. * WOLFSSL_SUCCESS even when the session is expired and rejected.
  8409. */
  8410. WOLFSSL_ABI
  8411. int wolfSSL_set_session(WOLFSSL* ssl, WOLFSSL_SESSION* session)
  8412. {
  8413. WOLFSSL_ENTER("SSL_set_session");
  8414. if (session)
  8415. return wolfSSL_SetSession(ssl, session);
  8416. return WOLFSSL_FAILURE;
  8417. }
  8418. #ifndef NO_CLIENT_CACHE
  8419. /* Associate client session with serverID, find existing or store for saving
  8420. if newSession flag on, don't reuse existing session
  8421. WOLFSSL_SUCCESS on ok */
  8422. int wolfSSL_SetServerID(WOLFSSL* ssl, const byte* id, int len, int newSession)
  8423. {
  8424. WOLFSSL_SESSION* session = NULL;
  8425. WOLFSSL_ENTER("wolfSSL_SetServerID");
  8426. if (ssl == NULL || id == NULL || len <= 0)
  8427. return BAD_FUNC_ARG;
  8428. if (newSession == 0) {
  8429. session = wolfSSL_GetSessionClient(ssl, id, len);
  8430. if (session) {
  8431. if (wolfSSL_SetSession(ssl, session) != WOLFSSL_SUCCESS) {
  8432. #ifdef HAVE_EXT_CACHE
  8433. wolfSSL_FreeSession(ssl->ctx, session);
  8434. #endif
  8435. WOLFSSL_MSG("wolfSSL_SetSession failed");
  8436. session = NULL;
  8437. }
  8438. }
  8439. }
  8440. if (session == NULL) {
  8441. WOLFSSL_MSG("Valid ServerID not cached already");
  8442. ssl->session->idLen = (word16)min(SERVER_ID_LEN, (word32)len);
  8443. XMEMCPY(ssl->session->serverID, id, ssl->session->idLen);
  8444. }
  8445. #ifdef HAVE_EXT_CACHE
  8446. else {
  8447. wolfSSL_FreeSession(ssl->ctx, session);
  8448. }
  8449. #endif
  8450. return WOLFSSL_SUCCESS;
  8451. }
  8452. #endif /* !NO_CLIENT_CACHE */
  8453. #if defined(PERSIST_SESSION_CACHE)
  8454. /* for persistence, if changes to layout need to increment and modify
  8455. save_session_cache() and restore_session_cache and memory versions too */
  8456. #define WOLFSSL_CACHE_VERSION 2
  8457. /* Session Cache Header information */
  8458. typedef struct {
  8459. int version; /* cache layout version id */
  8460. int rows; /* session rows */
  8461. int columns; /* session columns */
  8462. int sessionSz; /* sizeof WOLFSSL_SESSION */
  8463. } cache_header_t;
  8464. /* current persistence layout is:
  8465. 1) cache_header_t
  8466. 2) SessionCache
  8467. 3) ClientCache
  8468. update WOLFSSL_CACHE_VERSION if change layout for the following
  8469. PERSISTENT_SESSION_CACHE functions
  8470. */
  8471. /* get how big the the session cache save buffer needs to be */
  8472. int wolfSSL_get_session_cache_memsize(void)
  8473. {
  8474. int sz = (int)(sizeof(SessionCache) + sizeof(cache_header_t));
  8475. #ifndef NO_CLIENT_CACHE
  8476. sz += (int)(sizeof(ClientCache));
  8477. #endif
  8478. return sz;
  8479. }
  8480. /* Persist session cache to memory */
  8481. int wolfSSL_memsave_session_cache(void* mem, int sz)
  8482. {
  8483. int i;
  8484. cache_header_t cache_header;
  8485. SessionRow* row = (SessionRow*)((byte*)mem + sizeof(cache_header));
  8486. WOLFSSL_ENTER("wolfSSL_memsave_session_cache");
  8487. if (sz < wolfSSL_get_session_cache_memsize()) {
  8488. WOLFSSL_MSG("Memory buffer too small");
  8489. return BUFFER_E;
  8490. }
  8491. cache_header.version = WOLFSSL_CACHE_VERSION;
  8492. cache_header.rows = SESSION_ROWS;
  8493. cache_header.columns = SESSIONS_PER_ROW;
  8494. cache_header.sessionSz = (int)sizeof(WOLFSSL_SESSION);
  8495. XMEMCPY(mem, &cache_header, sizeof(cache_header));
  8496. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8497. if (wc_LockMutex(&session_mutex) != 0) {
  8498. WOLFSSL_MSG("Session cache mutex lock failed");
  8499. return BAD_MUTEX_E;
  8500. }
  8501. #endif
  8502. for (i = 0; i < cache_header.rows; ++i) {
  8503. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8504. if (SESSION_ROW_LOCK(&SessionCache[i]) != 0) {
  8505. WOLFSSL_MSG("Session row cache mutex lock failed");
  8506. return BAD_MUTEX_E;
  8507. }
  8508. #endif
  8509. XMEMCPY(row++, &SessionCache[i], SIZEOF_SESSION_ROW);
  8510. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8511. SESSION_ROW_UNLOCK(&SessionCache[i]);
  8512. #endif
  8513. }
  8514. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8515. wc_UnLockMutex(&session_mutex);
  8516. #endif
  8517. #ifndef NO_CLIENT_CACHE
  8518. if (wc_LockMutex(&clisession_mutex) != 0) {
  8519. WOLFSSL_MSG("Client cache mutex lock failed");
  8520. return BAD_MUTEX_E;
  8521. }
  8522. XMEMCPY(row, ClientCache, sizeof(ClientCache));
  8523. wc_UnLockMutex(&clisession_mutex);
  8524. #endif
  8525. WOLFSSL_LEAVE("wolfSSL_memsave_session_cache", WOLFSSL_SUCCESS);
  8526. return WOLFSSL_SUCCESS;
  8527. }
  8528. /* Restore the persistent session cache from memory */
  8529. int wolfSSL_memrestore_session_cache(const void* mem, int sz)
  8530. {
  8531. int i;
  8532. cache_header_t cache_header;
  8533. SessionRow* row = (SessionRow*)((byte*)mem + sizeof(cache_header));
  8534. WOLFSSL_ENTER("wolfSSL_memrestore_session_cache");
  8535. if (sz < wolfSSL_get_session_cache_memsize()) {
  8536. WOLFSSL_MSG("Memory buffer too small");
  8537. return BUFFER_E;
  8538. }
  8539. XMEMCPY(&cache_header, mem, sizeof(cache_header));
  8540. if (cache_header.version != WOLFSSL_CACHE_VERSION ||
  8541. cache_header.rows != SESSION_ROWS ||
  8542. cache_header.columns != SESSIONS_PER_ROW ||
  8543. cache_header.sessionSz != (int)sizeof(WOLFSSL_SESSION)) {
  8544. WOLFSSL_MSG("Session cache header match failed");
  8545. return CACHE_MATCH_ERROR;
  8546. }
  8547. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8548. if (wc_LockMutex(&session_mutex) != 0) {
  8549. WOLFSSL_MSG("Session cache mutex lock failed");
  8550. return BAD_MUTEX_E;
  8551. }
  8552. #endif
  8553. for (i = 0; i < cache_header.rows; ++i) {
  8554. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8555. if (SESSION_ROW_LOCK(&SessionCache[i]) != 0) {
  8556. WOLFSSL_MSG("Session row cache mutex lock failed");
  8557. return BAD_MUTEX_E;
  8558. }
  8559. #endif
  8560. XMEMCPY(&SessionCache[i], row++, SIZEOF_SESSION_ROW);
  8561. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8562. SESSION_ROW_UNLOCK(&SessionCache[i]);
  8563. #endif
  8564. }
  8565. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8566. wc_UnLockMutex(&session_mutex);
  8567. #endif
  8568. #ifndef NO_CLIENT_CACHE
  8569. if (wc_LockMutex(&clisession_mutex) != 0) {
  8570. WOLFSSL_MSG("Client cache mutex lock failed");
  8571. return BAD_MUTEX_E;
  8572. }
  8573. XMEMCPY(ClientCache, row, sizeof(ClientCache));
  8574. wc_UnLockMutex(&clisession_mutex);
  8575. #endif
  8576. WOLFSSL_LEAVE("wolfSSL_memrestore_session_cache", WOLFSSL_SUCCESS);
  8577. return WOLFSSL_SUCCESS;
  8578. }
  8579. #if !defined(NO_FILESYSTEM)
  8580. /* Persist session cache to file */
  8581. /* doesn't use memsave because of additional memory use */
  8582. int wolfSSL_save_session_cache(const char *fname)
  8583. {
  8584. XFILE file;
  8585. int ret;
  8586. int rc = WOLFSSL_SUCCESS;
  8587. int i;
  8588. cache_header_t cache_header;
  8589. WOLFSSL_ENTER("wolfSSL_save_session_cache");
  8590. file = XFOPEN(fname, "w+b");
  8591. if (file == XBADFILE) {
  8592. WOLFSSL_MSG("Couldn't open session cache save file");
  8593. return WOLFSSL_BAD_FILE;
  8594. }
  8595. cache_header.version = WOLFSSL_CACHE_VERSION;
  8596. cache_header.rows = SESSION_ROWS;
  8597. cache_header.columns = SESSIONS_PER_ROW;
  8598. cache_header.sessionSz = (int)sizeof(WOLFSSL_SESSION);
  8599. /* cache header */
  8600. ret = (int)XFWRITE(&cache_header, sizeof cache_header, 1, file);
  8601. if (ret != 1) {
  8602. WOLFSSL_MSG("Session cache header file write failed");
  8603. XFCLOSE(file);
  8604. return FWRITE_ERROR;
  8605. }
  8606. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8607. if (wc_LockMutex(&session_mutex) != 0) {
  8608. WOLFSSL_MSG("Session cache mutex lock failed");
  8609. XFCLOSE(file);
  8610. return BAD_MUTEX_E;
  8611. }
  8612. #endif
  8613. /* session cache */
  8614. for (i = 0; i < cache_header.rows; ++i) {
  8615. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8616. if (SESSION_ROW_LOCK(&SessionCache[i]) != 0) {
  8617. WOLFSSL_MSG("Session row cache mutex lock failed");
  8618. XFCLOSE(file);
  8619. return BAD_MUTEX_E;
  8620. }
  8621. #endif
  8622. ret = (int)XFWRITE(&SessionCache[i], SIZEOF_SESSION_ROW, 1, file);
  8623. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8624. SESSION_ROW_UNLOCK(&SessionCache[i]);
  8625. #endif
  8626. if (ret != 1) {
  8627. WOLFSSL_MSG("Session cache member file write failed");
  8628. rc = FWRITE_ERROR;
  8629. break;
  8630. }
  8631. }
  8632. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8633. wc_UnLockMutex(&session_mutex);
  8634. #endif
  8635. #ifndef NO_CLIENT_CACHE
  8636. /* client cache */
  8637. if (wc_LockMutex(&clisession_mutex) != 0) {
  8638. WOLFSSL_MSG("Client cache mutex lock failed");
  8639. XFCLOSE(file);
  8640. return BAD_MUTEX_E;
  8641. }
  8642. ret = (int)XFWRITE(ClientCache, sizeof(ClientCache), 1, file);
  8643. if (ret != 1) {
  8644. WOLFSSL_MSG("Client cache member file write failed");
  8645. rc = FWRITE_ERROR;
  8646. }
  8647. wc_UnLockMutex(&clisession_mutex);
  8648. #endif /* !NO_CLIENT_CACHE */
  8649. XFCLOSE(file);
  8650. WOLFSSL_LEAVE("wolfSSL_save_session_cache", rc);
  8651. return rc;
  8652. }
  8653. /* Restore the persistent session cache from file */
  8654. /* doesn't use memstore because of additional memory use */
  8655. int wolfSSL_restore_session_cache(const char *fname)
  8656. {
  8657. XFILE file;
  8658. int rc = WOLFSSL_SUCCESS;
  8659. int ret;
  8660. int i;
  8661. cache_header_t cache_header;
  8662. WOLFSSL_ENTER("wolfSSL_restore_session_cache");
  8663. file = XFOPEN(fname, "rb");
  8664. if (file == XBADFILE) {
  8665. WOLFSSL_MSG("Couldn't open session cache save file");
  8666. return WOLFSSL_BAD_FILE;
  8667. }
  8668. /* cache header */
  8669. ret = (int)XFREAD(&cache_header, sizeof(cache_header), 1, file);
  8670. if (ret != 1) {
  8671. WOLFSSL_MSG("Session cache header file read failed");
  8672. XFCLOSE(file);
  8673. return FREAD_ERROR;
  8674. }
  8675. if (cache_header.version != WOLFSSL_CACHE_VERSION ||
  8676. cache_header.rows != SESSION_ROWS ||
  8677. cache_header.columns != SESSIONS_PER_ROW ||
  8678. cache_header.sessionSz != (int)sizeof(WOLFSSL_SESSION)) {
  8679. WOLFSSL_MSG("Session cache header match failed");
  8680. XFCLOSE(file);
  8681. return CACHE_MATCH_ERROR;
  8682. }
  8683. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8684. if (wc_LockMutex(&session_mutex) != 0) {
  8685. WOLFSSL_MSG("Session cache mutex lock failed");
  8686. XFCLOSE(file);
  8687. return BAD_MUTEX_E;
  8688. }
  8689. #endif
  8690. /* session cache */
  8691. for (i = 0; i < cache_header.rows; ++i) {
  8692. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8693. if (SESSION_ROW_LOCK(&SessionCache[i]) != 0) {
  8694. WOLFSSL_MSG("Session row cache mutex lock failed");
  8695. XFCLOSE(file);
  8696. return BAD_MUTEX_E;
  8697. }
  8698. #endif
  8699. ret = (int)XFREAD(&SessionCache[i], SIZEOF_SESSION_ROW, 1, file);
  8700. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  8701. SESSION_ROW_UNLOCK(&SessionCache[i]);
  8702. #endif
  8703. if (ret != 1) {
  8704. WOLFSSL_MSG("Session cache member file read failed");
  8705. XMEMSET(SessionCache, 0, sizeof SessionCache);
  8706. rc = FREAD_ERROR;
  8707. break;
  8708. }
  8709. }
  8710. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  8711. wc_UnLockMutex(&session_mutex);
  8712. #endif
  8713. #ifndef NO_CLIENT_CACHE
  8714. /* client cache */
  8715. if (wc_LockMutex(&clisession_mutex) != 0) {
  8716. WOLFSSL_MSG("Client cache mutex lock failed");
  8717. XFCLOSE(file);
  8718. return BAD_MUTEX_E;
  8719. }
  8720. ret = (int)XFREAD(ClientCache, sizeof(ClientCache), 1, file);
  8721. if (ret != 1) {
  8722. WOLFSSL_MSG("Client cache member file read failed");
  8723. XMEMSET(ClientCache, 0, sizeof ClientCache);
  8724. rc = FREAD_ERROR;
  8725. }
  8726. wc_UnLockMutex(&clisession_mutex);
  8727. #endif /* !NO_CLIENT_CACHE */
  8728. XFCLOSE(file);
  8729. WOLFSSL_LEAVE("wolfSSL_restore_session_cache", rc);
  8730. return rc;
  8731. }
  8732. #endif /* !NO_FILESYSTEM */
  8733. #endif /* PERSIST_SESSION_CACHE */
  8734. #endif /* NO_SESSION_CACHE */
  8735. void wolfSSL_load_error_strings(void)
  8736. {
  8737. /* compatibility only */
  8738. }
  8739. int wolfSSL_library_init(void)
  8740. {
  8741. WOLFSSL_ENTER("SSL_library_init");
  8742. if (wolfSSL_Init() == WOLFSSL_SUCCESS)
  8743. return WOLFSSL_SUCCESS;
  8744. else
  8745. return WOLFSSL_FATAL_ERROR;
  8746. }
  8747. #ifdef HAVE_SECRET_CALLBACK
  8748. int wolfSSL_set_session_secret_cb(WOLFSSL* ssl, SessionSecretCb cb, void* ctx)
  8749. {
  8750. WOLFSSL_ENTER("wolfSSL_set_session_secret_cb");
  8751. if (ssl == NULL)
  8752. return WOLFSSL_FATAL_ERROR;
  8753. ssl->sessionSecretCb = cb;
  8754. ssl->sessionSecretCtx = ctx;
  8755. /* If using a pre-set key, assume session resumption. */
  8756. ssl->session->sessionIDSz = 0;
  8757. ssl->options.resuming = 1;
  8758. return WOLFSSL_SUCCESS;
  8759. }
  8760. #endif
  8761. #ifndef NO_SESSION_CACHE
  8762. /* on by default if built in but allow user to turn off */
  8763. WOLFSSL_ABI
  8764. long wolfSSL_CTX_set_session_cache_mode(WOLFSSL_CTX* ctx, long mode)
  8765. {
  8766. WOLFSSL_ENTER("SSL_CTX_set_session_cache_mode");
  8767. if (ctx == NULL)
  8768. return WOLFSSL_FAILURE;
  8769. if (mode == WOLFSSL_SESS_CACHE_OFF)
  8770. ctx->sessionCacheOff = 1;
  8771. if ((mode & WOLFSSL_SESS_CACHE_NO_AUTO_CLEAR) != 0)
  8772. ctx->sessionCacheFlushOff = 1;
  8773. #ifdef HAVE_EXT_CACHE
  8774. if ((mode & WOLFSSL_SESS_CACHE_NO_INTERNAL_STORE) != 0)
  8775. ctx->internalCacheOff = 1;
  8776. if ((mode & WOLFSSL_SESS_CACHE_NO_INTERNAL_LOOKUP) != 0)
  8777. ctx->internalCacheLookupOff = 1;
  8778. #endif
  8779. return WOLFSSL_SUCCESS;
  8780. }
  8781. #endif /* NO_SESSION_CACHE */
  8782. #if !defined(NO_CERTS)
  8783. #if defined(PERSIST_CERT_CACHE)
  8784. #define WOLFSSL_CACHE_CERT_VERSION 1
  8785. typedef struct {
  8786. int version; /* cache cert layout version id */
  8787. int rows; /* hash table rows, CA_TABLE_SIZE */
  8788. int columns[CA_TABLE_SIZE]; /* columns per row on list */
  8789. int signerSz; /* sizeof Signer object */
  8790. } CertCacheHeader;
  8791. /* current cert persistence layout is:
  8792. 1) CertCacheHeader
  8793. 2) caTable
  8794. update WOLFSSL_CERT_CACHE_VERSION if change layout for the following
  8795. PERSIST_CERT_CACHE functions
  8796. */
  8797. /* Return memory needed to persist this signer, have lock */
  8798. static WC_INLINE int GetSignerMemory(Signer* signer)
  8799. {
  8800. int sz = sizeof(signer->pubKeySize) + sizeof(signer->keyOID)
  8801. + sizeof(signer->nameLen) + sizeof(signer->subjectNameHash);
  8802. #if !defined(NO_SKID)
  8803. sz += (int)sizeof(signer->subjectKeyIdHash);
  8804. #endif
  8805. /* add dynamic bytes needed */
  8806. sz += signer->pubKeySize;
  8807. sz += signer->nameLen;
  8808. return sz;
  8809. }
  8810. /* Return memory needed to persist this row, have lock */
  8811. static WC_INLINE int GetCertCacheRowMemory(Signer* row)
  8812. {
  8813. int sz = 0;
  8814. while (row) {
  8815. sz += GetSignerMemory(row);
  8816. row = row->next;
  8817. }
  8818. return sz;
  8819. }
  8820. /* get the size of persist cert cache, have lock */
  8821. static WC_INLINE int GetCertCacheMemSize(WOLFSSL_CERT_MANAGER* cm)
  8822. {
  8823. int sz;
  8824. int i;
  8825. sz = sizeof(CertCacheHeader);
  8826. for (i = 0; i < CA_TABLE_SIZE; i++)
  8827. sz += GetCertCacheRowMemory(cm->caTable[i]);
  8828. return sz;
  8829. }
  8830. /* Store cert cache header columns with number of items per list, have lock */
  8831. static WC_INLINE void SetCertHeaderColumns(WOLFSSL_CERT_MANAGER* cm, int* columns)
  8832. {
  8833. int i;
  8834. Signer* row;
  8835. for (i = 0; i < CA_TABLE_SIZE; i++) {
  8836. int count = 0;
  8837. row = cm->caTable[i];
  8838. while (row) {
  8839. ++count;
  8840. row = row->next;
  8841. }
  8842. columns[i] = count;
  8843. }
  8844. }
  8845. /* Restore whole cert row from memory, have lock, return bytes consumed,
  8846. < 0 on error, have lock */
  8847. static WC_INLINE int RestoreCertRow(WOLFSSL_CERT_MANAGER* cm, byte* current,
  8848. int row, int listSz, const byte* end)
  8849. {
  8850. int idx = 0;
  8851. if (listSz < 0) {
  8852. WOLFSSL_MSG("Row header corrupted, negative value");
  8853. return PARSE_ERROR;
  8854. }
  8855. while (listSz) {
  8856. Signer* signer;
  8857. byte* publicKey;
  8858. byte* start = current + idx; /* for end checks on this signer */
  8859. int minSz = sizeof(signer->pubKeySize) + sizeof(signer->keyOID) +
  8860. sizeof(signer->nameLen) + sizeof(signer->subjectNameHash);
  8861. #ifndef NO_SKID
  8862. minSz += (int)sizeof(signer->subjectKeyIdHash);
  8863. #endif
  8864. if (start + minSz > end) {
  8865. WOLFSSL_MSG("Would overread restore buffer");
  8866. return BUFFER_E;
  8867. }
  8868. signer = MakeSigner(cm->heap);
  8869. if (signer == NULL)
  8870. return MEMORY_E;
  8871. /* pubKeySize */
  8872. XMEMCPY(&signer->pubKeySize, current + idx, sizeof(signer->pubKeySize));
  8873. idx += (int)sizeof(signer->pubKeySize);
  8874. /* keyOID */
  8875. XMEMCPY(&signer->keyOID, current + idx, sizeof(signer->keyOID));
  8876. idx += (int)sizeof(signer->keyOID);
  8877. /* publicKey */
  8878. if (start + minSz + signer->pubKeySize > end) {
  8879. WOLFSSL_MSG("Would overread restore buffer");
  8880. FreeSigner(signer, cm->heap);
  8881. return BUFFER_E;
  8882. }
  8883. publicKey = (byte*)XMALLOC(signer->pubKeySize, cm->heap,
  8884. DYNAMIC_TYPE_KEY);
  8885. if (publicKey == NULL) {
  8886. FreeSigner(signer, cm->heap);
  8887. return MEMORY_E;
  8888. }
  8889. XMEMCPY(publicKey, current + idx, signer->pubKeySize);
  8890. signer->publicKey = publicKey;
  8891. idx += signer->pubKeySize;
  8892. /* nameLen */
  8893. XMEMCPY(&signer->nameLen, current + idx, sizeof(signer->nameLen));
  8894. idx += (int)sizeof(signer->nameLen);
  8895. /* name */
  8896. if (start + minSz + signer->pubKeySize + signer->nameLen > end) {
  8897. WOLFSSL_MSG("Would overread restore buffer");
  8898. FreeSigner(signer, cm->heap);
  8899. return BUFFER_E;
  8900. }
  8901. signer->name = (char*)XMALLOC(signer->nameLen, cm->heap,
  8902. DYNAMIC_TYPE_SUBJECT_CN);
  8903. if (signer->name == NULL) {
  8904. FreeSigner(signer, cm->heap);
  8905. return MEMORY_E;
  8906. }
  8907. XMEMCPY(signer->name, current + idx, signer->nameLen);
  8908. idx += signer->nameLen;
  8909. /* subjectNameHash */
  8910. XMEMCPY(signer->subjectNameHash, current + idx, SIGNER_DIGEST_SIZE);
  8911. idx += SIGNER_DIGEST_SIZE;
  8912. #ifndef NO_SKID
  8913. /* subjectKeyIdHash */
  8914. XMEMCPY(signer->subjectKeyIdHash, current + idx,SIGNER_DIGEST_SIZE);
  8915. idx += SIGNER_DIGEST_SIZE;
  8916. #endif
  8917. signer->next = cm->caTable[row];
  8918. cm->caTable[row] = signer;
  8919. --listSz;
  8920. }
  8921. return idx;
  8922. }
  8923. /* Store whole cert row into memory, have lock, return bytes added */
  8924. static WC_INLINE int StoreCertRow(WOLFSSL_CERT_MANAGER* cm, byte* current, int row)
  8925. {
  8926. int added = 0;
  8927. Signer* list = cm->caTable[row];
  8928. while (list) {
  8929. XMEMCPY(current + added, &list->pubKeySize, sizeof(list->pubKeySize));
  8930. added += (int)sizeof(list->pubKeySize);
  8931. XMEMCPY(current + added, &list->keyOID, sizeof(list->keyOID));
  8932. added += (int)sizeof(list->keyOID);
  8933. XMEMCPY(current + added, list->publicKey, list->pubKeySize);
  8934. added += list->pubKeySize;
  8935. XMEMCPY(current + added, &list->nameLen, sizeof(list->nameLen));
  8936. added += (int)sizeof(list->nameLen);
  8937. XMEMCPY(current + added, list->name, list->nameLen);
  8938. added += list->nameLen;
  8939. XMEMCPY(current + added, list->subjectNameHash, SIGNER_DIGEST_SIZE);
  8940. added += SIGNER_DIGEST_SIZE;
  8941. #ifndef NO_SKID
  8942. XMEMCPY(current + added, list->subjectKeyIdHash,SIGNER_DIGEST_SIZE);
  8943. added += SIGNER_DIGEST_SIZE;
  8944. #endif
  8945. list = list->next;
  8946. }
  8947. return added;
  8948. }
  8949. /* Persist cert cache to memory, have lock */
  8950. static WC_INLINE int DoMemSaveCertCache(WOLFSSL_CERT_MANAGER* cm,
  8951. void* mem, int sz)
  8952. {
  8953. int realSz;
  8954. int ret = WOLFSSL_SUCCESS;
  8955. int i;
  8956. WOLFSSL_ENTER("DoMemSaveCertCache");
  8957. realSz = GetCertCacheMemSize(cm);
  8958. if (realSz > sz) {
  8959. WOLFSSL_MSG("Mem output buffer too small");
  8960. ret = BUFFER_E;
  8961. }
  8962. else {
  8963. byte* current;
  8964. CertCacheHeader hdr;
  8965. hdr.version = WOLFSSL_CACHE_CERT_VERSION;
  8966. hdr.rows = CA_TABLE_SIZE;
  8967. SetCertHeaderColumns(cm, hdr.columns);
  8968. hdr.signerSz = (int)sizeof(Signer);
  8969. XMEMCPY(mem, &hdr, sizeof(CertCacheHeader));
  8970. current = (byte*)mem + sizeof(CertCacheHeader);
  8971. for (i = 0; i < CA_TABLE_SIZE; ++i)
  8972. current += StoreCertRow(cm, current, i);
  8973. }
  8974. return ret;
  8975. }
  8976. #if !defined(NO_FILESYSTEM)
  8977. /* Persist cert cache to file */
  8978. int CM_SaveCertCache(WOLFSSL_CERT_MANAGER* cm, const char* fname)
  8979. {
  8980. XFILE file;
  8981. int rc = WOLFSSL_SUCCESS;
  8982. int memSz;
  8983. byte* mem;
  8984. WOLFSSL_ENTER("CM_SaveCertCache");
  8985. file = XFOPEN(fname, "w+b");
  8986. if (file == XBADFILE) {
  8987. WOLFSSL_MSG("Couldn't open cert cache save file");
  8988. return WOLFSSL_BAD_FILE;
  8989. }
  8990. if (wc_LockMutex(&cm->caLock) != 0) {
  8991. WOLFSSL_MSG("wc_LockMutex on caLock failed");
  8992. XFCLOSE(file);
  8993. return BAD_MUTEX_E;
  8994. }
  8995. memSz = GetCertCacheMemSize(cm);
  8996. mem = (byte*)XMALLOC(memSz, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  8997. if (mem == NULL) {
  8998. WOLFSSL_MSG("Alloc for tmp buffer failed");
  8999. rc = MEMORY_E;
  9000. } else {
  9001. rc = DoMemSaveCertCache(cm, mem, memSz);
  9002. if (rc == WOLFSSL_SUCCESS) {
  9003. int ret = (int)XFWRITE(mem, memSz, 1, file);
  9004. if (ret != 1) {
  9005. WOLFSSL_MSG("Cert cache file write failed");
  9006. rc = FWRITE_ERROR;
  9007. }
  9008. }
  9009. XFREE(mem, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9010. }
  9011. wc_UnLockMutex(&cm->caLock);
  9012. XFCLOSE(file);
  9013. return rc;
  9014. }
  9015. /* Restore cert cache from file */
  9016. int CM_RestoreCertCache(WOLFSSL_CERT_MANAGER* cm, const char* fname)
  9017. {
  9018. XFILE file;
  9019. int rc = WOLFSSL_SUCCESS;
  9020. int ret;
  9021. int memSz;
  9022. byte* mem;
  9023. WOLFSSL_ENTER("CM_RestoreCertCache");
  9024. file = XFOPEN(fname, "rb");
  9025. if (file == XBADFILE) {
  9026. WOLFSSL_MSG("Couldn't open cert cache save file");
  9027. return WOLFSSL_BAD_FILE;
  9028. }
  9029. if(XFSEEK(file, 0, XSEEK_END) != 0) {
  9030. XFCLOSE(file);
  9031. return WOLFSSL_BAD_FILE;
  9032. }
  9033. memSz = (int)XFTELL(file);
  9034. XREWIND(file);
  9035. if (memSz > MAX_WOLFSSL_FILE_SIZE || memSz <= 0) {
  9036. WOLFSSL_MSG("CM_RestoreCertCache file size error");
  9037. XFCLOSE(file);
  9038. return WOLFSSL_BAD_FILE;
  9039. }
  9040. mem = (byte*)XMALLOC(memSz, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9041. if (mem == NULL) {
  9042. WOLFSSL_MSG("Alloc for tmp buffer failed");
  9043. XFCLOSE(file);
  9044. return MEMORY_E;
  9045. }
  9046. ret = (int)XFREAD(mem, memSz, 1, file);
  9047. if (ret != 1) {
  9048. WOLFSSL_MSG("Cert file read error");
  9049. rc = FREAD_ERROR;
  9050. } else {
  9051. rc = CM_MemRestoreCertCache(cm, mem, memSz);
  9052. if (rc != WOLFSSL_SUCCESS) {
  9053. WOLFSSL_MSG("Mem restore cert cache failed");
  9054. }
  9055. }
  9056. XFREE(mem, cm->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9057. XFCLOSE(file);
  9058. return rc;
  9059. }
  9060. #endif /* NO_FILESYSTEM */
  9061. /* Persist cert cache to memory */
  9062. int CM_MemSaveCertCache(WOLFSSL_CERT_MANAGER* cm, void* mem, int sz, int* used)
  9063. {
  9064. int ret = WOLFSSL_SUCCESS;
  9065. WOLFSSL_ENTER("CM_MemSaveCertCache");
  9066. if (wc_LockMutex(&cm->caLock) != 0) {
  9067. WOLFSSL_MSG("wc_LockMutex on caLock failed");
  9068. return BAD_MUTEX_E;
  9069. }
  9070. ret = DoMemSaveCertCache(cm, mem, sz);
  9071. if (ret == WOLFSSL_SUCCESS)
  9072. *used = GetCertCacheMemSize(cm);
  9073. wc_UnLockMutex(&cm->caLock);
  9074. return ret;
  9075. }
  9076. /* Restore cert cache from memory */
  9077. int CM_MemRestoreCertCache(WOLFSSL_CERT_MANAGER* cm, const void* mem, int sz)
  9078. {
  9079. int ret = WOLFSSL_SUCCESS;
  9080. int i;
  9081. CertCacheHeader* hdr = (CertCacheHeader*)mem;
  9082. byte* current = (byte*)mem + sizeof(CertCacheHeader);
  9083. byte* end = (byte*)mem + sz; /* don't go over */
  9084. WOLFSSL_ENTER("CM_MemRestoreCertCache");
  9085. if (current > end) {
  9086. WOLFSSL_MSG("Cert Cache Memory buffer too small");
  9087. return BUFFER_E;
  9088. }
  9089. if (hdr->version != WOLFSSL_CACHE_CERT_VERSION ||
  9090. hdr->rows != CA_TABLE_SIZE ||
  9091. hdr->signerSz != (int)sizeof(Signer)) {
  9092. WOLFSSL_MSG("Cert Cache Memory header mismatch");
  9093. return CACHE_MATCH_ERROR;
  9094. }
  9095. if (wc_LockMutex(&cm->caLock) != 0) {
  9096. WOLFSSL_MSG("wc_LockMutex on caLock failed");
  9097. return BAD_MUTEX_E;
  9098. }
  9099. FreeSignerTable(cm->caTable, CA_TABLE_SIZE, cm->heap);
  9100. for (i = 0; i < CA_TABLE_SIZE; ++i) {
  9101. int added = RestoreCertRow(cm, current, i, hdr->columns[i], end);
  9102. if (added < 0) {
  9103. WOLFSSL_MSG("RestoreCertRow error");
  9104. ret = added;
  9105. break;
  9106. }
  9107. current += added;
  9108. }
  9109. wc_UnLockMutex(&cm->caLock);
  9110. return ret;
  9111. }
  9112. /* get how big the the cert cache save buffer needs to be */
  9113. int CM_GetCertCacheMemSize(WOLFSSL_CERT_MANAGER* cm)
  9114. {
  9115. int sz;
  9116. WOLFSSL_ENTER("CM_GetCertCacheMemSize");
  9117. if (wc_LockMutex(&cm->caLock) != 0) {
  9118. WOLFSSL_MSG("wc_LockMutex on caLock failed");
  9119. return BAD_MUTEX_E;
  9120. }
  9121. sz = GetCertCacheMemSize(cm);
  9122. wc_UnLockMutex(&cm->caLock);
  9123. return sz;
  9124. }
  9125. #endif /* PERSIST_CERT_CACHE */
  9126. #endif /* NO_CERTS */
  9127. #ifdef OPENSSL_EXTRA
  9128. /* removes all cipher suites from the list that contain "toRemove"
  9129. * returns the new list size on success
  9130. */
  9131. static int wolfSSL_remove_ciphers(char* list, int sz, const char* toRemove)
  9132. {
  9133. int idx = 0;
  9134. char* next = (char*)list;
  9135. int totalSz = sz;
  9136. if (list == NULL) {
  9137. return 0;
  9138. }
  9139. do {
  9140. char* current = next;
  9141. char name[MAX_SUITE_NAME + 1];
  9142. word32 length;
  9143. next = XSTRSTR(next, ":");
  9144. length = min(sizeof(name), !next ? (word32)XSTRLEN(current) /* last */
  9145. : (word32)(next - current));
  9146. XSTRNCPY(name, current, length);
  9147. name[(length == sizeof(name)) ? length - 1 : length] = 0;
  9148. if (XSTRSTR(name, toRemove)) {
  9149. XMEMMOVE(list + idx, list + idx + length, totalSz - (idx + length));
  9150. totalSz -= length;
  9151. list[totalSz] = '\0';
  9152. next = current;
  9153. }
  9154. else {
  9155. idx += length;
  9156. }
  9157. } while (next++); /* ++ needed to skip ':' */
  9158. return totalSz;
  9159. }
  9160. /*
  9161. * build enabled cipher list w/ TLS13 or w/o TLS13 suites
  9162. * @param ctx a pointer to WOLFSSL_CTX structure
  9163. * @param suites currently enabled suites
  9164. * @param onlytlsv13suites flag whether correcting w/ TLS13 suites
  9165. * or w/o TLS13 suties
  9166. * @param list suites list that user wants to update
  9167. * @return suites list on success, otherwise NULL
  9168. */
  9169. static char* buildEnabledCipherList(WOLFSSL_CTX* ctx, Suites* suites,
  9170. int tls13Only, const char* list)
  9171. {
  9172. word32 idx = 0;
  9173. word32 listsz = 0;
  9174. word32 len = 0;
  9175. word32 ianasz = 0;
  9176. const char* enabledcs = NULL;
  9177. char* locallist = NULL;
  9178. char* head = NULL;
  9179. byte cipherSuite0;
  9180. byte cipherSuite;
  9181. /* sanity check */
  9182. if (ctx == NULL || suites == NULL || list == NULL)
  9183. return NULL;
  9184. if (!suites->setSuites)
  9185. return NULL;
  9186. listsz = (word32)XSTRLEN(list);
  9187. /* calculate necessary buffer length */
  9188. for(idx = 0; idx < suites->suiteSz; idx++) {
  9189. cipherSuite0 = suites->suites[idx];
  9190. cipherSuite = suites->suites[++idx];
  9191. if (tls13Only && cipherSuite0 == TLS13_BYTE) {
  9192. enabledcs = GetCipherNameInternal(cipherSuite0, cipherSuite);
  9193. }
  9194. else if (!tls13Only && cipherSuite0 != TLS13_BYTE) {
  9195. enabledcs = GetCipherNameInternal(cipherSuite0, cipherSuite);
  9196. }
  9197. else
  9198. continue;
  9199. if (XSTRCMP(enabledcs, "None") != 0) {
  9200. len += (word32)XSTRLEN(enabledcs) + 2;
  9201. }
  9202. }
  9203. len += listsz + 2;
  9204. /* build string */
  9205. if (len > (listsz + 2)) {
  9206. locallist = (char*)XMALLOC(len, ctx->heap,
  9207. DYNAMIC_TYPE_TMP_BUFFER);
  9208. /* sanity check */
  9209. if (!locallist)
  9210. return NULL;
  9211. XMEMSET(locallist, 0, len);
  9212. head = locallist;
  9213. if (!tls13Only)
  9214. {
  9215. /* always tls13 suites in the head position */
  9216. XSTRNCPY(locallist, list, len);
  9217. locallist += listsz;
  9218. *locallist++ = ':';
  9219. *locallist = 0;
  9220. len -= listsz + 1;
  9221. }
  9222. for(idx = 0; idx < suites->suiteSz; idx++) {
  9223. cipherSuite0 = suites->suites[idx];
  9224. cipherSuite = suites->suites[++idx];
  9225. if (tls13Only && cipherSuite0 == TLS13_BYTE) {
  9226. enabledcs = GetCipherNameInternal(cipherSuite0, cipherSuite);
  9227. }
  9228. else if (!tls13Only && cipherSuite0 != TLS13_BYTE) {
  9229. enabledcs = GetCipherNameInternal(cipherSuite0, cipherSuite);
  9230. }
  9231. else
  9232. continue;
  9233. ianasz = (int)XSTRLEN(enabledcs);
  9234. if (ianasz + 1 < len) {
  9235. XSTRNCPY(locallist, enabledcs, len);
  9236. locallist += ianasz;
  9237. *locallist++ = ':';
  9238. *locallist = 0;
  9239. len -= ianasz + 1;
  9240. }
  9241. else{
  9242. XFREE(locallist, ctx->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9243. return NULL;
  9244. }
  9245. }
  9246. if (tls13Only) {
  9247. XSTRNCPY(locallist, list, len);
  9248. locallist += listsz;
  9249. *locallist = 0;
  9250. }
  9251. return head;
  9252. }
  9253. else
  9254. return NULL;
  9255. }
  9256. /*
  9257. * check if the list has TLS13 and pre-TLS13 suites
  9258. * @param list cipher suite list that user want to set
  9259. * @return mixed: 0, only pre-TLS13: 1, only TLS13: 2
  9260. */
  9261. static int CheckcipherList(const char* list)
  9262. {
  9263. int ret;
  9264. int findTLSv13Suites = 0;
  9265. int findbeforeSuites = 0;
  9266. byte cipherSuite0;
  9267. byte cipherSuite1;
  9268. int flags;
  9269. char* next = (char*)list;
  9270. do {
  9271. char* current = next;
  9272. char name[MAX_SUITE_NAME + 1];
  9273. word32 length = MAX_SUITE_NAME;
  9274. word32 current_length;
  9275. next = XSTRSTR(next, ":");
  9276. current_length = (!next) ? (word32)XSTRLEN(current)
  9277. : (word32)(next - current);
  9278. if (current_length < length) {
  9279. length = current_length;
  9280. }
  9281. XMEMCPY(name, current, length);
  9282. name[length] = 0;
  9283. ret = wolfSSL_get_cipher_suite_from_name(name, &cipherSuite0,
  9284. &cipherSuite1, &flags);
  9285. if (ret == 0) {
  9286. if (cipherSuite0 == TLS13_BYTE) {
  9287. /* TLSv13 suite */
  9288. findTLSv13Suites = 1;
  9289. break;
  9290. }
  9291. else {
  9292. findbeforeSuites = 1;
  9293. break;
  9294. }
  9295. }
  9296. if (findTLSv13Suites == 1 && findbeforeSuites == 1) {
  9297. /* list has mixed suites */
  9298. return 0;
  9299. }
  9300. } while (next++); /* ++ needed to skip ':' */
  9301. if (findTLSv13Suites == 0 && findbeforeSuites == 1) {
  9302. return 1;/* only before TLSv13 suites */
  9303. }
  9304. else if (findTLSv13Suites == 1 && findbeforeSuites == 0) {
  9305. return 2;/* only TLSv13 suties */
  9306. }
  9307. else {
  9308. return 0;/* handle as mixed */
  9309. }
  9310. }
  9311. /* parse some bulk lists like !eNULL / !aNULL
  9312. *
  9313. * returns WOLFSSL_SUCCESS on success and sets the cipher suite list
  9314. */
  9315. static int wolfSSL_parse_cipher_list(WOLFSSL_CTX* ctx, Suites* suites,
  9316. const char* list)
  9317. {
  9318. int ret = 0;
  9319. const int suiteSz = GetCipherNamesSize();
  9320. char* next = (char*)list;
  9321. const CipherSuiteInfo* names = GetCipherNames();
  9322. char* localList = NULL;
  9323. int sz = 0;
  9324. int listattribute = 0;
  9325. char* buildcipherList = NULL;
  9326. int tls13Only = 0;
  9327. if (suites == NULL || list == NULL) {
  9328. WOLFSSL_MSG("NULL argument");
  9329. return WOLFSSL_FAILURE;
  9330. }
  9331. /* does list contain eNULL or aNULL? */
  9332. if (XSTRSTR(list, "aNULL") || XSTRSTR(list, "eNULL")) {
  9333. do {
  9334. char* current = next;
  9335. char name[MAX_SUITE_NAME + 1];
  9336. int i;
  9337. word32 length = MAX_SUITE_NAME;
  9338. word32 current_length;
  9339. next = XSTRSTR(next, ":");
  9340. current_length = (!next) ? (word32)XSTRLEN(current)
  9341. : (word32)(next - current);
  9342. if (current_length < length) {
  9343. length = current_length;
  9344. }
  9345. XMEMCPY(name, current, length);
  9346. name[length] = 0;
  9347. /* check for "not" case */
  9348. if (name[0] == '!' && suiteSz > 0) {
  9349. /* populate list with all suites if not already created */
  9350. if (localList == NULL) {
  9351. for (i = 0; i < suiteSz; i++) {
  9352. sz += (int)XSTRLEN(names[i].name) + 2;
  9353. }
  9354. localList = (char*)XMALLOC(sz, ctx->heap,
  9355. DYNAMIC_TYPE_TMP_BUFFER);
  9356. if (localList == NULL) {
  9357. return WOLFSSL_FAILURE;
  9358. }
  9359. wolfSSL_get_ciphers(localList, sz);
  9360. sz = (int)XSTRLEN(localList);
  9361. }
  9362. if (XSTRSTR(name, "eNULL")) {
  9363. wolfSSL_remove_ciphers(localList, sz, "-NULL");
  9364. }
  9365. }
  9366. }
  9367. while (next++); /* ++ needed to skip ':' */
  9368. ret = SetCipherList(ctx, suites, localList);
  9369. XFREE(localList, ctx->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9370. return (ret)? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  9371. }
  9372. else {
  9373. listattribute = CheckcipherList(list);
  9374. if (listattribute == 0) {
  9375. /* list has mixed(pre-TLSv13 and TLSv13) suites
  9376. * update cipher suites the same as before
  9377. */
  9378. return (SetCipherList(ctx, suites, list)) ? WOLFSSL_SUCCESS :
  9379. WOLFSSL_FAILURE;
  9380. }
  9381. else if (listattribute == 1) {
  9382. /* list has only pre-TLSv13 suites.
  9383. * Only update before TLSv13 suites.
  9384. */
  9385. tls13Only = 1;
  9386. }
  9387. else if (listattribute == 2) {
  9388. /* list has only TLSv13 suites. Only update TLv13 suites
  9389. * simulate set_ciphersuites() compatibility layer API
  9390. */
  9391. tls13Only = 0;
  9392. }
  9393. buildcipherList = buildEnabledCipherList(ctx, ctx->suites,
  9394. tls13Only, list);
  9395. if (buildcipherList) {
  9396. ret = SetCipherList(ctx, suites, buildcipherList);
  9397. XFREE(buildcipherList, ctx->heap, DYNAMIC_TYPE_TMP_BUFFER);
  9398. }
  9399. else {
  9400. ret = SetCipherList(ctx, suites, list);
  9401. }
  9402. return ret;
  9403. }
  9404. }
  9405. #endif
  9406. int wolfSSL_CTX_set_cipher_list(WOLFSSL_CTX* ctx, const char* list)
  9407. {
  9408. WOLFSSL_ENTER("wolfSSL_CTX_set_cipher_list");
  9409. if (ctx == NULL)
  9410. return WOLFSSL_FAILURE;
  9411. /* alloc/init on demand only */
  9412. if (ctx->suites == NULL) {
  9413. ctx->suites = (Suites*)XMALLOC(sizeof(Suites), ctx->heap,
  9414. DYNAMIC_TYPE_SUITES);
  9415. if (ctx->suites == NULL) {
  9416. WOLFSSL_MSG("Memory alloc for Suites failed");
  9417. return WOLFSSL_FAILURE;
  9418. }
  9419. XMEMSET(ctx->suites, 0, sizeof(Suites));
  9420. }
  9421. #ifdef OPENSSL_EXTRA
  9422. return wolfSSL_parse_cipher_list(ctx, ctx->suites, list);
  9423. #else
  9424. return (SetCipherList(ctx, ctx->suites, list)) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  9425. #endif
  9426. }
  9427. int wolfSSL_set_cipher_list(WOLFSSL* ssl, const char* list)
  9428. {
  9429. WOLFSSL_ENTER("wolfSSL_set_cipher_list");
  9430. #ifdef SINGLE_THREADED
  9431. if (ssl->ctx->suites == ssl->suites) {
  9432. ssl->suites = (Suites*)XMALLOC(sizeof(Suites), ssl->heap,
  9433. DYNAMIC_TYPE_SUITES);
  9434. if (ssl->suites == NULL) {
  9435. WOLFSSL_MSG("Suites Memory error");
  9436. return MEMORY_E;
  9437. }
  9438. *ssl->suites = *ssl->ctx->suites;
  9439. ssl->options.ownSuites = 1;
  9440. }
  9441. #endif
  9442. #ifdef OPENSSL_EXTRA
  9443. return wolfSSL_parse_cipher_list(ssl->ctx, ssl->suites, list);
  9444. #else
  9445. return (SetCipherList(ssl->ctx, ssl->suites, list)) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  9446. #endif
  9447. }
  9448. #ifdef HAVE_KEYING_MATERIAL
  9449. #define TLS_PRF_LABEL_CLIENT_FINISHED "client finished"
  9450. #define TLS_PRF_LABEL_SERVER_FINISHED "server finished"
  9451. #define TLS_PRF_LABEL_MASTER_SECRET "master secret"
  9452. #define TLS_PRF_LABEL_EXT_MASTER_SECRET "extended master secret"
  9453. #define TLS_PRF_LABEL_KEY_EXPANSION "key expansion"
  9454. static const struct ForbiddenLabels {
  9455. const char* label;
  9456. size_t labelLen;
  9457. } forbiddenLabels[] = {
  9458. {TLS_PRF_LABEL_CLIENT_FINISHED, XSTR_SIZEOF(TLS_PRF_LABEL_CLIENT_FINISHED)},
  9459. {TLS_PRF_LABEL_SERVER_FINISHED, XSTR_SIZEOF(TLS_PRF_LABEL_SERVER_FINISHED)},
  9460. {TLS_PRF_LABEL_MASTER_SECRET, XSTR_SIZEOF(TLS_PRF_LABEL_MASTER_SECRET)},
  9461. {TLS_PRF_LABEL_EXT_MASTER_SECRET, XSTR_SIZEOF(TLS_PRF_LABEL_EXT_MASTER_SECRET)},
  9462. {TLS_PRF_LABEL_KEY_EXPANSION, XSTR_SIZEOF(TLS_PRF_LABEL_KEY_EXPANSION)},
  9463. {NULL, 0},
  9464. };
  9465. /**
  9466. * Implement RFC 5705
  9467. * TLS 1.3 uses a different exporter definition (section 7.5 of RFC 8446)
  9468. * @return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on error
  9469. */
  9470. int wolfSSL_export_keying_material(WOLFSSL *ssl,
  9471. unsigned char *out, size_t outLen,
  9472. const char *label, size_t labelLen,
  9473. const unsigned char *context, size_t contextLen,
  9474. int use_context)
  9475. {
  9476. byte* seed = NULL;
  9477. word32 seedLen;
  9478. const struct ForbiddenLabels* fl;
  9479. WOLFSSL_ENTER("wolfSSL_export_keying_material");
  9480. if (ssl == NULL || out == NULL || label == NULL ||
  9481. (use_context && contextLen && context == NULL)) {
  9482. WOLFSSL_MSG("Bad argument");
  9483. return WOLFSSL_FAILURE;
  9484. }
  9485. /* clientRandom + serverRandom
  9486. * OR
  9487. * clientRandom + serverRandom + ctx len encoding + ctx */
  9488. seedLen = !use_context ? (word32)SEED_LEN :
  9489. (word32)SEED_LEN + 2 + (word32)contextLen;
  9490. if (ssl->options.saveArrays == 0 || ssl->arrays == NULL) {
  9491. WOLFSSL_MSG("To export keying material wolfSSL needs to keep handshake "
  9492. "data. Call wolfSSL_KeepArrays before attempting to "
  9493. "export keyid material.");
  9494. return WOLFSSL_FAILURE;
  9495. }
  9496. /* check forbidden labels */
  9497. for (fl = &forbiddenLabels[0]; fl->label != NULL; fl++) {
  9498. if (labelLen >= fl->labelLen &&
  9499. XMEMCMP(label, fl->label, fl->labelLen) == 0) {
  9500. WOLFSSL_MSG("Forbidden label");
  9501. return WOLFSSL_FAILURE;
  9502. }
  9503. }
  9504. #ifdef WOLFSSL_TLS13
  9505. if (IsAtLeastTLSv1_3(ssl->version)) {
  9506. /* Path for TLS 1.3 */
  9507. if (!use_context) {
  9508. contextLen = 0;
  9509. context = (byte*)""; /* Give valid pointer for 0 length memcpy */
  9510. }
  9511. if (Tls13_Exporter(ssl, out, (word32)outLen, label, labelLen,
  9512. context, contextLen) != 0) {
  9513. WOLFSSL_MSG("Tls13_Exporter error");
  9514. return WOLFSSL_FAILURE;
  9515. }
  9516. return WOLFSSL_SUCCESS;
  9517. }
  9518. #endif
  9519. /* Path for <=TLS 1.2 */
  9520. seed = (byte*)XMALLOC(seedLen, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  9521. if (seed == NULL) {
  9522. WOLFSSL_MSG("malloc error");
  9523. return WOLFSSL_FAILURE;
  9524. }
  9525. XMEMCPY(seed, ssl->arrays->clientRandom, RAN_LEN);
  9526. XMEMCPY(seed + RAN_LEN, ssl->arrays->serverRandom, RAN_LEN);
  9527. if (use_context) {
  9528. /* Encode len in big endian */
  9529. seed[SEED_LEN ] = (contextLen >> 8) & 0xFF;
  9530. seed[SEED_LEN + 1] = (contextLen) & 0xFF;
  9531. if (contextLen) {
  9532. /* 0 length context is allowed */
  9533. XMEMCPY(seed + SEED_LEN + 2, context, contextLen);
  9534. }
  9535. }
  9536. PRIVATE_KEY_UNLOCK();
  9537. if (wc_PRF_TLS(out, (word32)outLen, ssl->arrays->masterSecret, SECRET_LEN,
  9538. (byte*)label, (word32)labelLen, seed, seedLen, IsAtLeastTLSv1_2(ssl),
  9539. ssl->specs.mac_algorithm, ssl->heap, ssl->devId) != 0) {
  9540. WOLFSSL_MSG("wc_PRF_TLS error");
  9541. PRIVATE_KEY_LOCK();
  9542. XFREE(seed, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  9543. return WOLFSSL_FAILURE;
  9544. }
  9545. PRIVATE_KEY_LOCK();
  9546. XFREE(seed, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  9547. return WOLFSSL_SUCCESS;
  9548. }
  9549. #endif /* HAVE_KEYING_MATERIAL */
  9550. int wolfSSL_dtls_get_using_nonblock(WOLFSSL* ssl)
  9551. {
  9552. int useNb = 0;
  9553. if (ssl == NULL)
  9554. return WOLFSSL_FAILURE;
  9555. WOLFSSL_ENTER("wolfSSL_dtls_get_using_nonblock");
  9556. if (ssl->options.dtls) {
  9557. #ifdef WOLFSSL_DTLS
  9558. useNb = ssl->options.dtlsUseNonblock;
  9559. #endif
  9560. }
  9561. else {
  9562. WOLFSSL_MSG("wolfSSL_dtls_get_using_nonblock() is "
  9563. "DEPRECATED for non-DTLS use.");
  9564. }
  9565. return useNb;
  9566. }
  9567. #ifndef WOLFSSL_LEANPSK
  9568. void wolfSSL_dtls_set_using_nonblock(WOLFSSL* ssl, int nonblock)
  9569. {
  9570. (void)nonblock;
  9571. WOLFSSL_ENTER("wolfSSL_dtls_set_using_nonblock");
  9572. if (ssl == NULL)
  9573. return;
  9574. if (ssl->options.dtls) {
  9575. #ifdef WOLFSSL_DTLS
  9576. ssl->options.dtlsUseNonblock = (nonblock != 0);
  9577. #endif
  9578. }
  9579. else {
  9580. WOLFSSL_MSG("wolfSSL_dtls_set_using_nonblock() is "
  9581. "DEPRECATED for non-DTLS use.");
  9582. }
  9583. }
  9584. #ifdef WOLFSSL_DTLS
  9585. int wolfSSL_dtls_get_current_timeout(WOLFSSL* ssl)
  9586. {
  9587. int timeout = 0;
  9588. if (ssl)
  9589. timeout = ssl->dtls_timeout;
  9590. WOLFSSL_LEAVE("wolfSSL_dtls_get_current_timeout()", timeout);
  9591. return timeout;
  9592. }
  9593. int wolfSSL_DTLSv1_get_timeout(WOLFSSL* ssl, WOLFSSL_TIMEVAL* timeleft)
  9594. {
  9595. if (ssl && timeleft) {
  9596. XMEMSET(timeleft, 0, sizeof(WOLFSSL_TIMEVAL));
  9597. timeleft->tv_sec = ssl->dtls_timeout;
  9598. }
  9599. return 0;
  9600. }
  9601. #ifndef NO_WOLFSSL_STUB
  9602. int wolfSSL_DTLSv1_handle_timeout(WOLFSSL* ssl)
  9603. {
  9604. WOLFSSL_STUB("SSL_DTLSv1_handle_timeout");
  9605. (void)ssl;
  9606. return 0;
  9607. }
  9608. #endif
  9609. #ifndef NO_WOLFSSL_STUB
  9610. void wolfSSL_DTLSv1_set_initial_timeout_duration(WOLFSSL* ssl, word32 duration_ms)
  9611. {
  9612. WOLFSSL_STUB("SSL_DTLSv1_set_initial_timeout_duration");
  9613. (void)ssl;
  9614. (void)duration_ms;
  9615. }
  9616. #endif
  9617. /* user may need to alter init dtls recv timeout, WOLFSSL_SUCCESS on ok */
  9618. int wolfSSL_dtls_set_timeout_init(WOLFSSL* ssl, int timeout)
  9619. {
  9620. if (ssl == NULL || timeout < 0)
  9621. return BAD_FUNC_ARG;
  9622. if (timeout > ssl->dtls_timeout_max) {
  9623. WOLFSSL_MSG("Can't set dtls timeout init greater than dtls timeout max");
  9624. return BAD_FUNC_ARG;
  9625. }
  9626. ssl->dtls_timeout_init = timeout;
  9627. ssl->dtls_timeout = timeout;
  9628. return WOLFSSL_SUCCESS;
  9629. }
  9630. /* user may need to alter max dtls recv timeout, WOLFSSL_SUCCESS on ok */
  9631. int wolfSSL_dtls_set_timeout_max(WOLFSSL* ssl, int timeout)
  9632. {
  9633. if (ssl == NULL || timeout < 0)
  9634. return BAD_FUNC_ARG;
  9635. if (timeout < ssl->dtls_timeout_init) {
  9636. WOLFSSL_MSG("Can't set dtls timeout max less than dtls timeout init");
  9637. return BAD_FUNC_ARG;
  9638. }
  9639. ssl->dtls_timeout_max = timeout;
  9640. return WOLFSSL_SUCCESS;
  9641. }
  9642. int wolfSSL_dtls_got_timeout(WOLFSSL* ssl)
  9643. {
  9644. int result = WOLFSSL_SUCCESS;
  9645. WOLFSSL_ENTER("wolfSSL_dtls_got_timeout()");
  9646. if (ssl == NULL)
  9647. return WOLFSSL_FATAL_ERROR;
  9648. if ((IsSCR(ssl) || !ssl->options.handShakeDone)) {
  9649. if (DtlsMsgPoolTimeout(ssl) < 0){
  9650. ssl->error = SOCKET_ERROR_E;
  9651. WOLFSSL_ERROR(ssl->error);
  9652. result = WOLFSSL_FATAL_ERROR;
  9653. }
  9654. else if ((result = DtlsMsgPoolSend(ssl, 0)) < 0) {
  9655. ssl->error = result;
  9656. WOLFSSL_ERROR(result);
  9657. result = WOLFSSL_FATAL_ERROR;
  9658. }
  9659. else {
  9660. /* Reset return value to success */
  9661. result = WOLFSSL_SUCCESS;
  9662. }
  9663. }
  9664. WOLFSSL_LEAVE("wolfSSL_dtls_got_timeout()", result);
  9665. return result;
  9666. }
  9667. /* retransmit all the saves messages, WOLFSSL_SUCCESS on ok */
  9668. int wolfSSL_dtls_retransmit(WOLFSSL* ssl)
  9669. {
  9670. WOLFSSL_ENTER("wolfSSL_dtls_retransmit()");
  9671. if (ssl == NULL)
  9672. return WOLFSSL_FATAL_ERROR;
  9673. if (!ssl->options.handShakeDone) {
  9674. int result = DtlsMsgPoolSend(ssl, 0);
  9675. if (result < 0) {
  9676. ssl->error = result;
  9677. WOLFSSL_ERROR(result);
  9678. return WOLFSSL_FATAL_ERROR;
  9679. }
  9680. }
  9681. return 0;
  9682. }
  9683. #endif /* DTLS */
  9684. #endif /* LEANPSK */
  9685. #if defined(WOLFSSL_DTLS) && !defined(NO_WOLFSSL_SERVER)
  9686. /* Not an SSL function, return 0 for success, error code otherwise */
  9687. /* Prereq: ssl's RNG needs to be initialized. */
  9688. int wolfSSL_DTLS_SetCookieSecret(WOLFSSL* ssl,
  9689. const byte* secret, word32 secretSz)
  9690. {
  9691. int ret = 0;
  9692. WOLFSSL_ENTER("wolfSSL_DTLS_SetCookieSecret");
  9693. if (ssl == NULL) {
  9694. WOLFSSL_MSG("need a SSL object");
  9695. return BAD_FUNC_ARG;
  9696. }
  9697. if (secret != NULL && secretSz == 0) {
  9698. WOLFSSL_MSG("can't have a new secret without a size");
  9699. return BAD_FUNC_ARG;
  9700. }
  9701. /* If secretSz is 0, use the default size. */
  9702. if (secretSz == 0)
  9703. secretSz = COOKIE_SECRET_SZ;
  9704. if (secretSz != ssl->buffers.dtlsCookieSecret.length) {
  9705. byte* newSecret;
  9706. if (ssl->buffers.dtlsCookieSecret.buffer != NULL) {
  9707. ForceZero(ssl->buffers.dtlsCookieSecret.buffer,
  9708. ssl->buffers.dtlsCookieSecret.length);
  9709. XFREE(ssl->buffers.dtlsCookieSecret.buffer,
  9710. ssl->heap, DYNAMIC_TYPE_NONE);
  9711. }
  9712. newSecret = (byte*)XMALLOC(secretSz, ssl->heap,DYNAMIC_TYPE_COOKIE_PWD);
  9713. if (newSecret == NULL) {
  9714. ssl->buffers.dtlsCookieSecret.buffer = NULL;
  9715. ssl->buffers.dtlsCookieSecret.length = 0;
  9716. WOLFSSL_MSG("couldn't allocate new cookie secret");
  9717. return MEMORY_ERROR;
  9718. }
  9719. ssl->buffers.dtlsCookieSecret.buffer = newSecret;
  9720. ssl->buffers.dtlsCookieSecret.length = secretSz;
  9721. }
  9722. /* If the supplied secret is NULL, randomly generate a new secret. */
  9723. if (secret == NULL) {
  9724. ret = wc_RNG_GenerateBlock(ssl->rng,
  9725. ssl->buffers.dtlsCookieSecret.buffer, secretSz);
  9726. }
  9727. else
  9728. XMEMCPY(ssl->buffers.dtlsCookieSecret.buffer, secret, secretSz);
  9729. WOLFSSL_LEAVE("wolfSSL_DTLS_SetCookieSecret", 0);
  9730. return ret;
  9731. }
  9732. #endif /* WOLFSSL_DTLS && !NO_WOLFSSL_SERVER */
  9733. /* EITHER SIDE METHODS */
  9734. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EITHER_SIDE)
  9735. WOLFSSL_METHOD* wolfSSLv23_method(void)
  9736. {
  9737. return wolfSSLv23_method_ex(NULL);
  9738. }
  9739. WOLFSSL_METHOD* wolfSSLv23_method_ex(void* heap)
  9740. {
  9741. WOLFSSL_METHOD* m = NULL;
  9742. WOLFSSL_ENTER("SSLv23_method");
  9743. #if !defined(NO_WOLFSSL_CLIENT)
  9744. m = wolfSSLv23_client_method_ex(heap);
  9745. #elif !defined(NO_WOLFSSL_SERVER)
  9746. m = wolfSSLv23_server_method_ex(heap);
  9747. #else
  9748. (void)heap;
  9749. #endif
  9750. if (m != NULL) {
  9751. m->side = WOLFSSL_NEITHER_END;
  9752. }
  9753. return m;
  9754. }
  9755. #ifdef WOLFSSL_ALLOW_SSLV3
  9756. WOLFSSL_METHOD* wolfSSLv3_method(void)
  9757. {
  9758. return wolfSSLv3_method_ex(NULL);
  9759. }
  9760. WOLFSSL_METHOD* wolfSSLv3_method_ex(void* heap)
  9761. {
  9762. WOLFSSL_METHOD* m = NULL;
  9763. WOLFSSL_ENTER("SSLv3_method");
  9764. #if !defined(NO_WOLFSSL_CLIENT)
  9765. m = wolfSSLv3_client_method_ex(heap);
  9766. #elif !defined(NO_WOLFSSL_SERVER)
  9767. m = wolfSSLv3_server_method_ex(heap);
  9768. #endif
  9769. if (m != NULL) {
  9770. m->side = WOLFSSL_NEITHER_END;
  9771. }
  9772. return m;
  9773. }
  9774. #endif
  9775. #endif /* OPENSSL_EXTRA || WOLFSSL_EITHER_SIDE */
  9776. /* client only parts */
  9777. #ifndef NO_WOLFSSL_CLIENT
  9778. #ifdef OPENSSL_EXTRA
  9779. WOLFSSL_METHOD* wolfSSLv2_client_method(void)
  9780. {
  9781. WOLFSSL_STUB("wolfSSLv2_client_method");
  9782. return NULL;
  9783. }
  9784. #endif
  9785. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  9786. WOLFSSL_METHOD* wolfSSLv3_client_method(void)
  9787. {
  9788. return wolfSSLv3_client_method_ex(NULL);
  9789. }
  9790. WOLFSSL_METHOD* wolfSSLv3_client_method_ex(void* heap)
  9791. {
  9792. WOLFSSL_METHOD* method =
  9793. (WOLFSSL_METHOD*) XMALLOC(sizeof(WOLFSSL_METHOD),
  9794. heap, DYNAMIC_TYPE_METHOD);
  9795. (void)heap;
  9796. WOLFSSL_ENTER("SSLv3_client_method_ex");
  9797. if (method)
  9798. InitSSL_Method(method, MakeSSLv3());
  9799. return method;
  9800. }
  9801. #endif /* WOLFSSL_ALLOW_SSLV3 && !NO_OLD_TLS */
  9802. WOLFSSL_METHOD* wolfSSLv23_client_method(void)
  9803. {
  9804. return wolfSSLv23_client_method_ex(NULL);
  9805. }
  9806. WOLFSSL_METHOD* wolfSSLv23_client_method_ex(void* heap)
  9807. {
  9808. WOLFSSL_METHOD* method =
  9809. (WOLFSSL_METHOD*) XMALLOC(sizeof(WOLFSSL_METHOD),
  9810. heap, DYNAMIC_TYPE_METHOD);
  9811. (void)heap;
  9812. WOLFSSL_ENTER("SSLv23_client_method_ex");
  9813. if (method) {
  9814. #if !defined(NO_SHA256) || defined(WOLFSSL_SHA384) || defined(WOLFSSL_SHA512)
  9815. #if defined(WOLFSSL_TLS13)
  9816. InitSSL_Method(method, MakeTLSv1_3());
  9817. #elif !defined(WOLFSSL_NO_TLS12)
  9818. InitSSL_Method(method, MakeTLSv1_2());
  9819. #elif !defined(NO_OLD_TLS)
  9820. InitSSL_Method(method, MakeTLSv1_1());
  9821. #endif
  9822. #else
  9823. #ifndef NO_OLD_TLS
  9824. InitSSL_Method(method, MakeTLSv1_1());
  9825. #endif
  9826. #endif
  9827. #if !defined(NO_OLD_TLS) || defined(WOLFSSL_TLS13)
  9828. method->downgrade = 1;
  9829. #endif
  9830. }
  9831. return method;
  9832. }
  9833. /* please see note at top of README if you get an error from connect */
  9834. WOLFSSL_ABI
  9835. int wolfSSL_connect(WOLFSSL* ssl)
  9836. {
  9837. #if !(defined(WOLFSSL_NO_TLS12) && defined(NO_OLD_TLS) && defined(WOLFSSL_TLS13))
  9838. int neededState;
  9839. #endif
  9840. WOLFSSL_ENTER("SSL_connect()");
  9841. #ifdef HAVE_ERRNO_H
  9842. errno = 0;
  9843. #endif
  9844. if (ssl == NULL)
  9845. return BAD_FUNC_ARG;
  9846. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EITHER_SIDE)
  9847. if (ssl->options.side == WOLFSSL_NEITHER_END) {
  9848. ssl->error = InitSSL_Side(ssl, WOLFSSL_CLIENT_END);
  9849. if (ssl->error != WOLFSSL_SUCCESS) {
  9850. WOLFSSL_ERROR(ssl->error);
  9851. return WOLFSSL_FATAL_ERROR;
  9852. }
  9853. ssl->error = 0; /* expected to be zero here */
  9854. }
  9855. #ifdef OPENSSL_EXTRA
  9856. if (ssl->CBIS != NULL) {
  9857. ssl->CBIS(ssl, SSL_ST_CONNECT, WOLFSSL_SUCCESS);
  9858. ssl->cbmode = SSL_CB_WRITE;
  9859. }
  9860. #endif
  9861. #endif /* OPENSSL_EXTRA || WOLFSSL_EITHER_SIDE */
  9862. #if defined(WOLFSSL_NO_TLS12) && defined(NO_OLD_TLS) && defined(WOLFSSL_TLS13)
  9863. return wolfSSL_connect_TLSv13(ssl);
  9864. #else
  9865. #ifdef WOLFSSL_TLS13
  9866. if (ssl->options.tls1_3)
  9867. return wolfSSL_connect_TLSv13(ssl);
  9868. #endif
  9869. #ifdef WOLFSSL_WOLFSENTRY_HOOKS
  9870. if (ssl->ConnectFilter) {
  9871. wolfSSL_netfilter_decision_t res;
  9872. if ((ssl->ConnectFilter(ssl, ssl->ConnectFilter_arg, &res) ==
  9873. WOLFSSL_SUCCESS) &&
  9874. (res == WOLFSSL_NETFILTER_REJECT)) {
  9875. WOLFSSL_ERROR(ssl->error = SOCKET_FILTERED_E);
  9876. return WOLFSSL_FATAL_ERROR;
  9877. }
  9878. }
  9879. #endif /* WOLFSSL_WOLFSENTRY_HOOKS */
  9880. if (ssl->options.side != WOLFSSL_CLIENT_END) {
  9881. WOLFSSL_ERROR(ssl->error = SIDE_ERROR);
  9882. return WOLFSSL_FATAL_ERROR;
  9883. }
  9884. #ifdef WOLFSSL_DTLS
  9885. if (ssl->version.major == DTLS_MAJOR) {
  9886. ssl->options.dtls = 1;
  9887. ssl->options.tls = 1;
  9888. ssl->options.tls1_1 = 1;
  9889. }
  9890. #endif
  9891. if (ssl->buffers.outputBuffer.length > 0
  9892. #ifdef WOLFSSL_ASYNC_CRYPT
  9893. /* do not send buffered or advance state if last error was an
  9894. async pending operation */
  9895. && ssl->error != WC_PENDING_E
  9896. #endif
  9897. ) {
  9898. if ( (ssl->error = SendBuffered(ssl)) == 0) {
  9899. /* fragOffset is non-zero when sending fragments. On the last
  9900. * fragment, fragOffset is zero again, and the state can be
  9901. * advanced. */
  9902. if (ssl->fragOffset == 0 && !ssl->options.buildingMsg) {
  9903. if (ssl->options.connectState == CONNECT_BEGIN ||
  9904. ssl->options.connectState == HELLO_AGAIN ||
  9905. (ssl->options.connectState >= FIRST_REPLY_DONE &&
  9906. ssl->options.connectState <= FIRST_REPLY_FOURTH)) {
  9907. ssl->options.connectState++;
  9908. WOLFSSL_MSG("connect state: "
  9909. "Advanced from last buffered fragment send");
  9910. }
  9911. #ifdef WOLFSSL_ASYNC_IO
  9912. /* Cleanup async */
  9913. FreeAsyncCtx(ssl, 0);
  9914. #endif
  9915. }
  9916. else {
  9917. WOLFSSL_MSG("connect state: "
  9918. "Not advanced, more fragments to send");
  9919. }
  9920. }
  9921. else {
  9922. WOLFSSL_ERROR(ssl->error);
  9923. return WOLFSSL_FATAL_ERROR;
  9924. }
  9925. }
  9926. switch (ssl->options.connectState) {
  9927. case CONNECT_BEGIN :
  9928. /* always send client hello first */
  9929. if ( (ssl->error = SendClientHello(ssl)) != 0) {
  9930. WOLFSSL_ERROR(ssl->error);
  9931. return WOLFSSL_FATAL_ERROR;
  9932. }
  9933. ssl->options.connectState = CLIENT_HELLO_SENT;
  9934. WOLFSSL_MSG("connect state: CLIENT_HELLO_SENT");
  9935. FALL_THROUGH;
  9936. case CLIENT_HELLO_SENT :
  9937. neededState = ssl->options.resuming ? SERVER_FINISHED_COMPLETE :
  9938. SERVER_HELLODONE_COMPLETE;
  9939. #ifdef WOLFSSL_DTLS
  9940. /* In DTLS, when resuming, we can go straight to FINISHED,
  9941. * or do a cookie exchange and then skip to FINISHED, assume
  9942. * we need the cookie exchange first. */
  9943. if (IsDtlsNotSctpMode(ssl))
  9944. neededState = SERVER_HELLOVERIFYREQUEST_COMPLETE;
  9945. #endif
  9946. /* get response */
  9947. while (ssl->options.serverState < neededState) {
  9948. #ifdef WOLFSSL_TLS13
  9949. if (ssl->options.tls1_3)
  9950. return wolfSSL_connect_TLSv13(ssl);
  9951. #endif
  9952. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  9953. WOLFSSL_ERROR(ssl->error);
  9954. return WOLFSSL_FATAL_ERROR;
  9955. }
  9956. /* if resumption failed, reset needed state */
  9957. else if (neededState == SERVER_FINISHED_COMPLETE)
  9958. if (!ssl->options.resuming) {
  9959. #ifdef WOLFSSL_DTLS
  9960. if (IsDtlsNotSctpMode(ssl))
  9961. neededState = SERVER_HELLOVERIFYREQUEST_COMPLETE;
  9962. else
  9963. #endif
  9964. neededState = SERVER_HELLODONE_COMPLETE;
  9965. }
  9966. }
  9967. ssl->options.connectState = HELLO_AGAIN;
  9968. WOLFSSL_MSG("connect state: HELLO_AGAIN");
  9969. FALL_THROUGH;
  9970. case HELLO_AGAIN :
  9971. if (ssl->options.certOnly)
  9972. return WOLFSSL_SUCCESS;
  9973. #ifdef WOLFSSL_TLS13
  9974. if (ssl->options.tls1_3)
  9975. return wolfSSL_connect_TLSv13(ssl);
  9976. #endif
  9977. #ifdef WOLFSSL_DTLS
  9978. if (ssl->options.serverState ==
  9979. SERVER_HELLOVERIFYREQUEST_COMPLETE) {
  9980. if (IsDtlsNotSctpMode(ssl)) {
  9981. /* re-init hashes, exclude first hello and verify request */
  9982. if ((ssl->error = InitHandshakeHashes(ssl)) != 0) {
  9983. WOLFSSL_ERROR(ssl->error);
  9984. return WOLFSSL_FATAL_ERROR;
  9985. }
  9986. if ( (ssl->error = SendClientHello(ssl)) != 0) {
  9987. WOLFSSL_ERROR(ssl->error);
  9988. return WOLFSSL_FATAL_ERROR;
  9989. }
  9990. }
  9991. }
  9992. #endif
  9993. ssl->options.connectState = HELLO_AGAIN_REPLY;
  9994. WOLFSSL_MSG("connect state: HELLO_AGAIN_REPLY");
  9995. FALL_THROUGH;
  9996. case HELLO_AGAIN_REPLY :
  9997. #ifdef WOLFSSL_DTLS
  9998. if (IsDtlsNotSctpMode(ssl)) {
  9999. neededState = ssl->options.resuming ?
  10000. SERVER_FINISHED_COMPLETE : SERVER_HELLODONE_COMPLETE;
  10001. /* get response */
  10002. while (ssl->options.serverState < neededState) {
  10003. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  10004. WOLFSSL_ERROR(ssl->error);
  10005. return WOLFSSL_FATAL_ERROR;
  10006. }
  10007. /* if resumption failed, reset needed state */
  10008. if (neededState == SERVER_FINISHED_COMPLETE) {
  10009. if (!ssl->options.resuming)
  10010. neededState = SERVER_HELLODONE_COMPLETE;
  10011. }
  10012. }
  10013. }
  10014. #endif
  10015. ssl->options.connectState = FIRST_REPLY_DONE;
  10016. WOLFSSL_MSG("connect state: FIRST_REPLY_DONE");
  10017. FALL_THROUGH;
  10018. case FIRST_REPLY_DONE :
  10019. #if !defined(NO_CERTS) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  10020. #ifdef WOLFSSL_TLS13
  10021. if (ssl->options.tls1_3)
  10022. return wolfSSL_connect_TLSv13(ssl);
  10023. #endif
  10024. if (ssl->options.sendVerify) {
  10025. if ( (ssl->error = SendCertificate(ssl)) != 0) {
  10026. #ifdef WOLFSSL_CHECK_ALERT_ON_ERR
  10027. ProcessReplyEx(ssl, 1); /* See if an alert was sent. */
  10028. #endif
  10029. WOLFSSL_ERROR(ssl->error);
  10030. return WOLFSSL_FATAL_ERROR;
  10031. }
  10032. WOLFSSL_MSG("sent: certificate");
  10033. }
  10034. #endif
  10035. ssl->options.connectState = FIRST_REPLY_FIRST;
  10036. WOLFSSL_MSG("connect state: FIRST_REPLY_FIRST");
  10037. FALL_THROUGH;
  10038. case FIRST_REPLY_FIRST :
  10039. #ifdef WOLFSSL_TLS13
  10040. if (ssl->options.tls1_3)
  10041. return wolfSSL_connect_TLSv13(ssl);
  10042. #endif
  10043. if (!ssl->options.resuming) {
  10044. if ( (ssl->error = SendClientKeyExchange(ssl)) != 0) {
  10045. #ifdef WOLFSSL_CHECK_ALERT_ON_ERR
  10046. ProcessReplyEx(ssl, 1); /* See if an alert was sent. */
  10047. #endif
  10048. WOLFSSL_ERROR(ssl->error);
  10049. return WOLFSSL_FATAL_ERROR;
  10050. }
  10051. WOLFSSL_MSG("sent: client key exchange");
  10052. }
  10053. ssl->options.connectState = FIRST_REPLY_SECOND;
  10054. WOLFSSL_MSG("connect state: FIRST_REPLY_SECOND");
  10055. FALL_THROUGH;
  10056. #if !defined(WOLFSSL_NO_TLS12) || !defined(NO_OLD_TLS)
  10057. case FIRST_REPLY_SECOND :
  10058. /* CLIENT: Fail-safe for Server Authentication. */
  10059. if (!ssl->options.peerAuthGood) {
  10060. WOLFSSL_MSG("Server authentication did not happen");
  10061. return WOLFSSL_FATAL_ERROR;
  10062. }
  10063. #if !defined(NO_CERTS) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  10064. if (ssl->options.sendVerify) {
  10065. if ( (ssl->error = SendCertificateVerify(ssl)) != 0) {
  10066. #ifdef WOLFSSL_CHECK_ALERT_ON_ERR
  10067. ProcessReplyEx(ssl, 1); /* See if an alert was sent. */
  10068. #endif
  10069. WOLFSSL_ERROR(ssl->error);
  10070. return WOLFSSL_FATAL_ERROR;
  10071. }
  10072. WOLFSSL_MSG("sent: certificate verify");
  10073. }
  10074. #endif /* !NO_CERTS && !WOLFSSL_NO_CLIENT_AUTH */
  10075. ssl->options.connectState = FIRST_REPLY_THIRD;
  10076. WOLFSSL_MSG("connect state: FIRST_REPLY_THIRD");
  10077. FALL_THROUGH;
  10078. case FIRST_REPLY_THIRD :
  10079. if ( (ssl->error = SendChangeCipher(ssl)) != 0) {
  10080. #ifdef WOLFSSL_CHECK_ALERT_ON_ERR
  10081. ProcessReplyEx(ssl, 1); /* See if an alert was sent. */
  10082. #endif
  10083. WOLFSSL_ERROR(ssl->error);
  10084. return WOLFSSL_FATAL_ERROR;
  10085. }
  10086. WOLFSSL_MSG("sent: change cipher spec");
  10087. ssl->options.connectState = FIRST_REPLY_FOURTH;
  10088. WOLFSSL_MSG("connect state: FIRST_REPLY_FOURTH");
  10089. FALL_THROUGH;
  10090. case FIRST_REPLY_FOURTH :
  10091. if ( (ssl->error = SendFinished(ssl)) != 0) {
  10092. #ifdef WOLFSSL_CHECK_ALERT_ON_ERR
  10093. ProcessReplyEx(ssl, 1); /* See if an alert was sent. */
  10094. #endif
  10095. WOLFSSL_ERROR(ssl->error);
  10096. return WOLFSSL_FATAL_ERROR;
  10097. }
  10098. WOLFSSL_MSG("sent: finished");
  10099. ssl->options.connectState = FINISHED_DONE;
  10100. WOLFSSL_MSG("connect state: FINISHED_DONE");
  10101. FALL_THROUGH;
  10102. case FINISHED_DONE :
  10103. /* get response */
  10104. while (ssl->options.serverState < SERVER_FINISHED_COMPLETE)
  10105. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  10106. WOLFSSL_ERROR(ssl->error);
  10107. return WOLFSSL_FATAL_ERROR;
  10108. }
  10109. ssl->options.connectState = SECOND_REPLY_DONE;
  10110. WOLFSSL_MSG("connect state: SECOND_REPLY_DONE");
  10111. FALL_THROUGH;
  10112. case SECOND_REPLY_DONE:
  10113. #ifndef NO_HANDSHAKE_DONE_CB
  10114. if (ssl->hsDoneCb) {
  10115. int cbret = ssl->hsDoneCb(ssl, ssl->hsDoneCtx);
  10116. if (cbret < 0) {
  10117. ssl->error = cbret;
  10118. WOLFSSL_MSG("HandShake Done Cb don't continue error");
  10119. return WOLFSSL_FATAL_ERROR;
  10120. }
  10121. }
  10122. #endif /* NO_HANDSHAKE_DONE_CB */
  10123. if (!ssl->options.dtls) {
  10124. if (!ssl->options.keepResources) {
  10125. FreeHandshakeResources(ssl);
  10126. }
  10127. }
  10128. #ifdef WOLFSSL_DTLS
  10129. else {
  10130. ssl->options.dtlsHsRetain = 1;
  10131. }
  10132. #endif /* WOLFSSL_DTLS */
  10133. #if defined(WOLFSSL_ASYNC_CRYPT) && defined(HAVE_SECURE_RENEGOTIATION)
  10134. /* This may be necessary in async so that we don't try to
  10135. * renegotiate again */
  10136. if (ssl->secure_renegotiation && ssl->secure_renegotiation->startScr) {
  10137. ssl->secure_renegotiation->startScr = 0;
  10138. }
  10139. #endif /* WOLFSSL_ASYNC_CRYPT && HAVE_SECURE_RENEGOTIATION */
  10140. #if defined(WOLFSSL_ASYNC_IO) && !defined(WOLFSSL_ASYNC_CRYPT)
  10141. /* Free the remaining async context if not using it for crypto */
  10142. FreeAsyncCtx(ssl, 1);
  10143. #endif
  10144. WOLFSSL_LEAVE("SSL_connect()", WOLFSSL_SUCCESS);
  10145. return WOLFSSL_SUCCESS;
  10146. #endif /* !WOLFSSL_NO_TLS12 || !NO_OLD_TLS */
  10147. default:
  10148. WOLFSSL_MSG("Unknown connect state ERROR");
  10149. return WOLFSSL_FATAL_ERROR; /* unknown connect state */
  10150. }
  10151. #endif /* !WOLFSSL_NO_TLS12 || !NO_OLD_TLS || !WOLFSSL_TLS13 */
  10152. }
  10153. #endif /* NO_WOLFSSL_CLIENT */
  10154. /* server only parts */
  10155. #ifndef NO_WOLFSSL_SERVER
  10156. #ifdef OPENSSL_EXTRA
  10157. WOLFSSL_METHOD* wolfSSLv2_server_method(void)
  10158. {
  10159. WOLFSSL_STUB("wolfSSLv2_server_method");
  10160. return 0;
  10161. }
  10162. #endif
  10163. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  10164. WOLFSSL_METHOD* wolfSSLv3_server_method(void)
  10165. {
  10166. return wolfSSLv3_server_method_ex(NULL);
  10167. }
  10168. WOLFSSL_METHOD* wolfSSLv3_server_method_ex(void* heap)
  10169. {
  10170. WOLFSSL_METHOD* method =
  10171. (WOLFSSL_METHOD*) XMALLOC(sizeof(WOLFSSL_METHOD),
  10172. heap, DYNAMIC_TYPE_METHOD);
  10173. (void)heap;
  10174. WOLFSSL_ENTER("SSLv3_server_method_ex");
  10175. if (method) {
  10176. InitSSL_Method(method, MakeSSLv3());
  10177. method->side = WOLFSSL_SERVER_END;
  10178. }
  10179. return method;
  10180. }
  10181. #endif /* WOLFSSL_ALLOW_SSLV3 && !NO_OLD_TLS */
  10182. WOLFSSL_METHOD* wolfSSLv23_server_method(void)
  10183. {
  10184. return wolfSSLv23_server_method_ex(NULL);
  10185. }
  10186. WOLFSSL_METHOD* wolfSSLv23_server_method_ex(void* heap)
  10187. {
  10188. WOLFSSL_METHOD* method =
  10189. (WOLFSSL_METHOD*) XMALLOC(sizeof(WOLFSSL_METHOD),
  10190. heap, DYNAMIC_TYPE_METHOD);
  10191. (void)heap;
  10192. WOLFSSL_ENTER("SSLv23_server_method_ex");
  10193. if (method) {
  10194. #if !defined(NO_SHA256) || defined(WOLFSSL_SHA384) || defined(WOLFSSL_SHA512)
  10195. #ifdef WOLFSSL_TLS13
  10196. InitSSL_Method(method, MakeTLSv1_3());
  10197. #elif !defined(WOLFSSL_NO_TLS12)
  10198. InitSSL_Method(method, MakeTLSv1_2());
  10199. #elif !defined(NO_OLD_TLS)
  10200. InitSSL_Method(method, MakeTLSv1_1());
  10201. #endif
  10202. #else
  10203. #ifndef NO_OLD_TLS
  10204. InitSSL_Method(method, MakeTLSv1_1());
  10205. #else
  10206. #error Must have SHA256, SHA384 or SHA512 enabled for TLS 1.2
  10207. #endif
  10208. #endif
  10209. #if !defined(NO_OLD_TLS) || defined(WOLFSSL_TLS13)
  10210. method->downgrade = 1;
  10211. #endif
  10212. method->side = WOLFSSL_SERVER_END;
  10213. }
  10214. return method;
  10215. }
  10216. WOLFSSL_ABI
  10217. int wolfSSL_accept(WOLFSSL* ssl)
  10218. {
  10219. #if !(defined(WOLFSSL_NO_TLS12) && defined(NO_OLD_TLS) && defined(WOLFSSL_TLS13))
  10220. word16 havePSK = 0;
  10221. word16 haveAnon = 0;
  10222. word16 haveMcast = 0;
  10223. #endif
  10224. if (ssl == NULL)
  10225. return WOLFSSL_FATAL_ERROR;
  10226. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EITHER_SIDE)
  10227. if (ssl->options.side == WOLFSSL_NEITHER_END) {
  10228. WOLFSSL_MSG("Setting WOLFSSL_SSL to be server side");
  10229. ssl->error = InitSSL_Side(ssl, WOLFSSL_SERVER_END);
  10230. if (ssl->error != WOLFSSL_SUCCESS) {
  10231. WOLFSSL_ERROR(ssl->error);
  10232. return WOLFSSL_FATAL_ERROR;
  10233. }
  10234. ssl->error = 0; /* expected to be zero here */
  10235. }
  10236. #endif /* OPENSSL_EXTRA || WOLFSSL_EITHER_SIDE */
  10237. #if defined(WOLFSSL_NO_TLS12) && defined(NO_OLD_TLS) && defined(WOLFSSL_TLS13)
  10238. return wolfSSL_accept_TLSv13(ssl);
  10239. #else
  10240. #ifdef WOLFSSL_TLS13
  10241. if (ssl->options.tls1_3)
  10242. return wolfSSL_accept_TLSv13(ssl);
  10243. #endif
  10244. WOLFSSL_ENTER("SSL_accept()");
  10245. #ifdef WOLFSSL_WOLFSENTRY_HOOKS
  10246. if (ssl->AcceptFilter) {
  10247. wolfSSL_netfilter_decision_t res;
  10248. if ((ssl->AcceptFilter(ssl, ssl->AcceptFilter_arg, &res) ==
  10249. WOLFSSL_SUCCESS) &&
  10250. (res == WOLFSSL_NETFILTER_REJECT)) {
  10251. WOLFSSL_ERROR(ssl->error = SOCKET_FILTERED_E);
  10252. return WOLFSSL_FATAL_ERROR;
  10253. }
  10254. }
  10255. #endif /* WOLFSSL_WOLFSENTRY_HOOKS */
  10256. #ifdef HAVE_ERRNO_H
  10257. errno = 0;
  10258. #endif
  10259. #ifndef NO_PSK
  10260. havePSK = ssl->options.havePSK;
  10261. #endif
  10262. (void)havePSK;
  10263. #ifdef HAVE_ANON
  10264. haveAnon = ssl->options.haveAnon;
  10265. #endif
  10266. (void)haveAnon;
  10267. #ifdef WOLFSSL_MULTICAST
  10268. haveMcast = ssl->options.haveMcast;
  10269. #endif
  10270. (void)haveMcast;
  10271. if (ssl->options.side != WOLFSSL_SERVER_END) {
  10272. WOLFSSL_ERROR(ssl->error = SIDE_ERROR);
  10273. return WOLFSSL_FATAL_ERROR;
  10274. }
  10275. #ifndef NO_CERTS
  10276. /* in case used set_accept_state after init */
  10277. if (!havePSK && !haveAnon && !haveMcast) {
  10278. #ifdef OPENSSL_EXTRA
  10279. if (ssl->ctx->certSetupCb != NULL) {
  10280. WOLFSSL_MSG("CertSetupCb set. server cert and "
  10281. "key not checked");
  10282. }
  10283. else
  10284. #endif
  10285. {
  10286. if (!ssl->buffers.certificate ||
  10287. !ssl->buffers.certificate->buffer) {
  10288. WOLFSSL_MSG("accept error: server cert required");
  10289. ssl->error = NO_PRIVATE_KEY;
  10290. WOLFSSL_ERROR(ssl->error);
  10291. return WOLFSSL_FATAL_ERROR;
  10292. }
  10293. if (!ssl->buffers.key || !ssl->buffers.key->buffer) {
  10294. /* allow no private key if using existing key */
  10295. #ifdef WOLF_PRIVATE_KEY_ID
  10296. if (ssl->devId != INVALID_DEVID
  10297. #ifdef HAVE_PK_CALLBACKS
  10298. || wolfSSL_CTX_IsPrivatePkSet(ssl->ctx)
  10299. #endif
  10300. ) {
  10301. WOLFSSL_MSG("Allowing no server private key "
  10302. "(external)");
  10303. }
  10304. else
  10305. #endif
  10306. {
  10307. WOLFSSL_MSG("accept error: server key required");
  10308. WOLFSSL_ERROR(ssl->error = NO_PRIVATE_KEY);
  10309. return WOLFSSL_FATAL_ERROR;
  10310. }
  10311. }
  10312. }
  10313. }
  10314. #endif
  10315. #ifdef WOLFSSL_DTLS
  10316. if (ssl->version.major == DTLS_MAJOR) {
  10317. ssl->options.dtls = 1;
  10318. ssl->options.tls = 1;
  10319. ssl->options.tls1_1 = 1;
  10320. }
  10321. #endif
  10322. if (ssl->buffers.outputBuffer.length > 0
  10323. #ifdef WOLFSSL_ASYNC_CRYPT
  10324. /* do not send buffered or advance state if last error was an
  10325. async pending operation */
  10326. && ssl->error != WC_PENDING_E
  10327. #endif
  10328. ) {
  10329. if ( (ssl->error = SendBuffered(ssl)) == 0) {
  10330. /* fragOffset is non-zero when sending fragments. On the last
  10331. * fragment, fragOffset is zero again, and the state can be
  10332. * advanced. */
  10333. if (ssl->fragOffset == 0 && !ssl->options.buildingMsg) {
  10334. if (ssl->options.acceptState == ACCEPT_FIRST_REPLY_DONE ||
  10335. ssl->options.acceptState == SERVER_HELLO_SENT ||
  10336. ssl->options.acceptState == CERT_SENT ||
  10337. ssl->options.acceptState == CERT_STATUS_SENT ||
  10338. ssl->options.acceptState == KEY_EXCHANGE_SENT ||
  10339. ssl->options.acceptState == CERT_REQ_SENT ||
  10340. ssl->options.acceptState == ACCEPT_SECOND_REPLY_DONE ||
  10341. ssl->options.acceptState == TICKET_SENT ||
  10342. ssl->options.acceptState == CHANGE_CIPHER_SENT) {
  10343. ssl->options.acceptState++;
  10344. WOLFSSL_MSG("accept state: "
  10345. "Advanced from last buffered fragment send");
  10346. }
  10347. #ifdef WOLFSSL_ASYNC_IO
  10348. /* Cleanup async */
  10349. FreeAsyncCtx(ssl, 0);
  10350. #endif
  10351. }
  10352. else {
  10353. WOLFSSL_MSG("accept state: "
  10354. "Not advanced, more fragments to send");
  10355. }
  10356. }
  10357. else {
  10358. WOLFSSL_ERROR(ssl->error);
  10359. return WOLFSSL_FATAL_ERROR;
  10360. }
  10361. }
  10362. switch (ssl->options.acceptState) {
  10363. case ACCEPT_BEGIN :
  10364. #ifdef HAVE_SECURE_RENEGOTIATION
  10365. case ACCEPT_BEGIN_RENEG:
  10366. #endif
  10367. /* get response */
  10368. while (ssl->options.clientState < CLIENT_HELLO_COMPLETE)
  10369. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  10370. WOLFSSL_ERROR(ssl->error);
  10371. return WOLFSSL_FATAL_ERROR;
  10372. }
  10373. #ifdef WOLFSSL_TLS13
  10374. ssl->options.acceptState = ACCEPT_CLIENT_HELLO_DONE;
  10375. WOLFSSL_MSG("accept state ACCEPT_CLIENT_HELLO_DONE");
  10376. FALL_THROUGH;
  10377. case ACCEPT_CLIENT_HELLO_DONE :
  10378. if (ssl->options.tls1_3) {
  10379. return wolfSSL_accept_TLSv13(ssl);
  10380. }
  10381. #endif
  10382. ssl->options.acceptState = ACCEPT_FIRST_REPLY_DONE;
  10383. WOLFSSL_MSG("accept state ACCEPT_FIRST_REPLY_DONE");
  10384. FALL_THROUGH;
  10385. case ACCEPT_FIRST_REPLY_DONE :
  10386. if ( (ssl->error = SendServerHello(ssl)) != 0) {
  10387. WOLFSSL_ERROR(ssl->error);
  10388. return WOLFSSL_FATAL_ERROR;
  10389. }
  10390. ssl->options.acceptState = SERVER_HELLO_SENT;
  10391. WOLFSSL_MSG("accept state SERVER_HELLO_SENT");
  10392. FALL_THROUGH;
  10393. case SERVER_HELLO_SENT :
  10394. #ifdef WOLFSSL_TLS13
  10395. if (ssl->options.tls1_3) {
  10396. return wolfSSL_accept_TLSv13(ssl);
  10397. }
  10398. #endif
  10399. #ifndef NO_CERTS
  10400. if (!ssl->options.resuming)
  10401. if ( (ssl->error = SendCertificate(ssl)) != 0) {
  10402. WOLFSSL_ERROR(ssl->error);
  10403. return WOLFSSL_FATAL_ERROR;
  10404. }
  10405. #endif
  10406. ssl->options.acceptState = CERT_SENT;
  10407. WOLFSSL_MSG("accept state CERT_SENT");
  10408. FALL_THROUGH;
  10409. case CERT_SENT :
  10410. #ifndef NO_CERTS
  10411. if (!ssl->options.resuming)
  10412. if ( (ssl->error = SendCertificateStatus(ssl)) != 0) {
  10413. WOLFSSL_ERROR(ssl->error);
  10414. return WOLFSSL_FATAL_ERROR;
  10415. }
  10416. #endif
  10417. ssl->options.acceptState = CERT_STATUS_SENT;
  10418. WOLFSSL_MSG("accept state CERT_STATUS_SENT");
  10419. FALL_THROUGH;
  10420. case CERT_STATUS_SENT :
  10421. #ifdef WOLFSSL_TLS13
  10422. if (ssl->options.tls1_3) {
  10423. return wolfSSL_accept_TLSv13(ssl);
  10424. }
  10425. #endif
  10426. if (!ssl->options.resuming)
  10427. if ( (ssl->error = SendServerKeyExchange(ssl)) != 0) {
  10428. WOLFSSL_ERROR(ssl->error);
  10429. return WOLFSSL_FATAL_ERROR;
  10430. }
  10431. ssl->options.acceptState = KEY_EXCHANGE_SENT;
  10432. WOLFSSL_MSG("accept state KEY_EXCHANGE_SENT");
  10433. FALL_THROUGH;
  10434. case KEY_EXCHANGE_SENT :
  10435. #ifndef NO_CERTS
  10436. if (!ssl->options.resuming) {
  10437. if (ssl->options.verifyPeer) {
  10438. if ( (ssl->error = SendCertificateRequest(ssl)) != 0) {
  10439. WOLFSSL_ERROR(ssl->error);
  10440. return WOLFSSL_FATAL_ERROR;
  10441. }
  10442. }
  10443. else {
  10444. /* SERVER: Peer auth good if not verifying client. */
  10445. ssl->options.peerAuthGood = 1;
  10446. }
  10447. }
  10448. #endif
  10449. ssl->options.acceptState = CERT_REQ_SENT;
  10450. WOLFSSL_MSG("accept state CERT_REQ_SENT");
  10451. FALL_THROUGH;
  10452. case CERT_REQ_SENT :
  10453. if (!ssl->options.resuming)
  10454. if ( (ssl->error = SendServerHelloDone(ssl)) != 0) {
  10455. WOLFSSL_ERROR(ssl->error);
  10456. return WOLFSSL_FATAL_ERROR;
  10457. }
  10458. ssl->options.acceptState = SERVER_HELLO_DONE;
  10459. WOLFSSL_MSG("accept state SERVER_HELLO_DONE");
  10460. FALL_THROUGH;
  10461. case SERVER_HELLO_DONE :
  10462. if (!ssl->options.resuming) {
  10463. while (ssl->options.clientState < CLIENT_FINISHED_COMPLETE)
  10464. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  10465. WOLFSSL_ERROR(ssl->error);
  10466. return WOLFSSL_FATAL_ERROR;
  10467. }
  10468. }
  10469. ssl->options.acceptState = ACCEPT_SECOND_REPLY_DONE;
  10470. WOLFSSL_MSG("accept state ACCEPT_SECOND_REPLY_DONE");
  10471. FALL_THROUGH;
  10472. case ACCEPT_SECOND_REPLY_DONE :
  10473. #ifndef NO_CERTS
  10474. /* SERVER: When not resuming and verifying peer but no certificate
  10475. * received and not failing when not received then peer auth good.
  10476. */
  10477. if (!ssl->options.resuming && ssl->options.verifyPeer &&
  10478. !ssl->options.havePeerCert && !ssl->options.failNoCert) {
  10479. ssl->options.peerAuthGood = 1;
  10480. }
  10481. #endif /* !NO_CERTS */
  10482. #ifdef WOLFSSL_NO_CLIENT_AUTH
  10483. if (!ssl->options.resuming) {
  10484. ssl->options.peerAuthGood = 1;
  10485. }
  10486. #endif
  10487. #ifdef HAVE_SESSION_TICKET
  10488. if (ssl->options.createTicket && !ssl->options.noTicketTls12) {
  10489. if ( (ssl->error = SendTicket(ssl)) != 0) {
  10490. WOLFSSL_ERROR(ssl->error);
  10491. return WOLFSSL_FATAL_ERROR;
  10492. }
  10493. }
  10494. #endif /* HAVE_SESSION_TICKET */
  10495. ssl->options.acceptState = TICKET_SENT;
  10496. WOLFSSL_MSG("accept state TICKET_SENT");
  10497. FALL_THROUGH;
  10498. case TICKET_SENT:
  10499. /* SERVER: Fail-safe for CLient Authentication. */
  10500. if (!ssl->options.peerAuthGood) {
  10501. WOLFSSL_MSG("Client authentication did not happen");
  10502. return WOLFSSL_FATAL_ERROR;
  10503. }
  10504. if ( (ssl->error = SendChangeCipher(ssl)) != 0) {
  10505. WOLFSSL_ERROR(ssl->error);
  10506. return WOLFSSL_FATAL_ERROR;
  10507. }
  10508. ssl->options.acceptState = CHANGE_CIPHER_SENT;
  10509. WOLFSSL_MSG("accept state CHANGE_CIPHER_SENT");
  10510. FALL_THROUGH;
  10511. case CHANGE_CIPHER_SENT :
  10512. if ( (ssl->error = SendFinished(ssl)) != 0) {
  10513. WOLFSSL_ERROR(ssl->error);
  10514. return WOLFSSL_FATAL_ERROR;
  10515. }
  10516. ssl->options.acceptState = ACCEPT_FINISHED_DONE;
  10517. WOLFSSL_MSG("accept state ACCEPT_FINISHED_DONE");
  10518. FALL_THROUGH;
  10519. case ACCEPT_FINISHED_DONE :
  10520. if (ssl->options.resuming)
  10521. while (ssl->options.clientState < CLIENT_FINISHED_COMPLETE)
  10522. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  10523. WOLFSSL_ERROR(ssl->error);
  10524. return WOLFSSL_FATAL_ERROR;
  10525. }
  10526. ssl->options.acceptState = ACCEPT_THIRD_REPLY_DONE;
  10527. WOLFSSL_MSG("accept state ACCEPT_THIRD_REPLY_DONE");
  10528. FALL_THROUGH;
  10529. case ACCEPT_THIRD_REPLY_DONE :
  10530. #ifndef NO_HANDSHAKE_DONE_CB
  10531. if (ssl->hsDoneCb) {
  10532. int cbret = ssl->hsDoneCb(ssl, ssl->hsDoneCtx);
  10533. if (cbret < 0) {
  10534. ssl->error = cbret;
  10535. WOLFSSL_MSG("HandShake Done Cb don't continue error");
  10536. return WOLFSSL_FATAL_ERROR;
  10537. }
  10538. }
  10539. #endif /* NO_HANDSHAKE_DONE_CB */
  10540. if (!ssl->options.dtls) {
  10541. if (!ssl->options.keepResources) {
  10542. FreeHandshakeResources(ssl);
  10543. }
  10544. }
  10545. #ifdef WOLFSSL_DTLS
  10546. else {
  10547. ssl->options.dtlsHsRetain = 1;
  10548. }
  10549. #endif /* WOLFSSL_DTLS */
  10550. #if defined(WOLFSSL_ASYNC_CRYPT) && defined(HAVE_SECURE_RENEGOTIATION)
  10551. /* This may be necessary in async so that we don't try to
  10552. * renegotiate again */
  10553. if (ssl->secure_renegotiation && ssl->secure_renegotiation->startScr) {
  10554. ssl->secure_renegotiation->startScr = 0;
  10555. }
  10556. #endif /* WOLFSSL_ASYNC_CRYPT && HAVE_SECURE_RENEGOTIATION */
  10557. #if defined(WOLFSSL_ASYNC_IO) && !defined(WOLFSSL_ASYNC_CRYPT)
  10558. /* Free the remaining async context if not using it for crypto */
  10559. FreeAsyncCtx(ssl, 1);
  10560. #endif
  10561. #if defined(WOLFSSL_SESSION_EXPORT) && defined(WOLFSSL_DTLS)
  10562. if (ssl->dtls_export) {
  10563. if ((ssl->error = wolfSSL_send_session(ssl)) != 0) {
  10564. WOLFSSL_MSG("Export DTLS session error");
  10565. WOLFSSL_ERROR(ssl->error);
  10566. return WOLFSSL_FATAL_ERROR;
  10567. }
  10568. }
  10569. #endif
  10570. WOLFSSL_LEAVE("SSL_accept()", WOLFSSL_SUCCESS);
  10571. return WOLFSSL_SUCCESS;
  10572. default :
  10573. WOLFSSL_MSG("Unknown accept state ERROR");
  10574. return WOLFSSL_FATAL_ERROR;
  10575. }
  10576. #endif /* !WOLFSSL_NO_TLS12 */
  10577. }
  10578. #endif /* NO_WOLFSSL_SERVER */
  10579. #ifndef NO_HANDSHAKE_DONE_CB
  10580. int wolfSSL_SetHsDoneCb(WOLFSSL* ssl, HandShakeDoneCb cb, void* user_ctx)
  10581. {
  10582. WOLFSSL_ENTER("wolfSSL_SetHsDoneCb");
  10583. if (ssl == NULL)
  10584. return BAD_FUNC_ARG;
  10585. ssl->hsDoneCb = cb;
  10586. ssl->hsDoneCtx = user_ctx;
  10587. return WOLFSSL_SUCCESS;
  10588. }
  10589. #endif /* NO_HANDSHAKE_DONE_CB */
  10590. WOLFSSL_ABI
  10591. int wolfSSL_Cleanup(void)
  10592. {
  10593. int ret = WOLFSSL_SUCCESS; /* Only the first error will be returned */
  10594. int release = 0;
  10595. #if !defined(NO_SESSION_CACHE) && defined(ENABLE_SESSION_CACHE_ROW_LOCK)
  10596. int i;
  10597. #endif
  10598. WOLFSSL_ENTER("wolfSSL_Cleanup");
  10599. if (initRefCount == 0)
  10600. return ret; /* possibly no init yet, but not failure either way */
  10601. if ((count_mutex_valid == 1) && (wc_LockMutex(&count_mutex) != 0)) {
  10602. WOLFSSL_MSG("Bad Lock Mutex count");
  10603. ret = BAD_MUTEX_E;
  10604. }
  10605. release = initRefCount-- == 1;
  10606. if (initRefCount < 0)
  10607. initRefCount = 0;
  10608. if (count_mutex_valid == 1) {
  10609. wc_UnLockMutex(&count_mutex);
  10610. }
  10611. if (!release)
  10612. return ret;
  10613. #ifdef OPENSSL_EXTRA
  10614. if (bn_one) {
  10615. wolfSSL_BN_free(bn_one);
  10616. bn_one = NULL;
  10617. }
  10618. #endif
  10619. #ifndef NO_SESSION_CACHE
  10620. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  10621. for (i = 0; i < SESSION_ROWS; ++i) {
  10622. if ((SessionCache[i].mutex_valid == 1) &&
  10623. (wc_FreeMutex(&SessionCache[i].row_mutex) != 0)) {
  10624. if (ret == WOLFSSL_SUCCESS)
  10625. ret = BAD_MUTEX_E;
  10626. }
  10627. SessionCache[i].mutex_valid = 0;
  10628. }
  10629. #else
  10630. if ((session_mutex_valid == 1) && (wc_FreeMutex(&session_mutex) != 0)) {
  10631. if (ret == WOLFSSL_SUCCESS)
  10632. ret = BAD_MUTEX_E;
  10633. }
  10634. session_mutex_valid = 0;
  10635. #endif
  10636. #ifndef NO_CLIENT_CACHE
  10637. if ((clisession_mutex_valid == 1) &&
  10638. (wc_FreeMutex(&clisession_mutex) != 0)) {
  10639. if (ret == WOLFSSL_SUCCESS)
  10640. ret = BAD_MUTEX_E;
  10641. }
  10642. clisession_mutex_valid = 0;
  10643. #endif
  10644. #endif /* !NO_SESSION_CACHE */
  10645. if ((count_mutex_valid == 1) && (wc_FreeMutex(&count_mutex) != 0)) {
  10646. if (ret == WOLFSSL_SUCCESS)
  10647. ret = BAD_MUTEX_E;
  10648. }
  10649. count_mutex_valid = 0;
  10650. #ifdef OPENSSL_EXTRA
  10651. wolfSSL_RAND_Cleanup();
  10652. #endif
  10653. if (wolfCrypt_Cleanup() != 0) {
  10654. WOLFSSL_MSG("Error with wolfCrypt_Cleanup call");
  10655. if (ret == WOLFSSL_SUCCESS)
  10656. ret = WC_CLEANUP_E;
  10657. }
  10658. #if FIPS_VERSION_GE(5,1)
  10659. if (wolfCrypt_SetPrivateKeyReadEnable_fips(0, WC_KEYTYPE_ALL) < 0) {
  10660. if (ret == WOLFSSL_SUCCESS)
  10661. ret = WC_CLEANUP_E;
  10662. }
  10663. #endif
  10664. #ifdef HAVE_GLOBAL_RNG
  10665. if ((globalRNGMutex_valid == 1) && (wc_FreeMutex(&globalRNGMutex) != 0)) {
  10666. if (ret == WOLFSSL_SUCCESS)
  10667. ret = BAD_MUTEX_E;
  10668. }
  10669. globalRNGMutex_valid = 0;
  10670. #if defined(OPENSSL_EXTRA) && defined(HAVE_HASHDRBG)
  10671. wolfSSL_FIPS_drbg_free(gDrbgDefCtx);
  10672. gDrbgDefCtx = NULL;
  10673. #endif
  10674. #endif
  10675. return ret;
  10676. }
  10677. #ifndef NO_SESSION_CACHE
  10678. /* some session IDs aren't random after all, let's make them random */
  10679. static WC_INLINE word32 HashSession(const byte* sessionID, word32 len, int* error)
  10680. {
  10681. byte digest[WC_MAX_DIGEST_SIZE];
  10682. #ifndef NO_MD5
  10683. *error = wc_Md5Hash(sessionID, len, digest);
  10684. #elif !defined(NO_SHA)
  10685. *error = wc_ShaHash(sessionID, len, digest);
  10686. #elif !defined(NO_SHA256)
  10687. *error = wc_Sha256Hash(sessionID, len, digest);
  10688. #else
  10689. #error "We need a digest to hash the session IDs"
  10690. #endif
  10691. return *error == 0 ? MakeWordFromHash(digest) : 0; /* 0 on failure */
  10692. }
  10693. WOLFSSL_ABI
  10694. void wolfSSL_flush_sessions(WOLFSSL_CTX* ctx, long tm)
  10695. {
  10696. /* static table now, no flushing needed */
  10697. (void)ctx;
  10698. (void)tm;
  10699. }
  10700. /* set ssl session timeout in seconds */
  10701. WOLFSSL_ABI
  10702. int wolfSSL_set_timeout(WOLFSSL* ssl, unsigned int to)
  10703. {
  10704. if (ssl == NULL)
  10705. return BAD_FUNC_ARG;
  10706. if (to == 0)
  10707. to = WOLFSSL_SESSION_TIMEOUT;
  10708. ssl->timeout = to;
  10709. return WOLFSSL_SUCCESS;
  10710. }
  10711. /**
  10712. * Sets ctx session timeout in seconds.
  10713. * The timeout value set here should be reflected in the
  10714. * "session ticket lifetime hint" if this API works in the openssl compat-layer.
  10715. * Therefore wolfSSL_CTX_set_TicketHint is called internally.
  10716. * Arguments:
  10717. * - ctx WOLFSSL_CTX object which the timeout is set to
  10718. * - to timeout value in second
  10719. * Returns:
  10720. * WOLFSSL_SUCCESS on success, BAD_FUNC_ARG on failure.
  10721. * When WOLFSSL_ERROR_CODE_OPENSSL is defined, returns previous timeout value
  10722. * on success, BAD_FUNC_ARG on failure.
  10723. */
  10724. WOLFSSL_ABI
  10725. int wolfSSL_CTX_set_timeout(WOLFSSL_CTX* ctx, unsigned int to)
  10726. {
  10727. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  10728. word32 prev_timeout = 0;
  10729. #endif
  10730. int ret = WOLFSSL_SUCCESS;
  10731. (void)ret;
  10732. if (ctx == NULL)
  10733. ret = BAD_FUNC_ARG;
  10734. if (ret == WOLFSSL_SUCCESS) {
  10735. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  10736. prev_timeout = ctx->timeout;
  10737. #endif
  10738. if (to == 0) {
  10739. ctx->timeout = WOLFSSL_SESSION_TIMEOUT;
  10740. }
  10741. else {
  10742. ctx->timeout = to;
  10743. }
  10744. }
  10745. #if defined(OPENSSL_EXTRA) && defined(HAVE_SESSION_TICKET) && \
  10746. !defined(NO_WOLFSSL_SERVER)
  10747. if (ret == WOLFSSL_SUCCESS) {
  10748. if (to == 0) {
  10749. ret = wolfSSL_CTX_set_TicketHint(ctx, SESSION_TICKET_HINT_DEFAULT);
  10750. }
  10751. else {
  10752. ret = wolfSSL_CTX_set_TicketHint(ctx, to);
  10753. }
  10754. }
  10755. #endif /* OPENSSL_EXTRA && HAVE_SESSION_TICKET && !NO_WOLFSSL_SERVER */
  10756. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  10757. if (ret == WOLFSSL_SUCCESS) {
  10758. return prev_timeout;
  10759. }
  10760. else {
  10761. return ret;
  10762. }
  10763. #else
  10764. return ret;
  10765. #endif /* WOLFSSL_ERROR_CODE_OPENSSL */
  10766. }
  10767. #ifndef NO_CLIENT_CACHE
  10768. /* Get Session from Client cache based on id/len, return NULL on failure */
  10769. WOLFSSL_SESSION* wolfSSL_GetSessionClient(WOLFSSL* ssl, const byte* id, int len)
  10770. {
  10771. WOLFSSL_SESSION* ret = NULL;
  10772. word32 row;
  10773. int idx;
  10774. int count;
  10775. int error = 0;
  10776. ClientSession* clSess;
  10777. WOLFSSL_ENTER("GetSessionClient");
  10778. if (ssl->ctx->sessionCacheOff) {
  10779. WOLFSSL_MSG("Session Cache off");
  10780. return NULL;
  10781. }
  10782. if (ssl->options.side == WOLFSSL_SERVER_END)
  10783. return NULL;
  10784. len = min(SERVER_ID_LEN, (word32)len);
  10785. #ifdef HAVE_EXT_CACHE
  10786. if (ssl->ctx->get_sess_cb != NULL) {
  10787. int copy = 0;
  10788. WOLFSSL_MSG("Calling external session cache");
  10789. ret = ssl->ctx->get_sess_cb(ssl, (byte*)id, len, &copy);
  10790. if (ret != NULL) {
  10791. WOLFSSL_MSG("Session found in external cache");
  10792. return ret;
  10793. }
  10794. WOLFSSL_MSG("Session not found in external cache");
  10795. }
  10796. if (ssl->ctx->internalCacheLookupOff) {
  10797. WOLFSSL_MSG("Internal cache turned off");
  10798. return NULL;
  10799. }
  10800. #endif
  10801. row = HashSession(id, len, &error) % CLIENT_SESSION_ROWS;
  10802. if (error != 0) {
  10803. WOLFSSL_MSG("Hash session failed");
  10804. return NULL;
  10805. }
  10806. if (wc_LockMutex(&clisession_mutex) != 0) {
  10807. WOLFSSL_MSG("Client cache mutex lock failed");
  10808. return NULL;
  10809. }
  10810. /* start from most recently used */
  10811. count = min((word32)ClientCache[row].totalCount, CLIENT_SESSIONS_PER_ROW);
  10812. idx = ClientCache[row].nextIdx - 1;
  10813. if (idx < 0 || idx >= CLIENT_SESSIONS_PER_ROW) {
  10814. idx = CLIENT_SESSIONS_PER_ROW - 1; /* if back to front, the previous was end */
  10815. }
  10816. clSess = ClientCache[row].Clients;
  10817. for (; count > 0; --count) {
  10818. WOLFSSL_SESSION* current;
  10819. SessionRow* sessRow;
  10820. if (clSess[idx].serverRow >= SESSION_ROWS) {
  10821. WOLFSSL_MSG("Client cache serverRow invalid");
  10822. break;
  10823. }
  10824. /* lock row */
  10825. sessRow = &SessionCache[clSess[idx].serverRow];
  10826. if (SESSION_ROW_LOCK(sessRow) != 0) {
  10827. WOLFSSL_MSG("Session cache row lock failure");
  10828. break;
  10829. }
  10830. current = &sessRow->Sessions[clSess[idx].serverIdx];
  10831. if (XMEMCMP(current->serverID, id, len) == 0) {
  10832. WOLFSSL_MSG("Found a serverid match for client");
  10833. if (LowResTimer() < (current->bornOn + current->timeout)) {
  10834. WOLFSSL_MSG("Session valid");
  10835. ret = current;
  10836. SESSION_ROW_UNLOCK(sessRow);
  10837. break;
  10838. } else {
  10839. WOLFSSL_MSG("Session timed out"); /* could have more for id */
  10840. }
  10841. } else {
  10842. WOLFSSL_MSG("ServerID not a match from client table");
  10843. }
  10844. SESSION_ROW_UNLOCK(sessRow);
  10845. idx = idx > 0 ? idx - 1 : CLIENT_SESSIONS_PER_ROW - 1;
  10846. }
  10847. wc_UnLockMutex(&clisession_mutex);
  10848. return ret;
  10849. }
  10850. #endif /* !NO_CLIENT_CACHE */
  10851. static int SslSessionCacheOff(const WOLFSSL* ssl, const WOLFSSL_SESSION* session)
  10852. {
  10853. (void)session;
  10854. return ssl->options.sessionCacheOff
  10855. #if defined(HAVE_SESSION_TICKET) && defined(WOLFSSL_FORCE_CACHE_ON_TICKET)
  10856. && session->ticketLen == 0
  10857. #endif
  10858. #ifdef OPENSSL_EXTRA
  10859. && ssl->options.side != WOLFSSL_CLIENT_END
  10860. #endif
  10861. ;
  10862. }
  10863. int wolfSSL_GetSessionFromCache(WOLFSSL* ssl, WOLFSSL_SESSION* output)
  10864. {
  10865. WOLFSSL_SESSION* sess = NULL;
  10866. const byte* id = NULL;
  10867. word32 row;
  10868. int idx;
  10869. int count;
  10870. int error = 0;
  10871. SessionRow* sessRow;
  10872. #ifdef HAVE_SESSION_TICKET
  10873. #ifndef WOLFSSL_SMALL_STACK
  10874. byte tmpTicket[PREALLOC_SESSION_TICKET_LEN];
  10875. #else
  10876. byte* tmpTicket = NULL;
  10877. #endif
  10878. byte tmpBufSet = 0;
  10879. #endif
  10880. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  10881. WOLFSSL_X509* peer = NULL;
  10882. #endif
  10883. byte bogusID[ID_LEN];
  10884. byte bogusIDSz = 0;
  10885. WOLFSSL_ENTER("wolfSSL_GetSessionFromCache");
  10886. if (output == NULL) {
  10887. WOLFSSL_MSG("NULL output");
  10888. return WOLFSSL_FAILURE;
  10889. }
  10890. if (SslSessionCacheOff(ssl, ssl->session))
  10891. return WOLFSSL_FAILURE;
  10892. if (ssl->options.haveSessionId == 0)
  10893. return WOLFSSL_FAILURE;
  10894. #ifdef HAVE_SESSION_TICKET
  10895. if (ssl->options.side == WOLFSSL_SERVER_END && ssl->options.useTicket == 1)
  10896. return WOLFSSL_FAILURE;
  10897. #endif
  10898. XMEMSET(bogusID, 0, sizeof(bogusID));
  10899. if (!IsAtLeastTLSv1_3(ssl->version) && ssl->arrays != NULL)
  10900. id = ssl->arrays->sessionID;
  10901. else if (ssl->session->haveAltSessionID) {
  10902. id = ssl->session->altSessionID;
  10903. /* We want to restore the bogus ID for TLS compatibility */
  10904. if (output == ssl->session) {
  10905. XMEMCPY(bogusID, ssl->session->sessionID, ID_LEN);
  10906. bogusIDSz = ssl->session->sessionIDSz;
  10907. }
  10908. }
  10909. else
  10910. id = ssl->session->sessionID;
  10911. #ifdef HAVE_EXT_CACHE
  10912. if (ssl->ctx->get_sess_cb != NULL) {
  10913. int copy = 0;
  10914. /* Attempt to retrieve the session from the external cache. */
  10915. WOLFSSL_MSG("Calling external session cache");
  10916. sess = ssl->ctx->get_sess_cb(ssl, (byte*)id, ID_LEN, &copy);
  10917. if (sess != NULL) {
  10918. WOLFSSL_MSG("Session found in external cache");
  10919. error = wolfSSL_DupSession(sess, output, 0);
  10920. #ifdef HAVE_EX_DATA
  10921. output->ownExData = 0; /* Session cache owns external data */
  10922. #endif
  10923. /* If copy not set then free immediately */
  10924. if (!copy)
  10925. wolfSSL_FreeSession(ssl->ctx, sess);
  10926. /* We want to restore the bogus ID for TLS compatibility */
  10927. if (ssl->session->haveAltSessionID &&
  10928. output == ssl->session) {
  10929. XMEMCPY(ssl->session->sessionID, bogusID, ID_LEN);
  10930. ssl->session->sessionIDSz = bogusIDSz;
  10931. }
  10932. return error;
  10933. }
  10934. WOLFSSL_MSG("Session not found in external cache");
  10935. }
  10936. if (ssl->ctx->internalCacheLookupOff) {
  10937. WOLFSSL_MSG("Internal cache lookup turned off");
  10938. return WOLFSSL_FAILURE;
  10939. }
  10940. #endif
  10941. row = HashSession(id, ID_LEN, &error) % SESSION_ROWS;
  10942. if (error != 0) {
  10943. WOLFSSL_MSG("Hash session failed");
  10944. return WOLFSSL_FAILURE;
  10945. }
  10946. #ifdef HAVE_SESSION_TICKET
  10947. if (output->ticket == NULL ||
  10948. output->ticketLenAlloc < PREALLOC_SESSION_TICKET_LEN) {
  10949. #ifdef WOLFSSL_SMALL_STACK
  10950. tmpTicket = (byte*)XMALLOC(PREALLOC_SESSION_TICKET_LEN, output->heap,
  10951. DYNAMIC_TYPE_TMP_BUFFER);
  10952. if (tmpTicket == NULL) {
  10953. WOLFSSL_MSG("tmpTicket malloc failed");
  10954. return WOLFSSL_FAILURE;
  10955. }
  10956. #endif
  10957. if (output->ticketLenAlloc)
  10958. XFREE(output->ticket, output->heap, DYNAMIC_TYPE_SESSION_TICK);
  10959. output->ticket = tmpTicket;
  10960. output->ticketLenAlloc = PREALLOC_SESSION_TICKET_LEN;
  10961. output->ticketLen = 0;
  10962. tmpBufSet = 1;
  10963. }
  10964. #endif
  10965. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  10966. if (output->peer != NULL) {
  10967. wolfSSL_X509_free(output->peer);
  10968. output->peer = NULL;
  10969. }
  10970. #endif
  10971. /* lock row */
  10972. sessRow = &SessionCache[row];
  10973. if (SESSION_ROW_LOCK(sessRow) != 0) {
  10974. WOLFSSL_MSG("Session cache row lock failure");
  10975. #ifdef HAVE_SESSION_TICKET
  10976. if (tmpBufSet) {
  10977. output->ticket = output->_staticTicket;
  10978. output->ticketLenAlloc = 0;
  10979. }
  10980. #ifdef WOLFSSL_SMALL_STACK
  10981. if (tmpTicket != NULL)
  10982. XFREE(tmpTicket, output->heap, DYNAMIC_TYPE_TMP_BUFFER);
  10983. #endif
  10984. #endif
  10985. return WOLFSSL_FAILURE;
  10986. }
  10987. /* start from most recently used */
  10988. count = min((word32)sessRow->totalCount, SESSIONS_PER_ROW);
  10989. idx = sessRow->nextIdx - 1;
  10990. if (idx < 0 || idx >= SESSIONS_PER_ROW) {
  10991. idx = SESSIONS_PER_ROW - 1; /* if back to front, the previous was end */
  10992. }
  10993. for (; count > 0; --count) {
  10994. WOLFSSL_SESSION* current;
  10995. current = &sessRow->Sessions[idx];
  10996. if (XMEMCMP(current->sessionID, id, ID_LEN) == 0 &&
  10997. current->side == ssl->options.side) {
  10998. WOLFSSL_MSG("Found a session match");
  10999. if (LowResTimer() < (current->bornOn + current->timeout)) {
  11000. WOLFSSL_MSG("Session valid");
  11001. sess = current;
  11002. } else {
  11003. WOLFSSL_MSG("Session timed out");
  11004. }
  11005. break; /* no more sessionIDs whether valid or not that match */
  11006. } else {
  11007. WOLFSSL_MSG("SessionID not a match at this idx");
  11008. }
  11009. idx = idx > 0 ? idx - 1 : SESSIONS_PER_ROW - 1;
  11010. }
  11011. if (sess != NULL) {
  11012. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  11013. /* We don't want the peer member. We will free it at the end. */
  11014. if (sess->peer != NULL) {
  11015. peer = sess->peer;
  11016. sess->peer = NULL;
  11017. }
  11018. #endif
  11019. error = wolfSSL_DupSession(sess, output, 1);
  11020. #ifdef HAVE_EX_DATA
  11021. output->ownExData = 0; /* Session cache owns external data */
  11022. #endif
  11023. }
  11024. else {
  11025. error = WOLFSSL_FAILURE;
  11026. }
  11027. SESSION_ROW_UNLOCK(sessRow);
  11028. /* We want to restore the bogus ID for TLS compatibility */
  11029. if (ssl->session->haveAltSessionID &&
  11030. output == ssl->session) {
  11031. XMEMCPY(ssl->session->sessionID, bogusID, ID_LEN);
  11032. ssl->session->sessionIDSz = bogusIDSz;
  11033. }
  11034. #ifdef HAVE_SESSION_TICKET
  11035. if (tmpBufSet) {
  11036. if (error == WOLFSSL_SUCCESS) {
  11037. if (output->ticketLen > SESSION_TICKET_LEN) {
  11038. output->ticket = (byte*)XMALLOC(output->ticketLen, output->heap,
  11039. DYNAMIC_TYPE_SESSION_TICK);
  11040. if (output->ticket == NULL) {
  11041. error = WOLFSSL_FAILURE;
  11042. output->ticket = output->_staticTicket;
  11043. output->ticketLenAlloc = 0;
  11044. output->ticketLen = 0;
  11045. }
  11046. }
  11047. else {
  11048. output->ticket = output->_staticTicket;
  11049. output->ticketLenAlloc = 0;
  11050. }
  11051. }
  11052. else {
  11053. output->ticket = output->_staticTicket;
  11054. output->ticketLenAlloc = 0;
  11055. output->ticketLen = 0;
  11056. }
  11057. if (error == WOLFSSL_SUCCESS) {
  11058. XMEMCPY(output->ticket, tmpTicket, output->ticketLen);
  11059. }
  11060. }
  11061. #ifdef WOLFSSL_SMALL_STACK
  11062. if (tmpTicket != NULL)
  11063. XFREE(tmpTicket, output->heap, DYNAMIC_TYPE_TMP_BUFFER);
  11064. #endif
  11065. #endif
  11066. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  11067. if (peer != NULL) {
  11068. wolfSSL_X509_free(peer);
  11069. }
  11070. #endif
  11071. return error;
  11072. }
  11073. WOLFSSL_SESSION* wolfSSL_GetSession(WOLFSSL* ssl, byte* masterSecret,
  11074. byte restoreSessionCerts)
  11075. {
  11076. WOLFSSL_SESSION* ret = NULL;
  11077. (void)restoreSessionCerts; /* Kept for compatibility */
  11078. if (wolfSSL_GetSessionFromCache(ssl, ssl->session) == WOLFSSL_SUCCESS) {
  11079. ret = ssl->session;
  11080. }
  11081. else {
  11082. WOLFSSL_MSG("wolfSSL_GetSessionFromCache did not return a session");
  11083. }
  11084. if (ret != NULL && masterSecret != NULL)
  11085. XMEMCPY(masterSecret, ret->masterSecret, SECRET_LEN);
  11086. return ret;
  11087. }
  11088. int wolfSSL_SetSession(WOLFSSL* ssl, WOLFSSL_SESSION* session)
  11089. {
  11090. SessionRow* sessRow = NULL;
  11091. int ret = WOLFSSL_SUCCESS;
  11092. session = ClientSessionToSession(session);
  11093. if (ssl == NULL || session == NULL) {
  11094. return WOLFSSL_FAILURE;
  11095. }
  11096. if (session->type == WOLFSSL_SESSION_TYPE_CACHE) {
  11097. if (session->cacheRow < SESSION_ROWS) {
  11098. sessRow = &SessionCache[session->cacheRow];
  11099. if (SESSION_ROW_LOCK(sessRow) != 0) {
  11100. WOLFSSL_MSG("Session row lock failed");
  11101. return WOLFSSL_FAILURE;
  11102. }
  11103. }
  11104. }
  11105. if (ret == WOLFSSL_SUCCESS && SslSessionCacheOff(ssl, session)) {
  11106. WOLFSSL_MSG("Session cache off");
  11107. ret = WOLFSSL_FAILURE;
  11108. }
  11109. if (ret == WOLFSSL_SUCCESS && ssl->options.side != WOLFSSL_NEITHER_END &&
  11110. (byte)ssl->options.side != session->side) {
  11111. WOLFSSL_MSG("Setting session for wrong role");
  11112. ret = WOLFSSL_FAILURE;
  11113. }
  11114. if (ret == WOLFSSL_SUCCESS &&
  11115. wolfSSL_DupSession(session, ssl->session, 0) != WOLFSSL_SUCCESS) {
  11116. WOLFSSL_MSG("Session duplicate failed");
  11117. ret = WOLFSSL_FAILURE;
  11118. }
  11119. /* Let's copy over the altSessionID for local cache purposes */
  11120. if (ret == WOLFSSL_SUCCESS && session->haveAltSessionID) {
  11121. ssl->session->haveAltSessionID = 1;
  11122. XMEMCPY(ssl->session->altSessionID, session->altSessionID, ID_LEN);
  11123. }
  11124. if (sessRow != NULL) {
  11125. SESSION_ROW_UNLOCK(sessRow);
  11126. sessRow = NULL;
  11127. }
  11128. /* Note: the `session` variable cannot be used below, since the row is
  11129. * un-locked */
  11130. if (ret != WOLFSSL_SUCCESS)
  11131. return ret;
  11132. #ifdef OPENSSL_EXTRA
  11133. /* check for application context id */
  11134. if (ssl->sessionCtxSz > 0) {
  11135. if (XMEMCMP(ssl->sessionCtx, ssl->session->sessionCtx, ssl->sessionCtxSz)) {
  11136. /* context id did not match! */
  11137. WOLFSSL_MSG("Session context did not match");
  11138. return WOLFSSL_FAILURE;
  11139. }
  11140. }
  11141. #endif /* OPENSSL_EXTRA */
  11142. if (LowResTimer() < (ssl->session->bornOn + ssl->session->timeout)) {
  11143. ssl->options.resuming = 1;
  11144. ssl->options.haveEMS = ssl->session->haveEMS;
  11145. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  11146. defined(HAVE_SESSION_TICKET))
  11147. ssl->version = ssl->session->version;
  11148. if (IsAtLeastTLSv1_3(ssl->version))
  11149. ssl->options.tls1_3 = 1;
  11150. #endif
  11151. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  11152. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  11153. ssl->options.cipherSuite0 = ssl->session->cipherSuite0;
  11154. ssl->options.cipherSuite = ssl->session->cipherSuite;
  11155. #endif
  11156. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  11157. ssl->peerVerifyRet = (unsigned long)ssl->session->peerVerifyRet;
  11158. #endif
  11159. ret = WOLFSSL_SUCCESS;
  11160. }
  11161. else {
  11162. #if defined(OPENSSL_EXTRA) && defined(WOLFSSL_ERROR_CODE_OPENSSL)
  11163. WOLFSSL_MSG("Session is expired but return success for \
  11164. OpenSSL compatibility");
  11165. ret = WOLFSSL_SUCCESS;
  11166. #else
  11167. ret = WOLFSSL_FAILURE; /* session timed out */
  11168. #endif /* OPENSSL_EXTRA && WOLFSSL_ERROR_CODE_OPENSSL */
  11169. }
  11170. return ret;
  11171. }
  11172. #ifdef WOLFSSL_SESSION_STATS
  11173. static int get_locked_session_stats(word32* active, word32* total,
  11174. word32* peak);
  11175. #endif
  11176. #ifndef NO_CLIENT_CACHE
  11177. ClientSession* AddSessionToClientCache(int side, int row, int idx, byte* serverID,
  11178. word16 idLen, const byte* sessionID,
  11179. word16 useTicket)
  11180. {
  11181. int error = -1;
  11182. word32 clientRow = 0, clientIdx = 0, sessionIDHash = 0;
  11183. (void)useTicket;
  11184. if (side == WOLFSSL_CLIENT_END
  11185. && row != INVALID_SESSION_ROW
  11186. && (idLen
  11187. #ifdef HAVE_SESSION_TICKET
  11188. || useTicket == 1
  11189. #endif
  11190. || serverID != NULL
  11191. )) {
  11192. WOLFSSL_MSG("Trying to add client cache entry");
  11193. if (idLen) {
  11194. clientRow = HashSession(serverID,
  11195. idLen, &error) % CLIENT_SESSION_ROWS;
  11196. }
  11197. else if (serverID != NULL) {
  11198. clientRow = HashSession(sessionID,
  11199. ID_LEN, &error) % CLIENT_SESSION_ROWS;
  11200. }
  11201. else
  11202. error = -1;
  11203. if (error == 0 && wc_LockMutex(&clisession_mutex) == 0) {
  11204. clientIdx = ClientCache[clientRow].nextIdx++;
  11205. ClientCache[clientRow].Clients[clientIdx].serverRow =
  11206. (word16)row;
  11207. ClientCache[clientRow].Clients[clientIdx].serverIdx =
  11208. (word16)idx;
  11209. if (sessionID != NULL) {
  11210. sessionIDHash = HashSession(sessionID, ID_LEN, &error);
  11211. if (error == 0) {
  11212. ClientCache[clientRow].Clients[clientIdx].sessionIDHash
  11213. = sessionIDHash;
  11214. }
  11215. }
  11216. if (error == 0) {
  11217. WOLFSSL_MSG("Adding client cache entry");
  11218. if (ClientCache[clientRow].totalCount < CLIENT_SESSIONS_PER_ROW)
  11219. ClientCache[clientRow].totalCount++;
  11220. ClientCache[clientRow].nextIdx %= CLIENT_SESSIONS_PER_ROW;
  11221. }
  11222. wc_UnLockMutex(&clisession_mutex);
  11223. }
  11224. else {
  11225. WOLFSSL_MSG("Hash session failed");
  11226. }
  11227. }
  11228. else {
  11229. WOLFSSL_MSG("Skipping client cache");
  11230. }
  11231. if (error == 0)
  11232. return &ClientCache[clientRow].Clients[clientIdx];
  11233. else
  11234. return NULL;
  11235. }
  11236. #endif
  11237. /**
  11238. * For backwards compatibility, this API needs to be used in *ALL* functions
  11239. * that access the WOLFSSL_SESSION members directly.
  11240. *
  11241. * This API checks if the passed in session is actually a ClientSession object
  11242. * and returns the matching session cache object. Otherwise just return the
  11243. * input. ClientSession objects only occur in the ClientCache. They are not
  11244. * allocated anywhere else.
  11245. */
  11246. WOLFSSL_SESSION* ClientSessionToSession(const WOLFSSL_SESSION* session)
  11247. {
  11248. WOLFSSL_ENTER("ClientSessionToSession");
  11249. #ifdef NO_SESSION_CACHE_REF
  11250. return (WOLFSSL_SESSION*)session;
  11251. #else
  11252. #ifndef NO_CLIENT_CACHE
  11253. if (session == NULL)
  11254. return NULL;
  11255. /* Check if session points into ClientCache */
  11256. if ((byte*)session >= (byte*)ClientCache &&
  11257. /* Cast to byte* to make pointer arithmetic work per byte */
  11258. (byte*)session < ((byte*)ClientCache) + sizeof(ClientCache)) {
  11259. ClientSession* clientSession = (ClientSession*)session;
  11260. SessionRow* sessRow = NULL;
  11261. WOLFSSL_SESSION* cacheSession = NULL;
  11262. word32 sessionIDHash = 0;
  11263. int error = 0;
  11264. session = NULL; /* Default to NULL for failure case */
  11265. if (wc_LockMutex(&clisession_mutex) != 0) {
  11266. WOLFSSL_MSG("Client cache mutex lock failed");
  11267. return NULL;
  11268. }
  11269. if (clientSession->serverRow >= SESSION_ROWS ||
  11270. clientSession->serverIdx >= SESSIONS_PER_ROW) {
  11271. WOLFSSL_MSG("Client cache serverRow or serverIdx invalid");
  11272. error = -1;
  11273. }
  11274. if (error == 0) {
  11275. /* Lock row */
  11276. sessRow = &SessionCache[clientSession->serverRow];
  11277. error = SESSION_ROW_LOCK(sessRow);
  11278. if (error != 0) {
  11279. WOLFSSL_MSG("Session cache row lock failure");
  11280. sessRow = NULL;
  11281. }
  11282. }
  11283. if (error == 0) {
  11284. cacheSession = &sessRow->Sessions[clientSession->serverIdx];
  11285. if (cacheSession->sessionIDSz == 0) {
  11286. cacheSession = NULL;
  11287. WOLFSSL_MSG("Session cache entry not set");
  11288. error = -1;
  11289. }
  11290. }
  11291. if (error == 0) {
  11292. /* Calculate the hash of the session ID */
  11293. sessionIDHash = HashSession(cacheSession->sessionID, ID_LEN,
  11294. &error);
  11295. }
  11296. if (error == 0) {
  11297. /* Check the session ID hash matches */
  11298. error = clientSession->sessionIDHash != sessionIDHash;
  11299. }
  11300. if (error == 0) {
  11301. /* Hashes match */
  11302. session = cacheSession;
  11303. WOLFSSL_MSG("Found session cache matching client session object");
  11304. }
  11305. if (sessRow != NULL) {
  11306. SESSION_ROW_UNLOCK(sessRow);
  11307. }
  11308. wc_UnLockMutex(&clisession_mutex);
  11309. return (WOLFSSL_SESSION*)session;
  11310. }
  11311. else {
  11312. /* Plain WOLFSSL_SESSION object */
  11313. return (WOLFSSL_SESSION*)session;
  11314. }
  11315. #else
  11316. return (WOLFSSL_SESSION*)session;
  11317. #endif
  11318. #endif
  11319. }
  11320. int AddSessionToCache(WOLFSSL_CTX* ctx, WOLFSSL_SESSION* addSession,
  11321. const byte* id, byte idSz, int* sessionIndex, int side,
  11322. word16 useTicket, ClientSession** clientCacheEntry)
  11323. {
  11324. WOLFSSL_SESSION* cacheSession = NULL;
  11325. SessionRow* sessRow = NULL;
  11326. word32 idx = 0;
  11327. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  11328. WOLFSSL_X509* peer = NULL;
  11329. #endif
  11330. #ifdef HAVE_SESSION_TICKET
  11331. byte* cacheTicBuff = NULL;
  11332. byte ticBuffUsed = 0;
  11333. byte* ticBuff = NULL;
  11334. int ticLen = 0;
  11335. #endif
  11336. int ret = 0;
  11337. int row;
  11338. int i;
  11339. int overwrite = 0;
  11340. (void)ctx;
  11341. (void)sessionIndex;
  11342. (void)useTicket;
  11343. (void)clientCacheEntry;
  11344. addSession = ClientSessionToSession(addSession);
  11345. if (addSession == NULL || idSz == 0) {
  11346. WOLFSSL_MSG("addSession NULL or idSz == 0");
  11347. return BAD_FUNC_ARG;
  11348. }
  11349. /* Find a position for the new session in cache and use that */
  11350. #ifdef HAVE_SESSION_TICKET
  11351. ticLen = addSession->ticketLen;
  11352. /* Alloc Memory here to avoid syscalls during lock */
  11353. if (ticLen > SESSION_TICKET_LEN) {
  11354. ticBuff = (byte*)XMALLOC(ticLen, NULL,
  11355. DYNAMIC_TYPE_SESSION_TICK);
  11356. if (ticBuff == NULL) {
  11357. return MEMORY_E;
  11358. }
  11359. }
  11360. #endif
  11361. /* Use the session object in the cache for external cache if required */
  11362. row = (int)(HashSession(id, ID_LEN, &ret) % SESSION_ROWS);
  11363. if (ret != 0) {
  11364. WOLFSSL_MSG("Hash session failed");
  11365. #ifdef HAVE_SESSION_TICKET
  11366. XFREE(ticBuff, NULL, DYNAMIC_TYPE_SESSION_TICK);
  11367. #endif
  11368. return ret;
  11369. }
  11370. sessRow = &SessionCache[row];
  11371. if (SESSION_ROW_LOCK(sessRow) != 0) {
  11372. #ifdef HAVE_SESSION_TICKET
  11373. XFREE(ticBuff, NULL, DYNAMIC_TYPE_SESSION_TICK);
  11374. #endif
  11375. WOLFSSL_MSG("Session row lock failed");
  11376. return BAD_MUTEX_E;
  11377. }
  11378. for (i = 0; i < SESSIONS_PER_ROW && i < sessRow->totalCount; i++) {
  11379. if (XMEMCMP(id,
  11380. sessRow->Sessions[i].sessionID, ID_LEN) == 0 &&
  11381. sessRow->Sessions[i].side == side) {
  11382. WOLFSSL_MSG("Session already exists. Overwriting.");
  11383. overwrite = 1;
  11384. idx = i;
  11385. break;
  11386. }
  11387. }
  11388. if (!overwrite)
  11389. idx = sessRow->nextIdx;
  11390. #ifdef SESSION_INDEX
  11391. if (sessionIndex != NULL)
  11392. *sessionIndex = (row << SESSIDX_ROW_SHIFT) | idx;
  11393. #endif
  11394. cacheSession = &sessRow->Sessions[idx];
  11395. #ifdef HAVE_EX_DATA
  11396. if (cacheSession->rem_sess_cb && cacheSession->ownExData) {
  11397. cacheSession->rem_sess_cb(NULL, cacheSession);
  11398. /* Make sure not to call remove functions again */
  11399. cacheSession->ownExData = 0;
  11400. cacheSession->rem_sess_cb = NULL;
  11401. }
  11402. #endif
  11403. cacheSession->type = WOLFSSL_SESSION_TYPE_CACHE;
  11404. cacheSession->cacheRow = row;
  11405. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  11406. /* Save the peer field to free after unlocking the row */
  11407. if (cacheSession->peer != NULL)
  11408. peer = cacheSession->peer;
  11409. cacheSession->peer = NULL;
  11410. #endif
  11411. #ifdef HAVE_SESSION_TICKET
  11412. /* If we can re-use the existing buffer in cacheSession then we won't touch
  11413. * ticBuff at all making it a very cheap malloc/free. The page on a modern
  11414. * OS will most likely not even be allocated to the process. */
  11415. if (ticBuff != NULL && cacheSession->ticketLenAlloc < ticLen) {
  11416. cacheTicBuff = cacheSession->ticket;
  11417. ticBuffUsed = 1;
  11418. cacheSession->ticket = ticBuff;
  11419. cacheSession->ticketLenAlloc = (word16) ticLen;
  11420. }
  11421. #endif
  11422. #ifdef SESSION_CERTS
  11423. if (overwrite &&
  11424. addSession->chain.count == 0 &&
  11425. cacheSession->chain.count > 0) {
  11426. /* Copy in the certs from the session */
  11427. addSession->chain.count = cacheSession->chain.count;
  11428. XMEMCPY(addSession->chain.certs, cacheSession->chain.certs,
  11429. sizeof(x509_buffer) * cacheSession->chain.count);
  11430. }
  11431. #endif /* SESSION_CERTS */
  11432. cacheSession->heap = NULL;
  11433. /* Copy data into the cache object */
  11434. ret = wolfSSL_DupSession(addSession, cacheSession, 1) == WOLFSSL_FAILURE;
  11435. if (ret == 0) {
  11436. /* Increment the totalCount and the nextIdx */
  11437. if (sessRow->totalCount < SESSIONS_PER_ROW)
  11438. sessRow->totalCount++;
  11439. sessRow->nextIdx = (sessRow->nextIdx + 1) % SESSIONS_PER_ROW;
  11440. if (id != addSession->sessionID) {
  11441. /* ssl->session->sessionID may contain the bogus ID or we want the
  11442. * ID from the arrays object */
  11443. XMEMCPY(cacheSession->sessionID, id, ID_LEN);
  11444. cacheSession->sessionIDSz = ID_LEN;
  11445. }
  11446. #ifdef HAVE_EX_DATA
  11447. if (ctx->rem_sess_cb != NULL) {
  11448. addSession->ownExData = 0;
  11449. cacheSession->ownExData = 1;
  11450. cacheSession->rem_sess_cb = ctx->rem_sess_cb;
  11451. }
  11452. #endif
  11453. }
  11454. #ifdef HAVE_SESSION_TICKET
  11455. else if (ticBuffUsed) {
  11456. /* Error occured. Need to clean up the ticket buffer. */
  11457. cacheSession->ticket = cacheSession->_staticTicket;
  11458. cacheSession->ticketLenAlloc = 0;
  11459. cacheSession->ticketLen = 0;
  11460. }
  11461. #endif
  11462. SESSION_ROW_UNLOCK(sessRow);
  11463. cacheSession = NULL; /* Can't access after unlocked */
  11464. #ifndef NO_CLIENT_CACHE
  11465. if (ret == 0 && clientCacheEntry != NULL) {
  11466. ClientSession* clientCache = AddSessionToClientCache(side, row, idx,
  11467. addSession->serverID, addSession->idLen, id, useTicket);
  11468. if (clientCache != NULL)
  11469. *clientCacheEntry = clientCache;
  11470. }
  11471. #endif
  11472. #ifdef HAVE_SESSION_TICKET
  11473. if (ticBuff != NULL && !ticBuffUsed)
  11474. XFREE(ticBuff, NULL, DYNAMIC_TYPE_SESSION_TICK);
  11475. if (cacheTicBuff != NULL)
  11476. XFREE(cacheTicBuff, NULL, DYNAMIC_TYPE_SESSION_TICK);
  11477. #endif
  11478. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  11479. if (peer != NULL) {
  11480. wolfSSL_X509_free(peer);
  11481. peer = NULL; /* Make sure not use after this point */
  11482. }
  11483. #endif
  11484. return ret;
  11485. }
  11486. #ifndef NO_CLIENT_CACHE
  11487. #endif
  11488. void AddSession(WOLFSSL* ssl)
  11489. {
  11490. int error = 0;
  11491. const byte* id = NULL;
  11492. byte idSz = 0;
  11493. WOLFSSL_SESSION* session = ssl->session;
  11494. #ifdef HAVE_EXT_CACHE
  11495. int cbRet = 0;
  11496. #endif
  11497. (void)error;
  11498. WOLFSSL_ENTER("AddSession");
  11499. if (SslSessionCacheOff(ssl, session)) {
  11500. WOLFSSL_MSG("Cache off");
  11501. return;
  11502. }
  11503. if (ssl->options.haveSessionId == 0) {
  11504. WOLFSSL_MSG("Don't have session id");
  11505. return;
  11506. }
  11507. #if defined(HAVE_SESSION_TICKET) && !defined(OPENSSL_EXTRA)
  11508. /* For the compat layer generate a session object to use */
  11509. if (ssl->options.side == WOLFSSL_SERVER_END && ssl->options.useTicket == 1) {
  11510. WOLFSSL_MSG("Using tickets instead of cache");
  11511. return;
  11512. }
  11513. #endif
  11514. if (session->haveAltSessionID) {
  11515. id = session->altSessionID;
  11516. idSz = ID_LEN;
  11517. }
  11518. else {
  11519. if (!IsAtLeastTLSv1_3(ssl->version) && ssl->arrays != NULL) {
  11520. /* Make sure the session ID is available when the user calls any
  11521. * get_session API */
  11522. XMEMCPY(session->sessionID, ssl->arrays->sessionID, ID_LEN);
  11523. session->sessionIDSz = ssl->arrays->sessionIDSz;
  11524. }
  11525. id = session->sessionID;
  11526. idSz = session->sessionIDSz;
  11527. }
  11528. session->timeout = ssl->timeout;
  11529. session->side = (byte)ssl->options.side;
  11530. if (!IsAtLeastTLSv1_3(ssl->version) && ssl->arrays != NULL)
  11531. XMEMCPY(session->masterSecret, ssl->arrays->masterSecret, SECRET_LEN);
  11532. session->haveEMS = ssl->options.haveEMS;
  11533. #ifdef OPENSSL_EXTRA
  11534. /* If using compatibility layer then check for and copy over session context
  11535. * id. */
  11536. if (ssl->sessionCtxSz > 0 && ssl->sessionCtxSz < ID_LEN) {
  11537. XMEMCPY(ssl->session->sessionCtx, ssl->sessionCtx, ssl->sessionCtxSz);
  11538. session->sessionCtxSz = ssl->sessionCtxSz;
  11539. }
  11540. #endif
  11541. session->timeout = ssl->timeout;
  11542. session->bornOn = LowResTimer();
  11543. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  11544. defined(HAVE_SESSION_TICKET))
  11545. session->version = ssl->version;
  11546. #endif
  11547. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  11548. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  11549. session->cipherSuite0 = ssl->options.cipherSuite0;
  11550. session->cipherSuite = ssl->options.cipherSuite;
  11551. #endif
  11552. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  11553. session->peerVerifyRet = (byte)ssl->peerVerifyRet;
  11554. #endif
  11555. /* Do this last so that if it fails, the rest of the session is setup. Do
  11556. * this only for the client because if the server doesn't have an ID at
  11557. * this point, it won't on resumption. */
  11558. if (idSz == 0 && ssl->options.side == WOLFSSL_CLIENT_END) {
  11559. WC_RNG* rng = NULL;
  11560. if (ssl->rng != NULL)
  11561. rng = ssl->rng;
  11562. #if defined(HAVE_GLOBAL_RNG) && defined(OPENSSL_EXTRA)
  11563. else if (initGlobalRNG == 1 || wolfSSL_RAND_Init() == WOLFSSL_SUCCESS) {
  11564. rng = &globalRNG;
  11565. }
  11566. #endif
  11567. if (wc_RNG_GenerateBlock(rng, ssl->session->altSessionID,
  11568. ID_LEN) != 0)
  11569. return;
  11570. ssl->session->haveAltSessionID = 1;
  11571. id = ssl->session->altSessionID;
  11572. idSz = ID_LEN;
  11573. }
  11574. /* Setup done */
  11575. if (ssl->options.side == WOLFSSL_SERVER_END /* No point in adding a
  11576. * client session */
  11577. #ifdef HAVE_EXT_CACHE
  11578. && !ssl->options.internalCacheOff
  11579. #endif
  11580. )
  11581. {
  11582. /* Try to add the session to cache. Its ok if we don't succeed. */
  11583. (void)AddSessionToCache(ssl->ctx, session, id, idSz,
  11584. #ifdef SESSION_INDEX
  11585. &ssl->sessionIndex,
  11586. #else
  11587. NULL,
  11588. #endif
  11589. ssl->options.side,
  11590. #ifdef HAVE_SESSION_TICKET
  11591. ssl->options.useTicket,
  11592. #else
  11593. 0,
  11594. #endif
  11595. NULL
  11596. );
  11597. }
  11598. #ifdef HAVE_EXT_CACHE
  11599. if (error == 0 && ssl->ctx->new_sess_cb != NULL) {
  11600. wolfSSL_SESSION_up_ref(session);
  11601. cbRet = ssl->ctx->new_sess_cb(ssl, session);
  11602. if (cbRet == 0)
  11603. wolfSSL_FreeSession(ssl->ctx, session);
  11604. }
  11605. #endif
  11606. #if defined(WOLFSSL_SESSION_STATS) && defined(WOLFSSL_PEAK_SESSIONS)
  11607. if (error == 0) {
  11608. word32 active = 0;
  11609. error = get_locked_session_stats(&active, NULL, NULL);
  11610. if (error == WOLFSSL_SUCCESS) {
  11611. error = 0; /* back to this function ok */
  11612. if (PeakSessions < active) {
  11613. PeakSessions = active;
  11614. }
  11615. }
  11616. }
  11617. #endif /* WOLFSSL_SESSION_STATS && WOLFSSL_PEAK_SESSIONS */
  11618. (void)error;
  11619. }
  11620. #ifdef SESSION_INDEX
  11621. int wolfSSL_GetSessionIndex(WOLFSSL* ssl)
  11622. {
  11623. WOLFSSL_ENTER("wolfSSL_GetSessionIndex");
  11624. WOLFSSL_LEAVE("wolfSSL_GetSessionIndex", ssl->sessionIndex);
  11625. return ssl->sessionIndex;
  11626. }
  11627. int wolfSSL_GetSessionAtIndex(int idx, WOLFSSL_SESSION* session)
  11628. {
  11629. int row, col, result = WOLFSSL_FAILURE;
  11630. SessionRow* sessRow;
  11631. WOLFSSL_ENTER("wolfSSL_GetSessionAtIndex");
  11632. session = ClientSessionToSession(session);
  11633. row = idx >> SESSIDX_ROW_SHIFT;
  11634. col = idx & SESSIDX_IDX_MASK;
  11635. if (session == NULL ||
  11636. row < 0 || row >= SESSION_ROWS || col >= SESSIONS_PER_ROW) {
  11637. return WOLFSSL_FAILURE;
  11638. }
  11639. sessRow = &SessionCache[row];
  11640. if (SESSION_ROW_LOCK(sessRow) != 0) {
  11641. return BAD_MUTEX_E;
  11642. }
  11643. XMEMCPY(session, &sessRow->Sessions[col], sizeof(WOLFSSL_SESSION));
  11644. result = WOLFSSL_SUCCESS;
  11645. SESSION_ROW_UNLOCK(sessRow);
  11646. WOLFSSL_LEAVE("wolfSSL_GetSessionAtIndex", result);
  11647. return result;
  11648. }
  11649. #endif /* SESSION_INDEX */
  11650. #if defined(SESSION_CERTS)
  11651. WOLFSSL_X509_CHAIN* wolfSSL_SESSION_get_peer_chain(WOLFSSL_SESSION* session)
  11652. {
  11653. WOLFSSL_X509_CHAIN* chain = NULL;
  11654. WOLFSSL_ENTER("wolfSSL_SESSION_get_peer_chain");
  11655. session = ClientSessionToSession(session);
  11656. if (session)
  11657. chain = &session->chain;
  11658. WOLFSSL_LEAVE("wolfSSL_SESSION_get_peer_chain", chain ? 1 : 0);
  11659. return chain;
  11660. }
  11661. #ifdef OPENSSL_EXTRA
  11662. /* gets the peer certificate associated with the session passed in
  11663. * returns null on failure, the caller should not free the returned pointer */
  11664. WOLFSSL_X509* wolfSSL_SESSION_get0_peer(WOLFSSL_SESSION* session)
  11665. {
  11666. WOLFSSL_ENTER("wolfSSL_SESSION_get_peer_chain");
  11667. session = ClientSessionToSession(session);
  11668. if (session) {
  11669. int count;
  11670. count = wolfSSL_get_chain_count(&session->chain);
  11671. if (count < 1 || count >= MAX_CHAIN_DEPTH) {
  11672. WOLFSSL_MSG("bad count found");
  11673. return NULL;
  11674. }
  11675. if (session->peer == NULL) {
  11676. session->peer = wolfSSL_get_chain_X509(&session->chain, 0);
  11677. }
  11678. return session->peer;
  11679. }
  11680. WOLFSSL_MSG("No session passed in");
  11681. return NULL;
  11682. }
  11683. #endif /* OPENSSL_EXTRA */
  11684. #endif /* SESSION_INDEX && SESSION_CERTS */
  11685. #ifdef WOLFSSL_SESSION_STATS
  11686. static int get_locked_session_stats(word32* active, word32* total, word32* peak)
  11687. {
  11688. int result = WOLFSSL_SUCCESS;
  11689. int i;
  11690. int count;
  11691. int idx;
  11692. word32 now = 0;
  11693. word32 seen = 0;
  11694. word32 ticks = LowResTimer();
  11695. WOLFSSL_ENTER("get_locked_session_stats");
  11696. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  11697. wc_LockMutex(&session_mutex);
  11698. #endif
  11699. for (i = 0; i < SESSION_ROWS; i++) {
  11700. SessionRow* row = &SessionCache[i];
  11701. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  11702. if (SESSION_ROW_LOCK(row) != 0) {
  11703. WOLFSSL_MSG("Session row cache mutex lock failed");
  11704. return BAD_MUTEX_E;
  11705. }
  11706. #endif
  11707. seen += row->totalCount;
  11708. if (active == NULL) {
  11709. SESSION_ROW_UNLOCK(row);
  11710. continue;
  11711. }
  11712. count = min((word32)row->totalCount, SESSIONS_PER_ROW);
  11713. idx = row->nextIdx - 1;
  11714. if (idx < 0 || idx >= SESSIONS_PER_ROW) {
  11715. idx = SESSIONS_PER_ROW - 1; /* if back to front previous was end */
  11716. }
  11717. for (; count > 0; --count) {
  11718. /* if not expired then good */
  11719. if (ticks < (row->Sessions[idx].bornOn +
  11720. row->Sessions[idx].timeout) ) {
  11721. now++;
  11722. }
  11723. idx = idx > 0 ? idx - 1 : SESSIONS_PER_ROW - 1;
  11724. }
  11725. #ifdef ENABLE_SESSION_CACHE_ROW_LOCK
  11726. SESSION_ROW_UNLOCK(row);
  11727. #endif
  11728. }
  11729. #ifndef ENABLE_SESSION_CACHE_ROW_LOCK
  11730. wc_UnLockMutex(&session_mutex);
  11731. #endif
  11732. if (active) {
  11733. *active = now;
  11734. }
  11735. if (total) {
  11736. *total = seen;
  11737. }
  11738. #ifdef WOLFSSL_PEAK_SESSIONS
  11739. if (peak) {
  11740. *peak = PeakSessions;
  11741. }
  11742. #else
  11743. (void)peak;
  11744. #endif
  11745. WOLFSSL_LEAVE("get_locked_session_stats", result);
  11746. return result;
  11747. }
  11748. /* return WOLFSSL_SUCCESS on ok */
  11749. int wolfSSL_get_session_stats(word32* active, word32* total, word32* peak,
  11750. word32* maxSessions)
  11751. {
  11752. int result = WOLFSSL_SUCCESS;
  11753. WOLFSSL_ENTER("wolfSSL_get_session_stats");
  11754. if (maxSessions) {
  11755. *maxSessions = SESSIONS_PER_ROW * SESSION_ROWS;
  11756. if (active == NULL && total == NULL && peak == NULL)
  11757. return result; /* we're done */
  11758. }
  11759. /* user must provide at least one query value */
  11760. if (active == NULL && total == NULL && peak == NULL) {
  11761. return BAD_FUNC_ARG;
  11762. }
  11763. result = get_locked_session_stats(active, total, peak);
  11764. WOLFSSL_LEAVE("wolfSSL_get_session_stats", result);
  11765. return result;
  11766. }
  11767. #endif /* WOLFSSL_SESSION_STATS */
  11768. #ifdef PRINT_SESSION_STATS
  11769. /* WOLFSSL_SUCCESS on ok */
  11770. int wolfSSL_PrintSessionStats(void)
  11771. {
  11772. word32 totalSessionsSeen = 0;
  11773. word32 totalSessionsNow = 0;
  11774. word32 peak = 0;
  11775. word32 maxSessions = 0;
  11776. int i;
  11777. int ret;
  11778. double E; /* expected freq */
  11779. double chiSquare = 0;
  11780. ret = wolfSSL_get_session_stats(&totalSessionsNow, &totalSessionsSeen,
  11781. &peak, &maxSessions);
  11782. if (ret != WOLFSSL_SUCCESS)
  11783. return ret;
  11784. printf("Total Sessions Seen = %u\n", totalSessionsSeen);
  11785. printf("Total Sessions Now = %u\n", totalSessionsNow);
  11786. #ifdef WOLFSSL_PEAK_SESSIONS
  11787. printf("Peak Sessions = %u\n", peak);
  11788. #endif
  11789. printf("Max Sessions = %u\n", maxSessions);
  11790. E = (double)totalSessionsSeen / SESSION_ROWS;
  11791. for (i = 0; i < SESSION_ROWS; i++) {
  11792. double diff = SessionCache[i].totalCount - E;
  11793. diff *= diff; /* square */
  11794. diff /= E; /* normalize */
  11795. chiSquare += diff;
  11796. }
  11797. printf(" chi-square = %5.1f, d.f. = %d\n", chiSquare,
  11798. SESSION_ROWS - 1);
  11799. #if (SESSION_ROWS == 11)
  11800. printf(" .05 p value = 18.3, chi-square should be less\n");
  11801. #elif (SESSION_ROWS == 211)
  11802. printf(".05 p value = 244.8, chi-square should be less\n");
  11803. #elif (SESSION_ROWS == 5981)
  11804. printf(".05 p value = 6161.0, chi-square should be less\n");
  11805. #elif (SESSION_ROWS == 3)
  11806. printf(".05 p value = 6.0, chi-square should be less\n");
  11807. #elif (SESSION_ROWS == 2861)
  11808. printf(".05 p value = 2985.5, chi-square should be less\n");
  11809. #endif
  11810. printf("\n");
  11811. return ret;
  11812. }
  11813. #endif /* SESSION_STATS */
  11814. #else /* NO_SESSION_CACHE */
  11815. WOLFSSL_SESSION* ClientSessionToSession(const WOLFSSL_SESSION* session)
  11816. {
  11817. return (WOLFSSL_SESSION*)session;
  11818. }
  11819. /* No session cache version */
  11820. WOLFSSL_SESSION* wolfSSL_GetSession(WOLFSSL* ssl, byte* masterSecret,
  11821. byte restoreSessionCerts)
  11822. {
  11823. (void)ssl;
  11824. (void)masterSecret;
  11825. (void)restoreSessionCerts;
  11826. return NULL;
  11827. }
  11828. #endif /* NO_SESSION_CACHE */
  11829. /* call before SSL_connect, if verifying will add name check to
  11830. date check and signature check */
  11831. WOLFSSL_ABI
  11832. int wolfSSL_check_domain_name(WOLFSSL* ssl, const char* dn)
  11833. {
  11834. WOLFSSL_ENTER("wolfSSL_check_domain_name");
  11835. if (ssl == NULL || dn == NULL) {
  11836. WOLFSSL_MSG("Bad function argument: NULL");
  11837. return WOLFSSL_FAILURE;
  11838. }
  11839. if (ssl->buffers.domainName.buffer)
  11840. XFREE(ssl->buffers.domainName.buffer, ssl->heap, DYNAMIC_TYPE_DOMAIN);
  11841. ssl->buffers.domainName.length = (word32)XSTRLEN(dn);
  11842. ssl->buffers.domainName.buffer = (byte*)XMALLOC(
  11843. ssl->buffers.domainName.length + 1, ssl->heap, DYNAMIC_TYPE_DOMAIN);
  11844. if (ssl->buffers.domainName.buffer) {
  11845. unsigned char* domainName = ssl->buffers.domainName.buffer;
  11846. XMEMCPY(domainName, dn, ssl->buffers.domainName.length);
  11847. domainName[ssl->buffers.domainName.length] = '\0';
  11848. return WOLFSSL_SUCCESS;
  11849. }
  11850. else {
  11851. ssl->error = MEMORY_ERROR;
  11852. return WOLFSSL_FAILURE;
  11853. }
  11854. }
  11855. /* turn on wolfSSL zlib compression
  11856. returns WOLFSSL_SUCCESS for success, else error (not built in)
  11857. */
  11858. int wolfSSL_set_compression(WOLFSSL* ssl)
  11859. {
  11860. WOLFSSL_ENTER("wolfSSL_set_compression");
  11861. (void)ssl;
  11862. #ifdef HAVE_LIBZ
  11863. ssl->options.usingCompression = 1;
  11864. return WOLFSSL_SUCCESS;
  11865. #else
  11866. return NOT_COMPILED_IN;
  11867. #endif
  11868. }
  11869. #ifndef USE_WINDOWS_API
  11870. #ifndef NO_WRITEV
  11871. /* simulate writev semantics, doesn't actually do block at a time though
  11872. because of SSL_write behavior and because front adds may be small */
  11873. int wolfSSL_writev(WOLFSSL* ssl, const struct iovec* iov, int iovcnt)
  11874. {
  11875. #ifdef WOLFSSL_SMALL_STACK
  11876. byte staticBuffer[1]; /* force heap usage */
  11877. #else
  11878. byte staticBuffer[FILE_BUFFER_SIZE];
  11879. #endif
  11880. byte* myBuffer = staticBuffer;
  11881. int dynamic = 0;
  11882. int sending = 0;
  11883. int idx = 0;
  11884. int i;
  11885. int ret;
  11886. WOLFSSL_ENTER("wolfSSL_writev");
  11887. for (i = 0; i < iovcnt; i++)
  11888. sending += (int)iov[i].iov_len;
  11889. if (sending > (int)sizeof(staticBuffer)) {
  11890. myBuffer = (byte*)XMALLOC(sending, ssl->heap,
  11891. DYNAMIC_TYPE_WRITEV);
  11892. if (!myBuffer)
  11893. return MEMORY_ERROR;
  11894. dynamic = 1;
  11895. }
  11896. for (i = 0; i < iovcnt; i++) {
  11897. XMEMCPY(&myBuffer[idx], iov[i].iov_base, iov[i].iov_len);
  11898. idx += (int)iov[i].iov_len;
  11899. }
  11900. /* myBuffer may not be initialized fully, but the span up to the
  11901. * sending length will be.
