internal.c 1.1 MB

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  1. /* internal.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. /*
  26. * WOLFSSL_SMALL_CERT_VERIFY:
  27. * Verify the certificate signature without using DecodedCert. Doubles up
  28. * on some code but allows smaller peak heap memory usage.
  29. * Cannot be used with WOLFSSL_NONBLOCK_OCSP.
  30. * WOLFSSL_ALT_CERT_CHAINS:
  31. * Allows CA's to be presented by peer, but not part of a valid chain.
  32. * Default wolfSSL behavior is to require validation of all presented peer
  33. * certificates. This also allows loading intermediate CA's as trusted
  34. * and ignoring no signer failures for CA's up the chain to root.
  35. * WOLFSSL_DTLS_RESEND_ONLY_TIMEOUT:
  36. * Enable resending the previous DTLS handshake flight only on a network
  37. * read timeout. By default we resend in two more cases, when we receive:
  38. * - an out of order last msg of the peer's flight
  39. * - a duplicate of the first msg from the peer's flight
  40. * WOLFSSL_NO_DEF_TICKET_ENC_CB:
  41. * No default ticket encryption callback.
  42. * Server only.
  43. * Application must set its own callback to use session tickets.
  44. * WOLFSSL_TICKET_ENC_CHACHA20_POLY1305
  45. * Use ChaCha20-Poly1305 to encrypt/decrypt session tickets in default
  46. * callback. Default algorithm if none defined and algorithms compiled in.
  47. * Server only.
  48. * WOLFSSL_TICKET_ENC_AES128_GCM
  49. * Use AES128-GCM to encrypt/decrypt session tickets in default callback.
  50. * Server only. Default algorithm if ChaCha20/Poly1305 not compiled in.
  51. * WOLFSSL_TICKET_ENC_AES256_GCM
  52. * Use AES256-GCM to encrypt/decrypt session tickets in default callback.
  53. * Server only.
  54. * WOLFSSL_TICKET_DECRYPT_NO_CREATE
  55. * Default callback will not request creation of new ticket on successful
  56. * decryption.
  57. * Server only.
  58. * WOLFSSL_TLS13_NO_PEEK_HANDSHAKE_DONE
  59. * Once a normal TLS 1.3 handshake is complete, a session ticket message
  60. * may be received by a client. To support detecting this, peek will
  61. * return WOLFSSL_ERROR_WANT_READ.
  62. * This define turns off this behaviour.
  63. */
  64. #ifdef EXTERNAL_OPTS_OPENVPN
  65. #error EXTERNAL_OPTS_OPENVPN should not be defined\
  66. when building wolfSSL
  67. #endif
  68. #ifndef WOLFCRYPT_ONLY
  69. #include <wolfssl/internal.h>
  70. #include <wolfssl/error-ssl.h>
  71. #include <wolfssl/wolfcrypt/asn.h>
  72. #include <wolfssl/wolfcrypt/dh.h>
  73. #ifdef NO_INLINE
  74. #include <wolfssl/wolfcrypt/misc.h>
  75. #else
  76. #define WOLFSSL_MISC_INCLUDED
  77. #include <wolfcrypt/src/misc.c>
  78. #endif
  79. #if defined(OPENSSL_EXTRA) && defined(WOLFCRYPT_HAVE_SRP) && !defined(NO_SHA)
  80. #include <wolfssl/wolfcrypt/srp.h>
  81. #endif
  82. #if defined(OPENSSL_EXTRA) && defined(HAVE_SECRET_CALLBACK)
  83. #include <wolfssl/wolfcrypt/coding.h>
  84. #endif
  85. #ifdef HAVE_LIBZ
  86. #include "zlib.h"
  87. #endif
  88. #ifdef WOLFSSL_QNX_CAAM
  89. /* included to get CAAM devId value */
  90. #include <wolfssl/wolfcrypt/port/caam/wolfcaam.h>
  91. #endif
  92. #if defined(DEBUG_WOLFSSL) || defined(SHOW_SECRETS) || \
  93. defined(CHACHA_AEAD_TEST) || defined(WOLFSSL_SESSION_EXPORT_DEBUG)
  94. #ifndef NO_STDIO_FILESYSTEM
  95. #ifdef FUSION_RTOS
  96. #include <fclstdio.h>
  97. #else
  98. #include <stdio.h>
  99. #endif
  100. #endif
  101. #endif
  102. #ifdef __sun
  103. #include <sys/filio.h>
  104. #endif
  105. #define ERROR_OUT(err, eLabel) { ret = (err); goto eLabel; }
  106. #ifdef _MSC_VER
  107. /* disable for while(0) cases at the .c level for now */
  108. #pragma warning(disable:4127)
  109. #endif
  110. #if defined(WOLFSSL_CALLBACKS) && !defined(LARGE_STATIC_BUFFERS)
  111. #error \
  112. WOLFSSL_CALLBACKS needs LARGE_STATIC_BUFFERS, please add LARGE_STATIC_BUFFERS
  113. #endif
  114. #if defined(HAVE_SECURE_RENEGOTIATION) && defined(HAVE_RENEGOTIATION_INDICATION)
  115. #error Cannot use both secure-renegotiation and renegotiation-indication
  116. #endif
  117. #ifndef WOLFSSL_NO_TLS12
  118. #ifndef NO_WOLFSSL_CLIENT
  119. static int DoHelloVerifyRequest(WOLFSSL* ssl, const byte* input, word32*,
  120. word32);
  121. static int DoServerKeyExchange(WOLFSSL* ssl, const byte* input, word32*,
  122. word32);
  123. #ifndef NO_CERTS
  124. static int DoCertificateRequest(WOLFSSL* ssl, const byte* input, word32*,
  125. word32);
  126. #endif
  127. #ifdef HAVE_SESSION_TICKET
  128. static int DoSessionTicket(WOLFSSL* ssl, const byte* input, word32*,
  129. word32);
  130. #endif
  131. #endif
  132. #ifndef NO_WOLFSSL_SERVER
  133. static int DoClientKeyExchange(WOLFSSL* ssl, byte* input, word32*, word32);
  134. #if (!defined(NO_RSA) || defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  135. defined(HAVE_ED448)) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  136. static int DoCertificateVerify(WOLFSSL* ssl, byte*, word32*, word32);
  137. #endif
  138. #ifdef WOLFSSL_DTLS
  139. static int SendHelloVerifyRequest(WOLFSSL*, const byte*, byte);
  140. #endif /* WOLFSSL_DTLS */
  141. #endif /* !NO_WOLFSSL_SERVER */
  142. #endif /* !WOLFSSL_NO_TLS12 */
  143. #ifndef NO_WOLFSSL_SERVER
  144. #if defined(HAVE_SESSION_TICKET) && !defined(WOLFSSL_NO_DEF_TICKET_ENC_CB)
  145. static int TicketEncCbCtx_Init(WOLFSSL_CTX* ctx,
  146. TicketEncCbCtx* keyCtx);
  147. static void TicketEncCbCtx_Free(TicketEncCbCtx* keyCtx);
  148. static int DefTicketEncCb(WOLFSSL* ssl,
  149. byte key_name[WOLFSSL_TICKET_NAME_SZ],
  150. byte iv[WOLFSSL_TICKET_IV_SZ],
  151. byte mac[WOLFSSL_TICKET_MAC_SZ],
  152. int enc, byte* ticket, int inLen, int* outLen,
  153. void* userCtx);
  154. #endif
  155. #endif
  156. static int cipherExtraData(WOLFSSL* ssl);
  157. #ifdef WOLFSSL_DTLS
  158. static WC_INLINE int DtlsCheckWindow(WOLFSSL* ssl);
  159. static WC_INLINE int DtlsUpdateWindow(WOLFSSL* ssl);
  160. #endif
  161. enum processReply {
  162. doProcessInit = 0,
  163. #ifndef NO_WOLFSSL_SERVER
  164. runProcessOldClientHello,
  165. #endif
  166. getRecordLayerHeader,
  167. getData,
  168. verifyEncryptedMessage,
  169. decryptMessage,
  170. verifyMessage,
  171. runProcessingOneMessage
  172. };
  173. #ifndef WOLFSSL_NO_TLS12
  174. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_WOLFSSL_CLIENT)
  175. /* Server random bytes for TLS v1.3 described downgrade protection mechanism. */
  176. static const byte tls13Downgrade[7] = {
  177. 0x44, 0x4f, 0x57, 0x4e, 0x47, 0x52, 0x44
  178. };
  179. #define TLS13_DOWNGRADE_SZ sizeof(tls13Downgrade)
  180. #endif /* !NO_WOLFSSL_SERVER || !NO_WOLFSSL_CLIENT */
  181. #if !defined(NO_OLD_TLS) && !defined(WOLFSSL_AEAD_ONLY)
  182. static int SSL_hmac(WOLFSSL* ssl, byte* digest, const byte* in, word32 sz,
  183. int padSz, int content, int verify, int epochOrder);
  184. #endif
  185. #endif /* !WOLFSSL_NO_TLS12 */
  186. #ifdef WOLFSSL_RENESAS_TSIP_TLS
  187. int tsip_useable(const WOLFSSL *ssl);
  188. int tsip_generatePremasterSecret();
  189. int tsip_generateEncryptPreMasterSecret(WOLFSSL *ssl, byte *out, word32 *outSz);
  190. #endif
  191. #if defined(OPENSSL_EXTRA) && defined(HAVE_SECRET_CALLBACK)
  192. static int SessionSecret_callback(WOLFSSL* ssl, void* secret,
  193. int* secretSz, void* ctx);
  194. #ifdef WOLFSSL_TLS13
  195. static int SessionSecret_callback_Tls13(WOLFSSL* ssl, int id,
  196. const unsigned char* secret, int secretSz, void* ctx);
  197. #endif
  198. /*
  199. * This function builds up string for key-logging then call user's
  200. * key-log-callback to pass the string for TLS1.2 and older.
  201. * The user's key-logging callback has been set via
  202. * wolfSSL_CTX_set_keylog_callback function. The logging string format is:
  203. * "CLIENT_RANDOM <hex-encoded client random> <hex-encoded master-secret>"
  204. * parameter
  205. * - ssl: WOLFSSL object
  206. * - secret: pointer to the buffer holding master-secret
  207. * - secretSz: size of secret
  208. * - ctx: not used
  209. * returns 0 on success, negative value on failure.
  210. */
  211. static int SessionSecret_callback(WOLFSSL* ssl, void* secret,
  212. int* secretSz, void* ctx)
  213. {
  214. wolfSSL_CTX_keylog_cb_func logCb = NULL;
  215. int msSz;
  216. int hasVal;
  217. int i;
  218. const char* label = "CLIENT_RANDOM";
  219. int labelSz = sizeof("CLIENT_RANDOM");
  220. int buffSz;
  221. byte* log = NULL;
  222. word32 outSz;
  223. int idx;
  224. int ret;
  225. (void)ctx;
  226. if (ssl == NULL || secret == NULL || *secretSz == 0)
  227. return BAD_FUNC_ARG;
  228. if (ssl->arrays == NULL)
  229. return BAD_FUNC_ARG;
  230. /* get the user-callback func from CTX*/
  231. logCb = ssl->ctx->keyLogCb;
  232. if (logCb == NULL)
  233. return 0;
  234. /* need to make sure the given master-secret has a meaningful value */
  235. msSz = *secretSz;
  236. hasVal = 0;
  237. for (i = 0; i < msSz; i++) {
  238. if (*((byte*)secret) != 0) {
  239. hasVal = 1;
  240. break;
  241. }
  242. }
  243. if (hasVal == 0)
  244. return 0; /* master-secret looks invalid */
  245. /* build up a hex-decoded keylog string
  246. "CLIENT_RANDOM <hex-encoded client random> <hex-encoded master-secret>"
  247. note that each keylog string does not have LF.
  248. */
  249. buffSz = labelSz + (RAN_LEN * 2) + 1 + ((*secretSz) * 2) + 1;
  250. log = XMALLOC(buffSz, ssl->heap, DYNAMIC_TYPE_SECRET);
  251. if (log == NULL)
  252. return MEMORY_E;
  253. XMEMSET(log, 0, buffSz);
  254. XMEMCPY(log, label, labelSz -1); /* put label w/o terminator */
  255. XMEMSET(log + labelSz - 1, ' ', 1); /* '\0' -> ' ' */
  256. idx = labelSz;
  257. outSz = buffSz - idx;
  258. if ((ret = Base16_Encode(ssl->arrays->clientRandom, RAN_LEN,
  259. log + idx, &outSz)) == 0) {
  260. idx += (outSz - 1); /* reduce terminator byte */
  261. outSz = buffSz - idx;
  262. if (outSz > 1) {
  263. XMEMSET(log + idx, ' ', 1); /* add space*/
  264. idx++;
  265. outSz = buffSz - idx;
  266. if ((ret = Base16_Encode((byte*)secret, *secretSz,
  267. log + idx, &outSz)) == 0) {
  268. /* pass the log to the client callback*/
  269. logCb(ssl, (char*)log);
  270. ret = 0;
  271. }
  272. }
  273. else
  274. ret = MEMORY_E;
  275. }
  276. XFREE(log, ssl->heap, DYNAMIC_TYPE_SECRET);
  277. return ret;
  278. }
  279. #if defined(WOLFSSL_TLS13)
  280. /*
  281. * This function builds up string for key-logging then call user's
  282. * key-log-callback to pass the string for TLS1.3.
  283. * The user's key-logging callback has been set via
  284. * wolfSSL_CTX_set_keylog_callback function. The logging string format is:
  285. * "<Lable> <hex-encoded client random> <hex-encoded secret>"
  286. *
  287. * parameter
  288. * - ssl: WOLFSSL object
  289. * - id: type of secret for logging
  290. * - secret: pointer to the buffer holding secret
  291. * - secretSz: size of secret
  292. * - ctx: not used
  293. * returns 0 on success, negative value on failure.
  294. */
  295. static int SessionSecret_callback_Tls13(WOLFSSL* ssl, int id,
  296. const unsigned char* secret, int secretSz, void* ctx)
  297. {
  298. wolfSSL_CTX_keylog_cb_func logCb = NULL;
  299. char label[50];
  300. int labelSz = 0;
  301. int buffSz = 0;
  302. byte* log = NULL;
  303. word32 outSz;
  304. int idx;
  305. int ret;
  306. (void)ctx;
  307. if (ssl == NULL || secret == NULL || secretSz == 0)
  308. return BAD_FUNC_ARG;
  309. if (ssl->arrays == NULL)
  310. return BAD_FUNC_ARG;
  311. /* get the user-callback func from CTX*/
  312. logCb = ssl->ctx->keyLogCb;
  313. if (logCb == NULL)
  314. return 0;
  315. switch (id) {
  316. case CLIENT_EARLY_TRAFFIC_SECRET:
  317. labelSz = sizeof("CLIENT_EARLY_TRAFFIC_SECRET");
  318. XSTRNCPY(label,"CLIENT_EARLY_TRAFFIC_SECRET", labelSz);
  319. break;
  320. case CLIENT_HANDSHAKE_TRAFFIC_SECRET:
  321. labelSz = sizeof("CLIENT_HANDSHAKE_TRAFFIC_SECRET");
  322. XSTRNCPY(label, "CLIENT_HANDSHAKE_TRAFFIC_SECRET", labelSz);
  323. break;
  324. case SERVER_HANDSHAKE_TRAFFIC_SECRET:
  325. labelSz = sizeof("SERVER_HANDSHAKE_TRAFFIC_SECRET");
  326. XSTRNCPY(label, "SERVER_HANDSHAKE_TRAFFIC_SECRET", labelSz);
  327. break;
  328. case CLIENT_TRAFFIC_SECRET:
  329. labelSz = sizeof("CLIENT_TRAFFIC_SECRET_0");
  330. XSTRNCPY(label, "CLIENT_TRAFFIC_SECRET_0", labelSz);
  331. break;
  332. case SERVER_TRAFFIC_SECRET:
  333. labelSz = sizeof("SERVER_TRAFFIC_SECRET_0");
  334. XSTRNCPY(label, "SERVER_TRAFFIC_SECRET_0", labelSz);
  335. break;
  336. case EARLY_EXPORTER_SECRET:
  337. labelSz = sizeof("EARLY_EXPORTER_SECRET");
  338. XSTRNCPY(label, "EARLY_EXPORTER_SECRET", labelSz);
  339. break;
  340. case EXPORTER_SECRET:
  341. labelSz = sizeof("EXPORTER_SECRET");
  342. XSTRNCPY(label, "EXPORTER_SECRET", labelSz);
  343. break;
  344. default:
  345. return BAD_FUNC_ARG;
  346. }
  347. /* prepare a log string for passing user callback */
  348. buffSz = labelSz + (RAN_LEN * 2) + 1 + secretSz * 2 + 1;
  349. log = XMALLOC(buffSz, ssl->heap, DYNAMIC_TYPE_SECRET);
  350. if (log == NULL)
  351. return MEMORY_E;
  352. XMEMSET(log, 0, buffSz);
  353. XMEMCPY(log, label, labelSz - 1); /* put label w/o terminator */
  354. XMEMSET(log + labelSz - 1, ' ', 1); /* '\0' -> ' ' */
  355. idx = labelSz;
  356. outSz = buffSz - idx;
  357. if ((ret = Base16_Encode(ssl->arrays->clientRandom, RAN_LEN,
  358. log + idx, &outSz)) == 0) {
  359. idx += (outSz -1); /* reduce terminator byte */
  360. outSz = buffSz - idx;
  361. if (outSz >1) {
  362. XMEMSET(log + idx, ' ', 1); /* add space*/
  363. idx++;
  364. outSz = buffSz - idx;
  365. if ((ret = Base16_Encode((byte*)secret, secretSz,
  366. log + idx, &outSz)) == 0) {
  367. logCb(ssl, (char*)log);
  368. ret = 0;
  369. }
  370. }
  371. else
  372. ret = MEMORY_E;
  373. }
  374. XFREE(log, ssl->heap, DYNAMIC_TYPE_SECRET);
  375. return ret;
  376. }
  377. #endif /* WOLFSSL_TLS13*/
  378. #endif /* OPENSSL_EXTRA && HAVE_SECRET_CALLBACK*/
  379. int IsTLS(const WOLFSSL* ssl)
  380. {
  381. if (ssl->version.major == SSLv3_MAJOR && ssl->version.minor >=TLSv1_MINOR)
  382. return 1;
  383. return 0;
  384. }
  385. int IsAtLeastTLSv1_2(const WOLFSSL* ssl)
  386. {
  387. if (ssl->version.major == SSLv3_MAJOR && ssl->version.minor >=TLSv1_2_MINOR)
  388. return 1;
  389. #ifdef WOLFSSL_DTLS
  390. if (ssl->version.major == DTLS_MAJOR && ssl->version.minor <= DTLSv1_2_MINOR)
  391. return 1;
  392. #endif
  393. return 0;
  394. }
  395. int IsAtLeastTLSv1_3(const ProtocolVersion pv)
  396. {
  397. return (pv.major == SSLv3_MAJOR && pv.minor >= TLSv1_3_MINOR);
  398. }
  399. static WC_INLINE int IsEncryptionOn(WOLFSSL* ssl, int isSend)
  400. {
  401. #ifdef WOLFSSL_DTLS
  402. /* For DTLS, epoch 0 is always not encrypted. */
  403. if (ssl->options.dtls && !isSend && ssl->keys.curEpoch == 0)
  404. return 0;
  405. #endif /* WOLFSSL_DTLS */
  406. return ssl->keys.encryptionOn &&
  407. (isSend ? ssl->encrypt.setup : ssl->decrypt.setup);
  408. }
  409. #if defined(WOLFSSL_DTLS) || !defined(WOLFSSL_NO_TLS12)
  410. /* If SCTP is not enabled returns the state of the dtls option.
  411. * If SCTP is enabled returns dtls && !sctp. */
  412. static WC_INLINE int IsDtlsNotSctpMode(WOLFSSL* ssl)
  413. {
  414. #ifdef WOLFSSL_SCTP
  415. return ssl->options.dtls && !ssl->options.dtlsSctp;
  416. #else
  417. return ssl->options.dtls;
  418. #endif
  419. }
  420. #endif /* DTLS || !WOLFSSL_NO_TLS12 */
  421. #ifdef HAVE_LIBZ
  422. /* alloc user allocs to work with zlib */
  423. static void* myAlloc(void* opaque, unsigned int item, unsigned int size)
  424. {
  425. (void)opaque;
  426. return (void *)XMALLOC(item * size, opaque, DYNAMIC_TYPE_LIBZ);
  427. }
  428. static void myFree(void* opaque, void* memory)
  429. {
  430. (void)opaque;
  431. XFREE(memory, opaque, DYNAMIC_TYPE_LIBZ);
  432. }
  433. /* init zlib comp/decomp streams, 0 on success */
  434. static int InitStreams(WOLFSSL* ssl)
  435. {
  436. ssl->c_stream.zalloc = (alloc_func)myAlloc;
  437. ssl->c_stream.zfree = (free_func)myFree;
  438. ssl->c_stream.opaque = (voidpf)ssl->heap;
  439. if (deflateInit(&ssl->c_stream, Z_DEFAULT_COMPRESSION) != Z_OK)
  440. return ZLIB_INIT_ERROR;
  441. ssl->didStreamInit = 1;
  442. ssl->d_stream.zalloc = (alloc_func)myAlloc;
  443. ssl->d_stream.zfree = (free_func)myFree;
  444. ssl->d_stream.opaque = (voidpf)ssl->heap;
  445. if (inflateInit(&ssl->d_stream) != Z_OK) return ZLIB_INIT_ERROR;
  446. return 0;
  447. }
  448. static void FreeStreams(WOLFSSL* ssl)
  449. {
  450. if (ssl->didStreamInit) {
  451. deflateEnd(&ssl->c_stream);
  452. inflateEnd(&ssl->d_stream);
  453. }
  454. }
  455. /* compress in to out, return out size or error */
  456. static int myCompress(WOLFSSL* ssl, byte* in, int inSz, byte* out, int outSz)
  457. {
  458. int err;
  459. int currTotal = (int)ssl->c_stream.total_out;
  460. ssl->c_stream.next_in = in;
  461. ssl->c_stream.avail_in = inSz;
  462. ssl->c_stream.next_out = out;
  463. ssl->c_stream.avail_out = outSz;
  464. err = deflate(&ssl->c_stream, Z_SYNC_FLUSH);
  465. if (err != Z_OK && err != Z_STREAM_END) return ZLIB_COMPRESS_ERROR;
  466. return (int)ssl->c_stream.total_out - currTotal;
  467. }
  468. /* decompress in to out, return out size or error */
  469. static int myDeCompress(WOLFSSL* ssl, byte* in,int inSz, byte* out,int outSz)
  470. {
  471. int err;
  472. int currTotal = (int)ssl->d_stream.total_out;
  473. ssl->d_stream.next_in = in;
  474. ssl->d_stream.avail_in = inSz;
  475. ssl->d_stream.next_out = out;
  476. ssl->d_stream.avail_out = outSz;
  477. err = inflate(&ssl->d_stream, Z_SYNC_FLUSH);
  478. if (err != Z_OK && err != Z_STREAM_END) return ZLIB_DECOMPRESS_ERROR;
  479. return (int)ssl->d_stream.total_out - currTotal;
  480. }
  481. #endif /* HAVE_LIBZ */
  482. #ifdef WOLFSSL_SESSION_EXPORT
  483. /**
  484. * serializes the cipher specs struct for exporting
  485. * @return the amount written to 'exp' buffer
  486. */
  487. static int ExportCipherSpecState(WOLFSSL* ssl, byte* exp, word32 len, byte ver,
  488. int type)
  489. {
  490. word32 idx = 0;
  491. CipherSpecs* specs;
  492. WOLFSSL_ENTER("ExportCipherSpecState");
  493. if (exp == NULL || ssl == NULL) {
  494. return BAD_FUNC_ARG;
  495. }
  496. specs = &ssl->specs;
  497. if (WOLFSSL_EXPORT_SPC_SZ > len) {
  498. return BUFFER_E;
  499. }
  500. XMEMSET(exp, 0, WOLFSSL_EXPORT_SPC_SZ);
  501. c16toa(specs->key_size, exp + idx); idx += OPAQUE16_LEN;
  502. c16toa(specs->iv_size, exp + idx); idx += OPAQUE16_LEN;
  503. c16toa(specs->block_size, exp + idx); idx += OPAQUE16_LEN;
  504. c16toa(specs->aead_mac_size, exp + idx); idx += OPAQUE16_LEN;
  505. exp[idx++] = specs->bulk_cipher_algorithm;
  506. exp[idx++] = specs->cipher_type;
  507. exp[idx++] = specs->mac_algorithm;
  508. exp[idx++] = specs->kea;
  509. exp[idx++] = specs->sig_algo;
  510. exp[idx++] = specs->hash_size;
  511. exp[idx++] = specs->pad_size;
  512. exp[idx++] = specs->static_ecdh;
  513. if (idx != WOLFSSL_EXPORT_SPC_SZ) {
  514. WOLFSSL_MSG("WOLFSSL_EXPORT_SPC_SZ needs updated and export version");
  515. return DTLS_EXPORT_VER_E;
  516. }
  517. /* send over state of AES too */
  518. if (type == WOLFSSL_EXPORT_TLS &&
  519. ssl->specs.bulk_cipher_algorithm == wolfssl_aes) {
  520. byte *pt = (byte*)ssl->encrypt.aes->reg;
  521. if ((idx + 2*AES_BLOCK_SIZE) > len) {
  522. WOLFSSL_MSG("Can not fit AES state into buffer\n");
  523. return BUFFER_E;
  524. }
  525. XMEMCPY(exp + idx, pt, AES_BLOCK_SIZE);
  526. idx += AES_BLOCK_SIZE;
  527. pt = (byte*)ssl->decrypt.aes->reg;
  528. XMEMCPY(exp + idx, pt, AES_BLOCK_SIZE);
  529. idx += AES_BLOCK_SIZE;
  530. }
  531. WOLFSSL_LEAVE("ExportCipherSpecState", idx);
  532. (void)ver;
  533. return idx;
  534. }
  535. /* serializes the key struct for exporting */
  536. static int ExportKeyState(WOLFSSL* ssl, byte* exp, word32 len, byte ver,
  537. byte small, int type)
  538. {
  539. word32 idx = 0;
  540. byte sz;
  541. Keys* keys;
  542. WOLFSSL_ENTER("ExportKeyState");
  543. if (exp == NULL || ssl == NULL) {
  544. return BAD_FUNC_ARG;
  545. }
  546. keys = &(ssl->keys);
  547. if (DTLS_EXPORT_MIN_KEY_SZ > len) {
  548. WOLFSSL_MSG("Buffer not large enough for minimum key struct size");
  549. return BUFFER_E;
  550. }
  551. XMEMSET(exp, 0, DTLS_EXPORT_MIN_KEY_SZ);
  552. c32toa(keys->peer_sequence_number_hi, exp + idx); idx += OPAQUE32_LEN;
  553. c32toa(keys->peer_sequence_number_lo, exp + idx); idx += OPAQUE32_LEN;
  554. c32toa(keys->sequence_number_hi, exp + idx); idx += OPAQUE32_LEN;
  555. c32toa(keys->sequence_number_lo, exp + idx); idx += OPAQUE32_LEN;
  556. #if defined(WOLFSSL_DTLS)
  557. if (type == WOLFSSL_EXPORT_DTLS) {
  558. c16toa(keys->peerSeq[0].nextEpoch, exp + idx); idx += OPAQUE16_LEN;
  559. c16toa(keys->peerSeq[0].nextSeq_hi, exp + idx); idx += OPAQUE16_LEN;
  560. c32toa(keys->peerSeq[0].nextSeq_lo, exp + idx); idx += OPAQUE32_LEN;
  561. c16toa(keys->curEpoch, exp + idx); idx += OPAQUE16_LEN;
  562. c16toa(keys->curSeq_hi, exp + idx); idx += OPAQUE16_LEN;
  563. c32toa(keys->curSeq_lo, exp + idx); idx += OPAQUE32_LEN;
  564. c16toa(keys->peerSeq[0].prevSeq_hi, exp + idx); idx += OPAQUE16_LEN;
  565. c32toa(keys->peerSeq[0].prevSeq_lo, exp + idx); idx += OPAQUE32_LEN;
  566. c16toa(keys->dtls_peer_handshake_number, exp + idx);
  567. idx += OPAQUE16_LEN;
  568. c16toa(keys->dtls_expected_peer_handshake_number, exp + idx);
  569. idx += OPAQUE16_LEN;
  570. c16toa(keys->dtls_sequence_number_hi, exp + idx); idx += OPAQUE16_LEN;
  571. c32toa(keys->dtls_sequence_number_lo, exp + idx); idx += OPAQUE32_LEN;
  572. c16toa(keys->dtls_prev_sequence_number_hi, exp + idx);
  573. idx += OPAQUE16_LEN;
  574. c32toa(keys->dtls_prev_sequence_number_lo, exp + idx);
  575. idx += OPAQUE32_LEN;
  576. c16toa(keys->dtls_epoch, exp + idx); idx += OPAQUE16_LEN;
  577. c16toa(keys->dtls_handshake_number, exp + idx); idx += OPAQUE16_LEN;
  578. }
  579. #endif
  580. c32toa(keys->encryptSz, exp + idx); idx += OPAQUE32_LEN;
  581. c32toa(keys->padSz, exp + idx); idx += OPAQUE32_LEN;
  582. exp[idx++] = keys->encryptionOn;
  583. exp[idx++] = keys->decryptedCur;
  584. /* from here on the buffer needs checked because is variable length that
  585. * can be larger than DTLS_EXPORT_MIN_KEY_SZ */
  586. #ifdef WOLFSSL_DTLS
  587. if (type == WOLFSSL_EXPORT_DTLS) {
  588. word32 i;
  589. if ((OPAQUE16_LEN * 2) + idx +
  590. (2 * (WOLFSSL_DTLS_WINDOW_WORDS * OPAQUE32_LEN)) > len) {
  591. WOLFSSL_MSG("Buffer not large enough for WOLFSSL_DTLS_WINDOW_WORDS");
  592. return BUFFER_E;
  593. }
  594. c16toa(WOLFSSL_DTLS_WINDOW_WORDS, exp + idx); idx += OPAQUE16_LEN;
  595. for (i = 0; i < WOLFSSL_DTLS_WINDOW_WORDS; i++) {
  596. c32toa(keys->peerSeq[0].window[i], exp + idx);
  597. idx += OPAQUE32_LEN;
  598. }
  599. c16toa(WOLFSSL_DTLS_WINDOW_WORDS, exp + idx); idx += OPAQUE16_LEN;
  600. for (i = 0; i < WOLFSSL_DTLS_WINDOW_WORDS; i++) {
  601. c32toa(keys->peerSeq[0].prevWindow[i], exp + idx);
  602. idx += OPAQUE32_LEN;
  603. }
  604. }
  605. #endif
  606. if (idx >= len) {
  607. WOLFSSL_MSG("Buffer not large enough for truncated hmac flag");
  608. return BUFFER_E;
  609. }
  610. #ifdef HAVE_TRUNCATED_HMAC
  611. sz = ssl->truncated_hmac ? TRUNCATED_HMAC_SZ: ssl->specs.hash_size;
  612. exp[idx++] = ssl->truncated_hmac;
  613. #else
  614. sz = ssl->specs.hash_size;
  615. exp[idx++] = 0; /* no truncated hmac */
  616. #endif
  617. sz = (small)? 0: sz;
  618. if (idx + (sz * 2) + OPAQUE8_LEN > len) {
  619. WOLFSSL_MSG("Buffer not large enough for MAC secret");
  620. return BUFFER_E;
  621. }
  622. exp[idx++] = sz;
  623. if (sz > 0) {
  624. #ifndef WOLFSSL_AEAD_ONLY
  625. XMEMCPY(exp + idx, keys->client_write_MAC_secret, sz); idx += sz;
  626. XMEMCPY(exp + idx, keys->server_write_MAC_secret, sz); idx += sz;
  627. #else
  628. XMEMSET(exp + idx, 0, sz); idx += sz;
  629. XMEMSET(exp + idx, 0, sz); idx += sz;
  630. #endif
  631. }
  632. sz = (small)? 0: ssl->specs.key_size;
  633. if (idx + (sz * 2) + OPAQUE8_LEN > len) {
  634. WOLFSSL_MSG("Buffer not large enough for write key");
  635. return BUFFER_E;
  636. }
  637. exp[idx++] = sz;
  638. if (sz > 0) {
  639. XMEMCPY(exp + idx, keys->client_write_key, sz); idx += sz;
  640. XMEMCPY(exp + idx, keys->server_write_key, sz); idx += sz;
  641. }
  642. sz = (small)? 0: ssl->specs.iv_size;
  643. if (idx + (sz * 2) + OPAQUE8_LEN + AEAD_MAX_EXP_SZ > len) {
  644. WOLFSSL_MSG("Buffer not large enough for IVs");
  645. return BUFFER_E;
  646. }
  647. exp[idx++] = sz;
  648. if (sz > 0) {
  649. XMEMCPY(exp + idx, keys->client_write_IV, sz); idx += sz;
  650. XMEMCPY(exp + idx, keys->server_write_IV, sz); idx += sz;
  651. }
  652. XMEMCPY(exp + idx, keys->aead_exp_IV, AEAD_MAX_EXP_SZ);
  653. idx += AEAD_MAX_EXP_SZ;
  654. sz = (small)? 0: AEAD_MAX_IMP_SZ;
  655. if (idx + (sz * 2) + OPAQUE8_LEN > len) {
  656. WOLFSSL_MSG("Buffer not large enough for imp IVs");
  657. return BUFFER_E;
  658. }
  659. exp[idx++] = sz;
  660. if (sz > 0) {
  661. XMEMCPY(exp + idx, keys->aead_enc_imp_IV, sz); idx += sz;
  662. XMEMCPY(exp + idx, keys->aead_dec_imp_IV, sz); idx += sz;
  663. }
  664. /* DTLS_EXPORT_KEY_SZ is max value. idx size can vary */
  665. if (idx > DTLS_EXPORT_KEY_SZ) {
  666. WOLFSSL_MSG("DTLS_EXPORT_KEY_SZ needs updated and export version");
  667. return DTLS_EXPORT_VER_E;
  668. }
  669. WOLFSSL_LEAVE("ExportKeyState", idx);
  670. (void)ver;
  671. (void)type;
  672. return idx;
  673. }
  674. /**
  675. * Imports the buffer 'exp' into the 'ssl' CipherSpec structure.
  676. * @param ssl WOLFSSL structure to import into
  677. * @param exp input buffer to read from
  678. * @param len length of exp buffer
  679. * @param ver version of import buffer found
  680. * @param type flag for importing a TLS session or DTLS
  681. *
  682. * @return size of exp buffer consumed on success and negative value on fail
  683. */
  684. static int ImportCipherSpecState(WOLFSSL* ssl, const byte* exp, word32 len,
  685. byte ver, int type)
  686. {
  687. word32 idx = 0;
  688. CipherSpecs* specs;
  689. word32 tmp_seq_peer_lo;
  690. word32 tmp_seq_peer_hi;
  691. word32 tmp_seq_lo;
  692. word32 tmp_seq_hi;
  693. WOLFSSL_ENTER("ImportCipherSpecState");
  694. if (exp == NULL || ssl == NULL) {
  695. return BAD_FUNC_ARG;
  696. }
  697. specs= &(ssl->specs);
  698. if (WOLFSSL_EXPORT_SPC_SZ > len) {
  699. WOLFSSL_MSG("Buffer not large enough for max spec struct size");
  700. return BUFFER_E;
  701. }
  702. ato16(exp + idx, &specs->key_size); idx += OPAQUE16_LEN;
  703. ato16(exp + idx, &specs->iv_size); idx += OPAQUE16_LEN;
  704. ato16(exp + idx, &specs->block_size); idx += OPAQUE16_LEN;
  705. ato16(exp + idx, &specs->aead_mac_size); idx += OPAQUE16_LEN;
  706. specs->bulk_cipher_algorithm = exp[idx++];
  707. specs->cipher_type = exp[idx++];
  708. specs->mac_algorithm = exp[idx++];
  709. specs->kea = exp[idx++];
  710. specs->sig_algo = exp[idx++];
  711. specs->hash_size = exp[idx++];
  712. specs->pad_size = exp[idx++];
  713. specs->static_ecdh = exp[idx++];
  714. if (specs->pad_size != PAD_MD5 && specs->pad_size != PAD_SHA) {
  715. WOLFSSL_MSG("Importing bad or unknown pad size");
  716. return BAD_STATE_E;
  717. }
  718. /* temporarily save the sequence numbers */
  719. tmp_seq_peer_lo = ssl->keys.peer_sequence_number_lo;
  720. tmp_seq_peer_hi = ssl->keys.peer_sequence_number_hi;
  721. tmp_seq_lo = ssl->keys.sequence_number_lo;
  722. tmp_seq_hi = ssl->keys.sequence_number_hi;
  723. SetKeysSide(ssl, ENCRYPT_AND_DECRYPT_SIDE);
  724. /* reset sequence numbers after setting keys */
  725. ssl->keys.peer_sequence_number_lo = tmp_seq_peer_lo;
  726. ssl->keys.peer_sequence_number_hi = tmp_seq_peer_hi;
  727. ssl->keys.sequence_number_lo = tmp_seq_lo;
  728. ssl->keys.sequence_number_hi = tmp_seq_hi;
  729. if (type == WOLFSSL_EXPORT_TLS &&
  730. ssl->specs.bulk_cipher_algorithm == wolfssl_aes) {
  731. byte *pt = (byte*)ssl->encrypt.aes->reg;
  732. XMEMCPY(pt, exp + idx, AES_BLOCK_SIZE);
  733. idx += AES_BLOCK_SIZE;
  734. pt = (byte*)ssl->decrypt.aes->reg;
  735. XMEMCPY(pt, exp + idx, AES_BLOCK_SIZE);
  736. idx += AES_BLOCK_SIZE;
  737. }
  738. WOLFSSL_LEAVE("ImportCipherSpecState", idx);
  739. (void)ver;
  740. return idx;
  741. }
  742. /**
  743. * Import the Key structure
  744. *
  745. * @param ssl WOLFSSL structure to import into
  746. * @param exp buffer to read Key values from
  747. * @param len max length of buffer 'exp'
  748. * @param ver version of import buffer found
  749. * @param type flag for TLS vs DTLS
  750. *
  751. * @return amount of data read from exp on success or negative on fail
  752. */
  753. static int ImportKeyState(WOLFSSL* ssl, const byte* exp, word32 len, byte ver,
  754. int type)
  755. {
  756. word32 idx = 0;
  757. byte sz;
  758. Keys *keys;
  759. WOLFSSL_ENTER("ImportKeyState");
  760. if (exp == NULL || ssl == NULL) {
  761. return BAD_FUNC_ARG;
  762. }
  763. keys = &(ssl->keys);
  764. /* check minimum length -- includes byte used for size indicators */
  765. if (len < DTLS_EXPORT_MIN_KEY_SZ) {
  766. WOLFSSL_MSG("Buffer not large enough for minimum expected size");
  767. return BUFFER_E;
  768. }
  769. ato32(exp + idx, &keys->peer_sequence_number_hi); idx += OPAQUE32_LEN;
  770. ato32(exp + idx, &keys->peer_sequence_number_lo); idx += OPAQUE32_LEN;
  771. ato32(exp + idx, &keys->sequence_number_hi); idx += OPAQUE32_LEN;
  772. ato32(exp + idx, &keys->sequence_number_lo); idx += OPAQUE32_LEN;
  773. #if defined(WOLFSSL_DTLS)
  774. if (type == WOLFSSL_EXPORT_DTLS) {
  775. ato16(exp + idx, &keys->peerSeq[0].nextEpoch); idx += OPAQUE16_LEN;
  776. ato16(exp + idx, &keys->peerSeq[0].nextSeq_hi); idx += OPAQUE16_LEN;
  777. ato32(exp + idx, &keys->peerSeq[0].nextSeq_lo); idx += OPAQUE32_LEN;
  778. ato16(exp + idx, &keys->curEpoch); idx += OPAQUE16_LEN;
  779. ato16(exp + idx, &keys->curSeq_hi); idx += OPAQUE16_LEN;
  780. ato32(exp + idx, &keys->curSeq_lo); idx += OPAQUE32_LEN;
  781. ato16(exp + idx, &keys->peerSeq[0].prevSeq_hi); idx += OPAQUE16_LEN;
  782. ato32(exp + idx, &keys->peerSeq[0].prevSeq_lo); idx += OPAQUE32_LEN;
  783. ato16(exp + idx, &keys->dtls_peer_handshake_number);
  784. idx += OPAQUE16_LEN;
  785. ato16(exp + idx, &keys->dtls_expected_peer_handshake_number);
  786. idx += OPAQUE16_LEN;
  787. ato16(exp + idx, &keys->dtls_sequence_number_hi); idx += OPAQUE16_LEN;
  788. ato32(exp + idx, &keys->dtls_sequence_number_lo); idx += OPAQUE32_LEN;
  789. ato16(exp + idx, &keys->dtls_prev_sequence_number_hi);
  790. idx += OPAQUE16_LEN;
  791. ato32(exp + idx, &keys->dtls_prev_sequence_number_lo);
  792. idx += OPAQUE32_LEN;
  793. ato16(exp + idx, &keys->dtls_epoch); idx += OPAQUE16_LEN;
  794. ato16(exp + idx, &keys->dtls_handshake_number); idx += OPAQUE16_LEN;
  795. }
  796. #endif
  797. ato32(exp + idx, &keys->encryptSz); idx += OPAQUE32_LEN;
  798. ato32(exp + idx, &keys->padSz); idx += OPAQUE32_LEN;
  799. keys->encryptionOn = exp[idx++];
  800. keys->decryptedCur = exp[idx++];
  801. #if defined(WOLFSSL_DTLS)
  802. if (type == WOLFSSL_EXPORT_DTLS) {
  803. word16 i, wordCount, wordAdj = 0;
  804. /* do window */
  805. ato16(exp + idx, &wordCount);
  806. idx += OPAQUE16_LEN;
  807. if (wordCount > WOLFSSL_DTLS_WINDOW_WORDS) {
  808. wordCount = WOLFSSL_DTLS_WINDOW_WORDS;
  809. wordAdj = (WOLFSSL_DTLS_WINDOW_WORDS - wordCount) * sizeof(word32);
  810. }
  811. XMEMSET(keys->peerSeq[0].window, 0xFF, DTLS_SEQ_SZ);
  812. for (i = 0; i < wordCount; i++) {
  813. ato32(exp + idx, &keys->peerSeq[0].window[i]);
  814. idx += OPAQUE32_LEN;
  815. }
  816. idx += wordAdj;
  817. /* do prevWindow */
  818. ato16(exp + idx, &wordCount);
  819. idx += OPAQUE16_LEN;
  820. if (wordCount > WOLFSSL_DTLS_WINDOW_WORDS) {
  821. wordCount = WOLFSSL_DTLS_WINDOW_WORDS;
  822. wordAdj = (WOLFSSL_DTLS_WINDOW_WORDS - wordCount) * sizeof(word32);
  823. }
  824. XMEMSET(keys->peerSeq[0].prevWindow, 0xFF, DTLS_SEQ_SZ);
  825. for (i = 0; i < wordCount; i++) {
  826. ato32(exp + idx, &keys->peerSeq[0].prevWindow[i]);
  827. idx += OPAQUE32_LEN;
  828. }
  829. idx += wordAdj;
  830. }
  831. #endif
  832. #ifdef HAVE_TRUNCATED_HMAC
  833. ssl->truncated_hmac = exp[idx++];
  834. #else
  835. idx++; /* no truncated hmac */
  836. #endif
  837. sz = exp[idx++];
  838. #ifndef WOLFSSL_AEAD_ONLY
  839. if (sz > sizeof(keys->client_write_MAC_secret) || (sz * 2) + idx > len) {
  840. WOLFSSL_MSG("Buffer not large enough for MAC import");
  841. return BUFFER_E;
  842. }
  843. if (sz > 0) {
  844. XMEMCPY(keys->client_write_MAC_secret, exp + idx, sz); idx += sz;
  845. XMEMCPY(keys->server_write_MAC_secret, exp + idx, sz); idx += sz;
  846. }
  847. #else
  848. if (sz + idx > len) {
  849. return BUFFER_E;
  850. }
  851. idx += sz; idx += sz;
  852. #endif
  853. sz = exp[idx++];
  854. if (sz > sizeof(keys->client_write_key) || (sz * 2) + idx > len) {
  855. WOLFSSL_MSG("Buffer not large enough for key import");
  856. return BUFFER_E;
  857. }
  858. if (sz > 0) {
  859. XMEMCPY(keys->client_write_key, exp + idx, sz); idx += sz;
  860. XMEMCPY(keys->server_write_key, exp + idx, sz); idx += sz;
  861. }
  862. sz = exp[idx++];
  863. if (sz > sizeof(keys->client_write_IV) || (sz * 2) + idx > len) {
  864. WOLFSSL_MSG("Buffer not large enough for write IV import");
  865. return BUFFER_E;
  866. }
  867. if (sz > 0) {
  868. XMEMCPY(keys->client_write_IV, exp + idx, sz); idx += sz;
  869. XMEMCPY(keys->server_write_IV, exp + idx, sz); idx += sz;
  870. }
  871. XMEMCPY(keys->aead_exp_IV, exp + idx, AEAD_MAX_EXP_SZ);
  872. idx += AEAD_MAX_EXP_SZ;
  873. sz = exp[idx++];
  874. if (sz > sizeof(keys->aead_enc_imp_IV) || (sz * 2) + idx > len) {
  875. WOLFSSL_MSG("Buffer not large enough for imp IV import");
  876. return BUFFER_E;
  877. }
  878. if (sz > 0) {
  879. XMEMCPY(keys->aead_enc_imp_IV, exp + idx, sz); idx += sz;
  880. XMEMCPY(keys->aead_dec_imp_IV, exp + idx, sz); idx += sz;
  881. }
  882. WOLFSSL_LEAVE("ImportKeyState", idx);
  883. (void)ver;
  884. (void)type;
  885. return idx;
  886. }
  887. /* copy over necessary information from Options struct to buffer
  888. * On success returns size of buffer used on failure returns a negative value */
  889. static int ExportOptions(WOLFSSL* ssl, byte* exp, word32 len, byte ver,
  890. int type)
  891. {
  892. int idx = 0;
  893. word16 zero = 0;
  894. Options *options;
  895. WOLFSSL_ENTER("ExportOptions");
  896. if (ssl == NULL || exp == NULL || len < DTLS_EXPORT_OPT_SZ) {
  897. return BAD_FUNC_ARG;
  898. }
  899. options = &ssl->options;
  900. if (options == NULL) {
  901. return BAD_FUNC_ARG;
  902. }
  903. XMEMSET(exp, 0, DTLS_EXPORT_OPT_SZ);
  904. /* these options are kept and sent to indicate verify status and strength
  905. * of handshake */
  906. exp[idx++] = options->sendVerify;
  907. exp[idx++] = options->verifyPeer;
  908. exp[idx++] = options->verifyNone;
  909. exp[idx++] = options->downgrade;
  910. #ifndef NO_DH
  911. c16toa(options->minDhKeySz, exp + idx); idx += OPAQUE16_LEN;
  912. c16toa(options->maxDhKeySz, exp + idx); idx += OPAQUE16_LEN;
  913. c16toa(options->dhKeySz, exp + idx); idx += OPAQUE16_LEN;
  914. #else
  915. c16toa(zero, exp + idx); idx += OPAQUE16_LEN;
  916. c16toa(zero, exp + idx); idx += OPAQUE16_LEN;
  917. c16toa(zero, exp + idx); idx += OPAQUE16_LEN;
  918. #endif
  919. #ifndef NO_RSA
  920. c16toa((word16)(options->minRsaKeySz), exp + idx); idx += OPAQUE16_LEN;
  921. #else
  922. c16toa(zero, exp + idx); idx += OPAQUE16_LEN;
  923. #endif
  924. #ifdef HAVE_ECC
  925. c16toa((word16)(options->minEccKeySz), exp + idx); idx += OPAQUE16_LEN;
  926. #else
  927. c16toa(zero, exp + idx); idx += OPAQUE16_LEN;
  928. #endif
  929. /* these options are kept to indicate state and behavior */
  930. #ifndef NO_PSK
  931. exp[idx++] = options->havePSK;
  932. #else
  933. exp[idx++] = 0;
  934. #endif
  935. exp[idx++] = options->sessionCacheOff;
  936. exp[idx++] = options->sessionCacheFlushOff;
  937. exp[idx++] = options->side;
  938. exp[idx++] = options->resuming;
  939. exp[idx++] = options->haveSessionId;
  940. exp[idx++] = options->tls;
  941. exp[idx++] = options->tls1_1;
  942. exp[idx++] = options->dtls;
  943. exp[idx++] = options->connReset;
  944. exp[idx++] = options->isClosed;
  945. exp[idx++] = options->closeNotify;
  946. exp[idx++] = options->sentNotify;
  947. exp[idx++] = options->usingCompression;
  948. exp[idx++] = options->haveRSA;
  949. exp[idx++] = options->haveECC;
  950. exp[idx++] = options->haveDH;
  951. exp[idx++] = 0; /* Historical: haveNTRU */
  952. exp[idx++] = 0; /* Historical: haveQSH */
  953. exp[idx++] = options->haveECDSAsig;
  954. exp[idx++] = options->haveStaticECC;
  955. exp[idx++] = options->havePeerVerify;
  956. exp[idx++] = options->usingPSK_cipher;
  957. exp[idx++] = options->usingAnon_cipher;
  958. exp[idx++] = options->sendAlertState;
  959. exp[idx++] = options->partialWrite;
  960. exp[idx++] = options->quietShutdown;
  961. exp[idx++] = options->groupMessages;
  962. #ifdef HAVE_POLY1305
  963. exp[idx++] = options->oldPoly;
  964. #else
  965. exp[idx++] = 0;
  966. #endif
  967. #ifdef HAVE_ANON
  968. exp[idx++] = options->haveAnon;
  969. #else
  970. exp[idx++] = 0;
  971. #endif
  972. #ifdef HAVE_SESSION_TICKET
  973. exp[idx++] = options->createTicket;
  974. exp[idx++] = options->useTicket;
  975. exp[idx++] = options->noTicketTls12;
  976. #ifdef WOLFSSL_TLS13
  977. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  978. exp[idx++] = options->noTicketTls13;
  979. }
  980. #else
  981. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  982. exp[idx++] = 0;
  983. }
  984. #endif
  985. #else
  986. exp[idx++] = 0;
  987. exp[idx++] = 0;
  988. exp[idx++] = 0;
  989. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  990. exp[idx++] = 0;
  991. }
  992. #endif
  993. exp[idx++] = options->processReply;
  994. exp[idx++] = options->cipherSuite0;
  995. exp[idx++] = options->cipherSuite;
  996. exp[idx++] = options->serverState;
  997. exp[idx++] = options->clientState;
  998. exp[idx++] = options->handShakeState;
  999. exp[idx++] = options->handShakeDone;
  1000. exp[idx++] = options->minDowngrade;
  1001. exp[idx++] = options->connectState;
  1002. exp[idx++] = options->acceptState;
  1003. exp[idx++] = options->asyncState;
  1004. if (type == WOLFSSL_EXPORT_TLS) {
  1005. exp[idx++] = options->disallowEncThenMac;
  1006. exp[idx++] = options->encThenMac;
  1007. exp[idx++] = options->startedETMRead;
  1008. exp[idx++] = options->startedETMWrite;
  1009. }
  1010. /* version of connection */
  1011. exp[idx++] = ssl->version.major;
  1012. exp[idx++] = ssl->version.minor;
  1013. (void)zero;
  1014. /* check if changes were made and notify of need to update export version */
  1015. switch (ver) {
  1016. case WOLFSSL_EXPORT_VERSION_3:
  1017. if (idx != DTLS_EXPORT_OPT_SZ_3) {
  1018. WOLFSSL_MSG("Update DTLS_EXPORT_OPT_SZ and version of export");
  1019. return DTLS_EXPORT_VER_E;
  1020. }
  1021. break;
  1022. case WOLFSSL_EXPORT_VERSION:
  1023. if (idx != DTLS_EXPORT_OPT_SZ && type == WOLFSSL_EXPORT_DTLS) {
  1024. WOLFSSL_MSG("Update DTLS_EXPORT_OPT_SZ and version of export");
  1025. return DTLS_EXPORT_VER_E;
  1026. }
  1027. break;
  1028. default:
  1029. WOLFSSL_MSG("New version case needs added to wolfSSL export");
  1030. return DTLS_EXPORT_VER_E;
  1031. }
  1032. WOLFSSL_LEAVE("ExportOptions", idx);
  1033. (void)type;
  1034. return idx;
  1035. }
  1036. /* copy items from Export struct to Options struct
  1037. * On success returns size of buffer used on failure returns a negative value */
  1038. static int ImportOptions(WOLFSSL* ssl, const byte* exp, word32 len, byte ver,
  1039. int type)
  1040. {
  1041. int idx = 0;
  1042. Options* options = &ssl->options;
  1043. switch (ver) {
  1044. case WOLFSSL_EXPORT_VERSION:
  1045. if (len < DTLS_EXPORT_OPT_SZ) {
  1046. WOLFSSL_MSG("Sanity check on buffer size failed");
  1047. return BAD_FUNC_ARG;
  1048. }
  1049. break;
  1050. case WOLFSSL_EXPORT_VERSION_3:
  1051. if (len < DTLS_EXPORT_OPT_SZ_3) {
  1052. WOLFSSL_MSG("Sanity check on buffer size failed");
  1053. return BAD_FUNC_ARG;
  1054. }
  1055. break;
  1056. default:
  1057. WOLFSSL_MSG("Export version not supported");
  1058. return BAD_FUNC_ARG;
  1059. }
  1060. if (exp == NULL || options == NULL) {
  1061. return BAD_FUNC_ARG;
  1062. }
  1063. /* these options are kept and sent to indicate verify status and strength
  1064. * of handshake */
  1065. options->sendVerify = exp[idx++];
  1066. options->verifyPeer = exp[idx++];
  1067. options->verifyNone = exp[idx++];
  1068. options->downgrade = exp[idx++];
  1069. #ifndef NO_DH
  1070. ato16(exp + idx, &(options->minDhKeySz)); idx += OPAQUE16_LEN;
  1071. ato16(exp + idx, &(options->maxDhKeySz)); idx += OPAQUE16_LEN;
  1072. ato16(exp + idx, &(options->dhKeySz)); idx += OPAQUE16_LEN;
  1073. #else
  1074. idx += OPAQUE16_LEN;
  1075. idx += OPAQUE16_LEN;
  1076. idx += OPAQUE16_LEN;
  1077. #endif
  1078. #ifndef NO_RSA
  1079. ato16(exp + idx, (word16*)&(options->minRsaKeySz)); idx += OPAQUE16_LEN;
  1080. #else
  1081. idx += OPAQUE16_LEN;
  1082. #endif
  1083. #ifdef HAVE_ECC
  1084. ato16(exp + idx, (word16*)&(options->minEccKeySz)); idx += OPAQUE16_LEN;
  1085. #else
  1086. idx += OPAQUE16_LEN;
  1087. #endif
  1088. /* these options are kept to indicate state and behavior */
  1089. #ifndef NO_PSK
  1090. options->havePSK = exp[idx++];
  1091. #else
  1092. idx++;
  1093. #endif
  1094. options->sessionCacheOff = exp[idx++];
  1095. options->sessionCacheFlushOff = exp[idx++];
  1096. options->side = exp[idx++];
  1097. options->resuming = exp[idx++];
  1098. options->haveSessionId = exp[idx++];
  1099. options->tls = exp[idx++];
  1100. options->tls1_1 = exp[idx++];
  1101. options->dtls = exp[idx++];
  1102. options->connReset = exp[idx++];
  1103. options->isClosed = exp[idx++];
  1104. options->closeNotify = exp[idx++];
  1105. options->sentNotify = exp[idx++];
  1106. options->usingCompression = exp[idx++];
  1107. options->haveRSA = exp[idx++];
  1108. options->haveECC = exp[idx++];
  1109. options->haveDH = exp[idx++];
  1110. idx++; /* Historical: haveNTRU */
  1111. idx++; /* Historical: haveQSH */
  1112. options->haveECDSAsig = exp[idx++];
  1113. options->haveStaticECC = exp[idx++];
  1114. options->havePeerVerify = exp[idx++];
  1115. options->usingPSK_cipher = exp[idx++];
  1116. options->usingAnon_cipher = exp[idx++];
  1117. options->sendAlertState = exp[idx++];
  1118. options->partialWrite = exp[idx++];
  1119. options->quietShutdown = exp[idx++];
  1120. options->groupMessages = exp[idx++];
  1121. #ifdef HAVE_POLY1305
  1122. options->oldPoly = exp[idx++]; /* set when to use old rfc way of poly*/
  1123. #else
  1124. idx++;
  1125. #endif
  1126. #ifdef HAVE_ANON
  1127. options->haveAnon = exp[idx++]; /* User wants to allow Anon suites */
  1128. #else
  1129. idx++;
  1130. #endif
  1131. #ifdef HAVE_SESSION_TICKET
  1132. options->createTicket = exp[idx++]; /* Server to create new Ticket */
  1133. options->useTicket = exp[idx++]; /* Use Ticket not session cache */
  1134. options->noTicketTls12 = exp[idx++]; /* Server won't create new Ticket */
  1135. #ifdef WOLFSSL_TLS13
  1136. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  1137. options->noTicketTls13 = exp[idx++];/* Server won't create new Ticket */
  1138. }
  1139. #else
  1140. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  1141. idx++;
  1142. }
  1143. #endif
  1144. #else
  1145. idx++;
  1146. idx++;
  1147. idx++;
  1148. if (ver > WOLFSSL_EXPORT_VERSION_3) {
  1149. idx++;
  1150. }
  1151. #endif
  1152. options->processReply = exp[idx++];
  1153. options->cipherSuite0 = exp[idx++];
  1154. options->cipherSuite = exp[idx++];
  1155. options->serverState = exp[idx++];
  1156. options->clientState = exp[idx++];
  1157. options->handShakeState = exp[idx++];
  1158. options->handShakeDone = exp[idx++];
  1159. options->minDowngrade = exp[idx++];
  1160. options->connectState = exp[idx++];
  1161. options->acceptState = exp[idx++];
  1162. options->asyncState = exp[idx++];
  1163. if (type == WOLFSSL_EXPORT_TLS) {
  1164. options->disallowEncThenMac = exp[idx++];
  1165. options->encThenMac = exp[idx++];
  1166. options->startedETMRead = exp[idx++];
  1167. options->startedETMWrite = exp[idx++];
  1168. }
  1169. /* version of connection */
  1170. if (ssl->version.major != exp[idx++] || ssl->version.minor != exp[idx++]) {
  1171. WOLFSSL_MSG("Version mismatch ie DTLS v1 vs v1.2");
  1172. return VERSION_ERROR;
  1173. }
  1174. /* set TLS 1.3 flag in options if this was a TLS 1.3 connection */
  1175. if (ssl->version.major == SSLv3_MAJOR &&
  1176. ssl->version.minor == TLSv1_3_MINOR) {
  1177. options->tls1_3 = 1;
  1178. }
  1179. return idx;
  1180. }
  1181. #ifndef WOLFSSL_SESSION_EXPORT_NOPEER
  1182. static int ExportPeerInfo(WOLFSSL* ssl, byte* exp, word32 len, byte ver)
  1183. {
  1184. int idx = 0;
  1185. int ipSz = MAX_EXPORT_IP; /* start as max size */
  1186. int fam = 0;
  1187. word16 port = 0;
  1188. char ip[MAX_EXPORT_IP];
  1189. if (ver != WOLFSSL_EXPORT_VERSION) {
  1190. WOLFSSL_MSG("Export version not supported");
  1191. return BAD_FUNC_ARG;
  1192. }
  1193. if (ssl == NULL || exp == NULL ||
  1194. len < (sizeof(ip) + 3 * WOLFSSL_EXPORT_LEN)) {
  1195. return BAD_FUNC_ARG;
  1196. }
  1197. if (ssl->ctx->CBGetPeer == NULL) {
  1198. WOLFSSL_MSG("No get peer call back set");
  1199. return BAD_FUNC_ARG;
  1200. }
  1201. if (ssl->ctx->CBGetPeer(ssl, ip, &ipSz, &port, &fam) != WOLFSSL_SUCCESS) {
  1202. WOLFSSL_MSG("Get peer callback error");
  1203. return SOCKET_ERROR_E;
  1204. }
  1205. /* check that ipSz/fam is not negative or too large since user can set cb */
  1206. if (ipSz < 0 || ipSz > MAX_EXPORT_IP || fam < 0) {
  1207. WOLFSSL_MSG("Bad ipSz or fam returned from get peer callback");
  1208. return SOCKET_ERROR_E;
  1209. }
  1210. c16toa((word16)fam, exp + idx); idx += WOLFSSL_EXPORT_LEN;
  1211. c16toa((word16)ipSz, exp + idx); idx += WOLFSSL_EXPORT_LEN;
  1212. XMEMCPY(exp + idx, ip, ipSz); idx += ipSz;
  1213. c16toa(port, exp + idx); idx += WOLFSSL_EXPORT_LEN;
  1214. return idx;
  1215. }
  1216. #endif /* !WOLFSSL_SESSION_EXPORT_NOPEER */
  1217. static int ImportPeerInfo(WOLFSSL* ssl, const byte* buf, word32 len, byte ver)
  1218. {
  1219. word16 idx = 0;
  1220. word16 ipSz;
  1221. word16 fam;
  1222. word16 port;
  1223. char ip[MAX_EXPORT_IP];
  1224. if (ver != WOLFSSL_EXPORT_VERSION && ver != WOLFSSL_EXPORT_VERSION_3) {
  1225. WOLFSSL_MSG("Export version not supported");
  1226. return BAD_FUNC_ARG;
  1227. }
  1228. if (len == 0) {
  1229. WOLFSSL_MSG("No peer info sent");
  1230. return 0;
  1231. }
  1232. if (ssl == NULL || buf == NULL || len < 3 * WOLFSSL_EXPORT_LEN) {
  1233. return BAD_FUNC_ARG;
  1234. }
  1235. /* import sin family */
  1236. ato16(buf + idx, &fam); idx += WOLFSSL_EXPORT_LEN;
  1237. /* import ip address idx, and ipSz are unsigned but cast for enum */
  1238. ato16(buf + idx, &ipSz); idx += WOLFSSL_EXPORT_LEN;
  1239. if (ipSz >= sizeof(ip) || (word16)(idx + ipSz + WOLFSSL_EXPORT_LEN) > len) {
  1240. return BUFFER_E;
  1241. }
  1242. XMEMSET(ip, 0, sizeof(ip));
  1243. XMEMCPY(ip, buf + idx, ipSz); idx += ipSz;
  1244. ip[ipSz] = '\0'; /* with check that ipSz less than ip this is valid */
  1245. ato16(buf + idx, &port); idx += WOLFSSL_EXPORT_LEN;
  1246. /* sanity check for a function to call, then use it to import peer info */
  1247. if (ssl->ctx->CBSetPeer == NULL) {
  1248. WOLFSSL_MSG("No set peer function");
  1249. return BAD_FUNC_ARG;
  1250. }
  1251. if (ssl->ctx->CBSetPeer(ssl, ip, ipSz, port, fam) != WOLFSSL_SUCCESS) {
  1252. WOLFSSL_MSG("Error setting peer info");
  1253. return SOCKET_ERROR_E;
  1254. }
  1255. return idx;
  1256. }
  1257. #ifdef WOLFSSL_DTLS
  1258. /* WOLFSSL_LOCAL function that serializes the current WOLFSSL session state only
  1259. * buf is used to hold the serialized WOLFSSL struct and sz is the size of buf
  1260. * passed in.
  1261. * On success returns the size of serialized session state.*/
  1262. int wolfSSL_dtls_export_state_internal(WOLFSSL* ssl, byte* buf, word32 sz)
  1263. {
  1264. int ret;
  1265. word32 idx = 0;
  1266. word32 totalLen = 0;
  1267. WOLFSSL_ENTER("wolfSSL_dtls_export_state_internal");
  1268. if (buf == NULL || ssl == NULL) {
  1269. WOLFSSL_LEAVE("wolfSSL_dtls_export_state_internal", BAD_FUNC_ARG);
  1270. return BAD_FUNC_ARG;
  1271. }
  1272. totalLen += WOLFSSL_EXPORT_LEN * 2; /* 2 protocol bytes and 2 length bytes */
  1273. /* each of the following have a 2 byte length before data */
  1274. totalLen += WOLFSSL_EXPORT_LEN + DTLS_EXPORT_MIN_KEY_SZ;
  1275. if (totalLen > sz) {
  1276. WOLFSSL_LEAVE("wolfSSL_dtls_export_state_internal", BUFFER_E);
  1277. return BUFFER_E;
  1278. }
  1279. buf[idx++] = (byte)DTLS_EXPORT_STATE_PRO;
  1280. buf[idx++] = ((byte)DTLS_EXPORT_STATE_PRO & 0xF0) |
  1281. ((byte)WOLFSSL_EXPORT_VERSION & 0X0F);
  1282. idx += WOLFSSL_EXPORT_LEN; /* leave room for total length */
  1283. /* export keys struct and dtls state -- variable length stored in ret */
  1284. idx += WOLFSSL_EXPORT_LEN; /* leave room for length */
  1285. if ((ret = ExportKeyState(ssl, buf + idx, sz - idx,
  1286. WOLFSSL_EXPORT_VERSION, 1, WOLFSSL_EXPORT_DTLS)) < 0) {
  1287. WOLFSSL_LEAVE("wolfSSL_dtls_export_state_internal", ret);
  1288. return ret;
  1289. }
  1290. c16toa((word16)ret, buf + idx - WOLFSSL_EXPORT_LEN); idx += ret;
  1291. /* place total length of exported buffer minus 2 bytes protocol/version */
  1292. c16toa((word16)(idx - WOLFSSL_EXPORT_LEN), buf + WOLFSSL_EXPORT_LEN);
  1293. #ifdef WOLFSSL_SESSION_EXPORT_DEBUG
  1294. /* if compiled with debug options then print the version, protocol, size */
  1295. {
  1296. char debug[256];
  1297. XSNPRINTF(debug, sizeof(debug), "Exporting DTLS session state\n"
  1298. "\tVersion : %d\n\tProtocol : %02X%01X\n\tLength of: %d\n\n"
  1299. , (int)WOLFSSL_EXPORT_VERSION, buf[0], (buf[1] >> 4), idx - 2);
  1300. WOLFSSL_MSG(debug);
  1301. }
  1302. #endif /* WOLFSSL_SESSION_EXPORT_DEBUG */
  1303. WOLFSSL_LEAVE("wolfSSL_dtls_export_state_internal", idx);
  1304. return idx;
  1305. }
  1306. /* On success return amount of buffer consumed */
  1307. int wolfSSL_dtls_import_state_internal(WOLFSSL* ssl, const byte* buf, word32 sz)
  1308. {
  1309. word32 idx = 0;
  1310. word16 length = 0;
  1311. int version;
  1312. int ret;
  1313. WOLFSSL_ENTER("wolfSSL_dtls_import_state_internal");
  1314. /* check at least enough room for protocol and length */
  1315. if (sz < WOLFSSL_EXPORT_LEN * 2 || ssl == NULL) {
  1316. WOLFSSL_LEAVE("wolfSSL_dtls_import_state_internal", BAD_FUNC_ARG);
  1317. return BAD_FUNC_ARG;
  1318. }
  1319. if (buf[idx++] != (byte)DTLS_EXPORT_STATE_PRO ||
  1320. (buf[idx] & 0xF0) != ((byte)DTLS_EXPORT_PRO & 0xF0)) {
  1321. WOLFSSL_MSG("Incorrect protocol");
  1322. return BAD_FUNC_ARG;
  1323. }
  1324. version = buf[idx++] & 0x0F;
  1325. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1326. if (length > sz - WOLFSSL_EXPORT_LEN) { /* subtract 2 for protocol */
  1327. WOLFSSL_MSG("Buffer size sanity check failed");
  1328. return BUFFER_E;
  1329. }
  1330. #ifdef WOLFSSL_SESSION_EXPORT_DEBUG
  1331. /* if compiled with debug options then print the version, protocol, size */
  1332. {
  1333. char debug[256];
  1334. XSNPRINTF(debug, sizeof(debug), "Importing DTLS session state\n"
  1335. "\tVersion : %d\n\tProtocol : %02X%01X\n\tLength of: %d\n\n"
  1336. , (int)version, buf[0], (buf[1] >> 4), length);
  1337. WOLFSSL_MSG(debug);
  1338. }
  1339. #endif /* WOLFSSL_SESSION_EXPORT_DEBUG */
  1340. /* perform sanity checks and extract Options information used */
  1341. switch (version) {
  1342. case WOLFSSL_EXPORT_VERSION:
  1343. break;
  1344. default:
  1345. WOLFSSL_MSG("Bad export state version");
  1346. return BAD_FUNC_ARG;
  1347. }
  1348. /* perform sanity checks and extract Keys struct */
  1349. if (WOLFSSL_EXPORT_LEN + idx > sz) {
  1350. WOLFSSL_MSG("Import Key struct error");
  1351. return BUFFER_E;
  1352. }
  1353. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1354. if (length > DTLS_EXPORT_KEY_SZ || length + idx > sz) {
  1355. WOLFSSL_MSG("Import Key struct error");
  1356. return BUFFER_E;
  1357. }
  1358. if ((ret = ImportKeyState(ssl, buf + idx, length, version,
  1359. WOLFSSL_EXPORT_DTLS)) < 0) {
  1360. WOLFSSL_MSG("Import Key struct error");
  1361. WOLFSSL_LEAVE("wolfSSL_dtls_import_state_internal", ret);
  1362. return ret;
  1363. }
  1364. idx += ret;
  1365. WOLFSSL_LEAVE("wolfSSL_dtls_import_state_internal", ret);
  1366. return idx;
  1367. }
  1368. #endif /* WOLFSSL_DTLS */
  1369. /**
  1370. * Imports a serialized buffer (both TLS and DTLS)
  1371. *
  1372. * @param ssl WOLFSSL structure to import into
  1373. * @param buf buffer containing serialized session
  1374. * @param sz size of buffer 'buf'
  1375. * @param type flag for TLS or DTLS
  1376. *
  1377. * @return the size of serialized buffer on success
  1378. */
  1379. int wolfSSL_session_import_internal(WOLFSSL* ssl, const unsigned char* buf,
  1380. unsigned int sz, int type)
  1381. {
  1382. word32 idx = 0;
  1383. word16 length = 0;
  1384. int version = 0;
  1385. int ret = 0;
  1386. int optSz;
  1387. int rc;
  1388. byte validProto = 0; /* did we find a valid protocol */
  1389. WOLFSSL_ENTER("wolfSSL_session_import_internal");
  1390. /* check at least enough room for protocol and length */
  1391. if (sz < WOLFSSL_EXPORT_LEN * 2 || ssl == NULL) {
  1392. ret = BAD_FUNC_ARG;
  1393. }
  1394. /* Check if is TLS export protocol */
  1395. if (ret == 0) {
  1396. if (buf[idx] == (byte)TLS_EXPORT_PRO &&
  1397. (buf[idx + 1] & 0xF0) == ((byte)TLS_EXPORT_PRO & 0xF0)) {
  1398. validProto = 1;
  1399. }
  1400. /* Check if is DTLS export protocol */
  1401. if (buf[idx] == (byte)DTLS_EXPORT_PRO &&
  1402. (buf[idx + 1] & 0xF0) == ((byte)DTLS_EXPORT_PRO & 0xF0)) {
  1403. validProto = 1;
  1404. }
  1405. if (validProto == 0) {
  1406. #ifdef WOLFSSL_DTLS
  1407. /* check if importing state only */
  1408. return wolfSSL_dtls_import_state_internal(ssl, buf, sz);
  1409. #else
  1410. WOLFSSL_MSG("Invalid serialized session protocol value");
  1411. ret = BAD_FUNC_ARG;
  1412. #endif
  1413. }
  1414. idx += 1;
  1415. }
  1416. if (ret == 0) {
  1417. version = buf[idx++] & 0x0F;
  1418. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1419. if (length > sz - WOLFSSL_EXPORT_LEN) { /* subtract 2 for protocol */
  1420. ret = BUFFER_E;
  1421. }
  1422. }
  1423. /* if compiled with debug options then print the version, protocol, size */
  1424. #ifdef WOLFSSL_SESSION_EXPORT_DEBUG
  1425. {
  1426. char debug[256];
  1427. XSNPRINTF(debug, sizeof(debug), "Importing DTLS session\n"
  1428. "\tVersion : %d\n\tProtocol : %02X%01X\n\tLength of: %d\n\n"
  1429. , (int)version, buf[0], (buf[1] >> 4), length);
  1430. WOLFSSL_MSG(debug);
  1431. }
  1432. #endif /* WOLFSSL_SESSION_EXPORT_DEBUG */
  1433. /* perform sanity checks and extract Options information used */
  1434. if (ret == 0) {
  1435. switch (version) {
  1436. case WOLFSSL_EXPORT_VERSION:
  1437. if (type == WOLFSSL_EXPORT_DTLS) {
  1438. optSz = DTLS_EXPORT_OPT_SZ;
  1439. }
  1440. else {
  1441. optSz = TLS_EXPORT_OPT_SZ;
  1442. }
  1443. break;
  1444. case WOLFSSL_EXPORT_VERSION_3:
  1445. WOLFSSL_MSG("Importing older version 3");
  1446. optSz = DTLS_EXPORT_OPT_SZ_3;
  1447. break;
  1448. default:
  1449. WOLFSSL_MSG("Bad export version");
  1450. ret = BAD_FUNC_ARG;
  1451. }
  1452. }
  1453. if (ret == 0 && (WOLFSSL_EXPORT_LEN + optSz + idx > sz)) {
  1454. WOLFSSL_MSG("Import Options struct error");
  1455. ret = BUFFER_E;
  1456. }
  1457. if (ret == 0) {
  1458. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1459. if (length != optSz) {
  1460. WOLFSSL_MSG("Import Options struct error");
  1461. ret = BUFFER_E;
  1462. }
  1463. }
  1464. if (ret == 0) {
  1465. rc = ImportOptions(ssl, buf + idx, length, version, type);
  1466. if (rc < 0) {
  1467. WOLFSSL_MSG("Import Options struct error");
  1468. ret = rc;
  1469. }
  1470. else {
  1471. idx += length;
  1472. }
  1473. }
  1474. /* perform sanity checks and extract Keys struct */
  1475. if (ret == 0 && (WOLFSSL_EXPORT_LEN + idx > sz)) {
  1476. WOLFSSL_MSG("Import Key struct error");
  1477. ret = BUFFER_E;
  1478. }
  1479. if (ret == 0) {
  1480. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1481. if (length > DTLS_EXPORT_KEY_SZ || length + idx > sz) {
  1482. WOLFSSL_MSG("Import Key struct error");
  1483. ret = BUFFER_E;
  1484. }
  1485. }
  1486. if (ret == 0) {
  1487. rc = ImportKeyState(ssl, buf + idx, length, version, type);
  1488. if (rc < 0) {
  1489. WOLFSSL_MSG("Import Key struct error");
  1490. ret = rc;
  1491. }
  1492. else {
  1493. idx += rc;
  1494. }
  1495. }
  1496. /* perform sanity checks and extract CipherSpecs struct */
  1497. if (ret == 0 && (WOLFSSL_EXPORT_LEN + WOLFSSL_EXPORT_SPC_SZ + idx > sz)) {
  1498. WOLFSSL_MSG("Import CipherSpecs struct error");
  1499. ret = BUFFER_E;
  1500. }
  1501. if (ret == 0) {
  1502. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1503. if (length != WOLFSSL_EXPORT_SPC_SZ) {
  1504. WOLFSSL_MSG("Import CipherSpecs struct error");
  1505. ret = BUFFER_E;
  1506. }
  1507. }
  1508. if (ret == 0) {
  1509. rc = ImportCipherSpecState(ssl, buf + idx, length, version, type);
  1510. if (rc < 0) {
  1511. WOLFSSL_MSG("Import CipherSpecs struct error");
  1512. ret = rc;
  1513. }
  1514. else {
  1515. idx += rc;
  1516. }
  1517. }
  1518. /* perform sanity checks and extract DTLS peer info */
  1519. if (ret == 0 && (WOLFSSL_EXPORT_LEN + idx > sz)) {
  1520. WOLFSSL_MSG("Import DTLS peer info error");
  1521. ret = BUFFER_E;
  1522. }
  1523. if (ret == 0) {
  1524. ato16(buf + idx, &length); idx += WOLFSSL_EXPORT_LEN;
  1525. if (idx + length > sz) {
  1526. WOLFSSL_MSG("Import DTLS peer info error");
  1527. ret = BUFFER_E;
  1528. }
  1529. }
  1530. if (ret == 0) {
  1531. rc = ImportPeerInfo(ssl, buf + idx, length, version);
  1532. if (rc < 0) {
  1533. WOLFSSL_MSG("Import Peer Addr error");
  1534. ret = rc;
  1535. }
  1536. else {
  1537. idx += rc;
  1538. }
  1539. }
  1540. /* make sure is a valid suite used */
  1541. if (ret == 0 && wolfSSL_get_cipher(ssl) == NULL) {
  1542. WOLFSSL_MSG("Can not match cipher suite imported");
  1543. ret = MATCH_SUITE_ERROR;
  1544. }
  1545. #ifndef WOLFSSL_AEAD_ONLY
  1546. /* set hmac function to use when verifying */
  1547. if (ssl->options.tls == 1 || ssl->options.tls1_1 == 1 ||
  1548. ssl->options.dtls == 1) {
  1549. ssl->hmac = TLS_hmac;
  1550. }
  1551. /* do not allow stream ciphers with DTLS, except for NULL cipher */
  1552. if (ret == 0 && ssl->specs.cipher_type == stream &&
  1553. ssl->specs.bulk_cipher_algorithm != wolfssl_cipher_null) {
  1554. WOLFSSL_MSG("Can not import stream ciphers for DTLS");
  1555. ret = SANITY_CIPHER_E;
  1556. }
  1557. #endif /* !WOLFSSL_AEAD_ONLY */
  1558. if (ret != 0) {
  1559. idx = ret;
  1560. }
  1561. WOLFSSL_LEAVE("wolfSSL_session_import_internal", idx);
  1562. return idx;
  1563. }
  1564. /**
  1565. * Handles serializing the session information.
  1566. *
  1567. * @param ssl WOLFSSL structure to serialize session from
  1568. * @param buf output buffer to hold serialized session
  1569. * @param sz the size of buffer 'buf', if too small then gets updated
  1570. * @param type if the input WOLFSSL structure is expected to be TLS or DTLS
  1571. * 1 for yes is TLS and 0 for no is DTLS
  1572. *
  1573. * @return the size of serialized buffer on success and negative values on fail
  1574. */
  1575. int wolfSSL_session_export_internal(WOLFSSL* ssl, byte* buf, word32* sz,
  1576. int type)
  1577. {
  1578. int ret = 0;
  1579. word32 idx = 0;
  1580. word32 totalLen = 0;
  1581. WOLFSSL_ENTER("wolfSSL_session_export_internal");
  1582. if (ssl == NULL) {
  1583. WOLFSSL_MSG("unexpected null argument");
  1584. ret = BAD_FUNC_ARG;
  1585. }
  1586. if (ret == 0) {
  1587. totalLen += WOLFSSL_EXPORT_LEN * 2; /* 2 protocol bytes and 2 length bytes */
  1588. /* each of the following have a 2 byte length before data */
  1589. totalLen += WOLFSSL_EXPORT_LEN + DTLS_EXPORT_OPT_SZ;
  1590. totalLen += WOLFSSL_EXPORT_LEN + DTLS_EXPORT_KEY_SZ;
  1591. totalLen += WOLFSSL_EXPORT_LEN + WOLFSSL_EXPORT_SPC_SZ;
  1592. #ifdef WOLFSSL_DTLS
  1593. if (type == WOLFSSL_EXPORT_DTLS) {
  1594. totalLen += WOLFSSL_EXPORT_LEN + ssl->buffers.dtlsCtx.peer.sz;
  1595. }
  1596. #endif
  1597. }
  1598. /* check is at least the minimum size needed, TLS cipher states add more */
  1599. if (ret == 0 && (totalLen > *sz || buf == NULL)) {
  1600. WOLFSSL_MSG("export buffer was too small or null");
  1601. *sz = totalLen;
  1602. /* possible AES state needed */
  1603. if (type == WOLFSSL_EXPORT_TLS) {
  1604. *sz += AES_BLOCK_SIZE*2;
  1605. }
  1606. ret = LENGTH_ONLY_E;
  1607. }
  1608. if (ret == 0) {
  1609. buf[idx++] = (byte)(type == WOLFSSL_EXPORT_TLS)? TLS_EXPORT_PRO :
  1610. DTLS_EXPORT_PRO;
  1611. buf[idx++] = ((byte)((type == WOLFSSL_EXPORT_TLS)? TLS_EXPORT_PRO :
  1612. DTLS_EXPORT_PRO) & 0xF0)
  1613. | ((byte)WOLFSSL_EXPORT_VERSION & 0X0F);
  1614. idx += WOLFSSL_EXPORT_LEN; /* leave spot for length of total buffer */
  1615. idx += WOLFSSL_EXPORT_LEN;
  1616. ret = ExportOptions(ssl, buf + idx, *sz - idx, WOLFSSL_EXPORT_VERSION,
  1617. type);
  1618. if (ret >= 0) {
  1619. c16toa((word16)ret, buf + idx - WOLFSSL_EXPORT_LEN);
  1620. idx += ret;
  1621. ret = 0;
  1622. }
  1623. }
  1624. /* export keys struct and dtls state -- variable length stored in ret */
  1625. if (ret == 0) {
  1626. idx += WOLFSSL_EXPORT_LEN; /* leave room for length */
  1627. ret = ExportKeyState(ssl, buf + idx, *sz - idx, WOLFSSL_EXPORT_VERSION,
  1628. 0, type);
  1629. if (ret >= 0) {
  1630. c16toa((word16)ret, buf + idx - WOLFSSL_EXPORT_LEN); idx += ret;
  1631. ret = 0;
  1632. }
  1633. }
  1634. /* export of cipher specs struct */
  1635. if (ret == 0) {
  1636. c16toa((word16)WOLFSSL_EXPORT_SPC_SZ, buf + idx);
  1637. idx += WOLFSSL_EXPORT_LEN;
  1638. ret = ExportCipherSpecState(ssl, buf + idx, *sz - idx,
  1639. WOLFSSL_EXPORT_VERSION, type);
  1640. if (ret >= 0) {
  1641. idx += ret;
  1642. ret = 0;
  1643. }
  1644. }
  1645. /* export of peer information */
  1646. if (ret == 0) {
  1647. idx += WOLFSSL_EXPORT_LEN;
  1648. #ifdef WOLFSSL_SESSION_EXPORT_NOPEER
  1649. ret = 0; /* not saving peer port/ip information */
  1650. #else
  1651. ret = ExportPeerInfo(ssl, buf + idx, *sz - idx, WOLFSSL_EXPORT_VERSION);
  1652. #endif
  1653. if (ret >= 0) {
  1654. c16toa(ret, buf + idx - WOLFSSL_EXPORT_LEN);
  1655. idx += ret;
  1656. ret = 0;
  1657. }
  1658. }
  1659. if (ret != 0 && buf != NULL) {
  1660. /*in a fail case clear the buffer which could contain partial key info*/
  1661. XMEMSET(buf, 0, *sz);
  1662. }
  1663. /* place total length of exported buffer minus 2 bytes protocol/version */
  1664. if (ret == 0) {
  1665. c16toa((word16)(idx - WOLFSSL_EXPORT_LEN), buf + WOLFSSL_EXPORT_LEN);
  1666. ret = idx;
  1667. #ifdef WOLFSSL_SESSION_EXPORT_DEBUG
  1668. {
  1669. char debug[256];
  1670. XSNPRINTF(debug, sizeof(debug), "Exporting TLS session\n"
  1671. "\tVersion : %d\n\tProtocol : %02X%01X\n\tLength of: %d\n\n"
  1672. ,(int)WOLFSSL_EXPORT_VERSION, buf[0], (buf[1] >> 4), idx - 2);
  1673. WOLFSSL_MSG(debug);
  1674. }
  1675. #endif /* WOLFSSL_SESSION_EXPORT_DEBUG */
  1676. }
  1677. if (ret >= 0) {
  1678. *sz = ret;
  1679. }
  1680. WOLFSSL_LEAVE("wolfSSL_session_export_internal", ret);
  1681. return ret;
  1682. }
  1683. #endif /* WOLFSSL_SESSION_EXPORT */
  1684. void InitSSL_Method(WOLFSSL_METHOD* method, ProtocolVersion pv)
  1685. {
  1686. method->version = pv;
  1687. method->side = WOLFSSL_CLIENT_END;
  1688. method->downgrade = 0;
  1689. }
  1690. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EITHER_SIDE) || \
  1691. defined(WOLFSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  1692. int InitSSL_Side(WOLFSSL* ssl, word16 side)
  1693. {
  1694. if (ssl == NULL)
  1695. return BAD_FUNC_ARG;
  1696. /* set side */
  1697. ssl->options.side = side;
  1698. /* reset options that are side specific */
  1699. #ifdef HAVE_ECC
  1700. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  1701. ssl->options.haveECDSAsig = 1; /* always on client side */
  1702. ssl->options.haveECC = 1; /* server turns on with ECC key cert */
  1703. ssl->options.haveStaticECC = 1; /* server can turn on by loading key */
  1704. }
  1705. #elif defined(HAVE_ED25519) || defined(HAVE_ED448)
  1706. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  1707. ssl->options.haveECDSAsig = 1; /* always on client side */
  1708. ssl->options.haveECC = 1; /* server turns on with ECC key cert */
  1709. }
  1710. #endif
  1711. #if defined(HAVE_EXTENDED_MASTER) && !defined(NO_WOLFSSL_CLIENT)
  1712. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  1713. if ((ssl->ctx->method->version.major == SSLv3_MAJOR) &&
  1714. (ssl->ctx->method->version.minor >= TLSv1_MINOR)) {
  1715. ssl->options.haveEMS = 1;
  1716. }
  1717. #ifdef WOLFSSL_DTLS
  1718. if (ssl->ctx->method->version.major == DTLS_MAJOR)
  1719. ssl->options.haveEMS = 1;
  1720. #endif /* WOLFSSL_DTLS */
  1721. }
  1722. #endif /* HAVE_EXTENDED_MASTER && !NO_WOLFSSL_CLIENT */
  1723. #if defined(WOLFSSL_DTLS) && !defined(NO_WOLFSSL_SERVER)
  1724. if (ssl->options.dtls && ssl->options.side == WOLFSSL_SERVER_END) {
  1725. int ret;
  1726. ret = wolfSSL_DTLS_SetCookieSecret(ssl, NULL, 0);
  1727. if (ret != 0) {
  1728. WOLFSSL_MSG("DTLS Cookie Secret error");
  1729. return ret;
  1730. }
  1731. }
  1732. #endif /* WOLFSSL_DTLS && !NO_WOLFSSL_SERVER */
  1733. return InitSSL_Suites(ssl);
  1734. }
  1735. #endif /* OPENSSL_EXTRA || WOLFSSL_EITHER_SIDE */
  1736. /* Initialize SSL context, return 0 on success */
  1737. int InitSSL_Ctx(WOLFSSL_CTX* ctx, WOLFSSL_METHOD* method, void* heap)
  1738. {
  1739. int ret = 0;
  1740. XMEMSET(ctx, 0, sizeof(WOLFSSL_CTX));
  1741. ctx->method = method;
  1742. ctx->refCount = 1; /* so either CTX_free or SSL_free can release */
  1743. ctx->heap = ctx; /* defaults to self */
  1744. ctx->timeout = WOLFSSL_SESSION_TIMEOUT;
  1745. ctx->minDowngrade = WOLFSSL_MIN_DOWNGRADE; /* current default: TLSv1_MINOR */
  1746. if (wc_InitMutex(&ctx->countMutex) < 0) {
  1747. WOLFSSL_MSG("Mutex error on CTX init");
  1748. ctx->err = CTX_INIT_MUTEX_E;
  1749. return BAD_MUTEX_E;
  1750. }
  1751. #ifndef NO_CERTS
  1752. ctx->privateKeyDevId = INVALID_DEVID;
  1753. #endif
  1754. #ifndef NO_DH
  1755. ctx->minDhKeySz = MIN_DHKEY_SZ;
  1756. ctx->maxDhKeySz = MAX_DHKEY_SZ;
  1757. #endif
  1758. #ifndef NO_RSA
  1759. ctx->minRsaKeySz = MIN_RSAKEY_SZ;
  1760. #endif
  1761. #ifdef HAVE_ECC
  1762. ctx->minEccKeySz = MIN_ECCKEY_SZ;
  1763. ctx->eccTempKeySz = ECDHE_SIZE;
  1764. #endif
  1765. ctx->verifyDepth = MAX_CHAIN_DEPTH;
  1766. #ifdef OPENSSL_EXTRA
  1767. ctx->cbioFlag = WOLFSSL_CBIO_NONE;
  1768. #endif
  1769. #ifndef WOLFSSL_USER_IO
  1770. #ifdef MICRIUM
  1771. ctx->CBIORecv = MicriumReceive;
  1772. ctx->CBIOSend = MicriumSend;
  1773. #ifdef WOLFSSL_DTLS
  1774. if (method->version.major == DTLS_MAJOR) {
  1775. ctx->CBIORecv = MicriumReceiveFrom;
  1776. ctx->CBIOSend = MicriumSendTo;
  1777. }
  1778. #ifdef WOLFSSL_SESSION_EXPORT
  1779. #error Micrium port does not support DTLS session export yet
  1780. #endif
  1781. #endif
  1782. #elif defined WOLFSSL_UIP
  1783. ctx->CBIORecv = uIPReceive;
  1784. ctx->CBIOSend = uIPSend;
  1785. #ifdef WOLFSSL_DTLS
  1786. if (method->version.major == DTLS_MAJOR) {
  1787. ctx->CBIOSendTo = uIPSendTo;
  1788. ctx->CBIORecvFrom = uIPRecvFrom;
  1789. }
  1790. #endif
  1791. #else
  1792. ctx->CBIORecv = EmbedReceive;
  1793. ctx->CBIOSend = EmbedSend;
  1794. #ifdef WOLFSSL_SESSION_EXPORT
  1795. ctx->CBGetPeer = EmbedGetPeer;
  1796. ctx->CBSetPeer = EmbedSetPeer;
  1797. #endif
  1798. #ifdef WOLFSSL_DTLS
  1799. if (method->version.major == DTLS_MAJOR) {
  1800. ctx->CBIORecv = EmbedReceiveFrom;
  1801. ctx->CBIOSend = EmbedSendTo;
  1802. }
  1803. #endif
  1804. #endif /* MICRIUM */
  1805. #endif /* WOLFSSL_USER_IO */
  1806. #ifdef HAVE_NETX
  1807. ctx->CBIORecv = NetX_Receive;
  1808. ctx->CBIOSend = NetX_Send;
  1809. #elif defined(WOLFSSL_APACHE_MYNEWT) && !defined(WOLFSSL_LWIP)
  1810. ctx->CBIORecv = Mynewt_Receive;
  1811. ctx->CBIOSend = Mynewt_Send;
  1812. #elif defined(WOLFSSL_GNRC)
  1813. ctx->CBIORecv = GNRC_ReceiveFrom;
  1814. ctx->CBIOSend = GNRC_SendTo;
  1815. #endif
  1816. #ifdef HAVE_ECC
  1817. if (method->side == WOLFSSL_CLIENT_END) {
  1818. ctx->haveECDSAsig = 1; /* always on client side */
  1819. ctx->haveECC = 1; /* server turns on with ECC key cert */
  1820. ctx->haveStaticECC = 1; /* server can turn on by loading key */
  1821. }
  1822. #elif defined(HAVE_ED25519) || defined(HAVE_ED448)
  1823. if (method->side == WOLFSSL_CLIENT_END) {
  1824. ctx->haveECDSAsig = 1; /* always on client side */
  1825. ctx->haveECC = 1; /* server turns on with ECC key cert */
  1826. }
  1827. #endif
  1828. #ifdef WOLFSSL_QNX_CAAM
  1829. /* default to try using CAAM when built */
  1830. ctx->devId = WOLFSSL_CAAM_DEVID;
  1831. #else
  1832. ctx->devId = INVALID_DEVID;
  1833. #endif
  1834. #if defined(WOLFSSL_DTLS)
  1835. #ifdef WOLFSSL_SCTP
  1836. ctx->dtlsMtuSz = MAX_RECORD_SIZE;
  1837. #elif defined(WOLFSSL_DTLS_MTU)
  1838. ctx->dtlsMtuSz = MAX_MTU;
  1839. #endif
  1840. #endif
  1841. #ifndef NO_CERTS
  1842. ctx->cm = wolfSSL_CertManagerNew_ex(heap);
  1843. if (ctx->cm == NULL) {
  1844. WOLFSSL_MSG("Bad Cert Manager New");
  1845. return BAD_CERT_MANAGER_ERROR;
  1846. }
  1847. #ifdef OPENSSL_EXTRA
  1848. /* setup WOLFSSL_X509_STORE */
  1849. ctx->x509_store.cm = ctx->cm;
  1850. /* set pointer back to x509 store */
  1851. ctx->cm->x509_store_p = &ctx->x509_store;
  1852. /* WOLFSSL_X509_VERIFY_PARAM */
  1853. if ((ctx->param = (WOLFSSL_X509_VERIFY_PARAM*)XMALLOC(
  1854. sizeof(WOLFSSL_X509_VERIFY_PARAM),
  1855. heap, DYNAMIC_TYPE_OPENSSL)) == NULL) {
  1856. WOLFSSL_MSG("ctx->param memory error");
  1857. return MEMORY_E;
  1858. }
  1859. XMEMSET(ctx->param, 0, sizeof(WOLFSSL_X509_VERIFY_PARAM));
  1860. /* WOLFSSL_X509_LOOKUP */
  1861. if ((ctx->x509_store.lookup.dirs =
  1862. (WOLFSSL_BY_DIR*)XMALLOC(sizeof(WOLFSSL_BY_DIR),
  1863. heap, DYNAMIC_TYPE_OPENSSL)) == NULL) {
  1864. WOLFSSL_MSG("ctx-x509_store.lookup.dir memory allocation error");
  1865. XFREE(ctx->param, heap, DYNAMIC_TYPE_OPENSSL);
  1866. return MEMORY_E;
  1867. }
  1868. XMEMSET(ctx->x509_store.lookup.dirs, 0, sizeof(WOLFSSL_BY_DIR));
  1869. if (wc_InitMutex(&ctx->x509_store.lookup.dirs->lock) != 0) {
  1870. WOLFSSL_MSG("Bad mutex init");
  1871. XFREE(ctx->param, heap, DYNAMIC_TYPE_OPENSSL);
  1872. XFREE(ctx->x509_store.lookup.dirs, heap, DYNAMIC_TYPE_OPENSSL);
  1873. return BAD_MUTEX_E;
  1874. }
  1875. #endif
  1876. #endif
  1877. #if defined(HAVE_EXTENDED_MASTER) && !defined(NO_WOLFSSL_CLIENT)
  1878. if (method->side == WOLFSSL_CLIENT_END) {
  1879. if ((method->version.major == SSLv3_MAJOR) &&
  1880. (method->version.minor >= TLSv1_MINOR)) {
  1881. ctx->haveEMS = 1;
  1882. }
  1883. #ifdef WOLFSSL_DTLS
  1884. if (method->version.major == DTLS_MAJOR)
  1885. ctx->haveEMS = 1;
  1886. #endif /* WOLFSSL_DTLS */
  1887. }
  1888. #endif /* HAVE_EXTENDED_MASTER && !NO_WOLFSSL_CLIENT */
  1889. #if defined(HAVE_SESSION_TICKET) && !defined(NO_WOLFSSL_SERVER)
  1890. #ifndef WOLFSSL_NO_DEF_TICKET_ENC_CB
  1891. ret = TicketEncCbCtx_Init(ctx, &ctx->ticketKeyCtx);
  1892. if (ret != 0) return ret;
  1893. ctx->ticketEncCb = DefTicketEncCb;
  1894. ctx->ticketEncCtx = (void*)&ctx->ticketKeyCtx;
  1895. #endif
  1896. ctx->ticketHint = SESSION_TICKET_HINT_DEFAULT;
  1897. #if defined(WOLFSSL_TLS13)
  1898. ctx->maxTicketTls13 = 1; /* default to sending a session ticket if compiled
  1899. in */
  1900. #endif
  1901. #endif
  1902. #ifdef WOLFSSL_EARLY_DATA
  1903. ctx->maxEarlyDataSz = MAX_EARLY_DATA_SZ;
  1904. #endif
  1905. #if defined(WOLFSSL_TLS13) && !defined(HAVE_SUPPORTED_CURVES)
  1906. ctx->noPskDheKe = 1;
  1907. #endif
  1908. #if defined(WOLFSSL_QT) && !defined(NO_PSK)
  1909. /* Qt retrieves supported cipher list at initialization
  1910. * from get_cipher_compat().
  1911. * Qt doesn't allow to use a cipher if it is not in the supported list.
  1912. * Therefore, we need to enable PSK cipher at the beginning.
  1913. */
  1914. ctx->havePSK = 1;
  1915. #endif
  1916. ctx->heap = heap; /* wolfSSL_CTX_load_static_memory sets */
  1917. #ifdef HAVE_WOLF_EVENT
  1918. ret = wolfEventQueue_Init(&ctx->event_queue);
  1919. #endif /* HAVE_WOLF_EVENT */
  1920. return ret;
  1921. }
  1922. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  1923. void wolfSSL_CRYPTO_cleanup_ex_data(WOLFSSL_CRYPTO_EX_DATA* ex_data)
  1924. {
  1925. int n_ex_data = (int)(sizeof ex_data->ex_data / sizeof ex_data->ex_data[0]);
  1926. for (--n_ex_data; n_ex_data >= 0; --n_ex_data) {
  1927. if (ex_data->ex_data[n_ex_data] != NULL)
  1928. (void)wolfSSL_CRYPTO_set_ex_data_with_cleanup(ex_data, n_ex_data,
  1929. NULL, NULL);
  1930. }
  1931. }
  1932. #endif /* HAVE_EX_DATA_CLEANUP_HOOKS */
  1933. /* In case contexts are held in array and don't want to free actual ctx */
  1934. void SSL_CtxResourceFree(WOLFSSL_CTX* ctx)
  1935. {
  1936. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2) && \
  1937. defined(HAVE_TLS_EXTENSIONS) && !defined(NO_WOLFSSL_SERVER)
  1938. int i;
  1939. #endif
  1940. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  1941. wolfSSL_CRYPTO_cleanup_ex_data(&ctx->ex_data);
  1942. #endif
  1943. #ifdef HAVE_WOLF_EVENT
  1944. wolfEventQueue_Free(&ctx->event_queue);
  1945. #endif /* HAVE_WOLF_EVENT */
  1946. #ifdef WOLFSSL_STATIC_MEMORY
  1947. if (ctx->onHeap == 1) {
  1948. XFREE(ctx->method, ctx->heap, DYNAMIC_TYPE_METHOD);
  1949. }
  1950. else {
  1951. XFREE(ctx->method, NULL, DYNAMIC_TYPE_METHOD);
  1952. }
  1953. #else
  1954. XFREE(ctx->method, ctx->heap, DYNAMIC_TYPE_METHOD);
  1955. #endif
  1956. ctx->method = NULL;
  1957. if (ctx->suites) {
  1958. XFREE(ctx->suites, ctx->heap, DYNAMIC_TYPE_SUITES);
  1959. ctx->suites = NULL;
  1960. }
  1961. #ifndef NO_DH
  1962. XFREE(ctx->serverDH_G.buffer, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1963. ctx->serverDH_G.buffer = NULL;
  1964. XFREE(ctx->serverDH_P.buffer, ctx->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  1965. ctx->serverDH_P.buffer = NULL;
  1966. #endif /* !NO_DH */
  1967. #ifdef SINGLE_THREADED
  1968. if (ctx->rng) {
  1969. wc_FreeRng(ctx->rng);
  1970. XFREE(ctx->rng, ctx->heap, DYNAMIC_TYPE_RNG);
  1971. ctx->rng = NULL;
  1972. }
  1973. #endif /* SINGLE_THREADED */
  1974. #ifndef NO_CERTS
  1975. FreeDer(&ctx->privateKey);
  1976. #ifdef OPENSSL_ALL
  1977. wolfSSL_EVP_PKEY_free(ctx->privateKeyPKey);
  1978. #endif
  1979. FreeDer(&ctx->certificate);
  1980. #ifdef KEEP_OUR_CERT
  1981. if (ctx->ourCert && ctx->ownOurCert) {
  1982. wolfSSL_X509_free(ctx->ourCert);
  1983. ctx->ourCert = NULL;
  1984. }
  1985. #endif /* KEEP_OUR_CERT */
  1986. FreeDer(&ctx->certChain);
  1987. wolfSSL_CertManagerFree(ctx->cm);
  1988. ctx->cm = NULL;
  1989. #ifdef OPENSSL_ALL
  1990. if (ctx->x509_store.objs != NULL) {
  1991. wolfSSL_sk_X509_OBJECT_free(ctx->x509_store.objs);
  1992. ctx->x509_store.objs = NULL;
  1993. }
  1994. #endif
  1995. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER) || \
  1996. defined(WOLFSSL_WPAS_SMALL)
  1997. wolfSSL_X509_STORE_free(ctx->x509_store_pt);
  1998. #endif
  1999. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA) || defined(HAVE_LIGHTY)
  2000. wolfSSL_sk_X509_NAME_pop_free(ctx->ca_names, NULL);
  2001. ctx->ca_names = NULL;
  2002. #endif
  2003. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  2004. if (ctx->x509Chain) {
  2005. wolfSSL_sk_X509_free(ctx->x509Chain);
  2006. ctx->x509Chain = NULL;
  2007. }
  2008. #endif
  2009. #endif /* !NO_CERTS */
  2010. #ifdef HAVE_TLS_EXTENSIONS
  2011. TLSX_FreeAll(ctx->extensions, ctx->heap);
  2012. #ifndef NO_WOLFSSL_SERVER
  2013. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  2014. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  2015. if (ctx->certOcspRequest) {
  2016. FreeOcspRequest(ctx->certOcspRequest);
  2017. XFREE(ctx->certOcspRequest, ctx->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  2018. }
  2019. #endif
  2020. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  2021. for (i = 0; i < MAX_CHAIN_DEPTH; i++) {
  2022. if (ctx->chainOcspRequest[i]) {
  2023. FreeOcspRequest(ctx->chainOcspRequest[i]);
  2024. XFREE(ctx->chainOcspRequest[i], ctx->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  2025. ctx->chainOcspRequest[i] = NULL;
  2026. }
  2027. }
  2028. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  2029. #endif /* !NO_WOLFSSL_SERVER */
  2030. #endif /* HAVE_TLS_EXTENSIONS */
  2031. #ifdef OPENSSL_EXTRA
  2032. if(ctx->alpn_cli_protos) {
  2033. XFREE((void *)ctx->alpn_cli_protos, NULL, DYNAMIC_TYPE_OPENSSL);
  2034. ctx->alpn_cli_protos = NULL;
  2035. }
  2036. if (ctx->param) {
  2037. XFREE(ctx->param, ctx->heap, DYNAMIC_TYPE_OPENSSL);
  2038. }
  2039. if (ctx->x509_store.lookup.dirs) {
  2040. #if defined(OPENSSL_ALL) && !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  2041. if (ctx->x509_store.lookup.dirs->dir_entry) {
  2042. wolfSSL_sk_BY_DIR_entry_free(ctx->x509_store.lookup.dirs->dir_entry);
  2043. }
  2044. #endif
  2045. wc_FreeMutex(&ctx->x509_store.lookup.dirs->lock);
  2046. XFREE(ctx->x509_store.lookup.dirs, ctx->heap, DYNAMIC_TYPE_OPENSSL);
  2047. }
  2048. #endif
  2049. #ifdef WOLFSSL_STATIC_EPHEMERAL
  2050. #ifndef NO_DH
  2051. if (ctx->staticKE.dhKey && ctx->staticKE.weOwnDH)
  2052. FreeDer(&ctx->staticKE.dhKey);
  2053. #endif
  2054. #ifdef HAVE_ECC
  2055. if (ctx->staticKE.ecKey && ctx->staticKE.weOwnEC)
  2056. FreeDer(&ctx->staticKE.ecKey);
  2057. #endif
  2058. #ifdef HAVE_CURVE25519
  2059. if (ctx->staticKE.x25519Key && ctx->staticKE.weOwnX25519)
  2060. FreeDer(&ctx->staticKE.x25519Key);
  2061. #endif
  2062. #endif
  2063. #ifdef WOLFSSL_STATIC_MEMORY
  2064. if (ctx->heap != NULL) {
  2065. #ifdef WOLFSSL_HEAP_TEST
  2066. /* avoid dereferencing a test value */
  2067. if (ctx->heap != (void*)WOLFSSL_HEAP_TEST)
  2068. #endif
  2069. {
  2070. WOLFSSL_HEAP_HINT* hint = (WOLFSSL_HEAP_HINT*)(ctx->heap);
  2071. wc_FreeMutex(&((WOLFSSL_HEAP*)(hint->memory))->memory_mutex);
  2072. }
  2073. }
  2074. #endif /* WOLFSSL_STATIC_MEMORY */
  2075. }
  2076. void FreeSSL_Ctx(WOLFSSL_CTX* ctx)
  2077. {
  2078. int refCount;
  2079. /* decrement CTX reference count */
  2080. if ((refCount = SSL_CTX_RefCount(ctx, -1)) < 0) {
  2081. /* check error state, if mutex error code then mutex init failed but
  2082. * CTX was still malloc'd */
  2083. if (ctx->err == CTX_INIT_MUTEX_E) {
  2084. SSL_CtxResourceFree(ctx);
  2085. XFREE(ctx, ctx->heap, DYNAMIC_TYPE_CTX);
  2086. }
  2087. return;
  2088. }
  2089. if (refCount == 0) {
  2090. void* heap = ctx->heap;
  2091. WOLFSSL_MSG("CTX ref count down to 0, doing full free");
  2092. SSL_CtxResourceFree(ctx);
  2093. #if defined(HAVE_SESSION_TICKET) && !defined(NO_WOLFSSL_SERVER) && \
  2094. !defined(WOLFSSL_NO_DEF_TICKET_ENC_CB)
  2095. TicketEncCbCtx_Free(&ctx->ticketKeyCtx);
  2096. #endif
  2097. wc_FreeMutex(&ctx->countMutex);
  2098. #ifdef WOLFSSL_STATIC_MEMORY
  2099. if (ctx->onHeap == 0) {
  2100. heap = NULL;
  2101. }
  2102. #endif
  2103. XFREE(ctx, heap, DYNAMIC_TYPE_CTX);
  2104. (void)heap; /* not used in some builds */
  2105. }
  2106. else {
  2107. (void)ctx;
  2108. WOLFSSL_MSG("CTX ref count not 0 yet, no free");
  2109. }
  2110. }
  2111. /* Set cipher pointers to null */
  2112. void InitCiphers(WOLFSSL* ssl)
  2113. {
  2114. #ifdef BUILD_ARC4
  2115. ssl->encrypt.arc4 = NULL;
  2116. ssl->decrypt.arc4 = NULL;
  2117. #endif
  2118. #ifdef BUILD_DES3
  2119. ssl->encrypt.des3 = NULL;
  2120. ssl->decrypt.des3 = NULL;
  2121. #endif
  2122. #ifdef BUILD_AES
  2123. ssl->encrypt.aes = NULL;
  2124. ssl->decrypt.aes = NULL;
  2125. #endif
  2126. #ifdef HAVE_CAMELLIA
  2127. ssl->encrypt.cam = NULL;
  2128. ssl->decrypt.cam = NULL;
  2129. #endif
  2130. #ifdef HAVE_HC128
  2131. ssl->encrypt.hc128 = NULL;
  2132. ssl->decrypt.hc128 = NULL;
  2133. #endif
  2134. #ifdef BUILD_RABBIT
  2135. ssl->encrypt.rabbit = NULL;
  2136. ssl->decrypt.rabbit = NULL;
  2137. #endif
  2138. #ifdef HAVE_CHACHA
  2139. ssl->encrypt.chacha = NULL;
  2140. ssl->decrypt.chacha = NULL;
  2141. #endif
  2142. #if defined(HAVE_POLY1305) && defined(HAVE_ONE_TIME_AUTH)
  2143. ssl->auth.poly1305 = NULL;
  2144. #endif
  2145. ssl->encrypt.setup = 0;
  2146. ssl->decrypt.setup = 0;
  2147. #ifdef HAVE_ONE_TIME_AUTH
  2148. ssl->auth.setup = 0;
  2149. #endif
  2150. #ifdef HAVE_IDEA
  2151. ssl->encrypt.idea = NULL;
  2152. ssl->decrypt.idea = NULL;
  2153. #endif
  2154. }
  2155. /* Free ciphers */
  2156. void FreeCiphers(WOLFSSL* ssl)
  2157. {
  2158. (void)ssl;
  2159. #ifdef BUILD_ARC4
  2160. wc_Arc4Free(ssl->encrypt.arc4);
  2161. wc_Arc4Free(ssl->decrypt.arc4);
  2162. XFREE(ssl->encrypt.arc4, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2163. XFREE(ssl->decrypt.arc4, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2164. #endif
  2165. #ifdef BUILD_DES3
  2166. wc_Des3Free(ssl->encrypt.des3);
  2167. wc_Des3Free(ssl->decrypt.des3);
  2168. XFREE(ssl->encrypt.des3, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2169. XFREE(ssl->decrypt.des3, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2170. #endif
  2171. #if defined(BUILD_AES) || defined(BUILD_AESGCM) /* See: InitKeys() in keys.c
  2172. * on addition of BUILD_AESGCM
  2173. * check (enc->aes, dec->aes) */
  2174. wc_AesFree(ssl->encrypt.aes);
  2175. wc_AesFree(ssl->decrypt.aes);
  2176. #if (defined(BUILD_AESGCM) || defined(HAVE_AESCCM)) && \
  2177. !defined(WOLFSSL_NO_TLS12)
  2178. XFREE(ssl->decrypt.additional, ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  2179. XFREE(ssl->encrypt.additional, ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  2180. #endif
  2181. XFREE(ssl->encrypt.aes, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2182. XFREE(ssl->decrypt.aes, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2183. #endif
  2184. #ifdef CIPHER_NONCE
  2185. XFREE(ssl->decrypt.nonce, ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  2186. XFREE(ssl->encrypt.nonce, ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  2187. #endif
  2188. #ifdef HAVE_CAMELLIA
  2189. XFREE(ssl->encrypt.cam, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2190. XFREE(ssl->decrypt.cam, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2191. #endif
  2192. #ifdef HAVE_HC128
  2193. XFREE(ssl->encrypt.hc128, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2194. XFREE(ssl->decrypt.hc128, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2195. #endif
  2196. #ifdef BUILD_RABBIT
  2197. XFREE(ssl->encrypt.rabbit, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2198. XFREE(ssl->decrypt.rabbit, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2199. #endif
  2200. #ifdef HAVE_CHACHA
  2201. XFREE(ssl->encrypt.chacha, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2202. XFREE(ssl->decrypt.chacha, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2203. #endif
  2204. #if defined(HAVE_POLY1305) && defined(HAVE_ONE_TIME_AUTH)
  2205. XFREE(ssl->auth.poly1305, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2206. #endif
  2207. #ifdef HAVE_IDEA
  2208. XFREE(ssl->encrypt.idea, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2209. XFREE(ssl->decrypt.idea, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2210. #endif
  2211. #if defined(WOLFSSL_TLS13) && defined(HAVE_NULL_CIPHER)
  2212. wc_HmacFree(ssl->encrypt.hmac);
  2213. wc_HmacFree(ssl->decrypt.hmac);
  2214. XFREE(ssl->encrypt.hmac, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2215. XFREE(ssl->decrypt.hmac, ssl->heap, DYNAMIC_TYPE_CIPHER);
  2216. #endif
  2217. }
  2218. void InitCipherSpecs(CipherSpecs* cs)
  2219. {
  2220. XMEMSET(cs, 0, sizeof(CipherSpecs));
  2221. cs->bulk_cipher_algorithm = INVALID_BYTE;
  2222. cs->cipher_type = INVALID_BYTE;
  2223. cs->mac_algorithm = INVALID_BYTE;
  2224. cs->kea = INVALID_BYTE;
  2225. cs->sig_algo = INVALID_BYTE;
  2226. }
  2227. #if defined(USE_ECDSA_KEYSZ_HASH_ALGO) || (defined(WOLFSSL_TLS13) && \
  2228. defined(HAVE_ECC))
  2229. static int GetMacDigestSize(byte macAlgo)
  2230. {
  2231. switch (macAlgo) {
  2232. #ifndef NO_SHA
  2233. case sha_mac:
  2234. return WC_SHA_DIGEST_SIZE;
  2235. #endif
  2236. #ifndef NO_SHA256
  2237. case sha256_mac:
  2238. return WC_SHA256_DIGEST_SIZE;
  2239. #endif
  2240. #ifdef WOLFSSL_SHA384
  2241. case sha384_mac:
  2242. return WC_SHA384_DIGEST_SIZE;
  2243. #endif
  2244. #ifdef WOLFSSL_SHA512
  2245. case sha512_mac:
  2246. return WC_SHA512_DIGEST_SIZE;
  2247. #endif
  2248. default:
  2249. break;
  2250. }
  2251. return NOT_COMPILED_IN;
  2252. }
  2253. #endif /* USE_ECDSA_KEYSZ_HASH_ALGO */
  2254. static WC_INLINE void AddSuiteHashSigAlgo(Suites* suites, byte macAlgo,
  2255. byte sigAlgo, int keySz, word16* inOutIdx)
  2256. {
  2257. int addSigAlgo = 1;
  2258. #ifdef USE_ECDSA_KEYSZ_HASH_ALGO
  2259. if (sigAlgo == ecc_dsa_sa_algo) {
  2260. int digestSz = GetMacDigestSize(macAlgo);
  2261. /* do not add sig/algos with digest size larger than key size */
  2262. if (digestSz <= 0 || (keySz > 0 && digestSz > keySz)) {
  2263. addSigAlgo = 0;
  2264. }
  2265. }
  2266. #else
  2267. (void)keySz;
  2268. #endif /* USE_ECDSA_KEYSZ_HASH_ALGO */
  2269. if (addSigAlgo) {
  2270. #ifdef HAVE_ED25519
  2271. if (sigAlgo == ed25519_sa_algo) {
  2272. suites->hashSigAlgo[*inOutIdx] = ED25519_SA_MAJOR;
  2273. *inOutIdx += 1;
  2274. suites->hashSigAlgo[*inOutIdx] = ED25519_SA_MINOR;
  2275. *inOutIdx += 1;
  2276. }
  2277. else
  2278. #endif
  2279. #ifdef HAVE_ED448
  2280. if (sigAlgo == ed448_sa_algo) {
  2281. suites->hashSigAlgo[*inOutIdx] = ED448_SA_MAJOR;
  2282. *inOutIdx += 1;
  2283. suites->hashSigAlgo[*inOutIdx] = ED448_SA_MINOR;
  2284. *inOutIdx += 1;
  2285. }
  2286. else
  2287. #endif
  2288. #ifdef WC_RSA_PSS
  2289. if (sigAlgo == rsa_pss_sa_algo) {
  2290. /* RSA PSS is sig then mac */
  2291. suites->hashSigAlgo[*inOutIdx] = sigAlgo;
  2292. *inOutIdx += 1;
  2293. suites->hashSigAlgo[*inOutIdx] = macAlgo;
  2294. *inOutIdx += 1;
  2295. #ifdef WOLFSSL_TLS13
  2296. /* Add the certificate algorithm as well */
  2297. suites->hashSigAlgo[*inOutIdx] = sigAlgo;
  2298. *inOutIdx += 1;
  2299. suites->hashSigAlgo[*inOutIdx] = PSS_RSAE_TO_PSS_PSS(macAlgo);
  2300. *inOutIdx += 1;
  2301. #endif
  2302. }
  2303. else
  2304. #endif
  2305. {
  2306. suites->hashSigAlgo[*inOutIdx] = macAlgo;
  2307. *inOutIdx += 1;
  2308. suites->hashSigAlgo[*inOutIdx] = sigAlgo;
  2309. *inOutIdx += 1;
  2310. }
  2311. }
  2312. }
  2313. void InitSuitesHashSigAlgo(Suites* suites, int haveECDSAsig, int haveRSAsig,
  2314. int haveAnon, int tls1_2, int keySz)
  2315. {
  2316. word16 idx = 0;
  2317. (void)tls1_2;
  2318. (void)keySz;
  2319. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  2320. if (haveECDSAsig) {
  2321. #ifdef HAVE_ECC
  2322. #ifdef WOLFSSL_SHA512
  2323. AddSuiteHashSigAlgo(suites, sha512_mac, ecc_dsa_sa_algo, keySz, &idx);
  2324. #endif
  2325. #ifdef WOLFSSL_SHA384
  2326. AddSuiteHashSigAlgo(suites, sha384_mac, ecc_dsa_sa_algo, keySz, &idx);
  2327. #endif
  2328. #ifndef NO_SHA256
  2329. AddSuiteHashSigAlgo(suites, sha256_mac, ecc_dsa_sa_algo, keySz, &idx);
  2330. #endif
  2331. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  2332. defined(WOLFSSL_ALLOW_TLS_SHA1))
  2333. AddSuiteHashSigAlgo(suites, sha_mac, ecc_dsa_sa_algo, keySz, &idx);
  2334. #endif
  2335. #endif
  2336. #ifdef HAVE_ED25519
  2337. AddSuiteHashSigAlgo(suites, no_mac, ed25519_sa_algo, keySz, &idx);
  2338. #endif
  2339. #ifdef HAVE_ED448
  2340. AddSuiteHashSigAlgo(suites, no_mac, ed448_sa_algo, keySz, &idx);
  2341. #endif
  2342. }
  2343. #endif /* HAVE_ECC || HAVE_ED25519 || defined(HAVE_ED448 */
  2344. if (haveRSAsig) {
  2345. #ifdef WC_RSA_PSS
  2346. if (tls1_2) {
  2347. #ifdef WOLFSSL_SHA512
  2348. AddSuiteHashSigAlgo(suites, sha512_mac, rsa_pss_sa_algo, keySz,
  2349. &idx);
  2350. #endif
  2351. #ifdef WOLFSSL_SHA384
  2352. AddSuiteHashSigAlgo(suites, sha384_mac, rsa_pss_sa_algo, keySz,
  2353. &idx);
  2354. #endif
  2355. #ifndef NO_SHA256
  2356. AddSuiteHashSigAlgo(suites, sha256_mac, rsa_pss_sa_algo, keySz,
  2357. &idx);
  2358. #endif
  2359. }
  2360. #endif
  2361. #ifdef WOLFSSL_SHA512
  2362. AddSuiteHashSigAlgo(suites, sha512_mac, rsa_sa_algo, keySz, &idx);
  2363. #endif
  2364. #ifdef WOLFSSL_SHA384
  2365. AddSuiteHashSigAlgo(suites, sha384_mac, rsa_sa_algo, keySz, &idx);
  2366. #endif
  2367. #ifndef NO_SHA256
  2368. AddSuiteHashSigAlgo(suites, sha256_mac, rsa_sa_algo, keySz, &idx);
  2369. #endif
  2370. #ifdef WOLFSSL_SHA224
  2371. AddSuiteHashSigAlgo(suites, sha224_mac, rsa_sa_algo, keySz, &idx);
  2372. #endif
  2373. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  2374. defined(WOLFSSL_ALLOW_TLS_SHA1))
  2375. AddSuiteHashSigAlgo(suites, sha_mac, rsa_sa_algo, keySz, &idx);
  2376. #endif
  2377. }
  2378. #ifdef HAVE_ANON
  2379. if (haveAnon) {
  2380. AddSuiteHashSigAlgo(suites, sha_mac, anonymous_sa_algo, keySz, &idx);
  2381. }
  2382. #endif
  2383. (void)haveAnon;
  2384. (void)haveECDSAsig;
  2385. suites->hashSigAlgoSz = idx;
  2386. }
  2387. void InitSuites(Suites* suites, ProtocolVersion pv, int keySz, word16 haveRSA,
  2388. word16 havePSK, word16 haveDH, word16 haveECDSAsig,
  2389. word16 haveECC, word16 haveStaticECC, word16 haveAnon,
  2390. int side)
  2391. {
  2392. word16 idx = 0;
  2393. int tls = pv.major == SSLv3_MAJOR && pv.minor >= TLSv1_MINOR;
  2394. int tls1_2 = pv.major == SSLv3_MAJOR && pv.minor >= TLSv1_2_MINOR;
  2395. #ifdef WOLFSSL_TLS13
  2396. int tls1_3 = IsAtLeastTLSv1_3(pv);
  2397. #endif
  2398. int dtls = 0;
  2399. int haveRSAsig = 1;
  2400. (void)tls; /* shut up compiler */
  2401. (void)tls1_2;
  2402. (void)dtls;
  2403. (void)haveDH;
  2404. (void)havePSK;
  2405. (void)haveStaticECC;
  2406. (void)haveECC;
  2407. (void)side;
  2408. (void)haveRSA; /* some builds won't read */
  2409. (void)haveRSAsig; /* non ecc builds won't read */
  2410. (void)haveAnon; /* anon ciphers optional */
  2411. if (suites == NULL) {
  2412. WOLFSSL_MSG("InitSuites pointer error");
  2413. return;
  2414. }
  2415. if (suites->setSuites)
  2416. return; /* trust user settings, don't override */
  2417. #ifdef WOLFSSL_TLS13
  2418. #ifdef BUILD_TLS_AES_128_GCM_SHA256
  2419. if (tls1_3) {
  2420. suites->suites[idx++] = TLS13_BYTE;
  2421. suites->suites[idx++] = TLS_AES_128_GCM_SHA256;
  2422. }
  2423. #endif
  2424. #ifdef BUILD_TLS_AES_256_GCM_SHA384
  2425. if (tls1_3) {
  2426. suites->suites[idx++] = TLS13_BYTE;
  2427. suites->suites[idx++] = TLS_AES_256_GCM_SHA384;
  2428. }
  2429. #endif
  2430. #ifdef BUILD_TLS_CHACHA20_POLY1305_SHA256
  2431. if (tls1_3) {
  2432. suites->suites[idx++] = TLS13_BYTE;
  2433. suites->suites[idx++] = TLS_CHACHA20_POLY1305_SHA256;
  2434. }
  2435. #endif
  2436. #ifdef BUILD_TLS_AES_128_CCM_SHA256
  2437. if (tls1_3) {
  2438. suites->suites[idx++] = TLS13_BYTE;
  2439. suites->suites[idx++] = TLS_AES_128_CCM_SHA256;
  2440. }
  2441. #endif
  2442. #ifdef BUILD_TLS_AES_128_CCM_8_SHA256
  2443. if (tls1_3) {
  2444. suites->suites[idx++] = TLS13_BYTE;
  2445. suites->suites[idx++] = TLS_AES_128_CCM_8_SHA256;
  2446. }
  2447. #endif
  2448. #ifdef HAVE_NULL_CIPHER
  2449. #ifdef BUILD_TLS_SHA256_SHA256
  2450. if (tls1_3) {
  2451. suites->suites[idx++] = ECC_BYTE;
  2452. suites->suites[idx++] = TLS_SHA256_SHA256;
  2453. }
  2454. #endif
  2455. #ifdef BUILD_TLS_SHA384_SHA384
  2456. if (tls1_3) {
  2457. suites->suites[idx++] = ECC_BYTE;
  2458. suites->suites[idx++] = TLS_SHA384_SHA384;
  2459. }
  2460. #endif
  2461. #endif
  2462. #endif /* WOLFSSL_TLS13 */
  2463. #ifndef WOLFSSL_NO_TLS12
  2464. #if !defined(NO_WOLFSSL_SERVER) && !defined(NO_RSA)
  2465. if (side == WOLFSSL_SERVER_END && haveStaticECC) {
  2466. haveRSA = 0; /* can't do RSA with ECDSA key */
  2467. }
  2468. if (side == WOLFSSL_SERVER_END && haveECDSAsig) {
  2469. haveRSAsig = 0; /* can't have RSA sig if signed by ECDSA */
  2470. }
  2471. #endif /* !NO_WOLFSSL_SERVER */
  2472. #ifdef WOLFSSL_DTLS
  2473. if (pv.major == DTLS_MAJOR) {
  2474. dtls = 1;
  2475. tls = 1;
  2476. /* May be dead assignments dependent upon configuration */
  2477. (void) dtls;
  2478. (void) tls;
  2479. tls1_2 = pv.minor <= DTLSv1_2_MINOR;
  2480. }
  2481. #endif
  2482. #ifdef HAVE_RENEGOTIATION_INDICATION
  2483. if (side == WOLFSSL_CLIENT_END) {
  2484. suites->suites[idx++] = CIPHER_BYTE;
  2485. suites->suites[idx++] = TLS_EMPTY_RENEGOTIATION_INFO_SCSV;
  2486. }
  2487. #endif
  2488. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384
  2489. if (tls1_2 && haveECC) {
  2490. suites->suites[idx++] = ECC_BYTE;
  2491. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384;
  2492. }
  2493. #endif
  2494. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256
  2495. if (tls1_2 && haveECC) {
  2496. suites->suites[idx++] = ECC_BYTE;
  2497. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256;
  2498. }
  2499. #endif
  2500. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384
  2501. if (tls1_2 && haveRSA) {
  2502. suites->suites[idx++] = ECC_BYTE;
  2503. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384;
  2504. }
  2505. #endif
  2506. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256
  2507. if (tls1_2 && haveRSA) {
  2508. suites->suites[idx++] = ECC_BYTE;
  2509. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256;
  2510. }
  2511. #endif
  2512. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_GCM_SHA384
  2513. if (tls1_2 && haveDH && haveRSA) {
  2514. suites->suites[idx++] = CIPHER_BYTE;
  2515. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_256_GCM_SHA384;
  2516. }
  2517. #endif
  2518. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_GCM_SHA256
  2519. if (tls1_2 && haveDH && haveRSA) {
  2520. suites->suites[idx++] = CIPHER_BYTE;
  2521. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_128_GCM_SHA256;
  2522. }
  2523. #endif
  2524. #ifdef BUILD_TLS_RSA_WITH_AES_256_GCM_SHA384
  2525. if (tls1_2 && haveRSA) {
  2526. suites->suites[idx++] = CIPHER_BYTE;
  2527. suites->suites[idx++] = TLS_RSA_WITH_AES_256_GCM_SHA384;
  2528. }
  2529. #endif
  2530. #ifdef BUILD_TLS_RSA_WITH_AES_128_GCM_SHA256
  2531. if (tls1_2 && haveRSA) {
  2532. suites->suites[idx++] = CIPHER_BYTE;
  2533. suites->suites[idx++] = TLS_RSA_WITH_AES_128_GCM_SHA256;
  2534. }
  2535. #endif
  2536. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384
  2537. if (tls1_2 && haveECC && haveStaticECC) {
  2538. suites->suites[idx++] = ECC_BYTE;
  2539. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384;
  2540. }
  2541. #endif
  2542. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256
  2543. if (tls1_2 && haveECC && haveStaticECC) {
  2544. suites->suites[idx++] = ECC_BYTE;
  2545. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256;
  2546. }
  2547. #endif
  2548. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384
  2549. if (tls1_2 && haveRSAsig && haveStaticECC) {
  2550. suites->suites[idx++] = ECC_BYTE;
  2551. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384;
  2552. }
  2553. #endif
  2554. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256
  2555. if (tls1_2 && haveRSAsig && haveStaticECC) {
  2556. suites->suites[idx++] = ECC_BYTE;
  2557. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256;
  2558. }
  2559. #endif
  2560. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_GCM_SHA384
  2561. if (tls1_2 && haveDH && havePSK) {
  2562. suites->suites[idx++] = CIPHER_BYTE;
  2563. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_256_GCM_SHA384;
  2564. }
  2565. #endif
  2566. #ifdef BUILD_TLS_DH_anon_WITH_AES_128_CBC_SHA
  2567. if (tls1_2 && haveDH && haveAnon) {
  2568. suites->suites[idx++] = CIPHER_BYTE;
  2569. suites->suites[idx++] = TLS_DH_anon_WITH_AES_128_CBC_SHA;
  2570. }
  2571. #endif
  2572. #ifdef BUILD_TLS_DH_anon_WITH_AES_256_GCM_SHA384
  2573. if (tls1_2 && haveDH && haveAnon) {
  2574. suites->suites[idx++] = CIPHER_BYTE;
  2575. suites->suites[idx++] = TLS_DH_anon_WITH_AES_256_GCM_SHA384;
  2576. }
  2577. #endif
  2578. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_GCM_SHA256
  2579. if (tls1_2 && haveDH && havePSK) {
  2580. suites->suites[idx++] = CIPHER_BYTE;
  2581. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_128_GCM_SHA256;
  2582. }
  2583. #endif
  2584. #ifdef BUILD_TLS_PSK_WITH_AES_256_GCM_SHA384
  2585. if (tls1_2 && havePSK) {
  2586. suites->suites[idx++] = CIPHER_BYTE;
  2587. suites->suites[idx++] = TLS_PSK_WITH_AES_256_GCM_SHA384;
  2588. }
  2589. #endif
  2590. #ifdef BUILD_TLS_PSK_WITH_AES_128_GCM_SHA256
  2591. if (tls1_2 && havePSK) {
  2592. suites->suites[idx++] = CIPHER_BYTE;
  2593. suites->suites[idx++] = TLS_PSK_WITH_AES_128_GCM_SHA256;
  2594. }
  2595. #endif
  2596. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256
  2597. if (tls1_2 && haveECC) {
  2598. suites->suites[idx++] = CHACHA_BYTE;
  2599. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256;
  2600. }
  2601. #endif
  2602. #ifdef BUILD_TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256
  2603. if (tls1_2 && haveRSA) {
  2604. suites->suites[idx++] = CHACHA_BYTE;
  2605. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256;
  2606. }
  2607. #endif
  2608. #ifdef BUILD_TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256
  2609. if (tls1_2 && haveRSA) {
  2610. suites->suites[idx++] = CHACHA_BYTE;
  2611. suites->suites[idx++] = TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256;
  2612. }
  2613. #endif
  2614. /* Place as higher priority for MYSQL */
  2615. #if defined(WOLFSSL_MYSQL_COMPATIBLE)
  2616. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_CBC_SHA
  2617. if (tls && haveDH && haveRSA) {
  2618. suites->suites[idx++] = CIPHER_BYTE;
  2619. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_256_CBC_SHA;
  2620. }
  2621. #endif
  2622. #endif
  2623. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256
  2624. if (tls1_2 && haveRSA) {
  2625. suites->suites[idx++] = ECC_BYTE;
  2626. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256;
  2627. }
  2628. #endif
  2629. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256
  2630. if (tls1_2 && haveECC) {
  2631. suites->suites[idx++] = ECC_BYTE;
  2632. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256;
  2633. }
  2634. #endif
  2635. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256
  2636. if (tls1_2 && haveRSAsig && haveStaticECC) {
  2637. suites->suites[idx++] = ECC_BYTE;
  2638. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256;
  2639. }
  2640. #endif
  2641. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256
  2642. if (tls1_2 && haveECC && haveStaticECC) {
  2643. suites->suites[idx++] = ECC_BYTE;
  2644. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256;
  2645. }
  2646. #endif
  2647. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384
  2648. if (tls1_2 && haveRSA) {
  2649. suites->suites[idx++] = ECC_BYTE;
  2650. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384;
  2651. }
  2652. #endif
  2653. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384
  2654. if (tls1_2 && haveECC) {
  2655. suites->suites[idx++] = ECC_BYTE;
  2656. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384;
  2657. }
  2658. #endif
  2659. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384
  2660. if (tls1_2 && haveRSAsig && haveStaticECC) {
  2661. suites->suites[idx++] = ECC_BYTE;
  2662. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384;
  2663. }
  2664. #endif
  2665. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384
  2666. if (tls1_2 && haveECC && haveStaticECC) {
  2667. suites->suites[idx++] = ECC_BYTE;
  2668. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384;
  2669. }
  2670. #endif
  2671. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA
  2672. if (tls && haveECC) {
  2673. suites->suites[idx++] = ECC_BYTE;
  2674. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA;
  2675. }
  2676. #endif
  2677. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA
  2678. if (tls && haveECC && haveStaticECC) {
  2679. suites->suites[idx++] = ECC_BYTE;
  2680. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA;
  2681. }
  2682. #endif
  2683. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA
  2684. if (tls && haveECC) {
  2685. suites->suites[idx++] = ECC_BYTE;
  2686. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA;
  2687. }
  2688. #endif
  2689. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA
  2690. if (tls && haveECC && haveStaticECC) {
  2691. suites->suites[idx++] = ECC_BYTE;
  2692. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA;
  2693. }
  2694. #endif
  2695. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_RC4_128_SHA
  2696. if (!dtls && tls && haveECC) {
  2697. suites->suites[idx++] = ECC_BYTE;
  2698. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_RC4_128_SHA;
  2699. }
  2700. #endif
  2701. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_RC4_128_SHA
  2702. if (!dtls && tls && haveECC && haveStaticECC) {
  2703. suites->suites[idx++] = ECC_BYTE;
  2704. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_RC4_128_SHA;
  2705. }
  2706. #endif
  2707. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA
  2708. if (tls && haveECC) {
  2709. suites->suites[idx++] = ECC_BYTE;
  2710. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA;
  2711. }
  2712. #endif
  2713. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA
  2714. if (tls && haveECC && haveStaticECC) {
  2715. suites->suites[idx++] = ECC_BYTE;
  2716. suites->suites[idx++] = TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA;
  2717. }
  2718. #endif
  2719. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA
  2720. if (tls && haveRSA) {
  2721. suites->suites[idx++] = ECC_BYTE;
  2722. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA;
  2723. }
  2724. #endif
  2725. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_CBC_SHA
  2726. if (tls && haveRSAsig && haveStaticECC) {
  2727. suites->suites[idx++] = ECC_BYTE;
  2728. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_256_CBC_SHA;
  2729. }
  2730. #endif
  2731. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA
  2732. if (tls && haveRSA) {
  2733. suites->suites[idx++] = ECC_BYTE;
  2734. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA;
  2735. }
  2736. #endif
  2737. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_CBC_SHA
  2738. if (tls && haveRSAsig && haveStaticECC) {
  2739. suites->suites[idx++] = ECC_BYTE;
  2740. suites->suites[idx++] = TLS_ECDH_RSA_WITH_AES_128_CBC_SHA;
  2741. }
  2742. #endif
  2743. #ifdef BUILD_TLS_ECDHE_RSA_WITH_RC4_128_SHA
  2744. if (!dtls && tls && haveRSA) {
  2745. suites->suites[idx++] = ECC_BYTE;
  2746. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_RC4_128_SHA;
  2747. }
  2748. #endif
  2749. #ifdef BUILD_TLS_ECDH_RSA_WITH_RC4_128_SHA
  2750. if (!dtls && tls && haveRSAsig && haveStaticECC) {
  2751. suites->suites[idx++] = ECC_BYTE;
  2752. suites->suites[idx++] = TLS_ECDH_RSA_WITH_RC4_128_SHA;
  2753. }
  2754. #endif
  2755. #ifdef BUILD_TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA
  2756. if (tls && haveRSA) {
  2757. suites->suites[idx++] = ECC_BYTE;
  2758. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA;
  2759. }
  2760. #endif
  2761. #ifdef BUILD_TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA
  2762. if (tls && haveRSAsig && haveStaticECC) {
  2763. suites->suites[idx++] = ECC_BYTE;
  2764. suites->suites[idx++] = TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA;
  2765. }
  2766. #endif
  2767. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CCM
  2768. if (tls1_2 && haveECC) {
  2769. suites->suites[idx++] = ECC_BYTE;
  2770. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_128_CCM;
  2771. }
  2772. #endif
  2773. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8
  2774. if (tls1_2 && haveECC) {
  2775. suites->suites[idx++] = ECC_BYTE;
  2776. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8;
  2777. }
  2778. #endif
  2779. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8
  2780. if (tls1_2 && haveECC) {
  2781. suites->suites[idx++] = ECC_BYTE;
  2782. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8;
  2783. }
  2784. #endif
  2785. #ifdef BUILD_TLS_RSA_WITH_AES_128_CCM_8
  2786. if (tls1_2 && haveRSA) {
  2787. suites->suites[idx++] = ECC_BYTE;
  2788. suites->suites[idx++] = TLS_RSA_WITH_AES_128_CCM_8;
  2789. }
  2790. #endif
  2791. #ifdef BUILD_TLS_RSA_WITH_AES_256_CCM_8
  2792. if (tls1_2 && haveRSA) {
  2793. suites->suites[idx++] = ECC_BYTE;
  2794. suites->suites[idx++] = TLS_RSA_WITH_AES_256_CCM_8;
  2795. }
  2796. #endif
  2797. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_CBC_SHA256
  2798. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2799. if (tls1_2 && haveDH && haveRSA)
  2800. #else
  2801. if (tls && haveDH && haveRSA)
  2802. #endif
  2803. {
  2804. suites->suites[idx++] = CIPHER_BYTE;
  2805. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_256_CBC_SHA256;
  2806. }
  2807. #endif
  2808. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_CBC_SHA256
  2809. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2810. if (tls1_2 && haveDH && haveRSA)
  2811. #else
  2812. if (tls && haveDH && haveRSA)
  2813. #endif
  2814. {
  2815. suites->suites[idx++] = CIPHER_BYTE;
  2816. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_128_CBC_SHA256;
  2817. }
  2818. #endif
  2819. /* Place as higher priority for MYSQL testing */
  2820. #if !defined(WOLFSSL_MYSQL_COMPATIBLE)
  2821. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_CBC_SHA
  2822. if (tls && haveDH && haveRSA) {
  2823. suites->suites[idx++] = CIPHER_BYTE;
  2824. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_256_CBC_SHA;
  2825. }
  2826. #endif
  2827. #endif
  2828. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_CBC_SHA
  2829. if (tls && haveDH && haveRSA) {
  2830. suites->suites[idx++] = CIPHER_BYTE;
  2831. suites->suites[idx++] = TLS_DHE_RSA_WITH_AES_128_CBC_SHA;
  2832. }
  2833. #endif
  2834. #ifdef BUILD_TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA
  2835. if (tls && haveDH && haveRSA) {
  2836. suites->suites[idx++] = CIPHER_BYTE;
  2837. suites->suites[idx++] = TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA;
  2838. }
  2839. #endif
  2840. #ifdef BUILD_TLS_RSA_WITH_AES_256_CBC_SHA256
  2841. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2842. if (tls1_2 && haveRSA)
  2843. #else
  2844. if (tls && haveRSA)
  2845. #endif
  2846. {
  2847. suites->suites[idx++] = CIPHER_BYTE;
  2848. suites->suites[idx++] = TLS_RSA_WITH_AES_256_CBC_SHA256;
  2849. }
  2850. #endif
  2851. #ifdef BUILD_TLS_RSA_WITH_AES_128_CBC_SHA256
  2852. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2853. if (tls1_2 && haveRSA)
  2854. #else
  2855. if (tls && haveRSA)
  2856. #endif
  2857. {
  2858. suites->suites[idx++] = CIPHER_BYTE;
  2859. suites->suites[idx++] = TLS_RSA_WITH_AES_128_CBC_SHA256;
  2860. }
  2861. #endif
  2862. #ifdef BUILD_TLS_RSA_WITH_AES_256_CBC_SHA
  2863. if (tls && haveRSA) {
  2864. suites->suites[idx++] = CIPHER_BYTE;
  2865. suites->suites[idx++] = TLS_RSA_WITH_AES_256_CBC_SHA;
  2866. }
  2867. #endif
  2868. #ifdef BUILD_TLS_RSA_WITH_AES_128_CBC_SHA
  2869. if (tls && haveRSA) {
  2870. suites->suites[idx++] = CIPHER_BYTE;
  2871. suites->suites[idx++] = TLS_RSA_WITH_AES_128_CBC_SHA;
  2872. }
  2873. #endif
  2874. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  2875. if (tls1_2 && haveECC) {
  2876. suites->suites[idx++] = CHACHA_BYTE;
  2877. suites->suites[idx++] =
  2878. TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256;
  2879. }
  2880. #endif
  2881. #ifdef BUILD_TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  2882. if (tls1_2 && haveRSA) {
  2883. suites->suites[idx++] = CHACHA_BYTE;
  2884. suites->suites[idx++] = TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256;
  2885. }
  2886. #endif
  2887. #ifdef BUILD_TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  2888. if (tls1_2 && haveRSA) {
  2889. suites->suites[idx++] = CHACHA_BYTE;
  2890. suites->suites[idx++] = TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256;
  2891. }
  2892. #endif
  2893. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_NULL_SHA
  2894. if (tls && haveECC) {
  2895. suites->suites[idx++] = ECC_BYTE;
  2896. suites->suites[idx++] = TLS_ECDHE_ECDSA_WITH_NULL_SHA;
  2897. }
  2898. #endif
  2899. #ifdef BUILD_TLS_RSA_WITH_NULL_MD5
  2900. if (tls && haveRSA) {
  2901. suites->suites[idx++] = CIPHER_BYTE;
  2902. suites->suites[idx++] = TLS_RSA_WITH_NULL_MD5;
  2903. }
  2904. #endif
  2905. #ifdef BUILD_TLS_RSA_WITH_NULL_SHA
  2906. if (tls && haveRSA) {
  2907. suites->suites[idx++] = CIPHER_BYTE;
  2908. suites->suites[idx++] = TLS_RSA_WITH_NULL_SHA;
  2909. }
  2910. #endif
  2911. #ifdef BUILD_TLS_RSA_WITH_NULL_SHA256
  2912. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2913. if (tls1_2 && haveRSA)
  2914. #else
  2915. if (tls && haveRSA)
  2916. #endif
  2917. {
  2918. suites->suites[idx++] = CIPHER_BYTE;
  2919. suites->suites[idx++] = TLS_RSA_WITH_NULL_SHA256;
  2920. }
  2921. #endif
  2922. #ifdef BUILD_TLS_PSK_WITH_AES_256_CBC_SHA
  2923. if (tls && havePSK) {
  2924. suites->suites[idx++] = CIPHER_BYTE;
  2925. suites->suites[idx++] = TLS_PSK_WITH_AES_256_CBC_SHA;
  2926. }
  2927. #endif
  2928. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_CBC_SHA384
  2929. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2930. if (tls1_2 && haveDH && havePSK)
  2931. #else
  2932. if (tls && haveDH && havePSK)
  2933. #endif
  2934. {
  2935. suites->suites[idx++] = CIPHER_BYTE;
  2936. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_256_CBC_SHA384;
  2937. }
  2938. #endif
  2939. #ifdef BUILD_TLS_PSK_WITH_AES_256_CBC_SHA384
  2940. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2941. if (tls1_2 && havePSK)
  2942. #else
  2943. if (tls && havePSK)
  2944. #endif
  2945. {
  2946. suites->suites[idx++] = CIPHER_BYTE;
  2947. suites->suites[idx++] = TLS_PSK_WITH_AES_256_CBC_SHA384;
  2948. }
  2949. #endif
  2950. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_CBC_SHA256
  2951. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2952. if (tls1_2 && haveDH && havePSK)
  2953. #else
  2954. if (tls && haveDH && havePSK)
  2955. #endif
  2956. {
  2957. suites->suites[idx++] = CIPHER_BYTE;
  2958. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_128_CBC_SHA256;
  2959. }
  2960. #endif
  2961. #ifdef BUILD_TLS_PSK_WITH_AES_128_CBC_SHA256
  2962. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2963. if (tls1_2 && havePSK)
  2964. #else
  2965. if (tls1 && havePSK)
  2966. #endif
  2967. {
  2968. suites->suites[idx++] = CIPHER_BYTE;
  2969. suites->suites[idx++] = TLS_PSK_WITH_AES_128_CBC_SHA256;
  2970. }
  2971. #endif
  2972. #ifdef BUILD_TLS_PSK_WITH_AES_128_CBC_SHA
  2973. if (tls && havePSK) {
  2974. suites->suites[idx++] = CIPHER_BYTE;
  2975. suites->suites[idx++] = TLS_PSK_WITH_AES_128_CBC_SHA;
  2976. }
  2977. #endif
  2978. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_CCM
  2979. if (tls && haveDH && havePSK) {
  2980. suites->suites[idx++] = ECC_BYTE;
  2981. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_128_CCM;
  2982. }
  2983. #endif
  2984. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_CCM
  2985. if (tls && haveDH && havePSK) {
  2986. suites->suites[idx++] = ECC_BYTE;
  2987. suites->suites[idx++] = TLS_DHE_PSK_WITH_AES_256_CCM;
  2988. }
  2989. #endif
  2990. #ifdef BUILD_TLS_PSK_WITH_CHACHA20_POLY1305_SHA256
  2991. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  2992. if (tls1_2 && havePSK)
  2993. #else
  2994. if (tls && havePSK)
  2995. #endif
  2996. {
  2997. suites->suites[idx++] = CHACHA_BYTE;
  2998. suites->suites[idx++] = TLS_PSK_WITH_CHACHA20_POLY1305_SHA256;
  2999. }
  3000. #endif
  3001. #ifdef BUILD_TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256
  3002. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3003. if (tls1_2 && havePSK)
  3004. #else
  3005. if (tls && havePSK)
  3006. #endif
  3007. {
  3008. suites->suites[idx++] = CHACHA_BYTE;
  3009. suites->suites[idx++] = TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256;
  3010. }
  3011. #endif
  3012. #ifdef BUILD_TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256
  3013. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3014. if (tls1_2 && havePSK)
  3015. #else
  3016. if (tls && havePSK)
  3017. #endif
  3018. {
  3019. suites->suites[idx++] = CHACHA_BYTE;
  3020. suites->suites[idx++] = TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256;
  3021. }
  3022. #endif
  3023. #ifdef BUILD_TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256
  3024. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3025. if (tls1_2 && havePSK)
  3026. #else
  3027. if (tls && havePSK)
  3028. #endif
  3029. {
  3030. suites->suites[idx++] = ECC_BYTE;
  3031. suites->suites[idx++] = TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256;
  3032. }
  3033. #endif
  3034. #ifdef BUILD_TLS_PSK_WITH_AES_128_CCM
  3035. if (tls && havePSK) {
  3036. suites->suites[idx++] = ECC_BYTE;
  3037. suites->suites[idx++] = TLS_PSK_WITH_AES_128_CCM;
  3038. }
  3039. #endif
  3040. #ifdef BUILD_TLS_PSK_WITH_AES_256_CCM
  3041. if (tls && havePSK) {
  3042. suites->suites[idx++] = ECC_BYTE;
  3043. suites->suites[idx++] = TLS_PSK_WITH_AES_256_CCM;
  3044. }
  3045. #endif
  3046. #ifdef BUILD_TLS_PSK_WITH_AES_128_CCM_8
  3047. if (tls && havePSK) {
  3048. suites->suites[idx++] = ECC_BYTE;
  3049. suites->suites[idx++] = TLS_PSK_WITH_AES_128_CCM_8;
  3050. }
  3051. #endif
  3052. #ifdef BUILD_TLS_PSK_WITH_AES_256_CCM_8
  3053. if (tls && havePSK) {
  3054. suites->suites[idx++] = ECC_BYTE;
  3055. suites->suites[idx++] = TLS_PSK_WITH_AES_256_CCM_8;
  3056. }
  3057. #endif
  3058. #ifdef BUILD_TLS_DHE_PSK_WITH_NULL_SHA384
  3059. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3060. if (tls1_2 && haveDH && havePSK)
  3061. #else
  3062. if (tls && haveDH && havePSK)
  3063. #endif
  3064. {
  3065. suites->suites[idx++] = CIPHER_BYTE;
  3066. suites->suites[idx++] = TLS_DHE_PSK_WITH_NULL_SHA384;
  3067. }
  3068. #endif
  3069. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA384
  3070. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3071. if (tls1_2 && havePSK)
  3072. #else
  3073. if (tls && havePSK)
  3074. #endif
  3075. {
  3076. suites->suites[idx++] = CIPHER_BYTE;
  3077. suites->suites[idx++] = TLS_PSK_WITH_NULL_SHA384;
  3078. }
  3079. #endif
  3080. #ifdef BUILD_TLS_ECDHE_PSK_WITH_NULL_SHA256
  3081. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3082. if (tls1_2 && havePSK)
  3083. #else
  3084. if (tls && havePSK)
  3085. #endif
  3086. {
  3087. suites->suites[idx++] = ECC_BYTE;
  3088. suites->suites[idx++] = TLS_ECDHE_PSK_WITH_NULL_SHA256;
  3089. }
  3090. #endif
  3091. #ifdef BUILD_TLS_DHE_PSK_WITH_NULL_SHA256
  3092. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3093. if (tls1_2 && haveDH && havePSK)
  3094. #else
  3095. if (tls && haveDH && havePSK)
  3096. #endif
  3097. {
  3098. suites->suites[idx++] = CIPHER_BYTE;
  3099. suites->suites[idx++] = TLS_DHE_PSK_WITH_NULL_SHA256;
  3100. }
  3101. #endif
  3102. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA256
  3103. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3104. if (tls1_2 && havePSK)
  3105. #else
  3106. if (tls && havePSK)
  3107. #endif
  3108. {
  3109. suites->suites[idx++] = CIPHER_BYTE;
  3110. suites->suites[idx++] = TLS_PSK_WITH_NULL_SHA256;
  3111. }
  3112. #endif
  3113. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA
  3114. if (tls && havePSK) {
  3115. suites->suites[idx++] = CIPHER_BYTE;
  3116. suites->suites[idx++] = TLS_PSK_WITH_NULL_SHA;
  3117. }
  3118. #endif
  3119. #ifdef BUILD_SSL_RSA_WITH_RC4_128_SHA
  3120. if (!dtls && haveRSA) {
  3121. suites->suites[idx++] = CIPHER_BYTE;
  3122. suites->suites[idx++] = SSL_RSA_WITH_RC4_128_SHA;
  3123. }
  3124. #endif
  3125. #ifdef BUILD_SSL_RSA_WITH_RC4_128_MD5
  3126. if (!dtls && haveRSA) {
  3127. suites->suites[idx++] = CIPHER_BYTE;
  3128. suites->suites[idx++] = SSL_RSA_WITH_RC4_128_MD5;
  3129. }
  3130. #endif
  3131. #ifdef BUILD_SSL_RSA_WITH_3DES_EDE_CBC_SHA
  3132. if (haveRSA ) {
  3133. suites->suites[idx++] = CIPHER_BYTE;
  3134. suites->suites[idx++] = SSL_RSA_WITH_3DES_EDE_CBC_SHA;
  3135. }
  3136. #endif
  3137. #ifdef BUILD_TLS_RSA_WITH_HC_128_MD5
  3138. if (!dtls && tls && haveRSA) {
  3139. suites->suites[idx++] = CIPHER_BYTE;
  3140. suites->suites[idx++] = TLS_RSA_WITH_HC_128_MD5;
  3141. }
  3142. #endif
  3143. #ifdef BUILD_TLS_RSA_WITH_HC_128_SHA
  3144. if (!dtls && tls && haveRSA) {
  3145. suites->suites[idx++] = CIPHER_BYTE;
  3146. suites->suites[idx++] = TLS_RSA_WITH_HC_128_SHA;
  3147. }
  3148. #endif
  3149. #ifdef BUILD_TLS_RSA_WITH_RABBIT_SHA
  3150. if (!dtls && tls && haveRSA) {
  3151. suites->suites[idx++] = CIPHER_BYTE;
  3152. suites->suites[idx++] = TLS_RSA_WITH_RABBIT_SHA;
  3153. }
  3154. #endif
  3155. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_128_CBC_SHA
  3156. if (tls && haveRSA) {
  3157. suites->suites[idx++] = CIPHER_BYTE;
  3158. suites->suites[idx++] = TLS_RSA_WITH_CAMELLIA_128_CBC_SHA;
  3159. }
  3160. #endif
  3161. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA
  3162. if (tls && haveDH && haveRSA) {
  3163. suites->suites[idx++] = CIPHER_BYTE;
  3164. suites->suites[idx++] = TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA;
  3165. }
  3166. #endif
  3167. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_256_CBC_SHA
  3168. if (tls && haveRSA) {
  3169. suites->suites[idx++] = CIPHER_BYTE;
  3170. suites->suites[idx++] = TLS_RSA_WITH_CAMELLIA_256_CBC_SHA;
  3171. }
  3172. #endif
  3173. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA
  3174. if (tls && haveDH && haveRSA) {
  3175. suites->suites[idx++] = CIPHER_BYTE;
  3176. suites->suites[idx++] = TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA;
  3177. }
  3178. #endif
  3179. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256
  3180. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3181. if (tls1_2 && haveRSA)
  3182. #else
  3183. if (tls && haveRSA)
  3184. #endif
  3185. {
  3186. suites->suites[idx++] = CIPHER_BYTE;
  3187. suites->suites[idx++] = TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256;
  3188. }
  3189. #endif
  3190. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256
  3191. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3192. if (tls1_2 && haveDH && haveRSA)
  3193. #else
  3194. if (tls && haveDH && haveRSA)
  3195. #endif
  3196. {
  3197. suites->suites[idx++] = CIPHER_BYTE;
  3198. suites->suites[idx++] = TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256;
  3199. }
  3200. #endif
  3201. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256
  3202. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3203. if (tls1_2 && haveRSA)
  3204. #else
  3205. if (tls && haveRSA)
  3206. #endif
  3207. {
  3208. suites->suites[idx++] = CIPHER_BYTE;
  3209. suites->suites[idx++] = TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256;
  3210. }
  3211. #endif
  3212. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256
  3213. #ifndef WOLFSSL_OLDTLS_SHA2_CIPHERSUITES
  3214. if (tls1_2 && haveDH && haveRSA)
  3215. #else
  3216. if (tls && haveDH && haveRSA)
  3217. #endif
  3218. {
  3219. suites->suites[idx++] = CIPHER_BYTE;
  3220. suites->suites[idx++] = TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256;
  3221. }
  3222. #endif
  3223. #ifdef BUILD_SSL_RSA_WITH_IDEA_CBC_SHA
  3224. if (haveRSA) {
  3225. suites->suites[idx++] = CIPHER_BYTE;
  3226. suites->suites[idx++] = SSL_RSA_WITH_IDEA_CBC_SHA;
  3227. }
  3228. #endif
  3229. #endif /* !WOLFSSL_NO_TLS12 */
  3230. suites->suiteSz = idx;
  3231. if (suites->hashSigAlgoSz == 0) {
  3232. InitSuitesHashSigAlgo(suites, haveECDSAsig | haveECC,
  3233. haveRSAsig | haveRSA, 0, tls1_2, keySz);
  3234. }
  3235. }
  3236. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_CERTS) || \
  3237. (!defined(NO_WOLFSSL_CLIENT) && (!defined(NO_DH) || defined(HAVE_ECC)))
  3238. /* Decode the signature algorithm.