  11902. */
  11903. PRAGMA_GCC_DIAG_PUSH;
  11904. PRAGMA_GCC("GCC diagnostic ignored \"-Wmaybe-uninitialized\"");
  11905. ret = wolfSSL_write(ssl, myBuffer, sending);
  11906. PRAGMA_GCC_DIAG_POP;
  11907. if (dynamic)
  11908. XFREE(myBuffer, ssl->heap, DYNAMIC_TYPE_WRITEV);
  11909. return ret;
  11910. }
  11911. #endif
  11912. #endif
  11913. #ifdef WOLFSSL_CALLBACKS
  11914. typedef struct itimerval Itimerval;
  11915. /* don't keep calling simple functions while setting up timer and signals
  11916. if no inlining these are the next best */
  11917. #define AddTimes(a, b, c) \
  11918. do { \
  11919. c.tv_sec = a.tv_sec + b.tv_sec; \
  11920. c.tv_usec = a.tv_usec + b.tv_usec; \
  11921. if (c.tv_usec >= 1000000) { \
  11922. c.tv_sec++; \
  11923. c.tv_usec -= 1000000; \
  11924. } \
  11925. } while (0)
  11926. #define SubtractTimes(a, b, c) \
  11927. do { \
  11928. c.tv_sec = a.tv_sec - b.tv_sec; \
  11929. c.tv_usec = a.tv_usec - b.tv_usec; \
  11930. if (c.tv_usec < 0) { \
  11931. c.tv_sec--; \
  11932. c.tv_usec += 1000000; \
  11933. } \
  11934. } while (0)
  11935. #define CmpTimes(a, b, cmp) \
  11936. ((a.tv_sec == b.tv_sec) ? \
  11937. (a.tv_usec cmp b.tv_usec) : \
  11938. (a.tv_sec cmp b.tv_sec)) \
  11939. /* do nothing handler */
  11940. static void myHandler(int signo)
  11941. {
  11942. (void)signo;
  11943. return;
  11944. }
  11945. static int wolfSSL_ex_wrapper(WOLFSSL* ssl, HandShakeCallBack hsCb,
  11946. TimeoutCallBack toCb, WOLFSSL_TIMEVAL timeout)
  11947. {
  11948. int ret = WOLFSSL_FATAL_ERROR;
  11949. int oldTimerOn = 0; /* was timer already on */
  11950. WOLFSSL_TIMEVAL startTime;
  11951. WOLFSSL_TIMEVAL endTime;
  11952. WOLFSSL_TIMEVAL totalTime;
  11953. Itimerval myTimeout;
  11954. Itimerval oldTimeout; /* if old timer adjust from total time to reset */
  11955. struct sigaction act, oact;
  11956. #define ERR_OUT(x) { ssl->hsInfoOn = 0; ssl->toInfoOn = 0; return x; }
  11957. if (hsCb) {
  11958. ssl->hsInfoOn = 1;
  11959. InitHandShakeInfo(&ssl->handShakeInfo, ssl);
  11960. }
  11961. if (toCb) {
  11962. ssl->toInfoOn = 1;
  11963. InitTimeoutInfo(&ssl->timeoutInfo);
  11964. if (gettimeofday(&startTime, 0) < 0)
  11965. ERR_OUT(GETTIME_ERROR);
  11966. /* use setitimer to simulate getitimer, init 0 myTimeout */
  11967. myTimeout.it_interval.tv_sec = 0;
  11968. myTimeout.it_interval.tv_usec = 0;
  11969. myTimeout.it_value.tv_sec = 0;
  11970. myTimeout.it_value.tv_usec = 0;
  11971. if (setitimer(ITIMER_REAL, &myTimeout, &oldTimeout) < 0)
  11972. ERR_OUT(SETITIMER_ERROR);
  11973. if (oldTimeout.it_value.tv_sec || oldTimeout.it_value.tv_usec) {
  11974. oldTimerOn = 1;
  11975. /* is old timer going to expire before ours */
  11976. if (CmpTimes(oldTimeout.it_value, timeout, <)) {
  11977. timeout.tv_sec = oldTimeout.it_value.tv_sec;
  11978. timeout.tv_usec = oldTimeout.it_value.tv_usec;
  11979. }
  11980. }
  11981. myTimeout.it_value.tv_sec = timeout.tv_sec;
  11982. myTimeout.it_value.tv_usec = timeout.tv_usec;
  11983. /* set up signal handler, don't restart socket send/recv */
  11984. act.sa_handler = myHandler;
  11985. sigemptyset(&act.sa_mask);
  11986. act.sa_flags = 0;
  11987. #ifdef SA_INTERRUPT
  11988. act.sa_flags |= SA_INTERRUPT;
  11989. #endif
  11990. if (sigaction(SIGALRM, &act, &oact) < 0)
  11991. ERR_OUT(SIGACT_ERROR);
  11992. if (setitimer(ITIMER_REAL, &myTimeout, 0) < 0)
  11993. ERR_OUT(SETITIMER_ERROR);
  11994. }
  11995. /* do main work */
  11996. #ifndef NO_WOLFSSL_CLIENT
  11997. if (ssl->options.side == WOLFSSL_CLIENT_END)
  11998. ret = wolfSSL_connect(ssl);
  11999. #endif
  12000. #ifndef NO_WOLFSSL_SERVER
  12001. if (ssl->options.side == WOLFSSL_SERVER_END)
  12002. ret = wolfSSL_accept(ssl);
  12003. #endif
  12004. /* do callbacks */
  12005. if (toCb) {
  12006. if (oldTimerOn) {
  12007. gettimeofday(&endTime, 0);
  12008. SubtractTimes(endTime, startTime, totalTime);
  12009. /* adjust old timer for elapsed time */
  12010. if (CmpTimes(totalTime, oldTimeout.it_value, <))
  12011. SubtractTimes(oldTimeout.it_value, totalTime,
  12012. oldTimeout.it_value);
  12013. else {
  12014. /* reset value to interval, may be off */
  12015. oldTimeout.it_value.tv_sec = oldTimeout.it_interval.tv_sec;
  12016. oldTimeout.it_value.tv_usec =oldTimeout.it_interval.tv_usec;
  12017. }
  12018. /* keep iter the same whether there or not */
  12019. }
  12020. /* restore old handler */
  12021. if (sigaction(SIGALRM, &oact, 0) < 0)
  12022. ret = SIGACT_ERROR; /* more pressing error, stomp */
  12023. else
  12024. /* use old settings which may turn off (expired or not there) */
  12025. if (setitimer(ITIMER_REAL, &oldTimeout, 0) < 0)
  12026. ret = SETITIMER_ERROR;
  12027. /* if we had a timeout call callback */
  12028. if (ssl->timeoutInfo.timeoutName[0]) {
  12029. ssl->timeoutInfo.timeoutValue.tv_sec = timeout.tv_sec;
  12030. ssl->timeoutInfo.timeoutValue.tv_usec = timeout.tv_usec;
  12031. (toCb)(&ssl->timeoutInfo);
  12032. }
  12033. /* clean up */
  12034. FreeTimeoutInfo(&ssl->timeoutInfo, ssl->heap);
  12035. ssl->toInfoOn = 0;
  12036. }
  12037. if (hsCb) {
  12038. FinishHandShakeInfo(&ssl->handShakeInfo);
  12039. (hsCb)(&ssl->handShakeInfo);
  12040. ssl->hsInfoOn = 0;
  12041. }
  12042. return ret;
  12043. }
  12044. #ifndef NO_WOLFSSL_CLIENT
  12045. int wolfSSL_connect_ex(WOLFSSL* ssl, HandShakeCallBack hsCb,
  12046. TimeoutCallBack toCb, WOLFSSL_TIMEVAL timeout)
  12047. {
  12048. WOLFSSL_ENTER("wolfSSL_connect_ex");
  12049. return wolfSSL_ex_wrapper(ssl, hsCb, toCb, timeout);
  12050. }
  12051. #endif
  12052. #ifndef NO_WOLFSSL_SERVER
  12053. int wolfSSL_accept_ex(WOLFSSL* ssl, HandShakeCallBack hsCb,
  12054. TimeoutCallBack toCb, WOLFSSL_TIMEVAL timeout)
  12055. {
  12056. WOLFSSL_ENTER("wolfSSL_accept_ex");
  12057. return wolfSSL_ex_wrapper(ssl, hsCb, toCb, timeout);
  12058. }
  12059. #endif
  12060. #endif /* WOLFSSL_CALLBACKS */
  12061. #ifndef NO_PSK
  12062. void wolfSSL_CTX_set_psk_client_callback(WOLFSSL_CTX* ctx,
  12063. wc_psk_client_callback cb)
  12064. {
  12065. WOLFSSL_ENTER("SSL_CTX_set_psk_client_callback");
  12066. if (ctx == NULL)
  12067. return;
  12068. ctx->havePSK = 1;
  12069. ctx->client_psk_cb = cb;
  12070. }
  12071. void wolfSSL_set_psk_client_callback(WOLFSSL* ssl,wc_psk_client_callback cb)
  12072. {
  12073. byte haveRSA = 1;
  12074. int keySz = 0;
  12075. WOLFSSL_ENTER("SSL_set_psk_client_callback");
  12076. if (ssl == NULL)
  12077. return;
  12078. ssl->options.havePSK = 1;
  12079. ssl->options.client_psk_cb = cb;
  12080. #ifdef NO_RSA
  12081. haveRSA = 0;
  12082. #endif
  12083. #ifndef NO_CERTS
  12084. keySz = ssl->buffers.keySz;
  12085. #endif
  12086. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, TRUE,
  12087. ssl->options.haveDH, ssl->options.haveECDSAsig,
  12088. ssl->options.haveECC, ssl->options.haveStaticECC,
  12089. ssl->options.haveFalconSig, ssl->options.haveAnon,
  12090. ssl->options.side);
  12091. }
  12092. #ifdef OPENSSL_EXTRA
  12093. /**
  12094. * set call back function for psk session use
  12095. * @param ssl a pointer to WOLFSSL structure
  12096. * @param cb a function pointer to wc_psk_use_session_cb
  12097. * @return none
  12098. */
  12099. void wolfSSL_set_psk_use_session_callback(WOLFSSL* ssl,
  12100. wc_psk_use_session_cb_func cb)
  12101. {
  12102. WOLFSSL_ENTER("wolfSSL_set_psk_use_session_callback");
  12103. ssl->options.havePSK = 1;
  12104. ssl->options.session_psk_cb = cb;
  12105. WOLFSSL_LEAVE("wolfSSL_set_psk_use_session_callback", WOLFSSL_SUCCESS);
  12106. }
  12107. #endif
  12108. void wolfSSL_CTX_set_psk_server_callback(WOLFSSL_CTX* ctx,
  12109. wc_psk_server_callback cb)
  12110. {
  12111. WOLFSSL_ENTER("SSL_CTX_set_psk_server_callback");
  12112. if (ctx == NULL)
  12113. return;
  12114. ctx->havePSK = 1;
  12115. ctx->server_psk_cb = cb;
  12116. }
  12117. void wolfSSL_set_psk_server_callback(WOLFSSL* ssl,wc_psk_server_callback cb)
  12118. {
  12119. byte haveRSA = 1;
  12120. int keySz = 0;
  12121. WOLFSSL_ENTER("SSL_set_psk_server_callback");
  12122. if (ssl == NULL)
  12123. return;
  12124. ssl->options.havePSK = 1;
  12125. ssl->options.server_psk_cb = cb;
  12126. #ifdef NO_RSA
  12127. haveRSA = 0;
  12128. #endif
  12129. #ifndef NO_CERTS
  12130. keySz = ssl->buffers.keySz;
  12131. #endif
  12132. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, TRUE,
  12133. ssl->options.haveDH, ssl->options.haveECDSAsig,
  12134. ssl->options.haveECC, ssl->options.haveStaticECC,
  12135. ssl->options.haveFalconSig, ssl->options.haveAnon,
  12136. ssl->options.side);
  12137. }
  12138. const char* wolfSSL_get_psk_identity_hint(const WOLFSSL* ssl)
  12139. {
  12140. WOLFSSL_ENTER("SSL_get_psk_identity_hint");
  12141. if (ssl == NULL || ssl->arrays == NULL)
  12142. return NULL;
  12143. return ssl->arrays->server_hint;
  12144. }
  12145. const char* wolfSSL_get_psk_identity(const WOLFSSL* ssl)
  12146. {
  12147. WOLFSSL_ENTER("SSL_get_psk_identity");
  12148. if (ssl == NULL || ssl->arrays == NULL)
  12149. return NULL;
  12150. return ssl->arrays->client_identity;
  12151. }
  12152. int wolfSSL_CTX_use_psk_identity_hint(WOLFSSL_CTX* ctx, const char* hint)
  12153. {
  12154. WOLFSSL_ENTER("SSL_CTX_use_psk_identity_hint");
  12155. if (hint == 0)
  12156. ctx->server_hint[0] = '\0';
  12157. else {
  12158. /* Qt does not call CTX_set_*_psk_callbacks where havePSK is set */
  12159. #ifdef WOLFSSL_QT
  12160. ctx->havePSK=1;
  12161. #endif
  12162. XSTRNCPY(ctx->server_hint, hint, MAX_PSK_ID_LEN);
  12163. ctx->server_hint[MAX_PSK_ID_LEN] = '\0'; /* null term */
  12164. }
  12165. return WOLFSSL_SUCCESS;
  12166. }
  12167. int wolfSSL_use_psk_identity_hint(WOLFSSL* ssl, const char* hint)
  12168. {
  12169. WOLFSSL_ENTER("SSL_use_psk_identity_hint");
  12170. if (ssl == NULL || ssl->arrays == NULL)
  12171. return WOLFSSL_FAILURE;
  12172. if (hint == 0)
  12173. ssl->arrays->server_hint[0] = 0;
  12174. else {
  12175. XSTRNCPY(ssl->arrays->server_hint, hint,
  12176. sizeof(ssl->arrays->server_hint)-1);
  12177. ssl->arrays->server_hint[sizeof(ssl->arrays->server_hint)-1] = '\0';
  12178. }
  12179. return WOLFSSL_SUCCESS;
  12180. }
  12181. void* wolfSSL_get_psk_callback_ctx(WOLFSSL* ssl)
  12182. {
  12183. return ssl ? ssl->options.psk_ctx : NULL;
  12184. }
  12185. void* wolfSSL_CTX_get_psk_callback_ctx(WOLFSSL_CTX* ctx)
  12186. {
  12187. return ctx ? ctx->psk_ctx : NULL;
  12188. }
  12189. int wolfSSL_set_psk_callback_ctx(WOLFSSL* ssl, void* psk_ctx)
  12190. {
  12191. if (ssl == NULL)
  12192. return WOLFSSL_FAILURE;
  12193. ssl->options.psk_ctx = psk_ctx;
  12194. return WOLFSSL_SUCCESS;
  12195. }
  12196. int wolfSSL_CTX_set_psk_callback_ctx(WOLFSSL_CTX* ctx, void* psk_ctx)
  12197. {
  12198. if (ctx == NULL)
  12199. return WOLFSSL_FAILURE;
  12200. ctx->psk_ctx = psk_ctx;
  12201. return WOLFSSL_SUCCESS;
  12202. }
  12203. #endif /* NO_PSK */
  12204. #ifdef HAVE_ANON
  12205. int wolfSSL_CTX_allow_anon_cipher(WOLFSSL_CTX* ctx)
  12206. {
  12207. WOLFSSL_ENTER("wolfSSL_CTX_allow_anon_cipher");
  12208. if (ctx == NULL)
  12209. return WOLFSSL_FAILURE;
  12210. ctx->haveAnon = 1;
  12211. return WOLFSSL_SUCCESS;
  12212. }
  12213. #endif /* HAVE_ANON */
  12214. #ifndef NO_CERTS
  12215. /* used to be defined on NO_FILESYSTEM only, but are generally useful */
  12216. int wolfSSL_CTX_load_verify_buffer_ex(WOLFSSL_CTX* ctx,
  12217. const unsigned char* in,
  12218. long sz, int format, int userChain,
  12219. word32 flags)
  12220. {
  12221. int verify;
  12222. int ret = WOLFSSL_FAILURE;
  12223. WOLFSSL_ENTER("wolfSSL_CTX_load_verify_buffer_ex");
  12224. verify = GET_VERIFY_SETTING_CTX(ctx);
  12225. if (flags & WOLFSSL_LOAD_FLAG_DATE_ERR_OKAY)
  12226. verify = VERIFY_SKIP_DATE;
  12227. if (format == WOLFSSL_FILETYPE_PEM)
  12228. ret = ProcessChainBuffer(ctx, in, sz, format, CA_TYPE, NULL,
  12229. verify);
  12230. else
  12231. ret = ProcessBuffer(ctx, in, sz, format, CA_TYPE, NULL, NULL,
  12232. userChain, verify);
  12233. #if defined(WOLFSSL_TRUST_PEER_CERT) && defined(OPENSSL_COMPATIBLE_DEFAULTS)
  12234. if (ret == WOLFSSL_SUCCESS)
  12235. ret = wolfSSL_CTX_trust_peer_buffer(ctx, in, sz, format);
  12236. #endif
  12237. WOLFSSL_LEAVE("wolfSSL_CTX_load_verify_buffer_ex", ret);
  12238. return ret;
  12239. }
  12240. /* wolfSSL extension allows DER files to be loaded from buffers as well */
  12241. int wolfSSL_CTX_load_verify_buffer(WOLFSSL_CTX* ctx,
  12242. const unsigned char* in,
  12243. long sz, int format)
  12244. {
  12245. return wolfSSL_CTX_load_verify_buffer_ex(ctx, in, sz, format, 0,
  12246. WOLFSSL_LOAD_VERIFY_DEFAULT_FLAGS);
  12247. }
  12248. int wolfSSL_CTX_load_verify_chain_buffer_format(WOLFSSL_CTX* ctx,
  12249. const unsigned char* in,
  12250. long sz, int format)
  12251. {
  12252. return wolfSSL_CTX_load_verify_buffer_ex(ctx, in, sz, format, 1,
  12253. WOLFSSL_LOAD_VERIFY_DEFAULT_FLAGS);
  12254. }
  12255. #ifdef WOLFSSL_TRUST_PEER_CERT
  12256. int wolfSSL_CTX_trust_peer_buffer(WOLFSSL_CTX* ctx,
  12257. const unsigned char* in,
  12258. long sz, int format)
  12259. {
  12260. WOLFSSL_ENTER("wolfSSL_CTX_trust_peer_buffer");
  12261. /* sanity check on arguments */
  12262. if (sz < 0 || in == NULL || ctx == NULL) {
  12263. return BAD_FUNC_ARG;
  12264. }
  12265. if (format == WOLFSSL_FILETYPE_PEM)
  12266. return ProcessChainBuffer(ctx, in, sz, format, TRUSTED_PEER_TYPE,
  12267. NULL, GET_VERIFY_SETTING_CTX(ctx));
  12268. else
  12269. return ProcessBuffer(ctx, in, sz, format, TRUSTED_PEER_TYPE, NULL,
  12270. NULL, 0, GET_VERIFY_SETTING_CTX(ctx));
  12271. }
  12272. #endif /* WOLFSSL_TRUST_PEER_CERT */
  12273. int wolfSSL_CTX_use_certificate_buffer(WOLFSSL_CTX* ctx,
  12274. const unsigned char* in, long sz, int format)
  12275. {
  12276. int ret = WOLFSSL_FAILURE;
  12277. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_buffer");
  12278. ret = ProcessBuffer(ctx, in, sz, format, CERT_TYPE, NULL, NULL, 0,
  12279. GET_VERIFY_SETTING_CTX(ctx));
  12280. WOLFSSL_LEAVE("wolfSSL_CTX_use_certificate_buffer", ret);
  12281. return ret;
  12282. }
  12283. int wolfSSL_CTX_use_PrivateKey_buffer(WOLFSSL_CTX* ctx,
  12284. const unsigned char* in, long sz, int format)
  12285. {
  12286. int ret = WOLFSSL_FAILURE;
  12287. WOLFSSL_ENTER("wolfSSL_CTX_use_PrivateKey_buffer");
  12288. ret = ProcessBuffer(ctx, in, sz, format, PRIVATEKEY_TYPE, NULL, NULL,
  12289. 0, GET_VERIFY_SETTING_CTX(ctx));
  12290. WOLFSSL_LEAVE("wolfSSL_CTX_use_PrivateKey_buffer", ret);
  12291. return ret;
  12292. }
  12293. #ifdef WOLF_PRIVATE_KEY_ID
  12294. int wolfSSL_CTX_use_PrivateKey_id(WOLFSSL_CTX* ctx, const unsigned char* id,
  12295. long sz, int devId, long keySz)
  12296. {
  12297. int ret = wolfSSL_CTX_use_PrivateKey_Id(ctx, id, sz, devId);
  12298. if (ret == WOLFSSL_SUCCESS)
  12299. ctx->privateKeySz = (word32)keySz;
  12300. return ret;
  12301. }
  12302. int wolfSSL_CTX_use_PrivateKey_Id(WOLFSSL_CTX* ctx, const unsigned char* id,
  12303. long sz, int devId)
  12304. {
  12305. int ret = WOLFSSL_FAILURE;
  12306. FreeDer(&ctx->privateKey);
  12307. if (AllocDer(&ctx->privateKey, (word32)sz, PRIVATEKEY_TYPE,
  12308. ctx->heap) == 0) {
  12309. XMEMCPY(ctx->privateKey->buffer, id, sz);
  12310. ctx->privateKeyId = 1;
  12311. if (devId != INVALID_DEVID)
  12312. ctx->privateKeyDevId = devId;
  12313. else
  12314. ctx->privateKeyDevId = ctx->devId;
  12315. ret = WOLFSSL_SUCCESS;
  12316. }
  12317. return ret;
  12318. }
  12319. int wolfSSL_CTX_use_PrivateKey_Label(WOLFSSL_CTX* ctx, const char* label,
  12320. int devId)
  12321. {
  12322. int ret = WOLFSSL_FAILURE;
  12323. word32 sz = (word32)XSTRLEN(label) + 1;
  12324. FreeDer(&ctx->privateKey);
  12325. if (AllocDer(&ctx->privateKey, (word32)sz, PRIVATEKEY_TYPE,
  12326. ctx->heap) == 0) {
  12327. XMEMCPY(ctx->privateKey->buffer, label, sz);
  12328. ctx->privateKeyLabel = 1;
  12329. if (devId != INVALID_DEVID)
  12330. ctx->privateKeyDevId = devId;
  12331. else
  12332. ctx->privateKeyDevId = ctx->devId;
  12333. ret = WOLFSSL_SUCCESS;
  12334. }
  12335. return ret;
  12336. }
  12337. #endif /* WOLF_PRIVATE_KEY_ID */
  12338. int wolfSSL_CTX_use_certificate_chain_buffer_format(WOLFSSL_CTX* ctx,
  12339. const unsigned char* in, long sz, int format)
  12340. {
  12341. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_chain_buffer_format");
  12342. return ProcessBuffer(ctx, in, sz, format, CERT_TYPE, NULL, NULL, 1,
  12343. GET_VERIFY_SETTING_CTX(ctx));
  12344. }
  12345. int wolfSSL_CTX_use_certificate_chain_buffer(WOLFSSL_CTX* ctx,
  12346. const unsigned char* in, long sz)
  12347. {
  12348. return wolfSSL_CTX_use_certificate_chain_buffer_format(ctx, in, sz,
  12349. WOLFSSL_FILETYPE_PEM);
  12350. }
  12351. #ifndef NO_DH
  12352. /* server wrapper for ctx or ssl Diffie-Hellman parameters */
  12353. static int wolfSSL_SetTmpDH_buffer_wrapper(WOLFSSL_CTX* ctx, WOLFSSL* ssl,
  12354. const unsigned char* buf,
  12355. long sz, int format)
  12356. {
  12357. DerBuffer* der = NULL;
  12358. int ret = 0;
  12359. word32 pSz = MAX_DH_SIZE;
  12360. word32 gSz = MAX_DH_SIZE;
  12361. #ifdef WOLFSSL_SMALL_STACK
  12362. byte* p = NULL;
  12363. byte* g = NULL;
  12364. #else
  12365. byte p[MAX_DH_SIZE];
  12366. byte g[MAX_DH_SIZE];
  12367. #endif
  12368. if (ctx == NULL || buf == NULL)
  12369. return BAD_FUNC_ARG;
  12370. ret = AllocDer(&der, 0, DH_PARAM_TYPE, ctx->heap);
  12371. if (ret != 0) {
  12372. return ret;
  12373. }
  12374. der->buffer = (byte*)buf;
  12375. der->length = (word32)sz;
  12376. #ifdef WOLFSSL_SMALL_STACK
  12377. p = (byte*)XMALLOC(pSz, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12378. g = (byte*)XMALLOC(gSz, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12379. if (p == NULL || g == NULL) {
  12380. XFREE(p, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12381. XFREE(g, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12382. return MEMORY_E;
  12383. }
  12384. #endif
  12385. if (format != WOLFSSL_FILETYPE_ASN1 && format != WOLFSSL_FILETYPE_PEM)
  12386. ret = WOLFSSL_BAD_FILETYPE;
  12387. else {
  12388. if (format == WOLFSSL_FILETYPE_PEM) {
  12389. #ifdef WOLFSSL_PEM_TO_DER
  12390. FreeDer(&der);
  12391. ret = PemToDer(buf, sz, DH_PARAM_TYPE, &der, ctx->heap,
  12392. NULL, NULL);
  12393. if (ret < 0) {
  12394. /* Also try X9.42 format */
  12395. ret = PemToDer(buf, sz, X942_PARAM_TYPE, &der, ctx->heap,
  12396. NULL, NULL);
  12397. }
  12398. #ifdef WOLFSSL_WPAS
  12399. #ifndef NO_DSA
  12400. if (ret < 0) {
  12401. ret = PemToDer(buf, sz, DSA_PARAM_TYPE, &der, ctx->heap,
  12402. NULL, NULL);
  12403. }
  12404. #endif
  12405. #endif /* WOLFSSL_WPAS */
  12406. #else
  12407. ret = NOT_COMPILED_IN;
  12408. #endif /* WOLFSSL_PEM_TO_DER */
  12409. }
  12410. if (ret == 0) {
  12411. if (wc_DhParamsLoad(der->buffer, der->length, p, &pSz, g, &gSz) < 0)
  12412. ret = WOLFSSL_BAD_FILETYPE;
  12413. else if (ssl)
  12414. ret = wolfSSL_SetTmpDH(ssl, p, pSz, g, gSz);
  12415. else
  12416. ret = wolfSSL_CTX_SetTmpDH(ctx, p, pSz, g, gSz);
  12417. }
  12418. }
  12419. FreeDer(&der);
  12420. #ifdef WOLFSSL_SMALL_STACK
  12421. XFREE(p, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12422. XFREE(g, NULL, DYNAMIC_TYPE_PUBLIC_KEY);
  12423. #endif
  12424. return ret;
  12425. }
  12426. /* server Diffie-Hellman parameters, WOLFSSL_SUCCESS on ok */
  12427. int wolfSSL_SetTmpDH_buffer(WOLFSSL* ssl, const unsigned char* buf, long sz,
  12428. int format)
  12429. {
  12430. if (ssl == NULL)
  12431. return BAD_FUNC_ARG;
  12432. return wolfSSL_SetTmpDH_buffer_wrapper(ssl->ctx, ssl, buf, sz, format);
  12433. }
  12434. /* server ctx Diffie-Hellman parameters, WOLFSSL_SUCCESS on ok */
  12435. int wolfSSL_CTX_SetTmpDH_buffer(WOLFSSL_CTX* ctx, const unsigned char* buf,
  12436. long sz, int format)
  12437. {
  12438. return wolfSSL_SetTmpDH_buffer_wrapper(ctx, NULL, buf, sz, format);
  12439. }
  12440. #endif /* NO_DH */
  12441. int wolfSSL_use_certificate_buffer(WOLFSSL* ssl,
  12442. const unsigned char* in, long sz, int format)
  12443. {
  12444. WOLFSSL_ENTER("wolfSSL_use_certificate_buffer");
  12445. if (ssl == NULL)
  12446. return BAD_FUNC_ARG;
  12447. return ProcessBuffer(ssl->ctx, in, sz, format, CERT_TYPE, ssl, NULL, 0,
  12448. GET_VERIFY_SETTING_SSL(ssl));
  12449. }
  12450. int wolfSSL_use_PrivateKey_buffer(WOLFSSL* ssl,
  12451. const unsigned char* in, long sz, int format)
  12452. {
  12453. WOLFSSL_ENTER("wolfSSL_use_PrivateKey_buffer");
  12454. if (ssl == NULL)
  12455. return BAD_FUNC_ARG;
  12456. return ProcessBuffer(ssl->ctx, in, sz, format, PRIVATEKEY_TYPE,
  12457. ssl, NULL, 0, GET_VERIFY_SETTING_SSL(ssl));
  12458. }
  12459. #ifdef WOLF_PRIVATE_KEY_ID
  12460. int wolfSSL_use_PrivateKey_id(WOLFSSL* ssl, const unsigned char* id,
  12461. long sz, int devId, long keySz)
  12462. {
  12463. int ret = wolfSSL_use_PrivateKey_Id(ssl, id, sz, devId);
  12464. if (ret == WOLFSSL_SUCCESS)
  12465. ssl->buffers.keySz = (word32)keySz;
  12466. return ret;
  12467. }
  12468. int wolfSSL_use_PrivateKey_Id(WOLFSSL* ssl, const unsigned char* id,
  12469. long sz, int devId)
  12470. {
  12471. int ret = WOLFSSL_FAILURE;
  12472. if (ssl->buffers.weOwnKey)
  12473. FreeDer(&ssl->buffers.key);
  12474. if (AllocDer(&ssl->buffers.key, (word32)sz, PRIVATEKEY_TYPE,
  12475. ssl->heap) == 0) {
  12476. XMEMCPY(ssl->buffers.key->buffer, id, sz);
  12477. ssl->buffers.weOwnKey = 1;
  12478. ssl->buffers.keyId = 1;
  12479. if (devId != INVALID_DEVID)
  12480. ssl->buffers.keyDevId = devId;
  12481. else
  12482. ssl->buffers.keyDevId = ssl->devId;
  12483. ret = WOLFSSL_SUCCESS;
  12484. }
  12485. return ret;
  12486. }
  12487. int wolfSSL_use_PrivateKey_Label(WOLFSSL* ssl, const char* label, int devId)
  12488. {
  12489. int ret = WOLFSSL_FAILURE;
  12490. word32 sz = (word32)XSTRLEN(label) + 1;
  12491. if (ssl->buffers.weOwnKey)
  12492. FreeDer(&ssl->buffers.key);
  12493. if (AllocDer(&ssl->buffers.key, (word32)sz, PRIVATEKEY_TYPE,
  12494. ssl->heap) == 0) {
  12495. XMEMCPY(ssl->buffers.key->buffer, label, sz);
  12496. ssl->buffers.weOwnKey = 1;
  12497. ssl->buffers.keyLabel = 1;
  12498. if (devId != INVALID_DEVID)
  12499. ssl->buffers.keyDevId = devId;
  12500. else
  12501. ssl->buffers.keyDevId = ssl->devId;
  12502. ret = WOLFSSL_SUCCESS;
  12503. }
  12504. return ret;
  12505. }
  12506. #endif /* WOLF_PRIVATE_KEY_ID */
  12507. int wolfSSL_use_certificate_chain_buffer_format(WOLFSSL* ssl,
  12508. const unsigned char* in, long sz, int format)
  12509. {
  12510. WOLFSSL_ENTER("wolfSSL_use_certificate_chain_buffer_format");
  12511. if (ssl == NULL)
  12512. return BAD_FUNC_ARG;
  12513. return ProcessBuffer(ssl->ctx, in, sz, format, CERT_TYPE,
  12514. ssl, NULL, 1, GET_VERIFY_SETTING_SSL(ssl));
  12515. }
  12516. int wolfSSL_use_certificate_chain_buffer(WOLFSSL* ssl,
  12517. const unsigned char* in, long sz)
  12518. {
  12519. return wolfSSL_use_certificate_chain_buffer_format(ssl, in, sz,
  12520. WOLFSSL_FILETYPE_PEM);
  12521. }
  12522. /* unload any certs or keys that SSL owns, leave CTX as is
  12523. WOLFSSL_SUCCESS on ok */
  12524. int wolfSSL_UnloadCertsKeys(WOLFSSL* ssl)
  12525. {
  12526. if (ssl == NULL) {
  12527. WOLFSSL_MSG("Null function arg");
  12528. return BAD_FUNC_ARG;
  12529. }
  12530. if (ssl->buffers.weOwnCert && !ssl->keepCert) {
  12531. WOLFSSL_MSG("Unloading cert");
  12532. FreeDer(&ssl->buffers.certificate);
  12533. #ifdef KEEP_OUR_CERT
  12534. wolfSSL_X509_free(ssl->ourCert);
  12535. ssl->ourCert = NULL;
  12536. #endif
  12537. ssl->buffers.weOwnCert = 0;
  12538. }
  12539. if (ssl->buffers.weOwnCertChain) {
  12540. WOLFSSL_MSG("Unloading cert chain");
  12541. FreeDer(&ssl->buffers.certChain);
  12542. ssl->buffers.weOwnCertChain = 0;
  12543. }
  12544. if (ssl->buffers.weOwnKey) {
  12545. WOLFSSL_MSG("Unloading key");
  12546. FreeDer(&ssl->buffers.key);
  12547. ssl->buffers.weOwnKey = 0;
  12548. }
  12549. return WOLFSSL_SUCCESS;
  12550. }
  12551. int wolfSSL_CTX_UnloadCAs(WOLFSSL_CTX* ctx)
  12552. {
  12553. WOLFSSL_ENTER("wolfSSL_CTX_UnloadCAs");
  12554. if (ctx == NULL)
  12555. return BAD_FUNC_ARG;
  12556. return wolfSSL_CertManagerUnloadCAs(ctx->cm);
  12557. }
  12558. #ifdef WOLFSSL_TRUST_PEER_CERT
  12559. int wolfSSL_CTX_Unload_trust_peers(WOLFSSL_CTX* ctx)
  12560. {
  12561. WOLFSSL_ENTER("wolfSSL_CTX_Unload_trust_peers");
  12562. if (ctx == NULL)
  12563. return BAD_FUNC_ARG;
  12564. return wolfSSL_CertManagerUnload_trust_peers(ctx->cm);
  12565. }
  12566. #ifdef WOLFSSL_LOCAL_X509_STORE
  12567. int wolfSSL_Unload_trust_peers(WOLFSSL* ssl)
  12568. {
  12569. WOLFSSL_ENTER("wolfSSL_CTX_Unload_trust_peers");
  12570. if (ssl == NULL)
  12571. return BAD_FUNC_ARG;
  12572. return wolfSSL_CertManagerUnload_trust_peers(SSL_CM(ssl));
  12573. }
  12574. #endif /* WOLFSSL_LOCAL_X509_STORE */
  12575. #endif /* WOLFSSL_TRUST_PEER_CERT */
  12576. /* old NO_FILESYSTEM end */
  12577. #endif /* !NO_CERTS */
  12578. #ifdef OPENSSL_EXTRA
  12579. int wolfSSL_add_all_algorithms(void)
  12580. {
  12581. WOLFSSL_ENTER("wolfSSL_add_all_algorithms");
  12582. if (initRefCount != 0 || wolfSSL_Init() == WOLFSSL_SUCCESS)
  12583. return WOLFSSL_SUCCESS;
  12584. else
  12585. return WOLFSSL_FATAL_ERROR;
  12586. }
  12587. int wolfSSL_OpenSSL_add_all_algorithms_noconf(void)
  12588. {
  12589. WOLFSSL_ENTER("wolfSSL_OpenSSL_add_all_algorithms_noconf");
  12590. if (wolfSSL_add_all_algorithms() == WOLFSSL_FATAL_ERROR)
  12591. return WOLFSSL_FATAL_ERROR;
  12592. return WOLFSSL_SUCCESS;
  12593. }
  12594. int wolfSSL_OpenSSL_add_all_algorithms_conf(void)
  12595. {
  12596. WOLFSSL_ENTER("wolfSSL_OpenSSL_add_all_algorithms_conf");
  12597. /* This function is currently the same as
  12598. wolfSSL_OpenSSL_add_all_algorithms_noconf since we do not employ
  12599. the use of a wolfssl.cnf type configuration file and is only used for
  12600. OpenSSL compatability. */
  12601. if (wolfSSL_add_all_algorithms() == WOLFSSL_FATAL_ERROR) {
  12602. return WOLFSSL_FATAL_ERROR;
  12603. }
  12604. return WOLFSSL_SUCCESS;
  12605. }
  12606. /* returns previous set cache size which stays constant */
  12607. long wolfSSL_CTX_sess_set_cache_size(WOLFSSL_CTX* ctx, long sz)
  12608. {
  12609. /* cache size fixed at compile time in wolfSSL */
  12610. (void)ctx;
  12611. (void)sz;
  12612. WOLFSSL_MSG("session cache is set at compile time");
  12613. #ifndef NO_SESSION_CACHE
  12614. return (long)(SESSIONS_PER_ROW * SESSION_ROWS);
  12615. #else
  12616. return 0;
  12617. #endif
  12618. }
  12619. #endif
  12620. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  12621. void wolfSSL_CTX_set_quiet_shutdown(WOLFSSL_CTX* ctx, int mode)
  12622. {
  12623. WOLFSSL_ENTER("wolfSSL_CTX_set_quiet_shutdown");
  12624. if (mode)
  12625. ctx->quietShutdown = 1;
  12626. }
  12627. void wolfSSL_set_quiet_shutdown(WOLFSSL* ssl, int mode)
  12628. {
  12629. WOLFSSL_ENTER("wolfSSL_CTX_set_quiet_shutdown");
  12630. if (mode)
  12631. ssl->options.quietShutdown = 1;
  12632. }
  12633. #endif /* OPENSSL_EXTRA || WOLFSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  12634. #ifdef OPENSSL_EXTRA
  12635. #ifndef NO_BIO
  12636. void wolfSSL_set_bio(WOLFSSL* ssl, WOLFSSL_BIO* rd, WOLFSSL_BIO* wr)
  12637. {
  12638. WOLFSSL_ENTER("wolfSSL_set_bio");
  12639. if (ssl == NULL) {
  12640. WOLFSSL_MSG("Bad argument, ssl was NULL");
  12641. return;
  12642. }
  12643. /* free any existing WOLFSSL_BIOs in use but don't free those in
  12644. * a chain */
  12645. if (ssl->biord != NULL) {
  12646. if (ssl->biord != ssl->biowr) {
  12647. if (ssl->biowr != NULL && ssl->biowr->prev != NULL)
  12648. wolfSSL_BIO_free(ssl->biowr);
  12649. ssl->biowr = NULL;
  12650. }
  12651. if (ssl->biord->prev != NULL)
  12652. wolfSSL_BIO_free(ssl->biord);
  12653. ssl->biord = NULL;
  12654. }
  12655. /* set flag obviously */
  12656. if (rd && !(rd->flags & WOLFSSL_BIO_FLAG_READ))
  12657. rd->flags |= WOLFSSL_BIO_FLAG_READ;
  12658. if (wr && !(wr->flags & WOLFSSL_BIO_FLAG_WRITE))
  12659. wr->flags |= WOLFSSL_BIO_FLAG_WRITE;
  12660. ssl->biord = rd;
  12661. ssl->biowr = wr;
  12662. /* set SSL to use BIO callbacks instead */
  12663. if (((ssl->cbioFlag & WOLFSSL_CBIO_RECV) == 0)) {
  12664. ssl->CBIORecv = BioReceive;
  12665. }
  12666. if (((ssl->cbioFlag & WOLFSSL_CBIO_SEND) == 0)) {
  12667. ssl->CBIOSend = BioSend;
  12668. }
  12669. /* User programs should always retry reading from these BIOs */
  12670. if (rd) {
  12671. /* User writes to rd */
  12672. BIO_set_retry_write(rd);
  12673. }
  12674. if (wr) {
  12675. /* User reads from wr */
  12676. BIO_set_retry_read(wr);
  12677. }
  12678. }
  12679. #endif /* !NO_BIO */
  12680. #endif /* OPENSSL_EXTRA */
  12681. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA)
  12682. void wolfSSL_CTX_set_client_CA_list(WOLFSSL_CTX* ctx,
  12683. WOLF_STACK_OF(WOLFSSL_X509_NAME)* names)
  12684. {
  12685. WOLFSSL_ENTER("wolfSSL_CTX_set_client_CA_list");
  12686. if (ctx != NULL) {
  12687. wolfSSL_sk_X509_NAME_pop_free(ctx->ca_names, NULL);
  12688. ctx->ca_names = names;
  12689. }
  12690. }
  12691. void wolfSSL_set_client_CA_list(WOLFSSL* ssl,
  12692. WOLF_STACK_OF(WOLFSSL_X509_NAME)* names)
  12693. {
  12694. WOLFSSL_ENTER("wolfSSL_set_client_CA_list");
  12695. if (ssl != NULL) {
  12696. if (ssl->ca_names != ssl->ctx->ca_names)
  12697. wolfSSL_sk_X509_NAME_pop_free(ssl->ca_names, NULL);
  12698. ssl->ca_names = names;
  12699. }
  12700. }
  12701. #ifdef OPENSSL_EXTRA
  12702. /* registers client cert callback, called during handshake if server
  12703. requests client auth but user has not loaded client cert/key */
  12704. void wolfSSL_CTX_set_client_cert_cb(WOLFSSL_CTX *ctx, client_cert_cb cb)
  12705. {
  12706. WOLFSSL_ENTER("wolfSSL_CTX_set_client_cert_cb");
  12707. if (ctx != NULL) {
  12708. ctx->CBClientCert = cb;
  12709. }
  12710. }
  12711. void wolfSSL_CTX_set_cert_cb(WOLFSSL_CTX* ctx,
  12712. CertSetupCallback cb, void *arg)
  12713. {
  12714. WOLFSSL_ENTER("wolfSSL_CTX_set_cert_cb");
  12715. if (ctx == NULL)
  12716. return;
  12717. ctx->certSetupCb = cb;
  12718. ctx->certSetupCbArg = arg;
  12719. }
  12720. /**
  12721. * Internal wrapper for calling certSetupCb
  12722. * @param ssl The SSL/TLS Object
  12723. * @return 0 on success
  12724. */
  12725. int CertSetupCbWrapper(WOLFSSL* ssl)
  12726. {
  12727. int ret = 0;
  12728. if (ssl->ctx->certSetupCb != NULL) {
  12729. WOLFSSL_MSG("Calling user cert setup callback");
  12730. ret = ssl->ctx->certSetupCb(ssl, ssl->ctx->certSetupCbArg);
  12731. if (ret == 1) {
  12732. WOLFSSL_MSG("User cert callback returned success");
  12733. ret = 0;
  12734. }
  12735. else if (ret == 0) {
  12736. SendAlert(ssl, alert_fatal, internal_error);
  12737. ret = CLIENT_CERT_CB_ERROR;
  12738. }
  12739. else if (ret < 0) {
  12740. ret = WOLFSSL_ERROR_WANT_X509_LOOKUP;
  12741. }
  12742. else {
  12743. WOLFSSL_MSG("Unexpected user callback return");
  12744. ret = CLIENT_CERT_CB_ERROR;
  12745. }
  12746. }
  12747. return ret;
  12748. }
  12749. #endif /* OPENSSL_EXTRA */
  12750. #endif /* OPENSSL_EXTRA || WOLFSSL_EXTRA || HAVE_WEBSERVER */
  12751. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA)
  12752. WOLF_STACK_OF(WOLFSSL_X509_NAME)* wolfSSL_CTX_get_client_CA_list(
  12753. const WOLFSSL_CTX *ctx)
  12754. {
  12755. WOLFSSL_ENTER("wolfSSL_CTX_get_client_CA_list");
  12756. if (ctx == NULL) {
  12757. WOLFSSL_MSG("Bad argument passed to wolfSSL_CTX_get_client_CA_list");
  12758. return NULL;
  12759. }
  12760. return ctx->ca_names;
  12761. }
  12762. /* returns the CA's set on server side or the CA's sent from server when
  12763. * on client side */
  12764. WOLF_STACK_OF(WOLFSSL_X509_NAME)* wolfSSL_get_client_CA_list(
  12765. const WOLFSSL* ssl)
  12766. {
  12767. WOLFSSL_ENTER("wolfSSL_get_client_CA_list");
  12768. if (ssl == NULL) {
  12769. WOLFSSL_MSG("Bad argument passed to wolfSSL_get_client_CA_list");
  12770. return NULL;
  12771. }
  12772. return SSL_CA_NAMES(ssl);
  12773. }
  12774. #if !defined(NO_CERTS)
  12775. int wolfSSL_CTX_add_client_CA(WOLFSSL_CTX* ctx, WOLFSSL_X509* x509)
  12776. {
  12777. WOLFSSL_X509_NAME *nameCopy = NULL;
  12778. WOLFSSL_ENTER("wolfSSL_CTX_add_client_CA");
  12779. if (ctx == NULL || x509 == NULL){
  12780. WOLFSSL_MSG("Bad argument");
  12781. return WOLFSSL_FAILURE;
  12782. }
  12783. if (ctx->ca_names == NULL) {
  12784. ctx->ca_names = wolfSSL_sk_X509_NAME_new(NULL);
  12785. if (ctx->ca_names == NULL) {
  12786. WOLFSSL_MSG("wolfSSL_sk_X509_NAME_new error");
  12787. return WOLFSSL_FAILURE;
  12788. }
  12789. }
  12790. nameCopy = wolfSSL_X509_NAME_dup(wolfSSL_X509_get_subject_name(x509));
  12791. if (nameCopy == NULL) {
  12792. WOLFSSL_MSG("wolfSSL_X509_NAME_dup error");
  12793. return WOLFSSL_FAILURE;
  12794. }
  12795. if (wolfSSL_sk_X509_NAME_push(ctx->ca_names, nameCopy) != WOLFSSL_SUCCESS) {
  12796. WOLFSSL_MSG("wolfSSL_sk_X509_NAME_push error");
  12797. wolfSSL_X509_NAME_free(nameCopy);
  12798. return WOLFSSL_FAILURE;
  12799. }
  12800. return WOLFSSL_SUCCESS;
  12801. }
  12802. #endif
  12803. #ifndef NO_BIO
  12804. #if !defined(NO_RSA) && !defined(NO_CERTS)
  12805. WOLF_STACK_OF(WOLFSSL_X509_NAME)* wolfSSL_load_client_CA_file(const char* fname)
  12806. {
  12807. /* The webserver build is using this to load a CA into the server
  12808. * for client authentication as an option. Have this return NULL in
  12809. * that case. If OPENSSL_EXTRA is enabled, go ahead and include
  12810. * the function. */
  12811. #ifdef OPENSSL_EXTRA
  12812. WOLFSSL_STACK *list = NULL;
  12813. WOLFSSL_BIO* bio = NULL;
  12814. WOLFSSL_X509 *cert = NULL;
  12815. WOLFSSL_X509_NAME *nameCopy = NULL;
  12816. unsigned long err = WOLFSSL_FAILURE;
  12817. WOLFSSL_ENTER("wolfSSL_load_client_CA_file");
  12818. bio = wolfSSL_BIO_new_file(fname, "rb");
  12819. if (bio == NULL) {
  12820. WOLFSSL_MSG("wolfSSL_BIO_new_file error");
  12821. goto cleanup;
  12822. }
  12823. list = wolfSSL_sk_X509_NAME_new(NULL);
  12824. if (list == NULL) {
  12825. WOLFSSL_MSG("wolfSSL_sk_X509_NAME_new error");
  12826. goto cleanup;
  12827. }
  12828. /* Read each certificate in the chain out of the file. */
  12829. while (wolfSSL_PEM_read_bio_X509(bio, &cert, NULL, NULL) != NULL) {
  12830. /* Need a persistent copy of the subject name. */
  12831. nameCopy = wolfSSL_X509_NAME_dup(
  12832. wolfSSL_X509_get_subject_name(cert));
  12833. if (nameCopy == NULL) {
  12834. WOLFSSL_MSG("wolfSSL_X509_NAME_dup error");
  12835. goto cleanup;
  12836. }
  12837. /*
  12838. * Original cert will be freed so make sure not to try to access
  12839. * it in the future.
  12840. */
  12841. nameCopy->x509 = NULL;
  12842. if (wolfSSL_sk_X509_NAME_push(list, nameCopy) !=
  12843. WOLFSSL_SUCCESS) {
  12844. WOLFSSL_MSG("wolfSSL_sk_X509_NAME_push error");
  12845. /* Do free in loop because nameCopy is now responsibility
  12846. * of list to free and adding jumps to cleanup after this
  12847. * might result in a double free. */
  12848. wolfSSL_X509_NAME_free(nameCopy);
  12849. goto cleanup;
  12850. }
  12851. wolfSSL_X509_free(cert);
  12852. cert = NULL;
  12853. }
  12854. CLEAR_ASN_NO_PEM_HEADER_ERROR(err);
  12855. err = WOLFSSL_SUCCESS;
  12856. cleanup:
  12857. wolfSSL_X509_free(cert);
  12858. wolfSSL_BIO_free(bio);
  12859. if (err != WOLFSSL_SUCCESS) {
  12860. /* We failed so return NULL */
  12861. wolfSSL_sk_X509_NAME_pop_free(list, NULL);
  12862. list = NULL;
  12863. }
  12864. return list;
  12865. #else
  12866. (void)fname;
  12867. return NULL;
  12868. #endif
  12869. }
  12870. #endif
  12871. #endif /* !NO_BIO */
  12872. #endif /* OPENSSL_EXTRA || WOLFSSL_EXTRA */
  12873. #ifdef OPENSSL_EXTRA
  12874. #ifndef NO_WOLFSSL_STUB
  12875. int wolfSSL_CTX_set_default_verify_paths(WOLFSSL_CTX* ctx)
  12876. {
  12877. /* TODO:, not needed in goahead */
  12878. (void)ctx;
  12879. WOLFSSL_STUB("SSL_CTX_set_default_verify_paths");
  12880. return SSL_NOT_IMPLEMENTED;
  12881. }
  12882. #endif
  12883. #if defined(WOLFCRYPT_HAVE_SRP) && !defined(NO_SHA256) \
  12884. && !defined(WC_NO_RNG)
  12885. static const byte srp_N[] = {
  12886. 0xEE, 0xAF, 0x0A, 0xB9, 0xAD, 0xB3, 0x8D, 0xD6, 0x9C, 0x33, 0xF8,
  12887. 0x0A, 0xFA, 0x8F, 0xC5, 0xE8, 0x60, 0x72, 0x61, 0x87, 0x75, 0xFF,
  12888. 0x3C, 0x0B, 0x9E, 0xA2, 0x31, 0x4C, 0x9C, 0x25, 0x65, 0x76, 0xD6,
  12889. 0x74, 0xDF, 0x74, 0x96, 0xEA, 0x81, 0xD3, 0x38, 0x3B, 0x48, 0x13,
  12890. 0xD6, 0x92, 0xC6, 0xE0, 0xE0, 0xD5, 0xD8, 0xE2, 0x50, 0xB9, 0x8B,
  12891. 0xE4, 0x8E, 0x49, 0x5C, 0x1D, 0x60, 0x89, 0xDA, 0xD1, 0x5D, 0xC7,
  12892. 0xD7, 0xB4, 0x61, 0x54, 0xD6, 0xB6, 0xCE, 0x8E, 0xF4, 0xAD, 0x69,
  12893. 0xB1, 0x5D, 0x49, 0x82, 0x55, 0x9B, 0x29, 0x7B, 0xCF, 0x18, 0x85,
  12894. 0xC5, 0x29, 0xF5, 0x66, 0x66, 0x0E, 0x57, 0xEC, 0x68, 0xED, 0xBC,
  12895. 0x3C, 0x05, 0x72, 0x6C, 0xC0, 0x2F, 0xD4, 0xCB, 0xF4, 0x97, 0x6E,
  12896. 0xAA, 0x9A, 0xFD, 0x51, 0x38, 0xFE, 0x83, 0x76, 0x43, 0x5B, 0x9F,
  12897. 0xC6, 0x1D, 0x2F, 0xC0, 0xEB, 0x06, 0xE3
  12898. };
  12899. static const byte srp_g[] = {
  12900. 0x02
  12901. };
  12902. int wolfSSL_CTX_set_srp_username(WOLFSSL_CTX* ctx, char* username)
  12903. {
  12904. int r = 0;
  12905. SrpSide srp_side = SRP_CLIENT_SIDE;
  12906. byte salt[SRP_SALT_SIZE];
  12907. WOLFSSL_ENTER("wolfSSL_CTX_set_srp_username");
  12908. if (ctx == NULL || ctx->srp == NULL || username==NULL)
  12909. return SSL_FAILURE;
  12910. if (ctx->method->side == WOLFSSL_SERVER_END){
  12911. srp_side = SRP_SERVER_SIDE;
  12912. } else if (ctx->method->side == WOLFSSL_CLIENT_END){
  12913. srp_side = SRP_CLIENT_SIDE;
  12914. } else {
  12915. WOLFSSL_MSG("Init CTX failed");
  12916. return SSL_FAILURE;
  12917. }
  12918. if (wc_SrpInit(ctx->srp, SRP_TYPE_SHA256, srp_side) < 0) {
  12919. WOLFSSL_MSG("Init SRP CTX failed");
  12920. XFREE(ctx->srp, ctx->heap, DYNAMIC_TYPE_SRP);
  12921. ctx->srp = NULL;
  12922. return SSL_FAILURE;
  12923. }
  12924. r = wc_SrpSetUsername(ctx->srp, (const byte*)username,
  12925. (word32)XSTRLEN(username));
  12926. if (r < 0) {
  12927. WOLFSSL_MSG("fail to set srp username.");
  12928. return SSL_FAILURE;
  12929. }
  12930. /* if wolfSSL_CTX_set_srp_password has already been called, */
  12931. /* execute wc_SrpSetPassword here */
  12932. if (ctx->srp_password != NULL) {
  12933. WC_RNG rng;
  12934. if (wc_InitRng(&rng) < 0){
  12935. WOLFSSL_MSG("wc_InitRng failed");
  12936. return SSL_FAILURE;
  12937. }
  12938. XMEMSET(salt, 0, sizeof(salt)/sizeof(salt[0]));
  12939. r = wc_RNG_GenerateBlock(&rng, salt, sizeof(salt)/sizeof(salt[0]));
  12940. wc_FreeRng(&rng);
  12941. if (r < 0) {
  12942. WOLFSSL_MSG("wc_RNG_GenerateBlock failed");
  12943. return SSL_FAILURE;
  12944. }
  12945. if (wc_SrpSetParams(ctx->srp, srp_N, sizeof(srp_N)/sizeof(srp_N[0]),
  12946. srp_g, sizeof(srp_g)/sizeof(srp_g[0]),
  12947. salt, sizeof(salt)/sizeof(salt[0])) < 0) {
  12948. WOLFSSL_MSG("wc_SrpSetParam failed");
  12949. return SSL_FAILURE;
  12950. }
  12951. r = wc_SrpSetPassword(ctx->srp,
  12952. (const byte*)ctx->srp_password,
  12953. (word32)XSTRLEN((char *)ctx->srp_password));
  12954. if (r < 0) {
  12955. WOLFSSL_MSG("fail to set srp password.");
  12956. return SSL_FAILURE;
  12957. }
  12958. XFREE(ctx->srp_password, ctx->heap, DYNAMIC_TYPE_SRP);
  12959. ctx->srp_password = NULL;
  12960. }
  12961. return WOLFSSL_SUCCESS;
  12962. }
  12963. int wolfSSL_CTX_set_srp_password(WOLFSSL_CTX* ctx, char* password)
  12964. {
  12965. int r;
  12966. byte salt[SRP_SALT_SIZE];
  12967. WOLFSSL_ENTER("wolfSSL_CTX_set_srp_password");
  12968. if (ctx == NULL || ctx->srp == NULL || password == NULL)
  12969. return SSL_FAILURE;
  12970. if (ctx->srp->user != NULL) {
  12971. WC_RNG rng;
  12972. if (wc_InitRng(&rng) < 0) {
  12973. WOLFSSL_MSG("wc_InitRng failed");
  12974. return SSL_FAILURE;
  12975. }
  12976. XMEMSET(salt, 0, sizeof(salt)/sizeof(salt[0]));
  12977. r = wc_RNG_GenerateBlock(&rng, salt, sizeof(salt)/sizeof(salt[0]));
  12978. wc_FreeRng(&rng);
  12979. if (r < 0) {
  12980. WOLFSSL_MSG("wc_RNG_GenerateBlock failed");
  12981. return SSL_FAILURE;
  12982. }
  12983. if (wc_SrpSetParams(ctx->srp, srp_N, sizeof(srp_N)/sizeof(srp_N[0]),
  12984. srp_g, sizeof(srp_g)/sizeof(srp_g[0]),
  12985. salt, sizeof(salt)/sizeof(salt[0])) < 0){
  12986. WOLFSSL_MSG("wc_SrpSetParam failed");
  12987. wc_FreeRng(&rng);
  12988. return SSL_FAILURE;
  12989. }
  12990. r = wc_SrpSetPassword(ctx->srp, (const byte*)password,
  12991. (word32)XSTRLEN(password));
  12992. if (r < 0) {
  12993. WOLFSSL_MSG("wc_SrpSetPassword failed.");
  12994. wc_FreeRng(&rng);
  12995. return SSL_FAILURE;
  12996. }
  12997. if (ctx->srp_password != NULL){
  12998. XFREE(ctx->srp_password,NULL,
  12999. DYNAMIC_TYPE_SRP);
  13000. ctx->srp_password = NULL;
  13001. }
  13002. wc_FreeRng(&rng);
  13003. } else {
  13004. /* save password for wolfSSL_set_srp_username */
  13005. if (ctx->srp_password != NULL)
  13006. XFREE(ctx->srp_password,ctx->heap, DYNAMIC_TYPE_SRP);
  13007. ctx->srp_password = (byte*)XMALLOC(XSTRLEN(password) + 1, ctx->heap,
  13008. DYNAMIC_TYPE_SRP);
  13009. if (ctx->srp_password == NULL){
  13010. WOLFSSL_MSG("memory allocation error");
  13011. return SSL_FAILURE;
  13012. }
  13013. XMEMCPY(ctx->srp_password, password, XSTRLEN(password) + 1);
  13014. }
  13015. return WOLFSSL_SUCCESS;
  13016. }
  13017. /**
  13018. * The modulus passed to wc_SrpSetParams in ssl.c is constant so check
  13019. * that the requested strength is less than or equal to the size of the
  13020. * static modulus size.
  13021. * @param ctx Not used
  13022. * @param strength Minimum number of bits for the modulus
  13023. * @return 1 if strength is less than or equal to static modulus
  13024. * 0 if strength is greater than static modulus
  13025. */
  13026. int wolfSSL_CTX_set_srp_strength(WOLFSSL_CTX *ctx, int strength)
  13027. {
  13028. (void)ctx;
  13029. WOLFSSL_ENTER("wolfSSL_CTX_set_srp_strength");
  13030. if (strength > (int)(sizeof(srp_N)*8)) {
  13031. WOLFSSL_MSG("Bad Parameter");
  13032. return WOLFSSL_FAILURE;
  13033. }
  13034. return WOLFSSL_SUCCESS;
  13035. }
  13036. char* wolfSSL_get_srp_username(WOLFSSL *ssl)
  13037. {
  13038. if (ssl && ssl->ctx && ssl->ctx->srp) {
  13039. return (char*) ssl->ctx->srp->user;
  13040. }
  13041. return NULL;
  13042. }
  13043. #endif /* WOLFCRYPT_HAVE_SRP && !NO_SHA256 && !WC_NO_RNG */
  13044. /* keyblock size in bytes or -1 */
  13045. int wolfSSL_get_keyblock_size(WOLFSSL* ssl)
  13046. {
  13047. if (ssl == NULL)
  13048. return WOLFSSL_FATAL_ERROR;
  13049. return 2 * (ssl->specs.key_size + ssl->specs.iv_size +
  13050. ssl->specs.hash_size);
  13051. }
  13052. #endif /* OPENSSL_EXTRA */
  13053. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  13054. /* store keys returns WOLFSSL_SUCCESS or -1 on error */
  13055. int wolfSSL_get_keys(WOLFSSL* ssl, unsigned char** ms, unsigned int* msLen,
  13056. unsigned char** sr, unsigned int* srLen,
  13057. unsigned char** cr, unsigned int* crLen)
  13058. {
  13059. if (ssl == NULL || ssl->arrays == NULL)
  13060. return WOLFSSL_FATAL_ERROR;
  13061. *ms = ssl->arrays->masterSecret;
  13062. *sr = ssl->arrays->serverRandom;
  13063. *cr = ssl->arrays->clientRandom;
  13064. *msLen = SECRET_LEN;
  13065. *srLen = RAN_LEN;
  13066. *crLen = RAN_LEN;
  13067. return WOLFSSL_SUCCESS;
  13068. }
  13069. void wolfSSL_set_accept_state(WOLFSSL* ssl)
  13070. {
  13071. WOLFSSL_ENTER("wolfSSL_set_accept_state");
  13072. if (ssl == NULL)
  13073. return;
  13074. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  13075. #ifdef HAVE_ECC
  13076. #ifdef WOLFSSL_SMALL_STACK
  13077. ecc_key* key = NULL;
  13078. #else
  13079. ecc_key key[1];
  13080. #endif
  13081. word32 idx = 0;
  13082. #ifdef WOLFSSL_SMALL_STACK
  13083. key = (ecc_key*)XMALLOC(sizeof(ecc_key), ssl->heap,
  13084. DYNAMIC_TYPE_ECC);
  13085. if (key == NULL) {
  13086. WOLFSSL_MSG("Error allocating memory for ecc_key");
  13087. }
  13088. #endif
  13089. if (ssl->options.haveStaticECC && ssl->buffers.key != NULL) {
  13090. if (wc_ecc_init(key) >= 0) {
  13091. if (wc_EccPrivateKeyDecode(ssl->buffers.key->buffer, &idx,
  13092. key, ssl->buffers.key->length) != 0) {
  13093. ssl->options.haveECDSAsig = 0;
  13094. ssl->options.haveECC = 0;
  13095. ssl->options.haveStaticECC = 0;
  13096. }
  13097. wc_ecc_free(key);
  13098. }
  13099. }
  13100. #ifdef WOLFSSL_SMALL_STACK
  13101. XFREE(key, ssl->heap, DYNAMIC_TYPE_ECC);
  13102. #endif
  13103. #endif
  13104. #ifndef NO_DH
  13105. if (!ssl->options.haveDH && ssl->ctx->haveDH) {
  13106. ssl->buffers.serverDH_P = ssl->ctx->serverDH_P;
  13107. ssl->buffers.serverDH_G = ssl->ctx->serverDH_G;
  13108. ssl->options.haveDH = 1;
  13109. }
  13110. #endif
  13111. }
  13112. if (InitSSL_Side(ssl, WOLFSSL_SERVER_END) != WOLFSSL_SUCCESS) {
  13113. WOLFSSL_MSG("Error initializing server side");
  13114. }
  13115. }
  13116. #endif /* OPENSSL_EXTRA || WOLFSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  13117. /* return true if connection established */
  13118. int wolfSSL_is_init_finished(WOLFSSL* ssl)
  13119. {
  13120. if (ssl == NULL)
  13121. return 0;
  13122. if (ssl->options.handShakeState == HANDSHAKE_DONE)
  13123. return 1;
  13124. return 0;
  13125. }
  13126. #ifdef OPENSSL_EXTRA
  13127. void wolfSSL_CTX_set_tmp_rsa_callback(WOLFSSL_CTX* ctx,
  13128. WOLFSSL_RSA*(*f)(WOLFSSL*, int, int))
  13129. {
  13130. /* wolfSSL verifies all these internally */
  13131. (void)ctx;
  13132. (void)f;
  13133. }
  13134. void wolfSSL_set_shutdown(WOLFSSL* ssl, int opt)
  13135. {
  13136. WOLFSSL_ENTER("wolfSSL_set_shutdown");
  13137. if(ssl==NULL) {
  13138. WOLFSSL_MSG("Shutdown not set. ssl is null");
  13139. return;
  13140. }
  13141. ssl->options.sentNotify = (opt&WOLFSSL_SENT_SHUTDOWN) > 0;
  13142. ssl->options.closeNotify = (opt&WOLFSSL_RECEIVED_SHUTDOWN) > 0;
  13143. }
  13144. long wolfSSL_CTX_get_options(WOLFSSL_CTX* ctx)
  13145. {
  13146. WOLFSSL_ENTER("wolfSSL_CTX_get_options");
  13147. WOLFSSL_MSG("wolfSSL options are set through API calls and macros");
  13148. if(ctx == NULL)
  13149. return BAD_FUNC_ARG;
  13150. return ctx->mask;
  13151. }
  13152. #endif
  13153. static long wolf_set_options(long old_op, long op);
  13154. long wolfSSL_CTX_set_options(WOLFSSL_CTX* ctx, long opt)
  13155. {
  13156. WOLFSSL_ENTER("SSL_CTX_set_options");
  13157. if (ctx == NULL)
  13158. return BAD_FUNC_ARG;
  13159. ctx->mask = wolf_set_options(ctx->mask, opt);
  13160. return ctx->mask;
  13161. }
  13162. #ifdef OPENSSL_EXTRA
  13163. long wolfSSL_CTX_clear_options(WOLFSSL_CTX* ctx, long opt)
  13164. {
  13165. WOLFSSL_ENTER("SSL_CTX_clear_options");
  13166. if(ctx == NULL)
  13167. return BAD_FUNC_ARG;
  13168. ctx->mask &= ~opt;
  13169. return ctx->mask;
  13170. }
  13171. int wolfSSL_set_rfd(WOLFSSL* ssl, int rfd)
  13172. {
  13173. WOLFSSL_ENTER("SSL_set_rfd");
  13174. ssl->rfd = rfd; /* not used directly to allow IO callbacks */
  13175. ssl->IOCB_ReadCtx = &ssl->rfd;
  13176. #ifdef WOLFSSL_DTLS
  13177. if (ssl->options.dtls) {
  13178. ssl->IOCB_ReadCtx = &ssl->buffers.dtlsCtx;
  13179. ssl->buffers.dtlsCtx.rfd = rfd;
  13180. }
  13181. #endif
  13182. return WOLFSSL_SUCCESS;
  13183. }
  13184. int wolfSSL_set_wfd(WOLFSSL* ssl, int wfd)
  13185. {
  13186. WOLFSSL_ENTER("SSL_set_wfd");
  13187. ssl->wfd = wfd; /* not used directly to allow IO callbacks */
  13188. ssl->IOCB_WriteCtx = &ssl->wfd;
  13189. return WOLFSSL_SUCCESS;
  13190. }
  13191. #endif /* OPENSSL_EXTRA */
  13192. #if !defined(NO_CERTS) && (defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL))
  13193. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  13194. /**
  13195. * Implemented in a similar way that ngx_ssl_ocsp_validate does it when
  13196. * SSL_get0_verified_chain is not available.
  13197. * @param ssl WOLFSSL object to extract certs from
  13198. * @return Stack of verified certs
  13199. */
  13200. WOLF_STACK_OF(WOLFSSL_X509) *wolfSSL_get0_verified_chain(const WOLFSSL *ssl)
  13201. {
  13202. WOLF_STACK_OF(WOLFSSL_X509)* chain = NULL;
  13203. WOLFSSL_X509_STORE_CTX* storeCtx = NULL;
  13204. WOLFSSL_X509* peerCert = NULL;
  13205. WOLFSSL_ENTER("wolfSSL_get0_verified_chain");
  13206. if (ssl == NULL || ssl->ctx == NULL) {
  13207. WOLFSSL_MSG("Bad parameter");
  13208. return NULL;
  13209. }
  13210. peerCert = wolfSSL_get_peer_certificate((WOLFSSL*)ssl);
  13211. if (peerCert == NULL) {
  13212. WOLFSSL_MSG("wolfSSL_get_peer_certificate error");
  13213. return NULL;
  13214. }
  13215. /* wolfSSL_get_peer_certificate returns a copy. We want the internal
  13216. * member so that we don't have to worry about free'ing it. We call
  13217. * wolfSSL_get_peer_certificate so that we don't have to worry about
  13218. * setting up the internal pointer. */
  13219. wolfSSL_X509_free(peerCert);
  13220. peerCert = (WOLFSSL_X509*)&ssl->peerCert;
  13221. chain = wolfSSL_get_peer_cert_chain(ssl);
  13222. if (chain == NULL) {
  13223. WOLFSSL_MSG("wolfSSL_get_peer_cert_chain error");
  13224. return NULL;
  13225. }
  13226. storeCtx = wolfSSL_X509_STORE_CTX_new();
  13227. if (storeCtx == NULL) {
  13228. WOLFSSL_MSG("wolfSSL_X509_STORE_CTX_new error");
  13229. return NULL;
  13230. }
  13231. if (wolfSSL_X509_STORE_CTX_init(storeCtx, SSL_STORE(ssl),
  13232. peerCert, chain) != WOLFSSL_SUCCESS) {
  13233. WOLFSSL_MSG("wolfSSL_X509_STORE_CTX_init error");
  13234. wolfSSL_X509_STORE_CTX_free(storeCtx);
  13235. return NULL;
  13236. }
  13237. if (wolfSSL_X509_verify_cert(storeCtx) <= 0) {
  13238. WOLFSSL_MSG("wolfSSL_X509_verify_cert error");
  13239. wolfSSL_X509_STORE_CTX_free(storeCtx);
  13240. return NULL;
  13241. }
  13242. wolfSSL_X509_STORE_CTX_free(storeCtx);
  13243. return chain;
  13244. }
  13245. #endif /* SESSION_CERTS && OPENSSL_EXTRA */
  13246. WOLFSSL_X509_STORE* wolfSSL_CTX_get_cert_store(WOLFSSL_CTX* ctx)
  13247. {
  13248. if (ctx == NULL) {
  13249. return NULL;
  13250. }
  13251. if (ctx->x509_store_pt != NULL)
  13252. return ctx->x509_store_pt;
  13253. return &ctx->x509_store;
  13254. }
  13255. void wolfSSL_CTX_set_cert_store(WOLFSSL_CTX* ctx, WOLFSSL_X509_STORE* str)
  13256. {
  13257. WOLFSSL_ENTER("wolfSSL_CTX_set_cert_store");
  13258. if (ctx == NULL || str == NULL || ctx->cm == str->cm) {
  13259. return;
  13260. }
  13261. if (wolfSSL_CertManager_up_ref(str->cm) != WOLFSSL_SUCCESS) {
  13262. WOLFSSL_MSG("wolfSSL_CertManager_up_ref error");
  13263. return;
  13264. }
  13265. /* free cert manager if have one */
  13266. if (ctx->cm != NULL) {
  13267. wolfSSL_CertManagerFree(ctx->cm);
  13268. }
  13269. ctx->cm = str->cm;
  13270. ctx->x509_store.cm = str->cm;
  13271. /* free existing store if it exists */
  13272. wolfSSL_X509_STORE_free(ctx->x509_store_pt);
  13273. ctx->x509_store.cache = str->cache;
  13274. ctx->x509_store_pt = str; /* take ownership of store and free it
  13275. with CTX free */
  13276. ctx->cm->x509_store_p = ctx->x509_store_pt;/* CTX has onwership
  13277. and free it with CTX free*/
  13278. }
  13279. int wolfSSL_set0_verify_cert_store(WOLFSSL *ssl, WOLFSSL_X509_STORE* str)
  13280. {
  13281. WOLFSSL_ENTER("wolfSSL_set0_verify_cert_store");
  13282. if (ssl == NULL || str == NULL) {
  13283. WOLFSSL_MSG("Bad parameter");
  13284. return WOLFSSL_FAILURE;
  13285. }
  13286. /* NO-OP when setting existing store */
  13287. if (str == SSL_STORE(ssl))
  13288. return WOLFSSL_SUCCESS;
  13289. /* free existing store if it exists */
  13290. wolfSSL_X509_STORE_free(ssl->x509_store_pt);
  13291. if (str == ssl->ctx->x509_store_pt)
  13292. ssl->x509_store_pt = NULL; /* if setting ctx store then just revert
  13293. to using that instead */
  13294. else
  13295. ssl->x509_store_pt = str; /* take ownership of store and free it
  13296. with SSL free */
  13297. return WOLFSSL_SUCCESS;
  13298. }
  13299. int wolfSSL_set1_verify_cert_store(WOLFSSL *ssl, WOLFSSL_X509_STORE* str)
  13300. {
  13301. WOLFSSL_ENTER("wolfSSL_set0_verify_cert_store");
  13302. if (ssl == NULL || str == NULL) {
  13303. WOLFSSL_MSG("Bad parameter");
  13304. return WOLFSSL_FAILURE;
  13305. }
  13306. /* NO-OP when setting existing store */
  13307. if (str == SSL_STORE(ssl))
  13308. return WOLFSSL_SUCCESS;
  13309. if (wolfSSL_X509_STORE_up_ref(str) != WOLFSSL_SUCCESS) {
  13310. WOLFSSL_MSG("wolfSSL_X509_STORE_up_ref error");
  13311. return WOLFSSL_FAILURE;
  13312. }
  13313. /* free existing store if it exists */
  13314. wolfSSL_X509_STORE_free(ssl->x509_store_pt);
  13315. if (str == ssl->ctx->x509_store_pt)
  13316. ssl->x509_store_pt = NULL; /* if setting ctx store then just revert
  13317. to using that instead */
  13318. else
  13319. ssl->x509_store_pt = str; /* take ownership of store and free it
  13320. with SSL free */
  13321. return WOLFSSL_SUCCESS;
  13322. }
  13323. #endif /* !NO_CERTS && (OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL) */
  13324. #ifdef WOLFSSL_ENCRYPTED_KEYS
  13325. void wolfSSL_CTX_set_default_passwd_cb_userdata(WOLFSSL_CTX* ctx,
  13326. void* userdata)
  13327. {
  13328. WOLFSSL_ENTER("SSL_CTX_set_default_passwd_cb_userdata");
  13329. if (ctx)
  13330. ctx->passwd_userdata = userdata;
  13331. }
  13332. void wolfSSL_CTX_set_default_passwd_cb(WOLFSSL_CTX* ctx, wc_pem_password_cb*
  13333. cb)
  13334. {
  13335. WOLFSSL_ENTER("SSL_CTX_set_default_passwd_cb");
  13336. if (ctx)
  13337. ctx->passwd_cb = cb;
  13338. }
  13339. wc_pem_password_cb* wolfSSL_CTX_get_default_passwd_cb(WOLFSSL_CTX *ctx)
  13340. {
  13341. if (ctx == NULL || ctx->passwd_cb == NULL) {
  13342. return NULL;
  13343. }
  13344. return ctx->passwd_cb;
  13345. }
  13346. void* wolfSSL_CTX_get_default_passwd_cb_userdata(WOLFSSL_CTX *ctx)
  13347. {
  13348. if (ctx == NULL) {
  13349. return NULL;
  13350. }
  13351. return ctx->passwd_userdata;
  13352. }
  13353. #endif /* WOLFSSL_ENCRYPTED_KEYS */
  13354. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)
  13355. int wolfSSL_num_locks(void)
  13356. {
  13357. return 0;
  13358. }
  13359. void wolfSSL_set_locking_callback(void (*f)(int, int, const char*, int))
  13360. {
  13361. WOLFSSL_ENTER("wolfSSL_set_locking_callback");
  13362. if (wc_SetMutexCb(f) != 0) {
  13363. WOLFSSL_MSG("Error when setting mutex call back");
  13364. }
  13365. }
  13366. typedef unsigned long (idCb)(void);
  13367. static idCb* inner_idCb = NULL;
  13368. unsigned long wolfSSL_thread_id(void)
  13369. {
  13370. if (inner_idCb != NULL) {
  13371. return inner_idCb();
  13372. }
  13373. else {
  13374. return 0;
  13375. }
  13376. }
  13377. void wolfSSL_set_id_callback(unsigned long (*f)(void))
  13378. {
  13379. inner_idCb = f;
  13380. }
  13381. unsigned long wolfSSL_ERR_get_error(void)
  13382. {
  13383. WOLFSSL_ENTER("wolfSSL_ERR_get_error");
  13384. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  13385. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  13386. {
  13387. unsigned long ret = wolfSSL_ERR_peek_error_line_data(NULL, NULL,
  13388. NULL, NULL);
  13389. wc_RemoveErrorNode(-1);
  13390. return ret;
  13391. }
  13392. #else
  13393. {
  13394. int ret = wc_PullErrorNode(NULL, NULL, NULL);
  13395. if (ret < 0) {
  13396. if (ret == BAD_STATE_E) return 0; /* no errors in queue */
  13397. WOLFSSL_MSG("Error with pulling error node!");
  13398. WOLFSSL_LEAVE("wolfSSL_ERR_get_error", ret);
  13399. ret = 0 - ret; /* return absolute value of error */
  13400. /* panic and try to clear out nodes */
  13401. wc_ClearErrorNodes();
  13402. }
  13403. return (unsigned long)ret;
  13404. }
  13405. #endif
  13406. #else
  13407. return (unsigned long)(0 - NOT_COMPILED_IN);
  13408. #endif
  13409. }
  13410. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  13411. #ifndef NO_BIO
  13412. /* print out and clear all errors */
  13413. void wolfSSL_ERR_print_errors(WOLFSSL_BIO* bio)
  13414. {
  13415. const char* file = NULL;
  13416. const char* reason = NULL;
  13417. int ret;
  13418. int line = 0;
  13419. char buf[WOLFSSL_MAX_ERROR_SZ * 2];
  13420. WOLFSSL_ENTER("wolfSSL_ERR_print_errors");
  13421. if (bio == NULL) {
  13422. WOLFSSL_MSG("BIO passed in was null");
  13423. return;
  13424. }
  13425. do {
  13426. ret = wc_PeekErrorNode(0, &file, &reason, &line);
  13427. if (ret >= 0) {
  13428. const char* r = wolfSSL_ERR_reason_error_string(0 - ret);
  13429. XSNPRINTF(buf, sizeof(buf), "error:%d:wolfSSL library:%s:%s:%d\n",
  13430. ret, r, file, line);
  13431. wolfSSL_BIO_write(bio, buf, (int)XSTRLEN(buf));
  13432. wc_RemoveErrorNode(0);
  13433. }
  13434. } while (ret >= 0);
  13435. if (wolfSSL_BIO_write(bio, "", 1) != 1) {
  13436. WOLFSSL_MSG("Issue writing final string terminator");
  13437. }
  13438. }
  13439. #endif /* !NO_BIO */
  13440. #endif /* WOLFSSL_HAVE_ERROR_QUEUE */
  13441. #endif /* OPENSSL_EXTRA || HAVE_WEBSERVER */
  13442. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL) || \
  13443. defined(HAVE_SECRET_CALLBACK)
  13444. #if !defined(NO_WOLFSSL_SERVER)
  13445. /* Return the amount of random bytes copied over or error case.
  13446. * ssl : ssl struct after handshake
  13447. * out : buffer to hold random bytes
  13448. * outSz : either 0 (return max buffer sz) or size of out buffer
  13449. */
  13450. size_t wolfSSL_get_server_random(const WOLFSSL *ssl, unsigned char *out,
  13451. size_t outSz)
  13452. {
  13453. size_t size;
  13454. /* return max size of buffer */
  13455. if (outSz == 0) {
  13456. return RAN_LEN;
  13457. }
  13458. if (ssl == NULL || out == NULL) {
  13459. return 0;
  13460. }
  13461. if (ssl->arrays == NULL) {
  13462. WOLFSSL_MSG("Arrays struct not saved after handshake");
  13463. return 0;
  13464. }
  13465. if (outSz > RAN_LEN) {
  13466. size = RAN_LEN;
  13467. }
  13468. else {
  13469. size = outSz;
  13470. }
  13471. XMEMCPY(out, ssl->arrays->serverRandom, size);
  13472. return size;
  13473. }
  13474. #endif /* !NO_WOLFSSL_SERVER */
  13475. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL || HAVE_SECRET_CALLBACK */
  13476. #ifdef OPENSSL_EXTRA
  13477. #if !defined(NO_WOLFSSL_SERVER)
  13478. /* Used to get the peer ephemeral public key sent during the connection
  13479. * NOTE: currently wolfSSL_KeepHandshakeResources(WOLFSSL* ssl) must be called
  13480. * before the ephemeral key is stored.
  13481. * return WOLFSSL_SUCCESS on success */
  13482. int wolfSSL_get_server_tmp_key(const WOLFSSL* ssl, WOLFSSL_EVP_PKEY** pkey)
  13483. {
  13484. WOLFSSL_EVP_PKEY* ret = NULL;
  13485. WOLFSSL_ENTER("wolfSSL_get_server_tmp_key");
  13486. if (ssl == NULL || pkey == NULL) {
  13487. WOLFSSL_MSG("Bad argument passed in");
  13488. return WOLFSSL_FAILURE;
  13489. }
  13490. #ifdef HAVE_ECC
  13491. if (ssl->peerEccKey != NULL) {
  13492. unsigned char* der;
  13493. const unsigned char* pt;
  13494. unsigned int derSz = 0;
  13495. int sz;
  13496. PRIVATE_KEY_UNLOCK();
  13497. if (wc_ecc_export_x963(ssl->peerEccKey, NULL, &derSz) !=
  13498. LENGTH_ONLY_E) {
  13499. WOLFSSL_MSG("get ecc der size failed");
  13500. PRIVATE_KEY_LOCK();
  13501. return WOLFSSL_FAILURE;
  13502. }
  13503. PRIVATE_KEY_LOCK();
  13504. derSz += MAX_SEQ_SZ + (2 * MAX_ALGO_SZ) + MAX_SEQ_SZ + TRAILING_ZERO;
  13505. der = (unsigned char*)XMALLOC(derSz, ssl->heap, DYNAMIC_TYPE_KEY);
  13506. if (der == NULL) {
  13507. WOLFSSL_MSG("Memory error");
  13508. return WOLFSSL_FAILURE;
  13509. }
  13510. if ((sz = wc_EccPublicKeyToDer(ssl->peerEccKey, der, derSz, 1)) <= 0) {
  13511. WOLFSSL_MSG("get ecc der failed");
  13512. XFREE(der, ssl->heap, DYNAMIC_TYPE_KEY);
  13513. return WOLFSSL_FAILURE;
  13514. }
  13515. pt = der; /* in case pointer gets advanced */
  13516. ret = wolfSSL_d2i_PUBKEY(NULL, &pt, sz);
  13517. XFREE(der, ssl->heap, DYNAMIC_TYPE_KEY);
  13518. }
  13519. #endif
  13520. *pkey = ret;
  13521. #ifdef HAVE_ECC
  13522. if (ret != NULL)
  13523. return WOLFSSL_SUCCESS;
  13524. else
  13525. #endif
  13526. return WOLFSSL_FAILURE;
  13527. }
  13528. #endif /* !NO_WOLFSSL_SERVER */
  13529. /**
  13530. * This function checks if any compiled in protocol versions are
  13531. * left enabled after calls to set_min or set_max API.
  13532. * @param major The SSL/TLS major version
  13533. * @return WOLFSSL_SUCCESS on valid settings and WOLFSSL_FAILURE when no
  13534. * protocol versions are left enabled.
  13535. */
  13536. static int CheckSslMethodVersion(byte major, unsigned long options)
  13537. {
  13538. int sanityConfirmed = 0;
  13539. (void)options;
  13540. switch (major) {
  13541. #ifndef NO_TLS
  13542. case SSLv3_MAJOR:
  13543. #ifdef WOLFSSL_ALLOW_SSLV3
  13544. if (!(options & WOLFSSL_OP_NO_SSLv3)) {
  13545. sanityConfirmed = 1;
  13546. }
  13547. #endif
  13548. #ifndef NO_OLD_TLS
  13549. if (!(options & WOLFSSL_OP_NO_TLSv1))
  13550. sanityConfirmed = 1;
  13551. if (!(options & WOLFSSL_OP_NO_TLSv1_1))
  13552. sanityConfirmed = 1;
  13553. #endif
  13554. #ifndef WOLFSSL_NO_TLS12
  13555. if (!(options & WOLFSSL_OP_NO_TLSv1_2))
  13556. sanityConfirmed = 1;
  13557. #endif
  13558. #ifdef WOLFSSL_TLS13
  13559. if (!(options & WOLFSSL_OP_NO_TLSv1_3))
  13560. sanityConfirmed = 1;
  13561. #endif
  13562. break;
  13563. #endif
  13564. #ifdef WOLFSSL_DTLS
  13565. case DTLS_MAJOR:
  13566. sanityConfirmed = 1;
  13567. break;
  13568. #endif
  13569. default:
  13570. WOLFSSL_MSG("Invalid major version");
  13571. return WOLFSSL_FAILURE;
  13572. }
  13573. if (!sanityConfirmed) {
  13574. WOLFSSL_MSG("All compiled in TLS versions disabled");
  13575. return WOLFSSL_FAILURE;
  13576. }
  13577. return WOLFSSL_SUCCESS;
  13578. }
  13579. /**
  13580. * protoVerTbl holds (D)TLS version numbers in ascending order.
  13581. * Except DTLS versions, the newer version is located in the latter part of
  13582. * the table. This table is referred by wolfSSL_CTX_set_min_proto_version and
  13583. * wolfSSL_CTX_set_max_proto_version.
  13584. */
  13585. static const int protoVerTbl[] = {
  13586. SSL3_VERSION,
  13587. TLS1_VERSION,
  13588. TLS1_1_VERSION,
  13589. TLS1_2_VERSION,
  13590. TLS1_3_VERSION,
  13591. DTLS1_VERSION,
  13592. DTLS1_2_VERSION
  13593. };
  13594. /* number of protocol versions listed in protoVerTbl */
  13595. #define NUMBER_OF_PROTOCOLS (sizeof(protoVerTbl)/sizeof(int))
  13596. /**
  13597. * wolfSSL_CTX_set_min_proto_version attempts to set the minimum protocol
  13598. * version to use by SSL objects created from this WOLFSSL_CTX.
  13599. * This API guarantees that a version of SSL/TLS lower than specified
  13600. * here will not be allowed. If the version specified is not compiled in
  13601. * then this API sets the lowest compiled in protocol version.
  13602. * This API also accept 0 as version, to set the minimum version automatically.
  13603. * CheckSslMethodVersion() is called to check if any remaining protocol versions
  13604. * are enabled.
  13605. * @param ctx The wolfSSL CONTEXT factory for spawning SSL/TLS objects
  13606. * @param version Any of the following
  13607. * * 0
  13608. * * SSL3_VERSION
  13609. * * TLS1_VERSION
  13610. * * TLS1_1_VERSION
  13611. * * TLS1_2_VERSION
  13612. * * TLS1_3_VERSION
  13613. * * DTLS1_VERSION
  13614. * * DTLS1_2_VERSION
  13615. * @return WOLFSSL_SUCCESS on valid settings and WOLFSSL_FAILURE when no
  13616. * protocol versions are left enabled.
  13617. */
  13618. static int Set_CTX_min_proto_version(WOLFSSL_CTX* ctx, int version)
  13619. {
  13620. WOLFSSL_ENTER("wolfSSL_CTX_set_min_proto_version_ex");
  13621. if (ctx == NULL) {
  13622. return WOLFSSL_FAILURE;
  13623. }
  13624. switch (version) {
  13625. #ifndef NO_TLS
  13626. case SSL3_VERSION:
  13627. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  13628. ctx->minDowngrade = SSLv3_MINOR;
  13629. break;
  13630. #endif
  13631. case TLS1_VERSION:
  13632. #ifdef WOLFSSL_ALLOW_TLSV10
  13633. ctx->minDowngrade = TLSv1_MINOR;
  13634. break;
  13635. #endif
  13636. case TLS1_1_VERSION:
  13637. #ifndef NO_OLD_TLS
  13638. ctx->minDowngrade = TLSv1_1_MINOR;
  13639. break;
  13640. #endif
  13641. case TLS1_2_VERSION:
  13642. #ifndef WOLFSSL_NO_TLS12
  13643. ctx->minDowngrade = TLSv1_2_MINOR;
  13644. break;
  13645. #endif
  13646. case TLS1_3_VERSION:
  13647. #ifdef WOLFSSL_TLS13
  13648. ctx->minDowngrade = TLSv1_3_MINOR;
  13649. break;
  13650. #endif
  13651. #endif
  13652. #ifdef WOLFSSL_DTLS
  13653. case DTLS1_VERSION:
  13654. #ifndef NO_OLD_TLS
  13655. ctx->minDowngrade = DTLS_MINOR;
  13656. break;
  13657. #endif
  13658. case DTLS1_2_VERSION:
  13659. ctx->minDowngrade = DTLSv1_2_MINOR;
  13660. break;
  13661. #endif
  13662. default:
  13663. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13664. return WOLFSSL_FAILURE;
  13665. }
  13666. switch (version) {
  13667. #ifndef NO_TLS
  13668. case TLS1_3_VERSION:
  13669. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1_2);
  13670. FALL_THROUGH;
  13671. case TLS1_2_VERSION:
  13672. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1_1);
  13673. FALL_THROUGH;
  13674. case TLS1_1_VERSION:
  13675. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1);
  13676. FALL_THROUGH;
  13677. case TLS1_VERSION:
  13678. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_SSLv3);
  13679. break;
  13680. case SSL3_VERSION:
  13681. case SSL2_VERSION:
  13682. /* Nothing to do here */
  13683. break;
  13684. #endif
  13685. #ifdef WOLFSSL_DTLS
  13686. case DTLS1_VERSION:
  13687. case DTLS1_2_VERSION:
  13688. break;
  13689. #endif
  13690. default:
  13691. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13692. return WOLFSSL_FAILURE;
  13693. }
  13694. return CheckSslMethodVersion(ctx->method->version.major, ctx->mask);
  13695. }
  13696. /* Sets the min protocol version allowed with WOLFSSL_CTX
  13697. * returns WOLFSSL_SUCCESS on success */
  13698. int wolfSSL_CTX_set_min_proto_version(WOLFSSL_CTX* ctx, int version)
  13699. {
  13700. int ret;
  13701. int proto = 0;
  13702. int maxProto = 0;
  13703. int i;
  13704. int idx = 0;
  13705. WOLFSSL_ENTER("wolfSSL_CTX_set_min_proto_version");
  13706. if (ctx == NULL) {
  13707. return WOLFSSL_FAILURE;
  13708. }
  13709. if (version != 0) {
  13710. proto = version;
  13711. ctx->minProto = 0; /* turn min proto flag off */
  13712. for (i = 0; (unsigned)i < NUMBER_OF_PROTOCOLS; i++) {
  13713. if (protoVerTbl[i] == version) {
  13714. break;
  13715. }
  13716. }
  13717. }
  13718. else {
  13719. /* when 0 is specified as version, try to find out the min version */
  13720. for (i = 0; (unsigned)i < NUMBER_OF_PROTOCOLS; i++) {
  13721. ret = Set_CTX_min_proto_version(ctx, protoVerTbl[i]);
  13722. if (ret == WOLFSSL_SUCCESS) {
  13723. proto = protoVerTbl[i];
  13724. ctx->minProto = 1; /* turn min proto flag on */
  13725. break;
  13726. }
  13727. }
  13728. }
  13729. /* check case where max > min , if so then clear the NO_* options
  13730. * i is the index into the table for proto version used, see if the max
  13731. * proto version index found is smaller */
  13732. maxProto = wolfSSL_CTX_get_max_proto_version(ctx);
  13733. for (idx = 0; (unsigned)idx < NUMBER_OF_PROTOCOLS; idx++) {
  13734. if (protoVerTbl[idx] == maxProto) {
  13735. break;
  13736. }
  13737. }
  13738. if (idx < i) {
  13739. wolfSSL_CTX_clear_options(ctx, WOLFSSL_OP_NO_TLSv1 |
  13740. WOLFSSL_OP_NO_TLSv1_1 | WOLFSSL_OP_NO_TLSv1_2 |
  13741. WOLFSSL_OP_NO_TLSv1_3);
  13742. }
  13743. ret = Set_CTX_min_proto_version(ctx, proto);
  13744. return ret;
  13745. }
  13746. /**
  13747. * wolfSSL_CTX_set_max_proto_version attempts to set the maximum protocol
  13748. * version to use by SSL objects created from this WOLFSSL_CTX.
  13749. * This API guarantees that a version of SSL/TLS higher than specified
  13750. * here will not be allowed. If the version specified is not compiled in
  13751. * then this API sets the highest compiled in protocol version.
  13752. * This API also accept 0 as version, to set the maximum version automatically.
  13753. * CheckSslMethodVersion() is called to check if any remaining protocol versions
  13754. * are enabled.
  13755. * @param ctx The wolfSSL CONTEXT factory for spawning SSL/TLS objects
  13756. * @param ver Any of the following
  13757. * * 0
  13758. * * SSL3_VERSION
  13759. * * TLS1_VERSION
  13760. * * TLS1_1_VERSION
  13761. * * TLS1_2_VERSION
  13762. * * TLS1_3_VERSION
  13763. * * DTLS1_VERSION
  13764. * * DTLS1_2_VERSION
  13765. * @return WOLFSSL_SUCCESS on valid settings and WOLFSSL_FAILURE when no
  13766. * protocol versions are left enabled.
  13767. */
  13768. static int Set_CTX_max_proto_version(WOLFSSL_CTX* ctx, int ver)
  13769. {
  13770. WOLFSSL_ENTER("Set_CTX_max_proto_version");
  13771. if (!ctx || !ctx->method) {
  13772. WOLFSSL_MSG("Bad parameter");
  13773. return WOLFSSL_FAILURE;
  13774. }
  13775. switch (ver) {
  13776. case SSL2_VERSION:
  13777. WOLFSSL_MSG("wolfSSL does not support SSLv2");
  13778. return WOLFSSL_FAILURE;
  13779. #ifndef NO_TLS
  13780. case SSL3_VERSION:
  13781. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1);
  13782. FALL_THROUGH;
  13783. case TLS1_VERSION:
  13784. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1_1);
  13785. FALL_THROUGH;
  13786. case TLS1_1_VERSION:
  13787. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1_2);
  13788. FALL_THROUGH;
  13789. case TLS1_2_VERSION:
  13790. wolfSSL_CTX_set_options(ctx, WOLFSSL_OP_NO_TLSv1_3);
  13791. FALL_THROUGH;
  13792. case TLS1_3_VERSION:
  13793. /* Nothing to do here */
  13794. break;
  13795. #endif
  13796. #ifdef WOLFSSL_DTLS
  13797. case DTLS1_VERSION:
  13798. case DTLS1_2_VERSION:
  13799. break;
  13800. #endif
  13801. default:
  13802. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13803. return WOLFSSL_FAILURE;
  13804. }
  13805. return CheckSslMethodVersion(ctx->method->version.major, ctx->mask);
  13806. }
  13807. /* Sets the max protocol version allowed with WOLFSSL_CTX
  13808. * returns WOLFSSL_SUCCESS on success */
  13809. int wolfSSL_CTX_set_max_proto_version(WOLFSSL_CTX* ctx, int version)
  13810. {
  13811. int i;
  13812. int ret = WOLFSSL_FAILURE;
  13813. int minProto;
  13814. WOLFSSL_ENTER("wolfSSL_CTX_set_max_proto_version");
  13815. if (ctx == NULL) {
  13816. return ret;
  13817. }
  13818. /* clear out flags and reset min protocol version */
  13819. minProto = wolfSSL_CTX_get_min_proto_version(ctx);
  13820. wolfSSL_CTX_clear_options(ctx,
  13821. WOLFSSL_OP_NO_TLSv1 | WOLFSSL_OP_NO_TLSv1_1 |
  13822. WOLFSSL_OP_NO_TLSv1_2 | WOLFSSL_OP_NO_TLSv1_3);
  13823. wolfSSL_CTX_set_min_proto_version(ctx, minProto);
  13824. if (version != 0) {
  13825. ctx->maxProto = 0; /* turn max proto flag off */
  13826. return Set_CTX_max_proto_version(ctx, version);
  13827. }
  13828. /* when 0 is specified as version, try to find out the min version from
  13829. * the bottom to top of the protoverTbl.
  13830. */
  13831. for (i = NUMBER_OF_PROTOCOLS -1; i >= 0; i--) {
  13832. ret = Set_CTX_max_proto_version(ctx, protoVerTbl[i]);
  13833. if (ret == WOLFSSL_SUCCESS) {
  13834. ctx->maxProto = 1; /* turn max proto flag on */
  13835. break;
  13836. }
  13837. }
  13838. return ret;
  13839. }
  13840. static int Set_SSL_min_proto_version(WOLFSSL* ssl, int ver)
  13841. {
  13842. WOLFSSL_ENTER("Set_SSL_min_proto_version");
  13843. if (ssl == NULL) {
  13844. return WOLFSSL_FAILURE;
  13845. }
  13846. switch (ver) {
  13847. #ifndef NO_TLS
  13848. case SSL3_VERSION:
  13849. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  13850. ssl->options.minDowngrade = SSLv3_MINOR;
  13851. break;
  13852. #endif
  13853. case TLS1_VERSION:
  13854. #ifdef WOLFSSL_ALLOW_TLSV10
  13855. ssl->options.minDowngrade = TLSv1_MINOR;
  13856. break;
  13857. #endif
  13858. case TLS1_1_VERSION:
  13859. #ifndef NO_OLD_TLS
  13860. ssl->options.minDowngrade = TLSv1_1_MINOR;
  13861. break;
  13862. #endif
  13863. case TLS1_2_VERSION:
  13864. #ifndef WOLFSSL_NO_TLS12
  13865. ssl->options.minDowngrade = TLSv1_2_MINOR;
  13866. break;
  13867. #endif
  13868. case TLS1_3_VERSION:
  13869. #ifdef WOLFSSL_TLS13
  13870. ssl->options.minDowngrade = TLSv1_3_MINOR;
  13871. break;
  13872. #endif
  13873. #endif
  13874. #ifdef WOLFSSL_DTLS
  13875. case DTLS1_VERSION:
  13876. #ifndef NO_OLD_TLS
  13877. ssl->options.minDowngrade = DTLS_MINOR;
  13878. break;
  13879. #endif
  13880. case DTLS1_2_VERSION:
  13881. ssl->options.minDowngrade = DTLSv1_2_MINOR;
  13882. break;
  13883. #endif
  13884. default:
  13885. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13886. return WOLFSSL_FAILURE;
  13887. }
  13888. switch (ver) {
  13889. #ifndef NO_TLS
  13890. case TLS1_3_VERSION:
  13891. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1_2;
  13892. FALL_THROUGH;
  13893. case TLS1_2_VERSION:
  13894. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1_1;
  13895. FALL_THROUGH;
  13896. case TLS1_1_VERSION:
  13897. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1;
  13898. FALL_THROUGH;
  13899. case TLS1_VERSION:
  13900. ssl->options.mask |= WOLFSSL_OP_NO_SSLv3;
  13901. break;
  13902. case SSL3_VERSION:
  13903. case SSL2_VERSION:
  13904. /* Nothing to do here */
  13905. break;
  13906. #endif
  13907. #ifdef WOLFSSL_DTLS
  13908. case DTLS1_VERSION:
  13909. case DTLS1_2_VERSION:
  13910. break;
  13911. #endif
  13912. default:
  13913. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13914. return WOLFSSL_FAILURE;
  13915. }
  13916. return CheckSslMethodVersion(ssl->version.major, ssl->options.mask);
  13917. }
  13918. int wolfSSL_set_min_proto_version(WOLFSSL* ssl, int version)
  13919. {
  13920. int i;
  13921. int ret = WOLFSSL_FAILURE;;
  13922. WOLFSSL_ENTER("wolfSSL_set_min_proto_version");
  13923. if (ssl == NULL) {
  13924. return WOLFSSL_FAILURE;
  13925. }
  13926. if (version != 0) {
  13927. return Set_SSL_min_proto_version(ssl, version);
  13928. }
  13929. /* when 0 is specified as version, try to find out the min version */
  13930. for (i= 0; (unsigned)i < NUMBER_OF_PROTOCOLS; i++) {
  13931. ret = Set_SSL_min_proto_version(ssl, protoVerTbl[i]);
  13932. if (ret == WOLFSSL_SUCCESS)
  13933. break;
  13934. }
  13935. return ret;
  13936. }
  13937. static int Set_SSL_max_proto_version(WOLFSSL* ssl, int ver)
  13938. {
  13939. WOLFSSL_ENTER("Set_SSL_max_proto_version");
  13940. if (!ssl) {
  13941. WOLFSSL_MSG("Bad parameter");
  13942. return WOLFSSL_FAILURE;
  13943. }
  13944. switch (ver) {
  13945. case SSL2_VERSION:
  13946. WOLFSSL_MSG("wolfSSL does not support SSLv2");
  13947. return WOLFSSL_FAILURE;
  13948. #ifndef NO_TLS
  13949. case SSL3_VERSION:
  13950. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1;
  13951. FALL_THROUGH;
  13952. case TLS1_VERSION:
  13953. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1_1;
  13954. FALL_THROUGH;
  13955. case TLS1_1_VERSION:
  13956. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1_2;
  13957. FALL_THROUGH;
  13958. case TLS1_2_VERSION:
  13959. ssl->options.mask |= WOLFSSL_OP_NO_TLSv1_3;
  13960. FALL_THROUGH;
  13961. case TLS1_3_VERSION:
  13962. /* Nothing to do here */
  13963. break;
  13964. #endif
  13965. #ifdef WOLFSSL_DTLS
  13966. case DTLS1_VERSION:
  13967. case DTLS1_2_VERSION:
  13968. break;
  13969. #endif
  13970. default:
  13971. WOLFSSL_MSG("Unrecognized protocol version or not compiled in");
  13972. return WOLFSSL_FAILURE;
  13973. }
  13974. return CheckSslMethodVersion(ssl->version.major, ssl->options.mask);
  13975. }
  13976. int wolfSSL_set_max_proto_version(WOLFSSL* ssl, int version)
  13977. {
  13978. int i;
  13979. int ret = WOLFSSL_FAILURE;;
  13980. WOLFSSL_ENTER("wolfSSL_set_max_proto_version");
  13981. if (ssl == NULL) {
  13982. return WOLFSSL_FAILURE;
  13983. }
  13984. if (version != 0) {
  13985. return Set_SSL_max_proto_version(ssl, version);
  13986. }
  13987. /* when 0 is specified as version, try to find out the min version from
  13988. * the bottom to top of the protoverTbl.
  13989. */
  13990. for (i = NUMBER_OF_PROTOCOLS -1; i >= 0; i--) {
  13991. ret = Set_SSL_max_proto_version(ssl, protoVerTbl[i]);
  13992. if (ret == WOLFSSL_SUCCESS)
  13993. break;
  13994. }
  13995. return ret;
  13996. }
  13997. static int GetMinProtoVersion(int minDowngrade)
  13998. {
  13999. int ret;
  14000. switch (minDowngrade) {
  14001. #ifndef NO_OLD_TLS
  14002. #ifdef WOLFSSL_ALLOW_SSLV3
  14003. case SSLv3_MINOR:
  14004. ret = SSL3_VERSION;
  14005. break;
  14006. #endif
  14007. #ifdef WOLFSSL_ALLOW_TLSV10
  14008. case TLSv1_MINOR:
  14009. ret = TLS1_VERSION;
  14010. break;
  14011. #endif
  14012. case TLSv1_1_MINOR:
  14013. ret = TLS1_1_VERSION;
  14014. break;
  14015. #endif
  14016. #ifndef WOLFSSL_NO_TLS12
  14017. case TLSv1_2_MINOR:
  14018. ret = TLS1_2_VERSION;
  14019. break;
  14020. #endif
  14021. #ifdef WOLFSSL_TLS13
  14022. case TLSv1_3_MINOR:
  14023. ret = TLS1_3_VERSION;
  14024. break;
  14025. #endif
  14026. default:
  14027. ret = 0;
  14028. break;
  14029. }
  14030. return ret;
  14031. }
  14032. WOLFSSL_API int wolfSSL_CTX_get_min_proto_version(WOLFSSL_CTX* ctx)
  14033. {
  14034. int ret = 0;
  14035. WOLFSSL_ENTER("wolfSSL_CTX_get_min_proto_version");
  14036. if (ctx != NULL) {
  14037. if (ctx->minProto) {
  14038. ret = 0;
  14039. }
  14040. else {
  14041. ret = GetMinProtoVersion(ctx->minDowngrade);
  14042. }
  14043. }
  14044. else {
  14045. ret = GetMinProtoVersion(WOLFSSL_MIN_DOWNGRADE);
  14046. }
  14047. WOLFSSL_LEAVE("wolfSSL_CTX_get_min_proto_version", ret);
  14048. return ret;
  14049. }
  14050. /* returns the maximum allowed protocol version given the 'options' used
  14051. * returns WOLFSSL_FATAL_ERROR on no match */
  14052. static int GetMaxProtoVersion(long options)
  14053. {
  14054. #ifdef WOLFSSL_TLS13
  14055. if (!(options & WOLFSSL_OP_NO_TLSv1_3))
  14056. return TLS1_3_VERSION;
  14057. #endif
  14058. #ifndef WOLFSSL_NO_TLS12
  14059. if (!(options & WOLFSSL_OP_NO_TLSv1_2))
  14060. return TLS1_2_VERSION;
  14061. #endif
  14062. #ifndef NO_OLD_TLS
  14063. if (!(options & WOLFSSL_OP_NO_TLSv1_1))
  14064. return TLS1_1_VERSION;
  14065. #ifdef WOLFSSL_ALLOW_TLSV10
  14066. if (!(options & WOLFSSL_OP_NO_TLSv1))
  14067. return TLS1_VERSION;
  14068. #endif
  14069. #ifdef WOLFSSL_ALLOW_SSLV3
  14070. if (!(options & WOLFSSL_OP_NO_SSLv3))
  14071. return SSL3_VERSION;
  14072. #endif
  14073. #endif
  14074. return WOLFSSL_FATAL_ERROR;
  14075. }
  14076. /* returns the maximum protocol version for 'ctx' */
  14077. int wolfSSL_CTX_get_max_proto_version(WOLFSSL_CTX* ctx)
  14078. {
  14079. int ret = 0;
  14080. long options = 0; /* default to nothing set */
  14081. WOLFSSL_ENTER("wolfSSL_CTX_get_max_proto_version");
  14082. if (ctx != NULL) {
  14083. options = wolfSSL_CTX_get_options(ctx);
  14084. }
  14085. if ((ctx != NULL) && ctx->maxProto) {
  14086. ret = 0;
  14087. }
  14088. else {
  14089. ret = GetMaxProtoVersion(options);
  14090. }
  14091. WOLFSSL_LEAVE("wolfSSL_CTX_get_max_proto_version", ret);
  14092. if (ret == WOLFSSL_FATAL_ERROR) {
  14093. WOLFSSL_MSG("Error getting max proto version");
  14094. ret = 0; /* setting ret to 0 to match compat return */
  14095. }
  14096. return ret;
  14097. }
  14098. #endif /* OPENSSL_EXTRA */
  14099. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL) || \
  14100. defined(HAVE_SECRET_CALLBACK)
  14101. #if !defined(NO_WOLFSSL_CLIENT)
  14102. /* Return the amount of random bytes copied over or error case.
  14103. * ssl : ssl struct after handshake
  14104. * out : buffer to hold random bytes
  14105. * outSz : either 0 (return max buffer sz) or size of out buffer
  14106. */
  14107. size_t wolfSSL_get_client_random(const WOLFSSL* ssl, unsigned char* out,
  14108. size_t outSz)
  14109. {
  14110. size_t size;
  14111. /* return max size of buffer */
  14112. if (outSz == 0) {
  14113. return RAN_LEN;
  14114. }
  14115. if (ssl == NULL || out == NULL) {
  14116. return 0;
  14117. }
  14118. if (ssl->arrays == NULL) {
  14119. WOLFSSL_MSG("Arrays struct not saved after handshake");
  14120. return 0;
  14121. }
  14122. if (outSz > RAN_LEN) {
  14123. size = RAN_LEN;
  14124. }
  14125. else {
  14126. size = outSz;
  14127. }
  14128. XMEMCPY(out, ssl->arrays->clientRandom, size);
  14129. return size;
  14130. }
  14131. #endif /* !NO_WOLFSSL_CLIENT */
  14132. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL || HAVE_SECRET_CALLBACK */
  14133. #ifdef OPENSSL_EXTRA
  14134. unsigned long wolfSSLeay(void)
  14135. {
  14136. return SSLEAY_VERSION_NUMBER;
  14137. }
  14138. unsigned long wolfSSL_OpenSSL_version_num(void)
  14139. {
  14140. return OPENSSL_VERSION_NUMBER;
  14141. }
  14142. const char* wolfSSLeay_version(int type)
  14143. {
  14144. (void)type;
  14145. #if defined(OPENSSL_VERSION_NUMBER) && OPENSSL_VERSION_NUMBER >= 0x10100000L
  14146. return wolfSSL_OpenSSL_version(type);
  14147. #else
  14148. return wolfSSL_OpenSSL_version();
  14149. #endif
  14150. }
  14151. #ifndef NO_MD5
  14152. int wolfSSL_MD5_Init(WOLFSSL_MD5_CTX* md5)
  14153. {
  14154. int ret;
  14155. typedef char md5_test[sizeof(MD5_CTX) >= sizeof(wc_Md5) ? 1 : -1];
  14156. (void)sizeof(md5_test);
  14157. WOLFSSL_ENTER("MD5_Init");
  14158. ret = wc_InitMd5((wc_Md5*)md5);
  14159. /* return 1 on success, 0 otherwise */
  14160. if (ret == 0)
  14161. return 1;
  14162. return 0;
  14163. }
  14164. int wolfSSL_MD5_Update(WOLFSSL_MD5_CTX* md5, const void* input,
  14165. unsigned long sz)
  14166. {
  14167. int ret;
  14168. WOLFSSL_ENTER("wolfSSL_MD5_Update");
  14169. ret = wc_Md5Update((wc_Md5*)md5, (const byte*)input, (word32)sz);
  14170. /* return 1 on success, 0 otherwise */
  14171. if (ret == 0)
  14172. return 1;
  14173. return 0;
  14174. }
  14175. int wolfSSL_MD5_Final(byte* output, WOLFSSL_MD5_CTX* md5)
  14176. {
  14177. int ret;
  14178. WOLFSSL_ENTER("MD5_Final");
  14179. ret = wc_Md5Final((wc_Md5*)md5, output);
  14180. /* have to actually free the resources (if any) here, because the
  14181. * OpenSSL API doesn't include SHA*_Free().
  14182. */
  14183. wc_Md5Free((wc_Md5*)md5);
  14184. /* return 1 on success, 0 otherwise */
  14185. if (ret == 0)
  14186. return 1;
  14187. return 0;
  14188. }
  14189. /* Apply MD5 transformation to the data */
  14190. int wolfSSL_MD5_Transform(WOLFSSL_MD5_CTX* md5, const unsigned char* data)
  14191. {
  14192. int ret;
  14193. WOLFSSL_ENTER("MD5_Transform");
  14194. /* sanity check */
  14195. if (md5 == NULL || data == NULL) {
  14196. return 0;
  14197. }
  14198. #if defined(BIG_ENDIAN_ORDER)
  14199. {
  14200. ByteReverseWords((word32*)data, (word32*)data, WC_MD5_BLOCK_SIZE);
  14201. }
  14202. #endif
  14203. ret = wc_Md5Transform((wc_Md5*)md5, data);
  14204. /* return 1 on success, 0 otherwise */
  14205. if (ret == 0)
  14206. return 1;
  14207. else
  14208. return 0;
  14209. }
  14210. unsigned char *wolfSSL_MD5(const unsigned char* data, size_t len,
  14211. unsigned char* hash)
  14212. {
  14213. static unsigned char out[WC_MD5_DIGEST_SIZE];
  14214. WOLFSSL_ENTER("wolfSSL_MD5");
  14215. if (hash == NULL)
  14216. hash = out;
  14217. if (wc_Md5Hash(data, (word32)len, hash) != 0) {
  14218. WOLFSSL_MSG("wc_Md5Hash error");
  14219. return NULL;
  14220. }
  14221. return hash;
  14222. }
  14223. #endif /* !NO_MD5 */
  14224. #ifndef NO_SHA
  14225. int wolfSSL_SHA_Init(WOLFSSL_SHA_CTX* sha)
  14226. {
  14227. int ret;
  14228. typedef char sha_test[sizeof(SHA_CTX) >= sizeof(wc_Sha) ? 1 : -1];
  14229. (void)sizeof(sha_test);
  14230. WOLFSSL_ENTER("SHA_Init");
  14231. ret = wc_InitSha((wc_Sha*)sha);
  14232. /* return 1 on success, 0 otherwise */
  14233. if (ret == 0)
  14234. return 1;
  14235. return 0;
  14236. }
  14237. int wolfSSL_SHA_Update(WOLFSSL_SHA_CTX* sha, const void* input,
  14238. unsigned long sz)
  14239. {
  14240. int ret;
  14241. WOLFSSL_ENTER("SHA_Update");
  14242. ret = wc_ShaUpdate((wc_Sha*)sha, (const byte*)input, (word32)sz);
  14243. /* return 1 on success, 0 otherwise */
  14244. if (ret == 0)
  14245. return 1;
  14246. return 0;
  14247. }
  14248. int wolfSSL_SHA_Final(byte* output, WOLFSSL_SHA_CTX* sha)
  14249. {
  14250. int ret;
  14251. WOLFSSL_ENTER("SHA_Final");
  14252. ret = wc_ShaFinal((wc_Sha*)sha, output);
  14253. /* have to actually free the resources (if any) here, because the
  14254. * OpenSSL API doesn't include SHA*_Free().
  14255. */
  14256. wc_ShaFree((wc_Sha*)sha);
  14257. /* return 1 on success, 0 otherwise */
  14258. if (ret == 0)
  14259. return 1;
  14260. return 0;
  14261. }
  14262. #if defined(OPENSSL_EXTRA)
  14263. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14264. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2)))
  14265. /* Apply SHA1 transformation to the data */
  14266. int wolfSSL_SHA_Transform(WOLFSSL_SHA_CTX* sha,
  14267. const unsigned char* data)
  14268. {
  14269. int ret;
  14270. WOLFSSL_ENTER("SHA_Transform");
  14271. /* sanity check */
  14272. if (sha == NULL || data == NULL) {
  14273. return 0;
  14274. }
  14275. #if defined(LITTLE_ENDIAN_ORDER)
  14276. {
  14277. ByteReverseWords((word32*)data, (word32*)data, WC_SHA_BLOCK_SIZE);
  14278. }
  14279. #endif
  14280. ret = wc_ShaTransform((wc_Sha*)sha, data);
  14281. /* return 1 on success, 0 otherwise */
  14282. if (ret == 0)
  14283. return 1;
  14284. else
  14285. return 0;
  14286. }
  14287. #endif
  14288. #endif
  14289. int wolfSSL_SHA1_Init(WOLFSSL_SHA_CTX* sha)
  14290. {
  14291. WOLFSSL_ENTER("SHA1_Init");
  14292. return SHA_Init(sha);
  14293. }
  14294. int wolfSSL_SHA1_Update(WOLFSSL_SHA_CTX* sha, const void* input,
  14295. unsigned long sz)
  14296. {
  14297. WOLFSSL_ENTER("SHA1_Update");
  14298. return SHA_Update(sha, input, sz);
  14299. }
  14300. int wolfSSL_SHA1_Final(byte* output, WOLFSSL_SHA_CTX* sha)
  14301. {
  14302. WOLFSSL_ENTER("SHA1_Final");
  14303. return SHA_Final(output, sha);
  14304. }
  14305. #if defined(OPENSSL_EXTRA)
  14306. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14307. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2)))
  14308. /* Apply SHA1 transformation to the data */
  14309. int wolfSSL_SHA1_Transform(WOLFSSL_SHA_CTX* sha,
  14310. const unsigned char* data)
  14311. {
  14312. WOLFSSL_ENTER("SHA1_Transform");
  14313. return (wolfSSL_SHA_Transform(sha, data));
  14314. }
  14315. #endif
  14316. #endif
  14317. #endif /* !NO_SHA */
  14318. #ifdef WOLFSSL_SHA224
  14319. int wolfSSL_SHA224_Init(WOLFSSL_SHA224_CTX* sha)
  14320. {
  14321. int ret;
  14322. typedef char sha_test[sizeof(SHA224_CTX) >= sizeof(wc_Sha224) ? 1 : -1];
  14323. (void)sizeof(sha_test);
  14324. WOLFSSL_ENTER("SHA224_Init");
  14325. ret = wc_InitSha224((wc_Sha224*)sha);
  14326. /* return 1 on success, 0 otherwise */
  14327. if (ret == 0)
  14328. return 1;
  14329. return 0;
  14330. }
  14331. int wolfSSL_SHA224_Update(WOLFSSL_SHA224_CTX* sha, const void* input,
  14332. unsigned long sz)
  14333. {
  14334. int ret;
  14335. WOLFSSL_ENTER("SHA224_Update");
  14336. ret = wc_Sha224Update((wc_Sha224*)sha, (const byte*)input, (word32)sz);
  14337. /* return 1 on success, 0 otherwise */
  14338. if (ret == 0)
  14339. return 1;
  14340. return 0;
  14341. }
  14342. int wolfSSL_SHA224_Final(byte* output, WOLFSSL_SHA224_CTX* sha)
  14343. {
  14344. int ret;
  14345. WOLFSSL_ENTER("SHA224_Final");
  14346. ret = wc_Sha224Final((wc_Sha224*)sha, output);
  14347. /* have to actually free the resources (if any) here, because the
  14348. * OpenSSL API doesn't include SHA*_Free().
  14349. */
  14350. wc_Sha224Free((wc_Sha224*)sha);
  14351. /* return 1 on success, 0 otherwise */
  14352. if (ret == 0)
  14353. return 1;
  14354. return 0;
  14355. }
  14356. #endif /* WOLFSSL_SHA224 */
  14357. int wolfSSL_SHA256_Init(WOLFSSL_SHA256_CTX* sha256)
  14358. {
  14359. int ret;
  14360. typedef char sha_test[sizeof(SHA256_CTX) >= sizeof(wc_Sha256) ? 1 : -1];
  14361. (void)sizeof(sha_test);
  14362. WOLFSSL_ENTER("SHA256_Init");
  14363. ret = wc_InitSha256((wc_Sha256*)sha256);
  14364. /* return 1 on success, 0 otherwise */
  14365. if (ret == 0)
  14366. return 1;
  14367. return 0;
  14368. }
  14369. int wolfSSL_SHA256_Update(WOLFSSL_SHA256_CTX* sha, const void* input,
  14370. unsigned long sz)
  14371. {
  14372. int ret;
  14373. WOLFSSL_ENTER("SHA256_Update");
  14374. ret = wc_Sha256Update((wc_Sha256*)sha, (const byte*)input, (word32)sz);
  14375. /* return 1 on success, 0 otherwise */
  14376. if (ret == 0)
  14377. return 1;
  14378. return 0;
  14379. }
  14380. int wolfSSL_SHA256_Final(byte* output, WOLFSSL_SHA256_CTX* sha)
  14381. {
  14382. int ret;
  14383. WOLFSSL_ENTER("SHA256_Final");
  14384. ret = wc_Sha256Final((wc_Sha256*)sha, output);
  14385. /* have to actually free the resources (if any) here, because the
  14386. * OpenSSL API doesn't include SHA*_Free().
  14387. */
  14388. wc_Sha256Free((wc_Sha256*)sha);
  14389. /* return 1 on success, 0 otherwise */
  14390. if (ret == 0)
  14391. return 1;
  14392. return 0;
  14393. }
  14394. #if defined(OPENSSL_EXTRA)
  14395. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14396. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2))) && \
  14397. !defined(WOLFSSL_DEVCRYPTO_HASH) && !defined(WOLFSSL_AFALG_HASH)
  14398. /* Apply SHA256 transformation to the data */
  14399. int wolfSSL_SHA256_Transform(WOLFSSL_SHA256_CTX* sha256,
  14400. const unsigned char* data)
  14401. {
  14402. int ret;
  14403. WOLFSSL_ENTER("SHA256_Transform");
  14404. /* sanity check */
  14405. if (sha256 == NULL || data == NULL) {
  14406. return 0;
  14407. }
  14408. #if defined(LITTLE_ENDIAN_ORDER)
  14409. {
  14410. ByteReverseWords((word32*)data, (word32*)data, WC_SHA256_BLOCK_SIZE);
  14411. }
  14412. #endif
  14413. ret = wc_Sha256Transform((wc_Sha256*)sha256, data);
  14414. /* return 1 on success, 0 otherwise */
  14415. if (ret == 0)
  14416. return 1;
  14417. else
  14418. return 0;
  14419. }
  14420. #endif
  14421. #endif
  14422. #ifdef WOLFSSL_SHA384
  14423. int wolfSSL_SHA384_Init(WOLFSSL_SHA384_CTX* sha)
  14424. {
  14425. int ret;
  14426. typedef char sha_test[sizeof(SHA384_CTX) >= sizeof(wc_Sha384) ? 1 : -1];
  14427. (void)sizeof(sha_test);
  14428. WOLFSSL_ENTER("SHA384_Init");
  14429. ret = wc_InitSha384((wc_Sha384*)sha);
  14430. /* return 1 on success, 0 otherwise */
  14431. if (ret == 0)
  14432. return 1;
  14433. return 0;
  14434. }
  14435. int wolfSSL_SHA384_Update(WOLFSSL_SHA384_CTX* sha, const void* input,
  14436. unsigned long sz)
  14437. {
  14438. int ret;
  14439. WOLFSSL_ENTER("SHA384_Update");
  14440. ret = wc_Sha384Update((wc_Sha384*)sha, (const byte*)input, (word32)sz);
  14441. /* return 1 on success, 0 otherwise */
  14442. if (ret == 0)
  14443. return 1;
  14444. return 0;
  14445. }
  14446. int wolfSSL_SHA384_Final(byte* output, WOLFSSL_SHA384_CTX* sha)
  14447. {
  14448. int ret;
  14449. WOLFSSL_ENTER("SHA384_Final");
  14450. ret = wc_Sha384Final((wc_Sha384*)sha, output);
  14451. /* have to actually free the resources (if any) here, because the
  14452. * OpenSSL API doesn't include SHA*_Free().
  14453. */
  14454. wc_Sha384Free((wc_Sha384*)sha);
  14455. /* return 1 on success, 0 otherwise */
  14456. if (ret == 0)
  14457. return 1;
  14458. return 0;
  14459. }
  14460. #endif /* WOLFSSL_SHA384 */
  14461. #ifdef WOLFSSL_SHA512
  14462. int wolfSSL_SHA512_Init(WOLFSSL_SHA512_CTX* sha)
  14463. {
  14464. int ret;
  14465. typedef char sha_test[sizeof(SHA512_CTX) >= sizeof(wc_Sha512) ? 1 : -1];
  14466. (void)sizeof(sha_test);
  14467. WOLFSSL_ENTER("SHA512_Init");
  14468. ret = wc_InitSha512((wc_Sha512*)sha);
  14469. /* return 1 on success, 0 otherwise */
  14470. if (ret == 0)
  14471. return 1;
  14472. return 0;
  14473. }
  14474. int wolfSSL_SHA512_Update(WOLFSSL_SHA512_CTX* sha, const void* input,
  14475. unsigned long sz)
  14476. {
  14477. int ret;
  14478. WOLFSSL_ENTER("SHA512_Update");
  14479. ret = wc_Sha512Update((wc_Sha512*)sha, (const byte*)input, (word32)sz);
  14480. /* return 1 on success, 0 otherwise */
  14481. if (ret == 0)
  14482. return 1;
  14483. return 0;
  14484. }
  14485. int wolfSSL_SHA512_Final(byte* output, WOLFSSL_SHA512_CTX* sha)
  14486. {
  14487. int ret;
  14488. WOLFSSL_ENTER("SHA512_Final");
  14489. ret = wc_Sha512Final((wc_Sha512*)sha, output);
  14490. /* have to actually free the resources (if any) here, because the
  14491. * OpenSSL API doesn't include SHA*_Free().
  14492. */
  14493. wc_Sha512Free((wc_Sha512*)sha);
  14494. /* return 1 on success, 0 otherwise */
  14495. if (ret == 0)
  14496. return 1;
  14497. return 0;
  14498. }
  14499. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14500. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2)))
  14501. /* Apply SHA512 transformation to the data */
  14502. int wolfSSL_SHA512_Transform(WOLFSSL_SHA512_CTX* sha512,
  14503. const unsigned char* data)
  14504. {
  14505. int ret;
  14506. WOLFSSL_ENTER("SHA512_Transform");
  14507. /* sanity check */
  14508. if (sha512 == NULL || data == NULL) {
  14509. return WOLFSSL_FAILURE;
  14510. }
  14511. ret = wc_Sha512Transform((wc_Sha512*)sha512, data);
  14512. /* return 1 on success, 0 otherwise */
  14513. if (ret == 0)
  14514. return WOLFSSL_SUCCESS;
  14515. else
  14516. return WOLFSSL_FAILURE;
  14517. }
  14518. #endif /* !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && \
  14519. (HAVE_FIPS_VERSION > 2)) */
  14520. #if !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)
  14521. #if !defined(WOLFSSL_NOSHA512_224)
  14522. int wolfSSL_SHA512_224_Init(WOLFSSL_SHA512_224_CTX* sha)
  14523. {
  14524. int ret;
  14525. WOLFSSL_ENTER("wolfSSL_SHA512_224_Init");
  14526. ret = wc_InitSha512_224((wc_Sha512*)sha);
  14527. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE otherwise */
  14528. if (ret == 0)
  14529. return WOLFSSL_SUCCESS;
  14530. return WOLFSSL_FAILURE;
  14531. }
  14532. int wolfSSL_SHA512_224_Update(WOLFSSL_SHA512_224_CTX* sha,
  14533. const void* input, unsigned long sz)
  14534. {
  14535. int ret;
  14536. WOLFSSL_ENTER("wolfSSL_SHA512_224_Update");
  14537. ret = wc_Sha512_224Update((wc_Sha512*)sha, (const byte*)input, (word32)sz);
  14538. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE otherwise */
  14539. if (ret == 0)
  14540. return WOLFSSL_SUCCESS;
  14541. return WOLFSSL_FAILURE;
  14542. }
  14543. int wolfSSL_SHA512_224_Final(byte* output, WOLFSSL_SHA512_224_CTX* sha)
  14544. {
  14545. int ret;
  14546. WOLFSSL_ENTER("wolfSSL_SHA512_224_Final");
  14547. ret = wc_Sha512_224Final((wc_Sha512*)sha, output);
  14548. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE otherwise */
  14549. if (ret == 0)
  14550. return WOLFSSL_SUCCESS;
  14551. return WOLFSSL_FAILURE;
  14552. }
  14553. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14554. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2)))
  14555. /* Apply SHA512 transformation to the data */
  14556. int wolfSSL_SHA512_224_Transform(WOLFSSL_SHA512_CTX* sha512,
  14557. const unsigned char* data)
  14558. {
  14559. int ret;
  14560. WOLFSSL_ENTER("SHA512_224_Transform");
  14561. /* sanity check */
  14562. if (sha512 == NULL || data == NULL) {
  14563. return WOLFSSL_FAILURE;
  14564. }
  14565. ret = wc_Sha512_224Transform((wc_Sha512*)sha512, data);
  14566. /* return 1 on success, 0 otherwise */
  14567. if (ret == 0)
  14568. return WOLFSSL_SUCCESS;
  14569. else
  14570. return WOLFSSL_FAILURE;
  14571. }
  14572. #endif /* !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && \
  14573. (HAVE_FIPS_VERSION > 2)) */
  14574. #endif /* !WOLFSSL_NOSHA512_224 */
  14575. #if !defined(WOLFSSL_NOSHA512_256)
  14576. int wolfSSL_SHA512_256_Init(WOLFSSL_SHA512_256_CTX* sha)
  14577. {
  14578. int ret;
  14579. WOLFSSL_ENTER("wolfSSL_SHA512_256_Init");
  14580. ret = wc_InitSha512_256((wc_Sha512*)sha);
  14581. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE otherwise */
  14582. if (ret == 0)
  14583. return WOLFSSL_SUCCESS;
  14584. return WOLFSSL_FAILURE;
  14585. }
  14586. int wolfSSL_SHA512_256_Update(WOLFSSL_SHA512_256_CTX* sha,
  14587. const void* input, unsigned long sz)
  14588. {
  14589. int ret;
  14590. WOLFSSL_ENTER("wolfSSL_SHA512_256_Update");
  14591. ret = wc_Sha512_256Update((wc_Sha512*)sha, (const byte*)input, (word32)sz);
  14592. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE otherwise */
  14593. if (ret == 0)
  14594. return WOLFSSL_SUCCESS;
  14595. return WOLFSSL_FAILURE;
  14596. }
  14597. int wolfSSL_SHA512_256_Final(byte* output, WOLFSSL_SHA512_256_CTX* sha)
  14598. {
  14599. int ret;
  14600. WOLFSSL_ENTER("wolfSSL_SHA512_256_Final");
  14601. ret = wc_Sha512_256Final((wc_Sha512*)sha, output);
  14602. /* return WOLFSSL_SUCCESS on success, 0 otherwise */
  14603. if (ret == 0)
  14604. return WOLFSSL_SUCCESS;
  14605. return WOLFSSL_FAILURE;
  14606. }
  14607. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  14608. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION > 2)))
  14609. /* Apply SHA512 transformation to the data */
  14610. int wolfSSL_SHA512_256_Transform(WOLFSSL_SHA512_CTX* sha512,
  14611. const unsigned char* data)
  14612. {
  14613. int ret;
  14614. WOLFSSL_ENTER("SHA512_256_Transform");
  14615. /* sanity check */
  14616. if (sha512 == NULL || data == NULL) {
  14617. return WOLFSSL_FAILURE;
  14618. }
  14619. ret = wc_Sha512_256Transform((wc_Sha512*)sha512, data);
  14620. /* return 1 on success, 0 otherwise */
  14621. if (ret == 0)
  14622. return WOLFSSL_SUCCESS;
  14623. else
  14624. return WOLFSSL_FAILURE;
  14625. }
  14626. #endif /* !defined(HAVE_FIPS) || (defined(HAVE_FIPS_VERSION) && \
  14627. (HAVE_FIPS_VERSION > 2)) */
  14628. #endif /* !WOLFSSL_NOSHA512_256 */
  14629. #endif /* !HAVE_FIPS && !HAVE_SELFTEST */
  14630. #endif /* WOLFSSL_SHA512 */
  14631. #ifdef WOLFSSL_SHA3
  14632. #ifndef WOLFSSL_NOSHA3_224
  14633. int wolfSSL_SHA3_224_Init(WOLFSSL_SHA3_224_CTX* sha)
  14634. {
  14635. int ret;
  14636. typedef char sha_test[sizeof(SHA3_224_CTX) >= sizeof(wc_Sha3) ? 1 : -1];
  14637. (void)sizeof(sha_test);
  14638. WOLFSSL_ENTER("SHA3_224_Init");
  14639. ret = wc_InitSha3_224((wc_Sha3*)sha, NULL, INVALID_DEVID);
  14640. /* return 1 on success, 0 otherwise */
  14641. if (ret == 0)
  14642. return 1;
  14643. return 0;
  14644. }
  14645. int wolfSSL_SHA3_224_Update(WOLFSSL_SHA3_224_CTX* sha, const void* input,
  14646. unsigned long sz)
  14647. {
  14648. int ret;
  14649. WOLFSSL_ENTER("SHA3_224_Update");
  14650. ret = wc_Sha3_224_Update((wc_Sha3*)sha, (const byte*)input, (word32)sz);
  14651. /* return 1 on success, 0 otherwise */
  14652. if (ret == 0)
  14653. return 1;
  14654. return 0;
  14655. }
  14656. int wolfSSL_SHA3_224_Final(byte* output, WOLFSSL_SHA3_224_CTX* sha)
  14657. {
  14658. int ret;
  14659. WOLFSSL_ENTER("SHA3_224_Final");
  14660. ret = wc_Sha3_224_Final((wc_Sha3*)sha, output);
  14661. /* have to actually free the resources (if any) here, because the
  14662. * OpenSSL API doesn't include SHA*_Free().
  14663. */
  14664. wc_Sha3_224_Free((wc_Sha3*)sha);
  14665. /* return 1 on success, 0 otherwise */
  14666. if (ret == 0)
  14667. return 1;
  14668. return 0;
  14669. }
  14670. #endif /* WOLFSSL_NOSHA3_224 */
  14671. #ifndef WOLFSSL_NOSHA3_256
  14672. int wolfSSL_SHA3_256_Init(WOLFSSL_SHA3_256_CTX* sha3_256)
  14673. {
  14674. int ret;
  14675. typedef char sha_test[sizeof(SHA3_256_CTX) >= sizeof(wc_Sha3) ? 1 : -1];
  14676. (void)sizeof(sha_test);
  14677. WOLFSSL_ENTER("SHA3_256_Init");
  14678. ret = wc_InitSha3_256((wc_Sha3*)sha3_256, NULL, INVALID_DEVID);
  14679. /* return 1 on success, 0 otherwise */
  14680. if (ret == 0)
  14681. return 1;
  14682. return 0;
  14683. }
  14684. int wolfSSL_SHA3_256_Update(WOLFSSL_SHA3_256_CTX* sha, const void* input,
  14685. unsigned long sz)
  14686. {
  14687. int ret;
  14688. WOLFSSL_ENTER("SHA3_256_Update");
  14689. ret = wc_Sha3_256_Update((wc_Sha3*)sha, (const byte*)input, (word32)sz);
  14690. /* return 1 on success, 0 otherwise */
  14691. if (ret == 0)
  14692. return 1;
  14693. return 0;
  14694. }
  14695. int wolfSSL_SHA3_256_Final(byte* output, WOLFSSL_SHA3_256_CTX* sha)
  14696. {
  14697. int ret;
  14698. WOLFSSL_ENTER("SHA3_256_Final");
  14699. ret = wc_Sha3_256_Final((wc_Sha3*)sha, output);
  14700. /* have to actually free the resources (if any) here, because the
  14701. * OpenSSL API doesn't include SHA*_Free().
  14702. */
  14703. wc_Sha3_256_Free((wc_Sha3*)sha);
  14704. /* return 1 on success, 0 otherwise */
  14705. if (ret == 0)
  14706. return 1;
  14707. return 0;
  14708. }
  14709. #endif /* WOLFSSL_NOSHA3_256 */
  14710. int wolfSSL_SHA3_384_Init(WOLFSSL_SHA3_384_CTX* sha)
  14711. {
  14712. int ret;
  14713. typedef char sha_test[sizeof(SHA3_384_CTX) >= sizeof(wc_Sha3) ? 1 : -1];
  14714. (void)sizeof(sha_test);
  14715. WOLFSSL_ENTER("SHA3_384_Init");
  14716. ret = wc_InitSha3_384((wc_Sha3*)sha, NULL, INVALID_DEVID);
  14717. /* return 1 on success, 0 otherwise */
  14718. if (ret == 0)
  14719. return 1;
  14720. return 0;
  14721. }
  14722. int wolfSSL_SHA3_384_Update(WOLFSSL_SHA3_384_CTX* sha, const void* input,
  14723. unsigned long sz)
  14724. {
  14725. int ret;
  14726. WOLFSSL_ENTER("SHA3_384_Update");
  14727. ret = wc_Sha3_384_Update((wc_Sha3*)sha, (const byte*)input, (word32)sz);
  14728. /* return 1 on success, 0 otherwise */
  14729. if (ret == 0)
  14730. return 1;
  14731. return 0;
  14732. }
  14733. int wolfSSL_SHA3_384_Final(byte* output, WOLFSSL_SHA3_384_CTX* sha)
  14734. {
  14735. int ret;
  14736. WOLFSSL_ENTER("SHA3_384_Final");
  14737. ret = wc_Sha3_384_Final((wc_Sha3*)sha, output);
  14738. /* have to actually free the resources (if any) here, because the
  14739. * OpenSSL API doesn't include SHA*_Free().
  14740. */
  14741. wc_Sha3_384_Free((wc_Sha3*)sha);
  14742. /* return 1 on success, 0 otherwise */
  14743. if (ret == 0)
  14744. return 1;
  14745. return 0;
  14746. }
  14747. #ifndef WOLFSSL_NOSHA3_512
  14748. int wolfSSL_SHA3_512_Init(WOLFSSL_SHA3_512_CTX* sha)
  14749. {
  14750. int ret;
  14751. typedef char sha_test[sizeof(SHA3_512_CTX) >= sizeof(wc_Sha3) ? 1 : -1];
  14752. (void)sizeof(sha_test);
  14753. WOLFSSL_ENTER("SHA3_512_Init");
  14754. ret = wc_InitSha3_512((wc_Sha3*)sha, NULL, INVALID_DEVID);
  14755. /* return 1 on success, 0 otherwise */
  14756. if (ret == 0)
  14757. return 1;
  14758. return 0;
  14759. }
  14760. int wolfSSL_SHA3_512_Update(WOLFSSL_SHA3_512_CTX* sha, const void* input,
  14761. unsigned long sz)
  14762. {
  14763. int ret;
  14764. WOLFSSL_ENTER("SHA3_512_Update");
  14765. ret = wc_Sha3_512_Update((wc_Sha3*)sha, (const byte*)input, (word32)sz);
  14766. /* return 1 on success, 0 otherwise */
  14767. if (ret == 0)
  14768. return 1;
  14769. return 0;
  14770. }
  14771. int wolfSSL_SHA3_512_Final(byte* output, WOLFSSL_SHA3_512_CTX* sha)
  14772. {
  14773. int ret;
  14774. WOLFSSL_ENTER("SHA3_512_Final");
  14775. ret = wc_Sha3_512_Final((wc_Sha3*)sha, output);
  14776. /* have to actually free the resources (if any) here, because the
  14777. * OpenSSL API doesn't include SHA*_Free().
  14778. */
  14779. wc_Sha3_512_Free((wc_Sha3*)sha);
  14780. /* return 1 on success, 0 otherwise */
  14781. if (ret == 0)
  14782. return 1;
  14783. return 0;
  14784. }
  14785. #endif /* WOLFSSL_NOSHA3_512 */
  14786. #endif /* WOLFSSL_SHA3 */
  14787. unsigned char* wolfSSL_HMAC(const WOLFSSL_EVP_MD* evp_md, const void* key,
  14788. int key_len, const unsigned char* d, int n,
  14789. unsigned char* md, unsigned int* md_len)
  14790. {
  14791. int type;
  14792. int mdlen;
  14793. unsigned char* ret = NULL;
  14794. #ifdef WOLFSSL_SMALL_STACK
  14795. Hmac* hmac = NULL;
  14796. #else
  14797. Hmac hmac[1];
  14798. #endif
  14799. void* heap = NULL;
  14800. WOLFSSL_ENTER("wolfSSL_HMAC");
  14801. if (!md) {
  14802. WOLFSSL_MSG("Static buffer not supported, pass in md buffer");
  14803. return NULL; /* no static buffer support */
  14804. }
  14805. #ifndef NO_MD5
  14806. if (XSTRCMP(evp_md, "MD5") == 0) {
  14807. type = WC_MD5;
  14808. mdlen = WC_MD5_DIGEST_SIZE;
  14809. } else
  14810. #endif
  14811. #ifdef WOLFSSL_SHA224
  14812. if (XSTRCMP(evp_md, "SHA224") == 0) {
  14813. type = WC_SHA224;
  14814. mdlen = WC_SHA224_DIGEST_SIZE;
  14815. } else
  14816. #endif
  14817. #ifndef NO_SHA256
  14818. if (XSTRCMP(evp_md, "SHA256") == 0) {
  14819. type = WC_SHA256;
  14820. mdlen = WC_SHA256_DIGEST_SIZE;
  14821. } else
  14822. #endif
  14823. #ifdef WOLFSSL_SHA384
  14824. if (XSTRCMP(evp_md, "SHA384") == 0) {
  14825. type = WC_SHA384;
  14826. mdlen = WC_SHA384_DIGEST_SIZE;
  14827. } else
  14828. #endif
  14829. #ifdef WOLFSSL_SHA512
  14830. if (XSTRCMP(evp_md, "SHA512") == 0) {
  14831. type = WC_SHA512;
  14832. mdlen = WC_SHA512_DIGEST_SIZE;
  14833. } else
  14834. #endif
  14835. #ifdef WOLFSSL_SHA3
  14836. #ifndef WOLFSSL_NOSHA3_224
  14837. if (XSTRCMP(evp_md, "SHA3_224") == 0) {
  14838. type = WC_SHA3_224;
  14839. mdlen = WC_SHA3_224_DIGEST_SIZE;
  14840. } else
  14841. #endif
  14842. #ifndef WOLFSSL_NOSHA3_256
  14843. if (XSTRCMP(evp_md, "SHA3_256") == 0) {
  14844. type = WC_SHA3_256;
  14845. mdlen = WC_SHA3_256_DIGEST_SIZE;
  14846. } else
  14847. #endif
  14848. if (XSTRCMP(evp_md, "SHA3_384") == 0) {
  14849. type = WC_SHA3_384;
  14850. mdlen = WC_SHA3_384_DIGEST_SIZE;
  14851. } else
  14852. #ifndef WOLFSSL_NOSHA3_512
  14853. if (XSTRCMP(evp_md, "SHA3_512") == 0) {
  14854. type = WC_SHA3_512;
  14855. mdlen = WC_SHA3_512_DIGEST_SIZE;
  14856. } else
  14857. #endif
  14858. #endif
  14859. #ifndef NO_SHA
  14860. if (XSTRCMP(evp_md, "SHA") == 0) {
  14861. type = WC_SHA;
  14862. mdlen = WC_SHA_DIGEST_SIZE;
  14863. } else
  14864. #endif
  14865. {
  14866. return NULL;
  14867. }
  14868. #ifdef WOLFSSL_SMALL_STACK
  14869. hmac = (Hmac*)XMALLOC(sizeof(Hmac), heap, DYNAMIC_TYPE_HMAC);
  14870. if (hmac == NULL)
  14871. return NULL;
  14872. #endif
  14873. if (wc_HmacInit(hmac, heap, INVALID_DEVID) == 0) {
  14874. if (wc_HmacSetKey(hmac, type, (const byte*)key, key_len) == 0) {
  14875. if (wc_HmacUpdate(hmac, d, n) == 0) {
  14876. if (wc_HmacFinal(hmac, md) == 0) {
  14877. if (md_len)
  14878. *md_len = mdlen;
  14879. ret = md;
  14880. }
  14881. }
  14882. }
  14883. wc_HmacFree(hmac);
  14884. }
  14885. #ifdef WOLFSSL_SMALL_STACK
  14886. XFREE(hmac, heap, DYNAMIC_TYPE_HMAC);
  14887. #endif
  14888. (void)evp_md;
  14889. return ret;
  14890. }
  14891. #ifndef NO_DES3
  14892. /* 0 on ok */
  14893. int wolfSSL_DES_key_sched(WOLFSSL_const_DES_cblock* key,
  14894. WOLFSSL_DES_key_schedule* schedule)
  14895. {
  14896. WOLFSSL_ENTER("wolfSSL_DES_key_sched");
  14897. if (key == NULL || schedule == NULL) {
  14898. WOLFSSL_MSG("Null argument passed in");
  14899. }
  14900. else {
  14901. XMEMCPY(schedule, key, sizeof(WOLFSSL_const_DES_cblock));
  14902. }
  14903. return 0;
  14904. }
  14905. /* intended to behave similar to Kerberos mit_des_cbc_cksum
  14906. * return the last 4 bytes of cipher text */
  14907. WOLFSSL_DES_LONG wolfSSL_DES_cbc_cksum(const unsigned char* in,
  14908. WOLFSSL_DES_cblock* out, long length, WOLFSSL_DES_key_schedule* sc,
  14909. WOLFSSL_const_DES_cblock* iv)
  14910. {
  14911. WOLFSSL_DES_LONG ret;
  14912. unsigned char* tmp;
  14913. unsigned char* data = (unsigned char*)in;
  14914. long dataSz = length;
  14915. byte dynamicFlag = 0; /* when padding the buffer created needs free'd */
  14916. WOLFSSL_ENTER("wolfSSL_DES_cbc_cksum");
  14917. if (in == NULL || out == NULL || sc == NULL || iv == NULL) {
  14918. WOLFSSL_MSG("Bad argument passed in");
  14919. return 0;
  14920. }
  14921. /* if input length is not a multiple of DES_BLOCK_SIZE pad with 0s */
  14922. if (dataSz % DES_BLOCK_SIZE) {
  14923. dataSz += DES_BLOCK_SIZE - (dataSz % DES_BLOCK_SIZE);
  14924. data = (unsigned char*)XMALLOC(dataSz, NULL,
  14925. DYNAMIC_TYPE_TMP_BUFFER);
  14926. if (data == NULL) {
  14927. WOLFSSL_MSG("Issue creating temporary buffer");
  14928. return 0;
  14929. }
  14930. dynamicFlag = 1; /* set to free buffer at end */
  14931. XMEMCPY(data, in, length);
  14932. XMEMSET(data + length, 0, dataSz - length); /* padding */
  14933. }
  14934. tmp = (unsigned char*)XMALLOC(dataSz, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  14935. if (tmp == NULL) {
  14936. WOLFSSL_MSG("Issue creating temporary buffer");
  14937. if (dynamicFlag == 1) {
  14938. XFREE(data, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  14939. }
  14940. return 0;
  14941. }
  14942. wolfSSL_DES_cbc_encrypt(data, tmp, dataSz, sc,
  14943. (WOLFSSL_DES_cblock*)iv, 1);
  14944. XMEMCPY((unsigned char*)out, tmp + (dataSz - DES_BLOCK_SIZE),
  14945. DES_BLOCK_SIZE);
  14946. ret = (((*((unsigned char*)out + 4) & 0xFF) << 24)|
  14947. ((*((unsigned char*)out + 5) & 0xFF) << 16)|
  14948. ((*((unsigned char*)out + 6) & 0xFF) << 8) |
  14949. (*((unsigned char*)out + 7) & 0xFF));
  14950. XFREE(tmp, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  14951. if (dynamicFlag == 1) {
  14952. XFREE(data, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  14953. }
  14954. return ret;
  14955. }
  14956. void wolfSSL_DES_cbc_encrypt(const unsigned char* input,
  14957. unsigned char* output, long length,
  14958. WOLFSSL_DES_key_schedule* schedule,
  14959. WOLFSSL_DES_cblock* ivec, int enc)
  14960. {
  14961. Des myDes;
  14962. byte lastblock[DES_BLOCK_SIZE];
  14963. int lb_sz;
  14964. long blk;
  14965. WOLFSSL_ENTER("DES_cbc_encrypt");
  14966. /* OpenSSL compat, no ret */
  14967. if (wc_Des_SetKey(&myDes, (const byte*)schedule, (const byte*)ivec,
  14968. !enc) != 0) {
  14969. WOLFSSL_MSG("wc_Des_SetKey return error.");
  14970. return;
  14971. }
  14972. lb_sz = length%DES_BLOCK_SIZE;
  14973. blk = length/DES_BLOCK_SIZE;
  14974. if (enc == DES_ENCRYPT){
  14975. wc_Des_CbcEncrypt(&myDes, output, input, (word32)blk*DES_BLOCK_SIZE);
  14976. if(lb_sz){
  14977. XMEMSET(lastblock, 0, DES_BLOCK_SIZE);
  14978. XMEMCPY(lastblock, input+length-lb_sz, lb_sz);
  14979. wc_Des_CbcEncrypt(&myDes, output+blk*DES_BLOCK_SIZE,
  14980. lastblock, (word32)DES_BLOCK_SIZE);
  14981. }
  14982. }
  14983. else {
  14984. wc_Des_CbcDecrypt(&myDes, output, input, (word32)blk*DES_BLOCK_SIZE);
  14985. if(lb_sz){
  14986. wc_Des_CbcDecrypt(&myDes, lastblock, input+length-lb_sz, (word32)DES_BLOCK_SIZE);
  14987. XMEMCPY(output+length-lb_sz, lastblock, lb_sz);
  14988. }
  14989. }
  14990. }
  14991. /* WOLFSSL_DES_key_schedule is a unsigned char array of size 8 */
  14992. void wolfSSL_DES_ede3_cbc_encrypt(const unsigned char* input,
  14993. unsigned char* output, long sz,
  14994. WOLFSSL_DES_key_schedule* ks1,
  14995. WOLFSSL_DES_key_schedule* ks2,
  14996. WOLFSSL_DES_key_schedule* ks3,
  14997. WOLFSSL_DES_cblock* ivec, int enc)
  14998. {
  14999. int ret;
  15000. Des3 des;
  15001. byte key[24];/* EDE uses 24 size key */
  15002. byte lastblock[DES_BLOCK_SIZE];
  15003. int lb_sz;
  15004. long blk;
  15005. WOLFSSL_ENTER("wolfSSL_DES_ede3_cbc_encrypt");
  15006. XMEMSET(key, 0, sizeof(key));
  15007. XMEMCPY(key, *ks1, DES_BLOCK_SIZE);
  15008. XMEMCPY(&key[DES_BLOCK_SIZE], *ks2, DES_BLOCK_SIZE);
  15009. XMEMCPY(&key[DES_BLOCK_SIZE * 2], *ks3, DES_BLOCK_SIZE);
  15010. lb_sz = sz%DES_BLOCK_SIZE;
  15011. blk = sz/DES_BLOCK_SIZE;
  15012. /* OpenSSL compat, no ret */
  15013. (void)wc_Des3Init(&des, NULL, INVALID_DEVID);
  15014. if (enc == DES_ENCRYPT) {
  15015. if (wc_Des3_SetKey(&des, key, (const byte*)ivec,
  15016. DES_ENCRYPTION) == 0) {
  15017. ret = wc_Des3_CbcEncrypt(&des, output, input, (word32)blk*DES_BLOCK_SIZE);
  15018. #if defined(WOLFSSL_ASYNC_CRYPT)
  15019. ret = wc_AsyncWait(ret, &des.asyncDev, WC_ASYNC_FLAG_NONE);
  15020. #endif
  15021. (void)ret; /* ignore return codes for processing */
  15022. if(lb_sz){
  15023. XMEMSET(lastblock, 0, DES_BLOCK_SIZE);
  15024. XMEMCPY(lastblock, input+sz-lb_sz, lb_sz);
  15025. ret = wc_Des3_CbcEncrypt(&des, output+blk*DES_BLOCK_SIZE,
  15026. lastblock, (word32)DES_BLOCK_SIZE);
  15027. #if defined(WOLFSSL_ASYNC_CRYPT)
  15028. ret = wc_AsyncWait(ret, &des.asyncDev, WC_ASYNC_FLAG_NONE);
  15029. #endif
  15030. (void)ret; /* ignore return codes for processing */
  15031. }
  15032. }
  15033. }
  15034. else {
  15035. if (wc_Des3_SetKey(&des, key, (const byte*)ivec,
  15036. DES_DECRYPTION) == 0) {
  15037. ret = wc_Des3_CbcDecrypt(&des, output, input, (word32)blk*DES_BLOCK_SIZE);
  15038. #if defined(WOLFSSL_ASYNC_CRYPT)
  15039. ret = wc_AsyncWait(ret, &des.asyncDev, WC_ASYNC_FLAG_NONE);
  15040. #endif
  15041. (void)ret; /* ignore return codes for processing */
  15042. if(lb_sz){
  15043. ret = wc_Des3_CbcDecrypt(&des, lastblock, input+sz-lb_sz, (word32)DES_BLOCK_SIZE);
  15044. #if defined(WOLFSSL_ASYNC_CRYPT)
  15045. ret = wc_AsyncWait(ret, &des.asyncDev, WC_ASYNC_FLAG_NONE);
  15046. #endif
  15047. (void)ret; /* ignore return codes for processing */
  15048. XMEMCPY(output+sz-lb_sz, lastblock, lb_sz);
  15049. }
  15050. }
  15051. }
  15052. wc_Des3Free(&des);
  15053. }
  15054. /* correctly sets ivec for next call */
  15055. void wolfSSL_DES_ncbc_encrypt(const unsigned char* input,
  15056. unsigned char* output, long length,
  15057. WOLFSSL_DES_key_schedule* schedule, WOLFSSL_DES_cblock* ivec,
  15058. int enc)
  15059. {
  15060. Des myDes;
  15061. byte lastblock[DES_BLOCK_SIZE];
  15062. int lb_sz;
  15063. long idx = length;
  15064. long blk;
  15065. WOLFSSL_ENTER("DES_ncbc_encrypt");
  15066. /* OpenSSL compat, no ret */
  15067. if (wc_Des_SetKey(&myDes, (const byte*)schedule,
  15068. (const byte*)ivec, !enc) != 0) {
  15069. WOLFSSL_MSG("wc_Des_SetKey return error.");
  15070. return;
  15071. }
  15072. lb_sz = length%DES_BLOCK_SIZE;
  15073. blk = length/DES_BLOCK_SIZE;
  15074. idx -= sizeof(DES_cblock);
  15075. if (lb_sz) {
  15076. idx += DES_BLOCK_SIZE - lb_sz;
  15077. }
  15078. if (enc == DES_ENCRYPT){
  15079. wc_Des_CbcEncrypt(&myDes, output, input,
  15080. (word32)blk * DES_BLOCK_SIZE);
  15081. if (lb_sz){
  15082. XMEMSET(lastblock, 0, DES_BLOCK_SIZE);
  15083. XMEMCPY(lastblock, input+length-lb_sz, lb_sz);
  15084. wc_Des_CbcEncrypt(&myDes, output + blk * DES_BLOCK_SIZE,
  15085. lastblock, (word32)DES_BLOCK_SIZE);
  15086. }
  15087. XMEMCPY(ivec, output + idx, sizeof(DES_cblock));
  15088. } else {
  15089. WOLFSSL_DES_cblock tmp;
  15090. XMEMCPY(tmp, input + idx, sizeof(DES_cblock));
  15091. wc_Des_CbcDecrypt(&myDes, output, input,
  15092. (word32)blk * DES_BLOCK_SIZE);
  15093. if (lb_sz){
  15094. wc_Des_CbcDecrypt(&myDes, lastblock, input + length - lb_sz,
  15095. (word32)DES_BLOCK_SIZE);
  15096. XMEMCPY(output+length-lb_sz, lastblock, lb_sz);
  15097. }
  15098. XMEMCPY(ivec, tmp, sizeof(WOLFSSL_DES_cblock));
  15099. }
  15100. }
  15101. #endif /* NO_DES3 */
  15102. void wolfSSL_ERR_free_strings(void)
  15103. {
  15104. /* handled internally */
  15105. }
  15106. void wolfSSL_cleanup_all_ex_data(void)
  15107. {
  15108. /* nothing to do here */
  15109. }
  15110. #endif /* OPENSSL_EXTRA */
  15111. #if defined(OPENSSL_EXTRA) || defined(DEBUG_WOLFSSL_VERBOSE)
  15112. void wolfSSL_ERR_clear_error(void)
  15113. {
  15114. WOLFSSL_ENTER("wolfSSL_ERR_clear_error");
  15115. wc_ClearErrorNodes();
  15116. }
  15117. #endif
  15118. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  15119. int wolfSSL_clear(WOLFSSL* ssl)
  15120. {
  15121. WOLFSSL_ENTER("wolfSSL_clear");
  15122. if (ssl == NULL) {
  15123. return WOLFSSL_FAILURE;
  15124. }
  15125. if (!ssl->options.handShakeDone) {
  15126. /* Only reset the session if we didn't complete a handshake */
  15127. wolfSSL_SESSION_free(ssl->session);
  15128. ssl->session = wolfSSL_NewSession(ssl->heap);
  15129. if (ssl->session == NULL) {
  15130. return WOLFSSL_FAILURE;
  15131. }
  15132. }
  15133. ssl->options.isClosed = 0;
  15134. ssl->options.connReset = 0;
  15135. ssl->options.sentNotify = 0;
  15136. ssl->options.closeNotify = 0;
  15137. ssl->options.sendVerify = 0;
  15138. ssl->options.serverState = NULL_STATE;
  15139. ssl->options.clientState = NULL_STATE;
  15140. ssl->options.connectState = CONNECT_BEGIN;
  15141. ssl->options.acceptState = ACCEPT_BEGIN;
  15142. ssl->options.handShakeState = NULL_STATE;
  15143. ssl->options.handShakeDone = 0;
  15144. ssl->options.processReply = 0; /* doProcessInit */
  15145. ssl->keys.encryptionOn = 0;
  15146. XMEMSET(&ssl->msgsReceived, 0, sizeof(ssl->msgsReceived));
  15147. if (ssl->hsHashes)
  15148. (void)InitHandshakeHashes(ssl);
  15149. #ifdef KEEP_PEER_CERT
  15150. FreeX509(&ssl->peerCert);
  15151. InitX509(&ssl->peerCert, 0, ssl->heap);
  15152. #endif
  15153. return WOLFSSL_SUCCESS;
  15154. }
  15155. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  15156. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)
  15157. long wolfSSL_CTX_set_mode(WOLFSSL_CTX* ctx, long mode)
  15158. {
  15159. /* WOLFSSL_MODE_ACCEPT_MOVING_WRITE_BUFFER is wolfSSL default mode */
  15160. WOLFSSL_ENTER("SSL_CTX_set_mode");
  15161. switch(mode) {
  15162. case SSL_MODE_ENABLE_PARTIAL_WRITE:
  15163. ctx->partialWrite = 1;
  15164. break;
  15165. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15166. case SSL_MODE_RELEASE_BUFFERS:
  15167. WOLFSSL_MSG("SSL_MODE_RELEASE_BUFFERS not implemented.");
  15168. break;
  15169. #endif
  15170. case SSL_MODE_AUTO_RETRY:
  15171. ctx->autoRetry = 1;
  15172. break;
  15173. default:
  15174. WOLFSSL_MSG("Mode Not Implemented");
  15175. }
  15176. /* SSL_MODE_AUTO_RETRY
  15177. * Should not return -1 with renegotiation on read/write */
  15178. return mode;
  15179. }
  15180. long wolfSSL_CTX_clear_mode(WOLFSSL_CTX* ctx, long mode)
  15181. {
  15182. /* WOLFSSL_MODE_ACCEPT_MOVING_WRITE_BUFFER is wolfSSL default mode */
  15183. WOLFSSL_ENTER("SSL_CTX_set_mode");
  15184. switch(mode) {
  15185. case SSL_MODE_ENABLE_PARTIAL_WRITE:
  15186. ctx->partialWrite = 0;
  15187. break;
  15188. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15189. case SSL_MODE_RELEASE_BUFFERS:
  15190. WOLFSSL_MSG("SSL_MODE_RELEASE_BUFFERS not implemented.");
  15191. break;
  15192. #endif
  15193. case SSL_MODE_AUTO_RETRY:
  15194. ctx->autoRetry = 0;
  15195. break;
  15196. default:
  15197. WOLFSSL_MSG("Mode Not Implemented");
  15198. }
  15199. /* SSL_MODE_AUTO_RETRY
  15200. * Should not return -1 with renegotiation on read/write */
  15201. return 0;
  15202. }
  15203. #endif
  15204. #ifdef OPENSSL_EXTRA
  15205. #ifndef NO_WOLFSSL_STUB
  15206. long wolfSSL_SSL_get_mode(WOLFSSL* ssl)
  15207. {
  15208. /* TODO: */
  15209. (void)ssl;
  15210. WOLFSSL_STUB("SSL_get_mode");
  15211. return 0;
  15212. }
  15213. #endif
  15214. #ifndef NO_WOLFSSL_STUB
  15215. long wolfSSL_CTX_get_mode(WOLFSSL_CTX* ctx)
  15216. {
  15217. /* TODO: */
  15218. (void)ctx;
  15219. WOLFSSL_STUB("SSL_CTX_get_mode");
  15220. return 0;
  15221. }
  15222. #endif
  15223. #ifndef NO_WOLFSSL_STUB
  15224. void wolfSSL_CTX_set_default_read_ahead(WOLFSSL_CTX* ctx, int m)
  15225. {
  15226. /* TODO: maybe? */
  15227. (void)ctx;
  15228. (void)m;
  15229. WOLFSSL_STUB("SSL_CTX_set_default_read_ahead");
  15230. }
  15231. #endif
  15232. /* Storing app session context id, this value is inherited by WOLFSSL
  15233. * objects created from WOLFSSL_CTX. Any session that is imported with a
  15234. * different session context id will be rejected.
  15235. *
  15236. * ctx structure to set context in
  15237. * sid_ctx value of context to set
  15238. * sid_ctx_len length of sid_ctx buffer
  15239. *
  15240. * Returns WOLFSSL_SUCCESS in success case and SSL_FAILURE when failing
  15241. */
  15242. int wolfSSL_CTX_set_session_id_context(WOLFSSL_CTX* ctx,
  15243. const unsigned char* sid_ctx,
  15244. unsigned int sid_ctx_len)
  15245. {
  15246. WOLFSSL_ENTER("SSL_CTX_set_session_id_context");
  15247. /* No application specific context needed for wolfSSL */
  15248. if (sid_ctx_len > ID_LEN || ctx == NULL || sid_ctx == NULL) {
  15249. return SSL_FAILURE;
  15250. }
  15251. XMEMCPY(ctx->sessionCtx, sid_ctx, sid_ctx_len);
  15252. ctx->sessionCtxSz = (byte)sid_ctx_len;
  15253. return WOLFSSL_SUCCESS;
  15254. }
  15255. /* Storing app session context id. Any session that is imported with a
  15256. * different session context id will be rejected.
  15257. *
  15258. * ssl structure to set context in
  15259. * id value of context to set
  15260. * len length of sid_ctx buffer
  15261. *
  15262. * Returns WOLFSSL_SUCCESS in success case and SSL_FAILURE when failing
  15263. */
  15264. int wolfSSL_set_session_id_context(WOLFSSL* ssl, const unsigned char* id,
  15265. unsigned int len)
  15266. {
  15267. WOLFSSL_ENTER("wolfSSL_set_session_id_context");
  15268. if (len > ID_LEN || ssl == NULL || id == NULL) {
  15269. return SSL_FAILURE;
  15270. }
  15271. XMEMCPY(ssl->sessionCtx, id, len);
  15272. ssl->sessionCtxSz = (byte)len;
  15273. return WOLFSSL_SUCCESS;
  15274. }
  15275. long wolfSSL_CTX_sess_get_cache_size(WOLFSSL_CTX* ctx)
  15276. {
  15277. (void)ctx;
  15278. #ifndef NO_SESSION_CACHE
  15279. return (long)(SESSIONS_PER_ROW * SESSION_ROWS);
  15280. #else
  15281. return 0;
  15282. #endif
  15283. }
  15284. /* returns the unsigned error value and increments the pointer into the
  15285. * error queue.
  15286. *
  15287. * file pointer to file name
  15288. * line gets set to line number of error when not NULL
  15289. */
  15290. unsigned long wolfSSL_ERR_get_error_line(const char** file, int* line)
  15291. {
  15292. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  15293. int ret = wc_PullErrorNode(file, NULL, line);
  15294. if (ret < 0) {
  15295. if (ret == BAD_STATE_E) return 0; /* no errors in queue */
  15296. WOLFSSL_MSG("Issue getting error node");
  15297. WOLFSSL_LEAVE("wolfSSL_ERR_get_error_line", ret);
  15298. ret = 0 - ret; /* return absolute value of error */
  15299. /* panic and try to clear out nodes */
  15300. wc_ClearErrorNodes();
  15301. }
  15302. return (unsigned long)ret;
  15303. #else
  15304. (void)file;
  15305. (void)line;
  15306. return 0;
  15307. #endif
  15308. }
  15309. #if (defined(DEBUG_WOLFSSL) || defined(OPENSSL_EXTRA)) && \
  15310. (!defined(_WIN32) && !defined(NO_ERROR_QUEUE))
  15311. static const char WOLFSSL_SYS_ACCEPT_T[] = "accept";
  15312. static const char WOLFSSL_SYS_BIND_T[] = "bind";
  15313. static const char WOLFSSL_SYS_CONNECT_T[] = "connect";
  15314. static const char WOLFSSL_SYS_FOPEN_T[] = "fopen";
  15315. static const char WOLFSSL_SYS_FREAD_T[] = "fread";
  15316. static const char WOLFSSL_SYS_GETADDRINFO_T[] = "getaddrinfo";
  15317. static const char WOLFSSL_SYS_GETSOCKOPT_T[] = "getsockopt";
  15318. static const char WOLFSSL_SYS_GETSOCKNAME_T[] = "getsockname";
  15319. static const char WOLFSSL_SYS_GETHOSTBYNAME_T[] = "gethostbyname";
  15320. static const char WOLFSSL_SYS_GETNAMEINFO_T[] = "getnameinfo";
  15321. static const char WOLFSSL_SYS_GETSERVBYNAME_T[] = "getservbyname";
  15322. static const char WOLFSSL_SYS_IOCTLSOCKET_T[] = "ioctlsocket";
  15323. static const char WOLFSSL_SYS_LISTEN_T[] = "listen";
  15324. static const char WOLFSSL_SYS_OPENDIR_T[] = "opendir";
  15325. static const char WOLFSSL_SYS_SETSOCKOPT_T[] = "setsockopt";
  15326. static const char WOLFSSL_SYS_SOCKET_T[] = "socket";
  15327. /* switch with int mapped to function name for compatibility */
  15328. static const char* wolfSSL_ERR_sys_func(int fun)
  15329. {
  15330. switch (fun) {
  15331. case WOLFSSL_SYS_ACCEPT: return WOLFSSL_SYS_ACCEPT_T;
  15332. case WOLFSSL_SYS_BIND: return WOLFSSL_SYS_BIND_T;
  15333. case WOLFSSL_SYS_CONNECT: return WOLFSSL_SYS_CONNECT_T;
  15334. case WOLFSSL_SYS_FOPEN: return WOLFSSL_SYS_FOPEN_T;
  15335. case WOLFSSL_SYS_FREAD: return WOLFSSL_SYS_FREAD_T;
  15336. case WOLFSSL_SYS_GETADDRINFO: return WOLFSSL_SYS_GETADDRINFO_T;
  15337. case WOLFSSL_SYS_GETSOCKOPT: return WOLFSSL_SYS_GETSOCKOPT_T;
  15338. case WOLFSSL_SYS_GETSOCKNAME: return WOLFSSL_SYS_GETSOCKNAME_T;
  15339. case WOLFSSL_SYS_GETHOSTBYNAME: return WOLFSSL_SYS_GETHOSTBYNAME_T;
  15340. case WOLFSSL_SYS_GETNAMEINFO: return WOLFSSL_SYS_GETNAMEINFO_T;
  15341. case WOLFSSL_SYS_GETSERVBYNAME: return WOLFSSL_SYS_GETSERVBYNAME_T;
  15342. case WOLFSSL_SYS_IOCTLSOCKET: return WOLFSSL_SYS_IOCTLSOCKET_T;
  15343. case WOLFSSL_SYS_LISTEN: return WOLFSSL_SYS_LISTEN_T;
  15344. case WOLFSSL_SYS_OPENDIR: return WOLFSSL_SYS_OPENDIR_T;
  15345. case WOLFSSL_SYS_SETSOCKOPT: return WOLFSSL_SYS_SETSOCKOPT_T;
  15346. case WOLFSSL_SYS_SOCKET: return WOLFSSL_SYS_SOCKET_T;
  15347. default:
  15348. return "NULL";
  15349. }
  15350. }
  15351. #endif /* DEBUG_WOLFSSL */
  15352. /* @TODO when having an error queue this needs to push to the queue */
  15353. void wolfSSL_ERR_put_error(int lib, int fun, int err, const char* file,
  15354. int line)
  15355. {
  15356. WOLFSSL_ENTER("wolfSSL_ERR_put_error");
  15357. #if !defined(DEBUG_WOLFSSL) && !defined(OPENSSL_EXTRA)
  15358. (void)fun;
  15359. (void)err;
  15360. (void)file;
  15361. (void)line;
  15362. WOLFSSL_MSG("Not compiled in debug mode");
  15363. #elif defined(OPENSSL_EXTRA) && \
  15364. (defined(_WIN32) || defined(NO_ERROR_QUEUE))
  15365. (void)fun;
  15366. (void)file;
  15367. (void)line;
  15368. WOLFSSL_ERROR(err);
  15369. #else
  15370. WOLFSSL_ERROR_LINE(err, wolfSSL_ERR_sys_func(fun), (unsigned int)line,
  15371. file, NULL);
  15372. #endif
  15373. (void)lib;
  15374. }
  15375. /* Similar to wolfSSL_ERR_get_error_line but takes in a flags argument for
  15376. * more flexibility.
  15377. *
  15378. * file output pointer to file where error happened
  15379. * line output to line number of error
  15380. * data output data. Is a string if ERR_TXT_STRING flag is used
  15381. * flags output format of output
  15382. *
  15383. * Returns the error value or 0 if no errors are in the queue
  15384. */
  15385. unsigned long wolfSSL_ERR_get_error_line_data(const char** file, int* line,
  15386. const char** data, int *flags)
  15387. {
  15388. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  15389. int ret;
  15390. WOLFSSL_ENTER("wolfSSL_ERR_get_error_line_data");
  15391. if (flags != NULL)
  15392. *flags = ERR_TXT_STRING; /* Clear the flags */
  15393. ret = wc_PullErrorNode(file, data, line);
  15394. if (ret < 0) {
  15395. if (ret == BAD_STATE_E) return 0; /* no errors in queue */
  15396. WOLFSSL_MSG("Error with pulling error node!");
  15397. WOLFSSL_LEAVE("wolfSSL_ERR_get_error_line_data", ret);
  15398. ret = 0 - ret; /* return absolute value of error */
  15399. /* panic and try to clear out nodes */
  15400. wc_ClearErrorNodes();
  15401. }
  15402. return (unsigned long)ret;
  15403. #else
  15404. WOLFSSL_ENTER("wolfSSL_ERR_get_error_line_data");
  15405. WOLFSSL_MSG("Error queue turned off, can not get error line");
  15406. (void)file;
  15407. (void)line;
  15408. (void)data;
  15409. (void)flags;
  15410. return 0;
  15411. #endif
  15412. }
  15413. #endif /* OPENSSL_EXTRA */
  15414. #if (defined(KEEP_PEER_CERT) && defined(SESSION_CERTS)) || \
  15415. (defined(OPENSSL_EXTRA) && defined(SESSION_CERTS))
  15416. /* Decode the X509 DER encoded certificate into a WOLFSSL_X509 object.
  15417. *
  15418. * x509 WOLFSSL_X509 object to decode into.
  15419. * in X509 DER data.
  15420. * len Length of the X509 DER data.
  15421. * returns the new certificate on success, otherwise NULL.
  15422. */
  15423. static int DecodeToX509(WOLFSSL_X509* x509, const byte* in, int len)
  15424. {
  15425. int ret;
  15426. #ifdef WOLFSSL_SMALL_STACK
  15427. DecodedCert* cert;
  15428. #else
  15429. DecodedCert cert[1];
  15430. #endif
  15431. if (x509 == NULL || in == NULL || len <= 0)
  15432. return BAD_FUNC_ARG;
  15433. #ifdef WOLFSSL_SMALL_STACK
  15434. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), NULL,
  15435. DYNAMIC_TYPE_DCERT);
  15436. if (cert == NULL)
  15437. return MEMORY_E;
  15438. #endif
  15439. /* Create a DecodedCert object and copy fields into WOLFSSL_X509 object.
  15440. */
  15441. InitDecodedCert(cert, (byte*)in, len, NULL);
  15442. if ((ret = ParseCertRelative(cert, CERT_TYPE, 0, NULL)) == 0) {
  15443. /* Check if x509 was not previously initialized by wolfSSL_X509_new() */
  15444. if (x509->dynamicMemory != TRUE)
  15445. InitX509(x509, 0, NULL);
  15446. ret = CopyDecodedToX509(x509, cert);
  15447. FreeDecodedCert(cert);
  15448. }
  15449. #ifdef WOLFSSL_SMALL_STACK
  15450. XFREE(cert, NULL, DYNAMIC_TYPE_DCERT);
  15451. #endif
  15452. return ret;
  15453. }
  15454. #endif /* (KEEP_PEER_CERT & SESSION_CERTS) || (OPENSSL_EXTRA & SESSION_CERTS) */
  15455. #ifdef KEEP_PEER_CERT
  15456. WOLFSSL_ABI
  15457. WOLFSSL_X509* wolfSSL_get_peer_certificate(WOLFSSL* ssl)
  15458. {
  15459. WOLFSSL_X509* ret = NULL;
  15460. WOLFSSL_ENTER("SSL_get_peer_certificate");
  15461. if (ssl != NULL) {
  15462. if (ssl->peerCert.issuer.sz)
  15463. ret = wolfSSL_X509_dup(&ssl->peerCert);
  15464. #ifdef SESSION_CERTS
  15465. else if (ssl->session->chain.count > 0) {
  15466. if (DecodeToX509(&ssl->peerCert, ssl->session->chain.certs[0].buffer,
  15467. ssl->session->chain.certs[0].length) == 0) {
  15468. ret = wolfSSL_X509_dup(&ssl->peerCert);
  15469. }
  15470. }
  15471. #endif
  15472. }
  15473. WOLFSSL_LEAVE("SSL_get_peer_certificate", ret != NULL);
  15474. return ret;
  15475. }
  15476. #endif /* KEEP_PEER_CERT */
  15477. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  15478. /* Return stack of peer certs.
  15479. * Caller does not need to free return. The stack is Free'd when WOLFSSL* ssl is.
  15480. */
  15481. WOLF_STACK_OF(WOLFSSL_X509)* wolfSSL_get_peer_cert_chain(const WOLFSSL* ssl)
  15482. {
  15483. WOLFSSL_ENTER("wolfSSL_get_peer_cert_chain");
  15484. if (ssl == NULL)
  15485. return NULL;
  15486. /* Try to populate if NULL or empty */
  15487. if (ssl->peerCertChain == NULL ||
  15488. wolfSSL_sk_X509_num(ssl->peerCertChain) == 0)
  15489. wolfSSL_set_peer_cert_chain((WOLFSSL*) ssl);
  15490. return ssl->peerCertChain;
  15491. }
  15492. #ifndef WOLFSSL_QT
  15493. static int x509GetIssuerFromCM(WOLFSSL_X509 **issuer, WOLFSSL_CERT_MANAGER* cm,
  15494. WOLFSSL_X509 *x);
  15495. /**
  15496. * Recursively push the issuer CA chain onto the stack
  15497. * @param cm The cert manager that is queried for the issuer
  15498. * @param x This cert's issuer will be queried in cm
  15499. * @param sk The issuer is pushed onto this stack
  15500. * @return WOLFSSL_SUCCESS on success
  15501. * WOLFSSL_FAILURE on no issuer found
  15502. * WOLFSSL_FATAL_ERROR on a fatal error
  15503. */
  15504. static int PushCAx509Chain(WOLFSSL_CERT_MANAGER* cm,
  15505. WOLFSSL_X509 *x, WOLFSSL_STACK* sk)
  15506. {
  15507. WOLFSSL_X509* issuer[MAX_CHAIN_DEPTH];
  15508. int i;
  15509. int push = 1;
  15510. int ret = WOLFSSL_SUCCESS;
  15511. for (i = 0; i < MAX_CHAIN_DEPTH; i++) {
  15512. if (x509GetIssuerFromCM(&issuer[i], cm, x)
  15513. != WOLFSSL_SUCCESS)
  15514. break;
  15515. x = issuer[i];
  15516. }
  15517. if (i == 0) /* No further chain found */
  15518. return WOLFSSL_FAILURE;
  15519. i--;
  15520. for (; i >= 0; i--) {
  15521. if (push) {
  15522. if (wolfSSL_sk_X509_push(sk, issuer[i]) != WOLFSSL_SUCCESS) {
  15523. wolfSSL_X509_free(issuer[i]);
  15524. ret = WOLFSSL_FATAL_ERROR;
  15525. push = 0; /* Free the rest of the unpushed certs */
  15526. }
  15527. }
  15528. else {
  15529. wolfSSL_X509_free(issuer[i]);
  15530. }
  15531. }
  15532. return ret;
  15533. }
  15534. #endif /* !WOLFSSL_QT */
  15535. /* Builds up and creates a stack of peer certificates for ssl->peerCertChain
  15536. based off of the ssl session chain. Attempts to place CA certificates
  15537. at the bottom of the stack. Returns stack of WOLFSSL_X509 certs or
  15538. NULL on failure */
  15539. WOLF_STACK_OF(WOLFSSL_X509)* wolfSSL_set_peer_cert_chain(WOLFSSL* ssl)
  15540. {
  15541. WOLFSSL_STACK* sk;
  15542. WOLFSSL_X509* x509;
  15543. int i = 0;
  15544. int ret;
  15545. WOLFSSL_ENTER("wolfSSL_set_peer_cert_chain");
  15546. if ((ssl == NULL) || (ssl->session->chain.count == 0))
  15547. return NULL;
  15548. sk = wolfSSL_sk_X509_new();
  15549. i = ssl->session->chain.count-1;
  15550. for (; i >= 0; i--) {
  15551. x509 = wolfSSL_X509_new();
  15552. if (x509 == NULL) {
  15553. WOLFSSL_MSG("Error Creating X509");
  15554. wolfSSL_sk_X509_pop_free(sk, NULL);
  15555. return NULL;
  15556. }
  15557. ret = DecodeToX509(x509, ssl->session->chain.certs[i].buffer,
  15558. ssl->session->chain.certs[i].length);
  15559. #if !defined(WOLFSSL_QT)
  15560. if (ret == 0 && i == ssl->session->chain.count-1) {
  15561. /* On the last element in the chain try to add the CA chain
  15562. * first if we have one for this cert */
  15563. if (PushCAx509Chain(SSL_CM(ssl), x509, sk)
  15564. == WOLFSSL_FATAL_ERROR) {
  15565. ret = WOLFSSL_FATAL_ERROR;
  15566. }
  15567. }
  15568. #endif
  15569. if (ret != 0 || wolfSSL_sk_X509_push(sk, x509) != WOLFSSL_SUCCESS) {
  15570. WOLFSSL_MSG("Error decoding cert");
  15571. wolfSSL_X509_free(x509);
  15572. wolfSSL_sk_X509_pop_free(sk, NULL);
  15573. return NULL;
  15574. }
  15575. }
  15576. if (sk == NULL) {
  15577. WOLFSSL_MSG("Null session chain");
  15578. }
  15579. #if defined(OPENSSL_ALL)
  15580. else if (ssl->options.side == WOLFSSL_SERVER_END) {
  15581. /* to be compliant with openssl
  15582. first element is kept as peer cert on server side.*/
  15583. wolfSSL_sk_X509_shift(sk);
  15584. }
  15585. #endif
  15586. if (ssl->peerCertChain != NULL)
  15587. wolfSSL_sk_X509_pop_free(ssl->peerCertChain, NULL);
  15588. /* This is Free'd when ssl is Free'd */
  15589. ssl->peerCertChain = sk;
  15590. return sk;
  15591. }
  15592. #endif /* SESSION_CERTS && OPENSSL_EXTRA */
  15593. #ifndef NO_CERTS
  15594. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  15595. /* create a generic wolfSSL stack node
  15596. * returns a new WOLFSSL_STACK structure on success */
  15597. WOLFSSL_STACK* wolfSSL_sk_new_node(void* heap)
  15598. {
  15599. WOLFSSL_STACK* sk;
  15600. WOLFSSL_ENTER("wolfSSL_sk_new_node");
  15601. sk = (WOLFSSL_STACK*)XMALLOC(sizeof(WOLFSSL_STACK), heap,
  15602. DYNAMIC_TYPE_OPENSSL);
  15603. if (sk != NULL) {
  15604. XMEMSET(sk, 0, sizeof(*sk));
  15605. sk->heap = heap;
  15606. }
  15607. return sk;
  15608. }
  15609. /* free's node but does not free internal data such as in->data.x509 */
  15610. void wolfSSL_sk_free_node(WOLFSSL_STACK* in)
  15611. {
  15612. if (in != NULL) {
  15613. XFREE(in, in->heap, DYNAMIC_TYPE_OPENSSL);
  15614. }
  15615. }
  15616. /* pushes node "in" onto "stack" and returns pointer to the new stack on success
  15617. * also handles internal "num" for number of nodes on stack
  15618. * return WOLFSSL_SUCCESS on success
  15619. */
  15620. int wolfSSL_sk_push_node(WOLFSSL_STACK** stack, WOLFSSL_STACK* in)
  15621. {
  15622. if (stack == NULL || in == NULL) {
  15623. return WOLFSSL_FAILURE;
  15624. }
  15625. if (*stack == NULL) {
  15626. in->num = 1;
  15627. *stack = in;
  15628. return WOLFSSL_SUCCESS;
  15629. }
  15630. in->num = (*stack)->num + 1;
  15631. in->next = *stack;
  15632. *stack = in;
  15633. return WOLFSSL_SUCCESS;
  15634. }
  15635. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15636. static WC_INLINE int compare_WOLFSSL_CIPHER(
  15637. WOLFSSL_CIPHER *a,
  15638. WOLFSSL_CIPHER *b)
  15639. {
  15640. if ((a->cipherSuite0 == b->cipherSuite0) &&
  15641. (a->cipherSuite == b->cipherSuite) &&
  15642. (a->ssl == b->ssl) &&
  15643. (XMEMCMP(a->description, b->description, sizeof a->description) == 0) &&
  15644. (a->offset == b->offset) &&
  15645. (a->in_stack == b->in_stack) &&
  15646. (a->bits == b->bits))
  15647. return 0;
  15648. else
  15649. return -1;
  15650. }
  15651. #endif /* OPENSSL_ALL || WOLFSSL_QT */
  15652. /* return 1 on success 0 on fail */
  15653. int wolfSSL_sk_push(WOLFSSL_STACK* sk, const void *data)
  15654. {
  15655. WOLFSSL_STACK* node;
  15656. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15657. WOLFSSL_CIPHER ciph;
  15658. #endif
  15659. WOLFSSL_ENTER("wolfSSL_sk_push");
  15660. if (!sk) {
  15661. return WOLFSSL_FAILURE;
  15662. }
  15663. /* Check if empty data */
  15664. switch (sk->type) {
  15665. case STACK_TYPE_CIPHER:
  15666. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15667. /* check if entire struct is zero */
  15668. XMEMSET(&ciph, 0, sizeof(WOLFSSL_CIPHER));
  15669. if (compare_WOLFSSL_CIPHER(&sk->data.cipher, &ciph) == 0) {
  15670. sk->data.cipher = *(WOLFSSL_CIPHER*)data;
  15671. sk->num = 1;
  15672. if (sk->hash_fn) {
  15673. sk->hash = sk->hash_fn(&sk->data.cipher);
  15674. }
  15675. return WOLFSSL_SUCCESS;
  15676. }
  15677. break;
  15678. #endif
  15679. case STACK_TYPE_X509:
  15680. case STACK_TYPE_GEN_NAME:
  15681. case STACK_TYPE_BIO:
  15682. case STACK_TYPE_OBJ:
  15683. case STACK_TYPE_STRING:
  15684. case STACK_TYPE_ACCESS_DESCRIPTION:
  15685. case STACK_TYPE_X509_EXT:
  15686. case STACK_TYPE_X509_REQ_ATTR:
  15687. case STACK_TYPE_NULL:
  15688. case STACK_TYPE_X509_NAME:
  15689. case STACK_TYPE_X509_NAME_ENTRY:
  15690. case STACK_TYPE_CONF_VALUE:
  15691. case STACK_TYPE_X509_INFO:
  15692. case STACK_TYPE_BY_DIR_entry:
  15693. case STACK_TYPE_BY_DIR_hash:
  15694. case STACK_TYPE_X509_OBJ:
  15695. case STACK_TYPE_DIST_POINT:
  15696. case STACK_TYPE_X509_CRL:
  15697. default:
  15698. /* All other types are pointers */
  15699. if (!sk->data.generic) {
  15700. sk->data.generic = (void*)data;
  15701. sk->num = 1;
  15702. #ifdef OPENSSL_ALL
  15703. if (sk->hash_fn) {
  15704. sk->hash = sk->hash_fn(sk->data.generic);
  15705. }
  15706. #endif
  15707. return WOLFSSL_SUCCESS;
  15708. }
  15709. break;
  15710. }
  15711. /* stack already has value(s) create a new node and add more */
  15712. node = wolfSSL_sk_new_node(sk->heap);
  15713. if (!node) {
  15714. WOLFSSL_MSG("Memory error");
  15715. return WOLFSSL_FAILURE;
  15716. }
  15717. /* push new x509 onto head of stack */
  15718. node->next = sk->next;
  15719. node->type = sk->type;
  15720. sk->next = node;
  15721. sk->num += 1;
  15722. #ifdef OPENSSL_ALL
  15723. node->comp = sk->comp;
  15724. node->hash_fn = sk->hash_fn;
  15725. node->hash = sk->hash;
  15726. sk->hash = 0;
  15727. #endif
  15728. switch (sk->type) {
  15729. case STACK_TYPE_CIPHER:
  15730. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  15731. node->data.cipher = sk->data.cipher;
  15732. sk->data.cipher = *(WOLFSSL_CIPHER*)data;
  15733. if (sk->hash_fn) {
  15734. sk->hash = sk->hash_fn(&sk->data.cipher);
  15735. }
  15736. break;
  15737. #endif
  15738. case STACK_TYPE_X509:
  15739. case STACK_TYPE_GEN_NAME:
  15740. case STACK_TYPE_BIO:
  15741. case STACK_TYPE_OBJ:
  15742. case STACK_TYPE_STRING:
  15743. case STACK_TYPE_ACCESS_DESCRIPTION:
  15744. case STACK_TYPE_X509_EXT:
  15745. case STACK_TYPE_X509_REQ_ATTR:
  15746. case STACK_TYPE_NULL:
  15747. case STACK_TYPE_X509_NAME:
  15748. case STACK_TYPE_X509_NAME_ENTRY:
  15749. case STACK_TYPE_CONF_VALUE:
  15750. case STACK_TYPE_X509_INFO:
  15751. case STACK_TYPE_BY_DIR_entry:
  15752. case STACK_TYPE_BY_DIR_hash:
  15753. case STACK_TYPE_X509_OBJ:
  15754. case STACK_TYPE_DIST_POINT:
  15755. case STACK_TYPE_X509_CRL:
  15756. default:
  15757. /* All other types are pointers */
  15758. node->data.generic = sk->data.generic;
  15759. sk->data.generic = (void*)data;
  15760. #ifdef OPENSSL_ALL
  15761. if (sk->hash_fn) {
  15762. sk->hash = sk->hash_fn(sk->data.generic);
  15763. }
  15764. #endif
  15765. break;
  15766. }
  15767. return WOLFSSL_SUCCESS;
  15768. }
  15769. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  15770. #ifdef OPENSSL_EXTRA
  15771. /* returns the node at index "idx", NULL if not found */
  15772. WOLFSSL_STACK* wolfSSL_sk_get_node(WOLFSSL_STACK* sk, int idx)
  15773. {
  15774. int i;
  15775. WOLFSSL_STACK* ret = NULL;
  15776. WOLFSSL_STACK* current;
  15777. current = sk;
  15778. for (i = 0; i <= idx && current != NULL; i++) {
  15779. if (i == idx) {
  15780. ret = current;
  15781. break;
  15782. }
  15783. current = current->next;
  15784. }
  15785. return ret;
  15786. }
  15787. #endif /* OPENSSL_EXTRA */
  15788. #ifdef OPENSSL_EXTRA
  15789. #if defined(OPENSSL_ALL)
  15790. void *wolfSSL_lh_retrieve(WOLFSSL_STACK *sk, void *data)
  15791. {
  15792. unsigned long hash;
  15793. WOLFSSL_ENTER("wolfSSL_lh_retrieve");
  15794. if (!sk || !data) {
  15795. WOLFSSL_MSG("Bad parameters");
  15796. return NULL;
  15797. }
  15798. if (!sk->hash_fn) {
  15799. WOLFSSL_MSG("No hash function defined");
  15800. return NULL;
  15801. }
  15802. hash = sk->hash_fn(data);
  15803. while (sk) {
  15804. /* Calc hash if not done so yet */
  15805. if (!sk->hash) {
  15806. switch (sk->type) {
  15807. case STACK_TYPE_CIPHER:
  15808. sk->hash = sk->hash_fn(&sk->data.cipher);
  15809. break;
  15810. case STACK_TYPE_X509:
  15811. case STACK_TYPE_GEN_NAME:
  15812. case STACK_TYPE_BIO:
  15813. case STACK_TYPE_OBJ:
  15814. case STACK_TYPE_STRING:
  15815. case STACK_TYPE_ACCESS_DESCRIPTION:
  15816. case STACK_TYPE_X509_EXT:
  15817. case STACK_TYPE_X509_REQ_ATTR:
  15818. case STACK_TYPE_NULL:
  15819. case STACK_TYPE_X509_NAME:
  15820. case STACK_TYPE_X509_NAME_ENTRY:
  15821. case STACK_TYPE_CONF_VALUE:
  15822. case STACK_TYPE_X509_INFO:
  15823. case STACK_TYPE_BY_DIR_entry:
  15824. case STACK_TYPE_BY_DIR_hash:
  15825. case STACK_TYPE_X509_OBJ:
  15826. case STACK_TYPE_DIST_POINT:
  15827. case STACK_TYPE_X509_CRL:
  15828. default:
  15829. sk->hash = sk->hash_fn(sk->data.generic);
  15830. break;
  15831. }
  15832. }
  15833. if (sk->hash == hash) {
  15834. switch (sk->type) {
  15835. case STACK_TYPE_CIPHER:
  15836. return &sk->data.cipher;
  15837. case STACK_TYPE_X509:
  15838. case STACK_TYPE_GEN_NAME:
  15839. case STACK_TYPE_BIO:
  15840. case STACK_TYPE_OBJ:
  15841. case STACK_TYPE_STRING:
  15842. case STACK_TYPE_ACCESS_DESCRIPTION:
  15843. case STACK_TYPE_X509_EXT:
  15844. case STACK_TYPE_X509_REQ_ATTR:
  15845. case STACK_TYPE_NULL:
  15846. case STACK_TYPE_X509_NAME:
  15847. case STACK_TYPE_X509_NAME_ENTRY:
  15848. case STACK_TYPE_CONF_VALUE:
  15849. case STACK_TYPE_X509_INFO:
  15850. case STACK_TYPE_BY_DIR_entry:
  15851. case STACK_TYPE_BY_DIR_hash:
  15852. case STACK_TYPE_X509_OBJ:
  15853. case STACK_TYPE_DIST_POINT:
  15854. case STACK_TYPE_X509_CRL:
  15855. default:
  15856. return sk->data.generic;
  15857. }
  15858. }
  15859. sk = sk->next;
  15860. }
  15861. return NULL;
  15862. }
  15863. #endif /* OPENSSL_ALL */
  15864. #endif /* OPENSSL_EXTRA */
  15865. /* OPENSSL_EXTRA is needed for wolfSSL_X509_d21 function
  15866. KEEP_OUR_CERT is to insure ability for returning ssl certificate */
  15867. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) && \
  15868. defined(KEEP_OUR_CERT)
  15869. WOLFSSL_X509* wolfSSL_get_certificate(WOLFSSL* ssl)
  15870. {
  15871. if (ssl == NULL) {
  15872. return NULL;
  15873. }
  15874. if (ssl->buffers.weOwnCert) {
  15875. if (ssl->ourCert == NULL) {
  15876. if (ssl->buffers.certificate == NULL) {
  15877. WOLFSSL_MSG("Certificate buffer not set!");
  15878. return NULL;
  15879. }
  15880. #ifndef WOLFSSL_X509_STORE_CERTS
  15881. ssl->ourCert = wolfSSL_X509_d2i(NULL,
  15882. ssl->buffers.certificate->buffer,
  15883. ssl->buffers.certificate->length);
  15884. #endif
  15885. }
  15886. return ssl->ourCert;
  15887. }
  15888. else { /* if cert not owned get parent ctx cert or return null */
  15889. if (ssl->ctx) {
  15890. if (ssl->ctx->ourCert == NULL) {
  15891. if (ssl->ctx->certificate == NULL) {
  15892. WOLFSSL_MSG("Ctx Certificate buffer not set!");
  15893. return NULL;
  15894. }
  15895. #ifndef WOLFSSL_X509_STORE_CERTS
  15896. ssl->ctx->ourCert = wolfSSL_X509_d2i(NULL,
  15897. ssl->ctx->certificate->buffer,
  15898. ssl->ctx->certificate->length);
  15899. #endif
  15900. ssl->ctx->ownOurCert = 1;
  15901. }
  15902. return ssl->ctx->ourCert;
  15903. }
  15904. }
  15905. return NULL;
  15906. }
  15907. WOLFSSL_X509* wolfSSL_CTX_get0_certificate(WOLFSSL_CTX* ctx)
  15908. {
  15909. if (ctx) {
  15910. if (ctx->ourCert == NULL) {
  15911. if (ctx->certificate == NULL) {
  15912. WOLFSSL_MSG("Ctx Certificate buffer not set!");
  15913. return NULL;
  15914. }
  15915. #ifndef WOLFSSL_X509_STORE_CERTS
  15916. ctx->ourCert = wolfSSL_X509_d2i(NULL,
  15917. ctx->certificate->buffer,
  15918. ctx->certificate->length);
  15919. #endif
  15920. ctx->ownOurCert = 1;
  15921. }
  15922. return ctx->ourCert;
  15923. }
  15924. return NULL;
  15925. }
  15926. #endif /* OPENSSL_EXTRA && KEEP_OUR_CERT */
  15927. #endif /* NO_CERTS */
  15928. #if !defined(NO_ASN) && (defined(OPENSSL_EXTRA) || \
  15929. defined(OPENSSL_EXTRA_X509_SMALL))
  15930. void wolfSSL_ASN1_OBJECT_free(WOLFSSL_ASN1_OBJECT* obj)
  15931. {
  15932. if (obj == NULL) {
  15933. return;
  15934. }
  15935. if ((obj->obj != NULL) && ((obj->dynamic & WOLFSSL_ASN1_DYNAMIC_DATA) != 0)) {
  15936. #ifdef WOLFSSL_DEBUG_OPENSSL
  15937. WOLFSSL_MSG("Freeing ASN1 data");
  15938. #endif
  15939. XFREE((void*)obj->obj, obj->heap, DYNAMIC_TYPE_ASN1);
  15940. obj->obj = NULL;
  15941. }
  15942. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  15943. if (obj->pathlen != NULL) {
  15944. wolfSSL_ASN1_INTEGER_free(obj->pathlen);
  15945. obj->pathlen = NULL;
  15946. }
  15947. #endif
  15948. if ((obj->dynamic & WOLFSSL_ASN1_DYNAMIC) != 0) {
  15949. #ifdef WOLFSSL_DEBUG_OPENSSL
  15950. WOLFSSL_MSG("Freeing ASN1 OBJECT");
  15951. #endif
  15952. XFREE(obj, NULL, DYNAMIC_TYPE_ASN1);
  15953. }
  15954. }
  15955. WOLFSSL_ASN1_OBJECT* wolfSSL_ASN1_OBJECT_new(void)
  15956. {
  15957. WOLFSSL_ASN1_OBJECT* obj;
  15958. obj = (WOLFSSL_ASN1_OBJECT*)XMALLOC(sizeof(WOLFSSL_ASN1_OBJECT), NULL,
  15959. DYNAMIC_TYPE_ASN1);
  15960. if (obj == NULL) {
  15961. return NULL;
  15962. }
  15963. XMEMSET(obj, 0, sizeof(WOLFSSL_ASN1_OBJECT));
  15964. obj->d.ia5 = &(obj->d.ia5_internal);
  15965. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  15966. obj->d.iPAddress = &(obj->d.iPAddress_internal);
  15967. #endif
  15968. obj->dynamic |= WOLFSSL_ASN1_DYNAMIC;
  15969. return obj;
  15970. }
  15971. WOLFSSL_ASN1_OBJECT* wolfSSL_ASN1_OBJECT_dup(WOLFSSL_ASN1_OBJECT* obj)
  15972. {
  15973. WOLFSSL_ASN1_OBJECT* dupl = NULL;
  15974. WOLFSSL_ENTER("wolfSSL_ASN1_OBJECT_dup");
  15975. if (!obj) {
  15976. WOLFSSL_MSG("Bad parameter");
  15977. return NULL;
  15978. }
  15979. dupl = wolfSSL_ASN1_OBJECT_new();
  15980. if (!dupl) {
  15981. WOLFSSL_MSG("wolfSSL_ASN1_OBJECT_new error");
  15982. return NULL;
  15983. }
  15984. /* Copy data */
  15985. XMEMCPY(dupl->sName, obj->sName, WOLFSSL_MAX_SNAME);
  15986. dupl->type = obj->type;
  15987. dupl->grp = obj->grp;
  15988. dupl->nid = obj->nid;
  15989. dupl->objSz = obj->objSz;
  15990. if (obj->obj) {
  15991. dupl->obj = (const unsigned char*)XMALLOC(
  15992. obj->objSz, NULL, DYNAMIC_TYPE_ASN1);
  15993. if (!dupl->obj) {
  15994. WOLFSSL_MSG("ASN1 obj malloc error");
  15995. wolfSSL_ASN1_OBJECT_free(dupl);
  15996. return NULL;
  15997. }
  15998. XMEMCPY((byte*)dupl->obj, obj->obj, obj->objSz);
  15999. dupl->dynamic |= WOLFSSL_ASN1_DYNAMIC_DATA;
  16000. }
  16001. return dupl;
  16002. }
  16003. #endif /* !NO_ASN && (OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL) */
  16004. #ifndef NO_ASN
  16005. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  16006. /* Creates and returns a new WOLFSSL_CIPHER stack. */
  16007. WOLFSSL_STACK* wolfSSL_sk_new_asn1_obj(void)
  16008. {
  16009. WOLFSSL_STACK* sk;
  16010. WOLFSSL_ENTER("wolfSSL_sk_new_asn1_obj");
  16011. sk = wolfSSL_sk_new_null();
  16012. if (sk == NULL)
  16013. return NULL;
  16014. sk->type = STACK_TYPE_OBJ;
  16015. return sk;
  16016. }
  16017. /* return 1 on success 0 on fail */
  16018. int wolfSSL_sk_ASN1_OBJECT_push(WOLF_STACK_OF(WOLFSSL_ASN1_OBJECT)* sk,
  16019. WOLFSSL_ASN1_OBJECT* obj)
  16020. {
  16021. WOLFSSL_ENTER("wolfSSL_sk_ASN1_OBJECT_push");
  16022. if (sk == NULL || obj == NULL) {
  16023. return WOLFSSL_FAILURE;
  16024. }
  16025. return wolfSSL_sk_push(sk, obj);
  16026. }
  16027. WOLFSSL_ASN1_OBJECT* wolfSSL_sk_ASN1_OBJECT_pop(
  16028. WOLF_STACK_OF(WOLFSSL_ASN1_OBJECT)* sk)
  16029. {
  16030. WOLFSSL_STACK* node;
  16031. WOLFSSL_ASN1_OBJECT* obj;
  16032. if (sk == NULL) {
  16033. return NULL;
  16034. }
  16035. node = sk->next;
  16036. obj = sk->data.obj;
  16037. if (node != NULL) { /* update sk and remove node from stack */
  16038. sk->data.obj = node->data.obj;
  16039. sk->next = node->next;
  16040. XFREE(node, NULL, DYNAMIC_TYPE_ASN1);
  16041. }
  16042. else { /* last obj in stack */
  16043. sk->data.obj = NULL;
  16044. }
  16045. if (sk->num > 0) {
  16046. sk->num -= 1;
  16047. }
  16048. return obj;
  16049. }
  16050. /* Free the structure for ASN1_OBJECT stack
  16051. *
  16052. * sk stack to free nodes in
  16053. */
  16054. void wolfSSL_sk_ASN1_OBJECT_free(WOLF_STACK_OF(WOLFSSL_ASN1_OBJECT)* sk)
  16055. {
  16056. wolfSSL_sk_free(sk);
  16057. }
  16058. /* Free's all nodes in ASN1_OBJECT stack.
  16059. * This is different then wolfSSL_ASN1_OBJECT_free in that it allows for
  16060. * choosing the function to use when freeing an ASN1_OBJECT stack.
  16061. *
  16062. * sk stack to free nodes in
  16063. * f X509 free function
  16064. */
  16065. void wolfSSL_sk_ASN1_OBJECT_pop_free(WOLF_STACK_OF(WOLFSSL_ASN1_OBJECT)* sk,
  16066. void (*f) (WOLFSSL_ASN1_OBJECT*))
  16067. {
  16068. WOLFSSL_ENTER("wolfSSL_sk_ASN1_OBJECT_pop_free");
  16069. wolfSSL_sk_pop_free(sk, (wolfSSL_sk_freefunc)f);
  16070. }
  16071. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  16072. #endif /* !NO_ASN */
  16073. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  16074. #ifndef NO_ASN
  16075. int wolfSSL_ASN1_STRING_to_UTF8(unsigned char **out, WOLFSSL_ASN1_STRING *in)
  16076. {
  16077. /*
  16078. ASN1_STRING_to_UTF8() converts the string in to UTF8 format,
  16079. the converted data is allocated in a buffer in *out.
  16080. The length of out is returned or a negative error code.
  16081. The buffer *out should be free using OPENSSL_free().
  16082. */
  16083. unsigned char* buf;
  16084. unsigned char* inPtr;
  16085. int inLen;
  16086. if (!out || !in) {
  16087. return -1;
  16088. }
  16089. inPtr = wolfSSL_ASN1_STRING_data(in);
  16090. inLen = wolfSSL_ASN1_STRING_length(in);
  16091. if (!inPtr || inLen < 0) {
  16092. return -1;
  16093. }
  16094. buf = (unsigned char*)XMALLOC(inLen + 1, NULL, DYNAMIC_TYPE_OPENSSL);
  16095. if (!buf) {
  16096. return -1;
  16097. }
  16098. XMEMCPY(buf, inPtr, inLen + 1);
  16099. *out = buf;
  16100. return inLen;
  16101. }
  16102. #endif /* !NO_ASN */
  16103. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  16104. #if defined(OPENSSL_EXTRA)
  16105. #ifndef NO_ASN
  16106. int wolfSSL_ASN1_UNIVERSALSTRING_to_string(WOLFSSL_ASN1_STRING *s)
  16107. {
  16108. char *idx;
  16109. char *copy;
  16110. WOLFSSL_ENTER("wolfSSL_ASN1_UNIVERSALSTRING_to_string");
  16111. if (!s) {
  16112. WOLFSSL_MSG("Bad parameter");
  16113. return WOLFSSL_FAILURE;
  16114. }
  16115. if (s->type != V_ASN1_UNIVERSALSTRING) {
  16116. WOLFSSL_MSG("Input is not a universal string");
  16117. return WOLFSSL_FAILURE;
  16118. }
  16119. if ((s->length % 4) != 0) {
  16120. WOLFSSL_MSG("Input string must be divisible by 4");
  16121. return WOLFSSL_FAILURE;
  16122. }
  16123. for (idx = s->data; idx < s->data + s->length; idx += 4)
  16124. if ((idx[0] != '\0') || (idx[1] != '\0') || (idx[2] != '\0'))
  16125. break;
  16126. if (idx != s->data + s->length) {
  16127. WOLFSSL_MSG("Wrong string format");
  16128. return WOLFSSL_FAILURE;
  16129. }
  16130. for (copy = idx = s->data; idx < s->data + s->length; idx += 4)
  16131. *copy++ = idx[3];
  16132. *copy = '\0';
  16133. s->length /= 4;
  16134. s->type = V_ASN1_PRINTABLESTRING;
  16135. return WOLFSSL_SUCCESS;
  16136. }
  16137. /* Returns string representation of ASN1_STRING */
  16138. char* wolfSSL_i2s_ASN1_STRING(WOLFSSL_v3_ext_method *method,
  16139. const WOLFSSL_ASN1_STRING *s)
  16140. {
  16141. int i;
  16142. int tmpSz = 100;
  16143. int valSz = 5;
  16144. char* tmp;
  16145. char val[5];
  16146. unsigned char* str;
  16147. WOLFSSL_ENTER("wolfSSL_i2s_ASN1_STRING");
  16148. (void)method;
  16149. if(s == NULL || s->data == NULL) {
  16150. WOLFSSL_MSG("Bad Function Argument");
  16151. return NULL;
  16152. }
  16153. str = (unsigned char*)XMALLOC(s->length, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  16154. if (str == NULL) {
  16155. WOLFSSL_MSG("Memory Error");
  16156. return NULL;
  16157. }
  16158. XMEMCPY(str, (unsigned char*)s->data, s->length);
  16159. tmp = (char*)XMALLOC(tmpSz, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  16160. if (tmp == NULL) {
  16161. WOLFSSL_MSG("Memory Error");
  16162. XFREE(str, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  16163. return NULL;
  16164. }
  16165. XMEMSET(tmp, 0, tmpSz);
  16166. for (i = 0; i < tmpSz && i < (s->length - 1); i++) {
  16167. XSNPRINTF(val, valSz - 1, "%02X:", str[i]);
  16168. XSTRNCAT(tmp, val, valSz);
  16169. }
  16170. XSNPRINTF(val, valSz - 1, "%02X", str[i]);
  16171. XSTRNCAT(tmp, val, valSz);
  16172. XFREE(str, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  16173. return tmp;
  16174. }
  16175. #endif /* NO_ASN */
  16176. #endif /* OPENSSL_EXTRA */
  16177. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  16178. void wolfSSL_set_connect_state(WOLFSSL* ssl)
  16179. {
  16180. WOLFSSL_ENTER("wolfSSL_set_connect_state");
  16181. if (ssl == NULL) {
  16182. WOLFSSL_MSG("WOLFSSL struct pointer passed in was null");
  16183. return;
  16184. }
  16185. #ifndef NO_DH
  16186. /* client creates its own DH parameters on handshake */
  16187. if (ssl->buffers.serverDH_P.buffer && ssl->buffers.weOwnDH) {
  16188. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  16189. DYNAMIC_TYPE_PUBLIC_KEY);
  16190. }
  16191. ssl->buffers.serverDH_P.buffer = NULL;
  16192. if (ssl->buffers.serverDH_G.buffer && ssl->buffers.weOwnDH) {
  16193. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  16194. DYNAMIC_TYPE_PUBLIC_KEY);
  16195. }
  16196. ssl->buffers.serverDH_G.buffer = NULL;
  16197. #endif
  16198. if (InitSSL_Side(ssl, WOLFSSL_CLIENT_END) != WOLFSSL_SUCCESS) {
  16199. WOLFSSL_MSG("Error initializing client side");
  16200. }
  16201. }
  16202. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  16203. int wolfSSL_get_shutdown(const WOLFSSL* ssl)
  16204. {
  16205. int isShutdown = 0;
  16206. WOLFSSL_ENTER("wolfSSL_get_shutdown");
  16207. if (ssl) {
  16208. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  16209. if (ssl->options.handShakeState == NULL_STATE) {
  16210. /* The SSL object was possibly cleared with wolfSSL_clear after
  16211. * a successful shutdown. Simulate a response for a full
  16212. * bidirectional shutdown. */
  16213. isShutdown = WOLFSSL_SENT_SHUTDOWN | WOLFSSL_RECEIVED_SHUTDOWN;
  16214. }
  16215. else
  16216. #endif
  16217. {
  16218. /* in OpenSSL, WOLFSSL_SENT_SHUTDOWN = 1, when closeNotifySent *
  16219. * WOLFSSL_RECEIVED_SHUTDOWN = 2, from close notify or fatal err */
  16220. if (ssl->options.sentNotify)
  16221. isShutdown |= WOLFSSL_SENT_SHUTDOWN;
  16222. if (ssl->options.closeNotify||ssl->options.connReset)
  16223. isShutdown |= WOLFSSL_RECEIVED_SHUTDOWN;
  16224. }
  16225. }
  16226. return isShutdown;
  16227. }
  16228. int wolfSSL_session_reused(WOLFSSL* ssl)
  16229. {
  16230. int resuming = 0;
  16231. WOLFSSL_ENTER("wolfSSL_session_reused");
  16232. if (ssl)
  16233. resuming = ssl->options.resuming;
  16234. WOLFSSL_LEAVE("wolfSSL_session_reused", resuming);
  16235. return resuming;
  16236. }
  16237. /* return a new malloc'd session with default settings on success */
  16238. WOLFSSL_SESSION* wolfSSL_NewSession(void* heap)
  16239. {
  16240. WOLFSSL_SESSION* ret = NULL;
  16241. ret = (WOLFSSL_SESSION*)XMALLOC(sizeof(WOLFSSL_SESSION), heap,
  16242. DYNAMIC_TYPE_SESSION);
  16243. if (ret != NULL) {
  16244. XMEMSET(ret, 0, sizeof(WOLFSSL_SESSION));
  16245. #ifndef SINGLE_THREADED
  16246. if (wc_InitMutex(&ret->refMutex) != 0) {
  16247. WOLFSSL_MSG("Error setting up session reference mutex");
  16248. XFREE(ret, ret->heap, DYNAMIC_TYPE_SESSION);
  16249. return NULL;
  16250. }
  16251. #endif
  16252. ret->refCount = 1;
  16253. #ifndef NO_SESSION_CACHE
  16254. ret->cacheRow = INVALID_SESSION_ROW; /* not in cache */
  16255. #endif
  16256. ret->type = WOLFSSL_SESSION_TYPE_HEAP;
  16257. ret->heap = heap;
  16258. ret->masterSecret = ret->_masterSecret;
  16259. #ifndef NO_CLIENT_CACHE
  16260. ret->serverID = ret->_serverID;
  16261. #endif
  16262. #ifdef OPENSSL_EXTRA
  16263. ret->sessionCtx = ret->_sessionCtx;
  16264. #endif
  16265. #ifdef HAVE_SESSION_TICKET
  16266. ret->ticket = ret->_staticTicket;
  16267. #endif
  16268. #ifdef HAVE_STUNNEL
  16269. /* stunnel has this funny mechanism of storing the "is_authenticated"
  16270. * session info in the session ex data. This is basically their
  16271. * default so let's just hard code it. */
  16272. if (wolfSSL_SESSION_set_ex_data(ret, 0, (void *)(-1))
  16273. != WOLFSSL_SUCCESS) {
  16274. WOLFSSL_MSG("Error setting up ex data for stunnel");
  16275. XFREE(ret, NULL, DYNAMIC_TYPE_OPENSSL);
  16276. return NULL;
  16277. }
  16278. #endif
  16279. #ifdef HAVE_EX_DATA
  16280. ret->ownExData = 1;
  16281. #endif
  16282. }
  16283. return ret;
  16284. }
  16285. WOLFSSL_SESSION* wolfSSL_SESSION_new_ex(void* heap)
  16286. {
  16287. return wolfSSL_NewSession(heap);
  16288. }
  16289. WOLFSSL_SESSION* wolfSSL_SESSION_new(void)
  16290. {
  16291. return wolfSSL_SESSION_new_ex(NULL);
  16292. }
  16293. /* add one to session reference count
  16294. * return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on error */
  16295. int wolfSSL_SESSION_up_ref(WOLFSSL_SESSION* session)
  16296. {
  16297. session = ClientSessionToSession(session);
  16298. if (session == NULL || session->type != WOLFSSL_SESSION_TYPE_HEAP)
  16299. return WOLFSSL_FAILURE;
  16300. #ifndef SINGLE_THREADED
  16301. if (wc_LockMutex(&session->refMutex) != 0) {
  16302. WOLFSSL_MSG("Failed to lock session mutex");
  16303. return WOLFSSL_FAILURE;
  16304. }
  16305. #endif
  16306. session->refCount++;
  16307. #ifndef SINGLE_THREADED
  16308. wc_UnLockMutex(&session->refMutex);
  16309. #endif
  16310. return WOLFSSL_SUCCESS;
  16311. }
  16312. /**
  16313. * Deep copy the contents from input to output.
  16314. * @param input The source of the copy.
  16315. * @param output The destination of the copy.
  16316. * @param avoidSysCalls If true, then system calls will be avoided or an error
  16317. * will be returned if it is not possible to proceed
  16318. * without a system call. This is useful for fetching
  16319. * sessions from cache. When a cache row is locked, we
  16320. * don't want to block other threads with long running
  16321. * system calls.
  16322. * @return WOLFSSL_SUCCESS on success
  16323. * WOLFSSL_FAILURE on failure
  16324. */
  16325. int wolfSSL_DupSession(const WOLFSSL_SESSION* input, WOLFSSL_SESSION* output,
  16326. int avoidSysCalls)
  16327. {
  16328. #ifdef HAVE_SESSION_TICKET
  16329. int ticLenAlloc = 0;
  16330. byte *ticBuff = NULL;
  16331. #endif
  16332. const size_t copyOffset = OFFSETOF(WOLFSSL_SESSION, heap) + sizeof(input->heap);
  16333. int ret = WOLFSSL_SUCCESS;
  16334. (void)avoidSysCalls;
  16335. input = ClientSessionToSession(input);
  16336. output = ClientSessionToSession(output);
  16337. if (input == NULL || output == NULL || input == output) {
  16338. WOLFSSL_MSG("input or output are null or same");
  16339. return WOLFSSL_FAILURE;
  16340. }
  16341. #ifdef HAVE_SESSION_TICKET
  16342. if (output->ticket != output->_staticTicket) {
  16343. ticBuff = output->ticket;
  16344. ticLenAlloc = output->ticketLenAlloc;
  16345. }
  16346. #endif
  16347. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  16348. if (output->peer != NULL) {
  16349. if (avoidSysCalls) {
  16350. WOLFSSL_MSG("Can't free cert when avoiding syscalls");
  16351. return WOLFSSL_FAILURE;
  16352. }
  16353. wolfSSL_X509_free(output->peer);
  16354. output->peer = NULL;
  16355. }
  16356. #endif
  16357. XMEMCPY((byte*)output + copyOffset, (byte*)input + copyOffset,
  16358. sizeof(WOLFSSL_SESSION) - copyOffset);
  16359. /* Set sane values for copy */
  16360. if (output->type != WOLFSSL_SESSION_TYPE_CACHE)
  16361. #ifndef NO_SESSION_CACHE
  16362. output->cacheRow = INVALID_SESSION_ROW;
  16363. #endif
  16364. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  16365. if (input->peer != NULL && input->peer->dynamicMemory) {
  16366. if (wolfSSL_X509_up_ref(input->peer) != WOLFSSL_SUCCESS) {
  16367. WOLFSSL_MSG("Can't increase peer cert ref count");
  16368. output->peer = NULL;
  16369. }
  16370. }
  16371. else if (!avoidSysCalls)
  16372. output->peer = wolfSSL_X509_dup(input->peer);
  16373. else
  16374. /* output->peer is not that important to copy */
  16375. output->peer = NULL;
  16376. #endif
  16377. output->masterSecret = output->_masterSecret;
  16378. #ifndef NO_CLIENT_CACHE
  16379. output->serverID = output->_serverID;
  16380. #endif
  16381. #ifdef OPENSSL_EXTRA
  16382. output->sessionCtx = output->_sessionCtx;
  16383. #endif
  16384. #ifdef HAVE_SESSION_TICKET
  16385. if (input->ticketLen > SESSION_TICKET_LEN) {
  16386. /* Need dynamic buffer */
  16387. if (ticBuff == NULL || ticLenAlloc < input->ticketLen) {
  16388. /* allocate new one */
  16389. byte* tmp;
  16390. if (!avoidSysCalls) {
  16391. WOLFSSL_MSG("Failed to allocate memory for ticket when avoiding"
  16392. " syscalls");
  16393. output->ticket = ticBuff;
  16394. output->ticketLenAlloc = (word16) ticLenAlloc;
  16395. output->ticketLen = 0;
  16396. ret = WOLFSSL_FAILURE;
  16397. }
  16398. else {
  16399. tmp = (byte*)XREALLOC(ticBuff, input->ticketLen,
  16400. output->heap, DYNAMIC_TYPE_SESSION_TICK);
  16401. if (tmp == NULL) {
  16402. WOLFSSL_MSG("Failed to allocate memory for ticket");
  16403. XFREE(ticBuff, output->heap, DYNAMIC_TYPE_SESSION_TICK);
  16404. output->ticket = NULL;
  16405. output->ticketLen = 0;
  16406. output->ticketLenAlloc = 0;
  16407. ret = WOLFSSL_FAILURE;
  16408. }
  16409. else {
  16410. ticBuff = tmp;
  16411. ticLenAlloc = input->ticketLen;
  16412. }
  16413. }
  16414. }
  16415. if (ticBuff != NULL && ret == WOLFSSL_SUCCESS) {
  16416. XMEMCPY(ticBuff, input->ticket, input->ticketLen);
  16417. output->ticket = ticBuff;
  16418. output->ticketLenAlloc = (word16) ticLenAlloc;
  16419. }
  16420. }
  16421. else {
  16422. /* Default ticket to non dynamic */
  16423. if (avoidSysCalls) {
  16424. /* Try to use ticBuf if available. Caller can later move it to
  16425. * the static buffer. */
  16426. if (ticBuff != NULL) {
  16427. if (ticLenAlloc >= input->ticketLen) {
  16428. output->ticket = output->_staticTicket;
  16429. output->ticketLenAlloc = 0;
  16430. }
  16431. else {
  16432. WOLFSSL_MSG("ticket dynamic buffer too small but we are "
  16433. "avoiding system calls");
  16434. ret = WOLFSSL_FAILURE;
  16435. output->ticket = ticBuff;
  16436. output->ticketLenAlloc = (word16) ticLenAlloc;
  16437. output->ticketLen = 0;
  16438. }
  16439. }
  16440. else {
  16441. output->ticket = output->_staticTicket;
  16442. output->ticketLenAlloc = 0;
  16443. }
  16444. }
  16445. else {
  16446. if (ticBuff != NULL)
  16447. XFREE(ticBuff, output->heap, DYNAMIC_TYPE_SESSION_TICK);
  16448. output->ticket = output->_staticTicket;
  16449. output->ticketLenAlloc = 0;
  16450. }
  16451. if (input->ticketLenAlloc > 0 && ret == WOLFSSL_SUCCESS) {
  16452. /* Shouldn't happen as session should have placed this in
  16453. * the static buffer */
  16454. XMEMCPY(output->ticket, input->ticket,
  16455. input->ticketLen);
  16456. }
  16457. }
  16458. ticBuff = NULL;
  16459. #endif /* HAVE_SESSION_TICKET */
  16460. return ret;
  16461. }
  16462. WOLFSSL_SESSION* wolfSSL_SESSION_dup(WOLFSSL_SESSION* session)
  16463. {
  16464. #ifdef HAVE_EXT_CACHE
  16465. WOLFSSL_SESSION* copy;
  16466. WOLFSSL_ENTER("wolfSSL_SESSION_dup");
  16467. session = ClientSessionToSession(session);
  16468. if (session == NULL)
  16469. return NULL;
  16470. #ifdef HAVE_SESSION_TICKET
  16471. if (session->ticketLenAlloc > 0 && !session->ticket) {
  16472. WOLFSSL_MSG("Session dynamic flag is set but ticket pointer is null");
  16473. return NULL;
  16474. }
  16475. #endif
  16476. copy = wolfSSL_NewSession(session->heap);
  16477. if (copy != NULL &&
  16478. wolfSSL_DupSession(session, copy, 0) != WOLFSSL_SUCCESS) {
  16479. wolfSSL_FreeSession(NULL, copy);
  16480. copy = NULL;
  16481. }
  16482. return copy;
  16483. #else
  16484. WOLFSSL_MSG("wolfSSL_SESSION_dup feature not compiled in");
  16485. (void)session;
  16486. return NULL;
  16487. #endif /* HAVE_EXT_CACHE */
  16488. }
  16489. void wolfSSL_FreeSession(WOLFSSL_CTX* ctx, WOLFSSL_SESSION* session)
  16490. {
  16491. session = ClientSessionToSession(session);
  16492. if (session == NULL)
  16493. return;
  16494. (void)ctx;
  16495. /* refCount will always be 1 or more if created externally.
  16496. * Internal cache sessions don't initialize a refMutex. */
  16497. if (session->refCount > 0) {
  16498. #ifndef SINGLE_THREADED
  16499. if (wc_LockMutex(&session->refMutex) != 0) {
  16500. WOLFSSL_MSG("Failed to lock session mutex");
  16501. return;
  16502. }
  16503. #endif
  16504. if (session->refCount > 1) {
  16505. session->refCount--;
  16506. #ifndef SINGLE_THREADED
  16507. wc_UnLockMutex(&session->refMutex);
  16508. #endif
  16509. return;
  16510. }
  16511. #ifndef SINGLE_THREADED
  16512. wc_UnLockMutex(&session->refMutex);
  16513. wc_FreeMutex(&session->refMutex);
  16514. #endif
  16515. }
  16516. #if defined(HAVE_EXT_CACHE) || defined(HAVE_EX_DATA)
  16517. if (ctx != NULL && ctx->rem_sess_cb
  16518. #ifdef HAVE_EX_DATA
  16519. && session->ownExData /* This will be true if we are not using the
  16520. * internal cache so it will get called for
  16521. * externally cached sessions as well. */
  16522. #endif
  16523. ) {
  16524. ctx->rem_sess_cb(ctx, session);
  16525. }
  16526. #endif
  16527. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  16528. wolfSSL_CRYPTO_cleanup_ex_data(&session->ex_data);
  16529. #endif
  16530. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  16531. if (session->peer) {
  16532. wolfSSL_X509_free(session->peer);
  16533. session->peer = NULL;
  16534. }
  16535. #endif
  16536. #ifdef HAVE_SESSION_TICKET
  16537. if (session->ticketLenAlloc > 0) {
  16538. XFREE(session->ticket, session->heap, DYNAMIC_TYPE_SESSION_TICK);
  16539. }
  16540. #endif
  16541. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  16542. wolfSSL_CRYPTO_cleanup_ex_data(&session->ex_data);
  16543. #endif
  16544. if (session->type == WOLFSSL_SESSION_TYPE_HEAP) {
  16545. XFREE(session, session->heap, DYNAMIC_TYPE_SESSION);
  16546. }
  16547. }
  16548. void wolfSSL_SESSION_free(WOLFSSL_SESSION* session)
  16549. {
  16550. session = ClientSessionToSession(session);
  16551. wolfSSL_FreeSession(NULL, session);
  16552. }
  16553. #ifndef NO_SESSION_CACHE
  16554. int wolfSSL_CTX_add_session(WOLFSSL_CTX* ctx, WOLFSSL_SESSION* session)
  16555. {
  16556. int error = 0;
  16557. const byte* id = NULL;
  16558. byte idSz = 0;
  16559. WOLFSSL_ENTER("wolfSSL_CTX_add_session");
  16560. session = ClientSessionToSession(session);
  16561. if (session == NULL)
  16562. return WOLFSSL_FAILURE;
  16563. /* Session cache is global */
  16564. (void)ctx;
  16565. id = session->sessionID;
  16566. idSz = session->sessionIDSz;
  16567. if (session->haveAltSessionID) {
  16568. id = session->altSessionID;
  16569. idSz = ID_LEN;
  16570. }
  16571. error = AddSessionToCache(ctx, session, id, idSz,
  16572. NULL, session->side,
  16573. #ifdef HAVE_SESSION_TICKET
  16574. session->ticketLen > 0,
  16575. #else
  16576. 0,
  16577. #endif
  16578. NULL);
  16579. return error == 0 ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  16580. }
  16581. #endif
  16582. #if defined(OPENSSL_EXTRA) || defined(HAVE_EXT_CACHE)
  16583. /**
  16584. * set cipher to WOLFSSL_SESSION from WOLFSSL_CIPHER
  16585. * @param session a pointer to WOLFSSL_SESSION structure
  16586. * @param cipher a function pointer to WOLFSSL_CIPHER
  16587. * @return WOLFSSL_SUCCESS on success, otherwise WOLFSSL_FAILURE
  16588. */
  16589. int wolfSSL_SESSION_set_cipher(WOLFSSL_SESSION* session,
  16590. const WOLFSSL_CIPHER* cipher)
  16591. {
  16592. WOLFSSL_ENTER("wolfSSL_SESSION_set_cipher");
  16593. session = ClientSessionToSession(session);
  16594. /* sanity check */
  16595. if (session == NULL || cipher == NULL) {
  16596. WOLFSSL_MSG("bad argument");
  16597. return WOLFSSL_FAILURE;
  16598. }
  16599. session->cipherSuite0 = cipher->cipherSuite0;
  16600. session->cipherSuite = cipher->cipherSuite;
  16601. WOLFSSL_LEAVE("wolfSSL_SESSION_set_cipher", WOLFSSL_SUCCESS);
  16602. return WOLFSSL_SUCCESS;
  16603. }
  16604. #endif /* OPENSSL_EXTRA || HAVE_EXT_CACHE */
  16605. /* helper function that takes in a protocol version struct and returns string */
  16606. static const char* wolfSSL_internal_get_version(const ProtocolVersion* version)
  16607. {
  16608. WOLFSSL_ENTER("wolfSSL_get_version");
  16609. if (version == NULL) {
  16610. return "Bad arg";
  16611. }
  16612. if (version->major == SSLv3_MAJOR) {
  16613. switch (version->minor) {
  16614. case SSLv3_MINOR :
  16615. return "SSLv3";
  16616. case TLSv1_MINOR :
  16617. return "TLSv1";
  16618. case TLSv1_1_MINOR :
  16619. return "TLSv1.1";
  16620. case TLSv1_2_MINOR :
  16621. return "TLSv1.2";
  16622. case TLSv1_3_MINOR :
  16623. return "TLSv1.3";
  16624. default:
  16625. return "unknown";
  16626. }
  16627. }
  16628. #ifdef WOLFSSL_DTLS
  16629. else if (version->major == DTLS_MAJOR) {
  16630. switch (version->minor) {
  16631. case DTLS_MINOR :
  16632. return "DTLS";
  16633. case DTLSv1_2_MINOR :
  16634. return "DTLSv1.2";
  16635. default:
  16636. return "unknown";
  16637. }
  16638. }
  16639. #endif /* WOLFSSL_DTLS */
  16640. return "unknown";
  16641. }
  16642. const char* wolfSSL_get_version(const WOLFSSL* ssl)
  16643. {
  16644. if (ssl == NULL) {
  16645. WOLFSSL_MSG("Bad argument");
  16646. return "unknown";
  16647. }
  16648. return wolfSSL_internal_get_version(&ssl->version);
  16649. }
  16650. /* current library version */
  16651. const char* wolfSSL_lib_version(void)
  16652. {
  16653. return LIBWOLFSSL_VERSION_STRING;
  16654. }
  16655. #ifdef OPENSSL_EXTRA
  16656. #if defined(OPENSSL_VERSION_NUMBER) && OPENSSL_VERSION_NUMBER >= 0x10100000L
  16657. const char* wolfSSL_OpenSSL_version(int a)
  16658. {
  16659. (void)a;
  16660. return "wolfSSL " LIBWOLFSSL_VERSION_STRING;
  16661. }
  16662. #else
  16663. const char* wolfSSL_OpenSSL_version(void)
  16664. {
  16665. return "wolfSSL " LIBWOLFSSL_VERSION_STRING;
  16666. }
  16667. #endif /* WOLFSSL_QT */
  16668. #endif
  16669. /* current library version in hex */
  16670. word32 wolfSSL_lib_version_hex(void)
  16671. {
  16672. return LIBWOLFSSL_VERSION_HEX;
  16673. }
  16674. int wolfSSL_get_current_cipher_suite(WOLFSSL* ssl)
  16675. {
  16676. WOLFSSL_ENTER("SSL_get_current_cipher_suite");
  16677. if (ssl)
  16678. return (ssl->options.cipherSuite0 << 8) | ssl->options.cipherSuite;
  16679. return 0;
  16680. }
  16681. WOLFSSL_CIPHER* wolfSSL_get_current_cipher(WOLFSSL* ssl)
  16682. {
  16683. WOLFSSL_ENTER("SSL_get_current_cipher");
  16684. if (ssl) {
  16685. ssl->cipher.cipherSuite0 = ssl->options.cipherSuite0;
  16686. ssl->cipher.cipherSuite = ssl->options.cipherSuite;
  16687. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  16688. ssl->cipher.bits = ssl->specs.key_size * 8;
  16689. #endif
  16690. return &ssl->cipher;
  16691. }
  16692. else
  16693. return NULL;
  16694. }
  16695. const char* wolfSSL_CIPHER_get_name(const WOLFSSL_CIPHER* cipher)
  16696. {
  16697. WOLFSSL_ENTER("wolfSSL_CIPHER_get_name");
  16698. if (cipher == NULL) {
  16699. return NULL;
  16700. }
  16701. #if !defined(WOLFSSL_CIPHER_INTERNALNAME) && !defined(NO_ERROR_STRINGS) && \
  16702. !defined(WOLFSSL_QT)
  16703. return GetCipherNameIana(cipher->cipherSuite0, cipher->cipherSuite);
  16704. #else
  16705. return wolfSSL_get_cipher_name_from_suite(cipher->cipherSuite0,
  16706. cipher->cipherSuite);
  16707. #endif
  16708. }
  16709. const char* wolfSSL_CIPHER_get_version(const WOLFSSL_CIPHER* cipher)
  16710. {
  16711. WOLFSSL_ENTER("SSL_CIPHER_get_version");
  16712. if (cipher == NULL || cipher->ssl == NULL) {
  16713. return NULL;
  16714. }
  16715. return wolfSSL_get_version(cipher->ssl);
  16716. }
  16717. const char* wolfSSL_SESSION_CIPHER_get_name(const WOLFSSL_SESSION* session)
  16718. {
  16719. session = ClientSessionToSession(session);
  16720. if (session == NULL) {
  16721. return NULL;
  16722. }
  16723. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  16724. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  16725. #if !defined(WOLFSSL_CIPHER_INTERNALNAME) && !defined(NO_ERROR_STRINGS)
  16726. return GetCipherNameIana(session->cipherSuite0, session->cipherSuite);
  16727. #else
  16728. return GetCipherNameInternal(session->cipherSuite0, session->cipherSuite);
  16729. #endif
  16730. #else
  16731. return NULL;
  16732. #endif
  16733. }
  16734. const char* wolfSSL_get_cipher(WOLFSSL* ssl)
  16735. {
  16736. WOLFSSL_ENTER("wolfSSL_get_cipher");
  16737. return wolfSSL_CIPHER_get_name(wolfSSL_get_current_cipher(ssl));
  16738. }
  16739. /* gets cipher name in the format DHE-RSA-... rather then TLS_DHE... */
  16740. const char* wolfSSL_get_cipher_name(WOLFSSL* ssl)
  16741. {
  16742. /* get access to cipher_name_idx in internal.c */
  16743. return wolfSSL_get_cipher_name_internal(ssl);
  16744. }
  16745. const char* wolfSSL_get_cipher_name_from_suite(const byte cipherSuite0,
  16746. const byte cipherSuite)
  16747. {
  16748. return GetCipherNameInternal(cipherSuite0, cipherSuite);
  16749. }
  16750. const char* wolfSSL_get_cipher_name_iana_from_suite(const byte cipherSuite0,
  16751. const byte cipherSuite)
  16752. {
  16753. return GetCipherNameIana(cipherSuite0, cipherSuite);
  16754. }
  16755. int wolfSSL_get_cipher_suite_from_name(const char* name, byte* cipherSuite0,
  16756. byte* cipherSuite, int *flags) {
  16757. if ((name == NULL) ||
  16758. (cipherSuite0 == NULL) ||
  16759. (cipherSuite == NULL) ||
  16760. (flags == NULL))
  16761. return BAD_FUNC_ARG;
  16762. return GetCipherSuiteFromName(name, cipherSuite0, cipherSuite, flags);
  16763. }
  16764. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  16765. /* Creates and returns a new WOLFSSL_CIPHER stack. */
  16766. WOLFSSL_STACK* wolfSSL_sk_new_cipher(void)
  16767. {
  16768. WOLFSSL_STACK* sk;
  16769. WOLFSSL_ENTER("wolfSSL_sk_new_cipher");
  16770. sk = wolfSSL_sk_new_null();
  16771. if (sk == NULL)
  16772. return NULL;
  16773. sk->type = STACK_TYPE_CIPHER;
  16774. return sk;
  16775. }
  16776. /* return 1 on success 0 on fail */
  16777. int wolfSSL_sk_CIPHER_push(WOLF_STACK_OF(WOLFSSL_CIPHER)* sk,
  16778. WOLFSSL_CIPHER* cipher)
  16779. {
  16780. return wolfSSL_sk_push(sk, cipher);
  16781. }
  16782. #ifndef NO_WOLFSSL_STUB
  16783. WOLFSSL_CIPHER* wolfSSL_sk_CIPHER_pop(WOLF_STACK_OF(WOLFSSL_CIPHER)* sk)
  16784. {
  16785. WOLFSSL_STUB("wolfSSL_sk_CIPHER_pop");
  16786. (void)sk;
  16787. return NULL;
  16788. }
  16789. #endif /* NO_WOLFSSL_STUB */
  16790. #endif /* WOLFSSL_QT || OPENSSL_ALL */
  16791. word32 wolfSSL_CIPHER_get_id(const WOLFSSL_CIPHER* cipher)
  16792. {
  16793. word16 cipher_id = 0;
  16794. WOLFSSL_ENTER("SSL_CIPHER_get_id");
  16795. if (cipher && cipher->ssl) {
  16796. cipher_id = (cipher->ssl->options.cipherSuite0 << 8) |
  16797. cipher->ssl->options.cipherSuite;
  16798. }
  16799. return cipher_id;
  16800. }
  16801. const WOLFSSL_CIPHER* wolfSSL_get_cipher_by_value(word16 value)
  16802. {
  16803. const WOLFSSL_CIPHER* cipher = NULL;
  16804. byte cipherSuite0, cipherSuite;
  16805. WOLFSSL_ENTER("SSL_get_cipher_by_value");
  16806. /* extract cipher id information */
  16807. cipherSuite = (value & 0xFF);
  16808. cipherSuite0 = ((value >> 8) & 0xFF);
  16809. /* TODO: lookup by cipherSuite0 / cipherSuite */
  16810. (void)cipherSuite0;
  16811. (void)cipherSuite;
  16812. return cipher;
  16813. }
  16814. #if defined(OPENSSL_EXTRA)
  16815. /* Free the structure for WOLFSSL_CIPHER stack
  16816. *
  16817. * sk stack to free nodes in
  16818. */
  16819. void wolfSSL_sk_CIPHER_free(WOLF_STACK_OF(WOLFSSL_CIPHER)* sk)
  16820. {
  16821. WOLFSSL_ENTER("wolfSSL_sk_CIPHER_free");
  16822. wolfSSL_sk_free(sk);
  16823. }
  16824. #endif /* OPENSSL_ALL */
  16825. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448) || \
  16826. !defined(NO_DH)
  16827. #ifdef HAVE_FFDHE
  16828. static const char* wolfssl_ffdhe_name(word16 group)
  16829. {
  16830. const char* str = NULL;
  16831. switch (group) {
  16832. case WOLFSSL_FFDHE_2048:
  16833. str = "FFDHE_2048";
  16834. break;
  16835. case WOLFSSL_FFDHE_3072:
  16836. str = "FFDHE_3072";
  16837. break;
  16838. case WOLFSSL_FFDHE_4096:
  16839. str = "FFDHE_4096";
  16840. break;
  16841. case WOLFSSL_FFDHE_6144:
  16842. str = "FFDHE_6144";
  16843. break;
  16844. case WOLFSSL_FFDHE_8192:
  16845. str = "FFDHE_8192";
  16846. break;
  16847. default:
  16848. break;
  16849. }
  16850. return str;
  16851. }
  16852. #endif
  16853. /* Return the name of the curve used for key exchange as a printable string.
  16854. *
  16855. * ssl The SSL/TLS object.
  16856. * returns NULL if ECDH was not used, otherwise the name as a string.
  16857. */
  16858. const char* wolfSSL_get_curve_name(WOLFSSL* ssl)
  16859. {
  16860. const char* cName = NULL;
  16861. if (ssl == NULL)
  16862. return NULL;
  16863. #ifdef HAVE_FFDHE
  16864. if (ssl->namedGroup != 0) {
  16865. cName = wolfssl_ffdhe_name(ssl->namedGroup);
  16866. }
  16867. #endif
  16868. #ifdef HAVE_CURVE25519
  16869. if (ssl->ecdhCurveOID == ECC_X25519_OID && cName == NULL) {
  16870. cName = "X25519";
  16871. }
  16872. #endif
  16873. #ifdef HAVE_CURVE448
  16874. if (ssl->ecdhCurveOID == ECC_X448_OID && cName == NULL) {
  16875. cName = "X448";
  16876. }
  16877. #endif
  16878. #ifdef HAVE_ECC
  16879. if (ssl->ecdhCurveOID != 0 && cName == NULL) {
  16880. cName = wc_ecc_get_name(wc_ecc_get_oid(ssl->ecdhCurveOID, NULL,
  16881. NULL));
  16882. }
  16883. #endif
  16884. return cName;
  16885. }
  16886. #endif
  16887. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL) || \
  16888. defined(OPENSSL_EXTRA_X509_SMALL)
  16889. /* Creates a new WOLFSSL_ASN1_STRING structure.
  16890. *
  16891. * returns a pointer to the new structure created on success or NULL if fail
  16892. */
  16893. WOLFSSL_ASN1_STRING* wolfSSL_ASN1_STRING_new(void)
  16894. {
  16895. WOLFSSL_ASN1_STRING* asn1;
  16896. #ifdef WOLFSSL_DEBUG_OPENSSL
  16897. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_new");
  16898. #endif
  16899. asn1 = (WOLFSSL_ASN1_STRING*)XMALLOC(sizeof(WOLFSSL_ASN1_STRING), NULL,
  16900. DYNAMIC_TYPE_OPENSSL);
  16901. if (asn1 != NULL) {
  16902. XMEMSET(asn1, 0, sizeof(WOLFSSL_ASN1_STRING));
  16903. }
  16904. return asn1; /* no check for null because error case is returning null*/
  16905. }
  16906. /**
  16907. * Used to duplicate a passed in WOLFSSL_ASN1_STRING*
  16908. * @param asn1 WOLFSSL_ASN1_STRING* to be duplicated
  16909. * @return WOLFSSL_ASN1_STRING* the duplicate struct or NULL on error
  16910. */
  16911. WOLFSSL_ASN1_STRING* wolfSSL_ASN1_STRING_dup(WOLFSSL_ASN1_STRING* asn1)
  16912. {
  16913. WOLFSSL_ASN1_STRING* dupl = NULL;
  16914. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_dup");
  16915. if (!asn1) {
  16916. WOLFSSL_MSG("Bad parameter");
  16917. return NULL;
  16918. }
  16919. dupl = wolfSSL_ASN1_STRING_new();
  16920. if (!dupl) {
  16921. WOLFSSL_MSG("wolfSSL_ASN1_STRING_new error");
  16922. return NULL;
  16923. }
  16924. dupl->type = asn1->type;
  16925. dupl->flags = asn1->flags;
  16926. if (wolfSSL_ASN1_STRING_set(dupl, asn1->data, asn1->length)
  16927. != WOLFSSL_SUCCESS) {
  16928. WOLFSSL_MSG("wolfSSL_ASN1_STRING_set error");
  16929. wolfSSL_ASN1_STRING_free(dupl);
  16930. return NULL;
  16931. }
  16932. return dupl;
  16933. }
  16934. /* used to free a WOLFSSL_ASN1_STRING structure */
  16935. void wolfSSL_ASN1_STRING_free(WOLFSSL_ASN1_STRING* asn1)
  16936. {
  16937. #ifdef WOLFSSL_DEBUG_OPENSSL
  16938. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_free");
  16939. #endif
  16940. if (asn1 != NULL) {
  16941. if (asn1->length > 0 && asn1->data != NULL && asn1->isDynamic) {
  16942. XFREE(asn1->data, NULL, DYNAMIC_TYPE_OPENSSL);
  16943. }
  16944. XFREE(asn1, NULL, DYNAMIC_TYPE_OPENSSL);
  16945. }
  16946. }
  16947. int wolfSSL_ASN1_STRING_cmp(const WOLFSSL_ASN1_STRING *a, const WOLFSSL_ASN1_STRING *b)
  16948. {
  16949. int i;
  16950. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_cmp");
  16951. if (!a || !b) {
  16952. return WOLFSSL_FATAL_ERROR;
  16953. }
  16954. if (a->length != b->length) {
  16955. return a->length - b->length;
  16956. }
  16957. if ((i = XMEMCMP(a->data, b->data, a->length)) != 0) {
  16958. return i;
  16959. }
  16960. return a->type - b->type;
  16961. }
  16962. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  16963. #if !defined(NO_CERTS) && (defined(OPENSSL_EXTRA) || \
  16964. defined(OPENSSL_EXTRA_X509_SMALL))
  16965. int wolfSSL_ASN1_STRING_copy(WOLFSSL_ASN1_STRING* dest,
  16966. const WOLFSSL_ASN1_STRING* src)
  16967. {
  16968. if (src == NULL || dest == NULL) {
  16969. return WOLFSSL_FAILURE;
  16970. }
  16971. dest->type = src->type;
  16972. if(wolfSSL_ASN1_STRING_set(dest, src->data, src->length)
  16973. != WOLFSSL_SUCCESS) {
  16974. return WOLFSSL_FAILURE;
  16975. }
  16976. dest->flags = src->flags;
  16977. return WOLFSSL_SUCCESS;
  16978. }
  16979. /* Creates a new WOLFSSL_ASN1_STRING structure given the input type.
  16980. *
  16981. * type is the type of set when WOLFSSL_ASN1_STRING is created
  16982. *
  16983. * returns a pointer to the new structure created on success or NULL if fail
  16984. */
  16985. WOLFSSL_ASN1_STRING* wolfSSL_ASN1_STRING_type_new(int type)
  16986. {
  16987. WOLFSSL_ASN1_STRING* asn1;
  16988. #ifdef WOLFSSL_DEBUG_OPENSSL
  16989. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_type_new");
  16990. #endif
  16991. asn1 = wolfSSL_ASN1_STRING_new();
  16992. if (asn1 == NULL) {
  16993. return NULL;
  16994. }
  16995. asn1->type = type;
  16996. return asn1;
  16997. }
  16998. /******************************************************************************
  16999. * wolfSSL_ASN1_STRING_type - returns the type of <asn1>
  17000. *
  17001. * RETURNS:
  17002. * returns the type set for <asn1>. Otherwise, returns WOLFSSL_FAILURE.
  17003. */
  17004. int wolfSSL_ASN1_STRING_type(const WOLFSSL_ASN1_STRING* asn1)
  17005. {
  17006. #ifdef WOLFSSL_DEBUG_OPENSSL
  17007. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_type");
  17008. #endif
  17009. if (asn1 == NULL) {
  17010. return WOLFSSL_FAILURE;
  17011. }
  17012. return asn1->type;
  17013. }
  17014. #endif /* !NO_CERTS && OPENSSL_EXTRA */
  17015. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL) || \
  17016. defined(OPENSSL_EXTRA_X509_SMALL)
  17017. /* if dataSz is negative then use XSTRLEN to find length of data
  17018. * return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on failure */
  17019. /* `data` can be NULL and only buffer will be allocated */
  17020. int wolfSSL_ASN1_STRING_set(WOLFSSL_ASN1_STRING* asn1, const void* data,
  17021. int dataSz)
  17022. {
  17023. int sz;
  17024. #ifdef WOLFSSL_DEBUG_OPENSSL
  17025. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_set");
  17026. #endif
  17027. if (asn1 == NULL || (data == NULL && dataSz < 0)) {
  17028. return WOLFSSL_FAILURE;
  17029. }
  17030. if (dataSz < 0) {
  17031. sz = (int)XSTRLEN((const char*)data);
  17032. }
  17033. else {
  17034. sz = dataSz;
  17035. }
  17036. if (sz < 0) {
  17037. return WOLFSSL_FAILURE;
  17038. }
  17039. /* free any existing data before copying */
  17040. if (asn1->data != NULL && asn1->isDynamic) {
  17041. XFREE(asn1->data, NULL, DYNAMIC_TYPE_OPENSSL);
  17042. asn1->data = NULL;
  17043. }
  17044. if (sz + 1 > CTC_NAME_SIZE) { /* account for null char */
  17045. /* create new data buffer and copy over */
  17046. asn1->data = (char*)XMALLOC(sz + 1, NULL, DYNAMIC_TYPE_OPENSSL);
  17047. if (asn1->data == NULL) {
  17048. return WOLFSSL_FAILURE;
  17049. }
  17050. asn1->isDynamic = 1;
  17051. }
  17052. else {
  17053. XMEMSET(asn1->strData, 0, CTC_NAME_SIZE);
  17054. asn1->data = asn1->strData;
  17055. asn1->isDynamic = 0;
  17056. }
  17057. if (data != NULL) {
  17058. XMEMCPY(asn1->data, data, sz);
  17059. asn1->data[sz] = '\0';
  17060. }
  17061. asn1->length = sz;
  17062. return WOLFSSL_SUCCESS;
  17063. }
  17064. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  17065. #ifndef NO_CERTS
  17066. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  17067. const unsigned char* wolfSSL_ASN1_STRING_get0_data(
  17068. const WOLFSSL_ASN1_STRING* asn)
  17069. {
  17070. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_get0_data");
  17071. if (asn) {
  17072. return (const unsigned char*)asn->data;
  17073. } else {
  17074. return NULL;
  17075. }
  17076. }
  17077. unsigned char* wolfSSL_ASN1_STRING_data(WOLFSSL_ASN1_STRING* asn)
  17078. {
  17079. #ifdef WOLFSSL_DEBUG_OPENSSL
  17080. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_data");
  17081. #endif
  17082. if (asn) {
  17083. return (unsigned char*)asn->data;
  17084. }
  17085. else {
  17086. return NULL;
  17087. }
  17088. }
  17089. int wolfSSL_ASN1_STRING_length(WOLFSSL_ASN1_STRING* asn)
  17090. {
  17091. #ifdef WOLFSSL_DEBUG_OPENSSL
  17092. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_length");
  17093. #endif
  17094. if (asn) {
  17095. return asn->length;
  17096. }
  17097. else {
  17098. return 0;
  17099. }
  17100. }
  17101. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  17102. #ifdef OPENSSL_EXTRA
  17103. #ifndef NO_WOLFSSL_STUB
  17104. WOLFSSL_ASN1_STRING* wolfSSL_d2i_DISPLAYTEXT(WOLFSSL_ASN1_STRING **asn,
  17105. const unsigned char **in, long len)
  17106. {
  17107. WOLFSSL_STUB("d2i_DISPLAYTEXT");
  17108. (void)asn;
  17109. (void)in;
  17110. (void)len;
  17111. return NULL;
  17112. }
  17113. #endif
  17114. #endif /* OPENSSL_EXTRA */
  17115. #endif /* !NO_CERTS */
  17116. #ifdef OPENSSL_EXTRA
  17117. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  17118. /* return authentication NID corresponding to cipher suite
  17119. * @param cipher a pointer to WOLFSSL_CIPHER
  17120. * return NID if found, NID_undef if not found
  17121. */
  17122. int wolfSSL_CIPHER_get_auth_nid(const WOLFSSL_CIPHER* cipher)
  17123. {
  17124. static const struct authnid {
  17125. const char* alg_name;
  17126. const int nid;
  17127. } authnid_tbl[] = {
  17128. {"RSA", NID_auth_rsa},
  17129. {"PSK", NID_auth_psk},
  17130. {"SRP", NID_auth_srp},
  17131. {"ECDSA", NID_auth_ecdsa},
  17132. {"None", NID_auth_null},
  17133. {NULL, NID_undef}
  17134. };
  17135. const struct authnid* sa;
  17136. const char* authStr;
  17137. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17138. if (GetCipherSegment(cipher, n) == NULL) {
  17139. WOLFSSL_MSG("no suitable cipher name found");
  17140. return NID_undef;
  17141. }
  17142. authStr = GetCipherAuthStr(n);
  17143. if (authStr != NULL) {
  17144. for(sa = authnid_tbl; sa->alg_name != NULL; sa++) {
  17145. if (XSTRCMP(sa->alg_name, authStr) == 0) {
  17146. return sa->nid;
  17147. }
  17148. }
  17149. }
  17150. return NID_undef;
  17151. }
  17152. /* return cipher NID corresponding to cipher suite
  17153. * @param cipher a pointer to WOLFSSL_CIPHER
  17154. * return NID if found, NID_undef if not found
  17155. */
  17156. int wolfSSL_CIPHER_get_cipher_nid(const WOLFSSL_CIPHER* cipher)
  17157. {
  17158. static const struct ciphernid {
  17159. const char* alg_name;
  17160. const int nid;
  17161. } ciphernid_tbl[] = {
  17162. {"AESGCM(256)", NID_aes_256_gcm},
  17163. {"AESGCM(128)", NID_aes_128_gcm},
  17164. {"AESCCM(128)", NID_aes_128_ccm},
  17165. {"AES(128)", NID_aes_128_cbc},
  17166. {"AES(256)", NID_aes_256_cbc},
  17167. {"CAMELLIA(256)", NID_camellia_256_cbc},
  17168. {"CAMELLIA(128)", NID_camellia_128_cbc},
  17169. {"RC4", NID_rc4},
  17170. {"3DES", NID_des_ede3_cbc},
  17171. {"CHACHA20/POLY1305(256)", NID_chacha20_poly1305},
  17172. {"None", NID_undef},
  17173. {NULL, NID_undef}
  17174. };
  17175. const struct ciphernid* c;
  17176. const char* encStr;
  17177. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17178. WOLFSSL_ENTER("wolfSSL_CIPHER_get_cipher_nid");
  17179. if (GetCipherSegment(cipher, n) == NULL) {
  17180. WOLFSSL_MSG("no suitable cipher name found");
  17181. return NID_undef;
  17182. }
  17183. encStr = GetCipherEncStr(n);
  17184. if (encStr != NULL) {
  17185. for(c = ciphernid_tbl; c->alg_name != NULL; c++) {
  17186. if (XSTRCMP(c->alg_name, encStr) == 0) {
  17187. return c->nid;
  17188. }
  17189. }
  17190. }
  17191. return NID_undef;
  17192. }
  17193. /* return digest NID corresponding to cipher suite
  17194. * @param cipher a pointer to WOLFSSL_CIPHER
  17195. * return NID if found, NID_undef if not found
  17196. */
  17197. int wolfSSL_CIPHER_get_digest_nid(const WOLFSSL_CIPHER* cipher)
  17198. {
  17199. static const struct macnid {
  17200. const char* alg_name;
  17201. const int nid;
  17202. } macnid_tbl[] = {
  17203. {"SHA1", NID_sha1},
  17204. {"SHA256", NID_sha256},
  17205. {"SHA384", NID_sha384},
  17206. {NULL, NID_undef}
  17207. };
  17208. const struct macnid* mc;
  17209. const char* name;
  17210. const char* macStr;
  17211. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17212. (void)name;
  17213. WOLFSSL_ENTER("wolfSSL_CIPHER_get_digest_nid");
  17214. if ((name = GetCipherSegment(cipher, n)) == NULL) {
  17215. WOLFSSL_MSG("no suitable cipher name found");
  17216. return NID_undef;
  17217. }
  17218. /* in MD5 case, NID will be NID_md5 */
  17219. if (XSTRSTR(name, "MD5") != NULL) {
  17220. return NID_md5;
  17221. }
  17222. macStr = GetCipherMacStr(n);
  17223. if (macStr != NULL) {
  17224. for(mc = macnid_tbl; mc->alg_name != NULL; mc++) {
  17225. if (XSTRCMP(mc->alg_name, macStr) == 0) {
  17226. return mc->nid;
  17227. }
  17228. }
  17229. }
  17230. return NID_undef;
  17231. }
  17232. /* return key exchange NID corresponding to cipher suite
  17233. * @param cipher a pointer to WOLFSSL_CIPHER
  17234. * return NID if found, NID_undef if not found
  17235. */
  17236. int wolfSSL_CIPHER_get_kx_nid(const WOLFSSL_CIPHER* cipher)
  17237. {
  17238. static const struct kxnid {
  17239. const char* name;
  17240. const int nid;
  17241. } kxnid_table[] = {
  17242. {"ECDHEPSK", NID_kx_ecdhe_psk},
  17243. {"ECDH", NID_kx_ecdhe},
  17244. {"DHEPSK", NID_kx_dhe_psk},
  17245. {"DH", NID_kx_dhe},
  17246. {"RSAPSK", NID_kx_rsa_psk},
  17247. {"SRP", NID_kx_srp},
  17248. {"EDH", NID_kx_dhe},
  17249. {"RSA", NID_kx_rsa},
  17250. {NULL, NID_undef}
  17251. };
  17252. const struct kxnid* k;
  17253. const char* keaStr;
  17254. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17255. WOLFSSL_ENTER("wolfSSL_CIPHER_get_kx_nid");
  17256. if (GetCipherSegment(cipher, n) == NULL) {
  17257. WOLFSSL_MSG("no suitable cipher name found");
  17258. return NID_undef;
  17259. }
  17260. /* in TLS 1.3 case, NID will be NID_kx_any */
  17261. if (XSTRCMP(n[0], "TLS13") == 0) {
  17262. return NID_kx_any;
  17263. }
  17264. keaStr = GetCipherKeaStr(n);
  17265. if (keaStr != NULL) {
  17266. for(k = kxnid_table; k->name != NULL; k++) {
  17267. if (XSTRCMP(k->name, keaStr) == 0) {
  17268. return k->nid;
  17269. }
  17270. }
  17271. }
  17272. return NID_undef;
  17273. }
  17274. /* check if cipher suite is AEAD
  17275. * @param cipher a pointer to WOLFSSL_CIPHER
  17276. * return 1 if cipher is AEAD, 0 otherwise
  17277. */
  17278. int wolfSSL_CIPHER_is_aead(const WOLFSSL_CIPHER* cipher)
  17279. {
  17280. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17281. WOLFSSL_ENTER("wolfSSL_CIPHER_is_aead");
  17282. if (GetCipherSegment(cipher, n) == NULL) {
  17283. WOLFSSL_MSG("no suitable cipher name found");
  17284. return NID_undef;
  17285. }
  17286. return IsCipherAEAD(n);
  17287. }
  17288. /* Creates cipher->description based on cipher->offset
  17289. * cipher->offset is set in wolfSSL_get_ciphers_compat when it is added
  17290. * to a stack of ciphers.
  17291. * @param [in] cipher: A cipher from a stack of ciphers.
  17292. * return WOLFSSL_SUCCESS if cipher->description is set, else WOLFSSL_FAILURE
  17293. */
  17294. int wolfSSL_sk_CIPHER_description(WOLFSSL_CIPHER* cipher)
  17295. {
  17296. int strLen;
  17297. unsigned long offset;
  17298. char* dp;
  17299. const char* name;
  17300. const char *keaStr, *authStr, *encStr, *macStr, *protocol;
  17301. char n[MAX_SEGMENTS][MAX_SEGMENT_SZ] = {{0}};
  17302. int len = MAX_DESCRIPTION_SZ-1;
  17303. const CipherSuiteInfo* cipher_names;
  17304. ProtocolVersion pv;
  17305. WOLFSSL_ENTER("wolfSSL_sk_CIPHER_description");
  17306. if (cipher == NULL)
  17307. return WOLFSSL_FAILURE;
  17308. dp = cipher->description;
  17309. if (dp == NULL)
  17310. return WOLFSSL_FAILURE;
  17311. cipher_names = GetCipherNames();
  17312. offset = cipher->offset;
  17313. if (offset >= (unsigned long)GetCipherNamesSize())
  17314. return WOLFSSL_FAILURE;
  17315. pv.major = cipher_names[offset].major;
  17316. pv.minor = cipher_names[offset].minor;
  17317. protocol = wolfSSL_internal_get_version(&pv);
  17318. if ((name = GetCipherSegment(cipher, n)) == NULL) {
  17319. WOLFSSL_MSG("no suitable cipher name found");
  17320. return WOLFSSL_FAILURE;
  17321. }
  17322. /* keaStr */
  17323. keaStr = GetCipherKeaStr(n);
  17324. /* authStr */
  17325. authStr = GetCipherAuthStr(n);
  17326. /* encStr */
  17327. encStr = GetCipherEncStr(n);
  17328. if ((cipher->bits = SetCipherBits(encStr)) == WOLFSSL_FAILURE) {
  17329. WOLFSSL_MSG("Cipher Bits Not Set.");
  17330. }
  17331. /* macStr */
  17332. macStr = GetCipherMacStr(n);
  17333. /* Build up the string by copying onto the end. */
  17334. XSTRNCPY(dp, name, len);
  17335. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17336. len -= strLen; dp += strLen;
  17337. XSTRNCPY(dp, " ", len);
  17338. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17339. len -= strLen; dp += strLen;
  17340. XSTRNCPY(dp, protocol, len);
  17341. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17342. len -= strLen; dp += strLen;
  17343. XSTRNCPY(dp, " Kx=", len);
  17344. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17345. len -= strLen; dp += strLen;
  17346. XSTRNCPY(dp, keaStr, len);
  17347. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17348. len -= strLen; dp += strLen;
  17349. XSTRNCPY(dp, " Au=", len);
  17350. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17351. len -= strLen; dp += strLen;
  17352. XSTRNCPY(dp, authStr, len);
  17353. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17354. len -= strLen; dp += strLen;
  17355. XSTRNCPY(dp, " Enc=", len);
  17356. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17357. len -= strLen; dp += strLen;
  17358. XSTRNCPY(dp, encStr, len);
  17359. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17360. len -= strLen; dp += strLen;
  17361. XSTRNCPY(dp, " Mac=", len);
  17362. dp[len-1] = '\0'; strLen = (int)XSTRLEN(dp);
  17363. len -= strLen; dp += strLen;
  17364. XSTRNCPY(dp, macStr, len);
  17365. dp[len-1] = '\0';
  17366. return WOLFSSL_SUCCESS;
  17367. }
  17368. #endif /* OPENSSL_ALL || WOLFSSL_QT */
  17369. static WC_INLINE const char* wolfssl_kea_to_string(int kea)
  17370. {
  17371. const char* keaStr;
  17372. switch (kea) {
  17373. case no_kea:
  17374. keaStr = "None";
  17375. break;
  17376. #ifndef NO_RSA
  17377. case rsa_kea:
  17378. keaStr = "RSA";
  17379. break;
  17380. #endif
  17381. #ifndef NO_DH
  17382. case diffie_hellman_kea:
  17383. keaStr = "DHE";
  17384. break;
  17385. #endif
  17386. case fortezza_kea:
  17387. keaStr = "FZ";
  17388. break;
  17389. #ifndef NO_PSK
  17390. case psk_kea:
  17391. keaStr = "PSK";
  17392. break;
  17393. #ifndef NO_DH
  17394. case dhe_psk_kea:
  17395. keaStr = "DHEPSK";
  17396. break;
  17397. #endif
  17398. #ifdef HAVE_ECC
  17399. case ecdhe_psk_kea:
  17400. keaStr = "ECDHEPSK";
  17401. break;
  17402. #endif
  17403. #endif
  17404. #ifdef HAVE_ECC
  17405. case ecc_diffie_hellman_kea:
  17406. keaStr = "ECDHE";
  17407. break;
  17408. case ecc_static_diffie_hellman_kea:
  17409. keaStr = "ECDH";
  17410. break;
  17411. #endif
  17412. default:
  17413. keaStr = "unknown";
  17414. break;
  17415. }
  17416. return keaStr;
  17417. }
  17418. static WC_INLINE const char* wolfssl_sigalg_to_string(int sig_algo)
  17419. {
  17420. const char* authStr;
  17421. switch (sig_algo) {
  17422. case anonymous_sa_algo:
  17423. authStr = "None";
  17424. break;
  17425. #ifndef NO_RSA
  17426. case rsa_sa_algo:
  17427. authStr = "RSA";
  17428. break;
  17429. #ifdef WC_RSA_PSS
  17430. case rsa_pss_sa_algo:
  17431. authStr = "RSA-PSS";
  17432. break;
  17433. #endif
  17434. #endif
  17435. #ifndef NO_DSA
  17436. case dsa_sa_algo:
  17437. authStr = "DSA";
  17438. break;
  17439. #endif
  17440. #ifdef HAVE_ECC
  17441. case ecc_dsa_sa_algo:
  17442. authStr = "ECDSA";
  17443. break;
  17444. #endif
  17445. #ifdef HAVE_ED25519
  17446. case ed25519_sa_algo:
  17447. authStr = "Ed25519";
  17448. break;
  17449. #endif
  17450. #ifdef HAVE_ED448
  17451. case ed448_sa_algo:
  17452. authStr = "Ed448";
  17453. break;
  17454. #endif
  17455. default:
  17456. authStr = "unknown";
  17457. break;
  17458. }
  17459. return authStr;
  17460. }
  17461. static WC_INLINE const char* wolfssl_cipher_to_string(int cipher, int key_size)
  17462. {
  17463. const char* encStr;
  17464. (void)key_size;
  17465. switch (cipher) {
  17466. case wolfssl_cipher_null:
  17467. encStr = "None";
  17468. break;
  17469. #ifndef NO_RC4
  17470. case wolfssl_rc4:
  17471. encStr = "RC4(128)";
  17472. break;
  17473. #endif
  17474. #ifndef NO_DES3
  17475. case wolfssl_triple_des:
  17476. encStr = "3DES(168)";
  17477. break;
  17478. #endif
  17479. #ifndef NO_AES
  17480. case wolfssl_aes:
  17481. if (key_size == 128)
  17482. encStr = "AES(128)";
  17483. else if (key_size == 256)
  17484. encStr = "AES(256)";
  17485. else
  17486. encStr = "AES(?)";
  17487. break;
  17488. #ifdef HAVE_AESGCM
  17489. case wolfssl_aes_gcm:
  17490. if (key_size == 128)
  17491. encStr = "AESGCM(128)";
  17492. else if (key_size == 256)
  17493. encStr = "AESGCM(256)";
  17494. else
  17495. encStr = "AESGCM(?)";
  17496. break;
  17497. #endif
  17498. #ifdef HAVE_AESCCM
  17499. case wolfssl_aes_ccm:
  17500. if (key_size == 128)
  17501. encStr = "AESCCM(128)";
  17502. else if (key_size == 256)
  17503. encStr = "AESCCM(256)";
  17504. else
  17505. encStr = "AESCCM(?)";
  17506. break;
  17507. #endif
  17508. #endif
  17509. #ifdef HAVE_CHACHA
  17510. case wolfssl_chacha:
  17511. encStr = "CHACHA20/POLY1305(256)";
  17512. break;
  17513. #endif
  17514. #ifdef HAVE_CAMELLIA
  17515. case wolfssl_camellia:
  17516. if (key_size == 128)
  17517. encStr = "Camellia(128)";
  17518. else if (key_size == 256)
  17519. encStr = "Camellia(256)";
  17520. else
  17521. encStr = "Camellia(?)";
  17522. break;
  17523. #endif
  17524. default:
  17525. encStr = "unknown";
  17526. break;
  17527. }
  17528. return encStr;
  17529. }
  17530. static WC_INLINE const char* wolfssl_mac_to_string(int mac)
  17531. {
  17532. const char* macStr;
  17533. switch (mac) {
  17534. case no_mac:
  17535. macStr = "None";
  17536. break;
  17537. #ifndef NO_MD5
  17538. case md5_mac:
  17539. macStr = "MD5";
  17540. break;
  17541. #endif
  17542. #ifndef NO_SHA
  17543. case sha_mac:
  17544. macStr = "SHA1";
  17545. break;
  17546. #endif
  17547. #ifdef HAVE_SHA224
  17548. case sha224_mac:
  17549. macStr = "SHA224";
  17550. break;
  17551. #endif
  17552. #ifndef NO_SHA256
  17553. case sha256_mac:
  17554. macStr = "SHA256";
  17555. break;
  17556. #endif
  17557. #ifdef HAVE_SHA384
  17558. case sha384_mac:
  17559. macStr = "SHA384";
  17560. break;
  17561. #endif
  17562. #ifdef HAVE_SHA512
  17563. case sha512_mac:
  17564. macStr = "SHA512";
  17565. break;
  17566. #endif
  17567. default:
  17568. macStr = "unknown";
  17569. break;
  17570. }
  17571. return macStr;
  17572. }
  17573. char* wolfSSL_CIPHER_description(const WOLFSSL_CIPHER* cipher, char* in,
  17574. int len)
  17575. {
  17576. char *ret = in;
  17577. const char *keaStr, *authStr, *encStr, *macStr;
  17578. size_t strLen;
  17579. WOLFSSL_ENTER("wolfSSL_CIPHER_description");
  17580. if (cipher == NULL || in == NULL)
  17581. return NULL;
  17582. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  17583. /* if cipher is in the stack from wolfSSL_get_ciphers_compat then
  17584. * Return the description based on cipher_names[cipher->offset]
  17585. */
  17586. if (cipher->in_stack == TRUE) {
  17587. wolfSSL_sk_CIPHER_description((WOLFSSL_CIPHER*)cipher);
  17588. XSTRNCPY(in,cipher->description,len);
  17589. return ret;
  17590. }
  17591. #endif
  17592. /* Get the cipher description based on the SSL session cipher */
  17593. keaStr = wolfssl_kea_to_string(cipher->ssl->specs.kea);
  17594. authStr = wolfssl_sigalg_to_string(cipher->ssl->specs.sig_algo);
  17595. encStr = wolfssl_cipher_to_string(cipher->ssl->specs.bulk_cipher_algorithm,
  17596. cipher->ssl->specs.key_size);
  17597. macStr = wolfssl_mac_to_string(cipher->ssl->specs.mac_algorithm);
  17598. /* Build up the string by copying onto the end. */
  17599. XSTRNCPY(in, wolfSSL_CIPHER_get_name(cipher), len);
  17600. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17601. XSTRNCPY(in, " ", len);
  17602. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17603. XSTRNCPY(in, wolfSSL_get_version(cipher->ssl), len);
  17604. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17605. XSTRNCPY(in, " Kx=", len);
  17606. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17607. XSTRNCPY(in, keaStr, len);
  17608. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17609. XSTRNCPY(in, " Au=", len);
  17610. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17611. XSTRNCPY(in, authStr, len);
  17612. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17613. XSTRNCPY(in, " Enc=", len);
  17614. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17615. XSTRNCPY(in, encStr, len);
  17616. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17617. XSTRNCPY(in, " Mac=", len);
  17618. in[len-1] = '\0'; strLen = XSTRLEN(in); len -= (int)strLen; in += strLen;
  17619. XSTRNCPY(in, macStr, len);
  17620. in[len-1] = '\0';
  17621. return ret;
  17622. }
  17623. #ifndef NO_WOLFSSL_STUB
  17624. int wolfSSL_OCSP_parse_url(char* url, char** host, char** port, char** path,
  17625. int* ssl)
  17626. {
  17627. (void)url;
  17628. (void)host;
  17629. (void)port;
  17630. (void)path;
  17631. (void)ssl;
  17632. WOLFSSL_STUB("OCSP_parse_url");
  17633. return 0;
  17634. }
  17635. #endif
  17636. #ifndef NO_MD4
  17637. void wolfSSL_MD4_Init(WOLFSSL_MD4_CTX* md4)
  17638. {
  17639. /* make sure we have a big enough buffer */
  17640. typedef char ok[sizeof(md4->buffer) >= sizeof(Md4) ? 1 : -1];
  17641. (void) sizeof(ok);
  17642. WOLFSSL_ENTER("MD4_Init");
  17643. wc_InitMd4((Md4*)md4);
  17644. }
  17645. void wolfSSL_MD4_Update(WOLFSSL_MD4_CTX* md4, const void* data,
  17646. unsigned long len)
  17647. {
  17648. WOLFSSL_ENTER("MD4_Update");
  17649. wc_Md4Update((Md4*)md4, (const byte*)data, (word32)len);
  17650. }
  17651. void wolfSSL_MD4_Final(unsigned char* digest, WOLFSSL_MD4_CTX* md4)
  17652. {
  17653. WOLFSSL_ENTER("MD4_Final");
  17654. wc_Md4Final((Md4*)md4, digest);
  17655. }
  17656. #endif /* NO_MD4 */
  17657. #ifndef NO_WOLFSSL_STUB
  17658. void wolfSSL_RAND_screen(void)
  17659. {
  17660. WOLFSSL_STUB("RAND_screen");
  17661. }
  17662. #endif
  17663. int wolfSSL_RAND_load_file(const char* fname, long len)
  17664. {
  17665. (void)fname;
  17666. /* wolfCrypt provides enough entropy internally or will report error */
  17667. if (len == -1)
  17668. return 1024;
  17669. else
  17670. return (int)len;
  17671. }
  17672. #ifndef NO_WOLFSSL_STUB
  17673. WOLFSSL_COMP_METHOD* wolfSSL_COMP_zlib(void)
  17674. {
  17675. WOLFSSL_STUB("COMP_zlib");
  17676. return 0;
  17677. }
  17678. #endif
  17679. #ifndef NO_WOLFSSL_STUB
  17680. WOLFSSL_COMP_METHOD* wolfSSL_COMP_rle(void)
  17681. {
  17682. WOLFSSL_STUB("COMP_rle");
  17683. return 0;
  17684. }
  17685. #endif
  17686. #ifndef NO_WOLFSSL_STUB
  17687. int wolfSSL_COMP_add_compression_method(int method, void* data)
  17688. {
  17689. (void)method;
  17690. (void)data;
  17691. WOLFSSL_STUB("COMP_add_compression_method");
  17692. return 0;
  17693. }
  17694. #endif
  17695. /* wolfSSL_set_dynlock_create_callback
  17696. * CRYPTO_set_dynlock_create_callback has been deprecated since openSSL 1.0.1.
  17697. * This function exists for compatibility purposes because wolfSSL satisfies
  17698. * thread safety without relying on the callback.
  17699. */
  17700. void wolfSSL_set_dynlock_create_callback(WOLFSSL_dynlock_value* (*f)(
  17701. const char*, int))
  17702. {
  17703. WOLFSSL_STUB("CRYPTO_set_dynlock_create_callback");
  17704. (void)f;
  17705. }
  17706. /* wolfSSL_set_dynlock_lock_callback
  17707. * CRYPTO_set_dynlock_lock_callback has been deprecated since openSSL 1.0.1.
  17708. * This function exists for compatibility purposes because wolfSSL satisfies
  17709. * thread safety without relying on the callback.
  17710. */
  17711. void wolfSSL_set_dynlock_lock_callback(
  17712. void (*f)(int, WOLFSSL_dynlock_value*, const char*, int))
  17713. {
  17714. WOLFSSL_STUB("CRYPTO_set_set_dynlock_lock_callback");
  17715. (void)f;
  17716. }
  17717. /* wolfSSL_set_dynlock_destroy_callback
  17718. * CRYPTO_set_dynlock_destroy_callback has been deprecated since openSSL 1.0.1.
  17719. * This function exists for compatibility purposes because wolfSSL satisfies
  17720. * thread safety without relying on the callback.
  17721. */
  17722. void wolfSSL_set_dynlock_destroy_callback(
  17723. void (*f)(WOLFSSL_dynlock_value*, const char*, int))
  17724. {
  17725. WOLFSSL_STUB("CRYPTO_set_set_dynlock_destroy_callback");
  17726. (void)f;
  17727. }
  17728. #endif /* OPENSSL_EXTRA */
  17729. #ifdef OPENSSL_EXTRA
  17730. #ifndef NO_CERTS
  17731. #if !defined(NO_ASN) && !defined(NO_PWDBASED)
  17732. /* Copies unencrypted DER key buffer into "der". If "der" is null then the size
  17733. * of buffer needed is returned. If *der == NULL then it allocates a buffer.
  17734. * NOTE: This also advances the "der" pointer to be at the end of buffer.
  17735. *
  17736. * Returns size of key buffer on success
  17737. */
  17738. int wolfSSL_i2d_PrivateKey(const WOLFSSL_EVP_PKEY* key, unsigned char** der)
  17739. {
  17740. return wolfSSL_EVP_PKEY_get_der(key, der);
  17741. }
  17742. int wolfSSL_i2d_PublicKey(const WOLFSSL_EVP_PKEY *key, unsigned char **der)
  17743. {
  17744. return wolfSSL_EVP_PKEY_get_der(key, der);
  17745. }
  17746. #endif /* !NO_ASN && !NO_PWDBASED */
  17747. #endif /* !NO_CERTS */
  17748. #endif /* OPENSSL_EXTRA */
  17749. #ifdef OPENSSL_EXTRA
  17750. /******************************************************************************
  17751. * wolfSSL_CTX_set1_param - set a pointer to the SSL verification parameters
  17752. *
  17753. * RETURNS:
  17754. * WOLFSSL_SUCCESS on success, otherwise returns WOLFSSL_FAILURE
  17755. * Note: Returns WOLFSSL_SUCCESS, in case either parameter is NULL,
  17756. * same as openssl.
  17757. */
  17758. int wolfSSL_CTX_set1_param(WOLFSSL_CTX* ctx, WOLFSSL_X509_VERIFY_PARAM *vpm)
  17759. {
  17760. if (ctx == NULL || vpm == NULL)
  17761. return WOLFSSL_SUCCESS;
  17762. return wolfSSL_X509_VERIFY_PARAM_set1(ctx->param, vpm);
  17763. }
  17764. /******************************************************************************
  17765. * wolfSSL_CTX/_get0_param - return a pointer to the SSL verification parameters
  17766. *
  17767. * RETURNS:
  17768. * returns pointer to the SSL verification parameters on success,
  17769. * otherwise returns NULL
  17770. */
  17771. WOLFSSL_X509_VERIFY_PARAM* wolfSSL_CTX_get0_param(WOLFSSL_CTX* ctx)
  17772. {
  17773. if (ctx == NULL) {
  17774. return NULL;
  17775. }
  17776. return ctx->param;
  17777. }
  17778. WOLFSSL_X509_VERIFY_PARAM* wolfSSL_get0_param(WOLFSSL* ssl)
  17779. {
  17780. if (ssl == NULL) {
  17781. return NULL;
  17782. }
  17783. return ssl->param;
  17784. }
  17785. #endif /* OPENSSL_EXTRA */
  17786. #if defined(OPENSSL_EXTRA)
  17787. int wolfSSL_i2d_ASN1_INTEGER(WOLFSSL_ASN1_INTEGER* a, unsigned char** out)
  17788. {
  17789. int ret = 0;
  17790. word32 idx = 0;
  17791. int len;
  17792. int preAlloc = 1;
  17793. WOLFSSL_ENTER("wolfSSL_i2d_ASN1_INTEGER");
  17794. if (a == NULL || a->data == NULL || a->length <= 0 || out == NULL) {
  17795. WOLFSSL_MSG("Bad parameter.");
  17796. ret = WOLFSSL_FATAL_ERROR;
  17797. }
  17798. if (ret == 0 && *out == NULL) {
  17799. preAlloc = 0;
  17800. *out = (unsigned char*)XMALLOC(a->length, NULL, DYNAMIC_TYPE_ASN1);
  17801. if (*out == NULL) {
  17802. WOLFSSL_MSG("Failed to allocate output buffer.");
  17803. ret = WOLFSSL_FATAL_ERROR;
  17804. }
  17805. }
  17806. if (ret == 0) {
  17807. /*
  17808. * A WOLFSSL_ASN1_INTEGER stores the DER buffer of the integer in its
  17809. * "data" field, but it's only the magnitude of the number (i.e. the
  17810. * sign isn't encoded). The "negative" field is 1 if the value should
  17811. * be interpreted as negative and 0 otherwise. If the value is negative,
  17812. * we need to output the 2's complement of the value in the DER output.
  17813. */
  17814. XMEMCPY(*out, a->data, a->length);
  17815. if (a->negative) {
  17816. if (GetLength(a->data, &idx, &len, a->length) < 0) {
  17817. ret = WOLFSSL_FATAL_ERROR;
  17818. }
  17819. else {
  17820. ++idx;
  17821. for (; (int)idx < a->length; ++idx) {
  17822. (*out)[idx] = ~(*out)[idx];
  17823. }
  17824. do {
  17825. --idx;
  17826. ++(*out)[idx];
  17827. } while ((*out)[idx] == 0);
  17828. }
  17829. }
  17830. }
  17831. if (ret == 0) {
  17832. ret = a->length;
  17833. if (preAlloc) {
  17834. *out += a->length;
  17835. }
  17836. }
  17837. WOLFSSL_LEAVE("wolfSSL_i2d_ASN1_INTEGER", ret);
  17838. return ret;
  17839. }
  17840. WOLFSSL_ASN1_INTEGER* wolfSSL_d2i_ASN1_INTEGER(WOLFSSL_ASN1_INTEGER** a,
  17841. const unsigned char** in,
  17842. long inSz)
  17843. {
  17844. WOLFSSL_ASN1_INTEGER* ret = NULL;
  17845. int err = 0;
  17846. word32 idx = 0;
  17847. int len;
  17848. WOLFSSL_ENTER("wolfSSL_d2i_ASN1_INTEGER");
  17849. if (in == NULL || *in == NULL || inSz <= 0) {
  17850. WOLFSSL_MSG("Bad parameter");
  17851. err = 1;
  17852. }
  17853. if (err == 0 && (*in)[0] != ASN_INTEGER) {
  17854. WOLFSSL_MSG("Tag doesn't indicate integer type.");
  17855. err = 1;
  17856. }
  17857. if (err == 0) {
  17858. ret = wolfSSL_ASN1_INTEGER_new();
  17859. if (ret == NULL) {
  17860. err = 1;
  17861. }
  17862. else {
  17863. ret->type = V_ASN1_INTEGER;
  17864. }
  17865. }
  17866. if (err == 0 && inSz > (long)sizeof(ret->intData)) {
  17867. ret->data = (unsigned char*)XMALLOC(inSz, NULL, DYNAMIC_TYPE_ASN1);
  17868. if (ret->data == NULL) {
  17869. err = 1;
  17870. }
  17871. else {
  17872. ret->isDynamic = 1;
  17873. ret->dataMax = (word32)inSz;
  17874. }
  17875. }
  17876. if (err == 0) {
  17877. XMEMCPY(ret->data, *in, inSz);
  17878. ret->length = (word32)inSz;
  17879. /* Advance to the end of the length field.*/
  17880. if (GetLength(*in, &idx, &len, (word32)inSz) < 0) {
  17881. err = 1;
  17882. }
  17883. else {
  17884. /* See 2's complement comment in wolfSSL_d2i_ASN1_INTEGER. */
  17885. ret->negative = (*in)[idx+1] & 0x80;
  17886. if (ret->negative) {
  17887. ++idx;
  17888. for (; (int)idx < inSz; ++idx) {
  17889. ret->data[idx] = ~ret->data[idx];
  17890. }
  17891. do {
  17892. --idx;
  17893. ++ret->data[idx];
  17894. } while (ret->data[idx] == 0);
  17895. ret->type |= V_ASN1_NEG_INTEGER;
  17896. }
  17897. if (a != NULL) {
  17898. *a = ret;
  17899. }
  17900. }
  17901. }
  17902. if (err != 0) {
  17903. wolfSSL_ASN1_INTEGER_free(ret);
  17904. ret = NULL;
  17905. }
  17906. return ret;
  17907. }
  17908. #endif /* OPENSSL_EXTRA */
  17909. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  17910. /* Used to create a new WOLFSSL_ASN1_INTEGER structure.
  17911. * returns a pointer to new structure on success and NULL on failure
  17912. */
  17913. WOLFSSL_ASN1_INTEGER* wolfSSL_ASN1_INTEGER_new(void)
  17914. {
  17915. WOLFSSL_ASN1_INTEGER* a;
  17916. a = (WOLFSSL_ASN1_INTEGER*)XMALLOC(sizeof(WOLFSSL_ASN1_INTEGER), NULL,
  17917. DYNAMIC_TYPE_OPENSSL);
  17918. if (a == NULL) {
  17919. return NULL;
  17920. }
  17921. XMEMSET(a, 0, sizeof(WOLFSSL_ASN1_INTEGER));
  17922. a->data = a->intData;
  17923. a->isDynamic = 0;
  17924. a->dataMax = WOLFSSL_ASN1_INTEGER_MAX;
  17925. a->length = 0;
  17926. return a;
  17927. }
  17928. /* free's internal elements of WOLFSSL_ASN1_INTEGER and free's "in" itself */
  17929. void wolfSSL_ASN1_INTEGER_free(WOLFSSL_ASN1_INTEGER* in)
  17930. {
  17931. if (in != NULL) {
  17932. if (in->isDynamic) {
  17933. XFREE(in->data, NULL, DYNAMIC_TYPE_OPENSSL);
  17934. }
  17935. XFREE(in, NULL, DYNAMIC_TYPE_OPENSSL);
  17936. }
  17937. }
  17938. /* Duplicate all WOLFSSL_ASN1_INTEGER members from src to dup
  17939. * src : WOLFSSL_ASN1_INTEGER to duplicate
  17940. * Returns pointer to duplicate WOLFSSL_ASN1_INTEGER
  17941. */
  17942. WOLFSSL_ASN1_INTEGER* wolfSSL_ASN1_INTEGER_dup(const WOLFSSL_ASN1_INTEGER* src)
  17943. {
  17944. WOLFSSL_ASN1_INTEGER* copy;
  17945. WOLFSSL_ENTER("wolfSSL_ASN1_INTEGER_dup");
  17946. if (!src)
  17947. return NULL;
  17948. copy = wolfSSL_ASN1_INTEGER_new();
  17949. if (copy == NULL)
  17950. return NULL;
  17951. copy->negative = src->negative;
  17952. copy->dataMax = src->dataMax;
  17953. copy->isDynamic = src->isDynamic;
  17954. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  17955. copy->length = src->length;
  17956. #endif
  17957. XSTRNCPY((char*)copy->intData,(const char*)src->intData,WOLFSSL_ASN1_INTEGER_MAX);
  17958. if (copy->isDynamic && src->data && copy->dataMax) {
  17959. copy->data = (unsigned char*)
  17960. XMALLOC(src->dataMax,NULL,DYNAMIC_TYPE_OPENSSL);
  17961. if (copy->data == NULL) {
  17962. wolfSSL_ASN1_INTEGER_free(copy);
  17963. return NULL;
  17964. }
  17965. XMEMCPY(copy->data, src->data, copy->dataMax);
  17966. }
  17967. return copy;
  17968. }
  17969. /* sets the value of WOLFSSL_ASN1_INTEGER a to the long value v. */
  17970. int wolfSSL_ASN1_INTEGER_set(WOLFSSL_ASN1_INTEGER *a, long v)
  17971. {
  17972. int ret = WOLFSSL_SUCCESS; /* return 1 for success and 0 for failure */
  17973. int j;
  17974. unsigned int i = 0;
  17975. unsigned char tmp[sizeof(long)+1] = {0};
  17976. int pad = 0;
  17977. if (a != NULL) {
  17978. /* dynamically create data buffer, +2 for type and length */
  17979. a->data = (unsigned char*)XMALLOC((sizeof(long)+1) + 2, NULL,
  17980. DYNAMIC_TYPE_OPENSSL);
  17981. if (a->data == NULL) {
  17982. wolfSSL_ASN1_INTEGER_free(a);
  17983. ret = WOLFSSL_FAILURE;
  17984. }
  17985. else {
  17986. a->dataMax = (int)(sizeof(long)+1) + 2;
  17987. a->isDynamic = 1;
  17988. }
  17989. }
  17990. else {
  17991. /* Invalid parameter */
  17992. ret = WOLFSSL_FAILURE;
  17993. }
  17994. if (ret != WOLFSSL_FAILURE) {
  17995. /* Set type */
  17996. a->data[i++] = ASN_INTEGER;
  17997. /* Check for negative */
  17998. if (v < 0) {
  17999. a->negative = 1;
  18000. v *= -1;
  18001. }
  18002. /* Create char buffer */
  18003. for (j = 0; j < (int)sizeof(long); j++) {
  18004. if (v == 0) {
  18005. break;
  18006. }
  18007. tmp[j] = (unsigned char)(v & 0xff);
  18008. v >>= 8;
  18009. }
  18010. /* 0 pad to indicate positive number when top bit set. */
  18011. if ((!a->negative) && (j > 0) && (tmp[j-1] & 0x80)) {
  18012. pad = 1;
  18013. }
  18014. /* Set length */
  18015. a->data[i++] = (unsigned char)(((j == 0) ? ++j : j) + pad);
  18016. /* +2 for type and length */
  18017. a->length = j + pad + 2;
  18018. /* Add padding if required. */
  18019. if (pad) {
  18020. a->data[i++] = 0;
  18021. }
  18022. /* Copy to data */
  18023. for (; j > 0; j--) {
  18024. a->data[i++] = tmp[j-1];
  18025. }
  18026. }
  18027. return ret;
  18028. }
  18029. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  18030. #if defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(WOLFSSL_NGINX) || \
  18031. defined(WOLFSSL_HAPROXY) || defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  18032. #ifndef NO_ASN_TIME
  18033. #ifndef NO_BIO
  18034. int wolfSSL_ASN1_TIME_print(WOLFSSL_BIO* bio, const WOLFSSL_ASN1_TIME* asnTime)
  18035. {
  18036. char buf[MAX_TIME_STRING_SZ];
  18037. int ret = WOLFSSL_SUCCESS;
  18038. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_print");
  18039. if (bio == NULL || asnTime == NULL) {
  18040. WOLFSSL_MSG("NULL function argument");
  18041. return WOLFSSL_FAILURE;
  18042. }
  18043. if (wolfSSL_ASN1_TIME_to_string((WOLFSSL_ASN1_TIME*)asnTime, buf,
  18044. sizeof(buf)) == NULL) {
  18045. XMEMSET(buf, 0, MAX_TIME_STRING_SZ);
  18046. XSTRNCPY(buf, "Bad time value", sizeof(buf)-1);
  18047. ret = WOLFSSL_FAILURE;
  18048. }
  18049. if (wolfSSL_BIO_write(bio, buf, (int)XSTRLEN(buf)) <= 0) {
  18050. WOLFSSL_MSG("Unable to write to bio");
  18051. return WOLFSSL_FAILURE;
  18052. }
  18053. return ret;
  18054. }
  18055. #endif /* !NO_BIO */
  18056. char* wolfSSL_ASN1_TIME_to_string(WOLFSSL_ASN1_TIME* t, char* buf, int len)
  18057. {
  18058. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_to_string");
  18059. if (t == NULL || buf == NULL || len < 5) {
  18060. WOLFSSL_MSG("Bad argument");
  18061. return NULL;
  18062. }
  18063. if (t->length > len) {
  18064. WOLFSSL_MSG("Length of date is longer then buffer");
  18065. return NULL;
  18066. }
  18067. if (!GetTimeString(t->data, t->type, buf, len)) {
  18068. return NULL;
  18069. }
  18070. return buf;
  18071. }
  18072. /* Converts a WOLFSSL_ASN1_TIME to a struct tm. Returns WOLFSSL_SUCCESS on
  18073. * success and WOLFSSL_FAILURE on failure. */
  18074. static int Asn1TimeToTm(WOLFSSL_ASN1_TIME* asnTime, struct tm* tm)
  18075. {
  18076. unsigned char* asn1TimeBuf;
  18077. int asn1TimeBufLen;
  18078. int i = 0;
  18079. int bytesNeeded = 11;
  18080. if (asnTime == NULL) {
  18081. WOLFSSL_MSG("asnTime is NULL");
  18082. return WOLFSSL_FAILURE;
  18083. }
  18084. if (tm == NULL) {
  18085. WOLFSSL_MSG("tm is NULL");
  18086. return WOLFSSL_FAILURE;
  18087. }
  18088. asn1TimeBuf = wolfSSL_ASN1_TIME_get_data(asnTime);
  18089. if (asn1TimeBuf == NULL) {
  18090. WOLFSSL_MSG("Failed to get WOLFSSL_ASN1_TIME buffer.");
  18091. return WOLFSSL_FAILURE;
  18092. }
  18093. asn1TimeBufLen = wolfSSL_ASN1_TIME_get_length(asnTime);
  18094. if (asn1TimeBufLen <= 0) {
  18095. WOLFSSL_MSG("Failed to get WOLFSSL_ASN1_TIME buffer length.");
  18096. return WOLFSSL_FAILURE;
  18097. }
  18098. XMEMSET(tm, 0, sizeof(struct tm));
  18099. /* Convert ASN1_time to struct tm */
  18100. /* Check type */
  18101. if (asnTime->type == ASN_UTC_TIME) {
  18102. /* 2-digit year */
  18103. bytesNeeded += 2;
  18104. if (bytesNeeded > asn1TimeBufLen) {
  18105. WOLFSSL_MSG("WOLFSSL_ASN1_TIME buffer length is invalid.");
  18106. return WOLFSSL_FAILURE;
  18107. }
  18108. if (asn1TimeBuf[bytesNeeded-1] != 'Z') {
  18109. WOLFSSL_MSG("Expecting UTC time.");
  18110. return WOLFSSL_FAILURE;
  18111. }
  18112. tm->tm_year = (asn1TimeBuf[i] - '0') * 10; i++;
  18113. tm->tm_year += asn1TimeBuf[i] - '0'; i++;
  18114. if (tm->tm_year < 70) {
  18115. tm->tm_year += 100;
  18116. }
  18117. }
  18118. else if (asnTime->type == ASN_GENERALIZED_TIME) {
  18119. /* 4-digit year */
  18120. bytesNeeded += 4;
  18121. if (bytesNeeded > asn1TimeBufLen) {
  18122. WOLFSSL_MSG("WOLFSSL_ASN1_TIME buffer length is invalid.");
  18123. return WOLFSSL_FAILURE;
  18124. }
  18125. if (asn1TimeBuf[bytesNeeded-1] != 'Z') {
  18126. WOLFSSL_MSG("Expecting UTC time.");
  18127. return WOLFSSL_FAILURE;
  18128. }
  18129. tm->tm_year = (asn1TimeBuf[i] - '0') * 1000; i++;
  18130. tm->tm_year += (asn1TimeBuf[i] - '0') * 100; i++;
  18131. tm->tm_year += (asn1TimeBuf[i] - '0') * 10; i++;
  18132. tm->tm_year += asn1TimeBuf[i] - '0'; i++;
  18133. tm->tm_year -= 1900;
  18134. }
  18135. else {
  18136. WOLFSSL_MSG("asnTime->type is invalid.");
  18137. return WOLFSSL_FAILURE;
  18138. }
  18139. tm->tm_mon = (asn1TimeBuf[i] - '0') * 10; i++;
  18140. tm->tm_mon += (asn1TimeBuf[i] - '0') - 1; i++; /* January is 0 not 1 */
  18141. tm->tm_mday = (asn1TimeBuf[i] - '0') * 10; i++;
  18142. tm->tm_mday += (asn1TimeBuf[i] - '0'); i++;
  18143. tm->tm_hour = (asn1TimeBuf[i] - '0') * 10; i++;
  18144. tm->tm_hour += (asn1TimeBuf[i] - '0'); i++;
  18145. tm->tm_min = (asn1TimeBuf[i] - '0') * 10; i++;
  18146. tm->tm_min += (asn1TimeBuf[i] - '0'); i++;
  18147. tm->tm_sec = (asn1TimeBuf[i] - '0') * 10; i++;
  18148. tm->tm_sec += (asn1TimeBuf[i] - '0');
  18149. #ifdef XMKTIME
  18150. /* Call XMKTIME on tm to get the tm_wday and tm_yday fields populated. */
  18151. XMKTIME(tm);
  18152. #endif
  18153. return WOLFSSL_SUCCESS;
  18154. }
  18155. int wolfSSL_ASN1_TIME_to_tm(const WOLFSSL_ASN1_TIME* asnTime, struct tm* tm)
  18156. {
  18157. time_t currentTime;
  18158. struct tm *tmpTs;
  18159. #if defined(NEED_TMP_TIME)
  18160. /* for use with gmtime_r */
  18161. struct tm tmpTimeStorage;
  18162. tmpTs = &tmpTimeStorage;
  18163. #else
  18164. tmpTs = NULL;
  18165. #endif
  18166. (void)tmpTs;
  18167. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_to_tm");
  18168. /* If asnTime is NULL, then the current time is converted. */
  18169. if (asnTime == NULL) {
  18170. if (tm == NULL) {
  18171. WOLFSSL_MSG("asnTime and tm are both NULL");
  18172. return WOLFSSL_FAILURE;
  18173. }
  18174. currentTime = wc_Time(0);
  18175. if (currentTime <= 0) {
  18176. WOLFSSL_MSG("Failed to get current time.");
  18177. return WOLFSSL_FAILURE;
  18178. }
  18179. tm = XGMTIME(&currentTime, tmpTs);
  18180. if (tm == NULL) {
  18181. WOLFSSL_MSG("Failed to convert current time to UTC.");
  18182. return WOLFSSL_FAILURE;
  18183. }
  18184. return WOLFSSL_SUCCESS;
  18185. }
  18186. /* If tm is NULL this function performs a format check on asnTime only. */
  18187. if (tm == NULL) {
  18188. return wolfSSL_ASN1_TIME_check(asnTime);
  18189. }
  18190. return Asn1TimeToTm((WOLFSSL_ASN1_TIME*)asnTime, tm);
  18191. }
  18192. #endif /* !NO_ASN_TIME */
  18193. #endif /* WOLFSSL_MYSQL_COMPATIBLE || WOLFSSL_NGINX || WOLFSSL_HAPROXY ||
  18194. OPENSSL_EXTRA*/
  18195. #ifdef OPENSSL_EXTRA
  18196. int wolfSSL_ASN1_INTEGER_cmp(const WOLFSSL_ASN1_INTEGER* a,
  18197. const WOLFSSL_ASN1_INTEGER* b)
  18198. {
  18199. int ret = 0;
  18200. WOLFSSL_ENTER("wolfSSL_ASN1_INTEGER_cmp");
  18201. if (a == NULL || b == NULL) {
  18202. WOLFSSL_MSG("Bad parameter.");
  18203. ret = WOLFSSL_FATAL_ERROR;
  18204. }
  18205. if (ret == 0 && ((a->length != b->length) ||
  18206. ((a->negative == 0) != (b->negative == 0)))) {
  18207. ret = WOLFSSL_FATAL_ERROR;
  18208. }
  18209. if (ret == 0) {
  18210. ret = XMEMCMP(a->data, b->data, a->length);
  18211. }
  18212. WOLFSSL_LEAVE("wolfSSL_ASN1_INTEGER_cmp", ret);
  18213. return ret;
  18214. }
  18215. long wolfSSL_ASN1_INTEGER_get(const WOLFSSL_ASN1_INTEGER* a)
  18216. {
  18217. long ret = 1;
  18218. WOLFSSL_BIGNUM* bn = NULL;
  18219. WOLFSSL_ENTER("ASN1_INTEGER_get");
  18220. if (a == NULL) {
  18221. /* OpenSSL returns 0 when a is NULL and -1 if there is an error. Quoting
  18222. * the documentation:
  18223. *
  18224. * "ASN1_INTEGER_get() also returns the value of a but it returns 0 if a
  18225. * is NULL and -1 on error (which is ambiguous because -1 is a
  18226. * legitimate value for an ASN1_INTEGER). New applications should use
  18227. * ASN1_INTEGER_get_int64() instead."
  18228. * */
  18229. ret = 0;
  18230. }
  18231. if (ret > 0) {
  18232. bn = wolfSSL_ASN1_INTEGER_to_BN(a, NULL);
  18233. if (bn == NULL) {
  18234. ret = -1;
  18235. }
  18236. }
  18237. if (ret > 0) {
  18238. ret = wolfSSL_BN_get_word(bn);
  18239. if (a->negative == 1) {
  18240. ret = -ret;
  18241. }
  18242. }
  18243. if (bn != NULL) {
  18244. wolfSSL_BN_free(bn);
  18245. }
  18246. WOLFSSL_LEAVE("ASN1_INTEGER_get", (int)ret);
  18247. return ret;
  18248. }
  18249. #endif /* OPENSSL_EXTRA */
  18250. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  18251. /* Gets an index to store SSL structure at.
  18252. *
  18253. * Returns positive index on success and negative values on failure
  18254. */
  18255. int wolfSSL_get_ex_data_X509_STORE_CTX_idx(void)
  18256. {
  18257. WOLFSSL_ENTER("wolfSSL_get_ex_data_X509_STORE_CTX_idx");
  18258. /* store SSL at index 0 */
  18259. return 0;
  18260. }
  18261. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  18262. #ifdef OPENSSL_EXTRA
  18263. /* Sets a function callback that will send information about the state of all
  18264. * WOLFSSL objects that have been created by the WOLFSSL_CTX structure passed
  18265. * in.
  18266. *
  18267. * ctx WOLFSSL_CTX structure to set callback function in
  18268. * f callback function to use
  18269. */
  18270. void wolfSSL_CTX_set_info_callback(WOLFSSL_CTX* ctx,
  18271. void (*f)(const WOLFSSL* ssl, int type, int val))
  18272. {
  18273. WOLFSSL_ENTER("wolfSSL_CTX_set_info_callback");
  18274. if (ctx == NULL) {
  18275. WOLFSSL_MSG("Bad function argument");
  18276. }
  18277. else {
  18278. ctx->CBIS = f;
  18279. }
  18280. }
  18281. unsigned long wolfSSL_ERR_peek_error(void)
  18282. {
  18283. WOLFSSL_ENTER("wolfSSL_ERR_peek_error");
  18284. return wolfSSL_ERR_peek_error_line_data(NULL, NULL, NULL, NULL);
  18285. }
  18286. int wolfSSL_ERR_GET_LIB(unsigned long err)
  18287. {
  18288. unsigned long value;
  18289. value = (err & 0xFFFFFFL);
  18290. switch (value) {
  18291. case -SSL_R_HTTP_REQUEST:
  18292. return ERR_LIB_SSL;
  18293. case PEM_R_NO_START_LINE:
  18294. case PEM_R_PROBLEMS_GETTING_PASSWORD:
  18295. case PEM_R_BAD_PASSWORD_READ:
  18296. case PEM_R_BAD_DECRYPT:
  18297. return ERR_LIB_PEM;
  18298. case EVP_R_BAD_DECRYPT:
  18299. case EVP_R_BN_DECODE_ERROR:
  18300. case EVP_R_DECODE_ERROR:
  18301. case EVP_R_PRIVATE_KEY_DECODE_ERROR:
  18302. return ERR_LIB_EVP;
  18303. case ASN1_R_HEADER_TOO_LONG:
  18304. return ERR_LIB_ASN1;
  18305. default:
  18306. return 0;
  18307. }
  18308. }
  18309. /* This function is to find global error values that are the same through out
  18310. * all library version. With wolfSSL having only one set of error codes the
  18311. * return value is pretty straight forward. The only thing needed is all wolfSSL
  18312. * error values are typically negative.