  3239. *
  3240. * input The encoded signature algorithm.
  3241. * hashalgo The hash algorithm.
  3242. * hsType The signature type.
  3243. */
  3244. static WC_INLINE void DecodeSigAlg(const byte* input, byte* hashAlgo, byte* hsType)
  3245. {
  3246. switch (input[0]) {
  3247. case NEW_SA_MAJOR:
  3248. #ifdef HAVE_ED25519
  3249. /* ED25519: 0x0807 */
  3250. if (input[1] == ED25519_SA_MINOR) {
  3251. *hsType = ed25519_sa_algo;
  3252. /* Hash performed as part of sign/verify operation. */
  3253. *hashAlgo = sha512_mac;
  3254. }
  3255. else
  3256. #endif
  3257. #ifdef HAVE_ED448
  3258. /* ED448: 0x0808 */
  3259. if (input[1] == ED448_SA_MINOR) {
  3260. *hsType = ed448_sa_algo;
  3261. /* Hash performed as part of sign/verify operation. */
  3262. *hashAlgo = sha512_mac;
  3263. }
  3264. else
  3265. #endif
  3266. #ifdef WC_RSA_PSS
  3267. /* PSS PSS signatures: 0x080[9-b] */
  3268. if (input[1] >= pss_sha256 && input[1] <= pss_sha512) {
  3269. *hsType = rsa_pss_pss_algo;
  3270. *hashAlgo = PSS_PSS_HASH_TO_MAC(input[1]);
  3271. }
  3272. else
  3273. #endif
  3274. {
  3275. *hsType = input[0];
  3276. *hashAlgo = input[1];
  3277. }
  3278. break;
  3279. default:
  3280. *hashAlgo = input[0];
  3281. *hsType = input[1];
  3282. break;
  3283. }
  3284. }
  3285. #endif /* !NO_WOLFSSL_SERVER || !NO_CERTS */
  3286. #ifndef WOLFSSL_NO_TLS12
  3287. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_WOLFSSL_CLIENT)
  3288. #if !defined(NO_DH) || defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  3289. defined(HAVE_CURVE448) || (!defined(NO_RSA) && defined(WC_RSA_PSS))
  3290. static enum wc_HashType HashAlgoToType(int hashAlgo)
  3291. {
  3292. switch (hashAlgo) {
  3293. #ifdef WOLFSSL_SHA512
  3294. case sha512_mac:
  3295. return WC_HASH_TYPE_SHA512;
  3296. #endif
  3297. #ifdef WOLFSSL_SHA384
  3298. case sha384_mac:
  3299. return WC_HASH_TYPE_SHA384;
  3300. #endif
  3301. #ifndef NO_SHA256
  3302. case sha256_mac:
  3303. return WC_HASH_TYPE_SHA256;
  3304. #endif
  3305. #ifdef WOLFSSL_SHA224
  3306. case sha224_mac:
  3307. return WC_HASH_TYPE_SHA224;
  3308. #endif
  3309. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  3310. defined(WOLFSSL_ALLOW_TLS_SHA1))
  3311. case sha_mac:
  3312. return WC_HASH_TYPE_SHA;
  3313. #endif
  3314. default:
  3315. WOLFSSL_MSG("Bad hash sig algo");
  3316. break;
  3317. }
  3318. return WC_HASH_TYPE_NONE;
  3319. }
  3320. #endif /* !NO_DH || HAVE_ECC || (!NO_RSA && WC_RSA_PSS) */
  3321. #endif /* !NO_WOLFSSL_SERVER || !NO_WOLFSSL_CLIENT */
  3322. #endif /* !WOLFSSL_NO_TLS12 */
  3323. #ifndef NO_CERTS
  3324. void InitX509Name(WOLFSSL_X509_NAME* name, int dynamicFlag, void* heap)
  3325. {
  3326. (void)dynamicFlag;
  3327. (void)heap;
  3328. if (name != NULL) {
  3329. XMEMSET(name, 0, sizeof(WOLFSSL_X509_NAME));
  3330. name->name = name->staticName;
  3331. name->heap = heap;
  3332. }
  3333. }
  3334. void FreeX509Name(WOLFSSL_X509_NAME* name)
  3335. {
  3336. if (name != NULL) {
  3337. if (name->dynamicName) {
  3338. XFREE(name->name, name->heap, DYNAMIC_TYPE_SUBJECT_CN);
  3339. name->name = NULL;
  3340. }
  3341. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  3342. {
  3343. int i;
  3344. for (i = 0; i < MAX_NAME_ENTRIES; i++) {
  3345. if (name->entry[i].set) {
  3346. wolfSSL_ASN1_OBJECT_free(name->entry[i].object);
  3347. wolfSSL_ASN1_STRING_free(name->entry[i].value);
  3348. }
  3349. }
  3350. }
  3351. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  3352. }
  3353. }
  3354. /* Initialize wolfSSL X509 type */
  3355. void InitX509(WOLFSSL_X509* x509, int dynamicFlag, void* heap)
  3356. {
  3357. if (x509 == NULL) {
  3358. WOLFSSL_MSG("Null parameter passed in!");
  3359. return;
  3360. }
  3361. XMEMSET(x509, 0, sizeof(WOLFSSL_X509));
  3362. x509->heap = heap;
  3363. InitX509Name(&x509->issuer, 0, heap);
  3364. InitX509Name(&x509->subject, 0, heap);
  3365. x509->dynamicMemory = (byte)dynamicFlag;
  3366. #if defined(OPENSSL_EXTRA_X509_SMALL) || defined(OPENSSL_EXTRA)
  3367. x509->refCount = 1;
  3368. #ifndef SINGLE_THREADED
  3369. (void)wc_InitMutex(&x509->refMutex);
  3370. #endif
  3371. #endif
  3372. }
  3373. /* Free wolfSSL X509 type */
  3374. void FreeX509(WOLFSSL_X509* x509)
  3375. {
  3376. if (x509 == NULL)
  3377. return;
  3378. FreeX509Name(&x509->issuer);
  3379. FreeX509Name(&x509->subject);
  3380. if (x509->pubKey.buffer) {
  3381. XFREE(x509->pubKey.buffer, x509->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  3382. x509->pubKey.buffer = NULL;
  3383. }
  3384. FreeDer(&x509->derCert);
  3385. XFREE(x509->sig.buffer, x509->heap, DYNAMIC_TYPE_SIGNATURE);
  3386. x509->sig.buffer = NULL;
  3387. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  3388. XFREE(x509->authKeyId, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3389. x509->authKeyId = NULL;
  3390. XFREE(x509->subjKeyId, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3391. x509->subjKeyId = NULL;
  3392. if (x509->CRLInfo != NULL) {
  3393. XFREE(x509->CRLInfo, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3394. x509->CRLInfo= NULL;
  3395. }
  3396. if (x509->authInfo != NULL) {
  3397. XFREE(x509->authInfo, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3398. x509->authInfo = NULL;
  3399. }
  3400. if (x509->CRLInfo != NULL) {
  3401. XFREE(x509->CRLInfo, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3402. x509->CRLInfo = NULL;
  3403. }
  3404. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  3405. if (x509->authInfoCaIssuer != NULL) {
  3406. XFREE(x509->authInfoCaIssuer, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3407. }
  3408. if (x509->ext_sk != NULL) {
  3409. wolfSSL_sk_X509_EXTENSION_free(x509->ext_sk);
  3410. }
  3411. if (x509->ext_sk_full != NULL) {
  3412. wolfSSL_sk_X509_EXTENSION_free(x509->ext_sk_full);
  3413. }
  3414. #endif /* OPENSSL_ALL || WOLFSSL_QT */
  3415. #ifdef OPENSSL_EXTRA
  3416. /* Free serialNumber that was set by wolfSSL_X509_get_serialNumber */
  3417. if (x509->serialNumber != NULL) {
  3418. wolfSSL_ASN1_INTEGER_free(x509->serialNumber);
  3419. }
  3420. #endif
  3421. if (x509->extKeyUsageSrc != NULL) {
  3422. XFREE(x509->extKeyUsageSrc, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3423. x509->extKeyUsageSrc= NULL;
  3424. }
  3425. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  3426. #if defined(OPENSSL_ALL)
  3427. if (x509->algor.algorithm) {
  3428. wolfSSL_ASN1_OBJECT_free(x509->algor.algorithm);
  3429. x509->algor.algorithm = NULL;
  3430. }
  3431. if (x509->key.algor) {
  3432. wolfSSL_X509_ALGOR_free(x509->key.algor);
  3433. x509->key.algor = NULL;
  3434. }
  3435. if (x509->key.pkey) {
  3436. wolfSSL_EVP_PKEY_free(x509->key.pkey);
  3437. x509->key.pkey = NULL;
  3438. }
  3439. if (x509->subjAltNameSrc != NULL) {
  3440. XFREE(x509->subjAltNameSrc, x509->heap, DYNAMIC_TYPE_X509_EXT);
  3441. x509->subjAltNameSrc= NULL;
  3442. }
  3443. #endif /* OPENSSL_ALL */
  3444. #if defined(WOLFSSL_CERT_REQ) && defined(OPENSSL_ALL)
  3445. if (x509->challengePwAttr) {
  3446. wolfSSL_X509_ATTRIBUTE_free(x509->challengePwAttr);
  3447. }
  3448. #endif /* WOLFSSL_CERT_REQ */
  3449. if (x509->altNames) {
  3450. FreeAltNames(x509->altNames, x509->heap);
  3451. x509->altNames = NULL;
  3452. }
  3453. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL)
  3454. #ifndef SINGLE_THREADED
  3455. wc_FreeMutex(&x509->refMutex);
  3456. #endif
  3457. #endif
  3458. }
  3459. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_WOLFSSL_CLIENT)
  3460. #if !defined(WOLFSSL_NO_TLS12)
  3461. /* Encode the signature algorithm into buffer.
  3462. *
  3463. * hashalgo The hash algorithm.
  3464. * hsType The signature type.
  3465. * output The buffer to encode into.
  3466. */
  3467. static WC_INLINE void EncodeSigAlg(byte hashAlgo, byte hsType, byte* output)
  3468. {
  3469. switch (hsType) {
  3470. #ifdef HAVE_ECC
  3471. case ecc_dsa_sa_algo:
  3472. output[0] = hashAlgo;
  3473. output[1] = ecc_dsa_sa_algo;
  3474. break;
  3475. #endif
  3476. #ifdef HAVE_ED25519
  3477. case ed25519_sa_algo:
  3478. output[0] = ED25519_SA_MAJOR;
  3479. output[1] = ED25519_SA_MINOR;
  3480. (void)hashAlgo;
  3481. break;
  3482. #endif
  3483. #ifdef HAVE_ED448
  3484. case ed448_sa_algo:
  3485. output[0] = ED448_SA_MAJOR;
  3486. output[1] = ED448_SA_MINOR;
  3487. (void)hashAlgo;
  3488. break;
  3489. #endif
  3490. #ifndef NO_RSA
  3491. case rsa_sa_algo:
  3492. output[0] = hashAlgo;
  3493. output[1] = rsa_sa_algo;
  3494. break;
  3495. #ifdef WC_RSA_PSS
  3496. /* PSS signatures: 0x080[4-6] */
  3497. case rsa_pss_sa_algo:
  3498. output[0] = rsa_pss_sa_algo;
  3499. output[1] = hashAlgo;
  3500. break;
  3501. #endif
  3502. #endif
  3503. default:
  3504. break;
  3505. }
  3506. (void)hashAlgo;
  3507. (void)output;
  3508. }
  3509. #endif
  3510. #if !defined(WOLFSSL_NO_TLS12) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  3511. static void SetDigest(WOLFSSL* ssl, int hashAlgo)
  3512. {
  3513. switch (hashAlgo) {
  3514. #ifndef NO_SHA
  3515. case sha_mac:
  3516. ssl->buffers.digest.buffer = ssl->hsHashes->certHashes.sha;
  3517. ssl->buffers.digest.length = WC_SHA_DIGEST_SIZE;
  3518. break;
  3519. #endif /* !NO_SHA */
  3520. #ifndef NO_SHA256
  3521. case sha256_mac:
  3522. ssl->buffers.digest.buffer = ssl->hsHashes->certHashes.sha256;
  3523. ssl->buffers.digest.length = WC_SHA256_DIGEST_SIZE;
  3524. break;
  3525. #endif /* !NO_SHA256 */
  3526. #ifdef WOLFSSL_SHA384
  3527. case sha384_mac:
  3528. ssl->buffers.digest.buffer = ssl->hsHashes->certHashes.sha384;
  3529. ssl->buffers.digest.length = WC_SHA384_DIGEST_SIZE;
  3530. break;
  3531. #endif /* WOLFSSL_SHA384 */
  3532. #ifdef WOLFSSL_SHA512
  3533. case sha512_mac:
  3534. ssl->buffers.digest.buffer = ssl->hsHashes->certHashes.sha512;
  3535. ssl->buffers.digest.length = WC_SHA512_DIGEST_SIZE;
  3536. break;
  3537. #endif /* WOLFSSL_SHA512 */
  3538. default:
  3539. break;
  3540. } /* switch */
  3541. }
  3542. #endif /* !WOLFSSL_NO_TLS12 && !WOLFSSL_NO_CLIENT_AUTH */
  3543. #endif /* !NO_WOLFSSL_SERVER || !NO_WOLFSSL_CLIENT */
  3544. #endif /* !NO_CERTS */
  3545. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  3546. static word32 MacSize(WOLFSSL* ssl)
  3547. {
  3548. #ifdef HAVE_TRUNCATED_HMAC
  3549. word32 digestSz = ssl->truncated_hmac ? (byte)TRUNCATED_HMAC_SZ
  3550. : ssl->specs.hash_size;
  3551. #else
  3552. word32 digestSz = ssl->specs.hash_size;
  3553. #endif
  3554. return digestSz;
  3555. }
  3556. #endif /* HAVE_ENCRYPT_THEN_MAC && !WOLFSSL_AEAD_ONLY */
  3557. #ifndef NO_RSA
  3558. #if !defined(WOLFSSL_NO_TLS12) || \
  3559. (defined(WC_RSA_PSS) && defined(HAVE_PK_CALLBACKS))
  3560. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_WOLFSSL_CLIENT)
  3561. static int TypeHash(int hashAlgo)
  3562. {
  3563. switch (hashAlgo) {
  3564. #ifdef WOLFSSL_SHA512
  3565. case sha512_mac:
  3566. return SHA512h;
  3567. #endif
  3568. #ifdef WOLFSSL_SHA384
  3569. case sha384_mac:
  3570. return SHA384h;
  3571. #endif
  3572. #ifndef NO_SHA256
  3573. case sha256_mac:
  3574. return SHA256h;
  3575. #endif
  3576. #ifdef WOLFSSL_SHA224
  3577. case sha224_mac:
  3578. return SHA224h;
  3579. #endif
  3580. #ifndef NO_SHA
  3581. case sha_mac:
  3582. return SHAh;
  3583. #endif
  3584. default:
  3585. break;
  3586. }
  3587. return 0;
  3588. }
  3589. #endif /* !NO_WOLFSSL_SERVER && !NO_WOLFSSL_CLIENT */
  3590. #endif /* !WOLFSSL_NO_TLS12 */
  3591. #if defined(WC_RSA_PSS)
  3592. int ConvertHashPss(int hashAlgo, enum wc_HashType* hashType, int* mgf)
  3593. {
  3594. switch (hashAlgo) {
  3595. #ifdef WOLFSSL_SHA512
  3596. case sha512_mac:
  3597. *hashType = WC_HASH_TYPE_SHA512;
  3598. if (mgf != NULL)
  3599. *mgf = WC_MGF1SHA512;
  3600. break;
  3601. #endif
  3602. #ifdef WOLFSSL_SHA384
  3603. case sha384_mac:
  3604. *hashType = WC_HASH_TYPE_SHA384;
  3605. if (mgf != NULL)
  3606. *mgf = WC_MGF1SHA384;
  3607. break;
  3608. #endif
  3609. #ifndef NO_SHA256
  3610. case sha256_mac:
  3611. *hashType = WC_HASH_TYPE_SHA256;
  3612. if (mgf != NULL)
  3613. *mgf = WC_MGF1SHA256;
  3614. break;
  3615. #endif
  3616. default:
  3617. return BAD_FUNC_ARG;
  3618. }
  3619. return 0;
  3620. }
  3621. #endif
  3622. #if !defined(NO_WOLFSSL_SERVER) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  3623. int RsaSign(WOLFSSL* ssl, const byte* in, word32 inSz, byte* out,
  3624. word32* outSz, int sigAlgo, int hashAlgo, RsaKey* key,
  3625. DerBuffer* keyBufInfo)
  3626. {
  3627. int ret;
  3628. #ifdef HAVE_PK_CALLBACKS
  3629. const byte* keyBuf = NULL;
  3630. word32 keySz = 0;
  3631. if (keyBufInfo) {
  3632. keyBuf = keyBufInfo->buffer;
  3633. keySz = keyBufInfo->length;
  3634. }
  3635. #endif
  3636. (void)ssl;
  3637. (void)keyBufInfo;
  3638. (void)sigAlgo;
  3639. (void)hashAlgo;
  3640. WOLFSSL_ENTER("RsaSign");
  3641. #ifdef WOLFSSL_ASYNC_CRYPT
  3642. /* initialize event */
  3643. if (key) {
  3644. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3645. if (ret != 0)
  3646. return ret;
  3647. }
  3648. #endif
  3649. #if defined(WC_RSA_PSS)
  3650. if (sigAlgo == rsa_pss_sa_algo) {
  3651. enum wc_HashType hashType = WC_HASH_TYPE_NONE;
  3652. int mgf = 0;
  3653. ret = ConvertHashPss(hashAlgo, &hashType, &mgf);
  3654. if (ret != 0)
  3655. return ret;
  3656. #if defined(HAVE_PK_CALLBACKS)
  3657. if (ssl->ctx->RsaPssSignCb) {
  3658. void* ctx = wolfSSL_GetRsaPssSignCtx(ssl);
  3659. ret = ssl->ctx->RsaPssSignCb(ssl, in, inSz, out, outSz,
  3660. TypeHash(hashAlgo), mgf,
  3661. keyBuf, keySz, ctx);
  3662. }
  3663. else
  3664. #endif
  3665. {
  3666. ret = wc_RsaPSS_Sign(in, inSz, out, *outSz, hashType, mgf, key,
  3667. ssl->rng);
  3668. }
  3669. }
  3670. else
  3671. #endif
  3672. #if defined(HAVE_PK_CALLBACKS)
  3673. if (ssl->ctx->RsaSignCb) {
  3674. void* ctx = wolfSSL_GetRsaSignCtx(ssl);
  3675. ret = ssl->ctx->RsaSignCb(ssl, in, inSz, out, outSz, keyBuf, keySz,
  3676. ctx);
  3677. }
  3678. else
  3679. #endif /*HAVE_PK_CALLBACKS */
  3680. ret = wc_RsaSSL_Sign(in, inSz, out, *outSz, key, ssl->rng);
  3681. /* Handle async pending response */
  3682. #ifdef WOLFSSL_ASYNC_CRYPT
  3683. if (key && ret == WC_PENDING_E) {
  3684. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  3685. }
  3686. #endif /* WOLFSSL_ASYNC_CRYPT */
  3687. /* For positive response return in outSz */
  3688. if (ret > 0) {
  3689. *outSz = ret;
  3690. ret = 0;
  3691. }
  3692. WOLFSSL_LEAVE("RsaSign", ret);
  3693. return ret;
  3694. }
  3695. #endif
  3696. int RsaVerify(WOLFSSL* ssl, byte* in, word32 inSz, byte** out, int sigAlgo,
  3697. int hashAlgo, RsaKey* key, buffer* keyBufInfo)
  3698. {
  3699. int ret;
  3700. #ifdef HAVE_PK_CALLBACKS
  3701. const byte* keyBuf = NULL;
  3702. word32 keySz = 0;
  3703. if (keyBufInfo) {
  3704. keyBuf = keyBufInfo->buffer;
  3705. keySz = keyBufInfo->length;
  3706. }
  3707. #endif
  3708. (void)ssl;
  3709. (void)keyBufInfo;
  3710. (void)sigAlgo;
  3711. (void)hashAlgo;
  3712. WOLFSSL_ENTER("RsaVerify");
  3713. #ifdef WOLFSSL_ASYNC_CRYPT
  3714. /* initialize event */
  3715. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3716. if (ret != 0)
  3717. return ret;
  3718. #endif
  3719. #if defined(WC_RSA_PSS)
  3720. if (sigAlgo == rsa_pss_sa_algo) {
  3721. enum wc_HashType hashType = WC_HASH_TYPE_NONE;
  3722. int mgf = 0;
  3723. ret = ConvertHashPss(hashAlgo, &hashType, &mgf);
  3724. if (ret != 0)
  3725. return ret;
  3726. #ifdef HAVE_PK_CALLBACKS
  3727. if (ssl->ctx->RsaPssVerifyCb) {
  3728. void* ctx = wolfSSL_GetRsaPssVerifyCtx(ssl);
  3729. ret = ssl->ctx->RsaPssVerifyCb(ssl, in, inSz, out,
  3730. TypeHash(hashAlgo), mgf,
  3731. keyBuf, keySz, ctx);
  3732. }
  3733. else
  3734. #endif /*HAVE_PK_CALLBACKS */
  3735. ret = wc_RsaPSS_VerifyInline(in, inSz, out, hashType, mgf, key);
  3736. }
  3737. else
  3738. #endif
  3739. #ifdef HAVE_PK_CALLBACKS
  3740. if (ssl->ctx->RsaVerifyCb) {
  3741. void* ctx = wolfSSL_GetRsaVerifyCtx(ssl);
  3742. ret = ssl->ctx->RsaVerifyCb(ssl, in, inSz, out, keyBuf, keySz, ctx);
  3743. }
  3744. else
  3745. #endif /*HAVE_PK_CALLBACKS */
  3746. {
  3747. ret = wc_RsaSSL_VerifyInline(in, inSz, out, key);
  3748. }
  3749. /* Handle async pending response */
  3750. #ifdef WOLFSSL_ASYNC_CRYPT
  3751. if (ret == WC_PENDING_E) {
  3752. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  3753. }
  3754. #endif /* WOLFSSL_ASYNC_CRYPT */
  3755. WOLFSSL_LEAVE("RsaVerify", ret);
  3756. return ret;
  3757. }
  3758. /* Verify RSA signature, 0 on success */
  3759. /* This function is used to check the sign result */
  3760. int VerifyRsaSign(WOLFSSL* ssl, byte* verifySig, word32 sigSz,
  3761. const byte* plain, word32 plainSz, int sigAlgo, int hashAlgo, RsaKey* key,
  3762. DerBuffer* keyBufInfo)
  3763. {
  3764. byte* out = NULL; /* inline result */
  3765. int ret;
  3766. #ifdef HAVE_PK_CALLBACKS
  3767. const byte* keyBuf = NULL;
  3768. word32 keySz = 0;
  3769. if (keyBufInfo) {
  3770. keyBuf = keyBufInfo->buffer;
  3771. keySz = keyBufInfo->length;
  3772. }
  3773. #endif
  3774. (void)ssl;
  3775. (void)keyBufInfo;
  3776. (void)sigAlgo;
  3777. (void)hashAlgo;
  3778. WOLFSSL_ENTER("VerifyRsaSign");
  3779. if (verifySig == NULL || plain == NULL) {
  3780. return BAD_FUNC_ARG;
  3781. }
  3782. if (sigSz > ENCRYPT_LEN) {
  3783. WOLFSSL_MSG("Signature buffer too big");
  3784. return BUFFER_E;
  3785. }
  3786. #ifdef WOLFSSL_ASYNC_CRYPT
  3787. /* initialize event */
  3788. if (key) {
  3789. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3790. if (ret != 0)
  3791. return ret;
  3792. }
  3793. #endif
  3794. #if defined(WC_RSA_PSS)
  3795. if (sigAlgo == rsa_pss_sa_algo) {
  3796. enum wc_HashType hashType = WC_HASH_TYPE_NONE;
  3797. int mgf = 0;
  3798. ret = ConvertHashPss(hashAlgo, &hashType, &mgf);
  3799. if (ret != 0)
  3800. return ret;
  3801. #ifdef HAVE_PK_CALLBACKS
  3802. if (ssl->ctx->RsaPssSignCheckCb) {
  3803. /* The key buffer includes private/public portion,
  3804. but only public is used */
  3805. /* If HSM hardware is checking the signature result you can
  3806. optionally skip the sign check and return 0 */
  3807. /* The ctx here is the RsaSignCtx set using wolfSSL_SetRsaSignCtx */
  3808. void* ctx = wolfSSL_GetRsaPssSignCtx(ssl);
  3809. ret = ssl->ctx->RsaPssSignCheckCb(ssl, verifySig, sigSz, &out,
  3810. TypeHash(hashAlgo), mgf,
  3811. keyBuf, keySz, ctx);
  3812. if (ret > 0) {
  3813. ret = wc_RsaPSS_CheckPadding(plain, plainSz, out, ret,
  3814. hashType);
  3815. if (ret != 0)
  3816. ret = VERIFY_CERT_ERROR;
  3817. }
  3818. }
  3819. else
  3820. #endif /* HAVE_PK_CALLBACKS */
  3821. {
  3822. ret = wc_RsaPSS_VerifyInline(verifySig, sigSz, &out, hashType, mgf,
  3823. key);
  3824. if (ret > 0) {
  3825. #ifdef HAVE_SELFTEST
  3826. ret = wc_RsaPSS_CheckPadding(plain, plainSz, out, ret,
  3827. hashType);
  3828. #else
  3829. ret = wc_RsaPSS_CheckPadding_ex(plain, plainSz, out, ret,
  3830. hashType, -1,
  3831. mp_count_bits(&key->n));
  3832. #endif
  3833. if (ret != 0)
  3834. ret = VERIFY_CERT_ERROR;
  3835. }
  3836. }
  3837. }
  3838. else
  3839. #endif /* WC_RSA_PSS */
  3840. {
  3841. #ifdef HAVE_PK_CALLBACKS
  3842. if (ssl->ctx->RsaSignCheckCb) {
  3843. /* The key buffer includes private/public portion,
  3844. but only public is used */
  3845. /* If HSM hardware is checking the signature result you can
  3846. optionally skip the sign check and return 0 */
  3847. /* The ctx here is the RsaSignCtx set using wolfSSL_SetRsaSignCtx */
  3848. void* ctx = wolfSSL_GetRsaSignCtx(ssl);
  3849. ret = ssl->ctx->RsaSignCheckCb(ssl, verifySig, sigSz, &out,
  3850. keyBuf, keySz, ctx);
  3851. }
  3852. else
  3853. #endif /* HAVE_PK_CALLBACKS */
  3854. {
  3855. ret = wc_RsaSSL_VerifyInline(verifySig, sigSz, &out, key);
  3856. }
  3857. if (ret > 0) {
  3858. if (ret != (int)plainSz || !out ||
  3859. XMEMCMP(plain, out, plainSz) != 0) {
  3860. WOLFSSL_MSG("RSA Signature verification failed");
  3861. ret = RSA_SIGN_FAULT;
  3862. } else {
  3863. ret = 0; /* RSA reset */
  3864. }
  3865. }
  3866. }
  3867. /* Handle async pending response */
  3868. #ifdef WOLFSSL_ASYNC_CRYPT
  3869. if (key && ret == WC_PENDING_E) {
  3870. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  3871. }
  3872. #endif /* WOLFSSL_ASYNC_CRYPT */
  3873. WOLFSSL_LEAVE("VerifyRsaSign", ret);
  3874. return ret;
  3875. }
  3876. #ifndef WOLFSSL_NO_TLS12
  3877. #if !defined(NO_WOLFSSL_SERVER) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  3878. int RsaDec(WOLFSSL* ssl, byte* in, word32 inSz, byte** out, word32* outSz,
  3879. RsaKey* key, DerBuffer* keyBufInfo)
  3880. {
  3881. int ret;
  3882. #ifdef HAVE_PK_CALLBACKS
  3883. const byte* keyBuf = NULL;
  3884. word32 keySz = 0;
  3885. if (keyBufInfo) {
  3886. keyBuf = keyBufInfo->buffer;
  3887. keySz = keyBufInfo->length;
  3888. }
  3889. #endif
  3890. (void)ssl;
  3891. (void)keyBufInfo;
  3892. WOLFSSL_ENTER("RsaDec");
  3893. #ifdef WOLFSSL_ASYNC_CRYPT
  3894. /* initialize event */
  3895. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3896. if (ret != 0)
  3897. return ret;
  3898. #endif
  3899. #ifdef HAVE_PK_CALLBACKS
  3900. if (ssl->ctx->RsaDecCb) {
  3901. void* ctx = wolfSSL_GetRsaDecCtx(ssl);
  3902. ret = ssl->ctx->RsaDecCb(ssl, in, inSz, out, keyBuf, keySz, ctx);
  3903. }
  3904. else
  3905. #endif /* HAVE_PK_CALLBACKS */
  3906. {
  3907. #ifdef WC_RSA_BLINDING
  3908. ret = wc_RsaSetRNG(key, ssl->rng);
  3909. if (ret != 0)
  3910. return ret;
  3911. #endif
  3912. ret = wc_RsaPrivateDecryptInline(in, inSz, out, key);
  3913. }
  3914. /* Handle async pending response */
  3915. #ifdef WOLFSSL_ASYNC_CRYPT
  3916. if (ret == WC_PENDING_E) {
  3917. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  3918. }
  3919. #endif /* WOLFSSL_ASYNC_CRYPT */
  3920. /* For positive response return in outSz */
  3921. if (ret > 0) {
  3922. *outSz = ret;
  3923. ret = 0;
  3924. }
  3925. WOLFSSL_LEAVE("RsaDec", ret);
  3926. return ret;
  3927. }
  3928. #endif /* !NO_WOLFSSL_SERVER) || !WOLFSSL_NO_CLIENT_AUTH */
  3929. int RsaEnc(WOLFSSL* ssl, const byte* in, word32 inSz, byte* out, word32* outSz,
  3930. RsaKey* key, buffer* keyBufInfo)
  3931. {
  3932. int ret;
  3933. #ifdef HAVE_PK_CALLBACKS
  3934. const byte* keyBuf = NULL;
  3935. word32 keySz = 0;
  3936. if (keyBufInfo) {
  3937. keyBuf = keyBufInfo->buffer;
  3938. keySz = keyBufInfo->length;
  3939. }
  3940. #endif
  3941. (void)ssl;
  3942. (void)keyBufInfo;
  3943. WOLFSSL_ENTER("RsaEnc");
  3944. #ifdef WOLFSSL_ASYNC_CRYPT
  3945. /* initialize event */
  3946. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3947. if (ret != 0)
  3948. return ret;
  3949. #endif
  3950. #ifdef HAVE_PK_CALLBACKS
  3951. if (ssl->ctx->RsaEncCb) {
  3952. void* ctx = wolfSSL_GetRsaEncCtx(ssl);
  3953. ret = ssl->ctx->RsaEncCb(ssl, in, inSz, out, outSz, keyBuf, keySz, ctx);
  3954. }
  3955. else
  3956. #endif /* HAVE_PK_CALLBACKS */
  3957. {
  3958. ret = wc_RsaPublicEncrypt(in, inSz, out, *outSz, key, ssl->rng);
  3959. }
  3960. /* Handle async pending response */
  3961. #ifdef WOLFSSL_ASYNC_CRYPT
  3962. if (ret == WC_PENDING_E) {
  3963. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  3964. }
  3965. #endif /* WOLFSSL_ASYNC_CRYPT */
  3966. /* For positive response return in outSz */
  3967. if (ret > 0) {
  3968. *outSz = ret;
  3969. ret = 0;
  3970. }
  3971. WOLFSSL_LEAVE("RsaEnc", ret);
  3972. return ret;
  3973. }
  3974. #endif /* !WOLFSSL_NO_TLS12 */
  3975. #endif /* NO_RSA */
  3976. #ifdef HAVE_ECC
  3977. int EccSign(WOLFSSL* ssl, const byte* in, word32 inSz, byte* out,
  3978. word32* outSz, ecc_key* key, DerBuffer* keyBufInfo)
  3979. {
  3980. int ret;
  3981. #ifdef HAVE_PK_CALLBACKS
  3982. const byte* keyBuf = NULL;
  3983. word32 keySz = 0;
  3984. if (keyBufInfo) {
  3985. keyBuf = keyBufInfo->buffer;
  3986. keySz = keyBufInfo->length;
  3987. }
  3988. #endif
  3989. (void)ssl;
  3990. (void)keyBufInfo;
  3991. WOLFSSL_ENTER("EccSign");
  3992. #ifdef WOLFSSL_ASYNC_CRYPT
  3993. /* initialize event */
  3994. if (key) {
  3995. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  3996. if (ret != 0)
  3997. return ret;
  3998. }
  3999. #endif
  4000. #if defined(HAVE_PK_CALLBACKS)
  4001. if (ssl->ctx->EccSignCb) {
  4002. void* ctx = wolfSSL_GetEccSignCtx(ssl);
  4003. ret = ssl->ctx->EccSignCb(ssl, in, inSz, out, outSz, keyBuf,
  4004. keySz, ctx);
  4005. }
  4006. else
  4007. #endif /* HAVE_PK_CALLBACKS */
  4008. {
  4009. ret = wc_ecc_sign_hash(in, inSz, out, outSz, ssl->rng, key);
  4010. }
  4011. /* Handle async pending response */
  4012. #ifdef WOLFSSL_ASYNC_CRYPT
  4013. if (key && ret == WC_PENDING_E) {
  4014. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4015. }
  4016. #endif /* WOLFSSL_ASYNC_CRYPT */
  4017. WOLFSSL_LEAVE("EccSign", ret);
  4018. return ret;
  4019. }
  4020. int EccVerify(WOLFSSL* ssl, const byte* in, word32 inSz, const byte* out,
  4021. word32 outSz, ecc_key* key, buffer* keyBufInfo)
  4022. {
  4023. int ret;
  4024. #ifdef HAVE_PK_CALLBACKS
  4025. const byte* keyBuf = NULL;
  4026. word32 keySz = 0;
  4027. if (keyBufInfo) {
  4028. keyBuf = keyBufInfo->buffer;
  4029. keySz = keyBufInfo->length;
  4030. }
  4031. #endif
  4032. (void)ssl;
  4033. (void)keyBufInfo;
  4034. WOLFSSL_ENTER("EccVerify");
  4035. #ifdef WOLFSSL_ASYNC_CRYPT
  4036. /* initialize event */
  4037. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4038. if (ret != 0)
  4039. return ret;
  4040. #endif
  4041. #ifdef HAVE_PK_CALLBACKS
  4042. if (ssl->ctx->EccVerifyCb) {
  4043. void* ctx = wolfSSL_GetEccVerifyCtx(ssl);
  4044. ret = ssl->ctx->EccVerifyCb(ssl, in, inSz, out, outSz, keyBuf, keySz,
  4045. &ssl->eccVerifyRes, ctx);
  4046. }
  4047. else
  4048. #endif /* HAVE_PK_CALLBACKS */
  4049. {
  4050. ret = wc_ecc_verify_hash(in, inSz, out, outSz, &ssl->eccVerifyRes, key);
  4051. }
  4052. /* Handle async pending response */
  4053. #ifdef WOLFSSL_ASYNC_CRYPT
  4054. if (ret == WC_PENDING_E) {
  4055. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4056. }
  4057. else
  4058. #endif /* WOLFSSL_ASYNC_CRYPT */
  4059. {
  4060. ret = (ret != 0 || ssl->eccVerifyRes == 0) ? VERIFY_SIGN_ERROR : 0;
  4061. }
  4062. WOLFSSL_LEAVE("EccVerify", ret);
  4063. return ret;
  4064. }
  4065. int EccSharedSecret(WOLFSSL* ssl, ecc_key* priv_key, ecc_key* pub_key,
  4066. byte* pubKeyDer, word32* pubKeySz, byte* out, word32* outlen,
  4067. int side)
  4068. {
  4069. int ret;
  4070. #ifdef WOLFSSL_ASYNC_CRYPT
  4071. WC_ASYNC_DEV* asyncDev = NULL;
  4072. #endif
  4073. (void)ssl;
  4074. (void)pubKeyDer;
  4075. (void)pubKeySz;
  4076. (void)side;
  4077. WOLFSSL_ENTER("EccSharedSecret");
  4078. #ifdef WOLFSSL_ASYNC_CRYPT
  4079. /* initialize event */
  4080. if (priv_key != NULL) {
  4081. asyncDev = &priv_key->asyncDev;
  4082. }
  4083. ret = wolfSSL_AsyncInit(ssl, asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4084. if (ret != 0)
  4085. return ret;
  4086. #endif
  4087. #ifdef HAVE_PK_CALLBACKS
  4088. if (ssl->ctx->EccSharedSecretCb) {
  4089. void* ctx = wolfSSL_GetEccSharedSecretCtx(ssl);
  4090. ecc_key* otherKey = (side == WOLFSSL_CLIENT_END) ? pub_key : priv_key;
  4091. ret = ssl->ctx->EccSharedSecretCb(ssl, otherKey, pubKeyDer,
  4092. pubKeySz, out, outlen, side, ctx);
  4093. }
  4094. else
  4095. #endif
  4096. {
  4097. #if defined(ECC_TIMING_RESISTANT) && (!defined(HAVE_FIPS) || \
  4098. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION != 2))) && \
  4099. !defined(HAVE_SELFTEST)
  4100. ret = wc_ecc_set_rng(priv_key, ssl->rng);
  4101. if (ret == 0)
  4102. #endif
  4103. ret = wc_ecc_shared_secret(priv_key, pub_key, out, outlen);
  4104. }
  4105. /* Handle async pending response */
  4106. #ifdef WOLFSSL_ASYNC_CRYPT
  4107. if (ret == WC_PENDING_E) {
  4108. ret = wolfSSL_AsyncPush(ssl, asyncDev);
  4109. }
  4110. #endif /* WOLFSSL_ASYNC_CRYPT */
  4111. WOLFSSL_LEAVE("EccSharedSecret", ret);
  4112. return ret;
  4113. }
  4114. int EccMakeKey(WOLFSSL* ssl, ecc_key* key, ecc_key* peer)
  4115. {
  4116. int ret = 0;
  4117. int keySz = 0;
  4118. int ecc_curve = ECC_CURVE_DEF;
  4119. WOLFSSL_ENTER("EccMakeKey");
  4120. #ifdef WOLFSSL_ASYNC_CRYPT
  4121. /* initialize event */
  4122. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_NONE);
  4123. if (ret != 0)
  4124. return ret;
  4125. #endif
  4126. /* get key size */
  4127. if (peer == NULL || peer->dp == NULL) {
  4128. keySz = ssl->eccTempKeySz;
  4129. /* get curve type */
  4130. if (ssl->ecdhCurveOID > 0) {
  4131. ecc_curve = wc_ecc_get_oid(ssl->ecdhCurveOID, NULL, NULL);
  4132. }
  4133. }
  4134. else {
  4135. keySz = peer->dp->size;
  4136. ecc_curve = peer->dp->id;
  4137. }
  4138. #ifdef HAVE_PK_CALLBACKS
  4139. if (ssl->ctx->EccKeyGenCb) {
  4140. void* ctx = wolfSSL_GetEccKeyGenCtx(ssl);
  4141. ret = ssl->ctx->EccKeyGenCb(ssl, key, keySz, ecc_curve, ctx);
  4142. }
  4143. else
  4144. #endif
  4145. {
  4146. ret = wc_ecc_make_key_ex(ssl->rng, keySz, key, ecc_curve);
  4147. }
  4148. /* make sure the curve is set for TLS */
  4149. if (ret == 0 && key->dp) {
  4150. ssl->ecdhCurveOID = key->dp->oidSum;
  4151. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  4152. ssl->namedGroup = 0;
  4153. #endif
  4154. }
  4155. /* Handle async pending response */
  4156. #ifdef WOLFSSL_ASYNC_CRYPT
  4157. if (ret == WC_PENDING_E) {
  4158. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4159. }
  4160. #endif /* WOLFSSL_ASYNC_CRYPT */
  4161. WOLFSSL_LEAVE("EccMakeKey", ret);
  4162. return ret;
  4163. }
  4164. #endif /* HAVE_ECC */
  4165. #ifdef HAVE_ED25519
  4166. /* Check whether the key contains a public key.
  4167. * If not then pull it out of the leaf certificate.
  4168. *
  4169. * ssl SSL/TLS object.
  4170. * returns MEMORY_E when unable to allocate memory, a parsing error, otherwise
  4171. * 0 on success.
  4172. */
  4173. int Ed25519CheckPubKey(WOLFSSL* ssl)
  4174. {
  4175. #ifndef HAVE_ED25519_KEY_IMPORT
  4176. (void)ssl;
  4177. return NOT_COMPILED_IN;
  4178. #else /* HAVE_ED25519_KEY_IMPORT */
  4179. ed25519_key* key = (ed25519_key*)ssl->hsKey;
  4180. int ret = 0;
  4181. /* Public key required for signing. */
  4182. if (!key->pubKeySet) {
  4183. DerBuffer* leaf = ssl->buffers.certificate;
  4184. DecodedCert* cert = (DecodedCert*)XMALLOC(sizeof(*cert),
  4185. ssl->heap, DYNAMIC_TYPE_DCERT);
  4186. if (cert == NULL)
  4187. ret = MEMORY_E;
  4188. if (ret == 0) {
  4189. InitDecodedCert(cert, leaf->buffer, leaf->length, ssl->heap);
  4190. ret = DecodeToKey(cert, 0);
  4191. }
  4192. if (ret == 0) {
  4193. ret = wc_ed25519_import_public(cert->publicKey, cert->pubKeySize,
  4194. key);
  4195. }
  4196. if (cert != NULL) {
  4197. FreeDecodedCert(cert);
  4198. XFREE(cert, ssl->heap, DYNAMIC_TYPE_DCERT);
  4199. }
  4200. }
  4201. return ret;
  4202. #endif /* HAVE_ED25519_KEY_IMPORT */
  4203. }
  4204. /* Sign the data using EdDSA and key using Ed25519.
  4205. *
  4206. * ssl SSL object.
  4207. * in Data or message to sign.
  4208. * inSz Length of the data.
  4209. * out Buffer to hold signature.
  4210. * outSz On entry, size of the buffer. On exit, the size of the signature.
  4211. * key The private Ed25519 key data.
  4212. * keySz The length of the private key data in bytes.
  4213. * ctx The callback context.
  4214. * returns 0 on success, otherwise the value is an error.
  4215. */
  4216. int Ed25519Sign(WOLFSSL* ssl, const byte* in, word32 inSz, byte* out,
  4217. word32* outSz, ed25519_key* key, DerBuffer* keyBufInfo)
  4218. {
  4219. #ifndef HAVE_ED25519_SIGN
  4220. (void)ssl;
  4221. (void)in;
  4222. (void)inSz;
  4223. (void)out;
  4224. (void)outSz;
  4225. (void)key;
  4226. (void)keyBufInfo;
  4227. return NOT_COMPILED_IN;
  4228. #else /* HAVE_ED25519_SIGN */
  4229. int ret;
  4230. #ifdef HAVE_PK_CALLBACKS
  4231. const byte* keyBuf = NULL;
  4232. word32 keySz = 0;
  4233. if (keyBufInfo) {
  4234. keyBuf = keyBufInfo->buffer;
  4235. keySz = keyBufInfo->length;
  4236. }
  4237. #endif
  4238. (void)ssl;
  4239. (void)keyBufInfo;
  4240. WOLFSSL_ENTER("Ed25519Sign");
  4241. #ifdef WOLFSSL_ASYNC_CRYPT
  4242. /* initialize event */
  4243. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4244. if (ret != 0)
  4245. return ret;
  4246. #endif
  4247. #if defined(HAVE_PK_CALLBACKS)
  4248. if (ssl->ctx->Ed25519SignCb) {
  4249. void* ctx = wolfSSL_GetEd25519SignCtx(ssl);
  4250. ret = ssl->ctx->Ed25519SignCb(ssl, in, inSz, out, outSz, keyBuf,
  4251. keySz, ctx);
  4252. }
  4253. else
  4254. #endif /* HAVE_PK_CALLBACKS */
  4255. {
  4256. ret = wc_ed25519_sign_msg(in, inSz, out, outSz, key);
  4257. }
  4258. /* Handle async pending response */
  4259. #ifdef WOLFSSL_ASYNC_CRYPT
  4260. if (ret == WC_PENDING_E) {
  4261. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4262. }
  4263. #endif /* WOLFSSL_ASYNC_CRYPT */
  4264. WOLFSSL_LEAVE("Ed25519Sign", ret);
  4265. return ret;
  4266. #endif /* HAVE_ED25519_SIGN */
  4267. }
  4268. /* Verify the data using EdDSA and key using Ed25519.
  4269. *
  4270. * ssl SSL object.
  4271. * in Signature data.
  4272. * inSz Length of the signature data in bytes.
  4273. * msg Message to verify.
  4274. * outSz Length of message in bytes.
  4275. * key The public Ed25519 key data.
  4276. * keySz The length of the private key data in bytes.
  4277. * ctx The callback context.
  4278. * returns 0 on success, otherwise the value is an error.
  4279. */
  4280. int Ed25519Verify(WOLFSSL* ssl, const byte* in, word32 inSz, const byte* msg,
  4281. word32 msgSz, ed25519_key* key, buffer* keyBufInfo)
  4282. {
  4283. #ifndef HAVE_ED25519_VERIFY
  4284. (void)ssl;
  4285. (void)in;
  4286. (void)inSz;
  4287. (void)msg;
  4288. (void)msgSz;
  4289. (void)key;
  4290. (void)keyBufInfo;
  4291. return NOT_COMPILED_IN;
  4292. #else /* HAVE_ED25519_VERIFY */
  4293. int ret;
  4294. #ifdef HAVE_PK_CALLBACKS
  4295. const byte* keyBuf = NULL;
  4296. word32 keySz = 0;
  4297. if (keyBufInfo) {
  4298. keyBuf = keyBufInfo->buffer;
  4299. keySz = keyBufInfo->length;
  4300. }
  4301. #endif
  4302. (void)ssl;
  4303. (void)keyBufInfo;
  4304. WOLFSSL_ENTER("Ed25519Verify");
  4305. #ifdef WOLFSSL_ASYNC_CRYPT
  4306. /* initialize event */
  4307. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4308. if (ret != 0)
  4309. return ret;
  4310. #endif
  4311. #ifdef HAVE_PK_CALLBACKS
  4312. if (ssl->ctx->Ed25519VerifyCb) {
  4313. void* ctx = wolfSSL_GetEd25519VerifyCtx(ssl);
  4314. ret = ssl->ctx->Ed25519VerifyCb(ssl, in, inSz, msg, msgSz, keyBuf,
  4315. keySz, &ssl->eccVerifyRes, ctx);
  4316. }
  4317. else
  4318. #endif /* HAVE_PK_CALLBACKS */
  4319. {
  4320. ret = wc_ed25519_verify_msg(in, inSz, msg, msgSz,
  4321. &ssl->eccVerifyRes, key);
  4322. }
  4323. /* Handle async pending response */
  4324. #ifdef WOLFSSL_ASYNC_CRYPT
  4325. if (ret == WC_PENDING_E) {
  4326. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4327. }
  4328. else
  4329. #endif /* WOLFSSL_ASYNC_CRYPT */
  4330. {
  4331. ret = (ret != 0 || ssl->eccVerifyRes == 0) ? VERIFY_SIGN_ERROR : 0;
  4332. }
  4333. WOLFSSL_LEAVE("Ed25519Verify", ret);
  4334. return ret;
  4335. #endif /* HAVE_ED25519_VERIFY */
  4336. }
  4337. #endif /* HAVE_ED25519 */
  4338. #ifndef WOLFSSL_NO_TLS12
  4339. #ifdef HAVE_CURVE25519
  4340. #ifdef HAVE_PK_CALLBACKS
  4341. /* Gets X25519 key for shared secret callback testing
  4342. * Client side: returns peer key
  4343. * Server side: returns private key
  4344. */
  4345. static int X25519GetKey(WOLFSSL* ssl, curve25519_key** otherKey)
  4346. {
  4347. int ret = NO_PEER_KEY;
  4348. struct curve25519_key* tmpKey = NULL;
  4349. if (ssl == NULL || otherKey == NULL) {
  4350. return BAD_FUNC_ARG;
  4351. }
  4352. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  4353. if (!ssl->peerX25519Key || !ssl->peerX25519KeyPresent ||
  4354. !ssl->peerX25519Key->dp) {
  4355. return NO_PEER_KEY;
  4356. }
  4357. tmpKey = (struct curve25519_key*)ssl->peerX25519Key;
  4358. }
  4359. else if (ssl->options.side == WOLFSSL_SERVER_END) {
  4360. if (!ssl->eccTempKeyPresent) {
  4361. return NO_PRIVATE_KEY;
  4362. }
  4363. tmpKey = (struct curve25519_key*)ssl->eccTempKey;
  4364. }
  4365. if (tmpKey) {
  4366. *otherKey = (curve25519_key *)tmpKey;
  4367. ret = 0;
  4368. }
  4369. return ret;
  4370. }
  4371. #endif /* HAVE_PK_CALLBACKS */
  4372. static int X25519SharedSecret(WOLFSSL* ssl, curve25519_key* priv_key,
  4373. curve25519_key* pub_key, byte* pubKeyDer, word32* pubKeySz,
  4374. byte* out, word32* outlen, int side)
  4375. {
  4376. int ret;
  4377. (void)ssl;
  4378. (void)pubKeyDer;
  4379. (void)pubKeySz;
  4380. (void)side;
  4381. WOLFSSL_ENTER("X25519SharedSecret");
  4382. #ifdef WOLFSSL_ASYNC_CRYPT
  4383. /* initialize event */
  4384. ret = wolfSSL_AsyncInit(ssl, &priv_key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4385. if (ret != 0)
  4386. return ret;
  4387. #endif
  4388. #ifdef HAVE_PK_CALLBACKS
  4389. if (ssl->ctx->X25519SharedSecretCb) {
  4390. curve25519_key* otherKey = NULL;
  4391. ret = X25519GetKey(ssl, &otherKey);
  4392. if (ret == 0) {
  4393. void* ctx = wolfSSL_GetX25519SharedSecretCtx(ssl);
  4394. ret = ssl->ctx->X25519SharedSecretCb(ssl, otherKey, pubKeyDer,
  4395. pubKeySz, out, outlen, side, ctx);
  4396. }
  4397. }
  4398. else
  4399. #endif
  4400. {
  4401. ret = wc_curve25519_shared_secret_ex(priv_key, pub_key, out, outlen,
  4402. EC25519_LITTLE_ENDIAN);
  4403. }
  4404. /* Handle async pending response */
  4405. #ifdef WOLFSSL_ASYNC_CRYPT
  4406. if (ret == WC_PENDING_E) {
  4407. ret = wolfSSL_AsyncPush(ssl, &priv_key->asyncDev);
  4408. }
  4409. #endif /* WOLFSSL_ASYNC_CRYPT */
  4410. WOLFSSL_LEAVE("X25519SharedSecret", ret);
  4411. return ret;
  4412. }
  4413. static int X25519MakeKey(WOLFSSL* ssl, curve25519_key* key,
  4414. curve25519_key* peer)
  4415. {
  4416. int ret = 0;
  4417. (void)peer;
  4418. WOLFSSL_ENTER("X25519MakeKey");
  4419. #ifdef WOLFSSL_ASYNC_CRYPT
  4420. /* initialize event */
  4421. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_NONE);
  4422. if (ret != 0)
  4423. return ret;
  4424. #endif
  4425. #ifdef HAVE_PK_CALLBACKS
  4426. if (ssl->ctx->X25519KeyGenCb) {
  4427. void* ctx = wolfSSL_GetX25519KeyGenCtx(ssl);
  4428. ret = ssl->ctx->X25519KeyGenCb(ssl, key, CURVE25519_KEYSIZE, ctx);
  4429. }
  4430. else
  4431. #endif
  4432. {
  4433. ret = wc_curve25519_make_key(ssl->rng, CURVE25519_KEYSIZE, key);
  4434. }
  4435. if (ret == 0) {
  4436. ssl->ecdhCurveOID = ECC_X25519_OID;
  4437. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  4438. ssl->namedGroup = 0;
  4439. #endif
  4440. }
  4441. /* Handle async pending response */
  4442. #ifdef WOLFSSL_ASYNC_CRYPT
  4443. if (ret == WC_PENDING_E) {
  4444. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4445. }
  4446. #endif /* WOLFSSL_ASYNC_CRYPT */
  4447. WOLFSSL_LEAVE("X25519MakeKey", ret);
  4448. return ret;
  4449. }
  4450. #endif /* HAVE_CURVE25519 */
  4451. #endif /* !WOLFSSL_NO_TLS12 */
  4452. #ifdef HAVE_ED448
  4453. /* Check whether the key contains a public key.
  4454. * If not then pull it out of the leaf certificate.
  4455. *
  4456. * ssl SSL/TLS object.
  4457. * returns MEMORY_E when unable to allocate memory, a parsing error, otherwise
  4458. * 0 on success.
  4459. */
  4460. int Ed448CheckPubKey(WOLFSSL* ssl)
  4461. {
  4462. #ifndef HAVE_ED448_KEY_IMPORT
  4463. (void)ssl;
  4464. return NOT_COMPILED_IN;
  4465. #else /* HAVE_ED448_KEY_IMPORT */
  4466. ed448_key* key = (ed448_key*)ssl->hsKey;
  4467. int ret = 0;
  4468. /* Public key required for signing. */
  4469. if (!key->pubKeySet) {
  4470. DerBuffer* leaf = ssl->buffers.certificate;
  4471. DecodedCert* cert = (DecodedCert*)XMALLOC(sizeof(*cert), ssl->heap,
  4472. DYNAMIC_TYPE_DCERT);
  4473. if (cert == NULL)
  4474. ret = MEMORY_E;
  4475. if (ret == 0) {
  4476. InitDecodedCert(cert, leaf->buffer, leaf->length, ssl->heap);
  4477. ret = DecodeToKey(cert, 0);
  4478. }
  4479. if (ret == 0) {
  4480. ret = wc_ed448_import_public(cert->publicKey, cert->pubKeySize,
  4481. key);
  4482. }
  4483. if (cert != NULL) {
  4484. FreeDecodedCert(cert);
  4485. XFREE(cert, ssl->heap, DYNAMIC_TYPE_DCERT);
  4486. }
  4487. }
  4488. return ret;
  4489. #endif /* HAVE_ED448_KEY_IMPORT */
  4490. }
  4491. /* Sign the data using EdDSA and key using Ed448.
  4492. *
  4493. * ssl SSL object.
  4494. * in Data or message to sign.
  4495. * inSz Length of the data.
  4496. * out Buffer to hold signature.
  4497. * outSz On entry, size of the buffer. On exit, the size of the signature.
  4498. * key The private Ed448 key data.
  4499. * keySz The length of the private key data in bytes.
  4500. * ctx The callback context.
  4501. * returns 0 on success, otherwise the value is an error.
  4502. */
  4503. int Ed448Sign(WOLFSSL* ssl, const byte* in, word32 inSz, byte* out,
  4504. word32* outSz, ed448_key* key, DerBuffer* keyBufInfo)
  4505. {
  4506. #ifndef HAVE_ED448_SIGN
  4507. (void)ssl;
  4508. (void)in;
  4509. (void)inSz;
  4510. (void)out;
  4511. (void)outSz;
  4512. (void)key;
  4513. (void)keyBufInfo;
  4514. return NOT_COMPILED_IN;
  4515. #else /* HAVE_ED448_SIGN */
  4516. int ret;
  4517. #ifdef HAVE_PK_CALLBACKS
  4518. const byte* keyBuf = NULL;
  4519. word32 keySz = 0;
  4520. if (keyBufInfo) {
  4521. keyBuf = keyBufInfo->buffer;
  4522. keySz = keyBufInfo->length;
  4523. }
  4524. #endif
  4525. (void)ssl;
  4526. (void)keyBufInfo;
  4527. WOLFSSL_ENTER("Ed448Sign");
  4528. #ifdef WOLFSSL_ASYNC_CRYPT
  4529. /* initialize event */
  4530. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4531. if (ret != 0)
  4532. return ret;
  4533. #endif
  4534. #if defined(HAVE_PK_CALLBACKS)
  4535. if (ssl->ctx->Ed448SignCb) {
  4536. void* ctx = wolfSSL_GetEd448SignCtx(ssl);
  4537. ret = ssl->ctx->Ed448SignCb(ssl, in, inSz, out, outSz, keyBuf, keySz,
  4538. ctx);
  4539. }
  4540. else
  4541. #endif /* HAVE_PK_CALLBACKS */
  4542. {
  4543. ret = wc_ed448_sign_msg(in, inSz, out, outSz, key, NULL, 0);
  4544. }
  4545. /* Handle async pending response */
  4546. #ifdef WOLFSSL_ASYNC_CRYPT
  4547. if (ret == WC_PENDING_E) {
  4548. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4549. }
  4550. #endif /* WOLFSSL_ASYNC_CRYPT */
  4551. WOLFSSL_LEAVE("Ed448Sign", ret);
  4552. return ret;
  4553. #endif /* HAVE_ED448_SIGN */
  4554. }
  4555. /* Verify the data using EdDSA and key using Ed448.
  4556. *
  4557. * ssl SSL object.
  4558. * in Signature data.
  4559. * inSz Length of the signature data in bytes.
  4560. * msg Message to verify.
  4561. * outSz Length of message in bytes.
  4562. * key The public Ed448 key data.
  4563. * keySz The length of the private key data in bytes.
  4564. * ctx The callback context.
  4565. * returns 0 on success, otherwise the value is an error.
  4566. */
  4567. int Ed448Verify(WOLFSSL* ssl, const byte* in, word32 inSz, const byte* msg,
  4568. word32 msgSz, ed448_key* key, buffer* keyBufInfo)
  4569. {
  4570. #ifndef HAVE_ED448_VERIFY
  4571. (void)ssl;
  4572. (void)in;
  4573. (void)inSz;
  4574. (void)msg;
  4575. (void)msgSz;
  4576. (void)key;
  4577. (void)keyBufInfo;
  4578. return NOT_COMPILED_IN;
  4579. #else /* HAVE_ED448_VERIFY */
  4580. int ret;
  4581. #ifdef HAVE_PK_CALLBACKS
  4582. const byte* keyBuf = NULL;
  4583. word32 keySz = 0;
  4584. if (keyBufInfo) {
  4585. keyBuf = keyBufInfo->buffer;
  4586. keySz = keyBufInfo->length;
  4587. }
  4588. #endif
  4589. (void)ssl;
  4590. (void)keyBufInfo;
  4591. WOLFSSL_ENTER("Ed448Verify");
  4592. #ifdef WOLFSSL_ASYNC_CRYPT
  4593. /* initialize event */
  4594. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4595. if (ret != 0)
  4596. return ret;
  4597. #endif
  4598. #ifdef HAVE_PK_CALLBACKS
  4599. if (ssl->ctx->Ed448VerifyCb) {
  4600. void* ctx = wolfSSL_GetEd448VerifyCtx(ssl);
  4601. ret = ssl->ctx->Ed448VerifyCb(ssl, in, inSz, msg, msgSz, keyBuf, keySz,
  4602. &ssl->eccVerifyRes, ctx);
  4603. }
  4604. else
  4605. #endif /* HAVE_PK_CALLBACKS */
  4606. {
  4607. ret = wc_ed448_verify_msg(in, inSz, msg, msgSz, &ssl->eccVerifyRes, key,
  4608. NULL, 0);
  4609. }
  4610. /* Handle async pending response */
  4611. #ifdef WOLFSSL_ASYNC_CRYPT
  4612. if (ret == WC_PENDING_E) {
  4613. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4614. }
  4615. else
  4616. #endif /* WOLFSSL_ASYNC_CRYPT */
  4617. {
  4618. ret = (ret != 0 || ssl->eccVerifyRes == 0) ? VERIFY_SIGN_ERROR : 0;
  4619. }
  4620. WOLFSSL_LEAVE("Ed448Verify", ret);
  4621. return ret;
  4622. #endif /* HAVE_ED448_VERIFY */
  4623. }
  4624. #endif /* HAVE_ED448 */
  4625. #ifndef WOLFSSL_NO_TLS12
  4626. #ifdef HAVE_CURVE448
  4627. #ifdef HAVE_PK_CALLBACKS
  4628. /* Gets X448 key for shared secret callback testing
  4629. * Client side: returns peer key
  4630. * Server side: returns private key
  4631. */
  4632. static int X448GetKey(WOLFSSL* ssl, curve448_key** otherKey)
  4633. {
  4634. int ret = NO_PEER_KEY;
  4635. struct curve448_key* tmpKey = NULL;
  4636. if (ssl == NULL || otherKey == NULL) {
  4637. return BAD_FUNC_ARG;
  4638. }
  4639. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  4640. if (!ssl->peerX448Key || !ssl->peerX448KeyPresent) {
  4641. return NO_PEER_KEY;
  4642. }
  4643. tmpKey = (struct curve448_key*)ssl->peerX448Key;
  4644. }
  4645. else if (ssl->options.side == WOLFSSL_SERVER_END) {
  4646. if (!ssl->eccTempKeyPresent) {
  4647. return NO_PRIVATE_KEY;
  4648. }
  4649. tmpKey = (struct curve448_key*)ssl->eccTempKey;
  4650. }
  4651. if (tmpKey) {
  4652. *otherKey = (curve448_key *)tmpKey;
  4653. ret = 0;
  4654. }
  4655. return ret;
  4656. }
  4657. #endif /* HAVE_PK_CALLBACKS */
  4658. static int X448SharedSecret(WOLFSSL* ssl, curve448_key* priv_key,
  4659. curve448_key* pub_key, byte* pubKeyDer,
  4660. word32* pubKeySz, byte* out, word32* outlen,
  4661. int side)
  4662. {
  4663. int ret;
  4664. (void)ssl;
  4665. (void)pubKeyDer;
  4666. (void)pubKeySz;
  4667. (void)side;
  4668. WOLFSSL_ENTER("X448SharedSecret");
  4669. #ifdef WOLFSSL_ASYNC_CRYPT
  4670. /* initialize event */
  4671. ret = wolfSSL_AsyncInit(ssl, &priv_key->asyncDev, WC_ASYNC_FLAG_CALL_AGAIN);
  4672. if (ret != 0)
  4673. return ret;
  4674. #endif
  4675. #ifdef HAVE_PK_CALLBACKS
  4676. if (ssl->ctx->X448SharedSecretCb) {
  4677. curve448_key* otherKey = NULL;
  4678. ret = X448GetKey(ssl, &otherKey);
  4679. if (ret == 0) {
  4680. void* ctx = wolfSSL_GetX448SharedSecretCtx(ssl);
  4681. ret = ssl->ctx->X448SharedSecretCb(ssl, otherKey, pubKeyDer,
  4682. pubKeySz, out, outlen, side, ctx);
  4683. }
  4684. }
  4685. else
  4686. #endif
  4687. {
  4688. ret = wc_curve448_shared_secret_ex(priv_key, pub_key, out, outlen,
  4689. EC448_LITTLE_ENDIAN);
  4690. }
  4691. /* Handle async pending response */
  4692. #ifdef WOLFSSL_ASYNC_CRYPT
  4693. if (ret == WC_PENDING_E) {
  4694. ret = wolfSSL_AsyncPush(ssl, &priv_key->asyncDev);
  4695. }
  4696. #endif /* WOLFSSL_ASYNC_CRYPT */
  4697. WOLFSSL_LEAVE("X448SharedSecret", ret);
  4698. return ret;
  4699. }
  4700. static int X448MakeKey(WOLFSSL* ssl, curve448_key* key, curve448_key* peer)
  4701. {
  4702. int ret = 0;
  4703. (void)peer;
  4704. WOLFSSL_ENTER("X448MakeKey");
  4705. #ifdef WOLFSSL_ASYNC_CRYPT
  4706. /* initialize event */
  4707. ret = wolfSSL_AsyncInit(ssl, &key->asyncDev, WC_ASYNC_FLAG_NONE);
  4708. if (ret != 0)
  4709. return ret;
  4710. #endif
  4711. #ifdef HAVE_PK_CALLBACKS
  4712. if (ssl->ctx->X448KeyGenCb) {
  4713. void* ctx = wolfSSL_GetX448KeyGenCtx(ssl);
  4714. ret = ssl->ctx->X448KeyGenCb(ssl, key, CURVE448_KEY_SIZE, ctx);
  4715. }
  4716. else
  4717. #endif
  4718. {
  4719. ret = wc_curve448_make_key(ssl->rng, CURVE448_KEY_SIZE, key);
  4720. }
  4721. if (ret == 0) {
  4722. ssl->ecdhCurveOID = ECC_X448_OID;
  4723. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  4724. ssl->namedGroup = 0;
  4725. #endif
  4726. }
  4727. /* Handle async pending response */
  4728. #ifdef WOLFSSL_ASYNC_CRYPT
  4729. if (ret == WC_PENDING_E) {
  4730. ret = wolfSSL_AsyncPush(ssl, &key->asyncDev);
  4731. }
  4732. #endif /* WOLFSSL_ASYNC_CRYPT */
  4733. WOLFSSL_LEAVE("X448MakeKey", ret);
  4734. return ret;
  4735. }
  4736. #endif /* HAVE_CURVE448 */
  4737. #endif /* !WOLFSSL_NO_TLS12 */
  4738. #if !defined(NO_CERTS) || !defined(NO_PSK)
  4739. #if !defined(NO_DH)
  4740. int DhGenKeyPair(WOLFSSL* ssl, DhKey* dhKey,
  4741. byte* priv, word32* privSz,
  4742. byte* pub, word32* pubSz)
  4743. {
  4744. int ret;
  4745. WOLFSSL_ENTER("DhGenKeyPair");
  4746. #ifdef WOLFSSL_ASYNC_CRYPT
  4747. /* initialize event */
  4748. ret = wolfSSL_AsyncInit(ssl, &dhKey->asyncDev, WC_ASYNC_FLAG_NONE);
  4749. if (ret != 0)
  4750. return ret;
  4751. #endif
  4752. ret = wc_DhGenerateKeyPair(dhKey, ssl->rng, priv, privSz, pub, pubSz);
  4753. /* Handle async pending response */
  4754. #ifdef WOLFSSL_ASYNC_CRYPT
  4755. if (ret == WC_PENDING_E) {
  4756. ret = wolfSSL_AsyncPush(ssl, &dhKey->asyncDev);
  4757. }
  4758. #endif /* WOLFSSL_ASYNC_CRYPT */
  4759. WOLFSSL_LEAVE("DhGenKeyPair", ret);
  4760. return ret;
  4761. }
  4762. int DhAgree(WOLFSSL* ssl, DhKey* dhKey,
  4763. const byte* priv, word32 privSz,
  4764. const byte* otherPub, word32 otherPubSz,
  4765. byte* agree, word32* agreeSz,
  4766. const byte* prime, word32 primeSz)
  4767. {
  4768. int ret;
  4769. (void)ssl;
  4770. WOLFSSL_ENTER("DhAgree");
  4771. #ifdef WOLFSSL_ASYNC_CRYPT
  4772. /* initialize event */
  4773. ret = wolfSSL_AsyncInit(ssl, &dhKey->asyncDev, WC_ASYNC_FLAG_NONE);
  4774. if (ret != 0)
  4775. return ret;
  4776. #endif
  4777. #ifdef HAVE_PK_CALLBACKS
  4778. if (ssl->ctx->DhAgreeCb) {
  4779. void* ctx = wolfSSL_GetDhAgreeCtx(ssl);
  4780. WOLFSSL_MSG("Calling DhAgree Callback Function");
  4781. ret = ssl->ctx->DhAgreeCb(ssl, dhKey, priv, privSz,
  4782. otherPub, otherPubSz, agree, agreeSz, ctx);
  4783. }
  4784. else
  4785. #endif
  4786. {
  4787. #if !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)
  4788. /* check the public key has valid number */
  4789. if (dhKey != NULL && (prime == NULL || primeSz == 0)) {
  4790. /* wc_DhCheckPubKey does not do exponentiation */
  4791. ret = wc_DhCheckPubKey(dhKey, otherPub, otherPubSz);
  4792. }
  4793. else {
  4794. ret = wc_DhCheckPubValue(prime, primeSz, otherPub, otherPubSz);
  4795. }
  4796. if (ret != 0) {
  4797. /* translate to valid error (wc_DhCheckPubValue returns MP_VAL -1) */
  4798. ret = PEER_KEY_ERROR;
  4799. #ifdef OPENSSL_EXTRA
  4800. SendAlert(ssl, alert_fatal, illegal_parameter);
  4801. #endif
  4802. }
  4803. else
  4804. #endif
  4805. {
  4806. ret = wc_DhAgree(dhKey, agree, agreeSz, priv, privSz, otherPub,
  4807. otherPubSz);
  4808. }
  4809. }
  4810. /* Handle async pending response */
  4811. #ifdef WOLFSSL_ASYNC_CRYPT
  4812. if (ret == WC_PENDING_E) {
  4813. ret = wolfSSL_AsyncPush(ssl, &dhKey->asyncDev);
  4814. }
  4815. #endif /* WOLFSSL_ASYNC_CRYPT */
  4816. WOLFSSL_LEAVE("DhAgree", ret);
  4817. (void)prime;
  4818. (void)primeSz;
  4819. return ret;
  4820. }
  4821. #endif /* !NO_DH */
  4822. #endif /* !NO_CERTS || !NO_PSK */
  4823. #ifdef HAVE_PK_CALLBACKS
  4824. int wolfSSL_IsPrivatePkSet(WOLFSSL* ssl)
  4825. {
  4826. int pkcbset = 0;
  4827. (void)ssl;
  4828. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  4829. !defined(NO_RSA)
  4830. if (0
  4831. #ifdef HAVE_ECC
  4832. || (ssl->ctx->EccSignCb != NULL &&
  4833. ssl->buffers.keyType == ecc_dsa_sa_algo)
  4834. #endif
  4835. #ifdef HAVE_ED25519
  4836. || (ssl->ctx->Ed25519SignCb != NULL &&
  4837. ssl->buffers.keyType == ed25519_sa_algo)
  4838. #endif
  4839. #ifdef HAVE_ED448
  4840. || (ssl->ctx->Ed448SignCb != NULL &&
  4841. ssl->buffers.keyType == ed448_sa_algo)
  4842. #endif
  4843. #ifndef NO_RSA
  4844. || (ssl->ctx->RsaSignCb != NULL && ssl->buffers.keyType == rsa_sa_algo)
  4845. || (ssl->ctx->RsaDecCb != NULL && ssl->buffers.keyType == rsa_kea)
  4846. #ifdef WC_RSA_PSS
  4847. || (ssl->ctx->RsaPssSignCb != NULL &&
  4848. ssl->buffers.keyType == rsa_pss_sa_algo)
  4849. #endif
  4850. #endif
  4851. ) {
  4852. pkcbset = 1;
  4853. }
  4854. #endif
  4855. return pkcbset;
  4856. }
  4857. int wolfSSL_CTX_IsPrivatePkSet(WOLFSSL_CTX* ctx)
  4858. {
  4859. int pkcbset = 0;
  4860. (void)ctx;
  4861. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  4862. !defined(NO_RSA)
  4863. if (0
  4864. #ifdef HAVE_ECC
  4865. || ctx->EccSignCb != NULL
  4866. #endif
  4867. #ifdef HAVE_ED25519
  4868. || ctx->Ed25519SignCb != NULL
  4869. #endif
  4870. #ifdef HAVE_ED448
  4871. || ctx->Ed448SignCb != NULL
  4872. #endif
  4873. #ifndef NO_RSA
  4874. || ctx->RsaSignCb != NULL
  4875. || ctx->RsaDecCb != NULL
  4876. #ifdef WC_RSA_PSS
  4877. || ctx->RsaPssSignCb != NULL
  4878. #endif
  4879. #endif
  4880. ) {
  4881. pkcbset = 1;
  4882. }
  4883. #endif
  4884. return pkcbset;
  4885. }
  4886. #endif /* HAVE_PK_CALLBACKS */
  4887. int InitSSL_Suites(WOLFSSL* ssl)
  4888. {
  4889. int keySz = 0;
  4890. byte havePSK = 0;
  4891. byte haveAnon = 0;
  4892. byte haveRSA = 0;
  4893. byte haveMcast = 0;
  4894. (void)haveAnon; /* Squash unused var warnings */
  4895. (void)haveMcast;
  4896. if (!ssl)
  4897. return BAD_FUNC_ARG;
  4898. #ifndef NO_RSA
  4899. haveRSA = 1;
  4900. #endif
  4901. #ifndef NO_PSK
  4902. havePSK = (byte)ssl->options.havePSK;
  4903. #endif /* NO_PSK */
  4904. #ifdef HAVE_ANON
  4905. haveAnon = (byte)ssl->options.haveAnon;
  4906. #endif /* HAVE_ANON*/
  4907. #ifdef WOLFSSL_MULTICAST
  4908. haveMcast = (byte)ssl->options.haveMcast;
  4909. #endif /* WOLFSSL_MULTICAST */
  4910. #ifdef WOLFSSL_EARLY_DATA
  4911. if (ssl->options.side == WOLFSSL_SERVER_END)
  4912. ssl->options.maxEarlyDataSz = ssl->ctx->maxEarlyDataSz;
  4913. #endif
  4914. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  4915. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  4916. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  4917. ssl->options.cacheMessages = ssl->options.side == WOLFSSL_SERVER_END ||
  4918. ssl->buffers.keyType == ed25519_sa_algo ||
  4919. ssl->buffers.keyType == ed448_sa_algo;
  4920. #endif
  4921. #ifndef NO_CERTS
  4922. keySz = ssl->buffers.keySz;
  4923. #endif
  4924. /* make sure server has DH parms, and add PSK if there */
  4925. if (ssl->options.side == WOLFSSL_SERVER_END) {
  4926. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  4927. ssl->options.haveDH, ssl->options.haveECDSAsig,
  4928. ssl->options.haveECC, ssl->options.haveStaticECC,
  4929. ssl->options.haveAnon, ssl->options.side);
  4930. }
  4931. else {
  4932. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK, TRUE,
  4933. ssl->options.haveECDSAsig, ssl->options.haveECC,
  4934. ssl->options.haveStaticECC, ssl->options.haveAnon,
  4935. ssl->options.side);
  4936. }
  4937. #if !defined(NO_CERTS) && !defined(WOLFSSL_SESSION_EXPORT)
  4938. /* make sure server has cert and key unless using PSK, Anon, or
  4939. * Multicast. This should be true even if just switching ssl ctx */
  4940. if (ssl->options.side == WOLFSSL_SERVER_END &&
  4941. !havePSK && !haveAnon && !haveMcast) {
  4942. /* server certificate must be loaded */
  4943. if (!ssl->buffers.certificate || !ssl->buffers.certificate->buffer) {
  4944. WOLFSSL_MSG("Server missing certificate");
  4945. return NO_PRIVATE_KEY;
  4946. }
  4947. /* allow no private key if using PK callbacks and CB is set */
  4948. #ifdef HAVE_PK_CALLBACKS
  4949. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx)) {
  4950. WOLFSSL_MSG("Using PK for server private key");
  4951. }
  4952. else
  4953. #endif
  4954. if (!ssl->buffers.key || !ssl->buffers.key->buffer) {
  4955. WOLFSSL_MSG("Server missing private key");
  4956. return NO_PRIVATE_KEY;
  4957. }
  4958. }
  4959. #endif
  4960. return WOLFSSL_SUCCESS;
  4961. }
  4962. /* returns new reference count. Arg incr positive=up or negative=down */
  4963. int SSL_CTX_RefCount(WOLFSSL_CTX* ctx, int incr)
  4964. {
  4965. int refCount;
  4966. if (ctx == NULL) {
  4967. return BAD_FUNC_ARG;
  4968. }
  4969. if (wc_LockMutex(&ctx->countMutex) != 0) {
  4970. WOLFSSL_MSG("Couldn't lock CTX count mutex");
  4971. return BAD_MUTEX_E;
  4972. }
  4973. ctx->refCount += incr;
  4974. /* make sure refCount is never negative */
  4975. if (ctx->refCount < 0) {
  4976. ctx->refCount = 0;
  4977. }
  4978. refCount = ctx->refCount;
  4979. wc_UnLockMutex(&ctx->countMutex);
  4980. return refCount;
  4981. }
  4982. /* This function inherits a WOLFSSL_CTX's fields into an SSL object.