  18313. *
  18314. * Returns the error reason
  18315. */
  18316. int wolfSSL_ERR_GET_REASON(unsigned long err)
  18317. {
  18318. int ret = (int)err;
  18319. WOLFSSL_ENTER("wolfSSL_ERR_GET_REASON");
  18320. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  18321. /* Nginx looks for this error to know to stop parsing certificates. */
  18322. if (err == ((ERR_LIB_PEM << 24) | PEM_R_NO_START_LINE))
  18323. return PEM_R_NO_START_LINE;
  18324. if (err == ((ERR_LIB_SSL << 24) | -SSL_R_HTTP_REQUEST))
  18325. return SSL_R_HTTP_REQUEST;
  18326. #endif
  18327. #if defined(OPENSSL_ALL) && defined(WOLFSSL_PYTHON)
  18328. if (err == ((ERR_LIB_ASN1 << 24) | ASN1_R_HEADER_TOO_LONG))
  18329. return ASN1_R_HEADER_TOO_LONG;
  18330. #endif
  18331. /* check if error value is in range of wolfSSL errors */
  18332. ret = 0 - ret; /* setting as negative value */
  18333. /* wolfCrypt range is less than MAX (-100)
  18334. wolfSSL range is MIN (-300) and lower */
  18335. if (ret < MAX_CODE_E && ret > MIN_CODE_E) {
  18336. return ret;
  18337. }
  18338. else {
  18339. WOLFSSL_MSG("Not in range of typical error values");
  18340. ret = (int)err;
  18341. }
  18342. return ret;
  18343. }
  18344. /* returns a string that describes the alert
  18345. *
  18346. * alertID the alert value to look up
  18347. */
  18348. const char* wolfSSL_alert_type_string_long(int alertID)
  18349. {
  18350. WOLFSSL_ENTER("wolfSSL_alert_type_string_long");
  18351. return AlertTypeToString(alertID);
  18352. }
  18353. const char* wolfSSL_alert_desc_string_long(int alertID)
  18354. {
  18355. WOLFSSL_ENTER("wolfSSL_alert_desc_string_long");
  18356. return AlertTypeToString(alertID);
  18357. }
  18358. /* Gets the current state of the WOLFSSL structure
  18359. *
  18360. * ssl WOLFSSL structure to get state of
  18361. *
  18362. * Returns a human readable string of the WOLFSSL structure state
  18363. */
  18364. const char* wolfSSL_state_string_long(const WOLFSSL* ssl)
  18365. {
  18366. static const char* OUTPUT_STR[14][6][3] = {
  18367. {
  18368. {"SSLv3 Initialization","SSLv3 Initialization","SSLv3 Initialization"},
  18369. {"TLSv1 Initialization","TLSv2 Initialization","TLSv2 Initialization"},
  18370. {"TLSv1_1 Initialization","TLSv1_1 Initialization","TLSv1_1 Initialization"},
  18371. {"TLSv1_2 Initialization","TLSv1_2 Initialization","TLSv1_2 Initialization"},
  18372. {"DTLSv1 Initialization","DTLSv1 Initialization","DTLSv1 Initialization"},
  18373. {"DTLSv1_2 Initialization","DTLSv1_2 Initialization","DTLSv1_2 Initialization"},
  18374. },
  18375. {
  18376. {"SSLv3 read Server Hello Verify Request",
  18377. "SSLv3 write Server Hello Verify Request",
  18378. "SSLv3 Server Hello Verify Request"},
  18379. {"TLSv1 read Server Hello Verify Request",
  18380. "TLSv1 write Server Hello Verify Request",
  18381. "TLSv1 Server Hello Verify Request"},
  18382. {"TLSv1_1 read Server Hello Verify Request",
  18383. "TLSv1_1 write Server Hello Verify Request",
  18384. "TLSv1_1 Server Hello Verify Request"},
  18385. {"TLSv1_2 read Server Hello Verify Request",
  18386. "TLSv1_2 write Server Hello Verify Request",
  18387. "TLSv1_2 Server Hello Verify Request"},
  18388. {"DTLSv1 read Server Hello Verify Request",
  18389. "DTLSv1 write Server Hello Verify Request",
  18390. "DTLSv1 Server Hello Verify Request"},
  18391. {"DTLSv1_2 read Server Hello Verify Request",
  18392. "DTLSv1_2 write Server Hello Verify Request",
  18393. "DTLSv1_2 Server Hello Verify Request"},
  18394. },
  18395. {
  18396. {"SSLv3 read Server Hello",
  18397. "SSLv3 write Server Hello",
  18398. "SSLv3 Server Hello"},
  18399. {"TLSv1 read Server Hello",
  18400. "TLSv1 write Server Hello",
  18401. "TLSv1 Server Hello"},
  18402. {"TLSv1_1 read Server Hello",
  18403. "TLSv1_1 write Server Hello",
  18404. "TLSv1_1 Server Hello"},
  18405. {"TLSv1_2 read Server Hello",
  18406. "TLSv1_2 write Server Hello",
  18407. "TLSv1_2 Server Hello"},
  18408. {"DTLSv1 read Server Hello",
  18409. "DTLSv1 write Server Hello",
  18410. "DTLSv1 Server Hello"},
  18411. {"DTLSv1_2 read Server Hello"
  18412. "DTLSv1_2 write Server Hello",
  18413. "DTLSv1_2 Server Hello",
  18414. },
  18415. },
  18416. {
  18417. {"SSLv3 read Server Session Ticket",
  18418. "SSLv3 write Server Session Ticket",
  18419. "SSLv3 Server Session Ticket"},
  18420. {"TLSv1 read Server Session Ticket",
  18421. "TLSv1 write Server Session Ticket",
  18422. "TLSv1 Server Session Ticket"},
  18423. {"TLSv1_1 read Server Session Ticket",
  18424. "TLSv1_1 write Server Session Ticket",
  18425. "TLSv1_1 Server Session Ticket"},
  18426. {"TLSv1_2 read Server Session Ticket",
  18427. "TLSv1_2 write Server Session Ticket",
  18428. "TLSv1_2 Server Session Ticket"},
  18429. {"DTLSv1 read Server Session Ticket",
  18430. "DTLSv1 write Server Session Ticket",
  18431. "DTLSv1 Server Session Ticket"},
  18432. {"DTLSv1_2 read Server Session Ticket",
  18433. "DTLSv1_2 write Server Session Ticket",
  18434. "DTLSv1_2 Server Session Ticket"},
  18435. },
  18436. {
  18437. {"SSLv3 read Server Cert",
  18438. "SSLv3 write Server Cert",
  18439. "SSLv3 Server Cert"},
  18440. {"TLSv1 read Server Cert",
  18441. "TLSv1 write Server Cert",
  18442. "TLSv1 Server Cert"},
  18443. {"TLSv1_1 read Server Cert",
  18444. "TLSv1_1 write Server Cert",
  18445. "TLSv1_1 Server Cert"},
  18446. {"TLSv1_2 read Server Cert",
  18447. "TLSv1_2 write Server Cert",
  18448. "TLSv1_2 Server Cert"},
  18449. {"DTLSv1 read Server Cert",
  18450. "DTLSv1 write Server Cert",
  18451. "DTLSv1 Server Cert"},
  18452. {"DTLSv1_2 read Server Cert",
  18453. "DTLSv1_2 write Server Cert",
  18454. "DTLSv1_2 Server Cert"},
  18455. },
  18456. {
  18457. {"SSLv3 read Server Key Exchange",
  18458. "SSLv3 write Server Key Exchange",
  18459. "SSLv3 Server Key Exchange"},
  18460. {"TLSv1 read Server Key Exchange",
  18461. "TLSv1 write Server Key Exchange",
  18462. "TLSv1 Server Key Exchange"},
  18463. {"TLSv1_1 read Server Key Exchange",
  18464. "TLSv1_1 write Server Key Exchange",
  18465. "TLSv1_1 Server Key Exchange"},
  18466. {"TLSv1_2 read Server Key Exchange",
  18467. "TLSv1_2 write Server Key Exchange",
  18468. "TLSv1_2 Server Key Exchange"},
  18469. {"DTLSv1 read Server Key Exchange",
  18470. "DTLSv1 write Server Key Exchange",
  18471. "DTLSv1 Server Key Exchange"},
  18472. {"DTLSv1_2 read Server Key Exchange",
  18473. "DTLSv1_2 write Server Key Exchange",
  18474. "DTLSv1_2 Server Key Exchange"},
  18475. },
  18476. {
  18477. {"SSLv3 read Server Hello Done",
  18478. "SSLv3 write Server Hello Done",
  18479. "SSLv3 Server Hello Done"},
  18480. {"TLSv1 read Server Hello Done",
  18481. "TLSv1 write Server Hello Done",
  18482. "TLSv1 Server Hello Done"},
  18483. {"TLSv1_1 read Server Hello Done",
  18484. "TLSv1_1 write Server Hello Done",
  18485. "TLSv1_1 Server Hello Done"},
  18486. {"TLSv1_2 read Server Hello Done",
  18487. "TLSv1_2 write Server Hello Done",
  18488. "TLSv1_2 Server Hello Done"},
  18489. {"DTLSv1 read Server Hello Done",
  18490. "DTLSv1 write Server Hello Done",
  18491. "DTLSv1 Server Hello Done"},
  18492. {"DTLSv1_2 read Server Hello Done",
  18493. "DTLSv1_2 write Server Hello Done",
  18494. "DTLSv1_2 Server Hello Done"},
  18495. },
  18496. {
  18497. {"SSLv3 read Server Change CipherSpec",
  18498. "SSLv3 write Server Change CipherSpec",
  18499. "SSLv3 Server Change CipherSpec"},
  18500. {"TLSv1 read Server Change CipherSpec",
  18501. "TLSv1 write Server Change CipherSpec",
  18502. "TLSv1 Server Change CipherSpec"},
  18503. {"TLSv1_1 read Server Change CipherSpec",
  18504. "TLSv1_1 write Server Change CipherSpec",
  18505. "TLSv1_1 Server Change CipherSpec"},
  18506. {"TLSv1_2 read Server Change CipherSpec",
  18507. "TLSv1_2 write Server Change CipherSpec",
  18508. "TLSv1_2 Server Change CipherSpec"},
  18509. {"DTLSv1 read Server Change CipherSpec",
  18510. "DTLSv1 write Server Change CipherSpec",
  18511. "DTLSv1 Server Change CipherSpec"},
  18512. {"DTLSv1_2 read Server Change CipherSpec",
  18513. "DTLSv1_2 write Server Change CipherSpec",
  18514. "DTLSv1_2 Server Change CipherSpec"},
  18515. },
  18516. {
  18517. {"SSLv3 read Server Finished",
  18518. "SSLv3 write Server Finished",
  18519. "SSLv3 Server Finished"},
  18520. {"TLSv1 read Server Finished",
  18521. "TLSv1 write Server Finished",
  18522. "TLSv1 Server Finished"},
  18523. {"TLSv1_1 read Server Finished",
  18524. "TLSv1_1 write Server Finished",
  18525. "TLSv1_1 Server Finished"},
  18526. {"TLSv1_2 read Server Finished",
  18527. "TLSv1_2 write Server Finished",
  18528. "TLSv1_2 Server Finished"},
  18529. {"DTLSv1 read Server Finished",
  18530. "DTLSv1 write Server Finished",
  18531. "DTLSv1 Server Finished"},
  18532. {"DTLSv1_2 read Server Finished",
  18533. "DTLSv1_2 write Server Finished",
  18534. "DTLSv1_2 Server Finished"},
  18535. },
  18536. {
  18537. {"SSLv3 read Client Hello",
  18538. "SSLv3 write Client Hello",
  18539. "SSLv3 Client Hello"},
  18540. {"TLSv1 read Client Hello",
  18541. "TLSv1 write Client Hello",
  18542. "TLSv1 Client Hello"},
  18543. {"TLSv1_1 read Client Hello",
  18544. "TLSv1_1 write Client Hello",
  18545. "TLSv1_1 Client Hello"},
  18546. {"TLSv1_2 read Client Hello",
  18547. "TLSv1_2 write Client Hello",
  18548. "TLSv1_2 Client Hello"},
  18549. {"DTLSv1 read Client Hello",
  18550. "DTLSv1 write Client Hello",
  18551. "DTLSv1 Client Hello"},
  18552. {"DTLSv1_2 read Client Hello",
  18553. "DTLSv1_2 write Client Hello",
  18554. "DTLSv1_2 Client Hello"},
  18555. },
  18556. {
  18557. {"SSLv3 read Client Key Exchange",
  18558. "SSLv3 write Client Key Exchange",
  18559. "SSLv3 Client Key Exchange"},
  18560. {"TLSv1 read Client Key Exchange",
  18561. "TLSv1 write Client Key Exchange",
  18562. "TLSv1 Client Key Exchange"},
  18563. {"TLSv1_1 read Client Key Exchange",
  18564. "TLSv1_1 write Client Key Exchange",
  18565. "TLSv1_1 Client Key Exchange"},
  18566. {"TLSv1_2 read Client Key Exchange",
  18567. "TLSv1_2 write Client Key Exchange",
  18568. "TLSv1_2 Client Key Exchange"},
  18569. {"DTLSv1 read Client Key Exchange",
  18570. "DTLSv1 write Client Key Exchange",
  18571. "DTLSv1 Client Key Exchange"},
  18572. {"DTLSv1_2 read Client Key Exchange",
  18573. "DTLSv1_2 write Client Key Exchange",
  18574. "DTLSv1_2 Client Key Exchange"},
  18575. },
  18576. {
  18577. {"SSLv3 read Client Change CipherSpec",
  18578. "SSLv3 write Client Change CipherSpec",
  18579. "SSLv3 Client Change CipherSpec"},
  18580. {"TLSv1 read Client Change CipherSpec",
  18581. "TLSv1 write Client Change CipherSpec",
  18582. "TLSv1 Client Change CipherSpec"},
  18583. {"TLSv1_1 read Client Change CipherSpec",
  18584. "TLSv1_1 write Client Change CipherSpec",
  18585. "TLSv1_1 Client Change CipherSpec"},
  18586. {"TLSv1_2 read Client Change CipherSpec",
  18587. "TLSv1_2 write Client Change CipherSpec",
  18588. "TLSv1_2 Client Change CipherSpec"},
  18589. {"DTLSv1 read Client Change CipherSpec",
  18590. "DTLSv1 write Client Change CipherSpec",
  18591. "DTLSv1 Client Change CipherSpec"},
  18592. {"DTLSv1_2 read Client Change CipherSpec",
  18593. "DTLSv1_2 write Client Change CipherSpec",
  18594. "DTLSv1_2 Client Change CipherSpec"},
  18595. },
  18596. {
  18597. {"SSLv3 read Client Finished",
  18598. "SSLv3 write Client Finished",
  18599. "SSLv3 Client Finished"},
  18600. {"TLSv1 read Client Finished",
  18601. "TLSv1 write Client Finished",
  18602. "TLSv1 Client Finished"},
  18603. {"TLSv1_1 read Client Finished",
  18604. "TLSv1_1 write Client Finished",
  18605. "TLSv1_1 Client Finished"},
  18606. {"TLSv1_2 read Client Finished",
  18607. "TLSv1_2 write Client Finished",
  18608. "TLSv1_2 Client Finished"},
  18609. {"DTLSv1 read Client Finished",
  18610. "DTLSv1 write Client Finished",
  18611. "DTLSv1 Client Finished"},
  18612. {"DTLSv1_2 read Client Finished",
  18613. "DTLSv1_2 write Client Finished",
  18614. "DTLSv1_2 Client Finished"},
  18615. },
  18616. {
  18617. {"SSLv3 Handshake Done",
  18618. "SSLv3 Handshake Done",
  18619. "SSLv3 Handshake Done"},
  18620. {"TLSv1 Handshake Done",
  18621. "TLSv1 Handshake Done",
  18622. "TLSv1 Handshake Done"},
  18623. {"TLSv1_1 Handshake Done",
  18624. "TLSv1_1 Handshake Done",
  18625. "TLSv1_1 Handshake Done"},
  18626. {"TLSv1_2 Handshake Done",
  18627. "TLSv1_2 Handshake Done",
  18628. "TLSv1_2 Handshake Done"},
  18629. {"DTLSv1 Handshake Done",
  18630. "DTLSv1 Handshake Done",
  18631. "DTLSv1 Handshake Done"},
  18632. {"DTLSv1_2 Handshake Done"
  18633. "DTLSv1_2 Handshake Done"
  18634. "DTLSv1_2 Handshake Done"}
  18635. }
  18636. };
  18637. enum ProtocolVer {
  18638. SSL_V3 = 0,
  18639. TLS_V1,
  18640. TLS_V1_1,
  18641. TLS_V1_2,
  18642. DTLS_V1,
  18643. DTLS_V1_2,
  18644. UNKNOWN = 100
  18645. };
  18646. enum IOMode {
  18647. SS_READ = 0,
  18648. SS_WRITE,
  18649. SS_NEITHER
  18650. };
  18651. enum SslState {
  18652. ss_null_state = 0,
  18653. ss_server_helloverify,
  18654. ss_server_hello,
  18655. ss_sessionticket,
  18656. ss_server_cert,
  18657. ss_server_keyexchange,
  18658. ss_server_hellodone,
  18659. ss_server_changecipherspec,
  18660. ss_server_finished,
  18661. ss_client_hello,
  18662. ss_client_keyexchange,
  18663. ss_client_changecipherspec,
  18664. ss_client_finished,
  18665. ss_handshake_done
  18666. };
  18667. int protocol = 0;
  18668. int cbmode = 0;
  18669. int state = 0;
  18670. WOLFSSL_ENTER("wolfSSL_state_string_long");
  18671. if (ssl == NULL) {
  18672. WOLFSSL_MSG("Null argument passed in");
  18673. return NULL;
  18674. }
  18675. /* Get state of callback */
  18676. if (ssl->cbmode == SSL_CB_MODE_WRITE){
  18677. cbmode = SS_WRITE;
  18678. } else if (ssl->cbmode == SSL_CB_MODE_READ){
  18679. cbmode = SS_READ;
  18680. } else {
  18681. cbmode = SS_NEITHER;
  18682. }
  18683. /* Get protocol version */
  18684. switch (ssl->version.major){
  18685. case SSLv3_MAJOR:
  18686. switch (ssl->version.minor){
  18687. case TLSv1_MINOR:
  18688. protocol = TLS_V1;
  18689. break;
  18690. case TLSv1_1_MINOR:
  18691. protocol = TLS_V1_1;
  18692. break;
  18693. case TLSv1_2_MINOR:
  18694. protocol = TLS_V1_2;
  18695. break;
  18696. case SSLv3_MINOR:
  18697. protocol = SSL_V3;
  18698. break;
  18699. default:
  18700. protocol = UNKNOWN;
  18701. }
  18702. break;
  18703. case DTLS_MAJOR:
  18704. switch (ssl->version.minor){
  18705. case DTLS_MINOR:
  18706. protocol = DTLS_V1;
  18707. break;
  18708. case DTLSv1_2_MINOR:
  18709. protocol = DTLS_V1_2;
  18710. break;
  18711. default:
  18712. protocol = UNKNOWN;
  18713. }
  18714. break;
  18715. default:
  18716. protocol = UNKNOWN;
  18717. }
  18718. /* accept process */
  18719. if (ssl->cbmode == SSL_CB_MODE_READ){
  18720. state = ssl->cbtype;
  18721. switch (state) {
  18722. case hello_verify_request:
  18723. state = ss_server_helloverify;
  18724. break;
  18725. case session_ticket:
  18726. state = ss_sessionticket;
  18727. break;
  18728. case server_hello:
  18729. state = ss_server_hello;
  18730. break;
  18731. case server_hello_done:
  18732. state = ss_server_hellodone;
  18733. break;
  18734. case certificate:
  18735. state = ss_server_cert;
  18736. break;
  18737. case server_key_exchange:
  18738. state = ss_server_keyexchange;
  18739. break;
  18740. case client_hello:
  18741. state = ss_client_hello;
  18742. break;
  18743. case client_key_exchange:
  18744. state = ss_client_keyexchange;
  18745. break;
  18746. case finished:
  18747. if (ssl->options.side == WOLFSSL_SERVER_END)
  18748. state = ss_client_finished;
  18749. else if (ssl->options.side == WOLFSSL_CLIENT_END)
  18750. state = ss_server_finished;
  18751. else {
  18752. WOLFSSL_MSG("Unknown State");
  18753. state = ss_null_state;
  18754. }
  18755. break;
  18756. default:
  18757. WOLFSSL_MSG("Unknown State");
  18758. state = ss_null_state;
  18759. }
  18760. } else {
  18761. /* Send process */
  18762. if (ssl->options.side == WOLFSSL_SERVER_END)
  18763. state = ssl->options.serverState;
  18764. else
  18765. state = ssl->options.clientState;
  18766. switch(state){
  18767. case SERVER_HELLOVERIFYREQUEST_COMPLETE:
  18768. state = ss_server_helloverify;
  18769. break;
  18770. case SERVER_HELLO_COMPLETE:
  18771. state = ss_server_hello;
  18772. break;
  18773. case SERVER_CERT_COMPLETE:
  18774. state = ss_server_cert;
  18775. break;
  18776. case SERVER_KEYEXCHANGE_COMPLETE:
  18777. state = ss_server_keyexchange;
  18778. break;
  18779. case SERVER_HELLODONE_COMPLETE:
  18780. state = ss_server_hellodone;
  18781. break;
  18782. case SERVER_CHANGECIPHERSPEC_COMPLETE:
  18783. state = ss_server_changecipherspec;
  18784. break;
  18785. case SERVER_FINISHED_COMPLETE:
  18786. state = ss_server_finished;
  18787. break;
  18788. case CLIENT_HELLO_COMPLETE:
  18789. state = ss_client_hello;
  18790. break;
  18791. case CLIENT_KEYEXCHANGE_COMPLETE:
  18792. state = ss_client_keyexchange;
  18793. break;
  18794. case CLIENT_CHANGECIPHERSPEC_COMPLETE:
  18795. state = ss_client_changecipherspec;
  18796. break;
  18797. case CLIENT_FINISHED_COMPLETE:
  18798. state = ss_client_finished;
  18799. break;
  18800. case HANDSHAKE_DONE:
  18801. state = ss_handshake_done;
  18802. break;
  18803. default:
  18804. WOLFSSL_MSG("Unknown State");
  18805. state = ss_null_state;
  18806. }
  18807. }
  18808. if (protocol == UNKNOWN) {
  18809. WOLFSSL_MSG("Unknown protocol");
  18810. return "";
  18811. }
  18812. else {
  18813. return OUTPUT_STR[state][protocol][cbmode];
  18814. }
  18815. }
  18816. /*
  18817. * Sets default PEM callback password if null is passed into
  18818. * the callback parameter of a PEM_read_bio_* function.
  18819. *
  18820. * Returns callback phrase size on success or WOLFSSL_FAILURE otherwise.
  18821. */
  18822. int wolfSSL_PEM_def_callback(char* name, int num, int w, void* key)
  18823. {
  18824. int sz;
  18825. (void)w;
  18826. WOLFSSL_ENTER("wolfSSL_PEM_def_callback");
  18827. /* We assume that the user passes a default password as userdata */
  18828. if (key) {
  18829. sz = (int)XSTRLEN((const char*)key);
  18830. sz = (sz > num) ? num : sz;
  18831. XMEMCPY(name, key, sz);
  18832. return sz;
  18833. } else {
  18834. WOLFSSL_MSG("Error, default password cannot be created.");
  18835. return WOLFSSL_FAILURE;
  18836. }
  18837. }
  18838. #endif /* OPENSSL_EXTRA */
  18839. static long wolf_set_options(long old_op, long op)
  18840. {
  18841. /* if SSL_OP_ALL then turn all bug workarounds on */
  18842. if ((op & WOLFSSL_OP_ALL) == WOLFSSL_OP_ALL) {
  18843. WOLFSSL_MSG("\tSSL_OP_ALL");
  18844. }
  18845. /* by default cookie exchange is on with DTLS */
  18846. if ((op & WOLFSSL_OP_COOKIE_EXCHANGE) == WOLFSSL_OP_COOKIE_EXCHANGE) {
  18847. WOLFSSL_MSG("\tSSL_OP_COOKIE_EXCHANGE : on by default");
  18848. }
  18849. if ((op & WOLFSSL_OP_NO_SSLv2) == WOLFSSL_OP_NO_SSLv2) {
  18850. WOLFSSL_MSG("\tWOLFSSL_OP_NO_SSLv2 : wolfSSL does not support SSLv2");
  18851. }
  18852. #ifdef SSL_OP_NO_TLSv1_3
  18853. if ((op & WOLFSSL_OP_NO_TLSv1_3) == WOLFSSL_OP_NO_TLSv1_3) {
  18854. WOLFSSL_MSG("\tSSL_OP_NO_TLSv1_3");
  18855. }
  18856. #endif
  18857. if ((op & WOLFSSL_OP_NO_TLSv1_2) == WOLFSSL_OP_NO_TLSv1_2) {
  18858. WOLFSSL_MSG("\tSSL_OP_NO_TLSv1_2");
  18859. }
  18860. if ((op & WOLFSSL_OP_NO_TLSv1_1) == WOLFSSL_OP_NO_TLSv1_1) {
  18861. WOLFSSL_MSG("\tSSL_OP_NO_TLSv1_1");
  18862. }
  18863. if ((op & WOLFSSL_OP_NO_TLSv1) == WOLFSSL_OP_NO_TLSv1) {
  18864. WOLFSSL_MSG("\tSSL_OP_NO_TLSv1");
  18865. }
  18866. if ((op & WOLFSSL_OP_NO_SSLv3) == WOLFSSL_OP_NO_SSLv3) {
  18867. WOLFSSL_MSG("\tSSL_OP_NO_SSLv3");
  18868. }
  18869. if ((op & WOLFSSL_OP_CIPHER_SERVER_PREFERENCE) ==
  18870. WOLFSSL_OP_CIPHER_SERVER_PREFERENCE) {
  18871. WOLFSSL_MSG("\tWOLFSSL_OP_CIPHER_SERVER_PREFERENCE");
  18872. }
  18873. if ((op & WOLFSSL_OP_NO_COMPRESSION) == WOLFSSL_OP_NO_COMPRESSION) {
  18874. #ifdef HAVE_LIBZ
  18875. WOLFSSL_MSG("SSL_OP_NO_COMPRESSION");
  18876. #else
  18877. WOLFSSL_MSG("SSL_OP_NO_COMPRESSION: compression not compiled in");
  18878. #endif
  18879. }
  18880. return old_op | op;
  18881. }
  18882. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  18883. long wolfSSL_set_options(WOLFSSL* ssl, long op)
  18884. {
  18885. word16 haveRSA = 1;
  18886. word16 havePSK = 0;
  18887. int keySz = 0;
  18888. WOLFSSL_ENTER("wolfSSL_set_options");
  18889. if (ssl == NULL) {
  18890. return 0;
  18891. }
  18892. ssl->options.mask = wolf_set_options(ssl->options.mask, op);
  18893. #ifdef SSL_OP_NO_TLSv1_3
  18894. if ((ssl->options.mask & SSL_OP_NO_TLSv1_3) == SSL_OP_NO_TLSv1_3) {
  18895. if (ssl->version.minor == TLSv1_3_MINOR)
  18896. ssl->version.minor = TLSv1_2_MINOR;
  18897. }
  18898. #endif
  18899. if ((ssl->options.mask & SSL_OP_NO_TLSv1_2) == SSL_OP_NO_TLSv1_2) {
  18900. if (ssl->version.minor == TLSv1_2_MINOR)
  18901. ssl->version.minor = TLSv1_1_MINOR;
  18902. }
  18903. if ((ssl->options.mask & SSL_OP_NO_TLSv1_1) == SSL_OP_NO_TLSv1_1) {
  18904. if (ssl->version.minor == TLSv1_1_MINOR)
  18905. ssl->version.minor = TLSv1_MINOR;
  18906. }
  18907. if ((ssl->options.mask & SSL_OP_NO_TLSv1) == SSL_OP_NO_TLSv1) {
  18908. if (ssl->version.minor == TLSv1_MINOR)
  18909. ssl->version.minor = SSLv3_MINOR;
  18910. }
  18911. if ((ssl->options.mask & WOLFSSL_OP_NO_COMPRESSION) == WOLFSSL_OP_NO_COMPRESSION) {
  18912. #ifdef HAVE_LIBZ
  18913. ssl->options.usingCompression = 0;
  18914. #endif
  18915. }
  18916. /* in the case of a version change the cipher suites should be reset */
  18917. #ifndef NO_PSK
  18918. havePSK = ssl->options.havePSK;
  18919. #endif
  18920. #ifdef NO_RSA
  18921. haveRSA = 0;
  18922. #endif
  18923. #ifndef NO_CERTS
  18924. keySz = ssl->buffers.keySz;
  18925. #endif
  18926. if (ssl->suites != NULL && ssl->options.side != WOLFSSL_NEITHER_END)
  18927. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  18928. ssl->options.haveDH, ssl->options.haveECDSAsig,
  18929. ssl->options.haveECC, ssl->options.haveStaticECC,
  18930. ssl->options.haveFalconSig, ssl->options.haveAnon,
  18931. ssl->options.side);
  18932. return ssl->options.mask;
  18933. }
  18934. long wolfSSL_get_options(const WOLFSSL* ssl)
  18935. {
  18936. WOLFSSL_ENTER("wolfSSL_get_options");
  18937. if(ssl == NULL)
  18938. return WOLFSSL_FAILURE;
  18939. return ssl->options.mask;
  18940. }
  18941. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  18942. #if defined(HAVE_SECURE_RENEGOTIATION) \
  18943. || defined(HAVE_SERVER_RENEGOTIATION_INFO)
  18944. /* clears the counter for number of renegotiations done
  18945. * returns the current count before it is cleared */
  18946. long wolfSSL_clear_num_renegotiations(WOLFSSL *s)
  18947. {
  18948. long total;
  18949. WOLFSSL_ENTER("wolfSSL_clear_num_renegotiations");
  18950. if (s == NULL)
  18951. return 0;
  18952. total = s->secure_rene_count;
  18953. s->secure_rene_count = 0;
  18954. return total;
  18955. }
  18956. /* return the number of renegotiations since wolfSSL_new */
  18957. long wolfSSL_total_renegotiations(WOLFSSL *s)
  18958. {
  18959. WOLFSSL_ENTER("wolfSSL_total_renegotiations");
  18960. return wolfSSL_num_renegotiations(s);
  18961. }
  18962. /* return the number of renegotiations since wolfSSL_new */
  18963. long wolfSSL_num_renegotiations(WOLFSSL* s)
  18964. {
  18965. if (s == NULL) {
  18966. return 0;
  18967. }
  18968. return s->secure_rene_count;
  18969. }
  18970. /* Is there a renegotiation currently in progress? */
  18971. int wolfSSL_SSL_renegotiate_pending(WOLFSSL *s)
  18972. {
  18973. return s && s->options.handShakeDone &&
  18974. s->options.handShakeState != HANDSHAKE_DONE ? 1 : 0;
  18975. }
  18976. #endif /* HAVE_SECURE_RENEGOTIATION || HAVE_SERVER_RENEGOTIATION_INFO */
  18977. #ifdef OPENSSL_EXTRA
  18978. long wolfSSL_clear_options(WOLFSSL* ssl, long opt)
  18979. {
  18980. WOLFSSL_ENTER("SSL_clear_options");
  18981. if(ssl == NULL)
  18982. return WOLFSSL_FAILURE;
  18983. ssl->options.mask &= ~opt;
  18984. return ssl->options.mask;
  18985. }
  18986. #ifdef HAVE_PK_CALLBACKS
  18987. long wolfSSL_set_tlsext_debug_arg(WOLFSSL* ssl, void *arg)
  18988. {
  18989. if (ssl == NULL) {
  18990. return WOLFSSL_FAILURE;
  18991. }
  18992. ssl->loggingCtx = arg;
  18993. return WOLFSSL_SUCCESS;
  18994. }
  18995. #endif /* HAVE_PK_CALLBACKS */
  18996. #if defined(OPENSSL_ALL) || defined(WOLFSSL_HAPROXY)
  18997. const unsigned char *SSL_SESSION_get0_id_context(const WOLFSSL_SESSION *sess, unsigned int *sid_ctx_length)
  18998. {
  18999. sess = ClientSessionToSession(sess);
  19000. return wolfSSL_SESSION_get_id((WOLFSSL_SESSION *)sess, sid_ctx_length);
  19001. }
  19002. #endif
  19003. /*** TBD ***/
  19004. #ifndef NO_WOLFSSL_STUB
  19005. WOLFSSL_API int wolfSSL_sk_SSL_COMP_zero(WOLFSSL_STACK* st)
  19006. {
  19007. (void)st;
  19008. WOLFSSL_STUB("wolfSSL_sk_SSL_COMP_zero");
  19009. /* wolfSSL_set_options(ssl, SSL_OP_NO_COMPRESSION); */
  19010. return WOLFSSL_FAILURE;
  19011. }
  19012. #endif
  19013. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  19014. long wolfSSL_set_tlsext_status_type(WOLFSSL *s, int type)
  19015. {
  19016. WOLFSSL_ENTER("wolfSSL_set_tlsext_status_type");
  19017. if (s == NULL){
  19018. return BAD_FUNC_ARG;
  19019. }
  19020. if (type == TLSEXT_STATUSTYPE_ocsp){
  19021. int r = TLSX_UseCertificateStatusRequest(&s->extensions, (byte)type, 0, s,
  19022. s->heap, s->devId);
  19023. return (long)r;
  19024. } else {
  19025. WOLFSSL_MSG(
  19026. "SSL_set_tlsext_status_type only supports TLSEXT_STATUSTYPE_ocsp type.");
  19027. return SSL_FAILURE;
  19028. }
  19029. }
  19030. long wolfSSL_get_tlsext_status_type(WOLFSSL *s)
  19031. {
  19032. TLSX* extension;
  19033. if (s == NULL)
  19034. return WOLFSSL_FATAL_ERROR;
  19035. extension = TLSX_Find(s->extensions, TLSX_STATUS_REQUEST);
  19036. return extension != NULL ? TLSEXT_STATUSTYPE_ocsp : WOLFSSL_FATAL_ERROR;
  19037. }
  19038. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST */
  19039. #ifndef NO_WOLFSSL_STUB
  19040. WOLFSSL_API long wolfSSL_get_tlsext_status_exts(WOLFSSL *s, void *arg)
  19041. {
  19042. (void)s;
  19043. (void)arg;
  19044. WOLFSSL_STUB("wolfSSL_get_tlsext_status_exts");
  19045. return WOLFSSL_FAILURE;
  19046. }
  19047. #endif
  19048. /*** TBD ***/
  19049. #ifndef NO_WOLFSSL_STUB
  19050. WOLFSSL_API long wolfSSL_set_tlsext_status_exts(WOLFSSL *s, void *arg)
  19051. {
  19052. (void)s;
  19053. (void)arg;
  19054. WOLFSSL_STUB("wolfSSL_set_tlsext_status_exts");
  19055. return WOLFSSL_FAILURE;
  19056. }
  19057. #endif
  19058. /*** TBD ***/
  19059. #ifndef NO_WOLFSSL_STUB
  19060. WOLFSSL_API long wolfSSL_get_tlsext_status_ids(WOLFSSL *s, void *arg)
  19061. {
  19062. (void)s;
  19063. (void)arg;
  19064. WOLFSSL_STUB("wolfSSL_get_tlsext_status_ids");
  19065. return WOLFSSL_FAILURE;
  19066. }
  19067. #endif
  19068. /*** TBD ***/
  19069. #ifndef NO_WOLFSSL_STUB
  19070. WOLFSSL_API long wolfSSL_set_tlsext_status_ids(WOLFSSL *s, void *arg)
  19071. {
  19072. (void)s;
  19073. (void)arg;
  19074. WOLFSSL_STUB("wolfSSL_set_tlsext_status_ids");
  19075. return WOLFSSL_FAILURE;
  19076. }
  19077. #endif
  19078. /*** TBD ***/
  19079. #ifndef NO_WOLFSSL_STUB
  19080. WOLFSSL_API int SSL_SESSION_set1_id(WOLFSSL_SESSION *s, const unsigned char *sid, unsigned int sid_len)
  19081. {
  19082. (void)s;
  19083. (void)sid;
  19084. (void)sid_len;
  19085. WOLFSSL_STUB("SSL_SESSION_set1_id");
  19086. return WOLFSSL_FAILURE;
  19087. }
  19088. #endif
  19089. #ifndef NO_WOLFSSL_STUB
  19090. /*** TBD ***/
  19091. WOLFSSL_API int SSL_SESSION_set1_id_context(WOLFSSL_SESSION *s, const unsigned char *sid_ctx, unsigned int sid_ctx_len)
  19092. {
  19093. (void)s;
  19094. (void)sid_ctx;
  19095. (void)sid_ctx_len;
  19096. WOLFSSL_STUB("SSL_SESSION_set1_id_context");
  19097. return WOLFSSL_FAILURE;
  19098. }
  19099. #endif
  19100. #if defined(OPENSSL_ALL) || defined(WOLFSSL_APACHE_HTTPD) \
  19101. || defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_WPAS)
  19102. /**
  19103. * Set `a` in a smart way.
  19104. *
  19105. * @param a Object to set
  19106. * @param type The type of object in value
  19107. * @param value Object to set
  19108. */
  19109. void wolfSSL_ASN1_TYPE_set(WOLFSSL_ASN1_TYPE *a, int type, void *value)
  19110. {
  19111. if (!a) {
  19112. return;
  19113. }
  19114. switch (type) {
  19115. case V_ASN1_NULL:
  19116. a->value.ptr = (char *)value;
  19117. break;
  19118. case V_ASN1_SEQUENCE:
  19119. a->value.asn1_string = (WOLFSSL_ASN1_STRING*)value;
  19120. break;
  19121. case V_ASN1_OBJECT:
  19122. a->value.object = (WOLFSSL_ASN1_OBJECT*)value;
  19123. break;
  19124. case V_ASN1_UTCTIME:
  19125. a->value.utctime = (WOLFSSL_ASN1_TIME*)value;
  19126. break;
  19127. case V_ASN1_GENERALIZEDTIME:
  19128. a->value.generalizedtime = (WOLFSSL_ASN1_TIME*)value;
  19129. break;
  19130. default:
  19131. WOLFSSL_MSG("Unknown or unsupported ASN1_TYPE");
  19132. return;
  19133. }
  19134. a->type = type;
  19135. }
  19136. #endif /* OPENSSL_ALL || WOLFSSL_APACHE_HTTPD || WOLFSSL_HAPROXY || WOLFSSL_WPAS */
  19137. #if defined(OPENSSL_ALL) || defined(WOLFSSL_APACHE_HTTPD) \
  19138. || defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_WPAS) \
  19139. || defined(OPENSSL_EXTRA)
  19140. /**
  19141. * Allocate a new WOLFSSL_ASN1_TYPE object.
  19142. *
  19143. * @return New zero'ed WOLFSSL_ASN1_TYPE object
  19144. */
  19145. WOLFSSL_ASN1_TYPE* wolfSSL_ASN1_TYPE_new(void)
  19146. {
  19147. WOLFSSL_ASN1_TYPE* ret = (WOLFSSL_ASN1_TYPE*)XMALLOC(sizeof(WOLFSSL_ASN1_TYPE),
  19148. NULL, DYNAMIC_TYPE_OPENSSL);
  19149. if (!ret)
  19150. return NULL;
  19151. XMEMSET(ret, 0, sizeof(WOLFSSL_ASN1_TYPE));
  19152. return ret;
  19153. }
  19154. /**
  19155. * Free WOLFSSL_ASN1_TYPE and all its members.
  19156. *
  19157. * @param at Object to free
  19158. */
  19159. void wolfSSL_ASN1_TYPE_free(WOLFSSL_ASN1_TYPE* at)
  19160. {
  19161. if (at) {
  19162. switch (at->type) {
  19163. case V_ASN1_OBJECT:
  19164. wolfSSL_ASN1_OBJECT_free(at->value.object);
  19165. break;
  19166. case V_ASN1_UTCTIME:
  19167. #ifndef NO_ASN_TIME
  19168. wolfSSL_ASN1_TIME_free(at->value.utctime);
  19169. #endif
  19170. break;
  19171. case V_ASN1_GENERALIZEDTIME:
  19172. #ifndef NO_ASN_TIME
  19173. wolfSSL_ASN1_TIME_free(at->value.generalizedtime);
  19174. #endif
  19175. break;
  19176. case V_ASN1_UTF8STRING:
  19177. case V_ASN1_PRINTABLESTRING:
  19178. case V_ASN1_T61STRING:
  19179. case V_ASN1_IA5STRING:
  19180. case V_ASN1_UNIVERSALSTRING:
  19181. case V_ASN1_SEQUENCE:
  19182. wolfSSL_ASN1_STRING_free(at->value.asn1_string);
  19183. break;
  19184. default:
  19185. WOLFSSL_MSG("Unknown or unsupported ASN1_TYPE");
  19186. break;
  19187. }
  19188. XFREE(at, NULL, DYNAMIC_TYPE_OPENSSL);
  19189. }
  19190. }
  19191. #endif /* OPENSSL_ALL || WOLFSSL_APACHE_HTTPD || WOLFSSL_HAPROXY || WOLFSSL_WPAS
  19192. || OPENSSL_EXTRA */
  19193. #ifndef NO_WOLFSSL_STUB
  19194. /*** TBD ***/
  19195. WOLFSSL_API WOLFSSL_EVP_PKEY *wolfSSL_get_privatekey(const WOLFSSL *ssl)
  19196. {
  19197. (void)ssl;
  19198. WOLFSSL_STUB("SSL_get_privatekey");
  19199. return NULL;
  19200. }
  19201. #endif
  19202. /**
  19203. * Get a textual representation of given WOLFSSL_ASN1_OBJECT then write it to
  19204. * buf at most buf_len bytes.
  19205. *
  19206. * params
  19207. * - buf: buffer where the textual representation is to be written to
  19208. * - buf_len: buffer size in bytes
  19209. * - a: WOLFSSL_ASN1_OBJECT
  19210. *
  19211. * return the string length written on success, WOLFSSL_FAILURE on failure.
  19212. */
  19213. WOLFSSL_API int wolfSSL_i2t_ASN1_OBJECT(char *buf, int buf_len,
  19214. WOLFSSL_ASN1_OBJECT *a)
  19215. {
  19216. WOLFSSL_ENTER("wolfSSL_i2t_ASN1_OBJECT");
  19217. return wolfSSL_OBJ_obj2txt(buf, buf_len, a, 0);
  19218. }
  19219. WOLFSSL_ASN1_OBJECT *wolfSSL_d2i_ASN1_OBJECT(WOLFSSL_ASN1_OBJECT **a,
  19220. const unsigned char **der,
  19221. long length)
  19222. {
  19223. const unsigned char *d;
  19224. long len;
  19225. int tag, cls;
  19226. WOLFSSL_ASN1_OBJECT* ret = NULL;
  19227. WOLFSSL_ENTER("wolfSSL_d2i_ASN1_OBJECT");
  19228. if (!der || !*der || length <= 0) {
  19229. WOLFSSL_MSG("Bad parameter");
  19230. return NULL;
  19231. }
  19232. d = *der;
  19233. if (wolfSSL_ASN1_get_object(&d, &len, &tag, &cls, length) & 0x80) {
  19234. WOLFSSL_MSG("wolfSSL_ASN1_get_object error");
  19235. return NULL;
  19236. }
  19237. /* d now points to value */
  19238. if (tag != ASN_OBJECT_ID) {
  19239. WOLFSSL_MSG("Not an ASN object");
  19240. return NULL;
  19241. }
  19242. ret = wolfSSL_c2i_ASN1_OBJECT(a, &d, len);
  19243. if (ret)
  19244. *der = d;
  19245. return ret;
  19246. }
  19247. /**
  19248. * Parse an ASN1 encoded input and output information about the parsed object
  19249. * @param in ASN1 encoded data. *in is moved to the value of the ASN1 object
  19250. * @param len Length of parsed ASN1 object
  19251. * @param tag Tag value of parsed ASN1 object
  19252. * @param cls Class of parsed ASN1 object
  19253. * @param inLen Length of *in buffer
  19254. * @return int Depends on which bits are set in the returned int:
  19255. * 0x80 an error occurred during parsing
  19256. * 0x20 parsed object is constructed
  19257. * 0x01 the parsed object length is infinite
  19258. */
  19259. int wolfSSL_ASN1_get_object(const unsigned char **in, long *len, int *tag,
  19260. int *cls, long inLen)
  19261. {
  19262. word32 inOutIdx = 0;
  19263. int l;
  19264. byte t;
  19265. int ret = 0x80;
  19266. WOLFSSL_ENTER("wolfSSL_ASN1_get_object");
  19267. if (!in || !*in || !len || !tag || !cls || inLen == 0) {
  19268. WOLFSSL_MSG("Bad parameter");
  19269. return ret;
  19270. }
  19271. if (GetASNTag(*in, &inOutIdx, &t, (word32)inLen) != 0) {
  19272. WOLFSSL_MSG("GetASNTag error");
  19273. return ret;
  19274. }
  19275. if (GetLength(*in, &inOutIdx, &l, (word32)inLen) < 0) {
  19276. WOLFSSL_MSG("GetLength error");
  19277. return ret;
  19278. }
  19279. *tag = t & 0x1F; /* Tag number is 5 lsb */
  19280. *cls = t & 0xC0; /* Class is 2 msb */
  19281. *len = l;
  19282. ret = t & ASN_CONSTRUCTED;
  19283. if (l > (int)(inLen - inOutIdx)) {
  19284. /* Still return other values but indicate error in msb */
  19285. ret |= 0x80;
  19286. }
  19287. *in += inOutIdx;
  19288. return ret;
  19289. }
  19290. WOLFSSL_ASN1_OBJECT *wolfSSL_c2i_ASN1_OBJECT(WOLFSSL_ASN1_OBJECT **a,
  19291. const unsigned char **pp, long len)
  19292. {
  19293. WOLFSSL_ASN1_OBJECT* ret = NULL;
  19294. WOLFSSL_ENTER("wolfSSL_c2i_ASN1_OBJECT");
  19295. if (!pp || !*pp || len <= 0) {
  19296. WOLFSSL_MSG("Bad parameter");
  19297. return NULL;
  19298. }
  19299. if (!(ret = wolfSSL_ASN1_OBJECT_new())) {
  19300. WOLFSSL_MSG("wolfSSL_ASN1_OBJECT_new error");
  19301. return NULL;
  19302. }
  19303. ret->obj = (const unsigned char*)XMALLOC(len, NULL, DYNAMIC_TYPE_ASN1);
  19304. if (!ret->obj) {
  19305. WOLFSSL_MSG("error allocating asn data memory");
  19306. wolfSSL_ASN1_OBJECT_free(ret);
  19307. return NULL;
  19308. }
  19309. XMEMCPY((byte*)ret->obj, *pp, len);
  19310. ret->objSz = (unsigned int)len;
  19311. ret->dynamic |= WOLFSSL_ASN1_DYNAMIC_DATA;
  19312. *pp += len;
  19313. if (a)
  19314. *a = ret;
  19315. return ret;
  19316. }
  19317. #ifndef NO_BIO
  19318. /* Return number of bytes written to BIO on success. 0 on failure. */
  19319. WOLFSSL_API int wolfSSL_i2a_ASN1_OBJECT(WOLFSSL_BIO *bp,
  19320. WOLFSSL_ASN1_OBJECT *a)
  19321. {
  19322. int length = 0;
  19323. word32 idx = 0;
  19324. const char null_str[] = "NULL";
  19325. WOLFSSL_ENTER("wolfSSL_i2a_ASN1_OBJECT");
  19326. if (bp == NULL)
  19327. return WOLFSSL_FAILURE;
  19328. if (a == NULL) {
  19329. /* Write "NULL" */
  19330. if (wolfSSL_BIO_write(bp, null_str, (int)XSTRLEN(null_str)) ==
  19331. (int)XSTRLEN(null_str)) {
  19332. return (int)XSTRLEN(null_str);
  19333. }
  19334. else {
  19335. return WOLFSSL_FAILURE;
  19336. }
  19337. }
  19338. if ((a->obj == NULL) || (a->obj[idx++] != ASN_OBJECT_ID)) {
  19339. WOLFSSL_MSG("Bad ASN1 Object");
  19340. return WOLFSSL_FAILURE;
  19341. }
  19342. if (GetLength((const byte*)a->obj, &idx, &length,
  19343. a->objSz) < 0 || length < 0) {
  19344. return WOLFSSL_FAILURE;
  19345. }
  19346. if (wolfSSL_BIO_write(bp, a->obj + idx, length) == (int)length) {
  19347. return length;
  19348. }
  19349. return WOLFSSL_FAILURE;
  19350. }
  19351. #endif /* !NO_BIO */
  19352. /* Returns object data for an ASN1_OBJECT */
  19353. /* If pp is NULL then only the size is returned */
  19354. /* If pp has pointer to pointer then its used directly */
  19355. /* If pp has pointer to pointer that is NULL then new variable is allocated */
  19356. /* Failure returns WOLFSSL_FAILURE (0) */
  19357. int wolfSSL_i2d_ASN1_OBJECT(WOLFSSL_ASN1_OBJECT *a, unsigned char **pp)
  19358. {
  19359. byte *p;
  19360. WOLFSSL_ENTER("wolfSSL_i2d_ASN1_OBJECT");
  19361. if (!a || !a->obj) {
  19362. WOLFSSL_MSG("Bad parameters");
  19363. return WOLFSSL_FAILURE;
  19364. }
  19365. if (!pp)
  19366. return a->objSz;
  19367. if (*pp)
  19368. p = *pp;
  19369. else {
  19370. p = (byte*)XMALLOC(a->objSz, NULL, DYNAMIC_TYPE_OPENSSL);
  19371. if (!p) {
  19372. WOLFSSL_MSG("Bad malloc");
  19373. return WOLFSSL_FAILURE;
  19374. }
  19375. }
  19376. XMEMCPY(p, a->obj, a->objSz);
  19377. *pp = p + a->objSz;
  19378. return a->objSz;
  19379. }
  19380. #ifndef NO_WOLFSSL_STUB
  19381. /*** TBD ***/
  19382. WOLFSSL_API void SSL_CTX_set_tmp_dh_callback(WOLFSSL_CTX *ctx, WOLFSSL_DH *(*dh) (WOLFSSL *ssl, int is_export, int keylength))
  19383. {
  19384. (void)ctx;
  19385. (void)dh;
  19386. WOLFSSL_STUB("SSL_CTX_set_tmp_dh_callback");
  19387. }
  19388. #endif
  19389. #ifndef NO_WOLFSSL_STUB
  19390. /*** TBD ***/
  19391. WOLFSSL_API WOLF_STACK_OF(SSL_COMP) *SSL_COMP_get_compression_methods(void)
  19392. {
  19393. WOLFSSL_STUB("SSL_COMP_get_compression_methods");
  19394. return NULL;
  19395. }
  19396. #endif
  19397. int wolfSSL_sk_SSL_CIPHER_num(const WOLF_STACK_OF(WOLFSSL_CIPHER)* p)
  19398. {
  19399. WOLFSSL_ENTER("wolfSSL_sk_SSL_CIPHER_num");
  19400. if (p == NULL) {
  19401. return WOLFSSL_FATAL_ERROR;
  19402. }
  19403. return (int)p->num;
  19404. }
  19405. WOLFSSL_API WOLFSSL_CIPHER* wolfSSL_sk_SSL_CIPHER_value(WOLFSSL_STACK* sk, int i)
  19406. {
  19407. WOLFSSL_ENTER("wolfSSL_sk_SSL_CIPHER_value");
  19408. return (WOLFSSL_CIPHER*)wolfSSL_sk_value(sk, i);
  19409. }
  19410. #if !defined(NETOS)
  19411. WOLFSSL_API void ERR_load_SSL_strings(void)
  19412. {
  19413. }
  19414. #endif
  19415. #ifdef HAVE_OCSP
  19416. WOLFSSL_API long wolfSSL_get_tlsext_status_ocsp_resp(WOLFSSL *s, unsigned char **resp)
  19417. {
  19418. if (s == NULL || resp == NULL)
  19419. return 0;
  19420. *resp = s->ocspResp;
  19421. return s->ocspRespSz;
  19422. }
  19423. WOLFSSL_API long wolfSSL_set_tlsext_status_ocsp_resp(WOLFSSL *s, unsigned char *resp, int len)
  19424. {
  19425. if (s == NULL)
  19426. return WOLFSSL_FAILURE;
  19427. s->ocspResp = resp;
  19428. s->ocspRespSz = len;
  19429. return WOLFSSL_SUCCESS;
  19430. }
  19431. #endif /* HAVE_OCSP */
  19432. #ifdef HAVE_MAX_FRAGMENT
  19433. #ifndef NO_WOLFSSL_CLIENT
  19434. /**
  19435. * Set max fragment tls extension
  19436. * @param c a pointer to WOLFSSL_CTX object
  19437. * @param mode maximum fragment length mode
  19438. * @return 1 on success, otherwise 0 or negative error code
  19439. */
  19440. WOLFSSL_API int wolfSSL_CTX_set_tlsext_max_fragment_length(WOLFSSL_CTX *c,
  19441. unsigned char mode)
  19442. {
  19443. if (c == NULL || (mode < WOLFSSL_MFL_2_9 || mode > WOLFSSL_MFL_2_12 ))
  19444. return BAD_FUNC_ARG;
  19445. return wolfSSL_CTX_UseMaxFragment(c, mode);
  19446. }
  19447. /**
  19448. * Set max fragment tls extension
  19449. * @param c a pointer to WOLFSSL object
  19450. * @param mode maximum fragment length mode
  19451. * @return 1 on success, otherwise 0 or negative error code
  19452. */
  19453. WOLFSSL_API int wolfSSL_set_tlsext_max_fragment_length(WOLFSSL *s,
  19454. unsigned char mode)
  19455. {
  19456. if (s == NULL || (mode < WOLFSSL_MFL_2_9 || mode > WOLFSSL_MFL_2_12 ))
  19457. return BAD_FUNC_ARG;
  19458. return wolfSSL_UseMaxFragment(s, mode);
  19459. }
  19460. #endif /* NO_WOLFSSL_CLIENT */
  19461. #endif /* HAVE_MAX_FRAGMENT */
  19462. #endif /* OPENSSL_EXTRA */
  19463. #ifdef WOLFSSL_HAVE_TLS_UNIQUE
  19464. WOLFSSL_API size_t wolfSSL_get_finished(const WOLFSSL *ssl, void *buf, size_t count)
  19465. {
  19466. byte len = 0;
  19467. WOLFSSL_ENTER("SSL_get_finished");
  19468. if (!ssl || !buf || count < TLS_FINISHED_SZ) {
  19469. WOLFSSL_MSG("Bad parameter");
  19470. return WOLFSSL_FAILURE;
  19471. }
  19472. if (ssl->options.side == WOLFSSL_SERVER_END) {
  19473. len = ssl->serverFinished_len;
  19474. XMEMCPY(buf, ssl->serverFinished, len);
  19475. }
  19476. else {
  19477. len = ssl->clientFinished_len;
  19478. XMEMCPY(buf, ssl->clientFinished, len);
  19479. }
  19480. return len;
  19481. }
  19482. WOLFSSL_API size_t wolfSSL_get_peer_finished(const WOLFSSL *ssl, void *buf, size_t count)
  19483. {
  19484. byte len = 0;
  19485. WOLFSSL_ENTER("SSL_get_peer_finished");
  19486. if (!ssl || !buf || count < TLS_FINISHED_SZ) {
  19487. WOLFSSL_MSG("Bad parameter");
  19488. return WOLFSSL_FAILURE;
  19489. }
  19490. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  19491. len = ssl->serverFinished_len;
  19492. XMEMCPY(buf, ssl->serverFinished, len);
  19493. }
  19494. else {
  19495. len = ssl->clientFinished_len;
  19496. XMEMCPY(buf, ssl->clientFinished, len);
  19497. }
  19498. return len;
  19499. }
  19500. #endif /* WOLFSSL_HAVE_TLS_UNIQUE */
  19501. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  19502. long wolfSSL_get_verify_result(const WOLFSSL *ssl)
  19503. {
  19504. if (ssl == NULL) {
  19505. return WOLFSSL_FAILURE;
  19506. }
  19507. return ssl->peerVerifyRet;
  19508. }
  19509. #endif
  19510. #ifdef OPENSSL_EXTRA
  19511. #ifndef NO_WOLFSSL_STUB
  19512. /* shows the number of accepts attempted by CTX in it's lifetime */
  19513. long wolfSSL_CTX_sess_accept(WOLFSSL_CTX* ctx)
  19514. {
  19515. WOLFSSL_STUB("wolfSSL_CTX_sess_accept");
  19516. (void)ctx;
  19517. return 0;
  19518. }
  19519. #endif
  19520. #ifndef NO_WOLFSSL_STUB
  19521. /* shows the number of connects attempted CTX in it's lifetime */
  19522. long wolfSSL_CTX_sess_connect(WOLFSSL_CTX* ctx)
  19523. {
  19524. WOLFSSL_STUB("wolfSSL_CTX_sess_connect");
  19525. (void)ctx;
  19526. return 0;
  19527. }
  19528. #endif
  19529. #ifndef NO_WOLFSSL_STUB
  19530. /* shows the number of accepts completed by CTX in it's lifetime */
  19531. long wolfSSL_CTX_sess_accept_good(WOLFSSL_CTX* ctx)
  19532. {
  19533. WOLFSSL_STUB("wolfSSL_CTX_sess_accept_good");
  19534. (void)ctx;
  19535. return 0;
  19536. }
  19537. #endif
  19538. #ifndef NO_WOLFSSL_STUB
  19539. /* shows the number of connects completed by CTX in it's lifetime */
  19540. long wolfSSL_CTX_sess_connect_good(WOLFSSL_CTX* ctx)
  19541. {
  19542. WOLFSSL_STUB("wolfSSL_CTX_sess_connect_good");
  19543. (void)ctx;
  19544. return 0;
  19545. }
  19546. #endif
  19547. #ifndef NO_WOLFSSL_STUB
  19548. /* shows the number of renegotiation accepts attempted by CTX */
  19549. long wolfSSL_CTX_sess_accept_renegotiate(WOLFSSL_CTX* ctx)
  19550. {
  19551. WOLFSSL_STUB("wolfSSL_CTX_sess_accept_renegotiate");
  19552. (void)ctx;
  19553. return 0;
  19554. }
  19555. #endif
  19556. #ifndef NO_WOLFSSL_STUB
  19557. /* shows the number of renegotiation accepts attempted by CTX */
  19558. long wolfSSL_CTX_sess_connect_renegotiate(WOLFSSL_CTX* ctx)
  19559. {
  19560. WOLFSSL_STUB("wolfSSL_CTX_sess_connect_renegotiate");
  19561. (void)ctx;
  19562. return 0;
  19563. }
  19564. #endif
  19565. #ifndef NO_WOLFSSL_STUB
  19566. long wolfSSL_CTX_sess_hits(WOLFSSL_CTX* ctx)
  19567. {
  19568. WOLFSSL_STUB("wolfSSL_CTX_sess_hits");
  19569. (void)ctx;
  19570. return 0;
  19571. }
  19572. #endif
  19573. #ifndef NO_WOLFSSL_STUB
  19574. long wolfSSL_CTX_sess_cb_hits(WOLFSSL_CTX* ctx)
  19575. {
  19576. WOLFSSL_STUB("wolfSSL_CTX_sess_cb_hits");
  19577. (void)ctx;
  19578. return 0;
  19579. }
  19580. #endif
  19581. #ifndef NO_WOLFSSL_STUB
  19582. long wolfSSL_CTX_sess_cache_full(WOLFSSL_CTX* ctx)
  19583. {
  19584. WOLFSSL_STUB("wolfSSL_CTX_sess_cache_full");
  19585. (void)ctx;
  19586. return 0;
  19587. }
  19588. #endif
  19589. #ifndef NO_WOLFSSL_STUB
  19590. long wolfSSL_CTX_sess_misses(WOLFSSL_CTX* ctx)
  19591. {
  19592. WOLFSSL_STUB("wolfSSL_CTX_sess_misses");
  19593. (void)ctx;
  19594. return 0;
  19595. }
  19596. #endif
  19597. #ifndef NO_WOLFSSL_STUB
  19598. long wolfSSL_CTX_sess_timeouts(WOLFSSL_CTX* ctx)
  19599. {
  19600. WOLFSSL_STUB("wolfSSL_CTX_sess_timeouts");
  19601. (void)ctx;
  19602. return 0;
  19603. }
  19604. #endif
  19605. /* Return the total number of sessions */
  19606. long wolfSSL_CTX_sess_number(WOLFSSL_CTX* ctx)
  19607. {
  19608. word32 total = 0;
  19609. WOLFSSL_ENTER("wolfSSL_CTX_sess_number");
  19610. (void)ctx;
  19611. #if defined(WOLFSSL_SESSION_STATS) && !defined(NO_SESSION_CACHE)
  19612. if (wolfSSL_get_session_stats(NULL, &total, NULL, NULL) != WOLFSSL_SUCCESS) {
  19613. WOLFSSL_MSG("Error getting session stats");
  19614. }
  19615. #else
  19616. WOLFSSL_MSG("Please use macro WOLFSSL_SESSION_STATS for session stats");
  19617. #endif
  19618. return (long)total;
  19619. }
  19620. #ifndef NO_CERTS
  19621. long wolfSSL_CTX_add_extra_chain_cert(WOLFSSL_CTX* ctx, WOLFSSL_X509* x509)
  19622. {
  19623. byte* chain = NULL;
  19624. long chainSz = 0;
  19625. int derSz;
  19626. const byte* der;
  19627. int ret;
  19628. int idx = 0;
  19629. DerBuffer *derBuffer = NULL;
  19630. WOLFSSL_ENTER("wolfSSL_CTX_add_extra_chain_cert");
  19631. if (ctx == NULL || x509 == NULL) {
  19632. WOLFSSL_MSG("Bad Argument");
  19633. return WOLFSSL_FAILURE;
  19634. }
  19635. der = wolfSSL_X509_get_der(x509, &derSz);
  19636. if (der == NULL || derSz <= 0) {
  19637. WOLFSSL_MSG("Error getting X509 DER");
  19638. return WOLFSSL_FAILURE;
  19639. }
  19640. if (ctx->certificate == NULL) {
  19641. WOLFSSL_ENTER("wolfSSL_use_certificate_chain_buffer_format");
  19642. /* Process buffer makes first certificate the leaf. */
  19643. ret = ProcessBuffer(ctx, der, derSz, WOLFSSL_FILETYPE_ASN1, CERT_TYPE,
  19644. NULL, NULL, 1, GET_VERIFY_SETTING_CTX(ctx));
  19645. if (ret != WOLFSSL_SUCCESS) {
  19646. WOLFSSL_LEAVE("wolfSSL_CTX_add_extra_chain_cert", ret);
  19647. return WOLFSSL_FAILURE;
  19648. }
  19649. }
  19650. else {
  19651. /* TODO: Do this elsewhere. */
  19652. ret = AllocDer(&derBuffer, derSz, CERT_TYPE, ctx->heap);
  19653. if (ret != 0) {
  19654. WOLFSSL_MSG("Memory Error");
  19655. return WOLFSSL_FAILURE;
  19656. }
  19657. XMEMCPY(derBuffer->buffer, der, derSz);
  19658. ret = AddCA(ctx->cm, &derBuffer, WOLFSSL_USER_CA,
  19659. GET_VERIFY_SETTING_CTX(ctx));
  19660. if (ret != WOLFSSL_SUCCESS) {
  19661. WOLFSSL_LEAVE("wolfSSL_CTX_add_extra_chain_cert", ret);
  19662. return WOLFSSL_FAILURE;
  19663. }
  19664. /* adding cert to existing chain */
  19665. if (ctx->certChain != NULL && ctx->certChain->length > 0) {
  19666. chainSz += ctx->certChain->length;
  19667. }
  19668. chainSz += OPAQUE24_LEN + derSz;
  19669. chain = (byte*)XMALLOC(chainSz, ctx->heap, DYNAMIC_TYPE_DER);
  19670. if (chain == NULL) {
  19671. WOLFSSL_MSG("Memory Error");
  19672. return WOLFSSL_FAILURE;
  19673. }
  19674. if (ctx->certChain != NULL && ctx->certChain->length > 0) {
  19675. XMEMCPY(chain, ctx->certChain->buffer, ctx->certChain->length);
  19676. idx = ctx->certChain->length;
  19677. }
  19678. c32to24(derSz, chain + idx);
  19679. idx += OPAQUE24_LEN;
  19680. XMEMCPY(chain + idx, der, derSz);
  19681. idx += derSz;
  19682. #ifdef WOLFSSL_TLS13
  19683. ctx->certChainCnt++;
  19684. #endif
  19685. FreeDer(&ctx->certChain);
  19686. ret = AllocDer(&ctx->certChain, idx, CERT_TYPE, ctx->heap);
  19687. if (ret == 0) {
  19688. XMEMCPY(ctx->certChain->buffer, chain, idx);
  19689. }
  19690. }
  19691. /* on success WOLFSSL_X509 memory is responsibility of ctx */
  19692. wolfSSL_X509_free(x509);
  19693. if (chain != NULL)
  19694. XFREE(chain, ctx->heap, DYNAMIC_TYPE_DER);
  19695. return WOLFSSL_SUCCESS;
  19696. }
  19697. long wolfSSL_CTX_set_tlsext_status_arg(WOLFSSL_CTX* ctx, void* arg)
  19698. {
  19699. if (ctx == NULL || ctx->cm == NULL) {
  19700. return WOLFSSL_FAILURE;
  19701. }
  19702. ctx->cm->ocspIOCtx = arg;
  19703. return WOLFSSL_SUCCESS;
  19704. }
  19705. #endif /* NO_CERTS */
  19706. /* Get the session cache mode for CTX
  19707. *
  19708. * ctx WOLFSSL_CTX struct to get cache mode from
  19709. *
  19710. * Returns a bit mask that has the session cache mode */
  19711. WOLFSSL_API long wolfSSL_CTX_get_session_cache_mode(WOLFSSL_CTX* ctx)
  19712. {
  19713. long m = 0;
  19714. WOLFSSL_ENTER("SSL_CTX_set_session_cache_mode");
  19715. if (ctx == NULL) {
  19716. return m;
  19717. }
  19718. if (ctx->sessionCacheOff != 1) {
  19719. m |= SSL_SESS_CACHE_SERVER;
  19720. }
  19721. if (ctx->sessionCacheFlushOff == 1) {
  19722. m |= SSL_SESS_CACHE_NO_AUTO_CLEAR;
  19723. }
  19724. #ifdef HAVE_EXT_CACHE
  19725. if (ctx->internalCacheOff == 1) {
  19726. m |= SSL_SESS_CACHE_NO_INTERNAL_STORE;
  19727. }
  19728. if (ctx->internalCacheLookupOff == 1) {
  19729. m |= SSL_SESS_CACHE_NO_INTERNAL_LOOKUP;
  19730. }
  19731. #endif
  19732. return m;
  19733. }
  19734. int wolfSSL_get_read_ahead(const WOLFSSL* ssl)
  19735. {
  19736. if (ssl == NULL) {
  19737. return WOLFSSL_FAILURE;
  19738. }
  19739. return ssl->readAhead;
  19740. }
  19741. int wolfSSL_set_read_ahead(WOLFSSL* ssl, int v)
  19742. {
  19743. if (ssl == NULL) {
  19744. return WOLFSSL_FAILURE;
  19745. }
  19746. ssl->readAhead = (byte)v;
  19747. return WOLFSSL_SUCCESS;
  19748. }
  19749. int wolfSSL_CTX_get_read_ahead(WOLFSSL_CTX* ctx)
  19750. {
  19751. if (ctx == NULL) {
  19752. return WOLFSSL_FAILURE;
  19753. }
  19754. return ctx->readAhead;
  19755. }
  19756. int wolfSSL_CTX_set_read_ahead(WOLFSSL_CTX* ctx, int v)
  19757. {
  19758. if (ctx == NULL) {
  19759. return WOLFSSL_FAILURE;
  19760. }
  19761. ctx->readAhead = (byte)v;
  19762. return WOLFSSL_SUCCESS;
  19763. }
  19764. long wolfSSL_CTX_set_tlsext_opaque_prf_input_callback_arg(WOLFSSL_CTX* ctx,
  19765. void* arg)
  19766. {
  19767. if (ctx == NULL) {
  19768. return WOLFSSL_FAILURE;
  19769. }
  19770. ctx->userPRFArg = arg;
  19771. return WOLFSSL_SUCCESS;
  19772. }
  19773. #ifndef NO_DES3
  19774. /* 0 on success */
  19775. int wolfSSL_DES_set_key(WOLFSSL_const_DES_cblock* myDes,
  19776. WOLFSSL_DES_key_schedule* key)
  19777. {
  19778. #ifdef WOLFSSL_CHECK_DESKEY
  19779. return wolfSSL_DES_set_key_checked(myDes, key);
  19780. #else
  19781. wolfSSL_DES_set_key_unchecked(myDes, key);
  19782. return 0;
  19783. #endif
  19784. }
  19785. /* return true in fail case (1) */
  19786. static int DES_check(word32 mask, word32 mask2, unsigned char* key)
  19787. {
  19788. word32 value[2];
  19789. /* sanity check on length made in wolfSSL_DES_set_key_checked */
  19790. value[0] = mask;
  19791. value[1] = mask2;
  19792. return (XMEMCMP(value, key, sizeof(value)) == 0)? 1: 0;
  19793. }
  19794. /* check that the key is odd parity and is not a weak key
  19795. * returns -1 if parity is wrong, -2 if weak/null key and 0 on success */
  19796. int wolfSSL_DES_set_key_checked(WOLFSSL_const_DES_cblock* myDes,
  19797. WOLFSSL_DES_key_schedule* key)
  19798. {
  19799. if (myDes == NULL || key == NULL) {
  19800. WOLFSSL_MSG("Bad argument passed to wolfSSL_DES_set_key_checked");
  19801. return -2;
  19802. }
  19803. else {
  19804. word32 sz = sizeof(WOLFSSL_DES_key_schedule);
  19805. /* sanity check before call to DES_check */
  19806. if (sz != (sizeof(word32) * 2)) {
  19807. WOLFSSL_MSG("Unexpected WOLFSSL_DES_key_schedule size");
  19808. return -2;
  19809. }
  19810. /* check odd parity */
  19811. if (wolfSSL_DES_check_key_parity(myDes) != 1) {
  19812. WOLFSSL_MSG("Odd parity test fail");
  19813. return -1;
  19814. }
  19815. if (wolfSSL_DES_is_weak_key(myDes) == 1) {
  19816. WOLFSSL_MSG("Weak key found");
  19817. return -2;
  19818. }
  19819. /* passed tests, now copy over key */
  19820. XMEMCPY(key, myDes, sizeof(WOLFSSL_const_DES_cblock));
  19821. return 0;
  19822. }
  19823. }
  19824. /* check is not weak. Weak key list from Nist "Recommendation for the Triple
  19825. * Data Encryption Algorithm (TDEA) Block Cipher"
  19826. *
  19827. * returns 1 if is weak 0 if not
  19828. */
  19829. int wolfSSL_DES_is_weak_key(WOLFSSL_const_DES_cblock* key)
  19830. {
  19831. word32 mask, mask2;
  19832. WOLFSSL_ENTER("wolfSSL_DES_is_weak_key");
  19833. if (key == NULL) {
  19834. WOLFSSL_MSG("NULL key passed in");
  19835. return 1;
  19836. }
  19837. mask = 0x01010101; mask2 = 0x01010101;
  19838. if (DES_check(mask, mask2, *key)) {
  19839. WOLFSSL_MSG("Weak key found");
  19840. return 1;
  19841. }
  19842. mask = 0xFEFEFEFE; mask2 = 0xFEFEFEFE;
  19843. if (DES_check(mask, mask2, *key)) {
  19844. WOLFSSL_MSG("Weak key found");
  19845. return 1;
  19846. }
  19847. mask = 0xE0E0E0E0; mask2 = 0xF1F1F1F1;
  19848. if (DES_check(mask, mask2, *key)) {
  19849. WOLFSSL_MSG("Weak key found");
  19850. return 1;
  19851. }
  19852. mask = 0x1F1F1F1F; mask2 = 0x0E0E0E0E;
  19853. if (DES_check(mask, mask2, *key)) {
  19854. WOLFSSL_MSG("Weak key found");
  19855. return 1;
  19856. }
  19857. /* semi-weak *key check (list from same Nist paper) */
  19858. mask = 0x011F011F; mask2 = 0x010E010E;
  19859. if (DES_check(mask, mask2, *key) ||
  19860. DES_check(ByteReverseWord32(mask), ByteReverseWord32(mask2), *key)) {
  19861. WOLFSSL_MSG("Weak key found");
  19862. return 1;
  19863. }
  19864. mask = 0x01E001E0; mask2 = 0x01F101F1;
  19865. if (DES_check(mask, mask2, *key) ||
  19866. DES_check(ByteReverseWord32(mask), ByteReverseWord32(mask2), *key)) {
  19867. WOLFSSL_MSG("Weak key found");
  19868. return 1;
  19869. }
  19870. mask = 0x01FE01FE; mask2 = 0x01FE01FE;
  19871. if (DES_check(mask, mask2, *key) ||
  19872. DES_check(ByteReverseWord32(mask), ByteReverseWord32(mask2), *key)) {
  19873. WOLFSSL_MSG("Weak key found");
  19874. return 1;
  19875. }
  19876. mask = 0x1FE01FE0; mask2 = 0x0EF10EF1;
  19877. if (DES_check(mask, mask2, *key) ||
  19878. DES_check(ByteReverseWord32(mask), ByteReverseWord32(mask2), *key)) {
  19879. WOLFSSL_MSG("Weak key found");
  19880. return 1;
  19881. }
  19882. mask = 0x1FFE1FFE; mask2 = 0x0EFE0EFE;
  19883. if (DES_check(mask, mask2, *key) ||
  19884. DES_check(ByteReverseWord32(mask), ByteReverseWord32(mask2), *key)) {
  19885. WOLFSSL_MSG("Weak key found");
  19886. return 1;
  19887. }
  19888. return 0;
  19889. }
  19890. void wolfSSL_DES_set_key_unchecked(WOLFSSL_const_DES_cblock* myDes,
  19891. WOLFSSL_DES_key_schedule* key)
  19892. {
  19893. if (myDes != NULL && key != NULL) {
  19894. XMEMCPY(key, myDes, sizeof(WOLFSSL_const_DES_cblock));
  19895. }
  19896. }
  19897. /* Sets the parity of the DES key for use */
  19898. void wolfSSL_DES_set_odd_parity(WOLFSSL_DES_cblock* myDes)
  19899. {
  19900. word32 i;
  19901. word32 sz = sizeof(WOLFSSL_DES_cblock);
  19902. WOLFSSL_ENTER("wolfSSL_DES_set_odd_parity");
  19903. for (i = 0; i < sz; i++) {
  19904. unsigned char c = (*myDes)[i];
  19905. if ((
  19906. ((c >> 1) & 0x01) ^
  19907. ((c >> 2) & 0x01) ^
  19908. ((c >> 3) & 0x01) ^
  19909. ((c >> 4) & 0x01) ^
  19910. ((c >> 5) & 0x01) ^
  19911. ((c >> 6) & 0x01) ^
  19912. ((c >> 7) & 0x01)) == (c & 0x01)) {
  19913. WOLFSSL_MSG("Flipping parity bit");
  19914. (*myDes)[i] = c ^ 0x01;
  19915. }
  19916. }
  19917. }
  19918. int wolfSSL_DES_check_key_parity(WOLFSSL_DES_cblock *myDes)
  19919. {
  19920. word32 i;
  19921. word32 sz = sizeof(WOLFSSL_DES_cblock);
  19922. WOLFSSL_ENTER("wolfSSL_DES_check_key_parity");
  19923. for (i = 0; i < sz; i++) {
  19924. unsigned char c = (*myDes)[i];
  19925. if ((
  19926. ((c >> 1) & 0x01) ^
  19927. ((c >> 2) & 0x01) ^
  19928. ((c >> 3) & 0x01) ^
  19929. ((c >> 4) & 0x01) ^
  19930. ((c >> 5) & 0x01) ^
  19931. ((c >> 6) & 0x01) ^
  19932. ((c >> 7) & 0x01)) == (c & 0x01)) {
  19933. return 0;
  19934. }
  19935. }
  19936. return 1;
  19937. }
  19938. #ifdef WOLFSSL_DES_ECB
  19939. /* Encrypt or decrypt input message desa with key and get output in desb.
  19940. * if enc is DES_ENCRYPT,input message is encrypted or
  19941. * if enc is DES_DECRYPT,input message is decrypted.
  19942. * */
  19943. void wolfSSL_DES_ecb_encrypt(WOLFSSL_DES_cblock* desa,
  19944. WOLFSSL_DES_cblock* desb, WOLFSSL_DES_key_schedule* key, int enc)
  19945. {
  19946. Des myDes;
  19947. WOLFSSL_ENTER("wolfSSL_DES_ecb_encrypt");
  19948. if (desa == NULL || key == NULL || desb == NULL ||
  19949. (enc != DES_ENCRYPT && enc != DES_DECRYPT)) {
  19950. WOLFSSL_MSG("Bad argument passed to wolfSSL_DES_ecb_encrypt");
  19951. } else {
  19952. if (wc_Des_SetKey(&myDes, (const byte*) key,
  19953. (const byte*) NULL, !enc) != 0) {
  19954. WOLFSSL_MSG("wc_Des_SetKey return error.");
  19955. return;
  19956. }
  19957. if (enc == DES_ENCRYPT){
  19958. if (wc_Des_EcbEncrypt(&myDes, (byte*) desb, (const byte*) desa,
  19959. sizeof(WOLFSSL_DES_cblock)) != 0){
  19960. WOLFSSL_MSG("wc_Des_EcbEncrypt return error.");
  19961. }
  19962. } else {
  19963. if (wc_Des_EcbDecrypt(&myDes, (byte*) desb, (const byte*) desa,
  19964. sizeof(WOLFSSL_DES_cblock)) != 0){
  19965. WOLFSSL_MSG("wc_Des_EcbDecrpyt return error.");
  19966. }
  19967. }
  19968. }
  19969. }
  19970. #endif
  19971. #endif /* NO_DES3 */
  19972. #ifndef NO_RC4
  19973. /* Set the key state for Arc4 structure.
  19974. *
  19975. * key Arc4 structure to use
  19976. * len length of data buffer
  19977. * data initial state to set Arc4 structure
  19978. */
  19979. void wolfSSL_RC4_set_key(WOLFSSL_RC4_KEY* key, int len,
  19980. const unsigned char* data)
  19981. {
  19982. typedef char rc4_test[sizeof(WOLFSSL_RC4_KEY) >= sizeof(Arc4) ? 1 : -1];
  19983. (void)sizeof(rc4_test);
  19984. WOLFSSL_ENTER("wolfSSL_RC4_set_key");
  19985. if (key == NULL || len < 0) {
  19986. WOLFSSL_MSG("bad argument passed in");
  19987. return;
  19988. }
  19989. XMEMSET(key, 0, sizeof(WOLFSSL_RC4_KEY));
  19990. wc_Arc4SetKey((Arc4*)key, data, (word32)len);
  19991. }
  19992. /* Encrypt/decrypt with Arc4 structure.
  19993. *
  19994. * len length of buffer to encrypt/decrypt (in/out)
  19995. * in buffer to encrypt/decrypt
  19996. * out results of encryption/decryption
  19997. */
  19998. void wolfSSL_RC4(WOLFSSL_RC4_KEY* key, size_t len,
  19999. const unsigned char* in, unsigned char* out)
  20000. {
  20001. WOLFSSL_ENTER("wolfSSL_RC4");
  20002. if (key == NULL || in == NULL || out == NULL) {
  20003. WOLFSSL_MSG("Bad argument passed in");
  20004. return;
  20005. }
  20006. wc_Arc4Process((Arc4*)key, out, in, (word32)len);
  20007. }
  20008. #endif /* NO_RC4 */
  20009. #ifndef NO_AES
  20010. #ifdef WOLFSSL_AES_DIRECT
  20011. /* AES encrypt direct, it is expected to be blocks of AES_BLOCK_SIZE for input.
  20012. *
  20013. * input Data to encrypt
  20014. * output Encrypted data after done
  20015. * key AES key to use for encryption
  20016. */
  20017. void wolfSSL_AES_encrypt(const unsigned char* input, unsigned char* output,
  20018. AES_KEY *key)
  20019. {
  20020. WOLFSSL_ENTER("wolfSSL_AES_encrypt");
  20021. if (input == NULL || output == NULL || key == NULL) {
  20022. WOLFSSL_MSG("Null argument passed in");
  20023. return;
  20024. }
  20025. #if !defined(HAVE_SELFTEST) && \
  20026. (!defined(HAVE_FIPS) || (defined(FIPS_VERSION_GE) && FIPS_VERSION_GE(5,3)))
  20027. if (wc_AesEncryptDirect((Aes*)key, output, input) != 0) {
  20028. WOLFSSL_MSG("wc_AesEncryptDirect failed");
  20029. return;
  20030. }
  20031. #else
  20032. wc_AesEncryptDirect((Aes*)key, output, input);
  20033. #endif
  20034. }
  20035. /* AES decrypt direct, it is expected to be blocks of AES_BLOCK_SIZE for input.
  20036. *
  20037. * input Data to decrypt
  20038. * output Decrypted data after done
  20039. * key AES key to use for encryption
  20040. */
  20041. void wolfSSL_AES_decrypt(const unsigned char* input, unsigned char* output,
  20042. AES_KEY *key)
  20043. {
  20044. WOLFSSL_ENTER("wolfSSL_AES_decrypt");
  20045. if (input == NULL || output == NULL || key == NULL) {
  20046. WOLFSSL_MSG("Null argument passed in");
  20047. return;
  20048. }
  20049. #if !defined(HAVE_SELFTEST) && \
  20050. (!defined(HAVE_FIPS) || (defined(FIPS_VERSION_GE) && FIPS_VERSION_GE(5,3)))
  20051. if (wc_AesDecryptDirect((Aes*)key, output, input) != 0) {
  20052. WOLFSSL_MSG("wc_AesDecryptDirect failed");
  20053. return;
  20054. }
  20055. #else
  20056. wc_AesDecryptDirect((Aes*)key, output, input);
  20057. #endif
  20058. }
  20059. #endif /* WOLFSSL_AES_DIRECT */
  20060. /* Setup of an AES key to use for encryption.
  20061. *
  20062. * key key in bytes to use for encryption
  20063. * bits size of key in bits
  20064. * aes AES structure to initialize
  20065. */
  20066. int wolfSSL_AES_set_encrypt_key(const unsigned char *key, const int bits,
  20067. AES_KEY *aes)
  20068. {
  20069. typedef char aes_test[sizeof(AES_KEY) >= sizeof(Aes) ? 1 : -1];
  20070. (void)sizeof(aes_test);
  20071. WOLFSSL_ENTER("wolfSSL_AES_set_encrypt_key");
  20072. if (key == NULL || aes == NULL) {
  20073. WOLFSSL_MSG("Null argument passed in");
  20074. return -1;
  20075. }
  20076. XMEMSET(aes, 0, sizeof(AES_KEY));
  20077. if (wc_AesSetKey((Aes*)aes, key, ((bits)/8), NULL, AES_ENCRYPT) != 0) {
  20078. WOLFSSL_MSG("Error in setting AES key");
  20079. return -1;
  20080. }
  20081. return 0;
  20082. }
  20083. /* Setup of an AES key to use for decryption.
  20084. *
  20085. * key key in bytes to use for decryption
  20086. * bits size of key in bits
  20087. * aes AES structure to initialize
  20088. */
  20089. int wolfSSL_AES_set_decrypt_key(const unsigned char *key, const int bits,
  20090. AES_KEY *aes)
  20091. {
  20092. typedef char aes_test[sizeof(AES_KEY) >= sizeof(Aes) ? 1 : -1];
  20093. (void)sizeof(aes_test);
  20094. WOLFSSL_ENTER("wolfSSL_AES_set_decrypt_key");
  20095. if (key == NULL || aes == NULL) {
  20096. WOLFSSL_MSG("Null argument passed in");
  20097. return -1;
  20098. }
  20099. XMEMSET(aes, 0, sizeof(AES_KEY));
  20100. if (wc_AesSetKey((Aes*)aes, key, ((bits)/8), NULL, AES_DECRYPT) != 0) {
  20101. WOLFSSL_MSG("Error in setting AES key");
  20102. return -1;
  20103. }
  20104. return 0;
  20105. }
  20106. #ifdef HAVE_AES_ECB
  20107. /* Encrypt/decrypt a 16 byte block of data using the key passed in.
  20108. *
  20109. * in buffer to encrypt/decrypt
  20110. * out buffer to hold result of encryption/decryption
  20111. * key AES structure to use with encryption/decryption
  20112. * enc AES_ENCRPT for encryption and AES_DECRYPT for decryption
  20113. */
  20114. void wolfSSL_AES_ecb_encrypt(const unsigned char *in, unsigned char* out,
  20115. AES_KEY *key, const int enc)
  20116. {
  20117. Aes* aes;
  20118. WOLFSSL_ENTER("wolfSSL_AES_ecb_encrypt");
  20119. if (key == NULL || in == NULL || out == NULL) {
  20120. WOLFSSL_MSG("Error, Null argument passed in");
  20121. return;
  20122. }
  20123. aes = (Aes*)key;
  20124. if (enc == AES_ENCRYPT) {
  20125. if (wc_AesEcbEncrypt(aes, out, in, AES_BLOCK_SIZE) != 0) {
  20126. WOLFSSL_MSG("Error with AES CBC encrypt");
  20127. }
  20128. }
  20129. else {
  20130. #ifdef HAVE_AES_DECRYPT
  20131. if (wc_AesEcbDecrypt(aes, out, in, AES_BLOCK_SIZE) != 0) {
  20132. WOLFSSL_MSG("Error with AES CBC decrypt");
  20133. }
  20134. #else
  20135. WOLFSSL_MSG("AES decryption not compiled in");
  20136. #endif
  20137. }
  20138. }
  20139. #endif /* HAVE_AES_ECB */
  20140. #ifdef HAVE_AES_CBC
  20141. /* Encrypt data using key and iv passed in. iv gets updated to most recent iv
  20142. * state after encryption/decryption.
  20143. *
  20144. * in buffer to encrypt/decrypt
  20145. * out buffer to hold result of encryption/decryption
  20146. * len length of input buffer
  20147. * key AES structure to use with encryption/decryption
  20148. * iv iv to use with operation
  20149. * enc 1 for encryption and 0 for decryption
  20150. */
  20151. void wolfSSL_AES_cbc_encrypt(const unsigned char *in, unsigned char* out,
  20152. size_t len, AES_KEY *key, unsigned char* iv, const int enc)
  20153. {
  20154. Aes* aes;
  20155. WOLFSSL_ENTER("wolfSSL_AES_cbc_encrypt");
  20156. if (key == NULL || in == NULL || out == NULL || iv == NULL || len == 0) {
  20157. WOLFSSL_MSG("Error, Null argument passed in");
  20158. return;
  20159. }
  20160. aes = (Aes*)key;
  20161. if (wc_AesSetIV(aes, (const byte*)iv) != 0) {
  20162. WOLFSSL_MSG("Error with setting iv");
  20163. return;
  20164. }
  20165. if (enc == AES_ENCRYPT) {
  20166. if (wc_AesCbcEncrypt(aes, out, in, (word32)len) != 0) {
  20167. WOLFSSL_MSG("Error with AES CBC encrypt");
  20168. return;
  20169. }
  20170. }
  20171. else {
  20172. if (wc_AesCbcDecrypt(aes, out, in, (word32)len) != 0) {
  20173. WOLFSSL_MSG("Error with AES CBC decrypt");
  20174. return;
  20175. }
  20176. }
  20177. /* to be compatible copy iv to iv buffer after completing operation */
  20178. XMEMCPY(iv, (byte*)(aes->reg), AES_BLOCK_SIZE);
  20179. }
  20180. #endif /* HAVE_AES_CBC */
  20181. /* Encrypt data using CFB mode with key and iv passed in. iv gets updated to
  20182. * most recent iv state after encryption/decryption.
  20183. *
  20184. * in buffer to encrypt/decrypt
  20185. * out buffer to hold result of encryption/decryption
  20186. * len length of input buffer
  20187. * key AES structure to use with encryption/decryption
  20188. * iv iv to use with operation
  20189. * num contains the amount of block used
  20190. * enc AES_ENCRYPT for encryption and AES_DECRYPT for decryption
  20191. */
  20192. void wolfSSL_AES_cfb128_encrypt(const unsigned char *in, unsigned char* out,
  20193. size_t len, AES_KEY *key, unsigned char* iv, int* num,
  20194. const int enc)
  20195. {
  20196. #ifndef WOLFSSL_AES_CFB
  20197. WOLFSSL_MSG("CFB mode not enabled please use macro WOLFSSL_AES_CFB");
  20198. (void)in;
  20199. (void)out;
  20200. (void)len;
  20201. (void)key;
  20202. (void)iv;
  20203. (void)num;
  20204. (void)enc;
  20205. return;
  20206. #else
  20207. Aes* aes;
  20208. WOLFSSL_ENTER("wolfSSL_AES_cbc_encrypt");
  20209. if (key == NULL || in == NULL || out == NULL || iv == NULL) {
  20210. WOLFSSL_MSG("Error, Null argument passed in");
  20211. return;
  20212. }
  20213. aes = (Aes*)key;
  20214. if (wc_AesSetIV(aes, (const byte*)iv) != 0) {
  20215. WOLFSSL_MSG("Error with setting iv");
  20216. return;
  20217. }
  20218. if (enc == AES_ENCRYPT) {
  20219. if (wc_AesCfbEncrypt(aes, out, in, (word32)len) != 0) {
  20220. WOLFSSL_MSG("Error with AES CBC encrypt");
  20221. return;
  20222. }
  20223. }
  20224. else {
  20225. if (wc_AesCfbDecrypt(aes, out, in, (word32)len) != 0) {
  20226. WOLFSSL_MSG("Error with AES CBC decrypt");
  20227. return;
  20228. }
  20229. }
  20230. /* to be compatible copy iv to iv buffer after completing operation */
  20231. XMEMCPY(iv, (byte*)(aes->reg), AES_BLOCK_SIZE);
  20232. /* store number of left over bytes to num */
  20233. *num = (aes->left)? AES_BLOCK_SIZE - aes->left : 0;
  20234. #endif /* WOLFSSL_AES_CFB */
  20235. }
  20236. /* wc_AesKey*Wrap_ex API not available in FIPS and SELFTEST */
  20237. #if defined(HAVE_AES_KEYWRAP) && !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)
  20238. int wolfSSL_AES_wrap_key(AES_KEY *key, const unsigned char *iv,
  20239. unsigned char *out,
  20240. const unsigned char *in, unsigned int inlen)
  20241. {
  20242. int ret;
  20243. WOLFSSL_ENTER("wolfSSL_AES_wrap_key");
  20244. if (out == NULL || in == NULL) {
  20245. WOLFSSL_MSG("Error, Null argument passed in");
  20246. return WOLFSSL_FAILURE;
  20247. }
  20248. ret = wc_AesKeyWrap_ex((Aes*)key, in, inlen, out, inlen + KEYWRAP_BLOCK_SIZE, iv);
  20249. return ret < 0 ? WOLFSSL_FAILURE : ret;
  20250. }
  20251. int wolfSSL_AES_unwrap_key(AES_KEY *key, const unsigned char *iv,
  20252. unsigned char *out,
  20253. const unsigned char *in, unsigned int inlen)
  20254. {
  20255. int ret;
  20256. WOLFSSL_ENTER("wolfSSL_AES_wrap_key");
  20257. if (out == NULL || in == NULL) {
  20258. WOLFSSL_MSG("Error, Null argument passed in");
  20259. return WOLFSSL_FAILURE;
  20260. }
  20261. ret = wc_AesKeyUnWrap_ex((Aes*)key, in, inlen, out, inlen + KEYWRAP_BLOCK_SIZE, iv);
  20262. return ret < 0 ? WOLFSSL_FAILURE : ret;
  20263. }
  20264. #endif /* HAVE_AES_KEYWRAP && !HAVE_FIPS && !HAVE_SELFTEST */
  20265. #ifdef HAVE_CTS
  20266. /*
  20267. * Ciphertext stealing interface compatible with RFC2040 and RFC3962.
  20268. */
  20269. size_t wolfSSL_CRYPTO_cts128_encrypt(const unsigned char *in,
  20270. unsigned char *out, size_t len, const void *key,
  20271. unsigned char *iv, WOLFSSL_CBC128_CB cbc)
  20272. {
  20273. byte lastBlk[WOLFSSL_CTS128_BLOCK_SZ];
  20274. int lastBlkLen = len % WOLFSSL_CTS128_BLOCK_SZ;
  20275. WOLFSSL_ENTER("wolfSSL_CRYPTO_cts128_encrypt");
  20276. if (in == NULL || out == NULL || len < WOLFSSL_CTS128_BLOCK_SZ ||
  20277. cbc == NULL) {
  20278. WOLFSSL_MSG("Bad parameter");
  20279. return WOLFSSL_FAILURE;
  20280. }
  20281. if (lastBlkLen == 0)
  20282. lastBlkLen = WOLFSSL_CTS128_BLOCK_SZ;
  20283. /* Encrypt data up to last block */
  20284. (*cbc)(in, out, len - lastBlkLen, key, iv, AES_ENCRYPT);
  20285. /* Move to last block */
  20286. in += len - lastBlkLen;
  20287. out += len - lastBlkLen;
  20288. /* RFC2040: Pad Pn with zeros at the end to create P of length BB. */
  20289. XMEMCPY(lastBlk, in, lastBlkLen);
  20290. XMEMSET(lastBlk + lastBlkLen, 0, WOLFSSL_CTS128_BLOCK_SZ - lastBlkLen);
  20291. /* RFC2040: Select the first Ln bytes of En-1 to create Cn */
  20292. XMEMCPY(out, out - WOLFSSL_CTS128_BLOCK_SZ, lastBlkLen);
  20293. (*cbc)(lastBlk, out - WOLFSSL_CTS128_BLOCK_SZ, WOLFSSL_CTS128_BLOCK_SZ,
  20294. key, iv, AES_ENCRYPT);
  20295. return len;
  20296. }
  20297. size_t wolfSSL_CRYPTO_cts128_decrypt(const unsigned char *in,
  20298. unsigned char *out, size_t len, const void *key,
  20299. unsigned char *iv, WOLFSSL_CBC128_CB cbc)
  20300. {
  20301. byte lastBlk[WOLFSSL_CTS128_BLOCK_SZ];
  20302. byte prevBlk[WOLFSSL_CTS128_BLOCK_SZ];
  20303. int lastBlkLen = len % WOLFSSL_CTS128_BLOCK_SZ;
  20304. WOLFSSL_ENTER("wolfSSL_CRYPTO_cts128_decrypt");
  20305. if (in == NULL || out == NULL || len <= WOLFSSL_CTS128_BLOCK_SZ ||
  20306. cbc == NULL) {
  20307. WOLFSSL_MSG("Bad parameter");
  20308. return WOLFSSL_FAILURE;
  20309. }
  20310. if (lastBlkLen == 0)
  20311. lastBlkLen = WOLFSSL_CTS128_BLOCK_SZ;
  20312. /* Decrypt up to last two blocks */
  20313. (*cbc)(in, out, len - lastBlkLen - WOLFSSL_CTS128_BLOCK_SZ, key, iv,
  20314. AES_DECRYPTION);
  20315. /* Move to last two blocks */
  20316. in += len - lastBlkLen - WOLFSSL_CTS128_BLOCK_SZ;
  20317. out += len - lastBlkLen - WOLFSSL_CTS128_BLOCK_SZ;
  20318. /* RFC2040: Decrypt Cn-1 to create Dn.
  20319. * Use 0 buffer as IV to do straight decryption.
  20320. * This places the Cn-1 block at lastBlk */
  20321. XMEMSET(lastBlk, 0, WOLFSSL_CTS128_BLOCK_SZ);
  20322. (*cbc)(in, prevBlk, WOLFSSL_CTS128_BLOCK_SZ, key, lastBlk, AES_DECRYPT);
  20323. /* RFC2040: Append the tail (BB minus Ln) bytes of Xn to Cn
  20324. * to create En. */
  20325. XMEMCPY(prevBlk, in + WOLFSSL_CTS128_BLOCK_SZ, lastBlkLen);
  20326. /* Cn and Cn-1 can now be decrypted */
  20327. (*cbc)(prevBlk, out, WOLFSSL_CTS128_BLOCK_SZ, key, iv, AES_DECRYPT);
  20328. (*cbc)(lastBlk, lastBlk, WOLFSSL_CTS128_BLOCK_SZ, key, iv, AES_DECRYPT);
  20329. XMEMCPY(out + WOLFSSL_CTS128_BLOCK_SZ, lastBlk, lastBlkLen);
  20330. return len;
  20331. }
  20332. #endif /* HAVE_CTS */
  20333. #endif /* NO_AES */
  20334. #ifndef NO_ASN_TIME
  20335. #ifndef NO_BIO
  20336. int wolfSSL_ASN1_UTCTIME_print(WOLFSSL_BIO* bio, const WOLFSSL_ASN1_UTCTIME* a)
  20337. {
  20338. WOLFSSL_ENTER("ASN1_UTCTIME_print");
  20339. if (bio == NULL || a == NULL) {
  20340. return WOLFSSL_FAILURE;
  20341. }
  20342. if (a->type != ASN_UTC_TIME) {
  20343. WOLFSSL_MSG("Error, not UTC_TIME");
  20344. return WOLFSSL_FAILURE;
  20345. }
  20346. return wolfSSL_ASN1_TIME_print(bio, a);
  20347. }
  20348. #endif /* !NO_BIO */
  20349. /* Checks the ASN1 syntax of "a"
  20350. * returns WOLFSSL_SUCCESS (1) if correct otherwise WOLFSSL_FAILURE (0) */
  20351. int wolfSSL_ASN1_TIME_check(const WOLFSSL_ASN1_TIME* a)
  20352. {
  20353. char buf[MAX_TIME_STRING_SZ];
  20354. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_check");
  20355. /* if can parse the WOLFSSL_ASN1_TIME passed in then consider syntax good */
  20356. if (wolfSSL_ASN1_TIME_to_string((WOLFSSL_ASN1_TIME*)a, buf,
  20357. MAX_TIME_STRING_SZ) == NULL) {
  20358. return WOLFSSL_FAILURE;
  20359. }
  20360. return WOLFSSL_SUCCESS;
  20361. }
  20362. /*
  20363. * Convert time to Unix time (GMT).
  20364. */
  20365. static long long TimeToUnixTime(int sec, int min, int hour, int mday, int mon,
  20366. int year)
  20367. {
  20368. /* Number of cumulative days from the previous months, starting from
  20369. * beginning of January. */
  20370. static const int monthDaysCumulative [12] = {
  20371. 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334
  20372. };
  20373. int leapDays = year;
  20374. if (mon <= 1) {
  20375. --leapDays;
  20376. }
  20377. leapDays = leapDays / 4 - leapDays / 100 + leapDays / 400 - 1969 / 4 +
  20378. 1969 / 100 - 1969 / 400;
  20379. return ((((long long) (year - 1970) * 365 + leapDays +
  20380. monthDaysCumulative[mon] + mday - 1) * 24 + hour) * 60 + min) * 60 +
  20381. sec;
  20382. }
  20383. int wolfSSL_ASN1_TIME_diff(int *days, int *secs, const WOLFSSL_ASN1_TIME *from,
  20384. const WOLFSSL_ASN1_TIME *to)
  20385. {
  20386. const int SECS_PER_DAY = 24 * 60 * 60;
  20387. struct tm fromTm_s, *fromTmGmt = &fromTm_s;
  20388. struct tm toTm_s, *toTmGmt = &toTm_s;
  20389. time_t currTime;
  20390. long long fromSecs;
  20391. long long toSecs;
  20392. double diffSecs;
  20393. struct tm *tmpTs;
  20394. #if defined(NEED_TMP_TIME)
  20395. /* for use with gmtime_r */
  20396. struct tm tmpTimeStorage;
  20397. tmpTs = &tmpTimeStorage;
  20398. #else
  20399. tmpTs = NULL;
  20400. #endif
  20401. (void)tmpTs;
  20402. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_diff");
  20403. if (days == NULL) {
  20404. WOLFSSL_MSG("days is NULL");
  20405. return WOLFSSL_FAILURE;
  20406. }
  20407. if (secs == NULL) {
  20408. WOLFSSL_MSG("secs is NULL");
  20409. return WOLFSSL_FAILURE;
  20410. }
  20411. if (from == NULL && to == NULL) {
  20412. *days = 0;
  20413. *secs = 0;
  20414. return WOLFSSL_SUCCESS;
  20415. }
  20416. if (from == NULL) {
  20417. currTime = wc_Time(0);
  20418. fromTmGmt = XGMTIME(&currTime, tmpTs);
  20419. if (fromTmGmt == NULL) {
  20420. WOLFSSL_MSG("XGMTIME for from time failed.");
  20421. return WOLFSSL_FAILURE;
  20422. }
  20423. }
  20424. else if (wolfSSL_ASN1_TIME_to_tm(from, fromTmGmt) != WOLFSSL_SUCCESS) {
  20425. WOLFSSL_MSG("Failed to convert from time to struct tm.");
  20426. return WOLFSSL_FAILURE;
  20427. }
  20428. /* We use TimeToUnixTime here instead of XMKTIME to avoid the Year 2038
  20429. * Problem on platforms where time_t is 32 bits. struct tm stores the year
  20430. * as years since 1900, so we add 1900 to the year. */
  20431. fromSecs = TimeToUnixTime(fromTmGmt->tm_sec, fromTmGmt->tm_min,
  20432. fromTmGmt->tm_hour, fromTmGmt->tm_mday,
  20433. fromTmGmt->tm_mon, fromTmGmt->tm_year + 1900);
  20434. if (to == NULL) {
  20435. currTime = wc_Time(0);
  20436. toTmGmt = XGMTIME(&currTime, tmpTs);
  20437. if (toTmGmt == NULL) {
  20438. WOLFSSL_MSG("XGMTIME for to time failed.");
  20439. return WOLFSSL_FAILURE;
  20440. }
  20441. }
  20442. else if (wolfSSL_ASN1_TIME_to_tm(to, toTmGmt) != WOLFSSL_SUCCESS) {
  20443. WOLFSSL_MSG("Failed to convert to time to struct tm.");
  20444. return WOLFSSL_FAILURE;
  20445. }
  20446. toSecs = TimeToUnixTime(toTmGmt->tm_sec, toTmGmt->tm_min, toTmGmt->tm_hour,
  20447. toTmGmt->tm_mday, toTmGmt->tm_mon,
  20448. toTmGmt->tm_year + 1900);
  20449. diffSecs = (double)(toSecs - fromSecs);
  20450. *days = (int) (diffSecs / SECS_PER_DAY);
  20451. *secs = (int) (diffSecs - (((double)*days) * SECS_PER_DAY));
  20452. return WOLFSSL_SUCCESS;
  20453. }
  20454. int wolfSSL_ASN1_TIME_compare(const WOLFSSL_ASN1_TIME *a,
  20455. const WOLFSSL_ASN1_TIME *b)
  20456. {
  20457. int ret;
  20458. int days;
  20459. int secs;
  20460. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_compare");
  20461. if (wolfSSL_ASN1_TIME_diff(&days, &secs, a, b) != WOLFSSL_SUCCESS) {
  20462. WOLFSSL_MSG("Failed to get time difference.");
  20463. ret = -2;
  20464. }
  20465. else {
  20466. if (days == 0 && secs == 0) {
  20467. /* a and b are the same time. */
  20468. ret = 0;
  20469. }
  20470. else if (days >= 0 && secs >= 0) {
  20471. /* a is before b. */
  20472. ret = -1;
  20473. }
  20474. else if (days <= 0 && secs <= 0) {
  20475. /* a is after b. */
  20476. ret = 1;
  20477. }
  20478. else {
  20479. WOLFSSL_MSG("Incoherent time difference.");
  20480. ret = -2;
  20481. }
  20482. }
  20483. WOLFSSL_LEAVE("wolfSSL_ASN1_TIME_compare", ret);
  20484. return ret;
  20485. }
  20486. #endif /* !NO_ASN_TIME */
  20487. #ifndef NO_WOLFSSL_STUB
  20488. WOLFSSL_ASN1_TIME *wolfSSL_ASN1_TIME_set(WOLFSSL_ASN1_TIME *s, time_t t)
  20489. {
  20490. WOLFSSL_STUB("wolfSSL_ASN1_TIME_set");
  20491. (void)s;
  20492. (void)t;
  20493. return s;
  20494. }
  20495. #endif /* !NO_WOLFSSL_STUB */
  20496. int wolfSSL_ASN1_TIME_set_string(WOLFSSL_ASN1_TIME *s, const char *str)
  20497. {
  20498. int slen;
  20499. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_set_string");
  20500. if (!str) {
  20501. WOLFSSL_MSG("Bad parameter");
  20502. return WOLFSSL_FAILURE;
  20503. }
  20504. slen = (int)XSTRLEN(str)+1;
  20505. if (slen > CTC_DATE_SIZE) {
  20506. WOLFSSL_MSG("Date string too long");
  20507. return WOLFSSL_FAILURE;
  20508. }
  20509. if (s) {
  20510. XMEMCPY(s->data, str, slen);
  20511. s->length = slen - 1; /* do not include null terminator in length */
  20512. s->type = slen == ASN_UTC_TIME_SIZE ? V_ASN1_UTCTIME :
  20513. V_ASN1_GENERALIZEDTIME;
  20514. }
  20515. return WOLFSSL_SUCCESS;
  20516. }
  20517. #ifndef NO_BIO
  20518. /* Return the month as a string.
  20519. *
  20520. * n The number of the month as a two characters (1 based).
  20521. * returns the month as a string.
  20522. */
  20523. static WC_INLINE const char* MonthStr(const char* n)
  20524. {
  20525. static const char monthStr[12][4] = {
  20526. "Jan", "Feb", "Mar", "Apr", "May", "Jun",
  20527. "Jul", "Aug", "Sep", "Oct", "Nov", "Dec" };
  20528. return monthStr[(n[0] - '0') * 10 + (n[1] - '0') - 1];
  20529. }
  20530. int wolfSSL_ASN1_GENERALIZEDTIME_print(WOLFSSL_BIO* bio,
  20531. const WOLFSSL_ASN1_GENERALIZEDTIME* asnTime)
  20532. {
  20533. const char* p;
  20534. WOLFSSL_ENTER("wolfSSL_ASN1_GENERALIZEDTIME_print");
  20535. if (bio == NULL || asnTime == NULL)
  20536. return BAD_FUNC_ARG;
  20537. if (asnTime->type != ASN_GENERALIZED_TIME) {
  20538. WOLFSSL_MSG("Error, not GENERALIZED_TIME");
  20539. return WOLFSSL_FAILURE;
  20540. }
  20541. p = (const char *)(asnTime->data);
  20542. /* GetTimeString not always available. */
  20543. if (wolfSSL_BIO_write(bio, MonthStr(p + 4), 3) <= 0)
  20544. return WOLFSSL_FAILURE;
  20545. if (wolfSSL_BIO_write(bio, " ", 1) <= 0)
  20546. return WOLFSSL_FAILURE;
  20547. /* Day */
  20548. if (wolfSSL_BIO_write(bio, p + 6, 2) <= 0)
  20549. return WOLFSSL_FAILURE;
  20550. if (wolfSSL_BIO_write(bio, " ", 1) <= 0)
  20551. return WOLFSSL_FAILURE;
  20552. /* Hour */
  20553. if (wolfSSL_BIO_write(bio, p + 8, 2) <= 0)
  20554. return WOLFSSL_FAILURE;
  20555. if (wolfSSL_BIO_write(bio, ":", 1) <= 0)
  20556. return WOLFSSL_FAILURE;
  20557. /* Min */
  20558. if (wolfSSL_BIO_write(bio, p + 10, 2) <= 0)
  20559. return WOLFSSL_FAILURE;
  20560. if (wolfSSL_BIO_write(bio, ":", 1) <= 0)
  20561. return WOLFSSL_FAILURE;
  20562. /* Secs */
  20563. if (wolfSSL_BIO_write(bio, p + 12, 2) <= 0)
  20564. return WOLFSSL_FAILURE;
  20565. if (wolfSSL_BIO_write(bio, " ", 1) <= 0)
  20566. return WOLFSSL_FAILURE;
  20567. if (wolfSSL_BIO_write(bio, p, 4) <= 0)
  20568. return WOLFSSL_FAILURE;
  20569. return 0;
  20570. }
  20571. #endif /* !NO_BIO */
  20572. void wolfSSL_ASN1_GENERALIZEDTIME_free(WOLFSSL_ASN1_TIME* asn1Time)
  20573. {
  20574. WOLFSSL_ENTER("wolfSSL_ASN1_GENERALIZEDTIME_free");
  20575. if (asn1Time == NULL)
  20576. return;
  20577. XMEMSET(asn1Time->data, 0, sizeof(asn1Time->data));
  20578. }
  20579. #endif /* OPENSSL_EXTRA */
  20580. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  20581. int wolfSSL_sk_num(const WOLFSSL_STACK* sk)
  20582. {
  20583. WOLFSSL_ENTER("wolfSSL_sk_num");
  20584. if (sk == NULL)
  20585. return 0;
  20586. return (int)sk->num;
  20587. }
  20588. void* wolfSSL_sk_value(const WOLFSSL_STACK* sk, int i)
  20589. {
  20590. WOLFSSL_ENTER("wolfSSL_sk_value");
  20591. for (; sk != NULL && i > 0; i--)
  20592. sk = sk->next;
  20593. if (sk == NULL)
  20594. return NULL;
  20595. switch (sk->type) {
  20596. case STACK_TYPE_X509:
  20597. return (void*)sk->data.x509;
  20598. case STACK_TYPE_GEN_NAME:
  20599. return (void*)sk->data.gn;
  20600. case STACK_TYPE_BIO:
  20601. return (void*)sk->data.bio;
  20602. case STACK_TYPE_OBJ:
  20603. return (void*)sk->data.obj;
  20604. case STACK_TYPE_STRING:
  20605. return (void*)sk->data.string;
  20606. case STACK_TYPE_CIPHER:
  20607. return (void*)&sk->data.cipher;
  20608. case STACK_TYPE_ACCESS_DESCRIPTION:
  20609. return (void*)sk->data.access;
  20610. case STACK_TYPE_X509_EXT:
  20611. return (void*)sk->data.ext;
  20612. case STACK_TYPE_X509_REQ_ATTR:
  20613. return (void*)sk->data.generic;
  20614. case STACK_TYPE_NULL:
  20615. return (void*)sk->data.generic;
  20616. case STACK_TYPE_X509_NAME:
  20617. return (void*)sk->data.name;
  20618. case STACK_TYPE_X509_NAME_ENTRY:
  20619. return (void*)sk->data.name_entry;
  20620. case STACK_TYPE_CONF_VALUE:
  20621. return (void*)sk->data.conf;
  20622. case STACK_TYPE_X509_INFO:
  20623. return (void*)sk->data.info;
  20624. case STACK_TYPE_BY_DIR_entry:
  20625. return (void*)sk->data.dir_entry;
  20626. case STACK_TYPE_BY_DIR_hash:
  20627. return (void*)sk->data.dir_hash;
  20628. case STACK_TYPE_X509_OBJ:
  20629. return (void*)sk->data.x509_obj;
  20630. case STACK_TYPE_DIST_POINT:
  20631. return (void*)sk->data.dp;
  20632. case STACK_TYPE_X509_CRL:
  20633. return (void*)sk->data.crl;
  20634. default:
  20635. return (void*)sk->data.generic;
  20636. }
  20637. }
  20638. /* copies over data of "in" to "out" */
  20639. static void wolfSSL_CIPHER_copy(WOLFSSL_CIPHER* in, WOLFSSL_CIPHER* out)
  20640. {
  20641. if (in == NULL || out == NULL)
  20642. return;
  20643. *out = *in;
  20644. }
  20645. WOLFSSL_STACK* wolfSSL_sk_dup(WOLFSSL_STACK* sk)
  20646. {
  20647. WOLFSSL_STACK* ret = NULL;
  20648. WOLFSSL_STACK* last = NULL;
  20649. WOLFSSL_ENTER("wolfSSL_sk_dup");
  20650. while (sk) {
  20651. WOLFSSL_STACK* cur = wolfSSL_sk_new_node(sk->heap);
  20652. if (!cur) {
  20653. WOLFSSL_MSG("wolfSSL_sk_new_node error");
  20654. goto error;
  20655. }
  20656. if (!ret) {
  20657. /* Set first node */
  20658. ret = cur;
  20659. }
  20660. if (last) {
  20661. last->next = cur;
  20662. }
  20663. XMEMCPY(cur, sk, sizeof(WOLFSSL_STACK));
  20664. /* We will allocate new memory for this */
  20665. XMEMSET(&cur->data, 0, sizeof(cur->data));
  20666. cur->next = NULL;
  20667. switch (sk->type) {
  20668. case STACK_TYPE_X509:
  20669. if (!sk->data.x509)
  20670. break;
  20671. cur->data.x509 = wolfSSL_X509_dup(sk->data.x509);
  20672. if (!cur->data.x509) {
  20673. WOLFSSL_MSG("wolfSSL_X509_dup error");
  20674. goto error;
  20675. }
  20676. break;
  20677. case STACK_TYPE_CIPHER:
  20678. wolfSSL_CIPHER_copy(&sk->data.cipher, &cur->data.cipher);
  20679. break;
  20680. case STACK_TYPE_GEN_NAME:
  20681. if (!sk->data.gn)
  20682. break;
  20683. cur->data.gn = wolfSSL_GENERAL_NAME_dup(sk->data.gn);
  20684. if (!cur->data.gn) {
  20685. WOLFSSL_MSG("wolfSSL_GENERAL_NAME_new error");
  20686. goto error;
  20687. }
  20688. break;
  20689. case STACK_TYPE_OBJ:
  20690. if (!sk->data.obj)
  20691. break;
  20692. cur->data.obj = wolfSSL_ASN1_OBJECT_dup(sk->data.obj);
  20693. if (!cur->data.obj) {
  20694. WOLFSSL_MSG("wolfSSL_ASN1_OBJECT_dup error");
  20695. goto error;
  20696. }
  20697. break;
  20698. case STACK_TYPE_BIO:
  20699. case STACK_TYPE_STRING:
  20700. case STACK_TYPE_ACCESS_DESCRIPTION:
  20701. case STACK_TYPE_X509_EXT:
  20702. case STACK_TYPE_X509_REQ_ATTR:
  20703. case STACK_TYPE_NULL:
  20704. case STACK_TYPE_X509_NAME:
  20705. case STACK_TYPE_X509_NAME_ENTRY:
  20706. case STACK_TYPE_CONF_VALUE:
  20707. case STACK_TYPE_X509_INFO:
  20708. case STACK_TYPE_BY_DIR_entry:
  20709. case STACK_TYPE_BY_DIR_hash:
  20710. case STACK_TYPE_X509_OBJ:
  20711. case STACK_TYPE_DIST_POINT:
  20712. case STACK_TYPE_X509_CRL:
  20713. default:
  20714. WOLFSSL_MSG("Unsupported stack type");
  20715. goto error;
  20716. }
  20717. sk = sk->next;
  20718. last = cur;
  20719. }
  20720. return ret;
  20721. error:
  20722. if (ret) {
  20723. wolfSSL_sk_GENERAL_NAME_free(ret);
  20724. }
  20725. return NULL;
  20726. }
  20727. /* Free the just the stack structure */
  20728. void wolfSSL_sk_free(WOLFSSL_STACK* sk)
  20729. {
  20730. WOLFSSL_ENTER("wolfSSL_sk_free");
  20731. while (sk != NULL) {
  20732. WOLFSSL_STACK* next = sk->next;
  20733. XFREE(sk, NULL, DYNAMIC_TYPE_OPENSSL);
  20734. sk = next;
  20735. }
  20736. }
  20737. /* Frees each node in the stack and frees the stack.
  20738. */
  20739. void wolfSSL_sk_GENERIC_pop_free(WOLFSSL_STACK* sk,
  20740. void (*f) (void*))
  20741. {
  20742. WOLFSSL_ENTER("wolfSSL_sk_GENERIC_pop_free");
  20743. wolfSSL_sk_pop_free(sk, (wolfSSL_sk_freefunc)f);
  20744. }
  20745. /* return 1 on success 0 on fail */
  20746. int wolfSSL_sk_GENERIC_push(WOLFSSL_STACK* sk, void* generic)
  20747. {
  20748. WOLFSSL_ENTER("wolfSSL_sk_GENERIC_push");
  20749. return wolfSSL_sk_push(sk, generic);
  20750. }
  20751. void wolfSSL_sk_GENERIC_free(WOLFSSL_STACK* sk)
  20752. {
  20753. wolfSSL_sk_free(sk);
  20754. }
  20755. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  20756. #ifdef OPENSSL_EXTRA
  20757. /* Free all nodes in a stack including the pushed objects */
  20758. void wolfSSL_sk_pop_free(WOLF_STACK_OF(WOLFSSL_ASN1_OBJECT)* sk,
  20759. wolfSSL_sk_freefunc func)
  20760. {
  20761. WOLFSSL_ENTER("wolfSSL_sk_pop_free");
  20762. if (sk == NULL) {
  20763. /* pop_free can be called with NULL, do not print bad argument */
  20764. return;
  20765. }
  20766. #if defined(WOLFSSL_QT)
  20767. /* In Qt v15.5, it calls OPENSSL_sk_free(xxx, OPENSSL_sk_free).
  20768. * By using OPENSSL_sk_free for free causes access violation.
  20769. * Therefore, switching free func to wolfSSL_ACCESS_DESCRIPTION_free
  20770. * is needed even the func isn't NULL.
  20771. */
  20772. if (sk->type == STACK_TYPE_ACCESS_DESCRIPTION) {
  20773. func = (wolfSSL_sk_freefunc)wolfSSL_ACCESS_DESCRIPTION_free;
  20774. }
  20775. #endif
  20776. if (func == NULL) {
  20777. switch(sk->type) {
  20778. case STACK_TYPE_ACCESS_DESCRIPTION:
  20779. #if defined(OPENSSL_ALL)
  20780. func = (wolfSSL_sk_freefunc)wolfSSL_ACCESS_DESCRIPTION_free;
  20781. #endif
  20782. break;
  20783. case STACK_TYPE_X509:
  20784. func = (wolfSSL_sk_freefunc)wolfSSL_X509_free;
  20785. break;
  20786. case STACK_TYPE_X509_OBJ:
  20787. #ifdef OPENSSL_ALL
  20788. func = (wolfSSL_sk_freefunc)wolfSSL_X509_OBJECT_free;
  20789. #endif
  20790. break;
  20791. case STACK_TYPE_OBJ:
  20792. func = (wolfSSL_sk_freefunc)wolfSSL_ASN1_OBJECT_free;
  20793. break;
  20794. case STACK_TYPE_DIST_POINT:
  20795. func = (wolfSSL_sk_freefunc)wolfSSL_DIST_POINT_free;
  20796. break;
  20797. case STACK_TYPE_GEN_NAME:
  20798. func = (wolfSSL_sk_freefunc)wolfSSL_GENERAL_NAME_free;
  20799. break;
  20800. #if defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY) || \
  20801. defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  20802. case STACK_TYPE_STRING:
  20803. func = (wolfSSL_sk_freefunc)wolfSSL_WOLFSSL_STRING_free;
  20804. break;
  20805. #endif
  20806. case STACK_TYPE_X509_NAME:
  20807. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) \
  20808. && !defined(WOLFCRYPT_ONLY)
  20809. func = (wolfSSL_sk_freefunc)wolfSSL_X509_NAME_free;
  20810. #endif
  20811. break;
  20812. case STACK_TYPE_X509_NAME_ENTRY:
  20813. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) \
  20814. && !defined(WOLFCRYPT_ONLY)
  20815. func = (wolfSSL_sk_freefunc)wolfSSL_X509_NAME_ENTRY_free;
  20816. #endif
  20817. break;
  20818. case STACK_TYPE_X509_EXT:
  20819. #ifdef OPENSSL_ALL
  20820. func = (wolfSSL_sk_freefunc)wolfSSL_X509_EXTENSION_free;
  20821. #endif
  20822. break;
  20823. case STACK_TYPE_X509_REQ_ATTR:
  20824. #if defined(OPENSSL_ALL) && \
  20825. (defined(WOLFSSL_CERT_GEN) || defined(WOLFSSL_CERT_REQ))
  20826. func = (wolfSSL_sk_freefunc)wolfSSL_X509_ATTRIBUTE_free;
  20827. #endif
  20828. break;
  20829. case STACK_TYPE_CONF_VALUE:
  20830. #ifdef OPENSSL_ALL
  20831. func = (wolfSSL_sk_freefunc)wolfSSL_X509V3_conf_free;
  20832. #endif
  20833. break;
  20834. case STACK_TYPE_X509_INFO:
  20835. #if defined(OPENSSL_ALL)
  20836. func = (wolfSSL_sk_freefunc)wolfSSL_X509_INFO_free;
  20837. #endif
  20838. break;
  20839. case STACK_TYPE_BIO:
  20840. #if !defined(NO_BIO)
  20841. func = (wolfSSL_sk_freefunc)wolfSSL_BIO_vfree;
  20842. #endif
  20843. break;
  20844. case STACK_TYPE_BY_DIR_entry:
  20845. #if defined(OPENSSL_ALL) && !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  20846. func = (wolfSSL_sk_freefunc)wolfSSL_BY_DIR_entry_free;
  20847. #endif
  20848. break;
  20849. case STACK_TYPE_BY_DIR_hash:
  20850. #if defined(OPENSSL_ALL) && !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  20851. func = (wolfSSL_sk_freefunc)wolfSSL_BY_DIR_HASH_free;
  20852. #endif
  20853. break;
  20854. case STACK_TYPE_X509_CRL:
  20855. #if defined(HAVE_CRL) && (defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL))
  20856. func = (wolfSSL_sk_freefunc)wolfSSL_X509_CRL_free;
  20857. #endif
  20858. break;
  20859. case STACK_TYPE_CIPHER:
  20860. case STACK_TYPE_NULL:
  20861. default:
  20862. break;
  20863. }
  20864. }
  20865. while (sk != NULL) {
  20866. WOLFSSL_STACK* next = sk->next;
  20867. if (func != NULL) {
  20868. if (sk->type != STACK_TYPE_CIPHER)
  20869. func(sk->data.generic);
  20870. }
  20871. XFREE(sk, NULL, DYNAMIC_TYPE_OPENSSL);
  20872. sk = next;
  20873. }
  20874. }
  20875. #endif /* OPENSSL_EXTRA */
  20876. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  20877. /* Creates and returns a new null stack. */
  20878. WOLFSSL_STACK* wolfSSL_sk_new_null(void)
  20879. {
  20880. WOLFSSL_STACK* sk;
  20881. WOLFSSL_ENTER("wolfSSL_sk_new_null");
  20882. sk = (WOLFSSL_STACK*)XMALLOC(sizeof(WOLFSSL_STACK), NULL,
  20883. DYNAMIC_TYPE_OPENSSL);
  20884. if (sk == NULL) {
  20885. WOLFSSL_MSG("WOLFSSL_STACK memory error");
  20886. return NULL;
  20887. }
  20888. XMEMSET(sk, 0, sizeof(WOLFSSL_STACK));
  20889. sk->type = STACK_TYPE_NULL;
  20890. return sk;
  20891. }
  20892. int wolfSSL_sk_SSL_COMP_num(WOLF_STACK_OF(WOLFSSL_COMP)* sk)
  20893. {
  20894. if (sk == NULL)
  20895. return 0;
  20896. return (int)sk->num;
  20897. }
  20898. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL */
  20899. #if !defined(NO_SESSION_CACHE) && (defined(OPENSSL_EXTRA) || \
  20900. defined(HAVE_EXT_CACHE))
  20901. /* stunnel 4.28 needs
  20902. *
  20903. * Callback that is called if a session tries to resume but could not find
  20904. * the session to resume it.
  20905. */
  20906. void wolfSSL_CTX_sess_set_get_cb(WOLFSSL_CTX* ctx,
  20907. WOLFSSL_SESSION*(*f)(WOLFSSL*, const unsigned char*, int, int*))
  20908. {
  20909. if (ctx == NULL)
  20910. return;
  20911. #ifdef HAVE_EXT_CACHE
  20912. ctx->get_sess_cb = f;
  20913. #else
  20914. (void)f;
  20915. #endif
  20916. }
  20917. void wolfSSL_CTX_sess_set_new_cb(WOLFSSL_CTX* ctx,
  20918. int (*f)(WOLFSSL*, WOLFSSL_SESSION*))
  20919. {
  20920. if (ctx == NULL)
  20921. return;
  20922. #ifdef HAVE_EXT_CACHE
  20923. ctx->new_sess_cb = f;
  20924. #else
  20925. (void)f;
  20926. #endif
  20927. }
  20928. void wolfSSL_CTX_sess_set_remove_cb(WOLFSSL_CTX* ctx, void (*f)(WOLFSSL_CTX*,
  20929. WOLFSSL_SESSION*))
  20930. {
  20931. if (ctx == NULL)
  20932. return;
  20933. #if defined(HAVE_EXT_CACHE) || defined(HAVE_EX_DATA)
  20934. ctx->rem_sess_cb = f;
  20935. #else
  20936. (void)f;
  20937. #endif
  20938. }
  20939. /*
  20940. *
  20941. * Note: It is expected that the importing and exporting function have been
  20942. * built with the same settings. For example if session tickets was
  20943. * enabled with the wolfSSL library exporting a session then it is
  20944. * expected to be turned on with the wolfSSL library importing the session.
  20945. */
  20946. int wolfSSL_i2d_SSL_SESSION(WOLFSSL_SESSION* sess, unsigned char** p)
  20947. {
  20948. int size = 0;
  20949. #ifdef HAVE_EXT_CACHE
  20950. int idx = 0;
  20951. #ifdef SESSION_CERTS
  20952. int i;
  20953. #endif
  20954. unsigned char *data;
  20955. WOLFSSL_ENTER("wolfSSL_i2d_SSL_SESSION");
  20956. sess = ClientSessionToSession(sess);
  20957. if (sess == NULL) {
  20958. return BAD_FUNC_ARG;
  20959. }
  20960. /* side | bornOn | timeout | sessionID len | sessionID | masterSecret |
  20961. * haveEMS */
  20962. size += OPAQUE8_LEN + OPAQUE32_LEN + OPAQUE32_LEN + OPAQUE8_LEN +
  20963. sess->sessionIDSz + SECRET_LEN + OPAQUE8_LEN;
  20964. /* altSessionID */
  20965. size += OPAQUE8_LEN + (sess->haveAltSessionID ? ID_LEN : 0);
  20966. #ifdef SESSION_CERTS
  20967. /* Peer chain */
  20968. size += OPAQUE8_LEN;
  20969. for (i = 0; i < sess->chain.count; i++)
  20970. size += OPAQUE16_LEN + sess->chain.certs[i].length;
  20971. #endif
  20972. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  20973. defined(HAVE_SESSION_TICKET))
  20974. /* Protocol version */
  20975. size += OPAQUE16_LEN;
  20976. #endif
  20977. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  20978. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  20979. /* cipher suite */
  20980. size += OPAQUE16_LEN;
  20981. #endif
  20982. #ifndef NO_CLIENT_CACHE
  20983. /* ServerID len | ServerID */
  20984. size += OPAQUE16_LEN + sess->idLen;
  20985. #endif
  20986. #ifdef OPENSSL_EXTRA
  20987. /* session context ID len | session context ID */
  20988. size += OPAQUE8_LEN + sess->sessionCtxSz;
  20989. #endif
  20990. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  20991. /* peerVerifyRet */
  20992. size += OPAQUE8_LEN;
  20993. #endif
  20994. #ifdef WOLFSSL_TLS13
  20995. /* namedGroup */
  20996. size += OPAQUE16_LEN;
  20997. #endif
  20998. #if defined(HAVE_SESSION_TICKET) || !defined(NO_PSK)
  20999. #ifdef WOLFSSL_TLS13
  21000. /* ticketSeen | ticketAdd */
  21001. size += OPAQUE32_LEN + OPAQUE32_LEN;
  21002. /* ticketNonce */
  21003. size += OPAQUE8_LEN + sess->ticketNonce.len;
  21004. #endif
  21005. #ifdef WOLFSSL_EARLY_DATA
  21006. size += OPAQUE32_LEN;
  21007. #endif
  21008. #endif
  21009. #ifdef HAVE_SESSION_TICKET
  21010. /* ticket len | ticket */
  21011. size += OPAQUE16_LEN + sess->ticketLen;
  21012. #endif
  21013. if (p != NULL) {
  21014. if (*p == NULL)
  21015. *p = (unsigned char*)XMALLOC(size, NULL, DYNAMIC_TYPE_OPENSSL);
  21016. if (*p == NULL)
  21017. return 0;
  21018. data = *p;
  21019. data[idx++] = sess->side;
  21020. c32toa(sess->bornOn, data + idx); idx += OPAQUE32_LEN;
  21021. c32toa(sess->timeout, data + idx); idx += OPAQUE32_LEN;
  21022. data[idx++] = sess->sessionIDSz;
  21023. XMEMCPY(data + idx, sess->sessionID, sess->sessionIDSz);
  21024. idx += sess->sessionIDSz;
  21025. XMEMCPY(data + idx, sess->masterSecret, SECRET_LEN); idx += SECRET_LEN;
  21026. data[idx++] = (byte)sess->haveEMS;
  21027. data[idx++] = sess->haveAltSessionID ? ID_LEN : 0;
  21028. if (sess->haveAltSessionID) {
  21029. XMEMCPY(data + idx, sess->altSessionID, ID_LEN);
  21030. idx += ID_LEN;
  21031. }
  21032. #ifdef SESSION_CERTS
  21033. data[idx++] = (byte)sess->chain.count;
  21034. for (i = 0; i < sess->chain.count; i++) {
  21035. c16toa((word16)sess->chain.certs[i].length, data + idx);
  21036. idx += OPAQUE16_LEN;
  21037. XMEMCPY(data + idx, sess->chain.certs[i].buffer,
  21038. sess->chain.certs[i].length);
  21039. idx += sess->chain.certs[i].length;
  21040. }
  21041. #endif
  21042. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  21043. defined(HAVE_SESSION_TICKET))
  21044. data[idx++] = sess->version.major;
  21045. data[idx++] = sess->version.minor;
  21046. #endif
  21047. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  21048. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  21049. data[idx++] = sess->cipherSuite0;
  21050. data[idx++] = sess->cipherSuite;
  21051. #endif
  21052. #ifndef NO_CLIENT_CACHE
  21053. c16toa(sess->idLen, data + idx); idx += OPAQUE16_LEN;
  21054. XMEMCPY(data + idx, sess->serverID, sess->idLen);
  21055. idx += sess->idLen;
  21056. #endif
  21057. #ifdef OPENSSL_EXTRA
  21058. data[idx++] = sess->sessionCtxSz;
  21059. XMEMCPY(data + idx, sess->sessionCtx, sess->sessionCtxSz);
  21060. idx += sess->sessionCtxSz;
  21061. #endif
  21062. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  21063. data[idx++] = sess->peerVerifyRet;
  21064. #endif
  21065. #ifdef WOLFSSL_TLS13
  21066. c16toa(sess->namedGroup, data + idx);
  21067. idx += OPAQUE16_LEN;
  21068. #endif
  21069. #if defined(HAVE_SESSION_TICKET) || !defined(NO_PSK)
  21070. #ifdef WOLFSSL_TLS13
  21071. c32toa(sess->ticketSeen, data + idx);
  21072. idx += OPAQUE32_LEN;
  21073. c32toa(sess->ticketAdd, data + idx);
  21074. idx += OPAQUE32_LEN;
  21075. data[idx++] = sess->ticketNonce.len;
  21076. XMEMCPY(data + idx, sess->ticketNonce.data, sess->ticketNonce.len);
  21077. idx += sess->ticketNonce.len;
  21078. #endif
  21079. #ifdef WOLFSSL_EARLY_DATA
  21080. c32toa(sess->maxEarlyDataSz, data + idx);
  21081. idx += OPAQUE32_LEN;
  21082. #endif
  21083. #endif
  21084. #ifdef HAVE_SESSION_TICKET
  21085. c16toa(sess->ticketLen, data + idx); idx += OPAQUE16_LEN;
  21086. XMEMCPY(data + idx, sess->ticket, sess->ticketLen);
  21087. idx += sess->ticketLen;
  21088. #endif
  21089. }
  21090. #endif
  21091. (void)sess;
  21092. (void)p;
  21093. #ifdef HAVE_EXT_CACHE
  21094. (void)idx;
  21095. #endif
  21096. return size;
  21097. }
  21098. /* TODO: no function to free new session.
  21099. *
  21100. * Note: It is expected that the importing and exporting function have been
  21101. * built with the same settings. For example if session tickets was
  21102. * enabled with the wolfSSL library exporting a session then it is
  21103. * expected to be turned on with the wolfSSL library importing the session.
  21104. */
  21105. WOLFSSL_SESSION* wolfSSL_d2i_SSL_SESSION(WOLFSSL_SESSION** sess,
  21106. const unsigned char** p, long i)
  21107. {
  21108. WOLFSSL_SESSION* s = NULL;
  21109. int ret = 0;
  21110. #if defined(HAVE_EXT_CACHE)
  21111. int idx;
  21112. byte* data;
  21113. #ifdef SESSION_CERTS
  21114. int j;
  21115. word16 length;
  21116. #endif
  21117. #endif /* HAVE_EXT_CACHE */
  21118. (void)p;
  21119. (void)i;
  21120. (void)ret;
  21121. (void)sess;
  21122. #ifdef HAVE_EXT_CACHE
  21123. if (p == NULL || *p == NULL)
  21124. return NULL;
  21125. s = wolfSSL_SESSION_new();
  21126. if (s == NULL)
  21127. return NULL;
  21128. idx = 0;
  21129. data = (byte*)*p;
  21130. /* side | bornOn | timeout | sessionID len */
  21131. if (i < OPAQUE8_LEN + OPAQUE32_LEN + OPAQUE32_LEN + OPAQUE8_LEN) {
  21132. ret = BUFFER_ERROR;
  21133. goto end;
  21134. }
  21135. s->side = data[idx++];
  21136. ato32(data + idx, &s->bornOn); idx += OPAQUE32_LEN;
  21137. ato32(data + idx, &s->timeout); idx += OPAQUE32_LEN;
  21138. s->sessionIDSz = data[idx++];
  21139. /* sessionID | secret | haveEMS | haveAltSessionID */
  21140. if (i - idx < s->sessionIDSz + SECRET_LEN + OPAQUE8_LEN + OPAQUE8_LEN) {
  21141. ret = BUFFER_ERROR;
  21142. goto end;
  21143. }
  21144. XMEMCPY(s->sessionID, data + idx, s->sessionIDSz);
  21145. idx += s->sessionIDSz;
  21146. XMEMCPY(s->masterSecret, data + idx, SECRET_LEN); idx += SECRET_LEN;
  21147. s->haveEMS = data[idx++];
  21148. if (data[idx] != ID_LEN && data[idx] != 0) {
  21149. ret = BUFFER_ERROR;
  21150. goto end;
  21151. }
  21152. s->haveAltSessionID = data[idx++] == ID_LEN;
  21153. /* altSessionID */
  21154. if (s->haveAltSessionID) {
  21155. if (i - idx < ID_LEN) {
  21156. ret = BUFFER_ERROR;
  21157. goto end;
  21158. }
  21159. XMEMCPY(s->altSessionID, data + idx, ID_LEN); idx += ID_LEN;
  21160. }
  21161. #ifdef SESSION_CERTS
  21162. /* Certificate chain */
  21163. if (i - idx == 0) {
  21164. ret = BUFFER_ERROR;
  21165. goto end;
  21166. }
  21167. s->chain.count = data[idx++];
  21168. for (j = 0; j < s->chain.count; j++) {
  21169. if (i - idx < OPAQUE16_LEN) {
  21170. ret = BUFFER_ERROR;
  21171. goto end;
  21172. }
  21173. ato16(data + idx, &length); idx += OPAQUE16_LEN;
  21174. s->chain.certs[j].length = length;
  21175. if (i - idx < length) {
  21176. ret = BUFFER_ERROR;
  21177. goto end;
  21178. }
  21179. XMEMCPY(s->chain.certs[j].buffer, data + idx, length);
  21180. idx += length;
  21181. }
  21182. #endif
  21183. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  21184. defined(HAVE_SESSION_TICKET))
  21185. /* Protocol Version */
  21186. if (i - idx < OPAQUE16_LEN) {
  21187. ret = BUFFER_ERROR;
  21188. goto end;
  21189. }
  21190. s->version.major = data[idx++];
  21191. s->version.minor = data[idx++];
  21192. #endif
  21193. #if defined(SESSION_CERTS) || !defined(NO_RESUME_SUITE_CHECK) || \
  21194. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  21195. /* Cipher suite */
  21196. if (i - idx < OPAQUE16_LEN) {
  21197. ret = BUFFER_ERROR;
  21198. goto end;
  21199. }
  21200. s->cipherSuite0 = data[idx++];
  21201. s->cipherSuite = data[idx++];
  21202. #endif
  21203. #ifndef NO_CLIENT_CACHE
  21204. /* ServerID len */
  21205. if (i - idx < OPAQUE16_LEN) {
  21206. ret = BUFFER_ERROR;
  21207. goto end;
  21208. }
  21209. ato16(data + idx, &s->idLen); idx += OPAQUE16_LEN;
  21210. /* ServerID */
  21211. if (i - idx < s->idLen) {
  21212. ret = BUFFER_ERROR;
  21213. goto end;
  21214. }
  21215. XMEMCPY(s->serverID, data + idx, s->idLen); idx += s->idLen;
  21216. #endif
  21217. #ifdef OPENSSL_EXTRA
  21218. /* byte for length of session context ID */
  21219. if (i - idx < OPAQUE8_LEN) {
  21220. ret = BUFFER_ERROR;
  21221. goto end;
  21222. }
  21223. s->sessionCtxSz = data[idx++];
  21224. /* app session context ID */
  21225. if (i - idx < s->sessionCtxSz) {
  21226. ret = BUFFER_ERROR;
  21227. goto end;
  21228. }
  21229. XMEMCPY(s->sessionCtx, data + idx, s->sessionCtxSz); idx += s->sessionCtxSz;
  21230. #endif
  21231. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  21232. /* byte for peerVerifyRet */
  21233. if (i - idx < OPAQUE8_LEN) {
  21234. ret = BUFFER_ERROR;
  21235. goto end;
  21236. }
  21237. s->peerVerifyRet = data[idx++];
  21238. #endif
  21239. #ifdef WOLFSSL_TLS13
  21240. if (i - idx < OPAQUE16_LEN) {
  21241. ret = BUFFER_ERROR;
  21242. goto end;
  21243. }
  21244. ato16(data + idx, &s->namedGroup);
  21245. idx += OPAQUE16_LEN;
  21246. #endif
  21247. #if defined(HAVE_SESSION_TICKET) || !defined(NO_PSK)
  21248. #ifdef WOLFSSL_TLS13
  21249. if (i - idx < (OPAQUE32_LEN * 2)) {
  21250. ret = BUFFER_ERROR;
  21251. goto end;
  21252. }
  21253. ato32(data + idx, &s->ticketSeen);
  21254. idx += OPAQUE32_LEN;
  21255. ato32(data + idx, &s->ticketAdd);
  21256. idx += OPAQUE32_LEN;
  21257. if (i - idx < OPAQUE8_LEN) {
  21258. ret = BUFFER_ERROR;
  21259. goto end;
  21260. }
  21261. s->ticketNonce.len = data[idx++];
  21262. if (i - idx < s->ticketNonce.len) {
  21263. ret = BUFFER_ERROR;
  21264. goto end;
  21265. }
  21266. XMEMCPY(s->ticketNonce.data, data + idx, s->ticketNonce.len);
  21267. idx += s->ticketNonce.len;
  21268. #endif
  21269. #ifdef WOLFSSL_EARLY_DATA
  21270. if (i - idx < OPAQUE32_LEN) {
  21271. ret = BUFFER_ERROR;
  21272. goto end;
  21273. }
  21274. ato32(data + idx, &s->maxEarlyDataSz);
  21275. idx += OPAQUE32_LEN;
  21276. #endif
  21277. #endif
  21278. #ifdef HAVE_SESSION_TICKET
  21279. /* ticket len */
  21280. if (i - idx < OPAQUE16_LEN) {
  21281. ret = BUFFER_ERROR;
  21282. goto end;
  21283. }
  21284. ato16(data + idx, &s->ticketLen); idx += OPAQUE16_LEN;
  21285. /* Dispose of ol dynamic ticket and ensure space for new ticket. */
  21286. if (s->ticketLenAlloc > 0) {
  21287. XFREE(s->ticket, NULL, DYNAMIC_TYPE_SESSION_TICK);
  21288. }
  21289. if (s->ticketLen <= SESSION_TICKET_LEN)
  21290. s->ticket = s->_staticTicket;
  21291. else {
  21292. s->ticket = (byte*)XMALLOC(s->ticketLen, NULL,
  21293. DYNAMIC_TYPE_SESSION_TICK);
  21294. if (s->ticket == NULL) {
  21295. ret = MEMORY_ERROR;
  21296. goto end;
  21297. }
  21298. s->ticketLenAlloc = (word16)s->ticketLen;
  21299. }
  21300. /* ticket */
  21301. if (i - idx < s->ticketLen) {
  21302. ret = BUFFER_ERROR;
  21303. goto end;
  21304. }
  21305. XMEMCPY(s->ticket, data + idx, s->ticketLen); idx += s->ticketLen;
  21306. #endif
  21307. (void)idx;
  21308. if (sess != NULL) {
  21309. *sess = s;
  21310. }
  21311. *p += idx;
  21312. end:
  21313. if (ret != 0 && (sess == NULL || *sess != s)) {
  21314. wolfSSL_SESSION_free(s);
  21315. s = NULL;
  21316. }
  21317. #endif /* HAVE_EXT_CACHE */
  21318. return s;
  21319. }
  21320. /* Check if there is a session ticket associated with this WOLFSSL_SESSION.