  4983. It is used during initialization and to switch an ssl's CTX with
  4984. wolfSSL_Set_SSL_CTX. Requires ssl->suites alloc and ssl-arrays with PSK
  4985. unless writeDup is on.
  4986. ssl object to initialize
  4987. ctx parent factory
  4988. writeDup flag indicating this is a write dup only
  4989. WOLFSSL_SUCCESS return value on success */
  4990. int SetSSL_CTX(WOLFSSL* ssl, WOLFSSL_CTX* ctx, int writeDup)
  4991. {
  4992. int ret;
  4993. byte newSSL;
  4994. if (!ssl || !ctx)
  4995. return BAD_FUNC_ARG;
  4996. #ifndef SINGLE_THREADED
  4997. if (ssl->suites == NULL && !writeDup)
  4998. return BAD_FUNC_ARG;
  4999. #endif
  5000. newSSL = ssl->ctx == NULL; /* Assign after null check */
  5001. #ifndef NO_PSK
  5002. if (ctx->server_hint[0] && ssl->arrays == NULL && !writeDup) {
  5003. return BAD_FUNC_ARG; /* needed for copy below */
  5004. }
  5005. #endif
  5006. /* decrement previous CTX reference count if exists.
  5007. * This should only happen if switching ctxs!*/
  5008. if (!newSSL) {
  5009. WOLFSSL_MSG("freeing old ctx to decrement reference count. Switching ctx.");
  5010. wolfSSL_CTX_free(ssl->ctx);
  5011. }
  5012. /* increment CTX reference count */
  5013. if ((ret = SSL_CTX_RefCount(ctx, 1)) < 0) {
  5014. return ret;
  5015. }
  5016. ret = WOLFSSL_SUCCESS; /* set default ret */
  5017. ssl->ctx = ctx; /* only for passing to calls, options could change */
  5018. ssl->version = ctx->method->version;
  5019. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  5020. ssl->options.mask = ctx->mask;
  5021. #endif
  5022. #ifdef OPENSSL_EXTRA
  5023. #ifdef WOLFSSL_TLS13
  5024. if (ssl->version.minor == TLSv1_3_MINOR &&
  5025. (ssl->options.mask & SSL_OP_NO_TLSv1_3) == SSL_OP_NO_TLSv1_3) {
  5026. if (!ctx->method->downgrade) {
  5027. WOLFSSL_MSG("\tInconsistent protocol options. TLS 1.3 set but not "
  5028. "allowed and downgrading disabled.");
  5029. return VERSION_ERROR;
  5030. }
  5031. WOLFSSL_MSG("\tOption set to not allow TLSv1.3, Downgrading");
  5032. ssl->version.minor = TLSv1_2_MINOR;
  5033. }
  5034. #endif
  5035. if (ssl->version.minor == TLSv1_2_MINOR &&
  5036. (ssl->options.mask & SSL_OP_NO_TLSv1_2) == SSL_OP_NO_TLSv1_2) {
  5037. if (!ctx->method->downgrade) {
  5038. WOLFSSL_MSG("\tInconsistent protocol options. TLS 1.2 set but not "
  5039. "allowed and downgrading disabled.");
  5040. return VERSION_ERROR;
  5041. }
  5042. WOLFSSL_MSG("\tOption set to not allow TLSv1.2, Downgrading");
  5043. ssl->version.minor = TLSv1_1_MINOR;
  5044. }
  5045. if (ssl->version.minor == TLSv1_1_MINOR &&
  5046. (ssl->options.mask & SSL_OP_NO_TLSv1_1) == SSL_OP_NO_TLSv1_1) {
  5047. if (!ctx->method->downgrade) {
  5048. WOLFSSL_MSG("\tInconsistent protocol options. TLS 1.1 set but not "
  5049. "allowed and downgrading disabled.");
  5050. return VERSION_ERROR;
  5051. }
  5052. WOLFSSL_MSG("\tOption set to not allow TLSv1.1, Downgrading");
  5053. ssl->options.tls1_1 = 0;
  5054. ssl->version.minor = TLSv1_MINOR;
  5055. }
  5056. if (ssl->version.minor == TLSv1_MINOR &&
  5057. (ssl->options.mask & SSL_OP_NO_TLSv1) == SSL_OP_NO_TLSv1) {
  5058. if (!ctx->method->downgrade) {
  5059. WOLFSSL_MSG("\tInconsistent protocol options. TLS 1 set but not "
  5060. "allowed and downgrading disabled.");
  5061. return VERSION_ERROR;
  5062. }
  5063. WOLFSSL_MSG("\tOption set to not allow TLSv1, Downgrading");
  5064. ssl->options.tls = 0;
  5065. ssl->options.tls1_1 = 0;
  5066. ssl->version.minor = SSLv3_MINOR;
  5067. }
  5068. if (ssl->version.minor == SSLv3_MINOR &&
  5069. (ssl->options.mask & SSL_OP_NO_SSLv3) == SSL_OP_NO_SSLv3) {
  5070. WOLFSSL_MSG("\tError, option set to not allow SSLv3");
  5071. return VERSION_ERROR;
  5072. }
  5073. if (ssl->version.minor < ssl->options.minDowngrade) {
  5074. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  5075. return VERSION_ERROR;
  5076. }
  5077. #endif
  5078. #ifdef HAVE_ECC
  5079. ssl->eccTempKeySz = ctx->eccTempKeySz;
  5080. ssl->ecdhCurveOID = ctx->ecdhCurveOID;
  5081. #endif
  5082. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  5083. ssl->pkCurveOID = ctx->pkCurveOID;
  5084. #endif
  5085. #ifdef OPENSSL_EXTRA
  5086. ssl->CBIS = ctx->CBIS;
  5087. #endif
  5088. ssl->timeout = ctx->timeout;
  5089. ssl->verifyCallback = ctx->verifyCallback;
  5090. ssl->options.side = ctx->method->side;
  5091. ssl->options.downgrade = ctx->method->downgrade;
  5092. ssl->options.minDowngrade = ctx->minDowngrade;
  5093. ssl->options.haveDH = ctx->haveDH;
  5094. ssl->options.haveECDSAsig = ctx->haveECDSAsig;
  5095. ssl->options.haveECC = ctx->haveECC;
  5096. ssl->options.haveStaticECC = ctx->haveStaticECC;
  5097. #ifndef NO_PSK
  5098. ssl->options.havePSK = ctx->havePSK;
  5099. ssl->options.client_psk_cb = ctx->client_psk_cb;
  5100. ssl->options.server_psk_cb = ctx->server_psk_cb;
  5101. ssl->options.psk_ctx = ctx->psk_ctx;
  5102. #ifdef WOLFSSL_TLS13
  5103. ssl->options.client_psk_cs_cb = ctx->client_psk_cs_cb;
  5104. ssl->options.client_psk_tls13_cb = ctx->client_psk_tls13_cb;
  5105. ssl->options.server_psk_tls13_cb = ctx->server_psk_tls13_cb;
  5106. #endif
  5107. #endif /* NO_PSK */
  5108. #ifdef WOLFSSL_EARLY_DATA
  5109. if (ssl->options.side == WOLFSSL_SERVER_END)
  5110. ssl->options.maxEarlyDataSz = ctx->maxEarlyDataSz;
  5111. #endif
  5112. #ifdef HAVE_ANON
  5113. ssl->options.haveAnon = ctx->haveAnon;
  5114. #endif
  5115. #ifndef NO_DH
  5116. ssl->options.minDhKeySz = ctx->minDhKeySz;
  5117. ssl->options.maxDhKeySz = ctx->maxDhKeySz;
  5118. #endif
  5119. #ifndef NO_RSA
  5120. ssl->options.minRsaKeySz = ctx->minRsaKeySz;
  5121. #endif
  5122. #ifdef HAVE_ECC
  5123. ssl->options.minEccKeySz = ctx->minEccKeySz;
  5124. #endif
  5125. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  5126. ssl->options.verifyDepth = ctx->verifyDepth;
  5127. #endif
  5128. ssl->options.sessionCacheOff = ctx->sessionCacheOff;
  5129. ssl->options.sessionCacheFlushOff = ctx->sessionCacheFlushOff;
  5130. #ifdef HAVE_EXT_CACHE
  5131. ssl->options.internalCacheOff = ctx->internalCacheOff;
  5132. #endif
  5133. ssl->options.verifyPeer = ctx->verifyPeer;
  5134. ssl->options.verifyNone = ctx->verifyNone;
  5135. ssl->options.failNoCert = ctx->failNoCert;
  5136. ssl->options.failNoCertxPSK = ctx->failNoCertxPSK;
  5137. ssl->options.sendVerify = ctx->sendVerify;
  5138. ssl->options.partialWrite = ctx->partialWrite;
  5139. ssl->options.quietShutdown = ctx->quietShutdown;
  5140. ssl->options.groupMessages = ctx->groupMessages;
  5141. #ifndef NO_DH
  5142. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  5143. !defined(HAVE_SELFTEST)
  5144. ssl->options.dhKeyTested = ctx->dhKeyTested;
  5145. #endif
  5146. ssl->buffers.serverDH_P = ctx->serverDH_P;
  5147. ssl->buffers.serverDH_G = ctx->serverDH_G;
  5148. #endif
  5149. #ifndef NO_CERTS
  5150. /* ctx still owns certificate, certChain, key, dh, and cm */
  5151. ssl->buffers.certificate = ctx->certificate;
  5152. ssl->buffers.certChain = ctx->certChain;
  5153. #ifdef WOLFSSL_TLS13
  5154. ssl->buffers.certChainCnt = ctx->certChainCnt;
  5155. #endif
  5156. ssl->buffers.key = ctx->privateKey;
  5157. ssl->buffers.keyType = ctx->privateKeyType;
  5158. ssl->buffers.keyId = ctx->privateKeyId;
  5159. ssl->buffers.keyLabel = ctx->privateKeyLabel;
  5160. ssl->buffers.keySz = ctx->privateKeySz;
  5161. ssl->buffers.keyDevId = ctx->privateKeyDevId;
  5162. #endif
  5163. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  5164. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  5165. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  5166. ssl->options.cacheMessages = ssl->options.side == WOLFSSL_SERVER_END ||
  5167. ssl->buffers.keyType == ed25519_sa_algo ||
  5168. ssl->buffers.keyType == ed448_sa_algo;
  5169. #endif
  5170. #ifdef WOLFSSL_ASYNC_CRYPT
  5171. ssl->devId = ctx->devId;
  5172. #endif
  5173. if (writeDup == 0) {
  5174. #ifndef NO_PSK
  5175. if (ctx->server_hint[0]) { /* set in CTX */
  5176. XSTRNCPY(ssl->arrays->server_hint, ctx->server_hint,
  5177. sizeof(ssl->arrays->server_hint));
  5178. ssl->arrays->server_hint[MAX_PSK_ID_LEN] = '\0'; /* null term */
  5179. }
  5180. #endif /* NO_PSK */
  5181. if (ctx->suites) {
  5182. #ifndef SINGLE_THREADED
  5183. *ssl->suites = *ctx->suites;
  5184. #else
  5185. ssl->suites = ctx->suites;
  5186. #endif
  5187. }
  5188. else {
  5189. XMEMSET(ssl->suites, 0, sizeof(Suites));
  5190. }
  5191. if (ssl->options.side != WOLFSSL_NEITHER_END) {
  5192. /* Defer initializing suites until accept or connect */
  5193. ret = InitSSL_Suites(ssl);
  5194. }
  5195. } /* writeDup check */
  5196. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  5197. if (ctx->mask != 0 && wolfSSL_set_options(ssl, ctx->mask) == 0) {
  5198. WOLFSSL_MSG("wolfSSL_set_options error");
  5199. return BAD_FUNC_ARG;
  5200. }
  5201. #endif
  5202. #ifdef WOLFSSL_SESSION_EXPORT
  5203. #ifdef WOLFSSL_DTLS
  5204. ssl->dtls_export = ctx->dtls_export; /* export function for session */
  5205. #endif
  5206. #endif
  5207. #ifdef WOLFSSL_WOLFSENTRY_HOOKS
  5208. ssl->AcceptFilter = ctx->AcceptFilter;
  5209. ssl->AcceptFilter_arg = ctx->AcceptFilter_arg;
  5210. ssl->ConnectFilter = ctx->ConnectFilter;
  5211. ssl->ConnectFilter_arg = ctx->ConnectFilter_arg;
  5212. #endif
  5213. #ifdef OPENSSL_EXTRA
  5214. ssl->readAhead = ctx->readAhead;
  5215. #endif
  5216. #ifdef OPENSSL_EXTRA
  5217. /* Don't change recv callback if currently using BIO's */
  5218. if (ssl->CBIORecv != BioReceive)
  5219. #endif
  5220. ssl->CBIORecv = ctx->CBIORecv;
  5221. #ifdef OPENSSL_EXTRA
  5222. /* Don't change send callback if currently using BIO's */
  5223. if (ssl->CBIOSend != BioSend)
  5224. #endif
  5225. ssl->CBIOSend = ctx->CBIOSend;
  5226. ssl->verifyDepth = ctx->verifyDepth;
  5227. return ret;
  5228. }
  5229. int InitHandshakeHashes(WOLFSSL* ssl)
  5230. {
  5231. int ret;
  5232. /* make sure existing handshake hashes are free'd */
  5233. if (ssl->hsHashes != NULL) {
  5234. FreeHandshakeHashes(ssl);
  5235. }
  5236. /* allocate handshake hashes */
  5237. ssl->hsHashes = (HS_Hashes*)XMALLOC(sizeof(HS_Hashes), ssl->heap,
  5238. DYNAMIC_TYPE_HASHES);
  5239. if (ssl->hsHashes == NULL) {
  5240. WOLFSSL_MSG("HS_Hashes Memory error");
  5241. return MEMORY_E;
  5242. }
  5243. XMEMSET(ssl->hsHashes, 0, sizeof(HS_Hashes));
  5244. #ifndef NO_OLD_TLS
  5245. #ifndef NO_MD5
  5246. ret = wc_InitMd5_ex(&ssl->hsHashes->hashMd5, ssl->heap, ssl->devId);
  5247. if (ret != 0)
  5248. return ret;
  5249. #if defined(WOLFSSL_HASH_FLAGS) || defined(WOLF_CRYPTO_CB)
  5250. wc_Md5SetFlags(&ssl->hsHashes->hashMd5, WC_HASH_FLAG_WILLCOPY);
  5251. #endif
  5252. #endif
  5253. #ifndef NO_SHA
  5254. ret = wc_InitSha_ex(&ssl->hsHashes->hashSha, ssl->heap, ssl->devId);
  5255. if (ret != 0)
  5256. return ret;
  5257. #if defined(WOLFSSL_HASH_FLAGS) || defined(WOLF_CRYPTO_CB)
  5258. wc_ShaSetFlags(&ssl->hsHashes->hashSha, WC_HASH_FLAG_WILLCOPY);
  5259. #endif
  5260. #endif
  5261. #endif /* !NO_OLD_TLS */
  5262. #ifndef NO_SHA256
  5263. ret = wc_InitSha256_ex(&ssl->hsHashes->hashSha256, ssl->heap, ssl->devId);
  5264. if (ret != 0)
  5265. return ret;
  5266. #if defined(WOLFSSL_HASH_FLAGS) || defined(WOLF_CRYPTO_CB)
  5267. wc_Sha256SetFlags(&ssl->hsHashes->hashSha256, WC_HASH_FLAG_WILLCOPY);
  5268. #endif
  5269. #endif
  5270. #ifdef WOLFSSL_SHA384
  5271. ret = wc_InitSha384_ex(&ssl->hsHashes->hashSha384, ssl->heap, ssl->devId);
  5272. if (ret != 0)
  5273. return ret;
  5274. #if defined(WOLFSSL_HASH_FLAGS) || defined(WOLF_CRYPTO_CB)
  5275. wc_Sha384SetFlags(&ssl->hsHashes->hashSha384, WC_HASH_FLAG_WILLCOPY);
  5276. #endif
  5277. #endif
  5278. #ifdef WOLFSSL_SHA512
  5279. ret = wc_InitSha512_ex(&ssl->hsHashes->hashSha512, ssl->heap, ssl->devId);
  5280. if (ret != 0)
  5281. return ret;
  5282. #if defined(WOLFSSL_HASH_FLAGS) || defined(WOLF_CRYPTO_CB)
  5283. wc_Sha512SetFlags(&ssl->hsHashes->hashSha512, WC_HASH_FLAG_WILLCOPY);
  5284. #endif
  5285. #endif
  5286. return ret;
  5287. }
  5288. void FreeHandshakeHashes(WOLFSSL* ssl)
  5289. {
  5290. if (ssl->hsHashes) {
  5291. #ifndef NO_OLD_TLS
  5292. #ifndef NO_MD5
  5293. wc_Md5Free(&ssl->hsHashes->hashMd5);
  5294. #endif
  5295. #ifndef NO_SHA
  5296. wc_ShaFree(&ssl->hsHashes->hashSha);
  5297. #endif
  5298. #endif /* !NO_OLD_TLS */
  5299. #ifndef NO_SHA256
  5300. wc_Sha256Free(&ssl->hsHashes->hashSha256);
  5301. #endif
  5302. #ifdef WOLFSSL_SHA384
  5303. wc_Sha384Free(&ssl->hsHashes->hashSha384);
  5304. #endif
  5305. #ifdef WOLFSSL_SHA512
  5306. wc_Sha512Free(&ssl->hsHashes->hashSha512);
  5307. #endif
  5308. #if (defined(HAVE_ED25519) || defined(HAVE_ED448)) && \
  5309. !defined(WOLFSSL_NO_CLIENT_AUTH)
  5310. if (ssl->hsHashes->messages != NULL) {
  5311. XFREE(ssl->hsHashes->messages, ssl->heap, DYNAMIC_TYPE_HASHES);
  5312. ssl->hsHashes->messages = NULL;
  5313. }
  5314. #endif
  5315. XFREE(ssl->hsHashes, ssl->heap, DYNAMIC_TYPE_HASHES);
  5316. ssl->hsHashes = NULL;
  5317. }
  5318. }
  5319. /* init everything to 0, NULL, default values before calling anything that may
  5320. fail so that destructor has a "good" state to cleanup
  5321. ssl object to initialize
  5322. ctx parent factory
  5323. writeDup flag indicating this is a write dup only
  5324. 0 on success */
  5325. int InitSSL(WOLFSSL* ssl, WOLFSSL_CTX* ctx, int writeDup)
  5326. {
  5327. int ret;
  5328. XMEMSET(ssl, 0, sizeof(WOLFSSL));
  5329. #if defined(WOLFSSL_STATIC_MEMORY)
  5330. if (ctx->heap != NULL) {
  5331. WOLFSSL_HEAP_HINT* ssl_hint;
  5332. WOLFSSL_HEAP_HINT* ctx_hint;
  5333. /* avoid dereferencing a test value */
  5334. #ifdef WOLFSSL_HEAP_TEST
  5335. if (ctx->heap == (void*)WOLFSSL_HEAP_TEST) {
  5336. ssl->heap = ctx->heap;
  5337. }
  5338. else {
  5339. #endif
  5340. ssl->heap = (WOLFSSL_HEAP_HINT*)XMALLOC(sizeof(WOLFSSL_HEAP_HINT),
  5341. ctx->heap, DYNAMIC_TYPE_SSL);
  5342. if (ssl->heap == NULL) {
  5343. return MEMORY_E;
  5344. }
  5345. XMEMSET(ssl->heap, 0, sizeof(WOLFSSL_HEAP_HINT));
  5346. ssl_hint = ((WOLFSSL_HEAP_HINT*)(ssl->heap));
  5347. ctx_hint = ((WOLFSSL_HEAP_HINT*)(ctx->heap));
  5348. /* lock and check IO count / handshake count */
  5349. if (wc_LockMutex(&(ctx_hint->memory->memory_mutex)) != 0) {
  5350. WOLFSSL_MSG("Bad memory_mutex lock");
  5351. XFREE(ssl->heap, ctx->heap, DYNAMIC_TYPE_SSL);
  5352. ssl->heap = NULL; /* free and set to NULL for IO counter */
  5353. return BAD_MUTEX_E;
  5354. }
  5355. if (ctx_hint->memory->maxHa > 0 &&
  5356. ctx_hint->memory->maxHa <= ctx_hint->memory->curHa) {
  5357. WOLFSSL_MSG("At max number of handshakes for static memory");
  5358. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5359. XFREE(ssl->heap, ctx->heap, DYNAMIC_TYPE_SSL);
  5360. ssl->heap = NULL; /* free and set to NULL for IO counter */
  5361. return MEMORY_E;
  5362. }
  5363. if (ctx_hint->memory->maxIO > 0 &&
  5364. ctx_hint->memory->maxIO <= ctx_hint->memory->curIO) {
  5365. WOLFSSL_MSG("At max number of IO allowed for static memory");
  5366. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5367. XFREE(ssl->heap, ctx->heap, DYNAMIC_TYPE_SSL);
  5368. ssl->heap = NULL; /* free and set to NULL for IO counter */
  5369. return MEMORY_E;
  5370. }
  5371. ctx_hint->memory->curIO++;
  5372. ctx_hint->memory->curHa++;
  5373. ssl_hint->memory = ctx_hint->memory;
  5374. ssl_hint->haFlag = 1;
  5375. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5376. /* check if tracking stats */
  5377. if (ctx_hint->memory->flag & WOLFMEM_TRACK_STATS) {
  5378. ssl_hint->stats = (WOLFSSL_MEM_CONN_STATS*)XMALLOC(
  5379. sizeof(WOLFSSL_MEM_CONN_STATS), ctx->heap, DYNAMIC_TYPE_SSL);
  5380. if (ssl_hint->stats == NULL) {
  5381. return MEMORY_E;
  5382. }
  5383. XMEMSET(ssl_hint->stats, 0, sizeof(WOLFSSL_MEM_CONN_STATS));
  5384. }
  5385. /* check if using fixed IO buffers */
  5386. if (ctx_hint->memory->flag & WOLFMEM_IO_POOL_FIXED) {
  5387. if (wc_LockMutex(&(ctx_hint->memory->memory_mutex)) != 0) {
  5388. WOLFSSL_MSG("Bad memory_mutex lock");
  5389. return BAD_MUTEX_E;
  5390. }
  5391. if (SetFixedIO(ctx_hint->memory, &(ssl_hint->inBuf)) != 1) {
  5392. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5393. return MEMORY_E;
  5394. }
  5395. if (SetFixedIO(ctx_hint->memory, &(ssl_hint->outBuf)) != 1) {
  5396. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5397. return MEMORY_E;
  5398. }
  5399. if (ssl_hint->outBuf == NULL || ssl_hint->inBuf == NULL) {
  5400. WOLFSSL_MSG("Not enough memory to create fixed IO buffers");
  5401. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5402. return MEMORY_E;
  5403. }
  5404. wc_UnLockMutex(&(ctx_hint->memory->memory_mutex));
  5405. }
  5406. #ifdef WOLFSSL_HEAP_TEST
  5407. }
  5408. #endif
  5409. }
  5410. else {
  5411. ssl->heap = ctx->heap;
  5412. }
  5413. #else
  5414. ssl->heap = ctx->heap; /* carry over user heap without static memory */
  5415. #endif /* WOLFSSL_STATIC_MEMORY */
  5416. ssl->buffers.inputBuffer.buffer = ssl->buffers.inputBuffer.staticBuffer;
  5417. ssl->buffers.inputBuffer.bufferSize = STATIC_BUFFER_LEN;
  5418. ssl->buffers.outputBuffer.buffer = ssl->buffers.outputBuffer.staticBuffer;
  5419. ssl->buffers.outputBuffer.bufferSize = STATIC_BUFFER_LEN;
  5420. #ifdef KEEP_PEER_CERT
  5421. InitX509(&ssl->peerCert, 0, ssl->heap);
  5422. #endif
  5423. ssl->rfd = -1; /* set to invalid descriptor */
  5424. ssl->wfd = -1;
  5425. ssl->devId = ctx->devId; /* device for async HW (from wolfAsync_DevOpen) */
  5426. #ifdef HAVE_NETX
  5427. ssl->IOCB_ReadCtx = &ssl->nxCtx; /* default NetX IO ctx, same for read */
  5428. ssl->IOCB_WriteCtx = &ssl->nxCtx; /* and write */
  5429. #elif defined(WOLFSSL_APACHE_MYNEWT) && !defined(WOLFSSL_LWIP)
  5430. ssl->mnCtx = mynewt_ctx_new();
  5431. if(!ssl->mnCtx) {
  5432. return MEMORY_E;
  5433. }
  5434. ssl->IOCB_ReadCtx = ssl->mnCtx; /* default Mynewt IO ctx, same for read */
  5435. ssl->IOCB_WriteCtx = ssl->mnCtx; /* and write */
  5436. #elif defined (WOLFSSL_GNRC)
  5437. ssl->IOCB_ReadCtx = ssl->gnrcCtx;
  5438. ssl->IOCB_WriteCtx = ssl->gnrcCtx;
  5439. #else
  5440. ssl->IOCB_ReadCtx = &ssl->rfd; /* prevent invalid pointer access if not */
  5441. ssl->IOCB_WriteCtx = &ssl->wfd; /* correctly set */
  5442. #endif
  5443. /* initialize states */
  5444. ssl->options.serverState = NULL_STATE;
  5445. ssl->options.clientState = NULL_STATE;
  5446. ssl->options.connectState = CONNECT_BEGIN;
  5447. ssl->options.acceptState = ACCEPT_BEGIN;
  5448. ssl->options.handShakeState = NULL_STATE;
  5449. ssl->options.processReply = doProcessInit;
  5450. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  5451. ssl->options.buildMsgState = BUILD_MSG_BEGIN;
  5452. ssl->encrypt.state = CIPHER_STATE_BEGIN;
  5453. ssl->decrypt.state = CIPHER_STATE_BEGIN;
  5454. #ifndef NO_DH
  5455. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  5456. !defined(HAVE_SELFTEST)
  5457. ssl->options.dhDoKeyTest = 1;
  5458. #endif
  5459. #endif
  5460. #ifdef WOLFSSL_DTLS
  5461. #ifdef WOLFSSL_SCTP
  5462. ssl->options.dtlsSctp = ctx->dtlsSctp;
  5463. #endif
  5464. #if defined(WOLFSSL_SCTP) || defined(WOLFSSL_DTLS_MTU)
  5465. ssl->dtlsMtuSz = ctx->dtlsMtuSz;
  5466. /* Add some bytes so that we can operate with slight difference
  5467. * in set MTU size on each peer */
  5468. ssl->dtls_expected_rx = ssl->dtlsMtuSz +
  5469. DTLS_MTU_ADDITIONAL_READ_BUFFER;
  5470. #else
  5471. ssl->dtls_expected_rx = MAX_MTU;
  5472. #endif
  5473. ssl->dtls_timeout_init = DTLS_TIMEOUT_INIT;
  5474. ssl->dtls_timeout_max = DTLS_TIMEOUT_MAX;
  5475. ssl->dtls_timeout = ssl->dtls_timeout_init;
  5476. ssl->buffers.dtlsCtx.rfd = -1;
  5477. ssl->buffers.dtlsCtx.wfd = -1;
  5478. ssl->IOCB_ReadCtx = &ssl->buffers.dtlsCtx; /* prevent invalid pointer access if not */
  5479. ssl->IOCB_WriteCtx = &ssl->buffers.dtlsCtx; /* correctly set */
  5480. #endif
  5481. #ifndef WOLFSSL_AEAD_ONLY
  5482. #ifndef NO_OLD_TLS
  5483. ssl->hmac = SSL_hmac; /* default to SSLv3 */
  5484. #elif !defined(WOLFSSL_NO_TLS12)
  5485. ssl->hmac = TLS_hmac;
  5486. #endif
  5487. #endif
  5488. #if defined(WOLFSSL_OPENVPN) && defined(HAVE_KEYING_MATERIAL)
  5489. /* Save arrays by default for OpenVPN */
  5490. ssl->options.saveArrays = 1;
  5491. #endif
  5492. ssl->cipher.ssl = ssl;
  5493. #ifdef HAVE_EXTENDED_MASTER
  5494. ssl->options.haveEMS = ctx->haveEMS;
  5495. #endif
  5496. ssl->options.useClientOrder = ctx->useClientOrder;
  5497. ssl->options.mutualAuth = ctx->mutualAuth;
  5498. #ifdef WOLFSSL_STATIC_EPHEMERAL
  5499. XMEMCPY(&ssl->staticKE, &ctx->staticKE, sizeof(StaticKeyExchangeInfo_t));
  5500. #ifdef HAVE_ECC
  5501. ssl->staticKE.weOwnEC = 0;
  5502. #endif
  5503. #ifndef NO_DH
  5504. ssl->staticKE.weOwnDH = 0;
  5505. #endif
  5506. #ifdef HAVE_CURVE25519
  5507. ssl->staticKE.weOwnX25519 = 0;
  5508. #endif
  5509. #endif
  5510. #ifdef WOLFSSL_TLS13
  5511. #if defined(HAVE_SESSION_TICKET) && !defined(NO_WOLFSSL_SERVER)
  5512. ssl->options.maxTicketTls13 = ctx->maxTicketTls13;
  5513. #endif
  5514. #ifdef HAVE_SESSION_TICKET
  5515. ssl->options.noTicketTls13 = ctx->noTicketTls13;
  5516. #endif
  5517. ssl->options.noPskDheKe = ctx->noPskDheKe;
  5518. #if defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  5519. ssl->options.postHandshakeAuth = ctx->postHandshakeAuth;
  5520. ssl->options.verifyPostHandshake = ctx->verifyPostHandshake;
  5521. #endif
  5522. if (ctx->numGroups > 0) {
  5523. XMEMCPY(ssl->group, ctx->group, sizeof(*ctx->group) * ctx->numGroups);
  5524. ssl->numGroups = ctx->numGroups;
  5525. }
  5526. #endif
  5527. #ifdef HAVE_TLS_EXTENSIONS
  5528. #ifdef HAVE_MAX_FRAGMENT
  5529. ssl->max_fragment = MAX_RECORD_SIZE;
  5530. #endif
  5531. #ifdef HAVE_ALPN
  5532. ssl->alpn_client_list = NULL;
  5533. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(WOLFSSL_HAPROXY)
  5534. ssl->alpnSelect = ctx->alpnSelect;
  5535. ssl->alpnSelectArg = ctx->alpnSelectArg;
  5536. #endif
  5537. #if !defined(NO_BIO) && defined(OPENSSL_EXTRA)
  5538. if (ctx->alpn_cli_protos != NULL && ctx->alpn_cli_protos_len > 0) {
  5539. ret = wolfSSL_set_alpn_protos(ssl, ctx->alpn_cli_protos,
  5540. ctx->alpn_cli_protos_len);
  5541. #if defined(WOLFSSL_ERROR_CODE_OPENSSL)
  5542. if (ret) {
  5543. #else
  5544. if (!ret) {
  5545. #endif
  5546. WOLFSSL_MSG("failed to set alpn protos to ssl object");
  5547. return ret;
  5548. }
  5549. }
  5550. #endif
  5551. #endif
  5552. #ifdef HAVE_SUPPORTED_CURVES
  5553. ssl->options.userCurves = ctx->userCurves;
  5554. #endif
  5555. #endif /* HAVE_TLS_EXTENSIONS */
  5556. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  5557. ssl->options.disallowEncThenMac = ctx->disallowEncThenMac;
  5558. #endif
  5559. /* default alert state (none) */
  5560. ssl->alert_history.last_rx.code = -1;
  5561. ssl->alert_history.last_rx.level = -1;
  5562. ssl->alert_history.last_tx.code = -1;
  5563. ssl->alert_history.last_tx.level = -1;
  5564. #ifdef OPENSSL_EXTRA
  5565. /* copy over application session context ID */
  5566. ssl->sessionCtxSz = ctx->sessionCtxSz;
  5567. XMEMCPY(ssl->sessionCtx, ctx->sessionCtx, ctx->sessionCtxSz);
  5568. ssl->cbioFlag = ctx->cbioFlag;
  5569. ssl->protoMsgCb = ctx->protoMsgCb;
  5570. ssl->protoMsgCtx = ctx->protoMsgCtx;
  5571. /* follow default behavior of setting toInfoOn similar to
  5572. * wolfSSL_set_msg_callback when the callback is set */
  5573. if (ctx->protoMsgCb != NULL) {
  5574. ssl->toInfoOn = 1;
  5575. }
  5576. #endif
  5577. InitCiphers(ssl);
  5578. InitCipherSpecs(&ssl->specs);
  5579. /* all done with init, now can return errors, call other stuff */
  5580. if (!writeDup) {
  5581. /* arrays */
  5582. ssl->arrays = (Arrays*)XMALLOC(sizeof(Arrays), ssl->heap,
  5583. DYNAMIC_TYPE_ARRAYS);
  5584. if (ssl->arrays == NULL) {
  5585. WOLFSSL_MSG("Arrays Memory error");
  5586. return MEMORY_E;
  5587. }
  5588. XMEMSET(ssl->arrays, 0, sizeof(Arrays));
  5589. #if defined(WOLFSSL_TLS13) || defined(WOLFSSL_SNIFFER)
  5590. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  5591. ssl->arrays->preMasterSecret = (byte*)XMALLOC(ENCRYPT_LEN, ssl->heap,
  5592. DYNAMIC_TYPE_SECRET);
  5593. if (ssl->arrays->preMasterSecret == NULL) {
  5594. return MEMORY_E;
  5595. }
  5596. XMEMSET(ssl->arrays->preMasterSecret, 0, ENCRYPT_LEN);
  5597. #endif
  5598. #ifdef OPENSSL_EXTRA
  5599. if ((ssl->param = (WOLFSSL_X509_VERIFY_PARAM*)XMALLOC(
  5600. sizeof(WOLFSSL_X509_VERIFY_PARAM),
  5601. ssl->heap, DYNAMIC_TYPE_OPENSSL)) == NULL) {
  5602. WOLFSSL_MSG("ssl->param memory error");
  5603. return MEMORY_E;
  5604. }
  5605. XMEMSET(ssl->param, 0, sizeof(WOLFSSL_X509_VERIFY_PARAM));
  5606. #endif
  5607. #ifdef SINGLE_THREADED
  5608. if (ctx->suites == NULL)
  5609. #endif
  5610. {
  5611. /* suites */
  5612. ssl->suites = (Suites*)XMALLOC(sizeof(Suites), ssl->heap,
  5613. DYNAMIC_TYPE_SUITES);
  5614. if (ssl->suites == NULL) {
  5615. WOLFSSL_MSG("Suites Memory error");
  5616. return MEMORY_E;
  5617. }
  5618. #ifdef OPENSSL_ALL
  5619. ssl->suites->stack = NULL;
  5620. #endif
  5621. #ifdef SINGLE_THREADED
  5622. ssl->options.ownSuites = 1;
  5623. #endif
  5624. }
  5625. #ifdef SINGLE_THREADED
  5626. else {
  5627. ssl->options.ownSuites = 0;
  5628. }
  5629. #endif
  5630. }
  5631. /* Initialize SSL with the appropriate fields from it's ctx */
  5632. /* requires valid arrays and suites unless writeDup ing */
  5633. if ((ret = SetSSL_CTX(ssl, ctx, writeDup)) != WOLFSSL_SUCCESS)
  5634. return ret;
  5635. ssl->options.dtls = ssl->version.major == DTLS_MAJOR;
  5636. #ifdef SINGLE_THREADED
  5637. ssl->rng = ctx->rng; /* CTX may have one, if so use it */
  5638. #endif
  5639. if (ssl->rng == NULL) {
  5640. /* RNG */
  5641. ssl->rng = (WC_RNG*)XMALLOC(sizeof(WC_RNG), ssl->heap,DYNAMIC_TYPE_RNG);
  5642. if (ssl->rng == NULL) {
  5643. WOLFSSL_MSG("RNG Memory error");
  5644. return MEMORY_E;
  5645. }
  5646. XMEMSET(ssl->rng, 0, sizeof(WC_RNG));
  5647. ssl->options.weOwnRng = 1;
  5648. /* FIPS RNG API does not accept a heap hint */
  5649. #ifndef HAVE_FIPS
  5650. if ( (ret = wc_InitRng_ex(ssl->rng, ssl->heap, ssl->devId)) != 0) {
  5651. WOLFSSL_MSG("RNG Init error");
  5652. return ret;
  5653. }
  5654. #else
  5655. if ( (ret = wc_InitRng(ssl->rng)) != 0) {
  5656. WOLFSSL_MSG("RNG Init error");
  5657. return ret;
  5658. }
  5659. #endif
  5660. }
  5661. #ifdef HAVE_WRITE_DUP
  5662. if (writeDup) {
  5663. /* all done */
  5664. return 0;
  5665. }
  5666. #endif
  5667. /* hsHashes */
  5668. ret = InitHandshakeHashes(ssl);
  5669. if (ret != 0)
  5670. return ret;
  5671. #if defined(WOLFSSL_DTLS) && !defined(NO_WOLFSSL_SERVER)
  5672. if (ssl->options.dtls && ssl->options.side == WOLFSSL_SERVER_END) {
  5673. ret = wolfSSL_DTLS_SetCookieSecret(ssl, NULL, 0);
  5674. if (ret != 0) {
  5675. WOLFSSL_MSG("DTLS Cookie Secret error");
  5676. return ret;
  5677. }
  5678. }
  5679. #endif /* WOLFSSL_DTLS && !NO_WOLFSSL_SERVER */
  5680. #ifdef HAVE_SECRET_CALLBACK
  5681. ssl->sessionSecretCb = NULL;
  5682. ssl->sessionSecretCtx = NULL;
  5683. #ifdef WOLFSSL_TLS13
  5684. ssl->tls13SecretCb = NULL;
  5685. ssl->tls13SecretCtx = NULL;
  5686. #endif
  5687. #endif
  5688. #if defined(OPENSSL_EXTRA) && defined(HAVE_SECRET_CALLBACK)
  5689. if (ctx->keyLogCb != NULL) {
  5690. ssl->keyLogCb = SessionSecret_callback;
  5691. #if defined(WOLFSSL_TLS13)
  5692. ssl->tls13KeyLogCb = SessionSecret_callback_Tls13;
  5693. #endif /*WOLFSSL_TLS13*/
  5694. }
  5695. #endif /*OPENSSL_EXTRA && HAVE_SECRET_CALLBACK */
  5696. #ifdef HAVE_SESSION_TICKET
  5697. ssl->options.noTicketTls12 = ctx->noTicketTls12;
  5698. ssl->session.ticket = ssl->session.staticTicket;
  5699. #endif
  5700. #ifdef WOLFSSL_MULTICAST
  5701. if (ctx->haveMcast) {
  5702. int i;
  5703. ssl->options.haveMcast = 1;
  5704. ssl->options.mcastID = ctx->mcastID;
  5705. /* Force the state to look like handshake has completed. */
  5706. /* Keying material is supplied externally. */
  5707. ssl->options.serverState = SERVER_FINISHED_COMPLETE;
  5708. ssl->options.clientState = CLIENT_FINISHED_COMPLETE;
  5709. ssl->options.connectState = SECOND_REPLY_DONE;
  5710. ssl->options.acceptState = ACCEPT_THIRD_REPLY_DONE;
  5711. ssl->options.handShakeState = HANDSHAKE_DONE;
  5712. ssl->options.handShakeDone = 1;
  5713. for (i = 0; i < WOLFSSL_DTLS_PEERSEQ_SZ; i++)
  5714. ssl->keys.peerSeq[i].peerId = INVALID_PEER_ID;
  5715. }
  5716. #endif
  5717. #ifdef HAVE_SECURE_RENEGOTIATION
  5718. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  5719. int useSecureReneg = ssl->ctx->useSecureReneg;
  5720. /* use secure renegotiation by default (not recommend) */
  5721. #ifdef WOLFSSL_SECURE_RENEGOTIATION_ON_BY_DEFAULT
  5722. useSecureReneg = 1;
  5723. #endif
  5724. if (useSecureReneg) {
  5725. ret = wolfSSL_UseSecureRenegotiation(ssl);
  5726. if (ret != WOLFSSL_SUCCESS)
  5727. return ret;
  5728. }
  5729. }
  5730. #endif /* HAVE_SECURE_RENEGOTIATION */
  5731. return 0;
  5732. }
  5733. /* free use of temporary arrays */
  5734. void FreeArrays(WOLFSSL* ssl, int keep)
  5735. {
  5736. if (ssl->arrays) {
  5737. if (keep) {
  5738. /* keeps session id for user retrieval */
  5739. XMEMCPY(ssl->session.sessionID, ssl->arrays->sessionID, ID_LEN);
  5740. ssl->session.sessionIDSz = ssl->arrays->sessionIDSz;
  5741. }
  5742. if (ssl->arrays->preMasterSecret) {
  5743. XFREE(ssl->arrays->preMasterSecret, ssl->heap, DYNAMIC_TYPE_SECRET);
  5744. ssl->arrays->preMasterSecret = NULL;
  5745. }
  5746. XFREE(ssl->arrays->pendingMsg, ssl->heap, DYNAMIC_TYPE_ARRAYS);
  5747. ssl->arrays->pendingMsg = NULL;
  5748. ForceZero(ssl->arrays, sizeof(Arrays)); /* clear arrays struct */
  5749. }
  5750. XFREE(ssl->arrays, ssl->heap, DYNAMIC_TYPE_ARRAYS);
  5751. ssl->arrays = NULL;
  5752. }
  5753. void FreeKey(WOLFSSL* ssl, int type, void** pKey)
  5754. {
  5755. if (ssl && pKey && *pKey) {
  5756. switch (type) {
  5757. #ifndef NO_RSA
  5758. case DYNAMIC_TYPE_RSA:
  5759. wc_FreeRsaKey((RsaKey*)*pKey);
  5760. break;
  5761. #endif /* ! NO_RSA */
  5762. #ifdef HAVE_ECC
  5763. case DYNAMIC_TYPE_ECC:
  5764. wc_ecc_free((ecc_key*)*pKey);
  5765. break;
  5766. #endif /* HAVE_ECC */
  5767. #ifdef HAVE_ED25519
  5768. case DYNAMIC_TYPE_ED25519:
  5769. wc_ed25519_free((ed25519_key*)*pKey);
  5770. break;
  5771. #endif /* HAVE_ED25519 */
  5772. #ifdef HAVE_CURVE25519
  5773. case DYNAMIC_TYPE_CURVE25519:
  5774. wc_curve25519_free((curve25519_key*)*pKey);
  5775. break;
  5776. #endif /* HAVE_CURVE25519 */
  5777. #ifdef HAVE_ED448
  5778. case DYNAMIC_TYPE_ED448:
  5779. wc_ed448_free((ed448_key*)*pKey);
  5780. break;
  5781. #endif /* HAVE_ED448 */
  5782. #ifdef HAVE_CURVE448
  5783. case DYNAMIC_TYPE_CURVE448:
  5784. wc_curve448_free((curve448_key*)*pKey);
  5785. break;
  5786. #endif /* HAVE_CURVE448 */
  5787. #ifndef NO_DH
  5788. case DYNAMIC_TYPE_DH:
  5789. wc_FreeDhKey((DhKey*)*pKey);
  5790. break;
  5791. #endif /* !NO_DH */
  5792. default:
  5793. break;
  5794. }
  5795. XFREE(*pKey, ssl->heap, type);
  5796. /* Reset pointer */
  5797. *pKey = NULL;
  5798. }
  5799. }
  5800. int AllocKey(WOLFSSL* ssl, int type, void** pKey)
  5801. {
  5802. int ret = BAD_FUNC_ARG;
  5803. int sz = 0;
  5804. if (ssl == NULL || pKey == NULL) {
  5805. return BAD_FUNC_ARG;
  5806. }
  5807. /* Sanity check key destination */
  5808. if (*pKey != NULL) {
  5809. WOLFSSL_MSG("Key already present!");
  5810. return BAD_STATE_E;
  5811. }
  5812. /* Determine size */
  5813. switch (type) {
  5814. #ifndef NO_RSA
  5815. case DYNAMIC_TYPE_RSA:
  5816. sz = sizeof(RsaKey);
  5817. break;
  5818. #endif /* ! NO_RSA */
  5819. #ifdef HAVE_ECC
  5820. case DYNAMIC_TYPE_ECC:
  5821. sz = sizeof(ecc_key);
  5822. break;
  5823. #endif /* HAVE_ECC */
  5824. #ifdef HAVE_ED25519
  5825. case DYNAMIC_TYPE_ED25519:
  5826. sz = sizeof(ed25519_key);
  5827. break;
  5828. #endif /* HAVE_ED25519 */
  5829. #ifdef HAVE_CURVE25519
  5830. case DYNAMIC_TYPE_CURVE25519:
  5831. sz = sizeof(curve25519_key);
  5832. break;
  5833. #endif /* HAVE_CURVE25519 */
  5834. #ifdef HAVE_ED448
  5835. case DYNAMIC_TYPE_ED448:
  5836. sz = sizeof(ed448_key);
  5837. break;
  5838. #endif /* HAVE_ED448 */
  5839. #ifdef HAVE_CURVE448
  5840. case DYNAMIC_TYPE_CURVE448:
  5841. sz = sizeof(curve448_key);
  5842. break;
  5843. #endif /* HAVE_CURVE448 */
  5844. #ifndef NO_DH
  5845. case DYNAMIC_TYPE_DH:
  5846. sz = sizeof(DhKey);
  5847. break;
  5848. #endif /* !NO_DH */
  5849. default:
  5850. return BAD_FUNC_ARG;
  5851. }
  5852. /* Allocate memory for key */
  5853. *pKey = (void *)XMALLOC(sz, ssl->heap, type);
  5854. if (*pKey == NULL) {
  5855. return MEMORY_E;
  5856. }
  5857. /* Initialize key */
  5858. switch (type) {
  5859. #ifndef NO_RSA
  5860. case DYNAMIC_TYPE_RSA:
  5861. ret = wc_InitRsaKey_ex((RsaKey*)*pKey, ssl->heap, ssl->devId);
  5862. break;
  5863. #endif /* ! NO_RSA */
  5864. #ifdef HAVE_ECC
  5865. case DYNAMIC_TYPE_ECC:
  5866. ret = wc_ecc_init_ex((ecc_key*)*pKey, ssl->heap, ssl->devId);
  5867. break;
  5868. #endif /* HAVE_ECC */
  5869. #ifdef HAVE_ED25519
  5870. case DYNAMIC_TYPE_ED25519:
  5871. wc_ed25519_init_ex((ed25519_key*)*pKey, ssl->heap, ssl->devId);
  5872. ret = 0;
  5873. break;
  5874. #endif /* HAVE_CURVE25519 */
  5875. #ifdef HAVE_CURVE25519
  5876. case DYNAMIC_TYPE_CURVE25519:
  5877. wc_curve25519_init_ex((curve25519_key*)*pKey, ssl->heap, ssl->devId);
  5878. ret = 0;
  5879. break;
  5880. #endif /* HAVE_CURVE25519 */
  5881. #ifdef HAVE_ED448
  5882. case DYNAMIC_TYPE_ED448:
  5883. wc_ed448_init_ex((ed448_key*)*pKey, ssl->heap, ssl->devId);
  5884. ret = 0;
  5885. break;
  5886. #endif /* HAVE_CURVE448 */
  5887. #ifdef HAVE_CURVE448
  5888. case DYNAMIC_TYPE_CURVE448:
  5889. wc_curve448_init((curve448_key*)*pKey);
  5890. ret = 0;
  5891. break;
  5892. #endif /* HAVE_CURVE448 */
  5893. #ifndef NO_DH
  5894. case DYNAMIC_TYPE_DH:
  5895. ret = wc_InitDhKey_ex((DhKey*)*pKey, ssl->heap, ssl->devId);
  5896. break;
  5897. #endif /* !NO_DH */
  5898. default:
  5899. return BAD_FUNC_ARG;
  5900. }
  5901. /* On error free handshake key */
  5902. if (ret != 0) {
  5903. FreeKey(ssl, type, pKey);
  5904. }
  5905. return ret;
  5906. }
  5907. #if !defined(NO_RSA) || defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  5908. defined(HAVE_CURVE25519) || defined(HAVE_ED448) || defined(HAVE_CURVE448)
  5909. static int ReuseKey(WOLFSSL* ssl, int type, void* pKey)
  5910. {
  5911. int ret = 0;
  5912. (void)ssl;
  5913. switch (type) {
  5914. #ifndef NO_RSA
  5915. case DYNAMIC_TYPE_RSA:
  5916. wc_FreeRsaKey((RsaKey*)pKey);
  5917. ret = wc_InitRsaKey_ex((RsaKey*)pKey, ssl->heap, ssl->devId);
  5918. break;
  5919. #endif /* ! NO_RSA */
  5920. #ifdef HAVE_ECC
  5921. case DYNAMIC_TYPE_ECC:
  5922. wc_ecc_free((ecc_key*)pKey);
  5923. ret = wc_ecc_init_ex((ecc_key*)pKey, ssl->heap, ssl->devId);
  5924. break;
  5925. #endif /* HAVE_ECC */
  5926. #ifdef HAVE_ED25519
  5927. case DYNAMIC_TYPE_ED25519:
  5928. wc_ed25519_free((ed25519_key*)pKey);
  5929. ret = wc_ed25519_init_ex((ed25519_key*)pKey, ssl->heap,
  5930. ssl->devId);
  5931. break;
  5932. #endif /* HAVE_CURVE25519 */
  5933. #ifdef HAVE_CURVE25519
  5934. case DYNAMIC_TYPE_CURVE25519:
  5935. wc_curve25519_free((curve25519_key*)pKey);
  5936. ret = wc_curve25519_init_ex((curve25519_key*)pKey, ssl->heap,
  5937. ssl->devId);
  5938. break;
  5939. #endif /* HAVE_CURVE25519 */
  5940. #ifdef HAVE_ED448
  5941. case DYNAMIC_TYPE_ED448:
  5942. wc_ed448_free((ed448_key*)pKey);
  5943. ret = wc_ed448_init_ex((ed448_key*)pKey, ssl->heap, ssl->devId);
  5944. break;
  5945. #endif /* HAVE_CURVE448 */
  5946. #ifdef HAVE_CURVE448
  5947. case DYNAMIC_TYPE_CURVE448:
  5948. wc_curve448_free((curve448_key*)pKey);
  5949. ret = wc_curve448_init((curve448_key*)pKey);
  5950. break;
  5951. #endif /* HAVE_CURVE448 */
  5952. #ifndef NO_DH
  5953. case DYNAMIC_TYPE_DH:
  5954. wc_FreeDhKey((DhKey*)pKey);
  5955. ret = wc_InitDhKey_ex((DhKey*)pKey, ssl->heap, ssl->devId);
  5956. break;
  5957. #endif /* !NO_DH */
  5958. default:
  5959. return BAD_FUNC_ARG;
  5960. }
  5961. return ret;
  5962. }
  5963. #endif
  5964. void FreeKeyExchange(WOLFSSL* ssl)
  5965. {
  5966. /* Cleanup signature buffer */
  5967. if (ssl->buffers.sig.buffer) {
  5968. XFREE(ssl->buffers.sig.buffer, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  5969. ssl->buffers.sig.buffer = NULL;
  5970. ssl->buffers.sig.length = 0;
  5971. }
  5972. /* Cleanup digest buffer */
  5973. if (ssl->buffers.digest.buffer) {
  5974. XFREE(ssl->buffers.digest.buffer, ssl->heap, DYNAMIC_TYPE_DIGEST);
  5975. ssl->buffers.digest.buffer = NULL;
  5976. ssl->buffers.digest.length = 0;
  5977. }
  5978. /* Free handshake key */
  5979. FreeKey(ssl, ssl->hsType, &ssl->hsKey);
  5980. #ifndef NO_DH
  5981. /* Free temp DH key */
  5982. FreeKey(ssl, DYNAMIC_TYPE_DH, (void**)&ssl->buffers.serverDH_Key);
  5983. #endif
  5984. /* Cleanup async */
  5985. #ifdef WOLFSSL_ASYNC_CRYPT
  5986. if (ssl->async.freeArgs) {
  5987. ssl->async.freeArgs(ssl, ssl->async.args);
  5988. ssl->async.freeArgs = NULL;
  5989. }
  5990. FreeBuildMsgArgs(ssl, &ssl->async.buildArgs);
  5991. #endif
  5992. }
  5993. /* Free up all memory used by Suites structure from WOLFSSL */
  5994. void FreeSuites(WOLFSSL* ssl)
  5995. {
  5996. #ifdef SINGLE_THREADED
  5997. if (ssl->options.ownSuites)
  5998. #endif
  5999. {
  6000. #ifdef OPENSSL_ALL
  6001. if (ssl->suites != NULL) {
  6002. wolfSSL_sk_SSL_CIPHER_free(ssl->suites->stack);
  6003. }
  6004. #endif
  6005. XFREE(ssl->suites, ssl->heap, DYNAMIC_TYPE_SUITES);
  6006. }
  6007. ssl->suites = NULL;
  6008. }
  6009. /* In case holding SSL object in array and don't want to free actual ssl */
  6010. void SSL_ResourceFree(WOLFSSL* ssl)
  6011. {
  6012. /* Note: any resources used during the handshake should be released in the
  6013. * function FreeHandshakeResources(). Be careful with the special cases
  6014. * like the RNG which may optionally be kept for the whole session. (For
  6015. * example with the RNG, it isn't used beyond the handshake except when
  6016. * using stream ciphers where it is retained. */
  6017. #ifdef HAVE_EX_DATA_CLEANUP_HOOKS
  6018. wolfSSL_CRYPTO_cleanup_ex_data(&ssl->ex_data);
  6019. #endif
  6020. FreeCiphers(ssl);
  6021. FreeArrays(ssl, 0);
  6022. FreeKeyExchange(ssl);
  6023. if (ssl->options.weOwnRng) {
  6024. wc_FreeRng(ssl->rng);
  6025. XFREE(ssl->rng, ssl->heap, DYNAMIC_TYPE_RNG);
  6026. }
  6027. FreeSuites(ssl);
  6028. FreeHandshakeHashes(ssl);
  6029. XFREE(ssl->buffers.domainName.buffer, ssl->heap, DYNAMIC_TYPE_DOMAIN);
  6030. /* clear keys struct after session */
  6031. ForceZero(&ssl->keys, sizeof(Keys));
  6032. #ifdef WOLFSSL_TLS13
  6033. if (ssl->options.tls1_3) {
  6034. ForceZero(&ssl->clientSecret, sizeof(ssl->clientSecret));
  6035. ForceZero(&ssl->serverSecret, sizeof(ssl->serverSecret));
  6036. }
  6037. #endif
  6038. #if defined(OPENSSL_ALL) || defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_WPAS)
  6039. ForceZero(&ssl->clientFinished, TLS_FINISHED_SZ_MAX);
  6040. ForceZero(&ssl->serverFinished, TLS_FINISHED_SZ_MAX);
  6041. ssl->serverFinished_len = 0;
  6042. ssl->clientFinished_len = 0;
  6043. #endif
  6044. #ifndef NO_DH
  6045. if (ssl->buffers.serverDH_Priv.buffer) {
  6046. ForceZero(ssl->buffers.serverDH_Priv.buffer,
  6047. ssl->buffers.serverDH_Priv.length);
  6048. }
  6049. XFREE(ssl->buffers.serverDH_Priv.buffer, ssl->heap, DYNAMIC_TYPE_PRIVATE_KEY);
  6050. XFREE(ssl->buffers.serverDH_Pub.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6051. /* parameters (p,g) may be owned by ctx */
  6052. if (ssl->buffers.weOwnDH) {
  6053. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6054. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6055. }
  6056. #endif /* !NO_DH */
  6057. #ifndef NO_CERTS
  6058. ssl->keepCert = 0; /* make sure certificate is free'd */
  6059. wolfSSL_UnloadCertsKeys(ssl);
  6060. #endif
  6061. #ifndef NO_RSA
  6062. FreeKey(ssl, DYNAMIC_TYPE_RSA, (void**)&ssl->peerRsaKey);
  6063. ssl->peerRsaKeyPresent = 0;
  6064. #endif
  6065. #ifdef WOLFSSL_RENESAS_TSIP_TLS
  6066. XFREE(ssl->peerTsipEncRsaKeyIndex, ssl->heap, DYNAMIC_TYPE_RSA);
  6067. #endif
  6068. if (ssl->buffers.inputBuffer.dynamicFlag)
  6069. ShrinkInputBuffer(ssl, FORCED_FREE);
  6070. if (ssl->buffers.outputBuffer.dynamicFlag)
  6071. ShrinkOutputBuffer(ssl);
  6072. #if defined(WOLFSSL_SEND_HRR_COOKIE) && !defined(NO_WOLFSSL_SERVER)
  6073. XFREE(ssl->buffers.tls13CookieSecret.buffer, ssl->heap,
  6074. DYNAMIC_TYPE_COOKIE_PWD);
  6075. #endif
  6076. #ifdef WOLFSSL_DTLS
  6077. DtlsMsgPoolReset(ssl);
  6078. if (ssl->dtls_rx_msg_list != NULL) {
  6079. DtlsMsgListDelete(ssl->dtls_rx_msg_list, ssl->heap);
  6080. ssl->dtls_rx_msg_list = NULL;
  6081. ssl->dtls_rx_msg_list_sz = 0;
  6082. }
  6083. XFREE(ssl->buffers.dtlsCtx.peer.sa, ssl->heap, DYNAMIC_TYPE_SOCKADDR);
  6084. ssl->buffers.dtlsCtx.peer.sa = NULL;
  6085. #ifndef NO_WOLFSSL_SERVER
  6086. XFREE(ssl->buffers.dtlsCookieSecret.buffer, ssl->heap,
  6087. DYNAMIC_TYPE_COOKIE_PWD);
  6088. #endif
  6089. #endif /* WOLFSSL_DTLS */
  6090. #ifdef OPENSSL_EXTRA
  6091. #ifndef NO_BIO
  6092. /* Don't free if there was/is a previous element in the chain.
  6093. * This means that this BIO was part of a chain that will be
  6094. * free'd separately. */
  6095. if (ssl->biord != ssl->biowr) /* only free write if different */
  6096. if (ssl->biowr != NULL && ssl->biowr->prev == NULL)
  6097. wolfSSL_BIO_free(ssl->biowr);
  6098. if (ssl->biord != NULL && ssl->biord->prev == NULL)
  6099. wolfSSL_BIO_free(ssl->biord);
  6100. ssl->biowr = NULL;
  6101. ssl->biord = NULL;
  6102. #endif
  6103. #endif
  6104. #ifdef HAVE_LIBZ
  6105. FreeStreams(ssl);
  6106. #endif
  6107. #ifdef HAVE_ECC
  6108. FreeKey(ssl, DYNAMIC_TYPE_ECC, (void**)&ssl->peerEccKey);
  6109. ssl->peerEccKeyPresent = 0;
  6110. FreeKey(ssl, DYNAMIC_TYPE_ECC, (void**)&ssl->peerEccDsaKey);
  6111. ssl->peerEccDsaKeyPresent = 0;
  6112. #endif
  6113. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) ||defined(HAVE_CURVE448)
  6114. {
  6115. int dtype = 0;
  6116. #ifdef HAVE_ECC
  6117. dtype = DYNAMIC_TYPE_ECC;
  6118. #endif
  6119. #ifdef HAVE_CURVE25519
  6120. if (ssl->peerX25519KeyPresent
  6121. #ifdef HAVE_ECC
  6122. || ssl->eccTempKeyPresent == DYNAMIC_TYPE_CURVE25519
  6123. #endif /* HAVE_ECC */
  6124. )
  6125. {
  6126. dtype = DYNAMIC_TYPE_CURVE25519;
  6127. }
  6128. #endif /* HAVE_CURVE25519 */
  6129. #ifdef HAVE_CURVE448
  6130. if (ssl->peerX448KeyPresent
  6131. #ifdef HAVE_ECC
  6132. || ssl->eccTempKeyPresent == DYNAMIC_TYPE_CURVE448
  6133. #endif /* HAVE_ECC */
  6134. )
  6135. {
  6136. dtype = DYNAMIC_TYPE_CURVE448;
  6137. }
  6138. #endif /* HAVE_CURVE448 */
  6139. FreeKey(ssl, dtype, (void**)&ssl->eccTempKey);
  6140. ssl->eccTempKeyPresent = 0;
  6141. }
  6142. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  6143. #ifdef HAVE_CURVE25519
  6144. FreeKey(ssl, DYNAMIC_TYPE_CURVE25519, (void**)&ssl->peerX25519Key);
  6145. ssl->peerX25519KeyPresent = 0;
  6146. #endif
  6147. #ifdef HAVE_ED25519
  6148. FreeKey(ssl, DYNAMIC_TYPE_ED25519, (void**)&ssl->peerEd25519Key);
  6149. ssl->peerEd25519KeyPresent = 0;
  6150. #ifdef HAVE_PK_CALLBACKS
  6151. if (ssl->buffers.peerEd25519Key.buffer != NULL) {
  6152. XFREE(ssl->buffers.peerEd25519Key.buffer, ssl->heap,
  6153. DYNAMIC_TYPE_ED25519);
  6154. ssl->buffers.peerEd25519Key.buffer = NULL;
  6155. }
  6156. #endif
  6157. #endif
  6158. #ifdef HAVE_CURVE448
  6159. FreeKey(ssl, DYNAMIC_TYPE_CURVE448, (void**)&ssl->peerX448Key);
  6160. ssl->peerX448KeyPresent = 0;
  6161. #endif
  6162. #ifdef HAVE_ED448
  6163. FreeKey(ssl, DYNAMIC_TYPE_ED448, (void**)&ssl->peerEd448Key);
  6164. ssl->peerEd448KeyPresent = 0;
  6165. #ifdef HAVE_PK_CALLBACKS
  6166. if (ssl->buffers.peerEd448Key.buffer != NULL) {
  6167. XFREE(ssl->buffers.peerEd448Key.buffer, ssl->heap,
  6168. DYNAMIC_TYPE_ED448);
  6169. ssl->buffers.peerEd448Key.buffer = NULL;
  6170. }
  6171. #endif
  6172. #endif
  6173. #ifdef HAVE_PK_CALLBACKS
  6174. #ifdef HAVE_ECC
  6175. XFREE(ssl->buffers.peerEccDsaKey.buffer, ssl->heap, DYNAMIC_TYPE_ECC);
  6176. #endif /* HAVE_ECC */
  6177. #ifndef NO_RSA
  6178. XFREE(ssl->buffers.peerRsaKey.buffer, ssl->heap, DYNAMIC_TYPE_RSA);
  6179. #endif /* NO_RSA */
  6180. #endif /* HAVE_PK_CALLBACKS */
  6181. #ifdef HAVE_TLS_EXTENSIONS
  6182. TLSX_FreeAll(ssl->extensions, ssl->heap);
  6183. #ifdef HAVE_ALPN
  6184. if (ssl->alpn_client_list != NULL) {
  6185. XFREE(ssl->alpn_client_list, ssl->heap, DYNAMIC_TYPE_ALPN);
  6186. ssl->alpn_client_list = NULL;
  6187. }
  6188. #endif
  6189. #endif /* HAVE_TLS_EXTENSIONS */
  6190. #if defined(WOLFSSL_APACHE_MYNEWT) && !defined(WOLFSSL_LWIP)
  6191. if (ssl->mnCtx) {
  6192. mynewt_ctx_clear(ssl->mnCtx);
  6193. ssl->mnCtx = NULL;
  6194. }
  6195. #endif
  6196. #ifdef HAVE_NETX
  6197. if (ssl->nxCtx.nxPacket)
  6198. nx_packet_release(ssl->nxCtx.nxPacket);
  6199. #endif
  6200. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL)
  6201. if (ssl->x509_store_pt)
  6202. wolfSSL_X509_STORE_free(ssl->x509_store_pt);
  6203. #endif
  6204. #ifdef KEEP_PEER_CERT
  6205. FreeX509(&ssl->peerCert);
  6206. #endif
  6207. #ifdef HAVE_SESSION_TICKET
  6208. if (ssl->session.isDynamic) {
  6209. XFREE(ssl->session.ticket, ssl->heap, DYNAMIC_TYPE_SESSION_TICK);
  6210. ssl->session.ticket = ssl->session.staticTicket;
  6211. ssl->session.isDynamic = 0;
  6212. ssl->session.ticketLen = 0;
  6213. }
  6214. #endif
  6215. #ifdef HAVE_EXT_CACHE
  6216. wolfSSL_SESSION_free(ssl->extSession);
  6217. #endif
  6218. #ifdef HAVE_WRITE_DUP
  6219. if (ssl->dupWrite) {
  6220. FreeWriteDup(ssl);
  6221. }
  6222. #endif
  6223. #ifdef OPENSSL_EXTRA
  6224. if (ssl->param) {
  6225. XFREE(ssl->param, ssl->heap, DYNAMIC_TYPE_OPENSSL);
  6226. }
  6227. #endif
  6228. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6229. while (ssl->certReqCtx != NULL) {
  6230. CertReqCtx* curr = ssl->certReqCtx;
  6231. ssl->certReqCtx = curr->next;
  6232. XFREE(curr, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  6233. }
  6234. #endif
  6235. #ifdef WOLFSSL_STATIC_EPHEMERAL
  6236. #ifndef NO_DH
  6237. if (ssl->staticKE.dhKey && ssl->staticKE.weOwnDH)
  6238. FreeDer(&ssl->staticKE.dhKey);
  6239. #endif
  6240. #ifdef HAVE_ECC
  6241. if (ssl->staticKE.ecKey && ssl->staticKE.weOwnEC)
  6242. FreeDer(&ssl->staticKE.ecKey);
  6243. #endif
  6244. #ifdef HAVE_CURVE25519
  6245. if (ssl->staticKE.x25519Key && ssl->staticKE.weOwnX25519)
  6246. FreeDer(&ssl->staticKE.x25519Key);
  6247. #endif
  6248. #endif
  6249. #ifdef WOLFSSL_STATIC_MEMORY
  6250. /* check if using fixed io buffers and free them */
  6251. if (ssl->heap != NULL) {
  6252. #ifdef WOLFSSL_HEAP_TEST
  6253. /* avoid dereferencing a test value */
  6254. if (ssl->heap != (void*)WOLFSSL_HEAP_TEST) {
  6255. #endif
  6256. WOLFSSL_HEAP_HINT* ssl_hint = (WOLFSSL_HEAP_HINT*)ssl->heap;
  6257. WOLFSSL_HEAP* ctx_heap;
  6258. void* heap = ssl->ctx ? ssl->ctx->heap : ssl->heap;
  6259. ctx_heap = ssl_hint->memory;
  6260. if (wc_LockMutex(&(ctx_heap->memory_mutex)) != 0) {
  6261. WOLFSSL_MSG("Bad memory_mutex lock");
  6262. }
  6263. ctx_heap->curIO--;
  6264. if (FreeFixedIO(ctx_heap, &(ssl_hint->outBuf)) != 1) {
  6265. WOLFSSL_MSG("Error freeing fixed output buffer");
  6266. }
  6267. if (FreeFixedIO(ctx_heap, &(ssl_hint->inBuf)) != 1) {
  6268. WOLFSSL_MSG("Error freeing fixed output buffer");
  6269. }
  6270. if (ssl_hint->haFlag) { /* check if handshake count has been decreased*/
  6271. ctx_heap->curHa--;
  6272. }
  6273. wc_UnLockMutex(&(ctx_heap->memory_mutex));
  6274. /* check if tracking stats */
  6275. if (ctx_heap->flag & WOLFMEM_TRACK_STATS) {
  6276. XFREE(ssl_hint->stats, heap, DYNAMIC_TYPE_SSL);
  6277. }
  6278. XFREE(ssl->heap, heap, DYNAMIC_TYPE_SSL);
  6279. #ifdef WOLFSSL_HEAP_TEST
  6280. }
  6281. #endif
  6282. }
  6283. #endif /* WOLFSSL_STATIC_MEMORY */
  6284. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  6285. wolfSSL_sk_CIPHER_free(ssl->supportedCiphers);
  6286. wolfSSL_sk_X509_free(ssl->peerCertChain);
  6287. wolfSSL_sk_X509_free(ssl->ourCertChain);
  6288. #endif
  6289. #if defined(OPENSSL_EXTRA) || defined(WOLFSSL_EXTRA) || defined(HAVE_LIGHTY)
  6290. wolfSSL_sk_X509_NAME_pop_free(ssl->ca_names, NULL);
  6291. ssl->ca_names = NULL;
  6292. #endif
  6293. }
  6294. /* Free any handshake resources no longer needed */
  6295. void FreeHandshakeResources(WOLFSSL* ssl)
  6296. {
  6297. WOLFSSL_ENTER("FreeHandshakeResources");
  6298. #ifdef WOLFSSL_DTLS
  6299. /* DTLS_POOL */
  6300. if (ssl->options.dtls) {
  6301. DtlsMsgPoolReset(ssl);
  6302. DtlsMsgListDelete(ssl->dtls_rx_msg_list, ssl->heap);
  6303. ssl->dtls_rx_msg_list = NULL;
  6304. ssl->dtls_rx_msg_list_sz = 0;
  6305. }
  6306. #endif
  6307. #ifdef HAVE_SECURE_RENEGOTIATION
  6308. if (ssl->secure_renegotiation && ssl->secure_renegotiation->enabled) {
  6309. WOLFSSL_MSG("Secure Renegotiation needs to retain handshake resources");
  6310. return;
  6311. }
  6312. #endif
  6313. /* input buffer */
  6314. if (ssl->buffers.inputBuffer.dynamicFlag)
  6315. ShrinkInputBuffer(ssl, NO_FORCED_FREE);
  6316. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6317. if (!ssl->options.tls1_3)
  6318. #endif
  6319. {
  6320. #ifndef OPENSSL_EXTRA
  6321. /* free suites unless using compatibility layer */
  6322. FreeSuites(ssl);
  6323. #endif
  6324. /* hsHashes */
  6325. FreeHandshakeHashes(ssl);
  6326. }
  6327. /* RNG */
  6328. if (ssl->options.tls1_1 == 0
  6329. #ifndef WOLFSSL_AEAD_ONLY
  6330. || ssl->specs.cipher_type == stream
  6331. #endif
  6332. #if defined(WOLFSSL_TLS13)
  6333. #if !defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6334. || ssl->options.tls1_3
  6335. #elif !defined(HAVE_SESSION_TICKET)
  6336. || (ssl->options.tls1_3 && ssl->options.side == WOLFSSL_SERVER_END)
  6337. #endif
  6338. #endif
  6339. ) {
  6340. if (ssl->options.weOwnRng) {
  6341. wc_FreeRng(ssl->rng);
  6342. XFREE(ssl->rng, ssl->heap, DYNAMIC_TYPE_RNG);
  6343. ssl->rng = NULL;
  6344. ssl->options.weOwnRng = 0;
  6345. }
  6346. }
  6347. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH) && \
  6348. defined(HAVE_SESSION_TICKET)
  6349. if (!ssl->options.tls1_3)
  6350. #endif
  6351. /* arrays */
  6352. if (ssl->options.saveArrays == 0)
  6353. FreeArrays(ssl, 1);
  6354. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6355. if (!ssl->options.tls1_3 || ssl->options.side == WOLFSSL_CLIENT_END)
  6356. #endif
  6357. {
  6358. #ifndef NO_RSA
  6359. /* peerRsaKey */
  6360. FreeKey(ssl, DYNAMIC_TYPE_RSA, (void**)&ssl->peerRsaKey);
  6361. ssl->peerRsaKeyPresent = 0;
  6362. #endif
  6363. #ifdef HAVE_ECC
  6364. FreeKey(ssl, DYNAMIC_TYPE_ECC, (void**)&ssl->peerEccDsaKey);
  6365. ssl->peerEccDsaKeyPresent = 0;
  6366. #endif /* HAVE_ECC */
  6367. #ifdef HAVE_ED25519
  6368. FreeKey(ssl, DYNAMIC_TYPE_ED25519, (void**)&ssl->peerEd25519Key);
  6369. ssl->peerEd25519KeyPresent = 0;
  6370. #endif /* HAVE_ED25519 */
  6371. #ifdef HAVE_ED448
  6372. FreeKey(ssl, DYNAMIC_TYPE_ED448, (void**)&ssl->peerEd448Key);
  6373. ssl->peerEd448KeyPresent = 0;
  6374. #endif /* HAVE_ED448 */
  6375. }
  6376. #ifdef HAVE_ECC
  6377. FreeKey(ssl, DYNAMIC_TYPE_ECC, (void**)&ssl->peerEccKey);
  6378. ssl->peerEccKeyPresent = 0;
  6379. #endif
  6380. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  6381. {
  6382. int dtype;
  6383. #ifdef HAVE_ECC
  6384. dtype = DYNAMIC_TYPE_ECC;
  6385. #elif defined(HAVE_CURVE25519)
  6386. dtype = DYNAMIC_TYPE_CURVE25519;
  6387. #else
  6388. dtype = DYNAMIC_TYPE_CURVE448;
  6389. #endif
  6390. #if defined(HAVE_ECC) && defined(HAVE_CURVE25519)
  6391. if (ssl->peerX25519KeyPresent ||
  6392. ssl->eccTempKeyPresent == DYNAMIC_TYPE_CURVE25519)
  6393. {
  6394. dtype = DYNAMIC_TYPE_CURVE25519;
  6395. }
  6396. #endif
  6397. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519)) && \
  6398. defined(HAVE_CURVE448)
  6399. if (ssl->peerX448KeyPresent ||
  6400. ssl->eccTempKeyPresent == DYNAMIC_TYPE_CURVE448)
  6401. {
  6402. dtype = DYNAMIC_TYPE_CURVE448;
  6403. }
  6404. #endif
  6405. FreeKey(ssl, dtype, (void**)&ssl->eccTempKey);
  6406. ssl->eccTempKeyPresent = 0;
  6407. }
  6408. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  6409. #ifdef HAVE_CURVE25519
  6410. FreeKey(ssl, DYNAMIC_TYPE_CURVE25519, (void**)&ssl->peerX25519Key);
  6411. ssl->peerX25519KeyPresent = 0;
  6412. #endif
  6413. #ifdef HAVE_CURVE448
  6414. FreeKey(ssl, DYNAMIC_TYPE_CURVE448, (void**)&ssl->peerX448Key);
  6415. ssl->peerX448KeyPresent = 0;
  6416. #endif
  6417. #ifndef NO_DH
  6418. if (ssl->buffers.serverDH_Priv.buffer) {
  6419. ForceZero(ssl->buffers.serverDH_Priv.buffer,
  6420. ssl->buffers.serverDH_Priv.length);
  6421. }
  6422. XFREE(ssl->buffers.serverDH_Priv.buffer, ssl->heap, DYNAMIC_TYPE_PRIVATE_KEY);
  6423. ssl->buffers.serverDH_Priv.buffer = NULL;
  6424. XFREE(ssl->buffers.serverDH_Pub.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6425. ssl->buffers.serverDH_Pub.buffer = NULL;
  6426. /* parameters (p,g) may be owned by ctx */
  6427. if (ssl->buffers.weOwnDH) {
  6428. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6429. ssl->buffers.serverDH_G.buffer = NULL;
  6430. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  6431. ssl->buffers.serverDH_P.buffer = NULL;
  6432. }
  6433. #endif /* !NO_DH */
  6434. #ifndef NO_CERTS
  6435. wolfSSL_UnloadCertsKeys(ssl);
  6436. #endif
  6437. #ifdef HAVE_PK_CALLBACKS
  6438. #if defined(WOLFSSL_TLS13) && defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6439. if (!ssl->options.tls1_3 || ssl->options.side == WOLFSSL_CLIENT_END)
  6440. #endif
  6441. {
  6442. #ifdef HAVE_ECC
  6443. XFREE(ssl->buffers.peerEccDsaKey.buffer, ssl->heap, DYNAMIC_TYPE_ECC);
  6444. ssl->buffers.peerEccDsaKey.buffer = NULL;
  6445. #endif /* HAVE_ECC */
  6446. #ifndef NO_RSA
  6447. XFREE(ssl->buffers.peerRsaKey.buffer, ssl->heap, DYNAMIC_TYPE_RSA);
  6448. ssl->buffers.peerRsaKey.buffer = NULL;
  6449. #endif /* NO_RSA */
  6450. #ifdef HAVE_ED25519
  6451. XFREE(ssl->buffers.peerEd25519Key.buffer, ssl->heap,
  6452. DYNAMIC_TYPE_ED25519);
  6453. ssl->buffers.peerEd25519Key.buffer = NULL;
  6454. #endif
  6455. #ifdef HAVE_ED448
  6456. XFREE(ssl->buffers.peerEd448Key.buffer, ssl->heap, DYNAMIC_TYPE_ED448);
  6457. ssl->buffers.peerEd448Key.buffer = NULL;
  6458. #endif
  6459. }
  6460. #endif /* HAVE_PK_CALLBACKS */
  6461. #ifdef HAVE_SESSION_TICKET
  6462. if (ssl->session.isDynamic) {
  6463. XFREE(ssl->session.ticket, ssl->heap, DYNAMIC_TYPE_SESSION_TICK);
  6464. ssl->session.ticket = ssl->session.staticTicket;
  6465. ssl->session.isDynamic = 0;
  6466. ssl->session.ticketLen = 0;
  6467. }
  6468. #endif
  6469. #if defined(HAVE_TLS_EXTENSIONS) && !defined(HAVE_SNI) && \
  6470. !defined(HAVE_ALPN) && !defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  6471. /* Some extensions need to be kept for post-handshake querying. */
  6472. TLSX_FreeAll(ssl->extensions, ssl->heap);
  6473. ssl->extensions = NULL;
  6474. #endif
  6475. #ifdef WOLFSSL_STATIC_MEMORY
  6476. /* when done with handshake decrement current handshake count */
  6477. if (ssl->heap != NULL) {
  6478. #ifdef WOLFSSL_HEAP_TEST
  6479. /* avoid dereferencing a test value */
  6480. if (ssl->heap != (void*)WOLFSSL_HEAP_TEST) {
  6481. #endif
  6482. WOLFSSL_HEAP_HINT* ssl_hint = (WOLFSSL_HEAP_HINT*)ssl->heap;
  6483. WOLFSSL_HEAP* ctx_heap;
  6484. ctx_heap = ssl_hint->memory;
  6485. if (wc_LockMutex(&(ctx_heap->memory_mutex)) != 0) {
  6486. WOLFSSL_MSG("Bad memory_mutex lock");
  6487. }
  6488. ctx_heap->curHa--;
  6489. ssl_hint->haFlag = 0; /* set to zero since handshake has been dec */
  6490. wc_UnLockMutex(&(ctx_heap->memory_mutex));
  6491. #ifdef WOLFSSL_HEAP_TEST
  6492. }
  6493. #endif
  6494. }
  6495. #endif /* WOLFSSL_STATIC_MEMORY */
  6496. }
  6497. /* heap argument is the heap hint used when creating SSL */
  6498. void FreeSSL(WOLFSSL* ssl, void* heap)
  6499. {
  6500. if (ssl->ctx) {
  6501. FreeSSL_Ctx(ssl->ctx); /* will decrement and free underlying CTX if 0 */
  6502. }
  6503. SSL_ResourceFree(ssl);
  6504. XFREE(ssl, heap, DYNAMIC_TYPE_SSL);
  6505. (void)heap;
  6506. }
  6507. #if !defined(NO_OLD_TLS) || defined(WOLFSSL_DTLS) || \
  6508. !defined(WOLFSSL_NO_TLS12) || \
  6509. ((defined(HAVE_CHACHA) || defined(HAVE_AESCCM) || defined(HAVE_AESGCM)) \
  6510. && defined(HAVE_AEAD))
  6511. #if defined(WOLFSSL_DTLS) || !defined(WOLFSSL_NO_TLS12)
  6512. static WC_INLINE void GetSEQIncrement(WOLFSSL* ssl, int verify, word32 seq[2])
  6513. {
  6514. if (verify) {
  6515. seq[0] = ssl->keys.peer_sequence_number_hi;
  6516. seq[1] = ssl->keys.peer_sequence_number_lo++;
  6517. if (seq[1] > ssl->keys.peer_sequence_number_lo) {
  6518. /* handle rollover */
  6519. ssl->keys.peer_sequence_number_hi++;
  6520. }
  6521. }
  6522. else {
  6523. seq[0] = ssl->keys.sequence_number_hi;
  6524. seq[1] = ssl->keys.sequence_number_lo++;
  6525. if (seq[1] > ssl->keys.sequence_number_lo) {
  6526. /* handle rollover */
  6527. ssl->keys.sequence_number_hi++;
  6528. }
  6529. }
  6530. }
  6531. #endif /* WOLFSSL_DTLS || !WOLFSSL_NO_TLS12 */
  6532. #ifdef WOLFSSL_DTLS
  6533. static WC_INLINE void DtlsGetSEQ(WOLFSSL* ssl, int order, word32 seq[2])
  6534. {
  6535. #ifdef HAVE_SECURE_RENEGOTIATION
  6536. order = DtlsCheckOrder(ssl, order);
  6537. #endif
  6538. if (order == PREV_ORDER) {
  6539. /* Previous epoch case */
  6540. if (ssl->options.haveMcast) {
  6541. #ifdef WOLFSSL_MULTICAST
  6542. seq[0] = (((word32)ssl->keys.dtls_epoch - 1) << 16) |
  6543. (ssl->options.mcastID << 8) |
  6544. (ssl->keys.dtls_prev_sequence_number_hi & 0xFF);
  6545. #endif
  6546. }
  6547. else
  6548. seq[0] = (((word32)ssl->keys.dtls_epoch - 1) << 16) |
  6549. (ssl->keys.dtls_prev_sequence_number_hi & 0xFFFF);
  6550. seq[1] = ssl->keys.dtls_prev_sequence_number_lo;
  6551. }
  6552. else if (order == PEER_ORDER) {
  6553. if (ssl->options.haveMcast) {
  6554. #ifdef WOLFSSL_MULTICAST
  6555. seq[0] = ((word32)ssl->keys.curEpoch << 16) |
  6556. (ssl->keys.curPeerId << 8) |
  6557. (ssl->keys.curSeq_hi & 0xFF);
  6558. #endif
  6559. }
  6560. else
  6561. seq[0] = ((word32)ssl->keys.curEpoch << 16) |
  6562. (ssl->keys.curSeq_hi & 0xFFFF);
  6563. seq[1] = ssl->keys.curSeq_lo; /* explicit from peer */
  6564. }
  6565. else {
  6566. if (ssl->options.haveMcast) {
  6567. #ifdef WOLFSSL_MULTICAST
  6568. seq[0] = ((word32)ssl->keys.dtls_epoch << 16) |
  6569. (ssl->options.mcastID << 8) |
  6570. (ssl->keys.dtls_sequence_number_hi & 0xFF);
  6571. #endif
  6572. }
  6573. else
  6574. seq[0] = ((word32)ssl->keys.dtls_epoch << 16) |
  6575. (ssl->keys.dtls_sequence_number_hi & 0xFFFF);
  6576. seq[1] = ssl->keys.dtls_sequence_number_lo;
  6577. }
  6578. }
  6579. static WC_INLINE void DtlsSEQIncrement(WOLFSSL* ssl, int order)
  6580. {
  6581. word32 seq;
  6582. #ifdef HAVE_SECURE_RENEGOTIATION
  6583. order = DtlsCheckOrder(ssl, order);
  6584. #endif
  6585. if (order == PREV_ORDER) {
  6586. seq = ssl->keys.dtls_prev_sequence_number_lo++;
  6587. if (seq > ssl->keys.dtls_prev_sequence_number_lo) {
  6588. /* handle rollover */
  6589. ssl->keys.dtls_prev_sequence_number_hi++;
  6590. }
  6591. }
  6592. else if (order == PEER_ORDER) {
  6593. seq = ssl->keys.peer_sequence_number_lo++;
  6594. if (seq > ssl->keys.peer_sequence_number_lo) {
  6595. /* handle rollover */
  6596. ssl->keys.peer_sequence_number_hi++;
  6597. }
  6598. }
  6599. else {
  6600. seq = ssl->keys.dtls_sequence_number_lo++;
  6601. if (seq > ssl->keys.dtls_sequence_number_lo) {
  6602. /* handle rollover */
  6603. ssl->keys.dtls_sequence_number_hi++;
  6604. }
  6605. }
  6606. }
  6607. #endif /* WOLFSSL_DTLS */
  6608. #if defined(WOLFSSL_DTLS) || !defined(WOLFSSL_NO_TLS12)
  6609. void WriteSEQ(WOLFSSL* ssl, int verifyOrder, byte* out)
  6610. {
  6611. word32 seq[2] = {0, 0};
  6612. if (!ssl->options.dtls) {
  6613. GetSEQIncrement(ssl, verifyOrder, seq);
  6614. }
  6615. else {
  6616. #ifdef WOLFSSL_DTLS
  6617. DtlsGetSEQ(ssl, verifyOrder, seq);
  6618. #endif
  6619. }
  6620. c32toa(seq[0], out);
  6621. c32toa(seq[1], out + OPAQUE32_LEN);
  6622. }
  6623. #endif /* WOLFSSL_DTLS || !WOLFSSL_NO_TLS12 */
  6624. #endif /* !NO_OLD_TLS || WOLFSSL_DTLS || !WOLFSSL_NO_TLS12 ||
  6625. * ((HAVE_CHACHA || HAVE_AESCCM || HAVE_AESGCM) && HAVE_AEAD) */
  6626. #ifdef WOLFSSL_DTLS
  6627. /* functions for managing DTLS datagram reordering */
  6628. /* Need to allocate space for the handshake message header. The hashing
  6629. * routines assume the message pointer is still within the buffer that
  6630. * has the headers, and will include those headers in the hash. The store
  6631. * routines need to take that into account as well. New will allocate
  6632. * extra space for the headers. */
  6633. DtlsMsg* DtlsMsgNew(word32 sz, void* heap)
  6634. {
  6635. DtlsMsg* msg;
  6636. WOLFSSL_ENTER("DtlsMsgNew()");
  6637. (void)heap;
  6638. msg = (DtlsMsg*)XMALLOC(sizeof(DtlsMsg), heap, DYNAMIC_TYPE_DTLS_MSG);
  6639. if (msg != NULL) {
  6640. XMEMSET(msg, 0, sizeof(DtlsMsg));
  6641. msg->buf = (byte*)XMALLOC(sz + DTLS_HANDSHAKE_HEADER_SZ,
  6642. heap, DYNAMIC_TYPE_DTLS_BUFFER);
  6643. if (msg->buf != NULL) {
  6644. msg->sz = sz;
  6645. msg->type = no_shake;
  6646. msg->msg = msg->buf + DTLS_HANDSHAKE_HEADER_SZ;
  6647. }
  6648. else {
  6649. XFREE(msg, heap, DYNAMIC_TYPE_DTLS_MSG);
  6650. msg = NULL;
  6651. }
  6652. }
  6653. return msg;
  6654. }
  6655. void DtlsMsgDelete(DtlsMsg* item, void* heap)
  6656. {
  6657. (void)heap;
  6658. WOLFSSL_ENTER("DtlsMsgDelete()");
  6659. if (item != NULL) {
  6660. DtlsFrag* cur = item->fragList;
  6661. while (cur != NULL) {
  6662. DtlsFrag* next = cur->next;
  6663. XFREE(cur, heap, DYNAMIC_TYPE_DTLS_FRAG);
  6664. cur = next;
  6665. }
  6666. if (item->buf != NULL)
  6667. XFREE(item->buf, heap, DYNAMIC_TYPE_DTLS_BUFFER);
  6668. XFREE(item, heap, DYNAMIC_TYPE_DTLS_MSG);
  6669. }
  6670. }
  6671. void DtlsMsgListDelete(DtlsMsg* head, void* heap)
  6672. {
  6673. DtlsMsg* next;
  6674. WOLFSSL_ENTER("DtlsMsgListDelete()");
  6675. while (head) {
  6676. next = head->next;
  6677. DtlsMsgDelete(head, heap);
  6678. head = next;
  6679. }
  6680. }
  6681. /**
  6682. * Drop messages when they are no longer going to be retransmitted
  6683. */
  6684. void DtlsTxMsgListClean(WOLFSSL* ssl)
  6685. {
  6686. DtlsMsg* head = ssl->dtls_tx_msg_list;
  6687. DtlsMsg* next;
  6688. WOLFSSL_ENTER("DtlsTxMsgListClean()");
  6689. while (head) {
  6690. next = head->next;
  6691. if (VerifyForTxDtlsMsgDelete(ssl, head))
  6692. DtlsMsgDelete(head, ssl->heap);
  6693. else
  6694. /* Stored packets should be in order so break on first failed
  6695. * verify */
  6696. break;
  6697. ssl->dtls_tx_msg_list_sz--;
  6698. /* Reset timer as deleting a node means that state has progressed */
  6699. ssl->dtls_timeout = ssl->dtls_timeout_init;
  6700. head = next;
  6701. }
  6702. ssl->dtls_tx_msg_list = head;
  6703. }
  6704. /* Create a DTLS Fragment from *begin - end, adjust new *begin and bytesLeft */
  6705. static DtlsFrag* CreateFragment(word32* begin, word32 end, const byte* data,
  6706. byte* buf, word32* bytesLeft, void* heap)
  6707. {
  6708. DtlsFrag* newFrag;
  6709. word32 added = end - *begin + 1;
  6710. WOLFSSL_ENTER("CreateFragment()");
  6711. (void)heap;
  6712. newFrag = (DtlsFrag*)XMALLOC(sizeof(DtlsFrag), heap,
  6713. DYNAMIC_TYPE_DTLS_FRAG);
  6714. if (newFrag != NULL) {
  6715. newFrag->next = NULL;
  6716. newFrag->begin = *begin;
  6717. newFrag->end = end;
  6718. XMEMCPY(buf + *begin, data, added);
  6719. *bytesLeft -= added;
  6720. *begin = newFrag->end + 1;
  6721. }
  6722. return newFrag;
  6723. }
  6724. int DtlsMsgSet(DtlsMsg* msg, word32 seq, word16 epoch, const byte* data, byte type,
  6725. word32 fragOffset, word32 fragSz, void* heap)
  6726. {
  6727. WOLFSSL_ENTER("DtlsMsgSet()");
  6728. if (msg != NULL && data != NULL && msg->fragSz <= msg->sz &&
  6729. fragSz <= msg->sz && fragOffset <= msg->sz &&
  6730. (fragOffset + fragSz) <= msg->sz) {
  6731. DtlsFrag* cur = msg->fragList;
  6732. DtlsFrag* prev = cur;
  6733. DtlsFrag* newFrag;
  6734. word32 bytesLeft = fragSz; /* could be overlapping fragment */
  6735. word32 startOffset = fragOffset;
  6736. word32 added;
  6737. msg->seq = seq;
  6738. msg->epoch = epoch;
  6739. msg->type = type;
  6740. if (fragOffset == 0) {
  6741. XMEMCPY(msg->buf, data - DTLS_HANDSHAKE_HEADER_SZ,
  6742. DTLS_HANDSHAKE_HEADER_SZ);
  6743. c32to24(msg->sz, msg->msg - DTLS_HANDSHAKE_FRAG_SZ);
  6744. }
  6745. /* if no message data, just return */
  6746. if (fragSz == 0)
  6747. return 0;
  6748. /* if list is empty add full fragment to front */
  6749. if (cur == NULL) {
  6750. newFrag = CreateFragment(&fragOffset, fragOffset + fragSz - 1, data,
  6751. msg->msg, &bytesLeft, heap);
  6752. if (newFrag == NULL)
  6753. return MEMORY_E;
  6754. msg->fragSz = fragSz;
  6755. msg->fragList = newFrag;
  6756. return 0;
  6757. }
  6758. /* add to front if before current front, up to next->begin */
  6759. if (fragOffset < cur->begin) {
  6760. word32 end = fragOffset + fragSz - 1;
  6761. if (end >= cur->begin)
  6762. end = cur->begin - 1;
  6763. added = end - fragOffset + 1;
  6764. newFrag = CreateFragment(&fragOffset, end, data, msg->msg,
  6765. &bytesLeft, heap);
  6766. if (newFrag == NULL)
  6767. return MEMORY_E;
  6768. msg->fragSz += added;
  6769. newFrag->next = cur;
  6770. msg->fragList = newFrag;
  6771. }
  6772. /* while we have bytes left, try to find a gap to fill */
  6773. while (bytesLeft > 0) {
  6774. /* get previous packet in list */
  6775. while (cur && (fragOffset >= cur->begin)) {
  6776. prev = cur;
  6777. cur = cur->next;
  6778. }
  6779. /* don't add duplicate data */
  6780. if (prev->end >= fragOffset) {
  6781. if ( (fragOffset + bytesLeft - 1) <= prev->end)
  6782. return 0;
  6783. fragOffset = prev->end + 1;
  6784. bytesLeft = startOffset + fragSz - fragOffset;
  6785. }
  6786. if (cur == NULL)
  6787. /* we're at the end */
  6788. added = bytesLeft;
  6789. else
  6790. /* we're in between two frames */
  6791. added = min(bytesLeft, cur->begin - fragOffset);
  6792. /* data already there */
  6793. if (added == 0)
  6794. continue;
  6795. newFrag = CreateFragment(&fragOffset, fragOffset + added - 1,
  6796. data + fragOffset - startOffset,
  6797. msg->msg, &bytesLeft, heap);
  6798. if (newFrag == NULL)
  6799. return MEMORY_E;
  6800. msg->fragSz += added;
  6801. newFrag->next = prev->next;
  6802. prev->next = newFrag;
  6803. }
  6804. }
  6805. return 0;
  6806. }
  6807. DtlsMsg* DtlsMsgFind(DtlsMsg* head, word32 epoch, word32 seq)
  6808. {
  6809. WOLFSSL_ENTER("DtlsMsgFind()");
  6810. while (head != NULL && !(head->epoch == epoch && head->seq == seq)) {
  6811. head = head->next;
  6812. }
  6813. return head;
  6814. }
  6815. void DtlsMsgStore(WOLFSSL* ssl, word32 epoch, word32 seq, const byte* data,
  6816. word32 dataSz, byte type, word32 fragOffset, word32 fragSz, void* heap)
  6817. {
  6818. /* See if seq exists in the list. If it isn't in the list, make
  6819. * a new item of size dataSz, copy fragSz bytes from data to msg->msg
  6820. * starting at offset fragOffset, and add fragSz to msg->fragSz. If
  6821. * the seq is in the list and it isn't full, copy fragSz bytes from
  6822. * data to msg->msg starting at offset fragOffset, and add fragSz to
  6823. * msg->fragSz. Insertions take into account data already in the list
  6824. * in case there are overlaps in the handshake message due to retransmit
  6825. * messages. The new item should be inserted into the list in its
  6826. * proper position.
  6827. *
  6828. * 1. Find seq in list, or where seq should go in list. If seq not in
  6829. * list, create new item and insert into list. Either case, keep
  6830. * pointer to item.
  6831. * 2. Copy the data from the message to the stored message where it
  6832. * belongs without overlaps.
  6833. */
  6834. DtlsMsg* head = ssl->dtls_rx_msg_list;
  6835. WOLFSSL_ENTER("DtlsMsgStore()");
  6836. if (head != NULL) {
  6837. DtlsMsg* cur = DtlsMsgFind(head, epoch, seq);
  6838. if (cur == NULL) {
  6839. cur = DtlsMsgNew(dataSz, heap);
  6840. if (cur != NULL) {
  6841. if (DtlsMsgSet(cur, seq, epoch, data, type,
  6842. fragOffset, fragSz, heap) < 0) {
  6843. DtlsMsgDelete(cur, heap);
  6844. }
  6845. else {
  6846. ssl->dtls_rx_msg_list_sz++;
  6847. head = DtlsMsgInsert(head, cur);
  6848. }
  6849. }
  6850. }
  6851. else {
  6852. /* If this fails, the data is just dropped. */
  6853. DtlsMsgSet(cur, seq, epoch, data, type, fragOffset,
  6854. fragSz, heap);
  6855. }
  6856. }
  6857. else {
  6858. head = DtlsMsgNew(dataSz, heap);
  6859. if (DtlsMsgSet(head, seq, epoch, data, type, fragOffset,
  6860. fragSz, heap) < 0) {
  6861. DtlsMsgDelete(head, heap);
  6862. head = NULL;
  6863. }
  6864. else {
  6865. ssl->dtls_rx_msg_list_sz++;
  6866. }
  6867. }
  6868. ssl->dtls_rx_msg_list = head;
  6869. }
  6870. /* DtlsMsgInsert() is an in-order insert. */
  6871. DtlsMsg* DtlsMsgInsert(DtlsMsg* head, DtlsMsg* item)
  6872. {
  6873. WOLFSSL_ENTER("DtlsMsgInsert()");
  6874. if (head == NULL || (item->epoch <= head->epoch &&
  6875. item->seq < head->seq)) {
  6876. item->next = head;
  6877. head = item;
  6878. }
  6879. else if (head->next == NULL) {
  6880. head->next = item;
  6881. }
  6882. else {
  6883. DtlsMsg* cur = head->next;
  6884. DtlsMsg* prev = head;
  6885. while (cur) {
  6886. if (item->epoch <= cur->epoch &&
  6887. item->seq < cur->seq) {
  6888. item->next = cur;
  6889. prev->next = item;
  6890. break;
  6891. }
  6892. prev = cur;
  6893. cur = cur->next;
  6894. }
  6895. if (cur == NULL) {
  6896. prev->next = item;
  6897. }
  6898. }
  6899. return head;
  6900. }
  6901. /**
  6902. * DtlsMsgPoolSave() adds the message to the end of the stored transmit
  6903. * list. Must be called BEFORE BuildMessage or DtlsSEQIncrement or
  6904. * anything else that increments ssl->keys.dtls_handshake_number.
  6905. */
  6906. int DtlsMsgPoolSave(WOLFSSL* ssl, const byte* data, word32 dataSz,
  6907. enum HandShakeType type)
  6908. {
  6909. DtlsMsg* item;
  6910. int ret = 0;
  6911. WOLFSSL_ENTER("DtlsMsgPoolSave()");
  6912. if (ssl->dtls_tx_msg_list_sz > DTLS_POOL_SZ) {
  6913. WOLFSSL_ERROR(DTLS_POOL_SZ_E);
  6914. return DTLS_POOL_SZ_E;
  6915. }
  6916. item = DtlsMsgNew(dataSz, ssl->heap);
  6917. if (item != NULL) {
  6918. DtlsMsg* cur = ssl->dtls_tx_msg_list;
  6919. XMEMCPY(item->buf, data, dataSz);
  6920. item->sz = dataSz;
  6921. item->epoch = ssl->keys.dtls_epoch;
  6922. item->seq = ssl->keys.dtls_handshake_number;
  6923. item->type = type;
  6924. if (cur == NULL)
  6925. ssl->dtls_tx_msg_list = item;
  6926. else {
  6927. while (cur->next)
  6928. cur = cur->next;
  6929. cur->next = item;
  6930. }
  6931. ssl->dtls_tx_msg_list_sz++;
  6932. }
  6933. else
  6934. ret = MEMORY_E;
  6935. WOLFSSL_LEAVE("DtlsMsgPoolSave()", ret);
  6936. return ret;
  6937. }
  6938. /* DtlsMsgPoolTimeout() updates the timeout time. */
  6939. int DtlsMsgPoolTimeout(WOLFSSL* ssl)
  6940. {
  6941. int result = -1;
  6942. WOLFSSL_ENTER("DtlsMsgPoolTimeout()");
  6943. if (ssl->dtls_timeout < ssl->dtls_timeout_max) {
  6944. ssl->dtls_timeout *= DTLS_TIMEOUT_MULTIPLIER;
  6945. result = 0;
  6946. }
  6947. WOLFSSL_LEAVE("DtlsMsgPoolTimeout()", result);
  6948. return result;
  6949. }
  6950. /* DtlsMsgPoolReset() deletes the stored transmit list and resets the timeout
  6951. * value. */
  6952. void DtlsMsgPoolReset(WOLFSSL* ssl)
  6953. {
  6954. WOLFSSL_ENTER("DtlsMsgPoolReset()");
  6955. if (ssl->dtls_tx_msg_list) {
  6956. DtlsMsgListDelete(ssl->dtls_tx_msg_list, ssl->heap);
  6957. ssl->dtls_tx_msg_list = NULL;
  6958. ssl->dtls_tx_msg = NULL;
  6959. ssl->dtls_tx_msg_list_sz = 0;
  6960. }
  6961. ssl->dtls_timeout = ssl->dtls_timeout_init;
  6962. }
  6963. int VerifyForDtlsMsgPoolSend(WOLFSSL* ssl, byte type, word32 fragOffset)
  6964. {
  6965. /**
  6966. * only the first message from previous flight should be valid
  6967. * to be used for triggering retransmission of whole DtlsMsgPool.
  6968. * change cipher suite type is not verified here
  6969. */
  6970. return ((fragOffset == 0) &&
  6971. (((ssl->options.side == WOLFSSL_SERVER_END) &&
  6972. ((type == client_hello) ||
  6973. ((ssl->options.verifyPeer) && (type == certificate)) ||
  6974. ((!ssl->options.verifyPeer) && (type == client_key_exchange)))) ||
  6975. ((ssl->options.side == WOLFSSL_CLIENT_END) &&
  6976. (type == hello_request || type == server_hello))));
  6977. }
  6978. /**
  6979. * Verify if message `item` from `ssl->dtls_tx_msg_list` should be deleted
  6980. * depending on the current state of the handshake negotiation.
  6981. */
  6982. int VerifyForTxDtlsMsgDelete(WOLFSSL* ssl, DtlsMsg* item)
  6983. {
  6984. WOLFSSL_ENTER("VerifyForTxDtlsMsgDelete()");
  6985. if (item->epoch < ssl->keys.dtls_epoch - 1)
  6986. /* Messages not from current or previous epoch can be deleted */
  6987. return 1;
  6988. switch (ssl->options.side) {
  6989. case WOLFSSL_CLIENT_END:
  6990. if (item->type == client_hello &&
  6991. ssl->options.serverState >= SERVER_HELLODONE_COMPLETE)
  6992. return 1; /* client can forget first client_hello if received full
  6993. * flight of packets from server */
  6994. else
  6995. return 0;
  6996. case WOLFSSL_SERVER_END:
  6997. if (ssl->options.clientState >= CLIENT_HELLO_COMPLETE &&
  6998. item->type == hello_request)
  6999. return 1; /* Server can forget HelloRequest if client sent a valid
  7000. * ClientHello */
  7001. if (ssl->options.clientState >= CLIENT_FINISHED_COMPLETE &&
  7002. item->type <= server_hello_done)
  7003. return 1; /* server can forget everything up to ServerHelloDone if
  7004. * a client finished message has been received and
  7005. * successfully processed */
  7006. else
  7007. return 0;
  7008. default:
  7009. return 0;
  7010. }
  7011. }
  7012. /* DtlsMsgPoolSend() will send the stored transmit list. The stored list is
  7013. * updated with new sequence numbers, and will be re-encrypted if needed. */
  7014. int DtlsMsgPoolSend(WOLFSSL* ssl, int sendOnlyFirstPacket)
  7015. {
  7016. int ret = 0;
  7017. DtlsMsg* pool;
  7018. int epochOrder;
  7019. WOLFSSL_ENTER("DtlsMsgPoolSend()");
  7020. pool = ssl->dtls_tx_msg == NULL ? ssl->dtls_tx_msg_list : ssl->dtls_tx_msg;
  7021. if (pool != NULL) {
  7022. if ((ssl->options.side == WOLFSSL_SERVER_END &&
  7023. !(ssl->options.acceptState == ACCEPT_BEGIN_RENEG ||
  7024. ssl->options.acceptState == SERVER_HELLO_DONE ||
  7025. ssl->options.acceptState == ACCEPT_FINISHED_DONE ||
  7026. ssl->options.acceptState == ACCEPT_THIRD_REPLY_DONE)) ||
  7027. (ssl->options.side == WOLFSSL_CLIENT_END &&
  7028. !(ssl->options.connectState == CLIENT_HELLO_SENT ||
  7029. ssl->options.connectState == HELLO_AGAIN_REPLY ||
  7030. ssl->options.connectState == FINISHED_DONE ||
  7031. ssl->options.connectState == SECOND_REPLY_DONE))) {
  7032. WOLFSSL_ERROR(DTLS_RETX_OVER_TX);
  7033. ssl->error = DTLS_RETX_OVER_TX;
  7034. return WOLFSSL_FATAL_ERROR;
  7035. }
  7036. while (pool != NULL) {
  7037. if (pool->epoch == 0) {
  7038. DtlsRecordLayerHeader* dtls;
  7039. dtls = (DtlsRecordLayerHeader*)pool->buf;
  7040. /* If the stored record's epoch is 0, and the currently set
  7041. * epoch is 0, use the "current order" sequence number.
  7042. * If the stored record's epoch is 0 and the currently set
  7043. * epoch is not 0, the stored record is considered a "previous
  7044. * order" sequence number. */
  7045. epochOrder = (ssl->keys.dtls_epoch == 0) ?
  7046. CUR_ORDER : PREV_ORDER;
  7047. WriteSEQ(ssl, epochOrder, dtls->sequence_number);
  7048. DtlsSEQIncrement(ssl, epochOrder);
  7049. if ((ret = CheckAvailableSize(ssl, pool->sz)) != 0) {
  7050. WOLFSSL_ERROR(ret);
  7051. return ret;
  7052. }
  7053. XMEMCPY(ssl->buffers.outputBuffer.buffer +
  7054. ssl->buffers.outputBuffer.idx +
  7055. ssl->buffers.outputBuffer.length,
  7056. pool->buf, pool->sz);
  7057. ssl->buffers.outputBuffer.length += pool->sz;
  7058. }
  7059. else {
  7060. /* Handle sending packets from previous epoch */
  7061. byte* input;
  7062. byte* output;
  7063. int inputSz, sendSz;
  7064. input = pool->buf;
  7065. inputSz = pool->sz;
  7066. sendSz = inputSz + cipherExtraData(ssl);
  7067. #ifdef HAVE_SECURE_RENEGOTIATION
  7068. /*
  7069. * CUR_ORDER will use ssl->secure_renegotiation from epoch 2+.
  7070. * ssl->keys otherwise
  7071. * PREV_ORDER will always use ssl->keys
  7072. */
  7073. if (DtlsSCRKeysSet(ssl)) {
  7074. if (pool->epoch == ssl->secure_renegotiation->tmp_keys.dtls_epoch)
  7075. epochOrder = CUR_ORDER;
  7076. else
  7077. epochOrder = PREV_ORDER;
  7078. }
  7079. else {
  7080. epochOrder = CUR_ORDER;
  7081. }
  7082. #else
  7083. epochOrder = CUR_ORDER;
  7084. #endif
  7085. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0) {
  7086. WOLFSSL_ERROR(ret);
  7087. return ret;
  7088. }
  7089. output = ssl->buffers.outputBuffer.buffer +
  7090. ssl->buffers.outputBuffer.length;
  7091. if (inputSz != ENUM_LEN)
  7092. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  7093. handshake, 0, 0, 0, epochOrder);
  7094. else
  7095. /* inputSz == ENUM_LEN must mean that this is a change cipher
  7096. * spec message */
  7097. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  7098. change_cipher_spec, 0, 0, 0, epochOrder);
  7099. if (sendSz < 0) {
  7100. WOLFSSL_ERROR(BUILD_MSG_ERROR);
  7101. return BUILD_MSG_ERROR;
  7102. }
  7103. ssl->buffers.outputBuffer.length += sendSz;
  7104. }
  7105. if (!ssl->options.groupMessages)
  7106. ret = SendBuffered(ssl);
  7107. /**
  7108. * on server side, retransmission is being triggered only by sending
  7109. * first message of given flight, in order to trigger client
  7110. * to retransmit its whole flight. Sending the whole previous flight
  7111. * could lead to retransmission of previous client flight for each
  7112. * server message from previous flight. Therefore one message should
  7113. * be enough to do the trick.
  7114. */
  7115. if (sendOnlyFirstPacket &&
  7116. ssl->options.side == WOLFSSL_SERVER_END)
  7117. pool = NULL;
  7118. else
  7119. pool = pool->next;
  7120. ssl->dtls_tx_msg = pool;
  7121. }
  7122. if (ret == 0 && ssl->options.groupMessages)
  7123. ret = SendBuffered(ssl);
  7124. }
  7125. WOLFSSL_LEAVE("DtlsMsgPoolSend()", ret);
  7126. return ret;
  7127. }
  7128. #endif /* WOLFSSL_DTLS */
  7129. #if defined(WOLFSSL_ALLOW_SSLV3) && !defined(NO_OLD_TLS)
  7130. ProtocolVersion MakeSSLv3(void)
  7131. {
  7132. ProtocolVersion pv;
  7133. pv.major = SSLv3_MAJOR;
  7134. pv.minor = SSLv3_MINOR;
  7135. return pv;
  7136. }
  7137. #endif /* WOLFSSL_ALLOW_SSLV3 && !NO_OLD_TLS */
  7138. #ifdef WOLFSSL_DTLS
  7139. ProtocolVersion MakeDTLSv1(void)
  7140. {
  7141. ProtocolVersion pv;
  7142. pv.major = DTLS_MAJOR;
  7143. pv.minor = DTLS_MINOR;
  7144. return pv;
  7145. }
  7146. #ifndef WOLFSSL_NO_TLS12
  7147. ProtocolVersion MakeDTLSv1_2(void)
  7148. {
  7149. ProtocolVersion pv;
  7150. pv.major = DTLS_MAJOR;
  7151. pv.minor = DTLSv1_2_MINOR;
  7152. return pv;
  7153. }
  7154. #endif /* !WOLFSSL_NO_TLS12 */
  7155. #endif /* WOLFSSL_DTLS */
  7156. #ifndef NO_ASN_TIME
  7157. #if defined(USER_TICKS)
  7158. #if 0
  7159. word32 LowResTimer(void)
  7160. {
  7161. /*
  7162. write your own clock tick function if don't want time(0)
  7163. needs second accuracy but doesn't have to correlated to EPOCH
  7164. */
  7165. }
  7166. #endif
  7167. #elif defined(TIME_OVERRIDES)
  7168. /* use same asn time overrides unless user wants tick override above */
  7169. #ifndef HAVE_TIME_T_TYPE
  7170. typedef long time_t;
  7171. #endif
  7172. extern time_t XTIME(time_t * timer);
  7173. word32 LowResTimer(void)
  7174. {
  7175. return (word32) XTIME(0);
  7176. }
  7177. #elif defined(USE_WINDOWS_API)
  7178. word32 LowResTimer(void)
  7179. {
  7180. static int init = 0;
  7181. static LARGE_INTEGER freq;
  7182. LARGE_INTEGER count;
  7183. if (!init) {
  7184. QueryPerformanceFrequency(&freq);
  7185. init = 1;
  7186. }
  7187. QueryPerformanceCounter(&count);
  7188. return (word32)(count.QuadPart / freq.QuadPart);
  7189. }
  7190. #elif defined(HAVE_RTP_SYS)
  7191. #include "rtptime.h"
  7192. word32 LowResTimer(void)
  7193. {
  7194. return (word32)rtp_get_system_sec();
  7195. }
  7196. #elif defined(WOLFSSL_DEOS)
  7197. word32 LowResTimer(void)
  7198. {
  7199. const word32 systemTickTimeInHz = 1000000 / systemTickInMicroseconds();
  7200. const volatile word32 *systemTickPtr = systemTickPointer();
  7201. return (word32) *systemTickPtr/systemTickTimeInHz;
  7202. }
  7203. #elif defined(MICRIUM)
  7204. word32 LowResTimer(void)
  7205. {
  7206. OS_TICK ticks = 0;
  7207. OS_ERR err;
  7208. ticks = OSTimeGet(&err);
  7209. return (word32) (ticks / OSCfg_TickRate_Hz);
  7210. }
  7211. #elif defined(MICROCHIP_TCPIP_V5)
  7212. word32 LowResTimer(void)
  7213. {
  7214. return (word32) (TickGet() / TICKS_PER_SECOND);
  7215. }
  7216. #elif defined(MICROCHIP_TCPIP)
  7217. #if defined(MICROCHIP_MPLAB_HARMONY)
  7218. #include <system/tmr/sys_tmr.h>
  7219. word32 LowResTimer(void)
  7220. {
  7221. return (word32) (SYS_TMR_TickCountGet() /
  7222. SYS_TMR_TickCounterFrequencyGet());
  7223. }
  7224. #else
  7225. word32 LowResTimer(void)
  7226. {
  7227. return (word32) (SYS_TICK_Get() / SYS_TICK_TicksPerSecondGet());
  7228. }
  7229. #endif
  7230. #elif defined(FREESCALE_MQX) || defined(FREESCALE_KSDK_MQX)
  7231. word32 LowResTimer(void)
  7232. {
  7233. TIME_STRUCT mqxTime;
  7234. _time_get_elapsed(&mqxTime);
  7235. return (word32) mqxTime.SECONDS;
  7236. }
  7237. #elif defined(FREESCALE_FREE_RTOS) || defined(FREESCALE_KSDK_FREERTOS)
  7238. #include "include/task.h"
  7239. unsigned int LowResTimer(void)
  7240. {
  7241. return (unsigned int)(((float)xTaskGetTickCount())/configTICK_RATE_HZ);
  7242. }
  7243. #elif defined(FREERTOS)
  7244. #include "task.h"
  7245. unsigned int LowResTimer(void)
  7246. {
  7247. return (unsigned int)(((float)xTaskGetTickCount())/configTICK_RATE_HZ);
  7248. }
  7249. #elif defined(FREESCALE_KSDK_BM)
  7250. #include "lwip/sys.h" /* lwIP */
  7251. word32 LowResTimer(void)
  7252. {
  7253. return sys_now()/1000;
  7254. }
  7255. #elif defined(WOLFSSL_TIRTOS)
  7256. word32 LowResTimer(void)
  7257. {
  7258. return (word32) Seconds_get();
  7259. }
  7260. #elif defined(WOLFSSL_XILINX)
  7261. #include "xrtcpsu.h"
  7262. word32 LowResTimer(void)
  7263. {
  7264. XRtcPsu_Config* con;
  7265. XRtcPsu rtc;
  7266. con = XRtcPsu_LookupConfig(XPAR_XRTCPSU_0_DEVICE_ID);
  7267. if (con != NULL) {
  7268. if (XRtcPsu_CfgInitialize(&rtc, con, con->BaseAddr)
  7269. == XST_SUCCESS) {
  7270. return (word32)XRtcPsu_GetCurrentTime(&rtc);
  7271. }
  7272. else {
  7273. WOLFSSL_MSG("Unable to initialize RTC");
  7274. }
  7275. }
  7276. return 0;
  7277. }
  7278. #elif defined(WOLFSSL_UTASKER)
  7279. word32 LowResTimer(void)
  7280. {
  7281. return (word32)(uTaskerSystemTick / TICK_RESOLUTION);
  7282. }
  7283. #elif defined(WOLFSSL_NUCLEUS_1_2)
  7284. #define NU_TICKS_PER_SECOND 100
  7285. word32 LowResTimer(void)
  7286. {
  7287. /* returns number of 10ms ticks, so 100 ticks/sec */
  7288. return NU_Retrieve_Clock() / NU_TICKS_PER_SECOND;
  7289. }
  7290. #elif defined(WOLFSSL_APACHE_MYNEWT)
  7291. #include "os/os_time.h"
  7292. word32 LowResTimer(void)
  7293. {
  7294. word32 now;
  7295. struct os_timeval tv;
  7296. os_gettimeofday(&tv, NULL);
  7297. now = (word32)tv.tv_sec;
  7298. return now;
  7299. }
  7300. #elif defined(WOLFSSL_ZEPHYR)
  7301. word32 LowResTimer(void)
  7302. {
  7303. return k_uptime_get() / 1000;
  7304. }
  7305. #elif defined(WOLFSSL_LINUXKM)
  7306. word32 LowResTimer(void)
  7307. {
  7308. return (word32)time(NULL);
  7309. }
  7310. #else
  7311. /* Posix style time */
  7312. #if !defined(USER_TIME) && !defined(USE_WOLF_TM)
  7313. #include <time.h>
  7314. #endif
  7315. word32 LowResTimer(void)
  7316. {
  7317. return (word32)XTIME(0);
  7318. }
  7319. #endif
  7320. #else
  7321. /* user must supply timer function to return elapsed seconds:
  7322. * word32 LowResTimer(void);
  7323. */
  7324. #endif /* !NO_ASN_TIME */
  7325. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  7326. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  7327. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  7328. /* Store the message for use with CertificateVerify using EdDSA.
  7329. *
  7330. * ssl SSL/TLS object.
  7331. * data Message to store.
  7332. * sz Size of message to store.
  7333. * returns MEMORY_E if not able to reallocate, otherwise 0.
  7334. */
  7335. static int EdDSA_Update(WOLFSSL* ssl, const byte* data, int sz)
  7336. {
  7337. int ret = 0;
  7338. byte* msgs;
  7339. if (ssl->options.cacheMessages) {
  7340. msgs = (byte*)XREALLOC(ssl->hsHashes->messages,
  7341. ssl->hsHashes->length + sz,
  7342. ssl->heap, DYNAMIC_TYPE_HASHES);
  7343. if (msgs == NULL)
  7344. ret = MEMORY_E;
  7345. if (ret == 0) {
  7346. ssl->hsHashes->messages = msgs;
  7347. XMEMCPY(msgs + ssl->hsHashes->length, data, sz);
  7348. ssl->hsHashes->prevLen = ssl->hsHashes->length;
  7349. ssl->hsHashes->length += sz;
  7350. }
  7351. }
  7352. return ret;
  7353. }
  7354. #endif /* (HAVE_ED25519 || HAVE_ED448) && !WOLFSSL_NO_CLIENT_AUTH */
  7355. int HashRaw(WOLFSSL* ssl, const byte* data, int sz)
  7356. {
  7357. int ret = 0;
  7358. (void)data;
  7359. (void)sz;
  7360. if (ssl->hsHashes == NULL) {
  7361. return BAD_FUNC_ARG;
  7362. }
  7363. #ifndef NO_OLD_TLS
  7364. #ifndef NO_SHA
  7365. wc_ShaUpdate(&ssl->hsHashes->hashSha, data, sz);
  7366. #endif
  7367. #ifndef NO_MD5
  7368. wc_Md5Update(&ssl->hsHashes->hashMd5, data, sz);
  7369. #endif
  7370. #endif /* NO_OLD_TLS */
  7371. if (IsAtLeastTLSv1_2(ssl)) {
  7372. #ifndef NO_SHA256
  7373. ret = wc_Sha256Update(&ssl->hsHashes->hashSha256, data, sz);
  7374. if (ret != 0)
  7375. return ret;
  7376. #endif
  7377. #ifdef WOLFSSL_SHA384
  7378. ret = wc_Sha384Update(&ssl->hsHashes->hashSha384, data, sz);
  7379. if (ret != 0)
  7380. return ret;
  7381. #endif
  7382. #ifdef WOLFSSL_SHA512
  7383. ret = wc_Sha512Update(&ssl->hsHashes->hashSha512, data, sz);
  7384. if (ret != 0)
  7385. return ret;
  7386. #endif
  7387. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  7388. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  7389. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  7390. ret = EdDSA_Update(ssl, data, sz);
  7391. if (ret != 0)
  7392. return ret;
  7393. #endif
  7394. }
  7395. return ret;
  7396. }
  7397. /* add output to md5 and sha handshake hashes, exclude record header */
  7398. int HashOutput(WOLFSSL* ssl, const byte* output, int sz, int ivSz)
  7399. {
  7400. const byte* adj;
  7401. if (ssl->hsHashes == NULL)
  7402. return BAD_FUNC_ARG;
  7403. adj = output + RECORD_HEADER_SZ + ivSz;
  7404. sz -= RECORD_HEADER_SZ;
  7405. #ifdef HAVE_FUZZER
  7406. if (ssl->fuzzerCb)
  7407. ssl->fuzzerCb(ssl, output, sz, FUZZ_HASH, ssl->fuzzerCtx);
  7408. #endif
  7409. #ifdef WOLFSSL_DTLS
  7410. if (ssl->options.dtls) {
  7411. adj += DTLS_RECORD_EXTRA;
  7412. sz -= DTLS_RECORD_EXTRA;
  7413. }
  7414. #endif
  7415. return HashRaw(ssl, adj, sz);
  7416. }
  7417. /* add input to md5 and sha handshake hashes, include handshake header */
  7418. int HashInput(WOLFSSL* ssl, const byte* input, int sz)
  7419. {
  7420. const byte* adj;
  7421. if (ssl->hsHashes == NULL) {
  7422. return BAD_FUNC_ARG;
  7423. }
  7424. adj = input - HANDSHAKE_HEADER_SZ;
  7425. sz += HANDSHAKE_HEADER_SZ;
  7426. #ifdef WOLFSSL_DTLS
  7427. if (ssl->options.dtls) {
  7428. adj -= DTLS_HANDSHAKE_EXTRA;
  7429. sz += DTLS_HANDSHAKE_EXTRA;
  7430. }
  7431. #endif
  7432. return HashRaw(ssl, adj, sz);
  7433. }
  7434. /* add record layer header for message */
  7435. static void AddRecordHeader(byte* output, word32 length, byte type, WOLFSSL* ssl, int epochOrder)
  7436. {
  7437. RecordLayerHeader* rl;
  7438. (void)epochOrder;
  7439. /* record layer header */
  7440. rl = (RecordLayerHeader*)output;
  7441. if (rl == NULL) {
  7442. return;
  7443. }
  7444. rl->type = type;
  7445. rl->pvMajor = ssl->version.major; /* type and version same in each */
  7446. #ifdef WOLFSSL_TLS13
  7447. if (IsAtLeastTLSv1_3(ssl->version)) {
  7448. rl->pvMinor = TLSv1_2_MINOR;
  7449. }
  7450. else
  7451. #endif
  7452. rl->pvMinor = ssl->version.minor;
  7453. #ifdef WOLFSSL_ALTERNATIVE_DOWNGRADE
  7454. if (ssl->options.side == WOLFSSL_CLIENT_END
  7455. && ssl->options.connectState == CONNECT_BEGIN
  7456. && !ssl->options.resuming) {
  7457. rl->pvMinor = ssl->options.downgrade ? ssl->options.minDowngrade
  7458. : ssl->version.minor;
  7459. }
  7460. #endif
  7461. if (!ssl->options.dtls) {
  7462. c16toa((word16)length, rl->length);
  7463. }
  7464. else {
  7465. #ifdef WOLFSSL_DTLS
  7466. DtlsRecordLayerHeader* dtls;
  7467. /* dtls record layer header extensions */
  7468. dtls = (DtlsRecordLayerHeader*)output;
  7469. WriteSEQ(ssl, epochOrder, dtls->sequence_number);
  7470. c16toa((word16)length, dtls->length);
  7471. #endif
  7472. }
  7473. }
  7474. #if !defined(WOLFSSL_NO_TLS12) || (defined(HAVE_SESSION_TICKET) && \
  7475. !defined(NO_WOLFSSL_SERVER))
  7476. /* add handshake header for message */
  7477. static void AddHandShakeHeader(byte* output, word32 length,
  7478. word32 fragOffset, word32 fragLength,
  7479. byte type, WOLFSSL* ssl)
  7480. {
  7481. HandShakeHeader* hs;
  7482. (void)fragOffset;
  7483. (void)fragLength;
  7484. (void)ssl;
  7485. /* handshake header */
  7486. hs = (HandShakeHeader*)output;
  7487. if (hs == NULL)
  7488. return;
  7489. hs->type = type;
  7490. c32to24(length, hs->length); /* type and length same for each */
  7491. #ifdef WOLFSSL_DTLS
  7492. if (ssl->options.dtls) {
  7493. DtlsHandShakeHeader* dtls;
  7494. /* dtls handshake header extensions */
  7495. dtls = (DtlsHandShakeHeader*)output;
  7496. c16toa(ssl->keys.dtls_handshake_number++, dtls->message_seq);
  7497. c32to24(fragOffset, dtls->fragment_offset);
  7498. c32to24(fragLength, dtls->fragment_length);
  7499. }
  7500. #endif
  7501. }
  7502. /* add both headers for handshake message */
  7503. static void AddHeaders(byte* output, word32 length, byte type, WOLFSSL* ssl)
  7504. {
  7505. word32 lengthAdj = HANDSHAKE_HEADER_SZ;
  7506. word32 outputAdj = RECORD_HEADER_SZ;
  7507. #ifdef WOLFSSL_DTLS
  7508. if (ssl->options.dtls) {
  7509. lengthAdj += DTLS_HANDSHAKE_EXTRA;
  7510. outputAdj += DTLS_RECORD_EXTRA;
  7511. }
  7512. #endif
  7513. AddRecordHeader(output, length + lengthAdj, handshake, ssl, CUR_ORDER);
  7514. AddHandShakeHeader(output + outputAdj, length, 0, length, type, ssl);
  7515. }
  7516. #endif /* !WOLFSSL_NO_TLS12 || (HAVE_SESSION_TICKET && !NO_WOLFSSL_SERVER) */
  7517. #ifndef WOLFSSL_NO_TLS12
  7518. #if !defined(NO_CERTS) && (!defined(NO_WOLFSSL_SERVER) || \
  7519. !defined(WOLFSSL_NO_CLIENT_AUTH)) || \
  7520. defined(WOLFSSL_DTLS)
  7521. static void AddFragHeaders(byte* output, word32 fragSz, word32 fragOffset,
  7522. word32 length, byte type, WOLFSSL* ssl)
  7523. {
  7524. word32 lengthAdj = HANDSHAKE_HEADER_SZ;
  7525. word32 outputAdj = RECORD_HEADER_SZ;
  7526. (void)fragSz;
  7527. #ifdef WOLFSSL_DTLS
  7528. if (ssl->options.dtls) {
  7529. lengthAdj += DTLS_HANDSHAKE_EXTRA;
  7530. outputAdj += DTLS_RECORD_EXTRA;
  7531. }
  7532. #endif
  7533. AddRecordHeader(output, fragSz + lengthAdj, handshake, ssl, CUR_ORDER);
  7534. AddHandShakeHeader(output + outputAdj, length, fragOffset, fragSz, type, ssl);
  7535. }
  7536. #endif /* NO_CERTS */
  7537. #if !defined(NO_WOLFSSL_SERVER) || \
  7538. (!defined(NO_WOLFSSL_CLIENT) && !defined(NO_CERTS) && \
  7539. !defined(WOLFSSL_NO_CLIENT_AUTH))
  7540. /**
  7541. * Send the handshake message. This function handles fragmenting the message
  7542. * so that it will fit into the desired MTU or the max fragment size.
  7543. * @param ssl Connection object
  7544. * @param input Input starting at the record layer header. This function
  7545. * assumes that the appropriate record and handshake headers
  7546. * are present. These headers must assume no fragmentation.
  7547. * That is handled here.
  7548. * @param inputSz Length of message excluding headers (this is the total
  7549. * length of all fragments)
  7550. * @param type Type of message being sent
  7551. * @return 0 on success and negative otherwise
  7552. */
  7553. static int SendHandshakeMsg(WOLFSSL* ssl, byte* input, word32 inputSz,
  7554. enum HandShakeType type, const char* packetName)
  7555. {
  7556. int maxFrag;
  7557. int ret = 0;
  7558. int headerSz;
  7559. WOLFSSL_ENTER("SendHandshakeMsg");
  7560. (void)type;
  7561. (void)packetName;
  7562. if (ssl == NULL || input == NULL)
  7563. return BAD_FUNC_ARG;
  7564. #ifdef WOLFSSL_DTLS
  7565. if (ssl->options.dtls)
  7566. headerSz = DTLS_RECORD_HEADER_SZ + DTLS_HANDSHAKE_HEADER_SZ;
  7567. else
  7568. #endif
  7569. {
  7570. /* In TLS we send one handshake header in total, not one
  7571. * per fragment like in DTLS. The handshake header should
  7572. * already be in the input buffer. */
  7573. inputSz += HANDSHAKE_HEADER_SZ;
  7574. headerSz = RECORD_HEADER_SZ;
  7575. }
  7576. maxFrag = wolfSSL_GetMaxRecordSize(ssl, (int)inputSz);
  7577. /* Make sure input is not the ssl output buffer as this
  7578. * function doesn't handle that */
  7579. if (input >= ssl->buffers.outputBuffer.buffer &&
  7580. input < ssl->buffers.outputBuffer.buffer +
  7581. ssl->buffers.outputBuffer.bufferSize) {
  7582. WOLFSSL_MSG("Can't use output buffer for input in SendHandshakeMsg");
  7583. return BAD_FUNC_ARG;
  7584. }
  7585. if (ssl->fragOffset == 0) {
  7586. /* Hash it before the loop as we modify the input with
  7587. * encryption on */
  7588. ret = HashOutput(ssl, input, headerSz + (int)inputSz, 0);
  7589. if (ret != 0)
  7590. return ret;
  7591. #ifdef WOLFSSL_DTLS
  7592. /* Decrement msg number so that we continue to use the
  7593. * same msg number for this msg */
  7594. if (ssl->options.dtls)
  7595. ssl->keys.dtls_handshake_number--;
  7596. #endif
  7597. }
  7598. while (ssl->fragOffset < inputSz) {
  7599. byte* output;
  7600. int outputSz;
  7601. byte* data = input + ssl->fragOffset + headerSz;
  7602. word32 fragSz = (word32)maxFrag;
  7603. if (inputSz - ssl->fragOffset < fragSz)
  7604. fragSz = inputSz - ssl->fragOffset;
  7605. /* check for available size */
  7606. outputSz = headerSz + fragSz;
  7607. if (IsEncryptionOn(ssl, 1))
  7608. outputSz += cipherExtraData(ssl);
  7609. if ((ret = CheckAvailableSize(ssl, outputSz)) != 0)
  7610. return ret;
  7611. output = ssl->buffers.outputBuffer.buffer +
  7612. ssl->buffers.outputBuffer.length;
  7613. /* scan-build complains that this may be null */
  7614. if (output == NULL)
  7615. return MEMORY_E;
  7616. if (IsEncryptionOn(ssl, 1)) {
  7617. /* First we need to add the fragment header ourselves.
  7618. * We do this in the input to minimize allocations */
  7619. int dataSz = (int)fragSz;
  7620. #ifdef WOLFSSL_DTLS
  7621. if (ssl->options.dtls) {
  7622. data -= DTLS_HANDSHAKE_HEADER_SZ;
  7623. dataSz += DTLS_HANDSHAKE_HEADER_SZ;
  7624. AddHandShakeHeader(data,
  7625. inputSz, ssl->fragOffset, fragSz, type, ssl);
  7626. }
  7627. if (ssl->options.dtls)
  7628. ssl->keys.dtls_handshake_number--;
  7629. if (IsDtlsNotSctpMode(ssl) &&
  7630. (ret = DtlsMsgPoolSave(ssl, data,
  7631. fragSz + DTLS_HANDSHAKE_HEADER_SZ, type))
  7632. != 0)
  7633. return ret;
  7634. #endif
  7635. ret = BuildMessage(ssl, output, outputSz,
  7636. data, dataSz, handshake, 0, 0, 0, CUR_ORDER);
  7637. if (ret >= 0)
  7638. outputSz = ret;
  7639. else
  7640. return ret;
  7641. ret = 0;
  7642. }
  7643. else {
  7644. #ifdef WOLFSSL_DTLS
  7645. if (ssl->options.dtls)
  7646. AddFragHeaders(output, fragSz, ssl->fragOffset,
  7647. inputSz, type, ssl);
  7648. else
  7649. #endif
  7650. AddRecordHeader(output, fragSz, handshake, ssl, CUR_ORDER);
  7651. XMEMCPY(output + headerSz, data, fragSz);
  7652. #ifdef WOLFSSL_DTLS
  7653. if (ssl->options.dtls) {
  7654. ssl->keys.dtls_handshake_number--;
  7655. DtlsSEQIncrement(ssl, CUR_ORDER);
  7656. }
  7657. if (IsDtlsNotSctpMode(ssl)) {
  7658. if ((ret = DtlsMsgPoolSave(ssl, output, headerSz + fragSz,
  7659. type)) != 0) {
  7660. return ret;
  7661. }
  7662. }
  7663. #endif
  7664. }
  7665. ssl->buffers.outputBuffer.length += outputSz;
  7666. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  7667. if (ssl->hsInfoOn) {
  7668. AddPacketName(ssl, packetName);
  7669. }
  7670. if (ssl->toInfoOn) {
  7671. AddPacketInfo(ssl, packetName, handshake,
  7672. output, outputSz, WRITE_PROTO, ssl->heap);
  7673. }
  7674. #endif
  7675. ssl->fragOffset += fragSz;
  7676. if (!ssl->options.groupMessages)
  7677. ret = SendBuffered(ssl);
  7678. if (ret != 0)
  7679. return ret;
  7680. }
  7681. #ifdef WOLFSSL_DTLS
  7682. /* Increment msg number once we sent all fragments */
  7683. if (ssl->options.dtls)
  7684. ssl->keys.dtls_handshake_number++;
  7685. #endif
  7686. ssl->fragOffset = 0;
  7687. return ret;
  7688. }
  7689. #endif /* !NO_WOLFSSL_SERVER || (!NO_WOLFSSL_CLIENT && !NO_CERTS &&
  7690. * !WOLFSSL_NO_CLIENT_AUTH) */
  7691. #endif /* !WOLFSSL_NO_TLS12 */
  7692. /* return bytes received, -1 on error */
  7693. static int wolfSSLReceive(WOLFSSL* ssl, byte* buf, word32 sz)
  7694. {
  7695. int recvd;
  7696. if (ssl->CBIORecv == NULL) {
  7697. WOLFSSL_MSG("Your IO Recv callback is null, please set");
  7698. return -1;
  7699. }
  7700. retry:
  7701. recvd = ssl->CBIORecv(ssl, (char *)buf, (int)sz, ssl->IOCB_ReadCtx);
  7702. if (recvd < 0) {
  7703. switch (recvd) {
  7704. case WOLFSSL_CBIO_ERR_GENERAL: /* general/unknown error */
  7705. #ifdef WOLFSSL_APACHE_HTTPD
  7706. #ifndef NO_BIO
  7707. if (ssl->biord) {
  7708. /* If retry and read flags are set, return WANT_READ */
  7709. if ((ssl->biord->flags & WOLFSSL_BIO_FLAG_READ) &&
  7710. (ssl->biord->flags & WOLFSSL_BIO_FLAG_RETRY)) {
  7711. return WANT_READ;
  7712. }
  7713. }
  7714. #endif
  7715. #endif
  7716. return -1;
  7717. case WOLFSSL_CBIO_ERR_WANT_READ: /* want read, would block */
  7718. return WANT_READ;
  7719. case WOLFSSL_CBIO_ERR_CONN_RST: /* connection reset */
  7720. #ifdef USE_WINDOWS_API
  7721. if (ssl->options.dtls) {
  7722. goto retry;
  7723. }
  7724. #endif
  7725. ssl->options.connReset = 1;
  7726. return -1;
  7727. case WOLFSSL_CBIO_ERR_ISR: /* interrupt */
  7728. /* see if we got our timeout */
  7729. #ifdef WOLFSSL_CALLBACKS
  7730. if (ssl->toInfoOn) {
  7731. struct itimerval timeout;
  7732. getitimer(ITIMER_REAL, &timeout);
  7733. if (timeout.it_value.tv_sec == 0 &&
  7734. timeout.it_value.tv_usec == 0) {
  7735. XSTRNCPY(ssl->timeoutInfo.timeoutName,
  7736. "recv() timeout", MAX_TIMEOUT_NAME_SZ);
  7737. ssl->timeoutInfo.timeoutName[
  7738. MAX_TIMEOUT_NAME_SZ] = '\0';
  7739. WOLFSSL_MSG("Got our timeout");
  7740. return WANT_READ;
  7741. }
  7742. }
  7743. #endif
  7744. goto retry;
  7745. case WOLFSSL_CBIO_ERR_CONN_CLOSE: /* peer closed connection */
  7746. ssl->options.isClosed = 1;
  7747. return -1;
  7748. case WOLFSSL_CBIO_ERR_TIMEOUT:
  7749. #ifdef WOLFSSL_DTLS
  7750. if (IsDtlsNotSctpMode(ssl) &&
  7751. ssl->options.handShakeState != HANDSHAKE_DONE &&
  7752. DtlsMsgPoolTimeout(ssl) == 0 &&
  7753. DtlsMsgPoolSend(ssl, 0) == 0) {
  7754. /* retry read for DTLS during handshake only */
  7755. goto retry;
  7756. }
  7757. #endif
  7758. return -1;
  7759. default:
  7760. WOLFSSL_MSG("Unexpected recv return code");
  7761. return recvd;
  7762. }
  7763. }
  7764. return recvd;
  7765. }
  7766. /* Switch dynamic output buffer back to static, buffer is assumed clear */
  7767. void ShrinkOutputBuffer(WOLFSSL* ssl)
  7768. {
  7769. WOLFSSL_MSG("Shrinking output buffer\n");
  7770. XFREE(ssl->buffers.outputBuffer.buffer - ssl->buffers.outputBuffer.offset,
  7771. ssl->heap, DYNAMIC_TYPE_OUT_BUFFER);
  7772. ssl->buffers.outputBuffer.buffer = ssl->buffers.outputBuffer.staticBuffer;
  7773. ssl->buffers.outputBuffer.bufferSize = STATIC_BUFFER_LEN;
  7774. ssl->buffers.outputBuffer.dynamicFlag = 0;
  7775. ssl->buffers.outputBuffer.offset = 0;
  7776. }
  7777. /* Switch dynamic input buffer back to static, keep any remaining input */
  7778. /* forced free means cleaning up */
  7779. void ShrinkInputBuffer(WOLFSSL* ssl, int forcedFree)
  7780. {
  7781. int usedLength = ssl->buffers.inputBuffer.length -
  7782. ssl->buffers.inputBuffer.idx;
  7783. if (!forcedFree && usedLength > STATIC_BUFFER_LEN)
  7784. return;
  7785. WOLFSSL_MSG("Shrinking input buffer\n");
  7786. if (!forcedFree && usedLength > 0)
  7787. XMEMCPY(ssl->buffers.inputBuffer.staticBuffer,
  7788. ssl->buffers.inputBuffer.buffer + ssl->buffers.inputBuffer.idx,
  7789. usedLength);
  7790. XFREE(ssl->buffers.inputBuffer.buffer - ssl->buffers.inputBuffer.offset,
  7791. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  7792. ssl->buffers.inputBuffer.buffer = ssl->buffers.inputBuffer.staticBuffer;
  7793. ssl->buffers.inputBuffer.bufferSize = STATIC_BUFFER_LEN;
  7794. ssl->buffers.inputBuffer.dynamicFlag = 0;
  7795. ssl->buffers.inputBuffer.offset = 0;
  7796. ssl->buffers.inputBuffer.idx = 0;
  7797. ssl->buffers.inputBuffer.length = usedLength;
  7798. }
  7799. int SendBuffered(WOLFSSL* ssl)
  7800. {
  7801. if (ssl->CBIOSend == NULL) {
  7802. WOLFSSL_MSG("Your IO Send callback is null, please set");
  7803. return SOCKET_ERROR_E;
  7804. }
  7805. #ifdef WOLFSSL_DEBUG_TLS
  7806. if (ssl->buffers.outputBuffer.idx == 0) {
  7807. WOLFSSL_MSG("Data to send");
  7808. WOLFSSL_BUFFER(ssl->buffers.outputBuffer.buffer,
  7809. ssl->buffers.outputBuffer.length);
  7810. }
  7811. #endif
  7812. while (ssl->buffers.outputBuffer.length > 0) {
  7813. int sent = ssl->CBIOSend(ssl,
  7814. (char*)ssl->buffers.outputBuffer.buffer +
  7815. ssl->buffers.outputBuffer.idx,
  7816. (int)ssl->buffers.outputBuffer.length,
  7817. ssl->IOCB_WriteCtx);
  7818. if (sent < 0) {
  7819. switch (sent) {
  7820. case WOLFSSL_CBIO_ERR_WANT_WRITE: /* would block */
  7821. return WANT_WRITE;
  7822. case WOLFSSL_CBIO_ERR_CONN_RST: /* connection reset */
  7823. ssl->options.connReset = 1;
  7824. break;
  7825. case WOLFSSL_CBIO_ERR_ISR: /* interrupt */
  7826. /* see if we got our timeout */
  7827. #ifdef WOLFSSL_CALLBACKS
  7828. if (ssl->toInfoOn) {
  7829. struct itimerval timeout;
  7830. getitimer(ITIMER_REAL, &timeout);
  7831. if (timeout.it_value.tv_sec == 0 &&
  7832. timeout.it_value.tv_usec == 0) {
  7833. XSTRNCPY(ssl->timeoutInfo.timeoutName,
  7834. "send() timeout", MAX_TIMEOUT_NAME_SZ);
  7835. ssl->timeoutInfo.timeoutName[
  7836. MAX_TIMEOUT_NAME_SZ] = '\0';
  7837. WOLFSSL_MSG("Got our timeout");
  7838. return WANT_WRITE;
  7839. }
  7840. }
  7841. #endif
  7842. continue;
  7843. case WOLFSSL_CBIO_ERR_CONN_CLOSE: /* epipe / conn closed */
  7844. ssl->options.connReset = 1; /* treat same as reset */
  7845. break;
  7846. default:
  7847. return SOCKET_ERROR_E;
  7848. }
  7849. return SOCKET_ERROR_E;
  7850. }
  7851. if (sent > (int)ssl->buffers.outputBuffer.length) {
  7852. WOLFSSL_MSG("SendBuffered() out of bounds read");
  7853. return SEND_OOB_READ_E;
  7854. }
  7855. ssl->buffers.outputBuffer.idx += sent;
  7856. ssl->buffers.outputBuffer.length -= sent;
  7857. }
  7858. ssl->buffers.outputBuffer.idx = 0;
  7859. if (ssl->buffers.outputBuffer.dynamicFlag)
  7860. ShrinkOutputBuffer(ssl);
  7861. return 0;
  7862. }
  7863. /* Grow the output buffer */
  7864. static WC_INLINE int GrowOutputBuffer(WOLFSSL* ssl, int size)
  7865. {
  7866. byte* tmp;
  7867. #if WOLFSSL_GENERAL_ALIGNMENT > 0
  7868. byte hdrSz = ssl->options.dtls ? DTLS_RECORD_HEADER_SZ :
  7869. RECORD_HEADER_SZ;
  7870. byte align = WOLFSSL_GENERAL_ALIGNMENT;
  7871. #else
  7872. const byte align = WOLFSSL_GENERAL_ALIGNMENT;
  7873. #endif
  7874. #if WOLFSSL_GENERAL_ALIGNMENT > 0
  7875. /* the encrypted data will be offset from the front of the buffer by
  7876. the header, if the user wants encrypted alignment they need
  7877. to define their alignment requirement */
  7878. while (align < hdrSz)
  7879. align *= 2;
  7880. #endif
  7881. tmp = (byte*)XMALLOC(size + ssl->buffers.outputBuffer.length + align,
  7882. ssl->heap, DYNAMIC_TYPE_OUT_BUFFER);
  7883. WOLFSSL_MSG("growing output buffer\n");
  7884. if (tmp == NULL)
  7885. return MEMORY_E;
  7886. #if WOLFSSL_GENERAL_ALIGNMENT > 0
  7887. if (align)
  7888. tmp += align - hdrSz;
  7889. #endif
  7890. #ifdef WOLFSSL_STATIC_MEMORY
  7891. /* can be from IO memory pool which does not need copy if same buffer */
  7892. if (ssl->buffers.outputBuffer.length &&
  7893. tmp == ssl->buffers.outputBuffer.buffer) {
  7894. ssl->buffers.outputBuffer.bufferSize =
  7895. size + ssl->buffers.outputBuffer.length;
  7896. return 0;
  7897. }
  7898. #endif
  7899. if (ssl->buffers.outputBuffer.length)
  7900. XMEMCPY(tmp, ssl->buffers.outputBuffer.buffer,
  7901. ssl->buffers.outputBuffer.length);
  7902. if (ssl->buffers.outputBuffer.dynamicFlag)
  7903. XFREE(ssl->buffers.outputBuffer.buffer -
  7904. ssl->buffers.outputBuffer.offset, ssl->heap,
  7905. DYNAMIC_TYPE_OUT_BUFFER);
  7906. ssl->buffers.outputBuffer.dynamicFlag = 1;
  7907. #if WOLFSSL_GENERAL_ALIGNMENT > 0
  7908. if (align)
  7909. ssl->buffers.outputBuffer.offset = align - hdrSz;
  7910. else
  7911. #endif
  7912. ssl->buffers.outputBuffer.offset = 0;
  7913. ssl->buffers.outputBuffer.buffer = tmp;
  7914. ssl->buffers.outputBuffer.bufferSize = size +
  7915. ssl->buffers.outputBuffer.length;
  7916. return 0;
  7917. }
  7918. /* Grow the input buffer, should only be to read cert or big app data */
  7919. int GrowInputBuffer(WOLFSSL* ssl, int size, int usedLength)
  7920. {
  7921. byte* tmp;
  7922. #if defined(WOLFSSL_DTLS) || WOLFSSL_GENERAL_ALIGNMENT > 0
  7923. byte align = ssl->options.dtls ? WOLFSSL_GENERAL_ALIGNMENT : 0;
  7924. byte hdrSz = DTLS_RECORD_HEADER_SZ;
  7925. #else
  7926. const byte align = WOLFSSL_GENERAL_ALIGNMENT;
  7927. #endif
  7928. #if defined(WOLFSSL_DTLS) || WOLFSSL_GENERAL_ALIGNMENT > 0
  7929. /* the encrypted data will be offset from the front of the buffer by
  7930. the dtls record header, if the user wants encrypted alignment they need
  7931. to define their alignment requirement. in tls we read record header
  7932. to get size of record and put actual data back at front, so don't need */
  7933. if (align) {
  7934. while (align < hdrSz)
  7935. align *= 2;
  7936. }
  7937. #endif
  7938. if (usedLength < 0 || size < 0) {
  7939. WOLFSSL_MSG("GrowInputBuffer() called with negative number");
  7940. return BAD_FUNC_ARG;
  7941. }
  7942. tmp = (byte*)XMALLOC(size + usedLength + align,
  7943. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  7944. WOLFSSL_MSG("growing input buffer\n");
  7945. if (tmp == NULL)
  7946. return MEMORY_E;
  7947. #if defined(WOLFSSL_DTLS) || WOLFSSL_GENERAL_ALIGNMENT > 0
  7948. if (align)
  7949. tmp += align - hdrSz;
  7950. #endif
  7951. #ifdef WOLFSSL_STATIC_MEMORY
  7952. /* can be from IO memory pool which does not need copy if same buffer */
  7953. if (usedLength && tmp == ssl->buffers.inputBuffer.buffer) {
  7954. ssl->buffers.inputBuffer.bufferSize = size + usedLength;
  7955. ssl->buffers.inputBuffer.idx = 0;
  7956. ssl->buffers.inputBuffer.length = usedLength;
  7957. return 0;
  7958. }
  7959. #endif
  7960. if (usedLength)
  7961. XMEMCPY(tmp, ssl->buffers.inputBuffer.buffer +
  7962. ssl->buffers.inputBuffer.idx, usedLength);
  7963. if (ssl->buffers.inputBuffer.dynamicFlag)
  7964. XFREE(ssl->buffers.inputBuffer.buffer - ssl->buffers.inputBuffer.offset,
  7965. ssl->heap,DYNAMIC_TYPE_IN_BUFFER);
  7966. ssl->buffers.inputBuffer.dynamicFlag = 1;
  7967. #if defined(WOLFSSL_DTLS) || WOLFSSL_GENERAL_ALIGNMENT > 0
  7968. if (align)
  7969. ssl->buffers.inputBuffer.offset = align - hdrSz;
  7970. else
  7971. #endif
  7972. ssl->buffers.inputBuffer.offset = 0;
  7973. ssl->buffers.inputBuffer.buffer = tmp;
  7974. ssl->buffers.inputBuffer.bufferSize = size + usedLength;
  7975. ssl->buffers.inputBuffer.idx = 0;
  7976. ssl->buffers.inputBuffer.length = usedLength;
  7977. return 0;
  7978. }
  7979. /* Check available size into output buffer, make room if needed.