  21321. *
  21322. * sess - pointer to WOLFSSL_SESSION struct
  21323. *
  21324. * Returns 1 if has session ticket, otherwise 0 */
  21325. int wolfSSL_SESSION_has_ticket(const WOLFSSL_SESSION* sess)
  21326. {
  21327. WOLFSSL_ENTER("wolfSSL_SESSION_has_ticket");
  21328. #ifdef HAVE_SESSION_TICKET
  21329. sess = ClientSessionToSession(sess);
  21330. if (sess) {
  21331. if ((sess->ticketLen > 0) && (sess->ticket != NULL)) {
  21332. return WOLFSSL_SUCCESS;
  21333. }
  21334. }
  21335. #else
  21336. (void)sess;
  21337. #endif
  21338. return WOLFSSL_FAILURE;
  21339. }
  21340. unsigned long wolfSSL_SESSION_get_ticket_lifetime_hint(
  21341. const WOLFSSL_SESSION* sess)
  21342. {
  21343. WOLFSSL_ENTER("wolfSSL_SESSION_get_ticket_lifetime_hint");
  21344. sess = ClientSessionToSession(sess);
  21345. if (sess) {
  21346. return sess->timeout;
  21347. }
  21348. return 0;
  21349. }
  21350. long wolfSSL_SESSION_get_timeout(const WOLFSSL_SESSION* sess)
  21351. {
  21352. long timeout = 0;
  21353. WOLFSSL_ENTER("wolfSSL_SESSION_get_timeout");
  21354. sess = ClientSessionToSession(sess);
  21355. if (sess)
  21356. timeout = sess->timeout;
  21357. return timeout;
  21358. }
  21359. long wolfSSL_SESSION_get_time(const WOLFSSL_SESSION* sess)
  21360. {
  21361. long bornOn = 0;
  21362. WOLFSSL_ENTER("wolfSSL_SESSION_get_time");
  21363. sess = ClientSessionToSession(sess);
  21364. if (sess)
  21365. bornOn = sess->bornOn;
  21366. return bornOn;
  21367. }
  21368. long wolfSSL_SSL_SESSION_set_timeout(WOLFSSL_SESSION* ses, long t)
  21369. {
  21370. word32 tmptime;
  21371. ses = ClientSessionToSession(ses);
  21372. if (ses == NULL || t < 0) {
  21373. return BAD_FUNC_ARG;
  21374. }
  21375. tmptime = t & 0xFFFFFFFF;
  21376. ses->timeout = tmptime;
  21377. return WOLFSSL_SUCCESS;
  21378. }
  21379. #endif /* !NO_SESSION_CACHE && OPENSSL_EXTRA || HAVE_EXT_CACHE */
  21380. #ifdef OPENSSL_EXTRA
  21381. #if defined(HAVE_EX_DATA) && !defined(NO_FILESYSTEM)
  21382. int wolfSSL_cmp_peer_cert_to_file(WOLFSSL* ssl, const char *fname)
  21383. {
  21384. int ret = WOLFSSL_FATAL_ERROR;
  21385. WOLFSSL_ENTER("wolfSSL_cmp_peer_cert_to_file");
  21386. if (ssl != NULL && fname != NULL)
  21387. {
  21388. #ifdef WOLFSSL_SMALL_STACK
  21389. byte staticBuffer[1]; /* force heap usage */
  21390. #else
  21391. byte staticBuffer[FILE_BUFFER_SIZE];
  21392. #endif
  21393. byte* myBuffer = staticBuffer;
  21394. int dynamic = 0;
  21395. XFILE file;
  21396. long sz = 0;
  21397. WOLFSSL_CTX* ctx = ssl->ctx;
  21398. WOLFSSL_X509* peer_cert = &ssl->peerCert;
  21399. DerBuffer* fileDer = NULL;
  21400. file = XFOPEN(fname, "rb");
  21401. if (file == XBADFILE)
  21402. return WOLFSSL_BAD_FILE;
  21403. if (XFSEEK(file, 0, XSEEK_END) != 0) {
  21404. XFCLOSE(file);
  21405. return WOLFSSL_BAD_FILE;
  21406. }
  21407. sz = XFTELL(file);
  21408. XREWIND(file);
  21409. if (sz > MAX_WOLFSSL_FILE_SIZE || sz < 0) {
  21410. WOLFSSL_MSG("cmp_peer_cert_to_file size error");
  21411. XFCLOSE(file);
  21412. return WOLFSSL_BAD_FILE;
  21413. }
  21414. if (sz > (long)sizeof(staticBuffer)) {
  21415. WOLFSSL_MSG("Getting dynamic buffer");
  21416. myBuffer = (byte*)XMALLOC(sz, ctx->heap, DYNAMIC_TYPE_FILE);
  21417. dynamic = 1;
  21418. }
  21419. if ((myBuffer != NULL) &&
  21420. (sz > 0) &&
  21421. (XFREAD(myBuffer, 1, sz, file) == (size_t)sz) &&
  21422. (PemToDer(myBuffer, (long)sz, CERT_TYPE,
  21423. &fileDer, ctx->heap, NULL, NULL) == 0) &&
  21424. (fileDer->length != 0) &&
  21425. (fileDer->length == peer_cert->derCert->length) &&
  21426. (XMEMCMP(peer_cert->derCert->buffer, fileDer->buffer,
  21427. fileDer->length) == 0))
  21428. {
  21429. ret = 0;
  21430. }
  21431. FreeDer(&fileDer);
  21432. if (dynamic)
  21433. XFREE(myBuffer, ctx->heap, DYNAMIC_TYPE_FILE);
  21434. XFCLOSE(file);
  21435. }
  21436. return ret;
  21437. }
  21438. #endif
  21439. #endif /* OPENSSL_EXTRA */
  21440. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  21441. const WOLFSSL_ObjectInfo wolfssl_object_info[] = {
  21442. #ifndef NO_CERTS
  21443. /* oidCertExtType */
  21444. { NID_basic_constraints, BASIC_CA_OID, oidCertExtType, "basicConstraints",
  21445. "X509v3 Basic Constraints"},
  21446. { NID_subject_alt_name, ALT_NAMES_OID, oidCertExtType, "subjectAltName",
  21447. "X509v3 Subject Alternative Name"},
  21448. { NID_crl_distribution_points, CRL_DIST_OID, oidCertExtType, "crlDistributionPoints",
  21449. "X509v3 CRL Distribution Points"},
  21450. { NID_info_access, AUTH_INFO_OID, oidCertExtType, "authorityInfoAccess",
  21451. "Authority Information Access"},
  21452. { NID_authority_key_identifier, AUTH_KEY_OID, oidCertExtType,
  21453. "authorityKeyIdentifier", "X509v3 Authority Key Identifier"},
  21454. { NID_subject_key_identifier, SUBJ_KEY_OID, oidCertExtType,
  21455. "subjectKeyIdentifier", "X509v3 Subject Key Identifier"},
  21456. { NID_key_usage, KEY_USAGE_OID, oidCertExtType, "keyUsage",
  21457. "X509v3 Key Usage"},
  21458. { NID_inhibit_any_policy, INHIBIT_ANY_OID, oidCertExtType,
  21459. "inhibitAnyPolicy", "X509v3 Inhibit Any Policy"},
  21460. { NID_ext_key_usage, EXT_KEY_USAGE_OID, oidCertExtType,
  21461. "extendedKeyUsage", "X509v3 Extended Key Usage"},
  21462. { NID_name_constraints, NAME_CONS_OID, oidCertExtType,
  21463. "nameConstraints", "X509v3 Name Constraints"},
  21464. { NID_certificate_policies, CERT_POLICY_OID, oidCertExtType,
  21465. "certificatePolicies", "X509v3 Certificate Policies"},
  21466. /* oidCertAuthInfoType */
  21467. { NID_ad_OCSP, AIA_OCSP_OID, oidCertAuthInfoType, "OCSP",
  21468. "OCSP"},
  21469. { NID_ad_ca_issuers, AIA_CA_ISSUER_OID, oidCertAuthInfoType,
  21470. "caIssuers", "CA Issuers"},
  21471. /* oidCertPolicyType */
  21472. { NID_any_policy, CP_ANY_OID, oidCertPolicyType, "anyPolicy",
  21473. "X509v3 Any Policy"},
  21474. /* oidCertAltNameType */
  21475. { NID_hw_name_oid, HW_NAME_OID, oidCertAltNameType, "Hardware name",""},
  21476. /* oidCertKeyUseType */
  21477. { NID_anyExtendedKeyUsage, EKU_ANY_OID, oidCertKeyUseType,
  21478. "anyExtendedKeyUsage", "Any Extended Key Usage"},
  21479. { EKU_SERVER_AUTH_OID, EKU_SERVER_AUTH_OID, oidCertKeyUseType,
  21480. "serverAuth", "TLS Web Server Authentication"},
  21481. { EKU_CLIENT_AUTH_OID, EKU_CLIENT_AUTH_OID, oidCertKeyUseType,
  21482. "clientAuth", "TLS Web Client Authentication"},
  21483. { EKU_OCSP_SIGN_OID, EKU_OCSP_SIGN_OID, oidCertKeyUseType,
  21484. "OCSPSigning", "OCSP Signing"},
  21485. /* oidCertNameType */
  21486. { NID_commonName, NID_commonName, oidCertNameType, "CN", "commonName"},
  21487. { NID_surname, NID_surname, oidCertNameType, "SN", "surname"},
  21488. { NID_serialNumber, NID_serialNumber, oidCertNameType, "serialNumber",
  21489. "serialNumber"},
  21490. { NID_userId, NID_userId, oidCertNameType, "UID", "userid"},
  21491. { NID_countryName, NID_countryName, oidCertNameType, "C", "countryName"},
  21492. { NID_localityName, NID_localityName, oidCertNameType, "L", "localityName"},
  21493. { NID_stateOrProvinceName, NID_stateOrProvinceName, oidCertNameType, "ST",
  21494. "stateOrProvinceName"},
  21495. { NID_streetAddress, NID_streetAddress, oidCertNameType, "street",
  21496. "streetAddress"},
  21497. { NID_organizationName, NID_organizationName, oidCertNameType, "O",
  21498. "organizationName"},
  21499. { NID_organizationalUnitName, NID_organizationalUnitName, oidCertNameType,
  21500. "OU", "organizationalUnitName"},
  21501. { NID_emailAddress, NID_emailAddress, oidCertNameType, "emailAddress",
  21502. "emailAddress"},
  21503. { NID_domainComponent, NID_domainComponent, oidCertNameType, "DC",
  21504. "domainComponent"},
  21505. { NID_favouriteDrink, NID_favouriteDrink, oidCertNameType, "favouriteDrink",
  21506. "favouriteDrink"},
  21507. { NID_businessCategory, NID_businessCategory, oidCertNameType, "businessCategory",
  21508. "businessCategory"},
  21509. { NID_jurisdictionCountryName, NID_jurisdictionCountryName, oidCertNameType, "jurisdictionC",
  21510. "jurisdictionCountryName"},
  21511. { NID_jurisdictionStateOrProvinceName, NID_jurisdictionStateOrProvinceName,
  21512. oidCertNameType, "jurisdictionST", "jurisdictionStateOrProvinceName"},
  21513. { NID_postalCode, NID_postalCode, oidCertNameType, "postalCode", "postalCode"},
  21514. { NID_userId, NID_userId, oidCertNameType, "UID", "userId"},
  21515. #ifdef WOLFSSL_CERT_REQ
  21516. { NID_pkcs9_challengePassword, CHALLENGE_PASSWORD_OID,
  21517. oidCsrAttrType, "challengePassword", "challengePassword"},
  21518. { NID_pkcs9_contentType, PKCS9_CONTENT_TYPE_OID,
  21519. oidCsrAttrType, "contentType", "contentType" },
  21520. { NID_pkcs9_unstructuredName, UNSTRUCTURED_NAME_OID,
  21521. oidCsrAttrType, "unstructuredName", "unstructuredName" },
  21522. { NID_surname, SURNAME_OID,
  21523. oidCsrAttrType, "surname", "surname" },
  21524. { NID_givenName, GIVEN_NAME_OID,
  21525. oidCsrAttrType, "givenName", "givenName" },
  21526. { NID_initials, INITIALS_OID,
  21527. oidCsrAttrType, "initials", "initials" },
  21528. { NID_dnQualifier, DNQUALIFIER_OID,
  21529. oidCsrAttrType, "dnQualifer", "dnQualifier" },
  21530. #endif
  21531. #endif
  21532. #ifdef OPENSSL_EXTRA /* OPENSSL_EXTRA_X509_SMALL only needs the above */
  21533. /* oidHashType */
  21534. #ifdef WOLFSSL_MD2
  21535. { NID_md2, MD2h, oidHashType, "MD2", "md2"},
  21536. #endif
  21537. #ifdef WOLFSSL_MD5
  21538. { NID_md5, MD5h, oidHashType, "MD5", "md5"},
  21539. #endif
  21540. #ifndef NO_SHA
  21541. { NID_sha1, SHAh, oidHashType, "SHA1", "sha1"},
  21542. #endif
  21543. #ifdef WOLFSSL_SHA224
  21544. { NID_sha224, SHA224h, oidHashType, "SHA224", "sha224"},
  21545. #endif
  21546. #ifndef NO_SHA256
  21547. { NID_sha256, SHA256h, oidHashType, "SHA256", "sha256"},
  21548. #endif
  21549. #ifdef WOLFSSL_SHA384
  21550. { NID_sha384, SHA384h, oidHashType, "SHA384", "sha384"},
  21551. #endif
  21552. #ifdef WOLFSSL_SHA512
  21553. { NID_sha512, SHA512h, oidHashType, "SHA512", "sha512"},
  21554. #endif
  21555. #ifdef WOLFSSL_SHA3
  21556. #ifndef WOLFSSL_NOSHA3_224
  21557. { NID_sha3_224, SHA3_224h, oidHashType, "SHA3-224", "sha3-224"},
  21558. #endif
  21559. #ifndef WOLFSSL_NOSHA3_256
  21560. { NID_sha3_256, SHA3_256h, oidHashType, "SHA3-256", "sha3-256"},
  21561. #endif
  21562. #ifndef WOLFSSL_NOSHA3_384
  21563. { NID_sha3_384, SHA3_384h, oidHashType, "SHA3-384", "sha3-384"},
  21564. #endif
  21565. #ifndef WOLFSSL_NOSHA3_512
  21566. { NID_sha3_512, SHA3_512h, oidHashType, "SHA3-512", "sha3-512"},
  21567. #endif
  21568. #endif /* WOLFSSL_SHA3 */
  21569. /* oidSigType */
  21570. #ifndef NO_DSA
  21571. #ifndef NO_SHA
  21572. { NID_dsaWithSHA1, CTC_SHAwDSA, oidSigType, "DSA-SHA1", "dsaWithSHA1"},
  21573. { NID_dsa_with_SHA256, CTC_SHA256wDSA, oidSigType, "dsa_with_SHA256",
  21574. "dsa_with_SHA256"},
  21575. #endif
  21576. #endif /* NO_DSA */
  21577. #ifndef NO_RSA
  21578. #ifdef WOLFSSL_MD2
  21579. { NID_md2WithRSAEncryption, CTC_MD2wRSA, oidSigType, "RSA-MD2",
  21580. "md2WithRSAEncryption"},
  21581. #endif
  21582. #ifndef NO_MD5
  21583. { NID_md5WithRSAEncryption, CTC_MD5wRSA, oidSigType, "RSA-MD5",
  21584. "md5WithRSAEncryption"},
  21585. #endif
  21586. #ifndef NO_SHA
  21587. { NID_sha1WithRSAEncryption, CTC_SHAwRSA, oidSigType, "RSA-SHA1",
  21588. "sha1WithRSAEncryption"},
  21589. #endif
  21590. #ifdef WOLFSSL_SHA224
  21591. { NID_sha224WithRSAEncryption, CTC_SHA224wRSA, oidSigType, "RSA-SHA224",
  21592. "sha224WithRSAEncryption"},
  21593. #endif
  21594. #ifndef NO_SHA256
  21595. { NID_sha256WithRSAEncryption, CTC_SHA256wRSA, oidSigType, "RSA-SHA256",
  21596. "sha256WithRSAEncryption"},
  21597. #endif
  21598. #ifdef WOLFSSL_SHA384
  21599. { NID_sha384WithRSAEncryption, CTC_SHA384wRSA, oidSigType, "RSA-SHA384",
  21600. "sha384WithRSAEncryption"},
  21601. #endif
  21602. #ifdef WOLFSSL_SHA512
  21603. { NID_sha512WithRSAEncryption, CTC_SHA512wRSA, oidSigType, "RSA-SHA512",
  21604. "sha512WithRSAEncryption"},
  21605. #endif
  21606. #ifdef WOLFSSL_SHA3
  21607. #ifndef WOLFSSL_NOSHA3_224
  21608. { NID_RSA_SHA3_224, CTC_SHA3_224wRSA, oidSigType, "RSA-SHA3-224",
  21609. "sha3-224WithRSAEncryption"},
  21610. #endif
  21611. #ifndef WOLFSSL_NOSHA3_256
  21612. { NID_RSA_SHA3_256, CTC_SHA3_256wRSA, oidSigType, "RSA-SHA3-256",
  21613. "sha3-256WithRSAEncryption"},
  21614. #endif
  21615. #ifndef WOLFSSL_NOSHA3_384
  21616. { NID_RSA_SHA3_384, CTC_SHA3_384wRSA, oidSigType, "RSA-SHA3-384",
  21617. "sha3-384WithRSAEncryption"},
  21618. #endif
  21619. #ifndef WOLFSSL_NOSHA3_512
  21620. { NID_RSA_SHA3_512, CTC_SHA3_512wRSA, oidSigType, "RSA-SHA3-512",
  21621. "sha3-512WithRSAEncryption"},
  21622. #endif
  21623. #endif
  21624. #endif /* NO_RSA */
  21625. #ifdef HAVE_ECC
  21626. #ifndef NO_SHA
  21627. { NID_ecdsa_with_SHA1, CTC_SHAwECDSA, oidSigType, "ecdsa-with-SHA1", "shaWithECDSA"},
  21628. #endif
  21629. #ifdef WOLFSSL_SHA224
  21630. { NID_ecdsa_with_SHA224, CTC_SHA224wECDSA, oidSigType, "ecdsa-with-SHA224","sha224WithECDSA"},
  21631. #endif
  21632. #ifndef NO_SHA256
  21633. { NID_ecdsa_with_SHA256, CTC_SHA256wECDSA, oidSigType, "ecdsa-with-SHA256","sha256WithECDSA"},
  21634. #endif
  21635. #ifdef WOLFSSL_SHA384
  21636. { NID_ecdsa_with_SHA384, CTC_SHA384wECDSA, oidSigType, "ecdsa-with-SHA384","sha384WithECDSA"},
  21637. #endif
  21638. #ifdef WOLFSSL_SHA512
  21639. { NID_ecdsa_with_SHA512, CTC_SHA512wECDSA, oidSigType, "ecdsa-with-SHA512","sha512WithECDSA"},
  21640. #endif
  21641. #ifdef WOLFSSL_SHA3
  21642. #ifndef WOLFSSL_NOSHA3_224
  21643. { NID_ecdsa_with_SHA3_224, CTC_SHA3_224wECDSA, oidSigType, "id-ecdsa-with-SHA3-224",
  21644. "ecdsa_with_SHA3-224"},
  21645. #endif
  21646. #ifndef WOLFSSL_NOSHA3_256
  21647. { NID_ecdsa_with_SHA3_256, CTC_SHA3_256wECDSA, oidSigType, "id-ecdsa-with-SHA3-256",
  21648. "ecdsa_with_SHA3-256"},
  21649. #endif
  21650. #ifndef WOLFSSL_NOSHA3_384
  21651. { NID_ecdsa_with_SHA3_384, CTC_SHA3_384wECDSA, oidSigType, "id-ecdsa-with-SHA3-384",
  21652. "ecdsa_with_SHA3-384"},
  21653. #endif
  21654. #ifndef WOLFSSL_NOSHA3_512
  21655. { NID_ecdsa_with_SHA3_512, CTC_SHA3_512wECDSA, oidSigType, "id-ecdsa-with-SHA3-512",
  21656. "ecdsa_with_SHA3-512"},
  21657. #endif
  21658. #endif
  21659. #endif /* HAVE_ECC */
  21660. /* oidKeyType */
  21661. #ifndef NO_DSA
  21662. { NID_dsa, DSAk, oidKeyType, "DSA", "dsaEncryption"},
  21663. #endif /* NO_DSA */
  21664. #ifndef NO_RSA
  21665. { NID_rsaEncryption, RSAk, oidKeyType, "rsaEncryption", "rsaEncryption"},
  21666. #endif /* NO_RSA */
  21667. #ifdef HAVE_ECC
  21668. { NID_X9_62_id_ecPublicKey, ECDSAk, oidKeyType, "id-ecPublicKey",
  21669. "id-ecPublicKey"},
  21670. #endif /* HAVE_ECC */
  21671. #ifndef NO_DH
  21672. { NID_dhKeyAgreement, DHk, oidKeyType, "dhKeyAgreement", "dhKeyAgreement"},
  21673. #endif
  21674. #ifdef HAVE_ED448
  21675. { NID_ED448, ED448k, oidKeyType, "ED448", "ED448"},
  21676. #endif
  21677. #ifdef HAVE_ED25519
  21678. { NID_ED25519, ED25519k, oidKeyType, "ED25519", "ED25519"},
  21679. #endif
  21680. #ifdef HAVE_PQC
  21681. { CTC_FALCON_LEVEL1, FALCON_LEVEL1k, oidKeyType, "Falcon Level 1",
  21682. "Falcon Level 1"},
  21683. { CTC_FALCON_LEVEL5, FALCON_LEVEL5k, oidKeyType, "Falcon Level 5",
  21684. "Falcon Level 5"},
  21685. #endif
  21686. /* oidCurveType */
  21687. #ifdef HAVE_ECC
  21688. { NID_X9_62_prime192v1, ECC_SECP192R1_OID, oidCurveType, "prime192v1", "prime192v1"},
  21689. { NID_X9_62_prime192v2, ECC_PRIME192V2_OID, oidCurveType, "prime192v2", "prime192v2"},
  21690. { NID_X9_62_prime192v3, ECC_PRIME192V3_OID, oidCurveType, "prime192v3", "prime192v3"},
  21691. { NID_X9_62_prime239v1, ECC_PRIME239V1_OID, oidCurveType, "prime239v1", "prime239v1"},
  21692. { NID_X9_62_prime239v2, ECC_PRIME239V2_OID, oidCurveType, "prime239v2", "prime239v2"},
  21693. { NID_X9_62_prime239v3, ECC_PRIME239V3_OID, oidCurveType, "prime239v3", "prime239v3"},
  21694. { NID_X9_62_prime256v1, ECC_SECP256R1_OID, oidCurveType, "prime256v1", "prime256v1"},
  21695. { NID_secp112r1, ECC_SECP112R1_OID, oidCurveType, "secp112r1", "secp112r1"},
  21696. { NID_secp112r2, ECC_SECP112R2_OID, oidCurveType, "secp112r2", "secp112r2"},
  21697. { NID_secp128r1, ECC_SECP128R1_OID, oidCurveType, "secp128r1", "secp128r1"},
  21698. { NID_secp128r2, ECC_SECP128R2_OID, oidCurveType, "secp128r2", "secp128r2"},
  21699. { NID_secp160r1, ECC_SECP160R1_OID, oidCurveType, "secp160r1", "secp160r1"},
  21700. { NID_secp160r2, ECC_SECP160R2_OID, oidCurveType, "secp160r2", "secp160r2"},
  21701. { NID_secp224r1, ECC_SECP224R1_OID, oidCurveType, "secp224r1", "secp224r1"},
  21702. { NID_secp384r1, ECC_SECP384R1_OID, oidCurveType, "secp384r1", "secp384r1"},
  21703. { NID_secp521r1, ECC_SECP521R1_OID, oidCurveType, "secp521r1", "secp521r1"},
  21704. { NID_secp160k1, ECC_SECP160K1_OID, oidCurveType, "secp160k1", "secp160k1"},
  21705. { NID_secp192k1, ECC_SECP192K1_OID, oidCurveType, "secp192k1", "secp192k1"},
  21706. { NID_secp224k1, ECC_SECP224K1_OID, oidCurveType, "secp224k1", "secp224k1"},
  21707. { NID_secp256k1, ECC_SECP256K1_OID, oidCurveType, "secp256k1", "secp256k1"},
  21708. { NID_brainpoolP160r1, ECC_BRAINPOOLP160R1_OID, oidCurveType, "brainpoolP160r1", "brainpoolP160r1"},
  21709. { NID_brainpoolP192r1, ECC_BRAINPOOLP192R1_OID, oidCurveType, "brainpoolP192r1", "brainpoolP192r1"},
  21710. { NID_brainpoolP224r1, ECC_BRAINPOOLP224R1_OID, oidCurveType, "brainpoolP224r1", "brainpoolP224r1"},
  21711. { NID_brainpoolP256r1, ECC_BRAINPOOLP256R1_OID, oidCurveType, "brainpoolP256r1", "brainpoolP256r1"},
  21712. { NID_brainpoolP320r1, ECC_BRAINPOOLP320R1_OID, oidCurveType, "brainpoolP320r1", "brainpoolP320r1"},
  21713. { NID_brainpoolP384r1, ECC_BRAINPOOLP384R1_OID, oidCurveType, "brainpoolP384r1", "brainpoolP384r1"},
  21714. { NID_brainpoolP512r1, ECC_BRAINPOOLP512R1_OID, oidCurveType, "brainpoolP512r1", "brainpoolP512r1"},
  21715. #endif /* HAVE_ECC */
  21716. /* oidBlkType */
  21717. #ifdef WOLFSSL_AES_128
  21718. { AES128CBCb, AES128CBCb, oidBlkType, "AES-128-CBC", "aes-128-cbc"},
  21719. #endif
  21720. #ifdef WOLFSSL_AES_192
  21721. { AES192CBCb, AES192CBCb, oidBlkType, "AES-192-CBC", "aes-192-cbc"},
  21722. #endif
  21723. #ifdef WOLFSSL_AES_256
  21724. { AES256CBCb, AES256CBCb, oidBlkType, "AES-256-CBC", "aes-256-cbc"},
  21725. #endif
  21726. #ifndef NO_DES3
  21727. { NID_des, DESb, oidBlkType, "DES-CBC", "des-cbc"},
  21728. { NID_des3, DES3b, oidBlkType, "DES-EDE3-CBC", "des-ede3-cbc"},
  21729. #endif /* !NO_DES3 */
  21730. /* oidOcspType */
  21731. #ifdef HAVE_OCSP
  21732. { NID_id_pkix_OCSP_basic, OCSP_BASIC_OID, oidOcspType, "basicOCSPResponse",
  21733. "Basic OCSP Response"},
  21734. { OCSP_NONCE_OID, OCSP_NONCE_OID, oidOcspType, "Nonce",
  21735. "OCSP Nonce"},
  21736. #endif /* HAVE_OCSP */
  21737. #ifndef NO_PWDBASED
  21738. /* oidKdfType */
  21739. { PBKDF2_OID, PBKDF2_OID, oidKdfType, "PBKDFv2", "PBKDF2"},
  21740. /* oidPBEType */
  21741. { PBE_SHA1_RC4_128, PBE_SHA1_RC4_128, oidPBEType,
  21742. "PBE-SHA1-RC4-128", "pbeWithSHA1And128BitRC4"},
  21743. { PBE_SHA1_DES, PBE_SHA1_DES, oidPBEType, "PBE-SHA1-DES",
  21744. "pbeWithSHA1AndDES-CBC"},
  21745. { PBE_SHA1_DES3, PBE_SHA1_DES3, oidPBEType, "PBE-SHA1-3DES",
  21746. "pbeWithSHA1And3-KeyTripleDES-CBC"},
  21747. #endif
  21748. /* oidKeyWrapType */
  21749. #ifdef WOLFSSL_AES_128
  21750. { AES128_WRAP, AES128_WRAP, oidKeyWrapType, "AES-128 wrap", "aes128-wrap"},
  21751. #endif
  21752. #ifdef WOLFSSL_AES_192
  21753. { AES192_WRAP, AES192_WRAP, oidKeyWrapType, "AES-192 wrap", "aes192-wrap"},
  21754. #endif
  21755. #ifdef WOLFSSL_AES_256
  21756. { AES256_WRAP, AES256_WRAP, oidKeyWrapType, "AES-256 wrap", "aes256-wrap"},
  21757. #endif
  21758. #ifndef NO_PKCS7
  21759. #ifndef NO_DH
  21760. /* oidCmsKeyAgreeType */
  21761. #ifndef NO_SHA
  21762. { dhSinglePass_stdDH_sha1kdf_scheme, dhSinglePass_stdDH_sha1kdf_scheme,
  21763. oidCmsKeyAgreeType, "dhSinglePass-stdDH-sha1kdf-scheme", "dhSinglePass-stdDH-sha1kdf-scheme"},
  21764. #endif
  21765. #ifdef WOLFSSL_SHA224
  21766. { dhSinglePass_stdDH_sha224kdf_scheme,
  21767. dhSinglePass_stdDH_sha224kdf_scheme, oidCmsKeyAgreeType,
  21768. "dhSinglePass-stdDH-sha224kdf-scheme", "dhSinglePass-stdDH-sha224kdf-scheme"},
  21769. #endif
  21770. #ifndef NO_SHA256
  21771. { dhSinglePass_stdDH_sha256kdf_scheme,
  21772. dhSinglePass_stdDH_sha256kdf_scheme, oidCmsKeyAgreeType,
  21773. "dhSinglePass-stdDH-sha256kdf-scheme", "dhSinglePass-stdDH-sha256kdf-scheme"},
  21774. #endif
  21775. #ifdef WOLFSSL_SHA384
  21776. { dhSinglePass_stdDH_sha384kdf_scheme,
  21777. dhSinglePass_stdDH_sha384kdf_scheme, oidCmsKeyAgreeType,
  21778. "dhSinglePass-stdDH-sha384kdf-scheme", "dhSinglePass-stdDH-sha384kdf-scheme"},
  21779. #endif
  21780. #ifdef WOLFSSL_SHA512
  21781. { dhSinglePass_stdDH_sha512kdf_scheme,
  21782. dhSinglePass_stdDH_sha512kdf_scheme, oidCmsKeyAgreeType,
  21783. "dhSinglePass-stdDH-sha512kdf-scheme", "dhSinglePass-stdDH-sha512kdf-scheme"},
  21784. #endif
  21785. #endif
  21786. #endif
  21787. #if defined(WOLFSSL_APACHE_HTTPD)
  21788. /* "1.3.6.1.5.5.7.8.7" */
  21789. { NID_id_on_dnsSRV, NID_id_on_dnsSRV, oidCertNameType,
  21790. WOLFSSL_SN_DNS_SRV, WOLFSSL_LN_DNS_SRV },
  21791. /* "1.3.6.1.4.1.311.20.2.3" */
  21792. { NID_ms_upn, WOLFSSL_MS_UPN_SUM, oidCertExtType, WOLFSSL_SN_MS_UPN,
  21793. WOLFSSL_LN_MS_UPN },
  21794. /* "1.3.6.1.5.5.7.1.24" */
  21795. { NID_tlsfeature, WOLFSSL_TLS_FEATURE_SUM, oidTlsExtType,
  21796. WOLFSSL_SN_TLS_FEATURE, WOLFSSL_LN_TLS_FEATURE },
  21797. #endif
  21798. #endif /* OPENSSL_EXTRA */
  21799. };
  21800. #define WOLFSSL_OBJECT_INFO_SZ \
  21801. (sizeof(wolfssl_object_info) / sizeof(*wolfssl_object_info))
  21802. const size_t wolfssl_object_info_sz = WOLFSSL_OBJECT_INFO_SZ;
  21803. #endif
  21804. #ifdef OPENSSL_EXTRA
  21805. WOLFSSL_ASN1_INTEGER* wolfSSL_BN_to_ASN1_INTEGER(const WOLFSSL_BIGNUM *bn, WOLFSSL_ASN1_INTEGER *ai)
  21806. {
  21807. WOLFSSL_ASN1_INTEGER* a;
  21808. int len;
  21809. const int extraTagSz = MAX_LENGTH_SZ + 1;
  21810. byte intTag[MAX_LENGTH_SZ + 1];
  21811. int idx = 0;
  21812. WOLFSSL_ENTER("wolfSSL_BN_to_ASN1_INTEGER");
  21813. if (ai == NULL) {
  21814. a = wolfSSL_ASN1_INTEGER_new();
  21815. if (a == NULL)
  21816. return NULL;
  21817. a->type = V_ASN1_INTEGER;
  21818. }
  21819. else {
  21820. a = ai;
  21821. }
  21822. if (a) {
  21823. if (wolfSSL_BN_is_negative(bn) && !wolfSSL_BN_is_zero(bn)) {
  21824. a->type |= V_ASN1_NEG_INTEGER;
  21825. a->negative = 1;
  21826. }
  21827. len = wolfSSL_BN_num_bytes(bn);
  21828. if (len == 0)
  21829. len = 1;
  21830. /* allocate buffer */
  21831. if (len + extraTagSz > (int)sizeof(a->intData)) {
  21832. /* create new data buffer and copy over */
  21833. a->data = (byte*)XMALLOC(len + extraTagSz, NULL,
  21834. DYNAMIC_TYPE_OPENSSL);
  21835. if (a->data == NULL) {
  21836. if (a != ai)
  21837. wolfSSL_ASN1_INTEGER_free(a);
  21838. return NULL;
  21839. }
  21840. a->isDynamic = 1;
  21841. }
  21842. else {
  21843. XMEMSET(a->intData, 0, sizeof(a->intData));
  21844. a->data = a->intData;
  21845. a->isDynamic = 0;
  21846. }
  21847. /* populate data */
  21848. if (wolfSSL_BN_is_zero(bn)) {
  21849. a->data[0] = 0;
  21850. }
  21851. else {
  21852. len = wolfSSL_BN_bn2bin(bn, a->data);
  21853. if (len < 0) {
  21854. wolfSSL_ASN1_INTEGER_free(a);
  21855. return NULL;
  21856. }
  21857. }
  21858. a->length = len;
  21859. /* Write ASN tag */
  21860. idx = SetASNInt(a->length, a->data[0], intTag);
  21861. XMEMMOVE(a->data + idx, a->data, a->length);
  21862. XMEMCPY(a->data, intTag, idx);
  21863. a->dataMax = a->length += idx;
  21864. }
  21865. return a;
  21866. }
  21867. #ifdef OPENSSL_ALL
  21868. void *wolfSSL_ASN1_item_new(const WOLFSSL_ASN1_ITEM *tpl)
  21869. {
  21870. void *ret = NULL;
  21871. const WOLFSSL_ASN1_TEMPLATE *member = NULL;
  21872. size_t i;
  21873. WOLFSSL_ENTER("wolfSSL_ASN1_item_new");
  21874. if (!tpl) {
  21875. return NULL;
  21876. }
  21877. if (!(ret = (void *)XMALLOC(tpl->size, NULL, DYNAMIC_TYPE_OPENSSL))) {
  21878. return NULL;
  21879. }
  21880. XMEMSET(ret, 0, tpl->size);
  21881. for (member = tpl->members, i = 0; i < tpl->mcount;
  21882. member++, i++) {
  21883. switch (member->type) {
  21884. case WOLFSSL_X509_ALGOR_ASN1:
  21885. {
  21886. WOLFSSL_X509_ALGOR* algor = wolfSSL_X509_ALGOR_new();
  21887. if (!algor) {
  21888. goto error;
  21889. }
  21890. *(WOLFSSL_X509_ALGOR**)(((byte*)ret) + member->offset) = algor;
  21891. break;
  21892. }
  21893. case WOLFSSL_ASN1_BIT_STRING_ASN1:
  21894. {
  21895. WOLFSSL_ASN1_BIT_STRING* bit_str = wolfSSL_ASN1_BIT_STRING_new();
  21896. if (!bit_str) {
  21897. goto error;
  21898. }
  21899. *(WOLFSSL_ASN1_BIT_STRING**)(((byte*)ret) + member->offset) = bit_str;
  21900. break;
  21901. }
  21902. default:
  21903. WOLFSSL_MSG("Type not supported in wolfSSL_ASN1_item_new");
  21904. goto error;
  21905. }
  21906. }
  21907. return ret;
  21908. error:
  21909. wolfSSL_ASN1_item_free(ret, tpl);
  21910. return NULL;
  21911. }
  21912. void wolfSSL_ASN1_item_free(void *val, const WOLFSSL_ASN1_ITEM *tpl)
  21913. {
  21914. const WOLFSSL_ASN1_TEMPLATE *member = NULL;
  21915. size_t i;
  21916. WOLFSSL_ENTER("wolfSSL_ASN1_item_free");
  21917. if (val) {
  21918. for (member = tpl->members, i = 0; i < tpl->mcount;
  21919. member++, i++) {
  21920. switch (member->type) {
  21921. case WOLFSSL_X509_ALGOR_ASN1:
  21922. {
  21923. WOLFSSL_X509_ALGOR* algor = *(WOLFSSL_X509_ALGOR**)
  21924. (((byte*)val) + member->offset);
  21925. if (algor) {
  21926. wolfSSL_X509_ALGOR_free(algor);
  21927. }
  21928. break;
  21929. }
  21930. case WOLFSSL_ASN1_BIT_STRING_ASN1:
  21931. {
  21932. WOLFSSL_ASN1_BIT_STRING* bit_str = *(WOLFSSL_ASN1_BIT_STRING**)
  21933. (((byte*)val) + member->offset);
  21934. if (bit_str) {
  21935. wolfSSL_ASN1_BIT_STRING_free(bit_str);
  21936. }
  21937. break;
  21938. }
  21939. default:
  21940. WOLFSSL_MSG("Type not supported in wolfSSL_ASN1_item_free");
  21941. }
  21942. }
  21943. XFREE(val, NULL, DYNAMIC_TYPE_OPENSSL);
  21944. }
  21945. }
  21946. #define bufLenOrNull(buf, len) ((buf) ? (buf) + (len) : NULL)
  21947. static int i2dProcessMembers(const void *src, byte *buf,
  21948. const WOLFSSL_ASN1_TEMPLATE *members, size_t mcount)
  21949. {
  21950. const WOLFSSL_ASN1_TEMPLATE *member = NULL;
  21951. int len = 0, ret;
  21952. size_t i;
  21953. WOLFSSL_ENTER("processMembers");
  21954. for (member = members, i = 0; i < mcount; member++, i++) {
  21955. switch (member->type) {
  21956. case WOLFSSL_X509_ALGOR_ASN1:
  21957. {
  21958. word32 oid = 0;
  21959. word32 idx = 0;
  21960. const WOLFSSL_X509_ALGOR* algor = *(const WOLFSSL_X509_ALGOR**)
  21961. (((byte*)src) + member->offset);
  21962. if (!algor->algorithm) {
  21963. WOLFSSL_LEAVE("processMembers", WOLFSSL_FAILURE);
  21964. return WOLFSSL_FAILURE;
  21965. }
  21966. if (GetObjectId(algor->algorithm->obj, &idx, &oid,
  21967. algor->algorithm->grp, algor->algorithm->objSz) < 0) {
  21968. WOLFSSL_MSG("Issue getting OID of object");
  21969. return -1;
  21970. }
  21971. ret = SetAlgoID(oid, bufLenOrNull(buf, len),
  21972. algor->algorithm->grp, 0);
  21973. if (!ret) {
  21974. return WOLFSSL_FAILURE;
  21975. }
  21976. len += ret;
  21977. break;
  21978. }
  21979. case WOLFSSL_ASN1_BIT_STRING_ASN1:
  21980. {
  21981. const WOLFSSL_ASN1_BIT_STRING* bit_str;
  21982. bit_str = *(const WOLFSSL_ASN1_BIT_STRING**)
  21983. (((byte*)src) + member->offset);
  21984. len += SetBitString(bit_str->length, 0, bufLenOrNull(buf, len));
  21985. if (buf && bit_str->data) {
  21986. XMEMCPY(buf + len, bit_str->data, bit_str->length);
  21987. }
  21988. len += bit_str->length;
  21989. break;
  21990. }
  21991. default:
  21992. WOLFSSL_MSG("Type not support in processMembers");
  21993. WOLFSSL_LEAVE("processMembers", WOLFSSL_FAILURE);
  21994. return WOLFSSL_FAILURE;
  21995. }
  21996. }
  21997. WOLFSSL_LEAVE("processMembers", len);
  21998. return len;
  21999. }
  22000. static int wolfSSL_ASN1_item_i2d_1(const void *src, byte *buf,
  22001. const WOLFSSL_ASN1_ITEM *tpl, int *len)
  22002. {
  22003. *len = 0;
  22004. switch (tpl->type) {
  22005. case ASN_SEQUENCE:
  22006. {
  22007. int seq_len = i2dProcessMembers(src, NULL, tpl->members,
  22008. tpl->mcount);
  22009. if (seq_len == WOLFSSL_FAILURE)
  22010. return WOLFSSL_FAILURE;
  22011. *len += SetSequence(seq_len, bufLenOrNull(buf, *len));
  22012. if (buf) {
  22013. if (i2dProcessMembers(src, bufLenOrNull(buf, *len), tpl->members,
  22014. tpl->mcount) != seq_len) {
  22015. WOLFSSL_MSG("Inconsistent sequence length");
  22016. return WOLFSSL_FAILURE;
  22017. }
  22018. }
  22019. *len += seq_len;
  22020. break;
  22021. }
  22022. default:
  22023. WOLFSSL_MSG("Type not supported in wolfSSL_ASN1_item_i2d");
  22024. return WOLFSSL_FAILURE;
  22025. }
  22026. return WOLFSSL_SUCCESS;
  22027. }
  22028. int wolfSSL_ASN1_item_i2d(const void *src, byte **dest,
  22029. const WOLFSSL_ASN1_ITEM *tpl)
  22030. {
  22031. int len;
  22032. byte *buf = NULL;
  22033. WOLFSSL_ENTER("wolfSSL_ASN1_item_i2d");
  22034. if ((src == NULL) || (tpl == NULL))
  22035. goto error;
  22036. if (wolfSSL_ASN1_item_i2d_1(src, NULL, tpl, &len) != WOLFSSL_SUCCESS)
  22037. goto error;
  22038. if (dest == NULL) {
  22039. WOLFSSL_LEAVE("wolfSSL_ASN1_item_i2d", WOLFSSL_SUCCESS);
  22040. return len;
  22041. }
  22042. if (*dest == NULL) {
  22043. buf = (byte*)XMALLOC(len, NULL, DYNAMIC_TYPE_ASN1);
  22044. if (buf == NULL)
  22045. goto error;
  22046. } else
  22047. buf = *dest;
  22048. if (wolfSSL_ASN1_item_i2d_1(src, buf, tpl, &len) != WOLFSSL_SUCCESS)
  22049. goto error;
  22050. if (*dest == NULL)
  22051. *dest = buf;
  22052. else {
  22053. /* XXX *dest length is not checked because the user is responsible
  22054. * for providing a long enough buffer
  22055. */
  22056. XMEMCPY(*dest, buf, len);
  22057. }
  22058. WOLFSSL_LEAVE("wolfSSL_ASN1_item_i2d", len);
  22059. return len;
  22060. error:
  22061. if (buf) {
  22062. XFREE(buf, NULL, DYNAMIC_TYPE_ASN1);
  22063. }
  22064. WOLFSSL_LEAVE("wolfSSL_ASN1_item_i2d", WOLFSSL_FAILURE);
  22065. return WOLFSSL_FAILURE;
  22066. }
  22067. #endif /* OPENSSL_ALL */
  22068. #endif /* OPENSSL_EXTRA */
  22069. #ifdef OPENSSL_EXTRA
  22070. WOLFSSL_HMAC_CTX* wolfSSL_HMAC_CTX_new(void)
  22071. {
  22072. WOLFSSL_HMAC_CTX* hmac_ctx = (WOLFSSL_HMAC_CTX*)XMALLOC(
  22073. sizeof(WOLFSSL_HMAC_CTX), NULL, DYNAMIC_TYPE_OPENSSL);
  22074. if (hmac_ctx != NULL) {
  22075. XMEMSET(hmac_ctx, 0, sizeof(WOLFSSL_HMAC_CTX));
  22076. }
  22077. return hmac_ctx;
  22078. }
  22079. int wolfSSL_HMAC_CTX_Init(WOLFSSL_HMAC_CTX* ctx)
  22080. {
  22081. WOLFSSL_MSG("wolfSSL_HMAC_CTX_Init");
  22082. if (ctx != NULL) {
  22083. /* wc_HmacSetKey sets up ctx->hmac */
  22084. XMEMSET(ctx, 0, sizeof(WOLFSSL_HMAC_CTX));
  22085. }
  22086. return WOLFSSL_SUCCESS;
  22087. }
  22088. int wolfSSL_HMAC_Init_ex(WOLFSSL_HMAC_CTX* ctx, const void* key,
  22089. int keylen, const EVP_MD* type, WOLFSSL_ENGINE* e)
  22090. {
  22091. WOLFSSL_ENTER("wolfSSL_HMAC_Init_ex");
  22092. /* WOLFSSL_ENGINE not used, call wolfSSL_HMAC_Init */
  22093. (void)e;
  22094. return wolfSSL_HMAC_Init(ctx, key, keylen, type);
  22095. }
  22096. /* helper function for Deep copy of internal wolfSSL hmac structure
  22097. * returns WOLFSSL_SUCCESS on success */
  22098. int wolfSSL_HmacCopy(Hmac* des, Hmac* src)
  22099. {
  22100. void* heap;
  22101. int ret;
  22102. #ifndef HAVE_FIPS
  22103. heap = src->heap;
  22104. #else
  22105. heap = NULL;
  22106. #endif
  22107. if (wc_HmacInit(des, heap, 0) != 0) {
  22108. return WOLFSSL_FAILURE;
  22109. }
  22110. /* requires that hash structures have no dynamic parts to them */
  22111. switch (src->macType) {
  22112. #ifndef NO_MD5
  22113. case WC_MD5:
  22114. ret = wc_Md5Copy(&src->hash.md5, &des->hash.md5);
  22115. break;
  22116. #endif /* !NO_MD5 */
  22117. #ifndef NO_SHA
  22118. case WC_SHA:
  22119. ret = wc_ShaCopy(&src->hash.sha, &des->hash.sha);
  22120. break;
  22121. #endif /* !NO_SHA */
  22122. #ifdef WOLFSSL_SHA224
  22123. case WC_SHA224:
  22124. ret = wc_Sha224Copy(&src->hash.sha224, &des->hash.sha224);
  22125. break;
  22126. #endif /* WOLFSSL_SHA224 */
  22127. #ifndef NO_SHA256
  22128. case WC_SHA256:
  22129. ret = wc_Sha256Copy(&src->hash.sha256, &des->hash.sha256);
  22130. break;
  22131. #endif /* !NO_SHA256 */
  22132. #ifdef WOLFSSL_SHA384
  22133. case WC_SHA384:
  22134. ret = wc_Sha384Copy(&src->hash.sha384, &des->hash.sha384);
  22135. break;
  22136. #endif /* WOLFSSL_SHA384 */
  22137. #ifdef WOLFSSL_SHA512
  22138. case WC_SHA512:
  22139. ret = wc_Sha512Copy(&src->hash.sha512, &des->hash.sha512);
  22140. break;
  22141. #endif /* WOLFSSL_SHA512 */
  22142. #ifdef WOLFSSL_SHA3
  22143. #ifndef WOLFSSL_NOSHA3_224
  22144. case WC_SHA3_224:
  22145. ret = wc_Sha3_224_Copy(&src->hash.sha3, &des->hash.sha3);
  22146. break;
  22147. #endif /* WOLFSSL_NO_SHA3_224 */
  22148. #ifndef WOLFSSL_NOSHA3_256
  22149. case WC_SHA3_256:
  22150. ret = wc_Sha3_256_Copy(&src->hash.sha3, &des->hash.sha3);
  22151. break;
  22152. #endif /* WOLFSSL_NO_SHA3_256 */
  22153. #ifndef WOLFSSL_NOSHA3_384
  22154. case WC_SHA3_384:
  22155. ret = wc_Sha3_384_Copy(&src->hash.sha3, &des->hash.sha3);
  22156. break;
  22157. #endif /* WOLFSSL_NO_SHA3_384 */
  22158. #ifndef WOLFSSL_NOSHA3_512
  22159. case WC_SHA3_512:
  22160. ret = wc_Sha3_512_Copy(&src->hash.sha3, &des->hash.sha3);
  22161. break;
  22162. #endif /* WOLFSSL_NO_SHA3_512 */
  22163. #endif /* WOLFSSL_SHA3 */
  22164. default:
  22165. return WOLFSSL_FAILURE;
  22166. }
  22167. if (ret != 0)
  22168. return WOLFSSL_FAILURE;
  22169. XMEMCPY((byte*)des->ipad, (byte*)src->ipad, WC_HMAC_BLOCK_SIZE);
  22170. XMEMCPY((byte*)des->opad, (byte*)src->opad, WC_HMAC_BLOCK_SIZE);
  22171. XMEMCPY((byte*)des->innerHash, (byte*)src->innerHash, WC_MAX_DIGEST_SIZE);
  22172. #ifndef HAVE_FIPS
  22173. des->heap = heap;
  22174. #endif
  22175. des->macType = src->macType;
  22176. des->innerHashKeyed = src->innerHashKeyed;
  22177. #ifdef WOLFSSL_ASYNC_CRYPT
  22178. XMEMCPY(&des->asyncDev, &src->asyncDev, sizeof(WC_ASYNC_DEV));
  22179. des->keyLen = src->keyLen;
  22180. #ifdef HAVE_CAVIUM
  22181. des->data = (byte*)XMALLOC(src->dataLen, des->heap,
  22182. DYNAMIC_TYPE_HMAC);
  22183. if (des->data == NULL) {
  22184. return BUFFER_E;
  22185. }
  22186. XMEMCPY(des->data, src->data, src->dataLen);
  22187. des->dataLen = src->dataLen;
  22188. #endif /* HAVE_CAVIUM */
  22189. #endif /* WOLFSSL_ASYNC_CRYPT */
  22190. return WOLFSSL_SUCCESS;
  22191. }
  22192. /* Deep copy of information from src to des structure
  22193. *
  22194. * des destination to copy information to
  22195. * src structure to get information from
  22196. *
  22197. * Returns WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on error
  22198. */
  22199. int wolfSSL_HMAC_CTX_copy(WOLFSSL_HMAC_CTX* des, WOLFSSL_HMAC_CTX* src)
  22200. {
  22201. WOLFSSL_ENTER("wolfSSL_HMAC_CTX_copy");
  22202. if (des == NULL || src == NULL) {
  22203. return WOLFSSL_FAILURE;
  22204. }
  22205. des->type = src->type;
  22206. XMEMCPY((byte *)&des->save_ipad, (byte *)&src->hmac.ipad,
  22207. WC_HMAC_BLOCK_SIZE);
  22208. XMEMCPY((byte *)&des->save_opad, (byte *)&src->hmac.opad,
  22209. WC_HMAC_BLOCK_SIZE);
  22210. return wolfSSL_HmacCopy(&des->hmac, &src->hmac);
  22211. }
  22212. #if defined(HAVE_FIPS) && \
  22213. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION < 2))
  22214. static int _HMAC_Init(Hmac* hmac, int type, void* heap)
  22215. {
  22216. int ret = 0;
  22217. switch (type) {
  22218. #ifndef NO_MD5
  22219. case WC_MD5:
  22220. ret = wc_InitMd5(&hmac->hash.md5);
  22221. break;
  22222. #endif /* !NO_MD5 */
  22223. #ifndef NO_SHA
  22224. case WC_SHA:
  22225. ret = wc_InitSha(&hmac->hash.sha);
  22226. break;
  22227. #endif /* !NO_SHA */
  22228. #ifdef WOLFSSL_SHA224
  22229. case WC_SHA224:
  22230. ret = wc_InitSha224(&hmac->hash.sha224);
  22231. break;
  22232. #endif /* WOLFSSL_SHA224 */
  22233. #ifndef NO_SHA256
  22234. case WC_SHA256:
  22235. ret = wc_InitSha256(&hmac->hash.sha256);
  22236. break;
  22237. #endif /* !NO_SHA256 */
  22238. #ifdef WOLFSSL_SHA384
  22239. case WC_SHA384:
  22240. ret = wc_InitSha384(&hmac->hash.sha384);
  22241. break;
  22242. #endif /* WOLFSSL_SHA384 */
  22243. #ifdef WOLFSSL_SHA512
  22244. case WC_SHA512:
  22245. ret = wc_InitSha512(&hmac->hash.sha512);
  22246. break;
  22247. #endif /* WOLFSSL_SHA512 */
  22248. #ifdef WOLFSSL_SHA3
  22249. case WC_SHA3_224:
  22250. ret = wc_InitSha3_224(&hmac->hash.sha3, heap, INVALID_DEVID);
  22251. break;
  22252. case WC_SHA3_256:
  22253. ret = wc_InitSha3_256(&hmac->hash.sha3, heap, INVALID_DEVID);
  22254. break;
  22255. case WC_SHA3_384:
  22256. ret = wc_InitSha3_384(&hmac->hash.sha3, heap, INVALID_DEVID);
  22257. break;
  22258. case WC_SHA3_512:
  22259. ret = wc_InitSha3_512(&hmac->hash.sha3, heap, INVALID_DEVID);
  22260. break;
  22261. #endif
  22262. default:
  22263. ret = BAD_FUNC_ARG;
  22264. break;
  22265. }
  22266. (void)heap;
  22267. return ret;
  22268. }
  22269. #else
  22270. #define _HMAC_Init _InitHmac
  22271. #endif
  22272. int wolfSSL_HMAC_Init(WOLFSSL_HMAC_CTX* ctx, const void* key, int keylen,
  22273. const EVP_MD* type)
  22274. {
  22275. int hmac_error = 0;
  22276. void* heap = NULL;
  22277. int inited;
  22278. WOLFSSL_MSG("wolfSSL_HMAC_Init");
  22279. if (ctx == NULL) {
  22280. WOLFSSL_MSG("no ctx on init");
  22281. return WOLFSSL_FAILURE;
  22282. }
  22283. #ifndef HAVE_FIPS
  22284. heap = ctx->hmac.heap;
  22285. #endif
  22286. if (type) {
  22287. WOLFSSL_MSG("init has type");
  22288. #ifndef NO_MD5
  22289. if (XSTRNCMP(type, "MD5", 3) == 0) {
  22290. WOLFSSL_MSG("md5 hmac");
  22291. ctx->type = WC_MD5;
  22292. }
  22293. else
  22294. #endif
  22295. #ifdef WOLFSSL_SHA224
  22296. if (XSTRNCMP(type, "SHA224", 6) == 0) {
  22297. WOLFSSL_MSG("sha224 hmac");
  22298. ctx->type = WC_SHA224;
  22299. }
  22300. else
  22301. #endif
  22302. #ifndef NO_SHA256
  22303. if (XSTRNCMP(type, "SHA256", 6) == 0) {
  22304. WOLFSSL_MSG("sha256 hmac");
  22305. ctx->type = WC_SHA256;
  22306. }
  22307. else
  22308. #endif
  22309. #ifdef WOLFSSL_SHA384
  22310. if (XSTRNCMP(type, "SHA384", 6) == 0) {
  22311. WOLFSSL_MSG("sha384 hmac");
  22312. ctx->type = WC_SHA384;
  22313. }
  22314. else
  22315. #endif
  22316. #ifdef WOLFSSL_SHA512
  22317. if (XSTRNCMP(type, "SHA512", 6) == 0) {
  22318. WOLFSSL_MSG("sha512 hmac");
  22319. ctx->type = WC_SHA512;
  22320. }
  22321. else
  22322. #endif
  22323. #ifdef WOLFSSL_SHA3
  22324. #ifndef WOLFSSL_NOSHA3_224
  22325. if (XSTRNCMP(type, "SHA3_224", 8) == 0) {
  22326. WOLFSSL_MSG("sha3_224 hmac");
  22327. ctx->type = WC_SHA3_224;
  22328. }
  22329. else
  22330. #endif
  22331. #ifndef WOLFSSL_NOSHA3_256
  22332. if (XSTRNCMP(type, "SHA3_256", 8) == 0) {
  22333. WOLFSSL_MSG("sha3_256 hmac");
  22334. ctx->type = WC_SHA3_256;
  22335. }
  22336. else
  22337. #endif
  22338. if (XSTRNCMP(type, "SHA3_384", 8) == 0) {
  22339. WOLFSSL_MSG("sha3_384 hmac");
  22340. ctx->type = WC_SHA3_384;
  22341. }
  22342. else
  22343. #ifndef WOLFSSL_NOSHA3_512
  22344. if (XSTRNCMP(type, "SHA3_512", 8) == 0) {
  22345. WOLFSSL_MSG("sha3_512 hmac");
  22346. ctx->type = WC_SHA3_512;
  22347. }
  22348. else
  22349. #endif
  22350. #endif
  22351. #ifndef NO_SHA
  22352. /* has to be last since would pick or 256, 384, or 512 too */
  22353. if (XSTRNCMP(type, "SHA", 3) == 0) {
  22354. WOLFSSL_MSG("sha hmac");
  22355. ctx->type = WC_SHA;
  22356. }
  22357. else
  22358. #endif
  22359. {
  22360. WOLFSSL_MSG("bad init type");
  22361. return WOLFSSL_FAILURE;
  22362. }
  22363. }
  22364. /* Check if init has been called before */
  22365. inited = (ctx->hmac.macType != WC_HASH_TYPE_NONE);
  22366. /* Free if needed */
  22367. if (inited) {
  22368. wc_HmacFree(&ctx->hmac);
  22369. }
  22370. if (key != NULL) {
  22371. WOLFSSL_MSG("keying hmac");
  22372. if (wc_HmacInit(&ctx->hmac, NULL, INVALID_DEVID) == 0) {
  22373. hmac_error = wc_HmacSetKey(&ctx->hmac, ctx->type, (const byte*)key,
  22374. (word32)keylen);
  22375. if (hmac_error < 0){
  22376. /* in FIPS mode a key < 14 characters will fail here */
  22377. WOLFSSL_MSG("hmac set key error");
  22378. WOLFSSL_ERROR(hmac_error);
  22379. wc_HmacFree(&ctx->hmac);
  22380. return WOLFSSL_FAILURE;
  22381. }
  22382. XMEMCPY((byte *)&ctx->save_ipad, (byte *)&ctx->hmac.ipad,
  22383. WC_HMAC_BLOCK_SIZE);
  22384. XMEMCPY((byte *)&ctx->save_opad, (byte *)&ctx->hmac.opad,
  22385. WC_HMAC_BLOCK_SIZE);
  22386. }
  22387. /* OpenSSL compat, no error */
  22388. }
  22389. else if (!inited) {
  22390. return WOLFSSL_FAILURE;
  22391. }
  22392. else if (ctx->type >= 0) { /* MD5 == 0 */
  22393. WOLFSSL_MSG("recover hmac");
  22394. if (wc_HmacInit(&ctx->hmac, NULL, INVALID_DEVID) == 0) {
  22395. ctx->hmac.macType = (byte)ctx->type;
  22396. ctx->hmac.innerHashKeyed = 0;
  22397. XMEMCPY((byte *)&ctx->hmac.ipad, (byte *)&ctx->save_ipad,
  22398. WC_HMAC_BLOCK_SIZE);
  22399. XMEMCPY((byte *)&ctx->hmac.opad, (byte *)&ctx->save_opad,
  22400. WC_HMAC_BLOCK_SIZE);
  22401. if ((hmac_error = _HMAC_Init(&ctx->hmac, ctx->hmac.macType, heap))
  22402. !=0) {
  22403. WOLFSSL_MSG("hmac init error");
  22404. WOLFSSL_ERROR(hmac_error);
  22405. return WOLFSSL_FAILURE;
  22406. }
  22407. }
  22408. }
  22409. (void)hmac_error;
  22410. return WOLFSSL_SUCCESS;
  22411. }
  22412. int wolfSSL_HMAC_Update(WOLFSSL_HMAC_CTX* ctx, const unsigned char* data,
  22413. int len)
  22414. {
  22415. int hmac_error = 0;
  22416. WOLFSSL_MSG("wolfSSL_HMAC_Update");
  22417. if (ctx == NULL) {
  22418. WOLFSSL_MSG("no ctx");
  22419. return WOLFSSL_FAILURE;
  22420. }
  22421. if (data) {
  22422. WOLFSSL_MSG("updating hmac");
  22423. hmac_error = wc_HmacUpdate(&ctx->hmac, data, (word32)len);
  22424. if (hmac_error < 0){
  22425. WOLFSSL_MSG("hmac update error");
  22426. return WOLFSSL_FAILURE;
  22427. }
  22428. }
  22429. return WOLFSSL_SUCCESS;
  22430. }
  22431. int wolfSSL_HMAC_Final(WOLFSSL_HMAC_CTX* ctx, unsigned char* hash,
  22432. unsigned int* len)
  22433. {
  22434. int hmac_error;
  22435. WOLFSSL_MSG("wolfSSL_HMAC_Final");
  22436. /* "len" parameter is optional. */
  22437. if (ctx == NULL || hash == NULL) {
  22438. WOLFSSL_MSG("invalid parameter");
  22439. return WOLFSSL_FAILURE;
  22440. }
  22441. WOLFSSL_MSG("final hmac");
  22442. hmac_error = wc_HmacFinal(&ctx->hmac, hash);
  22443. if (hmac_error < 0){
  22444. WOLFSSL_MSG("final hmac error");
  22445. return WOLFSSL_FAILURE;
  22446. }
  22447. if (len) {
  22448. WOLFSSL_MSG("setting output len");
  22449. switch (ctx->type) {
  22450. #ifndef NO_MD5
  22451. case WC_MD5:
  22452. *len = WC_MD5_DIGEST_SIZE;
  22453. break;
  22454. #endif
  22455. #ifndef NO_SHA
  22456. case WC_SHA:
  22457. *len = WC_SHA_DIGEST_SIZE;
  22458. break;
  22459. #endif
  22460. #ifdef WOLFSSL_SHA224
  22461. case WC_SHA224:
  22462. *len = WC_SHA224_DIGEST_SIZE;
  22463. break;
  22464. #endif
  22465. #ifndef NO_SHA256
  22466. case WC_SHA256:
  22467. *len = WC_SHA256_DIGEST_SIZE;
  22468. break;
  22469. #endif
  22470. #ifdef WOLFSSL_SHA384
  22471. case WC_SHA384:
  22472. *len = WC_SHA384_DIGEST_SIZE;
  22473. break;
  22474. #endif
  22475. #ifdef WOLFSSL_SHA512
  22476. case WC_SHA512:
  22477. *len = WC_SHA512_DIGEST_SIZE;
  22478. break;
  22479. #endif
  22480. #ifdef WOLFSSL_SHA3
  22481. #ifndef WOLFSSL_NOSHA3_224
  22482. case WC_SHA3_224:
  22483. *len = WC_SHA3_224_DIGEST_SIZE;
  22484. break;
  22485. #endif
  22486. #ifndef WOLFSSL_NOSHA3_256
  22487. case WC_SHA3_256:
  22488. *len = WC_SHA3_256_DIGEST_SIZE;
  22489. break;
  22490. #endif
  22491. #ifndef WOLFSSL_NOSHA3_384
  22492. case WC_SHA3_384:
  22493. *len = WC_SHA3_384_DIGEST_SIZE;
  22494. break;
  22495. #endif
  22496. #ifndef WOLFSSL_NOSHA3_512
  22497. case WC_SHA3_512:
  22498. *len = WC_SHA3_512_DIGEST_SIZE;
  22499. break;
  22500. #endif
  22501. #endif
  22502. default:
  22503. WOLFSSL_MSG("bad hmac type");
  22504. return WOLFSSL_FAILURE;
  22505. }
  22506. }
  22507. return WOLFSSL_SUCCESS;
  22508. }
  22509. int wolfSSL_HMAC_cleanup(WOLFSSL_HMAC_CTX* ctx)
  22510. {
  22511. WOLFSSL_MSG("wolfSSL_HMAC_cleanup");
  22512. if (ctx) {
  22513. wc_HmacFree(&ctx->hmac);
  22514. }
  22515. return WOLFSSL_SUCCESS;
  22516. }
  22517. void wolfSSL_HMAC_CTX_cleanup(WOLFSSL_HMAC_CTX* ctx)
  22518. {
  22519. if (ctx) {
  22520. wolfSSL_HMAC_cleanup(ctx);
  22521. }
  22522. }
  22523. void wolfSSL_HMAC_CTX_free(WOLFSSL_HMAC_CTX* ctx)
  22524. {
  22525. if (ctx) {
  22526. wolfSSL_HMAC_CTX_cleanup(ctx);
  22527. XFREE(ctx, NULL, DYNAMIC_TYPE_OPENSSL);
  22528. }
  22529. }
  22530. size_t wolfSSL_HMAC_size(const WOLFSSL_HMAC_CTX *ctx)
  22531. {
  22532. if (!ctx) {
  22533. return 0;
  22534. }
  22535. return (size_t)wc_HashGetDigestSize((enum wc_HashType)ctx->hmac.macType);
  22536. }
  22537. const WOLFSSL_EVP_MD *wolfSSL_HMAC_CTX_get_md(const WOLFSSL_HMAC_CTX *ctx)
  22538. {
  22539. if (!ctx) {
  22540. return NULL;
  22541. }
  22542. return wolfSSL_macType2EVP_md((enum wc_HashType)ctx->type);
  22543. }
  22544. #if defined(WOLFSSL_CMAC) && defined(OPENSSL_EXTRA) && \
  22545. defined(WOLFSSL_AES_DIRECT)
  22546. WOLFSSL_CMAC_CTX* wolfSSL_CMAC_CTX_new(void)
  22547. {
  22548. WOLFSSL_CMAC_CTX* ctx = NULL;
  22549. ctx = (WOLFSSL_CMAC_CTX*)XMALLOC(sizeof(WOLFSSL_CMAC_CTX), NULL,
  22550. DYNAMIC_TYPE_OPENSSL);
  22551. if (ctx != NULL) {
  22552. ctx->internal = (Cmac*)XMALLOC(sizeof(Cmac), NULL, DYNAMIC_TYPE_CMAC);
  22553. if (ctx->internal == NULL) {
  22554. XFREE(ctx, NULL, DYNAMIC_TYPE_OPENSSL);
  22555. ctx = NULL;
  22556. }
  22557. }
  22558. if (ctx != NULL) {
  22559. ctx->cctx = wolfSSL_EVP_CIPHER_CTX_new();
  22560. if (ctx->cctx == NULL) {
  22561. XFREE(ctx->internal, NULL, DYNAMIC_TYPE_CMAC);
  22562. XFREE(ctx, NULL, DYNAMIC_TYPE_OPENSSL);
  22563. ctx = NULL;
  22564. }
  22565. }
  22566. return ctx;
  22567. }
  22568. void wolfSSL_CMAC_CTX_free(WOLFSSL_CMAC_CTX *ctx)
  22569. {
  22570. if (ctx != NULL) {
  22571. if (ctx->internal != NULL) {
  22572. XFREE(ctx->internal, NULL, DYNAMIC_TYPE_CMAC);
  22573. }
  22574. if (ctx->cctx != NULL) {
  22575. wolfSSL_EVP_CIPHER_CTX_free(ctx->cctx);
  22576. }
  22577. XFREE(ctx, NULL, DYNAMIC_TYPE_OPENSSL);
  22578. }
  22579. }
  22580. WOLFSSL_EVP_CIPHER_CTX* wolfSSL_CMAC_CTX_get0_cipher_ctx(WOLFSSL_CMAC_CTX* ctx)
  22581. {
  22582. WOLFSSL_EVP_CIPHER_CTX* cctx = NULL;
  22583. if (ctx != NULL) {
  22584. cctx = ctx->cctx;
  22585. }
  22586. return cctx;
  22587. }
  22588. int wolfSSL_CMAC_Init(WOLFSSL_CMAC_CTX* ctx, const void *key, size_t keyLen,
  22589. const WOLFSSL_EVP_CIPHER* cipher, WOLFSSL_ENGINE* engine)
  22590. {
  22591. int ret = WOLFSSL_SUCCESS;
  22592. (void)engine;
  22593. WOLFSSL_ENTER("wolfSSL_CMAC_Init");
  22594. if (ctx == NULL || cipher == NULL || (
  22595. cipher != EVP_AES_128_CBC &&
  22596. cipher != EVP_AES_192_CBC &&
  22597. cipher != EVP_AES_256_CBC)) {
  22598. ret = WOLFSSL_FAILURE;
  22599. }
  22600. if (ret == WOLFSSL_SUCCESS) {
  22601. ret = wc_InitCmac((Cmac*)ctx->internal, (const byte*)key,
  22602. (word32)keyLen, WC_CMAC_AES, NULL);
  22603. if (ret != 0) {
  22604. ret = WOLFSSL_FAILURE;
  22605. }
  22606. else {
  22607. ret = WOLFSSL_SUCCESS;
  22608. }
  22609. }
  22610. if (ret == WOLFSSL_SUCCESS) {
  22611. ret = wolfSSL_EVP_CipherInit(ctx->cctx, cipher, (const byte*)key, NULL,
  22612. 1);
  22613. }
  22614. WOLFSSL_LEAVE("wolfSSL_CMAC_Init", ret);
  22615. return ret;
  22616. }
  22617. int wolfSSL_CMAC_Update(WOLFSSL_CMAC_CTX* ctx, const void* data, size_t len)
  22618. {
  22619. int ret = WOLFSSL_SUCCESS;
  22620. WOLFSSL_ENTER("wolfSSL_CMAC_Update");
  22621. if (ctx == NULL || ctx->internal == NULL) {
  22622. ret = WOLFSSL_FAILURE;
  22623. }
  22624. if (ret == WOLFSSL_SUCCESS) {
  22625. if (data) {
  22626. ret = wc_CmacUpdate((Cmac*)ctx->internal, (const byte*)data,
  22627. (word32)len);
  22628. if (ret != 0){
  22629. ret = WOLFSSL_FAILURE;
  22630. }
  22631. else {
  22632. ret = WOLFSSL_SUCCESS;
  22633. }
  22634. }
  22635. }
  22636. WOLFSSL_LEAVE("wolfSSL_CMAC_Update", ret);
  22637. return ret;
  22638. }
  22639. int wolfSSL_CMAC_Final(WOLFSSL_CMAC_CTX* ctx, unsigned char* out,
  22640. size_t* len)
  22641. {
  22642. int ret = WOLFSSL_SUCCESS;
  22643. int blockSize;
  22644. WOLFSSL_ENTER("wolfSSL_CMAC_Final");
  22645. if (ctx == NULL || ctx->cctx == NULL || ctx->internal == NULL ||
  22646. len == NULL) {
  22647. ret = WOLFSSL_FAILURE;
  22648. }
  22649. if (ret == WOLFSSL_SUCCESS) {
  22650. blockSize = EVP_CIPHER_CTX_block_size(ctx->cctx);
  22651. if (blockSize <= 0) {
  22652. ret = WOLFSSL_FAILURE;
  22653. }
  22654. else {
  22655. *len = blockSize;
  22656. }
  22657. }
  22658. if (ret == WOLFSSL_SUCCESS) {
  22659. word32 len32 = (word32)*len;
  22660. ret = wc_CmacFinal((Cmac*)ctx->internal, out, &len32);
  22661. *len = (size_t)len32;
  22662. if (ret != 0) {
  22663. ret = WOLFSSL_FAILURE;
  22664. }
  22665. else {
  22666. ret = WOLFSSL_SUCCESS;
  22667. }
  22668. }
  22669. WOLFSSL_LEAVE("wolfSSL_CMAC_Final", ret);
  22670. return ret;
  22671. }
  22672. #endif /* WOLFSSL_CMAC && OPENSSL_EXTRA && WOLFSSL_AES_DIRECT */
  22673. #endif /* OPENSSL_EXTRA */
  22674. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  22675. /* Free the dynamically allocated data.
  22676. *
  22677. * p Pointer to dynamically allocated memory.
  22678. */
  22679. void wolfSSL_OPENSSL_free(void* p)
  22680. {
  22681. WOLFSSL_MSG("wolfSSL_OPENSSL_free");
  22682. XFREE(p, NULL, DYNAMIC_TYPE_OPENSSL);
  22683. }
  22684. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  22685. #ifdef OPENSSL_EXTRA
  22686. void *wolfSSL_OPENSSL_malloc(size_t a)
  22687. {
  22688. return (void *)XMALLOC(a, NULL, DYNAMIC_TYPE_OPENSSL);
  22689. }
  22690. int wolfSSL_OPENSSL_hexchar2int(unsigned char c)
  22691. {
  22692. /* 'char' is unsigned on some platforms. */
  22693. return (int)(signed char)HexCharToByte((char)c);
  22694. }
  22695. unsigned char *wolfSSL_OPENSSL_hexstr2buf(const char *str, long *len)
  22696. {
  22697. unsigned char* targetBuf;
  22698. int srcDigitHigh = 0;
  22699. int srcDigitLow = 0;
  22700. size_t srcLen;
  22701. size_t srcIdx = 0;
  22702. long targetIdx = 0;
  22703. srcLen = XSTRLEN(str);
  22704. targetBuf = (unsigned char*)XMALLOC(srcLen / 2, NULL, DYNAMIC_TYPE_OPENSSL);
  22705. if (targetBuf == NULL) {
  22706. return NULL;
  22707. }
  22708. while (srcIdx < srcLen) {
  22709. if (str[srcIdx] == ':') {
  22710. srcIdx++;
  22711. continue;
  22712. }
  22713. srcDigitHigh = wolfSSL_OPENSSL_hexchar2int(str[srcIdx++]);
  22714. srcDigitLow = wolfSSL_OPENSSL_hexchar2int(str[srcIdx++]);
  22715. if (srcDigitHigh < 0 || srcDigitLow < 0) {
  22716. WOLFSSL_MSG("Invalid hex character.");
  22717. XFREE(targetBuf, NULL, DYNAMIC_TYPE_OPENSSL);
  22718. return NULL;
  22719. }
  22720. targetBuf[targetIdx++] = (unsigned char)((srcDigitHigh << 4) | srcDigitLow);
  22721. }
  22722. if (len != NULL)
  22723. *len = targetIdx;
  22724. return targetBuf;
  22725. }
  22726. int wolfSSL_OPENSSL_init_ssl(word64 opts, const OPENSSL_INIT_SETTINGS *settings)
  22727. {
  22728. (void)opts;
  22729. (void)settings;
  22730. return wolfSSL_library_init();
  22731. }
  22732. int wolfSSL_OPENSSL_init_crypto(word64 opts, const OPENSSL_INIT_SETTINGS* settings)
  22733. {
  22734. (void)opts;
  22735. (void)settings;
  22736. return wolfSSL_library_init();
  22737. }
  22738. #if defined(WOLFSSL_KEY_GEN) && defined(WOLFSSL_PEM_TO_DER)
  22739. int EncryptDerKey(byte *der, int *derSz, const EVP_CIPHER* cipher,
  22740. unsigned char* passwd, int passwdSz, byte **cipherInfo,
  22741. int maxDerSz)
  22742. {
  22743. int ret, paddingSz;
  22744. word32 idx, cipherInfoSz;
  22745. #ifdef WOLFSSL_SMALL_STACK
  22746. EncryptedInfo* info = NULL;
  22747. #else
  22748. EncryptedInfo info[1];
  22749. #endif
  22750. WOLFSSL_ENTER("EncryptDerKey");
  22751. if (der == NULL || derSz == NULL || cipher == NULL ||
  22752. passwd == NULL || cipherInfo == NULL)
  22753. return BAD_FUNC_ARG;
  22754. #ifdef WOLFSSL_SMALL_STACK
  22755. info = (EncryptedInfo*)XMALLOC(sizeof(EncryptedInfo), NULL,
  22756. DYNAMIC_TYPE_ENCRYPTEDINFO);
  22757. if (info == NULL) {
  22758. WOLFSSL_MSG("malloc failed");
  22759. return WOLFSSL_FAILURE;
  22760. }
  22761. #endif
  22762. XMEMSET(info, 0, sizeof(EncryptedInfo));
  22763. /* set the cipher name on info */
  22764. XSTRNCPY(info->name, cipher, NAME_SZ-1);
  22765. info->name[NAME_SZ-1] = '\0'; /* null term */
  22766. ret = wc_EncryptedInfoGet(info, info->name);
  22767. if (ret != 0) {
  22768. WOLFSSL_MSG("unsupported cipher");
  22769. #ifdef WOLFSSL_SMALL_STACK
  22770. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22771. #endif
  22772. return WOLFSSL_FAILURE;
  22773. }
  22774. /* Generate a random salt */
  22775. if (wolfSSL_RAND_bytes(info->iv, info->ivSz) != WOLFSSL_SUCCESS) {
  22776. WOLFSSL_MSG("generate iv failed");
  22777. #ifdef WOLFSSL_SMALL_STACK
  22778. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22779. #endif
  22780. return WOLFSSL_FAILURE;
  22781. }
  22782. /* add the padding before encryption */
  22783. paddingSz = ((*derSz)/info->ivSz + 1) * info->ivSz - (*derSz);
  22784. if (paddingSz == 0)
  22785. paddingSz = info->ivSz;
  22786. if (maxDerSz < *derSz + paddingSz) {
  22787. WOLFSSL_MSG("not enough DER buffer allocated");
  22788. #ifdef WOLFSSL_SMALL_STACK
  22789. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22790. #endif
  22791. return WOLFSSL_FAILURE;
  22792. }
  22793. XMEMSET(der+(*derSz), (byte)paddingSz, paddingSz);
  22794. (*derSz) += paddingSz;
  22795. /* encrypt buffer */
  22796. if (wc_BufferKeyEncrypt(info, der, *derSz, passwd, passwdSz, WC_MD5) != 0) {
  22797. WOLFSSL_MSG("encrypt key failed");
  22798. #ifdef WOLFSSL_SMALL_STACK
  22799. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22800. #endif
  22801. return WOLFSSL_FAILURE;
  22802. }
  22803. /* create cipher info : 'cipher_name,Salt(hex)' */
  22804. cipherInfoSz = (word32)(2*info->ivSz + XSTRLEN(info->name) + 2);
  22805. *cipherInfo = (byte*)XMALLOC(cipherInfoSz, NULL,
  22806. DYNAMIC_TYPE_STRING);
  22807. if (*cipherInfo == NULL) {
  22808. WOLFSSL_MSG("malloc failed");
  22809. #ifdef WOLFSSL_SMALL_STACK
  22810. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22811. #endif
  22812. return WOLFSSL_FAILURE;
  22813. }
  22814. XSTRNCPY((char*)*cipherInfo, info->name, cipherInfoSz);
  22815. XSTRNCAT((char*)*cipherInfo, ",", 2);
  22816. idx = (word32)XSTRLEN((char*)*cipherInfo);
  22817. cipherInfoSz -= idx;
  22818. ret = Base16_Encode(info->iv, info->ivSz, *cipherInfo+idx, &cipherInfoSz);
  22819. #ifdef WOLFSSL_SMALL_STACK
  22820. XFREE(info, NULL, DYNAMIC_TYPE_ENCRYPTEDINFO);
  22821. #endif
  22822. if (ret != 0) {
  22823. WOLFSSL_MSG("Base16_Encode failed");
  22824. XFREE(*cipherInfo, NULL, DYNAMIC_TYPE_STRING);
  22825. return WOLFSSL_FAILURE;
  22826. }
  22827. return WOLFSSL_SUCCESS;
  22828. }
  22829. #endif /* WOLFSSL_KEY_GEN || WOLFSSL_PEM_TO_DER */
  22830. #ifndef NO_BIO
  22831. static int WriteBioPUBKEY(WOLFSSL_BIO* bio, WOLFSSL_EVP_PKEY* key)
  22832. {
  22833. int ret;
  22834. int pemSz;
  22835. byte* pemBuf;
  22836. int derSz = 0;
  22837. byte* derBuf = NULL;
  22838. if (bio == NULL || key == NULL) {
  22839. WOLFSSL_MSG("Bad parameters");
  22840. return WOLFSSL_FAILURE;
  22841. }
  22842. switch (key->type) {
  22843. #if defined(WOLFSSL_KEY_GEN) && !defined(NO_RSA) && !defined(HAVE_USER_RSA)
  22844. case EVP_PKEY_RSA:
  22845. if ((derSz = wolfSSL_RSA_To_Der(key->rsa, &derBuf, 1, bio->heap))
  22846. < 0) {
  22847. WOLFSSL_MSG("wolfSSL_RSA_To_Der failed");
  22848. break;
  22849. }
  22850. break;
  22851. #endif /* WOLFSSL_KEY_GEN && !NO_RSA && !HAVE_USER_RSA */
  22852. #if !defined(NO_DSA) && !defined(HAVE_SELFTEST) && (defined(WOLFSSL_KEY_GEN) || \
  22853. defined(WOLFSSL_CERT_GEN))
  22854. case EVP_PKEY_DSA:
  22855. if (key->dsa == NULL) {
  22856. WOLFSSL_MSG("key->dsa is null");
  22857. break;
  22858. }
  22859. derSz = MAX_DSA_PUBKEY_SZ;
  22860. derBuf = (byte*)XMALLOC(derSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  22861. if (derBuf == NULL) {
  22862. WOLFSSL_MSG("malloc failed");
  22863. break;
  22864. }
  22865. /* Key to DER */
  22866. derSz = wc_DsaKeyToPublicDer((DsaKey*)key->dsa->internal, derBuf,
  22867. derSz);
  22868. if (derSz < 0) {
  22869. WOLFSSL_MSG("wc_DsaKeyToDer failed");
  22870. break;
  22871. }
  22872. break;
  22873. #endif /* !NO_DSA && !HAVE_SELFTEST && (WOLFSSL_KEY_GEN || WOLFSSL_CERT_GEN) */
  22874. #if defined(HAVE_ECC) && defined(HAVE_ECC_KEY_EXPORT)
  22875. case EVP_PKEY_EC:
  22876. {
  22877. if (key->ecc == NULL) {
  22878. WOLFSSL_MSG("key->ecc is null");
  22879. break;
  22880. }
  22881. derSz = wc_EccPublicKeyDerSize((ecc_key*)key->ecc->internal, 1);
  22882. if (derSz <= 0) {
  22883. WOLFSSL_MSG("wc_EccPublicKeyDerSize failed");
  22884. break;
  22885. }
  22886. derBuf = (byte*)XMALLOC(derSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  22887. if (derBuf == NULL) {
  22888. WOLFSSL_MSG("malloc failed");
  22889. break;
  22890. }
  22891. derSz = wc_EccPublicKeyToDer((ecc_key*)key->ecc->internal, derBuf,
  22892. derSz, 1);
  22893. if (derSz < 0) {
  22894. WOLFSSL_MSG("wc_EccPublicKeyToDer failed");
  22895. break;
  22896. }
  22897. break;
  22898. }
  22899. #endif /* HAVE_ECC && HAVE_ECC_KEY_EXPORT */
  22900. #if !defined(NO_DH) && (defined(WOLFSSL_QT) || defined(OPENSSL_ALL))
  22901. case EVP_PKEY_DH:
  22902. WOLFSSL_MSG("Writing DH PUBKEY not supported!");
  22903. break;
  22904. #endif /* !NO_DH && (WOLFSSL_QT || OPENSSL_ALL) */
  22905. default:
  22906. WOLFSSL_MSG("Unknown Key type!");
  22907. break;
  22908. }
  22909. if (derBuf == NULL || derSz <= 0) {
  22910. if (derBuf != NULL)
  22911. XFREE(derBuf, bio->heap, DYNAMIC_TYPE_DER);
  22912. return WOLFSSL_FAILURE;
  22913. }
  22914. pemSz = wc_DerToPem(derBuf, derSz, NULL, 0, PUBLICKEY_TYPE);
  22915. if (pemSz < 0) {
  22916. WOLFSSL_LEAVE("WriteBioPUBKEY", pemSz);
  22917. XFREE(derBuf, bio->heap, DYNAMIC_TYPE_DER);
  22918. return WOLFSSL_FAILURE;
  22919. }
  22920. pemBuf = (byte*)XMALLOC(pemSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  22921. if (pemBuf == NULL) {
  22922. WOLFSSL_LEAVE("WriteBioPUBKEY", pemSz);
  22923. XFREE(derBuf, bio->heap, DYNAMIC_TYPE_DER);
  22924. return WOLFSSL_FAILURE;
  22925. }
  22926. ret = wc_DerToPem(derBuf, derSz, pemBuf, pemSz, PUBLICKEY_TYPE);
  22927. XFREE(derBuf, bio->heap, DYNAMIC_TYPE_DER);
  22928. if (ret < 0) {
  22929. WOLFSSL_LEAVE("WriteBioPUBKEY", ret);
  22930. XFREE(pemBuf, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  22931. return WOLFSSL_FAILURE;
  22932. }
  22933. ret = wolfSSL_BIO_write(bio, pemBuf, pemSz);
  22934. XFREE(pemBuf, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  22935. if (ret != pemSz) {
  22936. WOLFSSL_MSG("Unable to write full PEM to BIO");
  22937. return WOLFSSL_FAILURE;
  22938. }
  22939. return WOLFSSL_SUCCESS;
  22940. }
  22941. /* Takes a public key and writes it out to a WOLFSSL_BIO
  22942. * Returns WOLFSSL_SUCCESS or WOLFSSL_FAILURE
  22943. */
  22944. int wolfSSL_PEM_write_bio_PUBKEY(WOLFSSL_BIO* bio, WOLFSSL_EVP_PKEY* key)
  22945. {
  22946. WOLFSSL_ENTER("wolfSSL_PEM_write_bio_PUBKEY");
  22947. return WriteBioPUBKEY(bio, key);
  22948. }
  22949. /* Takes a private key and writes it out to a WOLFSSL_BIO
  22950. * Returns WOLFSSL_SUCCESS or WOLFSSL_FAILURE
  22951. */
  22952. int wolfSSL_PEM_write_bio_PrivateKey(WOLFSSL_BIO* bio, WOLFSSL_EVP_PKEY* key,
  22953. const WOLFSSL_EVP_CIPHER* cipher,
  22954. unsigned char* passwd, int len,
  22955. wc_pem_password_cb* cb, void* arg)
  22956. {
  22957. byte* keyDer;
  22958. int pemSz;
  22959. int type;
  22960. int ret;
  22961. byte* tmp;
  22962. (void)cipher;
  22963. (void)passwd;
  22964. (void)len;
  22965. (void)cb;
  22966. (void)arg;
  22967. WOLFSSL_ENTER("wolfSSL_PEM_write_bio_PrivateKey");
  22968. if (bio == NULL || key == NULL) {
  22969. WOLFSSL_MSG("Bad Function Arguments");
  22970. return WOLFSSL_FAILURE;
  22971. }
  22972. keyDer = (byte*)key->pkey.ptr;
  22973. switch (key->type) {
  22974. #ifndef NO_RSA
  22975. case EVP_PKEY_RSA:
  22976. type = PRIVATEKEY_TYPE;
  22977. break;
  22978. #endif
  22979. #ifndef NO_DSA
  22980. case EVP_PKEY_DSA:
  22981. type = DSA_PRIVATEKEY_TYPE;
  22982. break;
  22983. #endif
  22984. #ifdef HAVE_ECC
  22985. case EVP_PKEY_EC:
  22986. type = ECC_PRIVATEKEY_TYPE;
  22987. break;
  22988. #endif
  22989. #if !defined(NO_DH) && (defined(WOLFSSL_QT) || defined(OPENSSL_ALL))
  22990. case EVP_PKEY_DH:
  22991. type = DH_PRIVATEKEY_TYPE;
  22992. break;
  22993. #endif
  22994. default:
  22995. WOLFSSL_MSG("Unknown Key type!");
  22996. type = PRIVATEKEY_TYPE;
  22997. }
  22998. pemSz = wc_DerToPem(keyDer, key->pkey_sz, NULL, 0, type);
  22999. if (pemSz < 0) {
  23000. WOLFSSL_LEAVE("wolfSSL_PEM_write_bio_PrivateKey", pemSz);
  23001. return WOLFSSL_FAILURE;
  23002. }
  23003. tmp = (byte*)XMALLOC(pemSz, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23004. if (tmp == NULL) {
  23005. return MEMORY_E;
  23006. }
  23007. ret = wc_DerToPem(keyDer, key->pkey_sz, tmp, pemSz, type);
  23008. if (ret < 0) {
  23009. WOLFSSL_LEAVE("wolfSSL_PEM_write_bio_PrivateKey", ret);
  23010. XFREE(tmp, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23011. return WOLFSSL_FAILURE;
  23012. }
  23013. ret = wolfSSL_BIO_write(bio, tmp, pemSz);
  23014. XFREE(tmp, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23015. if (ret != pemSz) {
  23016. WOLFSSL_MSG("Unable to write full PEM to BIO");
  23017. return WOLFSSL_FAILURE;
  23018. }
  23019. return WOLFSSL_SUCCESS;
  23020. }
  23021. #endif /* !NO_BIO */
  23022. /* Colon separated list of <public key>+<digest> algorithms.
  23023. * Replaces list in context.
  23024. */
  23025. int wolfSSL_CTX_set1_sigalgs_list(WOLFSSL_CTX* ctx, const char* list)
  23026. {
  23027. WOLFSSL_MSG("wolfSSL_CTX_set1_sigalg_list");
  23028. if (ctx == NULL || list == NULL) {
  23029. WOLFSSL_MSG("Bad function arguments");
  23030. return WOLFSSL_FAILURE;
  23031. }
  23032. /* alloc/init on demand only */
  23033. if (ctx->suites == NULL) {
  23034. ctx->suites = (Suites*)XMALLOC(sizeof(Suites), ctx->heap,
  23035. DYNAMIC_TYPE_SUITES);
  23036. if (ctx->suites == NULL) {
  23037. WOLFSSL_MSG("Memory alloc for Suites failed");
  23038. return WOLFSSL_FAILURE;
  23039. }
  23040. XMEMSET(ctx->suites, 0, sizeof(Suites));
  23041. }
  23042. return SetSuitesHashSigAlgo(ctx->suites, list);
  23043. }
  23044. /* Colon separated list of <public key>+<digest> algorithms.
  23045. * Replaces list in SSL.
  23046. */
  23047. int wolfSSL_set1_sigalgs_list(WOLFSSL* ssl, const char* list)
  23048. {
  23049. WOLFSSL_MSG("wolfSSL_set1_sigalg_list");
  23050. if (ssl == NULL) {
  23051. WOLFSSL_MSG("Bad function arguments");
  23052. return WOLFSSL_FAILURE;
  23053. }
  23054. #ifdef SINGLE_THREADED
  23055. if (ssl->ctx->suites == ssl->suites) {
  23056. ssl->suites = (Suites*)XMALLOC(sizeof(Suites), ssl->heap,
  23057. DYNAMIC_TYPE_SUITES);
  23058. if (ssl->suites == NULL) {
  23059. WOLFSSL_MSG("Suites Memory error");
  23060. return MEMORY_E;
  23061. }
  23062. *ssl->suites = *ssl->ctx->suites;
  23063. ssl->options.ownSuites = 1;
  23064. }
  23065. #endif
  23066. if (ssl == NULL || list == NULL) {
  23067. WOLFSSL_MSG("Bad function arguments");
  23068. return WOLFSSL_FAILURE;
  23069. }
  23070. return SetSuitesHashSigAlgo(ssl->suites, list);
  23071. }
  23072. struct WOLFSSL_HashSigInfo {
  23073. int hashAlgo;
  23074. int sigAlgo;
  23075. int nid;
  23076. } wolfssl_hash_sig_info[] =
  23077. {
  23078. #ifndef NO_RSA
  23079. #ifndef NO_SHA256
  23080. { sha256_mac, rsa_sa_algo, CTC_SHA256wRSA },
  23081. #endif
  23082. #ifdef WOLFSSL_SHA384
  23083. { sha384_mac, rsa_sa_algo, CTC_SHA384wRSA },
  23084. #endif
  23085. #ifdef WOLFSSL_SHA512
  23086. { sha512_mac, rsa_sa_algo, CTC_SHA512wRSA },
  23087. #endif
  23088. #ifdef WOLFSSL_SHA224
  23089. { sha224_mac, rsa_sa_algo, CTC_SHA224wRSA },
  23090. #endif
  23091. #ifndef NO_SHA
  23092. { sha_mac, rsa_sa_algo, CTC_SHAwRSA },
  23093. #endif
  23094. #ifdef WC_RSA_PSS
  23095. #ifndef NO_SHA256
  23096. { sha256_mac, rsa_pss_sa_algo, CTC_SHA256wRSA },
  23097. #endif
  23098. #ifdef WOLFSSL_SHA384
  23099. { sha384_mac, rsa_pss_sa_algo, CTC_SHA384wRSA },
  23100. #endif
  23101. #ifdef WOLFSSL_SHA512
  23102. { sha512_mac, rsa_pss_sa_algo, CTC_SHA512wRSA },
  23103. #endif
  23104. #ifdef WOLFSSL_SHA224
  23105. { sha224_mac, rsa_pss_sa_algo, CTC_SHA224wRSA },
  23106. #endif
  23107. #endif
  23108. #endif
  23109. #ifdef HAVE_ECC
  23110. #ifndef NO_SHA256
  23111. { sha256_mac, ecc_dsa_sa_algo, CTC_SHA256wECDSA },
  23112. #endif
  23113. #ifdef WOLFSSL_SHA384
  23114. { sha384_mac, ecc_dsa_sa_algo, CTC_SHA384wECDSA },
  23115. #endif
  23116. #ifdef WOLFSSL_SHA512
  23117. { sha512_mac, ecc_dsa_sa_algo, CTC_SHA512wECDSA },
  23118. #endif
  23119. #ifdef WOLFSSL_SHA224
  23120. { sha224_mac, ecc_dsa_sa_algo, CTC_SHA224wECDSA },
  23121. #endif
  23122. #ifndef NO_SHA
  23123. { sha_mac, ecc_dsa_sa_algo, CTC_SHAwECDSA },
  23124. #endif
  23125. #endif
  23126. #ifdef HAVE_ED25519
  23127. { no_mac, ed25519_sa_algo, CTC_ED25519 },
  23128. #endif
  23129. #ifdef HAVE_ED448
  23130. { no_mac, ed448_sa_algo, CTC_ED448 },
  23131. #endif
  23132. #ifdef HAVE_PQC
  23133. { no_mac, falcon_level1_sa_algo, CTC_FALCON_LEVEL1 },
  23134. { no_mac, falcon_level5_sa_algo, CTC_FALCON_LEVEL5 },
  23135. #endif
  23136. #ifndef NO_DSA
  23137. #ifndef NO_SHA
  23138. { sha_mac, dsa_sa_algo, CTC_SHAwDSA },
  23139. #endif
  23140. #endif
  23141. };
  23142. #define WOLFSSL_HASH_SIG_INFO_SZ \
  23143. (int)(sizeof(wolfssl_hash_sig_info)/sizeof(*wolfssl_hash_sig_info))
  23144. int wolfSSL_get_signature_nid(WOLFSSL *ssl, int* nid)
  23145. {
  23146. int i;
  23147. int ret = WOLFSSL_FAILURE;
  23148. WOLFSSL_MSG("wolfSSL_get_signature_nid");
  23149. if (ssl == NULL) {
  23150. WOLFSSL_MSG("Bad function arguments");
  23151. return WOLFSSL_FAILURE;
  23152. }
  23153. for (i = 0; i < WOLFSSL_HASH_SIG_INFO_SZ; i++) {
  23154. if (ssl->suites->hashAlgo == wolfssl_hash_sig_info[i].hashAlgo &&
  23155. ssl->suites->sigAlgo == wolfssl_hash_sig_info[i].sigAlgo) {
  23156. *nid = wolfssl_hash_sig_info[i].nid;
  23157. ret = WOLFSSL_SUCCESS;
  23158. break;
  23159. }
  23160. }
  23161. return ret;
  23162. }
  23163. #ifdef HAVE_ECC
  23164. #if defined(WOLFSSL_TLS13) && defined(HAVE_SUPPORTED_CURVES)
  23165. static int populate_groups(int* groups, int max_count, char *list)
  23166. {
  23167. char *end;
  23168. int len;
  23169. int count = 0;
  23170. const WOLF_EC_NIST_NAME* nist_name;
  23171. if (!groups || !list) {
  23172. return -1;
  23173. }
  23174. for (end = list; ; list = ++end) {
  23175. if (count > max_count) {
  23176. WOLFSSL_MSG("Too many curves in list");
  23177. return -1;
  23178. }
  23179. while (*end != ':' && *end != '\0') end++;
  23180. len = (int)(end - list); /* end points to char after end
  23181. * of curve name so no need for -1 */
  23182. if ((len < kNistCurves_MIN_NAME_LEN) ||
  23183. (len > kNistCurves_MAX_NAME_LEN)) {
  23184. WOLFSSL_MSG("Unrecognized curve name in list");
  23185. return -1;
  23186. }
  23187. for (nist_name = kNistCurves; nist_name->name != NULL; nist_name++) {
  23188. if (len == nist_name->name_len &&
  23189. XSTRNCMP(list, nist_name->name, nist_name->name_len) == 0) {
  23190. break;
  23191. }
  23192. }
  23193. if (!nist_name->name) {
  23194. WOLFSSL_MSG("Unrecognized curve name in list");
  23195. return -1;
  23196. }
  23197. groups[count++] = nist_name->nid;
  23198. if (*end == '\0') break;
  23199. }
  23200. return count;
  23201. }
  23202. int wolfSSL_CTX_set1_groups_list(WOLFSSL_CTX *ctx, char *list)
  23203. {
  23204. int groups[WOLFSSL_MAX_GROUP_COUNT];
  23205. int count;
  23206. if (!ctx || !list) {
  23207. return WOLFSSL_FAILURE;
  23208. }
  23209. if ((count = populate_groups(groups,
  23210. WOLFSSL_MAX_GROUP_COUNT, list)) == -1) {
  23211. return WOLFSSL_FAILURE;
  23212. }
  23213. return wolfSSL_CTX_set1_groups(ctx, groups, count);
  23214. }
  23215. int wolfSSL_set1_groups_list(WOLFSSL *ssl, char *list)
  23216. {
  23217. int groups[WOLFSSL_MAX_GROUP_COUNT];
  23218. int count;
  23219. if (!ssl || !list) {
  23220. return WOLFSSL_FAILURE;
  23221. }
  23222. if ((count = populate_groups(groups,
  23223. WOLFSSL_MAX_GROUP_COUNT, list)) == -1) {
  23224. return WOLFSSL_FAILURE;
  23225. }
  23226. return wolfSSL_set1_groups(ssl, groups, count);
  23227. }
  23228. #endif /* WOLFSSL_TLS13 */
  23229. #endif /* HAVE_ECC */
  23230. #ifndef NO_BIO
  23231. /* Number of bytes to read from a file at a time. */
  23232. #define PEM_READ_FILE_CHUNK_SZ 100
  23233. static int pem_read_bio_file(WOLFSSL_BIO* bio, char** pem)
  23234. {
  23235. int ret = 0;
  23236. int idx = 0;
  23237. int sz = PEM_READ_FILE_CHUNK_SZ; /* read from file by chunks */
  23238. int memSz = 0;
  23239. char* mem = NULL;
  23240. char* tmp;
  23241. /* Allocate a chunk to read into. */
  23242. tmp = (char*)XMALLOC(sz, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23243. if (tmp == NULL) {
  23244. WOLFSSL_MSG("Memory error");
  23245. ret = MEMORY_E;
  23246. }
  23247. while (ret == 0 && (sz = wolfSSL_BIO_read(bio, tmp, sz)) > 0) {
  23248. char* newMem;
  23249. /* sanity check for signed overflow */
  23250. if (memSz + sz < 0) {
  23251. break;
  23252. }
  23253. /* Reallocate to make space for read data. */
  23254. newMem = (char*)XREALLOC(mem, memSz + sz, bio->heap,
  23255. DYNAMIC_TYPE_OPENSSL);
  23256. if (newMem == NULL) {
  23257. WOLFSSL_MSG("Memory error");
  23258. ret = MEMORY_E;
  23259. break;
  23260. }
  23261. mem = newMem;
  23262. /* Copy in new data. */
  23263. XMEMCPY(mem + idx, tmp, sz);
  23264. memSz += sz;
  23265. idx += sz;
  23266. sz = PEM_READ_FILE_CHUNK_SZ; /* read another chunk from file */
  23267. }
  23268. XFREE(tmp, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23269. tmp = NULL;
  23270. if (ret == 0) {
  23271. /* Check data was read. */
  23272. if (memSz <= 0) {
  23273. WOLFSSL_MSG("No data to read from bio");
  23274. ret = BUFFER_E;
  23275. }
  23276. else {
  23277. /* Return size of data read. */
  23278. ret = memSz;
  23279. }
  23280. }
  23281. /* Dispose of any allocated memory on error. */
  23282. if (ret < 0) {
  23283. XFREE(mem, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23284. mem = NULL;
  23285. }
  23286. *pem = mem;
  23287. return ret;
  23288. }
  23289. static int pem_read_bio_pending(WOLFSSL_BIO* bio, int pendingSz, char** pem)
  23290. {
  23291. int ret = 0;
  23292. char* mem;
  23293. /* Allocate buffer to hold pending data. */
  23294. mem = (char*)XMALLOC(pendingSz, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23295. if (mem == NULL) {
  23296. WOLFSSL_MSG("Memory error");
  23297. ret = MEMORY_E;
  23298. }
  23299. else if ((ret = wolfSSL_BIO_read(bio, mem, pendingSz)) <= 0) {
  23300. /* Pending data not read. */
  23301. XFREE(mem, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23302. mem = NULL;
  23303. ret = MEMORY_E;
  23304. }
  23305. *pem = mem;
  23306. return ret;
  23307. }
  23308. static int pem_read_bio_key(WOLFSSL_BIO* bio, wc_pem_password_cb* cb,
  23309. void* pass, int keyType, int* eccFlag,
  23310. DerBuffer** der)
  23311. {
  23312. #ifdef WOLFSSL_SMALL_STACK
  23313. EncryptedInfo* info = NULL;
  23314. #else
  23315. EncryptedInfo info[1];
  23316. #endif /* WOLFSSL_SMALL_STACK */
  23317. wc_pem_password_cb* localCb = NULL;
  23318. char* mem = NULL;
  23319. int ret;
  23320. if (cb != NULL) {
  23321. localCb = cb;
  23322. }
  23323. else if (pass != NULL) {
  23324. localCb = wolfSSL_PEM_def_callback;
  23325. }
  23326. if ((ret = wolfSSL_BIO_pending(bio)) > 0) {
  23327. ret = pem_read_bio_pending(bio, ret, &mem);
  23328. }
  23329. else if (bio->type == WOLFSSL_BIO_FILE) {
  23330. ret = pem_read_bio_file(bio, &mem);
  23331. }
  23332. else {
  23333. WOLFSSL_MSG("No data to read from bio");
  23334. ret = NOT_COMPILED_IN;
  23335. }
  23336. #ifdef WOLFSSL_SMALL_STACK
  23337. if (ret >= 0) {
  23338. info = (EncryptedInfo*)XMALLOC(sizeof(EncryptedInfo), NULL,
  23339. DYNAMIC_TYPE_TMP_BUFFER);
  23340. if (info == NULL) {
  23341. WOLFSSL_MSG("Error getting memory for EncryptedInfo structure");
  23342. XFREE(mem, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23343. mem = NULL;
  23344. ret = MEMORY_E;
  23345. }
  23346. }
  23347. #endif /* WOLFSSL_SMALL_STACK */
  23348. if (ret >= 0) {
  23349. int memSz = ret;
  23350. XMEMSET(info, 0, sizeof(EncryptedInfo));
  23351. info->passwd_cb = localCb;
  23352. info->passwd_userdata = pass;
  23353. /* Do not strip PKCS8 header */
  23354. ret = PemToDer((const unsigned char*)mem, memSz, keyType, der, NULL,
  23355. info, eccFlag);
  23356. if (ret < 0) {
  23357. WOLFSSL_MSG("Bad PEM To DER");
  23358. }
  23359. /* Write left over data back to BIO if not a file BIO */
  23360. else if ((memSz - (int)info->consumed) > 0 &&
  23361. bio->type != WOLFSSL_BIO_FILE) {
  23362. if (wolfSSL_BIO_write(bio, mem + (int)info->consumed,
  23363. memSz - (int)info->consumed) <= 0) {
  23364. WOLFSSL_MSG("Unable to advance bio read pointer");
  23365. }
  23366. }
  23367. }
  23368. #ifdef WOLFSSL_SMALL_STACK
  23369. XFREE(info, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  23370. #endif
  23371. XFREE(mem, bio->heap, DYNAMIC_TYPE_OPENSSL);
  23372. return ret;
  23373. }
  23374. WOLFSSL_EVP_PKEY* wolfSSL_PEM_read_bio_PrivateKey(WOLFSSL_BIO* bio,
  23375. WOLFSSL_EVP_PKEY** key,
  23376. wc_pem_password_cb* cb,
  23377. void* pass)
  23378. {
  23379. WOLFSSL_EVP_PKEY* pkey = NULL;
  23380. DerBuffer* der = NULL;
  23381. int keyFormat = 0;
  23382. int type = -1;
  23383. WOLFSSL_ENTER("wolfSSL_PEM_read_bio_PrivateKey");
  23384. if (bio == NULL)
  23385. return pkey;
  23386. if (pem_read_bio_key(bio, cb, pass, PRIVATEKEY_TYPE, &keyFormat,
  23387. &der) >= 0) {
  23388. const unsigned char* ptr = der->buffer;
  23389. if (keyFormat) {
  23390. /* keyFormat is Key_Sum enum */
  23391. if (keyFormat == RSAk)
  23392. type = EVP_PKEY_RSA;
  23393. else if (keyFormat == ECDSAk)
  23394. type = EVP_PKEY_EC;
  23395. else if (keyFormat == DSAk)
  23396. type = EVP_PKEY_DSA;
  23397. else if (keyFormat == DHk)
  23398. type = EVP_PKEY_DH;
  23399. }
  23400. else {
  23401. /* Default to RSA if format is not set */
  23402. type = EVP_PKEY_RSA;
  23403. }
  23404. /* handle case where reuse is attempted */
  23405. if (key != NULL && *key != NULL)
  23406. pkey = *key;
  23407. wolfSSL_d2i_PrivateKey(type, &pkey, &ptr, der->length);
  23408. if (pkey == NULL) {
  23409. WOLFSSL_MSG("Error loading DER buffer into WOLFSSL_EVP_PKEY");
  23410. }
  23411. }
  23412. FreeDer(&der);
  23413. if (key != NULL && pkey != NULL)
  23414. *key = pkey;
  23415. WOLFSSL_LEAVE("wolfSSL_PEM_read_bio_PrivateKey", 0);
  23416. return pkey;
  23417. }
  23418. WOLFSSL_EVP_PKEY *wolfSSL_PEM_read_bio_PUBKEY(WOLFSSL_BIO* bio,
  23419. WOLFSSL_EVP_PKEY **key,
  23420. wc_pem_password_cb *cb,
  23421. void *pass)
  23422. {
  23423. WOLFSSL_EVP_PKEY* pkey = NULL;
  23424. DerBuffer* der = NULL;
  23425. int keyFormat = 0;
  23426. WOLFSSL_ENTER("wolfSSL_PEM_read_bio_PUBKEY");
  23427. if (bio == NULL)
  23428. return pkey;
  23429. if (pem_read_bio_key(bio, cb, pass, PUBLICKEY_TYPE, &keyFormat, &der) >= 0) {
  23430. const unsigned char* ptr = der->buffer;
  23431. /* handle case where reuse is attempted */
  23432. if (key != NULL && *key != NULL)
  23433. pkey = *key;
  23434. wolfSSL_d2i_PUBKEY(&pkey, &ptr, der->length);
  23435. if (pkey == NULL) {
  23436. WOLFSSL_MSG("Error loading DER buffer into WOLFSSL_EVP_PKEY");
  23437. }
  23438. }
  23439. FreeDer(&der);
  23440. if (key != NULL && pkey != NULL)
  23441. *key = pkey;
  23442. WOLFSSL_LEAVE("wolfSSL_PEM_read_bio_PUBKEY", 0);
  23443. return pkey;
  23444. }
  23445. #endif /* !NO_BIO */
  23446. #if !defined(NO_FILESYSTEM)
  23447. WOLFSSL_EVP_PKEY *wolfSSL_PEM_read_PUBKEY(XFILE fp, WOLFSSL_EVP_PKEY **x,
  23448. wc_pem_password_cb *cb, void *u)
  23449. {
  23450. (void)fp;
  23451. (void)x;
  23452. (void)cb;
  23453. (void)u;
  23454. WOLFSSL_MSG("wolfSSL_PEM_read_PUBKEY not implemented");
  23455. return NULL;
  23456. }
  23457. #endif /* NO_FILESYSTEM */
  23458. #endif /* OPENSSL_EXTRA */
  23459. #ifdef WOLFSSL_ALT_CERT_CHAINS
  23460. int wolfSSL_is_peer_alt_cert_chain(const WOLFSSL* ssl)
  23461. {
  23462. int isUsing = 0;
  23463. if (ssl)
  23464. isUsing = ssl->options.usingAltCertChain;
  23465. return isUsing;
  23466. }
  23467. #endif /* WOLFSSL_ALT_CERT_CHAINS */
  23468. #ifdef SESSION_CERTS
  23469. #ifdef WOLFSSL_ALT_CERT_CHAINS
  23470. /* Get peer's alternate certificate chain */
  23471. WOLFSSL_X509_CHAIN* wolfSSL_get_peer_alt_chain(WOLFSSL* ssl)
  23472. {
  23473. WOLFSSL_ENTER("wolfSSL_get_peer_alt_chain");
  23474. if (ssl)
  23475. return &ssl->session->altChain;
  23476. return 0;
  23477. }
  23478. #endif /* WOLFSSL_ALT_CERT_CHAINS */
  23479. /* Get peer's certificate chain */
  23480. WOLFSSL_X509_CHAIN* wolfSSL_get_peer_chain(WOLFSSL* ssl)
  23481. {
  23482. WOLFSSL_ENTER("wolfSSL_get_peer_chain");
  23483. if (ssl)
  23484. return &ssl->session->chain;
  23485. return 0;
  23486. }
  23487. /* Get peer's certificate chain total count */
  23488. int wolfSSL_get_chain_count(WOLFSSL_X509_CHAIN* chain)
  23489. {
  23490. WOLFSSL_ENTER("wolfSSL_get_chain_count");
  23491. if (chain)
  23492. return chain->count;
  23493. return 0;
  23494. }
  23495. /* Get peer's ASN.1 DER certificate at index (idx) length in bytes */
  23496. int wolfSSL_get_chain_length(WOLFSSL_X509_CHAIN* chain, int idx)
  23497. {
  23498. WOLFSSL_ENTER("wolfSSL_get_chain_length");
  23499. if (chain)
  23500. return chain->certs[idx].length;
  23501. return 0;
  23502. }
  23503. /* Get peer's ASN.1 DER certificate at index (idx) */
  23504. byte* wolfSSL_get_chain_cert(WOLFSSL_X509_CHAIN* chain, int idx)
  23505. {
  23506. WOLFSSL_ENTER("wolfSSL_get_chain_cert");
  23507. if (chain)
  23508. return chain->certs[idx].buffer;
  23509. return 0;
  23510. }
  23511. /* Get peer's wolfSSL X509 certificate at index (idx) */
  23512. WOLFSSL_X509* wolfSSL_get_chain_X509(WOLFSSL_X509_CHAIN* chain, int idx)
  23513. {
  23514. int ret;
  23515. WOLFSSL_X509* x509 = NULL;
  23516. #ifdef WOLFSSL_SMALL_STACK
  23517. DecodedCert* cert = NULL;
  23518. #else
  23519. DecodedCert cert[1];
  23520. #endif
  23521. WOLFSSL_ENTER("wolfSSL_get_chain_X509");
  23522. if (chain != NULL) {
  23523. #ifdef WOLFSSL_SMALL_STACK
  23524. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), NULL,
  23525. DYNAMIC_TYPE_DCERT);
  23526. if (cert != NULL)
  23527. #endif
  23528. {
  23529. InitDecodedCert(cert, chain->certs[idx].buffer,
  23530. chain->certs[idx].length, NULL);
  23531. if ((ret = ParseCertRelative(cert, CERT_TYPE, 0, NULL)) != 0) {
  23532. WOLFSSL_MSG("Failed to parse cert");
  23533. }
  23534. else {
  23535. x509 = (WOLFSSL_X509*)XMALLOC(sizeof(WOLFSSL_X509), NULL,
  23536. DYNAMIC_TYPE_X509);
  23537. if (x509 == NULL) {
  23538. WOLFSSL_MSG("Failed alloc X509");
  23539. }
  23540. else {
  23541. InitX509(x509, 1, NULL);
  23542. if ((ret = CopyDecodedToX509(x509, cert)) != 0) {
  23543. WOLFSSL_MSG("Failed to copy decoded");
  23544. wolfSSL_X509_free(x509);
  23545. x509 = NULL;
  23546. }
  23547. }
  23548. }
  23549. FreeDecodedCert(cert);
  23550. #ifdef WOLFSSL_SMALL_STACK
  23551. XFREE(cert, NULL, DYNAMIC_TYPE_DCERT);
  23552. #endif
  23553. }
  23554. }
  23555. (void)ret;
  23556. return x509;
  23557. }
  23558. /* Get peer's PEM certificate at index (idx), output to buffer if inLen big
  23559. enough else return error (-1). If buffer is NULL only calculate
  23560. outLen. Output length is in *outLen WOLFSSL_SUCCESS on ok */
  23561. int wolfSSL_get_chain_cert_pem(WOLFSSL_X509_CHAIN* chain, int idx,
  23562. unsigned char* buf, int inLen, int* outLen)
  23563. {
  23564. #if defined(WOLFSSL_PEM_TO_DER) || defined(WOLFSSL_DER_TO_PEM)
  23565. const char* header = NULL;
  23566. const char* footer = NULL;
  23567. int headerLen;
  23568. int footerLen;
  23569. int i;
  23570. int err;
  23571. word32 szNeeded = 0;
  23572. WOLFSSL_ENTER("wolfSSL_get_chain_cert_pem");
  23573. if (!chain || !outLen || idx < 0 || idx >= wolfSSL_get_chain_count(chain))
  23574. return BAD_FUNC_ARG;
  23575. err = wc_PemGetHeaderFooter(CERT_TYPE, &header, &footer);
  23576. if (err != 0)
  23577. return err;
  23578. headerLen = (int)XSTRLEN(header);
  23579. footerLen = (int)XSTRLEN(footer);
  23580. /* Null output buffer return size needed in outLen */
  23581. if(!buf) {
  23582. if(Base64_Encode(chain->certs[idx].buffer, chain->certs[idx].length,
  23583. NULL, &szNeeded) != LENGTH_ONLY_E)
  23584. return WOLFSSL_FAILURE;
  23585. *outLen = szNeeded + headerLen + footerLen;
  23586. return LENGTH_ONLY_E;
  23587. }
  23588. /* don't even try if inLen too short */
  23589. if (inLen < headerLen + footerLen + chain->certs[idx].length)
  23590. return BAD_FUNC_ARG;
  23591. /* header */
  23592. if (XMEMCPY(buf, header, headerLen) == NULL)
  23593. return WOLFSSL_FATAL_ERROR;
  23594. i = headerLen;
  23595. /* body */
  23596. *outLen = inLen; /* input to Base64_Encode */
  23597. if ( (err = Base64_Encode(chain->certs[idx].buffer,
  23598. chain->certs[idx].length, buf + i, (word32*)outLen)) < 0)
  23599. return err;
  23600. i += *outLen;
  23601. /* footer */
  23602. if ( (i + footerLen) > inLen)
  23603. return BAD_FUNC_ARG;
  23604. if (XMEMCPY(buf + i, footer, footerLen) == NULL)
  23605. return WOLFSSL_FATAL_ERROR;
  23606. *outLen += headerLen + footerLen;
  23607. return WOLFSSL_SUCCESS;
  23608. #else
  23609. (void)chain;
  23610. (void)idx;
  23611. (void)buf;
  23612. (void)inLen;
  23613. (void)outLen;
  23614. return WOLFSSL_FAILURE;
  23615. #endif /* WOLFSSL_PEM_TO_DER || WOLFSSL_DER_TO_PEM */
  23616. }
  23617. /* get session ID */
  23618. WOLFSSL_ABI
  23619. const byte* wolfSSL_get_sessionID(const WOLFSSL_SESSION* session)
  23620. {
  23621. WOLFSSL_ENTER("wolfSSL_get_sessionID");
  23622. session = ClientSessionToSession(session);
  23623. if (session)
  23624. return session->sessionID;
  23625. return NULL;
  23626. }
  23627. #endif /* SESSION_CERTS */
  23628. #ifdef HAVE_FUZZER
  23629. void wolfSSL_SetFuzzerCb(WOLFSSL* ssl, CallbackFuzzer cbf, void* fCtx)
  23630. {
  23631. if (ssl) {
  23632. ssl->fuzzerCb = cbf;
  23633. ssl->fuzzerCtx = fCtx;
  23634. }
  23635. }
  23636. #endif
  23637. #ifndef NO_CERTS
  23638. #ifdef HAVE_PK_CALLBACKS
  23639. #ifdef HAVE_ECC
  23640. void wolfSSL_CTX_SetEccKeyGenCb(WOLFSSL_CTX* ctx, CallbackEccKeyGen cb)
  23641. {
  23642. if (ctx)
  23643. ctx->EccKeyGenCb = cb;
  23644. }
  23645. void wolfSSL_SetEccKeyGenCtx(WOLFSSL* ssl, void *ctx)
  23646. {
  23647. if (ssl)
  23648. ssl->EccKeyGenCtx = ctx;
  23649. }
  23650. void* wolfSSL_GetEccKeyGenCtx(WOLFSSL* ssl)
  23651. {
  23652. if (ssl)
  23653. return ssl->EccKeyGenCtx;
  23654. return NULL;
  23655. }
  23656. void wolfSSL_CTX_SetEccSignCtx(WOLFSSL_CTX* ctx, void *userCtx)
  23657. {
  23658. if (ctx)
  23659. ctx->EccSignCtx = userCtx;
  23660. }
  23661. void* wolfSSL_CTX_GetEccSignCtx(WOLFSSL_CTX* ctx)
  23662. {
  23663. if (ctx)
  23664. return ctx->EccSignCtx;
  23665. return NULL;
  23666. }
  23667. WOLFSSL_ABI
  23668. void wolfSSL_CTX_SetEccSignCb(WOLFSSL_CTX* ctx, CallbackEccSign cb)
  23669. {
  23670. if (ctx)
  23671. ctx->EccSignCb = cb;
  23672. }
  23673. void wolfSSL_SetEccSignCtx(WOLFSSL* ssl, void *ctx)
  23674. {
  23675. if (ssl)
  23676. ssl->EccSignCtx = ctx;
  23677. }
  23678. void* wolfSSL_GetEccSignCtx(WOLFSSL* ssl)
  23679. {
  23680. if (ssl)
  23681. return ssl->EccSignCtx;
  23682. return NULL;
  23683. }
  23684. void wolfSSL_CTX_SetEccVerifyCb(WOLFSSL_CTX* ctx, CallbackEccVerify cb)
  23685. {
  23686. if (ctx)
  23687. ctx->EccVerifyCb = cb;
  23688. }
  23689. void wolfSSL_SetEccVerifyCtx(WOLFSSL* ssl, void *ctx)
  23690. {
  23691. if (ssl)
  23692. ssl->EccVerifyCtx = ctx;
  23693. }
  23694. void* wolfSSL_GetEccVerifyCtx(WOLFSSL* ssl)
  23695. {
  23696. if (ssl)
  23697. return ssl->EccVerifyCtx;
  23698. return NULL;
  23699. }
  23700. void wolfSSL_CTX_SetEccSharedSecretCb(WOLFSSL_CTX* ctx, CallbackEccSharedSecret cb)
  23701. {
  23702. if (ctx)
  23703. ctx->EccSharedSecretCb = cb;
  23704. }
  23705. void wolfSSL_SetEccSharedSecretCtx(WOLFSSL* ssl, void *ctx)
  23706. {
  23707. if (ssl)
  23708. ssl->EccSharedSecretCtx = ctx;
  23709. }
  23710. void* wolfSSL_GetEccSharedSecretCtx(WOLFSSL* ssl)
  23711. {
  23712. if (ssl)
  23713. return ssl->EccSharedSecretCtx;
  23714. return NULL;
  23715. }
  23716. #endif /* HAVE_ECC */
  23717. #ifdef HAVE_ED25519
  23718. void wolfSSL_CTX_SetEd25519SignCb(WOLFSSL_CTX* ctx, CallbackEd25519Sign cb)
  23719. {
  23720. if (ctx)
  23721. ctx->Ed25519SignCb = cb;
  23722. }
  23723. void wolfSSL_SetEd25519SignCtx(WOLFSSL* ssl, void *ctx)
  23724. {
  23725. if (ssl)
  23726. ssl->Ed25519SignCtx = ctx;
  23727. }
  23728. void* wolfSSL_GetEd25519SignCtx(WOLFSSL* ssl)
  23729. {
  23730. if (ssl)
  23731. return ssl->Ed25519SignCtx;
  23732. return NULL;
  23733. }
  23734. void wolfSSL_CTX_SetEd25519VerifyCb(WOLFSSL_CTX* ctx, CallbackEd25519Verify cb)
  23735. {
  23736. if (ctx)
  23737. ctx->Ed25519VerifyCb = cb;
  23738. }
  23739. void wolfSSL_SetEd25519VerifyCtx(WOLFSSL* ssl, void *ctx)
  23740. {
  23741. if (ssl)
  23742. ssl->Ed25519VerifyCtx = ctx;
  23743. }
  23744. void* wolfSSL_GetEd25519VerifyCtx(WOLFSSL* ssl)
  23745. {
  23746. if (ssl)
  23747. return ssl->Ed25519VerifyCtx;
  23748. return NULL;
  23749. }
  23750. #endif /* HAVE_ED25519 */
  23751. #ifdef HAVE_CURVE25519
  23752. void wolfSSL_CTX_SetX25519KeyGenCb(WOLFSSL_CTX* ctx,
  23753. CallbackX25519KeyGen cb)
  23754. {
  23755. if (ctx)
  23756. ctx->X25519KeyGenCb = cb;
  23757. }
  23758. void wolfSSL_SetX25519KeyGenCtx(WOLFSSL* ssl, void *ctx)
  23759. {
  23760. if (ssl)
  23761. ssl->X25519KeyGenCtx = ctx;
  23762. }
  23763. void* wolfSSL_GetX25519KeyGenCtx(WOLFSSL* ssl)
  23764. {
  23765. if (ssl)
  23766. return ssl->X25519KeyGenCtx;
  23767. return NULL;
  23768. }
  23769. void wolfSSL_CTX_SetX25519SharedSecretCb(WOLFSSL_CTX* ctx,
  23770. CallbackX25519SharedSecret cb)
  23771. {
  23772. if (ctx)
  23773. ctx->X25519SharedSecretCb = cb;
  23774. }
  23775. void wolfSSL_SetX25519SharedSecretCtx(WOLFSSL* ssl, void *ctx)
  23776. {
  23777. if (ssl)
  23778. ssl->X25519SharedSecretCtx = ctx;
  23779. }
  23780. void* wolfSSL_GetX25519SharedSecretCtx(WOLFSSL* ssl)
  23781. {
  23782. if (ssl)
  23783. return ssl->X25519SharedSecretCtx;
  23784. return NULL;
  23785. }
  23786. #endif /* HAVE_CURVE25519 */
  23787. #ifdef HAVE_ED448
  23788. void wolfSSL_CTX_SetEd448SignCb(WOLFSSL_CTX* ctx, CallbackEd448Sign cb)
  23789. {
  23790. if (ctx)
  23791. ctx->Ed448SignCb = cb;
  23792. }
  23793. void wolfSSL_SetEd448SignCtx(WOLFSSL* ssl, void *ctx)
  23794. {
  23795. if (ssl)
  23796. ssl->Ed448SignCtx = ctx;
  23797. }
  23798. void* wolfSSL_GetEd448SignCtx(WOLFSSL* ssl)
  23799. {
  23800. if (ssl)
  23801. return ssl->Ed448SignCtx;
  23802. return NULL;
  23803. }
  23804. void wolfSSL_CTX_SetEd448VerifyCb(WOLFSSL_CTX* ctx, CallbackEd448Verify cb)
  23805. {
  23806. if (ctx)
  23807. ctx->Ed448VerifyCb = cb;
  23808. }
  23809. void wolfSSL_SetEd448VerifyCtx(WOLFSSL* ssl, void *ctx)
  23810. {
  23811. if (ssl)
  23812. ssl->Ed448VerifyCtx = ctx;
  23813. }
  23814. void* wolfSSL_GetEd448VerifyCtx(WOLFSSL* ssl)
  23815. {
  23816. if (ssl)
  23817. return ssl->Ed448VerifyCtx;
  23818. return NULL;
  23819. }
  23820. #endif /* HAVE_ED448 */
  23821. #ifdef HAVE_CURVE448
  23822. void wolfSSL_CTX_SetX448KeyGenCb(WOLFSSL_CTX* ctx,
  23823. CallbackX448KeyGen cb)
  23824. {
  23825. if (ctx)
  23826. ctx->X448KeyGenCb = cb;
  23827. }
  23828. void wolfSSL_SetX448KeyGenCtx(WOLFSSL* ssl, void *ctx)
  23829. {
  23830. if (ssl)
  23831. ssl->X448KeyGenCtx = ctx;
  23832. }
  23833. void* wolfSSL_GetX448KeyGenCtx(WOLFSSL* ssl)
  23834. {
  23835. if (ssl)
  23836. return ssl->X448KeyGenCtx;
  23837. return NULL;
  23838. }
  23839. void wolfSSL_CTX_SetX448SharedSecretCb(WOLFSSL_CTX* ctx,
  23840. CallbackX448SharedSecret cb)
  23841. {
  23842. if (ctx)
  23843. ctx->X448SharedSecretCb = cb;
  23844. }
  23845. void wolfSSL_SetX448SharedSecretCtx(WOLFSSL* ssl, void *ctx)
  23846. {
  23847. if (ssl)
  23848. ssl->X448SharedSecretCtx = ctx;
  23849. }
  23850. void* wolfSSL_GetX448SharedSecretCtx(WOLFSSL* ssl)
  23851. {
  23852. if (ssl)
  23853. return ssl->X448SharedSecretCtx;
  23854. return NULL;
  23855. }
  23856. #endif /* HAVE_CURVE448 */
  23857. #ifndef NO_RSA
  23858. void wolfSSL_CTX_SetRsaSignCb(WOLFSSL_CTX* ctx, CallbackRsaSign cb)
  23859. {
  23860. if (ctx)
  23861. ctx->RsaSignCb = cb;
  23862. }
  23863. void wolfSSL_CTX_SetRsaSignCheckCb(WOLFSSL_CTX* ctx, CallbackRsaVerify cb)
  23864. {
  23865. if (ctx)
  23866. ctx->RsaSignCheckCb = cb;
  23867. }
  23868. void wolfSSL_SetRsaSignCtx(WOLFSSL* ssl, void *ctx)
  23869. {
  23870. if (ssl)
  23871. ssl->RsaSignCtx = ctx;
  23872. }
  23873. void* wolfSSL_GetRsaSignCtx(WOLFSSL* ssl)
  23874. {
  23875. if (ssl)
  23876. return ssl->RsaSignCtx;
  23877. return NULL;
  23878. }
  23879. void wolfSSL_CTX_SetRsaVerifyCb(WOLFSSL_CTX* ctx, CallbackRsaVerify cb)
  23880. {
  23881. if (ctx)
  23882. ctx->RsaVerifyCb = cb;
  23883. }
  23884. void wolfSSL_SetRsaVerifyCtx(WOLFSSL* ssl, void *ctx)
  23885. {
  23886. if (ssl)
  23887. ssl->RsaVerifyCtx = ctx;
  23888. }
  23889. void* wolfSSL_GetRsaVerifyCtx(WOLFSSL* ssl)
  23890. {
  23891. if (ssl)
  23892. return ssl->RsaVerifyCtx;
  23893. return NULL;
  23894. }
  23895. #ifdef WC_RSA_PSS
  23896. void wolfSSL_CTX_SetRsaPssSignCb(WOLFSSL_CTX* ctx, CallbackRsaPssSign cb)
  23897. {
  23898. if (ctx)
  23899. ctx->RsaPssSignCb = cb;
  23900. }
  23901. void wolfSSL_CTX_SetRsaPssSignCheckCb(WOLFSSL_CTX* ctx, CallbackRsaPssVerify cb)
  23902. {
  23903. if (ctx)
  23904. ctx->RsaPssSignCheckCb = cb;
  23905. }
  23906. void wolfSSL_SetRsaPssSignCtx(WOLFSSL* ssl, void *ctx)
  23907. {
  23908. if (ssl)
  23909. ssl->RsaPssSignCtx = ctx;
  23910. }
  23911. void* wolfSSL_GetRsaPssSignCtx(WOLFSSL* ssl)
  23912. {
  23913. if (ssl)
  23914. return ssl->RsaPssSignCtx;
  23915. return NULL;
  23916. }
  23917. void wolfSSL_CTX_SetRsaPssVerifyCb(WOLFSSL_CTX* ctx, CallbackRsaPssVerify cb)
  23918. {
  23919. if (ctx)
  23920. ctx->RsaPssVerifyCb = cb;
  23921. }
  23922. void wolfSSL_SetRsaPssVerifyCtx(WOLFSSL* ssl, void *ctx)
  23923. {
  23924. if (ssl)
  23925. ssl->RsaPssVerifyCtx = ctx;
  23926. }
  23927. void* wolfSSL_GetRsaPssVerifyCtx(WOLFSSL* ssl)
  23928. {
  23929. if (ssl)
  23930. return ssl->RsaPssVerifyCtx;
  23931. return NULL;
  23932. }
  23933. #endif /* WC_RSA_PSS */
  23934. void wolfSSL_CTX_SetRsaEncCb(WOLFSSL_CTX* ctx, CallbackRsaEnc cb)
  23935. {
  23936. if (ctx)
  23937. ctx->RsaEncCb = cb;
  23938. }
  23939. void wolfSSL_SetRsaEncCtx(WOLFSSL* ssl, void *ctx)
  23940. {
  23941. if (ssl)
  23942. ssl->RsaEncCtx = ctx;
  23943. }
  23944. void* wolfSSL_GetRsaEncCtx(WOLFSSL* ssl)
  23945. {
  23946. if (ssl)
  23947. return ssl->RsaEncCtx;
  23948. return NULL;
  23949. }
  23950. void wolfSSL_CTX_SetRsaDecCb(WOLFSSL_CTX* ctx, CallbackRsaDec cb)
  23951. {
  23952. if (ctx)
  23953. ctx->RsaDecCb = cb;
  23954. }
  23955. void wolfSSL_SetRsaDecCtx(WOLFSSL* ssl, void *ctx)
  23956. {
  23957. if (ssl)
  23958. ssl->RsaDecCtx = ctx;
  23959. }
  23960. void* wolfSSL_GetRsaDecCtx(WOLFSSL* ssl)
  23961. {
  23962. if (ssl)
  23963. return ssl->RsaDecCtx;
  23964. return NULL;
  23965. }
  23966. #endif /* NO_RSA */
  23967. /* callback for premaster secret generation */
  23968. void wolfSSL_CTX_SetGenPreMasterCb(WOLFSSL_CTX* ctx, CallbackGenPreMaster cb)
  23969. {
  23970. if (ctx)
  23971. ctx->GenPreMasterCb = cb;
  23972. }
  23973. /* Set premaster secret generation callback context */
  23974. void wolfSSL_SetGenPreMasterCtx(WOLFSSL* ssl, void *ctx)
  23975. {
  23976. if (ssl)
  23977. ssl->GenPreMasterCtx = ctx;
  23978. }
  23979. /* Get premaster secret generation callback context */
  23980. void* wolfSSL_GetGenPreMasterCtx(WOLFSSL* ssl)
  23981. {
  23982. if (ssl)
  23983. return ssl->GenPreMasterCtx;
  23984. return NULL;
  23985. }
  23986. /* callback for master secret generation */
  23987. void wolfSSL_CTX_SetGenMasterSecretCb(WOLFSSL_CTX* ctx, CallbackGenMasterSecret cb)
  23988. {
  23989. if (ctx)
  23990. ctx->GenMasterCb = cb;
  23991. }
  23992. /* Set master secret generation callback context */
  23993. void wolfSSL_SetGenMasterSecretCtx(WOLFSSL* ssl, void *ctx)
  23994. {
  23995. if (ssl)
  23996. ssl->GenMasterCtx = ctx;
  23997. }
  23998. /* Get master secret generation callback context */
  23999. void* wolfSSL_GetGenMasterSecretCtx(WOLFSSL* ssl)
  24000. {
  24001. if (ssl)
  24002. return ssl->GenMasterCtx;
  24003. return NULL;
  24004. }
  24005. /* callback for session key generation */
  24006. void wolfSSL_CTX_SetGenSessionKeyCb(WOLFSSL_CTX* ctx, CallbackGenSessionKey cb)
  24007. {
  24008. if (ctx)
  24009. ctx->GenSessionKeyCb = cb;
  24010. }
  24011. /* Set session key generation callback context */
  24012. void wolfSSL_SetGenSessionKeyCtx(WOLFSSL* ssl, void *ctx)
  24013. {
  24014. if (ssl)
  24015. ssl->GenSessionKeyCtx = ctx;
  24016. }
  24017. /* Get session key generation callback context */
  24018. void* wolfSSL_GetGenSessionKeyCtx(WOLFSSL* ssl)
  24019. {
  24020. if (ssl)
  24021. return ssl->GenSessionKeyCtx;
  24022. return NULL;
  24023. }
  24024. /* callback for setting encryption keys */
  24025. void wolfSSL_CTX_SetEncryptKeysCb(WOLFSSL_CTX* ctx, CallbackEncryptKeys cb)
  24026. {
  24027. if (ctx)
  24028. ctx->EncryptKeysCb = cb;
  24029. }
  24030. /* Set encryption keys callback context */
  24031. void wolfSSL_SetEncryptKeysCtx(WOLFSSL* ssl, void *ctx)
  24032. {
  24033. if (ssl)
  24034. ssl->EncryptKeysCtx = ctx;
  24035. }
  24036. /* Get encryption keys callback context */
  24037. void* wolfSSL_GetEncryptKeysCtx(WOLFSSL* ssl)
  24038. {
  24039. if (ssl)
  24040. return ssl->EncryptKeysCtx;
  24041. return NULL;
  24042. }
  24043. /* callback for Tls finished */
  24044. /* the callback can be used to build TLS Finished message if enabled */
  24045. void wolfSSL_CTX_SetTlsFinishedCb(WOLFSSL_CTX* ctx, CallbackTlsFinished cb)
  24046. {
  24047. if (ctx)
  24048. ctx->TlsFinishedCb = cb;
  24049. }
  24050. /* Set Tls finished callback context */
  24051. void wolfSSL_SetTlsFinishedCtx(WOLFSSL* ssl, void *ctx)
  24052. {
  24053. if (ssl)
  24054. ssl->TlsFinishedCtx = ctx;
  24055. }
  24056. /* Get Tls finished callback context */
  24057. void* wolfSSL_GetTlsFinishedCtx(WOLFSSL* ssl)
  24058. {
  24059. if (ssl)
  24060. return ssl->TlsFinishedCtx;
  24061. return NULL;
  24062. }
  24063. #if !defined(WOLFSSL_NO_TLS12) && !defined(WOLFSSL_AEAD_ONLY)
  24064. /* callback for verify data */
  24065. void wolfSSL_CTX_SetVerifyMacCb(WOLFSSL_CTX* ctx, CallbackVerifyMac cb)
  24066. {
  24067. if (ctx)
  24068. ctx->VerifyMacCb = cb;
  24069. }
  24070. /* Set set keys callback context */
  24071. void wolfSSL_SetVerifyMacCtx(WOLFSSL* ssl, void *ctx)
  24072. {
  24073. if (ssl)
  24074. ssl->VerifyMacCtx = ctx;
  24075. }
  24076. /* Get set keys callback context */
  24077. void* wolfSSL_GetVerifyMacCtx(WOLFSSL* ssl)
  24078. {
  24079. if (ssl)
  24080. return ssl->VerifyMacCtx;
  24081. return NULL;
  24082. }
  24083. #endif /* !WOLFSSL_NO_TLS12 && !WOLFSSL_AEAD_ONLY */
  24084. #endif /* HAVE_PK_CALLBACKS */
  24085. #endif /* NO_CERTS */
  24086. #if defined(HAVE_PK_CALLBACKS) && !defined(NO_DH)
  24087. void wolfSSL_CTX_SetDhAgreeCb(WOLFSSL_CTX* ctx, CallbackDhAgree cb)
  24088. {
  24089. if (ctx)
  24090. ctx->DhAgreeCb = cb;
  24091. }
  24092. void wolfSSL_SetDhAgreeCtx(WOLFSSL* ssl, void *ctx)
  24093. {
  24094. if (ssl)
  24095. ssl->DhAgreeCtx = ctx;
  24096. }
  24097. void* wolfSSL_GetDhAgreeCtx(WOLFSSL* ssl)
  24098. {
  24099. if (ssl)
  24100. return ssl->DhAgreeCtx;
  24101. return NULL;
  24102. }
  24103. #endif /* HAVE_PK_CALLBACKS && !NO_DH */
  24104. #if defined(HAVE_PK_CALLBACKS) && defined(HAVE_HKDF)
  24105. void wolfSSL_CTX_SetHKDFExtractCb(WOLFSSL_CTX* ctx, CallbackHKDFExtract cb)
  24106. {
  24107. if (ctx)
  24108. ctx->HkdfExtractCb = cb;
  24109. }
  24110. void wolfSSL_SetHKDFExtractCtx(WOLFSSL* ssl, void *ctx)
  24111. {
  24112. if (ssl)
  24113. ssl->HkdfExtractCtx = ctx;
  24114. }
  24115. void* wolfSSL_GetHKDFExtractCtx(WOLFSSL* ssl)
  24116. {
  24117. if (ssl)
  24118. return ssl->HkdfExtractCtx;
  24119. return NULL;
  24120. }
  24121. #endif /* HAVE_PK_CALLBACKS && HAVE_HKDF */
  24122. #ifdef WOLFSSL_HAVE_WOLFSCEP
  24123. /* Used by autoconf to see if wolfSCEP is available */
  24124. void wolfSSL_wolfSCEP(void) {}
  24125. #endif
  24126. #ifdef WOLFSSL_HAVE_CERT_SERVICE
  24127. /* Used by autoconf to see if cert service is available */
  24128. void wolfSSL_cert_service(void) {}
  24129. #endif
  24130. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) && \
  24131. !defined(WOLFCRYPT_ONLY)
  24132. #ifndef NO_CERTS
  24133. #if defined(OPENSSL_ALL) || defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  24134. /* Convert ASN1 input string into canonical ASN1 string */
  24135. /* , which has the following rules: */
  24136. /* convert to UTF8 */
  24137. /* convert to lower case */
  24138. /* multi-spaces collapsed */
  24139. /* @param asn_out a pointer to ASN1_STRING to be converted */
  24140. /* @param asn_in a pointer to input ASN1_STRING */
  24141. /* @return WOLFSSL_SUCCESS on successful converted, otherwise <=0 error code*/
  24142. int wolfSSL_ASN1_STRING_canon(WOLFSSL_ASN1_STRING* asn_out,
  24143. const WOLFSSL_ASN1_STRING* asn_in)
  24144. {
  24145. char* dst;
  24146. char* src;
  24147. int i, len;
  24148. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_canon");
  24149. /* sanity check */
  24150. if (asn_out == NULL || asn_in == NULL) {
  24151. WOLFSSL_MSG("invalid function arguments");
  24152. return BAD_FUNC_ARG;
  24153. }
  24154. switch (asn_in->type) {
  24155. case MBSTRING_UTF8:
  24156. case V_ASN1_PRINTABLESTRING:
  24157. break;
  24158. default:
  24159. WOLFSSL_MSG("just copy string");
  24160. return wolfSSL_ASN1_STRING_copy(asn_out, asn_in);
  24161. }
  24162. /* type is set as UTF8 */
  24163. asn_out->type = MBSTRING_UTF8;
  24164. asn_out->length = wolfSSL_ASN1_STRING_to_UTF8(
  24165. (unsigned char**)&asn_out->data, (WOLFSSL_ASN1_STRING*)asn_in);
  24166. if (asn_out->length < 0) {
  24167. return WOLFSSL_FAILURE;
  24168. }
  24169. /* point to the last */
  24170. dst = asn_out->data + asn_out->length;
  24171. /* point to the start */
  24172. src = asn_out->data;
  24173. len = asn_out->length;
  24174. /* trimming spaces at the head and tail */
  24175. dst--;
  24176. for (; (len > 0 && XISSPACE(*dst)); len--) {
  24177. dst--;
  24178. }
  24179. for (; (len > 0 && XISSPACE(*src)); len--) {
  24180. src++;
  24181. }
  24182. /* point to the start */
  24183. dst = asn_out->data;
  24184. for (i = 0; i < len; dst++, i++) {
  24185. if (!XISASCII(*src)) {
  24186. /* keep non-ascii code */
  24187. *dst = *src++;
  24188. } else if (XISSPACE(*src)) {
  24189. *dst = 0x20; /* space */
  24190. /* remove the rest of spaces */
  24191. while (XISSPACE(*++src) && i++ < len);
  24192. } else {
  24193. *dst = (char)XTOLOWER((unsigned char)*src++);
  24194. }
  24195. }
  24196. /* put actual length */
  24197. asn_out->length = (int)(dst - asn_out->data);
  24198. return WOLFSSL_SUCCESS;
  24199. }
  24200. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  24201. #if !defined(NO_FILESYSTEM)
  24202. #ifndef NO_BIO
  24203. WOLFSSL_EVP_PKEY* wolfSSL_PEM_read_PrivateKey(XFILE fp,
  24204. WOLFSSL_EVP_PKEY **x, wc_pem_password_cb *cb, void *u)
  24205. {
  24206. int err = 0;
  24207. WOLFSSL_EVP_PKEY* ret = NULL;
  24208. WOLFSSL_BIO* bio = NULL;
  24209. WOLFSSL_ENTER("wolfSSL_PEM_read_PrivateKey");
  24210. if (fp == XBADFILE) {
  24211. err = 1;
  24212. }
  24213. if (err == 0) {
  24214. bio = wolfSSL_BIO_new(wolfSSL_BIO_s_file());
  24215. err = bio == NULL;
  24216. }
  24217. if (err == 0) {
  24218. err = wolfSSL_BIO_set_fp(bio, fp, BIO_NOCLOSE) != WOLFSSL_SUCCESS;
  24219. }
  24220. if (err == 0) {
  24221. ret = wolfSSL_PEM_read_bio_PrivateKey(bio, x, cb, u);
  24222. }
  24223. if (bio != NULL) {
  24224. wolfSSL_BIO_free(bio);
  24225. }
  24226. return ret;
  24227. }
  24228. #endif
  24229. #endif
  24230. #endif
  24231. #endif /* OPENSSL_ALL || OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL*/
  24232. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  24233. #define PEM_BEGIN "-----BEGIN "
  24234. #define PEM_BEGIN_SZ 11
  24235. #define PEM_END "-----END "
  24236. #define PEM_END_SZ 9
  24237. #define PEM_HDR_FIN "-----"
  24238. #define PEM_HDR_FIN_SZ 5
  24239. #define PEM_HDR_FIN_EOL_NEWLINE "-----\n"
  24240. #define PEM_HDR_FIN_EOL_NULL_TERM "-----\0"
  24241. #define PEM_HDR_FIN_EOL_SZ 6
  24242. #ifndef NO_BIO
  24243. int wolfSSL_PEM_read_bio(WOLFSSL_BIO* bio, char **name, char **header,
  24244. unsigned char **data, long *len)
  24245. {
  24246. int ret = WOLFSSL_SUCCESS;
  24247. char pem[256];
  24248. int pemLen;
  24249. char* p;
  24250. char* nameStr = NULL;
  24251. int nameLen = 0;
  24252. char* headerStr = NULL;
  24253. int headerLen;
  24254. int headerFound = 0;
  24255. unsigned char* der = NULL;
  24256. word32 derLen = 0;
  24257. if (bio == NULL || name == NULL || header == NULL || data == NULL ||
  24258. len == NULL) {
  24259. return WOLFSSL_FAILURE;
  24260. }
  24261. /* Find header line. */
  24262. pem[sizeof(pem) - 1] = '\0';
  24263. while ((pemLen = wolfSSL_BIO_gets(bio, pem, sizeof(pem) - 1)) > 0) {
  24264. if (XSTRNCMP(pem, PEM_BEGIN, PEM_BEGIN_SZ) == 0)
  24265. break;
  24266. }
  24267. if (pemLen <= 0)
  24268. ret = WOLFSSL_FAILURE;
  24269. /* Have a header line. */
  24270. if (ret == WOLFSSL_SUCCESS) {
  24271. while (pem[pemLen - 1] == '\r' || pem[pemLen - 1] == '\n')
  24272. pemLen--;
  24273. pem[pemLen] = '\0';
  24274. if (XSTRNCMP(pem + pemLen - PEM_HDR_FIN_SZ, PEM_HDR_FIN,
  24275. PEM_HDR_FIN_SZ) != 0) {
  24276. ret = WOLFSSL_FAILURE;
  24277. }
  24278. }
  24279. /* Get out name. */
  24280. if (ret == WOLFSSL_SUCCESS) {
  24281. nameLen = pemLen - PEM_BEGIN_SZ - PEM_HDR_FIN_SZ;
  24282. nameStr = (char*)XMALLOC(nameLen + 1, NULL,
  24283. DYNAMIC_TYPE_TMP_BUFFER);
  24284. if (nameStr == NULL)
  24285. ret = WOLFSSL_FAILURE;
  24286. }
  24287. if (ret == WOLFSSL_SUCCESS) {
  24288. XSTRNCPY(nameStr, pem + PEM_BEGIN_SZ, nameLen);
  24289. nameStr[nameLen] = '\0';
  24290. /* Get header of PEM - encryption header. */
  24291. headerLen = 0;
  24292. while ((pemLen = wolfSSL_BIO_gets(bio, pem, sizeof(pem) - 1)) > 0) {
  24293. while (pemLen > 0 && (pem[pemLen - 1] == '\r' ||
  24294. pem[pemLen - 1] == '\n')) {
  24295. pemLen--;
  24296. }
  24297. pem[pemLen++] = '\n';
  24298. pem[pemLen] = '\0';
  24299. /* Header separator is a blank line. */
  24300. if (pem[0] == '\n') {
  24301. headerFound = 1;
  24302. break;
  24303. }
  24304. /* Didn't find a blank line - no header. */
  24305. if (XSTRNCMP(pem, PEM_END, PEM_END_SZ) == 0) {
  24306. der = (unsigned char*)headerStr;
  24307. derLen = headerLen;
  24308. /* Empty header - empty string. */
  24309. headerStr = (char*)XMALLOC(1, NULL,
  24310. DYNAMIC_TYPE_TMP_BUFFER);
  24311. if (headerStr == NULL)
  24312. ret = WOLFSSL_FAILURE;
  24313. else
  24314. headerStr[0] = '\0';
  24315. break;
  24316. }
  24317. p = (char*)XREALLOC(headerStr, headerLen + pemLen + 1, NULL,
  24318. DYNAMIC_TYPE_TMP_BUFFER);
  24319. if (p == NULL) {
  24320. ret = WOLFSSL_FAILURE;
  24321. break;
  24322. }
  24323. headerStr = p;
  24324. XMEMCPY(headerStr + headerLen, pem, pemLen + 1);
  24325. headerLen += pemLen;
  24326. }
  24327. if (pemLen <= 0)
  24328. ret = WOLFSSL_FAILURE;
  24329. }
  24330. /* Get body of PEM - if there was a header */
  24331. if (ret == WOLFSSL_SUCCESS && headerFound) {
  24332. derLen = 0;
  24333. while ((pemLen = wolfSSL_BIO_gets(bio, pem, sizeof(pem) - 1)) > 0) {
  24334. while (pemLen > 0 && (pem[pemLen - 1] == '\r' ||
  24335. pem[pemLen - 1] == '\n')) {
  24336. pemLen--;
  24337. }
  24338. pem[pemLen++] = '\n';
  24339. pem[pemLen] = '\0';
  24340. if (XSTRNCMP(pem, PEM_END, PEM_END_SZ) == 0)
  24341. break;
  24342. p = (char*)XREALLOC(der, derLen + pemLen + 1, NULL,
  24343. DYNAMIC_TYPE_TMP_BUFFER);
  24344. if (p == NULL) {
  24345. ret = WOLFSSL_FAILURE;
  24346. break;
  24347. }
  24348. der = (unsigned char*)p;
  24349. XMEMCPY(der + derLen, pem, pemLen + 1);
  24350. derLen += pemLen;
  24351. }
  24352. if (pemLen <= 0)
  24353. ret = WOLFSSL_FAILURE;
  24354. }
  24355. /* Check trailer. */
  24356. if (ret == WOLFSSL_SUCCESS) {
  24357. if (XSTRNCMP(pem + PEM_END_SZ, nameStr, nameLen) != 0)
  24358. ret = WOLFSSL_FAILURE;
  24359. }
  24360. if (ret == WOLFSSL_SUCCESS) {
  24361. if (XSTRNCMP(pem + PEM_END_SZ + nameLen,
  24362. PEM_HDR_FIN_EOL_NEWLINE,
  24363. PEM_HDR_FIN_EOL_SZ) != 0 &&
  24364. XSTRNCMP(pem + PEM_END_SZ + nameLen,
  24365. PEM_HDR_FIN_EOL_NULL_TERM,
  24366. PEM_HDR_FIN_EOL_SZ) != 0) {
  24367. ret = WOLFSSL_FAILURE;
  24368. }
  24369. }
  24370. /* Base64 decode body. */
  24371. if (ret == WOLFSSL_SUCCESS) {
  24372. if (Base64_Decode(der, derLen, der, &derLen) != 0)
  24373. ret = WOLFSSL_FAILURE;
  24374. }
  24375. if (ret == WOLFSSL_SUCCESS) {
  24376. *name = nameStr;
  24377. *header = headerStr;
  24378. *data = der;
  24379. *len = derLen;
  24380. nameStr = NULL;
  24381. headerStr = NULL;
  24382. der = NULL;
  24383. }
  24384. if (nameStr != NULL)
  24385. XFREE(nameStr, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  24386. if (headerStr != NULL)
  24387. XFREE(headerStr, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  24388. if (der != NULL)
  24389. XFREE(der, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  24390. return ret;
  24391. }
  24392. int wolfSSL_PEM_write_bio(WOLFSSL_BIO* bio, const char *name,
  24393. const char *header, const unsigned char *data,
  24394. long len)
  24395. {
  24396. int err = 0;
  24397. int outSz = 0;
  24398. int nameLen;
  24399. int headerLen;
  24400. byte* pem = NULL;
  24401. word32 pemLen;
  24402. word32 derLen = (word32)len;
  24403. if (bio == NULL || name == NULL || header == NULL || data == NULL)
  24404. return 0;
  24405. nameLen = (int)XSTRLEN(name);
  24406. headerLen = (int)XSTRLEN(header);
  24407. pemLen = (derLen + 2) / 3 * 4;
  24408. pemLen += (pemLen + 63) / 64;
  24409. pem = (byte*)XMALLOC(pemLen, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  24410. err = pem == NULL;
  24411. if (!err)
  24412. err = Base64_Encode(data, derLen, pem, &pemLen) != 0;
  24413. if (!err) {
  24414. err = wolfSSL_BIO_write(bio, PEM_BEGIN, PEM_BEGIN_SZ) !=
  24415. (int)PEM_BEGIN_SZ;
  24416. }
  24417. if (!err)
  24418. err = wolfSSL_BIO_write(bio, name, nameLen) != nameLen;
  24419. if (!err) {
  24420. err = wolfSSL_BIO_write(bio, PEM_HDR_FIN_EOL_NEWLINE,
  24421. PEM_HDR_FIN_EOL_SZ) != (int)PEM_HDR_FIN_EOL_SZ;
  24422. }
  24423. if (!err && headerLen > 0) {
  24424. err = wolfSSL_BIO_write(bio, header, headerLen) != headerLen;
  24425. /* Blank line after a header and before body. */
  24426. if (!err)
  24427. err = wolfSSL_BIO_write(bio, "\n", 1) != 1;
  24428. headerLen++;
  24429. }
  24430. if (!err)
  24431. err = wolfSSL_BIO_write(bio, pem, pemLen) != (int)pemLen;
  24432. if (!err)
  24433. err = wolfSSL_BIO_write(bio, PEM_END, PEM_END_SZ) !=
  24434. (int)PEM_END_SZ;
  24435. if (!err)
  24436. err = wolfSSL_BIO_write(bio, name, nameLen) != nameLen;
  24437. if (!err) {
  24438. err = wolfSSL_BIO_write(bio, PEM_HDR_FIN_EOL_NEWLINE,
  24439. PEM_HDR_FIN_EOL_SZ) != (int)PEM_HDR_FIN_EOL_SZ;
  24440. }
  24441. if (!err) {
  24442. outSz = PEM_BEGIN_SZ + nameLen + PEM_HDR_FIN_EOL_SZ + headerLen +
  24443. pemLen + PEM_END_SZ + nameLen + PEM_HDR_FIN_EOL_SZ;
  24444. }
  24445. if (pem != NULL)
  24446. XFREE(pem, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  24447. return outSz;
  24448. }
  24449. #if !defined(NO_FILESYSTEM)
  24450. int wolfSSL_PEM_read(XFILE fp, char **name, char **header,
  24451. unsigned char **data, long *len)
  24452. {
  24453. int ret;
  24454. WOLFSSL_BIO* bio;
  24455. if (name == NULL || header == NULL || data == NULL || len == NULL)
  24456. return WOLFSSL_FAILURE;
  24457. bio = wolfSSL_BIO_new(wolfSSL_BIO_s_file());
  24458. if (bio == NULL)
  24459. return 0;
  24460. if (wolfSSL_BIO_set_fp(bio, fp, BIO_NOCLOSE) != WOLFSSL_SUCCESS) {
  24461. wolfSSL_BIO_free(bio);
  24462. bio = NULL;
  24463. }
  24464. ret = wolfSSL_PEM_read_bio(bio, name, header, data, len);
  24465. if (bio != NULL)
  24466. wolfSSL_BIO_free(bio);
  24467. return ret;
  24468. }
  24469. int wolfSSL_PEM_write(XFILE fp, const char *name, const char *header,
  24470. const unsigned char *data, long len)
  24471. {
  24472. int ret;
  24473. WOLFSSL_BIO* bio;
  24474. if (name == NULL || header == NULL || data == NULL)
  24475. return 0;
  24476. bio = wolfSSL_BIO_new(wolfSSL_BIO_s_file());
  24477. if (bio == NULL)
  24478. return 0;
  24479. if (wolfSSL_BIO_set_fp(bio, fp, BIO_NOCLOSE) != WOLFSSL_SUCCESS) {
  24480. wolfSSL_BIO_free(bio);
  24481. bio = NULL;
  24482. }
  24483. ret = wolfSSL_PEM_write_bio(bio, name, header, data, len);
  24484. if (bio != NULL)
  24485. wolfSSL_BIO_free(bio);
  24486. return ret;
  24487. }
  24488. #endif
  24489. #endif /* !NO_BIO */
  24490. int wolfSSL_PEM_get_EVP_CIPHER_INFO(const char* header,
  24491. EncryptedInfo* cipher)
  24492. {
  24493. if (header == NULL || cipher == NULL)
  24494. return WOLFSSL_FAILURE;
  24495. XMEMSET(cipher, 0, sizeof(*cipher));
  24496. if (wc_EncryptedInfoParse(cipher, &header, XSTRLEN(header)) != 0)
  24497. return WOLFSSL_FAILURE;
  24498. return WOLFSSL_SUCCESS;
  24499. }
  24500. int wolfSSL_PEM_do_header(EncryptedInfo* cipher, unsigned char* data,
  24501. long* len, wc_pem_password_cb* callback,
  24502. void* ctx)
  24503. {
  24504. int ret = WOLFSSL_SUCCESS;
  24505. char password[NAME_SZ];
  24506. int passwordSz;
  24507. if (cipher == NULL || data == NULL || len == NULL || callback == NULL)
  24508. return WOLFSSL_FAILURE;
  24509. passwordSz = callback(password, sizeof(password), PEM_PASS_READ, ctx);
  24510. if (passwordSz < 0)
  24511. ret = WOLFSSL_FAILURE;
  24512. if (ret == WOLFSSL_SUCCESS) {
  24513. if (wc_BufferKeyDecrypt(cipher, data, (word32)*len, (byte*)password,
  24514. passwordSz, WC_MD5) != 0) {
  24515. ret = WOLFSSL_FAILURE;
  24516. }
  24517. }
  24518. if (passwordSz > 0)
  24519. XMEMSET(password, 0, passwordSz);
  24520. return ret;
  24521. }
  24522. #ifndef NO_BIO
  24523. /*
  24524. * bp : bio to read X509 from
  24525. * x : x509 to write to
  24526. * cb : password call back for reading PEM
  24527. * u : password
  24528. * _AUX is for working with a trusted X509 certificate
  24529. */
  24530. WOLFSSL_X509 *wolfSSL_PEM_read_bio_X509_AUX(WOLFSSL_BIO *bp,
  24531. WOLFSSL_X509 **x, wc_pem_password_cb *cb,
  24532. void *u)
  24533. {
  24534. WOLFSSL_ENTER("wolfSSL_PEM_read_bio_X509");
  24535. /* AUX info is; trusted/rejected uses, friendly name, private key id,
  24536. * and potentially a stack of "other" info. wolfSSL does not store
  24537. * friendly name or private key id yet in WOLFSSL_X509 for human
  24538. * readability and does not support extra trusted/rejected uses for
  24539. * root CA. */
  24540. return wolfSSL_PEM_read_bio_X509(bp, x, cb, u);
  24541. }
  24542. #endif /* !NO_BIO */
  24543. #endif /* OPENSSL_EXTRA || OPENSSL_ALL */
  24544. #endif /* !NO_CERTS */
  24545. /* NID variables are dependent on compatibility header files currently
  24546. *
  24547. * returns a pointer to a new WOLFSSL_ASN1_OBJECT struct on success and NULL
  24548. * on fail
  24549. */
  24550. WOLFSSL_ASN1_OBJECT* wolfSSL_OBJ_nid2obj(int id)
  24551. {
  24552. return wolfSSL_OBJ_nid2obj_ex(id, NULL);
  24553. }
  24554. WOLFSSL_LOCAL WOLFSSL_ASN1_OBJECT* wolfSSL_OBJ_nid2obj_ex(int id,
  24555. WOLFSSL_ASN1_OBJECT* arg_obj)
  24556. {
  24557. word32 oidSz = 0;
  24558. int nid = 0;
  24559. const byte* oid;
  24560. word32 type = 0;
  24561. WOLFSSL_ASN1_OBJECT* obj = arg_obj;
  24562. byte objBuf[MAX_OID_SZ + MAX_LENGTH_SZ + 1]; /* +1 for object tag */
  24563. word32 objSz = 0;
  24564. const char* sName = NULL;
  24565. int i;
  24566. #ifdef WOLFSSL_DEBUG_OPENSSL
  24567. WOLFSSL_ENTER("wolfSSL_OBJ_nid2obj()");
  24568. #endif
  24569. for (i = 0; i < (int)WOLFSSL_OBJECT_INFO_SZ; i++) {
  24570. if (wolfssl_object_info[i].nid == id) {
  24571. nid = id;
  24572. id = wolfssl_object_info[i].id;
  24573. sName = wolfssl_object_info[i].sName;
  24574. type = wolfssl_object_info[i].type;
  24575. break;
  24576. }
  24577. }
  24578. if (i == (int)WOLFSSL_OBJECT_INFO_SZ) {
  24579. WOLFSSL_MSG("NID not in table");
  24580. #ifdef WOLFSSL_QT
  24581. sName = NULL;
  24582. type = id;
  24583. #else
  24584. return NULL;
  24585. #endif
  24586. }
  24587. #ifdef HAVE_ECC
  24588. if (type == 0 && wc_ecc_get_oid(id, &oid, &oidSz) > 0) {
  24589. type = oidCurveType;
  24590. }
  24591. #endif /* HAVE_ECC */
  24592. if (sName != NULL) {
  24593. if (XSTRLEN(sName) > WOLFSSL_MAX_SNAME - 1) {
  24594. WOLFSSL_MSG("Attempted short name is too large");
  24595. return NULL;
  24596. }
  24597. }
  24598. oid = OidFromId(id, type, &oidSz);
  24599. /* set object ID to buffer */
  24600. if (obj == NULL){
  24601. obj = wolfSSL_ASN1_OBJECT_new();
  24602. if (obj == NULL) {
  24603. WOLFSSL_MSG("Issue creating WOLFSSL_ASN1_OBJECT struct");
  24604. return NULL;
  24605. }
  24606. }
  24607. obj->nid = nid;
  24608. obj->type = id;
  24609. obj->grp = type;
  24610. obj->sName[0] = '\0';
  24611. if (sName != NULL) {
  24612. XMEMCPY(obj->sName, (char*)sName, XSTRLEN((char*)sName));
  24613. }
  24614. objBuf[0] = ASN_OBJECT_ID; objSz++;
  24615. objSz += SetLength(oidSz, objBuf + 1);
  24616. if (oidSz) {
  24617. XMEMCPY(objBuf + objSz, oid, oidSz);
  24618. objSz += oidSz;
  24619. }
  24620. if (obj->objSz == 0 || objSz != obj->objSz) {
  24621. obj->objSz = objSz;
  24622. if(((obj->dynamic & WOLFSSL_ASN1_DYNAMIC_DATA) != 0) ||
  24623. (obj->obj == NULL)) {
  24624. if (obj->obj != NULL)
  24625. XFREE((byte*)obj->obj, NULL, DYNAMIC_TYPE_ASN1);
  24626. obj->obj = (byte*)XMALLOC(obj->objSz, NULL, DYNAMIC_TYPE_ASN1);
  24627. if (obj->obj == NULL) {
  24628. wolfSSL_ASN1_OBJECT_free(obj);
  24629. return NULL;
  24630. }
  24631. obj->dynamic |= WOLFSSL_ASN1_DYNAMIC_DATA ;
  24632. }
  24633. else {
  24634. obj->dynamic &= ~WOLFSSL_ASN1_DYNAMIC_DATA ;
  24635. }
  24636. }
  24637. XMEMCPY((byte*)obj->obj, objBuf, obj->objSz);
  24638. (void)type;
  24639. return obj;
  24640. }
  24641. static const char* oid_translate_num_to_str(const char* oid)
  24642. {
  24643. const struct oid_dict {
  24644. const char* num;
  24645. const char* desc;
  24646. } oid_dict[] = {
  24647. { "2.5.29.37.0", "Any Extended Key Usage" },
  24648. { "1.3.6.1.5.5.7.3.1", "TLS Web Server Authentication" },
  24649. { "1.3.6.1.5.5.7.3.2", "TLS Web Client Authentication" },
  24650. { "1.3.6.1.5.5.7.3.3", "Code Signing" },
  24651. { "1.3.6.1.5.5.7.3.4", "E-mail Protection" },
  24652. { "1.3.6.1.5.5.7.3.8", "Time Stamping" },
  24653. { "1.3.6.1.5.5.7.3.9", "OCSP Signing" },
  24654. { NULL, NULL }
  24655. };
  24656. const struct oid_dict* idx;
  24657. for (idx = oid_dict; idx->num != NULL; idx++) {
  24658. if (!XSTRCMP(oid, idx->num)) {
  24659. return idx->desc;
  24660. }
  24661. }
  24662. return NULL;
  24663. }
  24664. static int wolfssl_obj2txt_numeric(char *buf, int bufLen,
  24665. const WOLFSSL_ASN1_OBJECT *a)
  24666. {
  24667. int bufSz;
  24668. int length;
  24669. word32 idx = 0;
  24670. byte tag;
  24671. if (GetASNTag(a->obj, &idx, &tag, a->objSz) != 0) {
  24672. return WOLFSSL_FAILURE;
  24673. }
  24674. if (tag != ASN_OBJECT_ID) {
  24675. WOLFSSL_MSG("Bad ASN1 Object");
  24676. return WOLFSSL_FAILURE;
  24677. }
  24678. if (GetLength((const byte*)a->obj, &idx, &length,
  24679. a->objSz) < 0 || length < 0) {
  24680. return ASN_PARSE_E;
  24681. }
  24682. if (bufLen < MAX_OID_STRING_SZ) {
  24683. bufSz = bufLen - 1;
  24684. }
  24685. else {
  24686. bufSz = MAX_OID_STRING_SZ;
  24687. }
  24688. if ((bufSz = DecodePolicyOID(buf, (word32)bufSz, a->obj + idx,
  24689. (word32)length)) <= 0) {
  24690. WOLFSSL_MSG("Error decoding OID");
  24691. return WOLFSSL_FAILURE;
  24692. }
  24693. buf[bufSz] = '\0';
  24694. return bufSz;
  24695. }
  24696. /* If no_name is one then use numerical form, otherwise short name.
  24697. *
  24698. * Returns the buffer size on success, WOLFSSL_FAILURE on error
  24699. */
  24700. int wolfSSL_OBJ_obj2txt(char *buf, int bufLen, const WOLFSSL_ASN1_OBJECT *a,
  24701. int no_name)
  24702. {
  24703. int bufSz;
  24704. const char* desc;
  24705. const char* name;
  24706. WOLFSSL_ENTER("wolfSSL_OBJ_obj2txt()");
  24707. if (buf == NULL || bufLen <= 1 || a == NULL) {
  24708. WOLFSSL_MSG("Bad input argument");
  24709. return WOLFSSL_FAILURE;
  24710. }
  24711. if (no_name == 1) {
  24712. return wolfssl_obj2txt_numeric(buf, bufLen, a);
  24713. }
  24714. /* return long name unless using x509small, then return short name */
  24715. #if defined(OPENSSL_EXTRA_X509_SMALL) && !defined(OPENSSL_EXTRA)
  24716. name = a->sName;
  24717. #else
  24718. name = wolfSSL_OBJ_nid2ln(wolfSSL_OBJ_obj2nid(a));
  24719. #endif
  24720. if (name == NULL) {
  24721. WOLFSSL_MSG("Name not found");
  24722. bufSz = 0;
  24723. }
  24724. else if (XSTRLEN(name) + 1 < (word32)bufLen - 1) {
  24725. bufSz = (int)XSTRLEN(name);
  24726. }
  24727. else {
  24728. bufSz = bufLen - 1;
  24729. }
  24730. if (bufSz) {
  24731. XMEMCPY(buf, name, bufSz);
  24732. }
  24733. else if (a->type == GEN_DNS || a->type == GEN_EMAIL ||
  24734. a->type == GEN_URI) {
  24735. bufSz = (int)XSTRLEN((const char*)a->obj);
  24736. XMEMCPY(buf, a->obj, min(bufSz, bufLen));
  24737. }
  24738. else if ((bufSz = wolfssl_obj2txt_numeric(buf, bufLen, a)) > 0) {
  24739. if ((desc = oid_translate_num_to_str(buf))) {
  24740. bufSz = (int)XSTRLEN(desc);
  24741. bufSz = min(bufSz, bufLen - 1);
  24742. XMEMCPY(buf, desc, bufSz);
  24743. }
  24744. }
  24745. buf[bufSz] = '\0';
  24746. return bufSz;
  24747. }
  24748. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  24749. #if defined(OPENSSL_EXTRA) || defined(HAVE_LIGHTY) || \
  24750. defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(HAVE_STUNNEL) || \
  24751. defined(WOLFSSL_NGINX) || defined(HAVE_POCO_LIB) || \
  24752. defined(WOLFSSL_HAPROXY)
  24753. char wolfSSL_CTX_use_certificate(WOLFSSL_CTX *ctx, WOLFSSL_X509 *x)
  24754. {
  24755. int ret;
  24756. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate");
  24757. if (!ctx || !x || !x->derCert) {
  24758. WOLFSSL_MSG("Bad parameter");
  24759. return WOLFSSL_FAILURE;
  24760. }
  24761. FreeDer(&ctx->certificate); /* Make sure previous is free'd */
  24762. ret = AllocDer(&ctx->certificate, x->derCert->length, CERT_TYPE,
  24763. ctx->heap);
  24764. if (ret != 0)
  24765. return WOLFSSL_FAILURE;
  24766. XMEMCPY(ctx->certificate->buffer, x->derCert->buffer,
  24767. x->derCert->length);
  24768. #ifdef KEEP_OUR_CERT
  24769. if (ctx->ourCert != NULL && ctx->ownOurCert) {
  24770. wolfSSL_X509_free(ctx->ourCert);
  24771. }
  24772. #ifndef WOLFSSL_X509_STORE_CERTS
  24773. ctx->ourCert = x;
  24774. if (wolfSSL_X509_up_ref(x) != 1) {
  24775. return WOLFSSL_FAILURE;
  24776. }
  24777. #else
  24778. ctx->ourCert = wolfSSL_X509_d2i(NULL, x->derCert->buffer,x->derCert->length);
  24779. if(ctx->ourCert == NULL){
  24780. return WOLFSSL_FAILURE;
  24781. }
  24782. #endif
  24783. /* We own the cert because either we up its reference counter
  24784. * or we create our own copy of the cert object. */
  24785. ctx->ownOurCert = 1;
  24786. #endif
  24787. /* Update the available options with public keys. */
  24788. switch (x->pubKeyOID) {
  24789. case RSAk:
  24790. ctx->haveRSA = 1;
  24791. break;
  24792. #ifdef HAVE_ED25519
  24793. case ED25519k:
  24794. #endif
  24795. #ifdef HAVE_ED448
  24796. case ED448k:
  24797. #endif
  24798. case ECDSAk:
  24799. ctx->haveECC = 1;
  24800. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  24801. ctx->pkCurveOID = x->pkCurveOID;
  24802. #endif
  24803. break;
  24804. }
  24805. return WOLFSSL_SUCCESS;
  24806. }
  24807. static int PushCertToDerBuffer(DerBuffer** inOutDer, int weOwn,
  24808. byte* cert, word32 certSz, void* heap)
  24809. {
  24810. int ret;
  24811. DerBuffer* inChain = NULL;
  24812. DerBuffer* der = NULL;
  24813. word32 len = 0;
  24814. if (inOutDer == NULL)
  24815. return BAD_FUNC_ARG;
  24816. inChain = *inOutDer;
  24817. if (inChain != NULL)
  24818. len = inChain->length;
  24819. ret = AllocDer(&der, len + CERT_HEADER_SZ + certSz, CERT_TYPE,
  24820. heap);
  24821. if (ret != 0) {
  24822. WOLFSSL_MSG("AllocDer error");
  24823. return ret;
  24824. }
  24825. if (inChain != NULL)
  24826. XMEMCPY(der->buffer, inChain->buffer, len);
  24827. c32to24(certSz, der->buffer + len);
  24828. XMEMCPY(der->buffer + len + CERT_HEADER_SZ, cert, certSz);
  24829. if (weOwn)
  24830. FreeDer(inOutDer);
  24831. *inOutDer = der;
  24832. return WOLFSSL_SUCCESS;
  24833. }
  24834. /**
  24835. * wolfSSL_CTX_add1_chain_cert makes a copy of the cert so we free it
  24836. * on success
  24837. */
  24838. int wolfSSL_CTX_add0_chain_cert(WOLFSSL_CTX* ctx, WOLFSSL_X509* x509)
  24839. {
  24840. WOLFSSL_ENTER("wolfSSL_CTX_add0_chain_cert");
  24841. if (wolfSSL_CTX_add1_chain_cert(ctx, x509) != WOLFSSL_SUCCESS) {
  24842. return WOLFSSL_FAILURE;
  24843. }
  24844. wolfSSL_X509_free(x509);
  24845. return WOLFSSL_SUCCESS;
  24846. }
  24847. int wolfSSL_CTX_add1_chain_cert(WOLFSSL_CTX* ctx, WOLFSSL_X509* x509)
  24848. {
  24849. int ret;
  24850. WOLFSSL_ENTER("wolfSSL_CTX_add1_chain_cert");
  24851. if (ctx == NULL || x509 == NULL || x509->derCert == NULL) {
  24852. return WOLFSSL_FAILURE;
  24853. }
  24854. if (ctx->certificate == NULL)
  24855. ret = (int)wolfSSL_CTX_use_certificate(ctx, x509);
  24856. else {
  24857. if (wolfSSL_X509_up_ref(x509) != WOLFSSL_SUCCESS) {
  24858. WOLFSSL_MSG("wolfSSL_X509_up_ref error");
  24859. return WOLFSSL_FAILURE;
  24860. }
  24861. ret = wolfSSL_CTX_load_verify_buffer(ctx, x509->derCert->buffer,
  24862. x509->derCert->length, WOLFSSL_FILETYPE_ASN1);
  24863. if (ret == WOLFSSL_SUCCESS) {
  24864. /* push to ctx->certChain */
  24865. ret = PushCertToDerBuffer(&ctx->certChain, 1,
  24866. x509->derCert->buffer, x509->derCert->length, ctx->heap);
  24867. }
  24868. /* Store cert to free it later */
  24869. if (ret == WOLFSSL_SUCCESS && ctx->x509Chain == NULL) {
  24870. ctx->x509Chain = wolfSSL_sk_X509_new();
  24871. if (ctx->x509Chain == NULL) {
  24872. WOLFSSL_MSG("wolfSSL_sk_X509_new error");
  24873. ret = WOLFSSL_FAILURE;
  24874. }
  24875. }
  24876. if (ret == WOLFSSL_SUCCESS &&
  24877. wolfSSL_sk_X509_push(ctx->x509Chain, x509)
  24878. != WOLFSSL_SUCCESS) {
  24879. WOLFSSL_MSG("wolfSSL_sk_X509_push error");
  24880. ret = WOLFSSL_FAILURE;
  24881. }
  24882. if (ret != WOLFSSL_SUCCESS)
  24883. wolfSSL_X509_free(x509); /* Decrease ref counter */
  24884. }
  24885. return (ret == WOLFSSL_SUCCESS) ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  24886. }
  24887. #ifdef KEEP_OUR_CERT
  24888. int wolfSSL_add0_chain_cert(WOLFSSL* ssl, WOLFSSL_X509* x509)
  24889. {
  24890. int ret;
  24891. WOLFSSL_ENTER("wolfSSL_add0_chain_cert");
  24892. if (ssl == NULL || ssl->ctx == NULL || x509 == NULL ||
  24893. x509->derCert == NULL)
  24894. return WOLFSSL_FAILURE;
  24895. if (ssl->buffers.certificate == NULL) {
  24896. ret = wolfSSL_use_certificate(ssl, x509);
  24897. /* Store cert to free it later */
  24898. if (ret == WOLFSSL_SUCCESS) {
  24899. if (ssl->buffers.weOwnCert)
  24900. wolfSSL_X509_free(ssl->ourCert);
  24901. ssl->ourCert = x509;
  24902. ssl->buffers.weOwnCert = 1;
  24903. }
  24904. }
  24905. else {
  24906. ret = PushCertToDerBuffer(&ssl->buffers.certChain,
  24907. ssl->buffers.weOwnCertChain, x509->derCert->buffer,
  24908. x509->derCert->length, ssl->heap);
  24909. if (ret == WOLFSSL_SUCCESS) {
  24910. ssl->buffers.weOwnCertChain = 1;
  24911. /* Store cert to free it later */
  24912. if (ssl->ourCertChain == NULL) {
  24913. ssl->ourCertChain = wolfSSL_sk_X509_new();
  24914. if (ssl->ourCertChain == NULL) {
  24915. WOLFSSL_MSG("wolfSSL_sk_X509_new error");
  24916. return WOLFSSL_FAILURE;
  24917. }
  24918. }
  24919. if (wolfSSL_sk_X509_push(ssl->ourCertChain, x509)
  24920. != WOLFSSL_SUCCESS) {
  24921. WOLFSSL_MSG("wolfSSL_sk_X509_push error");
  24922. return WOLFSSL_FAILURE;
  24923. }
  24924. }
  24925. }
  24926. return ret == WOLFSSL_SUCCESS ? WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  24927. }
  24928. int wolfSSL_add1_chain_cert(WOLFSSL* ssl, WOLFSSL_X509* x509)
  24929. {
  24930. int ret;
  24931. WOLFSSL_ENTER("wolfSSL_add1_chain_cert");
  24932. if (ssl == NULL || ssl->ctx == NULL || x509 == NULL ||
  24933. x509->derCert == NULL)
  24934. return WOLFSSL_FAILURE;
  24935. if (wolfSSL_X509_up_ref(x509) != WOLFSSL_SUCCESS) {
  24936. WOLFSSL_MSG("wolfSSL_X509_up_ref error");
  24937. return WOLFSSL_FAILURE;
  24938. }
  24939. ret = wolfSSL_add0_chain_cert(ssl, x509);
  24940. /* Decrease ref counter on error */
  24941. if (ret != WOLFSSL_SUCCESS)
  24942. wolfSSL_X509_free(x509);
  24943. return ret;
  24944. }
  24945. #endif
  24946. /* Return the corresponding short name for the nid <n>.