  7980. * This function needs to be called before anything gets put
  7981. * into the output buffers since it flushes pending data if it
  7982. * predicts that the msg will exceed MTU. */
  7983. int CheckAvailableSize(WOLFSSL *ssl, int size)
  7984. {
  7985. if (size < 0) {
  7986. WOLFSSL_MSG("CheckAvailableSize() called with negative number");
  7987. return BAD_FUNC_ARG;
  7988. }
  7989. #ifdef WOLFSSL_DTLS
  7990. if (ssl->options.dtls) {
  7991. if (size + ssl->buffers.outputBuffer.length -
  7992. ssl->buffers.outputBuffer.idx >
  7993. #if defined(WOLFSSL_SCTP) || defined(WOLFSSL_DTLS_MTU)
  7994. ssl->dtlsMtuSz
  7995. #else
  7996. ssl->dtls_expected_rx
  7997. #endif
  7998. ) {
  7999. int ret;
  8000. WOLFSSL_MSG("CheckAvailableSize() flushing buffer "
  8001. "to make room for new message");
  8002. if ((ret = SendBuffered(ssl)) != 0) {
  8003. return ret;
  8004. }
  8005. }
  8006. if (size > (int)
  8007. #if defined(WOLFSSL_SCTP) || defined(WOLFSSL_DTLS_MTU)
  8008. ssl->dtlsMtuSz
  8009. #else
  8010. ssl->dtls_expected_rx
  8011. #endif
  8012. ) {
  8013. WOLFSSL_MSG("CheckAvailableSize() called with size greater than MTU.");
  8014. return DTLS_SIZE_ERROR;
  8015. }
  8016. }
  8017. #endif
  8018. if (ssl->buffers.outputBuffer.bufferSize - ssl->buffers.outputBuffer.length
  8019. < (word32)size) {
  8020. if (GrowOutputBuffer(ssl, size) < 0)
  8021. return MEMORY_E;
  8022. }
  8023. return 0;
  8024. }
  8025. /* do all verify and sanity checks on record header */
  8026. static int GetRecordHeader(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  8027. RecordLayerHeader* rh, word16 *size)
  8028. {
  8029. if (!ssl->options.dtls) {
  8030. #ifdef HAVE_FUZZER
  8031. if (ssl->fuzzerCb)
  8032. ssl->fuzzerCb(ssl, input + *inOutIdx, RECORD_HEADER_SZ, FUZZ_HEAD,
  8033. ssl->fuzzerCtx);
  8034. #endif
  8035. XMEMCPY(rh, input + *inOutIdx, RECORD_HEADER_SZ);
  8036. *inOutIdx += RECORD_HEADER_SZ;
  8037. ato16(rh->length, size);
  8038. }
  8039. else {
  8040. #ifdef WOLFSSL_DTLS
  8041. #ifdef HAVE_FUZZER
  8042. if (ssl->fuzzerCb)
  8043. ssl->fuzzerCb(ssl, input + *inOutIdx, DTLS_RECORD_HEADER_SZ,
  8044. FUZZ_HEAD, ssl->fuzzerCtx);
  8045. #endif
  8046. /* type and version in same sport */
  8047. XMEMCPY(rh, input + *inOutIdx, ENUM_LEN + VERSION_SZ);
  8048. *inOutIdx += ENUM_LEN + VERSION_SZ;
  8049. ato16(input + *inOutIdx, &ssl->keys.curEpoch);
  8050. *inOutIdx += OPAQUE16_LEN;
  8051. if (ssl->options.haveMcast) {
  8052. #ifdef WOLFSSL_MULTICAST
  8053. ssl->keys.curPeerId = input[*inOutIdx];
  8054. ssl->keys.curSeq_hi = input[*inOutIdx+1];
  8055. #endif
  8056. }
  8057. else
  8058. ato16(input + *inOutIdx, &ssl->keys.curSeq_hi);
  8059. *inOutIdx += OPAQUE16_LEN;
  8060. ato32(input + *inOutIdx, &ssl->keys.curSeq_lo);
  8061. *inOutIdx += OPAQUE32_LEN; /* advance past rest of seq */
  8062. ato16(input + *inOutIdx, size);
  8063. *inOutIdx += LENGTH_SZ;
  8064. #endif
  8065. }
  8066. #ifdef WOLFSSL_DTLS
  8067. if (IsDtlsNotSctpMode(ssl)) {
  8068. if (!DtlsCheckWindow(ssl) ||
  8069. (rh->type == application_data && ssl->keys.curEpoch == 0) ||
  8070. (rh->type == alert && ssl->options.handShakeDone &&
  8071. ssl->keys.curEpoch == 0 && ssl->keys.dtls_epoch != 0)) {
  8072. WOLFSSL_LEAVE("GetRecordHeader()", SEQUENCE_ERROR);
  8073. return SEQUENCE_ERROR;
  8074. }
  8075. }
  8076. #endif
  8077. /* catch version mismatch */
  8078. #ifndef WOLFSSL_TLS13
  8079. if (rh->pvMajor != ssl->version.major || rh->pvMinor != ssl->version.minor)
  8080. #else
  8081. if (rh->pvMajor != ssl->version.major ||
  8082. (rh->pvMinor != ssl->version.minor &&
  8083. (!IsAtLeastTLSv1_3(ssl->version) || rh->pvMinor != TLSv1_2_MINOR)
  8084. ))
  8085. #endif
  8086. {
  8087. if (ssl->options.side == WOLFSSL_SERVER_END &&
  8088. ssl->options.acceptState < ACCEPT_FIRST_REPLY_DONE)
  8089. WOLFSSL_MSG("Client attempting to connect with different version");
  8090. else if (ssl->options.side == WOLFSSL_CLIENT_END &&
  8091. ssl->options.downgrade &&
  8092. ssl->options.connectState < FIRST_REPLY_DONE)
  8093. WOLFSSL_MSG("Server attempting to accept with different version");
  8094. else if (ssl->options.dtls && rh->type == handshake)
  8095. /* Check the DTLS handshake message RH version later. */
  8096. WOLFSSL_MSG("DTLS handshake, skip RH version number check");
  8097. else {
  8098. WOLFSSL_MSG("SSL version error");
  8099. /* send alert per RFC5246 Appendix E. Backward Compatibility */
  8100. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  8101. #ifdef WOLFSSL_MYSQL_COMPATIBLE
  8102. SendAlert(ssl, alert_fatal, wc_protocol_version);
  8103. #else
  8104. SendAlert(ssl, alert_fatal, protocol_version);
  8105. #endif
  8106. }
  8107. return VERSION_ERROR; /* only use requested version */
  8108. }
  8109. }
  8110. /* record layer length check */
  8111. #ifdef HAVE_MAX_FRAGMENT
  8112. if (*size > (ssl->max_fragment + MAX_COMP_EXTRA + MAX_MSG_EXTRA)) {
  8113. SendAlert(ssl, alert_fatal, record_overflow);
  8114. return LENGTH_ERROR;
  8115. }
  8116. #else
  8117. if (*size > (MAX_RECORD_SIZE + MAX_COMP_EXTRA + MAX_MSG_EXTRA))
  8118. return LENGTH_ERROR;
  8119. #endif
  8120. if (*size == 0 && rh->type != application_data) {
  8121. WOLFSSL_MSG("0 length, non-app data record.");
  8122. return LENGTH_ERROR;
  8123. }
  8124. /* verify record type here as well */
  8125. switch (rh->type) {
  8126. case handshake:
  8127. case change_cipher_spec:
  8128. case application_data:
  8129. case alert:
  8130. break;
  8131. case no_type:
  8132. default:
  8133. WOLFSSL_MSG("Unknown Record Type");
  8134. return UNKNOWN_RECORD_TYPE;
  8135. }
  8136. /* haven't decrypted this record yet */
  8137. ssl->keys.decryptedCur = 0;
  8138. return 0;
  8139. }
  8140. #ifndef WOLFSSL_NO_TLS12
  8141. static int GetHandShakeHeader(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  8142. byte *type, word32 *size, word32 totalSz)
  8143. {
  8144. const byte *ptr = input + *inOutIdx;
  8145. (void)ssl;
  8146. *inOutIdx += HANDSHAKE_HEADER_SZ;
  8147. if (*inOutIdx > totalSz)
  8148. return BUFFER_E;
  8149. *type = ptr[0];
  8150. c24to32(&ptr[1], size);
  8151. return 0;
  8152. }
  8153. #endif
  8154. #ifdef WOLFSSL_DTLS
  8155. static int GetDtlsHandShakeHeader(WOLFSSL* ssl, const byte* input,
  8156. word32* inOutIdx, byte *type, word32 *size,
  8157. word32 *fragOffset, word32 *fragSz,
  8158. word32 totalSz)
  8159. {
  8160. word32 idx = *inOutIdx;
  8161. *inOutIdx += HANDSHAKE_HEADER_SZ + DTLS_HANDSHAKE_EXTRA;
  8162. if (*inOutIdx > totalSz) {
  8163. WOLFSSL_ERROR(BUFFER_E);
  8164. return BUFFER_E;
  8165. }
  8166. *type = input[idx++];
  8167. c24to32(input + idx, size);
  8168. idx += OPAQUE24_LEN;
  8169. ato16(input + idx, &ssl->keys.dtls_peer_handshake_number);
  8170. idx += DTLS_HANDSHAKE_SEQ_SZ;
  8171. c24to32(input + idx, fragOffset);
  8172. idx += DTLS_HANDSHAKE_FRAG_SZ;
  8173. c24to32(input + idx, fragSz);
  8174. if (ssl->curRL.pvMajor != ssl->version.major ||
  8175. ssl->curRL.pvMinor != ssl->version.minor) {
  8176. if (*type != client_hello && *type != hello_verify_request) {
  8177. WOLFSSL_ERROR(VERSION_ERROR);
  8178. return VERSION_ERROR;
  8179. }
  8180. else {
  8181. WOLFSSL_MSG("DTLS Handshake ignoring hello or verify version");
  8182. }
  8183. }
  8184. return 0;
  8185. }
  8186. #endif
  8187. #if !defined(NO_OLD_TLS) || \
  8188. (defined(NO_OLD_TLS) && defined(WOLFSSL_ALLOW_TLS_SHA1))
  8189. /* fill with MD5 pad size since biggest required */
  8190. static const byte PAD1[PAD_MD5] =
  8191. { 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36,
  8192. 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36,
  8193. 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36,
  8194. 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36,
  8195. 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36,
  8196. 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36, 0x36
  8197. };
  8198. static const byte PAD2[PAD_MD5] =
  8199. { 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c,
  8200. 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c,
  8201. 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c,
  8202. 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c,
  8203. 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c,
  8204. 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c, 0x5c
  8205. };
  8206. #endif /* !NO_OLD_TLS || (NO_OLD_TLS && WOLFSSL_ALLOW_TLS_SHA1) */
  8207. #ifndef NO_OLD_TLS
  8208. /* calculate MD5 hash for finished */
  8209. #ifdef WOLFSSL_TI_HASH
  8210. #include <wolfssl/wolfcrypt/hash.h>
  8211. #endif
  8212. static int BuildMD5(WOLFSSL* ssl, Hashes* hashes, const byte* sender)
  8213. {
  8214. int ret;
  8215. byte md5_result[WC_MD5_DIGEST_SIZE];
  8216. #ifdef WOLFSSL_SMALL_STACK
  8217. wc_Md5* md5 = (wc_Md5*)XMALLOC(sizeof(wc_Md5), ssl->heap, DYNAMIC_TYPE_HASHCTX);
  8218. if (md5 == NULL)
  8219. return MEMORY_E;
  8220. #else
  8221. wc_Md5 md5[1];
  8222. #endif
  8223. /* make md5 inner */
  8224. ret = wc_Md5Copy(&ssl->hsHashes->hashMd5, md5);
  8225. if (ret == 0)
  8226. ret = wc_Md5Update(md5, sender, SIZEOF_SENDER);
  8227. if (ret == 0)
  8228. ret = wc_Md5Update(md5, ssl->arrays->masterSecret,SECRET_LEN);
  8229. if (ret == 0)
  8230. ret = wc_Md5Update(md5, PAD1, PAD_MD5);
  8231. if (ret == 0)
  8232. ret = wc_Md5Final(md5, md5_result);
  8233. /* make md5 outer */
  8234. if (ret == 0) {
  8235. ret = wc_InitMd5_ex(md5, ssl->heap, ssl->devId);
  8236. if (ret == 0) {
  8237. ret = wc_Md5Update(md5, ssl->arrays->masterSecret,SECRET_LEN);
  8238. if (ret == 0)
  8239. ret = wc_Md5Update(md5, PAD2, PAD_MD5);
  8240. if (ret == 0)
  8241. ret = wc_Md5Update(md5, md5_result, WC_MD5_DIGEST_SIZE);
  8242. if (ret == 0)
  8243. ret = wc_Md5Final(md5, hashes->md5);
  8244. wc_Md5Free(md5);
  8245. }
  8246. }
  8247. #ifdef WOLFSSL_SMALL_STACK
  8248. XFREE(md5, ssl->heap, DYNAMIC_TYPE_HASHCTX);
  8249. #endif
  8250. return ret;
  8251. }
  8252. /* calculate SHA hash for finished */
  8253. static int BuildSHA(WOLFSSL* ssl, Hashes* hashes, const byte* sender)
  8254. {
  8255. int ret;
  8256. byte sha_result[WC_SHA_DIGEST_SIZE];
  8257. #ifdef WOLFSSL_SMALL_STACK
  8258. wc_Sha* sha = (wc_Sha*)XMALLOC(sizeof(wc_Sha), ssl->heap, DYNAMIC_TYPE_HASHCTX);
  8259. if (sha == NULL)
  8260. return MEMORY_E;
  8261. #else
  8262. wc_Sha sha[1];
  8263. #endif
  8264. /* make sha inner */
  8265. ret = wc_ShaCopy(&ssl->hsHashes->hashSha, sha); /* Save current position */
  8266. if (ret == 0)
  8267. ret = wc_ShaUpdate(sha, sender, SIZEOF_SENDER);
  8268. if (ret == 0)
  8269. ret = wc_ShaUpdate(sha, ssl->arrays->masterSecret,SECRET_LEN);
  8270. if (ret == 0)
  8271. ret = wc_ShaUpdate(sha, PAD1, PAD_SHA);
  8272. if (ret == 0)
  8273. ret = wc_ShaFinal(sha, sha_result);
  8274. /* make sha outer */
  8275. if (ret == 0) {
  8276. ret = wc_InitSha_ex(sha, ssl->heap, ssl->devId);
  8277. if (ret == 0) {
  8278. ret = wc_ShaUpdate(sha, ssl->arrays->masterSecret,SECRET_LEN);
  8279. if (ret == 0)
  8280. ret = wc_ShaUpdate(sha, PAD2, PAD_SHA);
  8281. if (ret == 0)
  8282. ret = wc_ShaUpdate(sha, sha_result, WC_SHA_DIGEST_SIZE);
  8283. if (ret == 0)
  8284. ret = wc_ShaFinal(sha, hashes->sha);
  8285. wc_ShaFree(sha);
  8286. }
  8287. }
  8288. #ifdef WOLFSSL_SMALL_STACK
  8289. XFREE(sha, ssl->heap, DYNAMIC_TYPE_HASHCTX);
  8290. #endif
  8291. return ret;
  8292. }
  8293. #endif
  8294. #ifndef WOLFSSL_NO_TLS12
  8295. /* Finished doesn't support SHA512, not SHA512 cipher suites yet */
  8296. static int BuildFinished(WOLFSSL* ssl, Hashes* hashes, const byte* sender)
  8297. {
  8298. int ret = 0;
  8299. if (ssl == NULL)
  8300. return BAD_FUNC_ARG;
  8301. #ifndef NO_TLS
  8302. if (ssl->options.tls) {
  8303. ret = BuildTlsFinished(ssl, hashes, sender);
  8304. }
  8305. #endif
  8306. #ifndef NO_OLD_TLS
  8307. if (!ssl->options.tls) {
  8308. ret = BuildMD5(ssl, hashes, sender);
  8309. if (ret == 0) {
  8310. ret = BuildSHA(ssl, hashes, sender);
  8311. }
  8312. }
  8313. #endif
  8314. return ret;
  8315. }
  8316. #endif /* WOLFSSL_NO_TLS12 */
  8317. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_WOLFSSL_CLIENT)
  8318. /* cipher requirements */
  8319. enum {
  8320. REQUIRES_RSA,
  8321. REQUIRES_DHE,
  8322. REQUIRES_ECC,
  8323. REQUIRES_ECC_STATIC,
  8324. REQUIRES_PSK,
  8325. REQUIRES_RSA_SIG,
  8326. REQUIRES_AEAD
  8327. };
  8328. /* Does this cipher suite (first, second) have the requirement
  8329. an ephemeral key exchange will still require the key for signing
  8330. the key exchange so ECHDE_RSA requires an rsa key thus rsa_kea */
  8331. static int CipherRequires(byte first, byte second, int requirement)
  8332. {
  8333. (void)requirement;
  8334. #ifndef WOLFSSL_NO_TLS12
  8335. #ifdef HAVE_CHACHA
  8336. if (first == CHACHA_BYTE) {
  8337. switch (second) {
  8338. case TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256 :
  8339. if (requirement == REQUIRES_RSA)
  8340. return 1;
  8341. break;
  8342. case TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256 :
  8343. if (requirement == REQUIRES_ECC)
  8344. return 1;
  8345. break;
  8346. case TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256 :
  8347. if (requirement == REQUIRES_RSA)
  8348. return 1;
  8349. if (requirement == REQUIRES_DHE)
  8350. return 1;
  8351. break;
  8352. case TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256 :
  8353. if (requirement == REQUIRES_RSA)
  8354. return 1;
  8355. break;
  8356. case TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256 :
  8357. if (requirement == REQUIRES_ECC)
  8358. return 1;
  8359. break;
  8360. case TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256 :
  8361. if (requirement == REQUIRES_RSA)
  8362. return 1;
  8363. if (requirement == REQUIRES_DHE)
  8364. return 1;
  8365. break;
  8366. case TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256 :
  8367. if (requirement == REQUIRES_PSK)
  8368. return 1;
  8369. break;
  8370. case TLS_PSK_WITH_CHACHA20_POLY1305_SHA256 :
  8371. if (requirement == REQUIRES_PSK)
  8372. return 1;
  8373. break;
  8374. case TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256 :
  8375. if (requirement == REQUIRES_PSK)
  8376. return 1;
  8377. if (requirement == REQUIRES_DHE)
  8378. return 1;
  8379. break;
  8380. }
  8381. if (requirement == REQUIRES_AEAD)
  8382. return 1;
  8383. }
  8384. #endif /* HAVE_CHACHA */
  8385. /* ECC extensions */
  8386. if (first == ECC_BYTE) {
  8387. switch (second) {
  8388. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  8389. #ifndef NO_RSA
  8390. case TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA :
  8391. if (requirement == REQUIRES_RSA)
  8392. return 1;
  8393. break;
  8394. case TLS_ECDH_RSA_WITH_AES_128_CBC_SHA :
  8395. if (requirement == REQUIRES_ECC_STATIC)
  8396. return 1;
  8397. if (requirement == REQUIRES_RSA_SIG)
  8398. return 1;
  8399. break;
  8400. #ifndef NO_DES3
  8401. case TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA :
  8402. if (requirement == REQUIRES_RSA)
  8403. return 1;
  8404. break;
  8405. case TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA :
  8406. if (requirement == REQUIRES_ECC_STATIC)
  8407. return 1;
  8408. if (requirement == REQUIRES_RSA_SIG)
  8409. return 1;
  8410. break;
  8411. #endif /* !NO_DES3 */
  8412. #ifndef NO_RC4
  8413. case TLS_ECDHE_RSA_WITH_RC4_128_SHA :
  8414. if (requirement == REQUIRES_RSA)
  8415. return 1;
  8416. break;
  8417. case TLS_ECDH_RSA_WITH_RC4_128_SHA :
  8418. if (requirement == REQUIRES_ECC_STATIC)
  8419. return 1;
  8420. if (requirement == REQUIRES_RSA_SIG)
  8421. return 1;
  8422. break;
  8423. #endif /* !NO_RC4 */
  8424. #endif /* NO_RSA */
  8425. #ifndef NO_DES3
  8426. case TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA :
  8427. if (requirement == REQUIRES_ECC)
  8428. return 1;
  8429. break;
  8430. case TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA :
  8431. if (requirement == REQUIRES_ECC_STATIC)
  8432. return 1;
  8433. break;
  8434. #endif /* !NO_DES3 */
  8435. #ifndef NO_RC4
  8436. case TLS_ECDHE_ECDSA_WITH_RC4_128_SHA :
  8437. if (requirement == REQUIRES_ECC)
  8438. return 1;
  8439. break;
  8440. case TLS_ECDH_ECDSA_WITH_RC4_128_SHA :
  8441. if (requirement == REQUIRES_ECC_STATIC)
  8442. return 1;
  8443. break;
  8444. #endif /* !NO_RC4 */
  8445. #ifndef NO_RSA
  8446. case TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA :
  8447. if (requirement == REQUIRES_RSA)
  8448. return 1;
  8449. break;
  8450. case TLS_ECDH_RSA_WITH_AES_256_CBC_SHA :
  8451. if (requirement == REQUIRES_ECC_STATIC)
  8452. return 1;
  8453. if (requirement == REQUIRES_RSA_SIG)
  8454. return 1;
  8455. break;
  8456. #endif /* !NO_RSA */
  8457. case TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA :
  8458. if (requirement == REQUIRES_ECC)
  8459. return 1;
  8460. break;
  8461. case TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA :
  8462. if (requirement == REQUIRES_ECC_STATIC)
  8463. return 1;
  8464. break;
  8465. case TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA :
  8466. if (requirement == REQUIRES_ECC)
  8467. return 1;
  8468. break;
  8469. case TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA :
  8470. if (requirement == REQUIRES_ECC_STATIC)
  8471. return 1;
  8472. break;
  8473. case TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256 :
  8474. if (requirement == REQUIRES_ECC)
  8475. return 1;
  8476. if (requirement == REQUIRES_AEAD)
  8477. return 1;
  8478. break;
  8479. case TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384 :
  8480. if (requirement == REQUIRES_ECC)
  8481. return 1;
  8482. if (requirement == REQUIRES_AEAD)
  8483. return 1;
  8484. break;
  8485. case TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256 :
  8486. if (requirement == REQUIRES_ECC_STATIC)
  8487. return 1;
  8488. if (requirement == REQUIRES_AEAD)
  8489. return 1;
  8490. break;
  8491. case TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384 :
  8492. if (requirement == REQUIRES_ECC_STATIC)
  8493. return 1;
  8494. if (requirement == REQUIRES_AEAD)
  8495. return 1;
  8496. break;
  8497. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  8498. #ifndef NO_RSA
  8499. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  8500. case TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256 :
  8501. if (requirement == REQUIRES_RSA)
  8502. return 1;
  8503. if (requirement == REQUIRES_AEAD)
  8504. return 1;
  8505. break;
  8506. case TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384 :
  8507. if (requirement == REQUIRES_RSA)
  8508. return 1;
  8509. if (requirement == REQUIRES_AEAD)
  8510. return 1;
  8511. break;
  8512. case TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256 :
  8513. if (requirement == REQUIRES_ECC_STATIC)
  8514. return 1;
  8515. if (requirement == REQUIRES_RSA_SIG)
  8516. return 1;
  8517. if (requirement == REQUIRES_AEAD)
  8518. return 1;
  8519. break;
  8520. case TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384 :
  8521. if (requirement == REQUIRES_ECC_STATIC)
  8522. return 1;
  8523. if (requirement == REQUIRES_RSA_SIG)
  8524. return 1;
  8525. if (requirement == REQUIRES_AEAD)
  8526. return 1;
  8527. break;
  8528. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  8529. #ifdef HAVE_AESCCM
  8530. case TLS_RSA_WITH_AES_128_CCM_8 :
  8531. case TLS_RSA_WITH_AES_256_CCM_8 :
  8532. if (requirement == REQUIRES_RSA)
  8533. return 1;
  8534. if (requirement == REQUIRES_RSA_SIG)
  8535. return 1;
  8536. if (requirement == REQUIRES_AEAD)
  8537. return 1;
  8538. break;
  8539. #endif /* HAVE_AESCCM */
  8540. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  8541. case TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256 :
  8542. case TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384 :
  8543. if (requirement == REQUIRES_RSA)
  8544. return 1;
  8545. break;
  8546. case TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256 :
  8547. case TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384 :
  8548. if (requirement == REQUIRES_RSA_SIG)
  8549. return 1;
  8550. if (requirement == REQUIRES_ECC_STATIC)
  8551. return 1;
  8552. break;
  8553. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  8554. #endif /* !NO_RSA */
  8555. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  8556. case TLS_ECDHE_ECDSA_WITH_AES_128_CCM :
  8557. case TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8 :
  8558. case TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8 :
  8559. if (requirement == REQUIRES_ECC)
  8560. return 1;
  8561. if (requirement == REQUIRES_AEAD)
  8562. return 1;
  8563. break;
  8564. case TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384 :
  8565. case TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256 :
  8566. if (requirement == REQUIRES_ECC)
  8567. return 1;
  8568. break;
  8569. case TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256 :
  8570. case TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384 :
  8571. if (requirement == REQUIRES_ECC)
  8572. return 1;
  8573. if (requirement == REQUIRES_ECC_STATIC)
  8574. return 1;
  8575. break;
  8576. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  8577. #ifndef NO_PSK
  8578. case TLS_PSK_WITH_AES_128_CCM:
  8579. case TLS_PSK_WITH_AES_256_CCM:
  8580. case TLS_PSK_WITH_AES_128_CCM_8:
  8581. case TLS_PSK_WITH_AES_256_CCM_8:
  8582. if (requirement == REQUIRES_PSK)
  8583. return 1;
  8584. if (requirement == REQUIRES_AEAD)
  8585. return 1;
  8586. break;
  8587. case TLS_DHE_PSK_WITH_AES_128_CCM:
  8588. case TLS_DHE_PSK_WITH_AES_256_CCM:
  8589. if (requirement == REQUIRES_PSK)
  8590. return 1;
  8591. if (requirement == REQUIRES_DHE)
  8592. return 1;
  8593. if (requirement == REQUIRES_AEAD)
  8594. return 1;
  8595. break;
  8596. #endif /* !NO_PSK */
  8597. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  8598. case TLS_ECDHE_ECDSA_WITH_NULL_SHA :
  8599. if (requirement == REQUIRES_ECC)
  8600. return 1;
  8601. break;
  8602. case TLS_ECDHE_PSK_WITH_NULL_SHA256 :
  8603. if (requirement == REQUIRES_PSK)
  8604. return 1;
  8605. break;
  8606. case TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256 :
  8607. if (requirement == REQUIRES_PSK)
  8608. return 1;
  8609. break;
  8610. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  8611. #if defined(WOLFSSL_TLS13) && defined(HAVE_NULL_CIPHER)
  8612. case TLS_SHA256_SHA256:
  8613. break;
  8614. case TLS_SHA384_SHA384:
  8615. break;
  8616. #endif
  8617. default:
  8618. WOLFSSL_MSG("Unsupported cipher suite, CipherRequires ECC");
  8619. return 0;
  8620. } /* switch */
  8621. } /* if */
  8622. #endif /* !WOLFSSL_NO_TLS12 */
  8623. /* Distinct TLS v1.3 cipher suites with cipher and digest only. */
  8624. if (first == TLS13_BYTE) {
  8625. switch (second) {
  8626. #ifdef WOLFSSL_TLS13
  8627. case TLS_AES_128_GCM_SHA256:
  8628. case TLS_AES_256_GCM_SHA384:
  8629. case TLS_CHACHA20_POLY1305_SHA256:
  8630. case TLS_AES_128_CCM_SHA256:
  8631. case TLS_AES_128_CCM_8_SHA256:
  8632. break;
  8633. #endif
  8634. default:
  8635. WOLFSSL_MSG("Unsupported cipher suite, CipherRequires "
  8636. "TLS v1.3");
  8637. return 0;
  8638. }
  8639. }
  8640. #ifndef WOLFSSL_NO_TLS12
  8641. if (first != ECC_BYTE && first != CHACHA_BYTE &&
  8642. first != TLS13_BYTE) { /* normal suites */
  8643. switch (second) {
  8644. #ifndef NO_RSA
  8645. #ifndef NO_RC4
  8646. case SSL_RSA_WITH_RC4_128_SHA :
  8647. if (requirement == REQUIRES_RSA)
  8648. return 1;
  8649. break;
  8650. case SSL_RSA_WITH_RC4_128_MD5 :
  8651. if (requirement == REQUIRES_RSA)
  8652. return 1;
  8653. break;
  8654. #endif /* NO_RC4 */
  8655. case SSL_RSA_WITH_3DES_EDE_CBC_SHA :
  8656. if (requirement == REQUIRES_RSA)
  8657. return 1;
  8658. break;
  8659. case TLS_RSA_WITH_AES_128_CBC_SHA :
  8660. if (requirement == REQUIRES_RSA)
  8661. return 1;
  8662. break;
  8663. case TLS_RSA_WITH_AES_128_CBC_SHA256 :
  8664. if (requirement == REQUIRES_RSA)
  8665. return 1;
  8666. break;
  8667. case TLS_RSA_WITH_AES_256_CBC_SHA :
  8668. if (requirement == REQUIRES_RSA)
  8669. return 1;
  8670. break;
  8671. case TLS_RSA_WITH_AES_256_CBC_SHA256 :
  8672. if (requirement == REQUIRES_RSA)
  8673. return 1;
  8674. break;
  8675. case TLS_RSA_WITH_NULL_MD5 :
  8676. case TLS_RSA_WITH_NULL_SHA :
  8677. case TLS_RSA_WITH_NULL_SHA256 :
  8678. if (requirement == REQUIRES_RSA)
  8679. return 1;
  8680. break;
  8681. #ifdef HAVE_IDEA
  8682. case SSL_RSA_WITH_IDEA_CBC_SHA :
  8683. if (requirement == REQUIRES_RSA)
  8684. return 1;
  8685. break;
  8686. #endif /* HAVE_IDEA */
  8687. #endif /* !NO_RSA */
  8688. #ifndef NO_PSK
  8689. case TLS_PSK_WITH_AES_128_GCM_SHA256 :
  8690. if (requirement == REQUIRES_PSK)
  8691. return 1;
  8692. if (requirement == REQUIRES_AEAD)
  8693. return 1;
  8694. break;
  8695. case TLS_PSK_WITH_AES_256_GCM_SHA384 :
  8696. if (requirement == REQUIRES_PSK)
  8697. return 1;
  8698. if (requirement == REQUIRES_AEAD)
  8699. return 1;
  8700. break;
  8701. case TLS_PSK_WITH_AES_128_CBC_SHA256 :
  8702. case TLS_PSK_WITH_AES_256_CBC_SHA384 :
  8703. case TLS_PSK_WITH_AES_128_CBC_SHA :
  8704. case TLS_PSK_WITH_AES_256_CBC_SHA :
  8705. case TLS_PSK_WITH_NULL_SHA384 :
  8706. case TLS_PSK_WITH_NULL_SHA256 :
  8707. case TLS_PSK_WITH_NULL_SHA :
  8708. if (requirement == REQUIRES_PSK)
  8709. return 1;
  8710. break;
  8711. case TLS_DHE_PSK_WITH_AES_128_GCM_SHA256 :
  8712. case TLS_DHE_PSK_WITH_AES_256_GCM_SHA384 :
  8713. if (requirement == REQUIRES_DHE)
  8714. return 1;
  8715. if (requirement == REQUIRES_PSK)
  8716. return 1;
  8717. if (requirement == REQUIRES_AEAD)
  8718. return 1;
  8719. break;
  8720. case TLS_DHE_PSK_WITH_AES_128_CBC_SHA256 :
  8721. case TLS_DHE_PSK_WITH_AES_256_CBC_SHA384 :
  8722. case TLS_DHE_PSK_WITH_NULL_SHA384 :
  8723. case TLS_DHE_PSK_WITH_NULL_SHA256 :
  8724. if (requirement == REQUIRES_DHE)
  8725. return 1;
  8726. if (requirement == REQUIRES_PSK)
  8727. return 1;
  8728. break;
  8729. #endif /* NO_PSK */
  8730. #ifndef NO_RSA
  8731. case TLS_DHE_RSA_WITH_AES_128_CBC_SHA256 :
  8732. if (requirement == REQUIRES_RSA)
  8733. return 1;
  8734. if (requirement == REQUIRES_DHE)
  8735. return 1;
  8736. break;
  8737. case TLS_DHE_RSA_WITH_AES_256_CBC_SHA256 :
  8738. if (requirement == REQUIRES_RSA)
  8739. return 1;
  8740. if (requirement == REQUIRES_DHE)
  8741. return 1;
  8742. break;
  8743. case TLS_DHE_RSA_WITH_AES_128_CBC_SHA :
  8744. if (requirement == REQUIRES_RSA)
  8745. return 1;
  8746. if (requirement == REQUIRES_DHE)
  8747. return 1;
  8748. break;
  8749. case TLS_DHE_RSA_WITH_AES_256_CBC_SHA :
  8750. if (requirement == REQUIRES_RSA)
  8751. return 1;
  8752. if (requirement == REQUIRES_DHE)
  8753. return 1;
  8754. break;
  8755. #ifndef NO_HC128
  8756. case TLS_RSA_WITH_HC_128_MD5 :
  8757. if (requirement == REQUIRES_RSA)
  8758. return 1;
  8759. break;
  8760. case TLS_RSA_WITH_HC_128_SHA :
  8761. if (requirement == REQUIRES_RSA)
  8762. return 1;
  8763. break;
  8764. #endif /* NO_HC128 */
  8765. #ifndef NO_RABBIT
  8766. case TLS_RSA_WITH_RABBIT_SHA :
  8767. if (requirement == REQUIRES_RSA)
  8768. return 1;
  8769. break;
  8770. #endif /* !NO_RABBIT */
  8771. case TLS_RSA_WITH_AES_128_GCM_SHA256 :
  8772. case TLS_RSA_WITH_AES_256_GCM_SHA384 :
  8773. if (requirement == REQUIRES_RSA)
  8774. return 1;
  8775. if (requirement == REQUIRES_AEAD)
  8776. return 1;
  8777. break;
  8778. case TLS_DHE_RSA_WITH_AES_128_GCM_SHA256 :
  8779. case TLS_DHE_RSA_WITH_AES_256_GCM_SHA384 :
  8780. if (requirement == REQUIRES_RSA)
  8781. return 1;
  8782. if (requirement == REQUIRES_DHE)
  8783. return 1;
  8784. if (requirement == REQUIRES_AEAD)
  8785. return 1;
  8786. break;
  8787. #ifdef HAVE_CAMELLIA
  8788. case TLS_RSA_WITH_CAMELLIA_128_CBC_SHA :
  8789. case TLS_RSA_WITH_CAMELLIA_256_CBC_SHA :
  8790. case TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256 :
  8791. case TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256 :
  8792. if (requirement == REQUIRES_RSA)
  8793. return 1;
  8794. break;
  8795. case TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA :
  8796. case TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA :
  8797. case TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256 :
  8798. case TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256 :
  8799. if (requirement == REQUIRES_RSA)
  8800. return 1;
  8801. if (requirement == REQUIRES_RSA_SIG)
  8802. return 1;
  8803. if (requirement == REQUIRES_DHE)
  8804. return 1;
  8805. break;
  8806. #endif /* HAVE_CAMELLIA */
  8807. case TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA:
  8808. if (requirement == REQUIRES_RSA)
  8809. return 1;
  8810. if (requirement == REQUIRES_RSA_SIG)
  8811. return 1;
  8812. if (requirement == REQUIRES_DHE)
  8813. return 1;
  8814. break;
  8815. #endif
  8816. #ifdef HAVE_ANON
  8817. case TLS_DH_anon_WITH_AES_128_CBC_SHA :
  8818. if (requirement == REQUIRES_DHE)
  8819. return 1;
  8820. break;
  8821. case TLS_DH_anon_WITH_AES_256_GCM_SHA384:
  8822. if (requirement == REQUIRES_DHE)
  8823. return 1;
  8824. if (requirement == REQUIRES_AEAD)
  8825. return 1;
  8826. break;
  8827. #endif
  8828. #ifdef WOLFSSL_MULTICAST
  8829. case WDM_WITH_NULL_SHA256 :
  8830. break;
  8831. #endif
  8832. default:
  8833. WOLFSSL_MSG("Unsupported cipher suite, CipherRequires");
  8834. return 0;
  8835. } /* switch */
  8836. } /* if ECC / Normal suites else */
  8837. #endif /* !WOLFSSL_NO_TLS12 */
  8838. return 0;
  8839. }
  8840. #endif /* !NO_WOLFSSL_SERVER && !NO_WOLFSSL_CLIENT */
  8841. #ifndef NO_CERTS
  8842. /* Match names with wildcards, each wildcard can represent a single name
  8843. component or fragment but not multiple names, i.e.,
  8844. *.z.com matches y.z.com but not x.y.z.com
  8845. return 1 on success */
  8846. int MatchDomainName(const char* pattern, int len, const char* str)
  8847. {
  8848. int ret = 0;
  8849. char p, s;
  8850. if (pattern == NULL || str == NULL || len <= 0)
  8851. return 0;
  8852. while (len > 0) {
  8853. p = (char)XTOLOWER((unsigned char)*pattern++);
  8854. if (p == '\0')
  8855. break;
  8856. if (p == '*') {
  8857. while (--len > 0 &&
  8858. (p = (char)XTOLOWER((unsigned char)*pattern++)) == '*') {
  8859. }
  8860. if (len == 0)
  8861. p = '\0';
  8862. while ( (s = (char)XTOLOWER((unsigned char) *str)) != '\0') {
  8863. if (s == p)
  8864. break;
  8865. if (s == '.')
  8866. return 0;
  8867. str++;
  8868. }
  8869. }
  8870. else {
  8871. if (p != (char)XTOLOWER((unsigned char) *str))
  8872. return 0;
  8873. }
  8874. if (len > 0) {
  8875. str++;
  8876. len--;
  8877. }
  8878. }
  8879. if (*str == '\0' && len == 0) {
  8880. ret = 1; /* success */
  8881. }
  8882. return ret;
  8883. }
  8884. /* Check that alternative names, if they exists, match the domain.
  8885. * Fail if there are wild patterns and they didn't match.
  8886. * Check the common name if no alternative names matched.
  8887. *
  8888. * dCert Decoded cert to get the alternative names from.
  8889. * domain Domain name to compare against.
  8890. * checkCN Whether to check the common name.
  8891. * returns 1 : match was found.
  8892. * 0 : no match found.
  8893. * -1 : No matches and wild pattern match failed.
  8894. */
  8895. int CheckForAltNames(DecodedCert* dCert, const char* domain, int* checkCN)
  8896. {
  8897. int match = 0;
  8898. DNS_entry* altName = NULL;
  8899. char *buf;
  8900. word32 len;
  8901. WOLFSSL_MSG("Checking AltNames");
  8902. if (dCert)
  8903. altName = dCert->altNames;
  8904. if (checkCN != NULL) {
  8905. *checkCN = (altName == NULL) ? 1 : 0;
  8906. }
  8907. while (altName) {
  8908. #if defined(OPENSSL_ALL) || defined(WOLFSSL_IP_ALT_NAME)
  8909. char name[WOLFSSL_MAX_IPSTR] = {0};
  8910. #endif
  8911. WOLFSSL_MSG("\tindividual AltName check");
  8912. #if defined(OPENSSL_ALL) || defined(WOLFSSL_IP_ALT_NAME)
  8913. /* check if alt name is stored as IP addr octet */
  8914. if (altName->type == ASN_IP_TYPE) {
  8915. const unsigned char *ip = (const unsigned char*)altName->name;
  8916. if (altName->len == WOLFSSL_IP4_ADDR_LEN) {
  8917. XSNPRINTF(name, sizeof(name), "%u.%u.%u.%u", ip[0], ip[1], ip[2], ip[3]);
  8918. }
  8919. else if (altName->len == WOLFSSL_IP6_ADDR_LEN) {
  8920. int i;
  8921. for (i = 0; i < 8; i++) {
  8922. XSNPRINTF(name + i * 5, sizeof(name) - i * 5, "%02X%02X%s",
  8923. ip[2 * i], ip[2 * i + 1], (i < 7) ? ":" : "");
  8924. }
  8925. }
  8926. else {
  8927. WOLFSSL_MSG("\tnot an IPv4 or IPv6 address");
  8928. altName = altName->next;
  8929. continue;
  8930. }
  8931. buf = name;
  8932. len = (word32)XSTRLEN(name);
  8933. }
  8934. else
  8935. #endif /* OPENSSL_ALL || WOLFSSL_IP_ALT_NAME */
  8936. {
  8937. buf = altName->name;
  8938. len = altName->len;
  8939. }
  8940. if (MatchDomainName(buf, len, domain)) {
  8941. match = 1;
  8942. if (checkCN != NULL) {
  8943. *checkCN = 0;
  8944. }
  8945. WOLFSSL_MSG("\tmatch found");
  8946. break;
  8947. }
  8948. /* No matches and wild pattern match failed. */
  8949. else if (buf && (len >=1) && (buf[0] == '*')) {
  8950. match = -1;
  8951. WOLFSSL_MSG("\twildcard match failed");
  8952. }
  8953. altName = altName->next;
  8954. }
  8955. return match;
  8956. }
  8957. /* Check the domain name matches the subject alternative name or the subject
  8958. * name.
  8959. *
  8960. * dcert Decoded certificate.
  8961. * domainName The domain name.
  8962. * domainNameLen The length of the domain name.
  8963. * returns DOMAIN_NAME_MISMATCH when no match found and 0 on success.
  8964. */
  8965. int CheckHostName(DecodedCert* dCert, const char *domainName, size_t domainNameLen)
  8966. {
  8967. int checkCN;
  8968. int ret = DOMAIN_NAME_MISMATCH;
  8969. /* Assume name is NUL terminated. */
  8970. (void)domainNameLen;
  8971. if (CheckForAltNames(dCert, domainName, &checkCN) != 1) {
  8972. WOLFSSL_MSG("DomainName match on alt names failed");
  8973. }
  8974. else {
  8975. ret = 0;
  8976. }
  8977. if (checkCN == 1) {
  8978. if (MatchDomainName(dCert->subjectCN, dCert->subjectCNLen,
  8979. domainName) == 1) {
  8980. ret = 0;
  8981. }
  8982. else {
  8983. WOLFSSL_MSG("DomainName match on common name failed");
  8984. }
  8985. }
  8986. return ret;
  8987. }
  8988. int CheckIPAddr(DecodedCert* dCert, const char* ipasc)
  8989. {
  8990. WOLFSSL_MSG("Checking IPAddr");
  8991. return CheckHostName(dCert, ipasc, (size_t)XSTRLEN(ipasc));
  8992. }
  8993. #ifdef SESSION_CERTS
  8994. static void AddSessionCertToChain(WOLFSSL_X509_CHAIN* chain,
  8995. byte* certBuf, word32 certSz)
  8996. {
  8997. if (chain->count < MAX_CHAIN_DEPTH &&
  8998. certSz < MAX_X509_SIZE) {
  8999. chain->certs[chain->count].length = certSz;
  9000. XMEMCPY(chain->certs[chain->count].buffer, certBuf, certSz);
  9001. chain->count++;
  9002. }
  9003. else {
  9004. WOLFSSL_MSG("Couldn't store chain cert for session");
  9005. }
  9006. }
  9007. #endif
  9008. #if defined(KEEP_PEER_CERT) || defined(SESSION_CERTS) || \
  9009. defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9010. static void CopyDecodedName(WOLFSSL_X509_NAME* name, DecodedCert* dCert, int nameType)
  9011. {
  9012. if (nameType == SUBJECT) {
  9013. XSTRNCPY(name->name, dCert->subject, ASN_NAME_MAX);
  9014. name->name[ASN_NAME_MAX - 1] = '\0';
  9015. name->sz = (int)XSTRLEN(name->name) + 1;
  9016. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  9017. name->rawLen = min(dCert->subjectRawLen, ASN_NAME_MAX);
  9018. XMEMCPY(name->raw, dCert->subjectRaw, name->rawLen);
  9019. #endif
  9020. }
  9021. else {
  9022. XSTRNCPY(name->name, dCert->issuer, ASN_NAME_MAX);
  9023. name->name[ASN_NAME_MAX - 1] = '\0';
  9024. name->sz = (int)XSTRLEN(name->name) + 1;
  9025. #if (defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)) \
  9026. && (defined(HAVE_PKCS7) || defined(WOLFSSL_CERT_EXT))
  9027. name->rawLen = min(dCert->issuerRawLen, ASN_NAME_MAX);
  9028. if (name->rawLen) {
  9029. XMEMCPY(name->raw, dCert->issuerRaw, name->rawLen);
  9030. }
  9031. #endif
  9032. }
  9033. }
  9034. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) && \
  9035. !defined(IGNORE_NAME_CONSTRAINTS)
  9036. /* copies over additional alt names such as dirName
  9037. * returns 0 on success
  9038. */
  9039. static int CopyAdditionalAltNames(DNS_entry** to, DNS_entry* from, int type,
  9040. void* heap)
  9041. {
  9042. DNS_entry* cur = from;
  9043. if (to == NULL) {
  9044. return BAD_FUNC_ARG;
  9045. }
  9046. while (cur != NULL) {
  9047. if (cur->type == type) {
  9048. DNS_entry* dnsEntry;
  9049. int strLen = cur->len;
  9050. dnsEntry = AltNameNew(heap);
  9051. if (dnsEntry == NULL) {
  9052. WOLFSSL_MSG("\tOut of Memory");
  9053. return MEMORY_E;
  9054. }
  9055. dnsEntry->type = type;
  9056. dnsEntry->name = (char*)XMALLOC(strLen + 1, heap,
  9057. DYNAMIC_TYPE_ALTNAME);
  9058. if (dnsEntry->name == NULL) {
  9059. WOLFSSL_MSG("\tOut of Memory");
  9060. XFREE(dnsEntry, heap, DYNAMIC_TYPE_ALTNAME);
  9061. return MEMORY_E;
  9062. }
  9063. dnsEntry->len = strLen;
  9064. XMEMCPY(dnsEntry->name, cur->name, strLen);
  9065. dnsEntry->name[strLen] = '\0';
  9066. dnsEntry->next = *to;
  9067. *to = dnsEntry;
  9068. }
  9069. cur = cur->next;
  9070. }
  9071. return 0;
  9072. }
  9073. #endif /* OPENSSL_EXTRA */
  9074. /* Copy parts X509 needs from Decoded cert, 0 on success */
  9075. /* The same DecodedCert cannot be copied to WOLFSSL_X509 twice otherwise the
  9076. * altNames pointers could be free'd by second x509 still active by first */
  9077. int CopyDecodedToX509(WOLFSSL_X509* x509, DecodedCert* dCert)
  9078. {
  9079. int ret = 0;
  9080. if (x509 == NULL || dCert == NULL ||
  9081. dCert->subjectCNLen < 0)
  9082. return BAD_FUNC_ARG;
  9083. if (x509->issuer.name == NULL || x509->subject.name == NULL) {
  9084. WOLFSSL_MSG("Either init was not called on X509 or programming error");
  9085. return BAD_FUNC_ARG;
  9086. }
  9087. x509->version = dCert->version + 1;
  9088. CopyDecodedName(&x509->issuer, dCert, ISSUER);
  9089. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9090. if (dCert->issuerName != NULL) {
  9091. wolfSSL_X509_set_issuer_name(x509,
  9092. (WOLFSSL_X509_NAME*)dCert->issuerName);
  9093. x509->issuer.x509 = x509;
  9094. }
  9095. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  9096. CopyDecodedName(&x509->subject, dCert, SUBJECT);
  9097. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9098. if (dCert->subjectName != NULL) {
  9099. wolfSSL_X509_set_subject_name(x509,
  9100. (WOLFSSL_X509_NAME*)dCert->subjectName);
  9101. x509->subject.x509 = x509;
  9102. }
  9103. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  9104. XMEMCPY(x509->serial, dCert->serial, EXTERNAL_SERIAL_SIZE);
  9105. x509->serialSz = dCert->serialSz;
  9106. if (dCert->subjectCN && dCert->subjectCNLen < ASN_NAME_MAX) {
  9107. XMEMCPY(x509->subjectCN, dCert->subjectCN, dCert->subjectCNLen);
  9108. x509->subjectCN[dCert->subjectCNLen] = '\0';
  9109. }
  9110. else
  9111. x509->subjectCN[0] = '\0';
  9112. #ifdef WOLFSSL_CERT_REQ
  9113. x509->isCSR = dCert->isCSR;
  9114. /* CSR attributes */
  9115. if (dCert->cPwd) {
  9116. if (dCert->cPwdLen < CTC_NAME_SIZE) {
  9117. XMEMCPY(x509->challengePw, dCert->cPwd, dCert->cPwdLen);
  9118. x509->challengePw[dCert->cPwdLen] = '\0';
  9119. #ifdef OPENSSL_ALL
  9120. if (x509->challengePwAttr) {
  9121. wolfSSL_X509_ATTRIBUTE_free(x509->challengePwAttr);
  9122. }
  9123. x509->challengePwAttr = wolfSSL_X509_ATTRIBUTE_new();
  9124. if (x509->challengePwAttr) {
  9125. x509->challengePwAttr->value->value.asn1_string =
  9126. wolfSSL_ASN1_STRING_new();
  9127. if (wolfSSL_ASN1_STRING_set(
  9128. x509->challengePwAttr->value->value.asn1_string,
  9129. dCert->cPwd, dCert->cPwdLen) != WOLFSSL_SUCCESS) {
  9130. ret = MEMORY_E;
  9131. }
  9132. x509->challengePwAttr->value->type = V_ASN1_PRINTABLESTRING;
  9133. }
  9134. else {
  9135. ret = MEMORY_E;
  9136. }
  9137. #endif
  9138. }
  9139. else {
  9140. WOLFSSL_MSG("Challenge password too long");
  9141. ret = MEMORY_E;
  9142. }
  9143. }
  9144. if (dCert->contentType) {
  9145. if (dCert->contentTypeLen < CTC_NAME_SIZE) {
  9146. XMEMCPY(x509->contentType, dCert->contentType, dCert->contentTypeLen);
  9147. x509->contentType[dCert->contentTypeLen] = '\0';
  9148. }
  9149. }
  9150. #endif /* WOLFSSL_CERT_REQ */
  9151. #ifdef WOLFSSL_SEP
  9152. {
  9153. int minSz = min(dCert->deviceTypeSz, EXTERNAL_SERIAL_SIZE);
  9154. if (minSz > 0) {
  9155. x509->deviceTypeSz = minSz;
  9156. XMEMCPY(x509->deviceType, dCert->deviceType, minSz);
  9157. }
  9158. else
  9159. x509->deviceTypeSz = 0;
  9160. minSz = min(dCert->hwTypeSz, EXTERNAL_SERIAL_SIZE);
  9161. if (minSz > 0) {
  9162. x509->hwTypeSz = minSz;
  9163. XMEMCPY(x509->hwType, dCert->hwType, minSz);
  9164. }
  9165. else
  9166. x509->hwTypeSz = 0;
  9167. minSz = min(dCert->hwSerialNumSz, EXTERNAL_SERIAL_SIZE);
  9168. if (minSz > 0) {
  9169. x509->hwSerialNumSz = minSz;
  9170. XMEMCPY(x509->hwSerialNum, dCert->hwSerialNum, minSz);
  9171. }
  9172. else
  9173. x509->hwSerialNumSz = 0;
  9174. }
  9175. #endif /* WOLFSSL_SEP */
  9176. {
  9177. int minSz;
  9178. if (dCert->beforeDateLen > 0) {
  9179. minSz = min(dCert->beforeDate[1], MAX_DATE_SZ);
  9180. x509->notBefore.type = dCert->beforeDate[0];
  9181. x509->notBefore.length = minSz;
  9182. XMEMCPY(x509->notBefore.data, &dCert->beforeDate[2], minSz);
  9183. }
  9184. else
  9185. x509->notBefore.length = 0;
  9186. if (dCert->afterDateLen > 0) {
  9187. minSz = min(dCert->afterDate[1], MAX_DATE_SZ);
  9188. x509->notAfter.type = dCert->afterDate[0];
  9189. x509->notAfter.length = minSz;
  9190. XMEMCPY(x509->notAfter.data, &dCert->afterDate[2], minSz);
  9191. }
  9192. else
  9193. x509->notAfter.length = 0;
  9194. }
  9195. if (dCert->publicKey != NULL && dCert->pubKeySize != 0) {
  9196. x509->pubKey.buffer = (byte*)XMALLOC(
  9197. dCert->pubKeySize, x509->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  9198. if (x509->pubKey.buffer != NULL) {
  9199. x509->pubKeyOID = dCert->keyOID;
  9200. x509->pubKey.length = dCert->pubKeySize;
  9201. XMEMCPY(x509->pubKey.buffer, dCert->publicKey, dCert->pubKeySize);
  9202. }
  9203. else
  9204. ret = MEMORY_E;
  9205. #if defined(OPENSSL_ALL)
  9206. if (ret == 0) {
  9207. x509->key.pubKeyOID = dCert->keyOID;
  9208. if (!x509->key.algor) {
  9209. x509->key.algor = wolfSSL_X509_ALGOR_new();
  9210. } else {
  9211. wolfSSL_ASN1_OBJECT_free(x509->key.algor->algorithm);
  9212. }
  9213. if (!x509->key.algor) {
  9214. ret = MEMORY_E;
  9215. } else {
  9216. if (!(x509->key.algor->algorithm =
  9217. wolfSSL_OBJ_nid2obj(dCert->keyOID))) {
  9218. ret = PUBLIC_KEY_E;
  9219. }
  9220. }
  9221. wolfSSL_EVP_PKEY_free(x509->key.pkey);
  9222. if (!(x509->key.pkey = wolfSSL_d2i_PUBKEY(NULL,
  9223. &dCert->publicKey,
  9224. dCert->pubKeySize))) {
  9225. ret = PUBLIC_KEY_E;
  9226. }
  9227. }
  9228. #endif
  9229. }
  9230. if (dCert->signature != NULL && dCert->sigLength != 0 &&
  9231. dCert->sigLength <= MAX_ENCODED_SIG_SZ) {
  9232. x509->sig.buffer = (byte*)XMALLOC(
  9233. dCert->sigLength, x509->heap, DYNAMIC_TYPE_SIGNATURE);
  9234. if (x509->sig.buffer == NULL) {
  9235. ret = MEMORY_E;
  9236. }
  9237. else {
  9238. XMEMCPY(x509->sig.buffer, dCert->signature, dCert->sigLength);
  9239. x509->sig.length = dCert->sigLength;
  9240. x509->sigOID = dCert->signatureOID;
  9241. }
  9242. #if defined(OPENSSL_ALL)
  9243. wolfSSL_ASN1_OBJECT_free(x509->algor.algorithm);
  9244. if (!(x509->algor.algorithm =
  9245. wolfSSL_OBJ_nid2obj(dCert->signatureOID))) {
  9246. ret = PUBLIC_KEY_E;
  9247. }
  9248. #endif
  9249. }
  9250. /* store cert for potential retrieval */
  9251. if (AllocDer(&x509->derCert, dCert->maxIdx, CERT_TYPE, x509->heap) == 0) {
  9252. XMEMCPY(x509->derCert->buffer, dCert->source, dCert->maxIdx);
  9253. }
  9254. else {
  9255. ret = MEMORY_E;
  9256. }
  9257. x509->altNames = dCert->altNames;
  9258. dCert->weOwnAltNames = 0;
  9259. x509->altNamesNext = x509->altNames; /* index hint */
  9260. #if (defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)) && \
  9261. !defined(IGNORE_NAME_CONSTRAINTS)
  9262. /* add copies of email names from dCert to X509 */
  9263. if (CopyAdditionalAltNames(&x509->altNames, dCert->altEmailNames,
  9264. ASN_RFC822_TYPE, x509->heap) != 0) {
  9265. return MEMORY_E;
  9266. }
  9267. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  9268. #if defined(OPENSSL_EXTRA) && !defined(IGNORE_NAME_CONSTRAINTS)
  9269. /* add copies of alternate directory names from dCert to X509 */
  9270. if (CopyAdditionalAltNames(&x509->altNames, dCert->altDirNames,
  9271. ASN_DIR_TYPE, x509->heap) != 0) {
  9272. return MEMORY_E;
  9273. }
  9274. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  9275. x509->isCa = dCert->isCA;
  9276. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9277. x509->pathLength = dCert->pathLength;
  9278. x509->keyUsage = dCert->extKeyUsage;
  9279. x509->CRLdistSet = dCert->extCRLdistSet;
  9280. x509->CRLdistCrit = dCert->extCRLdistCrit;
  9281. if (dCert->extCrlInfo != NULL && dCert->extCrlInfoSz > 0) {
  9282. x509->CRLInfo = (byte*)XMALLOC(dCert->extCrlInfoSz, x509->heap,
  9283. DYNAMIC_TYPE_X509_EXT);
  9284. if (x509->CRLInfo != NULL) {
  9285. XMEMCPY(x509->CRLInfo, dCert->extCrlInfo, dCert->extCrlInfoSz);
  9286. x509->CRLInfoSz = dCert->extCrlInfoSz;
  9287. }
  9288. else {
  9289. ret = MEMORY_E;
  9290. }
  9291. }
  9292. x509->authInfoSet = dCert->extAuthInfoSet;
  9293. x509->authInfoCrit = dCert->extAuthInfoCrit;
  9294. if (dCert->extAuthInfo != NULL && dCert->extAuthInfoSz > 0) {
  9295. x509->authInfo = (byte*)XMALLOC(dCert->extAuthInfoSz, x509->heap,
  9296. DYNAMIC_TYPE_X509_EXT);
  9297. if (x509->authInfo != NULL) {
  9298. XMEMCPY(x509->authInfo, dCert->extAuthInfo, dCert->extAuthInfoSz);
  9299. x509->authInfoSz = dCert->extAuthInfoSz;
  9300. }
  9301. else {
  9302. ret = MEMORY_E;
  9303. }
  9304. }
  9305. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  9306. if (dCert->extAuthInfoCaIssuer != NULL && dCert->extAuthInfoCaIssuerSz > 0) {
  9307. x509->authInfoCaIssuer = (byte*)XMALLOC(dCert->extAuthInfoCaIssuerSz, x509->heap,
  9308. DYNAMIC_TYPE_X509_EXT);
  9309. if (x509->authInfoCaIssuer != NULL) {
  9310. XMEMCPY(x509->authInfoCaIssuer, dCert->extAuthInfoCaIssuer, dCert->extAuthInfoCaIssuerSz);
  9311. x509->authInfoCaIssuerSz = dCert->extAuthInfoCaIssuerSz;
  9312. }
  9313. else {
  9314. ret = MEMORY_E;
  9315. }
  9316. }
  9317. #endif
  9318. x509->basicConstSet = dCert->extBasicConstSet;
  9319. x509->basicConstCrit = dCert->extBasicConstCrit;
  9320. x509->basicConstPlSet = dCert->pathLengthSet;
  9321. x509->subjAltNameSet = dCert->extSubjAltNameSet;
  9322. x509->subjAltNameCrit = dCert->extSubjAltNameCrit;
  9323. x509->authKeyIdSet = dCert->extAuthKeyIdSet;
  9324. x509->authKeyIdCrit = dCert->extAuthKeyIdCrit;
  9325. if (dCert->extAuthKeyIdSrc != NULL && dCert->extAuthKeyIdSz != 0) {
  9326. x509->authKeyId = (byte*)XMALLOC(dCert->extAuthKeyIdSz, x509->heap,
  9327. DYNAMIC_TYPE_X509_EXT);
  9328. if (x509->authKeyId != NULL) {
  9329. XMEMCPY(x509->authKeyId,
  9330. dCert->extAuthKeyIdSrc, dCert->extAuthKeyIdSz);
  9331. x509->authKeyIdSz = dCert->extAuthKeyIdSz;
  9332. }
  9333. else
  9334. ret = MEMORY_E;
  9335. }
  9336. x509->subjKeyIdSet = dCert->extSubjKeyIdSet;
  9337. x509->subjKeyIdCrit = dCert->extSubjKeyIdCrit;
  9338. if (dCert->extSubjKeyIdSrc != NULL && dCert->extSubjKeyIdSz != 0) {
  9339. x509->subjKeyId = (byte*)XMALLOC(dCert->extSubjKeyIdSz, x509->heap,
  9340. DYNAMIC_TYPE_X509_EXT);
  9341. if (x509->subjKeyId != NULL) {
  9342. XMEMCPY(x509->subjKeyId,
  9343. dCert->extSubjKeyIdSrc, dCert->extSubjKeyIdSz);
  9344. x509->subjKeyIdSz = dCert->extSubjKeyIdSz;
  9345. }
  9346. else
  9347. ret = MEMORY_E;
  9348. }
  9349. x509->keyUsageSet = dCert->extKeyUsageSet;
  9350. x509->keyUsageCrit = dCert->extKeyUsageCrit;
  9351. if (dCert->extExtKeyUsageSrc != NULL && dCert->extExtKeyUsageSz > 0) {
  9352. x509->extKeyUsageSrc = (byte*)XMALLOC(dCert->extExtKeyUsageSz,
  9353. x509->heap, DYNAMIC_TYPE_X509_EXT);
  9354. if (x509->extKeyUsageSrc != NULL) {
  9355. XMEMCPY(x509->extKeyUsageSrc, dCert->extExtKeyUsageSrc,
  9356. dCert->extExtKeyUsageSz);
  9357. x509->extKeyUsageSz = dCert->extExtKeyUsageSz;
  9358. x509->extKeyUsageCrit = dCert->extExtKeyUsageCrit;
  9359. x509->extKeyUsageCount = dCert->extExtKeyUsageCount;
  9360. }
  9361. else {
  9362. ret = MEMORY_E;
  9363. }
  9364. }
  9365. #if defined(WOLFSSL_SEP) || defined(WOLFSSL_QT)
  9366. x509->certPolicySet = dCert->extCertPolicySet;
  9367. x509->certPolicyCrit = dCert->extCertPolicyCrit;
  9368. #endif /* WOLFSSL_SEP || WOLFSSL_QT */
  9369. #ifdef WOLFSSL_CERT_EXT
  9370. {
  9371. int i;
  9372. for (i = 0; i < dCert->extCertPoliciesNb && i < MAX_CERTPOL_NB; i++)
  9373. XMEMCPY(x509->certPolicies[i], dCert->extCertPolicies[i],
  9374. MAX_CERTPOL_SZ);
  9375. x509->certPoliciesNb = dCert->extCertPoliciesNb;
  9376. }
  9377. #endif /* WOLFSSL_CERT_EXT */
  9378. #endif /* OPENSSL_EXTRA || OPENSSL_EXTRA_X509_SMALL */
  9379. #ifdef OPENSSL_ALL
  9380. if (dCert->extSubjAltNameSrc != NULL && dCert->extSubjAltNameSz != 0) {
  9381. x509->subjAltNameSrc = (byte*)XMALLOC(dCert->extSubjAltNameSz, x509->heap,
  9382. DYNAMIC_TYPE_X509_EXT);
  9383. if (x509->subjAltNameSrc != NULL) {
  9384. XMEMCPY(x509->subjAltNameSrc,
  9385. dCert->extSubjAltNameSrc, dCert->extSubjAltNameSz);
  9386. x509->subjAltNameSz = dCert->extSubjAltNameSz;
  9387. }
  9388. else
  9389. ret = MEMORY_E;
  9390. }
  9391. #endif
  9392. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  9393. x509->pkCurveOID = dCert->pkCurveOID;
  9394. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  9395. return ret;
  9396. }
  9397. #endif /* KEEP_PEER_CERT || SESSION_CERTS */
  9398. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) || \
  9399. (defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2) && !defined(WOLFSSL_NO_TLS12))
  9400. static int ProcessCSR(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  9401. word32 status_length)
  9402. {
  9403. int ret = 0;
  9404. OcspRequest* request;
  9405. WOLFSSL_ENTER("ProcessCSR");
  9406. #ifdef WOLFSSL_SMALL_STACK
  9407. CertStatus* status;
  9408. OcspEntry* single;
  9409. OcspResponse* response;
  9410. #else
  9411. CertStatus status[1];
  9412. OcspEntry single[1];
  9413. OcspResponse response[1];
  9414. #endif
  9415. do {
  9416. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  9417. if (ssl->status_request) {
  9418. request = (OcspRequest*)TLSX_CSR_GetRequest(ssl->extensions);
  9419. ssl->status_request = 0;
  9420. break;
  9421. }
  9422. #endif
  9423. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  9424. if (ssl->status_request_v2) {
  9425. request = (OcspRequest*)TLSX_CSR2_GetRequest(ssl->extensions,
  9426. WOLFSSL_CSR2_OCSP, 0);
  9427. ssl->status_request_v2 = 0;
  9428. break;
  9429. }
  9430. #endif
  9431. return BUFFER_ERROR;
  9432. } while(0);
  9433. if (request == NULL)
  9434. return BAD_CERTIFICATE_STATUS_ERROR; /* not expected */
  9435. #ifdef WOLFSSL_SMALL_STACK
  9436. status = (CertStatus*)XMALLOC(sizeof(CertStatus), ssl->heap,
  9437. DYNAMIC_TYPE_OCSP_STATUS);
  9438. single = (OcspEntry*)XMALLOC(sizeof(OcspEntry), ssl->heap,
  9439. DYNAMIC_TYPE_OCSP_ENTRY);
  9440. response = (OcspResponse*)XMALLOC(sizeof(OcspResponse), ssl->heap,
  9441. DYNAMIC_TYPE_OCSP_REQUEST);
  9442. if (status == NULL || single == NULL || response == NULL) {
  9443. if (status)
  9444. XFREE(status, ssl->heap, DYNAMIC_TYPE_OCSP_STATUS);
  9445. if (single)
  9446. XFREE(single, ssl->heap, DYNAMIC_TYPE_OCSP_ENTRY);
  9447. if (response)
  9448. XFREE(response, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  9449. return MEMORY_ERROR;
  9450. }
  9451. #endif
  9452. InitOcspResponse(response, single, status, input +*inOutIdx, status_length, ssl->heap);
  9453. if (OcspResponseDecode(response, SSL_CM(ssl), ssl->heap, 0) != 0)
  9454. ret = BAD_CERTIFICATE_STATUS_ERROR;
  9455. else if (CompareOcspReqResp(request, response) != 0)
  9456. ret = BAD_CERTIFICATE_STATUS_ERROR;
  9457. else if (response->responseStatus != OCSP_SUCCESSFUL)
  9458. ret = BAD_CERTIFICATE_STATUS_ERROR;
  9459. else if (response->single->status->status == CERT_REVOKED)
  9460. ret = OCSP_CERT_REVOKED;
  9461. else if (response->single->status->status != CERT_GOOD)
  9462. ret = BAD_CERTIFICATE_STATUS_ERROR;
  9463. else {
  9464. XMEMCPY(ssl->ocspProducedDate, response->producedDate, sizeof ssl->ocspProducedDate);
  9465. ssl->ocspProducedDateFormat = response->producedDateFormat;
  9466. }
  9467. *inOutIdx += status_length;
  9468. #ifdef WOLFSSL_SMALL_STACK
  9469. XFREE(status, ssl->heap, DYNAMIC_TYPE_OCSP_STATUS);
  9470. XFREE(single, ssl->heap, DYNAMIC_TYPE_OCSP_ENTRY);
  9471. XFREE(response, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  9472. #endif
  9473. WOLFSSL_LEAVE("ProcessCSR", ret);
  9474. return ret;
  9475. }
  9476. #endif
  9477. #ifdef HAVE_PK_CALLBACKS
  9478. #ifdef HAVE_ECC
  9479. static int SigPkCbEccVerify(const unsigned char* sig, unsigned int sigSz,
  9480. const unsigned char* hash, unsigned int hashSz,
  9481. const unsigned char* keyDer, unsigned int keySz,
  9482. int* result, void* ctx)
  9483. {
  9484. int ret = NOT_COMPILED_IN;
  9485. WOLFSSL* ssl = (WOLFSSL*)ctx;
  9486. if (ssl && ssl->ctx->EccVerifyCb) {
  9487. ret = ssl->ctx->EccVerifyCb(ssl, sig, sigSz, hash, hashSz,
  9488. keyDer, keySz, result, ssl->EccVerifyCtx);
  9489. }
  9490. return ret;
  9491. }
  9492. #endif
  9493. #ifndef NO_RSA
  9494. static int SigPkCbRsaVerify(unsigned char* sig, unsigned int sigSz,
  9495. unsigned char** out, const unsigned char* keyDer, unsigned int keySz,
  9496. void* ctx)
  9497. {
  9498. int ret = NOT_COMPILED_IN;
  9499. WOLFSSL* ssl = (WOLFSSL*)ctx;
  9500. if (ssl && ssl->ctx->RsaVerifyCb) {
  9501. ret = ssl->ctx->RsaVerifyCb(ssl, sig, sigSz, out, keyDer, keySz,
  9502. ssl->RsaVerifyCtx);
  9503. }
  9504. return ret;
  9505. }
  9506. #endif
  9507. int InitSigPkCb(WOLFSSL* ssl, SignatureCtx* sigCtx)
  9508. {
  9509. if (ssl == NULL || sigCtx == NULL)
  9510. return BAD_FUNC_ARG;
  9511. /* only setup the verify callback if a PK is set */
  9512. #ifdef HAVE_ECC
  9513. if (ssl->ctx->EccVerifyCb) {
  9514. sigCtx->pkCbEcc = SigPkCbEccVerify;
  9515. sigCtx->pkCtxEcc = ssl;
  9516. }
  9517. #endif
  9518. #ifndef NO_RSA
  9519. /* only setup the verify callback if a PK is set */
  9520. if (ssl->ctx->RsaVerifyCb) {
  9521. sigCtx->pkCbRsa = SigPkCbRsaVerify;
  9522. sigCtx->pkCtxRsa = ssl;
  9523. }
  9524. #endif
  9525. return 0;
  9526. }
  9527. #endif /* HAVE_PK_CALLBACKS */
  9528. #if !defined(NO_WOLFSSL_CLIENT) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  9529. static void DoCertFatalAlert(WOLFSSL* ssl, int ret)
  9530. {
  9531. int alertWhy;
  9532. if (ssl == NULL || ret == 0) {
  9533. return;
  9534. }
  9535. WOLFSSL_ERROR(ret);
  9536. /* Determine alert reason */
  9537. alertWhy = bad_certificate;
  9538. if (ret == ASN_AFTER_DATE_E || ret == ASN_BEFORE_DATE_E) {
  9539. alertWhy = certificate_expired;
  9540. } else if (ret == ASN_NO_SIGNER_E) {
  9541. alertWhy = unknown_ca;
  9542. }
  9543. #if (defined(OPENSSL_ALL) || defined(WOLFSSL_APACHE_HTTPD))
  9544. else if (ret == CRL_CERT_REVOKED) {
  9545. alertWhy = certificate_revoked;
  9546. }
  9547. #endif
  9548. else if (ret == NO_PEER_CERT) {
  9549. #ifdef WOLFSSL_TLS13
  9550. if (ssl->options.tls1_3) {
  9551. alertWhy = certificate_required;
  9552. }
  9553. else
  9554. #endif
  9555. {
  9556. alertWhy = handshake_failure;
  9557. }
  9558. }
  9559. /* send fatal alert and mark connection closed */
  9560. SendAlert(ssl, alert_fatal, alertWhy); /* try to send */
  9561. ssl->options.isClosed = 1;
  9562. }
  9563. /* WOLFSSL_ALWAYS_VERIFY_CB: Use verify callback for success or failure cases */
  9564. /* WOLFSSL_VERIFY_CB_ALL_CERTS: Issue callback for all intermediate certificates */
  9565. /* Callback is issued for certificate presented in TLS Certificate (11) packet.