  24947. * or NULL if short name can't be found.
  24948. */
  24949. const char * wolfSSL_OBJ_nid2sn(int n) {
  24950. const WOLFSSL_ObjectInfo *obj_info = wolfssl_object_info;
  24951. size_t i;
  24952. WOLFSSL_ENTER("wolfSSL_OBJ_nid2sn");
  24953. if (n == NID_md5) {
  24954. /* NID_surname == NID_md5 and NID_surname comes before NID_md5 in
  24955. * wolfssl_object_info. As a result, the loop below will incorrectly
  24956. * return "SN" instead of "MD5." NID_surname isn't the true OpenSSL
  24957. * NID, but other functions rely on this table and modifying it to
  24958. * conform with OpenSSL's NIDs isn't trivial. */
  24959. return "MD5";
  24960. }
  24961. for (i = 0; i < WOLFSSL_OBJECT_INFO_SZ; i++, obj_info++) {
  24962. if (obj_info->nid == n) {
  24963. return obj_info->sName;
  24964. }
  24965. }
  24966. WOLFSSL_MSG("SN not found");
  24967. return NULL;
  24968. }
  24969. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  24970. int wolfSSL_OBJ_sn2nid(const char *sn) {
  24971. WOLFSSL_ENTER("wolfSSL_OBJ_sn2nid");
  24972. if (sn == NULL)
  24973. return NID_undef;
  24974. return wc_OBJ_sn2nid(sn);
  24975. }
  24976. #endif
  24977. size_t wolfSSL_OBJ_length(const WOLFSSL_ASN1_OBJECT* o)
  24978. {
  24979. size_t ret = 0;
  24980. int err = 0;
  24981. word32 idx = 0;
  24982. int len = 0;
  24983. WOLFSSL_ENTER("wolfSSL_OBJ_length");
  24984. if (o == NULL || o->obj == NULL) {
  24985. WOLFSSL_MSG("Bad argument.");
  24986. err = 1;
  24987. }
  24988. if (err == 0 && GetASNObjectId(o->obj, &idx, &len, o->objSz)) {
  24989. WOLFSSL_MSG("Error parsing ASN.1 header.");
  24990. err = 1;
  24991. }
  24992. if (err == 0) {
  24993. ret = len;
  24994. }
  24995. WOLFSSL_LEAVE("wolfSSL_OBJ_length", (int)ret);
  24996. return ret;
  24997. }
  24998. const unsigned char* wolfSSL_OBJ_get0_data(const WOLFSSL_ASN1_OBJECT* o)
  24999. {
  25000. const unsigned char* ret = NULL;
  25001. int err = 0;
  25002. word32 idx = 0;
  25003. int len = 0;
  25004. WOLFSSL_ENTER("wolfSSL_OBJ_get0_data");
  25005. if (o == NULL || o->obj == NULL) {
  25006. WOLFSSL_MSG("Bad argument.");
  25007. err = 1;
  25008. }
  25009. if (err == 0 && GetASNObjectId(o->obj, &idx, &len, o->objSz)) {
  25010. WOLFSSL_MSG("Error parsing ASN.1 header.");
  25011. err = 1;
  25012. }
  25013. if (err == 0) {
  25014. ret = o->obj + idx;
  25015. }
  25016. return ret;
  25017. }
  25018. /* Gets the NID value that corresponds with the ASN1 object.
  25019. *
  25020. * o ASN1 object to get NID of
  25021. *
  25022. * Return NID on success and a negative value on failure
  25023. */
  25024. int wolfSSL_OBJ_obj2nid(const WOLFSSL_ASN1_OBJECT *o)
  25025. {
  25026. word32 oid = 0;
  25027. word32 idx = 0;
  25028. int ret;
  25029. #ifdef WOLFSSL_DEBUG_OPENSSL
  25030. WOLFSSL_ENTER("wolfSSL_OBJ_obj2nid");
  25031. #endif
  25032. if (o == NULL) {
  25033. return -1;
  25034. }
  25035. #ifdef WOLFSSL_QT
  25036. if (o->grp == oidCertExtType) {
  25037. /* If nid is an unknown extension, return NID_undef */
  25038. if (wolfSSL_OBJ_nid2sn(o->nid) == NULL)
  25039. return NID_undef;
  25040. }
  25041. #endif
  25042. if (o->nid > 0)
  25043. return o->nid;
  25044. if ((ret = GetObjectId(o->obj, &idx, &oid, o->grp, o->objSz)) < 0) {
  25045. if (ret == ASN_OBJECT_ID_E) {
  25046. /* Put ASN object tag in front and try again */
  25047. int len = SetObjectId(o->objSz, NULL) + o->objSz;
  25048. byte* buf = (byte*)XMALLOC(len, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25049. if (!buf) {
  25050. WOLFSSL_MSG("malloc error");
  25051. return -1;
  25052. }
  25053. idx = SetObjectId(o->objSz, buf);
  25054. XMEMCPY(buf + idx, o->obj, o->objSz);
  25055. idx = 0;
  25056. ret = GetObjectId(buf, &idx, &oid, o->grp, len);
  25057. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25058. if (ret < 0) {
  25059. WOLFSSL_MSG("Issue getting OID of object");
  25060. return -1;
  25061. }
  25062. }
  25063. else {
  25064. WOLFSSL_MSG("Issue getting OID of object");
  25065. return -1;
  25066. }
  25067. }
  25068. return oid2nid(oid, o->grp);
  25069. }
  25070. /* Returns the long name that corresponds with an ASN1_OBJECT nid value.
  25071. * n : NID value of ASN1_OBJECT to search */
  25072. const char* wolfSSL_OBJ_nid2ln(int n)
  25073. {
  25074. const WOLFSSL_ObjectInfo *obj_info = wolfssl_object_info;
  25075. size_t i;
  25076. WOLFSSL_ENTER("wolfSSL_OBJ_nid2ln");
  25077. for (i = 0; i < WOLFSSL_OBJECT_INFO_SZ; i++, obj_info++) {
  25078. if (obj_info->nid == n) {
  25079. return obj_info->lName;
  25080. }
  25081. }
  25082. WOLFSSL_MSG("NID not found in table");
  25083. return NULL;
  25084. }
  25085. /* Return the corresponding NID for the long name <ln>
  25086. * or NID_undef if NID can't be found.
  25087. */
  25088. int wolfSSL_OBJ_ln2nid(const char *ln)
  25089. {
  25090. const WOLFSSL_ObjectInfo *obj_info = wolfssl_object_info;
  25091. size_t i, lnlen;
  25092. WOLFSSL_ENTER("wolfSSL_OBJ_ln2nid");
  25093. if (ln && (lnlen = XSTRLEN(ln)) > 0) {
  25094. /* Accept input like "/commonName=" */
  25095. if (ln[0] == '/') {
  25096. ln++;
  25097. lnlen--;
  25098. }
  25099. if (lnlen) {
  25100. if (ln[lnlen-1] == '=') {
  25101. lnlen--;
  25102. }
  25103. for (i = 0; i < WOLFSSL_OBJECT_INFO_SZ; i++, obj_info++) {
  25104. if (lnlen == XSTRLEN(obj_info->lName) &&
  25105. XSTRNCMP(ln, obj_info->lName, lnlen) == 0) {
  25106. return obj_info->nid;
  25107. }
  25108. }
  25109. }
  25110. }
  25111. return NID_undef;
  25112. }
  25113. /* compares two objects, return 0 if equal */
  25114. int wolfSSL_OBJ_cmp(const WOLFSSL_ASN1_OBJECT* a,
  25115. const WOLFSSL_ASN1_OBJECT* b)
  25116. {
  25117. WOLFSSL_ENTER("wolfSSL_OBJ_cmp");
  25118. if (a && b && a->obj && b->obj) {
  25119. if (a->objSz == b->objSz) {
  25120. return XMEMCMP(a->obj, b->obj, a->objSz);
  25121. }
  25122. else if (a->type == EXT_KEY_USAGE_OID ||
  25123. b->type == EXT_KEY_USAGE_OID) {
  25124. /* Special case for EXT_KEY_USAGE_OID so that
  25125. * cmp will be treated as a substring search */
  25126. /* Used in libest to check for id-kp-cmcRA in
  25127. * EXT_KEY_USAGE extension */
  25128. unsigned int idx;
  25129. const byte* s; /* shorter */
  25130. unsigned int sLen;
  25131. const byte* l; /* longer */
  25132. unsigned int lLen;
  25133. if (a->objSz > b->objSz) {
  25134. s = b->obj; sLen = b->objSz;
  25135. l = a->obj; lLen = a->objSz;
  25136. }
  25137. else {
  25138. s = a->obj; sLen = a->objSz;
  25139. l = b->obj; lLen = b->objSz;
  25140. }
  25141. for (idx = 0; idx <= lLen - sLen; idx++) {
  25142. if (XMEMCMP(l + idx, s, sLen) == 0) {
  25143. /* Found substring */
  25144. return 0;
  25145. }
  25146. }
  25147. }
  25148. }
  25149. return WOLFSSL_FATAL_ERROR;
  25150. }
  25151. #endif /* OPENSSL_EXTRA, HAVE_LIGHTY, WOLFSSL_MYSQL_COMPATIBLE, HAVE_STUNNEL,
  25152. WOLFSSL_NGINX, HAVE_POCO_LIB, WOLFSSL_HAPROXY */
  25153. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL) || \
  25154. defined(HAVE_LIGHTY) || defined(WOLFSSL_MYSQL_COMPATIBLE) || \
  25155. defined(HAVE_STUNNEL) || defined(WOLFSSL_NGINX) || \
  25156. defined(HAVE_POCO_LIB) || defined(WOLFSSL_HAPROXY)
  25157. /* Gets the NID value that is related to the OID string passed in. Example
  25158. * string would be "2.5.29.14" for subject key ID.
  25159. *
  25160. * returns NID value on success and NID_undef on error
  25161. */
  25162. int wolfSSL_OBJ_txt2nid(const char* s)
  25163. {
  25164. unsigned int i;
  25165. #ifdef WOLFSSL_CERT_EXT
  25166. int ret;
  25167. unsigned int sum = 0;
  25168. unsigned int outSz = MAX_OID_SZ;
  25169. unsigned char out[MAX_OID_SZ];
  25170. #endif
  25171. WOLFSSL_ENTER("OBJ_txt2nid");
  25172. if (s == NULL) {
  25173. return NID_undef;
  25174. }
  25175. #ifdef WOLFSSL_CERT_EXT
  25176. ret = EncodePolicyOID(out, &outSz, s, NULL);
  25177. if (ret == 0) {
  25178. /* sum OID */
  25179. for (i = 0; i < outSz; i++) {
  25180. sum += out[i];
  25181. }
  25182. }
  25183. #endif /* WOLFSSL_CERT_EXT */
  25184. /* get the group that the OID's sum is in
  25185. * @TODO possible conflict with multiples */
  25186. for (i = 0; i < WOLFSSL_OBJECT_INFO_SZ; i++) {
  25187. int len;
  25188. #ifdef WOLFSSL_CERT_EXT
  25189. if (ret == 0) {
  25190. if (wolfssl_object_info[i].id == (int)sum) {
  25191. return wolfssl_object_info[i].nid;
  25192. }
  25193. }
  25194. #endif
  25195. /* try as a short name */
  25196. len = (int)XSTRLEN(s);
  25197. if ((int)XSTRLEN(wolfssl_object_info[i].sName) == len &&
  25198. XSTRNCMP(wolfssl_object_info[i].sName, s, len) == 0) {
  25199. return wolfssl_object_info[i].nid;
  25200. }
  25201. /* try as a long name */
  25202. if ((int)XSTRLEN(wolfssl_object_info[i].lName) == len &&
  25203. XSTRNCMP(wolfssl_object_info[i].lName, s, len) == 0) {
  25204. return wolfssl_object_info[i].nid;
  25205. }
  25206. }
  25207. return NID_undef;
  25208. }
  25209. #endif
  25210. #if defined(OPENSSL_EXTRA) || defined(HAVE_LIGHTY) || \
  25211. defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(HAVE_STUNNEL) || \
  25212. defined(WOLFSSL_NGINX) || defined(HAVE_POCO_LIB) || \
  25213. defined(WOLFSSL_HAPROXY)
  25214. /* Creates new ASN1_OBJECT from short name, long name, or text
  25215. * representation of oid. If no_name is 0, then short name, long name, and
  25216. * numerical value of oid are interpreted. If no_name is 1, then only the
  25217. * numerical value of the oid is interpreted.
  25218. *
  25219. * Returns pointer to ASN1_OBJECT on success, or NULL on error.
  25220. */
  25221. #if defined(WOLFSSL_CERT_EXT) && defined(WOLFSSL_CERT_GEN)
  25222. WOLFSSL_ASN1_OBJECT* wolfSSL_OBJ_txt2obj(const char* s, int no_name)
  25223. {
  25224. int i, ret;
  25225. int nid = NID_undef;
  25226. unsigned int outSz = MAX_OID_SZ;
  25227. unsigned char out[MAX_OID_SZ];
  25228. WOLFSSL_ASN1_OBJECT* obj;
  25229. WOLFSSL_ENTER("wolfSSL_OBJ_txt2obj");
  25230. if (s == NULL)
  25231. return NULL;
  25232. /* If s is numerical value, try to sum oid */
  25233. ret = EncodePolicyOID(out, &outSz, s, NULL);
  25234. if (ret == 0 && outSz > 0) {
  25235. /* If numerical encode succeeded then just
  25236. * create object from that because sums are
  25237. * not unique and can cause confusion. */
  25238. obj = wolfSSL_ASN1_OBJECT_new();
  25239. if (obj == NULL) {
  25240. WOLFSSL_MSG("Issue creating WOLFSSL_ASN1_OBJECT struct");
  25241. return NULL;
  25242. }
  25243. obj->dynamic |= WOLFSSL_ASN1_DYNAMIC;
  25244. obj->obj = (byte*)XMALLOC(1 + MAX_LENGTH_SZ + outSz, NULL,
  25245. DYNAMIC_TYPE_ASN1);
  25246. if (obj->obj == NULL) {
  25247. wolfSSL_ASN1_OBJECT_free(obj);
  25248. return NULL;
  25249. }
  25250. obj->dynamic |= WOLFSSL_ASN1_DYNAMIC_DATA ;
  25251. i = SetObjectId(outSz, (byte*)obj->obj);
  25252. XMEMCPY((byte*)obj->obj + i, out, outSz);
  25253. obj->objSz = i + outSz;
  25254. return obj;
  25255. }
  25256. /* TODO: update short names in wolfssl_object_info and check OID sums
  25257. are correct */
  25258. for (i = 0; i < (int)WOLFSSL_OBJECT_INFO_SZ; i++) {
  25259. /* Short name, long name, and numerical value are interpreted */
  25260. if (no_name == 0 &&
  25261. ((XSTRCMP(s, wolfssl_object_info[i].sName) == 0) ||
  25262. (XSTRCMP(s, wolfssl_object_info[i].lName) == 0)))
  25263. {
  25264. nid = wolfssl_object_info[i].nid;
  25265. }
  25266. }
  25267. if (nid != NID_undef)
  25268. return wolfSSL_OBJ_nid2obj(nid);
  25269. return NULL;
  25270. }
  25271. #endif
  25272. /* compatibility function. Its intended use is to remove OID's from an
  25273. * internal table that have been added with OBJ_create. wolfSSL manages its
  25274. * own internal OID values and does not currently support OBJ_create. */
  25275. void wolfSSL_OBJ_cleanup(void)
  25276. {
  25277. WOLFSSL_ENTER("wolfSSL_OBJ_cleanup()");
  25278. }
  25279. #ifndef NO_WOLFSSL_STUB
  25280. int wolfSSL_OBJ_create(const char *oid, const char *sn, const char *ln)
  25281. {
  25282. (void)oid;
  25283. (void)sn;
  25284. (void)ln;
  25285. WOLFSSL_STUB("wolfSSL_OBJ_create");
  25286. return WOLFSSL_FAILURE;
  25287. }
  25288. #endif
  25289. void wolfSSL_set_verify_depth(WOLFSSL *ssl, int depth)
  25290. {
  25291. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  25292. WOLFSSL_ENTER("wolfSSL_set_verify_depth");
  25293. ssl->options.verifyDepth = (byte)depth;
  25294. #endif
  25295. }
  25296. #endif /* OPENSSL_ALL || HAVE_LIGHTY || WOLFSSL_MYSQL_COMPATIBLE ||
  25297. HAVE_STUNNEL || WOLFSSL_NGINX || HAVE_POCO_LIB || WOLFSSL_HAPROXY */
  25298. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL) || \
  25299. defined(HAVE_LIGHTY) || defined(WOLFSSL_MYSQL_COMPATIBLE) || \
  25300. defined(HAVE_STUNNEL) || defined(WOLFSSL_NGINX) || \
  25301. defined(HAVE_POCO_LIB) || defined(WOLFSSL_HAPROXY)
  25302. WOLFSSL_ASN1_OBJECT * wolfSSL_X509_NAME_ENTRY_get_object(WOLFSSL_X509_NAME_ENTRY *ne)
  25303. {
  25304. WOLFSSL_ASN1_OBJECT* obj = NULL;
  25305. #ifdef WOLFSSL_DEBUG_OPENSSL
  25306. WOLFSSL_ENTER("wolfSSL_X509_NAME_ENTRY_get_object");
  25307. #endif
  25308. if (ne == NULL) return NULL;
  25309. obj = wolfSSL_OBJ_nid2obj_ex(ne->nid, ne->object);
  25310. if (obj != NULL) {
  25311. obj->nid = ne->nid;
  25312. return obj;
  25313. }
  25314. return NULL;
  25315. }
  25316. #endif /* OPENSSL_ALL || HAVE_LIGHTY || WOLFSSL_MYSQL_COMPATIBLE ||
  25317. HAVE_STUNNEL || WOLFSSL_NGINX || HAVE_POCO_LIB || WOLFSSL_HAPROXY */
  25318. #ifdef OPENSSL_EXTRA
  25319. /* wolfSSL uses negative values for error states. This function returns an
  25320. * unsigned type so the value returned is the absolute value of the error.
  25321. */
  25322. unsigned long wolfSSL_ERR_peek_last_error_line(const char **file, int *line)
  25323. {
  25324. WOLFSSL_ENTER("wolfSSL_ERR_peek_last_error");
  25325. (void)line;
  25326. (void)file;
  25327. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  25328. {
  25329. int ret;
  25330. if ((ret = wc_PeekErrorNode(-1, file, NULL, line)) < 0) {
  25331. WOLFSSL_MSG("Issue peeking at error node in queue");
  25332. return 0;
  25333. }
  25334. printf("ret from peek error node = %d\n", ret);
  25335. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX)
  25336. if (ret == -ASN_NO_PEM_HEADER)
  25337. return (ERR_LIB_PEM << 24) | PEM_R_NO_START_LINE;
  25338. #endif
  25339. #if defined(OPENSSL_ALL) && defined(WOLFSSL_PYTHON)
  25340. if (ret == ASN1_R_HEADER_TOO_LONG) {
  25341. return (ERR_LIB_ASN1 << 24) | ASN1_R_HEADER_TOO_LONG;
  25342. }
  25343. #endif
  25344. return (unsigned long)ret;
  25345. }
  25346. #else
  25347. return (unsigned long)(0 - NOT_COMPILED_IN);
  25348. #endif
  25349. }
  25350. #ifndef NO_CERTS
  25351. int wolfSSL_CTX_use_PrivateKey(WOLFSSL_CTX *ctx, WOLFSSL_EVP_PKEY *pkey)
  25352. {
  25353. WOLFSSL_ENTER("wolfSSL_CTX_use_PrivateKey");
  25354. if (ctx == NULL || pkey == NULL) {
  25355. return WOLFSSL_FAILURE;
  25356. }
  25357. switch (pkey->type) {
  25358. #if defined(WOLFSSL_KEY_GEN) && !defined(HAVE_USER_RSA) && !defined(NO_RSA)
  25359. case EVP_PKEY_RSA:
  25360. WOLFSSL_MSG("populating RSA key");
  25361. if (PopulateRSAEvpPkeyDer(pkey) != WOLFSSL_SUCCESS)
  25362. return WOLFSSL_FAILURE;
  25363. break;
  25364. #endif /* (WOLFSSL_KEY_GEN || OPENSSL_EXTRA) && !NO_RSA */
  25365. #if !defined(HAVE_SELFTEST) && (defined(WOLFSSL_KEY_GEN) || \
  25366. defined(WOLFSSL_CERT_GEN)) && !defined(NO_DSA)
  25367. case EVP_PKEY_DSA:
  25368. break;
  25369. #endif /* !HAVE_SELFTEST && (WOLFSSL_KEY_GEN || WOLFSSL_CERT_GEN) && !NO_DSA */
  25370. #ifdef HAVE_ECC
  25371. case EVP_PKEY_EC:
  25372. WOLFSSL_MSG("populating ECC key");
  25373. if (ECC_populate_EVP_PKEY(pkey, pkey->ecc)
  25374. != WOLFSSL_SUCCESS)
  25375. return WOLFSSL_FAILURE;
  25376. break;
  25377. #endif
  25378. default:
  25379. return WOLFSSL_FAILURE;
  25380. }
  25381. if (pkey->pkey.ptr != NULL) {
  25382. /* ptr for WOLFSSL_EVP_PKEY struct is expected to be DER format */
  25383. return wolfSSL_CTX_use_PrivateKey_buffer(ctx,
  25384. (const unsigned char*)pkey->pkey.ptr,
  25385. pkey->pkey_sz, SSL_FILETYPE_ASN1);
  25386. }
  25387. WOLFSSL_MSG("wolfSSL private key not set");
  25388. return BAD_FUNC_ARG;
  25389. }
  25390. #endif /* !NO_CERTS */
  25391. #endif /* OPENSSL_EXTRA */
  25392. #if defined(HAVE_EX_DATA) && \
  25393. (defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || \
  25394. defined(WOLFSSL_HAPROXY) || defined(OPENSSL_EXTRA) || \
  25395. defined(HAVE_LIGHTY)) || defined(HAVE_EX_DATA) || \
  25396. defined(WOLFSSL_WPAS_SMALL)
  25397. /**
  25398. * get_ex_new_index is a helper function for the following
  25399. * xx_get_ex_new_index functions:
  25400. * - wolfSSL_CRYPTO_get_ex_new_index
  25401. * - wolfSSL_CTX_get_ex_new_index
  25402. * - wolfSSL_get_ex_new_index
  25403. * Issues a unique index number for the specified class-index.
  25404. * Returns an index number greater or equal to zero on success,
  25405. * -1 on failure.
  25406. */
  25407. int wolfssl_get_ex_new_index(int class_index)
  25408. {
  25409. /* index counter for each class index*/
  25410. static int ctx_idx = 0;
  25411. static int ssl_idx = 0;
  25412. static int ssl_session_idx = 0;
  25413. static int x509_idx = 0;
  25414. int idx = -1;
  25415. switch(class_index) {
  25416. case WOLF_CRYPTO_EX_INDEX_SSL:
  25417. idx = ssl_idx++;
  25418. break;
  25419. case WOLF_CRYPTO_EX_INDEX_SSL_CTX:
  25420. idx = ctx_idx++;
  25421. break;
  25422. case WOLF_CRYPTO_EX_INDEX_X509:
  25423. idx = x509_idx++;
  25424. break;
  25425. case WOLF_CRYPTO_EX_INDEX_SSL_SESSION:
  25426. idx = ssl_session_idx++;
  25427. break;
  25428. /* following class indexes are not supoprted */
  25429. case WOLF_CRYPTO_EX_INDEX_X509_STORE:
  25430. case WOLF_CRYPTO_EX_INDEX_X509_STORE_CTX:
  25431. case WOLF_CRYPTO_EX_INDEX_DH:
  25432. case WOLF_CRYPTO_EX_INDEX_DSA:
  25433. case WOLF_CRYPTO_EX_INDEX_EC_KEY:
  25434. case WOLF_CRYPTO_EX_INDEX_RSA:
  25435. case WOLF_CRYPTO_EX_INDEX_ENGINE:
  25436. case WOLF_CRYPTO_EX_INDEX_UI:
  25437. case WOLF_CRYPTO_EX_INDEX_BIO:
  25438. case WOLF_CRYPTO_EX_INDEX_APP:
  25439. case WOLF_CRYPTO_EX_INDEX_UI_METHOD:
  25440. case WOLF_CRYPTO_EX_INDEX_DRBG:
  25441. default:
  25442. break;
  25443. }
  25444. return idx;
  25445. }
  25446. #endif /* HAVE_EX_DATA || WOLFSSL_WPAS_SMALL */
  25447. #if defined(HAVE_EX_DATA) || defined(WOLFSSL_WPAS_SMALL)
  25448. void* wolfSSL_CTX_get_ex_data(const WOLFSSL_CTX* ctx, int idx)
  25449. {
  25450. WOLFSSL_ENTER("wolfSSL_CTX_get_ex_data");
  25451. #ifdef HAVE_EX_DATA
  25452. if(ctx != NULL) {
  25453. return wolfSSL_CRYPTO_get_ex_data(&ctx->ex_data, idx);
  25454. }
  25455. #else
  25456. (void)ctx;
  25457. (void)idx;
  25458. #endif
  25459. return NULL;
  25460. }
  25461. int wolfSSL_CTX_get_ex_new_index(long idx, void* arg, void* a, void* b,
  25462. void* c)
  25463. {
  25464. WOLFSSL_ENTER("wolfSSL_CTX_get_ex_new_index");
  25465. (void)idx;
  25466. (void)arg;
  25467. (void)a;
  25468. (void)b;
  25469. (void)c;
  25470. return wolfssl_get_ex_new_index(WOLF_CRYPTO_EX_INDEX_SSL_CTX);
  25471. }
  25472. /* Return the index that can be used for the WOLFSSL structure to store
  25473. * application data.
  25474. *
  25475. */
  25476. int wolfSSL_get_ex_new_index(long argValue, void* arg,
  25477. WOLFSSL_CRYPTO_EX_new* cb1, WOLFSSL_CRYPTO_EX_dup* cb2,
  25478. WOLFSSL_CRYPTO_EX_free* cb3)
  25479. {
  25480. WOLFSSL_ENTER("wolfSSL_get_ex_new_index");
  25481. (void)argValue;
  25482. (void)arg;
  25483. (void)cb1;
  25484. (void)cb2;
  25485. (void)cb3;
  25486. return wolfssl_get_ex_new_index(WOLF_CRYPTO_EX_INDEX_SSL);
  25487. }
  25488. int wolfSSL_CTX_set_ex_data(WOLFSSL_CTX* ctx, int idx, void* data)
  25489. {
  25490. WOLFSSL_ENTER("wolfSSL_CTX_set_ex_data");
  25491. #ifdef HAVE_EX_DATA
  25492. if (ctx != NULL)
  25493. {
  25494. return wolfSSL_CRYPTO_set_ex_data(&ctx->ex_data, idx, data);
  25495. }
  25496. #else
  25497. (void)ctx;
  25498. (void)idx;
  25499. (void)data;
  25500. #endif
  25501. return WOLFSSL_FAILURE;
  25502. }
  25503. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  25504. int wolfSSL_CTX_set_ex_data_with_cleanup(
  25505. WOLFSSL_CTX* ctx,
  25506. int idx,
  25507. void* data,
  25508. wolfSSL_ex_data_cleanup_routine_t cleanup_routine)
  25509. {
  25510. WOLFSSL_ENTER("wolfSSL_CTX_set_ex_data_with_cleanup");
  25511. if (ctx != NULL)
  25512. {
  25513. return wolfSSL_CRYPTO_set_ex_data_with_cleanup(&ctx->ex_data, idx, data,
  25514. cleanup_routine);
  25515. }
  25516. return WOLFSSL_FAILURE;
  25517. }
  25518. #endif /* HAVE_EX_DATA_CLEANUP_HOOKS */
  25519. #endif /* defined(HAVE_EX_DATA) || defined(WOLFSSL_WPAS_SMALL) */
  25520. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  25521. /* Returns char* to app data stored in ex[0].
  25522. *
  25523. * ssl WOLFSSL structure to get app data from
  25524. */
  25525. void* wolfSSL_get_app_data(const WOLFSSL *ssl)
  25526. {
  25527. /* checkout exdata stuff... */
  25528. WOLFSSL_ENTER("wolfSSL_get_app_data");
  25529. return wolfSSL_get_ex_data(ssl, 0);
  25530. }
  25531. /* Set ex array 0 to have app data
  25532. *
  25533. * ssl WOLFSSL struct to set app data in
  25534. * arg data to be stored
  25535. *
  25536. * Returns WOLFSSL_SUCCESS on success and SSL_FAILURE on failure
  25537. */
  25538. int wolfSSL_set_app_data(WOLFSSL *ssl, void* arg) {
  25539. WOLFSSL_ENTER("wolfSSL_set_app_data");
  25540. return wolfSSL_set_ex_data(ssl, 0, arg);
  25541. }
  25542. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  25543. #if defined(HAVE_EX_DATA) || defined(OPENSSL_EXTRA) || \
  25544. defined(OPENSSL_EXTRA_X509_SMALL) || defined(WOLFSSL_WPAS_SMALL)
  25545. int wolfSSL_set_ex_data(WOLFSSL* ssl, int idx, void* data)
  25546. {
  25547. WOLFSSL_ENTER("wolfSSL_set_ex_data");
  25548. #ifdef HAVE_EX_DATA
  25549. if (ssl != NULL)
  25550. {
  25551. return wolfSSL_CRYPTO_set_ex_data(&ssl->ex_data, idx, data);
  25552. }
  25553. #else
  25554. WOLFSSL_MSG("HAVE_EX_DATA macro is not defined");
  25555. (void)ssl;
  25556. (void)idx;
  25557. (void)data;
  25558. #endif
  25559. return WOLFSSL_FAILURE;
  25560. }
  25561. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  25562. int wolfSSL_set_ex_data_with_cleanup(
  25563. WOLFSSL* ssl,
  25564. int idx,
  25565. void* data,
  25566. wolfSSL_ex_data_cleanup_routine_t cleanup_routine)
  25567. {
  25568. WOLFSSL_ENTER("wolfSSL_set_ex_data_with_cleanup");
  25569. if (ssl != NULL)
  25570. {
  25571. return wolfSSL_CRYPTO_set_ex_data_with_cleanup(&ssl->ex_data, idx, data,
  25572. cleanup_routine);
  25573. }
  25574. return WOLFSSL_FAILURE;
  25575. }
  25576. #endif /* HAVE_EX_DATA_CLEANUP_HOOKS */
  25577. void* wolfSSL_get_ex_data(const WOLFSSL* ssl, int idx)
  25578. {
  25579. WOLFSSL_ENTER("wolfSSL_get_ex_data");
  25580. #ifdef HAVE_EX_DATA
  25581. if (ssl != NULL) {
  25582. return wolfSSL_CRYPTO_get_ex_data(&ssl->ex_data, idx);
  25583. }
  25584. #else
  25585. WOLFSSL_MSG("HAVE_EX_DATA macro is not defined");
  25586. (void)ssl;
  25587. (void)idx;
  25588. #endif
  25589. return 0;
  25590. }
  25591. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL || WOLFSSL_WPAS_SMALL */
  25592. #if defined(HAVE_LIGHTY) || defined(HAVE_STUNNEL) \
  25593. || defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(OPENSSL_EXTRA)
  25594. #if defined(OPENSSL_EXTRA) && !defined(NO_DH)
  25595. /* Initialize ctx->dh with dh's params. Return WOLFSSL_SUCCESS on ok */
  25596. long wolfSSL_CTX_set_tmp_dh(WOLFSSL_CTX* ctx, WOLFSSL_DH* dh)
  25597. {
  25598. int pSz, gSz;
  25599. byte *p, *g;
  25600. int ret=0;
  25601. WOLFSSL_ENTER("wolfSSL_CTX_set_tmp_dh");
  25602. if(!ctx || !dh)
  25603. return BAD_FUNC_ARG;
  25604. /* Get needed size for p and g */
  25605. pSz = wolfSSL_BN_bn2bin(dh->p, NULL);
  25606. gSz = wolfSSL_BN_bn2bin(dh->g, NULL);
  25607. if(pSz <= 0 || gSz <= 0)
  25608. return WOLFSSL_FATAL_ERROR;
  25609. p = (byte*)XMALLOC(pSz, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  25610. if(!p)
  25611. return MEMORY_E;
  25612. g = (byte*)XMALLOC(gSz, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  25613. if(!g) {
  25614. XFREE(p, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  25615. return MEMORY_E;
  25616. }
  25617. pSz = wolfSSL_BN_bn2bin(dh->p, p);
  25618. gSz = wolfSSL_BN_bn2bin(dh->g, g);
  25619. if(pSz >= 0 && gSz >= 0) /* Conversion successful */
  25620. ret = wolfSSL_CTX_SetTmpDH(ctx, p, pSz, g, gSz);
  25621. XFREE(p, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  25622. XFREE(g, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  25623. return pSz > 0 && gSz > 0 ? ret : WOLFSSL_FATAL_ERROR;
  25624. }
  25625. #endif /* OPENSSL_EXTRA && !NO_DH */
  25626. /* returns the enum value associated with handshake state
  25627. *
  25628. * ssl the WOLFSSL structure to get state of
  25629. */
  25630. int wolfSSL_get_state(const WOLFSSL* ssl)
  25631. {
  25632. WOLFSSL_ENTER("wolfSSL_get_state");
  25633. if (ssl == NULL) {
  25634. WOLFSSL_MSG("Null argument passed in");
  25635. return SSL_FAILURE;
  25636. }
  25637. return ssl->options.handShakeState;
  25638. }
  25639. #endif /* HAVE_LIGHTY || HAVE_STUNNEL || WOLFSSL_MYSQL_COMPATIBLE */
  25640. #ifdef OPENSSL_EXTRA
  25641. void wolfSSL_certs_clear(WOLFSSL* ssl)
  25642. {
  25643. WOLFSSL_ENTER("wolfSSL_certs_clear()");
  25644. if (ssl == NULL)
  25645. return;
  25646. /* ctx still owns certificate, certChain, key, dh, and cm */
  25647. if (ssl->buffers.weOwnCert)
  25648. FreeDer(&ssl->buffers.certificate);
  25649. ssl->buffers.certificate = NULL;
  25650. if (ssl->buffers.weOwnCertChain)
  25651. FreeDer(&ssl->buffers.certChain);
  25652. ssl->buffers.certChain = NULL;
  25653. #ifdef WOLFSSL_TLS13
  25654. ssl->buffers.certChainCnt = 0;
  25655. #endif
  25656. if (ssl->buffers.weOwnKey)
  25657. FreeDer(&ssl->buffers.key);
  25658. ssl->buffers.key = NULL;
  25659. ssl->buffers.keyType = 0;
  25660. ssl->buffers.keyId = 0;
  25661. ssl->buffers.keyLabel = 0;
  25662. ssl->buffers.keySz = 0;
  25663. ssl->buffers.keyDevId = 0;
  25664. }
  25665. #endif
  25666. #if defined(OPENSSL_ALL) || defined(WOLFSSL_ASIO) || defined(WOLFSSL_HAPROXY) \
  25667. || defined(WOLFSSL_NGINX) || defined(WOLFSSL_QT)
  25668. long wolfSSL_ctrl(WOLFSSL* ssl, int cmd, long opt, void* pt)
  25669. {
  25670. WOLFSSL_ENTER("wolfSSL_ctrl");
  25671. if (ssl == NULL)
  25672. return BAD_FUNC_ARG;
  25673. switch (cmd) {
  25674. #if defined(WOLFSSL_NGINX) || defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  25675. #ifdef HAVE_SNI
  25676. case SSL_CTRL_SET_TLSEXT_HOSTNAME:
  25677. WOLFSSL_MSG("Entering Case: SSL_CTRL_SET_TLSEXT_HOSTNAME.");
  25678. if (pt == NULL) {
  25679. WOLFSSL_MSG("Passed in NULL Host Name.");
  25680. break;
  25681. }
  25682. return wolfSSL_set_tlsext_host_name(ssl, (const char*) pt);
  25683. #endif /* HAVE_SNI */
  25684. #endif /* WOLFSSL_NGINX || WOLFSSL_QT || OPENSSL_ALL */
  25685. default:
  25686. WOLFSSL_MSG("Case not implemented.");
  25687. }
  25688. (void)opt;
  25689. (void)pt;
  25690. return WOLFSSL_FAILURE;
  25691. }
  25692. long wolfSSL_CTX_ctrl(WOLFSSL_CTX* ctx, int cmd, long opt, void* pt)
  25693. {
  25694. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)
  25695. long ctrl_opt;
  25696. #endif
  25697. long ret = WOLFSSL_SUCCESS;
  25698. WOLFSSL_ENTER("wolfSSL_CTX_ctrl");
  25699. if (ctx == NULL)
  25700. return WOLFSSL_FAILURE;
  25701. switch (cmd) {
  25702. case SSL_CTRL_CHAIN:
  25703. #ifdef SESSION_CERTS
  25704. {
  25705. /*
  25706. * We don't care about opt here because a copy of the certificate is
  25707. * stored anyway so increasing the reference counter is not necessary.
  25708. * Just check to make sure that it is set to one of the correct values.
  25709. */
  25710. WOLF_STACK_OF(WOLFSSL_X509)* sk = (WOLF_STACK_OF(WOLFSSL_X509)*) pt;
  25711. WOLFSSL_X509* x509;
  25712. int i;
  25713. if (opt != 0 && opt != 1) {
  25714. ret = WOLFSSL_FAILURE;
  25715. break;
  25716. }
  25717. /* Clear certificate chain */
  25718. FreeDer(&ctx->certChain);
  25719. if (sk) {
  25720. for (i = 0; i < wolfSSL_sk_X509_num(sk); i++) {
  25721. x509 = wolfSSL_sk_X509_value(sk, i);
  25722. /* Prevent wolfSSL_CTX_add_extra_chain_cert from freeing cert */
  25723. if (wolfSSL_X509_up_ref(x509) != 1) {
  25724. WOLFSSL_MSG("Error increasing reference count");
  25725. continue;
  25726. }
  25727. if (wolfSSL_CTX_add_extra_chain_cert(ctx, x509) !=
  25728. WOLFSSL_SUCCESS) {
  25729. WOLFSSL_MSG("Error adding certificate to context");
  25730. /* Decrease reference count on failure */
  25731. wolfSSL_X509_free(x509);
  25732. }
  25733. }
  25734. }
  25735. /* Free previous chain */
  25736. wolfSSL_sk_X509_pop_free(ctx->x509Chain, NULL);
  25737. ctx->x509Chain = sk;
  25738. if (sk && opt == 1) {
  25739. /* up all refs when opt == 1 */
  25740. for (i = 0; i < wolfSSL_sk_X509_num(sk); i++) {
  25741. x509 = wolfSSL_sk_X509_value(sk, i);
  25742. if (wolfSSL_X509_up_ref(x509) != 1) {
  25743. WOLFSSL_MSG("Error increasing reference count");
  25744. continue;
  25745. }
  25746. }
  25747. }
  25748. }
  25749. #else
  25750. WOLFSSL_MSG("Session certificates not compiled in");
  25751. ret = WOLFSSL_FAILURE;
  25752. #endif
  25753. break;
  25754. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)
  25755. case SSL_CTRL_OPTIONS:
  25756. WOLFSSL_MSG("Entering Case: SSL_CTRL_OPTIONS.");
  25757. ctrl_opt = wolfSSL_CTX_set_options(ctx, opt);
  25758. #ifdef WOLFSSL_QT
  25759. /* Set whether to use client or server cipher preference */
  25760. if ((ctrl_opt & WOLFSSL_OP_CIPHER_SERVER_PREFERENCE)
  25761. == WOLFSSL_OP_CIPHER_SERVER_PREFERENCE) {
  25762. WOLFSSL_MSG("Using Server's Cipher Preference.");
  25763. ctx->useClientOrder = FALSE;
  25764. } else {
  25765. WOLFSSL_MSG("Using Client's Cipher Preference.");
  25766. ctx->useClientOrder = TRUE;
  25767. }
  25768. #endif /* WOLFSSL_QT */
  25769. return ctrl_opt;
  25770. #endif /* OPENSSL_EXTRA || HAVE_WEBSERVER */
  25771. case SSL_CTRL_EXTRA_CHAIN_CERT:
  25772. WOLFSSL_MSG("Entering Case: SSL_CTRL_EXTRA_CHAIN_CERT.");
  25773. if (pt == NULL) {
  25774. WOLFSSL_MSG("Passed in x509 pointer NULL.");
  25775. ret = WOLFSSL_FAILURE;
  25776. break;
  25777. }
  25778. return wolfSSL_CTX_add_extra_chain_cert(ctx, (WOLFSSL_X509*)pt);
  25779. #ifndef NO_DH
  25780. case SSL_CTRL_SET_TMP_DH:
  25781. WOLFSSL_MSG("Entering Case: SSL_CTRL_SET_TMP_DH.");
  25782. if (pt == NULL) {
  25783. WOLFSSL_MSG("Passed in DH pointer NULL.");
  25784. ret = WOLFSSL_FAILURE;
  25785. break;
  25786. }
  25787. return wolfSSL_CTX_set_tmp_dh(ctx, (WOLFSSL_DH*)pt);
  25788. #endif
  25789. #ifdef HAVE_ECC
  25790. case SSL_CTRL_SET_TMP_ECDH:
  25791. WOLFSSL_MSG("Entering Case: SSL_CTRL_SET_TMP_ECDH.");
  25792. if (pt == NULL) {
  25793. WOLFSSL_MSG("Passed in ECDH pointer NULL.");
  25794. ret = WOLFSSL_FAILURE;
  25795. break;
  25796. }
  25797. return wolfSSL_SSL_CTX_set_tmp_ecdh(ctx, (WOLFSSL_EC_KEY*)pt);
  25798. #endif
  25799. case SSL_CTRL_MODE:
  25800. wolfSSL_CTX_set_mode(ctx,opt);
  25801. break;
  25802. case SSL_CTRL_SET_MIN_PROTO_VERSION:
  25803. WOLFSSL_MSG("set min proto version");
  25804. return wolfSSL_CTX_set_min_proto_version(ctx, (int)opt);
  25805. case SSL_CTRL_SET_MAX_PROTO_VERSION:
  25806. WOLFSSL_MSG("set max proto version");
  25807. return wolfSSL_CTX_set_max_proto_version(ctx, (int)opt);
  25808. case SSL_CTRL_GET_MIN_PROTO_VERSION:
  25809. WOLFSSL_MSG("get min proto version");
  25810. return wolfSSL_CTX_get_min_proto_version(ctx);
  25811. case SSL_CTRL_GET_MAX_PROTO_VERSION:
  25812. WOLFSSL_MSG("get max proto version");
  25813. return wolfSSL_CTX_get_max_proto_version(ctx);
  25814. default:
  25815. WOLFSSL_MSG("CTX_ctrl cmd not implemented");
  25816. ret = WOLFSSL_FAILURE;
  25817. break;
  25818. }
  25819. (void)ctx;
  25820. (void)cmd;
  25821. (void)opt;
  25822. (void)pt;
  25823. WOLFSSL_LEAVE("wolfSSL_CTX_ctrl", (int)ret);
  25824. return ret;
  25825. }
  25826. #ifndef WOLFSSL_NO_STUB
  25827. long wolfSSL_CTX_callback_ctrl(WOLFSSL_CTX* ctx, int cmd, void (*fp)(void))
  25828. {
  25829. (void) ctx;
  25830. (void) cmd;
  25831. (void) fp;
  25832. WOLFSSL_STUB("wolfSSL_CTX_callback_ctrl");
  25833. return WOLFSSL_FAILURE;
  25834. }
  25835. #endif /* WOLFSSL_NO_STUB */
  25836. #ifndef NO_WOLFSSL_STUB
  25837. long wolfSSL_CTX_clear_extra_chain_certs(WOLFSSL_CTX* ctx)
  25838. {
  25839. return wolfSSL_CTX_ctrl(ctx, SSL_CTRL_CLEAR_EXTRA_CHAIN_CERTS, 0L, NULL);
  25840. }
  25841. #endif
  25842. /* Returns the verifyCallback from the ssl structure if successful.
  25843. Returns NULL otherwise. */
  25844. VerifyCallback wolfSSL_get_verify_callback(WOLFSSL* ssl)
  25845. {
  25846. WOLFSSL_ENTER("wolfSSL_get_verify_callback()");
  25847. if (ssl) {
  25848. return ssl->verifyCallback;
  25849. }
  25850. return NULL;
  25851. }
  25852. /* Adds the ASN1 certificate to the user ctx.
  25853. Returns WOLFSSL_SUCCESS if no error, returns WOLFSSL_FAILURE otherwise.*/
  25854. int wolfSSL_CTX_use_certificate_ASN1(WOLFSSL_CTX *ctx, int derSz,
  25855. const unsigned char *der)
  25856. {
  25857. WOLFSSL_ENTER("wolfSSL_CTX_use_certificate_ASN1()");
  25858. if (der != NULL && ctx != NULL) {
  25859. if (wolfSSL_CTX_use_certificate_buffer(ctx, der, derSz,
  25860. WOLFSSL_FILETYPE_ASN1) == WOLFSSL_SUCCESS) {
  25861. return WOLFSSL_SUCCESS;
  25862. }
  25863. }
  25864. return WOLFSSL_FAILURE;
  25865. }
  25866. #if !defined(HAVE_FAST_RSA) && defined(WOLFSSL_KEY_GEN) && \
  25867. !defined(NO_RSA) && !defined(HAVE_USER_RSA)
  25868. /* Adds the rsa private key to the user ctx.
  25869. Returns WOLFSSL_SUCCESS if no error, returns WOLFSSL_FAILURE otherwise.*/
  25870. int wolfSSL_CTX_use_RSAPrivateKey(WOLFSSL_CTX* ctx, WOLFSSL_RSA* rsa)
  25871. {
  25872. int ret;
  25873. int derSize;
  25874. unsigned char *maxDerBuf;
  25875. unsigned char* key = NULL;
  25876. WOLFSSL_ENTER("wolfSSL_CTX_use_RSAPrivateKey()");
  25877. if (ctx == NULL || rsa == NULL) {
  25878. WOLFSSL_MSG("one or more inputs were NULL");
  25879. return BAD_FUNC_ARG;
  25880. }
  25881. maxDerBuf = (unsigned char*)XMALLOC(4096, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25882. if (maxDerBuf == NULL) {
  25883. WOLFSSL_MSG("Malloc failure");
  25884. return MEMORY_E;
  25885. }
  25886. key = maxDerBuf;
  25887. /* convert RSA struct to der encoded buffer and get the size */
  25888. if ((derSize = wolfSSL_i2d_RSAPrivateKey(rsa, &key)) <= 0) {
  25889. WOLFSSL_MSG("wolfSSL_i2d_RSAPrivateKey() failure");
  25890. XFREE(maxDerBuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25891. return WOLFSSL_FAILURE;
  25892. }
  25893. ret = wolfSSL_CTX_use_PrivateKey_buffer(ctx, (const unsigned char*)maxDerBuf,
  25894. derSize, SSL_FILETYPE_ASN1);
  25895. if (ret != WOLFSSL_SUCCESS) {
  25896. WOLFSSL_MSG("wolfSSL_CTX_USE_PrivateKey_buffer() failure");
  25897. XFREE(maxDerBuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25898. return WOLFSSL_FAILURE;
  25899. }
  25900. XFREE(maxDerBuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  25901. return ret;
  25902. }
  25903. #endif /* NO_RSA && !HAVE_FAST_RSA */
  25904. #ifndef NO_BIO
  25905. /* Converts EVP_PKEY data from a bio buffer to a WOLFSSL_EVP_PKEY structure.
  25906. Returns pointer to private EVP_PKEY struct upon success, NULL if there
  25907. is a failure.*/
  25908. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PrivateKey_bio(WOLFSSL_BIO* bio,
  25909. WOLFSSL_EVP_PKEY** out)
  25910. {
  25911. unsigned char* mem = NULL;
  25912. int memSz = 0;
  25913. WOLFSSL_EVP_PKEY* key = NULL;
  25914. int i = 0, j = 0;
  25915. unsigned char* extraBioMem = NULL;
  25916. int extraBioMemSz = 0;
  25917. int derLength = 0;
  25918. WOLFSSL_ENTER("wolfSSL_d2i_PrivateKey_bio()");
  25919. if (bio == NULL) {
  25920. return NULL;
  25921. }
  25922. (void)out;
  25923. memSz = wolfSSL_BIO_get_len(bio);
  25924. if (memSz <= 0) {
  25925. WOLFSSL_MSG("wolfSSL_BIO_get_len() failure");
  25926. return NULL;
  25927. }
  25928. mem = (unsigned char*)XMALLOC(memSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  25929. if (mem == NULL) {
  25930. WOLFSSL_MSG("Malloc failure");
  25931. return NULL;
  25932. }
  25933. if (wolfSSL_BIO_read(bio, (unsigned char*)mem, memSz) == memSz) {
  25934. /* Determines key type and returns the new private EVP_PKEY object */
  25935. if ((key = wolfSSL_d2i_PrivateKey_EVP(NULL, &mem, (long)memSz)) == NULL) {
  25936. WOLFSSL_MSG("wolfSSL_d2i_PrivateKey_EVP() failure");
  25937. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  25938. return NULL;
  25939. }
  25940. /* Write extra data back into bio object if necessary. */
  25941. derLength = key->pkey_sz;
  25942. extraBioMemSz = (memSz - derLength);
  25943. if (extraBioMemSz > 0) {
  25944. extraBioMem = (unsigned char *)XMALLOC(extraBioMemSz, NULL,
  25945. DYNAMIC_TYPE_TMP_BUFFER);
  25946. if (extraBioMem == NULL) {
  25947. WOLFSSL_MSG("Malloc failure");
  25948. XFREE((unsigned char*)extraBioMem, bio->heap,
  25949. DYNAMIC_TYPE_TMP_BUFFER);
  25950. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  25951. return NULL;
  25952. }
  25953. for (i = derLength; i < memSz; i++) {
  25954. *(extraBioMem + j) = *(mem + i);
  25955. j++;
  25956. }
  25957. wolfSSL_BIO_write(bio, extraBioMem, extraBioMemSz);
  25958. if (wolfSSL_BIO_get_len(bio) <= 0) {
  25959. WOLFSSL_MSG("Failed to write memory to bio");
  25960. XFREE((unsigned char*)extraBioMem, bio->heap,
  25961. DYNAMIC_TYPE_TMP_BUFFER);
  25962. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  25963. return NULL;
  25964. }
  25965. XFREE((unsigned char*)extraBioMem, bio->heap,
  25966. DYNAMIC_TYPE_TMP_BUFFER);
  25967. }
  25968. if (out != NULL) {
  25969. *out = key;
  25970. }
  25971. }
  25972. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  25973. return key;
  25974. }
  25975. #endif /* !NO_BIO */
  25976. #endif /* OPENSSL_ALL || WOLFSSL_ASIO || WOLFSSL_HAPROXY || WOLFSSL_QT */
  25977. #if defined(OPENSSL_ALL) || defined(WOLFSSL_ASIO) || defined(WOLFSSL_HAPROXY) || \
  25978. defined(WOLFSSL_NGINX) || defined(WOLFSSL_QT) || defined(WOLFSSL_WPAS_SMALL)
  25979. /* Converts a DER encoded private key to a WOLFSSL_EVP_PKEY structure.
  25980. * returns a pointer to a new WOLFSSL_EVP_PKEY structure on success and NULL
  25981. * on fail */
  25982. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PrivateKey_EVP(WOLFSSL_EVP_PKEY** out,
  25983. unsigned char** in, long inSz)
  25984. {
  25985. WOLFSSL_ENTER("wolfSSL_d2i_PrivateKey_EVP");
  25986. return d2iGenericKey(out, (const unsigned char**)in, inSz, 1);
  25987. }
  25988. #endif /* OPENSSL_ALL || WOLFSSL_ASIO || WOLFSSL_HAPROXY || WOLFSSL_QT || WOLFSSL_WPAS_SMALL*/
  25989. /* stunnel compatibility functions*/
  25990. #if defined(OPENSSL_ALL) || (defined(OPENSSL_EXTRA) && (defined(HAVE_STUNNEL) || \
  25991. defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY) || \
  25992. defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_OPENSSH)))
  25993. void wolfSSL_ERR_remove_thread_state(void* pid)
  25994. {
  25995. (void) pid;
  25996. return;
  25997. }
  25998. #ifndef NO_FILESYSTEM
  25999. /***TBD ***/
  26000. void wolfSSL_print_all_errors_fp(XFILE fp)
  26001. {
  26002. (void)fp;
  26003. }
  26004. #endif /* !NO_FILESYSTEM */
  26005. #endif /* OPENSSL_ALL || OPENSSL_EXTRA || HAVE_STUNNEL || WOLFSSL_NGINX ||
  26006. HAVE_LIGHTY || WOLFSSL_HAPROXY || WOLFSSL_OPENSSH */
  26007. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL) || \
  26008. defined(HAVE_EX_DATA)
  26009. #if defined(HAVE_EX_DATA) && !defined(NO_SESSION_CACHE)
  26010. static void SESSION_ex_data_cache_update(WOLFSSL_SESSION* session, int idx,
  26011. void* data, byte get, void** getRet, int* setRet)
  26012. {
  26013. int row;
  26014. int i;
  26015. int error = 0;
  26016. SessionRow* sessRow = NULL;
  26017. const byte* id;
  26018. byte foundCache = 0;
  26019. if (getRet != NULL)
  26020. *getRet = NULL;
  26021. if (setRet != NULL)
  26022. *setRet = WOLFSSL_FAILURE;
  26023. id = session->sessionID;
  26024. if (session->haveAltSessionID)
  26025. id = session->altSessionID;
  26026. row = (int)(HashSession(id, ID_LEN, &error) % SESSION_ROWS);
  26027. if (error != 0) {
  26028. WOLFSSL_MSG("Hash session failed");
  26029. return;
  26030. }
  26031. sessRow = &SessionCache[row];
  26032. if (SESSION_ROW_LOCK(sessRow) != 0) {
  26033. WOLFSSL_MSG("Session row lock failed");
  26034. return;
  26035. }
  26036. for (i = 0; i < SESSIONS_PER_ROW && i < sessRow->totalCount; i++) {
  26037. if (XMEMCMP(id, sessRow->Sessions[i].sessionID, ID_LEN) == 0
  26038. && session->side == sessRow->Sessions[i].side) {
  26039. if (get) {
  26040. *getRet = wolfSSL_CRYPTO_get_ex_data(
  26041. &sessRow->Sessions[i].ex_data, idx);
  26042. }
  26043. else {
  26044. *setRet = wolfSSL_CRYPTO_set_ex_data(
  26045. &sessRow->Sessions[i].ex_data, idx, data);
  26046. }
  26047. foundCache = 1;
  26048. break;
  26049. }
  26050. }
  26051. SESSION_ROW_UNLOCK(sessRow);
  26052. /* If we don't have a session in cache then clear the ex_data and
  26053. * own it */
  26054. if (!foundCache) {
  26055. XMEMSET(&session->ex_data, 0, sizeof(WOLFSSL_CRYPTO_EX_DATA));
  26056. session->ownExData = 1;
  26057. if (!get) {
  26058. *setRet = wolfSSL_CRYPTO_set_ex_data(&session->ex_data, idx,
  26059. data);
  26060. }
  26061. }
  26062. }
  26063. #endif
  26064. int wolfSSL_SESSION_set_ex_data(WOLFSSL_SESSION* session, int idx, void* data)
  26065. {
  26066. int ret = WOLFSSL_FAILURE;
  26067. WOLFSSL_ENTER("wolfSSL_SESSION_set_ex_data");
  26068. #ifdef HAVE_EX_DATA
  26069. session = ClientSessionToSession(session);
  26070. if (session != NULL) {
  26071. #ifndef NO_SESSION_CACHE
  26072. if (!session->ownExData) {
  26073. /* Need to update in cache */
  26074. SESSION_ex_data_cache_update(session, idx, data, 0, NULL, &ret);
  26075. }
  26076. else
  26077. #endif
  26078. {
  26079. ret = wolfSSL_CRYPTO_set_ex_data(&session->ex_data, idx, data);
  26080. }
  26081. }
  26082. #else
  26083. (void)session;
  26084. (void)idx;
  26085. (void)data;
  26086. #endif
  26087. return ret;
  26088. }
  26089. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  26090. int wolfSSL_SESSION_set_ex_data_with_cleanup(
  26091. WOLFSSL_SESSION* session,
  26092. int idx,
  26093. void* data,
  26094. wolfSSL_ex_data_cleanup_routine_t cleanup_routine)
  26095. {
  26096. WOLFSSL_ENTER("wolfSSL_SESSION_set_ex_data_with_cleanup");
  26097. session = ClientSessionToSession(session);
  26098. if(session != NULL) {
  26099. return wolfSSL_CRYPTO_set_ex_data_with_cleanup(&session->ex_data, idx,
  26100. data, cleanup_routine);
  26101. }
  26102. return WOLFSSL_FAILURE;
  26103. }
  26104. #endif /* HAVE_EX_DATA_CLEANUP_HOOKS */
  26105. void* wolfSSL_SESSION_get_ex_data(const WOLFSSL_SESSION* session, int idx)
  26106. {
  26107. void* ret = NULL;
  26108. WOLFSSL_ENTER("wolfSSL_SESSION_get_ex_data");
  26109. #ifdef HAVE_EX_DATA
  26110. session = ClientSessionToSession(session);
  26111. if (session != NULL) {
  26112. #ifndef NO_SESSION_CACHE
  26113. if (!session->ownExData) {
  26114. /* Need to retrieve the data from the session cache */
  26115. SESSION_ex_data_cache_update((WOLFSSL_SESSION*)session, idx, NULL,
  26116. 1, &ret, NULL);
  26117. }
  26118. else
  26119. #endif
  26120. {
  26121. ret = wolfSSL_CRYPTO_get_ex_data(&session->ex_data, idx);
  26122. }
  26123. }
  26124. #else
  26125. (void)session;
  26126. (void)idx;
  26127. #endif
  26128. return ret;
  26129. }
  26130. #endif /* OPENSSL_EXTRA || WOLFSSL_WPAS_SMALL || HAVE_EX_DATA */
  26131. /* Note: This is a huge section of API's - through
  26132. * wolfSSL_X509_OBJECT_get0_X509_CRL */
  26133. #if defined(OPENSSL_ALL) || (defined(OPENSSL_EXTRA) && \
  26134. (defined(HAVE_STUNNEL) || defined(WOLFSSL_NGINX) || \
  26135. defined(HAVE_LIGHTY) || defined(WOLFSSL_HAPROXY) || \
  26136. defined(WOLFSSL_OPENSSH) || defined(HAVE_SBLIM_SFCB)))
  26137. #ifdef HAVE_EX_DATA
  26138. int wolfSSL_SESSION_get_ex_new_index(long idx, void* data, void* cb1,
  26139. void* cb2, CRYPTO_free_func* cb3)
  26140. {
  26141. WOLFSSL_ENTER("wolfSSL_SESSION_get_ex_new_index");
  26142. (void)idx;
  26143. (void)cb1;
  26144. (void)cb2;
  26145. (void)cb3;
  26146. (void)data;
  26147. return wolfssl_get_ex_new_index(WOLF_CRYPTO_EX_INDEX_SSL_SESSION);
  26148. }
  26149. #endif
  26150. #if defined(USE_WOLFSSL_MEMORY) && !defined(WOLFSSL_DEBUG_MEMORY)
  26151. static wolfSSL_OSSL_Malloc_cb ossl_malloc = NULL;
  26152. static wolfSSL_OSSL_Free_cb ossl_free = NULL;
  26153. static wolfSSL_OSSL_Realloc_cb ossl_realloc = NULL;
  26154. static void* OSSL_Malloc(size_t size)
  26155. {
  26156. if (ossl_malloc != NULL)
  26157. return ossl_malloc(size, NULL, 0);
  26158. else
  26159. return NULL;
  26160. }
  26161. static void OSSL_Free(void *ptr)
  26162. {
  26163. if (ossl_free != NULL)
  26164. ossl_free(ptr, NULL, 0);
  26165. }
  26166. static void* OSSL_Realloc(void *ptr, size_t size)
  26167. {
  26168. if (ossl_realloc != NULL)
  26169. return ossl_realloc(ptr, size, NULL, 0);
  26170. else
  26171. return NULL;
  26172. }
  26173. #endif /* USE_WOLFSSL_MEMORY && !WOLFSSL_DEBUG_MEMORY */
  26174. int wolfSSL_CRYPTO_set_mem_functions(
  26175. wolfSSL_OSSL_Malloc_cb m,
  26176. wolfSSL_OSSL_Realloc_cb r,
  26177. wolfSSL_OSSL_Free_cb f)
  26178. {
  26179. #ifdef USE_WOLFSSL_MEMORY
  26180. #ifdef WOLFSSL_DEBUG_MEMORY
  26181. WOLFSSL_MSG("mem functions will receive function name instead of "
  26182. "file name");
  26183. if (wolfSSL_SetAllocators((wolfSSL_Malloc_cb)m, (wolfSSL_Free_cb)f,
  26184. (wolfSSL_Realloc_cb)r) == 0)
  26185. return WOLFSSL_SUCCESS;
  26186. #else
  26187. WOLFSSL_MSG("wolfSSL was compiled without WOLFSSL_DEBUG_MEMORY. mem "
  26188. "functions will receive a NULL file name and 0 for the "
  26189. "line number.");
  26190. if (wolfSSL_SetAllocators(OSSL_Malloc, OSSL_Free, OSSL_Realloc) == 0) {
  26191. ossl_malloc = m;
  26192. ossl_free = f;
  26193. ossl_realloc = r;
  26194. return WOLFSSL_SUCCESS;
  26195. }
  26196. #endif
  26197. else
  26198. return WOLFSSL_FAILURE;
  26199. #else
  26200. (void)m;
  26201. (void)r;
  26202. (void)f;
  26203. WOLFSSL_MSG("wolfSSL allocator callback functions not compiled in");
  26204. return WOLFSSL_FAILURE;
  26205. #endif
  26206. }
  26207. int wolfSSL_ERR_load_ERR_strings(void)
  26208. {
  26209. return WOLFSSL_SUCCESS;
  26210. }
  26211. void wolfSSL_ERR_load_crypto_strings(void)
  26212. {
  26213. WOLFSSL_ENTER("wolfSSL_ERR_load_crypto_strings");
  26214. /* Do nothing */
  26215. return;
  26216. }
  26217. int wolfSSL_FIPS_mode(void)
  26218. {
  26219. #ifdef HAVE_FIPS
  26220. return 1;
  26221. #else
  26222. return 0;
  26223. #endif
  26224. }
  26225. int wolfSSL_FIPS_mode_set(int r)
  26226. {
  26227. #ifdef HAVE_FIPS
  26228. if (r == 0) {
  26229. WOLFSSL_MSG("Cannot disable FIPS at runtime.");
  26230. return WOLFSSL_FAILURE;
  26231. }
  26232. return WOLFSSL_SUCCESS;
  26233. #else
  26234. if (r == 0) {
  26235. return WOLFSSL_SUCCESS;
  26236. }
  26237. WOLFSSL_MSG("Cannot enable FIPS. This isn't the wolfSSL FIPS code.");
  26238. return WOLFSSL_FAILURE;
  26239. #endif
  26240. }
  26241. int wolfSSL_CIPHER_get_bits(const WOLFSSL_CIPHER *c, int *alg_bits)
  26242. {
  26243. int ret = WOLFSSL_FAILURE;
  26244. WOLFSSL_ENTER("wolfSSL_CIPHER_get_bits");
  26245. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  26246. (void)alg_bits;
  26247. if (c!= NULL)
  26248. ret = c->bits;
  26249. #else
  26250. if (c != NULL && c->ssl != NULL) {
  26251. ret = 8 * c->ssl->specs.key_size;
  26252. if (alg_bits != NULL) {
  26253. *alg_bits = ret;
  26254. }
  26255. }
  26256. #endif
  26257. return ret;
  26258. }
  26259. /* returns value less than 0 on fail to match
  26260. * On a successful match the priority level found is returned
  26261. */
  26262. int wolfSSL_sk_SSL_CIPHER_find(
  26263. WOLF_STACK_OF(WOLFSSL_CIPHER)* sk, const WOLFSSL_CIPHER* toFind)
  26264. {
  26265. WOLFSSL_STACK* next;
  26266. int i, sz;
  26267. if (sk == NULL || toFind == NULL) {
  26268. return WOLFSSL_FATAL_ERROR;
  26269. }
  26270. sz = wolfSSL_sk_SSL_CIPHER_num(sk);
  26271. next = sk;
  26272. for (i = 0; i < sz && next != NULL; i++) {
  26273. if (next->data.cipher.cipherSuite0 == toFind->cipherSuite0 &&
  26274. next->data.cipher.cipherSuite == toFind->cipherSuite) {
  26275. return sz - i; /* reverse because stack pushed highest on first */
  26276. }
  26277. next = next->next;
  26278. }
  26279. return WOLFSSL_FATAL_ERROR;
  26280. }
  26281. /* free's all nodes in the stack and there data */
  26282. void wolfSSL_sk_SSL_CIPHER_free(WOLF_STACK_OF(WOLFSSL_CIPHER)* sk)
  26283. {
  26284. WOLFSSL_ENTER("wolfSSL_sk_SSL_CIPHER_free");
  26285. wolfSSL_sk_free(sk);
  26286. }
  26287. #ifdef HAVE_SNI
  26288. int wolfSSL_set_tlsext_host_name(WOLFSSL* ssl, const char* host_name)
  26289. {
  26290. int ret;
  26291. WOLFSSL_ENTER("wolfSSL_set_tlsext_host_name");
  26292. ret = wolfSSL_UseSNI(ssl, WOLFSSL_SNI_HOST_NAME,
  26293. host_name, (word16)XSTRLEN(host_name));
  26294. WOLFSSL_LEAVE("wolfSSL_set_tlsext_host_name", ret);
  26295. return ret;
  26296. }
  26297. #ifndef NO_WOLFSSL_SERVER
  26298. const char * wolfSSL_get_servername(WOLFSSL* ssl, byte type)
  26299. {
  26300. void * serverName = NULL;
  26301. if (ssl == NULL)
  26302. return NULL;
  26303. TLSX_SNI_GetRequest(ssl->extensions, type, &serverName);
  26304. return (const char *)serverName;
  26305. }
  26306. #endif /* NO_WOLFSSL_SERVER */
  26307. #endif /* HAVE_SNI */
  26308. WOLFSSL_CTX* wolfSSL_set_SSL_CTX(WOLFSSL* ssl, WOLFSSL_CTX* ctx)
  26309. {
  26310. if (ssl && ctx && SetSSL_CTX(ssl, ctx, 0) == WOLFSSL_SUCCESS)
  26311. return ssl->ctx;
  26312. return NULL;
  26313. }
  26314. VerifyCallback wolfSSL_CTX_get_verify_callback(WOLFSSL_CTX* ctx)
  26315. {
  26316. WOLFSSL_ENTER("wolfSSL_CTX_get_verify_callback");
  26317. if(ctx)
  26318. return ctx->verifyCallback;
  26319. return NULL;
  26320. }
  26321. #ifdef HAVE_SNI
  26322. void wolfSSL_CTX_set_servername_callback(WOLFSSL_CTX* ctx, CallbackSniRecv cb)
  26323. {
  26324. WOLFSSL_ENTER("wolfSSL_CTX_set_servername_callback");
  26325. if (ctx)
  26326. ctx->sniRecvCb = cb;
  26327. }
  26328. int wolfSSL_CTX_set_tlsext_servername_callback(WOLFSSL_CTX* ctx,
  26329. CallbackSniRecv cb)
  26330. {
  26331. WOLFSSL_ENTER("wolfSSL_CTX_set_tlsext_servername_callback");
  26332. if (ctx) {
  26333. ctx->sniRecvCb = cb;
  26334. return WOLFSSL_SUCCESS;
  26335. }
  26336. return WOLFSSL_FAILURE;
  26337. }
  26338. int wolfSSL_CTX_set_servername_arg(WOLFSSL_CTX* ctx, void* arg)
  26339. {
  26340. WOLFSSL_ENTER("wolfSSL_CTX_set_servername_arg");
  26341. if (ctx) {
  26342. ctx->sniRecvCbArg = arg;
  26343. return WOLFSSL_SUCCESS;
  26344. }
  26345. return WOLFSSL_FAILURE;
  26346. }
  26347. #endif /* HAVE_SNI */
  26348. #ifndef NO_BIO
  26349. void wolfSSL_ERR_load_BIO_strings(void) {
  26350. WOLFSSL_ENTER("ERR_load_BIO_strings");
  26351. /* do nothing */
  26352. }
  26353. #endif
  26354. #ifndef NO_WOLFSSL_STUB
  26355. /* Set THREADID callback, return 1 on success, 0 on error */
  26356. int wolfSSL_THREADID_set_callback(
  26357. void(*threadid_func)(WOLFSSL_CRYPTO_THREADID*))
  26358. {
  26359. WOLFSSL_ENTER("wolfSSL_THREADID_set_callback");
  26360. WOLFSSL_STUB("CRYPTO_THREADID_set_callback");
  26361. (void)threadid_func;
  26362. return 1;
  26363. }
  26364. #endif
  26365. #ifndef NO_WOLFSSL_STUB
  26366. void wolfSSL_THREADID_set_numeric(void* id, unsigned long val)
  26367. {
  26368. WOLFSSL_ENTER("wolfSSL_THREADID_set_numeric");
  26369. WOLFSSL_STUB("CRYPTO_THREADID_set_numeric");
  26370. (void)id;
  26371. (void)val;
  26372. return;
  26373. }
  26374. #endif
  26375. #endif /* OPENSSL_ALL || (OPENSSL_EXTRA && (HAVE_STUNNEL || WOLFSSL_NGINX ||
  26376. * HAVE_LIGHTY || WOLFSSL_HAPROXY || WOLFSSL_OPENSSH ||
  26377. * HAVE_SBLIM_SFCB)) */
  26378. #if defined(OPENSSL_EXTRA)
  26379. int wolfSSL_CRYPTO_memcmp(const void *a, const void *b, size_t size)
  26380. {
  26381. if (!a || !b)
  26382. return 0;
  26383. return ConstantCompare((const byte*)a, (const byte*)b, (int)size);
  26384. }
  26385. unsigned long wolfSSL_ERR_peek_last_error(void)
  26386. {
  26387. WOLFSSL_ENTER("wolfSSL_ERR_peek_last_error");
  26388. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  26389. {
  26390. int ret;
  26391. if ((ret = wc_PeekErrorNode(-1, NULL, NULL, NULL)) < 0) {
  26392. WOLFSSL_MSG("Issue peeking at error node in queue");
  26393. return 0;
  26394. }
  26395. if (ret == -ASN_NO_PEM_HEADER)
  26396. return (ERR_LIB_PEM << 24) | PEM_R_NO_START_LINE;
  26397. #if defined(WOLFSSL_PYTHON)
  26398. if (ret == ASN1_R_HEADER_TOO_LONG)
  26399. return (ERR_LIB_ASN1 << 24) | ASN1_R_HEADER_TOO_LONG;
  26400. #endif
  26401. return (unsigned long)ret;
  26402. }
  26403. #else
  26404. return (unsigned long)(0 - NOT_COMPILED_IN);
  26405. #endif
  26406. }
  26407. #endif /* OPENSSL_EXTRA */
  26408. int wolfSSL_version(WOLFSSL* ssl)
  26409. {
  26410. WOLFSSL_ENTER("wolfSSL_version");
  26411. if (ssl->version.major == SSLv3_MAJOR) {
  26412. switch (ssl->version.minor) {
  26413. case SSLv3_MINOR :
  26414. return SSL3_VERSION;
  26415. case TLSv1_MINOR :
  26416. return TLS1_VERSION;
  26417. case TLSv1_1_MINOR :
  26418. return TLS1_1_VERSION;
  26419. case TLSv1_2_MINOR :
  26420. return TLS1_2_VERSION;
  26421. case TLSv1_3_MINOR :
  26422. return TLS1_3_VERSION;
  26423. default:
  26424. return WOLFSSL_FAILURE;
  26425. }
  26426. }
  26427. else if (ssl->version.major == DTLS_MAJOR) {
  26428. switch (ssl->version.minor) {
  26429. case DTLS_MINOR :
  26430. return DTLS1_VERSION;
  26431. case DTLSv1_2_MINOR :
  26432. return DTLS1_2_VERSION;
  26433. default:
  26434. return WOLFSSL_FAILURE;
  26435. }
  26436. }
  26437. return WOLFSSL_FAILURE;
  26438. }
  26439. WOLFSSL_CTX* wolfSSL_get_SSL_CTX(WOLFSSL* ssl)
  26440. {
  26441. WOLFSSL_ENTER("wolfSSL_get_SSL_CTX");
  26442. return ssl->ctx;
  26443. }
  26444. #if defined(OPENSSL_ALL) || \
  26445. defined(OPENSSL_EXTRA) || defined(HAVE_STUNNEL) || \
  26446. defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  26447. const byte* wolfSSL_SESSION_get_id(const WOLFSSL_SESSION* sess,
  26448. unsigned int* idLen)
  26449. {
  26450. WOLFSSL_ENTER("wolfSSL_SESSION_get_id");
  26451. sess = ClientSessionToSession(sess);
  26452. if (sess == NULL || idLen == NULL) {
  26453. WOLFSSL_MSG("Bad func args. Please provide idLen");
  26454. return NULL;
  26455. }
  26456. *idLen = sess->sessionIDSz;
  26457. return sess->sessionID;
  26458. }
  26459. #if (defined(HAVE_SESSION_TICKET) || defined(SESSION_CERTS)) && \
  26460. !defined(NO_FILESYSTEM)
  26461. #ifndef NO_BIO
  26462. #if defined(SESSION_CERTS) || \
  26463. (defined(WOLFSSL_TLS13) && defined(HAVE_SESSION_TICKET))
  26464. /* returns a pointer to the protocol used by the session */
  26465. static const char* wolfSSL_SESSION_get_protocol(const WOLFSSL_SESSION* in)
  26466. {
  26467. in = ClientSessionToSession(in);
  26468. return wolfSSL_internal_get_version((ProtocolVersion*)&in->version);
  26469. }
  26470. #endif
  26471. /* returns true (non 0) if the session has EMS (extended master secret) */
  26472. static int wolfSSL_SESSION_haveEMS(const WOLFSSL_SESSION* in)
  26473. {
  26474. in = ClientSessionToSession(in);
  26475. if (in == NULL)
  26476. return 0;
  26477. return in->haveEMS;
  26478. }
  26479. #if defined(HAVE_SESSION_TICKET)
  26480. /* prints out the ticket to bio passed in
  26481. * return WOLFSSL_SUCCESS on success
  26482. */
  26483. static int wolfSSL_SESSION_print_ticket(WOLFSSL_BIO* bio,
  26484. const WOLFSSL_SESSION* in, const char* tab)
  26485. {
  26486. unsigned short i, j, z, sz;
  26487. short tag = 0;
  26488. byte* pt;
  26489. in = ClientSessionToSession(in);
  26490. if (in == NULL || bio == NULL) {
  26491. return BAD_FUNC_ARG;
  26492. }
  26493. sz = in->ticketLen;
  26494. pt = in->ticket;
  26495. if (wolfSSL_BIO_printf(bio, "%s\n", (sz == 0)? " NONE": "") <= 0)
  26496. return WOLFSSL_FAILURE;
  26497. for (i = 0; i < sz;) {
  26498. char asc[16];
  26499. if (sz - i < 16) {
  26500. if (wolfSSL_BIO_printf(bio, "%s%04X -", tab, tag + (sz - i)) <= 0)
  26501. return WOLFSSL_FAILURE;
  26502. }
  26503. else {
  26504. if (wolfSSL_BIO_printf(bio, "%s%04X -", tab, tag) <= 0)
  26505. return WOLFSSL_FAILURE;
  26506. }
  26507. for (j = 0; i < sz && j < 8; j++,i++) {
  26508. asc[j] = ((pt[i])&0x6f)>='A'?((pt[i])&0x6f):'.';
  26509. if (wolfSSL_BIO_printf(bio, " %02X", pt[i]) <= 0)
  26510. return WOLFSSL_FAILURE;
  26511. }
  26512. if (i < sz) {
  26513. asc[j] = ((pt[i])&0x6f)>='A'?((pt[i])&0x6f):'.';
  26514. if (wolfSSL_BIO_printf(bio, "-%02X", pt[i]) <= 0)
  26515. return WOLFSSL_FAILURE;
  26516. j++;
  26517. i++;
  26518. }
  26519. for (; i < sz && j < 16; j++,i++) {
  26520. asc[j] = ((pt[i])&0x6f)>='A'?((pt[i])&0x6f):'.';
  26521. if (wolfSSL_BIO_printf(bio, " %02X", pt[i]) <= 0)
  26522. return WOLFSSL_FAILURE;
  26523. }
  26524. /* pad out spacing */
  26525. for (z = j; z < 17; z++) {
  26526. if (wolfSSL_BIO_printf(bio, " ") <= 0)
  26527. return WOLFSSL_FAILURE;
  26528. }
  26529. for (z = 0; z < j; z++) {
  26530. if (wolfSSL_BIO_printf(bio, "%c", asc[z]) <= 0)
  26531. return WOLFSSL_FAILURE;
  26532. }
  26533. if (wolfSSL_BIO_printf(bio, "\n") <= 0)
  26534. return WOLFSSL_FAILURE;
  26535. tag += 16;
  26536. }
  26537. return WOLFSSL_SUCCESS;
  26538. }
  26539. #endif /* HAVE_SESSION_TICKET */
  26540. /* prints out the session information in human readable form
  26541. * return WOLFSSL_SUCCESS on success
  26542. */
  26543. int wolfSSL_SESSION_print(WOLFSSL_BIO *bp, const WOLFSSL_SESSION *session)
  26544. {
  26545. const unsigned char* pt;
  26546. unsigned char buf[SECRET_LEN];
  26547. unsigned int sz = 0, i;
  26548. int ret;
  26549. session = ClientSessionToSession(session);
  26550. if (session == NULL) {
  26551. return WOLFSSL_FAILURE;
  26552. }
  26553. if (wolfSSL_BIO_printf(bp, "%s\n", "SSL-Session:") <= 0)
  26554. return WOLFSSL_FAILURE;
  26555. #if defined(SESSION_CERTS) || (defined(WOLFSSL_TLS13) && \
  26556. defined(HAVE_SESSION_TICKET))
  26557. if (wolfSSL_BIO_printf(bp, " Protocol : %s\n",
  26558. wolfSSL_SESSION_get_protocol(session)) <= 0)
  26559. return WOLFSSL_FAILURE;
  26560. #endif
  26561. if (wolfSSL_BIO_printf(bp, " Cipher : %s\n",
  26562. wolfSSL_SESSION_CIPHER_get_name(session)) <= 0)
  26563. return WOLFSSL_FAILURE;
  26564. pt = wolfSSL_SESSION_get_id(session, &sz);
  26565. if (wolfSSL_BIO_printf(bp, " Session-ID: ") <= 0)
  26566. return WOLFSSL_FAILURE;
  26567. for (i = 0; i < sz; i++) {
  26568. if (wolfSSL_BIO_printf(bp, "%02X", pt[i]) <= 0)
  26569. return WOLFSSL_FAILURE;
  26570. }
  26571. if (wolfSSL_BIO_printf(bp, "\n") <= 0)
  26572. return WOLFSSL_FAILURE;
  26573. if (wolfSSL_BIO_printf(bp, " Session-ID-ctx: \n") <= 0)
  26574. return WOLFSSL_FAILURE;
  26575. ret = wolfSSL_SESSION_get_master_key(session, buf, sizeof(buf));
  26576. if (wolfSSL_BIO_printf(bp, " Master-Key: ") <= 0)
  26577. return WOLFSSL_FAILURE;
  26578. if (ret > 0) {
  26579. sz = (unsigned int)ret;
  26580. for (i = 0; i < sz; i++) {
  26581. if (wolfSSL_BIO_printf(bp, "%02X", buf[i]) <= 0)
  26582. return WOLFSSL_FAILURE;
  26583. }
  26584. }
  26585. if (wolfSSL_BIO_printf(bp, "\n") <= 0)
  26586. return WOLFSSL_FAILURE;
  26587. /* @TODO PSK identity hint and SRP */
  26588. if (wolfSSL_BIO_printf(bp, " TLS session ticket:") <= 0)
  26589. return WOLFSSL_FAILURE;
  26590. #ifdef HAVE_SESSION_TICKET
  26591. if (wolfSSL_SESSION_print_ticket(bp, session, " ") != WOLFSSL_SUCCESS)
  26592. return WOLFSSL_FAILURE;
  26593. #endif
  26594. #if !defined(NO_SESSION_CACHE) && (defined(OPENSSL_EXTRA) || \
  26595. defined(HAVE_EXT_CACHE))
  26596. if (wolfSSL_BIO_printf(bp, " Start Time: %ld\n",
  26597. wolfSSL_SESSION_get_time(session)) <= 0)
  26598. return WOLFSSL_FAILURE;
  26599. if (wolfSSL_BIO_printf(bp, " Timeout : %ld (sec)\n",
  26600. wolfSSL_SESSION_get_timeout(session)) <= 0)
  26601. return WOLFSSL_FAILURE;
  26602. #endif /* !NO_SESSION_CACHE && OPENSSL_EXTRA || HAVE_EXT_CACHE */
  26603. /* @TODO verify return code print */
  26604. if (wolfSSL_BIO_printf(bp, " Extended master secret: %s\n",
  26605. (wolfSSL_SESSION_haveEMS(session) == 0)? "no" : "yes") <= 0)
  26606. return WOLFSSL_FAILURE;
  26607. return WOLFSSL_SUCCESS;
  26608. }
  26609. #endif /* !NO_BIO */
  26610. #endif /* (HAVE_SESSION_TICKET || SESSION_CERTS) && !NO_FILESYSTEM */
  26611. #endif /* OPENSSL_ALL || OPENSSL_EXTRA || HAVE_STUNNEL || WOLFSSL_NGINX || WOLFSSL_HAPROXY */
  26612. #if defined(OPENSSL_ALL) || (defined(OPENSSL_EXTRA) && defined(HAVE_STUNNEL)) \
  26613. || defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(WOLFSSL_NGINX)
  26614. /* TODO: Doesn't currently track SSL_VERIFY_CLIENT_ONCE */
  26615. int wolfSSL_get_verify_mode(const WOLFSSL* ssl) {
  26616. int mode = 0;
  26617. WOLFSSL_ENTER("wolfSSL_get_verify_mode");
  26618. if (!ssl) {
  26619. return WOLFSSL_FAILURE;
  26620. }
  26621. if (ssl->options.verifyNone) {
  26622. mode = WOLFSSL_VERIFY_NONE;
  26623. }
  26624. else {
  26625. if (ssl->options.verifyPeer) {
  26626. mode |= WOLFSSL_VERIFY_PEER;
  26627. }
  26628. if (ssl->options.failNoCert) {
  26629. mode |= WOLFSSL_VERIFY_FAIL_IF_NO_PEER_CERT;
  26630. }
  26631. if (ssl->options.failNoCertxPSK) {
  26632. mode |= WOLFSSL_VERIFY_FAIL_EXCEPT_PSK;
  26633. }
  26634. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  26635. if (ssl->options.verifyPostHandshake) {
  26636. mode |= WOLFSSL_VERIFY_POST_HANDSHAKE;
  26637. }
  26638. #endif
  26639. }
  26640. WOLFSSL_LEAVE("wolfSSL_get_verify_mode", mode);
  26641. return mode;
  26642. }
  26643. int wolfSSL_CTX_get_verify_mode(const WOLFSSL_CTX* ctx)
  26644. {
  26645. int mode = 0;
  26646. WOLFSSL_ENTER("wolfSSL_CTX_get_verify_mode");
  26647. if (!ctx) {
  26648. return WOLFSSL_FAILURE;
  26649. }
  26650. if (ctx->verifyNone) {
  26651. mode = WOLFSSL_VERIFY_NONE;
  26652. }
  26653. else {
  26654. if (ctx->verifyPeer) {
  26655. mode |= WOLFSSL_VERIFY_PEER;
  26656. }
  26657. if (ctx->failNoCert) {
  26658. mode |= WOLFSSL_VERIFY_FAIL_IF_NO_PEER_CERT;
  26659. }
  26660. if (ctx->failNoCertxPSK) {
  26661. mode |= WOLFSSL_VERIFY_FAIL_EXCEPT_PSK;
  26662. }
  26663. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  26664. if (ctx->verifyPostHandshake) {
  26665. mode |= WOLFSSL_VERIFY_POST_HANDSHAKE;
  26666. }
  26667. #endif
  26668. }
  26669. WOLFSSL_LEAVE("wolfSSL_CTX_get_verify_mode", mode);
  26670. return mode;
  26671. }
  26672. #endif
  26673. #if defined(OPENSSL_EXTRA) && defined(HAVE_CURVE25519)
  26674. /* return 1 if success, 0 if error
  26675. * output keys are little endian format
  26676. */
  26677. int wolfSSL_EC25519_generate_key(unsigned char *priv, unsigned int *privSz,
  26678. unsigned char *pub, unsigned int *pubSz)
  26679. {
  26680. #ifndef WOLFSSL_KEY_GEN
  26681. WOLFSSL_MSG("No Key Gen built in");
  26682. (void) priv;
  26683. (void) privSz;
  26684. (void) pub;
  26685. (void) pubSz;
  26686. return WOLFSSL_FAILURE;
  26687. #else /* WOLFSSL_KEY_GEN */
  26688. int ret = WOLFSSL_FAILURE;
  26689. int initTmpRng = 0;
  26690. WC_RNG *rng = NULL;
  26691. #ifdef WOLFSSL_SMALL_STACK
  26692. WC_RNG *tmpRNG = NULL;
  26693. #else
  26694. WC_RNG tmpRNG[1];
  26695. #endif
  26696. WOLFSSL_ENTER("wolfSSL_EC25519_generate_key");
  26697. if (priv == NULL || privSz == NULL || *privSz < CURVE25519_KEYSIZE ||
  26698. pub == NULL || pubSz == NULL || *pubSz < CURVE25519_KEYSIZE) {
  26699. WOLFSSL_MSG("Bad arguments");
  26700. return WOLFSSL_FAILURE;
  26701. }
  26702. #ifdef WOLFSSL_SMALL_STACK
  26703. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  26704. if (tmpRNG == NULL)
  26705. return WOLFSSL_FAILURE;
  26706. #endif
  26707. if (wc_InitRng(tmpRNG) == 0) {
  26708. rng = tmpRNG;
  26709. initTmpRng = 1;
  26710. }
  26711. else {
  26712. WOLFSSL_MSG("Bad RNG Init, trying global");
  26713. if (initGlobalRNG == 0)
  26714. WOLFSSL_MSG("Global RNG no Init");
  26715. else
  26716. rng = &globalRNG;
  26717. }
  26718. if (rng) {
  26719. curve25519_key key;
  26720. if (wc_curve25519_init(&key) != MP_OKAY)
  26721. WOLFSSL_MSG("wc_curve25519_init failed");
  26722. else if (wc_curve25519_make_key(rng, CURVE25519_KEYSIZE, &key)!=MP_OKAY)
  26723. WOLFSSL_MSG("wc_curve25519_make_key failed");
  26724. /* export key pair */
  26725. else if (wc_curve25519_export_key_raw_ex(&key, priv, privSz, pub,
  26726. pubSz, EC25519_LITTLE_ENDIAN)
  26727. != MP_OKAY)
  26728. WOLFSSL_MSG("wc_curve25519_export_key_raw_ex failed");
  26729. else
  26730. ret = WOLFSSL_SUCCESS;
  26731. wc_curve25519_free(&key);
  26732. }
  26733. if (initTmpRng)
  26734. wc_FreeRng(tmpRNG);
  26735. #ifdef WOLFSSL_SMALL_STACK
  26736. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  26737. #endif
  26738. return ret;
  26739. #endif /* WOLFSSL_KEY_GEN */
  26740. }
  26741. /* return 1 if success, 0 if error
  26742. * input and output keys are little endian format
  26743. */
  26744. int wolfSSL_EC25519_shared_key(unsigned char *shared, unsigned int *sharedSz,
  26745. const unsigned char *priv, unsigned int privSz,
  26746. const unsigned char *pub, unsigned int pubSz)
  26747. {
  26748. #ifndef WOLFSSL_KEY_GEN
  26749. WOLFSSL_MSG("No Key Gen built in");
  26750. (void) shared;
  26751. (void) sharedSz;
  26752. (void) priv;
  26753. (void) privSz;
  26754. (void) pub;
  26755. (void) pubSz;
  26756. return WOLFSSL_FAILURE;
  26757. #else /* WOLFSSL_KEY_GEN */
  26758. int ret = WOLFSSL_FAILURE;
  26759. curve25519_key privkey, pubkey;
  26760. WOLFSSL_ENTER("wolfSSL_EC25519_shared_key");
  26761. if (shared == NULL || sharedSz == NULL || *sharedSz < CURVE25519_KEYSIZE ||
  26762. priv == NULL || privSz < CURVE25519_KEYSIZE ||
  26763. pub == NULL || pubSz < CURVE25519_KEYSIZE) {
  26764. WOLFSSL_MSG("Bad arguments");
  26765. return WOLFSSL_FAILURE;
  26766. }
  26767. /* import private key */
  26768. if (wc_curve25519_init(&privkey) != MP_OKAY) {
  26769. WOLFSSL_MSG("wc_curve25519_init privkey failed");
  26770. return ret;
  26771. }
  26772. if (wc_curve25519_import_private_ex(priv, privSz, &privkey,
  26773. EC25519_LITTLE_ENDIAN) != MP_OKAY) {
  26774. WOLFSSL_MSG("wc_curve25519_import_private_ex failed");
  26775. wc_curve25519_free(&privkey);
  26776. return ret;
  26777. }
  26778. /* import public key */
  26779. if (wc_curve25519_init(&pubkey) != MP_OKAY) {
  26780. WOLFSSL_MSG("wc_curve25519_init pubkey failed");
  26781. wc_curve25519_free(&privkey);
  26782. return ret;
  26783. }
  26784. if (wc_curve25519_import_public_ex(pub, pubSz, &pubkey,
  26785. EC25519_LITTLE_ENDIAN) != MP_OKAY) {
  26786. WOLFSSL_MSG("wc_curve25519_import_public_ex failed");
  26787. wc_curve25519_free(&privkey);
  26788. wc_curve25519_free(&pubkey);
  26789. return ret;
  26790. }
  26791. if (wc_curve25519_shared_secret_ex(&privkey, &pubkey,
  26792. shared, sharedSz,
  26793. EC25519_LITTLE_ENDIAN) != MP_OKAY)
  26794. WOLFSSL_MSG("wc_curve25519_shared_secret_ex failed");
  26795. else
  26796. ret = WOLFSSL_SUCCESS;
  26797. wc_curve25519_free(&privkey);
  26798. wc_curve25519_free(&pubkey);
  26799. return ret;
  26800. #endif /* WOLFSSL_KEY_GEN */
  26801. }
  26802. #endif /* OPENSSL_EXTRA && HAVE_CURVE25519 */
  26803. #if defined(OPENSSL_EXTRA) && defined(HAVE_ED25519)
  26804. /* return 1 if success, 0 if error
  26805. * output keys are little endian format
  26806. */
  26807. int wolfSSL_ED25519_generate_key(unsigned char *priv, unsigned int *privSz,
  26808. unsigned char *pub, unsigned int *pubSz)
  26809. {
  26810. #ifndef WOLFSSL_KEY_GEN
  26811. WOLFSSL_MSG("No Key Gen built in");
  26812. (void) priv;
  26813. (void) privSz;
  26814. (void) pub;
  26815. (void) pubSz;
  26816. return WOLFSSL_FAILURE;
  26817. #elif !defined(HAVE_ED25519_KEY_EXPORT)
  26818. WOLFSSL_MSG("No ED25519 key export built in");
  26819. (void) priv;
  26820. (void) privSz;
  26821. (void) pub;
  26822. (void) pubSz;
  26823. return WOLFSSL_FAILURE;
  26824. #else /* WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_EXPORT */
  26825. int ret = WOLFSSL_FAILURE;
  26826. int initTmpRng = 0;
  26827. WC_RNG *rng = NULL;
  26828. #ifdef WOLFSSL_SMALL_STACK
  26829. WC_RNG *tmpRNG = NULL;
  26830. #else
  26831. WC_RNG tmpRNG[1];
  26832. #endif
  26833. WOLFSSL_ENTER("wolfSSL_ED25519_generate_key");
  26834. if (priv == NULL || privSz == NULL || *privSz < ED25519_PRV_KEY_SIZE ||
  26835. pub == NULL || pubSz == NULL || *pubSz < ED25519_PUB_KEY_SIZE) {
  26836. WOLFSSL_MSG("Bad arguments");
  26837. return WOLFSSL_FAILURE;
  26838. }
  26839. #ifdef WOLFSSL_SMALL_STACK
  26840. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  26841. if (tmpRNG == NULL)
  26842. return WOLFSSL_FATAL_ERROR;
  26843. #endif
  26844. if (wc_InitRng(tmpRNG) == 0) {
  26845. rng = tmpRNG;
  26846. initTmpRng = 1;
  26847. }
  26848. else {
  26849. WOLFSSL_MSG("Bad RNG Init, trying global");
  26850. if (initGlobalRNG == 0)
  26851. WOLFSSL_MSG("Global RNG no Init");
  26852. else
  26853. rng = &globalRNG;
  26854. }
  26855. if (rng) {
  26856. ed25519_key key;
  26857. if (wc_ed25519_init(&key) != MP_OKAY)
  26858. WOLFSSL_MSG("wc_ed25519_init failed");
  26859. else if (wc_ed25519_make_key(rng, ED25519_KEY_SIZE, &key)!=MP_OKAY)
  26860. WOLFSSL_MSG("wc_ed25519_make_key failed");
  26861. /* export private key */
  26862. else if (wc_ed25519_export_key(&key, priv, privSz, pub, pubSz)!=MP_OKAY)
  26863. WOLFSSL_MSG("wc_ed25519_export_key failed");
  26864. else
  26865. ret = WOLFSSL_SUCCESS;
  26866. wc_ed25519_free(&key);
  26867. }
  26868. if (initTmpRng)
  26869. wc_FreeRng(tmpRNG);
  26870. #ifdef WOLFSSL_SMALL_STACK
  26871. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  26872. #endif
  26873. return ret;
  26874. #endif /* WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_EXPORT */
  26875. }
  26876. /* return 1 if success, 0 if error
  26877. * input and output keys are little endian format
  26878. * priv is a buffer containing private and public part of key
  26879. */
  26880. int wolfSSL_ED25519_sign(const unsigned char *msg, unsigned int msgSz,
  26881. const unsigned char *priv, unsigned int privSz,
  26882. unsigned char *sig, unsigned int *sigSz)
  26883. {
  26884. #if !defined(HAVE_ED25519_SIGN) || !defined(WOLFSSL_KEY_GEN) || !defined(HAVE_ED25519_KEY_IMPORT)
  26885. #if !defined(HAVE_ED25519_SIGN)
  26886. WOLFSSL_MSG("No ED25519 sign built in");
  26887. #elif !defined(WOLFSSL_KEY_GEN)
  26888. WOLFSSL_MSG("No Key Gen built in");
  26889. #elif !defined(HAVE_ED25519_KEY_IMPORT)
  26890. WOLFSSL_MSG("No ED25519 Key import built in");
  26891. #endif
  26892. (void) msg;
  26893. (void) msgSz;
  26894. (void) priv;
  26895. (void) privSz;
  26896. (void) sig;
  26897. (void) sigSz;
  26898. return WOLFSSL_FAILURE;
  26899. #else /* HAVE_ED25519_SIGN && WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_IMPORT */
  26900. ed25519_key key;
  26901. int ret = WOLFSSL_FAILURE;
  26902. WOLFSSL_ENTER("wolfSSL_ED25519_sign");
  26903. if (priv == NULL || privSz != ED25519_PRV_KEY_SIZE ||
  26904. msg == NULL || sig == NULL || *sigSz < ED25519_SIG_SIZE) {
  26905. WOLFSSL_MSG("Bad arguments");
  26906. return WOLFSSL_FAILURE;
  26907. }
  26908. /* import key */
  26909. if (wc_ed25519_init(&key) != MP_OKAY) {
  26910. WOLFSSL_MSG("wc_curve25519_init failed");
  26911. return ret;
  26912. }
  26913. if (wc_ed25519_import_private_key(priv, privSz/2,
  26914. priv+(privSz/2), ED25519_PUB_KEY_SIZE,
  26915. &key) != MP_OKAY){
  26916. WOLFSSL_MSG("wc_ed25519_import_private failed");
  26917. wc_ed25519_free(&key);
  26918. return ret;
  26919. }
  26920. if (wc_ed25519_sign_msg(msg, msgSz, sig, sigSz, &key) != MP_OKAY)
  26921. WOLFSSL_MSG("wc_curve25519_shared_secret_ex failed");
  26922. else
  26923. ret = WOLFSSL_SUCCESS;
  26924. wc_ed25519_free(&key);
  26925. return ret;
  26926. #endif /* HAVE_ED25519_SIGN && WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_IMPORT */
  26927. }
  26928. /* return 1 if success, 0 if error
  26929. * input and output keys are little endian format
  26930. * pub is a buffer containing public part of key
  26931. */
  26932. int wolfSSL_ED25519_verify(const unsigned char *msg, unsigned int msgSz,
  26933. const unsigned char *pub, unsigned int pubSz,
  26934. const unsigned char *sig, unsigned int sigSz)
  26935. {
  26936. #if !defined(HAVE_ED25519_VERIFY) || !defined(WOLFSSL_KEY_GEN) || !defined(HAVE_ED25519_KEY_IMPORT)
  26937. #if !defined(HAVE_ED25519_VERIFY)
  26938. WOLFSSL_MSG("No ED25519 verify built in");
  26939. #elif !defined(WOLFSSL_KEY_GEN)
  26940. WOLFSSL_MSG("No Key Gen built in");
  26941. #elif !defined(HAVE_ED25519_KEY_IMPORT)
  26942. WOLFSSL_MSG("No ED25519 Key import built in");
  26943. #endif
  26944. (void) msg;
  26945. (void) msgSz;
  26946. (void) pub;
  26947. (void) pubSz;
  26948. (void) sig;
  26949. (void) sigSz;
  26950. return WOLFSSL_FAILURE;
  26951. #else /* HAVE_ED25519_VERIFY && WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_IMPORT */
  26952. ed25519_key key;
  26953. int ret = WOLFSSL_FAILURE, check = 0;
  26954. WOLFSSL_ENTER("wolfSSL_ED25519_verify");
  26955. if (pub == NULL || pubSz != ED25519_PUB_KEY_SIZE ||
  26956. msg == NULL || sig == NULL || sigSz != ED25519_SIG_SIZE) {
  26957. WOLFSSL_MSG("Bad arguments");
  26958. return WOLFSSL_FAILURE;
  26959. }
  26960. /* import key */
  26961. if (wc_ed25519_init(&key) != MP_OKAY) {
  26962. WOLFSSL_MSG("wc_curve25519_init failed");
  26963. return ret;
  26964. }
  26965. if (wc_ed25519_import_public(pub, pubSz, &key) != MP_OKAY){
  26966. WOLFSSL_MSG("wc_ed25519_import_public failed");
  26967. wc_ed25519_free(&key);
  26968. return ret;
  26969. }
  26970. if ((ret = wc_ed25519_verify_msg((byte*)sig, sigSz, msg, msgSz,
  26971. &check, &key)) != MP_OKAY) {
  26972. WOLFSSL_MSG("wc_ed25519_verify_msg failed");
  26973. }
  26974. else if (!check)
  26975. WOLFSSL_MSG("wc_ed25519_verify_msg failed (signature invalid)");
  26976. else
  26977. ret = WOLFSSL_SUCCESS;
  26978. wc_ed25519_free(&key);
  26979. return ret;
  26980. #endif /* HAVE_ED25519_VERIFY && WOLFSSL_KEY_GEN && HAVE_ED25519_KEY_IMPORT */
  26981. }
  26982. #endif /* OPENSSL_EXTRA && HAVE_ED25519 */
  26983. #if defined(OPENSSL_EXTRA) && defined(HAVE_CURVE448)
  26984. /* return 1 if success, 0 if error
  26985. * output keys are little endian format
  26986. */
  26987. int wolfSSL_EC448_generate_key(unsigned char *priv, unsigned int *privSz,
  26988. unsigned char *pub, unsigned int *pubSz)
  26989. {
  26990. #ifndef WOLFSSL_KEY_GEN
  26991. WOLFSSL_MSG("No Key Gen built in");
  26992. (void) priv;
  26993. (void) privSz;
  26994. (void) pub;
  26995. (void) pubSz;
  26996. return WOLFSSL_FAILURE;
  26997. #else /* WOLFSSL_KEY_GEN */
  26998. int ret = WOLFSSL_FAILURE;
  26999. int initTmpRng = 0;
  27000. WC_RNG *rng = NULL;
  27001. #ifdef WOLFSSL_SMALL_STACK
  27002. WC_RNG *tmpRNG = NULL;
  27003. #else
  27004. WC_RNG tmpRNG[1];
  27005. #endif
  27006. WOLFSSL_ENTER("wolfSSL_EC448_generate_key");
  27007. if (priv == NULL || privSz == NULL || *privSz < CURVE448_KEY_SIZE ||
  27008. pub == NULL || pubSz == NULL || *pubSz < CURVE448_KEY_SIZE) {
  27009. WOLFSSL_MSG("Bad arguments");
  27010. return WOLFSSL_FAILURE;
  27011. }
  27012. #ifdef WOLFSSL_SMALL_STACK
  27013. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  27014. if (tmpRNG == NULL)
  27015. return WOLFSSL_FAILURE;
  27016. #endif
  27017. if (wc_InitRng(tmpRNG) == 0) {
  27018. rng = tmpRNG;
  27019. initTmpRng = 1;
  27020. }
  27021. else {
  27022. WOLFSSL_MSG("Bad RNG Init, trying global");
  27023. if (initGlobalRNG == 0)
  27024. WOLFSSL_MSG("Global RNG no Init");
  27025. else
  27026. rng = &globalRNG;
  27027. }
  27028. if (rng) {
  27029. curve448_key key;
  27030. if (wc_curve448_init(&key) != MP_OKAY)
  27031. WOLFSSL_MSG("wc_curve448_init failed");
  27032. else if (wc_curve448_make_key(rng, CURVE448_KEY_SIZE, &key)!=MP_OKAY)
  27033. WOLFSSL_MSG("wc_curve448_make_key failed");
  27034. /* export key pair */
  27035. else if (wc_curve448_export_key_raw_ex(&key, priv, privSz, pub, pubSz,
  27036. EC448_LITTLE_ENDIAN)
  27037. != MP_OKAY)
  27038. WOLFSSL_MSG("wc_curve448_export_key_raw_ex failed");
  27039. else
  27040. ret = WOLFSSL_SUCCESS;
  27041. wc_curve448_free(&key);
  27042. }
  27043. if (initTmpRng)
  27044. wc_FreeRng(tmpRNG);
  27045. #ifdef WOLFSSL_SMALL_STACK
  27046. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  27047. #endif
  27048. return ret;
  27049. #endif /* WOLFSSL_KEY_GEN */
  27050. }
  27051. /* return 1 if success, 0 if error
  27052. * input and output keys are little endian format
  27053. */
  27054. int wolfSSL_EC448_shared_key(unsigned char *shared, unsigned int *sharedSz,
  27055. const unsigned char *priv, unsigned int privSz,
  27056. const unsigned char *pub, unsigned int pubSz)
  27057. {
  27058. #ifndef WOLFSSL_KEY_GEN
  27059. WOLFSSL_MSG("No Key Gen built in");
  27060. (void) shared;
  27061. (void) sharedSz;
  27062. (void) priv;
  27063. (void) privSz;
  27064. (void) pub;
  27065. (void) pubSz;
  27066. return WOLFSSL_FAILURE;
  27067. #else /* WOLFSSL_KEY_GEN */
  27068. int ret = WOLFSSL_FAILURE;
  27069. curve448_key privkey, pubkey;
  27070. WOLFSSL_ENTER("wolfSSL_EC448_shared_key");
  27071. if (shared == NULL || sharedSz == NULL || *sharedSz < CURVE448_KEY_SIZE ||
  27072. priv == NULL || privSz < CURVE448_KEY_SIZE ||
  27073. pub == NULL || pubSz < CURVE448_KEY_SIZE) {
  27074. WOLFSSL_MSG("Bad arguments");
  27075. return WOLFSSL_FAILURE;
  27076. }
  27077. /* import private key */
  27078. if (wc_curve448_init(&privkey) != MP_OKAY) {
  27079. WOLFSSL_MSG("wc_curve448_init privkey failed");
  27080. return ret;
  27081. }
  27082. if (wc_curve448_import_private_ex(priv, privSz, &privkey,
  27083. EC448_LITTLE_ENDIAN) != MP_OKAY) {
  27084. WOLFSSL_MSG("wc_curve448_import_private_ex failed");
  27085. wc_curve448_free(&privkey);
  27086. return ret;
  27087. }
  27088. /* import public key */
  27089. if (wc_curve448_init(&pubkey) != MP_OKAY) {
  27090. WOLFSSL_MSG("wc_curve448_init pubkey failed");
  27091. wc_curve448_free(&privkey);
  27092. return ret;
  27093. }
  27094. if (wc_curve448_import_public_ex(pub, pubSz, &pubkey,
  27095. EC448_LITTLE_ENDIAN) != MP_OKAY) {
  27096. WOLFSSL_MSG("wc_curve448_import_public_ex failed");
  27097. wc_curve448_free(&privkey);
  27098. wc_curve448_free(&pubkey);
  27099. return ret;
  27100. }
  27101. if (wc_curve448_shared_secret_ex(&privkey, &pubkey, shared, sharedSz,
  27102. EC448_LITTLE_ENDIAN) != MP_OKAY)
  27103. WOLFSSL_MSG("wc_curve448_shared_secret_ex failed");
  27104. else
  27105. ret = WOLFSSL_SUCCESS;
  27106. wc_curve448_free(&privkey);
  27107. wc_curve448_free(&pubkey);
  27108. return ret;
  27109. #endif /* WOLFSSL_KEY_GEN */
  27110. }
  27111. #endif /* OPENSSL_EXTRA && HAVE_CURVE448 */
  27112. #if defined(OPENSSL_EXTRA) && defined(HAVE_ED448)
  27113. /* return 1 if success, 0 if error
  27114. * output keys are little endian format
  27115. */
  27116. int wolfSSL_ED448_generate_key(unsigned char *priv, unsigned int *privSz,
  27117. unsigned char *pub, unsigned int *pubSz)
  27118. {
  27119. #ifndef WOLFSSL_KEY_GEN
  27120. WOLFSSL_MSG("No Key Gen built in");
  27121. (void) priv;
  27122. (void) privSz;
  27123. (void) pub;
  27124. (void) pubSz;
  27125. return WOLFSSL_FAILURE;
  27126. #elif !defined(HAVE_ED448_KEY_EXPORT)
  27127. WOLFSSL_MSG("No ED448 key export built in");
  27128. (void) priv;
  27129. (void) privSz;
  27130. (void) pub;
  27131. (void) pubSz;
  27132. return WOLFSSL_FAILURE;
  27133. #else /* WOLFSSL_KEY_GEN && HAVE_ED448_KEY_EXPORT */
  27134. int ret = WOLFSSL_FAILURE;
  27135. int initTmpRng = 0;
  27136. WC_RNG *rng = NULL;
  27137. #ifdef WOLFSSL_SMALL_STACK
  27138. WC_RNG *tmpRNG = NULL;
  27139. #else
  27140. WC_RNG tmpRNG[1];
  27141. #endif
  27142. WOLFSSL_ENTER("wolfSSL_ED448_generate_key");
  27143. if (priv == NULL || privSz == NULL || *privSz < ED448_PRV_KEY_SIZE ||
  27144. pub == NULL || pubSz == NULL || *pubSz < ED448_PUB_KEY_SIZE) {
  27145. WOLFSSL_MSG("Bad arguments");
  27146. return WOLFSSL_FAILURE;
  27147. }
  27148. #ifdef WOLFSSL_SMALL_STACK
  27149. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  27150. if (tmpRNG == NULL)
  27151. return WOLFSSL_FATAL_ERROR;
  27152. #endif
  27153. if (wc_InitRng(tmpRNG) == 0) {
  27154. rng = tmpRNG;
  27155. initTmpRng = 1;
  27156. }
  27157. else {
  27158. WOLFSSL_MSG("Bad RNG Init, trying global");
  27159. if (initGlobalRNG == 0)
  27160. WOLFSSL_MSG("Global RNG no Init");
  27161. else
  27162. rng = &globalRNG;
  27163. }
  27164. if (rng) {
  27165. ed448_key key;
  27166. if (wc_ed448_init(&key) != MP_OKAY)
  27167. WOLFSSL_MSG("wc_ed448_init failed");
  27168. else if (wc_ed448_make_key(rng, ED448_KEY_SIZE, &key) != MP_OKAY)
  27169. WOLFSSL_MSG("wc_ed448_make_key failed");
  27170. /* export private key */
  27171. else if (wc_ed448_export_key(&key, priv, privSz, pub, pubSz) != MP_OKAY)
  27172. WOLFSSL_MSG("wc_ed448_export_key failed");
  27173. else
  27174. ret = WOLFSSL_SUCCESS;
  27175. wc_ed448_free(&key);
  27176. }
  27177. if (initTmpRng)
  27178. wc_FreeRng(tmpRNG);
  27179. #ifdef WOLFSSL_SMALL_STACK
  27180. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  27181. #endif
  27182. return ret;
  27183. #endif /* WOLFSSL_KEY_GEN && HAVE_ED448_KEY_EXPORT */
  27184. }
  27185. /* return 1 if success, 0 if error
  27186. * input and output keys are little endian format
  27187. * priv is a buffer containing private and public part of key
  27188. */
  27189. int wolfSSL_ED448_sign(const unsigned char *msg, unsigned int msgSz,
  27190. const unsigned char *priv, unsigned int privSz,
  27191. unsigned char *sig, unsigned int *sigSz)
  27192. {
  27193. #if !defined(HAVE_ED448_SIGN) || !defined(WOLFSSL_KEY_GEN) || !defined(HAVE_ED448_KEY_IMPORT)
  27194. #if !defined(HAVE_ED448_SIGN)
  27195. WOLFSSL_MSG("No ED448 sign built in");
  27196. #elif !defined(WOLFSSL_KEY_GEN)
  27197. WOLFSSL_MSG("No Key Gen built in");
  27198. #elif !defined(HAVE_ED448_KEY_IMPORT)
  27199. WOLFSSL_MSG("No ED448 Key import built in");
  27200. #endif
  27201. (void) msg;
  27202. (void) msgSz;
  27203. (void) priv;
  27204. (void) privSz;
  27205. (void) sig;
  27206. (void) sigSz;
  27207. return WOLFSSL_FAILURE;
  27208. #else /* HAVE_ED448_SIGN && WOLFSSL_KEY_GEN && HAVE_ED448_KEY_IMPORT */
  27209. ed448_key key;
  27210. int ret = WOLFSSL_FAILURE;
  27211. WOLFSSL_ENTER("wolfSSL_ED448_sign");
  27212. if (priv == NULL || privSz != ED448_PRV_KEY_SIZE || msg == NULL ||
  27213. sig == NULL || *sigSz < ED448_SIG_SIZE) {
  27214. WOLFSSL_MSG("Bad arguments");
  27215. return WOLFSSL_FAILURE;
  27216. }
  27217. /* import key */
  27218. if (wc_ed448_init(&key) != MP_OKAY) {
  27219. WOLFSSL_MSG("wc_curve448_init failed");
  27220. return ret;
  27221. }
  27222. if (wc_ed448_import_private_key(priv, privSz/2, priv+(privSz/2),
  27223. ED448_PUB_KEY_SIZE, &key) != MP_OKAY){
  27224. WOLFSSL_MSG("wc_ed448_import_private failed");
  27225. wc_ed448_free(&key);
  27226. return ret;
  27227. }
  27228. if (wc_ed448_sign_msg(msg, msgSz, sig, sigSz, &key, NULL, 0) != MP_OKAY)
  27229. WOLFSSL_MSG("wc_curve448_shared_secret_ex failed");
  27230. else
  27231. ret = WOLFSSL_SUCCESS;
  27232. wc_ed448_free(&key);
  27233. return ret;
  27234. #endif /* HAVE_ED448_SIGN && WOLFSSL_KEY_GEN && HAVE_ED448_KEY_IMPORT */
  27235. }
  27236. /* return 1 if success, 0 if error
  27237. * input and output keys are little endian format
  27238. * pub is a buffer containing public part of key
  27239. */
  27240. int wolfSSL_ED448_verify(const unsigned char *msg, unsigned int msgSz,
  27241. const unsigned char *pub, unsigned int pubSz,
  27242. const unsigned char *sig, unsigned int sigSz)
  27243. {
  27244. #if !defined(HAVE_ED448_VERIFY) || !defined(WOLFSSL_KEY_GEN) || !defined(HAVE_ED448_KEY_IMPORT)
  27245. #if !defined(HAVE_ED448_VERIFY)
  27246. WOLFSSL_MSG("No ED448 verify built in");
  27247. #elif !defined(WOLFSSL_KEY_GEN)
  27248. WOLFSSL_MSG("No Key Gen built in");
  27249. #elif !defined(HAVE_ED448_KEY_IMPORT)
  27250. WOLFSSL_MSG("No ED448 Key import built in");
  27251. #endif
  27252. (void) msg;
  27253. (void) msgSz;
  27254. (void) pub;
  27255. (void) pubSz;
  27256. (void) sig;
  27257. (void) sigSz;
  27258. return WOLFSSL_FAILURE;
  27259. #else /* HAVE_ED448_VERIFY && WOLFSSL_KEY_GEN && HAVE_ED448_KEY_IMPORT */
  27260. ed448_key key;
  27261. int ret = WOLFSSL_FAILURE, check = 0;
  27262. WOLFSSL_ENTER("wolfSSL_ED448_verify");
  27263. if (pub == NULL || pubSz != ED448_PUB_KEY_SIZE || msg == NULL ||
  27264. sig == NULL || sigSz != ED448_SIG_SIZE) {
  27265. WOLFSSL_MSG("Bad arguments");
  27266. return WOLFSSL_FAILURE;
  27267. }
  27268. /* import key */
  27269. if (wc_ed448_init(&key) != MP_OKAY) {
  27270. WOLFSSL_MSG("wc_curve448_init failed");
  27271. return ret;
  27272. }
  27273. if (wc_ed448_import_public(pub, pubSz, &key) != MP_OKAY){
  27274. WOLFSSL_MSG("wc_ed448_import_public failed");
  27275. wc_ed448_free(&key);
  27276. return ret;
  27277. }
  27278. if ((ret = wc_ed448_verify_msg((byte*)sig, sigSz, msg, msgSz, &check,
  27279. &key, NULL, 0)) != MP_OKAY) {
  27280. WOLFSSL_MSG("wc_ed448_verify_msg failed");
  27281. }
  27282. else if (!check)
  27283. WOLFSSL_MSG("wc_ed448_verify_msg failed (signature invalid)");
  27284. else
  27285. ret = WOLFSSL_SUCCESS;
  27286. wc_ed448_free(&key);
  27287. return ret;
  27288. #endif /* HAVE_ED448_VERIFY && WOLFSSL_KEY_GEN */
  27289. }
  27290. #endif /* OPENSSL_EXTRA && HAVE_ED448 */
  27291. #ifdef WOLFSSL_JNI
  27292. int wolfSSL_set_jobject(WOLFSSL* ssl, void* objPtr)
  27293. {
  27294. WOLFSSL_ENTER("wolfSSL_set_jobject");
  27295. if (ssl != NULL)
  27296. {
  27297. ssl->jObjectRef = objPtr;
  27298. return WOLFSSL_SUCCESS;
  27299. }
  27300. return WOLFSSL_FAILURE;
  27301. }
  27302. void* wolfSSL_get_jobject(WOLFSSL* ssl)
  27303. {
  27304. WOLFSSL_ENTER("wolfSSL_get_jobject");
  27305. if (ssl != NULL)
  27306. return ssl->jObjectRef;
  27307. return NULL;
  27308. }
  27309. #endif /* WOLFSSL_JNI */
  27310. #ifdef WOLFSSL_ASYNC_CRYPT
  27311. int wolfSSL_CTX_AsyncPoll(WOLFSSL_CTX* ctx, WOLF_EVENT** events, int maxEvents,
  27312. WOLF_EVENT_FLAG flags, int* eventCount)
  27313. {
  27314. if (ctx == NULL) {
  27315. return BAD_FUNC_ARG;
  27316. }
  27317. return wolfAsync_EventQueuePoll(&ctx->event_queue, NULL,
  27318. events, maxEvents, flags, eventCount);
  27319. }
  27320. int wolfSSL_AsyncPoll(WOLFSSL* ssl, WOLF_EVENT_FLAG flags)
  27321. {
  27322. int ret, eventCount = 0;
  27323. WOLF_EVENT* events[1];
  27324. if (ssl == NULL) {
  27325. return BAD_FUNC_ARG;
  27326. }
  27327. ret = wolfAsync_EventQueuePoll(&ssl->ctx->event_queue, ssl,
  27328. events, sizeof(events)/sizeof(events[0]), flags, &eventCount);
  27329. if (ret == 0) {
  27330. ret = eventCount;
  27331. }
  27332. return ret;
  27333. }
  27334. #endif /* WOLFSSL_ASYNC_CRYPT */
  27335. #ifdef OPENSSL_EXTRA
  27336. unsigned long wolfSSL_ERR_peek_error_line_data(const char **file, int *line,
  27337. const char **data, int *flags)
  27338. {
  27339. WOLFSSL_ENTER("wolfSSL_ERR_peek_error_line_data");
  27340. (void)line;
  27341. (void)file;
  27342. /* No data or flags stored - error display only in Nginx. */
  27343. if (data != NULL) {
  27344. *data = "";
  27345. }
  27346. if (flags != NULL) {
  27347. *flags = 0;
  27348. }
  27349. #ifdef WOLFSSL_HAVE_ERROR_QUEUE
  27350. {
  27351. int ret = 0;
  27352. while (1) {
  27353. ret = wc_PeekErrorNode(-1, file, NULL, line);
  27354. if (ret == BAD_MUTEX_E || ret == BAD_FUNC_ARG || ret == BAD_STATE_E) {
  27355. WOLFSSL_MSG("Issue peeking at error node in queue");
  27356. return 0;
  27357. }
  27358. /* OpenSSL uses positive error codes */
  27359. if (ret < 0) {
  27360. ret = -ret;
  27361. }
  27362. if (ret == -ASN_NO_PEM_HEADER)
  27363. return (ERR_LIB_PEM << 24) | PEM_R_NO_START_LINE;
  27364. #ifdef OPENSSL_ALL
  27365. /* PARSE_ERROR is returned if an HTTP request is detected. */
  27366. if (ret == -SSL_R_HTTP_REQUEST)
  27367. return (ERR_LIB_SSL << 24) | -SSL_R_HTTP_REQUEST;
  27368. #endif
  27369. #if defined(OPENSSL_ALL) && defined(WOLFSSL_PYTHON)
  27370. if (ret == ASN1_R_HEADER_TOO_LONG) {
  27371. return (ERR_LIB_ASN1 << 24) | ASN1_R_HEADER_TOO_LONG;
  27372. }
  27373. #endif
  27374. if (ret != -WANT_READ && ret != -WANT_WRITE &&
  27375. ret != -ZERO_RETURN && ret != -WOLFSSL_ERROR_ZERO_RETURN &&
  27376. ret != -SOCKET_PEER_CLOSED_E && ret != -SOCKET_ERROR_E)
  27377. break;
  27378. wc_RemoveErrorNode(-1);
  27379. }
  27380. return (unsigned long)ret;
  27381. }
  27382. #else
  27383. return (unsigned long)(0 - NOT_COMPILED_IN);
  27384. #endif
  27385. }
  27386. #endif
  27387. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  27388. #if !defined(WOLFSSL_USER_IO)
  27389. /* converts an IPv6 or IPv4 address into an octet string for use with rfc3280
  27390. * example input would be "127.0.0.1" and the returned value would be 7F000001
  27391. */
  27392. WOLFSSL_ASN1_STRING* wolfSSL_a2i_IPADDRESS(const char* ipa)
  27393. {
  27394. int ipaSz = WOLFSSL_IP4_ADDR_LEN;
  27395. char buf[WOLFSSL_IP6_ADDR_LEN + 1]; /* plus 1 for terminator */
  27396. int af = WOLFSSL_IP4;
  27397. WOLFSSL_ASN1_STRING *ret = NULL;
  27398. if (ipa == NULL)
  27399. return NULL;
  27400. if (XSTRSTR(ipa, ":") != NULL) {
  27401. af = WOLFSSL_IP6;
  27402. ipaSz = WOLFSSL_IP6_ADDR_LEN;
  27403. }
  27404. buf[WOLFSSL_IP6_ADDR_LEN] = '\0';
  27405. if (XINET_PTON(af, ipa, (void*)buf) != 1) {
  27406. WOLFSSL_MSG("Error parsing IP address");
  27407. return NULL;
  27408. }
  27409. ret = wolfSSL_ASN1_STRING_new();
  27410. if (ret != NULL) {
  27411. if (wolfSSL_ASN1_STRING_set(ret, buf, ipaSz) != WOLFSSL_SUCCESS) {
  27412. WOLFSSL_MSG("Error setting the string");
  27413. wolfSSL_ASN1_STRING_free(ret);
  27414. ret = NULL;
  27415. }
  27416. }
  27417. return ret;
  27418. }
  27419. #endif /* !WOLFSSL_USER_IO */
  27420. /* Is the specified cipher suite a fake one used an an extension proxy? */
  27421. static WC_INLINE int SCSV_Check(byte suite0, byte suite)
  27422. {
  27423. (void)suite0;
  27424. (void)suite;
  27425. #ifdef HAVE_RENEGOTIATION_INDICATION
  27426. if (suite0 == CIPHER_BYTE && suite == TLS_EMPTY_RENEGOTIATION_INFO_SCSV)
  27427. return 1;
  27428. #endif
  27429. return 0;
  27430. }
  27431. static WC_INLINE int sslCipherMinMaxCheck(const WOLFSSL *ssl, byte suite0,
  27432. byte suite)
  27433. {
  27434. const CipherSuiteInfo* cipher_names = GetCipherNames();
  27435. int cipherSz = GetCipherNamesSize();
  27436. int i;
  27437. for (i = 0; i < cipherSz; i++)
  27438. if (cipher_names[i].cipherSuite0 == suite0 &&
  27439. cipher_names[i].cipherSuite == suite)
  27440. break;
  27441. if (i == cipherSz)
  27442. return 1;
  27443. /* Check min version */
  27444. if (cipher_names[i].minor < ssl->options.minDowngrade) {
  27445. if (ssl->options.minDowngrade <= TLSv1_2_MINOR &&
  27446. cipher_names[i].minor >= TLSv1_MINOR)
  27447. /* 1.0 ciphersuites are in general available in 1.1 and
  27448. * 1.1 ciphersuites are in general available in 1.2 */
  27449. return 0;
  27450. return 1;
  27451. }
  27452. /* Check max version */
  27453. switch (cipher_names[i].minor) {
  27454. case SSLv3_MINOR :
  27455. return ssl->options.mask & WOLFSSL_OP_NO_SSLv3;
  27456. case TLSv1_MINOR :
  27457. return ssl->options.mask & WOLFSSL_OP_NO_TLSv1;
  27458. case TLSv1_1_MINOR :
  27459. return ssl->options.mask & WOLFSSL_OP_NO_TLSv1_1;
  27460. case TLSv1_2_MINOR :
  27461. return ssl->options.mask & WOLFSSL_OP_NO_TLSv1_2;
  27462. case TLSv1_3_MINOR :
  27463. return ssl->options.mask & WOLFSSL_OP_NO_TLSv1_3;
  27464. default:
  27465. WOLFSSL_MSG("Unrecognized minor version");
  27466. return 1;
  27467. }
  27468. }
  27469. /* returns a pointer to internal cipher suite list. Should not be free'd by
  27470. * caller.
  27471. */
  27472. WOLF_STACK_OF(WOLFSSL_CIPHER) *wolfSSL_get_ciphers_compat(const WOLFSSL *ssl)
  27473. {
  27474. WOLF_STACK_OF(WOLFSSL_CIPHER)* ret = NULL;
  27475. Suites* suites;
  27476. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  27477. const CipherSuiteInfo* cipher_names = GetCipherNames();
  27478. int cipherSz = GetCipherNamesSize();
  27479. #endif
  27480. WOLFSSL_ENTER("wolfSSL_get_ciphers_compat");
  27481. if (ssl == NULL || (ssl->suites == NULL && ssl->ctx->suites == NULL)) {
  27482. return NULL;
  27483. }
  27484. if (ssl->suites != NULL) {
  27485. if (ssl->suites->suiteSz == 0 &&
  27486. InitSSL_Suites((WOLFSSL*)ssl) != WOLFSSL_SUCCESS) {
  27487. WOLFSSL_MSG("Suite initialization failure");
  27488. return NULL;
  27489. }
  27490. suites = ssl->suites;
  27491. }
  27492. else {
  27493. suites = ssl->ctx->suites;
  27494. }
  27495. /* check if stack needs populated */
  27496. if (suites->stack == NULL) {
  27497. int i;
  27498. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  27499. int j;
  27500. /* higher priority of cipher suite will be on top of stack */
  27501. for (i = suites->suiteSz - 2; i >=0; i-=2) {
  27502. #else
  27503. for (i = 0; i < suites->suiteSz; i+=2) {
  27504. #endif
  27505. WOLFSSL_STACK* add;
  27506. /* A couple of suites are placeholders for special options,
  27507. * skip those. */
  27508. if (SCSV_Check(suites->suites[i], suites->suites[i+1])
  27509. || sslCipherMinMaxCheck(ssl, suites->suites[i],
  27510. suites->suites[i+1])) {
  27511. continue;
  27512. }
  27513. add = wolfSSL_sk_new_node(ssl->heap);
  27514. if (add != NULL) {
  27515. add->type = STACK_TYPE_CIPHER;
  27516. add->data.cipher.cipherSuite0 = suites->suites[i];
  27517. add->data.cipher.cipherSuite = suites->suites[i+1];
  27518. add->data.cipher.ssl = ssl;
  27519. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  27520. for (j = 0; j < cipherSz; j++) {
  27521. if (cipher_names[j].cipherSuite0 ==
  27522. add->data.cipher.cipherSuite0 &&
  27523. cipher_names[j].cipherSuite ==
  27524. add->data.cipher.cipherSuite) {
  27525. add->data.cipher.offset = j;
  27526. break;
  27527. }
  27528. }
  27529. #endif
  27530. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  27531. /* in_stack is checked in wolfSSL_CIPHER_description */
  27532. add->data.cipher.in_stack = 1;
  27533. #endif
  27534. add->next = ret;
  27535. if (ret != NULL) {
  27536. add->num = ret->num + 1;
  27537. }
  27538. else {
  27539. add->num = 1;
  27540. }
  27541. ret = add;
  27542. }
  27543. }
  27544. suites->stack = ret;
  27545. }
  27546. return suites->stack;
  27547. }
  27548. #endif /* OPENSSL_ALL || WOLFSSL_NGINX || WOLFSSL_HAPROXY */
  27549. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY) \
  27550. || defined(OPENSSL_EXTRA) || defined(HAVE_LIGHTY) || defined(HAVE_SECRET_CALLBACK)
  27551. long wolfSSL_SSL_CTX_get_timeout(const WOLFSSL_CTX *ctx)
  27552. {
  27553. WOLFSSL_ENTER("wolfSSL_SSL_CTX_get_timeout");
  27554. if (ctx == NULL)
  27555. return 0;
  27556. return ctx->timeout;
  27557. }
  27558. /* returns the time in seconds of the current timeout */
  27559. long wolfSSL_get_timeout(WOLFSSL* ssl)
  27560. {
  27561. WOLFSSL_ENTER("wolfSSL_get_timeout");
  27562. if (ssl == NULL)
  27563. return 0;
  27564. return ssl->timeout;
  27565. }
  27566. #endif
  27567. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY) \
  27568. || defined(OPENSSL_EXTRA) || defined(HAVE_LIGHTY)
  27569. #ifdef HAVE_ECC
  27570. int wolfSSL_SSL_CTX_set_tmp_ecdh(WOLFSSL_CTX *ctx, WOLFSSL_EC_KEY *ecdh)
  27571. {
  27572. WOLFSSL_ENTER("wolfSSL_SSL_CTX_set_tmp_ecdh");
  27573. if (ctx == NULL || ecdh == NULL)
  27574. return BAD_FUNC_ARG;
  27575. ctx->ecdhCurveOID = ecdh->group->curve_oid;
  27576. return WOLFSSL_SUCCESS;
  27577. }
  27578. #endif
  27579. /* Assumes that the session passed in is from the cache. */
  27580. int wolfSSL_SSL_CTX_remove_session(WOLFSSL_CTX *ctx, WOLFSSL_SESSION *s)
  27581. {
  27582. WOLFSSL_ENTER("wolfSSL_SSL_CTX_remove_session");
  27583. s = ClientSessionToSession(s);
  27584. if (ctx == NULL || s == NULL)
  27585. return BAD_FUNC_ARG;
  27586. #ifdef HAVE_EXT_CACHE
  27587. if (!ctx->internalCacheOff)
  27588. #endif
  27589. {
  27590. /* Don't remove session just timeout session. */
  27591. s->timeout = 0;
  27592. #ifndef NO_SESSION_CACHE
  27593. /* Clear the timeout in the cache */
  27594. {
  27595. int row;
  27596. int i;
  27597. SessionRow* sessRow = NULL;
  27598. WOLFSSL_SESSION *cacheSession;
  27599. const byte* id;
  27600. int ret = 0;
  27601. id = s->sessionID;
  27602. if (s->haveAltSessionID)
  27603. id = s->altSessionID;
  27604. row = (int)(HashSession(id, ID_LEN, &ret) % SESSION_ROWS);
  27605. if (ret != 0) {
  27606. WOLFSSL_MSG("Hash session failed");
  27607. return ret;
  27608. }
  27609. sessRow = &SessionCache[row];
  27610. if (SESSION_ROW_LOCK(sessRow) != 0) {
  27611. WOLFSSL_MSG("Session row lock failed");
  27612. return BAD_MUTEX_E;
  27613. }
  27614. for (i = 0; i < SESSIONS_PER_ROW && i < sessRow->totalCount; i++) {
  27615. cacheSession = &sessRow->Sessions[i];
  27616. if (XMEMCMP(id, cacheSession->sessionID, ID_LEN) == 0) {
  27617. if (ctx->method->side != cacheSession->side)
  27618. continue;
  27619. cacheSession->timeout = 0;
  27620. #ifdef HAVE_EX_DATA
  27621. if (cacheSession->ownExData) {
  27622. /* Most recent version of ex data is in cache. Copy it
  27623. * over so the user can free it. */
  27624. XMEMCPY(&s->ex_data, &cacheSession->ex_data,
  27625. sizeof(WOLFSSL_CRYPTO_EX_DATA));
  27626. }
  27627. cacheSession->ownExData = 0; /* We clear below */
  27628. s->ownExData = 1;
  27629. #endif
  27630. break;
  27631. }
  27632. }
  27633. SESSION_ROW_UNLOCK(sessRow);
  27634. }
  27635. #endif
  27636. }
  27637. #if defined(HAVE_EXT_CACHE) || defined(HAVE_EX_DATA)
  27638. if (ctx->rem_sess_cb != NULL) {
  27639. ctx->rem_sess_cb(ctx, s);
  27640. }
  27641. #endif
  27642. return 0;
  27643. }
  27644. #ifndef NO_BIO
  27645. BIO *wolfSSL_SSL_get_rbio(const WOLFSSL *s)
  27646. {
  27647. WOLFSSL_ENTER("wolfSSL_SSL_get_rbio");
  27648. /* Nginx sets the buffer size if the read BIO is different to write BIO.
  27649. * The setting buffer size doesn't do anything so return NULL for both.
  27650. */
  27651. if (s == NULL)
  27652. return NULL;
  27653. return s->biord;
  27654. }
  27655. BIO *wolfSSL_SSL_get_wbio(const WOLFSSL *s)
  27656. {
  27657. WOLFSSL_ENTER("wolfSSL_SSL_get_wbio");
  27658. (void)s;
  27659. /* Nginx sets the buffer size if the read BIO is different to write BIO.
  27660. * The setting buffer size doesn't do anything so return NULL for both.
  27661. */
  27662. if (s == NULL)
  27663. return NULL;
  27664. return s->biowr;
  27665. }
  27666. #endif /* !NO_BIO */
  27667. int wolfSSL_SSL_do_handshake(WOLFSSL *s)
  27668. {
  27669. WOLFSSL_ENTER("wolfSSL_SSL_do_handshake");
  27670. if (s == NULL)
  27671. return WOLFSSL_FAILURE;
  27672. if (s->options.side == WOLFSSL_CLIENT_END) {
  27673. #ifndef NO_WOLFSSL_CLIENT
  27674. return wolfSSL_connect(s);
  27675. #else
  27676. WOLFSSL_MSG("Client not compiled in");
  27677. return WOLFSSL_FAILURE;
  27678. #endif
  27679. }
  27680. #ifndef NO_WOLFSSL_SERVER
  27681. return wolfSSL_accept(s);
  27682. #else
  27683. WOLFSSL_MSG("Server not compiled in");
  27684. return WOLFSSL_FAILURE;
  27685. #endif
  27686. }
  27687. #if defined(OPENSSL_VERSION_NUMBER) && OPENSSL_VERSION_NUMBER >= 0x10100000L
  27688. int wolfSSL_SSL_in_init(const WOLFSSL *ssl)
  27689. #else
  27690. int wolfSSL_SSL_in_init(WOLFSSL *ssl)
  27691. #endif
  27692. {
  27693. WOLFSSL_ENTER("SSL_in_init");
  27694. if (ssl == NULL)
  27695. return WOLFSSL_FAILURE;
  27696. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  27697. return ssl->options.connectState < SECOND_REPLY_DONE;
  27698. }
  27699. return ssl->options.acceptState < ACCEPT_THIRD_REPLY_DONE;
  27700. }
  27701. int wolfSSL_SSL_in_connect_init(WOLFSSL* ssl)
  27702. {
  27703. WOLFSSL_ENTER("SSL_connect_init");
  27704. if (ssl == NULL)
  27705. return WOLFSSL_FAILURE;
  27706. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  27707. return ssl->options.connectState > CONNECT_BEGIN &&
  27708. ssl->options.connectState < SECOND_REPLY_DONE;
  27709. }
  27710. return ssl->options.acceptState > ACCEPT_BEGIN &&
  27711. ssl->options.acceptState < ACCEPT_THIRD_REPLY_DONE;
  27712. }
  27713. #ifndef NO_SESSION_CACHE
  27714. WOLFSSL_SESSION *wolfSSL_SSL_get0_session(const WOLFSSL *ssl)
  27715. {
  27716. WOLFSSL_ENTER("wolfSSL_SSL_get0_session");
  27717. return ssl->session;
  27718. }
  27719. #endif /* NO_SESSION_CACHE */
  27720. #ifndef NO_BIO
  27721. int wolfSSL_a2i_ASN1_INTEGER(WOLFSSL_BIO *bio, WOLFSSL_ASN1_INTEGER *asn1,
  27722. char *buf, int size)
  27723. {
  27724. int readNextLine;
  27725. int lineLen;
  27726. int len;
  27727. byte isNumCheck;
  27728. word32 outLen;
  27729. const int extraTagSz = MAX_LENGTH_SZ + 1;
  27730. byte intTag[MAX_LENGTH_SZ + 1];
  27731. int idx = 0;
  27732. WOLFSSL_ENTER("wolfSSL_a2i_ASN1_INTEGER");
  27733. if (!bio || !asn1 || !buf || size <= 0) {
  27734. WOLFSSL_MSG("Bad parameter");
  27735. return WOLFSSL_FAILURE;
  27736. }
  27737. /* Reset asn1 */
  27738. if (asn1->isDynamic && asn1->data) {
  27739. XFREE(asn1->data, NULL, DYNAMIC_TYPE_OPENSSL);
  27740. }
  27741. XMEMSET(asn1->intData, 0, WOLFSSL_ASN1_INTEGER_MAX);
  27742. asn1->data = asn1->intData;
  27743. asn1->isDynamic = 0;
  27744. asn1->length = 0;
  27745. asn1->negative = 0;
  27746. asn1->type = V_ASN1_INTEGER;
  27747. lineLen = wolfSSL_BIO_gets(bio, buf, size);
  27748. do {
  27749. readNextLine = 0;
  27750. if (lineLen <= 0) {
  27751. WOLFSSL_MSG("wolfSSL_BIO_gets error");
  27752. return WOLFSSL_FAILURE;
  27753. }
  27754. while (lineLen && (buf[lineLen-1] == '\n' || buf[lineLen-1] == '\r'))
  27755. lineLen--;
  27756. if (buf[lineLen-1] == '\\')
  27757. readNextLine = 1;
  27758. /* Ignore none-hex chars at the end of the line */
  27759. outLen = 1;
  27760. while (lineLen && Base16_Decode((byte*)buf + lineLen - 1, 1,
  27761. &isNumCheck, &outLen) == ASN_INPUT_E)
  27762. lineLen--;
  27763. if (!lineLen || lineLen % 2) {
  27764. WOLFSSL_MSG("Invalid line length");
  27765. return WOLFSSL_FAILURE;
  27766. }
  27767. len = asn1->length + (lineLen/2);
  27768. /* Check if it will fit in static memory and
  27769. * save space for the ASN tag in front */
  27770. if (len > (int)(WOLFSSL_ASN1_INTEGER_MAX - extraTagSz)) {
  27771. /* Allocate mem for data */
  27772. if (asn1->isDynamic) {
  27773. byte* tmp = (byte*)XREALLOC(asn1->data, len + extraTagSz, NULL,
  27774. DYNAMIC_TYPE_OPENSSL);
  27775. if (!tmp) {
  27776. WOLFSSL_MSG("realloc error");
  27777. return WOLFSSL_FAILURE;
  27778. }
  27779. asn1->data = tmp;
  27780. }
  27781. else {
  27782. /* Up to this point asn1->data pointed to asn1->intData.
  27783. * Now that the size has grown larger than intData can handle
  27784. * the asn1 structure moves to a dynamic type with isDynamic
  27785. * flag being set and asn1->data being malloc'd. */
  27786. asn1->data = (byte*)XMALLOC(len + extraTagSz, NULL,
  27787. DYNAMIC_TYPE_OPENSSL);
  27788. if (!asn1->data) {
  27789. WOLFSSL_MSG("malloc error");
  27790. return WOLFSSL_FAILURE;
  27791. }
  27792. asn1->isDynamic = 1;
  27793. XMEMCPY(asn1->data, asn1->intData, asn1->length);
  27794. }
  27795. }
  27796. len = lineLen/2;
  27797. if (Base16_Decode((byte*)buf, lineLen, asn1->data + asn1->length,
  27798. (word32*)&len) != 0) {
  27799. WOLFSSL_MSG("Base16_Decode error");
  27800. return WOLFSSL_FAILURE;
  27801. }
  27802. asn1->length += len;
  27803. } while (readNextLine);
  27804. /* Write ASN tag */
  27805. idx = SetASNInt(asn1->length, asn1->data[0], intTag);
  27806. XMEMMOVE(asn1->data + idx, asn1->data, asn1->length);
  27807. XMEMCPY(asn1->data, intTag, idx);
  27808. asn1->dataMax = asn1->length += idx;
  27809. return WOLFSSL_SUCCESS;
  27810. }
  27811. int wolfSSL_i2a_ASN1_INTEGER(BIO *bp, const WOLFSSL_ASN1_INTEGER *a)
  27812. {
  27813. word32 idx = 1;
  27814. int len = 0;
  27815. byte buf[512];
  27816. word32 bufLen = 512;
  27817. WOLFSSL_ENTER("wolfSSL_i2a_ASN1_INTEGER");
  27818. if (bp == NULL || a == NULL)
  27819. return WOLFSSL_FAILURE;
  27820. /* Skip ASN.1 INTEGER (type) byte. */
  27821. if (a->data[idx] == 0x80 || /* Indefinite length, can't determine length */
  27822. GetLength(a->data, &idx, &len, a->length) < 0) {
  27823. return 0;
  27824. }
  27825. /* Zero length integer is the value zero. */
  27826. if (len == 0) {
  27827. return wolfSSL_BIO_write(bp, "00", 2);
  27828. }
  27829. if (Base16_Encode(a->data + idx, len, buf, &bufLen) != 0 ||
  27830. bufLen == 0) {
  27831. return 0;
  27832. }
  27833. return wolfSSL_BIO_write(bp, buf, bufLen - 1); /* Don't write out NULL char */
  27834. }
  27835. #endif /* !NO_BIO */
  27836. #if defined(HAVE_SESSION_TICKET) && !defined(NO_WOLFSSL_SERVER)
  27837. /* Expected return values from implementations of OpenSSL ticket key callback.
  27838. */
  27839. #define TICKET_KEY_CB_RET_FAILURE (-1)
  27840. #define TICKET_KEY_CB_RET_NOT_FOUND 0
  27841. #define TICKET_KEY_CB_RET_OK 1
  27842. #define TICKET_KEY_CB_RET_RENEW 2
  27843. /* Implementation of session ticket encryption/decryption using OpenSSL
  27844. * callback to initialize the cipher and HMAC.
  27845. *
  27846. * ssl The SSL/TLS object.
  27847. * keyName The key name - used to identify the key to be used.
  27848. * iv The IV to use.
  27849. * mac The MAC of the encrypted data.
  27850. * enc Encrypt ticket.
  27851. * encTicket The ticket data.
  27852. * encTicketLen The length of the ticket data.
  27853. * encLen The encrypted/decrypted ticket length - output length.
  27854. * ctx Ignored. Application specific data.
  27855. * returns WOLFSSL_TICKET_RET_OK to indicate success,
  27856. * WOLFSSL_TICKET_RET_CREATE if a new ticket is required and
  27857. * WOLFSSL_TICKET_RET_FATAL on error.
  27858. */
  27859. static int wolfSSL_TicketKeyCb(WOLFSSL* ssl,
  27860. unsigned char keyName[WOLFSSL_TICKET_NAME_SZ],
  27861. unsigned char iv[WOLFSSL_TICKET_IV_SZ],
  27862. unsigned char mac[WOLFSSL_TICKET_MAC_SZ],
  27863. int enc, unsigned char* encTicket,
  27864. int encTicketLen, int* encLen, void* ctx)
  27865. {
  27866. byte digest[WC_MAX_DIGEST_SIZE];
  27867. WOLFSSL_EVP_CIPHER_CTX evpCtx;
  27868. WOLFSSL_HMAC_CTX hmacCtx;
  27869. unsigned int mdSz = 0;
  27870. int len = 0;
  27871. int ret = WOLFSSL_TICKET_RET_FATAL;
  27872. int res;
  27873. (void)ctx;
  27874. WOLFSSL_ENTER("wolfSSL_TicketKeyCb");
  27875. if (ssl == NULL || ssl->ctx == NULL || ssl->ctx->ticketEncWrapCb == NULL) {
  27876. WOLFSSL_MSG("Bad parameter");
  27877. return WOLFSSL_TICKET_RET_FATAL;
  27878. }
  27879. /* Initialize the cipher and HMAC. */
  27880. wolfSSL_EVP_CIPHER_CTX_init(&evpCtx);
  27881. if (wolfSSL_HMAC_CTX_Init(&hmacCtx) != WOLFSSL_SUCCESS) {
  27882. WOLFSSL_MSG("wolfSSL_HMAC_CTX_Init error");
  27883. return WOLFSSL_TICKET_RET_FATAL;
  27884. }
  27885. res = ssl->ctx->ticketEncWrapCb(ssl, keyName,
  27886. iv, &evpCtx, &hmacCtx, enc);
  27887. if (res != TICKET_KEY_CB_RET_OK && res != TICKET_KEY_CB_RET_RENEW) {
  27888. WOLFSSL_MSG("Ticket callback error");
  27889. ret = WOLFSSL_TICKET_RET_FATAL;
  27890. goto end;
  27891. }
  27892. if (enc)
  27893. {
  27894. /* Encrypt in place. */
  27895. if (!wolfSSL_EVP_CipherUpdate(&evpCtx, encTicket, &len,
  27896. encTicket, encTicketLen))
  27897. goto end;
  27898. encTicketLen = len;
  27899. if (!wolfSSL_EVP_EncryptFinal(&evpCtx, &encTicket[encTicketLen], &len))
  27900. goto end;
  27901. /* Total length of encrypted data. */
  27902. encTicketLen += len;
  27903. *encLen = encTicketLen;
  27904. /* HMAC the encrypted data into the parameter 'mac'. */
  27905. if (!wolfSSL_HMAC_Update(&hmacCtx, encTicket, encTicketLen))
  27906. goto end;
  27907. #ifdef WOLFSSL_SHA512
  27908. /* Check for SHA512, which would overrun the mac buffer */
  27909. if (hmacCtx.hmac.macType == WC_SHA512)
  27910. goto end;
  27911. #endif
  27912. if (!wolfSSL_HMAC_Final(&hmacCtx, mac, &mdSz))
  27913. goto end;
  27914. }
  27915. else
  27916. {
  27917. /* HMAC the encrypted data and compare it to the passed in data. */
  27918. if (!wolfSSL_HMAC_Update(&hmacCtx, encTicket, encTicketLen))
  27919. goto end;
  27920. if (!wolfSSL_HMAC_Final(&hmacCtx, digest, &mdSz))
  27921. goto end;
  27922. if (XMEMCMP(mac, digest, mdSz) != 0)
  27923. goto end;
  27924. /* Decrypt the ticket data in place. */
  27925. if (!wolfSSL_EVP_CipherUpdate(&evpCtx, encTicket, &len,
  27926. encTicket, encTicketLen))
  27927. goto end;
  27928. encTicketLen = len;
  27929. if (!wolfSSL_EVP_DecryptFinal(&evpCtx, &encTicket[encTicketLen], &len))
  27930. goto end;
  27931. /* Total length of decrypted data. */
  27932. *encLen = encTicketLen + len;
  27933. }
  27934. if (res == TICKET_KEY_CB_RET_RENEW && !IsAtLeastTLSv1_3(ssl->version)
  27935. && !enc)
  27936. ret = WOLFSSL_TICKET_RET_CREATE;
  27937. else
  27938. ret = WOLFSSL_TICKET_RET_OK;
  27939. end:
  27940. (void)wc_HmacFree(&hmacCtx.hmac);
  27941. return ret;
  27942. }
  27943. /* Set the callback to use when encrypting/decrypting tickets.
  27944. *
  27945. * ctx The SSL/TLS context object.
  27946. * cb The OpenSSL session ticket callback.
  27947. * returns WOLFSSL_SUCCESS to indicate success.
  27948. */
  27949. int wolfSSL_CTX_set_tlsext_ticket_key_cb(WOLFSSL_CTX *ctx, ticketCompatCb cb)
  27950. {
  27951. /* Set the ticket encryption callback to be a wrapper around OpenSSL
  27952. * callback.
  27953. */
  27954. ctx->ticketEncCb = wolfSSL_TicketKeyCb;
  27955. ctx->ticketEncWrapCb = cb;
  27956. return WOLFSSL_SUCCESS;
  27957. }
  27958. #endif /* HAVE_SESSION_TICKET */
  27959. #endif /* OPENSSL_ALL || WOLFSSL_NGINX || WOLFSSL_HAPROXY ||
  27960. OPENSSL_EXTRA || HAVE_LIGHTY */
  27961. #if defined(HAVE_SESSION_TICKET) && !defined(WOLFSSL_NO_DEF_TICKET_ENC_CB) && \
  27962. !defined(NO_WOLFSSL_SERVER)
  27963. /* Serialize the session ticket encryption keys.
  27964. *
  27965. * @param [in] ctx SSL/TLS context object.
  27966. * @param [in] keys Buffer to hold session ticket keys.
  27967. * @param [in] keylen Length of buffer.
  27968. * @return WOLFSSL_SUCCESS on success.
  27969. * @return WOLFSSL_FAILURE when ctx is NULL, keys is NULL or keylen is not the
  27970. * correct length.
  27971. */
  27972. long wolfSSL_CTX_get_tlsext_ticket_keys(WOLFSSL_CTX *ctx,
  27973. unsigned char *keys, int keylen)
  27974. {
  27975. if (ctx == NULL || keys == NULL) {
  27976. return WOLFSSL_FAILURE;
  27977. }
  27978. if (keylen != WOLFSSL_TICKET_KEYS_SZ) {
  27979. return WOLFSSL_FAILURE;
  27980. }
  27981. XMEMCPY(keys, ctx->ticketKeyCtx.name, WOLFSSL_TICKET_NAME_SZ);
  27982. keys += WOLFSSL_TICKET_NAME_SZ;
  27983. XMEMCPY(keys, ctx->ticketKeyCtx.key[0], WOLFSSL_TICKET_KEY_SZ);
  27984. keys += WOLFSSL_TICKET_KEY_SZ;
  27985. XMEMCPY(keys, ctx->ticketKeyCtx.key[1], WOLFSSL_TICKET_KEY_SZ);
  27986. keys += WOLFSSL_TICKET_KEY_SZ;
  27987. c32toa(ctx->ticketKeyCtx.expirary[0], keys);
  27988. keys += OPAQUE32_LEN;
  27989. c32toa(ctx->ticketKeyCtx.expirary[1], keys);
  27990. return WOLFSSL_SUCCESS;
  27991. }
  27992. /* Deserialize the session ticket encryption keys.
  27993. *
  27994. * @param [in] ctx SSL/TLS context object.
  27995. * @param [in] keys Session ticket keys.
  27996. * @param [in] keylen Length of data.
  27997. * @return WOLFSSL_SUCCESS on success.
  27998. * @return WOLFSSL_FAILURE when ctx is NULL, keys is NULL or keylen is not the
  27999. * correct length.
  28000. */
  28001. long wolfSSL_CTX_set_tlsext_ticket_keys(WOLFSSL_CTX *ctx,
  28002. unsigned char *keys, int keylen)
  28003. {
  28004. if (ctx == NULL || keys == NULL) {
  28005. return WOLFSSL_FAILURE;
  28006. }
  28007. if (keylen != WOLFSSL_TICKET_KEYS_SZ) {
  28008. return WOLFSSL_FAILURE;
  28009. }
  28010. XMEMCPY(ctx->ticketKeyCtx.name, keys, WOLFSSL_TICKET_NAME_SZ);
  28011. keys += WOLFSSL_TICKET_NAME_SZ;
  28012. XMEMCPY(ctx->ticketKeyCtx.key[0], keys, WOLFSSL_TICKET_KEY_SZ);
  28013. keys += WOLFSSL_TICKET_KEY_SZ;
  28014. XMEMCPY(ctx->ticketKeyCtx.key[1], keys, WOLFSSL_TICKET_KEY_SZ);
  28015. keys += WOLFSSL_TICKET_KEY_SZ;
  28016. ato32(keys, &ctx->ticketKeyCtx.expirary[0]);
  28017. keys += OPAQUE32_LEN;
  28018. ato32(keys, &ctx->ticketKeyCtx.expirary[1]);
  28019. return WOLFSSL_SUCCESS;
  28020. }
  28021. #endif
  28022. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  28023. #ifdef HAVE_OCSP
  28024. /* Not an OpenSSL API. */
  28025. int wolfSSL_get_ocsp_response(WOLFSSL* ssl, byte** response)
  28026. {
  28027. *response = ssl->ocspResp;
  28028. return ssl->ocspRespSz;
  28029. }
  28030. /* Not an OpenSSL API. */
  28031. char* wolfSSL_get_ocsp_url(WOLFSSL* ssl)
  28032. {
  28033. return ssl->url;
  28034. }
  28035. /* Not an OpenSSL API. */
  28036. int wolfSSL_set_ocsp_url(WOLFSSL* ssl, char* url)
  28037. {
  28038. if (ssl == NULL)
  28039. return WOLFSSL_FAILURE;
  28040. ssl->url = url;
  28041. return WOLFSSL_SUCCESS;
  28042. }
  28043. #endif /* OCSP */
  28044. #endif /* OPENSSL_ALL || WOLFSSL_NGINX || WOLFSSL_HAPROXY */
  28045. #if defined(HAVE_OCSP) && !defined(NO_ASN_TIME)
  28046. int wolfSSL_get_ocsp_producedDate(
  28047. WOLFSSL *ssl,
  28048. byte *producedDate,
  28049. size_t producedDate_space,
  28050. int *producedDateFormat)
  28051. {
  28052. if ((ssl->ocspProducedDateFormat != ASN_UTC_TIME) &&
  28053. (ssl->ocspProducedDateFormat != ASN_GENERALIZED_TIME))
  28054. return BAD_FUNC_ARG;
  28055. if ((producedDate == NULL) || (producedDateFormat == NULL))
  28056. return BAD_FUNC_ARG;
  28057. if (XSTRLEN((char *)ssl->ocspProducedDate) >= producedDate_space)
  28058. return BUFFER_E;
  28059. XSTRNCPY((char *)producedDate, (const char *)ssl->ocspProducedDate, producedDate_space);
  28060. *producedDateFormat = ssl->ocspProducedDateFormat;
  28061. return 0;
  28062. }
  28063. int wolfSSL_get_ocsp_producedDate_tm(WOLFSSL *ssl, struct tm *produced_tm) {
  28064. int idx = 0;
  28065. if ((ssl->ocspProducedDateFormat != ASN_UTC_TIME) &&
  28066. (ssl->ocspProducedDateFormat != ASN_GENERALIZED_TIME))
  28067. return BAD_FUNC_ARG;
  28068. if (produced_tm == NULL)
  28069. return BAD_FUNC_ARG;
  28070. if (ExtractDate(ssl->ocspProducedDate,
  28071. (unsigned char)ssl->ocspProducedDateFormat, produced_tm, &idx))
  28072. return 0;
  28073. else
  28074. return ASN_PARSE_E;
  28075. }
  28076. #endif
  28077. #if defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY) || \
  28078. defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  28079. int wolfSSL_CTX_get_extra_chain_certs(WOLFSSL_CTX* ctx, WOLF_STACK_OF(X509)** chain)
  28080. {
  28081. word32 idx;
  28082. word32 length;
  28083. WOLFSSL_STACK* node;
  28084. WOLFSSL_STACK* last = NULL;
  28085. if (ctx == NULL || chain == NULL) {
  28086. chain = NULL;
  28087. return WOLFSSL_FAILURE;
  28088. }
  28089. if (ctx->x509Chain != NULL) {
  28090. *chain = ctx->x509Chain;
  28091. return WOLFSSL_SUCCESS;
  28092. }
  28093. /* If there are no chains then success! */
  28094. *chain = NULL;
  28095. if (ctx->certChain == NULL || ctx->certChain->length == 0) {
  28096. return WOLFSSL_SUCCESS;
  28097. }
  28098. /* Create a new stack of WOLFSSL_X509 object from chain buffer. */
  28099. for (idx = 0; idx < ctx->certChain->length; ) {
  28100. node = (WOLFSSL_STACK*)XMALLOC(sizeof(WOLFSSL_STACK), NULL,
  28101. DYNAMIC_TYPE_OPENSSL);
  28102. if (node == NULL)
  28103. return WOLFSSL_FAILURE;
  28104. node->next = NULL;
  28105. /* 3 byte length | X509 DER data */
  28106. ato24(ctx->certChain->buffer + idx, &length);
  28107. idx += 3;
  28108. /* Create a new X509 from DER encoded data. */
  28109. node->data.x509 = wolfSSL_X509_d2i(NULL, ctx->certChain->buffer + idx,
  28110. length);
  28111. if (node->data.x509 == NULL) {
  28112. XFREE(node, NULL, DYNAMIC_TYPE_OPENSSL);
  28113. /* Return as much of the chain as we created. */
  28114. ctx->x509Chain = *chain;
  28115. return WOLFSSL_FAILURE;
  28116. }
  28117. idx += length;
  28118. /* Add object to the end of the stack. */
  28119. if (last == NULL) {
  28120. node->num = 1;
  28121. *chain = node;
  28122. }
  28123. else {
  28124. (*chain)->num++;
  28125. last->next = node;
  28126. }
  28127. last = node;
  28128. }
  28129. ctx->x509Chain = *chain;
  28130. return WOLFSSL_SUCCESS;
  28131. }
  28132. int wolfSSL_CTX_get_tlsext_status_cb(WOLFSSL_CTX* ctx, tlsextStatusCb* cb)
  28133. {
  28134. if (ctx == NULL || ctx->cm == NULL || cb == NULL)
  28135. return WOLFSSL_FAILURE;
  28136. #if !defined(NO_WOLFSSL_SERVER) && (defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  28137. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2))
  28138. if (ctx->cm->ocsp_stapling == NULL)
  28139. return WOLFSSL_FAILURE;
  28140. *cb = ctx->cm->ocsp_stapling->statusCb;
  28141. #else
  28142. (void)cb;
  28143. *cb = NULL;
  28144. #endif
  28145. return WOLFSSL_SUCCESS;
  28146. }
  28147. int wolfSSL_CTX_set_tlsext_status_cb(WOLFSSL_CTX* ctx, tlsextStatusCb cb)
  28148. {
  28149. if (ctx == NULL || ctx->cm == NULL)
  28150. return WOLFSSL_FAILURE;
  28151. #if !defined(NO_WOLFSSL_SERVER) && (defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  28152. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2))
  28153. /* Ensure stapling is on for callback to be used. */
  28154. wolfSSL_CTX_EnableOCSPStapling(ctx);
  28155. if (ctx->cm->ocsp_stapling == NULL)
  28156. return WOLFSSL_FAILURE;
  28157. ctx->cm->ocsp_stapling->statusCb = cb;
  28158. #else
  28159. (void)cb;
  28160. #endif
  28161. return WOLFSSL_SUCCESS;
  28162. }
  28163. int wolfSSL_CTX_get0_chain_certs(WOLFSSL_CTX *ctx,
  28164. WOLF_STACK_OF(WOLFSSL_X509) **sk)
  28165. {
  28166. WOLFSSL_ENTER("wolfSSL_CTX_get0_chain_certs");
  28167. if (ctx == NULL || sk == NULL) {
  28168. WOLFSSL_MSG("Bad parameter");
  28169. return WOLFSSL_FAILURE;
  28170. }
  28171. *sk = ctx->x509Chain;
  28172. return WOLFSSL_SUCCESS;
  28173. }
  28174. #ifdef KEEP_OUR_CERT
  28175. int wolfSSL_get0_chain_certs(WOLFSSL *ssl,
  28176. WOLF_STACK_OF(WOLFSSL_X509) **sk)
  28177. {
  28178. WOLFSSL_ENTER("wolfSSL_get0_chain_certs");
  28179. if (ssl == NULL || sk == NULL) {
  28180. WOLFSSL_MSG("Bad parameter");
  28181. return WOLFSSL_FAILURE;
  28182. }
  28183. *sk = ssl->ourCertChain;
  28184. return WOLFSSL_SUCCESS;
  28185. }
  28186. #endif
  28187. WOLF_STACK_OF(WOLFSSL_STRING)* wolfSSL_sk_WOLFSSL_STRING_new(void)
  28188. {
  28189. WOLF_STACK_OF(WOLFSSL_STRING)* ret = wolfSSL_sk_new_node(NULL);
  28190. if (ret) {
  28191. ret->type = STACK_TYPE_STRING;
  28192. }
  28193. return ret;
  28194. }
  28195. void wolfSSL_WOLFSSL_STRING_free(WOLFSSL_STRING s)
  28196. {
  28197. WOLFSSL_ENTER("wolfSSL_WOLFSSL_STRING_free");
  28198. if (s != NULL)
  28199. XFREE(s, NULL, DYNAMIC_TYPE_OPENSSL);
  28200. }
  28201. void wolfSSL_sk_WOLFSSL_STRING_free(WOLF_STACK_OF(WOLFSSL_STRING)* sk)
  28202. {
  28203. WOLFSSL_STACK* tmp;
  28204. WOLFSSL_ENTER("wolfSSL_sk_WOLFSSL_STRING_free");
  28205. if (sk == NULL)
  28206. return;
  28207. /* parse through stack freeing each node */
  28208. while (sk) {
  28209. tmp = sk->next;
  28210. XFREE(sk->data.string, NULL, DYNAMIC_TYPE_OPENSSL);
  28211. XFREE(sk, NULL, DYNAMIC_TYPE_OPENSSL);
  28212. sk = tmp;
  28213. }
  28214. }
  28215. WOLFSSL_STRING wolfSSL_sk_WOLFSSL_STRING_value(WOLF_STACK_OF(WOLFSSL_STRING)* strings,
  28216. int idx)
  28217. {
  28218. for (; idx > 0 && strings != NULL; idx--)
  28219. strings = strings->next;
  28220. if (strings == NULL)
  28221. return NULL;
  28222. return strings->data.string;
  28223. }
  28224. int wolfSSL_sk_WOLFSSL_STRING_num(WOLF_STACK_OF(WOLFSSL_STRING)* strings)
  28225. {
  28226. if (strings)
  28227. return (int)strings->num;
  28228. return 0;
  28229. }
  28230. #endif /* WOLFSSL_NGINX || WOLFSSL_HAPROXY || OPENSSL_EXTRA || OPENSSL_ALL */
  28231. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || \
  28232. defined(WOLFSSL_HAPROXY) || defined(HAVE_LIGHTY)
  28233. #ifdef HAVE_ALPN
  28234. void wolfSSL_get0_alpn_selected(const WOLFSSL *ssl, const unsigned char **data,
  28235. unsigned int *len)
  28236. {
  28237. word16 nameLen;
  28238. if (ssl != NULL && data != NULL && len != NULL) {
  28239. TLSX_ALPN_GetRequest(ssl->extensions, (void **)data, &nameLen);
  28240. *len = nameLen;
  28241. }
  28242. }
  28243. int wolfSSL_select_next_proto(unsigned char **out, unsigned char *outLen,
  28244. const unsigned char *in, unsigned int inLen,
  28245. const unsigned char *clientNames,
  28246. unsigned int clientLen)
  28247. {
  28248. unsigned int i, j;
  28249. byte lenIn, lenClient;
  28250. if (out == NULL || outLen == NULL || in == NULL || clientNames == NULL)
  28251. return OPENSSL_NPN_UNSUPPORTED;
  28252. for (i = 0; i < inLen; i += lenIn) {
  28253. lenIn = in[i++];
  28254. for (j = 0; j < clientLen; j += lenClient) {
  28255. lenClient = clientNames[j++];
  28256. if (lenIn != lenClient)
  28257. continue;
  28258. if (XMEMCMP(in + i, clientNames + j, lenIn) == 0) {
  28259. *out = (unsigned char *)(in + i);
  28260. *outLen = lenIn;
  28261. return OPENSSL_NPN_NEGOTIATED;
  28262. }
  28263. }
  28264. }
  28265. *out = (unsigned char *)clientNames + 1;
  28266. *outLen = clientNames[0];
  28267. return OPENSSL_NPN_NO_OVERLAP;
  28268. }
  28269. void wolfSSL_CTX_set_alpn_select_cb(WOLFSSL_CTX *ctx,
  28270. int (*cb) (WOLFSSL *ssl,
  28271. const unsigned char **out,
  28272. unsigned char *outlen,
  28273. const unsigned char *in,
  28274. unsigned int inlen,
  28275. void *arg), void *arg)
  28276. {
  28277. if (ctx != NULL) {
  28278. ctx->alpnSelect = cb;
  28279. ctx->alpnSelectArg = arg;
  28280. }
  28281. }
  28282. void wolfSSL_CTX_set_next_protos_advertised_cb(WOLFSSL_CTX *s,
  28283. int (*cb) (WOLFSSL *ssl,
  28284. const unsigned char
  28285. **out,
  28286. unsigned int *outlen,
  28287. void *arg), void *arg)
  28288. {
  28289. (void)s;
  28290. (void)cb;
  28291. (void)arg;
  28292. WOLFSSL_STUB("wolfSSL_CTX_set_next_protos_advertised_cb");
  28293. }
  28294. void wolfSSL_CTX_set_next_proto_select_cb(WOLFSSL_CTX *s,
  28295. int (*cb) (WOLFSSL *ssl,
  28296. unsigned char **out,
  28297. unsigned char *outlen,
  28298. const unsigned char *in,
  28299. unsigned int inlen,
  28300. void *arg), void *arg)
  28301. {
  28302. (void)s;
  28303. (void)cb;
  28304. (void)arg;
  28305. WOLFSSL_STUB("wolfSSL_CTX_set_next_proto_select_cb");
  28306. }
  28307. void wolfSSL_get0_next_proto_negotiated(const WOLFSSL *s, const unsigned char **data,
  28308. unsigned *len)
  28309. {
  28310. (void)s;
  28311. (void)data;
  28312. (void)len;
  28313. WOLFSSL_STUB("wolfSSL_get0_next_proto_negotiated");
  28314. }
  28315. #endif /* HAVE_ALPN */
  28316. #endif /* WOLFSSL_NGINX / WOLFSSL_HAPROXY */
  28317. #if defined(OPENSSL_EXTRA) && defined(HAVE_ECC)
  28318. int wolfSSL_CTX_set1_curves_list(WOLFSSL_CTX* ctx, const char* names)
  28319. {
  28320. int idx, start = 0, len;
  28321. word16 curve;
  28322. char name[MAX_CURVE_NAME_SZ];
  28323. if (ctx == NULL || names == NULL) {
  28324. WOLFSSL_MSG("ctx or names was NULL");
  28325. return WOLFSSL_FAILURE;
  28326. }
  28327. /* Disable all curves so that only the ones the user wants are enabled. */
  28328. ctx->disabledCurves = 0xFFFFFFFFUL;
  28329. for (idx = 1; names[idx-1] != '\0'; idx++) {
  28330. if (names[idx] != ':' && names[idx] != '\0')
  28331. continue;
  28332. len = idx - start;
  28333. if (len > MAX_CURVE_NAME_SZ - 1)
  28334. return WOLFSSL_FAILURE;
  28335. XMEMCPY(name, names + start, len);
  28336. name[len] = 0;
  28337. if ((XSTRCMP(name, "prime256v1") == 0) ||
  28338. (XSTRCMP(name, "secp256r1") == 0) ||
  28339. (XSTRCMP(name, "P-256") == 0))
  28340. {
  28341. curve = WOLFSSL_ECC_SECP256R1;
  28342. }
  28343. else if ((XSTRCMP(name, "secp384r1") == 0) ||
  28344. (XSTRCMP(name, "P-384") == 0))
  28345. {
  28346. curve = WOLFSSL_ECC_SECP384R1;
  28347. }
  28348. else if ((XSTRCMP(name, "secp521r1") == 0) ||
  28349. (XSTRCMP(name, "P-521") == 0))
  28350. {
  28351. curve = WOLFSSL_ECC_SECP521R1;
  28352. }
  28353. else if (XSTRCMP(name, "X25519") == 0)
  28354. {
  28355. curve = WOLFSSL_ECC_X25519;
  28356. }
  28357. else if (XSTRCMP(name, "X448") == 0)
  28358. {
  28359. curve = WOLFSSL_ECC_X448;
  28360. }
  28361. else {
  28362. #if !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)
  28363. int ret;
  28364. const ecc_set_type *eccSet;
  28365. ret = wc_ecc_get_curve_idx_from_name(name);
  28366. if (ret < 0) {
  28367. WOLFSSL_MSG("Could not find name in set");
  28368. return WOLFSSL_FAILURE;
  28369. }
  28370. eccSet = wc_ecc_get_curve_params(ret);
  28371. if (eccSet == NULL) {
  28372. WOLFSSL_MSG("NULL set returned");
  28373. return WOLFSSL_FAILURE;
  28374. }
  28375. curve = GetCurveByOID(eccSet->oidSum);
  28376. #else
  28377. WOLFSSL_MSG("API not present to search farther using name");
  28378. return WOLFSSL_FAILURE;
  28379. #endif
  28380. }
  28381. if (curve >= (sizeof(word32) * WOLFSSL_BIT_SIZE)) {
  28382. /* shift left more than size of ctx->disabledCurves causes static
  28383. * analysis report */
  28384. WOLFSSL_MSG("curve value is too large for upcoming shift");
  28385. return WOLFSSL_FAILURE;
  28386. }
  28387. #if defined(HAVE_SUPPORTED_CURVES) && !defined(NO_WOLFSSL_CLIENT)
  28388. /* set the supported curve so client TLS extension contains only the
  28389. * desired curves */
  28390. if (wolfSSL_CTX_UseSupportedCurve(ctx, curve) != WOLFSSL_SUCCESS) {
  28391. WOLFSSL_MSG("Unable to set supported curve");
  28392. return WOLFSSL_FAILURE;
  28393. }
  28394. #endif
  28395. /* Switch the bit to off and therefore is enabled. */
  28396. ctx->disabledCurves &= ~(1U << curve);
  28397. start = idx + 1;
  28398. }
  28399. return WOLFSSL_SUCCESS;
  28400. }
  28401. int wolfSSL_set1_curves_list(WOLFSSL* ssl, const char* names)
  28402. {
  28403. if (ssl == NULL) {
  28404. return WOLFSSL_FAILURE;
  28405. }
  28406. return wolfSSL_CTX_set1_curves_list(ssl->ctx, names);
  28407. }
  28408. #endif /* OPENSSL_EXTRA && HAVE_ECC */
  28409. #ifdef OPENSSL_EXTRA
  28410. /* Sets a callback for when sending and receiving protocol messages.
  28411. * This callback is copied to all WOLFSSL objects created from the ctx.
  28412. *
  28413. * ctx WOLFSSL_CTX structure to set callback in
  28414. * cb callback to use
  28415. *
  28416. * return WOLFSSL_SUCCESS on success and SSL_FAILURE with error case
  28417. */
  28418. int wolfSSL_CTX_set_msg_callback(WOLFSSL_CTX *ctx, SSL_Msg_Cb cb)
  28419. {
  28420. WOLFSSL_ENTER("wolfSSL_CTX_set_msg_callback");
  28421. if (ctx == NULL) {
  28422. WOLFSSL_MSG("Null ctx passed in");
  28423. return WOLFSSL_FAILURE;
  28424. }
  28425. ctx->protoMsgCb = cb;
  28426. return WOLFSSL_SUCCESS;
  28427. }
  28428. /* Sets a callback for when sending and receiving protocol messages.
  28429. *
  28430. * ssl WOLFSSL structure to set callback in
  28431. * cb callback to use
  28432. *
  28433. * return WOLFSSL_SUCCESS on success and SSL_FAILURE with error case
  28434. */
  28435. int wolfSSL_set_msg_callback(WOLFSSL *ssl, SSL_Msg_Cb cb)
  28436. {
  28437. WOLFSSL_ENTER("wolfSSL_set_msg_callback");
  28438. if (ssl == NULL) {
  28439. return SSL_FAILURE;
  28440. }
  28441. if (cb != NULL) {
  28442. ssl->toInfoOn = 1;
  28443. }
  28444. ssl->protoMsgCb = cb;
  28445. return WOLFSSL_SUCCESS;
  28446. }
  28447. /* set the user argument to pass to the msg callback when called
  28448. * return WOLFSSL_SUCCESS on success */
  28449. int wolfSSL_CTX_set_msg_callback_arg(WOLFSSL_CTX *ctx, void* arg)
  28450. {
  28451. WOLFSSL_ENTER("wolfSSL_CTX_set_msg_callback_arg");
  28452. if (ctx == NULL) {
  28453. WOLFSSL_MSG("Null WOLFSSL_CTX passed in");
  28454. return WOLFSSL_FAILURE;
  28455. }
  28456. ctx->protoMsgCtx = arg;
  28457. return WOLFSSL_SUCCESS;
  28458. }
  28459. int wolfSSL_set_msg_callback_arg(WOLFSSL *ssl, void* arg)
  28460. {
  28461. WOLFSSL_ENTER("wolfSSL_set_msg_callback_arg");
  28462. if (ssl == NULL)
  28463. return WOLFSSL_FAILURE;
  28464. ssl->protoMsgCtx = arg;
  28465. return WOLFSSL_SUCCESS;
  28466. }
  28467. void *wolfSSL_OPENSSL_memdup(const void *data, size_t siz, const char* file, int line)
  28468. {
  28469. void *ret;
  28470. (void)file;
  28471. (void)line;
  28472. if (data == NULL || siz >= INT_MAX)
  28473. return NULL;
  28474. ret = OPENSSL_malloc(siz);
  28475. if (ret == NULL) {
  28476. return NULL;
  28477. }
  28478. return XMEMCPY(ret, data, siz);
  28479. }
  28480. void wolfSSL_OPENSSL_cleanse(void *ptr, size_t len)
  28481. {
  28482. if (ptr)
  28483. ForceZero(ptr, (word32)len);
  28484. }
  28485. int wolfSSL_CTX_set_alpn_protos(WOLFSSL_CTX *ctx, const unsigned char *p,
  28486. unsigned int p_len)
  28487. {
  28488. WOLFSSL_ENTER("wolfSSL_CTX_set_alpn_protos");
  28489. if (ctx == NULL)
  28490. return BAD_FUNC_ARG;
  28491. if (ctx->alpn_cli_protos != NULL) {
  28492. XFREE((void*)ctx->alpn_cli_protos, ctx->heap, DYNAMIC_TYPE_OPENSSL);
  28493. }
  28494. ctx->alpn_cli_protos = (const unsigned char*)XMALLOC(p_len,
  28495. ctx->heap, DYNAMIC_TYPE_OPENSSL);
  28496. if (ctx->alpn_cli_protos == NULL) {
  28497. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28498. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28499. * the function reverses the return value convention.
  28500. */
  28501. return 1;
  28502. #else
  28503. return WOLFSSL_FAILURE;
  28504. #endif
  28505. }
  28506. XMEMCPY((void*)ctx->alpn_cli_protos, p, p_len);
  28507. ctx->alpn_cli_protos_len = p_len;
  28508. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28509. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28510. * the function reverses the return value convention.
  28511. */
  28512. return 0;
  28513. #else
  28514. return WOLFSSL_SUCCESS;
  28515. #endif
  28516. }
  28517. #ifdef HAVE_ALPN
  28518. #ifndef NO_BIO
  28519. /* Sets the ALPN extension protos
  28520. *
  28521. * example format is
  28522. * unsigned char p[] = {
  28523. * 8, 'h', 't', 't', 'p', '/', '1', '.', '1'
  28524. * };
  28525. *
  28526. * returns WOLFSSL_SUCCESS on success */
  28527. int wolfSSL_set_alpn_protos(WOLFSSL* ssl,
  28528. const unsigned char* p, unsigned int p_len)
  28529. {
  28530. WOLFSSL_BIO* bio;
  28531. char* pt;
  28532. unsigned int sz;
  28533. unsigned int idx = 0;
  28534. int alpn_opt = WOLFSSL_ALPN_CONTINUE_ON_MISMATCH;
  28535. WOLFSSL_ENTER("wolfSSL_set_alpn_protos");
  28536. if (ssl == NULL || p_len <= 1) {
  28537. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28538. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28539. * the function reverses the return value convention.
  28540. */
  28541. return 1;
  28542. #else
  28543. return WOLFSSL_FAILURE;
  28544. #endif
  28545. }
  28546. bio = wolfSSL_BIO_new(wolfSSL_BIO_s_mem());
  28547. if (bio == NULL) {
  28548. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28549. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28550. * the function reverses the return value convention.
  28551. */
  28552. return 1;
  28553. #else
  28554. return WOLFSSL_FAILURE;
  28555. #endif
  28556. }
  28557. /* convert into comma separated list */
  28558. while (idx < p_len - 1) {
  28559. unsigned int i;
  28560. sz = p[idx++];
  28561. if (idx + sz > p_len) {
  28562. WOLFSSL_MSG("Bad list format");
  28563. wolfSSL_BIO_free(bio);
  28564. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28565. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28566. * the function reverses the return value convention.
  28567. */
  28568. return 1;
  28569. #else
  28570. return WOLFSSL_FAILURE;
  28571. #endif
  28572. }
  28573. if (sz > 0) {
  28574. for (i = 0; i < sz; i++) {
  28575. wolfSSL_BIO_write(bio, &p[idx++], 1);
  28576. }
  28577. if (idx < p_len - 1)
  28578. wolfSSL_BIO_write(bio, ",", 1);
  28579. }
  28580. }
  28581. wolfSSL_BIO_write(bio, "\0", 1);
  28582. /* clears out all current ALPN extensions set */
  28583. TLSX_Remove(&ssl->extensions, TLSX_APPLICATION_LAYER_PROTOCOL, ssl->heap);
  28584. if ((sz = wolfSSL_BIO_get_mem_data(bio, &pt)) > 0) {
  28585. wolfSSL_UseALPN(ssl, pt, sz, (byte) alpn_opt);
  28586. }
  28587. wolfSSL_BIO_free(bio);
  28588. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  28589. /* 0 on success in OpenSSL, non-0 on failure in OpenSSL
  28590. * the function reverses the return value convention.
  28591. */
  28592. return 0;
  28593. #else
  28594. return WOLFSSL_SUCCESS;
  28595. #endif
  28596. }
  28597. #endif /* !NO_BIO */
  28598. #endif /* HAVE_ALPN */
  28599. #endif /* OPENSSL_EXTRA */
  28600. #if defined(OPENSSL_EXTRA)
  28601. #ifndef NO_BIO
  28602. #define WOLFSSL_BIO_INCLUDED
  28603. #include "src/bio.c"
  28604. #endif
  28605. word32 nid2oid(int nid, int grp)
  28606. {
  28607. /* get OID type */
  28608. switch (grp) {
  28609. /* oidHashType */
  28610. case oidHashType:
  28611. switch (nid) {
  28612. #ifdef WOLFSSL_MD2
  28613. case NID_md2:
  28614. return MD2h;
  28615. #endif
  28616. #ifndef NO_MD5
  28617. case NID_md5:
  28618. return MD5h;
  28619. #endif
  28620. #ifndef NO_SHA
  28621. case NID_sha1:
  28622. return SHAh;
  28623. #endif
  28624. case NID_sha224:
  28625. return SHA224h;
  28626. #ifndef NO_SHA256
  28627. case NID_sha256:
  28628. return SHA256h;
  28629. #endif
  28630. #ifdef WOLFSSL_SHA384
  28631. case NID_sha384:
  28632. return SHA384h;
  28633. #endif
  28634. #ifdef WOLFSSL_SHA512
  28635. case NID_sha512:
  28636. return SHA512h;
  28637. #endif
  28638. }
  28639. break;
  28640. /* oidSigType */
  28641. case oidSigType:
  28642. switch (nid) {
  28643. #ifndef NO_DSA
  28644. case NID_dsaWithSHA1:
  28645. return CTC_SHAwDSA;
  28646. case NID_dsa_with_SHA256:
  28647. return CTC_SHA256wDSA;
  28648. #endif /* NO_DSA */
  28649. #ifndef NO_RSA
  28650. case NID_md2WithRSAEncryption:
  28651. return CTC_MD2wRSA;
  28652. case NID_md5WithRSAEncryption:
  28653. return CTC_MD5wRSA;
  28654. case NID_sha1WithRSAEncryption:
  28655. return CTC_SHAwRSA;
  28656. case NID_sha224WithRSAEncryption:
  28657. return CTC_SHA224wRSA;
  28658. case NID_sha256WithRSAEncryption:
  28659. return CTC_SHA256wRSA;
  28660. case NID_sha384WithRSAEncryption:
  28661. return CTC_SHA384wRSA;
  28662. case NID_sha512WithRSAEncryption:
  28663. return CTC_SHA512wRSA;
  28664. #ifdef WOLFSSL_SHA3
  28665. case NID_RSA_SHA3_224:
  28666. return CTC_SHA3_224wRSA;
  28667. case NID_RSA_SHA3_256:
  28668. return CTC_SHA3_256wRSA;
  28669. case NID_RSA_SHA3_384:
  28670. return CTC_SHA3_384wRSA;
  28671. case NID_RSA_SHA3_512:
  28672. return CTC_SHA3_512wRSA;
  28673. #endif
  28674. #endif /* NO_RSA */
  28675. #ifdef HAVE_ECC
  28676. case NID_ecdsa_with_SHA1:
  28677. return CTC_SHAwECDSA;
  28678. case NID_ecdsa_with_SHA224:
  28679. return CTC_SHA224wECDSA;
  28680. case NID_ecdsa_with_SHA256:
  28681. return CTC_SHA256wECDSA;
  28682. case NID_ecdsa_with_SHA384:
  28683. return CTC_SHA384wECDSA;
  28684. case NID_ecdsa_with_SHA512:
  28685. return CTC_SHA512wECDSA;
  28686. #ifdef WOLFSSL_SHA3
  28687. case NID_ecdsa_with_SHA3_224:
  28688. return CTC_SHA3_224wECDSA;
  28689. case NID_ecdsa_with_SHA3_256:
  28690. return CTC_SHA3_256wECDSA;
  28691. case NID_ecdsa_with_SHA3_384:
  28692. return CTC_SHA3_384wECDSA;
  28693. case NID_ecdsa_with_SHA3_512:
  28694. return CTC_SHA3_512wECDSA;
  28695. #endif
  28696. #endif /* HAVE_ECC */
  28697. }
  28698. break;
  28699. /* oidKeyType */
  28700. case oidKeyType:
  28701. switch (nid) {
  28702. #ifndef NO_DSA
  28703. case NID_dsa:
  28704. return DSAk;
  28705. #endif /* NO_DSA */
  28706. #ifndef NO_RSA
  28707. case NID_rsaEncryption:
  28708. return RSAk;
  28709. #endif /* NO_RSA */
  28710. #ifdef HAVE_ECC
  28711. case NID_X9_62_id_ecPublicKey:
  28712. return ECDSAk;
  28713. #endif /* HAVE_ECC */
  28714. }
  28715. break;
  28716. #ifdef HAVE_ECC
  28717. case oidCurveType:
  28718. switch (nid) {
  28719. case NID_X9_62_prime192v1:
  28720. return ECC_SECP192R1_OID;
  28721. case NID_X9_62_prime192v2:
  28722. return ECC_PRIME192V2_OID;
  28723. case NID_X9_62_prime192v3:
  28724. return ECC_PRIME192V3_OID;
  28725. case NID_X9_62_prime239v1:
  28726. return ECC_PRIME239V1_OID;
  28727. case NID_X9_62_prime239v2:
  28728. return ECC_PRIME239V2_OID;
  28729. case NID_X9_62_prime239v3:
  28730. return ECC_PRIME239V3_OID;
  28731. case NID_X9_62_prime256v1:
  28732. return ECC_SECP256R1_OID;
  28733. case NID_secp112r1:
  28734. return ECC_SECP112R1_OID;
  28735. case NID_secp112r2:
  28736. return ECC_SECP112R2_OID;
  28737. case NID_secp128r1:
  28738. return ECC_SECP128R1_OID;
  28739. case NID_secp128r2:
  28740. return ECC_SECP128R2_OID;
  28741. case NID_secp160r1:
  28742. return ECC_SECP160R1_OID;
  28743. case NID_secp160r2:
  28744. return ECC_SECP160R2_OID;
  28745. case NID_secp224r1:
  28746. return ECC_SECP224R1_OID;
  28747. case NID_secp384r1:
  28748. return ECC_SECP384R1_OID;
  28749. case NID_secp521r1:
  28750. return ECC_SECP521R1_OID;
  28751. case NID_secp160k1:
  28752. return ECC_SECP160K1_OID;
  28753. case NID_secp192k1:
  28754. return ECC_SECP192K1_OID;
  28755. case NID_secp224k1:
  28756. return ECC_SECP224K1_OID;
  28757. case NID_secp256k1:
  28758. return ECC_SECP256K1_OID;
  28759. case NID_brainpoolP160r1:
  28760. return ECC_BRAINPOOLP160R1_OID;
  28761. case NID_brainpoolP192r1:
  28762. return ECC_BRAINPOOLP192R1_OID;
  28763. case NID_brainpoolP224r1:
  28764. return ECC_BRAINPOOLP224R1_OID;
  28765. case NID_brainpoolP256r1:
  28766. return ECC_BRAINPOOLP256R1_OID;
  28767. case NID_brainpoolP320r1:
  28768. return ECC_BRAINPOOLP320R1_OID;
  28769. case NID_brainpoolP384r1:
  28770. return ECC_BRAINPOOLP384R1_OID;
  28771. case NID_brainpoolP512r1:
  28772. return ECC_BRAINPOOLP512R1_OID;
  28773. }
  28774. break;
  28775. #endif /* HAVE_ECC */
  28776. /* oidBlkType */
  28777. case oidBlkType:
  28778. switch (nid) {
  28779. #ifdef WOLFSSL_AES_128
  28780. case AES128CBCb:
  28781. return AES128CBCb;
  28782. #endif
  28783. #ifdef WOLFSSL_AES_192
  28784. case AES192CBCb:
  28785. return AES192CBCb;
  28786. #endif
  28787. #ifdef WOLFSSL_AES_256
  28788. case AES256CBCb:
  28789. return AES256CBCb;
  28790. #endif
  28791. #ifndef NO_DES3
  28792. case NID_des:
  28793. return DESb;
  28794. case NID_des3:
  28795. return DES3b;
  28796. #endif
  28797. }
  28798. break;
  28799. #ifdef HAVE_OCSP
  28800. case oidOcspType:
  28801. switch (nid) {
  28802. case NID_id_pkix_OCSP_basic:
  28803. return OCSP_BASIC_OID;
  28804. case OCSP_NONCE_OID:
  28805. return OCSP_NONCE_OID;
  28806. }
  28807. break;
  28808. #endif /* HAVE_OCSP */
  28809. /* oidCertExtType */
  28810. case oidCertExtType:
  28811. switch (nid) {
  28812. case NID_basic_constraints:
  28813. return BASIC_CA_OID;
  28814. case NID_subject_alt_name:
  28815. return ALT_NAMES_OID;
  28816. case NID_crl_distribution_points:
  28817. return CRL_DIST_OID;
  28818. case NID_info_access:
  28819. return AUTH_INFO_OID;
  28820. case NID_authority_key_identifier:
  28821. return AUTH_KEY_OID;
  28822. case NID_subject_key_identifier:
  28823. return SUBJ_KEY_OID;
  28824. case NID_inhibit_any_policy:
  28825. return INHIBIT_ANY_OID;
  28826. case NID_key_usage:
  28827. return KEY_USAGE_OID;
  28828. case NID_name_constraints:
  28829. return NAME_CONS_OID;
  28830. case NID_certificate_policies:
  28831. return CERT_POLICY_OID;
  28832. case NID_ext_key_usage:
  28833. return EXT_KEY_USAGE_OID;
  28834. }
  28835. break;
  28836. /* oidCertAuthInfoType */
  28837. case oidCertAuthInfoType:
  28838. switch (nid) {
  28839. case NID_ad_OCSP:
  28840. return AIA_OCSP_OID;
  28841. case NID_ad_ca_issuers:
  28842. return AIA_CA_ISSUER_OID;
  28843. }
  28844. break;
  28845. /* oidCertPolicyType */
  28846. case oidCertPolicyType:
  28847. switch (nid) {
  28848. case NID_any_policy:
  28849. return CP_ANY_OID;
  28850. }
  28851. break;
  28852. /* oidCertAltNameType */
  28853. case oidCertAltNameType:
  28854. switch (nid) {
  28855. case NID_hw_name_oid:
  28856. return HW_NAME_OID;
  28857. }
  28858. break;
  28859. /* oidCertKeyUseType */
  28860. case oidCertKeyUseType:
  28861. switch (nid) {
  28862. case NID_anyExtendedKeyUsage:
  28863. return EKU_ANY_OID;
  28864. case EKU_SERVER_AUTH_OID:
  28865. return EKU_SERVER_AUTH_OID;
  28866. case EKU_CLIENT_AUTH_OID:
  28867. return EKU_CLIENT_AUTH_OID;
  28868. case EKU_OCSP_SIGN_OID:
  28869. return EKU_OCSP_SIGN_OID;
  28870. }
  28871. break;
  28872. /* oidKdfType */
  28873. case oidKdfType:
  28874. switch (nid) {
  28875. case PBKDF2_OID:
  28876. return PBKDF2_OID;
  28877. }
  28878. break;
  28879. /* oidPBEType */
  28880. case oidPBEType:
  28881. switch (nid) {
  28882. case PBE_SHA1_RC4_128:
  28883. return PBE_SHA1_RC4_128;
  28884. case PBE_SHA1_DES:
  28885. return PBE_SHA1_DES;
  28886. case PBE_SHA1_DES3:
  28887. return PBE_SHA1_DES3;
  28888. }
  28889. break;
  28890. /* oidKeyWrapType */
  28891. case oidKeyWrapType:
  28892. switch (nid) {
  28893. #ifdef WOLFSSL_AES_128
  28894. case AES128_WRAP:
  28895. return AES128_WRAP;
  28896. #endif
  28897. #ifdef WOLFSSL_AES_192
  28898. case AES192_WRAP:
  28899. return AES192_WRAP;
  28900. #endif
  28901. #ifdef WOLFSSL_AES_256
  28902. case AES256_WRAP:
  28903. return AES256_WRAP;
  28904. #endif
  28905. }
  28906. break;
  28907. /* oidCmsKeyAgreeType */
  28908. case oidCmsKeyAgreeType:
  28909. switch (nid) {
  28910. #ifndef NO_SHA
  28911. case dhSinglePass_stdDH_sha1kdf_scheme:
  28912. return dhSinglePass_stdDH_sha1kdf_scheme;
  28913. #endif
  28914. #ifdef WOLFSSL_SHA224
  28915. case dhSinglePass_stdDH_sha224kdf_scheme:
  28916. return dhSinglePass_stdDH_sha224kdf_scheme;
  28917. #endif
  28918. #ifndef NO_SHA256
  28919. case dhSinglePass_stdDH_sha256kdf_scheme:
  28920. return dhSinglePass_stdDH_sha256kdf_scheme;
  28921. #endif
  28922. #ifdef WOLFSSL_SHA384
  28923. case dhSinglePass_stdDH_sha384kdf_scheme:
  28924. return dhSinglePass_stdDH_sha384kdf_scheme;
  28925. #endif
  28926. #ifdef WOLFSSL_SHA512
  28927. case dhSinglePass_stdDH_sha512kdf_scheme:
  28928. return dhSinglePass_stdDH_sha512kdf_scheme;
  28929. #endif
  28930. }
  28931. break;
  28932. default:
  28933. WOLFSSL_MSG("NID not in table");
  28934. /* MSVC warns without the cast */
  28935. return (word32)-1;
  28936. }
  28937. /* MSVC warns without the cast */
  28938. return (word32)-1;
  28939. }
  28940. int oid2nid(word32 oid, int grp)
  28941. {
  28942. size_t i;
  28943. /* get OID type */
  28944. switch (grp) {
  28945. /* oidHashType */
  28946. case oidHashType:
  28947. switch (oid) {
  28948. #ifdef WOLFSSL_MD2
  28949. case MD2h:
  28950. return NID_md2;
  28951. #endif
  28952. #ifndef NO_MD5
  28953. case MD5h:
  28954. return NID_md5;
  28955. #endif
  28956. #ifndef NO_SHA
  28957. case SHAh:
  28958. return NID_sha1;
  28959. #endif
  28960. case SHA224h:
  28961. return NID_sha224;
  28962. #ifndef NO_SHA256
  28963. case SHA256h:
  28964. return NID_sha256;
  28965. #endif
  28966. #ifdef WOLFSSL_SHA384
  28967. case SHA384h:
  28968. return NID_sha384;
  28969. #endif
  28970. #ifdef WOLFSSL_SHA512
  28971. case SHA512h:
  28972. return NID_sha512;
  28973. #endif
  28974. }
  28975. break;
  28976. /* oidSigType */
  28977. case oidSigType:
  28978. switch (oid) {
  28979. #ifndef NO_DSA
  28980. case CTC_SHAwDSA:
  28981. return NID_dsaWithSHA1;
  28982. case CTC_SHA256wDSA:
  28983. return NID_dsa_with_SHA256;
  28984. #endif /* NO_DSA */
  28985. #ifndef NO_RSA
  28986. case CTC_MD2wRSA:
  28987. return NID_md2WithRSAEncryption;
  28988. case CTC_MD5wRSA:
  28989. return NID_md5WithRSAEncryption;
  28990. case CTC_SHAwRSA:
  28991. return NID_sha1WithRSAEncryption;
  28992. case CTC_SHA224wRSA:
  28993. return NID_sha224WithRSAEncryption;
  28994. case CTC_SHA256wRSA:
  28995. return NID_sha256WithRSAEncryption;
  28996. case CTC_SHA384wRSA:
  28997. return NID_sha384WithRSAEncryption;
  28998. case CTC_SHA512wRSA:
  28999. return NID_sha512WithRSAEncryption;
  29000. #ifdef WOLFSSL_SHA3
  29001. case CTC_SHA3_224wRSA:
  29002. return NID_RSA_SHA3_224;
  29003. case CTC_SHA3_256wRSA:
  29004. return NID_RSA_SHA3_256;
  29005. case CTC_SHA3_384wRSA:
  29006. return NID_RSA_SHA3_384;
  29007. case CTC_SHA3_512wRSA:
  29008. return NID_RSA_SHA3_512;
  29009. #endif
  29010. #endif /* NO_RSA */
  29011. #ifdef HAVE_ECC
  29012. case CTC_SHAwECDSA:
  29013. return NID_ecdsa_with_SHA1;
  29014. case CTC_SHA224wECDSA:
  29015. return NID_ecdsa_with_SHA224;
  29016. case CTC_SHA256wECDSA:
  29017. return NID_ecdsa_with_SHA256;
  29018. case CTC_SHA384wECDSA:
  29019. return NID_ecdsa_with_SHA384;
  29020. case CTC_SHA512wECDSA:
  29021. return NID_ecdsa_with_SHA512;
  29022. #ifdef WOLFSSL_SHA3
  29023. case CTC_SHA3_224wECDSA:
  29024. return NID_ecdsa_with_SHA3_224;
  29025. case CTC_SHA3_256wECDSA:
  29026. return NID_ecdsa_with_SHA3_256;
  29027. case CTC_SHA3_384wECDSA:
  29028. return NID_ecdsa_with_SHA3_384;
  29029. case CTC_SHA3_512wECDSA:
  29030. return NID_ecdsa_with_SHA3_512;
  29031. #endif
  29032. #endif /* HAVE_ECC */
  29033. }
  29034. break;
  29035. /* oidKeyType */
  29036. case oidKeyType:
  29037. switch (oid) {
  29038. #ifndef NO_DSA
  29039. case DSAk:
  29040. return NID_dsa;
  29041. #endif /* NO_DSA */
  29042. #ifndef NO_RSA
  29043. case RSAk:
  29044. return NID_rsaEncryption;
  29045. #endif /* NO_RSA */
  29046. #ifdef HAVE_ECC
  29047. case ECDSAk:
  29048. return NID_X9_62_id_ecPublicKey;
  29049. #endif /* HAVE_ECC */
  29050. }
  29051. break;
  29052. #ifdef HAVE_ECC
  29053. case oidCurveType:
  29054. switch (oid) {
  29055. case ECC_SECP192R1_OID:
  29056. return NID_X9_62_prime192v1;
  29057. case ECC_PRIME192V2_OID:
  29058. return NID_X9_62_prime192v2;
  29059. case ECC_PRIME192V3_OID:
  29060. return NID_X9_62_prime192v3;
  29061. case ECC_PRIME239V1_OID:
  29062. return NID_X9_62_prime239v1;
  29063. case ECC_PRIME239V2_OID:
  29064. return NID_X9_62_prime239v2;
  29065. case ECC_PRIME239V3_OID:
  29066. return NID_X9_62_prime239v3;
  29067. case ECC_SECP256R1_OID:
  29068. return NID_X9_62_prime256v1;
  29069. case ECC_SECP112R1_OID:
  29070. return NID_secp112r1;
  29071. case ECC_SECP112R2_OID:
  29072. return NID_secp112r2;
  29073. case ECC_SECP128R1_OID:
  29074. return NID_secp128r1;
  29075. case ECC_SECP128R2_OID:
  29076. return NID_secp128r2;
  29077. case ECC_SECP160R1_OID:
  29078. return NID_secp160r1;
  29079. case ECC_SECP160R2_OID:
  29080. return NID_secp160r2;
  29081. case ECC_SECP224R1_OID:
  29082. return NID_secp224r1;
  29083. case ECC_SECP384R1_OID:
  29084. return NID_secp384r1;
  29085. case ECC_SECP521R1_OID:
  29086. return NID_secp521r1;
  29087. case ECC_SECP160K1_OID:
  29088. return NID_secp160k1;
  29089. case ECC_SECP192K1_OID:
  29090. return NID_secp192k1;
  29091. case ECC_SECP224K1_OID:
  29092. return NID_secp224k1;
  29093. case ECC_SECP256K1_OID:
  29094. return NID_secp256k1;
  29095. case ECC_BRAINPOOLP160R1_OID:
  29096. return NID_brainpoolP160r1;
  29097. case ECC_BRAINPOOLP192R1_OID:
  29098. return NID_brainpoolP192r1;
  29099. case ECC_BRAINPOOLP224R1_OID:
  29100. return NID_brainpoolP224r1;
  29101. case ECC_BRAINPOOLP256R1_OID:
  29102. return NID_brainpoolP256r1;
  29103. case ECC_BRAINPOOLP320R1_OID:
  29104. return NID_brainpoolP320r1;
  29105. case ECC_BRAINPOOLP384R1_OID:
  29106. return NID_brainpoolP384r1;
  29107. case ECC_BRAINPOOLP512R1_OID:
  29108. return NID_brainpoolP512r1;
  29109. }
  29110. break;
  29111. #endif /* HAVE_ECC */
  29112. /* oidBlkType */
  29113. case oidBlkType:
  29114. switch (oid) {
  29115. #ifdef WOLFSSL_AES_128
  29116. case AES128CBCb:
  29117. return AES128CBCb;
  29118. #endif
  29119. #ifdef WOLFSSL_AES_192
  29120. case AES192CBCb:
  29121. return AES192CBCb;
  29122. #endif
  29123. #ifdef WOLFSSL_AES_256
  29124. case AES256CBCb:
  29125. return AES256CBCb;
  29126. #endif
  29127. #ifndef NO_DES3
  29128. case DESb:
  29129. return NID_des;
  29130. case DES3b:
  29131. return NID_des3;
  29132. #endif
  29133. }
  29134. break;
  29135. #ifdef HAVE_OCSP
  29136. case oidOcspType:
  29137. switch (oid) {
  29138. case OCSP_BASIC_OID:
  29139. return NID_id_pkix_OCSP_basic;
  29140. case OCSP_NONCE_OID:
  29141. return OCSP_NONCE_OID;
  29142. }
  29143. break;
  29144. #endif /* HAVE_OCSP */
  29145. /* oidCertExtType */
  29146. case oidCertExtType:
  29147. switch (oid) {
  29148. case BASIC_CA_OID:
  29149. return NID_basic_constraints;
  29150. case ALT_NAMES_OID:
  29151. return NID_subject_alt_name;
  29152. case CRL_DIST_OID:
  29153. return NID_crl_distribution_points;
  29154. case AUTH_INFO_OID:
  29155. return NID_info_access;
  29156. case AUTH_KEY_OID:
  29157. return NID_authority_key_identifier;
  29158. case SUBJ_KEY_OID:
  29159. return NID_subject_key_identifier;
  29160. case INHIBIT_ANY_OID:
  29161. return NID_inhibit_any_policy;
  29162. case KEY_USAGE_OID:
  29163. return NID_key_usage;
  29164. case NAME_CONS_OID:
  29165. return NID_name_constraints;
  29166. case CERT_POLICY_OID:
  29167. return NID_certificate_policies;
  29168. case EXT_KEY_USAGE_OID:
  29169. return NID_ext_key_usage;
  29170. }
  29171. break;
  29172. /* oidCertAuthInfoType */
  29173. case oidCertAuthInfoType:
  29174. switch (oid) {
  29175. case AIA_OCSP_OID:
  29176. return NID_ad_OCSP;
  29177. case AIA_CA_ISSUER_OID:
  29178. return NID_ad_ca_issuers;
  29179. }
  29180. break;
  29181. /* oidCertPolicyType */
  29182. case oidCertPolicyType:
  29183. switch (oid) {
  29184. case CP_ANY_OID:
  29185. return NID_any_policy;
  29186. }
  29187. break;
  29188. /* oidCertAltNameType */
  29189. case oidCertAltNameType:
  29190. switch (oid) {
  29191. case HW_NAME_OID:
  29192. return NID_hw_name_oid;
  29193. }
  29194. break;
  29195. /* oidCertKeyUseType */
  29196. case oidCertKeyUseType:
  29197. switch (oid) {
  29198. case EKU_ANY_OID:
  29199. return NID_anyExtendedKeyUsage;
  29200. case EKU_SERVER_AUTH_OID:
  29201. return EKU_SERVER_AUTH_OID;
  29202. case EKU_CLIENT_AUTH_OID:
  29203. return EKU_CLIENT_AUTH_OID;
  29204. case EKU_OCSP_SIGN_OID:
  29205. return EKU_OCSP_SIGN_OID;
  29206. }
  29207. break;
  29208. /* oidKdfType */
  29209. case oidKdfType:
  29210. switch (oid) {
  29211. case PBKDF2_OID:
  29212. return PBKDF2_OID;
  29213. }
  29214. break;
  29215. /* oidPBEType */
  29216. case oidPBEType:
  29217. switch (oid) {
  29218. case PBE_SHA1_RC4_128:
  29219. return PBE_SHA1_RC4_128;
  29220. case PBE_SHA1_DES:
  29221. return PBE_SHA1_DES;
  29222. case PBE_SHA1_DES3:
  29223. return PBE_SHA1_DES3;
  29224. }
  29225. break;
  29226. /* oidKeyWrapType */
  29227. case oidKeyWrapType:
  29228. switch (oid) {
  29229. #ifdef WOLFSSL_AES_128
  29230. case AES128_WRAP:
  29231. return AES128_WRAP;
  29232. #endif
  29233. #ifdef WOLFSSL_AES_192
  29234. case AES192_WRAP:
  29235. return AES192_WRAP;
  29236. #endif
  29237. #ifdef WOLFSSL_AES_256
  29238. case AES256_WRAP:
  29239. return AES256_WRAP;
  29240. #endif
  29241. }
  29242. break;
  29243. /* oidCmsKeyAgreeType */
  29244. case oidCmsKeyAgreeType:
  29245. switch (oid) {
  29246. #ifndef NO_SHA
  29247. case dhSinglePass_stdDH_sha1kdf_scheme:
  29248. return dhSinglePass_stdDH_sha1kdf_scheme;
  29249. #endif
  29250. #ifdef WOLFSSL_SHA224
  29251. case dhSinglePass_stdDH_sha224kdf_scheme:
  29252. return dhSinglePass_stdDH_sha224kdf_scheme;
  29253. #endif
  29254. #ifndef NO_SHA256
  29255. case dhSinglePass_stdDH_sha256kdf_scheme:
  29256. return dhSinglePass_stdDH_sha256kdf_scheme;
  29257. #endif
  29258. #ifdef WOLFSSL_SHA384
  29259. case dhSinglePass_stdDH_sha384kdf_scheme:
  29260. return dhSinglePass_stdDH_sha384kdf_scheme;
  29261. #endif
  29262. #ifdef WOLFSSL_SHA512
  29263. case dhSinglePass_stdDH_sha512kdf_scheme:
  29264. return dhSinglePass_stdDH_sha512kdf_scheme;
  29265. #endif
  29266. }
  29267. break;
  29268. #ifdef WOLFSSL_CERT_REQ
  29269. case oidCsrAttrType:
  29270. switch (oid) {
  29271. case PKCS9_CONTENT_TYPE_OID:
  29272. return NID_pkcs9_contentType;
  29273. case CHALLENGE_PASSWORD_OID:
  29274. return NID_pkcs9_challengePassword;
  29275. case SERIAL_NUMBER_OID:
  29276. return NID_serialNumber;
  29277. case USER_ID_OID:
  29278. return NID_userId;
  29279. }
  29280. break;
  29281. #endif
  29282. default:
  29283. WOLFSSL_MSG("NID not in table");
  29284. }
  29285. /* If not found in above switch then try the table */
  29286. for (i = 0; i < WOLFSSL_OBJECT_INFO_SZ; i++) {
  29287. if (wolfssl_object_info[i].id == (int)oid) {
  29288. return wolfssl_object_info[i].nid;
  29289. }
  29290. }
  29291. return -1;
  29292. }
  29293. /* when calling SetIndividualInternal, mpi should be cleared by caller if no
  29294. * longer used. ie mp_free(mpi). This is to free data when fastmath is
  29295. * disabled since a copy of mpi is made by this function and placed into bn.
  29296. */
  29297. int SetIndividualInternal(WOLFSSL_BIGNUM* bn, mp_int* mpi)
  29298. {
  29299. WOLFSSL_MSG("Entering SetIndividualInternal");
  29300. if (bn == NULL || bn->internal == NULL) {
  29301. WOLFSSL_MSG("bn NULL error");
  29302. return WOLFSSL_FATAL_ERROR;
  29303. }
  29304. if (mpi == NULL) {
  29305. WOLFSSL_MSG("mpi NULL error");
  29306. return WOLFSSL_FATAL_ERROR;
  29307. }
  29308. if (mp_copy((mp_int*)bn->internal, mpi) != MP_OKAY) {
  29309. WOLFSSL_MSG("mp_copy error");
  29310. return WOLFSSL_FATAL_ERROR;
  29311. }
  29312. return WOLFSSL_SUCCESS;
  29313. }
  29314. #ifndef NO_ASN
  29315. WOLFSSL_BIGNUM *wolfSSL_ASN1_INTEGER_to_BN(const WOLFSSL_ASN1_INTEGER *ai,
  29316. WOLFSSL_BIGNUM *bn)
  29317. {
  29318. #ifdef WOLFSSL_SMALL_STACK
  29319. mp_int* mpi = NULL;
  29320. #else
  29321. mp_int mpi[1];
  29322. #endif
  29323. word32 idx = 0;
  29324. int ret;
  29325. WOLFSSL_ENTER("wolfSSL_ASN1_INTEGER_to_BN");
  29326. if (ai == NULL) {
  29327. return NULL;
  29328. }
  29329. #ifdef WOLFSSL_SMALL_STACK
  29330. mpi = (mp_int*)XMALLOC(sizeof(mp_int), NULL, DYNAMIC_TYPE_BIGINT);
  29331. if (mpi == NULL) {
  29332. return NULL;
  29333. }
  29334. #endif
  29335. ret = GetInt(mpi, ai->data, &idx, ai->dataMax);
  29336. if (ret != 0) {
  29337. #if defined(WOLFSSL_QT) || defined(WOLFSSL_HAPROXY)
  29338. ret = mp_init(mpi); /* must init mpi */
  29339. if (ret != MP_OKAY) {
  29340. #ifdef WOLFSSL_SMALL_STACK
  29341. XFREE(mpi, NULL, DYNAMIC_TYPE_BIGINT);
  29342. #endif
  29343. return NULL;
  29344. }
  29345. /* Serial number in QT starts at index 0 of data */
  29346. if (mp_read_unsigned_bin(mpi, (byte*)ai->data, ai->length) != 0) {
  29347. mp_clear(mpi);
  29348. #ifdef WOLFSSL_SMALL_STACK
  29349. XFREE(mpi, NULL, DYNAMIC_TYPE_BIGINT);
  29350. #endif
  29351. return NULL;
  29352. }
  29353. #else
  29354. /* expecting ASN1 format for INTEGER */
  29355. WOLFSSL_LEAVE("wolfSSL_ASN1_INTEGER_to_BN", ret);
  29356. #ifdef WOLFSSL_SMALL_STACK
  29357. XFREE(mpi, NULL, DYNAMIC_TYPE_BIGINT);
  29358. #endif
  29359. return NULL;
  29360. #endif
  29361. }
  29362. /* mp_clear needs called because mpi is copied and causes memory leak with
  29363. * --disable-fastmath */
  29364. ret = SetIndividualExternal(&bn, mpi);
  29365. mp_clear(mpi);
  29366. #ifdef WOLFSSL_SMALL_STACK
  29367. XFREE(mpi, NULL, DYNAMIC_TYPE_BIGINT);
  29368. #endif
  29369. if (ret != WOLFSSL_SUCCESS) {
  29370. return NULL;
  29371. }
  29372. return bn;
  29373. }
  29374. #endif /* !NO_ASN */
  29375. /* frees all nodes in the current threads error queue
  29376. *
  29377. * id thread id. ERR_remove_state is depreciated and id is ignored. The
  29378. * current threads queue will be free'd.
  29379. */
  29380. void wolfSSL_ERR_remove_state(unsigned long id)
  29381. {
  29382. WOLFSSL_ENTER("wolfSSL_ERR_remove_state");
  29383. (void)id;
  29384. if (wc_ERR_remove_state() != 0) {
  29385. WOLFSSL_MSG("Error with removing the state");
  29386. }
  29387. }
  29388. WOLFSSL_BN_CTX* wolfSSL_BN_CTX_new(void)
  29389. {
  29390. static int ctx; /* wolfcrypt doesn't now need ctx */
  29391. WOLFSSL_MSG("wolfSSL_BN_CTX_new");
  29392. return (WOLFSSL_BN_CTX*)&ctx;
  29393. }
  29394. void wolfSSL_BN_CTX_init(WOLFSSL_BN_CTX* ctx)
  29395. {
  29396. (void)ctx;
  29397. WOLFSSL_MSG("wolfSSL_BN_CTX_init");
  29398. }
  29399. void wolfSSL_BN_CTX_free(WOLFSSL_BN_CTX* ctx)
  29400. {
  29401. (void)ctx;
  29402. WOLFSSL_MSG("wolfSSL_BN_CTX_free");
  29403. /* do free since static ctx that does nothing */
  29404. }
  29405. /* WOLFSSL_SUCCESS on ok */
  29406. int wolfSSL_BN_sub(WOLFSSL_BIGNUM* r, const WOLFSSL_BIGNUM* a,
  29407. const WOLFSSL_BIGNUM* b)
  29408. {
  29409. WOLFSSL_MSG("wolfSSL_BN_sub");
  29410. if (r == NULL || a == NULL || b == NULL)
  29411. return 0;
  29412. if (mp_sub((mp_int*)a->internal,(mp_int*)b->internal,
  29413. (mp_int*)r->internal) == MP_OKAY)
  29414. return WOLFSSL_SUCCESS;
  29415. WOLFSSL_MSG("wolfSSL_BN_sub mp_sub failed");
  29416. return 0;
  29417. }
  29418. WOLFSSL_API int wolfSSL_BN_mul(WOLFSSL_BIGNUM *r, WOLFSSL_BIGNUM *a, WOLFSSL_BIGNUM *b,
  29419. WOLFSSL_BN_CTX *ctx)
  29420. {
  29421. int ret = WOLFSSL_SUCCESS;
  29422. (void)ctx;
  29423. WOLFSSL_ENTER("wolfSSL_BN_mul");
  29424. if (r == NULL || a == NULL || b == NULL || r->internal == NULL ||
  29425. a->internal == NULL || b->internal == NULL) {
  29426. ret = WOLFSSL_FAILURE;
  29427. }
  29428. if (ret == WOLFSSL_SUCCESS) {
  29429. ret = mp_mul((mp_int*)a->internal, (mp_int*)b->internal,
  29430. (mp_int*)r->internal);
  29431. if (ret == MP_OKAY) {
  29432. ret = WOLFSSL_SUCCESS;
  29433. }
  29434. else {
  29435. ret = WOLFSSL_FAILURE;
  29436. }
  29437. }
  29438. WOLFSSL_LEAVE("wolfSSL_BN_mul", ret);
  29439. return ret;
  29440. }
  29441. #ifndef WOLFSSL_SP_MATH
  29442. int wolfSSL_BN_div(WOLFSSL_BIGNUM* dv, WOLFSSL_BIGNUM* rem,
  29443. const WOLFSSL_BIGNUM* a, const WOLFSSL_BIGNUM* d,
  29444. WOLFSSL_BN_CTX* ctx)
  29445. {
  29446. int ret = WOLFSSL_SUCCESS;
  29447. (void)ctx;
  29448. WOLFSSL_ENTER("wolfSSL_BN_div");
  29449. if (dv == NULL || rem == NULL || a == NULL || d == NULL ||
  29450. dv->internal == NULL || rem->internal == NULL || a->internal == NULL ||
  29451. d->internal == NULL) {
  29452. ret = WOLFSSL_FAILURE;
  29453. }
  29454. if (ret == WOLFSSL_SUCCESS) {
  29455. ret = mp_div((mp_int*)a->internal, (mp_int*)d->internal,
  29456. (mp_int*)dv->internal, (mp_int*)rem->internal);
  29457. if (ret == MP_OKAY) {
  29458. ret = WOLFSSL_SUCCESS;
  29459. }
  29460. else {
  29461. ret = WOLFSSL_FAILURE;
  29462. }
  29463. }
  29464. WOLFSSL_LEAVE("wolfSSL_BN_div", ret);
  29465. return ret;
  29466. }
  29467. #endif
  29468. #if !defined(NO_RSA) && defined(WOLFSSL_KEY_GEN) /* Needed to get mp_gcd. */
  29469. int wolfSSL_BN_gcd(WOLFSSL_BIGNUM* r, WOLFSSL_BIGNUM* a, WOLFSSL_BIGNUM* b,
  29470. WOLFSSL_BN_CTX* ctx)
  29471. {
  29472. int ret = WOLFSSL_SUCCESS;
  29473. (void)ctx;
  29474. WOLFSSL_ENTER("wolfSSL_BN_gcd");
  29475. if (r == NULL || a == NULL || b == NULL || r->internal == NULL ||
  29476. a->internal == NULL || b->internal == NULL) {
  29477. ret = WOLFSSL_FAILURE;
  29478. }
  29479. if (ret == WOLFSSL_SUCCESS) {
  29480. ret = mp_gcd((mp_int*)a->internal, (mp_int*)b->internal,
  29481. (mp_int*)r->internal);
  29482. if (ret == MP_OKAY) {
  29483. ret = WOLFSSL_SUCCESS;
  29484. }
  29485. else {
  29486. ret = WOLFSSL_FAILURE;
  29487. }
  29488. }
  29489. WOLFSSL_LEAVE("wolfSSL_BN_gcd", ret);
  29490. return ret;
  29491. }
  29492. #endif /* !NO_RSA && WOLFSSL_KEY_GEN */
  29493. /* WOLFSSL_SUCCESS on ok */
  29494. int wolfSSL_BN_mod(WOLFSSL_BIGNUM* r, const WOLFSSL_BIGNUM* a,
  29495. const WOLFSSL_BIGNUM* b, const WOLFSSL_BN_CTX* c)
  29496. {
  29497. (void)c;
  29498. WOLFSSL_MSG("wolfSSL_BN_mod");
  29499. if (r == NULL || a == NULL || b == NULL)
  29500. return 0;
  29501. if (mp_mod((mp_int*)a->internal,(mp_int*)b->internal,
  29502. (mp_int*)r->internal) == MP_OKAY)
  29503. return WOLFSSL_SUCCESS;
  29504. WOLFSSL_MSG("wolfSSL_BN_mod mp_mod failed");
  29505. return 0;
  29506. }
  29507. /* r = (a^p) % m */
  29508. int wolfSSL_BN_mod_exp(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *a,
  29509. const WOLFSSL_BIGNUM *p, const WOLFSSL_BIGNUM *m, WOLFSSL_BN_CTX *ctx)
  29510. {
  29511. int ret;
  29512. WOLFSSL_ENTER("wolfSSL_BN_mod_exp");
  29513. (void) ctx;
  29514. if (r == NULL || a == NULL || p == NULL || m == NULL) {
  29515. WOLFSSL_MSG("Bad Argument");
  29516. return WOLFSSL_FAILURE;
  29517. }
  29518. if ((ret = mp_exptmod((mp_int*)a->internal,(mp_int*)p->internal,
  29519. (mp_int*)m->internal, (mp_int*)r->internal)) == MP_OKAY) {
  29520. return WOLFSSL_SUCCESS;
  29521. }
  29522. WOLFSSL_LEAVE("wolfSSL_BN_mod_exp", ret);
  29523. (void)ret;
  29524. return WOLFSSL_FAILURE;
  29525. }
  29526. /* r = (a * p) % m */
  29527. int wolfSSL_BN_mod_mul(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *a,
  29528. const WOLFSSL_BIGNUM *p, const WOLFSSL_BIGNUM *m, WOLFSSL_BN_CTX *ctx)
  29529. {
  29530. int ret;
  29531. WOLFSSL_ENTER("wolfSSL_BN_mod_mul");
  29532. (void) ctx;
  29533. if (r == NULL || a == NULL || p == NULL || m == NULL) {
  29534. WOLFSSL_MSG("Bad Argument");
  29535. return SSL_FAILURE;
  29536. }
  29537. if ((ret = mp_mulmod((mp_int*)a->internal,(mp_int*)p->internal,
  29538. (mp_int*)m->internal, (mp_int*)r->internal)) == MP_OKAY) {
  29539. return WOLFSSL_SUCCESS;
  29540. }
  29541. WOLFSSL_LEAVE("wolfSSL_BN_mod_mul", ret);
  29542. (void)ret;
  29543. return SSL_FAILURE;
  29544. }
  29545. const WOLFSSL_BIGNUM* wolfSSL_BN_value_one(void)
  29546. {
  29547. WOLFSSL_MSG("wolfSSL_BN_value_one");
  29548. if (bn_one == NULL) {
  29549. bn_one = wolfSSL_BN_new();
  29550. if (bn_one) {
  29551. if (mp_set_int((mp_int*)bn_one->internal, 1) != MP_OKAY) {
  29552. /* handle error by freeing BN and returning NULL */
  29553. wolfSSL_BN_free(bn_one);
  29554. bn_one = NULL;
  29555. }
  29556. }
  29557. }
  29558. return bn_one;
  29559. }
  29560. /* return compliant with OpenSSL
  29561. * size of BIGNUM in bytes, 0 if error */
  29562. int wolfSSL_BN_num_bytes(const WOLFSSL_BIGNUM* bn)
  29563. {
  29564. WOLFSSL_ENTER("wolfSSL_BN_num_bytes");
  29565. if (bn == NULL || bn->internal == NULL)
  29566. return WOLFSSL_FAILURE;
  29567. return mp_unsigned_bin_size((mp_int*)bn->internal);
  29568. }
  29569. /* return compliant with OpenSSL
  29570. * size of BIGNUM in bits, 0 if error */
  29571. int wolfSSL_BN_num_bits(const WOLFSSL_BIGNUM* bn)
  29572. {
  29573. WOLFSSL_ENTER("wolfSSL_BN_num_bits");
  29574. if (bn == NULL || bn->internal == NULL)
  29575. return WOLFSSL_FAILURE;
  29576. return mp_count_bits((mp_int*)bn->internal);
  29577. }
  29578. int wolfSSL_BN_is_negative(const WOLFSSL_BIGNUM* bn)
  29579. {
  29580. if (bn == NULL)
  29581. return WOLFSSL_FAILURE;
  29582. return mp_isneg((mp_int*)bn->internal);
  29583. }
  29584. WOLFSSL_API void wolfSSL_BN_zero(WOLFSSL_BIGNUM* bn)
  29585. {
  29586. if (bn == NULL || bn->internal == NULL) {
  29587. return;
  29588. }
  29589. mp_zero((mp_int*)bn->internal);
  29590. }
  29591. WOLFSSL_API int wolfSSL_BN_one(WOLFSSL_BIGNUM* bn)
  29592. {
  29593. int ret = WOLFSSL_SUCCESS;
  29594. if (bn == NULL || bn->internal == NULL) {
  29595. return WOLFSSL_FAILURE;
  29596. }
  29597. if (ret == WOLFSSL_SUCCESS) {
  29598. ret = wolfSSL_BN_set_word(bn, 1);
  29599. }
  29600. return ret;
  29601. }
  29602. /* return compliant with OpenSSL
  29603. * 1 if BIGNUM is zero, 0 else */
  29604. int wolfSSL_BN_is_zero(const WOLFSSL_BIGNUM* bn)
  29605. {
  29606. WOLFSSL_MSG("wolfSSL_BN_is_zero");
  29607. if (bn == NULL || bn->internal == NULL)
  29608. return WOLFSSL_FAILURE;
  29609. if (mp_iszero((mp_int*)bn->internal) == MP_YES)
  29610. return WOLFSSL_SUCCESS;
  29611. return WOLFSSL_FAILURE;
  29612. }
  29613. /* return compliant with OpenSSL
  29614. * 1 if BIGNUM is one, 0 else */
  29615. int wolfSSL_BN_is_one(const WOLFSSL_BIGNUM* bn)
  29616. {
  29617. WOLFSSL_MSG("wolfSSL_BN_is_one");
  29618. if (bn == NULL || bn->internal == NULL)
  29619. return WOLFSSL_FAILURE;
  29620. if (mp_cmp_d((mp_int*)bn->internal, 1) == MP_EQ)
  29621. return WOLFSSL_SUCCESS;
  29622. return WOLFSSL_FAILURE;
  29623. }
  29624. /* return compliant with OpenSSL
  29625. * 1 if BIGNUM is odd, 0 else */
  29626. int wolfSSL_BN_is_odd(const WOLFSSL_BIGNUM* bn)
  29627. {
  29628. WOLFSSL_MSG("wolfSSL_BN_is_odd");
  29629. if (bn == NULL || bn->internal == NULL)
  29630. return WOLFSSL_FAILURE;
  29631. if (mp_isodd((mp_int*)bn->internal) == MP_YES)
  29632. return WOLFSSL_SUCCESS;
  29633. return WOLFSSL_FAILURE;
  29634. }
  29635. /* return compliant with OpenSSL
  29636. * 1 if BIGNUM is word, 0 else */
  29637. int wolfSSL_BN_is_word(const WOLFSSL_BIGNUM* bn, WOLFSSL_BN_ULONG w)
  29638. {
  29639. WOLFSSL_MSG("wolfSSL_BN_is_word");
  29640. if (bn == NULL || bn->internal == NULL) {
  29641. WOLFSSL_MSG("bn NULL error");
  29642. return WOLFSSL_FAILURE;
  29643. }
  29644. if (w <= MP_MASK) {
  29645. if (mp_isword((mp_int*)bn->internal, (mp_digit)w) == MP_YES) {
  29646. return WOLFSSL_SUCCESS;
  29647. }
  29648. } else {
  29649. int ret;
  29650. mp_int w_mp;
  29651. if (mp_init(&w_mp) != MP_OKAY)
  29652. return WOLFSSL_FAILURE;
  29653. if (mp_set_int(&w_mp, w) != MP_OKAY)
  29654. return WOLFSSL_FAILURE;
  29655. ret = mp_cmp((mp_int *)bn->internal, &w_mp);
  29656. mp_free(&w_mp);
  29657. if (ret == MP_EQ)
  29658. return WOLFSSL_SUCCESS;
  29659. }
  29660. return WOLFSSL_FAILURE;
  29661. }
  29662. /* return compliant with OpenSSL
  29663. * -1 if a < b, 0 if a == b and 1 if a > b
  29664. */
  29665. int wolfSSL_BN_cmp(const WOLFSSL_BIGNUM* a, const WOLFSSL_BIGNUM* b)
  29666. {
  29667. int ret;
  29668. WOLFSSL_MSG("wolfSSL_BN_cmp");
  29669. if (a == NULL || a->internal == NULL || b == NULL || b->internal == NULL)
  29670. return WOLFSSL_FATAL_ERROR;
  29671. ret = mp_cmp((mp_int*)a->internal, (mp_int*)b->internal);
  29672. return (ret == MP_EQ ? 0 : (ret == MP_GT ? 1 : -1));
  29673. }
  29674. /* return compliant with OpenSSL
  29675. * length of BIGNUM in bytes, -1 if error */
  29676. int wolfSSL_BN_bn2bin(const WOLFSSL_BIGNUM* bn, unsigned char* r)
  29677. {
  29678. WOLFSSL_MSG("wolfSSL_BN_bn2bin");
  29679. if (bn == NULL || bn->internal == NULL) {
  29680. WOLFSSL_MSG("NULL bn error");
  29681. return WOLFSSL_FATAL_ERROR;
  29682. }
  29683. if (r == NULL)
  29684. return mp_unsigned_bin_size((mp_int*)bn->internal);
  29685. if (mp_to_unsigned_bin((mp_int*)bn->internal, r) != MP_OKAY) {
  29686. WOLFSSL_MSG("mp_to_unsigned_bin error");
  29687. return WOLFSSL_FATAL_ERROR;
  29688. }
  29689. return mp_unsigned_bin_size((mp_int*)bn->internal);
  29690. }
  29691. WOLFSSL_BIGNUM* wolfSSL_BN_bin2bn(const unsigned char* str, int len,
  29692. WOLFSSL_BIGNUM* ret)
  29693. {
  29694. int weOwn = 0;
  29695. WOLFSSL_MSG("wolfSSL_BN_bin2bn");
  29696. /* if ret is null create a BN */
  29697. if (ret == NULL) {
  29698. ret = wolfSSL_BN_new();
  29699. weOwn = 1;
  29700. if (ret == NULL)
  29701. return NULL;
  29702. }
  29703. /* check ret and ret->internal then read in value */
  29704. if (ret && ret->internal) {
  29705. if (mp_read_unsigned_bin((mp_int*)ret->internal, str, len) != 0) {
  29706. WOLFSSL_MSG("mp_read_unsigned_bin failure");
  29707. if (weOwn)
  29708. wolfSSL_BN_free(ret);
  29709. return NULL;
  29710. }
  29711. } else {
  29712. /* This may be overly defensive */
  29713. if (weOwn)
  29714. wolfSSL_BN_free(ret);
  29715. return NULL;
  29716. }
  29717. return ret;
  29718. }
  29719. /* return compliant with OpenSSL
  29720. * 1 if success, 0 if error */
  29721. #ifndef NO_WOLFSSL_STUB
  29722. int wolfSSL_mask_bits(WOLFSSL_BIGNUM* bn, int n)
  29723. {
  29724. (void)bn;
  29725. (void)n;
  29726. WOLFSSL_ENTER("wolfSSL_BN_mask_bits");
  29727. WOLFSSL_STUB("BN_mask_bits");
  29728. return SSL_FAILURE;
  29729. }
  29730. #endif
  29731. /* WOLFSSL_SUCCESS on ok */
  29732. int wolfSSL_BN_rand(WOLFSSL_BIGNUM* bn, int bits, int top, int bottom)
  29733. {
  29734. int ret = WOLFSSL_SUCCESS;
  29735. int len = (bits + 7) / 8;
  29736. WC_RNG* rng = &globalRNG;
  29737. byte* buff = NULL;
  29738. WOLFSSL_ENTER("wolfSSL_BN_rand");
  29739. if ((bn == NULL || bn->internal == NULL) || bits < 0 ||
  29740. (bits == 0 && (bottom != 0 || top != -1)) || (bits == 1 && top > 0)) {
  29741. WOLFSSL_MSG("Bad argument");
  29742. ret = WOLFSSL_FAILURE;
  29743. }
  29744. if (ret == WOLFSSL_SUCCESS) {
  29745. if (len == 0) {
  29746. mp_zero((mp_int*)bn->internal);
  29747. }
  29748. else {
  29749. buff = (byte*)XMALLOC(len, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29750. if (buff == NULL) {
  29751. WOLFSSL_MSG("Failed to allocate buffer.");
  29752. XFREE(buff, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29753. ret = WOLFSSL_FAILURE;
  29754. }
  29755. if (ret == WOLFSSL_SUCCESS && initGlobalRNG == 0 &&
  29756. wolfSSL_RAND_Init() != WOLFSSL_SUCCESS) {
  29757. WOLFSSL_MSG("Failed to use global RNG.");
  29758. ret = WOLFSSL_FAILURE;
  29759. }
  29760. if (ret == WOLFSSL_SUCCESS &&
  29761. wc_RNG_GenerateBlock(rng, buff, len) != 0) {
  29762. WOLFSSL_MSG("wc_RNG_GenerateBlock failed");
  29763. ret = WOLFSSL_FAILURE;
  29764. }
  29765. if (ret == WOLFSSL_SUCCESS &&
  29766. mp_read_unsigned_bin((mp_int*)bn->internal,buff,len)
  29767. != MP_OKAY) {
  29768. WOLFSSL_MSG("mp_read_unsigned_bin failed");
  29769. ret = WOLFSSL_FAILURE;
  29770. }
  29771. if (ret == WOLFSSL_SUCCESS) {
  29772. /* Truncate to requested bit length. */
  29773. mp_rshb((mp_int*)bn->internal, 8 - (bits % 8));
  29774. if (top == 0) {
  29775. if (mp_set_bit((mp_int*)bn->internal, bits - 1)
  29776. != MP_OKAY) {
  29777. WOLFSSL_MSG("Failed to set top bit");
  29778. ret = WOLFSSL_FAILURE;
  29779. }
  29780. }
  29781. else if (top > 0) {
  29782. if (mp_set_bit((mp_int*)bn->internal, bits - 1)
  29783. != MP_OKAY ||
  29784. mp_set_bit((mp_int*)bn->internal, bits - 2)
  29785. != MP_OKAY) {
  29786. WOLFSSL_MSG("Failed to set top 2 bits");
  29787. ret = WOLFSSL_FAILURE;
  29788. }
  29789. }
  29790. }
  29791. if (ret == WOLFSSL_SUCCESS && bottom &&
  29792. mp_set_bit((mp_int*)bn->internal, 0) != MP_OKAY) {
  29793. WOLFSSL_MSG("Failed to set 0th bit");
  29794. ret = WOLFSSL_FAILURE;
  29795. }
  29796. if (buff != NULL) {
  29797. XFREE(buff, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29798. }
  29799. }
  29800. }
  29801. WOLFSSL_LEAVE("wolfSSL_BN_rand", ret);
  29802. return ret;
  29803. }
  29804. /**
  29805. * N = length of range input var
  29806. * Generate N-bit length numbers until generated number is less than range
  29807. * @param r Output number
  29808. * @param range The upper limit of generated output
  29809. * @return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on failure
  29810. */
  29811. int wolfSSL_BN_rand_range(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *range)
  29812. {
  29813. int n;
  29814. int iter = 0;
  29815. WOLFSSL_MSG("wolfSSL_BN_rand_range");
  29816. if (r == NULL || range == NULL) {
  29817. WOLFSSL_MSG("Bad parameter");
  29818. return WOLFSSL_FAILURE;
  29819. }
  29820. n = wolfSSL_BN_num_bits(range);
  29821. if (n <= 1) {
  29822. wolfSSL_BN_zero(r);
  29823. }
  29824. else {
  29825. do {
  29826. if (iter >= 100) {
  29827. WOLFSSL_MSG("wolfSSL_BN_rand_range too many iterations");
  29828. return WOLFSSL_FAILURE;
  29829. }
  29830. iter++;
  29831. if (wolfSSL_BN_pseudo_rand(r, n, -1, 0) == WOLFSSL_FAILURE) {
  29832. WOLFSSL_MSG("wolfSSL_BN_rand error");
  29833. return WOLFSSL_FAILURE;
  29834. }
  29835. } while(wolfSSL_BN_cmp(r, range) >= 0);
  29836. }
  29837. return WOLFSSL_SUCCESS;
  29838. }
  29839. /* WOLFSSL_SUCCESS on ok
  29840. * code is same as wolfSSL_BN_rand except for how top and bottom is handled.
  29841. * top -1 then leave most sig bit alone
  29842. * top 0 then most sig is set to 1
  29843. * top is 1 then first two most sig bits are 1
  29844. *
  29845. * bottom is hot then odd number */
  29846. int wolfSSL_BN_pseudo_rand(WOLFSSL_BIGNUM* bn, int bits, int top, int bottom)
  29847. {
  29848. int ret = 0;
  29849. int len;
  29850. int initTmpRng = 0;
  29851. WC_RNG* rng = NULL;
  29852. #ifdef WOLFSSL_SMALL_STACK
  29853. WC_RNG* tmpRNG = NULL;
  29854. byte* buff = NULL;
  29855. #else
  29856. WC_RNG tmpRNG[1];
  29857. byte buff[1024];
  29858. #endif
  29859. WOLFSSL_ENTER("wolfSSL_BN_pseudo_rand");
  29860. if (bits <= 0) {
  29861. return WOLFSSL_FAILURE;
  29862. }
  29863. len = bits / 8;
  29864. if (bits % 8)
  29865. len++;
  29866. /* has to be a length of at least 1 since we set buf[0] and buf[len-1] */
  29867. if (top == 1 || top == 0 || bottom == 1) {
  29868. if (len < 1) {
  29869. return WOLFSSL_FAILURE;
  29870. }
  29871. }
  29872. #ifdef WOLFSSL_SMALL_STACK
  29873. buff = (byte*)XMALLOC(1024, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29874. tmpRNG = (WC_RNG*) XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29875. if (buff == NULL || tmpRNG == NULL) {
  29876. XFREE(buff, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29877. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29878. return ret;
  29879. }
  29880. #endif
  29881. if (bn == NULL || bn->internal == NULL)
  29882. WOLFSSL_MSG("Bad function arguments");
  29883. else if (wc_InitRng(tmpRNG) == 0) {
  29884. rng = tmpRNG;
  29885. initTmpRng = 1;
  29886. }
  29887. else if (initGlobalRNG)
  29888. rng = &globalRNG;
  29889. if (rng) {
  29890. if (wc_RNG_GenerateBlock(rng, buff, len) != 0)
  29891. WOLFSSL_MSG("Bad wc_RNG_GenerateBlock");
  29892. else {
  29893. switch (top) {
  29894. case -1:
  29895. break;
  29896. case 0:
  29897. buff[0] |= 0x80;
  29898. break;
  29899. case 1:
  29900. buff[0] |= 0x80 | 0x40;
  29901. break;
  29902. }
  29903. if (bottom == 1) {
  29904. buff[len-1] |= 0x01;
  29905. }
  29906. if (mp_read_unsigned_bin((mp_int*)bn->internal,buff,len) != MP_OKAY)
  29907. WOLFSSL_MSG("mp read bin failed");
  29908. else
  29909. ret = WOLFSSL_SUCCESS;
  29910. }
  29911. }
  29912. if (initTmpRng)
  29913. wc_FreeRng(tmpRNG);
  29914. #ifdef WOLFSSL_SMALL_STACK
  29915. XFREE(buff, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29916. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  29917. #endif
  29918. return ret;
  29919. }
  29920. /* return code compliant with OpenSSL :
  29921. * 1 if bit set, 0 else
  29922. */
  29923. int wolfSSL_BN_is_bit_set(const WOLFSSL_BIGNUM* bn, int n)
  29924. {
  29925. if (bn == NULL || bn->internal == NULL) {
  29926. WOLFSSL_MSG("bn NULL error");
  29927. return WOLFSSL_FAILURE;
  29928. }
  29929. return mp_is_bit_set((mp_int*)bn->internal, (mp_digit)n);
  29930. }
  29931. /* return code compliant with OpenSSL :
  29932. * 1 if success, 0 else
  29933. */
  29934. int wolfSSL_BN_set_bit(WOLFSSL_BIGNUM* bn, int n)
  29935. {
  29936. if (bn == NULL || bn->internal == NULL) {
  29937. WOLFSSL_MSG("bn NULL error");
  29938. return WOLFSSL_FAILURE;
  29939. }
  29940. if (mp_set_bit((mp_int*)bn->internal, n) != MP_OKAY) {
  29941. WOLFSSL_MSG("mp_set_bit error");
  29942. return WOLFSSL_FAILURE;
  29943. }
  29944. return WOLFSSL_SUCCESS;
  29945. }
  29946. int wolfSSL_BN_clear_bit(WOLFSSL_BIGNUM* bn, int n)
  29947. {
  29948. int ret = WOLFSSL_FAILURE;
  29949. #ifndef WOLFSSL_SMALL_STACK
  29950. mp_int tmp[1];
  29951. #else
  29952. mp_int* tmp = NULL;
  29953. #endif
  29954. if (bn == NULL || bn->internal == NULL) {
  29955. WOLFSSL_MSG("bn NULL error");
  29956. goto end;
  29957. }
  29958. if (mp_is_bit_set((mp_int*)bn->internal, n)) {
  29959. #ifdef WOLFSSL_SMALL_STACK
  29960. tmp = (mp_int*)XMALLOC(sizeof(mp_int), NULL, DYNAMIC_TYPE_BIGINT);
  29961. if (tmp == NULL) {
  29962. goto end;
  29963. }
  29964. #endif
  29965. if (mp_init(tmp) != MP_OKAY) {
  29966. goto end;
  29967. }
  29968. if (mp_set_bit(tmp, n) != MP_OKAY) {
  29969. goto cleanup;
  29970. }
  29971. if (mp_sub((mp_int*)bn->internal, tmp, (mp_int*)bn->internal) != MP_OKAY) {
  29972. goto cleanup;
  29973. }
  29974. } else {
  29975. goto end;
  29976. }
  29977. ret = WOLFSSL_SUCCESS;
  29978. cleanup:
  29979. mp_clear(tmp);
  29980. end:
  29981. #ifdef WOLFSSL_SMALL_STACK
  29982. if (tmp)
  29983. XFREE(tmp, NULL, DYNAMIC_TYPE_BIGINT);
  29984. #endif
  29985. return ret;
  29986. }
  29987. /* WOLFSSL_SUCCESS on ok */
  29988. /* Note on use: this function expects str to be an even length. It is
  29989. * converting pairs of bytes into 8-bit values. As an example, the RSA
  29990. * public exponent is commonly 0x010001. To get it to convert, you need
  29991. * to pass in the string "010001", it will fail if you use "10001". This
  29992. * is an affect of how Base16_Decode() works.
  29993. */
  29994. int wolfSSL_BN_hex2bn(WOLFSSL_BIGNUM** bn, const char* str)
  29995. {
  29996. int ret = 0;
  29997. word32 decSz = 1024;
  29998. #ifdef WOLFSSL_SMALL_STACK
  29999. byte* decoded;
  30000. #else
  30001. byte decoded[1024];
  30002. #endif
  30003. int weOwn = 0;
  30004. int strLen;
  30005. WOLFSSL_MSG("wolfSSL_BN_hex2bn");
  30006. #ifdef WOLFSSL_SMALL_STACK
  30007. decoded = (byte*)XMALLOC(decSz, NULL, DYNAMIC_TYPE_DER);
  30008. if (decoded == NULL)
  30009. return ret;
  30010. #endif
  30011. if (str == NULL || str[0] == '\0') {
  30012. WOLFSSL_MSG("Bad function argument");
  30013. ret = WOLFSSL_FAILURE;
  30014. } else {
  30015. strLen = (int)XSTRLEN(str);
  30016. /* ignore trailing new lines */
  30017. while (str[strLen-1] == '\n' && strLen > 0) strLen--;
  30018. if (Base16_Decode((byte*)str, strLen, decoded, &decSz) < 0)
  30019. WOLFSSL_MSG("Bad Base16_Decode error");
  30020. else if (bn == NULL)
  30021. ret = decSz;
  30022. else {
  30023. if (*bn == NULL) {
  30024. *bn = wolfSSL_BN_new();
  30025. if (*bn != NULL) {
  30026. weOwn = 1;
  30027. }
  30028. }
  30029. if (*bn == NULL)
  30030. WOLFSSL_MSG("BN new failed");
  30031. else if (wolfSSL_BN_bin2bn(decoded, decSz, *bn) == NULL) {
  30032. WOLFSSL_MSG("Bad bin2bn error");
  30033. if (weOwn == 1) {
  30034. wolfSSL_BN_free(*bn); /* Free new BN */
  30035. }
  30036. }
  30037. else
  30038. ret = WOLFSSL_SUCCESS;
  30039. }
  30040. }
  30041. #ifdef WOLFSSL_SMALL_STACK
  30042. XFREE(decoded, NULL, DYNAMIC_TYPE_DER);
  30043. #endif
  30044. return ret;
  30045. }
  30046. WOLFSSL_BIGNUM* wolfSSL_BN_dup(const WOLFSSL_BIGNUM* bn)
  30047. {
  30048. WOLFSSL_BIGNUM* ret;
  30049. WOLFSSL_MSG("wolfSSL_BN_dup");
  30050. if (bn == NULL || bn->internal == NULL) {
  30051. WOLFSSL_MSG("bn NULL error");
  30052. return NULL;
  30053. }
  30054. ret = wolfSSL_BN_new();
  30055. if (ret == NULL) {
  30056. WOLFSSL_MSG("bn new error");
  30057. return NULL;
  30058. }
  30059. if (mp_copy((mp_int*)bn->internal, (mp_int*)ret->internal) != MP_OKAY) {
  30060. WOLFSSL_MSG("mp_copy error");
  30061. wolfSSL_BN_free(ret);
  30062. return NULL;
  30063. }
  30064. ret->neg = bn->neg;
  30065. return ret;
  30066. }
  30067. WOLFSSL_BIGNUM* wolfSSL_BN_copy(WOLFSSL_BIGNUM* r, const WOLFSSL_BIGNUM* bn)
  30068. {
  30069. WOLFSSL_MSG("wolfSSL_BN_copy");
  30070. if (r == NULL || bn == NULL) {
  30071. WOLFSSL_MSG("r or bn NULL error");
  30072. return NULL;
  30073. }
  30074. if (mp_copy((mp_int*)bn->internal, (mp_int*)r->internal) != MP_OKAY) {
  30075. WOLFSSL_MSG("mp_copy error");
  30076. return NULL;
  30077. }
  30078. r->neg = bn->neg;
  30079. return r;
  30080. }
  30081. /* return code compliant with OpenSSL :
  30082. * 1 if success, 0 else
  30083. */
  30084. int wolfSSL_BN_set_word(WOLFSSL_BIGNUM* bn, unsigned long w)
  30085. {
  30086. WOLFSSL_MSG("wolfSSL_BN_set_word");
  30087. if (bn == NULL) {
  30088. WOLFSSL_MSG("bn NULL error");
  30089. return WOLFSSL_FAILURE;
  30090. }
  30091. if (mp_set_int((mp_int*)bn->internal, w) != MP_OKAY) {
  30092. WOLFSSL_MSG("mp_init_set_int error");
  30093. return WOLFSSL_FAILURE;
  30094. }
  30095. return WOLFSSL_SUCCESS;
  30096. }
  30097. static WOLFSSL_BN_ULONG wolfSSL_BN_get_word_1(mp_int *mp) {
  30098. #if DIGIT_BIT >= (SIZEOF_LONG * CHAR_BIT)
  30099. return (WOLFSSL_BN_ULONG)mp->dp[0];
  30100. #else
  30101. WOLFSSL_BN_ULONG ret = 0UL;
  30102. int digit_i;
  30103. for (digit_i = 0; digit_i < mp->used; ++digit_i)
  30104. ret |= ((WOLFSSL_BN_ULONG)mp->dp[digit_i]) << (DIGIT_BIT * digit_i);
  30105. return ret;
  30106. #endif
  30107. }
  30108. /* Returns the big number as an unsigned long if possible.
  30109. *
  30110. * bn big number structure to get value from
  30111. *
  30112. * Returns value or 0xFFFFFFFFL if bigger than unsigned long.
  30113. */
  30114. WOLFSSL_BN_ULONG wolfSSL_BN_get_word(const WOLFSSL_BIGNUM* bn)
  30115. {
  30116. WOLFSSL_MSG("wolfSSL_BN_get_word");
  30117. if (bn == NULL) {
  30118. WOLFSSL_MSG("Invalid argument");
  30119. return 0;
  30120. }
  30121. if (wolfSSL_BN_num_bytes(bn) > (int)sizeof(unsigned long)) {
  30122. WOLFSSL_MSG("bignum is larger than unsigned long");
  30123. return 0xFFFFFFFFL;
  30124. }
  30125. return wolfSSL_BN_get_word_1((mp_int*)bn->internal);
  30126. }
  30127. /* return code compliant with OpenSSL :
  30128. * number length in decimal if success, 0 if error
  30129. */
  30130. #ifndef NO_WOLFSSL_STUB
  30131. int wolfSSL_BN_dec2bn(WOLFSSL_BIGNUM** bn, const char* str)
  30132. {
  30133. (void)bn;
  30134. (void)str;
  30135. WOLFSSL_MSG("wolfSSL_BN_dec2bn");
  30136. WOLFSSL_STUB("BN_dec2bn");
  30137. return SSL_FAILURE;
  30138. }
  30139. #endif
  30140. #if defined(WOLFSSL_KEY_GEN) || defined(HAVE_COMP_KEY)
  30141. char *wolfSSL_BN_bn2dec(const WOLFSSL_BIGNUM *bn)
  30142. {
  30143. int len = 0;
  30144. char *buf;
  30145. WOLFSSL_MSG("wolfSSL_BN_bn2dec");
  30146. if (bn == NULL || bn->internal == NULL) {
  30147. WOLFSSL_MSG("bn NULL error");
  30148. return NULL;
  30149. }
  30150. if (mp_radix_size((mp_int*)bn->internal, MP_RADIX_DEC, &len) != MP_OKAY) {
  30151. WOLFSSL_MSG("mp_radix_size failure");
  30152. return NULL;
  30153. }
  30154. buf = (char*) XMALLOC(len, NULL, DYNAMIC_TYPE_OPENSSL);
  30155. if (buf == NULL) {
  30156. WOLFSSL_MSG("BN_bn2dec malloc buffer failure");
  30157. return NULL;
  30158. }
  30159. if (mp_todecimal((mp_int*)bn->internal, buf) != MP_OKAY) {
  30160. XFREE(buf, NULL, DYNAMIC_TYPE_ECC);
  30161. return NULL;
  30162. }
  30163. return buf;
  30164. }
  30165. #else
  30166. char* wolfSSL_BN_bn2dec(const WOLFSSL_BIGNUM* bn)
  30167. {
  30168. (void)bn;
  30169. WOLFSSL_MSG("wolfSSL_BN_bn2dec");
  30170. return NULL;
  30171. }
  30172. #endif /* defined(WOLFSSL_KEY_GEN) || defined(HAVE_COMP_KEY) */
  30173. /* Internal function for adding/subtracting an unsigned long from a
  30174. * WOLFSSL_BIGNUM. To add, pass "sub" as 0. To subtract, pass it as 1.
  30175. * Returns 1 (WOLFSSL_SUCCESS) on success and 0 (WOLFSSL_FAILURE) on failure.
  30176. */
  30177. static int wolfSSL_BN_add_word_int(WOLFSSL_BIGNUM *bn, WOLFSSL_BN_ULONG w,
  30178. int sub)
  30179. {
  30180. int ret = WOLFSSL_SUCCESS;
  30181. int rc = 0;
  30182. mp_int w_mp;
  30183. XMEMSET(&w_mp, 0, sizeof(mp_int));
  30184. if (bn == NULL || bn->internal == NULL) {
  30185. WOLFSSL_MSG("bn NULL error");
  30186. ret = WOLFSSL_FAILURE;
  30187. }
  30188. if (ret == WOLFSSL_SUCCESS) {
  30189. if (w <= MP_MASK) {
  30190. if (sub == 1) {
  30191. rc = mp_sub_d((mp_int*)bn->internal, (mp_digit)w,
  30192. (mp_int*)bn->internal);
  30193. }
  30194. else {
  30195. rc = mp_add_d((mp_int*)bn->internal, (mp_digit)w,
  30196. (mp_int*)bn->internal);
  30197. }
  30198. if (rc != MP_OKAY) {
  30199. WOLFSSL_MSG("mp_add/sub_d error");
  30200. ret = WOLFSSL_FAILURE;
  30201. }
  30202. }
  30203. else {
  30204. if (mp_init(&w_mp) != MP_OKAY) {
  30205. ret = WOLFSSL_FAILURE;
  30206. }
  30207. if (ret == WOLFSSL_SUCCESS) {
  30208. if (mp_set_int(&w_mp, w) != MP_OKAY) {
  30209. ret = WOLFSSL_FAILURE;
  30210. }
  30211. }
  30212. if (ret == WOLFSSL_SUCCESS) {
  30213. if (sub == 1) {
  30214. rc = mp_sub((mp_int *)bn->internal, &w_mp,
  30215. (mp_int *)bn->internal);
  30216. }
  30217. else {
  30218. rc = mp_add((mp_int *)bn->internal, &w_mp,
  30219. (mp_int *)bn->internal);
  30220. }
  30221. if (rc != MP_OKAY) {
  30222. WOLFSSL_MSG("mp_add/sub error");
  30223. ret = WOLFSSL_FAILURE;
  30224. }
  30225. }
  30226. }
  30227. }
  30228. mp_free(&w_mp);
  30229. return ret;
  30230. }
  30231. /* return code compliant with OpenSSL :
  30232. * 1 if success, 0 else
  30233. */
  30234. int wolfSSL_BN_add_word(WOLFSSL_BIGNUM *bn, WOLFSSL_BN_ULONG w)
  30235. {
  30236. int ret;
  30237. WOLFSSL_ENTER("wolfSSL_BN_add_word");
  30238. ret = wolfSSL_BN_add_word_int(bn, w, 0);
  30239. WOLFSSL_LEAVE("wolfSSL_BN_add_word", ret);
  30240. return ret;
  30241. }
  30242. /* return code compliant with OpenSSL :
  30243. * 1 if success, 0 else
  30244. */
  30245. WOLFSSL_API int wolfSSL_BN_sub_word(WOLFSSL_BIGNUM* bn, WOLFSSL_BN_ULONG w)
  30246. {
  30247. int ret;
  30248. WOLFSSL_ENTER("wolfSSL_BN_sub_word");
  30249. ret = wolfSSL_BN_add_word_int(bn, w, 1);
  30250. WOLFSSL_LEAVE("wolfSSL_BN_sub_word", ret);
  30251. return ret;
  30252. }
  30253. #ifndef WOLFSSL_SP_MATH
  30254. /* return code compliant with OpenSSL :
  30255. * 1 if success, 0 else
  30256. */
  30257. int wolfSSL_BN_lshift(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *bn, int n)
  30258. {
  30259. WOLFSSL_MSG("wolfSSL_BN_lshift");
  30260. if (r == NULL || r->internal == NULL || bn == NULL || bn->internal == NULL){
  30261. WOLFSSL_MSG("bn NULL error");
  30262. return WOLFSSL_FAILURE;
  30263. }
  30264. if (mp_mul_2d((mp_int*)bn->internal, n, (mp_int*)r->internal) != MP_OKAY) {
  30265. WOLFSSL_MSG("mp_mul_2d error");
  30266. return WOLFSSL_FAILURE;
  30267. }
  30268. return WOLFSSL_SUCCESS;
  30269. }
  30270. /* return code compliant with OpenSSL :
  30271. * 1 if success, 0 else
  30272. */
  30273. int wolfSSL_BN_rshift(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *bn, int n)
  30274. {
  30275. WOLFSSL_MSG("wolfSSL_BN_rshift");
  30276. if (r == NULL || r->internal == NULL || bn == NULL || bn->internal == NULL){
  30277. WOLFSSL_MSG("bn NULL error");
  30278. return WOLFSSL_FAILURE;
  30279. }
  30280. if (mp_div_2d((mp_int*)bn->internal, n,
  30281. (mp_int*)r->internal, NULL) != MP_OKAY) {
  30282. WOLFSSL_MSG("mp_mul_2d error");
  30283. return WOLFSSL_FAILURE;
  30284. }
  30285. return WOLFSSL_SUCCESS;
  30286. }
  30287. #endif
  30288. /* return code compliant with OpenSSL :
  30289. * 1 if success, 0 else
  30290. */
  30291. int wolfSSL_BN_add(WOLFSSL_BIGNUM *r, WOLFSSL_BIGNUM *a, WOLFSSL_BIGNUM *b)
  30292. {
  30293. WOLFSSL_MSG("wolfSSL_BN_add");
  30294. if (r == NULL || r->internal == NULL || a == NULL || a->internal == NULL ||
  30295. b == NULL || b->internal == NULL) {
  30296. WOLFSSL_MSG("bn NULL error");
  30297. return WOLFSSL_FAILURE;
  30298. }
  30299. if (mp_add((mp_int*)a->internal, (mp_int*)b->internal,
  30300. (mp_int*)r->internal) != MP_OKAY) {
  30301. WOLFSSL_MSG("mp_add_d error");
  30302. return WOLFSSL_FAILURE;
  30303. }
  30304. return WOLFSSL_SUCCESS;
  30305. }
  30306. #ifndef WOLFSSL_SP_MATH
  30307. /* r = a + b (mod m) */
  30308. int wolfSSL_BN_mod_add(WOLFSSL_BIGNUM *r, const WOLFSSL_BIGNUM *a,
  30309. const WOLFSSL_BIGNUM *b, const WOLFSSL_BIGNUM *m,
  30310. WOLFSSL_BN_CTX *ctx)
  30311. {
  30312. (void)ctx;
  30313. WOLFSSL_MSG("wolfSSL_BN_add");
  30314. if (r == NULL || r->internal == NULL ||
  30315. a == NULL || a->internal == NULL ||
  30316. b == NULL || b->internal == NULL ||
  30317. m == NULL || m->internal == NULL) {
  30318. WOLFSSL_MSG("bn NULL error");
  30319. return WOLFSSL_FAILURE;
  30320. }
  30321. if (mp_addmod((mp_int*)a->internal, (mp_int*)b->internal,
  30322. (mp_int*)m->internal, (mp_int*)r->internal) != MP_OKAY) {
  30323. WOLFSSL_MSG("mp_add_d error");
  30324. return WOLFSSL_FAILURE;
  30325. }
  30326. return WOLFSSL_SUCCESS;
  30327. }
  30328. #endif
  30329. #if defined(WOLFSSL_KEY_GEN) && (!defined(NO_RSA) || !defined(NO_DH) || !defined(NO_DSA))
  30330. int wolfSSL_BN_generate_prime_ex(WOLFSSL_BIGNUM* prime, int bits,
  30331. int safe, const WOLFSSL_BIGNUM* add, const WOLFSSL_BIGNUM* rem,
  30332. WOLFSSL_BN_GENCB* cb)
  30333. {
  30334. int ret = WOLFSSL_SUCCESS;
  30335. #ifdef WOLFSSL_SMALL_STACK
  30336. WC_RNG* rng = NULL;
  30337. #else
  30338. WC_RNG rng[1];
  30339. #endif
  30340. (void)cb;
  30341. WOLFSSL_ENTER("wolfSSL_BN_generate_prime_ex");
  30342. if (safe == 1 || add != NULL || rem != NULL) {
  30343. /* These parameters aren't supported, yet. */
  30344. ret = WOLFSSL_FAILURE;
  30345. }
  30346. if (prime == NULL || prime->internal == NULL) {
  30347. ret = WOLFSSL_FAILURE;
  30348. }
  30349. #ifdef WOLFSSL_SMALL_STACK
  30350. if (ret == WOLFSSL_SUCCESS) {
  30351. rng = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  30352. if (rng == NULL) {
  30353. ret = WOLFSSL_FAILURE;
  30354. }
  30355. }
  30356. #endif
  30357. if (ret == WOLFSSL_SUCCESS) {
  30358. XMEMSET(rng, 0, sizeof(WC_RNG));
  30359. if (wc_InitRng(rng) != 0) {
  30360. ret = WOLFSSL_FAILURE;
  30361. }
  30362. }
  30363. if (ret == WOLFSSL_SUCCESS) {
  30364. if (mp_rand_prime((mp_int*)prime->internal, (bits + 7) / 8, rng, NULL)
  30365. != MP_OKAY) {
  30366. ret = WOLFSSL_FAILURE;
  30367. }
  30368. }
  30369. wc_FreeRng(rng);
  30370. #ifdef WOLFSSL_SMALL_STACK
  30371. if (rng != NULL)
  30372. XFREE(rng, NULL, DYNAMIC_TYPE_RNG);
  30373. #endif
  30374. WOLFSSL_LEAVE("wolfSSL_BN_generate_prime_ex", ret);
  30375. return ret;
  30376. }
  30377. /* return code compliant with OpenSSL :
  30378. * 1 if prime, 0 if not, -1 if error
  30379. */
  30380. int wolfSSL_BN_is_prime_ex(const WOLFSSL_BIGNUM *bn, int nbchecks,
  30381. WOLFSSL_BN_CTX *ctx, WOLFSSL_BN_GENCB *cb)
  30382. {
  30383. WC_RNG* rng = NULL;
  30384. #ifdef WOLFSSL_SMALL_STACK
  30385. WC_RNG* tmpRNG = NULL;
  30386. #else
  30387. WC_RNG tmpRNG[1];
  30388. #endif
  30389. int initTmpRng = 0;
  30390. int res = MP_NO;
  30391. (void)ctx;
  30392. (void)cb;
  30393. WOLFSSL_MSG("wolfSSL_BN_is_prime_ex");
  30394. if (bn == NULL || bn->internal == NULL) {
  30395. WOLFSSL_MSG("bn NULL error");
  30396. return WOLFSSL_FATAL_ERROR;
  30397. }
  30398. #ifdef WOLFSSL_SMALL_STACK
  30399. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  30400. if (tmpRNG == NULL)
  30401. return WOLFSSL_FAILURE;
  30402. #endif
  30403. if (wc_InitRng(tmpRNG) == 0) {
  30404. rng = tmpRNG;
  30405. initTmpRng = 1;
  30406. }
  30407. else {
  30408. WOLFSSL_MSG("Bad RNG Init, trying global");
  30409. if (initGlobalRNG == 0) {
  30410. WOLFSSL_MSG("Global RNG no Init");
  30411. }
  30412. else
  30413. rng = &globalRNG;
  30414. }
  30415. if (rng) {
  30416. if (mp_prime_is_prime_ex((mp_int*)bn->internal,
  30417. nbchecks, &res, rng) != MP_OKAY) {
  30418. WOLFSSL_MSG("mp_prime_is_prime_ex error");
  30419. res = MP_NO;
  30420. }
  30421. }
  30422. if (initTmpRng)
  30423. wc_FreeRng(tmpRNG);
  30424. #ifdef WOLFSSL_SMALL_STACK
  30425. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  30426. #endif
  30427. if (res != MP_YES) {
  30428. WOLFSSL_MSG("mp_prime_is_prime_ex not prime");
  30429. return WOLFSSL_FAILURE;
  30430. }
  30431. return WOLFSSL_SUCCESS;
  30432. }
  30433. /* return code compliant with OpenSSL :
  30434. * (bn mod w) if success, -1 if error
  30435. */
  30436. WOLFSSL_BN_ULONG wolfSSL_BN_mod_word(const WOLFSSL_BIGNUM *bn,
  30437. WOLFSSL_BN_ULONG w)
  30438. {
  30439. WOLFSSL_BN_ULONG ret = 0;
  30440. WOLFSSL_MSG("wolfSSL_BN_mod_word");
  30441. if (bn == NULL || bn->internal == NULL) {
  30442. WOLFSSL_MSG("bn NULL error");
  30443. return (WOLFSSL_BN_ULONG)WOLFSSL_FATAL_ERROR;
  30444. }
  30445. if (w <= MP_MASK) {
  30446. mp_digit bn_ret;
  30447. if (mp_mod_d((mp_int*)bn->internal, (mp_digit)w, &bn_ret) != MP_OKAY) {
  30448. WOLFSSL_MSG("mp_add_d error");
  30449. return (WOLFSSL_BN_ULONG)WOLFSSL_FATAL_ERROR;
  30450. }
  30451. ret = (WOLFSSL_BN_ULONG)bn_ret;
  30452. } else {
  30453. int mp_ret;
  30454. mp_int w_mp, r_mp;
  30455. if (mp_init(&w_mp) != MP_OKAY)
  30456. return (unsigned long)WOLFSSL_FAILURE;
  30457. if (mp_init(&r_mp) != MP_OKAY)
  30458. return (unsigned long)WOLFSSL_FAILURE;
  30459. if (mp_set_int(&w_mp, w) != MP_OKAY)
  30460. return (unsigned long)WOLFSSL_FAILURE;
  30461. mp_ret = mp_mod((mp_int *)bn->internal, &w_mp, &r_mp);
  30462. ret = wolfSSL_BN_get_word_1(&r_mp);
  30463. mp_free(&r_mp);
  30464. mp_free(&w_mp);
  30465. if (mp_ret != MP_OKAY) {
  30466. WOLFSSL_MSG("mp_mod error");
  30467. return (WOLFSSL_BN_ULONG)WOLFSSL_FAILURE;
  30468. }
  30469. }
  30470. return ret;
  30471. }
  30472. #endif /* WOLFSSL_KEY_GEN && (!NO_RSA || !NO_DH || !NO_DSA) */
  30473. char *wolfSSL_BN_bn2hex(const WOLFSSL_BIGNUM *bn)
  30474. {
  30475. int len = 0;
  30476. char *buf;
  30477. WOLFSSL_ENTER("wolfSSL_BN_bn2hex");
  30478. if (bn == NULL || bn->internal == NULL) {
  30479. WOLFSSL_MSG("bn NULL error");
  30480. return NULL;
  30481. }
  30482. if (mp_radix_size((mp_int*)bn->internal, MP_RADIX_HEX, &len) != MP_OKAY) {
  30483. WOLFSSL_MSG("mp_radix_size failure");
  30484. return NULL;
  30485. }
  30486. buf = (char*)XMALLOC(len, NULL, DYNAMIC_TYPE_OPENSSL);
  30487. if (buf == NULL) {
  30488. WOLFSSL_MSG("BN_bn2hex malloc buffer failure");
  30489. return NULL;
  30490. }
  30491. if (mp_tohex((mp_int*)bn->internal, buf) != MP_OKAY) {
  30492. XFREE(buf, NULL, DYNAMIC_TYPE_OPENSSL);
  30493. return NULL;
  30494. }
  30495. return buf;
  30496. }
  30497. #ifndef NO_FILESYSTEM
  30498. /* return code compliant with OpenSSL :
  30499. * 1 if success, 0 if error
  30500. */
  30501. int wolfSSL_BN_print_fp(XFILE fp, const WOLFSSL_BIGNUM *bn)
  30502. {
  30503. char *buf;
  30504. WOLFSSL_ENTER("wolfSSL_BN_print_fp");
  30505. if (fp == XBADFILE || bn == NULL || bn->internal == NULL) {
  30506. WOLFSSL_MSG("bn NULL error");
  30507. return WOLFSSL_FAILURE;
  30508. }
  30509. buf = wolfSSL_BN_bn2hex(bn);
  30510. if (buf == NULL) {
  30511. WOLFSSL_MSG("wolfSSL_BN_bn2hex failure");
  30512. return WOLFSSL_FAILURE;
  30513. }
  30514. XFPRINTF(fp, "%s", buf);
  30515. XFREE(buf, NULL, DYNAMIC_TYPE_OPENSSL);
  30516. return WOLFSSL_SUCCESS;
  30517. }
  30518. #endif /* !NO_FILESYSTEM */
  30519. WOLFSSL_BIGNUM *wolfSSL_BN_CTX_get(WOLFSSL_BN_CTX *ctx)
  30520. {
  30521. /* ctx is not used, return new Bignum */
  30522. (void)ctx;
  30523. WOLFSSL_ENTER("wolfSSL_BN_CTX_get");
  30524. return wolfSSL_BN_new();
  30525. }
  30526. #ifndef NO_WOLFSSL_STUB
  30527. void wolfSSL_BN_CTX_start(WOLFSSL_BN_CTX *ctx)
  30528. {
  30529. (void)ctx;
  30530. WOLFSSL_ENTER("wolfSSL_BN_CTX_start");
  30531. WOLFSSL_STUB("BN_CTX_start");
  30532. WOLFSSL_MSG("wolfSSL_BN_CTX_start TBD");
  30533. }
  30534. #endif
  30535. WOLFSSL_BIGNUM *wolfSSL_BN_mod_inverse(WOLFSSL_BIGNUM *r,
  30536. WOLFSSL_BIGNUM *a,
  30537. const WOLFSSL_BIGNUM *n,
  30538. WOLFSSL_BN_CTX *ctx)
  30539. {
  30540. int dynamic = 0;
  30541. /* ctx is not used */
  30542. (void)ctx;
  30543. WOLFSSL_ENTER("wolfSSL_BN_mod_inverse");
  30544. /* check parameter */
  30545. if (r == NULL) {
  30546. r = wolfSSL_BN_new();
  30547. if (r == NULL){
  30548. WOLFSSL_MSG("WolfSSL_BN_new() failed");
  30549. return NULL;
  30550. }
  30551. dynamic = 1;
  30552. }
  30553. if (a == NULL) {
  30554. WOLFSSL_MSG("a NULL error");
  30555. if (dynamic == 1) {
  30556. wolfSSL_BN_free(r);
  30557. }
  30558. return NULL;
  30559. }
  30560. if (n == NULL) {
  30561. WOLFSSL_MSG("n NULL error");
  30562. if (dynamic == 1) {
  30563. wolfSSL_BN_free(r);
  30564. }
  30565. return NULL;
  30566. }
  30567. /* Compute inverse of a modulo n and return r */
  30568. if (mp_invmod((mp_int *)a->internal,(mp_int *)n->internal,
  30569. (mp_int*)r->internal) == MP_VAL){
  30570. WOLFSSL_MSG("mp_invmod() error");
  30571. if (dynamic == 1) {
  30572. wolfSSL_BN_free(r);
  30573. }
  30574. return NULL;
  30575. }
  30576. return r;
  30577. }
  30578. #endif /* OPENSSL_EXTRA */
  30579. #if (defined(WOLFSSL_QT) || defined(OPENSSL_ALL) || defined(OPENSSL_EXTRA)) && \
  30580. !defined(NO_ASN)
  30581. #ifndef NO_BIO
  30582. static int unprintable_char(char c)
  30583. {
  30584. const unsigned char last_unprintable = 31;
  30585. const unsigned char LF = 10;
  30586. const unsigned char CR = 13;
  30587. if (c <= last_unprintable && c != LF && c != CR) {
  30588. return 1;
  30589. }
  30590. return 0;
  30591. }
  30592. int wolfSSL_ASN1_STRING_print(WOLFSSL_BIO *out, WOLFSSL_ASN1_STRING *str)
  30593. {
  30594. int i;
  30595. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_print");
  30596. if (out == NULL || str == NULL)
  30597. return WOLFSSL_FAILURE;
  30598. for (i=0; i < str->length; i++) {
  30599. if (unprintable_char(str->data[i])) {
  30600. str->data[i] = '.';
  30601. }
  30602. }
  30603. if (wolfSSL_BIO_write(out, str->data, str->length) != str->length){
  30604. return WOLFSSL_FAILURE;
  30605. }
  30606. return str->length;
  30607. }
  30608. #endif /* !NO_BIO */
  30609. #endif /* (WOLFSSL_QT || OPENSSL_ALL || OPENSSL_EXTRA) && !NO_ASN */
  30610. #if defined(OPENSSL_EXTRA)
  30611. const char *wolfSSL_ASN1_tag2str(int tag)
  30612. {
  30613. static const char *const tag_label[31] = {
  30614. "EOC", "BOOLEAN", "INTEGER", "BIT STRING", "OCTET STRING", "NULL",
  30615. "OBJECT", "OBJECT DESCRIPTOR", "EXTERNAL", "REAL", "ENUMERATED",
  30616. "<ASN1 11>", "UTF8STRING", "<ASN1 13>", "<ASN1 14>", "<ASN1 15>",
  30617. "SEQUENCE", "SET", "NUMERICSTRING", "PRINTABLESTRING", "T61STRING",
  30618. "VIDEOTEXTSTRING", "IA5STRING", "UTCTIME", "GENERALIZEDTIME",
  30619. "GRAPHICSTRING", "VISIBLESTRING", "GENERALSTRING", "UNIVERSALSTRING",
  30620. "<ASN1 29>", "BMPSTRING"
  30621. };
  30622. if ((tag == V_ASN1_NEG_INTEGER) || (tag == V_ASN1_NEG_ENUMERATED))
  30623. tag &= ~0x100;
  30624. if (tag < 0 || tag > 30)
  30625. return "(unknown)";
  30626. return tag_label[tag];
  30627. }
  30628. #ifndef NO_BIO
  30629. static int check_esc_char(char c, char *esc)
  30630. {
  30631. char *ptr;
  30632. ptr = esc;
  30633. while(*ptr != 0){
  30634. if (c == *ptr)
  30635. return 1;
  30636. ptr++;
  30637. }
  30638. return 0;
  30639. }
  30640. int wolfSSL_ASN1_STRING_print_ex(WOLFSSL_BIO *out, WOLFSSL_ASN1_STRING *str,
  30641. unsigned long flags)
  30642. {
  30643. size_t str_len = 0, type_len = 0;
  30644. unsigned char *typebuf = NULL;
  30645. const char *hash="#";
  30646. WOLFSSL_ENTER("wolfSSL_ASN1_STRING_PRINT_ex");
  30647. if (out == NULL || str == NULL)
  30648. return WOLFSSL_FAILURE;
  30649. /* add ASN1 type tag */
  30650. if (flags & ASN1_STRFLGS_SHOW_TYPE){
  30651. const char *tag = wolfSSL_ASN1_tag2str(str->type);
  30652. /* colon len + tag len + null*/
  30653. type_len = XSTRLEN(tag) + 2;
  30654. typebuf = (unsigned char *)XMALLOC(type_len , NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30655. if (typebuf == NULL){
  30656. WOLFSSL_MSG("memory alloc failed.");
  30657. return WOLFSSL_FAILURE;
  30658. }
  30659. XMEMSET(typebuf, 0, type_len);
  30660. XSNPRINTF((char*)typebuf, (size_t)type_len , "%s:", tag);
  30661. type_len--;
  30662. }
  30663. /* dump hex */
  30664. if (flags & ASN1_STRFLGS_DUMP_ALL){
  30665. char hex_tmp[4];
  30666. char *str_ptr, *str_end;
  30667. if (type_len > 0){
  30668. if (wolfSSL_BIO_write(out, typebuf, (int)type_len) != (int)type_len){
  30669. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30670. return WOLFSSL_FAILURE;
  30671. }
  30672. str_len += type_len;
  30673. }
  30674. if (wolfSSL_BIO_write(out, hash, 1) != 1){
  30675. goto err_exit;
  30676. }
  30677. str_len++;
  30678. if (flags & ASN1_STRFLGS_DUMP_DER){
  30679. ByteToHexStr((byte)str->type, &hex_tmp[0]);
  30680. ByteToHexStr((byte)str->length, &hex_tmp[2]);
  30681. if (wolfSSL_BIO_write(out, hex_tmp, 4) != 4){
  30682. goto err_exit;
  30683. }
  30684. str_len += 4;
  30685. XMEMSET(hex_tmp, 0, 4);
  30686. }
  30687. str_ptr = str->data;
  30688. str_end = str->data + str->length;
  30689. while (str_ptr < str_end){
  30690. ByteToHexStr((byte)*str_ptr, &hex_tmp[0]);
  30691. if (wolfSSL_BIO_write(out, hex_tmp, 2) != 2){
  30692. goto err_exit;
  30693. }
  30694. str_ptr++;
  30695. str_len += 2;
  30696. }
  30697. if (type_len > 0)
  30698. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30699. return (int)str_len;
  30700. }
  30701. if (type_len > 0){
  30702. if (wolfSSL_BIO_write(out, typebuf, (int)type_len) != (int)type_len){
  30703. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30704. return WOLFSSL_FAILURE;
  30705. }
  30706. str_len += type_len;
  30707. }
  30708. if (flags & ASN1_STRFLGS_ESC_2253){
  30709. char esc_ch[] = "+;<>\\";
  30710. char* esc_ptr;
  30711. esc_ptr = str->data;
  30712. while (*esc_ptr != 0){
  30713. if (check_esc_char(*esc_ptr, esc_ch)){
  30714. if (wolfSSL_BIO_write(out,"\\", 1) != 1)
  30715. goto err_exit;
  30716. str_len++;
  30717. }
  30718. if (wolfSSL_BIO_write(out, esc_ptr, 1) != 1)
  30719. goto err_exit;
  30720. str_len++;
  30721. esc_ptr++;
  30722. }
  30723. if (type_len > 0)
  30724. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30725. return (int)str_len;
  30726. }
  30727. if (wolfSSL_BIO_write(out, str->data, str->length) != str->length){
  30728. goto err_exit;
  30729. }
  30730. str_len += str->length;
  30731. if (type_len > 0)
  30732. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30733. return (int)str_len;
  30734. err_exit:
  30735. if (type_len > 0)
  30736. XFREE(typebuf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  30737. return WOLFSSL_FAILURE;
  30738. }
  30739. #endif /* !NO_BIO */
  30740. #if !defined(NO_ASN_TIME) && !defined(USER_TIME) && !defined(TIME_OVERRIDES)
  30741. WOLFSSL_ASN1_TIME* wolfSSL_ASN1_TIME_adj(WOLFSSL_ASN1_TIME *s, time_t t,
  30742. int offset_day, long offset_sec)
  30743. {
  30744. const time_t sec_per_day = 24*60*60;
  30745. time_t t_adj = 0;
  30746. time_t offset_day_sec = 0;
  30747. char time_str[MAX_TIME_STRING_SZ];
  30748. int time_get;
  30749. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_adj");
  30750. if (s == NULL) {
  30751. s = wolfSSL_ASN1_TIME_new();
  30752. if (s == NULL) {
  30753. return NULL;
  30754. }
  30755. }
  30756. /* compute GMT time with offset */
  30757. offset_day_sec = offset_day * sec_per_day;
  30758. t_adj = t + offset_day_sec + offset_sec;
  30759. /* Get time string as either UTC or GeneralizedTime */
  30760. time_get = GetFormattedTime(&t_adj, (byte*)time_str,
  30761. (word32)sizeof(time_str));
  30762. if (time_get <= 0) {
  30763. wolfSSL_ASN1_TIME_free(s);
  30764. return NULL;
  30765. }
  30766. if (wolfSSL_ASN1_TIME_set_string(s, time_str) != WOLFSSL_SUCCESS) {
  30767. wolfSSL_ASN1_TIME_free(s);
  30768. return NULL;
  30769. }
  30770. return s;
  30771. }
  30772. #endif /* !NO_ASN_TIME && !USER_TIME && !TIME_OVERRIDES */
  30773. #ifndef NO_ASN_TIME
  30774. WOLFSSL_ASN1_TIME* wolfSSL_ASN1_TIME_new(void)
  30775. {
  30776. WOLFSSL_ASN1_TIME* ret = (WOLFSSL_ASN1_TIME*)
  30777. XMALLOC(sizeof(WOLFSSL_ASN1_TIME), NULL, DYNAMIC_TYPE_OPENSSL);
  30778. if (!ret)
  30779. return NULL;
  30780. XMEMSET(ret, 0, sizeof(WOLFSSL_ASN1_TIME));
  30781. return ret;
  30782. }
  30783. void wolfSSL_ASN1_TIME_free(WOLFSSL_ASN1_TIME* t)
  30784. {
  30785. if (t) {
  30786. XFREE(t, NULL, DYNAMIC_TYPE_OPENSSL);
  30787. }
  30788. }
  30789. /* not a compatibility function - length getter for opaque type */
  30790. int wolfSSL_ASN1_TIME_get_length(WOLFSSL_ASN1_TIME *t)
  30791. {
  30792. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_get_length");
  30793. if (t == NULL)
  30794. return WOLFSSL_FAILURE;
  30795. return t->length;
  30796. }
  30797. /* not a compatibility function - data getter for opaque type */
  30798. unsigned char* wolfSSL_ASN1_TIME_get_data(WOLFSSL_ASN1_TIME *t)
  30799. {
  30800. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_get_data");
  30801. if (t == NULL)
  30802. return NULL;
  30803. return t->data;
  30804. }
  30805. WOLFSSL_ASN1_TIME* wolfSSL_ASN1_TIME_to_generalizedtime(WOLFSSL_ASN1_TIME *t,
  30806. WOLFSSL_ASN1_TIME **out)
  30807. {
  30808. int time_type = 0;
  30809. WOLFSSL_ASN1_TIME *ret = NULL;
  30810. WOLFSSL_ENTER("wolfSSL_ASN1_TIME_to_generalizedtime");
  30811. if (t == NULL) {
  30812. WOLFSSL_MSG("Invalid ASN_TIME value");
  30813. } else {
  30814. time_type = t->type;
  30815. if (time_type != ASN_UTC_TIME && time_type != ASN_GENERALIZED_TIME){
  30816. WOLFSSL_MSG("Invalid ASN_TIME type.");
  30817. } else {
  30818. if (out == NULL || *out == NULL) {
  30819. ret = wolfSSL_ASN1_TIME_new();
  30820. if (ret == NULL){
  30821. WOLFSSL_MSG("memory alloc failed.");
  30822. }
  30823. } else {
  30824. ret = *out;
  30825. }
  30826. }
  30827. }
  30828. if (ret != NULL) {
  30829. if (time_type == ASN_GENERALIZED_TIME){
  30830. XMEMCPY(ret->data, t->data, ASN_GENERALIZED_TIME_SIZE);
  30831. } else { /* ASN_UTC_TIME */
  30832. /* convert UTC to generalized time */
  30833. ret->type = ASN_GENERALIZED_TIME;
  30834. ret->length = ASN_GENERALIZED_TIME_SIZE;
  30835. if (t->data[0] >= '5') {
  30836. ret->data[0] = '1'; ret->data[1] = '9';
  30837. } else {
  30838. ret->data[0] = '2'; ret->data[1] = '0';
  30839. }
  30840. XMEMCPY(&ret->data[2], t->data, ASN_UTC_TIME_SIZE);
  30841. }
  30842. }
  30843. return ret;
  30844. }
  30845. #endif /* !NO_ASN_TIME */
  30846. #ifndef NO_ASN
  30847. int wolfSSL_i2c_ASN1_INTEGER(WOLFSSL_ASN1_INTEGER *a, unsigned char **pp)
  30848. {
  30849. unsigned char *pptr = NULL;
  30850. char pad = 0 ;
  30851. unsigned char pad_val = 0;
  30852. int ret_size = 0;
  30853. unsigned char data1 = 0;
  30854. unsigned char neg = 0;
  30855. int i = 0;
  30856. WOLFSSL_ENTER("wolfSSL_i2c_ASN1_INTEGER");
  30857. if (a == NULL)
  30858. return WOLFSSL_FAILURE;
  30859. ret_size = a->intData[1];
  30860. if (ret_size == 0)
  30861. ret_size = 1;
  30862. else{
  30863. ret_size = (int)a->intData[1];
  30864. neg = a->negative;
  30865. data1 = a->intData[2];
  30866. if (ret_size == 1 && data1 == 0)
  30867. neg = 0;
  30868. /* 0x80 or greater positive number in first byte */
  30869. if (!neg && (data1 > 127)){
  30870. pad = 1;
  30871. pad_val = 0;
  30872. } else if (neg){
  30873. /* negative number */
  30874. if (data1 > 128){
  30875. pad = 1;
  30876. pad_val = 0xff;
  30877. } else if (data1 == 128){
  30878. for (i = 3; i < a->intData[1] + 2; i++){
  30879. if (a->intData[i]){
  30880. pad = 1;
  30881. pad_val = 0xff;
  30882. break;
  30883. }
  30884. }
  30885. }
  30886. }
  30887. ret_size += (int)pad;
  30888. }
  30889. if (pp == NULL)
  30890. return ret_size;
  30891. pptr = *pp;
  30892. if (pad)
  30893. *(pptr++) = pad_val;
  30894. if (a->intData[1] == 0)
  30895. *(pptr++) = 0;
  30896. else if (!neg){
  30897. /* positive number */
  30898. for (i=0; i < a->intData[1]; i++){
  30899. *pptr = a->intData[i+2];
  30900. pptr++;
  30901. }
  30902. } else {
  30903. /* negative number */
  30904. int str_len = 0;
  30905. /* 0 padding from end of buffer */
  30906. str_len = (int)a->intData[1];
  30907. pptr += a->intData[1] - 1;
  30908. while (!a->intData[str_len + 2] && str_len > 1){
  30909. *(pptr--) = 0;
  30910. str_len--;
  30911. }
  30912. /* 2's complement next octet */
  30913. *(pptr--) = ((a->intData[str_len + 1]) ^ 0xff) + 1;
  30914. str_len--;
  30915. /* Complement any octets left */
  30916. while (str_len > 0){
  30917. *(pptr--) = a->intData[str_len + 1] ^ 0xff;
  30918. str_len--;
  30919. }
  30920. }
  30921. *pp += ret_size;
  30922. return ret_size;
  30923. }
  30924. #endif /* !NO_ASN */
  30925. #endif /* OPENSSL_EXTRA */
  30926. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  30927. /* when calling SetIndividualExternal, mpi should be cleared by caller if no
  30928. * longer used. ie mp_free(mpi). This is to free data when fastmath is
  30929. * disabled since a copy of mpi is made by this function and placed into bn.
  30930. */
  30931. int SetIndividualExternal(WOLFSSL_BIGNUM** bn, mp_int* mpi)
  30932. {
  30933. byte dynamic = 0;
  30934. #ifdef WOLFSSL_DEBUG_OPENSSL
  30935. WOLFSSL_MSG("Entering SetIndividualExternal");
  30936. #endif
  30937. if (mpi == NULL || bn == NULL) {
  30938. WOLFSSL_MSG("mpi NULL error");
  30939. return WOLFSSL_FATAL_ERROR;
  30940. }
  30941. if (*bn == NULL) {
  30942. *bn = wolfSSL_BN_new();
  30943. if (*bn == NULL) {
  30944. WOLFSSL_MSG("SetIndividualExternal alloc failed");
  30945. return WOLFSSL_FATAL_ERROR;
  30946. }
  30947. dynamic = 1;
  30948. }
  30949. if (mp_copy(mpi, (mp_int*)((*bn)->internal)) != MP_OKAY) {
  30950. WOLFSSL_MSG("mp_copy error");
  30951. if (dynamic == 1) {
  30952. wolfSSL_BN_free(*bn);
  30953. }
  30954. return WOLFSSL_FATAL_ERROR;
  30955. }
  30956. return WOLFSSL_SUCCESS;
  30957. }
  30958. static void InitwolfSSL_BigNum(WOLFSSL_BIGNUM* bn)
  30959. {
  30960. if (bn)
  30961. XMEMSET(bn, 0, sizeof(WOLFSSL_BIGNUM));
  30962. }
  30963. WOLFSSL_BIGNUM* wolfSSL_BN_new(void)
  30964. {
  30965. WOLFSSL_BIGNUM* external;
  30966. mp_int* mpi;
  30967. #ifdef WOLFSSL_DEBUG_OPENSSL
  30968. WOLFSSL_MSG("wolfSSL_BN_new");
  30969. #endif
  30970. #if !defined(USE_FAST_MATH) || defined(HAVE_WOLF_BIGINT)
  30971. mpi = (mp_int*) XMALLOC(sizeof(mp_int), NULL, DYNAMIC_TYPE_BIGINT);
  30972. if (mpi == NULL) {
  30973. WOLFSSL_MSG("wolfSSL_BN_new malloc mpi failure");
  30974. return NULL;
  30975. }
  30976. #endif
  30977. external = (WOLFSSL_BIGNUM*) XMALLOC(sizeof(WOLFSSL_BIGNUM), NULL,
  30978. DYNAMIC_TYPE_BIGINT);
  30979. if (external == NULL) {
  30980. WOLFSSL_MSG("wolfSSL_BN_new malloc WOLFSSL_BIGNUM failure");
  30981. #if !defined(USE_FAST_MATH) || defined(HAVE_WOLF_BIGINT)
  30982. XFREE(mpi, NULL, DYNAMIC_TYPE_BIGINT);
  30983. #endif
  30984. return NULL;
  30985. }
  30986. #if defined(USE_FAST_MATH) && !defined(HAVE_WOLF_BIGINT)
  30987. mpi = &external->fp;
  30988. #endif
  30989. InitwolfSSL_BigNum(external);
  30990. if (mp_init(mpi) != MP_OKAY) {
  30991. wolfSSL_BN_free(external);
  30992. return NULL;
  30993. }
  30994. external->internal = mpi;
  30995. return external;
  30996. }
  30997. #if defined(USE_FAST_MATH) && !defined(HAVE_WOLF_BIGINT)
  30998. /* This function works without BN_free only with TFM */
  30999. void wolfSSL_BN_init(WOLFSSL_BIGNUM* bn)
  31000. {
  31001. if(bn == NULL)return;
  31002. #ifdef WOLFSSL_DEBUG_OPENSSL
  31003. WOLFSSL_MSG("wolfSSL_BN_init");
  31004. #endif
  31005. InitwolfSSL_BigNum(bn);
  31006. if (mp_init(&bn->fp) != MP_OKAY)
  31007. return;
  31008. bn->internal = (void *)&bn->fp;
  31009. }
  31010. #endif
  31011. void wolfSSL_BN_free(WOLFSSL_BIGNUM* bn)
  31012. {
  31013. #ifdef WOLFSSL_DEBUG_OPENSSL
  31014. WOLFSSL_MSG("wolfSSL_BN_free");
  31015. #endif
  31016. if (bn) {
  31017. if (bn->internal) {
  31018. mp_int* bni = (mp_int*)bn->internal;
  31019. mp_free(bni);
  31020. #if !defined(USE_FAST_MATH) || defined(HAVE_WOLF_BIGINT)
  31021. XFREE(bn->internal, NULL, DYNAMIC_TYPE_BIGINT);
  31022. #endif
  31023. bn->internal = NULL;
  31024. }
  31025. XFREE(bn, NULL, DYNAMIC_TYPE_BIGINT);
  31026. /* bn = NULL, don't try to access or double free it */
  31027. }
  31028. }
  31029. void wolfSSL_BN_clear_free(WOLFSSL_BIGNUM* bn)
  31030. {
  31031. #ifdef WOLFSSL_DEBUG_OPENSSL
  31032. WOLFSSL_MSG("wolfSSL_BN_clear_free");
  31033. #endif
  31034. if (bn) {
  31035. if (bn->internal) {
  31036. mp_int* bni = (mp_int*)bn->internal;
  31037. mp_forcezero(bni);
  31038. }
  31039. wolfSSL_BN_free(bn);
  31040. }
  31041. }
  31042. void wolfSSL_BN_clear(WOLFSSL_BIGNUM* bn)
  31043. {
  31044. #ifdef WOLFSSL_DEBUG_OPENSSL
  31045. WOLFSSL_MSG("wolfSSL_BN_clear");
  31046. #endif
  31047. if (bn && bn->internal) {
  31048. mp_forcezero((mp_int*)bn->internal);
  31049. }
  31050. }
  31051. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  31052. #ifdef OPENSSL_ALL
  31053. #if !defined(NO_BIO) && !defined(NO_PWDBASED) && defined(HAVE_PKCS8)
  31054. int wolfSSL_PEM_write_bio_PKCS8PrivateKey(WOLFSSL_BIO* bio,
  31055. WOLFSSL_EVP_PKEY* pkey,
  31056. const WOLFSSL_EVP_CIPHER* enc,
  31057. char* passwd, int passwdSz,
  31058. wc_pem_password_cb* cb, void* ctx)
  31059. {
  31060. int ret = 0;
  31061. char password[NAME_SZ];
  31062. byte* key = NULL;
  31063. word32 keySz;
  31064. byte* pem = NULL;
  31065. int pemSz;
  31066. int type = PKCS8_PRIVATEKEY_TYPE;
  31067. int algId;
  31068. const byte* curveOid;
  31069. word32 oidSz;
  31070. int encAlgId = 0;
  31071. if (bio == NULL || pkey == NULL)
  31072. return -1;
  31073. keySz = pkey->pkey_sz + 128;
  31074. key = (byte*)XMALLOC(keySz, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  31075. if (key == NULL)
  31076. ret = MEMORY_E;
  31077. if (ret == 0 && enc != NULL && passwd == NULL) {
  31078. passwdSz = cb(password, sizeof(password), 1, ctx);
  31079. if (passwdSz < 0)
  31080. ret = WOLFSSL_FAILURE;
  31081. passwd = password;
  31082. }
  31083. if (ret == 0 && enc != NULL) {
  31084. WC_RNG rng;
  31085. ret = wc_InitRng(&rng);
  31086. if (ret == 0) {
  31087. #ifndef NO_DES3
  31088. if (enc == EVP_DES_CBC)
  31089. encAlgId = DESb;
  31090. else if (enc == EVP_DES_EDE3_CBC)
  31091. encAlgId = DES3b;
  31092. else
  31093. #endif
  31094. #if !defined(NO_AES) && defined(HAVE_AES_CBC)
  31095. #ifdef WOLFSSL_AES_256
  31096. if (enc == EVP_AES_256_CBC)
  31097. encAlgId = AES256CBCb;
  31098. else
  31099. #endif
  31100. #endif
  31101. ret = -1;
  31102. if (ret == 0) {
  31103. ret = TraditionalEnc((byte*)pkey->pkey.ptr, pkey->pkey_sz, key,
  31104. &keySz, passwd, passwdSz, PKCS5, PBES2,
  31105. encAlgId, NULL, 0, WC_PKCS12_ITT_DEFAULT,
  31106. &rng, NULL);
  31107. if (ret > 0) {
  31108. keySz = ret;
  31109. ret = 0;
  31110. }
  31111. }
  31112. wc_FreeRng(&rng);
  31113. }
  31114. type = PKCS8_ENC_PRIVATEKEY_TYPE;
  31115. }
  31116. if (ret == 0 && enc == NULL) {
  31117. type = PKCS8_PRIVATEKEY_TYPE;
  31118. #ifdef HAVE_ECC
  31119. if (pkey->type == EVP_PKEY_EC) {
  31120. algId = ECDSAk;
  31121. ret = wc_ecc_get_oid(pkey->ecc->group->curve_oid, &curveOid,
  31122. &oidSz);
  31123. }
  31124. else
  31125. #endif
  31126. {
  31127. algId = RSAk;
  31128. curveOid = NULL;
  31129. oidSz = 0;
  31130. }
  31131. #ifdef HAVE_ECC
  31132. if (ret >= 0)
  31133. #endif
  31134. {
  31135. ret = wc_CreatePKCS8Key(key, &keySz, (byte*)pkey->pkey.ptr,
  31136. pkey->pkey_sz, algId, curveOid, oidSz);
  31137. keySz = ret;
  31138. }
  31139. }
  31140. if (password == passwd)
  31141. XMEMSET(password, 0, passwdSz);
  31142. if (ret >= 0) {
  31143. pemSz = 2 * keySz + 2 * 64;
  31144. pem = (byte*)XMALLOC(pemSz, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  31145. if (pem == NULL)
  31146. ret = MEMORY_E;
  31147. }
  31148. if (ret >= 0)
  31149. ret = wc_DerToPemEx(key, keySz, pem, pemSz, NULL, type);
  31150. if (key != NULL)
  31151. XFREE(key, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  31152. if (ret >= 0) {
  31153. if (wolfSSL_BIO_write(bio, pem, ret) != ret)
  31154. ret = -1;
  31155. }
  31156. if (pem != NULL)
  31157. XFREE(pem, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  31158. return ret < 0 ? 0 : ret;
  31159. }
  31160. #if !defined(NO_FILESYSTEM) && !defined(NO_STDIO_FILESYSTEM)
  31161. int wolfSSL_PEM_write_PKCS8PrivateKey(XFILE f, WOLFSSL_EVP_PKEY* pkey,
  31162. const WOLFSSL_EVP_CIPHER* enc, char* passwd, int passwdSz,
  31163. wc_pem_password_cb* cb, void* ctx)
  31164. {
  31165. int ret = WOLFSSL_SUCCESS;
  31166. BIO *b;
  31167. WOLFSSL_ENTER("wolfSSL_PEM_write_PKCS8PrivateKey");
  31168. b = wolfSSL_BIO_new_fp(f, BIO_NOCLOSE);
  31169. if (b == NULL) {
  31170. ret = WOLFSSL_FAILURE;
  31171. }
  31172. if (ret == WOLFSSL_SUCCESS) {
  31173. ret = wolfSSL_PEM_write_bio_PKCS8PrivateKey(b, pkey, enc, passwd,
  31174. passwdSz, cb, ctx);
  31175. }
  31176. wolfSSL_BIO_free(b);
  31177. return ret;
  31178. }
  31179. #endif /* !NO_FILESYSTEM && !NO_STDIO_FILESYSTEM */
  31180. static int bio_get_data(WOLFSSL_BIO* bio, byte** data)
  31181. {
  31182. int ret = 0;
  31183. byte* mem = NULL;
  31184. #ifndef NO_FILESYSTEM
  31185. long memSz;
  31186. XFILE file;
  31187. long curr;
  31188. #endif
  31189. if ((ret = wolfSSL_BIO_pending(bio)) > 0) {
  31190. }
  31191. #ifndef NO_FILESYSTEM
  31192. else if (bio->type == WOLFSSL_BIO_FILE) {
  31193. if (wolfSSL_BIO_get_fp(bio, &file) != WOLFSSL_SUCCESS)
  31194. ret = BAD_FUNC_ARG;
  31195. if (ret == 0) {
  31196. curr = XFTELL(file);
  31197. if (curr < 0) {
  31198. ret = WOLFSSL_BAD_FILE;
  31199. }
  31200. if (XFSEEK(file, 0, XSEEK_END) != 0)
  31201. ret = WOLFSSL_BAD_FILE;
  31202. }
  31203. if (ret == 0) {
  31204. memSz = XFTELL(file);
  31205. if (memSz > MAX_WOLFSSL_FILE_SIZE || memSz < 0) {
  31206. ret = WOLFSSL_BAD_FILE;
  31207. }
  31208. }
  31209. if (ret == 0) {
  31210. memSz -= curr;
  31211. ret = (int)memSz;
  31212. if (XFSEEK(file, curr, SEEK_SET) != 0)
  31213. ret = WOLFSSL_BAD_FILE;
  31214. }
  31215. }
  31216. #endif
  31217. if (ret > 0) {
  31218. mem = (byte*)XMALLOC(ret, bio->heap, DYNAMIC_TYPE_OPENSSL);
  31219. if (mem == NULL) {
  31220. WOLFSSL_MSG("Memory error");
  31221. ret = MEMORY_E;
  31222. }
  31223. if (ret >= 0) {
  31224. if ((ret = wolfSSL_BIO_read(bio, mem, ret)) <= 0) {
  31225. XFREE(mem, bio->heap, DYNAMIC_TYPE_OPENSSL);
  31226. ret = MEMORY_E;
  31227. mem = NULL;
  31228. }
  31229. }
  31230. }
  31231. *data = mem;
  31232. return ret;
  31233. }
  31234. /* DER data is PKCS#8 encrypted. */
  31235. WOLFSSL_EVP_PKEY* wolfSSL_d2i_PKCS8PrivateKey_bio(WOLFSSL_BIO* bio,
  31236. WOLFSSL_EVP_PKEY** pkey,
  31237. wc_pem_password_cb* cb,
  31238. void* ctx)
  31239. {
  31240. int ret;
  31241. byte* der;
  31242. int len;
  31243. byte* p;
  31244. word32 algId;
  31245. WOLFSSL_EVP_PKEY* key;
  31246. if ((len = bio_get_data(bio, &der)) < 0)
  31247. return NULL;
  31248. if (cb != NULL) {
  31249. char password[NAME_SZ];
  31250. int passwordSz = cb(password, sizeof(password), PEM_PASS_READ, ctx);
  31251. if (passwordSz < 0) {
  31252. XFREE(der, bio->heap, DYNAMIC_TYPE_OPENSSL);
  31253. return NULL;
  31254. }
  31255. ret = ToTraditionalEnc(der, len, password, passwordSz, &algId);
  31256. if (ret < 0) {
  31257. XFREE(der, bio->heap, DYNAMIC_TYPE_OPENSSL);
  31258. return NULL;
  31259. }
  31260. ForceZero(password, passwordSz);
  31261. }
  31262. p = der;
  31263. key = wolfSSL_d2i_PrivateKey_EVP(pkey, &p, len);
  31264. XFREE(der, bio->heap, DYNAMIC_TYPE_OPENSSL);
  31265. return key;
  31266. }
  31267. #endif /* !NO_BIO && !NO_PWDBASED && HAVE_PKCS8 */
  31268. /* Detect which type of key it is before decoding. */
  31269. WOLFSSL_EVP_PKEY* wolfSSL_d2i_AutoPrivateKey(WOLFSSL_EVP_PKEY** pkey,
  31270. const unsigned char** pp,
  31271. long length)
  31272. {
  31273. int ret;
  31274. WOLFSSL_EVP_PKEY* key = NULL;
  31275. const byte* der = *pp;
  31276. word32 idx = 0;
  31277. int len = 0;
  31278. word32 end = 0;
  31279. int cnt = 0;
  31280. int type;
  31281. word32 algId;
  31282. word32 keyLen = (word32)length;
  31283. /* Take off PKCS#8 wrapper if found. */
  31284. if ((len = ToTraditionalInline_ex(der, &idx, keyLen, &algId)) >= 0) {
  31285. der += idx;
  31286. keyLen = len;
  31287. }
  31288. idx = 0;
  31289. len = 0;
  31290. /* Use the number of elements in the outer sequence to determine key type.
  31291. */
  31292. ret = GetSequence(der, &idx, &len, keyLen);
  31293. if (ret >= 0) {
  31294. end = idx + len;
  31295. while (ret >= 0 && idx < end) {
  31296. /* Skip type */
  31297. idx++;
  31298. /* Get length and skip over - keeping count */
  31299. len = 0;
  31300. ret = GetLength(der, &idx, &len, keyLen);
  31301. if (ret >= 0) {
  31302. if (idx + len > end)
  31303. ret = ASN_PARSE_E;
  31304. else {
  31305. idx += len;
  31306. cnt++;
  31307. }
  31308. }
  31309. }
  31310. }
  31311. if (ret >= 0) {
  31312. /* ECC includes version, private[, curve][, public key] */
  31313. if (cnt >= 2 && cnt <= 4)
  31314. type = EVP_PKEY_EC;
  31315. else
  31316. type = EVP_PKEY_RSA;
  31317. key = wolfSSL_d2i_PrivateKey(type, pkey, &der, keyLen);
  31318. *pp = der;
  31319. }
  31320. return key;
  31321. }
  31322. #endif /* OPENSSL_ALL */
  31323. #ifdef WOLFSSL_STATIC_EPHEMERAL
  31324. int wolfSSL_StaticEphemeralKeyLoad(WOLFSSL* ssl, int keyAlgo, void* keyPtr)
  31325. {
  31326. int ret;
  31327. word32 idx = 0;
  31328. DerBuffer* der = NULL;
  31329. if (ssl == NULL || ssl->ctx == NULL || keyPtr == NULL) {
  31330. return BAD_FUNC_ARG;
  31331. }
  31332. #ifndef SINGLE_THREADED
  31333. if (!ssl->ctx->staticKELockInit) {
  31334. return BUFFER_E; /* no keys set */
  31335. }
  31336. ret = wc_LockMutex(&ssl->ctx->staticKELock);
  31337. if (ret != 0) {
  31338. return ret;
  31339. }
  31340. #endif
  31341. ret = BUFFER_E; /* set default error */
  31342. switch (keyAlgo) {
  31343. #ifndef NO_DH
  31344. case WC_PK_TYPE_DH:
  31345. if (ssl != NULL)
  31346. der = ssl->staticKE.dhKey;
  31347. if (der == NULL)
  31348. der = ssl->ctx->staticKE.dhKey;
  31349. if (der != NULL) {
  31350. DhKey* key = (DhKey*)keyPtr;
  31351. WOLFSSL_MSG("Using static DH key");
  31352. ret = wc_DhKeyDecode(der->buffer, &idx, key, der->length);
  31353. }
  31354. break;
  31355. #endif
  31356. #ifdef HAVE_ECC
  31357. case WC_PK_TYPE_ECDH:
  31358. if (ssl != NULL)
  31359. der = ssl->staticKE.ecKey;
  31360. if (der == NULL)
  31361. der = ssl->ctx->staticKE.ecKey;
  31362. if (der != NULL) {
  31363. ecc_key* key = (ecc_key*)keyPtr;
  31364. WOLFSSL_MSG("Using static ECDH key");
  31365. ret = wc_EccPrivateKeyDecode(der->buffer, &idx, key, der->length);
  31366. }
  31367. break;
  31368. #endif
  31369. #ifdef HAVE_CURVE25519
  31370. case WC_PK_TYPE_CURVE25519:
  31371. if (ssl != NULL)
  31372. der = ssl->staticKE.x25519Key;
  31373. if (der == NULL)
  31374. der = ssl->ctx->staticKE.x25519Key;
  31375. if (der != NULL) {
  31376. curve25519_key* key = (curve25519_key*)keyPtr;
  31377. WOLFSSL_MSG("Using static X25519 key");
  31378. ret = wc_Curve25519PrivateKeyDecode(der->buffer, &idx, key,
  31379. der->length);
  31380. }
  31381. break;
  31382. #endif
  31383. #ifdef HAVE_CURVE448
  31384. case WC_PK_TYPE_CURVE448:
  31385. if (ssl != NULL)
  31386. der = ssl->staticKE.x448Key;
  31387. if (der == NULL)
  31388. der = ssl->ctx->staticKE.x448Key;
  31389. if (der != NULL) {
  31390. curve448_key* key = (curve448_key*)keyPtr;
  31391. WOLFSSL_MSG("Using static X448 key");
  31392. ret = wc_Curve448PrivateKeyDecode(der->buffer, &idx, key,
  31393. der->length);
  31394. }
  31395. break;
  31396. #endif
  31397. default:
  31398. /* not supported */
  31399. ret = NOT_COMPILED_IN;
  31400. break;
  31401. }
  31402. #ifndef SINGLE_THREADED
  31403. wc_UnLockMutex(&ssl->ctx->staticKELock);
  31404. #endif
  31405. return ret;
  31406. }
  31407. static int SetStaticEphemeralKey(WOLFSSL_CTX* ctx,
  31408. StaticKeyExchangeInfo_t* staticKE, int keyAlgo, const char* key,
  31409. unsigned int keySz, int format, void* heap)
  31410. {
  31411. int ret = 0;
  31412. DerBuffer* der = NULL;
  31413. byte* keyBuf = NULL;
  31414. #ifndef NO_FILESYSTEM
  31415. const char* keyFile = NULL;
  31416. #endif
  31417. /* allow empty key to free buffer */
  31418. if (staticKE == NULL || (key == NULL && keySz > 0)) {
  31419. return BAD_FUNC_ARG;
  31420. }
  31421. WOLFSSL_ENTER("SetStaticEphemeralKey");
  31422. /* if just free'ing key then skip loading */
  31423. if (key != NULL) {
  31424. #ifndef NO_FILESYSTEM
  31425. /* load file from filesystem */
  31426. if (key != NULL && keySz == 0) {
  31427. size_t keyBufSz = 0;
  31428. keyFile = (const char*)key;
  31429. ret = wc_FileLoad(keyFile, &keyBuf, &keyBufSz, heap);
  31430. if (ret != 0) {
  31431. return ret;
  31432. }
  31433. keySz = (unsigned int)keyBufSz;
  31434. }
  31435. else
  31436. #endif
  31437. {
  31438. /* use as key buffer directly */
  31439. keyBuf = (byte*)key;
  31440. }
  31441. if (format == WOLFSSL_FILETYPE_PEM) {
  31442. #ifdef WOLFSSL_PEM_TO_DER
  31443. int keyFormat = 0;
  31444. ret = PemToDer(keyBuf, keySz, PRIVATEKEY_TYPE, &der,
  31445. heap, NULL, &keyFormat);
  31446. /* auto detect key type */
  31447. if (ret == 0 && keyAlgo == WC_PK_TYPE_NONE) {
  31448. if (keyFormat == ECDSAk)
  31449. keyAlgo = WC_PK_TYPE_ECDH;
  31450. else if (keyFormat == X25519k)
  31451. keyAlgo = WC_PK_TYPE_CURVE25519;
  31452. else
  31453. keyAlgo = WC_PK_TYPE_DH;
  31454. }
  31455. #else
  31456. ret = NOT_COMPILED_IN;
  31457. #endif
  31458. }
  31459. else {
  31460. /* Detect PK type (if required) */
  31461. #ifdef HAVE_ECC
  31462. if (keyAlgo == WC_PK_TYPE_NONE) {
  31463. word32 idx = 0;
  31464. ecc_key eccKey;
  31465. ret = wc_ecc_init_ex(&eccKey, heap, INVALID_DEVID);
  31466. if (ret == 0) {
  31467. ret = wc_EccPrivateKeyDecode(keyBuf, &idx, &eccKey, keySz);
  31468. if (ret == 0)
  31469. keyAlgo = WC_PK_TYPE_ECDH;
  31470. wc_ecc_free(&eccKey);
  31471. }
  31472. }
  31473. #endif
  31474. #if !defined(NO_DH) && defined(WOLFSSL_DH_EXTRA)
  31475. if (keyAlgo == WC_PK_TYPE_NONE) {
  31476. word32 idx = 0;
  31477. DhKey dhKey;
  31478. ret = wc_InitDhKey_ex(&dhKey, heap, INVALID_DEVID);
  31479. if (ret == 0) {
  31480. ret = wc_DhKeyDecode(keyBuf, &idx, &dhKey, keySz);
  31481. if (ret == 0)
  31482. keyAlgo = WC_PK_TYPE_DH;
  31483. wc_FreeDhKey(&dhKey);
  31484. }
  31485. }
  31486. #endif
  31487. #ifdef HAVE_CURVE25519
  31488. if (keyAlgo == WC_PK_TYPE_NONE) {
  31489. word32 idx = 0;
  31490. curve25519_key x25519Key;
  31491. ret = wc_curve25519_init_ex(&x25519Key, heap, INVALID_DEVID);
  31492. if (ret == 0) {
  31493. ret = wc_Curve25519PrivateKeyDecode(keyBuf, &idx, &x25519Key,
  31494. keySz);
  31495. if (ret == 0)
  31496. keyAlgo = WC_PK_TYPE_CURVE25519;
  31497. wc_curve25519_free(&x25519Key);
  31498. }
  31499. }
  31500. #endif
  31501. #ifdef HAVE_CURVE448
  31502. if (keyAlgo == WC_PK_TYPE_NONE) {
  31503. word32 idx = 0;
  31504. curve448_key x448Key;
  31505. ret = wc_curve448_init(&x448Key);
  31506. if (ret == 0) {
  31507. ret = wc_Curve448PrivateKeyDecode(keyBuf, &idx, &x448Key,
  31508. keySz);
  31509. if (ret == 0)
  31510. keyAlgo = WC_PK_TYPE_CURVE448;
  31511. wc_curve448_free(&x448Key);
  31512. }
  31513. }
  31514. #endif
  31515. if (keyAlgo != WC_PK_TYPE_NONE) {
  31516. ret = AllocDer(&der, keySz, PRIVATEKEY_TYPE, heap);
  31517. if (ret == 0) {
  31518. XMEMCPY(der->buffer, keyBuf, keySz);
  31519. }
  31520. }
  31521. }
  31522. }
  31523. #ifndef NO_FILESYSTEM
  31524. /* done with keyFile buffer */
  31525. if (keyFile && keyBuf) {
  31526. XFREE(keyBuf, heap, DYNAMIC_TYPE_TMP_BUFFER);
  31527. }
  31528. #endif
  31529. #ifndef SINGLE_THREADED
  31530. if (ret == 0 && !ctx->staticKELockInit) {
  31531. ret = wc_InitMutex(&ctx->staticKELock);
  31532. if (ret == 0) {
  31533. ctx->staticKELockInit = 1;
  31534. }
  31535. }
  31536. #endif
  31537. if (ret == 0
  31538. #ifndef SINGLE_THREADED
  31539. && (ret = wc_LockMutex(&ctx->staticKELock)) == 0
  31540. #endif
  31541. ) {
  31542. switch (keyAlgo) {
  31543. #ifndef NO_DH
  31544. case WC_PK_TYPE_DH:
  31545. FreeDer(&staticKE->dhKey);
  31546. staticKE->dhKey = der; der = NULL;
  31547. break;
  31548. #endif
  31549. #ifdef HAVE_ECC
  31550. case WC_PK_TYPE_ECDH:
  31551. FreeDer(&staticKE->ecKey);
  31552. staticKE->ecKey = der; der = NULL;
  31553. break;
  31554. #endif
  31555. #ifdef HAVE_CURVE25519
  31556. case WC_PK_TYPE_CURVE25519:
  31557. FreeDer(&staticKE->x25519Key);
  31558. staticKE->x25519Key = der; der = NULL;
  31559. break;
  31560. #endif
  31561. #ifdef HAVE_CURVE448
  31562. case WC_PK_TYPE_CURVE448:
  31563. FreeDer(&staticKE->x448Key);
  31564. staticKE->x448Key = der; der = NULL;
  31565. break;
  31566. #endif
  31567. default:
  31568. /* not supported */
  31569. ret = NOT_COMPILED_IN;
  31570. break;
  31571. }
  31572. #ifndef SINGLE_THREADED
  31573. wc_UnLockMutex(&ctx->staticKELock);
  31574. #endif
  31575. }
  31576. if (ret != 0) {
  31577. FreeDer(&der);
  31578. }
  31579. (void)ctx; /* not used for single threaded */
  31580. WOLFSSL_LEAVE("SetStaticEphemeralKey", ret);
  31581. return ret;
  31582. }
  31583. int wolfSSL_CTX_set_ephemeral_key(WOLFSSL_CTX* ctx, int keyAlgo,
  31584. const char* key, unsigned int keySz, int format)
  31585. {
  31586. if (ctx == NULL) {
  31587. return BAD_FUNC_ARG;
  31588. }
  31589. return SetStaticEphemeralKey(ctx, &ctx->staticKE, keyAlgo,
  31590. key, keySz, format, ctx->heap);
  31591. }
  31592. int wolfSSL_set_ephemeral_key(WOLFSSL* ssl, int keyAlgo,
  31593. const char* key, unsigned int keySz, int format)
  31594. {
  31595. if (ssl == NULL || ssl->ctx == NULL) {
  31596. return BAD_FUNC_ARG;
  31597. }
  31598. return SetStaticEphemeralKey(ssl->ctx, &ssl->staticKE, keyAlgo,
  31599. key, keySz, format, ssl->heap);
  31600. }
  31601. static int GetStaticEphemeralKey(WOLFSSL_CTX* ctx, WOLFSSL* ssl,
  31602. int keyAlgo, const unsigned char** key, unsigned int* keySz)
  31603. {
  31604. int ret = 0;
  31605. DerBuffer* der = NULL;
  31606. if (key) *key = NULL;
  31607. if (keySz) *keySz = 0;
  31608. #ifndef SINGLE_THREADED
  31609. if (ctx->staticKELockInit &&
  31610. (ret = wc_LockMutex(&ctx->staticKELock)) != 0) {
  31611. return ret;
  31612. }
  31613. #endif
  31614. switch (keyAlgo) {
  31615. #ifndef NO_DH
  31616. case WC_PK_TYPE_DH:
  31617. if (ssl != NULL)
  31618. der = ssl->staticKE.dhKey;
  31619. if (der == NULL)
  31620. der = ctx->staticKE.dhKey;
  31621. break;
  31622. #endif
  31623. #ifdef HAVE_ECC
  31624. case WC_PK_TYPE_ECDH:
  31625. if (ssl != NULL)
  31626. der = ssl->staticKE.ecKey;
  31627. if (der == NULL)
  31628. der = ctx->staticKE.ecKey;
  31629. break;
  31630. #endif
  31631. #ifdef HAVE_CURVE25519
  31632. case WC_PK_TYPE_CURVE25519:
  31633. if (ssl != NULL)
  31634. der = ssl->staticKE.x25519Key;
  31635. if (der == NULL)
  31636. der = ctx->staticKE.x25519Key;
  31637. break;
  31638. #endif
  31639. #ifdef HAVE_CURVE448
  31640. case WC_PK_TYPE_CURVE448:
  31641. if (ssl != NULL)
  31642. der = ssl->staticKE.x448Key;
  31643. if (der == NULL)
  31644. der = ctx->staticKE.x448Key;
  31645. break;
  31646. #endif
  31647. default:
  31648. /* not supported */
  31649. ret = NOT_COMPILED_IN;
  31650. break;
  31651. }
  31652. if (der) {
  31653. if (key)
  31654. *key = der->buffer;
  31655. if (keySz)
  31656. *keySz = der->length;
  31657. }
  31658. #ifndef SINGLE_THREADED
  31659. wc_UnLockMutex(&ctx->staticKELock);
  31660. #endif
  31661. return ret;
  31662. }
  31663. /* returns pointer to currently loaded static ephemeral as ASN.1 */
  31664. /* this can be converted to PEM using wc_DerToPem */
  31665. int wolfSSL_CTX_get_ephemeral_key(WOLFSSL_CTX* ctx, int keyAlgo,
  31666. const unsigned char** key, unsigned int* keySz)
  31667. {
  31668. if (ctx == NULL) {
  31669. return BAD_FUNC_ARG;
  31670. }
  31671. return GetStaticEphemeralKey(ctx, NULL, keyAlgo, key, keySz);
  31672. }
  31673. int wolfSSL_get_ephemeral_key(WOLFSSL* ssl, int keyAlgo,
  31674. const unsigned char** key, unsigned int* keySz)
  31675. {
  31676. if (ssl == NULL || ssl->ctx == NULL) {
  31677. return BAD_FUNC_ARG;
  31678. }
  31679. return GetStaticEphemeralKey(ssl->ctx, ssl, keyAlgo, key, keySz);
  31680. }
  31681. #endif /* WOLFSSL_STATIC_EPHEMERAL */
  31682. #if defined(OPENSSL_EXTRA)
  31683. /* wolfSSL_THREADID_current is provided as a compat API with
  31684. * CRYPTO_THREADID_current to register current thread id into given id object.