  9566. * The intermediates are done first then peer leaf cert last. Use the
  9567. * store->error_depth member to determine index (0=peer, >1 intermediates)
  9568. */
  9569. int DoVerifyCallback(WOLFSSL_CERT_MANAGER* cm, WOLFSSL* ssl, int ret,
  9570. ProcPeerCertArgs* args)
  9571. {
  9572. int verify_ok = 0, use_cb = 0;
  9573. void *heap;
  9574. if (cm == NULL) {
  9575. return BAD_FUNC_ARG;
  9576. }
  9577. heap = (ssl != NULL) ? ssl->heap : cm->heap;
  9578. /* Determine if verify was okay */
  9579. if (ret == 0) {
  9580. verify_ok = 1;
  9581. }
  9582. /* Determine if verify callback should be used */
  9583. if (ret != 0) {
  9584. if ((ssl != NULL) && (!ssl->options.verifyNone)) {
  9585. use_cb = 1; /* always report errors */
  9586. }
  9587. }
  9588. #ifdef WOLFSSL_ALWAYS_VERIFY_CB
  9589. /* always use verify callback on peer leaf cert */
  9590. if (args->certIdx == 0) {
  9591. use_cb = 1;
  9592. }
  9593. #endif
  9594. #ifdef WOLFSSL_VERIFY_CB_ALL_CERTS
  9595. /* perform verify callback on other intermediate certs (not just peer) */
  9596. if (args->certIdx > 0) {
  9597. use_cb = 1;
  9598. }
  9599. #endif
  9600. #if defined(OPENSSL_EXTRA)
  9601. /* perform domain name check on the peer certificate */
  9602. if (args->dCertInit && args->dCert && (ssl != NULL) &&
  9603. ssl->param && ssl->param->hostName[0]) {
  9604. /* If altNames names is present, then subject common name is ignored */
  9605. if (args->dCert->altNames != NULL) {
  9606. if (CheckForAltNames(args->dCert, ssl->param->hostName, NULL) != 1) {
  9607. if (ret == 0) {
  9608. ret = DOMAIN_NAME_MISMATCH;
  9609. }
  9610. }
  9611. }
  9612. else {
  9613. if (args->dCert->subjectCN) {
  9614. if (MatchDomainName(args->dCert->subjectCN,
  9615. args->dCert->subjectCNLen,
  9616. ssl->param->hostName) == 0) {
  9617. if (ret == 0) {
  9618. ret = DOMAIN_NAME_MISMATCH;
  9619. }
  9620. }
  9621. }
  9622. }
  9623. }
  9624. /* perform IP address check on the peer certificate */
  9625. if ((args->dCertInit != 0) && (args->dCert != NULL) && (ssl != NULL) &&
  9626. (ssl->param != NULL) && (XSTRLEN(ssl->param->ipasc) > 0)) {
  9627. if (CheckIPAddr(args->dCert, ssl->param->ipasc) != 0) {
  9628. if (ret == 0) {
  9629. ret = IPADDR_MISMATCH;
  9630. }
  9631. }
  9632. }
  9633. #endif
  9634. /* if verify callback has been set */
  9635. if ((use_cb && (ssl != NULL) && ((ssl->verifyCallback != NULL)
  9636. #ifdef OPENSSL_ALL
  9637. || (ssl->ctx->verifyCertCb != NULL)
  9638. #endif
  9639. ))
  9640. #ifndef NO_WOLFSSL_CM_VERIFY
  9641. || (cm->verifyCallback != NULL)
  9642. #endif
  9643. ) {
  9644. int verifyFail = 0;
  9645. #ifdef WOLFSSL_SMALL_STACK
  9646. WOLFSSL_X509_STORE_CTX* store;
  9647. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9648. WOLFSSL_X509* x509;
  9649. #endif
  9650. char* domain = NULL;
  9651. #else
  9652. WOLFSSL_X509_STORE_CTX store[1];
  9653. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9654. WOLFSSL_X509 x509[1];
  9655. #endif
  9656. char domain[ASN_NAME_MAX];
  9657. #endif
  9658. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9659. int x509Free = 0;
  9660. #endif
  9661. #ifdef WOLFSSL_SMALL_STACK
  9662. store = (WOLFSSL_X509_STORE_CTX*)XMALLOC(
  9663. sizeof(WOLFSSL_X509_STORE_CTX), heap, DYNAMIC_TYPE_X509_STORE);
  9664. if (store == NULL) {
  9665. return MEMORY_E;
  9666. }
  9667. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9668. x509 = (WOLFSSL_X509*)XMALLOC(sizeof(WOLFSSL_X509), heap,
  9669. DYNAMIC_TYPE_X509);
  9670. if (x509 == NULL) {
  9671. XFREE(store, heap, DYNAMIC_TYPE_X509);
  9672. return MEMORY_E;
  9673. }
  9674. #endif
  9675. domain = (char*)XMALLOC(ASN_NAME_MAX, heap, DYNAMIC_TYPE_STRING);
  9676. if (domain == NULL) {
  9677. XFREE(store, heap, DYNAMIC_TYPE_X509);
  9678. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9679. XFREE(x509, heap, DYNAMIC_TYPE_X509);
  9680. #endif
  9681. return MEMORY_E;
  9682. }
  9683. #endif /* WOLFSSL_SMALL_STACK */
  9684. XMEMSET(store, 0, sizeof(WOLFSSL_X509_STORE_CTX));
  9685. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9686. XMEMSET(x509, 0, sizeof(WOLFSSL_X509));
  9687. #endif
  9688. domain[0] = '\0';
  9689. /* build subject CN as string to return in store */
  9690. if (args->dCertInit && args->dCert && args->dCert->subjectCN) {
  9691. int subjectCNLen = args->dCert->subjectCNLen;
  9692. if (subjectCNLen > ASN_NAME_MAX-1)
  9693. subjectCNLen = ASN_NAME_MAX-1;
  9694. if (subjectCNLen > 0) {
  9695. XMEMCPY(domain, args->dCert->subjectCN, subjectCNLen);
  9696. domain[subjectCNLen] = '\0';
  9697. }
  9698. }
  9699. store->error = ret;
  9700. store->error_depth = args->certIdx;
  9701. store->discardSessionCerts = 0;
  9702. store->domain = domain;
  9703. store->userCtx = (ssl != NULL) ? ssl->verifyCbCtx : cm;
  9704. store->certs = args->certs;
  9705. store->totalCerts = args->totalCerts;
  9706. #if (defined(HAVE_EX_DATA) || defined(FORTRESS)) && \
  9707. (defined(OPENSSL_EXTRA) || defined(WOLFSSL_WPAS_SMALL))
  9708. if (wolfSSL_CRYPTO_set_ex_data(&store->ex_data, 0, ssl)
  9709. != WOLFSSL_SUCCESS) {
  9710. WOLFSSL_MSG("Failed to store ssl context in WOLFSSL_X509_STORE_CTX");
  9711. }
  9712. #endif
  9713. if (ssl != NULL) {
  9714. #if defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)
  9715. store->store = SSL_STORE(ssl);
  9716. #if defined(OPENSSL_EXTRA)
  9717. store->depth = args->count;
  9718. store->param = (WOLFSSL_X509_VERIFY_PARAM*)XMALLOC(
  9719. sizeof(WOLFSSL_X509_VERIFY_PARAM),
  9720. heap, DYNAMIC_TYPE_OPENSSL);
  9721. if (store->param == NULL) {
  9722. #ifdef WOLFSSL_SMALL_STACK
  9723. XFREE(domain, heap, DYNAMIC_TYPE_STRING);
  9724. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9725. XFREE(x509, heap, DYNAMIC_TYPE_X509);
  9726. #endif
  9727. XFREE(store, heap, DYNAMIC_TYPE_X509_STORE);
  9728. #endif
  9729. return MEMORY_E;
  9730. }
  9731. XMEMSET(store->param, 0, sizeof(WOLFSSL_X509_VERIFY_PARAM));
  9732. /* Overwrite with non-default param values in SSL */
  9733. if (ssl->param) {
  9734. if (ssl->param->check_time)
  9735. store->param->check_time = ssl->param->check_time;
  9736. if (ssl->param->flags)
  9737. store->param->flags = ssl->param->flags;
  9738. if (ssl->param->hostName[0])
  9739. XMEMCPY(store->param->hostName, ssl->param->hostName,
  9740. WOLFSSL_HOST_NAME_MAX);
  9741. }
  9742. #endif /* defined(OPENSSL_EXTRA) */
  9743. #endif /* defined(OPENSSL_EXTRA) || defined(HAVE_WEBSERVER)*/
  9744. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9745. #ifdef KEEP_PEER_CERT
  9746. if (args->certIdx == 0) {
  9747. store->current_cert = &ssl->peerCert; /* use existing X509 */
  9748. }
  9749. else
  9750. #endif
  9751. {
  9752. InitX509(x509, 0, heap);
  9753. if (CopyDecodedToX509(x509, args->dCert) == 0) {
  9754. store->current_cert = x509;
  9755. x509Free = 1;
  9756. }
  9757. else {
  9758. FreeX509(x509);
  9759. }
  9760. }
  9761. #endif
  9762. #ifdef SESSION_CERTS
  9763. store->sesChain = &ssl->session.chain;
  9764. #endif
  9765. }
  9766. #ifndef NO_WOLFSSL_CM_VERIFY
  9767. /* non-zero return code indicates failure override */
  9768. if (cm->verifyCallback != NULL) {
  9769. store->userCtx = cm;
  9770. if (cm->verifyCallback(verify_ok, store)) {
  9771. if (ret != 0) {
  9772. WOLFSSL_MSG("Verify CM callback overriding error!");
  9773. ret = 0;
  9774. }
  9775. }
  9776. else {
  9777. verifyFail = 1;
  9778. }
  9779. }
  9780. #endif
  9781. if (ssl != NULL) {
  9782. #ifdef OPENSSL_ALL
  9783. /* non-zero return code indicates failure override */
  9784. if (ssl->ctx->verifyCertCb) {
  9785. if (ssl->ctx->verifyCertCb(store, ssl->ctx->verifyCertCbArg)) {
  9786. if (ret != 0) {
  9787. WOLFSSL_MSG("Verify Cert callback overriding error!");
  9788. ret = 0;
  9789. }
  9790. }
  9791. else {
  9792. verifyFail = 1;
  9793. }
  9794. }
  9795. #endif
  9796. /* non-zero return code indicates failure override */
  9797. if (ssl->verifyCallback) {
  9798. if (ssl->verifyCallback(verify_ok, store)) {
  9799. if (ret != 0) {
  9800. WOLFSSL_MSG("Verify callback overriding error!");
  9801. ret = 0;
  9802. }
  9803. }
  9804. else {
  9805. verifyFail = 1;
  9806. }
  9807. }
  9808. }
  9809. if (verifyFail) {
  9810. /* induce error if one not present */
  9811. if (ret == 0) {
  9812. ret = VERIFY_CERT_ERROR;
  9813. }
  9814. /* mark as verify error */
  9815. args->verifyErr = 1;
  9816. }
  9817. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9818. if (x509Free) {
  9819. FreeX509(x509);
  9820. }
  9821. #endif
  9822. #if defined(SESSION_CERTS) && defined(OPENSSL_EXTRA)
  9823. wolfSSL_sk_X509_free(store->chain);
  9824. store->chain = NULL;
  9825. #endif
  9826. #ifdef SESSION_CERTS
  9827. if ((ssl != NULL) && (store->discardSessionCerts)) {
  9828. WOLFSSL_MSG("Verify callback requested discard sess certs");
  9829. ssl->session.chain.count = 0;
  9830. #ifdef WOLFSSL_ALT_CERT_CHAINS
  9831. ssl->session.altChain.count = 0;
  9832. #endif
  9833. }
  9834. #endif /* SESSION_CERTS */
  9835. #ifdef OPENSSL_EXTRA
  9836. if ((ssl != NULL) && (store->param)) {
  9837. XFREE(store->param, heap, DYNAMIC_TYPE_OPENSSL);
  9838. }
  9839. #endif
  9840. #ifdef WOLFSSL_SMALL_STACK
  9841. XFREE(domain, heap, DYNAMIC_TYPE_STRING);
  9842. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  9843. XFREE(x509, heap, DYNAMIC_TYPE_X509);
  9844. #endif
  9845. XFREE(store, heap, DYNAMIC_TYPE_X509_STORE);
  9846. #endif
  9847. }
  9848. (void)heap;
  9849. return ret;
  9850. }
  9851. static void FreeProcPeerCertArgs(WOLFSSL* ssl, void* pArgs)
  9852. {
  9853. ProcPeerCertArgs* args = (ProcPeerCertArgs*)pArgs;
  9854. (void)ssl;
  9855. if (args->certs) {
  9856. XFREE(args->certs, ssl->heap, DYNAMIC_TYPE_DER);
  9857. args->certs = NULL;
  9858. }
  9859. #ifdef WOLFSSL_TLS13
  9860. if (args->exts) {
  9861. XFREE(args->exts, ssl->heap, DYNAMIC_TYPE_CERT_EXT);
  9862. args->exts = NULL;
  9863. }
  9864. #endif
  9865. if (args->dCert) {
  9866. if (args->dCertInit) {
  9867. FreeDecodedCert(args->dCert);
  9868. args->dCertInit = 0;
  9869. }
  9870. XFREE(args->dCert, ssl->heap, DYNAMIC_TYPE_DCERT);
  9871. args->dCert = NULL;
  9872. }
  9873. }
  9874. #if defined(OPENSSL_ALL) && defined(WOLFSSL_CERT_GEN) && \
  9875. (defined(WOLFSSL_CERT_REQ) || defined(WOLFSSL_CERT_EXT)) && \
  9876. !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  9877. /* load certificate file which has the form <hash>.(r)N[0..N] */
  9878. /* in the folder. */
  9879. /* (r), in the case of CRL file */
  9880. /* @param store a pointer to X509_STORE structure */
  9881. /* @param issuer a pointer to X509_NAME that presents an issuer */
  9882. /* @param type X509_LU_X509 or X509_LU_CRL */
  9883. /* @return WOLFSSL_SUCCESS on successful, otherwise WOLFSSL_FAILURE */
  9884. int LoadCertByIssuer(WOLFSSL_X509_STORE* store, X509_NAME* issuer, int type)
  9885. {
  9886. const int MAX_SUFFIX = 10;/* The number comes from CA_TABLE_SIZE=10 */
  9887. int ret = WOLFSSL_SUCCESS;
  9888. WOLFSSL_X509_LOOKUP* lookup;
  9889. WOLFSSL_BY_DIR_entry* entry;
  9890. WOLFSSL_BY_DIR_HASH hash_tmp;
  9891. WOLFSSL_BY_DIR_HASH* ph = NULL;
  9892. WOLFSSL_X509* x509;
  9893. unsigned long hash = 0;
  9894. char* filename = NULL;
  9895. const char* post = "";
  9896. byte* pbuf = NULL;
  9897. int len, num, i, index;
  9898. byte suffix = 0;
  9899. int retHash = NOT_COMPILED_IN;
  9900. byte dgt[WC_MAX_DIGEST_SIZE];
  9901. WOLFSSL_ENTER("LoadCertByIssuer");
  9902. /* sanity check */
  9903. if (store == NULL || issuer == NULL || (type != X509_LU_X509 && type != X509_LU_CRL)) {
  9904. return WOLFSSL_FAILURE;
  9905. }
  9906. lookup = &store->lookup;
  9907. if (lookup->dirs == NULL || lookup->type != 1) {
  9908. return WOLFSSL_FAILURE;
  9909. }
  9910. len = wolfSSL_i2d_X509_NAME_canon(issuer, &pbuf);
  9911. if (len > 0) {
  9912. #ifndef NO_SHA
  9913. retHash = wc_ShaHash((const byte*)pbuf, len, dgt);
  9914. #endif
  9915. if (retHash == 0) {
  9916. /* 4 bytes in little endian as unsigned long */
  9917. hash = (((unsigned long)dgt[3] << 24) |
  9918. ((unsigned long)dgt[2] << 16) |
  9919. ((unsigned long)dgt[1] << 8) |
  9920. ((unsigned long)dgt[0]));
  9921. } else {
  9922. WOLFSSL_MSG("failed hash operation");
  9923. return WOLFSSL_FAILURE;
  9924. }
  9925. wolfSSL_OPENSSL_free(pbuf);
  9926. }
  9927. /* try to load each hashed name file in path */
  9928. #if !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  9929. if (type == X509_LU_CRL) {
  9930. post = "r";
  9931. }
  9932. num = wolfSSL_sk_BY_DIR_entry_num(lookup->dirs->dir_entry);
  9933. for (i=0; i<num; i++) {
  9934. entry = wolfSSL_sk_BY_DIR_entry_value(lookup->dirs->dir_entry, i);
  9935. if (type == X509_LU_CRL && entry->hashes != NULL &&
  9936. wolfSSL_sk_BY_DIR_HASH_num(entry->hashes) > 0) {
  9937. /* lock the list */
  9938. if (wc_LockMutex(&lookup->dirs->lock) != 0) {
  9939. WOLFSSL_MSG("wc_LockMutex cdir Lock error");
  9940. return BAD_MUTEX_E;
  9941. }
  9942. hash_tmp.hash_value = hash;
  9943. index = wolfSSL_sk_BY_DIR_HASH_find(entry->hashes, &hash_tmp);
  9944. if (index >= 0) {
  9945. WOLFSSL_MSG("find hashed CRL in list");
  9946. ph = wolfSSL_sk_BY_DIR_HASH_value(entry->hashes, index);
  9947. suffix = ph->last_suffix;
  9948. } else {
  9949. ph = NULL;
  9950. suffix = 0;
  9951. }
  9952. wc_UnLockMutex(&lookup->dirs->lock);
  9953. }
  9954. /* Additional buffer length for file name memory allocation : */
  9955. /* / <hashvalue>.(r)N\0 */
  9956. /*|1| 8 |1|1|1|1| => 13 */
  9957. len = (int)XSTRLEN(entry->dir_name) + 13;
  9958. if (filename != NULL) {
  9959. XFREE(filename, NULL, DYNAMIC_TYPE_OPENSSL);
  9960. }
  9961. filename = (char*)XMALLOC(len, NULL, DYNAMIC_TYPE_OPENSSL);
  9962. if (filename == NULL) {
  9963. WOLFSSL_MSG("memory allocation error");
  9964. return MEMORY_E;
  9965. }
  9966. /* set as FAILURE, if successfuly loading cert of CRL, this becomes */
  9967. /* WOLFSSL_SUCCESS */
  9968. ret = WOLFSSL_FAILURE;
  9969. for (; suffix < MAX_SUFFIX; suffix++) {
  9970. /* /folder-path/<hash>.(r)N[0..9] */
  9971. XSNPRINTF(filename, len, "%s/%08lx.%s%d", entry->dir_name,
  9972. hash, post, suffix);
  9973. if(wc_FileExists(filename) == 0/*0 file exists */) {
  9974. if (type == X509_LU_X509) {
  9975. x509 = wolfSSL_X509_load_certificate_file(filename,
  9976. WOLFSSL_FILETYPE_PEM);
  9977. if (x509 != NULL) {
  9978. ret = wolfSSL_X509_STORE_add_cert(store, x509);
  9979. wolfSSL_X509_free(x509);
  9980. } else {
  9981. WOLFSSL_MSG("failed to load certificate\n");
  9982. ret = WOLFSSL_FAILURE;
  9983. break;
  9984. }
  9985. }
  9986. #ifdef HAVE_CRL
  9987. else if (type == X509_LU_CRL) {
  9988. ret = wolfSSL_X509_load_crl_file(&store->lookup, filename,
  9989. WOLFSSL_FILETYPE_PEM);
  9990. if (ret != WOLFSSL_SUCCESS) {
  9991. WOLFSSL_MSG("failed to load CRL\n");
  9992. break;
  9993. }
  9994. }
  9995. #else
  9996. else if (type == X509_LU_CRL) {
  9997. WOLFSSL_MSG("CRL is not supported");
  9998. ret = WOLFSSL_FAILURE;
  9999. break;
  10000. }
  10001. #endif
  10002. } else
  10003. break;
  10004. }
  10005. if (ret != WOLFSSL_SUCCESS) {
  10006. WOLFSSL_MSG("not found file");
  10007. ret = WOLFSSL_FAILURE;
  10008. } else {
  10009. if (type == X509_LU_CRL) {
  10010. if (wc_LockMutex(&lookup->dirs->lock) != 0) {
  10011. WOLFSSL_MSG("wc_LockMutex cdir Lock error");
  10012. XFREE(filename, NULL, DYNAMIC_TYPE_OPENSSL);
  10013. return BAD_MUTEX_E;
  10014. }
  10015. if (ph == NULL) {
  10016. ph = wolfSSL_BY_DIR_HASH_new();
  10017. if (ph == NULL) {
  10018. WOLFSSL_MSG("failed to allocate hash stack");
  10019. ret = WOLFSSL_FAILURE;
  10020. } else {
  10021. ph->hash_value = hash;
  10022. ph->last_suffix = suffix;
  10023. ret = wolfSSL_sk_BY_DIR_HASH_push(entry->hashes, ph);
  10024. }
  10025. }
  10026. wc_UnLockMutex(&lookup->dirs->lock);
  10027. }
  10028. }
  10029. XFREE(filename, NULL, DYNAMIC_TYPE_OPENSSL);
  10030. }
  10031. #else
  10032. (void) type;
  10033. (void) ret;
  10034. (void) x509;
  10035. (void) filename;
  10036. (void) suffix;
  10037. (void) num;
  10038. (void) i;
  10039. ret = WOLFSSL_NOT_IMPLEMENTED;
  10040. #endif
  10041. WOLFSSL_LEAVE("LoadCertByIssuer", ret);
  10042. return ret;
  10043. }
  10044. #endif
  10045. static int ProcessPeerCertParse(WOLFSSL* ssl, ProcPeerCertArgs* args,
  10046. int certType, int verify, byte** pSubjectHash, int* pAlreadySigner)
  10047. {
  10048. int ret = 0;
  10049. buffer* cert;
  10050. byte* subjectHash = NULL;
  10051. int alreadySigner = 0;
  10052. #ifdef WOLFSSL_SMALL_CERT_VERIFY
  10053. int sigRet = 0;
  10054. #endif
  10055. if (ssl == NULL || args == NULL)
  10056. return BAD_FUNC_ARG;
  10057. /* check to make sure certificate index is valid */
  10058. if (args->certIdx > args->count)
  10059. return BUFFER_E;
  10060. /* check if returning from non-blocking OCSP */
  10061. /* skip this section because cert is already initialized and parsed */
  10062. #ifdef WOLFSSL_NONBLOCK_OCSP
  10063. if (args->lastErr == OCSP_WANT_READ) {
  10064. args->lastErr = 0; /* clear error */
  10065. return 0;
  10066. }
  10067. #endif
  10068. #ifdef WOLFSSL_TRUST_PEER_CERT
  10069. /* we have trusted peer */
  10070. if (args->haveTrustPeer) {
  10071. return 0;
  10072. }
  10073. #endif
  10074. /* get certificate buffer */
  10075. cert = &args->certs[args->certIdx];
  10076. #ifdef WOLFSSL_SMALL_CERT_VERIFY
  10077. if (verify == VERIFY) {
  10078. /* for small cert verify, release decoded cert during signature check to
  10079. reduce peak memory usage */
  10080. if (args->dCert != NULL) {
  10081. if (args->dCertInit) {
  10082. FreeDecodedCert(args->dCert);
  10083. args->dCertInit = 0;
  10084. }
  10085. XFREE(args->dCert, ssl->heap, DYNAMIC_TYPE_DCERT);
  10086. args->dCert = NULL;
  10087. }
  10088. /* perform cert parsing and signature check */
  10089. sigRet = CheckCertSignature(cert->buffer, cert->length,
  10090. ssl->heap, SSL_CM(ssl));
  10091. /* fail on errors here after the ParseCertRelative call, so dCert is populated */
  10092. /* verify name only in ParseCertRelative below, signature check done */
  10093. verify = VERIFY_NAME;
  10094. }
  10095. #endif /* WOLFSSL_SMALL_CERT_VERIFY */
  10096. /* make sure the decoded cert structure is allocated and initialized */
  10097. if (!args->dCertInit
  10098. #ifdef WOLFSSL_SMALL_CERT_VERIFY
  10099. || args->dCert == NULL
  10100. #endif
  10101. ) {
  10102. #ifdef WOLFSSL_SMALL_CERT_VERIFY
  10103. if (args->dCert == NULL) {
  10104. args->dCert = (DecodedCert*)XMALLOC(
  10105. sizeof(DecodedCert), ssl->heap,
  10106. DYNAMIC_TYPE_DCERT);
  10107. if (args->dCert == NULL) {
  10108. return MEMORY_E;
  10109. }
  10110. }
  10111. #endif
  10112. InitDecodedCert(args->dCert, cert->buffer, cert->length, ssl->heap);
  10113. args->dCertInit = 1;
  10114. args->dCert->sigCtx.devId = ssl->devId;
  10115. #ifdef WOLFSSL_ASYNC_CRYPT
  10116. args->dCert->sigCtx.asyncCtx = ssl;
  10117. #endif
  10118. #ifdef HAVE_PK_CALLBACKS
  10119. /* setup the PK callback context */
  10120. ret = InitSigPkCb(ssl, &args->dCert->sigCtx);
  10121. if (ret != 0)
  10122. return ret;
  10123. #endif
  10124. }
  10125. /* Parse Certificate */
  10126. ret = ParseCertRelative(args->dCert, certType, verify, SSL_CM(ssl));
  10127. /* perform below checks for date failure cases */
  10128. if (ret == 0 || ret == ASN_BEFORE_DATE_E || ret == ASN_AFTER_DATE_E) {
  10129. /* get subject and determine if already loaded */
  10130. #ifndef NO_SKID
  10131. if (args->dCert->extAuthKeyIdSet)
  10132. subjectHash = args->dCert->extSubjKeyId;
  10133. else
  10134. #endif
  10135. subjectHash = args->dCert->subjectHash;
  10136. alreadySigner = AlreadySigner(SSL_CM(ssl), subjectHash);
  10137. }
  10138. #ifdef WOLFSSL_SMALL_CERT_VERIFY
  10139. /* get signature check failures from above */
  10140. if (ret == 0)
  10141. ret = sigRet;
  10142. #endif
  10143. if (pSubjectHash)
  10144. *pSubjectHash = subjectHash;
  10145. if (pAlreadySigner)
  10146. *pAlreadySigner = alreadySigner;
  10147. #ifdef WOLFSSL_ASYNC_CRYPT
  10148. if (ret == WC_PENDING_E) {
  10149. ret = wolfSSL_AsyncPush(ssl,
  10150. args->dCert->sigCtx.asyncDev);
  10151. }
  10152. #endif
  10153. return ret;
  10154. }
  10155. /* Check key sizes for certs. Is redundant check since
  10156. ProcessBuffer also performs this check. */
  10157. static int ProcessPeerCertCheckKey(WOLFSSL* ssl, ProcPeerCertArgs* args)
  10158. {
  10159. int ret = 0;
  10160. if (ssl->options.verifyNone) {
  10161. return ret;
  10162. }
  10163. switch (args->dCert->keyOID) {
  10164. #ifndef NO_RSA
  10165. case RSAk:
  10166. if (ssl->options.minRsaKeySz < 0 ||
  10167. args->dCert->pubKeySize <
  10168. (word16)ssl->options.minRsaKeySz) {
  10169. WOLFSSL_MSG(
  10170. "RSA key size in cert chain error");
  10171. ret = RSA_KEY_SIZE_E;
  10172. }
  10173. break;
  10174. #endif /* !NO_RSA */
  10175. #ifdef HAVE_ECC
  10176. case ECDSAk:
  10177. if (ssl->options.minEccKeySz < 0 ||
  10178. args->dCert->pubKeySize <
  10179. (word16)ssl->options.minEccKeySz) {
  10180. WOLFSSL_MSG(
  10181. "ECC key size in cert chain error");
  10182. ret = ECC_KEY_SIZE_E;
  10183. }
  10184. break;
  10185. #endif /* HAVE_ECC */
  10186. #ifdef HAVE_ED25519
  10187. case ED25519k:
  10188. if (ssl->options.minEccKeySz < 0 ||
  10189. ED25519_KEY_SIZE < (word16)ssl->options.minEccKeySz) {
  10190. WOLFSSL_MSG(
  10191. "ECC key size in cert chain error");
  10192. ret = ECC_KEY_SIZE_E;
  10193. }
  10194. break;
  10195. #endif /* HAVE_ED25519 */
  10196. #ifdef HAVE_ED448
  10197. case ED448k:
  10198. if (ssl->options.minEccKeySz < 0 ||
  10199. ED448_KEY_SIZE < (word16)ssl->options.minEccKeySz) {
  10200. WOLFSSL_MSG(
  10201. "ECC key size in cert chain error");
  10202. ret = ECC_KEY_SIZE_E;
  10203. }
  10204. break;
  10205. #endif /* HAVE_ED448 */
  10206. default:
  10207. WOLFSSL_MSG("Key size not checked");
  10208. /* key not being checked for size if not in
  10209. switch */
  10210. break;
  10211. }
  10212. return ret;
  10213. }
  10214. int ProcessPeerCerts(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  10215. word32 totalSz)
  10216. {
  10217. int ret = 0;
  10218. #ifdef WOLFSSL_ASYNC_CRYPT
  10219. ProcPeerCertArgs* args = (ProcPeerCertArgs*)ssl->async.args;
  10220. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  10221. (void)sizeof(args_test);
  10222. #elif defined(WOLFSSL_NONBLOCK_OCSP)
  10223. ProcPeerCertArgs* args = ssl->nonblockarg;
  10224. #elif defined(WOLFSSL_SMALL_STACK)
  10225. ProcPeerCertArgs* args = NULL;
  10226. #else
  10227. ProcPeerCertArgs args[1];
  10228. #endif
  10229. byte* subjectHash = NULL;
  10230. int alreadySigner = 0;
  10231. WOLFSSL_ENTER("ProcessPeerCerts");
  10232. #ifdef WOLFSSL_ASYNC_CRYPT
  10233. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  10234. if (ret != WC_NOT_PENDING_E) {
  10235. /* Check for error */
  10236. if (ret < 0)
  10237. goto exit_ppc;
  10238. }
  10239. else
  10240. #elif defined(WOLFSSL_NONBLOCK_OCSP)
  10241. if (args == NULL) {
  10242. args = (ProcPeerCertArgs*)XMALLOC(
  10243. sizeof(ProcPeerCertArgs), ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  10244. if (args == NULL) {
  10245. ERROR_OUT(MEMORY_E, exit_ppc);
  10246. }
  10247. }
  10248. if (ssl->nonblockarg == NULL) /* new args */
  10249. #elif defined(WOLFSSL_SMALL_STACK)
  10250. args = (ProcPeerCertArgs*)XMALLOC(
  10251. sizeof(ProcPeerCertArgs), ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  10252. if (args == NULL) {
  10253. ERROR_OUT(MEMORY_E, exit_ppc);
  10254. }
  10255. #endif
  10256. {
  10257. /* Reset state */
  10258. ret = 0;
  10259. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  10260. XMEMSET(args, 0, sizeof(ProcPeerCertArgs));
  10261. args->idx = *inOutIdx;
  10262. args->begin = *inOutIdx;
  10263. #ifdef WOLFSSL_ASYNC_CRYPT
  10264. ssl->async.freeArgs = FreeProcPeerCertArgs;
  10265. #elif defined(WOLFSSL_NONBLOCK_OCSP)
  10266. ssl->nonblockarg = args;
  10267. #endif
  10268. }
  10269. switch (ssl->options.asyncState)
  10270. {
  10271. case TLS_ASYNC_BEGIN:
  10272. {
  10273. word32 listSz;
  10274. #ifdef WOLFSSL_CALLBACKS
  10275. if (ssl->hsInfoOn)
  10276. AddPacketName(ssl, "Certificate");
  10277. if (ssl->toInfoOn)
  10278. AddLateName("Certificate", &ssl->timeoutInfo);
  10279. #endif
  10280. #ifdef WOLFSSL_TLS13
  10281. if (ssl->options.tls1_3) {
  10282. byte ctxSz;
  10283. /* Certificate Request Context */
  10284. if ((args->idx - args->begin) + OPAQUE8_LEN > totalSz)
  10285. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10286. ctxSz = *(input + args->idx);
  10287. args->idx++;
  10288. if ((args->idx - args->begin) + ctxSz > totalSz)
  10289. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10290. #ifndef NO_WOLFSSL_CLIENT
  10291. /* Must be empty when received from server. */
  10292. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  10293. if (ctxSz != 0) {
  10294. ERROR_OUT(INVALID_CERT_CTX_E, exit_ppc);
  10295. }
  10296. }
  10297. #endif
  10298. #ifndef NO_WOLFSSL_SERVER
  10299. /* Must contain value sent in request. */
  10300. if (ssl->options.side == WOLFSSL_SERVER_END) {
  10301. if (ssl->options.handShakeState != HANDSHAKE_DONE &&
  10302. ctxSz != 0) {
  10303. ERROR_OUT(INVALID_CERT_CTX_E, exit_ppc);
  10304. }
  10305. else if (ssl->options.handShakeState == HANDSHAKE_DONE) {
  10306. #ifdef WOLFSSL_POST_HANDSHAKE_AUTH
  10307. CertReqCtx* curr = ssl->certReqCtx;
  10308. CertReqCtx* prev = NULL;
  10309. while (curr != NULL) {
  10310. if ((ctxSz == curr->len) &&
  10311. XMEMCMP(&curr->ctx, input + args->idx, ctxSz)
  10312. == 0) {
  10313. if (prev != NULL)
  10314. prev->next = curr->next;
  10315. else
  10316. ssl->certReqCtx = curr->next;
  10317. XFREE(curr, ssl->heap,
  10318. DYNAMIC_TYPE_TMP_BUFFER);
  10319. break;
  10320. }
  10321. prev = curr;
  10322. curr = curr->next;
  10323. }
  10324. if (curr == NULL)
  10325. #endif
  10326. ERROR_OUT(INVALID_CERT_CTX_E, exit_ppc);
  10327. }
  10328. }
  10329. #endif
  10330. args->idx += ctxSz;
  10331. /* allocate buffer for cert extensions */
  10332. args->exts = (buffer*)XMALLOC(sizeof(buffer) *
  10333. MAX_CHAIN_DEPTH, ssl->heap, DYNAMIC_TYPE_CERT_EXT);
  10334. if (args->exts == NULL) {
  10335. ERROR_OUT(MEMORY_E, exit_ppc);
  10336. }
  10337. }
  10338. #endif
  10339. /* allocate buffer for certs */
  10340. args->certs = (buffer*)XMALLOC(sizeof(buffer) * MAX_CHAIN_DEPTH,
  10341. ssl->heap, DYNAMIC_TYPE_DER);
  10342. if (args->certs == NULL) {
  10343. ERROR_OUT(MEMORY_E, exit_ppc);
  10344. }
  10345. XMEMSET(args->certs, 0, sizeof(buffer) * MAX_CHAIN_DEPTH);
  10346. /* Certificate List */
  10347. if ((args->idx - args->begin) + OPAQUE24_LEN > totalSz) {
  10348. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10349. }
  10350. c24to32(input + args->idx, &listSz);
  10351. args->idx += OPAQUE24_LEN;
  10352. if (listSz > MAX_CERTIFICATE_SZ) {
  10353. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10354. }
  10355. if ((args->idx - args->begin) + listSz != totalSz) {
  10356. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10357. }
  10358. WOLFSSL_MSG("Loading peer's cert chain");
  10359. /* first put cert chain into buffer so can verify top down
  10360. we're sent bottom up */
  10361. while (listSz) {
  10362. word32 certSz;
  10363. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10364. if (args->totalCerts >= MAX_CHAIN_DEPTH) {
  10365. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  10366. ssl->peerVerifyRet = X509_V_ERR_CERT_CHAIN_TOO_LONG;
  10367. ret = MAX_CHAIN_ERROR;
  10368. WOLFSSL_MSG("Too many certs for MAX_CHAIN_DEPTH");
  10369. break; /* break out to avoid reading more certs then buffer
  10370. * can hold */
  10371. }
  10372. #else
  10373. if (args->totalCerts >= ssl->verifyDepth ||
  10374. args->totalCerts >= MAX_CHAIN_DEPTH) {
  10375. ERROR_OUT(MAX_CHAIN_ERROR, exit_ppc);
  10376. }
  10377. #endif
  10378. if ((args->idx - args->begin) + OPAQUE24_LEN > totalSz) {
  10379. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10380. }
  10381. c24to32(input + args->idx, &certSz);
  10382. args->idx += OPAQUE24_LEN;
  10383. if ((args->idx - args->begin) + certSz > totalSz) {
  10384. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10385. }
  10386. args->certs[args->totalCerts].length = certSz;
  10387. args->certs[args->totalCerts].buffer = input + args->idx;
  10388. #ifdef SESSION_CERTS
  10389. AddSessionCertToChain(&ssl->session.chain,
  10390. input + args->idx, certSz);
  10391. #endif /* SESSION_CERTS */
  10392. args->idx += certSz;
  10393. listSz -= certSz + CERT_HEADER_SZ;
  10394. #ifdef WOLFSSL_TLS13
  10395. /* Extensions */
  10396. if (ssl->options.tls1_3) {
  10397. word16 extSz;
  10398. if (args->exts == NULL) {
  10399. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10400. }
  10401. if ((args->idx - args->begin) + OPAQUE16_LEN > totalSz) {
  10402. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10403. }
  10404. ato16(input + args->idx, &extSz);
  10405. args->idx += OPAQUE16_LEN;
  10406. if ((args->idx - args->begin) + extSz > totalSz) {
  10407. ERROR_OUT(BUFFER_ERROR, exit_ppc);
  10408. }
  10409. /* Store extension data info for later processing. */
  10410. args->exts[args->totalCerts].length = extSz;
  10411. args->exts[args->totalCerts].buffer = input + args->idx;
  10412. args->idx += extSz;
  10413. listSz -= extSz + OPAQUE16_LEN;
  10414. ret = TLSX_Parse(ssl, args->exts[args->totalCerts].buffer,
  10415. (word16)args->exts[args->totalCerts].length,
  10416. certificate, NULL);
  10417. if (ret < 0) {
  10418. ERROR_OUT(ret, exit_ppc);
  10419. }
  10420. }
  10421. #endif
  10422. args->totalCerts++;
  10423. WOLFSSL_MSG("\tPut another cert into chain");
  10424. } /* while (listSz) */
  10425. args->count = args->totalCerts;
  10426. args->certIdx = 0; /* select peer cert (first one) */
  10427. if (args->count == 0 && (ssl->options.mutualAuth ||
  10428. (ssl->options.failNoCert && IsAtLeastTLSv1_3(ssl->version))) &&
  10429. ssl->options.side == WOLFSSL_SERVER_END) {
  10430. ret = NO_PEER_CERT;
  10431. DoCertFatalAlert(ssl, ret);
  10432. }
  10433. args->dCertInit = 0;
  10434. #ifndef WOLFSSL_SMALL_CERT_VERIFY
  10435. args->dCert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), ssl->heap,
  10436. DYNAMIC_TYPE_DCERT);
  10437. if (args->dCert == NULL) {
  10438. ERROR_OUT(MEMORY_E, exit_ppc);
  10439. }
  10440. XMEMSET(args->dCert, 0, sizeof(DecodedCert));
  10441. #endif
  10442. /* Advance state and proceed */
  10443. ssl->options.asyncState = TLS_ASYNC_BUILD;
  10444. } /* case TLS_ASYNC_BEGIN */
  10445. FALL_THROUGH;
  10446. case TLS_ASYNC_BUILD:
  10447. {
  10448. if (args->count > 0) {
  10449. /* check for trusted peer and get untrustedDepth */
  10450. #if defined(WOLFSSL_TRUST_PEER_CERT) || defined(OPENSSL_EXTRA)
  10451. if (args->certIdx == 0) {
  10452. #ifdef WOLFSSL_TRUST_PEER_CERT
  10453. TrustedPeerCert* tp;
  10454. int matchType = WC_MATCH_NAME;
  10455. #endif
  10456. ret = ProcessPeerCertParse(ssl, args, CERT_TYPE, NO_VERIFY,
  10457. &subjectHash, &alreadySigner);
  10458. if (ret != 0)
  10459. goto exit_ppc;
  10460. #ifdef OPENSSL_EXTRA
  10461. /* Determine untrusted depth */
  10462. if (!alreadySigner && (!args->dCert ||
  10463. !args->dCertInit || !args->dCert->selfSigned)) {
  10464. args->untrustedDepth = 1;
  10465. }
  10466. #endif
  10467. #ifdef WOLFSSL_TRUST_PEER_CERT
  10468. #ifndef NO_SKID
  10469. if (args->dCert->extAuthKeyIdSet)
  10470. matchType = WC_MATCH_SKID;
  10471. #endif
  10472. tp = GetTrustedPeer(SSL_CM(ssl), subjectHash, matchType);
  10473. WOLFSSL_MSG("Checking for trusted peer cert");
  10474. if (tp && MatchTrustedPeer(tp, args->dCert)) {
  10475. WOLFSSL_MSG("Found matching trusted peer cert");
  10476. args->haveTrustPeer = 1;
  10477. }
  10478. else if (tp == NULL) {
  10479. /* no trusted peer cert */
  10480. WOLFSSL_MSG("No matching trusted peer cert. Checking CAs");
  10481. }
  10482. else {
  10483. WOLFSSL_MSG("Trusted peer cert did not match!");
  10484. }
  10485. if (!args->haveTrustPeer)
  10486. #endif
  10487. {
  10488. /* free cert if not trusted peer */
  10489. FreeDecodedCert(args->dCert);
  10490. args->dCertInit = 0;
  10491. }
  10492. }
  10493. #endif /* WOLFSSL_TRUST_PEER_CERT || OPENSSL_EXTRA */
  10494. /* check certificate up to peer's first */
  10495. /* do not verify chain if trusted peer cert found */
  10496. while (args->count > 1
  10497. #ifdef WOLFSSL_TRUST_PEER_CERT
  10498. && !args->haveTrustPeer
  10499. #endif /* WOLFSSL_TRUST_PEER_CERT */
  10500. ) {
  10501. int skipAddCA = 0;
  10502. /* select last certificate */
  10503. args->certIdx = args->count - 1;
  10504. ret = ProcessPeerCertParse(ssl, args, CERT_TYPE,
  10505. !ssl->options.verifyNone ? VERIFY : NO_VERIFY,
  10506. &subjectHash, &alreadySigner);
  10507. #if defined(OPENSSL_ALL) && defined(WOLFSSL_CERT_GEN) && \
  10508. (defined(WOLFSSL_CERT_REQ) || defined(WOLFSSL_CERT_EXT)) && \
  10509. !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  10510. if (ret == ASN_NO_SIGNER_E) {
  10511. WOLFSSL_MSG("try to load certificate if hash dir is set");
  10512. ret = LoadCertByIssuer(SSL_STORE(ssl),
  10513. (WOLFSSL_X509_NAME*)args->dCert->issuerName,
  10514. X509_LU_X509);
  10515. if (ret == WOLFSSL_SUCCESS) {
  10516. FreeDecodedCert(args->dCert);
  10517. args->dCertInit = 0;
  10518. /* once again */
  10519. ret = ProcessPeerCertParse(ssl, args, CERT_TYPE,
  10520. !ssl->options.verifyNone ? VERIFY : NO_VERIFY,
  10521. &subjectHash, &alreadySigner);
  10522. } else
  10523. ret = ASN_NO_SIGNER_E;
  10524. }
  10525. #endif
  10526. #ifdef WOLFSSL_ASYNC_CRYPT
  10527. if (ret == WC_PENDING_E)
  10528. goto exit_ppc;
  10529. #endif
  10530. if (ret == 0) {
  10531. ret = ProcessPeerCertCheckKey(ssl, args);
  10532. }
  10533. if (ret == 0 && args->dCert->isCA == 0) {
  10534. WOLFSSL_MSG("Chain cert is not a CA, not adding as one");
  10535. }
  10536. else if (ret == 0 && ssl->options.verifyNone) {
  10537. WOLFSSL_MSG("Chain cert not verified by option, "
  10538. "not adding as CA");
  10539. }
  10540. else if (ret == 0) {
  10541. #ifdef OPENSSL_EXTRA
  10542. if (args->certIdx > args->untrustedDepth) {
  10543. args->untrustedDepth = (char)args->certIdx + 1;
  10544. }
  10545. #endif
  10546. if (alreadySigner) {
  10547. WOLFSSL_MSG("Verified CA from chain and already had it");
  10548. }
  10549. }
  10550. else {
  10551. WOLFSSL_MSG("Failed to verify CA from chain");
  10552. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10553. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  10554. ssl->peerVerifyRet = X509_V_ERR_INVALID_CA;
  10555. #endif
  10556. }
  10557. #if defined(HAVE_OCSP) || defined(HAVE_CRL)
  10558. if (ret == 0) {
  10559. int doCrlLookup = 1;
  10560. #ifdef HAVE_OCSP
  10561. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  10562. if (ssl->status_request_v2) {
  10563. ret = TLSX_CSR2_InitRequests(ssl->extensions,
  10564. args->dCert, 0, ssl->heap);
  10565. }
  10566. else /* skips OCSP and force CRL check */
  10567. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  10568. if (SSL_CM(ssl)->ocspEnabled &&
  10569. SSL_CM(ssl)->ocspCheckAll) {
  10570. WOLFSSL_MSG("Doing Non Leaf OCSP check");
  10571. ret = CheckCertOCSP_ex(SSL_CM(ssl)->ocsp,
  10572. args->dCert, NULL, ssl);
  10573. #ifdef WOLFSSL_NONBLOCK_OCSP
  10574. if (ret == OCSP_WANT_READ) {
  10575. args->lastErr = ret;
  10576. goto exit_ppc;
  10577. }
  10578. #endif
  10579. doCrlLookup = (ret == OCSP_CERT_UNKNOWN);
  10580. if (ret != 0) {
  10581. doCrlLookup = 0;
  10582. WOLFSSL_MSG("\tOCSP Lookup not ok");
  10583. }
  10584. }
  10585. #endif /* HAVE_OCSP */
  10586. #ifdef HAVE_CRL
  10587. if (ret == 0 && doCrlLookup &&
  10588. SSL_CM(ssl)->crlEnabled &&
  10589. SSL_CM(ssl)->crlCheckAll) {
  10590. WOLFSSL_MSG("Doing Non Leaf CRL check");
  10591. ret = CheckCertCRL(SSL_CM(ssl)->crl, args->dCert);
  10592. #ifdef WOLFSSL_NONBLOCK_OCSP
  10593. if (ret == OCSP_WANT_READ) {
  10594. args->lastErr = ret;
  10595. goto exit_ppc;
  10596. }
  10597. #endif
  10598. if (ret != 0) {
  10599. WOLFSSL_MSG("\tCRL check not ok");
  10600. }
  10601. }
  10602. #endif /* HAVE_CRL */
  10603. (void)doCrlLookup;
  10604. }
  10605. #endif /* HAVE_OCSP || HAVE_CRL */
  10606. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10607. if (ret == 0 &&
  10608. /* extend the limit "+1" until reaching
  10609. * an ultimately trusted issuer.*/
  10610. args->count > (ssl->verifyDepth + 1)) {
  10611. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  10612. ssl->peerVerifyRet = X509_V_ERR_CERT_CHAIN_TOO_LONG;
  10613. ret = MAX_CHAIN_ERROR;
  10614. }
  10615. #endif
  10616. /* Do verify callback */
  10617. ret = DoVerifyCallback(SSL_CM(ssl), ssl, ret, args);
  10618. if (ssl->options.verifyNone &&
  10619. (ret == CRL_MISSING || ret == CRL_CERT_REVOKED ||
  10620. ret == CRL_CERT_DATE_ERR)) {
  10621. WOLFSSL_MSG("Ignoring CRL problem based on verify setting");
  10622. ret = ssl->error = 0;
  10623. }
  10624. #ifdef WOLFSSL_ALT_CERT_CHAINS
  10625. /* For alternate cert chain, its okay for a CA cert to fail
  10626. with ASN_NO_SIGNER_E here. The "alternate" certificate
  10627. chain mode only requires that the peer certificate
  10628. validate to a trusted CA */
  10629. if (ret != 0 && args->dCert->isCA) {
  10630. if (ret == ASN_NO_SIGNER_E) {
  10631. if (!ssl->options.usingAltCertChain) {
  10632. WOLFSSL_MSG("Trying alternate cert chain");
  10633. ssl->options.usingAltCertChain = 1;
  10634. }
  10635. ret = 0; /* clear errors and continue */
  10636. args->verifyErr = 0;
  10637. }
  10638. /* do not add to certificate manager */
  10639. skipAddCA = 1;
  10640. }
  10641. #endif /* WOLFSSL_ALT_CERT_CHAINS */
  10642. /* If valid CA then add to Certificate Manager */
  10643. if (ret == 0 && args->dCert->isCA &&
  10644. !ssl->options.verifyNone && !skipAddCA) {
  10645. buffer* cert = &args->certs[args->certIdx];
  10646. /* Is valid CA */
  10647. #if defined(SESSION_CERTS) && defined(WOLFSSL_ALT_CERT_CHAINS)
  10648. /* if using alternate chain, store the cert used */
  10649. if (ssl->options.usingAltCertChain) {
  10650. AddSessionCertToChain(&ssl->session.altChain,
  10651. cert->buffer, cert->length);
  10652. }
  10653. #endif /* SESSION_CERTS && WOLFSSL_ALT_CERT_CHAINS */
  10654. if (!alreadySigner) {
  10655. DerBuffer* add = NULL;
  10656. ret = AllocDer(&add, cert->length, CA_TYPE, ssl->heap);
  10657. if (ret < 0)
  10658. goto exit_ppc;
  10659. XMEMCPY(add->buffer, cert->buffer, cert->length);
  10660. /* CA already verified above in ParseCertRelative */
  10661. WOLFSSL_MSG("Adding CA from chain");
  10662. ret = AddCA(SSL_CM(ssl), &add, WOLFSSL_CHAIN_CA,
  10663. NO_VERIFY);
  10664. if (ret == WOLFSSL_SUCCESS) {
  10665. ret = 0;
  10666. }
  10667. }
  10668. }
  10669. /* Handle error codes */
  10670. if (ret != 0) {
  10671. if (!ssl->options.verifyNone) {
  10672. DoCertFatalAlert(ssl, ret);
  10673. }
  10674. ssl->error = ret; /* Report SSL error */
  10675. if (args->lastErr == 0) {
  10676. args->lastErr = ret; /* save error from last time */
  10677. ret = 0; /* reset error */
  10678. }
  10679. }
  10680. FreeDecodedCert(args->dCert);
  10681. args->dCertInit = 0;
  10682. args->count--;
  10683. } /* while (count > 0 && !args->haveTrustPeer) */
  10684. } /* if (count > 0) */
  10685. /* Check for error */
  10686. if (ret != 0) {
  10687. goto exit_ppc;
  10688. }
  10689. /* Advance state and proceed */
  10690. ssl->options.asyncState = TLS_ASYNC_DO;
  10691. } /* case TLS_ASYNC_BUILD */
  10692. FALL_THROUGH;
  10693. case TLS_ASYNC_DO:
  10694. {
  10695. /* peer's, may not have one if blank client cert sent by TLSv1.2 */
  10696. if (args->count > 0) {
  10697. WOLFSSL_MSG("Verifying Peer's cert");
  10698. /* select peer cert (first one) */
  10699. args->certIdx = 0;
  10700. ret = ProcessPeerCertParse(ssl, args, CERT_TYPE,
  10701. !ssl->options.verifyNone ? VERIFY : NO_VERIFY,
  10702. &subjectHash, &alreadySigner);
  10703. #if defined(OPENSSL_ALL) && defined(WOLFSSL_CERT_GEN) && \
  10704. (defined(WOLFSSL_CERT_REQ) || defined(WOLFSSL_CERT_EXT)) && \
  10705. !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  10706. if (ret == ASN_NO_SIGNER_E) {
  10707. WOLFSSL_MSG("try to load certificate if hash dir is set");
  10708. ret = LoadCertByIssuer(SSL_STORE(ssl),
  10709. (WOLFSSL_X509_NAME*)args->dCert->issuerName,
  10710. X509_LU_X509);
  10711. if (ret == WOLFSSL_SUCCESS) {
  10712. FreeDecodedCert(args->dCert);
  10713. args->dCertInit = 0;
  10714. /* once again */
  10715. ret = ProcessPeerCertParse(ssl, args, CERT_TYPE,
  10716. !ssl->options.verifyNone ? VERIFY : NO_VERIFY,
  10717. &subjectHash, &alreadySigner);
  10718. } else
  10719. ret = ASN_NO_SIGNER_E;
  10720. }
  10721. #endif
  10722. #ifdef WOLFSSL_ASYNC_CRYPT
  10723. if (ret == WC_PENDING_E)
  10724. goto exit_ppc;
  10725. #endif
  10726. if (ret == 0) {
  10727. WOLFSSL_MSG("Verified Peer's cert");
  10728. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10729. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  10730. ssl->peerVerifyRet = X509_V_OK;
  10731. #endif
  10732. #if defined(SESSION_CERTS) && defined(WOLFSSL_ALT_CERT_CHAINS)
  10733. /* if using alternate chain, store the cert used */
  10734. if (ssl->options.usingAltCertChain) {
  10735. buffer* cert = &args->certs[args->certIdx];
  10736. AddSessionCertToChain(&ssl->session.altChain,
  10737. cert->buffer, cert->length);
  10738. }
  10739. #endif /* SESSION_CERTS && WOLFSSL_ALT_CERT_CHAINS */
  10740. /* Check peer's certificate version number. TLS 1.2 / 1.3
  10741. * requires the clients certificate be version 3 unless a
  10742. * different version has been negotiated using RFC 7250 */
  10743. if (ssl->options.side == WOLFSSL_SERVER_END) {
  10744. if (args->dCert->version != WOLFSSL_X509_V3) {
  10745. WOLFSSL_MSG("Peers certificate was not version 3!");
  10746. args->lastErr = ASN_VERSION_E;
  10747. /* setting last error but not considering it fatal
  10748. * giving the user a chance to override */
  10749. }
  10750. }
  10751. /* check if fatal error */
  10752. if (args->verifyErr) {
  10753. args->fatal = 1;
  10754. ret = args->lastErr;
  10755. }
  10756. else {
  10757. args->fatal = 0;
  10758. }
  10759. }
  10760. else if (ret == ASN_PARSE_E || ret == BUFFER_E) {
  10761. WOLFSSL_MSG("Got Peer cert ASN PARSE or BUFFER ERROR");
  10762. #if defined(WOLFSSL_EXTRA_ALERTS) || defined(OPENSSL_EXTRA) || \
  10763. defined(OPENSSL_EXTRA_X509_SMALL)
  10764. DoCertFatalAlert(ssl, ret);
  10765. #endif
  10766. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10767. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  10768. ssl->peerVerifyRet = X509_V_ERR_CERT_REJECTED;
  10769. #endif
  10770. args->fatal = 1;
  10771. }
  10772. else {
  10773. WOLFSSL_MSG("Failed to verify Peer's cert");
  10774. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10775. if (ssl->peerVerifyRet == 0) { /* Return first cert error here */
  10776. if (ret == ASN_BEFORE_DATE_E)
  10777. ssl->peerVerifyRet = X509_V_ERR_CERT_NOT_YET_VALID;
  10778. else if (ret == ASN_AFTER_DATE_E)
  10779. ssl->peerVerifyRet = X509_V_ERR_CERT_HAS_EXPIRED;
  10780. else {
  10781. ssl->peerVerifyRet =
  10782. X509_V_ERR_UNABLE_TO_VERIFY_LEAF_SIGNATURE;
  10783. }
  10784. }
  10785. #endif
  10786. if (ssl->verifyCallback) {
  10787. WOLFSSL_MSG(
  10788. "\tCallback override available, will continue");
  10789. /* check if fatal error */
  10790. args->fatal = (args->verifyErr) ? 1 : 0;
  10791. if (args->fatal)
  10792. DoCertFatalAlert(ssl, ret);
  10793. }
  10794. else {
  10795. WOLFSSL_MSG("\tNo callback override available, fatal");
  10796. args->fatal = 1;
  10797. DoCertFatalAlert(ssl, ret);
  10798. }
  10799. }
  10800. #ifdef HAVE_SECURE_RENEGOTIATION
  10801. if (args->fatal == 0 && !IsAtLeastTLSv1_3(ssl->version)
  10802. && ssl->secure_renegotiation
  10803. && ssl->secure_renegotiation->enabled) {
  10804. if (IsEncryptionOn(ssl, 0)) {
  10805. /* compare against previous time */
  10806. if (ssl->secure_renegotiation->subject_hash_set) {
  10807. if (XMEMCMP(args->dCert->subjectHash,
  10808. ssl->secure_renegotiation->subject_hash,
  10809. KEYID_SIZE) != 0) {
  10810. WOLFSSL_MSG(
  10811. "Peer sent different cert during scr, fatal");
  10812. args->fatal = 1;
  10813. ret = SCR_DIFFERENT_CERT_E;
  10814. }
  10815. }
  10816. }
  10817. /* cache peer's hash */
  10818. if (args->fatal == 0) {
  10819. XMEMCPY(ssl->secure_renegotiation->subject_hash,
  10820. args->dCert->subjectHash, KEYID_SIZE);
  10821. ssl->secure_renegotiation->subject_hash_set = 1;
  10822. }
  10823. }
  10824. #endif /* HAVE_SECURE_RENEGOTIATION */
  10825. } /* if (count > 0) */
  10826. /* Check for error */
  10827. if (args->fatal && ret != 0) {
  10828. goto exit_ppc;
  10829. }
  10830. /* Advance state and proceed */
  10831. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  10832. } /* case TLS_ASYNC_DO */
  10833. FALL_THROUGH;
  10834. case TLS_ASYNC_VERIFY:
  10835. {
  10836. if (args->count > 0) {
  10837. #if defined(HAVE_OCSP) || defined(HAVE_CRL)
  10838. if (args->fatal == 0) {
  10839. int doLookup = 1;
  10840. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  10841. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  10842. if (ssl->status_request) {
  10843. args->fatal = (TLSX_CSR_InitRequest(ssl->extensions,
  10844. args->dCert, ssl->heap) != 0);
  10845. doLookup = 0;
  10846. #if defined(WOLFSSL_TLS13)
  10847. if (ssl->options.tls1_3) {
  10848. TLSX* ext = TLSX_Find(ssl->extensions,
  10849. TLSX_STATUS_REQUEST);
  10850. if (ext != NULL) {
  10851. word32 idx = 0;
  10852. CertificateStatusRequest* csr =
  10853. (CertificateStatusRequest*)ext->data;
  10854. ret = ProcessCSR(ssl, csr->response.buffer,
  10855. &idx, csr->response.length);
  10856. if (ret < 0)
  10857. goto exit_ppc;
  10858. }
  10859. }
  10860. #endif
  10861. }
  10862. /* Ensure a stapling response was seen */
  10863. else if (ssl->options.tls1_3 &&
  10864. SSL_CM(ssl)->ocspMustStaple) {
  10865. ret = OCSP_CERT_UNKNOWN;
  10866. goto exit_ppc;
  10867. }
  10868. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST */
  10869. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  10870. if (ssl->status_request_v2) {
  10871. args->fatal = (TLSX_CSR2_InitRequests(ssl->extensions,
  10872. args->dCert, 1, ssl->heap) != 0);
  10873. doLookup = 0;
  10874. }
  10875. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  10876. }
  10877. #ifdef HAVE_OCSP
  10878. if (doLookup && SSL_CM(ssl)->ocspEnabled) {
  10879. WOLFSSL_MSG("Doing Leaf OCSP check");
  10880. ret = CheckCertOCSP_ex(SSL_CM(ssl)->ocsp,
  10881. args->dCert, NULL, ssl);
  10882. #ifdef WOLFSSL_NONBLOCK_OCSP
  10883. if (ret == OCSP_WANT_READ) {
  10884. goto exit_ppc;
  10885. }
  10886. #endif
  10887. doLookup = (ret == OCSP_CERT_UNKNOWN);
  10888. if (ret != 0) {
  10889. WOLFSSL_MSG("\tOCSP Lookup not ok");
  10890. args->fatal = 0;
  10891. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10892. if (ssl->peerVerifyRet == 0) {
  10893. /* Return first cert error here */
  10894. ssl->peerVerifyRet =
  10895. ret == OCSP_CERT_REVOKED
  10896. ? X509_V_ERR_CERT_REVOKED
  10897. : X509_V_ERR_CERT_REJECTED;
  10898. }
  10899. #endif
  10900. }
  10901. }
  10902. #endif /* HAVE_OCSP */
  10903. #ifdef HAVE_CRL
  10904. if (doLookup && SSL_CM(ssl)->crlEnabled) {
  10905. WOLFSSL_MSG("Doing Leaf CRL check");
  10906. ret = CheckCertCRL(SSL_CM(ssl)->crl, args->dCert);
  10907. #ifdef WOLFSSL_NONBLOCK_OCSP
  10908. if (ret == OCSP_WANT_READ) {
  10909. goto exit_ppc;
  10910. }
  10911. #endif
  10912. if (ret != 0) {
  10913. WOLFSSL_MSG("\tCRL check not ok");
  10914. args->fatal = 0;
  10915. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  10916. if (ssl->peerVerifyRet == 0) {
  10917. /* Return first cert error here */
  10918. ssl->peerVerifyRet =
  10919. ret == CRL_CERT_REVOKED
  10920. ? X509_V_ERR_CERT_REVOKED
  10921. : X509_V_ERR_CERT_REJECTED;;
  10922. }
  10923. #endif
  10924. }
  10925. }
  10926. #endif /* HAVE_CRL */
  10927. (void)doLookup;
  10928. }
  10929. #endif /* HAVE_OCSP || HAVE_CRL */
  10930. #ifdef KEEP_PEER_CERT
  10931. if (args->fatal == 0) {
  10932. int copyRet = 0;
  10933. #ifdef WOLFSSL_POST_HANDSHAKE_AUTH
  10934. if (ssl->options.handShakeDone) {
  10935. FreeX509(&ssl->peerCert);
  10936. InitX509(&ssl->peerCert, 0, ssl->heap);
  10937. }
  10938. else
  10939. #endif
  10940. #ifdef HAVE_SECURE_RENEGOTIATION
  10941. if (ssl->secure_renegotiation &&
  10942. ssl->secure_renegotiation->enabled) {
  10943. /* free old peer cert */
  10944. FreeX509(&ssl->peerCert);
  10945. InitX509(&ssl->peerCert, 0, ssl->heap);
  10946. }
  10947. else
  10948. #endif
  10949. {
  10950. }
  10951. /* set X509 format for peer cert */
  10952. copyRet = CopyDecodedToX509(&ssl->peerCert, args->dCert);
  10953. if (copyRet == MEMORY_E) {
  10954. args->fatal = 1;
  10955. }
  10956. }
  10957. #endif /* KEEP_PEER_CERT */
  10958. #ifndef IGNORE_KEY_EXTENSIONS
  10959. #if defined(OPENSSL_EXTRA)
  10960. /* when compatibility layer is turned on and no verify is
  10961. * set then ignore the certificate key extension */
  10962. if (args->dCert->extKeyUsageSet &&
  10963. args->dCert->extKeyUsageCrit == 0 &&
  10964. ssl->options.verifyNone) {
  10965. WOLFSSL_MSG("Not verifying certificate key usage");
  10966. }
  10967. else
  10968. #endif
  10969. if (args->dCert->extKeyUsageSet) {
  10970. if ((ssl->specs.kea == rsa_kea) &&
  10971. (ssl->options.side == WOLFSSL_CLIENT_END) &&
  10972. (args->dCert->extKeyUsage & KEYUSE_KEY_ENCIPHER) == 0) {
  10973. ret = KEYUSE_ENCIPHER_E;
  10974. }
  10975. if ((ssl->specs.sig_algo == rsa_sa_algo ||
  10976. (ssl->specs.sig_algo == ecc_dsa_sa_algo &&
  10977. !ssl->specs.static_ecdh)) &&
  10978. (args->dCert->extKeyUsage & KEYUSE_DIGITAL_SIG) == 0) {
  10979. WOLFSSL_MSG("KeyUse Digital Sig not set");
  10980. ret = KEYUSE_SIGNATURE_E;
  10981. }
  10982. }
  10983. #if defined(OPENSSL_EXTRA)
  10984. /* when compatibility layer is turned on and no verify is
  10985. * set then ignore the certificate key extension */
  10986. if (args->dCert->extExtKeyUsageSet &&
  10987. args->dCert->extExtKeyUsageCrit == 0 &&
  10988. ssl->options.verifyNone) {
  10989. WOLFSSL_MSG("Not verifying certificate ext key usage");
  10990. }
  10991. else
  10992. #endif
  10993. if (args->dCert->extExtKeyUsageSet) {
  10994. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  10995. if ((args->dCert->extExtKeyUsage &
  10996. (EXTKEYUSE_ANY | EXTKEYUSE_SERVER_AUTH)) == 0) {
  10997. WOLFSSL_MSG("ExtKeyUse Server Auth not set");
  10998. ret = EXTKEYUSE_AUTH_E;
  10999. }
  11000. }
  11001. else {
  11002. if ((args->dCert->extExtKeyUsage &
  11003. (EXTKEYUSE_ANY | EXTKEYUSE_CLIENT_AUTH)) == 0) {
  11004. WOLFSSL_MSG("ExtKeyUse Client Auth not set");
  11005. ret = EXTKEYUSE_AUTH_E;
  11006. }
  11007. }
  11008. }
  11009. #endif /* IGNORE_KEY_EXTENSIONS */
  11010. if (args->fatal) {
  11011. ssl->error = ret;
  11012. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  11013. SendAlert(ssl, alert_fatal, bad_certificate);
  11014. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  11015. ssl->peerVerifyRet = X509_V_ERR_CERT_REJECTED;
  11016. #endif
  11017. goto exit_ppc;
  11018. }
  11019. ssl->options.havePeerCert = 1;
  11020. if (!ssl->options.verifyNone && ssl->buffers.domainName.buffer) {
  11021. #ifndef WOLFSSL_ALLOW_NO_CN_IN_SAN
  11022. /* Per RFC 5280 section 4.2.1.6, "Whenever such identities
  11023. * are to be bound into a certificate, the subject
  11024. * alternative name extension MUST be used." */
  11025. if (args->dCert->altNames) {
  11026. if (CheckForAltNames(args->dCert,
  11027. (char*)ssl->buffers.domainName.buffer,
  11028. NULL) != 1) {
  11029. WOLFSSL_MSG("DomainName match on alt names failed");
  11030. /* try to get peer key still */
  11031. ret = DOMAIN_NAME_MISMATCH;
  11032. }
  11033. }
  11034. else {
  11035. if (MatchDomainName(
  11036. args->dCert->subjectCN,
  11037. args->dCert->subjectCNLen,
  11038. (char*)ssl->buffers.domainName.buffer) == 0) {
  11039. WOLFSSL_MSG("DomainName match on common name failed");
  11040. ret = DOMAIN_NAME_MISMATCH;
  11041. }
  11042. }
  11043. #else /* WOLFSSL_ALL_NO_CN_IN_SAN */
  11044. /* Old behavior. */
  11045. if (MatchDomainName(args->dCert->subjectCN,
  11046. args->dCert->subjectCNLen,
  11047. (char*)ssl->buffers.domainName.buffer) == 0) {
  11048. WOLFSSL_MSG("DomainName match on common name failed");
  11049. if (CheckForAltNames(args->dCert,
  11050. (char*)ssl->buffers.domainName.buffer,
  11051. NULL) != 1) {
  11052. WOLFSSL_MSG(
  11053. "DomainName match on alt names failed too");
  11054. /* try to get peer key still */
  11055. ret = DOMAIN_NAME_MISMATCH;
  11056. }
  11057. }
  11058. #endif /* WOLFSSL_ALL_NO_CN_IN_SAN */
  11059. }
  11060. /* decode peer key */
  11061. switch (args->dCert->keyOID) {
  11062. #ifndef NO_RSA
  11063. case RSAk:
  11064. {
  11065. word32 keyIdx = 0;
  11066. int keyRet = 0;
  11067. if (ssl->peerRsaKey == NULL) {
  11068. keyRet = AllocKey(ssl, DYNAMIC_TYPE_RSA,
  11069. (void**)&ssl->peerRsaKey);
  11070. } else if (ssl->peerRsaKeyPresent) {
  11071. keyRet = ReuseKey(ssl, DYNAMIC_TYPE_RSA,
  11072. ssl->peerRsaKey);
  11073. ssl->peerRsaKeyPresent = 0;
  11074. }
  11075. if (keyRet != 0 || wc_RsaPublicKeyDecode(
  11076. args->dCert->publicKey, &keyIdx, ssl->peerRsaKey,
  11077. args->dCert->pubKeySize) != 0) {
  11078. ret = PEER_KEY_ERROR;
  11079. }
  11080. else {
  11081. ssl->peerRsaKeyPresent = 1;
  11082. #ifdef WOLFSSL_RENESAS_TSIP_TLS
  11083. /* copy encrypted tsip key index into ssl object */
  11084. if (args->dCert->tsip_encRsaKeyIdx) {
  11085. if (!ssl->peerTsipEncRsaKeyIndex) {
  11086. ssl->peerTsipEncRsaKeyIndex = (byte*)XMALLOC(
  11087. TSIP_TLS_ENCPUBKEY_SZ_BY_CERTVRFY,
  11088. ssl->heap, DYNAMIC_TYPE_RSA);
  11089. if (!ssl->peerTsipEncRsaKeyIndex) {
  11090. args->lastErr = MEMORY_E;
  11091. goto exit_ppc;
  11092. }
  11093. }
  11094. XMEMCPY(ssl->peerTsipEncRsaKeyIndex,
  11095. args->dCert->tsip_encRsaKeyIdx,
  11096. TSIP_TLS_ENCPUBKEY_SZ_BY_CERTVRFY);
  11097. }
  11098. #endif
  11099. #ifdef HAVE_PK_CALLBACKS
  11100. #ifndef NO_RSA
  11101. #if defined(HAVE_SECURE_RENEGOTIATION) || \
  11102. defined(WOLFSSL_POST_HANDSHAKE_AUTH)
  11103. if (ssl->buffers.peerRsaKey.buffer) {
  11104. XFREE(ssl->buffers.peerRsaKey.buffer,
  11105. ssl->heap, DYNAMIC_TYPE_RSA);
  11106. ssl->buffers.peerRsaKey.buffer = NULL;
  11107. }
  11108. #endif
  11109. ssl->buffers.peerRsaKey.buffer =
  11110. (byte*)XMALLOC(args->dCert->pubKeySize,
  11111. ssl->heap, DYNAMIC_TYPE_RSA);
  11112. if (ssl->buffers.peerRsaKey.buffer == NULL) {
  11113. ret = MEMORY_ERROR;
  11114. }
  11115. else {
  11116. XMEMCPY(ssl->buffers.peerRsaKey.buffer,
  11117. args->dCert->publicKey,
  11118. args->dCert->pubKeySize);
  11119. ssl->buffers.peerRsaKey.length =
  11120. args->dCert->pubKeySize;
  11121. }
  11122. #endif /* NO_RSA */
  11123. #endif /* HAVE_PK_CALLBACKS */
  11124. }
  11125. /* check size of peer RSA key */
  11126. if (ret == 0 && ssl->peerRsaKeyPresent &&
  11127. !ssl->options.verifyNone &&
  11128. wc_RsaEncryptSize(ssl->peerRsaKey)
  11129. < ssl->options.minRsaKeySz) {
  11130. ret = RSA_KEY_SIZE_E;
  11131. WOLFSSL_MSG("Peer RSA key is too small");
  11132. }
  11133. break;
  11134. }
  11135. #endif /* NO_RSA */
  11136. #ifdef HAVE_ECC
  11137. case ECDSAk:
  11138. {
  11139. int keyRet = 0;
  11140. word32 idx = 0;
  11141. if (ssl->peerEccDsaKey == NULL) {
  11142. /* alloc/init on demand */
  11143. keyRet = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  11144. (void**)&ssl->peerEccDsaKey);
  11145. } else if (ssl->peerEccDsaKeyPresent) {
  11146. keyRet = ReuseKey(ssl, DYNAMIC_TYPE_ECC,
  11147. ssl->peerEccDsaKey);
  11148. ssl->peerEccDsaKeyPresent = 0;
  11149. }
  11150. if (keyRet != 0 ||