  31685. * However, CRYPTO_THREADID_current API has been deprecated and no longer
  31686. * exists in the OpenSSL 1.0.0 or later.This API only works as a stub
  31687. * like as existing wolfSSL_THREADID_set_numeric.
  31688. */
  31689. void wolfSSL_THREADID_current(WOLFSSL_CRYPTO_THREADID* id)
  31690. {
  31691. (void)id;
  31692. return;
  31693. }
  31694. /* wolfSSL_THREADID_hash is provided as a compatible API with
  31695. * CRYPTO_THREADID_hash which returns a hash value calcurated from the
  31696. * specified thread id. However, CRYPTO_THREADID_hash API has been
  31697. * deprecated and no longer exists in the OpenSSL 1.0.0 or later.
  31698. * This API only works as a stub to returns 0. This behavior is
  31699. * equivalent to the latest OpenSSL CRYPTO_THREADID_hash.
  31700. */
  31701. unsigned long wolfSSL_THREADID_hash(const WOLFSSL_CRYPTO_THREADID* id)
  31702. {
  31703. (void)id;
  31704. return 0UL;
  31705. }
  31706. /* wolfSSL_CTX_set_ecdh_auto is provided as compatible API with
  31707. * SSL_CTX_set_ecdh_auto to enable auto ecdh curve selection functionality.
  31708. * Since this functionality is enabled by default in wolfSSL,
  31709. * this API exists as a stub.
  31710. */
  31711. int wolfSSL_CTX_set_ecdh_auto(WOLFSSL_CTX* ctx, int onoff)
  31712. {
  31713. (void)ctx;
  31714. (void)onoff;
  31715. return WOLFSSL_SUCCESS;
  31716. }
  31717. /**
  31718. * set security level (wolfSSL doesn't support security level)
  31719. * @param ctx a pointer to WOLFSSL_EVP_PKEY_CTX structure
  31720. * @param level security level
  31721. */
  31722. void wolfSSL_CTX_set_security_level(WOLFSSL_CTX* ctx, int level)
  31723. {
  31724. WOLFSSL_ENTER("wolfSSL_CTX_set_security_level");
  31725. (void)ctx;
  31726. (void)level;
  31727. }
  31728. /**
  31729. * get security level (wolfSSL doesn't support security level)
  31730. * @param ctx a pointer to WOLFSSL_EVP_PKEY_CTX structure
  31731. * @return always 0(level 0)
  31732. */
  31733. int wolfSSL_CTX_get_security_level(const WOLFSSL_CTX* ctx)
  31734. {
  31735. WOLFSSL_ENTER("wolfSSL_CTX_get_security_level");
  31736. (void)ctx;
  31737. return 0;
  31738. }
  31739. /**
  31740. * Determine whether a WOLFSSL_SESSION object can be used for resumption
  31741. * @param s a pointer to WOLFSSL_SESSION structure
  31742. * @return return 1 if session is resumable, otherwise 0.
  31743. */
  31744. int wolfSSL_SESSION_is_resumable(const WOLFSSL_SESSION *s)
  31745. {
  31746. s = ClientSessionToSession(s);
  31747. if (s == NULL)
  31748. return 0;
  31749. #ifdef HAVE_SESSION_TICKET
  31750. if (s->ticketLen > 0)
  31751. return 1;
  31752. #endif
  31753. if (s->sessionIDSz > 0)
  31754. return 1;
  31755. return 0;
  31756. }
  31757. #if defined(OPENSSL_EXTRA) && defined(HAVE_SECRET_CALLBACK)
  31758. /*
  31759. * This API accepts a user callback which puts key-log records into
  31760. * a KEY LOGFILE. The callback is stored into a CTX and propagated to
  31761. * each SSL object on its creation timing.
  31762. */
  31763. void wolfSSL_CTX_set_keylog_callback(WOLFSSL_CTX* ctx, wolfSSL_CTX_keylog_cb_func cb)
  31764. {
  31765. WOLFSSL_ENTER("wolfSSL_CTX_set_keylog_callback");
  31766. /* stores the callback into WOLFSSL_CTX */
  31767. if (ctx != NULL) {
  31768. ctx->keyLogCb = cb;
  31769. }
  31770. }
  31771. wolfSSL_CTX_keylog_cb_func wolfSSL_CTX_get_keylog_callback(
  31772. const WOLFSSL_CTX* ctx)
  31773. {
  31774. WOLFSSL_ENTER("wolfSSL_CTX_get_keylog_callback");
  31775. if (ctx != NULL)
  31776. return ctx->keyLogCb;
  31777. else
  31778. return NULL;
  31779. }
  31780. #endif /* OPENSSL_EXTRA && HAVE_SECRET_CALLBACK */
  31781. #endif /* OPENSSL_EXTRA */
  31782. #ifndef NO_CERT
  31783. #define WOLFSSL_X509_INCLUDED
  31784. #include "src/x509.c"
  31785. #endif
  31786. /*******************************************************************************
  31787. * START OF standard C library wrapping APIs
  31788. ******************************************************************************/
  31789. #if defined(OPENSSL_ALL) || (defined(OPENSSL_EXTRA) && (defined(HAVE_STUNNEL) || \
  31790. defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY) || \
  31791. defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_OPENSSH)))
  31792. #ifndef NO_WOLFSSL_STUB
  31793. int wolfSSL_CRYPTO_set_mem_ex_functions(void *(*m) (size_t, const char *, int),
  31794. void *(*r) (void *, size_t, const char *,
  31795. int), void (*f) (void *))
  31796. {
  31797. (void) m;
  31798. (void) r;
  31799. (void) f;
  31800. WOLFSSL_ENTER("wolfSSL_CRYPTO_set_mem_ex_functions");
  31801. WOLFSSL_STUB("CRYPTO_set_mem_ex_functions");
  31802. return WOLFSSL_FAILURE;
  31803. }
  31804. #endif
  31805. #endif
  31806. #if defined(OPENSSL_EXTRA)
  31807. /**
  31808. * free allocated memory resouce
  31809. * @param str a pointer to resource to be freed
  31810. * @param file dummy argument
  31811. * @param line dummy argument
  31812. */
  31813. void wolfSSL_CRYPTO_free(void *str, const char *file, int line)
  31814. {
  31815. (void)file;
  31816. (void)line;
  31817. XFREE(str, 0, DYNAMIC_TYPE_TMP_BUFFER);
  31818. }
  31819. /**
  31820. * allocate memory with size of num
  31821. * @param num size of memory allocation to be malloced
  31822. * @param file dummy argument
  31823. * @param line dummy argument
  31824. * @return a pointer to allocated memory on succssesful, otherwise NULL
  31825. */
  31826. void *wolfSSL_CRYPTO_malloc(size_t num, const char *file, int line)
  31827. {
  31828. (void)file;
  31829. (void)line;
  31830. return XMALLOC(num, 0, DYNAMIC_TYPE_TMP_BUFFER);
  31831. }
  31832. #endif
  31833. /*******************************************************************************
  31834. * END OF standard C library wrapping APIs
  31835. ******************************************************************************/
  31836. /*******************************************************************************
  31837. * START OF EX_DATA APIs
  31838. ******************************************************************************/
  31839. #if defined(OPENSSL_ALL) || (defined(OPENSSL_EXTRA) && (defined(HAVE_STUNNEL) || \
  31840. defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY) || \
  31841. defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_OPENSSH)))
  31842. void wolfSSL_CRYPTO_cleanup_all_ex_data(void){
  31843. WOLFSSL_ENTER("CRYPTO_cleanup_all_ex_data");
  31844. }
  31845. #endif
  31846. #ifdef HAVE_EX_DATA
  31847. void* wolfSSL_CRYPTO_get_ex_data(const WOLFSSL_CRYPTO_EX_DATA* ex_data, int idx)
  31848. {
  31849. WOLFSSL_ENTER("wolfSSL_CTX_get_ex_data");
  31850. #ifdef MAX_EX_DATA
  31851. if(ex_data && idx < MAX_EX_DATA && idx >= 0) {
  31852. return ex_data->ex_data[idx];
  31853. }
  31854. #else
  31855. (void)ex_data;
  31856. (void)idx;
  31857. #endif
  31858. return NULL;
  31859. }
  31860. int wolfSSL_CRYPTO_set_ex_data(WOLFSSL_CRYPTO_EX_DATA* ex_data, int idx, void *data)
  31861. {
  31862. WOLFSSL_ENTER("wolfSSL_CRYPTO_set_ex_data");
  31863. #ifdef MAX_EX_DATA
  31864. if (ex_data && idx < MAX_EX_DATA && idx >= 0) {
  31865. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  31866. if (ex_data->ex_data_cleanup_routines[idx]) {
  31867. if (ex_data->ex_data[idx])
  31868. ex_data->ex_data_cleanup_routines[idx](ex_data->ex_data[idx]);
  31869. ex_data->ex_data_cleanup_routines[idx] = NULL;
  31870. }
  31871. #endif
  31872. ex_data->ex_data[idx] = data;
  31873. return WOLFSSL_SUCCESS;
  31874. }
  31875. #else
  31876. (void)ex_data;
  31877. (void)idx;
  31878. (void)data;
  31879. #endif
  31880. return WOLFSSL_FAILURE;
  31881. }
  31882. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  31883. int wolfSSL_CRYPTO_set_ex_data_with_cleanup(
  31884. WOLFSSL_CRYPTO_EX_DATA* ex_data,
  31885. int idx,
  31886. void *data,
  31887. wolfSSL_ex_data_cleanup_routine_t cleanup_routine)
  31888. {
  31889. WOLFSSL_ENTER("wolfSSL_CRYPTO_set_ex_data_with_cleanup");
  31890. if (ex_data && idx < MAX_EX_DATA && idx >= 0) {
  31891. if (ex_data->ex_data_cleanup_routines[idx] && ex_data->ex_data[idx])
  31892. ex_data->ex_data_cleanup_routines[idx](ex_data->ex_data[idx]);
  31893. ex_data->ex_data[idx] = data;
  31894. ex_data->ex_data_cleanup_routines[idx] = cleanup_routine;
  31895. return WOLFSSL_SUCCESS;
  31896. }
  31897. return WOLFSSL_FAILURE;
  31898. }
  31899. #endif /* HAVE_EX_DATA_CLEANUP_HOOKS */
  31900. /**
  31901. * Issues unique index for the class specified by class_index.
  31902. * Other parameter except class_index are ignored.
  31903. * Currently, following class_index are accepted:
  31904. * - WOLF_CRYPTO_EX_INDEX_SSL
  31905. * - WOLF_CRYPTO_EX_INDEX_SSL_CTX
  31906. * - WOLF_CRYPTO_EX_INDEX_X509
  31907. * @param class_index index one of CRYPTO_EX_INDEX_xxx
  31908. * @param argp parameters to be saved
  31909. * @param argl parameters to be saved
  31910. * @param new_func a pointer to WOLFSSL_CRYPTO_EX_new
  31911. * @param dup_func a pointer to WOLFSSL_CRYPTO_EX_dup
  31912. * @param free_func a pointer to WOLFSSL_CRYPTO_EX_free
  31913. * @return index value grater or equal to zero on success, -1 on failure.
  31914. */
  31915. int wolfSSL_CRYPTO_get_ex_new_index(int class_index, long argl, void *argp,
  31916. WOLFSSL_CRYPTO_EX_new* new_func,
  31917. WOLFSSL_CRYPTO_EX_dup* dup_func,
  31918. WOLFSSL_CRYPTO_EX_free* free_func)
  31919. {
  31920. WOLFSSL_ENTER("wolfSSL_CRYPTO_get_ex_new_index");
  31921. (void)argl;
  31922. (void)argp;
  31923. (void)new_func;
  31924. (void)dup_func;
  31925. (void)free_func;
  31926. return wolfssl_get_ex_new_index(class_index);
  31927. }
  31928. #endif /* HAVE_EX_DATA */
  31929. /*******************************************************************************
  31930. * END OF EX_DATA APIs
  31931. ******************************************************************************/
  31932. /*******************************************************************************
  31933. * START OF BUF_MEM API
  31934. ******************************************************************************/
  31935. #if defined(OPENSSL_EXTRA)
  31936. /* Begin functions for openssl/buffer.h */
  31937. WOLFSSL_BUF_MEM* wolfSSL_BUF_MEM_new(void)
  31938. {
  31939. WOLFSSL_BUF_MEM* buf;
  31940. buf = (WOLFSSL_BUF_MEM*)XMALLOC(sizeof(WOLFSSL_BUF_MEM), NULL,
  31941. DYNAMIC_TYPE_OPENSSL);
  31942. if (buf) {
  31943. XMEMSET(buf, 0, sizeof(WOLFSSL_BUF_MEM));
  31944. }
  31945. return buf;
  31946. }
  31947. /* non-compat API returns length of buffer on success */
  31948. int wolfSSL_BUF_MEM_grow_ex(WOLFSSL_BUF_MEM* buf, size_t len,
  31949. char zeroFill)
  31950. {
  31951. int len_int = (int)len;
  31952. int mx;
  31953. char* tmp;
  31954. /* verify provided arguments */
  31955. if (buf == NULL || len_int < 0) {
  31956. return 0; /* BAD_FUNC_ARG; */
  31957. }
  31958. /* check to see if fits in existing length */
  31959. if (buf->length > len) {
  31960. buf->length = len;
  31961. return len_int;
  31962. }
  31963. /* check to see if fits in max buffer */
  31964. if (buf->max >= len) {
  31965. if (buf->data != NULL && zeroFill) {
  31966. XMEMSET(&buf->data[buf->length], 0, len - buf->length);
  31967. }
  31968. buf->length = len;
  31969. return len_int;
  31970. }
  31971. /* expand size, to handle growth */
  31972. mx = (len_int + 3) / 3 * 4;
  31973. /* use realloc */
  31974. tmp = (char*)XREALLOC(buf->data, mx, NULL, DYNAMIC_TYPE_OPENSSL);
  31975. if (tmp == NULL) {
  31976. return 0; /* ERR_R_MALLOC_FAILURE; */
  31977. }
  31978. buf->data = tmp;
  31979. buf->max = mx;
  31980. if (zeroFill)
  31981. XMEMSET(&buf->data[buf->length], 0, len - buf->length);
  31982. buf->length = len;
  31983. return len_int;
  31984. }
  31985. /* returns length of buffer on success */
  31986. int wolfSSL_BUF_MEM_grow(WOLFSSL_BUF_MEM* buf, size_t len)
  31987. {
  31988. return wolfSSL_BUF_MEM_grow_ex(buf, len, 1);
  31989. }
  31990. /* non-compat API returns length of buffer on success */
  31991. int wolfSSL_BUF_MEM_resize(WOLFSSL_BUF_MEM* buf, size_t len)
  31992. {
  31993. char* tmp;
  31994. int mx;
  31995. /* verify provided arguments */
  31996. if (buf == NULL || len == 0 || (int)len <= 0) {
  31997. return 0; /* BAD_FUNC_ARG; */
  31998. }
  31999. if (len == buf->length)
  32000. return (int)len;
  32001. if (len > buf->length)
  32002. return wolfSSL_BUF_MEM_grow_ex(buf, len, 0);
  32003. /* expand size, to handle growth */
  32004. mx = ((int)len + 3) / 3 * 4;
  32005. /* We want to shrink the internal buffer */
  32006. tmp = (char*)XREALLOC(buf->data, mx, NULL, DYNAMIC_TYPE_OPENSSL);
  32007. if (tmp == NULL)
  32008. return 0;
  32009. buf->data = tmp;
  32010. buf->length = len;
  32011. buf->max = mx;
  32012. return (int)len;
  32013. }
  32014. void wolfSSL_BUF_MEM_free(WOLFSSL_BUF_MEM* buf)
  32015. {
  32016. if (buf) {
  32017. if (buf->data) {
  32018. XFREE(buf->data, NULL, DYNAMIC_TYPE_OPENSSL);
  32019. buf->data = NULL;
  32020. }
  32021. buf->max = 0;
  32022. buf->length = 0;
  32023. XFREE(buf, NULL, DYNAMIC_TYPE_OPENSSL);
  32024. }
  32025. }
  32026. /* End Functions for openssl/buffer.h */
  32027. #endif /* OPENSSL_EXTRA */
  32028. /*******************************************************************************
  32029. * END OF BUF_MEM API
  32030. ******************************************************************************/
  32031. #define WOLFSSL_CONF_INCLUDED
  32032. #include <src/conf.c>
  32033. /*******************************************************************************
  32034. * START OF RAND API
  32035. ******************************************************************************/
  32036. #if defined(OPENSSL_EXTRA) && !defined(WOLFSSL_NO_OPENSSL_RAND_CB)
  32037. static int wolfSSL_RAND_InitMutex(void)
  32038. {
  32039. if (gRandMethodsInit == 0) {
  32040. if (wc_InitMutex(&gRandMethodMutex) != 0) {
  32041. WOLFSSL_MSG("Bad Init Mutex rand methods");
  32042. return BAD_MUTEX_E;
  32043. }
  32044. gRandMethodsInit = 1;
  32045. }
  32046. return 0;
  32047. }
  32048. #endif
  32049. #ifdef OPENSSL_EXTRA
  32050. /* Checks if the global RNG has been created. If not then one is created.
  32051. *
  32052. * Returns WOLFSSL_SUCCESS when no error is encountered.
  32053. */
  32054. int wolfSSL_RAND_Init(void)
  32055. {
  32056. int ret = WOLFSSL_FAILURE;
  32057. #ifdef HAVE_GLOBAL_RNG
  32058. if (wc_LockMutex(&globalRNGMutex) == 0) {
  32059. if (initGlobalRNG == 0) {
  32060. ret = wc_InitRng(&globalRNG);
  32061. if (ret == 0) {
  32062. initGlobalRNG = 1;
  32063. ret = WOLFSSL_SUCCESS;
  32064. }
  32065. }
  32066. wc_UnLockMutex(&globalRNGMutex);
  32067. }
  32068. #endif
  32069. return ret;
  32070. }
  32071. /* WOLFSSL_SUCCESS on ok */
  32072. int wolfSSL_RAND_seed(const void* seed, int len)
  32073. {
  32074. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32075. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32076. if (gRandMethods && gRandMethods->seed) {
  32077. int ret = gRandMethods->seed(seed, len);
  32078. wc_UnLockMutex(&gRandMethodMutex);
  32079. return ret;
  32080. }
  32081. wc_UnLockMutex(&gRandMethodMutex);
  32082. }
  32083. #else
  32084. (void)seed;
  32085. (void)len;
  32086. #endif
  32087. /* Make sure global shared RNG (globalRNG) is initialized */
  32088. return wolfSSL_RAND_Init();
  32089. }
  32090. /* Returns the path for reading seed data from.
  32091. * Uses the env variable $RANDFILE first if set, if not then used $HOME/.rnd
  32092. *
  32093. * Note uses stdlib by default unless XGETENV macro is overwritten
  32094. *
  32095. * fname buffer to hold path
  32096. * len length of fname buffer
  32097. *
  32098. * Returns a pointer to fname on success and NULL on failure
  32099. */
  32100. const char* wolfSSL_RAND_file_name(char* fname, unsigned long len)
  32101. {
  32102. #ifndef NO_FILESYSTEM
  32103. char* rt;
  32104. char ap[] = "/.rnd";
  32105. WOLFSSL_ENTER("wolfSSL_RAND_file_name");
  32106. if (fname == NULL) {
  32107. return NULL;
  32108. }
  32109. XMEMSET(fname, 0, len);
  32110. /* if access to stdlib.h */
  32111. if ((rt = XGETENV("RANDFILE")) != NULL) {
  32112. if (len > XSTRLEN(rt)) {
  32113. XMEMCPY(fname, rt, XSTRLEN(rt));
  32114. }
  32115. else {
  32116. WOLFSSL_MSG("RANDFILE too large for buffer");
  32117. rt = NULL;
  32118. }
  32119. }
  32120. /* $RANDFILE was not set or is too large, check $HOME */
  32121. if (rt == NULL) {
  32122. WOLFSSL_MSG("Environment variable RANDFILE not set");
  32123. if ((rt = XGETENV("HOME")) == NULL) {
  32124. WOLFSSL_MSG("Environment variable HOME not set");
  32125. return NULL;
  32126. }
  32127. if (len > XSTRLEN(rt) + XSTRLEN(ap)) {
  32128. fname[0] = '\0';
  32129. XSTRNCAT(fname, rt, len);
  32130. XSTRNCAT(fname, ap, len - XSTRLEN(rt));
  32131. return fname;
  32132. }
  32133. else {
  32134. WOLFSSL_MSG("HOME too large for buffer");
  32135. return NULL;
  32136. }
  32137. }
  32138. return fname;
  32139. #else
  32140. /* no filesystem defined */
  32141. WOLFSSL_ENTER("wolfSSL_RAND_file_name");
  32142. WOLFSSL_MSG("No filesystem feature enabled, not compiled in");
  32143. (void)fname;
  32144. (void)len;
  32145. return NULL;
  32146. #endif
  32147. }
  32148. /* Writes 1024 bytes from the RNG to the given file name.
  32149. *
  32150. * fname name of file to write to
  32151. *
  32152. * Returns the number of bytes written
  32153. */
  32154. int wolfSSL_RAND_write_file(const char* fname)
  32155. {
  32156. int bytes = 0;
  32157. WOLFSSL_ENTER("RAND_write_file");
  32158. if (fname == NULL) {
  32159. return SSL_FAILURE;
  32160. }
  32161. #ifndef NO_FILESYSTEM
  32162. {
  32163. #ifndef WOLFSSL_SMALL_STACK
  32164. unsigned char buf[1024];
  32165. #else
  32166. unsigned char* buf = (unsigned char *)XMALLOC(1024, NULL,
  32167. DYNAMIC_TYPE_TMP_BUFFER);
  32168. if (buf == NULL) {
  32169. WOLFSSL_MSG("malloc failed");
  32170. return SSL_FAILURE;
  32171. }
  32172. #endif
  32173. bytes = 1024; /* default size of buf */
  32174. if (initGlobalRNG == 0 && wolfSSL_RAND_Init() != WOLFSSL_SUCCESS) {
  32175. WOLFSSL_MSG("No RNG to use");
  32176. #ifdef WOLFSSL_SMALL_STACK
  32177. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32178. #endif
  32179. return 0;
  32180. }
  32181. if (wc_RNG_GenerateBlock(&globalRNG, buf, bytes) != 0) {
  32182. WOLFSSL_MSG("Error generating random buffer");
  32183. bytes = 0;
  32184. }
  32185. else {
  32186. XFILE f;
  32187. f = XFOPEN(fname, "wb");
  32188. if (f == XBADFILE) {
  32189. WOLFSSL_MSG("Error opening the file");
  32190. bytes = 0;
  32191. }
  32192. else {
  32193. XFWRITE(buf, 1, bytes, f);
  32194. XFCLOSE(f);
  32195. }
  32196. }
  32197. ForceZero(buf, bytes);
  32198. #ifdef WOLFSSL_SMALL_STACK
  32199. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32200. #endif
  32201. }
  32202. #endif
  32203. return bytes;
  32204. }
  32205. #ifndef FREERTOS_TCP
  32206. /* These constant values are protocol values made by egd */
  32207. #if defined(USE_WOLFSSL_IO) && !defined(USE_WINDOWS_API) && !defined(HAVE_FIPS) && \
  32208. defined(HAVE_HASHDRBG) && !defined(NETOS) && defined(HAVE_SYS_UN_H)
  32209. #define WOLFSSL_EGD_NBLOCK 0x01
  32210. #include <sys/un.h>
  32211. #endif
  32212. /* This collects entropy from the path nm and seeds the global PRNG with it.
  32213. *
  32214. * nm is the file path to the egd server
  32215. *
  32216. * Returns the number of bytes read.
  32217. */
  32218. int wolfSSL_RAND_egd(const char* nm)
  32219. {
  32220. #ifdef WOLFSSL_EGD_NBLOCK
  32221. struct sockaddr_un rem;
  32222. int fd;
  32223. int ret = WOLFSSL_SUCCESS;
  32224. word32 bytes = 0;
  32225. word32 idx = 0;
  32226. #ifndef WOLFSSL_SMALL_STACK
  32227. unsigned char buf[256];
  32228. #else
  32229. unsigned char* buf;
  32230. buf = (unsigned char*)XMALLOC(256, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32231. if (buf == NULL) {
  32232. WOLFSSL_MSG("Not enough memory");
  32233. return WOLFSSL_FATAL_ERROR;
  32234. }
  32235. #endif
  32236. XMEMSET(&rem, 0, sizeof(struct sockaddr_un));
  32237. if (nm == NULL) {
  32238. #ifdef WOLFSSL_SMALL_STACK
  32239. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32240. #endif
  32241. return WOLFSSL_FATAL_ERROR;
  32242. }
  32243. fd = socket(AF_UNIX, SOCK_STREAM, 0);
  32244. if (fd < 0) {
  32245. WOLFSSL_MSG("Error creating socket");
  32246. #ifdef WOLFSSL_SMALL_STACK
  32247. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32248. #endif
  32249. return WOLFSSL_FATAL_ERROR;
  32250. }
  32251. rem.sun_family = AF_UNIX;
  32252. XSTRNCPY(rem.sun_path, nm, sizeof(rem.sun_path) - 1);
  32253. rem.sun_path[sizeof(rem.sun_path)-1] = '\0';
  32254. /* connect to egd server */
  32255. if (connect(fd, (struct sockaddr*)&rem, sizeof(struct sockaddr_un)) == -1) {
  32256. WOLFSSL_MSG("error connecting to egd server");
  32257. ret = WOLFSSL_FATAL_ERROR;
  32258. }
  32259. while (ret == WOLFSSL_SUCCESS && bytes < 255 && idx + 2 < 256) {
  32260. buf[idx] = WOLFSSL_EGD_NBLOCK;
  32261. buf[idx + 1] = 255 - bytes; /* request 255 bytes from server */
  32262. ret = (int)write(fd, buf + idx, 2);
  32263. if (ret != 2) {
  32264. if (errno == EAGAIN) {
  32265. ret = WOLFSSL_SUCCESS;
  32266. continue;
  32267. }
  32268. WOLFSSL_MSG("error requesting entropy from egd server");
  32269. ret = WOLFSSL_FATAL_ERROR;
  32270. break;
  32271. }
  32272. /* attempting to read */
  32273. buf[idx] = 0;
  32274. ret = (int)read(fd, buf + idx, 256 - bytes);
  32275. if (ret == 0) {
  32276. WOLFSSL_MSG("error reading entropy from egd server");
  32277. ret = WOLFSSL_FATAL_ERROR;
  32278. break;
  32279. }
  32280. if (ret > 0 && buf[idx] > 0) {
  32281. bytes += buf[idx]; /* egd stores amount sent in first byte */
  32282. if (bytes + idx > 255 || buf[idx] > ret) {
  32283. WOLFSSL_MSG("Buffer error");
  32284. ret = WOLFSSL_FATAL_ERROR;
  32285. break;
  32286. }
  32287. XMEMMOVE(buf + idx, buf + idx + 1, buf[idx]);
  32288. idx = bytes;
  32289. ret = WOLFSSL_SUCCESS;
  32290. if (bytes >= 255) {
  32291. break;
  32292. }
  32293. }
  32294. else {
  32295. if (errno == EAGAIN || errno == EINTR) {
  32296. WOLFSSL_MSG("EGD would read");
  32297. ret = WOLFSSL_SUCCESS; /* try again */
  32298. }
  32299. else if (buf[idx] == 0) {
  32300. /* if egd returned 0 then there is no more entropy to be had.
  32301. Do not try more reads. */
  32302. ret = WOLFSSL_SUCCESS;
  32303. break;
  32304. }
  32305. else {
  32306. WOLFSSL_MSG("Error with read");
  32307. ret = WOLFSSL_FATAL_ERROR;
  32308. }
  32309. }
  32310. }
  32311. if (bytes > 0 && ret == WOLFSSL_SUCCESS) {
  32312. /* call to check global RNG is created */
  32313. if (wolfSSL_RAND_Init() != SSL_SUCCESS) {
  32314. WOLFSSL_MSG("Error with initializing global RNG structure");
  32315. ret = WOLFSSL_FATAL_ERROR;
  32316. }
  32317. else if (wc_RNG_DRBG_Reseed(&globalRNG, (const byte*) buf, bytes)
  32318. != 0) {
  32319. WOLFSSL_MSG("Error with reseeding DRBG structure");
  32320. ret = WOLFSSL_FATAL_ERROR;
  32321. }
  32322. #ifdef SHOW_SECRETS
  32323. else { /* print out entropy found only when no error occured */
  32324. word32 i;
  32325. printf("EGD Entropy = ");
  32326. for (i = 0; i < bytes; i++) {
  32327. printf("%02X", buf[i]);
  32328. }
  32329. printf("\n");
  32330. }
  32331. #endif
  32332. }
  32333. ForceZero(buf, bytes);
  32334. #ifdef WOLFSSL_SMALL_STACK
  32335. XFREE(buf, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  32336. #endif
  32337. close(fd);
  32338. if (ret == WOLFSSL_SUCCESS) {
  32339. return bytes;
  32340. }
  32341. else {
  32342. return ret;
  32343. }
  32344. #else
  32345. WOLFSSL_MSG("Type of socket needed is not available");
  32346. WOLFSSL_MSG("\tor using mode where DRBG API is not available");
  32347. (void)nm;
  32348. return WOLFSSL_FATAL_ERROR;
  32349. #endif /* WOLFSSL_EGD_NBLOCK */
  32350. }
  32351. #endif /* !FREERTOS_TCP */
  32352. void wolfSSL_RAND_Cleanup(void)
  32353. {
  32354. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32355. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32356. if (gRandMethods && gRandMethods->cleanup)
  32357. gRandMethods->cleanup();
  32358. wc_UnLockMutex(&gRandMethodMutex);
  32359. }
  32360. if (wc_FreeMutex(&gRandMethodMutex) == 0)
  32361. gRandMethodsInit = 0;
  32362. #endif
  32363. #ifdef HAVE_GLOBAL_RNG
  32364. if (wc_LockMutex(&globalRNGMutex) == 0) {
  32365. if (initGlobalRNG) {
  32366. wc_FreeRng(&globalRNG);
  32367. initGlobalRNG = 0;
  32368. }
  32369. wc_UnLockMutex(&globalRNGMutex);
  32370. }
  32371. #endif
  32372. }
  32373. /* returns WOLFSSL_SUCCESS if the bytes generated are valid otherwise WOLFSSL_FAILURE */
  32374. int wolfSSL_RAND_pseudo_bytes(unsigned char* buf, int num)
  32375. {
  32376. int ret;
  32377. int hash;
  32378. byte secret[DRBG_SEED_LEN]; /* secret length arbitraily choosen */
  32379. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32380. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32381. if (gRandMethods && gRandMethods->pseudorand) {
  32382. ret = gRandMethods->pseudorand(buf, num);
  32383. wc_UnLockMutex(&gRandMethodMutex);
  32384. return ret;
  32385. }
  32386. wc_UnLockMutex(&gRandMethodMutex);
  32387. }
  32388. #endif
  32389. #ifdef WOLFSSL_HAVE_PRF
  32390. #ifndef NO_SHA256
  32391. hash = WC_SHA256;
  32392. #elif defined(WOLFSSL_SHA384)
  32393. hash = WC_SHA384;
  32394. #elif !defined(NO_SHA)
  32395. hash = WC_SHA;
  32396. #elif !defined(NO_MD5)
  32397. hash = WC_MD5;
  32398. #endif
  32399. /* get secret value from source of entropy */
  32400. ret = wolfSSL_RAND_bytes(secret, DRBG_SEED_LEN);
  32401. /* uses input buffer to seed for pseudo random number generation, each
  32402. * thread will potentially have different results this way */
  32403. if (ret == WOLFSSL_SUCCESS) {
  32404. PRIVATE_KEY_UNLOCK();
  32405. ret = wc_PRF(buf, num, secret, DRBG_SEED_LEN, (const byte*)buf, num,
  32406. hash, NULL, INVALID_DEVID);
  32407. PRIVATE_KEY_LOCK();
  32408. ret = (ret == 0) ? WOLFSSL_SUCCESS: WOLFSSL_FAILURE;
  32409. }
  32410. #else
  32411. /* fall back to just doing wolfSSL_RAND_bytes if PRF not avialbale */
  32412. ret = wolfSSL_RAND_bytes(buf, num);
  32413. (void)hash;
  32414. (void)secret;
  32415. #endif
  32416. return ret;
  32417. }
  32418. /* returns WOLFSSL_SUCCESS if the bytes generated are valid otherwise WOLFSSL_FAILURE */
  32419. int wolfSSL_RAND_bytes(unsigned char* buf, int num)
  32420. {
  32421. int ret = 0;
  32422. WC_RNG* rng = NULL;
  32423. #ifdef WOLFSSL_SMALL_STACK
  32424. WC_RNG* tmpRNG = NULL;
  32425. #else
  32426. WC_RNG tmpRNG[1];
  32427. #endif
  32428. int initTmpRng = 0;
  32429. int blockCount = 0;
  32430. #ifdef HAVE_GLOBAL_RNG
  32431. int used_global = 0;
  32432. #endif
  32433. WOLFSSL_ENTER("wolfSSL_RAND_bytes");
  32434. /* sanity check */
  32435. if (buf == NULL || num < 0)
  32436. /* return code compliant with OpenSSL */
  32437. return 0;
  32438. /* if a RAND callback has been set try and use it */
  32439. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32440. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32441. if (gRandMethods && gRandMethods->bytes) {
  32442. ret = gRandMethods->bytes(buf, num);
  32443. wc_UnLockMutex(&gRandMethodMutex);
  32444. return ret;
  32445. }
  32446. wc_UnLockMutex(&gRandMethodMutex);
  32447. }
  32448. #endif
  32449. #ifdef HAVE_GLOBAL_RNG
  32450. if (initGlobalRNG) {
  32451. if (wc_LockMutex(&globalRNGMutex) != 0) {
  32452. WOLFSSL_MSG("Bad Lock Mutex rng");
  32453. return ret;
  32454. }
  32455. rng = &globalRNG;
  32456. used_global = 1;
  32457. }
  32458. else
  32459. #endif
  32460. {
  32461. #ifdef WOLFSSL_SMALL_STACK
  32462. tmpRNG = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  32463. if (tmpRNG == NULL)
  32464. return ret;
  32465. #endif
  32466. if (wc_InitRng(tmpRNG) == 0) {
  32467. rng = tmpRNG;
  32468. initTmpRng = 1;
  32469. }
  32470. }
  32471. if (rng) {
  32472. /* handles size greater than RNG_MAX_BLOCK_LEN */
  32473. blockCount = num / RNG_MAX_BLOCK_LEN;
  32474. while (blockCount--) {
  32475. ret = wc_RNG_GenerateBlock(rng, buf, RNG_MAX_BLOCK_LEN);
  32476. if (ret != 0) {
  32477. WOLFSSL_MSG("Bad wc_RNG_GenerateBlock");
  32478. break;
  32479. }
  32480. num -= RNG_MAX_BLOCK_LEN;
  32481. buf += RNG_MAX_BLOCK_LEN;
  32482. }
  32483. if (ret == 0 && num)
  32484. ret = wc_RNG_GenerateBlock(rng, buf, num);
  32485. if (ret != 0)
  32486. WOLFSSL_MSG("Bad wc_RNG_GenerateBlock");
  32487. else
  32488. ret = WOLFSSL_SUCCESS;
  32489. }
  32490. #ifdef HAVE_GLOBAL_RNG
  32491. if (used_global == 1)
  32492. wc_UnLockMutex(&globalRNGMutex);
  32493. #endif
  32494. if (initTmpRng)
  32495. wc_FreeRng(tmpRNG);
  32496. #ifdef WOLFSSL_SMALL_STACK
  32497. if (tmpRNG)
  32498. XFREE(tmpRNG, NULL, DYNAMIC_TYPE_RNG);
  32499. #endif
  32500. return ret;
  32501. }
  32502. int wolfSSL_RAND_poll(void)
  32503. {
  32504. byte entropy[16];
  32505. int ret = 0;
  32506. word32 entropy_sz = 16;
  32507. WOLFSSL_ENTER("wolfSSL_RAND_poll");
  32508. if (initGlobalRNG == 0){
  32509. WOLFSSL_MSG("Global RNG no Init");
  32510. return WOLFSSL_FAILURE;
  32511. }
  32512. ret = wc_GenerateSeed(&globalRNG.seed, entropy, entropy_sz);
  32513. if (ret != 0){
  32514. WOLFSSL_MSG("Bad wc_RNG_GenerateBlock");
  32515. ret = WOLFSSL_FAILURE;
  32516. }else
  32517. ret = WOLFSSL_SUCCESS;
  32518. return ret;
  32519. }
  32520. /* If a valid struct is provided with function pointers, will override
  32521. RAND_seed, bytes, cleanup, add, pseudo_bytes and status. If a NULL
  32522. pointer is passed in, it will cancel any previous function overrides.
  32523. Returns WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE on failure. */
  32524. int wolfSSL_RAND_set_rand_method(const WOLFSSL_RAND_METHOD *methods)
  32525. {
  32526. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32527. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32528. gRandMethods = methods;
  32529. wc_UnLockMutex(&gRandMethodMutex);
  32530. return WOLFSSL_SUCCESS;
  32531. }
  32532. #else
  32533. (void)methods;
  32534. #endif
  32535. return WOLFSSL_FAILURE;
  32536. }
  32537. /* Returns WOLFSSL_SUCCESS if the RNG has been seeded with enough data */
  32538. int wolfSSL_RAND_status(void)
  32539. {
  32540. int ret = WOLFSSL_SUCCESS;
  32541. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32542. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32543. if (gRandMethods && gRandMethods->status)
  32544. ret = gRandMethods->status();
  32545. wc_UnLockMutex(&gRandMethodMutex);
  32546. }
  32547. else {
  32548. ret = WOLFSSL_FAILURE;
  32549. }
  32550. #else
  32551. /* wolfCrypt provides enough seed internally, so return success */
  32552. #endif
  32553. return ret;
  32554. }
  32555. void wolfSSL_RAND_add(const void* add, int len, double entropy)
  32556. {
  32557. #ifndef WOLFSSL_NO_OPENSSL_RAND_CB
  32558. if (wolfSSL_RAND_InitMutex() == 0 && wc_LockMutex(&gRandMethodMutex) == 0) {
  32559. if (gRandMethods && gRandMethods->add) {
  32560. /* callback has return code, but RAND_add does not */
  32561. (void)gRandMethods->add(add, len, entropy);
  32562. }
  32563. wc_UnLockMutex(&gRandMethodMutex);
  32564. }
  32565. #else
  32566. /* wolfSSL seeds/adds internally, use explicit RNG if you want
  32567. to take control */
  32568. (void)add;
  32569. (void)len;
  32570. (void)entropy;
  32571. #endif
  32572. }
  32573. #endif /* OPENSSL_EXTRA */
  32574. /*******************************************************************************
  32575. * END OF RAND API
  32576. ******************************************************************************/
  32577. /*******************************************************************************
  32578. * START OF EVP_CIPHER API
  32579. ******************************************************************************/
  32580. #ifdef OPENSSL_EXTRA
  32581. /* store for external read of iv, WOLFSSL_SUCCESS on success */
  32582. int wolfSSL_StoreExternalIV(WOLFSSL_EVP_CIPHER_CTX* ctx)
  32583. {
  32584. WOLFSSL_ENTER("wolfSSL_StoreExternalIV");
  32585. if (ctx == NULL) {
  32586. WOLFSSL_MSG("Bad function argument");
  32587. return WOLFSSL_FATAL_ERROR;
  32588. }
  32589. switch (ctx->cipherType) {
  32590. #ifndef NO_AES
  32591. #if defined(HAVE_AES_CBC) || defined(WOLFSSL_AES_DIRECT)
  32592. case AES_128_CBC_TYPE :
  32593. case AES_192_CBC_TYPE :
  32594. case AES_256_CBC_TYPE :
  32595. WOLFSSL_MSG("AES CBC");
  32596. XMEMCPY(ctx->iv, &ctx->cipher.aes.reg, AES_BLOCK_SIZE);
  32597. break;
  32598. #endif
  32599. #ifdef HAVE_AESGCM
  32600. case AES_128_GCM_TYPE :
  32601. case AES_192_GCM_TYPE :
  32602. case AES_256_GCM_TYPE :
  32603. WOLFSSL_MSG("AES GCM");
  32604. XMEMCPY(ctx->iv, &ctx->cipher.aes.reg, AES_BLOCK_SIZE);
  32605. break;
  32606. #endif /* HAVE_AESGCM */
  32607. #ifdef HAVE_AES_ECB
  32608. case AES_128_ECB_TYPE :
  32609. case AES_192_ECB_TYPE :
  32610. case AES_256_ECB_TYPE :
  32611. WOLFSSL_MSG("AES ECB");
  32612. break;
  32613. #endif
  32614. #ifdef WOLFSSL_AES_COUNTER
  32615. case AES_128_CTR_TYPE :
  32616. case AES_192_CTR_TYPE :
  32617. case AES_256_CTR_TYPE :
  32618. WOLFSSL_MSG("AES CTR");
  32619. XMEMCPY(ctx->iv, &ctx->cipher.aes.reg, AES_BLOCK_SIZE);
  32620. break;
  32621. #endif /* WOLFSSL_AES_COUNTER */
  32622. #ifdef WOLFSSL_AES_CFB
  32623. #if !defined(HAVE_SELFTEST) && !defined(HAVE_FIPS)
  32624. case AES_128_CFB1_TYPE:
  32625. case AES_192_CFB1_TYPE:
  32626. case AES_256_CFB1_TYPE:
  32627. WOLFSSL_MSG("AES CFB1");
  32628. break;
  32629. case AES_128_CFB8_TYPE:
  32630. case AES_192_CFB8_TYPE:
  32631. case AES_256_CFB8_TYPE:
  32632. WOLFSSL_MSG("AES CFB8");
  32633. break;
  32634. #endif /* !HAVE_SELFTEST && !HAVE_FIPS */
  32635. case AES_128_CFB128_TYPE:
  32636. case AES_192_CFB128_TYPE:
  32637. case AES_256_CFB128_TYPE:
  32638. WOLFSSL_MSG("AES CFB128");
  32639. break;
  32640. #endif /* WOLFSSL_AES_CFB */
  32641. #if defined(WOLFSSL_AES_OFB)
  32642. case AES_128_OFB_TYPE:
  32643. case AES_192_OFB_TYPE:
  32644. case AES_256_OFB_TYPE:
  32645. WOLFSSL_MSG("AES OFB");
  32646. break;
  32647. #endif /* WOLFSSL_AES_OFB */
  32648. #ifdef WOLFSSL_AES_XTS
  32649. case AES_128_XTS_TYPE:
  32650. case AES_256_XTS_TYPE:
  32651. WOLFSSL_MSG("AES XTS");
  32652. break;
  32653. #endif /* WOLFSSL_AES_XTS */
  32654. #endif /* NO_AES */
  32655. #ifndef NO_DES3
  32656. case DES_CBC_TYPE :
  32657. WOLFSSL_MSG("DES CBC");
  32658. XMEMCPY(ctx->iv, &ctx->cipher.des.reg, DES_BLOCK_SIZE);
  32659. break;
  32660. case DES_EDE3_CBC_TYPE :
  32661. WOLFSSL_MSG("DES EDE3 CBC");
  32662. XMEMCPY(ctx->iv, &ctx->cipher.des3.reg, DES_BLOCK_SIZE);
  32663. break;
  32664. #endif
  32665. #ifdef WOLFSSL_DES_ECB
  32666. case DES_ECB_TYPE :
  32667. WOLFSSL_MSG("DES ECB");
  32668. break;
  32669. case DES_EDE3_ECB_TYPE :
  32670. WOLFSSL_MSG("DES3 ECB");
  32671. break;
  32672. #endif
  32673. case ARC4_TYPE :
  32674. WOLFSSL_MSG("ARC4");
  32675. break;
  32676. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305)
  32677. case CHACHA20_POLY1305_TYPE:
  32678. break;
  32679. #endif
  32680. case NULL_CIPHER_TYPE :
  32681. WOLFSSL_MSG("NULL");
  32682. break;
  32683. default: {
  32684. WOLFSSL_MSG("bad type");
  32685. return WOLFSSL_FATAL_ERROR;
  32686. }
  32687. }
  32688. return WOLFSSL_SUCCESS;
  32689. }
  32690. /* set internal IV from external, WOLFSSL_SUCCESS on success */
  32691. int wolfSSL_SetInternalIV(WOLFSSL_EVP_CIPHER_CTX* ctx)
  32692. {
  32693. WOLFSSL_ENTER("wolfSSL_SetInternalIV");
  32694. if (ctx == NULL) {
  32695. WOLFSSL_MSG("Bad function argument");
  32696. return WOLFSSL_FATAL_ERROR;
  32697. }
  32698. switch (ctx->cipherType) {
  32699. #ifndef NO_AES
  32700. #if defined(HAVE_AES_CBC) || defined(WOLFSSL_AES_DIRECT)
  32701. case AES_128_CBC_TYPE :
  32702. case AES_192_CBC_TYPE :
  32703. case AES_256_CBC_TYPE :
  32704. WOLFSSL_MSG("AES CBC");
  32705. XMEMCPY(&ctx->cipher.aes.reg, ctx->iv, AES_BLOCK_SIZE);
  32706. break;
  32707. #endif
  32708. #ifdef HAVE_AESGCM
  32709. case AES_128_GCM_TYPE :
  32710. case AES_192_GCM_TYPE :
  32711. case AES_256_GCM_TYPE :
  32712. WOLFSSL_MSG("AES GCM");
  32713. XMEMCPY(&ctx->cipher.aes.reg, ctx->iv, AES_BLOCK_SIZE);
  32714. break;
  32715. #endif
  32716. #ifdef HAVE_AES_ECB
  32717. case AES_128_ECB_TYPE :
  32718. case AES_192_ECB_TYPE :
  32719. case AES_256_ECB_TYPE :
  32720. WOLFSSL_MSG("AES ECB");
  32721. break;
  32722. #endif
  32723. #ifdef WOLFSSL_AES_COUNTER
  32724. case AES_128_CTR_TYPE :
  32725. case AES_192_CTR_TYPE :
  32726. case AES_256_CTR_TYPE :
  32727. WOLFSSL_MSG("AES CTR");
  32728. XMEMCPY(&ctx->cipher.aes.reg, ctx->iv, AES_BLOCK_SIZE);
  32729. break;
  32730. #endif
  32731. #endif /* NO_AES */
  32732. #ifndef NO_DES3
  32733. case DES_CBC_TYPE :
  32734. WOLFSSL_MSG("DES CBC");
  32735. XMEMCPY(&ctx->cipher.des.reg, ctx->iv, DES_BLOCK_SIZE);
  32736. break;
  32737. case DES_EDE3_CBC_TYPE :
  32738. WOLFSSL_MSG("DES EDE3 CBC");
  32739. XMEMCPY(&ctx->cipher.des3.reg, ctx->iv, DES_BLOCK_SIZE);
  32740. break;
  32741. #endif
  32742. #ifdef WOLFSSL_DES_ECB
  32743. case DES_ECB_TYPE :
  32744. WOLFSSL_MSG("DES ECB");
  32745. break;
  32746. case DES_EDE3_ECB_TYPE :
  32747. WOLFSSL_MSG("DES3 ECB");
  32748. break;
  32749. #endif
  32750. case ARC4_TYPE :
  32751. WOLFSSL_MSG("ARC4");
  32752. break;
  32753. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305)
  32754. case CHACHA20_POLY1305_TYPE:
  32755. break;
  32756. #endif
  32757. case NULL_CIPHER_TYPE :
  32758. WOLFSSL_MSG("NULL");
  32759. break;
  32760. default: {
  32761. WOLFSSL_MSG("bad type");
  32762. return WOLFSSL_FATAL_ERROR;
  32763. }
  32764. }
  32765. return WOLFSSL_SUCCESS;
  32766. }
  32767. #ifndef NO_DES3
  32768. void wolfSSL_3des_iv(WOLFSSL_EVP_CIPHER_CTX* ctx, int doset,
  32769. unsigned char* iv, int len)
  32770. {
  32771. (void)len;
  32772. WOLFSSL_MSG("wolfSSL_3des_iv");
  32773. if (ctx == NULL || iv == NULL) {
  32774. WOLFSSL_MSG("Bad function argument");
  32775. return;
  32776. }
  32777. if (doset)
  32778. wc_Des3_SetIV(&ctx->cipher.des3, iv); /* OpenSSL compat, no ret */
  32779. else
  32780. XMEMCPY(iv, &ctx->cipher.des3.reg, DES_BLOCK_SIZE);
  32781. }
  32782. #endif /* NO_DES3 */
  32783. #ifndef NO_AES
  32784. void wolfSSL_aes_ctr_iv(WOLFSSL_EVP_CIPHER_CTX* ctx, int doset,
  32785. unsigned char* iv, int len)
  32786. {
  32787. (void)len;
  32788. WOLFSSL_MSG("wolfSSL_aes_ctr_iv");
  32789. if (ctx == NULL || iv == NULL) {
  32790. WOLFSSL_MSG("Bad function argument");
  32791. return;
  32792. }
  32793. if (doset)
  32794. (void)wc_AesSetIV(&ctx->cipher.aes, iv); /* OpenSSL compat, no ret */
  32795. else
  32796. XMEMCPY(iv, &ctx->cipher.aes.reg, AES_BLOCK_SIZE);
  32797. }
  32798. #endif /* NO_AES */
  32799. #endif /* OPENSSL_EXTRA */
  32800. /*******************************************************************************
  32801. * END OF EVP_CIPHER API
  32802. ******************************************************************************/
  32803. #ifndef NO_CERTS
  32804. #define WOLFSSL_X509_STORE_INCLUDED
  32805. #include <src/x509_str.c>
  32806. /*******************************************************************************
  32807. * START OF PKCS7 APIs
  32808. ******************************************************************************/
  32809. #ifdef HAVE_PKCS7
  32810. #ifdef OPENSSL_ALL
  32811. PKCS7* wolfSSL_PKCS7_new(void)
  32812. {
  32813. WOLFSSL_PKCS7* pkcs7;
  32814. int ret = 0;
  32815. pkcs7 = (WOLFSSL_PKCS7*)XMALLOC(sizeof(WOLFSSL_PKCS7), NULL,
  32816. DYNAMIC_TYPE_PKCS7);
  32817. if (pkcs7 != NULL) {
  32818. XMEMSET(pkcs7, 0, sizeof(WOLFSSL_PKCS7));
  32819. ret = wc_PKCS7_Init(&pkcs7->pkcs7, NULL, INVALID_DEVID);
  32820. }
  32821. if (ret != 0 && pkcs7 != NULL) {
  32822. XFREE(pkcs7, NULL, DYNAMIC_TYPE_PKCS7);
  32823. pkcs7 = NULL;
  32824. }
  32825. return (PKCS7*)pkcs7;
  32826. }
  32827. /******************************************************************************
  32828. * wolfSSL_PKCS7_SIGNED_new - allocates PKCS7 and initialize it for a signed data
  32829. *
  32830. * RETURNS:
  32831. * returns pointer to the PKCS7 structure on success, otherwise returns NULL
  32832. */
  32833. PKCS7_SIGNED* wolfSSL_PKCS7_SIGNED_new(void)
  32834. {
  32835. byte signedData[]= { 0x2A, 0x86, 0x48, 0x86, 0xF7, 0x0D, 0x01, 0x07, 0x02};
  32836. PKCS7* pkcs7 = NULL;
  32837. if ((pkcs7 = wolfSSL_PKCS7_new()) == NULL)
  32838. return NULL;
  32839. pkcs7->contentOID = SIGNED_DATA;
  32840. if ((wc_PKCS7_SetContentType(pkcs7, signedData, sizeof(signedData))) < 0) {
  32841. if (pkcs7) {
  32842. wolfSSL_PKCS7_free(pkcs7);
  32843. return NULL;
  32844. }
  32845. }
  32846. return pkcs7;
  32847. }
  32848. void wolfSSL_PKCS7_free(PKCS7* pkcs7)
  32849. {
  32850. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  32851. if (p7 != NULL) {
  32852. if (p7->data != NULL)
  32853. XFREE(p7->data, NULL, DYNAMIC_TYPE_PKCS7);
  32854. wc_PKCS7_Free(&p7->pkcs7);
  32855. if (p7->certs)
  32856. wolfSSL_sk_pop_free(p7->certs, NULL);
  32857. XFREE(p7, NULL, DYNAMIC_TYPE_PKCS7);
  32858. }
  32859. }
  32860. void wolfSSL_PKCS7_SIGNED_free(PKCS7_SIGNED* p7)
  32861. {
  32862. wolfSSL_PKCS7_free(p7);
  32863. return;
  32864. }
  32865. /**
  32866. * Convert DER/ASN.1 encoded signedData structure to internal PKCS7
  32867. * structure. Note, does not support detached content.
  32868. *
  32869. * p7 - pointer to set to address of newly created PKCS7 structure on return
  32870. * in - pointer to pointer of DER/ASN.1 data
  32871. * len - length of input data, bytes
  32872. *
  32873. * Returns newly allocated and populated PKCS7 structure or NULL on error.
  32874. */
  32875. PKCS7* wolfSSL_d2i_PKCS7(PKCS7** p7, const unsigned char** in, int len)
  32876. {
  32877. return wolfSSL_d2i_PKCS7_ex(p7, in, len, NULL, 0);
  32878. }
  32879. /*****************************************************************************
  32880. * wolfSSL_d2i_PKCS7_ex - Converts the given unsigned char buffer of size len
  32881. * into a PKCS7 object. Optionally, accepts a byte buffer of content which
  32882. * is stored as the PKCS7 object's content, to support detached signatures.
  32883. * @param content The content which is signed, in case the signature is
  32884. * detached. Ignored if NULL.
  32885. * @param contentSz The size of the passed in content.
  32886. *
  32887. * RETURNS:
  32888. * returns pointer to a PKCS7 structure on success, otherwise returns NULL
  32889. */
  32890. PKCS7* wolfSSL_d2i_PKCS7_ex(PKCS7** p7, const unsigned char** in, int len,
  32891. byte* content, word32 contentSz)
  32892. {
  32893. WOLFSSL_PKCS7* pkcs7 = NULL;
  32894. WOLFSSL_ENTER("wolfSSL_d2i_PKCS7_ex");
  32895. if (in == NULL || *in == NULL || len < 0)
  32896. return NULL;
  32897. if ((pkcs7 = (WOLFSSL_PKCS7*)wolfSSL_PKCS7_new()) == NULL)
  32898. return NULL;
  32899. pkcs7->len = len;
  32900. pkcs7->data = (byte*)XMALLOC(pkcs7->len, NULL, DYNAMIC_TYPE_PKCS7);
  32901. if (pkcs7->data == NULL) {
  32902. wolfSSL_PKCS7_free((PKCS7*)pkcs7);
  32903. return NULL;
  32904. }
  32905. XMEMCPY(pkcs7->data, *in, pkcs7->len);
  32906. if (content != NULL) {
  32907. pkcs7->pkcs7.content = content;
  32908. pkcs7->pkcs7.contentSz = contentSz;
  32909. }
  32910. if (wc_PKCS7_VerifySignedData(&pkcs7->pkcs7, pkcs7->data, pkcs7->len)
  32911. != 0) {
  32912. WOLFSSL_MSG("wc_PKCS7_VerifySignedData failed");
  32913. wolfSSL_PKCS7_free((PKCS7*)pkcs7);
  32914. return NULL;
  32915. }
  32916. if (p7 != NULL)
  32917. *p7 = (PKCS7*)pkcs7;
  32918. *in += pkcs7->len;
  32919. return (PKCS7*)pkcs7;
  32920. }
  32921. /**
  32922. * This API was added as a helper function for libest. It
  32923. * extracts a stack of certificates from the pkcs7 object.
  32924. * @param pkcs7 PKCS7 parameter object
  32925. * @return WOLFSSL_STACK_OF(WOLFSSL_X509)*
  32926. */
  32927. WOLFSSL_STACK* wolfSSL_PKCS7_to_stack(PKCS7* pkcs7)
  32928. {
  32929. int i;
  32930. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  32931. WOLF_STACK_OF(WOLFSSL_X509)* ret = NULL;
  32932. WOLFSSL_ENTER("wolfSSL_PKCS7_to_stack");
  32933. if (!p7) {
  32934. WOLFSSL_MSG("Bad parameter");
  32935. return NULL;
  32936. }
  32937. if (p7->certs)
  32938. return p7->certs;
  32939. for (i = 0; i < MAX_PKCS7_CERTS && p7->pkcs7.cert[i]; i++) {
  32940. WOLFSSL_X509* x509 = wolfSSL_X509_d2i(NULL, p7->pkcs7.cert[i],
  32941. p7->pkcs7.certSz[i]);
  32942. if (!ret)
  32943. ret = wolfSSL_sk_X509_new();
  32944. if (x509) {
  32945. if (wolfSSL_sk_X509_push(ret, x509) != WOLFSSL_SUCCESS) {
  32946. wolfSSL_X509_free(x509);
  32947. WOLFSSL_MSG("wolfSSL_sk_X509_push error");
  32948. goto error;
  32949. }
  32950. }
  32951. else {
  32952. WOLFSSL_MSG("wolfSSL_X509_d2i error");
  32953. goto error;
  32954. }
  32955. }
  32956. /* Save stack to free later */
  32957. if (p7->certs)
  32958. wolfSSL_sk_pop_free(p7->certs, NULL);
  32959. p7->certs = ret;
  32960. return ret;
  32961. error:
  32962. if (ret) {
  32963. wolfSSL_sk_pop_free(ret, NULL);
  32964. }
  32965. return NULL;
  32966. }
  32967. /**
  32968. * Return stack of signers contained in PKCS7 cert.
  32969. * Notes:
  32970. * - Currently only PKCS#7 messages with a single signer cert is supported.
  32971. * - Returned WOLFSSL_STACK must be freed by caller.
  32972. *
  32973. * pkcs7 - PKCS7 struct to retrieve signer certs from.
  32974. * certs - currently unused
  32975. * flags - flags to control function behavior.
  32976. *
  32977. * Return WOLFSSL_STACK of signers on success, NULL on error.
  32978. */
  32979. WOLFSSL_STACK* wolfSSL_PKCS7_get0_signers(PKCS7* pkcs7, WOLFSSL_STACK* certs,
  32980. int flags)
  32981. {
  32982. WOLFSSL_X509* x509 = NULL;
  32983. WOLFSSL_STACK* signers = NULL;
  32984. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  32985. if (p7 == NULL)
  32986. return NULL;
  32987. /* Only PKCS#7 messages with a single cert that is the verifying certificate
  32988. * is supported.
  32989. */
  32990. if (flags & PKCS7_NOINTERN) {
  32991. WOLFSSL_MSG("PKCS7_NOINTERN flag not supported");
  32992. return NULL;
  32993. }
  32994. signers = wolfSSL_sk_X509_new();
  32995. if (signers == NULL)
  32996. return NULL;
  32997. if (wolfSSL_d2i_X509(&x509, (const byte**)&p7->pkcs7.singleCert,
  32998. p7->pkcs7.singleCertSz) == NULL) {
  32999. wolfSSL_sk_X509_pop_free(signers, NULL);
  33000. return NULL;
  33001. }
  33002. if (wolfSSL_sk_X509_push(signers, x509) != WOLFSSL_SUCCESS) {
  33003. wolfSSL_sk_X509_pop_free(signers, NULL);
  33004. return NULL;
  33005. }
  33006. (void)certs;
  33007. return signers;
  33008. }
  33009. #ifndef NO_BIO
  33010. PKCS7* wolfSSL_d2i_PKCS7_bio(WOLFSSL_BIO* bio, PKCS7** p7)
  33011. {
  33012. WOLFSSL_PKCS7* pkcs7;
  33013. int ret;
  33014. WOLFSSL_ENTER("wolfSSL_d2i_PKCS7_bio");
  33015. if (bio == NULL)
  33016. return NULL;
  33017. if ((pkcs7 = (WOLFSSL_PKCS7*)wolfSSL_PKCS7_new()) == NULL)
  33018. return NULL;
  33019. pkcs7->len = wolfSSL_BIO_get_len(bio);
  33020. pkcs7->data = (byte*)XMALLOC(pkcs7->len, NULL, DYNAMIC_TYPE_PKCS7);
  33021. if (pkcs7->data == NULL) {
  33022. wolfSSL_PKCS7_free((PKCS7*)pkcs7);
  33023. return NULL;
  33024. }
  33025. if ((ret = wolfSSL_BIO_read(bio, pkcs7->data, pkcs7->len)) <= 0) {
  33026. wolfSSL_PKCS7_free((PKCS7*)pkcs7);
  33027. return NULL;
  33028. }
  33029. /* pkcs7->len may change if using b64 for example */
  33030. pkcs7->len = ret;
  33031. if (wc_PKCS7_VerifySignedData(&pkcs7->pkcs7, pkcs7->data, pkcs7->len)
  33032. != 0) {
  33033. WOLFSSL_MSG("wc_PKCS7_VerifySignedData failed");
  33034. wolfSSL_PKCS7_free((PKCS7*)pkcs7);
  33035. return NULL;
  33036. }
  33037. if (p7 != NULL)
  33038. *p7 = (PKCS7*)pkcs7;
  33039. return (PKCS7*)pkcs7;
  33040. }
  33041. int wolfSSL_i2d_PKCS7(PKCS7 *p7, unsigned char **out)
  33042. {
  33043. byte* output = NULL;
  33044. int localBuf = 0;
  33045. int len;
  33046. WC_RNG rng;
  33047. int ret = WOLFSSL_FAILURE;
  33048. WOLFSSL_ENTER("wolfSSL_i2d_PKCS7");
  33049. if (!out || !p7) {
  33050. WOLFSSL_MSG("Bad parameter");
  33051. return WOLFSSL_FAILURE;
  33052. }
  33053. if (!p7->rng) {
  33054. if (wc_InitRng(&rng) != 0) {
  33055. WOLFSSL_MSG("wc_InitRng error");
  33056. return WOLFSSL_FAILURE;
  33057. }
  33058. p7->rng = &rng; // cppcheck-suppress autoVariables
  33059. }
  33060. if ((len = wc_PKCS7_EncodeSignedData(p7, NULL, 0)) < 0) {
  33061. WOLFSSL_MSG("wc_PKCS7_EncodeSignedData error");
  33062. goto cleanup;
  33063. }
  33064. if (*out == NULL) {
  33065. output = (byte*)XMALLOC(len, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  33066. if (!output) {
  33067. WOLFSSL_MSG("malloc error");
  33068. goto cleanup;
  33069. }
  33070. localBuf = 1;
  33071. }
  33072. else {
  33073. output = *out;
  33074. }
  33075. if ((len = wc_PKCS7_EncodeSignedData(p7, output, len)) < 0) {
  33076. WOLFSSL_MSG("wc_PKCS7_EncodeSignedData error");
  33077. goto cleanup;
  33078. }
  33079. ret = len;
  33080. cleanup:
  33081. if (p7->rng == &rng) {
  33082. wc_FreeRng(&rng);
  33083. p7->rng = NULL;
  33084. }
  33085. if (ret == WOLFSSL_FAILURE && localBuf && output)
  33086. XFREE(output, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  33087. if (ret != WOLFSSL_FAILURE)
  33088. *out = output;
  33089. return ret;
  33090. }
  33091. int wolfSSL_i2d_PKCS7_bio(WOLFSSL_BIO *bio, PKCS7 *p7)
  33092. {
  33093. byte* output = NULL;
  33094. int len;
  33095. int ret = WOLFSSL_FAILURE;
  33096. WOLFSSL_ENTER("wolfSSL_i2d_PKCS7_bio");
  33097. if (!bio || !p7) {
  33098. WOLFSSL_MSG("Bad parameter");
  33099. return WOLFSSL_FAILURE;
  33100. }
  33101. if ((len = wolfSSL_i2d_PKCS7(p7, &output)) == WOLFSSL_FAILURE) {
  33102. WOLFSSL_MSG("wolfSSL_i2d_PKCS7 error");
  33103. goto cleanup;
  33104. }
  33105. if (wolfSSL_BIO_write(bio, output, len) <= 0) {
  33106. WOLFSSL_MSG("wolfSSL_BIO_write error");
  33107. goto cleanup;
  33108. }
  33109. ret = WOLFSSL_SUCCESS;
  33110. cleanup:
  33111. if (output)
  33112. XFREE(output, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  33113. return ret;
  33114. }
  33115. /**
  33116. * Creates and returns a PKCS7 signedData structure.
  33117. *
  33118. * Inner content type is set to DATA to match OpenSSL behavior.
  33119. *
  33120. * signer - certificate to sign bundle with
  33121. * pkey - private key matching signer
  33122. * certs - optional additional set of certificates to include
  33123. * in - input data to be signed
  33124. * flags - optional set of flags to control sign behavior
  33125. *
  33126. * PKCS7_BINARY - Do not translate input data to MIME canonical
  33127. * format (\r\n line endings), thus preventing corruption of
  33128. * binary content.
  33129. * PKCS7_TEXT - Prepend MIME headers for text/plain to content.
  33130. * PKCS7_DETACHED - Set signature detached, omit content from output bundle.
  33131. * PKCS7_STREAM - initialize PKCS7 struct for signing, do not read data.
  33132. *
  33133. * Flags not currently supported:
  33134. * PKCS7_NOCERTS - Do not include the signer cert in the output bundle.
  33135. * PKCS7_PARTIAL - Allow for PKCS7_sign() to be only partially set up,
  33136. * then signers etc to be added separately before
  33137. * calling PKCS7_final().
  33138. *
  33139. * Returns valid PKCS7 structure pointer, or NULL if an error occurred.
  33140. */
  33141. PKCS7* wolfSSL_PKCS7_sign(WOLFSSL_X509* signer, WOLFSSL_EVP_PKEY* pkey,
  33142. WOLFSSL_STACK* certs, WOLFSSL_BIO* in, int flags)
  33143. {
  33144. int err = 0;
  33145. WOLFSSL_PKCS7* p7 = NULL;
  33146. WOLFSSL_STACK* cert = certs;
  33147. WOLFSSL_ENTER("wolfSSL_PKCS7_sign");
  33148. if (flags & PKCS7_NOCERTS) {
  33149. WOLFSSL_MSG("PKCS7_NOCERTS flag not yet supported");
  33150. err = 1;
  33151. }
  33152. if (flags & PKCS7_PARTIAL) {
  33153. WOLFSSL_MSG("PKCS7_PARTIAL flag not yet supported");
  33154. err = 1;
  33155. }
  33156. if ((err == 0) && (signer == NULL || signer->derCert == NULL ||
  33157. signer->derCert->length == 0)) {
  33158. WOLFSSL_MSG("Bad function arg, signer is NULL or incomplete");
  33159. err = 1;
  33160. }
  33161. if ((err == 0) && (pkey == NULL || pkey->pkey.ptr == NULL ||
  33162. pkey->pkey_sz <= 0)) {
  33163. WOLFSSL_MSG("Bad function arg, pkey is NULL or incomplete");
  33164. err = 1;
  33165. }
  33166. if ((err == 0) && (in == NULL) && !(flags & PKCS7_STREAM)) {
  33167. WOLFSSL_MSG("input data required unless PKCS7_STREAM used");
  33168. err = 1;
  33169. }
  33170. if ((err == 0) && ((p7 = (WOLFSSL_PKCS7*)wolfSSL_PKCS7_new()) == NULL)) {
  33171. WOLFSSL_MSG("Error allocating new WOLFSSL_PKCS7");
  33172. err = 1;
  33173. }
  33174. /* load signer certificate */
  33175. if (err == 0) {
  33176. if (wc_PKCS7_InitWithCert(&p7->pkcs7, signer->derCert->buffer,
  33177. signer->derCert->length) != 0) {
  33178. WOLFSSL_MSG("Failed to load signer certificate");
  33179. err = 1;
  33180. }
  33181. }
  33182. /* set signer private key, data types, defaults */
  33183. if (err == 0) {
  33184. p7->pkcs7.privateKey = (byte*)pkey->pkey.ptr;
  33185. p7->pkcs7.privateKeySz = pkey->pkey_sz;
  33186. p7->pkcs7.contentOID = DATA; /* inner content default is DATA */
  33187. p7->pkcs7.hashOID = SHA256h; /* default to SHA-256 hash type */
  33188. p7->type = SIGNED_DATA; /* PKCS7_final switches on type */
  33189. }
  33190. /* add additional chain certs if provided */
  33191. while (cert && (err == 0)) {
  33192. if (cert->data.x509 != NULL && cert->data.x509->derCert != NULL) {
  33193. if (wc_PKCS7_AddCertificate(&p7->pkcs7,
  33194. cert->data.x509->derCert->buffer,
  33195. cert->data.x509->derCert->length) != 0) {
  33196. WOLFSSL_MSG("Error in wc_PKCS7_AddCertificate");
  33197. err = 1;
  33198. }
  33199. }
  33200. cert = cert->next;
  33201. }
  33202. if ((err == 0) && (flags & PKCS7_DETACHED)) {
  33203. if (wc_PKCS7_SetDetached(&p7->pkcs7, 1) != 0) {
  33204. WOLFSSL_MSG("Failed to set signature detached");
  33205. err = 1;
  33206. }
  33207. }
  33208. if ((err == 0) && (flags & PKCS7_STREAM)) {
  33209. /* if streaming, return before finalizing */
  33210. return (PKCS7*)p7;
  33211. }
  33212. if ((err == 0) && (wolfSSL_PKCS7_final((PKCS7*)p7, in, flags) != 1)) {
  33213. WOLFSSL_MSG("Error calling wolfSSL_PKCS7_final");
  33214. err = 1;
  33215. }
  33216. if ((err != 0) && (p7 != NULL)) {
  33217. wolfSSL_PKCS7_free((PKCS7*)p7);
  33218. p7 = NULL;
  33219. }
  33220. return (PKCS7*)p7;
  33221. }
  33222. #ifdef HAVE_SMIME
  33223. #ifndef MAX_MIME_LINE_LEN
  33224. #define MAX_MIME_LINE_LEN 1024
  33225. #endif
  33226. /**
  33227. * Copy input BIO to output BIO, but convert all line endings to CRLF (\r\n),
  33228. * used by PKCS7_final().
  33229. *
  33230. * in - input WOLFSSL_BIO to be converted
  33231. * out - output WOLFSSL_BIO to hold copy of in, with line endings adjusted
  33232. *
  33233. * Return 0 on success, negative on error
  33234. */
  33235. static int wolfSSL_BIO_to_MIME_crlf(WOLFSSL_BIO* in, WOLFSSL_BIO* out)
  33236. {
  33237. int ret = 0;
  33238. int lineLen = 0;
  33239. word32 canonLineLen = 0;
  33240. char* canonLine = NULL;
  33241. #ifdef WOLFSSL_SMALL_STACK
  33242. char* line = NULL;
  33243. #else
  33244. char line[MAX_MIME_LINE_LEN];
  33245. #endif
  33246. if (in == NULL || out == NULL) {
  33247. return BAD_FUNC_ARG;
  33248. }
  33249. #ifdef WOLFSSL_SMALL_STACK
  33250. line = (char*)XMALLOC(MAX_MIME_LINE_LEN, in->heap,
  33251. DYNAMIC_TYPE_TMP_BUFFER);
  33252. if (line == NULL) {
  33253. return MEMORY_E;
  33254. }
  33255. #endif
  33256. XMEMSET(line, 0, MAX_MIME_LINE_LEN);
  33257. while ((lineLen = wolfSSL_BIO_gets(in, line, (int)sizeof(line))) > 0) {
  33258. if (line[lineLen - 1] == '\r' || line[lineLen - 1] == '\n') {
  33259. canonLineLen = (word32)lineLen;
  33260. if ((canonLine = wc_MIME_single_canonicalize(
  33261. line, &canonLineLen)) == NULL) {
  33262. ret = -1;
  33263. break;
  33264. }
  33265. /* remove trailing null */
  33266. if (canonLine[canonLineLen] == '\0') {
  33267. canonLineLen--;
  33268. }
  33269. if (wolfSSL_BIO_write(out, canonLine, (int)canonLineLen) < 0) {
  33270. ret = -1;
  33271. break;
  33272. }
  33273. XFREE(canonLine, NULL, DYNAMIC_TYPE_PKCS7);
  33274. canonLine = NULL;
  33275. }
  33276. else {
  33277. /* no line ending in current line, write direct to out */
  33278. if (wolfSSL_BIO_write(out, line, lineLen) < 0) {
  33279. ret = -1;
  33280. break;
  33281. }
  33282. }
  33283. }
  33284. if (canonLine != NULL) {
  33285. XFREE(canonLine, NULL, DYNAMIC_TYPE_PKCS7);
  33286. }
  33287. #ifdef WOLFSSL_SMALL_STACK
  33288. XFREE(line, in->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33289. #endif
  33290. return ret;
  33291. }
  33292. #endif /* HAVE_SMIME */
  33293. /* Used by both PKCS7_final() and PKCS7_verify() */
  33294. static const char contTypeText[] = "Content-Type: text/plain\r\n\r\n";
  33295. /**
  33296. * Finalize PKCS7 structure, currently supports signedData only.
  33297. *
  33298. * Does not generate final bundle (ie: signedData), but finalizes
  33299. * the PKCS7 structure in preparation for a output function to be called next.
  33300. *
  33301. * pkcs7 - initialized PKCS7 structure, populated with signer, etc
  33302. * in - input data
  33303. * flags - flags to control PKCS7 behavior. Other flags except those noted
  33304. * below are ignored:
  33305. *
  33306. * PKCS7_BINARY - Do not translate input data to MIME canonical
  33307. * format (\r\n line endings), thus preventing corruption of
  33308. * binary content.
  33309. * PKCS7_TEXT - Prepend MIME headers for text/plain to content.
  33310. *
  33311. * Returns 1 on success, 0 on error
  33312. */
  33313. int wolfSSL_PKCS7_final(PKCS7* pkcs7, WOLFSSL_BIO* in, int flags)
  33314. {
  33315. int ret = 1;
  33316. int memSz = 0;
  33317. unsigned char* mem = NULL;
  33318. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  33319. WOLFSSL_BIO* data = NULL;
  33320. WOLFSSL_ENTER("wolfSSL_PKCS7_final");
  33321. if (p7 == NULL || in == NULL) {
  33322. WOLFSSL_MSG("Bad input args to PKCS7_final");
  33323. ret = 0;
  33324. }
  33325. if (ret == 1) {
  33326. if ((data = wolfSSL_BIO_new(wolfSSL_BIO_s_mem())) == NULL) {
  33327. WOLFSSL_MSG("Error in wolfSSL_BIO_new");
  33328. ret = 0;
  33329. }
  33330. }
  33331. /* prepend Content-Type header if PKCS7_TEXT */
  33332. if ((ret == 1) && (flags & PKCS7_TEXT)) {
  33333. if (wolfSSL_BIO_write(data, contTypeText,
  33334. (int)XSTR_SIZEOF(contTypeText)) < 0) {
  33335. WOLFSSL_MSG("Error prepending Content-Type header");
  33336. ret = 0;
  33337. }
  33338. }
  33339. /* convert line endings to CRLF if !PKCS7_BINARY */
  33340. if (ret == 1) {
  33341. if (flags & PKCS7_BINARY) {
  33342. /* no CRLF conversion, direct copy content */
  33343. if ((memSz = wolfSSL_BIO_get_len(in)) <= 0) {
  33344. ret = 0;
  33345. }
  33346. if (ret == 1) {
  33347. mem = (unsigned char*)XMALLOC(memSz, in->heap,
  33348. DYNAMIC_TYPE_TMP_BUFFER);
  33349. if (mem == NULL) {
  33350. WOLFSSL_MSG("Failed to allocate memory for input data");
  33351. ret = 0;
  33352. }
  33353. }
  33354. if (ret == 1) {
  33355. if (wolfSSL_BIO_read(in, mem, memSz) != memSz) {
  33356. WOLFSSL_MSG("Error reading from input BIO");
  33357. ret = 0;
  33358. }
  33359. else if (wolfSSL_BIO_write(data, mem, memSz) < 0) {
  33360. ret = 0;
  33361. }
  33362. }
  33363. if (mem != NULL) {
  33364. XFREE(mem, in->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33365. }
  33366. }
  33367. else {
  33368. #ifdef HAVE_SMIME
  33369. /* convert content line endings to CRLF */
  33370. if (wolfSSL_BIO_to_MIME_crlf(in, data) != 0) {
  33371. WOLFSSL_MSG("Error converting line endings to CRLF");
  33372. ret = 0;
  33373. }
  33374. else {
  33375. p7->pkcs7.contentCRLF = 1;
  33376. }
  33377. #else
  33378. WOLFSSL_MSG("Without PKCS7_BINARY requires wolfSSL to be built "
  33379. "with HAVE_SMIME");
  33380. ret = 0;
  33381. #endif
  33382. }
  33383. }
  33384. if ((ret == 1) && ((memSz = wolfSSL_BIO_get_mem_data(data, &mem)) < 0)) {
  33385. WOLFSSL_MSG("Error in wolfSSL_BIO_get_mem_data");
  33386. ret = 0;
  33387. }
  33388. if (ret == 1) {
  33389. if (p7->data != NULL) {
  33390. XFREE(p7->data, NULL, DYNAMIC_TYPE_PKCS7);
  33391. }
  33392. p7->data = (byte*)XMALLOC(memSz, NULL, DYNAMIC_TYPE_PKCS7);
  33393. if (p7->data == NULL) {
  33394. ret = 0;
  33395. }
  33396. else {
  33397. XMEMCPY(p7->data, mem, memSz);
  33398. p7->len = memSz;
  33399. }
  33400. }
  33401. if (ret == 1) {
  33402. p7->pkcs7.content = p7->data;
  33403. p7->pkcs7.contentSz = p7->len;
  33404. }
  33405. if (data != NULL) {
  33406. wolfSSL_BIO_free(data);
  33407. }
  33408. return ret;
  33409. }
  33410. int wolfSSL_PKCS7_verify(PKCS7* pkcs7, WOLFSSL_STACK* certs,
  33411. WOLFSSL_X509_STORE* store, WOLFSSL_BIO* in, WOLFSSL_BIO* out, int flags)
  33412. {
  33413. int i, ret = 0;
  33414. unsigned char* mem = NULL;
  33415. int memSz = 0;
  33416. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  33417. int contTypeLen;
  33418. WOLFSSL_X509* signer = NULL;
  33419. WOLFSSL_STACK* signers = NULL;
  33420. WOLFSSL_ENTER("wolfSSL_PKCS7_verify");
  33421. if (pkcs7 == NULL)
  33422. return WOLFSSL_FAILURE;
  33423. if (in != NULL) {
  33424. if ((memSz = wolfSSL_BIO_get_mem_data(in, &mem)) < 0)
  33425. return WOLFSSL_FAILURE;
  33426. p7->pkcs7.content = mem;
  33427. p7->pkcs7.contentSz = memSz;
  33428. }
  33429. /* certs is the list of certificates to find the cert with issuer/serial. */
  33430. (void)certs;
  33431. /* store is the certificate store to use to verify signer certificate
  33432. * associated with the signers.
  33433. */
  33434. (void)store;
  33435. ret = wc_PKCS7_VerifySignedData(&p7->pkcs7, p7->data, p7->len);
  33436. if (ret != 0)
  33437. return WOLFSSL_FAILURE;
  33438. if ((flags & PKCS7_NOVERIFY) != PKCS7_NOVERIFY) {
  33439. /* Verify signer certificates */
  33440. if (store == NULL || store->cm == NULL) {
  33441. WOLFSSL_MSG("No store or store certs, but PKCS7_NOVERIFY not set");
  33442. return WOLFSSL_FAILURE;
  33443. }
  33444. signers = wolfSSL_PKCS7_get0_signers(pkcs7, certs, flags);
  33445. if (signers == NULL) {
  33446. WOLFSSL_MSG("No signers found to verify");
  33447. return WOLFSSL_FAILURE;
  33448. }
  33449. for (i = 0; i < wolfSSL_sk_X509_num(signers); i++) {
  33450. signer = wolfSSL_sk_X509_value(signers, i);
  33451. if (wolfSSL_CertManagerVerifyBuffer(store->cm,
  33452. signer->derCert->buffer,
  33453. signer->derCert->length,
  33454. WOLFSSL_FILETYPE_ASN1) != WOLFSSL_SUCCESS) {
  33455. WOLFSSL_MSG("Failed to verify signer certificate");
  33456. wolfSSL_sk_X509_pop_free(signers, NULL);
  33457. return WOLFSSL_FAILURE;
  33458. }
  33459. }
  33460. wolfSSL_sk_X509_pop_free(signers, NULL);
  33461. }
  33462. if (flags & PKCS7_TEXT) {
  33463. /* strip MIME header for text/plain, otherwise error */
  33464. contTypeLen = XSTR_SIZEOF(contTypeText);
  33465. if ((p7->pkcs7.contentSz < (word32)contTypeLen) ||
  33466. (XMEMCMP(p7->pkcs7.content, contTypeText, contTypeLen) != 0)) {
  33467. WOLFSSL_MSG("Error PKCS7 Content-Type not found with PKCS7_TEXT");
  33468. return WOLFSSL_FAILURE;
  33469. }
  33470. p7->pkcs7.content += contTypeLen;
  33471. p7->pkcs7.contentSz -= contTypeLen;
  33472. }
  33473. if (out != NULL) {
  33474. wolfSSL_BIO_write(out, p7->pkcs7.content, p7->pkcs7.contentSz);
  33475. }
  33476. WOLFSSL_LEAVE("wolfSSL_PKCS7_verify", WOLFSSL_SUCCESS);
  33477. return WOLFSSL_SUCCESS;
  33478. }
  33479. /**
  33480. * This API was added as a helper function for libest. It
  33481. * encodes a stack of certificates to pkcs7 format.
  33482. * @param pkcs7 PKCS7 parameter object
  33483. * @param certs WOLFSSL_STACK_OF(WOLFSSL_X509)*
  33484. * @param out Output bio
  33485. * @return WOLFSSL_SUCCESS on success and WOLFSSL_FAILURE on failure
  33486. */
  33487. int wolfSSL_PKCS7_encode_certs(PKCS7* pkcs7, WOLFSSL_STACK* certs,
  33488. WOLFSSL_BIO* out)
  33489. {
  33490. int ret;
  33491. WOLFSSL_PKCS7* p7;
  33492. WOLFSSL_ENTER("wolfSSL_PKCS7_encode_certs");
  33493. if (!pkcs7 || !certs || !out) {
  33494. WOLFSSL_MSG("Bad parameter");
  33495. return WOLFSSL_FAILURE;
  33496. }
  33497. p7 = (WOLFSSL_PKCS7*)pkcs7;
  33498. /* take ownership of certs */
  33499. p7->certs = certs;
  33500. if (pkcs7->certList) {
  33501. WOLFSSL_MSG("wolfSSL_PKCS7_encode_certs called multiple times on same "
  33502. "struct");
  33503. return WOLFSSL_FAILURE;
  33504. }
  33505. if (certs) {
  33506. /* Save some of the values */
  33507. int hashOID = pkcs7->hashOID;
  33508. byte version = pkcs7->version;
  33509. if (!certs->data.x509 || !certs->data.x509->derCert) {
  33510. WOLFSSL_MSG("Missing cert");
  33511. return WOLFSSL_FAILURE;
  33512. }
  33513. if (wc_PKCS7_InitWithCert(pkcs7, certs->data.x509->derCert->buffer,
  33514. certs->data.x509->derCert->length) != 0) {
  33515. WOLFSSL_MSG("wc_PKCS7_InitWithCert error");
  33516. return WOLFSSL_FAILURE;
  33517. }
  33518. certs = certs->next;
  33519. pkcs7->hashOID = hashOID;
  33520. pkcs7->version = version;
  33521. }
  33522. /* Add the certs to the PKCS7 struct */
  33523. while (certs) {
  33524. if (!certs->data.x509 || !certs->data.x509->derCert) {
  33525. WOLFSSL_MSG("Missing cert");
  33526. return WOLFSSL_FAILURE;
  33527. }
  33528. if (wc_PKCS7_AddCertificate(pkcs7, certs->data.x509->derCert->buffer,
  33529. certs->data.x509->derCert->length) != 0) {
  33530. WOLFSSL_MSG("wc_PKCS7_AddCertificate error");
  33531. return WOLFSSL_FAILURE;
  33532. }
  33533. certs = certs->next;
  33534. }
  33535. if (wc_PKCS7_SetSignerIdentifierType(pkcs7, DEGENERATE_SID) != 0) {
  33536. WOLFSSL_MSG("wc_PKCS7_SetSignerIdentifierType error");
  33537. return WOLFSSL_FAILURE;
  33538. }
  33539. ret = wolfSSL_i2d_PKCS7_bio(out, pkcs7);
  33540. return ret;
  33541. }
  33542. /******************************************************************************
  33543. * wolfSSL_PEM_write_bio_PKCS7 - writes the PKCS7 data to BIO
  33544. *
  33545. * RETURNS:
  33546. * returns WOLFSSL_SUCCESS on success, otherwise returns WOLFSSL_FAILURE
  33547. */
  33548. int wolfSSL_PEM_write_bio_PKCS7(WOLFSSL_BIO* bio, PKCS7* p7)
  33549. {
  33550. #ifdef WOLFSSL_SMALL_STACK
  33551. byte* outputHead;
  33552. byte* outputFoot;
  33553. #else
  33554. byte outputHead[2048];
  33555. byte outputFoot[2048];
  33556. #endif
  33557. word32 outputHeadSz = 2048;
  33558. word32 outputFootSz = 2048;
  33559. word32 outputSz = 0;
  33560. byte* output = NULL;
  33561. byte* pem = NULL;
  33562. int pemSz = -1;
  33563. enum wc_HashType hashType;
  33564. byte hashBuf[WC_MAX_DIGEST_SIZE];
  33565. word32 hashSz = -1;
  33566. WOLFSSL_ENTER("wolfSSL_PEM_write_bio_PKCS7()");
  33567. if (bio == NULL || p7 == NULL)
  33568. return WOLFSSL_FAILURE;
  33569. #ifdef WOLFSSL_SMALL_STACK
  33570. outputHead = (byte*)XMALLOC(outputHeadSz, bio->heap,
  33571. DYNAMIC_TYPE_TMP_BUFFER);
  33572. if (outputHead == NULL)
  33573. return MEMORY_E;
  33574. outputFoot = (byte*)XMALLOC(outputFootSz, bio->heap,
  33575. DYNAMIC_TYPE_TMP_BUFFER);
  33576. if (outputFoot == NULL)
  33577. goto error;
  33578. #endif
  33579. XMEMSET(hashBuf, 0, WC_MAX_DIGEST_SIZE);
  33580. XMEMSET(outputHead, 0, outputHeadSz);
  33581. XMEMSET(outputFoot, 0, outputFootSz);
  33582. hashType = wc_OidGetHash(p7->hashOID);
  33583. hashSz = wc_HashGetDigestSize(hashType);
  33584. if (hashSz > WC_MAX_DIGEST_SIZE)
  33585. return WOLFSSL_FAILURE;
  33586. /* only SIGNED_DATA is supported */
  33587. switch (p7->contentOID) {
  33588. case SIGNED_DATA:
  33589. break;
  33590. default:
  33591. WOLFSSL_MSG("Unknown PKCS#7 Type");
  33592. return WOLFSSL_FAILURE;
  33593. };
  33594. if ((wc_PKCS7_EncodeSignedData_ex(p7, hashBuf, hashSz,
  33595. outputHead, &outputHeadSz, outputFoot, &outputFootSz)) != 0)
  33596. return WOLFSSL_FAILURE;
  33597. outputSz = outputHeadSz + p7->contentSz + outputFootSz;
  33598. output = (byte*)XMALLOC(outputSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33599. if (!output)
  33600. return WOLFSSL_FAILURE;
  33601. XMEMSET(output, 0, outputSz);
  33602. outputSz = 0;
  33603. XMEMCPY(&output[outputSz], outputHead, outputHeadSz);
  33604. outputSz += outputHeadSz;
  33605. XMEMCPY(&output[outputSz], p7->content, p7->contentSz);
  33606. outputSz += p7->contentSz;
  33607. XMEMCPY(&output[outputSz], outputFoot, outputFootSz);
  33608. outputSz += outputFootSz;
  33609. /* get PEM size */
  33610. pemSz = wc_DerToPemEx(output, outputSz, NULL, 0, NULL, CERT_TYPE);
  33611. if (pemSz < 0)
  33612. goto error;
  33613. pemSz++; /* for '\0'*/
  33614. /* create PEM buffer and convert from DER to PEM*/
  33615. if ((pem = (byte*)XMALLOC(pemSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER))
  33616. == NULL)
  33617. goto error;
  33618. XMEMSET(pem, 0, pemSz);
  33619. if (wc_DerToPemEx(output, outputSz, pem, pemSz, NULL, CERT_TYPE) < 0) {
  33620. goto error;
  33621. }
  33622. if ((wolfSSL_BIO_write(bio, pem, pemSz) == pemSz)) {
  33623. XFREE(output, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33624. XFREE(pem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33625. #ifdef WOLFSSL_SMALL_STACK
  33626. XFREE(outputHead, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33627. XFREE(outputFoot, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33628. #endif
  33629. return WOLFSSL_SUCCESS;
  33630. }
  33631. error:
  33632. #ifdef WOLFSSL_SMALL_STACK
  33633. if (outputHead) {
  33634. XFREE(outputHead, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33635. }
  33636. if (outputFoot) {
  33637. XFREE(outputFoot, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33638. }
  33639. #endif
  33640. if (output) {
  33641. XFREE(output, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33642. }
  33643. if (pem) {
  33644. XFREE(pem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  33645. }
  33646. return WOLFSSL_FAILURE;
  33647. }
  33648. #ifdef HAVE_SMIME
  33649. /*****************************************************************************
  33650. * wolfSSL_SMIME_read_PKCS7 - Reads the given S/MIME message and parses it into
  33651. * a PKCS7 object. In case of a multipart message, stores the signed data in
  33652. * bcont.
  33653. *
  33654. * RETURNS:
  33655. * returns pointer to a PKCS7 structure on success, otherwise returns NULL
  33656. */
  33657. WOLFSSL_API PKCS7* wolfSSL_SMIME_read_PKCS7(WOLFSSL_BIO* in,
  33658. WOLFSSL_BIO** bcont)
  33659. {
  33660. MimeHdr* allHdrs = NULL;
  33661. MimeHdr* curHdr = NULL;
  33662. MimeParam* curParam = NULL;
  33663. int inLen = 0;
  33664. byte* bcontMem = NULL;
  33665. int bcontMemSz = 0;
  33666. int sectionLen = 0;
  33667. int ret = -1;
  33668. char* section = NULL;
  33669. char* canonLine = NULL;
  33670. char* canonSection = NULL;
  33671. PKCS7* pkcs7 = NULL;
  33672. word32 outLen = 0;
  33673. word32 canonLineLen = 0;
  33674. byte* out = NULL;
  33675. byte* outHead = NULL;
  33676. int canonPos = 0;
  33677. int lineLen = 0;
  33678. int remainLen = 0;
  33679. byte isEnd = 0;
  33680. size_t canonSize = 0;
  33681. size_t boundLen = 0;
  33682. char* boundary = NULL;
  33683. static const char kContType[] = "Content-Type";
  33684. static const char kCTE[] = "Content-Transfer-Encoding";
  33685. static const char kMultSigned[] = "multipart/signed";
  33686. static const char kAppPkcsSign[] = "application/pkcs7-signature";
  33687. static const char kAppXPkcsSign[] = "application/x-pkcs7-signature";
  33688. static const char kAppPkcs7Mime[] = "application/pkcs7-mime";
  33689. static const char kAppXPkcs7Mime[] = "application/x-pkcs7-mime";
  33690. WOLFSSL_ENTER("wolfSSL_SMIME_read_PKCS7");
  33691. if (in == NULL || bcont == NULL) {
  33692. goto error;
  33693. }
  33694. inLen = wolfSSL_BIO_get_len(in);
  33695. if (inLen <= 0) {
  33696. goto error;
  33697. }
  33698. remainLen = wolfSSL_BIO_get_len(in);
  33699. if (remainLen <= 0) {
  33700. goto error;
  33701. }
  33702. section = (char*)XMALLOC(remainLen+1, NULL, DYNAMIC_TYPE_PKCS7);
  33703. if (section == NULL) {
  33704. goto error;
  33705. }
  33706. lineLen = wolfSSL_BIO_gets(in, section, remainLen);
  33707. if (lineLen <= 0) {
  33708. goto error;
  33709. }
  33710. while (isEnd == 0 && remainLen > 0) {
  33711. sectionLen += lineLen;
  33712. remainLen -= lineLen;
  33713. lineLen = wolfSSL_BIO_gets(in, &section[sectionLen], remainLen);
  33714. if (lineLen <= 0) {
  33715. goto error;
  33716. }
  33717. /* Line with just newline signals end of headers. */
  33718. if ((lineLen==2 && !XSTRNCMP(&section[sectionLen],
  33719. "\r\n", 2)) ||
  33720. (lineLen==1 && (section[sectionLen] == '\r' ||
  33721. section[sectionLen] == '\n'))) {
  33722. isEnd = 1;
  33723. }
  33724. }
  33725. section[sectionLen] = '\0';
  33726. ret = wc_MIME_parse_headers(section, sectionLen, &allHdrs);
  33727. if (ret < 0) {
  33728. WOLFSSL_MSG("Parsing MIME headers failed.");
  33729. goto error;
  33730. }
  33731. isEnd = 0;
  33732. section[0] = '\0';
  33733. sectionLen = 0;
  33734. curHdr = wc_MIME_find_header_name(kContType, allHdrs);
  33735. if (curHdr && !XSTRNCMP(curHdr->body, kMultSigned,
  33736. XSTR_SIZEOF(kMultSigned))) {
  33737. curParam = wc_MIME_find_param_attr("protocol", curHdr->params);
  33738. if (curParam && (!XSTRNCMP(curParam->value, kAppPkcsSign,
  33739. XSTR_SIZEOF(kAppPkcsSign)) ||
  33740. !XSTRNCMP(curParam->value, kAppXPkcsSign,
  33741. XSTR_SIZEOF(kAppXPkcsSign)))) {
  33742. curParam = wc_MIME_find_param_attr("boundary", curHdr->params);
  33743. if (curParam == NULL) {
  33744. goto error;
  33745. }
  33746. boundLen = XSTRLEN(curParam->value) + 2;
  33747. boundary = (char*)XMALLOC(boundLen+1, NULL, DYNAMIC_TYPE_PKCS7);
  33748. if (boundary == NULL) {
  33749. goto error;
  33750. }
  33751. XMEMSET(boundary, 0, (word32)(boundLen+1));
  33752. boundary[0] = boundary[1] = '-';
  33753. XSTRNCPY(&boundary[2], curParam->value, boundLen-2);
  33754. /* Parse up to first boundary, ignore everything here. */
  33755. lineLen = wolfSSL_BIO_gets(in, section, remainLen);
  33756. if (lineLen <= 0) {
  33757. goto error;
  33758. }
  33759. while (XSTRNCMP(&section[sectionLen], boundary, boundLen) &&
  33760. remainLen > 0) {
  33761. sectionLen += lineLen;
  33762. remainLen -= lineLen;
  33763. lineLen = wolfSSL_BIO_gets(in, &section[sectionLen],
  33764. remainLen);
  33765. if (lineLen <= 0) {
  33766. goto error;
  33767. }
  33768. }
  33769. section[0] = '\0';
  33770. sectionLen = 0;
  33771. canonSize = remainLen + 1;
  33772. canonSection = (char*)XMALLOC(canonSize, NULL,
  33773. DYNAMIC_TYPE_PKCS7);
  33774. if (canonSection == NULL) {
  33775. goto error;
  33776. }
  33777. lineLen = wolfSSL_BIO_gets(in, section, remainLen);
  33778. while (XSTRNCMP(&section[sectionLen], boundary, boundLen) &&
  33779. remainLen > 0) {
  33780. canonLineLen = lineLen;
  33781. canonLine = wc_MIME_single_canonicalize(&section[sectionLen],
  33782. &canonLineLen);
  33783. if (canonLine == NULL) {
  33784. goto error;
  33785. }
  33786. /* If line endings were added, the initial length may be
  33787. * exceeded. */
  33788. if ((canonPos + canonLineLen) >= canonSize) {
  33789. canonSize = canonPos + canonLineLen;
  33790. canonSection = (char*)XREALLOC(canonSection, canonSize,
  33791. NULL, DYNAMIC_TYPE_PKCS7);
  33792. if (canonSection == NULL) {
  33793. goto error;
  33794. }
  33795. }
  33796. XMEMCPY(&canonSection[canonPos], canonLine,
  33797. (int)canonLineLen - 1);
  33798. canonPos += canonLineLen - 1;
  33799. XFREE(canonLine, NULL, DYNAMIC_TYPE_PKCS7);
  33800. canonLine = NULL;
  33801. sectionLen += lineLen;
  33802. remainLen -= lineLen;
  33803. lineLen = wolfSSL_BIO_gets(in, &section[sectionLen],
  33804. remainLen);
  33805. if (lineLen <= 0) {
  33806. goto error;
  33807. }
  33808. }
  33809. if (canonPos > 0) {
  33810. canonPos--;
  33811. }
  33812. /* Strip the final trailing newline. Support \r, \n or \r\n. */
  33813. if (canonSection[canonPos] == '\n') {
  33814. if (canonPos > 0) {
  33815. canonPos--;
  33816. }
  33817. }
  33818. if (canonSection[canonPos] == '\r') {
  33819. if (canonPos > 0) {
  33820. canonPos--;
  33821. }
  33822. }
  33823. canonSection[canonPos+1] = '\0';
  33824. *bcont = wolfSSL_BIO_new(wolfSSL_BIO_s_mem());
  33825. ret = wolfSSL_BIO_write(*bcont, canonSection,
  33826. canonPos + 1);
  33827. if (ret != (canonPos+1)) {
  33828. goto error;
  33829. }
  33830. if ((bcontMemSz = wolfSSL_BIO_get_mem_data(*bcont, &bcontMem))
  33831. < 0) {
  33832. goto error;
  33833. }
  33834. XFREE(canonSection, NULL, DYNAMIC_TYPE_PKCS7);
  33835. canonSection = NULL;
  33836. wc_MIME_free_hdrs(allHdrs);
  33837. allHdrs = NULL;
  33838. section[0] = '\0';
  33839. sectionLen = 0;
  33840. lineLen = wolfSSL_BIO_gets(in, section, remainLen);
  33841. if (lineLen <= 0) {
  33842. goto error;
  33843. }
  33844. while (isEnd == 0 && remainLen > 0) {
  33845. sectionLen += lineLen;
  33846. remainLen -= lineLen;
  33847. lineLen = wolfSSL_BIO_gets(in, &section[sectionLen],
  33848. remainLen);
  33849. if (lineLen <= 0) {
  33850. goto error;
  33851. }
  33852. /* Line with just newline signals end of headers. */
  33853. if ((lineLen==2 && !XSTRNCMP(&section[sectionLen],
  33854. "\r\n", 2)) ||
  33855. (lineLen==1 && (section[sectionLen] == '\r' ||
  33856. section[sectionLen] == '\n'))) {
  33857. isEnd = 1;
  33858. }
  33859. }
  33860. section[sectionLen] = '\0';
  33861. ret = wc_MIME_parse_headers(section, sectionLen, &allHdrs);
  33862. if (ret < 0) {
  33863. WOLFSSL_MSG("Parsing MIME headers failed.");
  33864. goto error;
  33865. }
  33866. curHdr = wc_MIME_find_header_name(kContType, allHdrs);
  33867. if (curHdr == NULL || (XSTRNCMP(curHdr->body, kAppPkcsSign,
  33868. XSTR_SIZEOF(kAppPkcsSign)) &&
  33869. XSTRNCMP(curHdr->body, kAppXPkcsSign,
  33870. XSTR_SIZEOF(kAppXPkcsSign)))) {
  33871. WOLFSSL_MSG("S/MIME headers not found inside "
  33872. "multipart message.\n");
  33873. goto error;
  33874. }
  33875. section[0] = '\0';
  33876. sectionLen = 0;
  33877. lineLen = wolfSSL_BIO_gets(in, section, remainLen);
  33878. while (XSTRNCMP(&section[sectionLen], boundary, boundLen) &&
  33879. remainLen > 0) {
  33880. sectionLen += lineLen;
  33881. remainLen -= lineLen;
  33882. lineLen = wolfSSL_BIO_gets(in, &section[sectionLen],
  33883. remainLen);
  33884. if (lineLen <= 0) {
  33885. goto error;
  33886. }
  33887. }
  33888. XFREE(boundary, NULL, DYNAMIC_TYPE_PKCS7);
  33889. boundary = NULL;
  33890. }
  33891. }
  33892. else if (curHdr && (!XSTRNCMP(curHdr->body, kAppPkcs7Mime,
  33893. XSTR_SIZEOF(kAppPkcs7Mime)) ||
  33894. !XSTRNCMP(curHdr->body, kAppXPkcs7Mime,
  33895. XSTR_SIZEOF(kAppXPkcs7Mime)))) {
  33896. sectionLen = wolfSSL_BIO_get_len(in);
  33897. if (sectionLen <= 0) {
  33898. goto error;
  33899. }
  33900. ret = wolfSSL_BIO_read(in, section, sectionLen);
  33901. if (ret < 0 || ret != sectionLen) {
  33902. WOLFSSL_MSG("Error reading input BIO.");
  33903. goto error;
  33904. }
  33905. }
  33906. else {
  33907. WOLFSSL_MSG("S/MIME headers not found.");
  33908. goto error;
  33909. }
  33910. curHdr = wc_MIME_find_header_name(kCTE, allHdrs);
  33911. if (curHdr == NULL) {
  33912. WOLFSSL_MSG("Content-Transfer-Encoding header not found, "
  33913. "assuming base64 encoding.");
  33914. }
  33915. else if (XSTRNCMP(curHdr->body, "base64", XSTRLEN("base64"))) {
  33916. WOLFSSL_MSG("S/MIME encodings other than base64 are not "
  33917. "currently supported.\n");
  33918. goto error;
  33919. }
  33920. if (section == NULL || sectionLen <= 0) {
  33921. goto error;
  33922. }
  33923. outLen = ((sectionLen*3+3)/4)+1;
  33924. out = (byte*)XMALLOC(outLen*sizeof(byte), NULL, DYNAMIC_TYPE_PKCS7);
  33925. outHead = out;
  33926. if (outHead == NULL) {
  33927. goto error;
  33928. }
  33929. /* Strip trailing newlines. */
  33930. while ((sectionLen > 0) &&
  33931. (section[sectionLen-1] == '\r' || section[sectionLen-1] == '\n')) {
  33932. sectionLen--;
  33933. }
  33934. section[sectionLen] = '\0';
  33935. ret = Base64_Decode((const byte*)section, sectionLen, out, &outLen);
  33936. if (ret < 0) {
  33937. WOLFSSL_MSG("Error base64 decoding S/MIME message.");
  33938. goto error;
  33939. }
  33940. pkcs7 = wolfSSL_d2i_PKCS7_ex(NULL, (const unsigned char**)&out, outLen,
  33941. bcontMem, bcontMemSz);
  33942. wc_MIME_free_hdrs(allHdrs);
  33943. XFREE(outHead, NULL, DYNAMIC_TYPE_PKCS7);
  33944. XFREE(section, NULL, DYNAMIC_TYPE_PKCS7);
  33945. return pkcs7;
  33946. error:
  33947. wc_MIME_free_hdrs(allHdrs);
  33948. XFREE(boundary, NULL, DYNAMIC_TYPE_PKCS7);
  33949. XFREE(outHead, NULL, DYNAMIC_TYPE_PKCS7);
  33950. XFREE(section, NULL, DYNAMIC_TYPE_PKCS7);
  33951. if (canonSection != NULL)
  33952. XFREE(canonSection, NULL, DYNAMIC_TYPE_PKCS7);
  33953. if (bcont) {
  33954. wolfSSL_BIO_free(*bcont);
  33955. *bcont = NULL; /* reset 'bcount' pointer to NULL on failure */
  33956. }
  33957. return NULL;
  33958. }
  33959. /* Convert hash algo OID (from Hash_Sum in asn.h) to SMIME string equivalent.
  33960. * Returns hash algorithm string or "unknown" if not found */
  33961. static const char* wolfSSL_SMIME_HashOIDToString(int hashOID)
  33962. {
  33963. switch (hashOID) {
  33964. case MD5h:
  33965. return "md5";
  33966. case SHAh:
  33967. return "sha1";
  33968. case SHA224h:
  33969. return "sha-224";
  33970. case SHA256h:
  33971. return "sha-256";
  33972. case SHA384h:
  33973. return "sha-384";
  33974. case SHA512h:
  33975. return "sha-512";
  33976. case SHA3_224h:
  33977. return "sha3-224";
  33978. case SHA3_384h:
  33979. return "sha3-384";
  33980. case SHA3_512h:
  33981. return "sha3-512";
  33982. default:
  33983. break;
  33984. }
  33985. return "unknown";
  33986. }
  33987. /* Convert PKCS#7 type (from PKCS7_TYPES in pkcs7.h) to SMIME string.
  33988. * RFC2633 only defines signed-data, enveloped-data, certs-only.
  33989. * Returns string on success, NULL on unknown type. */
  33990. static const char* wolfSSL_SMIME_PKCS7TypeToString(int type)
  33991. {
  33992. switch (type) {
  33993. case SIGNED_DATA:
  33994. return "signed-data";
  33995. case ENVELOPED_DATA:
  33996. return "enveloped-data";
  33997. default:
  33998. break;
  33999. }
  34000. return NULL;
  34001. }
  34002. /**
  34003. * Convert PKCS7 structure to SMIME format, adding necessary headers.
  34004. *
  34005. * Handles generation of PKCS7 bundle (ie: signedData). PKCS7 structure
  34006. * should be set up beforehand with PKCS7_sign/final/etc. Output is always
  34007. * Base64 encoded.
  34008. *
  34009. * out - output BIO for SMIME formatted data to be placed
  34010. * pkcs7 - input PKCS7 structure, initialized and set up
  34011. * in - input content to be encoded into PKCS7
  34012. * flags - flags to control behavior of PKCS7 generation
  34013. *
  34014. * Returns 1 on success, 0 or negative on failure
  34015. */
  34016. int wolfSSL_SMIME_write_PKCS7(WOLFSSL_BIO* out, PKCS7* pkcs7, WOLFSSL_BIO* in,
  34017. int flags)
  34018. {
  34019. int i;
  34020. int ret = 1;
  34021. WOLFSSL_PKCS7* p7 = (WOLFSSL_PKCS7*)pkcs7;
  34022. byte* p7out = NULL;
  34023. int len = 0;
  34024. char boundary[33]; /* 32 chars + \0 */
  34025. byte* sigBase64 = NULL;
  34026. word32 sigBase64Len = 0;
  34027. const char* p7TypeString = NULL;
  34028. static const char alphanum[] = "0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ";
  34029. if (out == NULL || p7 == NULL) {
  34030. WOLFSSL_MSG("Bad function arguments");
  34031. return 0;
  34032. }
  34033. if (in != NULL && (p7->pkcs7.content == NULL || p7->pkcs7.contentSz == 0 ||
  34034. p7->pkcs7.contentCRLF == 0)) {
  34035. /* store and adjust content line endings for CRLF if needed */
  34036. if (wolfSSL_PKCS7_final((PKCS7*)p7, in, flags) != 1) {
  34037. ret = 0;
  34038. }
  34039. }
  34040. if (ret > 0) {
  34041. /* Generate signedData bundle, DER in output (dynamic) */
  34042. if ((len = wolfSSL_i2d_PKCS7((PKCS7*)p7, &p7out)) == WOLFSSL_FAILURE) {
  34043. WOLFSSL_MSG("Error in wolfSSL_i2d_PKCS7");
  34044. ret = 0;
  34045. }
  34046. }
  34047. /* Base64 encode signedData bundle */
  34048. if (ret > 0) {
  34049. if (Base64_Encode(p7out, len, NULL, &sigBase64Len) != LENGTH_ONLY_E) {
  34050. ret = 0;
  34051. }
  34052. else {
  34053. sigBase64 = (byte*)XMALLOC(sigBase64Len, NULL,
  34054. DYNAMIC_TYPE_TMP_BUFFER);
  34055. if (sigBase64 == NULL) {
  34056. ret = 0;
  34057. }
  34058. }
  34059. }
  34060. if (ret > 0) {
  34061. XMEMSET(sigBase64, 0, sigBase64Len);
  34062. if (Base64_Encode(p7out, len, sigBase64, &sigBase64Len) < 0) {
  34063. WOLFSSL_MSG("Error in Base64_Encode of signature");
  34064. ret = 0;
  34065. }
  34066. }
  34067. /* build up SMIME message */
  34068. if (ret > 0) {
  34069. if (flags & PKCS7_DETACHED) {
  34070. /* generate random boundary */
  34071. if (initGlobalRNG == 0 && wolfSSL_RAND_Init() != WOLFSSL_SUCCESS) {
  34072. WOLFSSL_MSG("No RNG to use");
  34073. ret = 0;
  34074. }
  34075. /* no need to generate random byte for null terminator (size-1) */
  34076. if ((ret > 0) && (wc_RNG_GenerateBlock(&globalRNG, (byte*)boundary,
  34077. sizeof(boundary) - 1 ) != 0)) {
  34078. WOLFSSL_MSG("Error in wc_RNG_GenerateBlock");
  34079. ret = 0;
  34080. }
  34081. if (ret > 0) {
  34082. for (i = 0; i < (int)sizeof(boundary) - 1; i++) {
  34083. boundary[i] =
  34084. alphanum[boundary[i] % XSTR_SIZEOF(alphanum)];
  34085. }
  34086. boundary[sizeof(boundary)-1] = 0;
  34087. }
  34088. if (ret > 0) {
  34089. /* S/MIME header beginning */
  34090. ret = wolfSSL_BIO_printf(out,
  34091. "MIME-Version: 1.0\n"
  34092. "Content-Type: multipart/signed; "
  34093. "protocol=\"application/x-pkcs7-signature\"; "
  34094. "micalg=\"%s\"; "
  34095. "boundary=\"----%s\"\n\n"
  34096. "This is an S/MIME signed message\n\n"
  34097. "------%s\n",
  34098. wolfSSL_SMIME_HashOIDToString(p7->pkcs7.hashOID),
  34099. boundary, boundary);
  34100. }
  34101. if (ret > 0) {
  34102. /* S/MIME content */
  34103. ret = wolfSSL_BIO_write(out,
  34104. p7->pkcs7.content, p7->pkcs7.contentSz);
  34105. }
  34106. if (ret > 0) {
  34107. /* S/SMIME header end boundary */
  34108. ret = wolfSSL_BIO_printf(out,
  34109. "\n------%s\n", boundary);
  34110. }
  34111. if (ret > 0) {
  34112. /* Signature and header */
  34113. ret = wolfSSL_BIO_printf(out,
  34114. "Content-Type: application/x-pkcs7-signature; "
  34115. "name=\"smime.p7s\"\n"
  34116. "Content-Transfer-Encoding: base64\n"
  34117. "Content-Disposition: attachment; "
  34118. "filename=\"smime.p7s\"\n\n"
  34119. "%.*s\n" /* Base64 encoded signature */
  34120. "------%s--\n\n",
  34121. sigBase64Len, sigBase64,
  34122. boundary);
  34123. }
  34124. }
  34125. else {
  34126. p7TypeString = wolfSSL_SMIME_PKCS7TypeToString(p7->type);
  34127. if (p7TypeString == NULL) {
  34128. WOLFSSL_MSG("Unsupported PKCS7 SMIME type");
  34129. ret = 0;
  34130. }
  34131. if (ret > 0) {
  34132. /* not detached */
  34133. ret = wolfSSL_BIO_printf(out,
  34134. "MIME-Version: 1.0\n"
  34135. "Content-Disposition: attachment; "
  34136. "filename=\"smime.p7m\"\n"
  34137. "Content-Type: application/x-pkcs7-mime; "
  34138. "smime-type=%s; name=\"smime.p7m\"\n"
  34139. "Content-Transfer-Encoding: base64\n\n"
  34140. "%.*s\n" /* signature */,
  34141. p7TypeString, sigBase64Len, sigBase64);
  34142. }
  34143. }
  34144. }
  34145. if (p7out != NULL) {
  34146. XFREE(p7out, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  34147. }
  34148. if (sigBase64 != NULL) {
  34149. XFREE(sigBase64, NULL, DYNAMIC_TYPE_TMP_BUFFER);
  34150. }
  34151. if (ret > 0) {
  34152. return WOLFSSL_SUCCESS;
  34153. }
  34154. return WOLFSSL_FAILURE;
  34155. }
  34156. #endif /* HAVE_SMIME */
  34157. #endif /* !NO_BIO */
  34158. #endif /* OPENSSL_ALL */
  34159. #endif /* HAVE_PKCS7 */
  34160. /*******************************************************************************
  34161. * END OF PKCS7 APIs
  34162. ******************************************************************************/
  34163. /*******************************************************************************
  34164. * START OF PKCS12 APIs
  34165. ******************************************************************************/
  34166. #ifdef OPENSSL_EXTRA
  34167. /* no-op function. Was initially used for adding encryption algorithms available
  34168. * for PKCS12 */
  34169. void wolfSSL_PKCS12_PBE_add(void)
  34170. {
  34171. WOLFSSL_ENTER("wolfSSL_PKCS12_PBE_add");
  34172. }
  34173. #if !defined(NO_FILESYSTEM)
  34174. WOLFSSL_X509_PKCS12 *wolfSSL_d2i_PKCS12_fp(XFILE fp,
  34175. WOLFSSL_X509_PKCS12 **pkcs12)
  34176. {
  34177. WOLFSSL_ENTER("wolfSSL_d2i_PKCS12_fp");
  34178. return (WOLFSSL_X509_PKCS12 *)wolfSSL_d2i_X509_fp_ex(fp, (void **)pkcs12,
  34179. PKCS12_TYPE);
  34180. }
  34181. #endif /* !NO_FILESYSTEM */
  34182. #endif /* OPENSSL_EXTRA */
  34183. #if defined(HAVE_PKCS12)
  34184. #ifdef OPENSSL_EXTRA
  34185. #if !defined(NO_ASN) && !defined(NO_PWDBASED)
  34186. #ifndef NO_BIO
  34187. WC_PKCS12* wolfSSL_d2i_PKCS12_bio(WOLFSSL_BIO* bio, WC_PKCS12** pkcs12)
  34188. {
  34189. WC_PKCS12* localPkcs12 = NULL;
  34190. unsigned char* mem = NULL;
  34191. long memSz;
  34192. int ret = -1;
  34193. WOLFSSL_ENTER("wolfSSL_d2i_PKCS12_bio");
  34194. if (bio == NULL) {
  34195. WOLFSSL_MSG("Bad Function Argument bio is NULL");
  34196. return NULL;
  34197. }
  34198. memSz = wolfSSL_BIO_get_len(bio);
  34199. if (memSz <= 0) {
  34200. return NULL;
  34201. }
  34202. mem = (unsigned char*)XMALLOC(memSz, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  34203. if (mem == NULL) {
  34204. return NULL;
  34205. }
  34206. if (mem != NULL) {
  34207. localPkcs12 = wc_PKCS12_new();
  34208. if (localPkcs12 == NULL) {
  34209. WOLFSSL_MSG("Memory error");
  34210. }
  34211. }
  34212. if (mem != NULL && localPkcs12 != NULL) {
  34213. if (wolfSSL_BIO_read(bio, mem, (int)memSz) == memSz) {
  34214. ret = wc_d2i_PKCS12(mem, (word32)memSz, localPkcs12);
  34215. if (ret < 0) {
  34216. WOLFSSL_MSG("Failed to get PKCS12 sequence");
  34217. }
  34218. }
  34219. else {
  34220. WOLFSSL_MSG("Failed to get data from bio struct");
  34221. }
  34222. }
  34223. /* cleanup */
  34224. if (mem != NULL)
  34225. XFREE(mem, bio->heap, DYNAMIC_TYPE_TMP_BUFFER);
  34226. if (ret < 0 && localPkcs12 != NULL) {
  34227. wc_PKCS12_free(localPkcs12);
  34228. localPkcs12 = NULL;
  34229. }
  34230. if (pkcs12 != NULL)
  34231. *pkcs12 = localPkcs12;
  34232. return localPkcs12;
  34233. }
  34234. /* Converts the PKCS12 to DER format and outputs it into bio.
  34235. *
  34236. * bio is the structure to hold output DER
  34237. * pkcs12 structure to create DER from
  34238. *
  34239. * return 1 for success or 0 if an error occurs
  34240. */
  34241. int wolfSSL_i2d_PKCS12_bio(WOLFSSL_BIO *bio, WC_PKCS12 *pkcs12)
  34242. {
  34243. int ret = WOLFSSL_FAILURE;
  34244. WOLFSSL_ENTER("wolfSSL_i2d_PKCS12_bio");
  34245. if ((bio != NULL) && (pkcs12 != NULL)) {
  34246. word32 certSz = 0;
  34247. byte *certDer = NULL;
  34248. certSz = wc_i2d_PKCS12(pkcs12, &certDer, NULL);
  34249. if ((certSz > 0) && (certDer != NULL)) {
  34250. if (wolfSSL_BIO_write(bio, certDer, certSz) == (int)certSz) {
  34251. ret = WOLFSSL_SUCCESS;
  34252. }
  34253. }
  34254. if (certDer != NULL) {
  34255. XFREE(certDer, NULL, DYNAMIC_TYPE_PKCS);
  34256. }
  34257. }
  34258. return ret;
  34259. }
  34260. #endif /* !NO_BIO */
  34261. /* Creates a new WC_PKCS12 structure
  34262. *
  34263. * pass password to use
  34264. * name friendlyName to use
  34265. * pkey private key to go into PKCS12 bundle
  34266. * cert certificate to go into PKCS12 bundle
  34267. * ca extra certificates that can be added to bundle. Can be NULL
  34268. * keyNID type of encryption to use on the key (-1 means no encryption)
  34269. * certNID type of encryption to use on the certificate
  34270. * itt number of iterations with encryption
  34271. * macItt number of iterations with mac creation
  34272. * keyType flag for signature and/or encryption key
  34273. *
  34274. * returns a pointer to a new WC_PKCS12 structure on success and NULL on fail
  34275. */
  34276. WC_PKCS12* wolfSSL_PKCS12_create(char* pass, char* name, WOLFSSL_EVP_PKEY* pkey,
  34277. WOLFSSL_X509* cert, WOLF_STACK_OF(WOLFSSL_X509)* ca, int keyNID,
  34278. int certNID, int itt, int macItt, int keyType)
  34279. {
  34280. WC_PKCS12* pkcs12;
  34281. WC_DerCertList* list = NULL;
  34282. word32 passSz;
  34283. byte* keyDer = NULL;
  34284. word32 keyDerSz;
  34285. byte* certDer;
  34286. int certDerSz;
  34287. WOLFSSL_ENTER("wolfSSL_PKCS12_create()");
  34288. if (pass == NULL || pkey == NULL || cert == NULL) {
  34289. WOLFSSL_LEAVE("wolfSSL_PKCS12_create()", BAD_FUNC_ARG);
  34290. return NULL;
  34291. }
  34292. passSz = (word32)XSTRLEN(pass);
  34293. keyDer = (byte*)pkey->pkey.ptr;
  34294. keyDerSz = pkey->pkey_sz;
  34295. certDer = (byte*)wolfSSL_X509_get_der(cert, &certDerSz);
  34296. if (certDer == NULL) {
  34297. return NULL;
  34298. }
  34299. if (ca != NULL) {
  34300. WC_DerCertList* cur;
  34301. unsigned long numCerts = ca->num;
  34302. byte* curDer;
  34303. int curDerSz = 0;
  34304. WOLFSSL_STACK* sk = ca;
  34305. while (numCerts > 0 && sk != NULL) {
  34306. cur = (WC_DerCertList*)XMALLOC(sizeof(WC_DerCertList), NULL,
  34307. DYNAMIC_TYPE_PKCS);
  34308. if (cur == NULL) {
  34309. wc_FreeCertList(list, NULL);
  34310. return NULL;
  34311. }
  34312. curDer = (byte*)wolfSSL_X509_get_der(sk->data.x509, &curDerSz);
  34313. if (curDer == NULL || curDerSz < 0) {
  34314. XFREE(cur, NULL, DYNAMIC_TYPE_PKCS);
  34315. wc_FreeCertList(list, NULL);
  34316. return NULL;
  34317. }
  34318. cur->buffer = (byte*)XMALLOC(curDerSz, NULL, DYNAMIC_TYPE_PKCS);
  34319. if (cur->buffer == NULL) {
  34320. XFREE(cur, NULL, DYNAMIC_TYPE_PKCS);
  34321. wc_FreeCertList(list, NULL);
  34322. return NULL;
  34323. }
  34324. XMEMCPY(cur->buffer, curDer, curDerSz);
  34325. cur->bufferSz = curDerSz;
  34326. cur->next = list;
  34327. list = cur;
  34328. sk = sk->next;
  34329. numCerts--;
  34330. }
  34331. }
  34332. pkcs12 = wc_PKCS12_create(pass, passSz, name, keyDer, keyDerSz,
  34333. certDer, certDerSz, list, keyNID, certNID, itt, macItt,
  34334. keyType, NULL);
  34335. if (ca != NULL) {
  34336. wc_FreeCertList(list, NULL);
  34337. }
  34338. return pkcs12;
  34339. }
  34340. /* return WOLFSSL_SUCCESS on success, WOLFSSL_FAILURE on failure */
  34341. int wolfSSL_PKCS12_parse(WC_PKCS12* pkcs12, const char* psw,
  34342. WOLFSSL_EVP_PKEY** pkey, WOLFSSL_X509** cert,
  34343. WOLF_STACK_OF(WOLFSSL_X509)** ca)
  34344. {
  34345. DecodedCert DeCert;
  34346. void* heap = NULL;
  34347. int ret;
  34348. byte* certData = NULL;
  34349. word32 certDataSz;
  34350. byte* pk = NULL;
  34351. word32 pkSz;
  34352. WC_DerCertList* certList = NULL;
  34353. WOLFSSL_ENTER("wolfSSL_PKCS12_parse");
  34354. /* make sure we init return args */
  34355. if (pkey) *pkey = NULL;
  34356. if (cert) *cert = NULL;
  34357. if (ca) *ca = NULL;
  34358. if (pkcs12 == NULL || psw == NULL || pkey == NULL || cert == NULL) {
  34359. WOLFSSL_MSG("Bad argument value");
  34360. return WOLFSSL_FAILURE;
  34361. }
  34362. heap = wc_PKCS12_GetHeap(pkcs12);
  34363. if (ca == NULL) {
  34364. ret = wc_PKCS12_parse(pkcs12, psw, &pk, &pkSz, &certData, &certDataSz,
  34365. NULL);
  34366. }
  34367. else {
  34368. ret = wc_PKCS12_parse(pkcs12, psw, &pk, &pkSz, &certData, &certDataSz,
  34369. &certList);
  34370. }
  34371. if (ret < 0) {
  34372. WOLFSSL_LEAVE("wolfSSL_PKCS12_parse", ret);
  34373. return WOLFSSL_FAILURE;
  34374. }
  34375. /* Decode cert and place in X509 stack struct */
  34376. if (certList != NULL) {
  34377. WC_DerCertList* current = certList;
  34378. *ca = (WOLF_STACK_OF(WOLFSSL_X509)*)XMALLOC(
  34379. sizeof(WOLF_STACK_OF(WOLFSSL_X509)), heap, DYNAMIC_TYPE_X509);
  34380. if (*ca == NULL) {
  34381. if (pk != NULL) {
  34382. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34383. }
  34384. if (certData != NULL) {
  34385. XFREE(*cert, heap, DYNAMIC_TYPE_PKCS); *cert = NULL;
  34386. }
  34387. /* Free up WC_DerCertList and move on */
  34388. while (current != NULL) {
  34389. WC_DerCertList* next = current->next;
  34390. XFREE(current->buffer, heap, DYNAMIC_TYPE_PKCS);
  34391. XFREE(current, heap, DYNAMIC_TYPE_PKCS);
  34392. current = next;
  34393. }
  34394. return WOLFSSL_FAILURE;
  34395. }
  34396. XMEMSET(*ca, 0, sizeof(WOLF_STACK_OF(WOLFSSL_X509)));
  34397. /* add list of DER certs as X509's to stack */
  34398. while (current != NULL) {
  34399. WC_DerCertList* toFree = current;
  34400. WOLFSSL_X509* x509;
  34401. x509 = (WOLFSSL_X509*)XMALLOC(sizeof(WOLFSSL_X509), heap,
  34402. DYNAMIC_TYPE_X509);
  34403. InitX509(x509, 1, heap);
  34404. InitDecodedCert(&DeCert, current->buffer, current->bufferSz, heap);
  34405. if (ParseCertRelative(&DeCert, CERT_TYPE, NO_VERIFY, NULL) != 0) {
  34406. WOLFSSL_MSG("Issue with parsing certificate");
  34407. FreeDecodedCert(&DeCert);
  34408. wolfSSL_X509_free(x509);
  34409. }
  34410. else {
  34411. if (CopyDecodedToX509(x509, &DeCert) != 0) {
  34412. WOLFSSL_MSG("Failed to copy decoded cert");
  34413. FreeDecodedCert(&DeCert);
  34414. wolfSSL_X509_free(x509);
  34415. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34416. if (pk != NULL) {
  34417. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34418. }
  34419. if (certData != NULL) {
  34420. XFREE(certData, heap, DYNAMIC_TYPE_PKCS);
  34421. }
  34422. /* Free up WC_DerCertList */
  34423. while (current != NULL) {
  34424. WC_DerCertList* next = current->next;
  34425. XFREE(current->buffer, heap, DYNAMIC_TYPE_PKCS);
  34426. XFREE(current, heap, DYNAMIC_TYPE_PKCS);
  34427. current = next;
  34428. }
  34429. return WOLFSSL_FAILURE;
  34430. }
  34431. FreeDecodedCert(&DeCert);
  34432. if (wolfSSL_sk_X509_push(*ca, x509) != 1) {
  34433. WOLFSSL_MSG("Failed to push x509 onto stack");
  34434. wolfSSL_X509_free(x509);
  34435. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34436. if (pk != NULL) {
  34437. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34438. }
  34439. if (certData != NULL) {
  34440. XFREE(certData, heap, DYNAMIC_TYPE_PKCS);
  34441. }
  34442. /* Free up WC_DerCertList */
  34443. while (current != NULL) {
  34444. WC_DerCertList* next = current->next;
  34445. XFREE(current->buffer, heap, DYNAMIC_TYPE_PKCS);
  34446. XFREE(current, heap, DYNAMIC_TYPE_PKCS);
  34447. current = next;
  34448. }
  34449. return WOLFSSL_FAILURE;
  34450. }
  34451. }
  34452. current = current->next;
  34453. XFREE(toFree->buffer, heap, DYNAMIC_TYPE_PKCS);
  34454. XFREE(toFree, heap, DYNAMIC_TYPE_PKCS);
  34455. }
  34456. }
  34457. /* Decode cert and place in X509 struct */
  34458. if (certData != NULL) {
  34459. *cert = (WOLFSSL_X509*)XMALLOC(sizeof(WOLFSSL_X509), heap,
  34460. DYNAMIC_TYPE_X509);
  34461. if (*cert == NULL) {
  34462. if (pk != NULL) {
  34463. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34464. }
  34465. if (ca != NULL) {
  34466. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34467. }
  34468. XFREE(certData, heap, DYNAMIC_TYPE_PKCS);
  34469. return WOLFSSL_FAILURE;
  34470. }
  34471. InitX509(*cert, 1, heap);
  34472. InitDecodedCert(&DeCert, certData, certDataSz, heap);
  34473. if (ParseCertRelative(&DeCert, CERT_TYPE, NO_VERIFY, NULL) != 0) {
  34474. WOLFSSL_MSG("Issue with parsing certificate");
  34475. }
  34476. if (CopyDecodedToX509(*cert, &DeCert) != 0) {
  34477. WOLFSSL_MSG("Failed to copy decoded cert");
  34478. FreeDecodedCert(&DeCert);
  34479. if (pk != NULL) {
  34480. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34481. }
  34482. if (ca != NULL) {
  34483. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34484. }
  34485. wolfSSL_X509_free(*cert); *cert = NULL;
  34486. return WOLFSSL_FAILURE;
  34487. }
  34488. FreeDecodedCert(&DeCert);
  34489. XFREE(certData, heap, DYNAMIC_TYPE_PKCS);
  34490. }
  34491. /* get key type */
  34492. ret = BAD_STATE_E;
  34493. if (pk != NULL) { /* decode key if present */
  34494. *pkey = wolfSSL_EVP_PKEY_new_ex(heap);
  34495. if (*pkey == NULL) {
  34496. wolfSSL_X509_free(*cert); *cert = NULL;
  34497. if (ca != NULL) {
  34498. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34499. }
  34500. XFREE(pk, heap, DYNAMIC_TYPE_PUBLIC_KEY);
  34501. return WOLFSSL_FAILURE;
  34502. }
  34503. #ifndef NO_RSA
  34504. {
  34505. const unsigned char* pt = pk;
  34506. if (wolfSSL_d2i_PrivateKey(EVP_PKEY_RSA, pkey, &pt, pkSz) !=
  34507. NULL) {
  34508. ret = 0;
  34509. }
  34510. }
  34511. #endif /* NO_RSA */
  34512. #ifdef HAVE_ECC
  34513. if (ret != 0) { /* if is in fail state check if ECC key */
  34514. const unsigned char* pt = pk;
  34515. if (wolfSSL_d2i_PrivateKey(EVP_PKEY_EC, pkey, &pt, pkSz) !=
  34516. NULL) {
  34517. ret = 0;
  34518. }
  34519. }
  34520. #endif /* HAVE_ECC */
  34521. if (pk != NULL)
  34522. XFREE(pk, heap, DYNAMIC_TYPE_PKCS);
  34523. if (ret != 0) { /* if is in fail state and no PKEY then fail */
  34524. wolfSSL_X509_free(*cert); *cert = NULL;
  34525. if (ca != NULL) {
  34526. wolfSSL_sk_X509_pop_free(*ca, NULL); *ca = NULL;
  34527. }
  34528. wolfSSL_EVP_PKEY_free(*pkey); *pkey = NULL;
  34529. WOLFSSL_MSG("Bad PKCS12 key format");
  34530. return WOLFSSL_FAILURE;
  34531. }
  34532. if (pkey != NULL && *pkey != NULL) {
  34533. (*pkey)->save_type = 0;
  34534. }
  34535. }
  34536. (void)ret;
  34537. (void)ca;
  34538. return WOLFSSL_SUCCESS;
  34539. }
  34540. int wolfSSL_PKCS12_verify_mac(WC_PKCS12 *pkcs12, const char *psw,
  34541. int pswLen)
  34542. {
  34543. WOLFSSL_ENTER("wolfSSL_PKCS12_verify_mac");
  34544. if (!pkcs12) {
  34545. return WOLFSSL_FAILURE;
  34546. }
  34547. return wc_PKCS12_verify_ex(pkcs12, (const byte*)psw, pswLen) == 0 ?
  34548. WOLFSSL_SUCCESS : WOLFSSL_FAILURE;
  34549. }
  34550. #endif /* !NO_ASN && !NO_PWDBASED */
  34551. #endif /* OPENSSL_EXTRA */
  34552. #endif /* HAVE_PKCS12 */
  34553. /*******************************************************************************
  34554. * END OF PKCS12 APIs
  34555. ******************************************************************************/
  34556. #endif /* !NO_CERTS */
  34557. /*******************************************************************************
  34558. * BEGIN OPENSSL FIPS DRBG APIs
  34559. ******************************************************************************/
  34560. #if defined(OPENSSL_EXTRA) && !defined(WC_NO_RNG) && defined(HAVE_HASHDRBG)
  34561. int wolfSSL_FIPS_drbg_init(WOLFSSL_DRBG_CTX *ctx, int type, unsigned int flags)
  34562. {
  34563. int ret = WOLFSSL_FAILURE;
  34564. if (ctx != NULL) {
  34565. XMEMSET(ctx, 0, sizeof(WOLFSSL_DRBG_CTX));
  34566. ctx->type = type;
  34567. ctx->xflags = flags;
  34568. ctx->status = DRBG_STATUS_UNINITIALISED;
  34569. ret = WOLFSSL_SUCCESS;
  34570. }
  34571. return ret;
  34572. }
  34573. WOLFSSL_DRBG_CTX* wolfSSL_FIPS_drbg_new(int type, unsigned int flags)
  34574. {
  34575. int ret = WOLFSSL_FAILURE;
  34576. WOLFSSL_DRBG_CTX* ctx = (WOLFSSL_DRBG_CTX*)XMALLOC(sizeof(WOLFSSL_DRBG_CTX),
  34577. NULL, DYNAMIC_TYPE_OPENSSL);
  34578. ret = wolfSSL_FIPS_drbg_init(ctx, type, flags);
  34579. if (ret == WOLFSSL_SUCCESS && type != 0) {
  34580. ret = wolfSSL_FIPS_drbg_instantiate(ctx, NULL, 0);
  34581. }
  34582. if (ret != WOLFSSL_SUCCESS) {
  34583. WOLFSSL_ERROR(ret);
  34584. wolfSSL_FIPS_drbg_free(ctx);
  34585. ctx = NULL;
  34586. }
  34587. return ctx;
  34588. }
  34589. int wolfSSL_FIPS_drbg_instantiate(WOLFSSL_DRBG_CTX* ctx,
  34590. const unsigned char* pers, size_t perslen)
  34591. {
  34592. int ret = WOLFSSL_FAILURE;
  34593. if (ctx != NULL && ctx->rng == NULL) {
  34594. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  34595. (defined(HAVE_FIPS) && FIPS_VERSION_GE(5,0)))
  34596. ctx->rng = wc_rng_new((byte*)pers, (word32)perslen, NULL);
  34597. #else
  34598. ctx->rng = (WC_RNG*)XMALLOC(sizeof(WC_RNG), NULL, DYNAMIC_TYPE_RNG);
  34599. if (ctx->rng != NULL) {
  34600. #if defined(HAVE_FIPS) && FIPS_VERSION_GE(2,0)
  34601. ret = wc_InitRngNonce(ctx->rng, (byte*)pers, (word32)perslen);
  34602. #else
  34603. ret = wc_InitRng(ctx->rng);
  34604. (void)pers;
  34605. (void)perslen;
  34606. #endif
  34607. if (ret != 0) {
  34608. WOLFSSL_ERROR(ret);
  34609. XFREE(ctx->rng, NULL, DYNAMIC_TYPE_RNG);
  34610. ctx->rng = NULL;
  34611. }
  34612. }
  34613. #endif
  34614. }
  34615. if (ctx != NULL && ctx->rng != NULL) {
  34616. ctx->status = DRBG_STATUS_READY;
  34617. ret = WOLFSSL_SUCCESS;
  34618. }
  34619. return ret;
  34620. }
  34621. int wolfSSL_FIPS_drbg_set_callbacks(WOLFSSL_DRBG_CTX* ctx,
  34622. drbg_entropy_get entropy_get, drbg_entropy_clean entropy_clean,
  34623. size_t entropy_blocklen,
  34624. drbg_nonce_get none_get, drbg_nonce_clean nonce_clean)
  34625. {
  34626. int ret = WOLFSSL_FAILURE;
  34627. if (ctx != NULL) {
  34628. ctx->entropy_get = entropy_get;
  34629. ctx->entropy_clean = entropy_clean;
  34630. ctx->entropy_blocklen = entropy_blocklen;
  34631. ctx->none_get = none_get;
  34632. ctx->nonce_clean = nonce_clean;
  34633. ret = WOLFSSL_SUCCESS;
  34634. }
  34635. return ret;
  34636. }
  34637. void wolfSSL_FIPS_rand_add(const void* buf, int num, double entropy)
  34638. {
  34639. /* not implemented */
  34640. (void)buf;
  34641. (void)num;
  34642. (void)entropy;
  34643. }
  34644. int wolfSSL_FIPS_drbg_reseed(WOLFSSL_DRBG_CTX* ctx, const unsigned char* adin,
  34645. size_t adinlen)
  34646. {
  34647. int ret = WOLFSSL_FAILURE;
  34648. if (ctx != NULL && ctx->rng != NULL) {
  34649. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  34650. (defined(HAVE_FIPS) && FIPS_VERSION_GE(2,0)))
  34651. if (wc_RNG_DRBG_Reseed(ctx->rng, adin, (word32)adinlen) == 0) {
  34652. ret = WOLFSSL_SUCCESS;
  34653. }
  34654. #else
  34655. ret = WOLFSSL_SUCCESS;
  34656. (void)adin;
  34657. (void)adinlen;
  34658. #endif
  34659. }
  34660. return ret;
  34661. }
  34662. int wolfSSL_FIPS_drbg_generate(WOLFSSL_DRBG_CTX* ctx, unsigned char* out,
  34663. size_t outlen, int prediction_resistance, const unsigned char* adin,
  34664. size_t adinlen)
  34665. {
  34666. int ret = WOLFSSL_FAILURE;
  34667. if (ctx != NULL && ctx->rng != NULL) {
  34668. ret = wc_RNG_GenerateBlock(ctx->rng, out, (word32)outlen);
  34669. if (ret == 0) {
  34670. ret = WOLFSSL_SUCCESS;
  34671. }
  34672. }
  34673. (void)prediction_resistance;
  34674. (void)adin;
  34675. (void)adinlen;
  34676. return ret;
  34677. }
  34678. int wolfSSL_FIPS_drbg_uninstantiate(WOLFSSL_DRBG_CTX *ctx)
  34679. {
  34680. if (ctx != NULL && ctx->rng != NULL) {
  34681. #if !defined(HAVE_SELFTEST) && (!defined(HAVE_FIPS) || \
  34682. (defined(HAVE_FIPS) && FIPS_VERSION_GE(5,0)))
  34683. wc_rng_free(ctx->rng);
  34684. #else
  34685. wc_FreeRng(ctx->rng);
  34686. XFREE(ctx->rng, NULL, DYNAMIC_TYPE_RNG);
  34687. #endif
  34688. ctx->rng = NULL;
  34689. ctx->status = DRBG_STATUS_UNINITIALISED;
  34690. }
  34691. return WOLFSSL_SUCCESS;
  34692. }
  34693. void wolfSSL_FIPS_drbg_free(WOLFSSL_DRBG_CTX *ctx)
  34694. {
  34695. if (ctx != NULL) {
  34696. /* As saftey check if free'ing the default drbg, then mark global NULL.
  34697. * Technically the user should not call free on the default drbg. */
  34698. if (ctx == gDrbgDefCtx) {
  34699. gDrbgDefCtx = NULL;
  34700. }
  34701. wolfSSL_FIPS_drbg_uninstantiate(ctx);
  34702. XFREE(ctx, NULL, DYNAMIC_TYPE_OPENSSL);
  34703. }
  34704. }
  34705. WOLFSSL_DRBG_CTX* wolfSSL_FIPS_get_default_drbg(void)
  34706. {
  34707. if (gDrbgDefCtx == NULL) {
  34708. gDrbgDefCtx = wolfSSL_FIPS_drbg_new(0, 0);
  34709. }
  34710. return gDrbgDefCtx;
  34711. }
  34712. void wolfSSL_FIPS_get_timevec(unsigned char* buf, unsigned long* pctr)
  34713. {
  34714. /* not implemented */
  34715. (void)buf;
  34716. (void)pctr;
  34717. }
  34718. void* wolfSSL_FIPS_drbg_get_app_data(WOLFSSL_DRBG_CTX *ctx)
  34719. {
  34720. if (ctx != NULL) {
  34721. return ctx->app_data;
  34722. }
  34723. return NULL;
  34724. }
  34725. void wolfSSL_FIPS_drbg_set_app_data(WOLFSSL_DRBG_CTX *ctx, void *app_data)
  34726. {
  34727. if (ctx != NULL) {
  34728. ctx->app_data = app_data;
  34729. }
  34730. }
  34731. #endif
  34732. /*******************************************************************************
  34733. * END OF OPENSSL FIPS DRBG APIs
  34734. ******************************************************************************/
  34735. #endif /* !WOLFCRYPT_ONLY */
  34736. /*******************************************************************************
  34737. * START OF CRYPTO-ONLY APIs
  34738. ******************************************************************************/
  34739. #if defined(OPENSSL_EXTRA) || defined(HAVE_LIGHTY) || \
  34740. defined(WOLFSSL_MYSQL_COMPATIBLE) || defined(HAVE_STUNNEL) || \
  34741. defined(WOLFSSL_NGINX) || defined(HAVE_POCO_LIB) || \
  34742. defined(WOLFSSL_HAPROXY)
  34743. #ifndef NO_SHA
  34744. /* One shot SHA1 hash of message.
  34745. *
  34746. * d message to hash
  34747. * n size of d buffer
  34748. * md buffer to hold digest. Should be SHA_DIGEST_SIZE.
  34749. *
  34750. * Note: if md is null then a static buffer of SHA_DIGEST_SIZE is used.
  34751. * When the static buffer is used this function is not thread safe.
  34752. *
  34753. * Returns a pointer to the message digest on success and NULL on failure.
  34754. */
  34755. unsigned char *wolfSSL_SHA1(const unsigned char *d, size_t n,
  34756. unsigned char *md)
  34757. {
  34758. static byte dig[WC_SHA_DIGEST_SIZE];
  34759. byte* ret = md;
  34760. wc_Sha sha;
  34761. WOLFSSL_ENTER("wolfSSL_SHA1");
  34762. if (wc_InitSha_ex(&sha, NULL, INVALID_DEVID) != 0) {
  34763. WOLFSSL_MSG("SHA1 Init failed");
  34764. return NULL;
  34765. }
  34766. if (wc_ShaUpdate(&sha, (const byte*)d, (word32)n) != 0) {
  34767. WOLFSSL_MSG("SHA1 Update failed");
  34768. return NULL;
  34769. }
  34770. if (md == NULL) {
  34771. WOLFSSL_MSG("STATIC BUFFER BEING USED. wolfSSL_SHA1 IS NOT "
  34772. "THREAD SAFE WHEN md == NULL");
  34773. ret = dig;
  34774. }
  34775. if (wc_ShaFinal(&sha, ret) != 0) {
  34776. WOLFSSL_MSG("SHA1 Final failed");
  34777. wc_ShaFree(&sha);
  34778. return NULL;
  34779. }
  34780. wc_ShaFree(&sha);
  34781. return ret;
  34782. }
  34783. #endif /* ! NO_SHA */
  34784. #ifdef WOLFSSL_SHA224
  34785. /* One shot SHA224 hash of message.
  34786. *
  34787. * d message to hash
  34788. * n size of d buffer
  34789. * md buffer to hold digest. Should be WC_SHA224_DIGEST_SIZE.
  34790. *
  34791. * Note: if md is null then a static buffer of WC_SHA256_DIGEST_SIZE is used.
  34792. * When the static buffer is used this function is not thread safe.
  34793. *
  34794. * Returns a pointer to the message digest on success and NULL on failure.
  34795. */
  34796. unsigned char *wolfSSL_SHA224(const unsigned char *d, size_t n,
  34797. unsigned char *md)
  34798. {
  34799. static byte dig[WC_SHA224_DIGEST_SIZE];
  34800. byte* ret = md;
  34801. wc_Sha256 sha;
  34802. WOLFSSL_ENTER("wolfSSL_SHA224");
  34803. if (wc_InitSha224_ex(&sha, NULL, INVALID_DEVID) != 0) {
  34804. WOLFSSL_MSG("SHA224 Init failed");
  34805. return NULL;
  34806. }
  34807. if (wc_Sha224Update(&sha, (const byte*)d, (word32)n) != 0) {
  34808. WOLFSSL_MSG("SHA224 Update failed");
  34809. return NULL;
  34810. }
  34811. if (md == NULL) {
  34812. WOLFSSL_MSG("STATIC BUFFER BEING USED. wolfSSL_SHA224 IS NOT "
  34813. "THREAD SAFE WHEN md == NULL");
  34814. ret = dig;
  34815. }
  34816. if (wc_Sha224Final(&sha, ret) != 0) {
  34817. WOLFSSL_MSG("SHA224 Final failed");
  34818. wc_Sha224Free(&sha);
  34819. return NULL;
  34820. }
  34821. wc_Sha224Free(&sha);
  34822. return ret;
  34823. }
  34824. #endif
  34825. #ifndef NO_SHA256
  34826. /* One shot SHA256 hash of message.
  34827. *
  34828. * d message to hash
  34829. * n size of d buffer
  34830. * md buffer to hold digest. Should be WC_SHA256_DIGEST_SIZE.
  34831. *
  34832. * Note: if md is null then a static buffer of WC_SHA256_DIGEST_SIZE is used.
  34833. * When the static buffer is used this function is not thread safe.
  34834. *
  34835. * Returns a pointer to the message digest on success and NULL on failure.
  34836. */
  34837. unsigned char *wolfSSL_SHA256(const unsigned char *d, size_t n,
  34838. unsigned char *md)
  34839. {
  34840. static byte dig[WC_SHA256_DIGEST_SIZE];
  34841. byte* ret = md;
  34842. wc_Sha256 sha;
  34843. WOLFSSL_ENTER("wolfSSL_SHA256");
  34844. if (wc_InitSha256_ex(&sha, NULL, INVALID_DEVID) != 0) {
  34845. WOLFSSL_MSG("SHA256 Init failed");
  34846. return NULL;
  34847. }
  34848. if (wc_Sha256Update(&sha, (const byte*)d, (word32)n) != 0) {
  34849. WOLFSSL_MSG("SHA256 Update failed");
  34850. return NULL;
  34851. }
  34852. if (md == NULL) {
  34853. WOLFSSL_MSG("STATIC BUFFER BEING USED. wolfSSL_SHA256 IS NOT "
  34854. "THREAD SAFE WHEN md == NULL");
  34855. ret = dig;
  34856. }
  34857. if (wc_Sha256Final(&sha, ret) != 0) {
  34858. WOLFSSL_MSG("SHA256 Final failed");
  34859. wc_Sha256Free(&sha);
  34860. return NULL;
  34861. }
  34862. wc_Sha256Free(&sha);
  34863. return ret;
  34864. }
  34865. #endif /* ! NO_SHA256 */
  34866. #ifdef WOLFSSL_SHA384
  34867. /* One shot SHA384 hash of message.
  34868. *
  34869. * d message to hash
  34870. * n size of d buffer
  34871. * md buffer to hold digest. Should be WC_SHA256_DIGEST_SIZE.
  34872. *
  34873. * Note: if md is null then a static buffer of WC_SHA256_DIGEST_SIZE is used.
  34874. * When the static buffer is used this function is not thread safe.
  34875. *
  34876. * Returns a pointer to the message digest on success and NULL on failure.
  34877. */
  34878. unsigned char *wolfSSL_SHA384(const unsigned char *d, size_t n,
  34879. unsigned char *md)
  34880. {
  34881. static byte dig[WC_SHA384_DIGEST_SIZE];
  34882. byte* ret = md;
  34883. wc_Sha384 sha;
  34884. WOLFSSL_ENTER("wolfSSL_SHA384");
  34885. if (wc_InitSha384_ex(&sha, NULL, INVALID_DEVID) != 0) {
  34886. WOLFSSL_MSG("SHA384 Init failed");
  34887. return NULL;
  34888. }
  34889. if (wc_Sha384Update(&sha, (const byte*)d, (word32)n) != 0) {
  34890. WOLFSSL_MSG("SHA384 Update failed");
  34891. return NULL;
  34892. }
  34893. if (md == NULL) {
  34894. WOLFSSL_MSG("STATIC BUFFER BEING USED. wolfSSL_SHA384 IS NOT "
  34895. "THREAD SAFE WHEN md == NULL");
  34896. ret = dig;
  34897. }
  34898. if (wc_Sha384Final(&sha, ret) != 0) {
  34899. WOLFSSL_MSG("SHA384 Final failed");
  34900. wc_Sha384Free(&sha);
  34901. return NULL;
  34902. }
  34903. wc_Sha384Free(&sha);
  34904. return ret;
  34905. }
  34906. #endif /* WOLFSSL_SHA384 */
  34907. #if defined(WOLFSSL_SHA512)
  34908. /* One shot SHA512 hash of message.
  34909. *
  34910. * d message to hash
  34911. * n size of d buffer
  34912. * md buffer to hold digest. Should be WC_SHA256_DIGEST_SIZE.
  34913. *
  34914. * Note: if md is null then a static buffer of WC_SHA256_DIGEST_SIZE is used.
  34915. * When the static buffer is used this function is not thread safe.
  34916. *
  34917. * Returns a pointer to the message digest on success and NULL on failure.
  34918. */
  34919. unsigned char *wolfSSL_SHA512(const unsigned char *d, size_t n,
  34920. unsigned char *md)
  34921. {
  34922. static byte dig[WC_SHA512_DIGEST_SIZE];
  34923. byte* ret = md;
  34924. wc_Sha512 sha;
  34925. WOLFSSL_ENTER("wolfSSL_SHA512");
  34926. if (wc_InitSha512_ex(&sha, NULL, INVALID_DEVID) != 0) {
  34927. WOLFSSL_MSG("SHA512 Init failed");
  34928. return NULL;
  34929. }
  34930. if (wc_Sha512Update(&sha, (const byte*)d, (word32)n) != 0) {
  34931. WOLFSSL_MSG("SHA512 Update failed");
  34932. return NULL;
  34933. }
  34934. if (md == NULL) {
  34935. WOLFSSL_MSG("STATIC BUFFER BEING USED. wolfSSL_SHA512 IS NOT "
  34936. "THREAD SAFE WHEN md == NULL");
  34937. ret = dig;
  34938. }
  34939. if (wc_Sha512Final(&sha, ret) != 0) {
  34940. WOLFSSL_MSG("SHA512 Final failed");
  34941. wc_Sha512Free(&sha);
  34942. return NULL;
  34943. }
  34944. wc_Sha512Free(&sha);
  34945. return ret;
  34946. }
  34947. #endif /* WOLFSSL_SHA512 */
  34948. #endif /* OPENSSL_EXTRA || HAVE_LIGHTY || WOLFSSL_MYSQL_COMPATIBLE ||
  34949. * HAVE_STUNNEL || WOLFSSL_NGINX || HAVE_POCO_LIB || WOLFSSL_HAPROXY */
  34950. /*******************************************************************************
  34951. * END OF CRYPTO-ONLY APIs
  34952. ******************************************************************************/