  11151. wc_EccPublicKeyDecode(args->dCert->publicKey, &idx,
  11152. ssl->peerEccDsaKey,
  11153. args->dCert->pubKeySize) != 0) {
  11154. ret = PEER_KEY_ERROR;
  11155. }
  11156. else {
  11157. ssl->peerEccDsaKeyPresent = 1;
  11158. #ifdef HAVE_PK_CALLBACKS
  11159. if (ssl->buffers.peerEccDsaKey.buffer)
  11160. XFREE(ssl->buffers.peerEccDsaKey.buffer,
  11161. ssl->heap, DYNAMIC_TYPE_ECC);
  11162. ssl->buffers.peerEccDsaKey.buffer =
  11163. (byte*)XMALLOC(args->dCert->pubKeySize,
  11164. ssl->heap, DYNAMIC_TYPE_ECC);
  11165. if (ssl->buffers.peerEccDsaKey.buffer == NULL) {
  11166. ERROR_OUT(MEMORY_ERROR, exit_ppc);
  11167. }
  11168. else {
  11169. XMEMCPY(ssl->buffers.peerEccDsaKey.buffer,
  11170. args->dCert->publicKey,
  11171. args->dCert->pubKeySize);
  11172. ssl->buffers.peerEccDsaKey.length =
  11173. args->dCert->pubKeySize;
  11174. }
  11175. #endif /* HAVE_PK_CALLBACKS */
  11176. }
  11177. /* check size of peer ECC key */
  11178. if (ret == 0 && ssl->peerEccDsaKeyPresent &&
  11179. !ssl->options.verifyNone &&
  11180. wc_ecc_size(ssl->peerEccDsaKey)
  11181. < ssl->options.minEccKeySz) {
  11182. ret = ECC_KEY_SIZE_E;
  11183. WOLFSSL_MSG("Peer ECC key is too small");
  11184. }
  11185. /* populate curve oid - if missing */
  11186. if (ssl->options.side == WOLFSSL_CLIENT_END && ssl->ecdhCurveOID == 0)
  11187. ssl->ecdhCurveOID = args->dCert->pkCurveOID;
  11188. break;
  11189. }
  11190. #endif /* HAVE_ECC */
  11191. #if defined(HAVE_ED25519) && defined(HAVE_ED25519_KEY_IMPORT)
  11192. case ED25519k:
  11193. {
  11194. int keyRet = 0;
  11195. if (ssl->peerEd25519Key == NULL) {
  11196. /* alloc/init on demand */
  11197. keyRet = AllocKey(ssl, DYNAMIC_TYPE_ED25519,
  11198. (void**)&ssl->peerEd25519Key);
  11199. } else if (ssl->peerEd25519KeyPresent) {
  11200. keyRet = ReuseKey(ssl, DYNAMIC_TYPE_ED25519,
  11201. ssl->peerEd25519Key);
  11202. ssl->peerEd25519KeyPresent = 0;
  11203. }
  11204. if (keyRet != 0 ||
  11205. wc_ed25519_import_public(args->dCert->publicKey,
  11206. args->dCert->pubKeySize,
  11207. ssl->peerEd25519Key)
  11208. != 0) {
  11209. ret = PEER_KEY_ERROR;
  11210. }
  11211. else {
  11212. ssl->peerEd25519KeyPresent = 1;
  11213. #ifdef HAVE_PK_CALLBACKS
  11214. ssl->buffers.peerEd25519Key.buffer =
  11215. (byte*)XMALLOC(args->dCert->pubKeySize,
  11216. ssl->heap, DYNAMIC_TYPE_ED25519);
  11217. if (ssl->buffers.peerEd25519Key.buffer == NULL) {
  11218. ERROR_OUT(MEMORY_ERROR, exit_ppc);
  11219. }
  11220. else {
  11221. XMEMCPY(ssl->buffers.peerEd25519Key.buffer,
  11222. args->dCert->publicKey,
  11223. args->dCert->pubKeySize);
  11224. ssl->buffers.peerEd25519Key.length =
  11225. args->dCert->pubKeySize;
  11226. }
  11227. #endif /*HAVE_PK_CALLBACKS */
  11228. }
  11229. /* check size of peer ECC key */
  11230. if (ret == 0 && ssl->peerEd25519KeyPresent &&
  11231. !ssl->options.verifyNone &&
  11232. ED25519_KEY_SIZE < ssl->options.minEccKeySz) {
  11233. ret = ECC_KEY_SIZE_E;
  11234. WOLFSSL_MSG("Peer ECC key is too small");
  11235. }
  11236. /* populate curve oid - if missing */
  11237. if (ssl->options.side == WOLFSSL_CLIENT_END && ssl->ecdhCurveOID == 0)
  11238. ssl->ecdhCurveOID = ECC_X25519_OID;
  11239. break;
  11240. }
  11241. #endif /* HAVE_ED25519 && HAVE_ED25519_KEY_IMPORT */
  11242. #if defined(HAVE_ED448) && defined(HAVE_ED448_KEY_IMPORT)
  11243. case ED448k:
  11244. {
  11245. int keyRet = 0;
  11246. if (ssl->peerEd448Key == NULL) {
  11247. /* alloc/init on demand */
  11248. keyRet = AllocKey(ssl, DYNAMIC_TYPE_ED448,
  11249. (void**)&ssl->peerEd448Key);
  11250. } else if (ssl->peerEd448KeyPresent) {
  11251. keyRet = ReuseKey(ssl, DYNAMIC_TYPE_ED448,
  11252. ssl->peerEd448Key);
  11253. ssl->peerEd448KeyPresent = 0;
  11254. }
  11255. if (keyRet != 0 ||
  11256. wc_ed448_import_public(args->dCert->publicKey,
  11257. args->dCert->pubKeySize,
  11258. ssl->peerEd448Key) != 0) {
  11259. ret = PEER_KEY_ERROR;
  11260. }
  11261. else {
  11262. ssl->peerEd448KeyPresent = 1;
  11263. #ifdef HAVE_PK_CALLBACKS
  11264. ssl->buffers.peerEd448Key.buffer =
  11265. (byte*)XMALLOC(args->dCert->pubKeySize,
  11266. ssl->heap, DYNAMIC_TYPE_ED448);
  11267. if (ssl->buffers.peerEd448Key.buffer == NULL) {
  11268. ERROR_OUT(MEMORY_ERROR, exit_ppc);
  11269. }
  11270. else {
  11271. XMEMCPY(ssl->buffers.peerEd448Key.buffer,
  11272. args->dCert->publicKey,
  11273. args->dCert->pubKeySize);
  11274. ssl->buffers.peerEd448Key.length =
  11275. args->dCert->pubKeySize;
  11276. }
  11277. #endif /*HAVE_PK_CALLBACKS */
  11278. }
  11279. /* check size of peer ECC key */
  11280. if (ret == 0 && ssl->peerEd448KeyPresent &&
  11281. !ssl->options.verifyNone &&
  11282. ED448_KEY_SIZE < ssl->options.minEccKeySz) {
  11283. ret = ECC_KEY_SIZE_E;
  11284. WOLFSSL_MSG("Peer ECC key is too small");
  11285. }
  11286. /* populate curve oid - if missing */
  11287. if (ssl->options.side == WOLFSSL_CLIENT_END && ssl->ecdhCurveOID == 0)
  11288. ssl->ecdhCurveOID = ECC_X448_OID;
  11289. break;
  11290. }
  11291. #endif /* HAVE_ED448 && HAVE_ED448_KEY_IMPORT */
  11292. default:
  11293. break;
  11294. }
  11295. /* args->dCert free'd in function cleanup after callback */
  11296. } /* if (count > 0) */
  11297. /* Check for error */
  11298. if (args->fatal && ret != 0) {
  11299. goto exit_ppc;
  11300. }
  11301. /* Advance state and proceed */
  11302. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  11303. } /* case TLS_ASYNC_VERIFY */
  11304. FALL_THROUGH;
  11305. case TLS_ASYNC_FINALIZE:
  11306. {
  11307. /* load last error */
  11308. if (args->lastErr != 0 && ret == 0) {
  11309. ret = args->lastErr;
  11310. }
  11311. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_EXTRA_X509_SMALL)
  11312. /* limit compliant with OpenSSL verify Depth + 1
  11313. * OpenSSL tries to expand the chain one longer than limit until
  11314. * reaching an ultimately trusted issuer. Becoming failure if
  11315. * we hit the limit, with X509_V_ERR_CERT_CHAIN_TOO_LONG
  11316. */
  11317. if (args->untrustedDepth > (ssl->options.verifyDepth + 1)) {
  11318. if (ssl->peerVerifyRet == 0) /* Return first cert error here */
  11319. ssl->peerVerifyRet = X509_V_ERR_CERT_CHAIN_TOO_LONG;
  11320. ret = MAX_CHAIN_ERROR;
  11321. }
  11322. #endif
  11323. /* Do verify callback */
  11324. ret = DoVerifyCallback(SSL_CM(ssl), ssl, ret, args);
  11325. if (ssl->options.verifyNone &&
  11326. (ret == CRL_MISSING || ret == CRL_CERT_REVOKED ||
  11327. ret == CRL_CERT_DATE_ERR)) {
  11328. WOLFSSL_MSG("Ignoring CRL problem based on verify setting");
  11329. ret = ssl->error = 0;
  11330. }
  11331. if (ret != 0) {
  11332. if (!ssl->options.verifyNone) {
  11333. DoCertFatalAlert(ssl, ret);
  11334. }
  11335. ssl->error = ret; /* Report SSL error */
  11336. }
  11337. if (ret == 0 && ssl->options.side == WOLFSSL_CLIENT_END) {
  11338. ssl->options.serverState = SERVER_CERT_COMPLETE;
  11339. }
  11340. if (IsEncryptionOn(ssl, 0)) {
  11341. args->idx += ssl->keys.padSz;
  11342. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  11343. if (ssl->options.startedETMRead)
  11344. args->idx += MacSize(ssl);
  11345. #endif
  11346. }
  11347. /* Advance state and proceed */
  11348. ssl->options.asyncState = TLS_ASYNC_END;
  11349. } /* case TLS_ASYNC_FINALIZE */
  11350. FALL_THROUGH;
  11351. case TLS_ASYNC_END:
  11352. {
  11353. /* Set final index */
  11354. *inOutIdx = args->idx;
  11355. break;
  11356. }
  11357. default:
  11358. ret = INPUT_CASE_ERROR;
  11359. break;
  11360. } /* switch(ssl->options.asyncState) */
  11361. exit_ppc:
  11362. WOLFSSL_LEAVE("ProcessPeerCerts", ret);
  11363. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP)
  11364. if (ret == WC_PENDING_E || ret == OCSP_WANT_READ) {
  11365. /* Mark message as not received so it can process again */
  11366. ssl->msgsReceived.got_certificate = 0;
  11367. return ret;
  11368. }
  11369. #endif /* WOLFSSL_ASYNC_CRYPT || WOLFSSL_NONBLOCK_OCSP */
  11370. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP) || \
  11371. defined(WOLFSSL_SMALL_STACK)
  11372. if (args)
  11373. {
  11374. FreeProcPeerCertArgs(ssl, args);
  11375. }
  11376. #else
  11377. FreeProcPeerCertArgs(ssl, args);
  11378. #endif /* WOLFSSL_ASYNC_CRYPT || WOLFSSL_NONBLOCK_OCSP || WOLFSSL_SMALL_STACK */
  11379. #if defined(WOLFSSL_ASYNC_CRYPT)
  11380. #elif defined(WOLFSSL_NONBLOCK_OCSP)
  11381. XFREE(args, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  11382. ssl->nonblockarg = NULL;
  11383. #elif defined(WOLFSSL_SMALL_STACK)
  11384. XFREE(args, ssl->heap, DYNAMIC_TYPE_TMP_BUFFER);
  11385. #endif
  11386. FreeKeyExchange(ssl);
  11387. return ret;
  11388. }
  11389. #endif
  11390. #ifndef WOLFSSL_NO_TLS12
  11391. #if !defined(NO_WOLFSSL_CLIENT) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  11392. /* handle processing of certificate (11) */
  11393. static int DoCertificate(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  11394. word32 size)
  11395. {
  11396. int ret;
  11397. WOLFSSL_START(WC_FUNC_CERTIFICATE_DO);
  11398. WOLFSSL_ENTER("DoCertificate");
  11399. #ifdef SESSION_CERTS
  11400. /* Reset the session cert chain count in case the session resume failed. */
  11401. ssl->session.chain.count = 0;
  11402. #ifdef WOLFSSL_ALT_CERT_CHAINS
  11403. ssl->session.altChain.count = 0;
  11404. #endif
  11405. #endif /* SESSION_CERTS */
  11406. ret = ProcessPeerCerts(ssl, input, inOutIdx, size);
  11407. #ifdef WOLFSSL_EXTRA_ALERTS
  11408. if (ret == BUFFER_ERROR || ret == ASN_PARSE_E)
  11409. SendAlert(ssl, alert_fatal, decode_error);
  11410. #endif
  11411. #ifdef OPENSSL_EXTRA
  11412. ssl->options.serverState = SERVER_CERT_COMPLETE;
  11413. #endif
  11414. WOLFSSL_LEAVE("DoCertificate", ret);
  11415. WOLFSSL_END(WC_FUNC_CERTIFICATE_DO);
  11416. return ret;
  11417. }
  11418. /* handle processing of certificate_status (22) */
  11419. static int DoCertificateStatus(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  11420. word32 size)
  11421. {
  11422. int ret = 0;
  11423. byte status_type;
  11424. word32 status_length;
  11425. WOLFSSL_START(WC_FUNC_CERTIFICATE_STATUS_DO);
  11426. WOLFSSL_ENTER("DoCertificateStatus");
  11427. if (size < ENUM_LEN + OPAQUE24_LEN)
  11428. return BUFFER_ERROR;
  11429. status_type = input[(*inOutIdx)++];
  11430. c24to32(input + *inOutIdx, &status_length);
  11431. *inOutIdx += OPAQUE24_LEN;
  11432. if (size != ENUM_LEN + OPAQUE24_LEN + status_length)
  11433. return BUFFER_ERROR;
  11434. switch (status_type) {
  11435. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  11436. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  11437. /* WOLFSSL_CSR_OCSP overlaps with WOLFSSL_CSR2_OCSP */
  11438. case WOLFSSL_CSR2_OCSP:
  11439. ret = ProcessCSR(ssl, input, inOutIdx, status_length);
  11440. break;
  11441. #endif
  11442. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  11443. case WOLFSSL_CSR2_OCSP_MULTI: {
  11444. OcspRequest* request;
  11445. word32 list_length = status_length;
  11446. byte idx = 0;
  11447. #ifdef WOLFSSL_SMALL_STACK
  11448. CertStatus* status;
  11449. OcspEntry* single;
  11450. OcspResponse* response;
  11451. #else
  11452. CertStatus status[1];
  11453. OcspEntry single[1];
  11454. OcspResponse response[1];
  11455. #endif
  11456. do {
  11457. if (ssl->status_request_v2) {
  11458. ssl->status_request_v2 = 0;
  11459. break;
  11460. }
  11461. return BUFFER_ERROR;
  11462. } while(0);
  11463. #ifdef WOLFSSL_SMALL_STACK
  11464. status = (CertStatus*)XMALLOC(sizeof(CertStatus), ssl->heap,
  11465. DYNAMIC_TYPE_OCSP_STATUS);
  11466. single = (OcspEntry*)XMALLOC(sizeof(OcspEntry), ssl->heap,
  11467. DYNAMIC_TYPE_OCSP_ENTRY);
  11468. response = (OcspResponse*)XMALLOC(sizeof(OcspResponse), ssl->heap,
  11469. DYNAMIC_TYPE_OCSP_REQUEST);
  11470. if (status == NULL || single == NULL || response == NULL) {
  11471. if (status)
  11472. XFREE(status, ssl->heap, DYNAMIC_TYPE_OCSP_STATUS);
  11473. if (single)
  11474. XFREE(single, ssl->heap, DYNAMIC_TYPE_OCSP_ENTRY);
  11475. if (response)
  11476. XFREE(response, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  11477. return MEMORY_ERROR;
  11478. }
  11479. #endif
  11480. while (list_length && ret == 0) {
  11481. if (OPAQUE24_LEN > list_length) {
  11482. ret = BUFFER_ERROR;
  11483. break;
  11484. }
  11485. c24to32(input + *inOutIdx, &status_length);
  11486. *inOutIdx += OPAQUE24_LEN;
  11487. list_length -= OPAQUE24_LEN;
  11488. if (status_length > list_length) {
  11489. ret = BUFFER_ERROR;
  11490. break;
  11491. }
  11492. if (status_length) {
  11493. InitOcspResponse(response, single, status, input +*inOutIdx,
  11494. status_length, ssl->heap);
  11495. if ((OcspResponseDecode(response, SSL_CM(ssl), ssl->heap,
  11496. 0) != 0)
  11497. || (response->responseStatus != OCSP_SUCCESSFUL)
  11498. || (response->single->status->status != CERT_GOOD))
  11499. ret = BAD_CERTIFICATE_STATUS_ERROR;
  11500. while (ret == 0) {
  11501. request = (OcspRequest*)TLSX_CSR2_GetRequest(
  11502. ssl->extensions, status_type, idx++);
  11503. if (request == NULL)
  11504. ret = BAD_CERTIFICATE_STATUS_ERROR;
  11505. else if (CompareOcspReqResp(request, response) == 0)
  11506. break;
  11507. else if (idx == 1) /* server cert must be OK */
  11508. ret = BAD_CERTIFICATE_STATUS_ERROR;
  11509. }
  11510. FreeOcspResponse(response);
  11511. *inOutIdx += status_length;
  11512. list_length -= status_length;
  11513. }
  11514. }
  11515. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  11516. ssl->status_request_v2 = 0;
  11517. #endif
  11518. #ifdef WOLFSSL_SMALL_STACK
  11519. XFREE(status, NULL, DYNAMIC_TYPE_OCSP_STATUS);
  11520. XFREE(single, NULL, DYNAMIC_TYPE_OCSP_ENTRY);
  11521. XFREE(response, NULL, DYNAMIC_TYPE_OCSP_REQUEST);
  11522. #endif
  11523. }
  11524. break;
  11525. #endif
  11526. default:
  11527. ret = BUFFER_ERROR;
  11528. }
  11529. if (ret != 0)
  11530. SendAlert(ssl, alert_fatal, bad_certificate_status_response);
  11531. if (IsEncryptionOn(ssl, 0)) {
  11532. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  11533. if (ssl->options.startedETMRead) {
  11534. word32 digestSz = MacSize(ssl);
  11535. if (*inOutIdx + ssl->keys.padSz + digestSz > size)
  11536. return BUFFER_E;
  11537. *inOutIdx += ssl->keys.padSz + digestSz;
  11538. }
  11539. else
  11540. #endif
  11541. {
  11542. if (*inOutIdx + ssl->keys.padSz > size)
  11543. return BUFFER_E;
  11544. *inOutIdx += ssl->keys.padSz;
  11545. }
  11546. }
  11547. WOLFSSL_LEAVE("DoCertificateStatus", ret);
  11548. WOLFSSL_END(WC_FUNC_CERTIFICATE_STATUS_DO);
  11549. return ret;
  11550. }
  11551. #endif
  11552. #endif /* !WOLFSSL_NO_TLS12 */
  11553. #endif /* !NO_CERTS */
  11554. #ifndef WOLFSSL_NO_TLS12
  11555. static int DoHelloRequest(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  11556. word32 size, word32 totalSz)
  11557. {
  11558. (void)input;
  11559. WOLFSSL_START(WC_FUNC_HELLO_REQUEST_DO);
  11560. WOLFSSL_ENTER("DoHelloRequest");
  11561. if (size) /* must be 0 */
  11562. return BUFFER_ERROR;
  11563. if (IsEncryptionOn(ssl, 0)) {
  11564. /* If size == totalSz then we are in DtlsMsgDrain so no need to worry
  11565. * about padding */
  11566. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  11567. if (ssl->options.startedETMRead) {
  11568. word32 digestSz = MacSize(ssl);
  11569. if (size != totalSz &&
  11570. *inOutIdx + ssl->keys.padSz + digestSz > totalSz)
  11571. return BUFFER_E;
  11572. *inOutIdx += ssl->keys.padSz + digestSz;
  11573. }
  11574. else
  11575. #endif
  11576. {
  11577. /* access beyond input + size should be checked against totalSz */
  11578. if (size != totalSz &&
  11579. *inOutIdx + ssl->keys.padSz > totalSz)
  11580. return BUFFER_E;
  11581. *inOutIdx += ssl->keys.padSz;
  11582. }
  11583. }
  11584. if (ssl->options.side == WOLFSSL_SERVER_END) {
  11585. SendAlert(ssl, alert_fatal, unexpected_message); /* try */
  11586. return FATAL_ERROR;
  11587. }
  11588. #ifdef HAVE_SECURE_RENEGOTIATION
  11589. else if (ssl->secure_renegotiation && ssl->secure_renegotiation->enabled) {
  11590. ssl->secure_renegotiation->startScr = 1;
  11591. WOLFSSL_LEAVE("DoHelloRequest", 0);
  11592. WOLFSSL_END(WC_FUNC_HELLO_REQUEST_DO);
  11593. return 0;
  11594. }
  11595. #endif
  11596. else {
  11597. return SendAlert(ssl, alert_warning, no_renegotiation);
  11598. }
  11599. }
  11600. int DoFinished(WOLFSSL* ssl, const byte* input, word32* inOutIdx, word32 size,
  11601. word32 totalSz, int sniff)
  11602. {
  11603. word32 finishedSz = (ssl->options.tls ? TLS_FINISHED_SZ : FINISHED_SZ);
  11604. WOLFSSL_START(WC_FUNC_FINISHED_DO);
  11605. WOLFSSL_ENTER("DoFinished");
  11606. if (finishedSz != size)
  11607. return BUFFER_ERROR;
  11608. /* check against totalSz
  11609. * If size == totalSz then we are in DtlsMsgDrain so no need to worry about
  11610. * padding */
  11611. if (size != totalSz) {
  11612. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  11613. if (ssl->options.startedETMRead) {
  11614. if (*inOutIdx + size + ssl->keys.padSz + MacSize(ssl) > totalSz)
  11615. return BUFFER_E;
  11616. }
  11617. else
  11618. #endif
  11619. {
  11620. if (*inOutIdx + size + ssl->keys.padSz > totalSz)
  11621. return BUFFER_E;
  11622. }
  11623. }
  11624. #ifdef WOLFSSL_CALLBACKS
  11625. if (ssl->hsInfoOn) AddPacketName(ssl, "Finished");
  11626. if (ssl->toInfoOn) AddLateName("Finished", &ssl->timeoutInfo);
  11627. #endif
  11628. if (sniff == NO_SNIFF) {
  11629. if (XMEMCMP(input + *inOutIdx, &ssl->hsHashes->verifyHashes,size) != 0){
  11630. WOLFSSL_MSG("Verify finished error on hashes");
  11631. #ifdef WOLFSSL_EXTRA_ALERTS
  11632. SendAlert(ssl, alert_fatal, decrypt_error);
  11633. #endif
  11634. return VERIFY_FINISHED_ERROR;
  11635. }
  11636. }
  11637. #ifdef HAVE_SECURE_RENEGOTIATION
  11638. if (ssl->secure_renegotiation) {
  11639. /* save peer's state */
  11640. if (ssl->options.side == WOLFSSL_CLIENT_END)
  11641. XMEMCPY(ssl->secure_renegotiation->server_verify_data,
  11642. input + *inOutIdx, TLS_FINISHED_SZ);
  11643. else
  11644. XMEMCPY(ssl->secure_renegotiation->client_verify_data,
  11645. input + *inOutIdx, TLS_FINISHED_SZ);
  11646. ssl->secure_renegotiation->verifySet = 1;
  11647. }
  11648. #endif
  11649. #if defined(OPENSSL_ALL) || defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_WPAS)
  11650. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  11651. XMEMCPY(ssl->serverFinished,
  11652. input + *inOutIdx, TLS_FINISHED_SZ);
  11653. ssl->serverFinished_len = TLS_FINISHED_SZ;
  11654. }
  11655. else {
  11656. XMEMCPY(ssl->clientFinished,
  11657. input + *inOutIdx, TLS_FINISHED_SZ);
  11658. ssl->clientFinished_len = TLS_FINISHED_SZ;
  11659. }
  11660. #endif
  11661. /* force input exhaustion at ProcessReply consuming padSz */
  11662. *inOutIdx += size + ssl->keys.padSz;
  11663. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  11664. if (ssl->options.startedETMRead)
  11665. *inOutIdx += MacSize(ssl);
  11666. #endif
  11667. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  11668. ssl->options.serverState = SERVER_FINISHED_COMPLETE;
  11669. #ifdef OPENSSL_EXTRA
  11670. ssl->cbmode = SSL_CB_MODE_WRITE;
  11671. ssl->options.clientState = CLIENT_FINISHED_COMPLETE;
  11672. #endif
  11673. if (!ssl->options.resuming) {
  11674. #ifdef OPENSSL_EXTRA
  11675. if (ssl->CBIS != NULL) {
  11676. ssl->CBIS(ssl, SSL_CB_CONNECT_LOOP, SSL_SUCCESS);
  11677. }
  11678. #endif
  11679. ssl->options.handShakeState = HANDSHAKE_DONE;
  11680. ssl->options.handShakeDone = 1;
  11681. }
  11682. }
  11683. else {
  11684. ssl->options.clientState = CLIENT_FINISHED_COMPLETE;
  11685. #ifdef OPENSSL_EXTRA
  11686. ssl->cbmode = SSL_CB_MODE_READ;
  11687. ssl->options.serverState = SERVER_FINISHED_COMPLETE;
  11688. #endif
  11689. if (ssl->options.resuming) {
  11690. #ifdef OPENSSL_EXTRA
  11691. if (ssl->CBIS != NULL) {
  11692. ssl->CBIS(ssl, SSL_CB_ACCEPT_LOOP, SSL_SUCCESS);
  11693. }
  11694. #endif
  11695. ssl->options.handShakeState = HANDSHAKE_DONE;
  11696. ssl->options.handShakeDone = 1;
  11697. }
  11698. }
  11699. #ifdef WOLFSSL_DTLS
  11700. if (ssl->options.dtls) {
  11701. if ((!ssl->options.resuming && ssl->options.side == WOLFSSL_CLIENT_END) ||
  11702. (ssl->options.resuming && ssl->options.side == WOLFSSL_SERVER_END)){
  11703. DtlsMsgPoolReset(ssl);
  11704. ssl->keys.dtls_handshake_number = 0;
  11705. ssl->keys.dtls_expected_peer_handshake_number = 0;
  11706. }
  11707. }
  11708. #endif
  11709. WOLFSSL_LEAVE("DoFinished", 0);
  11710. WOLFSSL_END(WC_FUNC_FINISHED_DO);
  11711. return 0;
  11712. }
  11713. /* Make sure no duplicates, no fast forward, or other problems; 0 on success */
  11714. static int SanityCheckMsgReceived(WOLFSSL* ssl, byte type)
  11715. {
  11716. /* verify not a duplicate, mark received, check state */
  11717. switch (type) {
  11718. #ifndef NO_WOLFSSL_CLIENT
  11719. case hello_request:
  11720. if (ssl->msgsReceived.got_hello_request) {
  11721. WOLFSSL_MSG("Duplicate HelloRequest received");
  11722. return DUPLICATE_MSG_E;
  11723. }
  11724. ssl->msgsReceived.got_hello_request = 1;
  11725. break;
  11726. #endif
  11727. #ifndef NO_WOLFSSL_SERVER
  11728. case client_hello:
  11729. if (ssl->msgsReceived.got_client_hello) {
  11730. WOLFSSL_MSG("Duplicate ClientHello received");
  11731. #ifdef WOLFSSL_EXTRA_ALERTS
  11732. SendAlert(ssl, alert_fatal, unexpected_message);
  11733. #endif
  11734. return DUPLICATE_MSG_E;
  11735. }
  11736. ssl->msgsReceived.got_client_hello = 1;
  11737. break;
  11738. #endif
  11739. #ifndef NO_WOLFSSL_CLIENT
  11740. case server_hello:
  11741. if (ssl->msgsReceived.got_server_hello) {
  11742. WOLFSSL_MSG("Duplicate ServerHello received");
  11743. return DUPLICATE_MSG_E;
  11744. }
  11745. ssl->msgsReceived.got_server_hello = 1;
  11746. break;
  11747. #endif
  11748. #ifndef NO_WOLFSSL_CLIENT
  11749. case hello_verify_request:
  11750. if (ssl->msgsReceived.got_hello_verify_request) {
  11751. WOLFSSL_MSG("Duplicate HelloVerifyRequest received");
  11752. return DUPLICATE_MSG_E;
  11753. }
  11754. ssl->msgsReceived.got_hello_verify_request = 1;
  11755. break;
  11756. #endif
  11757. #ifndef NO_WOLFSSL_CLIENT
  11758. case session_ticket:
  11759. if (ssl->msgsReceived.got_session_ticket) {
  11760. WOLFSSL_MSG("Duplicate SessionTicket received");
  11761. return DUPLICATE_MSG_E;
  11762. }
  11763. ssl->msgsReceived.got_session_ticket = 1;
  11764. break;
  11765. #endif
  11766. case certificate:
  11767. if (ssl->msgsReceived.got_certificate) {
  11768. WOLFSSL_MSG("Duplicate Certificate received");
  11769. return DUPLICATE_MSG_E;
  11770. }
  11771. ssl->msgsReceived.got_certificate = 1;
  11772. #ifndef NO_WOLFSSL_CLIENT
  11773. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  11774. if ( ssl->msgsReceived.got_server_hello == 0) {
  11775. WOLFSSL_MSG("No ServerHello before Cert");
  11776. return OUT_OF_ORDER_E;
  11777. }
  11778. }
  11779. #endif
  11780. #ifndef NO_WOLFSSL_SERVER
  11781. if (ssl->options.side == WOLFSSL_SERVER_END) {
  11782. if ( ssl->msgsReceived.got_client_hello == 0) {
  11783. WOLFSSL_MSG("No ClientHello before Cert");
  11784. return OUT_OF_ORDER_E;
  11785. }
  11786. }
  11787. #endif
  11788. break;
  11789. #ifndef NO_WOLFSSL_CLIENT
  11790. case certificate_status:
  11791. if (ssl->msgsReceived.got_certificate_status) {
  11792. WOLFSSL_MSG("Duplicate CertificateSatatus received");
  11793. return DUPLICATE_MSG_E;
  11794. }
  11795. ssl->msgsReceived.got_certificate_status = 1;
  11796. if (ssl->msgsReceived.got_certificate == 0) {
  11797. WOLFSSL_MSG("No Certificate before CertificateStatus");
  11798. return OUT_OF_ORDER_E;
  11799. }
  11800. if (ssl->msgsReceived.got_server_key_exchange != 0) {
  11801. WOLFSSL_MSG("CertificateStatus after ServerKeyExchange");
  11802. return OUT_OF_ORDER_E;
  11803. }
  11804. break;
  11805. #endif
  11806. #ifndef NO_WOLFSSL_CLIENT
  11807. case server_key_exchange:
  11808. if (ssl->msgsReceived.got_server_key_exchange) {
  11809. WOLFSSL_MSG("Duplicate ServerKeyExchange received");
  11810. return DUPLICATE_MSG_E;
  11811. }
  11812. ssl->msgsReceived.got_server_key_exchange = 1;
  11813. if (ssl->msgsReceived.got_server_hello == 0) {
  11814. WOLFSSL_MSG("No ServerHello before ServerKeyExchange");
  11815. return OUT_OF_ORDER_E;
  11816. }
  11817. if (ssl->msgsReceived.got_certificate_status == 0) {
  11818. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  11819. if (ssl->status_request) {
  11820. int ret;
  11821. WOLFSSL_MSG("No CertificateStatus before ServerKeyExchange");
  11822. if ((ret = TLSX_CSR_ForceRequest(ssl)) != 0)
  11823. return ret;
  11824. }
  11825. #endif
  11826. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  11827. if (ssl->status_request_v2) {
  11828. int ret;
  11829. WOLFSSL_MSG("No CertificateStatus before ServerKeyExchange");
  11830. if ((ret = TLSX_CSR2_ForceRequest(ssl)) != 0)
  11831. return ret;
  11832. }
  11833. #endif
  11834. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) || \
  11835. defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  11836. /* Check that a status request extension was seen as the
  11837. * CertificateStatus wasn't when an OCSP staple is required.
  11838. */
  11839. if (
  11840. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  11841. !ssl->status_request &&
  11842. #endif
  11843. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  11844. !ssl->status_request_v2 &&
  11845. #endif
  11846. SSL_CM(ssl)->ocspMustStaple) {
  11847. return OCSP_CERT_UNKNOWN;
  11848. }
  11849. #endif
  11850. }
  11851. break;
  11852. #endif
  11853. #ifndef NO_WOLFSSL_CLIENT
  11854. case certificate_request:
  11855. if (ssl->msgsReceived.got_certificate_request) {
  11856. WOLFSSL_MSG("Duplicate CertificateRequest received");
  11857. return DUPLICATE_MSG_E;
  11858. }
  11859. ssl->msgsReceived.got_certificate_request = 1;
  11860. break;
  11861. #endif
  11862. #ifndef NO_WOLFSSL_CLIENT
  11863. case server_hello_done:
  11864. if (ssl->msgsReceived.got_server_hello_done) {
  11865. WOLFSSL_MSG("Duplicate ServerHelloDone received");
  11866. return DUPLICATE_MSG_E;
  11867. }
  11868. ssl->msgsReceived.got_server_hello_done = 1;
  11869. if (ssl->msgsReceived.got_certificate == 0) {
  11870. if (ssl->specs.kea == psk_kea ||
  11871. ssl->specs.kea == dhe_psk_kea ||
  11872. ssl->specs.kea == ecdhe_psk_kea ||
  11873. ssl->options.usingAnon_cipher) {
  11874. WOLFSSL_MSG("No Cert required");
  11875. } else {
  11876. WOLFSSL_MSG("No Certificate before ServerHelloDone");
  11877. return OUT_OF_ORDER_E;
  11878. }
  11879. }
  11880. if (ssl->msgsReceived.got_server_key_exchange == 0) {
  11881. int pskNoServerHint = 0; /* not required in this case */
  11882. #ifndef NO_PSK
  11883. if (ssl->specs.kea == psk_kea &&
  11884. ssl->arrays != NULL &&
  11885. ssl->arrays->server_hint[0] == 0)
  11886. pskNoServerHint = 1;
  11887. #endif
  11888. if (ssl->specs.static_ecdh == 1 ||
  11889. ssl->specs.kea == rsa_kea ||
  11890. pskNoServerHint) {
  11891. WOLFSSL_MSG("No KeyExchange required");
  11892. } else {
  11893. WOLFSSL_MSG("No ServerKeyExchange before ServerDone");
  11894. return OUT_OF_ORDER_E;
  11895. }
  11896. }
  11897. break;
  11898. #endif
  11899. #ifndef NO_WOLFSSL_SERVER
  11900. case certificate_verify:
  11901. if (ssl->msgsReceived.got_certificate_verify) {
  11902. WOLFSSL_MSG("Duplicate CertificateVerify received");
  11903. return DUPLICATE_MSG_E;
  11904. }
  11905. ssl->msgsReceived.got_certificate_verify = 1;
  11906. if ( ssl->msgsReceived.got_certificate == 0) {
  11907. WOLFSSL_MSG("No Cert before CertVerify");
  11908. return OUT_OF_ORDER_E;
  11909. }
  11910. break;
  11911. #endif
  11912. #ifndef NO_WOLFSSL_SERVER
  11913. case client_key_exchange:
  11914. if (ssl->msgsReceived.got_client_key_exchange) {
  11915. WOLFSSL_MSG("Duplicate ClientKeyExchange received");
  11916. #ifdef WOLFSSL_EXTRA_ALERTS
  11917. SendAlert(ssl, alert_fatal, unexpected_message);
  11918. #endif
  11919. return DUPLICATE_MSG_E;
  11920. }
  11921. ssl->msgsReceived.got_client_key_exchange = 1;
  11922. if (ssl->msgsReceived.got_client_hello == 0) {
  11923. WOLFSSL_MSG("No ClientHello before ClientKeyExchange");
  11924. return OUT_OF_ORDER_E;
  11925. }
  11926. break;
  11927. #endif
  11928. case finished:
  11929. if (ssl->msgsReceived.got_finished) {
  11930. WOLFSSL_MSG("Duplicate Finished received");
  11931. return DUPLICATE_MSG_E;
  11932. }
  11933. #ifdef WOLFSSL_DTLS
  11934. if (ssl->options.dtls) {
  11935. if (ssl->keys.curEpoch == 0) {
  11936. WOLFSSL_MSG("Finished received with epoch 0");
  11937. return SEQUENCE_ERROR;
  11938. }
  11939. }
  11940. #endif
  11941. ssl->msgsReceived.got_finished = 1;
  11942. if (ssl->msgsReceived.got_change_cipher == 0) {
  11943. WOLFSSL_MSG("Finished received before ChangeCipher");
  11944. #ifdef WOLFSSL_EXTRA_ALERTS
  11945. SendAlert(ssl, alert_fatal, unexpected_message);
  11946. #endif
  11947. return NO_CHANGE_CIPHER_E;
  11948. }
  11949. break;
  11950. case change_cipher_hs:
  11951. if (ssl->msgsReceived.got_change_cipher) {
  11952. WOLFSSL_MSG("Duplicate ChangeCipher received");
  11953. return DUPLICATE_MSG_E;
  11954. }
  11955. /* DTLS is going to ignore the CCS message if the client key
  11956. * exchange message wasn't received yet. */
  11957. if (!ssl->options.dtls)
  11958. ssl->msgsReceived.got_change_cipher = 1;
  11959. #ifndef NO_WOLFSSL_CLIENT
  11960. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  11961. if (!ssl->options.resuming) {
  11962. if (ssl->msgsReceived.got_server_hello_done == 0) {
  11963. WOLFSSL_MSG("No ServerHelloDone before ChangeCipher");
  11964. return OUT_OF_ORDER_E;
  11965. }
  11966. }
  11967. else {
  11968. if (ssl->msgsReceived.got_server_hello == 0) {
  11969. WOLFSSL_MSG("No ServerHello before ChangeCipher on Resume");
  11970. return OUT_OF_ORDER_E;
  11971. }
  11972. }
  11973. #ifdef HAVE_SESSION_TICKET
  11974. if (ssl->expect_session_ticket) {
  11975. WOLFSSL_MSG("Expected session ticket missing");
  11976. #ifdef WOLFSSL_DTLS
  11977. if (ssl->options.dtls)
  11978. return OUT_OF_ORDER_E;
  11979. #endif
  11980. return SESSION_TICKET_EXPECT_E;
  11981. }
  11982. #endif
  11983. }
  11984. #endif
  11985. #ifndef NO_WOLFSSL_SERVER
  11986. if (ssl->options.side == WOLFSSL_SERVER_END) {
  11987. if (!ssl->options.resuming &&
  11988. ssl->msgsReceived.got_client_key_exchange == 0) {
  11989. WOLFSSL_MSG("No ClientKeyExchange before ChangeCipher");
  11990. #ifdef WOLFSSL_EXTRA_ALERTS
  11991. SendAlert(ssl, alert_fatal, unexpected_message);
  11992. #endif
  11993. return OUT_OF_ORDER_E;
  11994. }
  11995. #ifndef NO_CERTS
  11996. if (ssl->options.verifyPeer &&
  11997. ssl->options.havePeerCert) {
  11998. if (!ssl->options.havePeerVerify ||
  11999. !ssl->msgsReceived.got_certificate_verify) {
  12000. WOLFSSL_MSG("client didn't send cert verify");
  12001. #ifdef WOLFSSL_DTLS
  12002. if (ssl->options.dtls)
  12003. return OUT_OF_ORDER_E;
  12004. #endif
  12005. return NO_PEER_VERIFY;
  12006. }
  12007. }
  12008. #endif
  12009. }
  12010. #endif
  12011. if (ssl->options.dtls)
  12012. ssl->msgsReceived.got_change_cipher = 1;
  12013. break;
  12014. default:
  12015. WOLFSSL_MSG("Unknown message type");
  12016. return SANITY_MSG_E;
  12017. }
  12018. return 0;
  12019. }
  12020. static int DoHandShakeMsgType(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  12021. byte type, word32 size, word32 totalSz)
  12022. {
  12023. int ret = 0;
  12024. word32 expectedIdx;
  12025. WOLFSSL_ENTER("DoHandShakeMsgType");
  12026. #ifdef WOLFSSL_TLS13
  12027. if (type == hello_retry_request) {
  12028. return DoTls13HandShakeMsgType(ssl, input, inOutIdx, type, size,
  12029. totalSz);
  12030. }
  12031. #endif
  12032. /* make sure can read the message */
  12033. if (*inOutIdx + size > totalSz) {
  12034. WOLFSSL_MSG("Incomplete Data");
  12035. return INCOMPLETE_DATA;
  12036. }
  12037. expectedIdx = *inOutIdx + size +
  12038. (ssl->keys.encryptionOn ? ssl->keys.padSz : 0);
  12039. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12040. if (ssl->options.startedETMRead && ssl->keys.encryptionOn)
  12041. expectedIdx += MacSize(ssl);
  12042. #endif
  12043. #if !defined(NO_WOLFSSL_SERVER) && \
  12044. defined(HAVE_SECURE_RENEGOTIATION) && \
  12045. defined(HAVE_SERVER_RENEGOTIATION_INFO)
  12046. if (ssl->options.handShakeDone && type == client_hello &&
  12047. ssl->secure_renegotiation &&
  12048. ssl->secure_renegotiation->enabled)
  12049. {
  12050. WOLFSSL_MSG("Reset handshake state");
  12051. XMEMSET(&ssl->msgsReceived, 0, sizeof(MsgsReceived));
  12052. ssl->options.serverState = NULL_STATE;
  12053. ssl->options.clientState = NULL_STATE;
  12054. ssl->options.connectState = CONNECT_BEGIN;
  12055. ssl->options.acceptState = ACCEPT_FIRST_REPLY_DONE;
  12056. ssl->options.handShakeState = NULL_STATE;
  12057. ssl->secure_renegotiation->cache_status = SCR_CACHE_NEEDED;
  12058. ret = InitHandshakeHashes(ssl);
  12059. if (ret != 0)
  12060. return ret;
  12061. }
  12062. #endif
  12063. /* sanity check msg received */
  12064. if ( (ret = SanityCheckMsgReceived(ssl, type)) != 0) {
  12065. WOLFSSL_MSG("Sanity Check on handshake message type received failed");
  12066. return ret;
  12067. }
  12068. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  12069. /* add name later, add on record and handshake header part back on */
  12070. if (ssl->toInfoOn) {
  12071. int add = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  12072. AddPacketInfo(ssl, 0, handshake, input + *inOutIdx - add,
  12073. size + add, READ_PROTO, ssl->heap);
  12074. #ifdef WOLFSSL_CALLBACKS
  12075. AddLateRecordHeader(&ssl->curRL, &ssl->timeoutInfo);
  12076. #endif
  12077. }
  12078. #endif
  12079. if (ssl->options.handShakeState == HANDSHAKE_DONE && type != hello_request){
  12080. WOLFSSL_MSG("HandShake message after handshake complete");
  12081. SendAlert(ssl, alert_fatal, unexpected_message);
  12082. return OUT_OF_ORDER_E;
  12083. }
  12084. if (ssl->options.side == WOLFSSL_CLIENT_END && ssl->options.dtls == 0 &&
  12085. ssl->options.serverState == NULL_STATE && type != server_hello) {
  12086. WOLFSSL_MSG("First server message not server hello");
  12087. SendAlert(ssl, alert_fatal, unexpected_message);
  12088. return OUT_OF_ORDER_E;
  12089. }
  12090. if (ssl->options.side == WOLFSSL_CLIENT_END && ssl->options.dtls &&
  12091. type == server_hello_done &&
  12092. ssl->options.serverState < SERVER_HELLO_COMPLETE) {
  12093. WOLFSSL_MSG("Server hello done received before server hello in DTLS");
  12094. SendAlert(ssl, alert_fatal, unexpected_message);
  12095. return OUT_OF_ORDER_E;
  12096. }
  12097. if (ssl->options.side == WOLFSSL_SERVER_END &&
  12098. ssl->options.clientState == NULL_STATE && type != client_hello) {
  12099. WOLFSSL_MSG("First client message not client hello");
  12100. SendAlert(ssl, alert_fatal, unexpected_message);
  12101. return OUT_OF_ORDER_E;
  12102. }
  12103. /* above checks handshake state */
  12104. /* hello_request not hashed */
  12105. /* Also, skip hashing the client_hello message here for DTLS. It will be
  12106. * hashed later if the DTLS cookie is correct. */
  12107. if (type != hello_request &&
  12108. !(IsDtlsNotSctpMode(ssl) && type == client_hello)
  12109. #ifdef WOLFSSL_ASYNC_CRYPT
  12110. && ssl->error != WC_PENDING_E
  12111. #endif
  12112. #ifdef WOLFSSL_NONBLOCK_OCSP
  12113. && ssl->error != OCSP_WANT_READ
  12114. #endif
  12115. ) {
  12116. ret = HashInput(ssl, input + *inOutIdx, size);
  12117. if (ret != 0) {
  12118. WOLFSSL_MSG("Incomplete handshake hashes");
  12119. return ret;
  12120. }
  12121. }
  12122. #ifdef OPENSSL_EXTRA
  12123. if (ssl->CBIS != NULL){
  12124. ssl->cbmode = SSL_CB_MODE_READ;
  12125. ssl->cbtype = type;
  12126. ssl->CBIS(ssl, SSL_CB_ACCEPT_LOOP, SSL_SUCCESS);
  12127. }
  12128. #endif
  12129. switch (type) {
  12130. case hello_request:
  12131. WOLFSSL_MSG("processing hello request");
  12132. ret = DoHelloRequest(ssl, input, inOutIdx, size, totalSz);
  12133. break;
  12134. #ifndef NO_WOLFSSL_CLIENT
  12135. case hello_verify_request:
  12136. WOLFSSL_MSG("processing hello verify request");
  12137. ret = DoHelloVerifyRequest(ssl, input,inOutIdx, size);
  12138. if (IsEncryptionOn(ssl, 0)) {
  12139. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12140. if (ssl->options.startedETMRead) {
  12141. word32 digestSz = MacSize(ssl);
  12142. if (*inOutIdx + ssl->keys.padSz + digestSz > totalSz)
  12143. return BUFFER_E;
  12144. *inOutIdx += ssl->keys.padSz + digestSz;
  12145. }
  12146. else
  12147. #endif
  12148. {
  12149. /* access beyond input + size should be checked against totalSz
  12150. */
  12151. if (*inOutIdx + ssl->keys.padSz > totalSz)
  12152. return BUFFER_E;
  12153. *inOutIdx += ssl->keys.padSz;
  12154. }
  12155. }
  12156. break;
  12157. case server_hello:
  12158. WOLFSSL_MSG("processing server hello");
  12159. ret = DoServerHello(ssl, input, inOutIdx, size);
  12160. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  12161. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  12162. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  12163. if (ssl->options.resuming || !IsAtLeastTLSv1_2(ssl) ||
  12164. IsAtLeastTLSv1_3(ssl->version)) {
  12165. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP)
  12166. if (ret != WC_PENDING_E && ret != OCSP_WANT_READ)
  12167. #endif
  12168. {
  12169. ssl->options.cacheMessages = 0;
  12170. if (ssl->hsHashes->messages != NULL) {
  12171. XFREE(ssl->hsHashes->messages, ssl->heap,
  12172. DYNAMIC_TYPE_HASHES);
  12173. ssl->hsHashes->messages = NULL;
  12174. }
  12175. }
  12176. }
  12177. #endif
  12178. break;
  12179. #ifndef NO_CERTS
  12180. case certificate_request:
  12181. WOLFSSL_MSG("processing certificate request");
  12182. ret = DoCertificateRequest(ssl, input, inOutIdx, size);
  12183. break;
  12184. #endif
  12185. case server_key_exchange:
  12186. WOLFSSL_MSG("processing server key exchange");
  12187. ret = DoServerKeyExchange(ssl, input, inOutIdx, size);
  12188. break;
  12189. #ifdef HAVE_SESSION_TICKET
  12190. case session_ticket:
  12191. WOLFSSL_MSG("processing session ticket");
  12192. ret = DoSessionTicket(ssl, input, inOutIdx, size);
  12193. break;
  12194. #endif /* HAVE_SESSION_TICKET */
  12195. #endif
  12196. #if !defined(NO_CERTS) && (!defined(NO_WOLFSSL_CLIENT) || \
  12197. !defined(WOLFSSL_NO_CLIENT_AUTH))
  12198. case certificate:
  12199. WOLFSSL_MSG("processing certificate");
  12200. ret = DoCertificate(ssl, input, inOutIdx, size);
  12201. break;
  12202. case certificate_status:
  12203. WOLFSSL_MSG("processing certificate status");
  12204. ret = DoCertificateStatus(ssl, input, inOutIdx, size);
  12205. break;
  12206. #endif
  12207. case server_hello_done:
  12208. WOLFSSL_MSG("processing server hello done");
  12209. #ifdef WOLFSSL_CALLBACKS
  12210. if (ssl->hsInfoOn)
  12211. AddPacketName(ssl, "ServerHelloDone");
  12212. if (ssl->toInfoOn)
  12213. AddLateName("ServerHelloDone", &ssl->timeoutInfo);
  12214. #endif
  12215. ssl->options.serverState = SERVER_HELLODONE_COMPLETE;
  12216. if (IsEncryptionOn(ssl, 0)) {
  12217. *inOutIdx += ssl->keys.padSz;
  12218. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12219. if (ssl->options.startedETMRead)
  12220. *inOutIdx += MacSize(ssl);
  12221. #endif
  12222. }
  12223. if (ssl->options.resuming) {
  12224. WOLFSSL_MSG("Not resuming as thought");
  12225. ssl->options.resuming = 0;
  12226. }
  12227. break;
  12228. case finished:
  12229. WOLFSSL_MSG("processing finished");
  12230. ret = DoFinished(ssl, input, inOutIdx, size, totalSz, NO_SNIFF);
  12231. break;
  12232. #ifndef NO_WOLFSSL_SERVER
  12233. case client_hello:
  12234. WOLFSSL_MSG("processing client hello");
  12235. ret = DoClientHello(ssl, input, inOutIdx, size);
  12236. #if !defined(WOLFSSL_NO_CLIENT_AUTH) && \
  12237. ((defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)) || \
  12238. (defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)))
  12239. if (ssl->options.resuming || !ssl->options.verifyPeer || \
  12240. !IsAtLeastTLSv1_2(ssl) || IsAtLeastTLSv1_3(ssl->version)) {
  12241. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP)
  12242. if (ret != WC_PENDING_E && ret != OCSP_WANT_READ)
  12243. #endif
  12244. {
  12245. ssl->options.cacheMessages = 0;
  12246. if (ssl->hsHashes->messages != NULL) {
  12247. XFREE(ssl->hsHashes->messages, ssl->heap, DYNAMIC_TYPE_HASHES);
  12248. ssl->hsHashes->messages = NULL;
  12249. }
  12250. }
  12251. }
  12252. #endif
  12253. /* If size == totalSz then we are in DtlsMsgDrain so no need to worry
  12254. * about padding */
  12255. if (IsEncryptionOn(ssl, 0)) {
  12256. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12257. if (ssl->options.startedETMRead) {
  12258. word32 digestSz = MacSize(ssl);
  12259. if (size != totalSz &&
  12260. *inOutIdx + ssl->keys.padSz + digestSz > totalSz)
  12261. return BUFFER_E;
  12262. *inOutIdx += ssl->keys.padSz + digestSz;
  12263. }
  12264. else
  12265. #endif
  12266. {
  12267. /* access beyond input + size should be checked against totalSz
  12268. */
  12269. if (size != totalSz &&
  12270. *inOutIdx + ssl->keys.padSz > totalSz)
  12271. return BUFFER_E;
  12272. *inOutIdx += ssl->keys.padSz;
  12273. }
  12274. }
  12275. break;
  12276. case client_key_exchange:
  12277. WOLFSSL_MSG("processing client key exchange");
  12278. ret = DoClientKeyExchange(ssl, input, inOutIdx, size);
  12279. break;
  12280. #if (!defined(NO_RSA) || defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  12281. defined(HAVE_ED448)) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  12282. case certificate_verify:
  12283. WOLFSSL_MSG("processing certificate verify");
  12284. ret = DoCertificateVerify(ssl, input, inOutIdx, size);
  12285. break;
  12286. #endif /* (!NO_RSA || ECC || ED25519 || ED448) && !WOLFSSL_NO_CLIENT_AUTH */
  12287. #endif /* !NO_WOLFSSL_SERVER */
  12288. default:
  12289. WOLFSSL_MSG("Unknown handshake message type");
  12290. ret = UNKNOWN_HANDSHAKE_TYPE;
  12291. break;
  12292. }
  12293. if (ret == 0 && expectedIdx != *inOutIdx) {
  12294. WOLFSSL_MSG("Extra data in handshake message");
  12295. if (!ssl->options.dtls)
  12296. SendAlert(ssl, alert_fatal, decode_error);
  12297. ret = DECODE_E;
  12298. }
  12299. if (ret == 0 && ssl->buffers.inputBuffer.dynamicFlag
  12300. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP)
  12301. /* do not shrink input for async or non-block */
  12302. && ssl->error != WC_PENDING_E && ssl->error != OCSP_WANT_READ
  12303. #endif
  12304. ) {
  12305. if (IsEncryptionOn(ssl, 0)) {
  12306. word32 extra = ssl->keys.padSz;
  12307. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12308. if (ssl->options.startedETMRead)
  12309. extra += MacSize(ssl);
  12310. #endif
  12311. if (extra > ssl->buffers.inputBuffer.idx)
  12312. return BUFFER_E;
  12313. ssl->buffers.inputBuffer.idx -= extra;
  12314. ShrinkInputBuffer(ssl, NO_FORCED_FREE);
  12315. ssl->buffers.inputBuffer.idx += extra;
  12316. }
  12317. else {
  12318. ShrinkInputBuffer(ssl, NO_FORCED_FREE);
  12319. }
  12320. }
  12321. #if defined(WOLFSSL_ASYNC_CRYPT) || defined(WOLFSSL_NONBLOCK_OCSP)
  12322. /* if async, offset index so this msg will be processed again */
  12323. if ((ret == WC_PENDING_E || ret == OCSP_WANT_READ) && *inOutIdx > 0) {
  12324. *inOutIdx -= HANDSHAKE_HEADER_SZ;
  12325. #ifdef WOLFSSL_DTLS
  12326. if (ssl->options.dtls) {
  12327. *inOutIdx -= DTLS_HANDSHAKE_EXTRA;
  12328. }
  12329. #endif
  12330. }
  12331. /* make sure async error is cleared */
  12332. if (ret == 0 && (ssl->error == WC_PENDING_E || ssl->error == OCSP_WANT_READ)) {
  12333. ssl->error = 0;
  12334. }
  12335. #endif /* WOLFSSL_ASYNC_CRYPT || WOLFSSL_NONBLOCK_OCSP */
  12336. #ifdef WOLFSSL_DTLS
  12337. if (ret == 0) {
  12338. if (type == client_hello) {
  12339. /* Advance expected number only if cookie exchange complete */
  12340. if (ssl->msgsReceived.got_client_hello)
  12341. ssl->keys.dtls_expected_peer_handshake_number =
  12342. ssl->keys.dtls_peer_handshake_number + 1;
  12343. }
  12344. else if (type != finished) {
  12345. ssl->keys.dtls_expected_peer_handshake_number++;
  12346. }
  12347. }
  12348. #endif
  12349. WOLFSSL_LEAVE("DoHandShakeMsgType()", ret);
  12350. return ret;
  12351. }
  12352. static int DoHandShakeMsg(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  12353. word32 totalSz)
  12354. {
  12355. int ret = 0;
  12356. word32 inputLength;
  12357. WOLFSSL_ENTER("DoHandShakeMsg()");
  12358. if (ssl->arrays == NULL) {
  12359. byte type;
  12360. word32 size;
  12361. if (GetHandShakeHeader(ssl,input,inOutIdx,&type, &size, totalSz) != 0)
  12362. return PARSE_ERROR;
  12363. ssl->options.handShakeState = type;
  12364. return DoHandShakeMsgType(ssl, input, inOutIdx, type, size, totalSz);
  12365. }
  12366. inputLength = ssl->buffers.inputBuffer.length - *inOutIdx;
  12367. /* If there is a pending fragmented handshake message,
  12368. * pending message size will be non-zero. */
  12369. if (ssl->arrays->pendingMsgSz == 0) {
  12370. byte type;
  12371. word32 size;
  12372. if (GetHandShakeHeader(ssl,input, inOutIdx, &type, &size, totalSz) != 0)
  12373. return PARSE_ERROR;
  12374. /* Cap the maximum size of a handshake message to something reasonable.
  12375. * By default is the maximum size of a certificate message assuming
  12376. * nine 2048-bit RSA certificates in the chain. */
  12377. if (size > MAX_HANDSHAKE_SZ) {
  12378. WOLFSSL_MSG("Handshake message too large");
  12379. return HANDSHAKE_SIZE_ERROR;
  12380. }
  12381. /* size is the size of the certificate message payload */
  12382. if (inputLength - HANDSHAKE_HEADER_SZ < size) {
  12383. ssl->arrays->pendingMsgType = type;
  12384. ssl->arrays->pendingMsgSz = size + HANDSHAKE_HEADER_SZ;
  12385. ssl->arrays->pendingMsg = (byte*)XMALLOC(size + HANDSHAKE_HEADER_SZ,
  12386. ssl->heap,
  12387. DYNAMIC_TYPE_ARRAYS);
  12388. if (ssl->arrays->pendingMsg == NULL)
  12389. return MEMORY_E;
  12390. XMEMCPY(ssl->arrays->pendingMsg,
  12391. input + *inOutIdx - HANDSHAKE_HEADER_SZ,
  12392. inputLength);
  12393. ssl->arrays->pendingMsgOffset = inputLength;
  12394. *inOutIdx += inputLength - HANDSHAKE_HEADER_SZ;
  12395. return 0;
  12396. }
  12397. ret = DoHandShakeMsgType(ssl, input, inOutIdx, type, size, totalSz);
  12398. }
  12399. else {
  12400. word32 pendSz =
  12401. ssl->arrays->pendingMsgSz - ssl->arrays->pendingMsgOffset;
  12402. /* Catch the case where there may be the remainder of a fragmented
  12403. * handshake message and the next handshake message in the same
  12404. * record. */
  12405. if (inputLength > pendSz)
  12406. inputLength = pendSz;
  12407. #ifdef WOLFSSL_ASYNC_CRYPT
  12408. if (ssl->error != WC_PENDING_E)
  12409. #endif
  12410. {
  12411. /* for async this copy was already done, do not replace, since
  12412. * conents may have been changed for inline operations */
  12413. XMEMCPY(ssl->arrays->pendingMsg + ssl->arrays->pendingMsgOffset,
  12414. input + *inOutIdx, inputLength);
  12415. }
  12416. ssl->arrays->pendingMsgOffset += inputLength;
  12417. *inOutIdx += inputLength;
  12418. if (ssl->arrays->pendingMsgOffset == ssl->arrays->pendingMsgSz)
  12419. {
  12420. word32 idx = HANDSHAKE_HEADER_SZ;
  12421. ret = DoHandShakeMsgType(ssl,
  12422. ssl->arrays->pendingMsg,
  12423. &idx, ssl->arrays->pendingMsgType,
  12424. ssl->arrays->pendingMsgSz - idx,
  12425. ssl->arrays->pendingMsgSz);
  12426. #ifdef WOLFSSL_ASYNC_CRYPT
  12427. if (ret == WC_PENDING_E) {
  12428. /* setup to process fragment again */
  12429. ssl->arrays->pendingMsgOffset -= inputLength;
  12430. *inOutIdx -= inputLength;
  12431. }
  12432. else
  12433. #endif
  12434. {
  12435. XFREE(ssl->arrays->pendingMsg, ssl->heap, DYNAMIC_TYPE_ARRAYS);
  12436. ssl->arrays->pendingMsg = NULL;
  12437. ssl->arrays->pendingMsgSz = 0;
  12438. }
  12439. }
  12440. }
  12441. WOLFSSL_LEAVE("DoHandShakeMsg()", ret);
  12442. return ret;
  12443. }
  12444. #endif /* !WOLFSSL_NO_TLS12 */
  12445. #ifdef WOLFSSL_DTLS
  12446. static WC_INLINE int DtlsCheckWindow(WOLFSSL* ssl)
  12447. {
  12448. word32* window;
  12449. word16 cur_hi, next_hi;
  12450. word32 cur_lo, next_lo, diff;
  12451. int curLT;
  12452. WOLFSSL_DTLS_PEERSEQ* peerSeq = NULL;
  12453. if (!ssl->options.haveMcast)
  12454. peerSeq = ssl->keys.peerSeq;
  12455. else {
  12456. #ifdef WOLFSSL_MULTICAST
  12457. WOLFSSL_DTLS_PEERSEQ* p;
  12458. int i;
  12459. for (i = 0, p = ssl->keys.peerSeq;
  12460. i < WOLFSSL_DTLS_PEERSEQ_SZ;
  12461. i++, p++) {
  12462. if (p->peerId == ssl->keys.curPeerId) {
  12463. peerSeq = p;
  12464. break;
  12465. }
  12466. }
  12467. #endif
  12468. }
  12469. if (peerSeq == NULL) {
  12470. WOLFSSL_MSG("Could not find peer sequence");
  12471. return 0;
  12472. }
  12473. if (ssl->keys.curEpoch == peerSeq->nextEpoch) {
  12474. next_hi = peerSeq->nextSeq_hi;
  12475. next_lo = peerSeq->nextSeq_lo;
  12476. window = peerSeq->window;
  12477. }
  12478. else if (ssl->keys.curEpoch == peerSeq->nextEpoch - 1) {
  12479. next_hi = peerSeq->prevSeq_hi;
  12480. next_lo = peerSeq->prevSeq_lo;
  12481. window = peerSeq->prevWindow;
  12482. }
  12483. else {
  12484. return 0;
  12485. }
  12486. cur_hi = ssl->keys.curSeq_hi;
  12487. cur_lo = ssl->keys.curSeq_lo;
  12488. /* If the difference between next and cur is > 2^32, way outside window. */
  12489. if ((cur_hi > next_hi + 1) || (next_hi > cur_hi + 1)) {
  12490. WOLFSSL_MSG("Current record from way too far in the future.");
  12491. return 0;
  12492. }
  12493. if (cur_hi == next_hi) {
  12494. curLT = cur_lo < next_lo;
  12495. diff = curLT ? next_lo - cur_lo : cur_lo - next_lo;
  12496. }
  12497. else {
  12498. curLT = cur_hi < next_hi;
  12499. diff = curLT ? cur_lo - next_lo : next_lo - cur_lo;
  12500. }
  12501. /* Check to see that the next value is greater than the number of messages
  12502. * trackable in the window, and that the difference between the next
  12503. * expected sequence number and the received sequence number is inside the
  12504. * window. */
  12505. if ((next_hi || next_lo > DTLS_SEQ_BITS) &&
  12506. curLT && (diff > DTLS_SEQ_BITS)) {
  12507. WOLFSSL_MSG("Current record sequence number from the past.");
  12508. return 0;
  12509. }
  12510. #ifdef WOLFSSL_DTLS_DISALLOW_FUTURE
  12511. else if (!curLT && (diff > DTLS_SEQ_BITS)) {
  12512. WOLFSSL_MSG("Rejecting message too far into the future.");
  12513. return 0;
  12514. }
  12515. #endif
  12516. else if (curLT) {
  12517. word32 idx;
  12518. word32 newDiff;
  12519. if (diff == 0) {
  12520. WOLFSSL_MSG("DTLS sanity check failed");
  12521. return 0;
  12522. }
  12523. diff--;
  12524. idx = diff / DTLS_WORD_BITS;
  12525. newDiff = diff % DTLS_WORD_BITS;
  12526. /* verify idx is valid for window array */
  12527. if (idx >= WOLFSSL_DTLS_WINDOW_WORDS) {
  12528. WOLFSSL_MSG("Invalid DTLS windows index");
  12529. return 0;
  12530. }
  12531. if (window[idx] & (1 << newDiff)) {
  12532. WOLFSSL_MSG("Current record sequence number already received.");
  12533. return 0;
  12534. }
  12535. }
  12536. return 1;
  12537. }
  12538. #ifdef WOLFSSL_MULTICAST
  12539. static WC_INLINE word32 UpdateHighwaterMark(word32 cur, word32 first,
  12540. word32 second, word32 high)
  12541. {
  12542. word32 newCur = 0;
  12543. if (cur < first)
  12544. newCur = first;
  12545. else if (cur < second)
  12546. newCur = second;
  12547. else if (cur < high)
  12548. newCur = high;
  12549. return newCur;
  12550. }
  12551. #endif /* WOLFSSL_MULTICAST */
  12552. static WC_INLINE int DtlsUpdateWindow(WOLFSSL* ssl)
  12553. {
  12554. word32* window;
  12555. word32* next_lo;
  12556. word16* next_hi;
  12557. int curLT;
  12558. word32 cur_lo, diff;
  12559. word16 cur_hi;
  12560. WOLFSSL_DTLS_PEERSEQ* peerSeq = ssl->keys.peerSeq;
  12561. cur_hi = ssl->keys.curSeq_hi;
  12562. cur_lo = ssl->keys.curSeq_lo;
  12563. #ifdef WOLFSSL_MULTICAST
  12564. if (ssl->options.haveMcast) {
  12565. WOLFSSL_DTLS_PEERSEQ* p;
  12566. int i;
  12567. peerSeq = NULL;
  12568. for (i = 0, p = ssl->keys.peerSeq;
  12569. i < WOLFSSL_DTLS_PEERSEQ_SZ;
  12570. i++, p++) {
  12571. if (p->peerId == ssl->keys.curPeerId) {
  12572. peerSeq = p;
  12573. break;
  12574. }
  12575. }
  12576. if (peerSeq == NULL) {
  12577. WOLFSSL_MSG("Couldn't find that peer ID to update window.");
  12578. return 0;
  12579. }
  12580. if (p->highwaterMark && cur_lo >= p->highwaterMark) {
  12581. int cbError = 0;
  12582. if (ssl->ctx->mcastHwCb)
  12583. cbError = ssl->ctx->mcastHwCb(p->peerId,
  12584. ssl->ctx->mcastMaxSeq,
  12585. cur_lo, ssl->mcastHwCbCtx);
  12586. if (cbError) {
  12587. WOLFSSL_MSG("Multicast highwater callback returned an error.");
  12588. return MCAST_HIGHWATER_CB_E;
  12589. }
  12590. p->highwaterMark = UpdateHighwaterMark(cur_lo,
  12591. ssl->ctx->mcastFirstSeq,
  12592. ssl->ctx->mcastSecondSeq,
  12593. ssl->ctx->mcastMaxSeq);
  12594. }
  12595. }
  12596. #endif
  12597. if (ssl->keys.curEpoch == peerSeq->nextEpoch) {
  12598. next_hi = &peerSeq->nextSeq_hi;
  12599. next_lo = &peerSeq->nextSeq_lo;
  12600. window = peerSeq->window;
  12601. }
  12602. else {
  12603. next_hi = &peerSeq->prevSeq_hi;
  12604. next_lo = &peerSeq->prevSeq_lo;
  12605. window = peerSeq->prevWindow;
  12606. }
  12607. if (cur_hi == *next_hi) {
  12608. curLT = cur_lo < *next_lo;
  12609. diff = curLT ? *next_lo - cur_lo - 1 : cur_lo - *next_lo + 1;
  12610. }
  12611. else {
  12612. curLT = cur_hi < *next_hi;
  12613. diff = curLT ? cur_lo - *next_lo - 1 : *next_lo - cur_lo + 1;
  12614. }
  12615. if (curLT) {
  12616. word32 idx = diff / DTLS_WORD_BITS;
  12617. word32 newDiff = diff % DTLS_WORD_BITS;
  12618. if (idx < WOLFSSL_DTLS_WINDOW_WORDS)
  12619. window[idx] |= (1 << newDiff);
  12620. }
  12621. else {
  12622. if (diff >= DTLS_SEQ_BITS)
  12623. XMEMSET(window, 0, DTLS_SEQ_SZ);
  12624. else {
  12625. word32 idx, newDiff, temp, i;
  12626. word32 oldWindow[WOLFSSL_DTLS_WINDOW_WORDS];
  12627. temp = 0;
  12628. idx = diff / DTLS_WORD_BITS;
  12629. newDiff = diff % DTLS_WORD_BITS;
  12630. XMEMCPY(oldWindow, window, sizeof(oldWindow));
  12631. for (i = 0; i < WOLFSSL_DTLS_WINDOW_WORDS; i++) {
  12632. if (i < idx)
  12633. window[i] = 0;
  12634. else {
  12635. temp |= (oldWindow[i-idx] << newDiff);
  12636. window[i] = temp;
  12637. temp = oldWindow[i-idx] >> (DTLS_WORD_BITS - newDiff - 1);
  12638. }
  12639. }
  12640. }
  12641. window[0] |= 1;
  12642. *next_lo = cur_lo + 1;
  12643. if (*next_lo < cur_lo)
  12644. (*next_hi)++;
  12645. }
  12646. return 1;
  12647. }
  12648. static int DtlsMsgDrain(WOLFSSL* ssl)
  12649. {
  12650. DtlsMsg* item = ssl->dtls_rx_msg_list;
  12651. int ret = 0;
  12652. WOLFSSL_ENTER("DtlsMsgDrain()");
  12653. /* While there is an item in the store list, and it is the expected
  12654. * message, and it is complete, and there hasn't been an error in the
  12655. * last message... */
  12656. while (item != NULL &&
  12657. ssl->keys.dtls_expected_peer_handshake_number == item->seq &&
  12658. item->fragSz == item->sz &&
  12659. ret == 0) {
  12660. word32 idx = 0;
  12661. if ((ret = DoHandShakeMsgType(ssl, item->msg, &idx, item->type,
  12662. item->sz, item->sz)) == 0) {
  12663. DtlsTxMsgListClean(ssl);
  12664. }
  12665. #ifdef WOLFSSL_ASYNC_CRYPT
  12666. if (ret == WC_PENDING_E) {
  12667. break;
  12668. }
  12669. #endif
  12670. ssl->dtls_rx_msg_list = item->next;
  12671. DtlsMsgDelete(item, ssl->heap);
  12672. item = ssl->dtls_rx_msg_list;
  12673. ssl->dtls_rx_msg_list_sz--;
  12674. }
  12675. WOLFSSL_LEAVE("DtlsMsgDrain()", ret);
  12676. return ret;
  12677. }
  12678. static int DoDtlsHandShakeMsg(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  12679. word32 totalSz)
  12680. {
  12681. byte type;
  12682. word32 size;
  12683. word32 fragOffset, fragSz;
  12684. int ret = 0;
  12685. int ignoreFinished = 0;
  12686. WOLFSSL_ENTER("DoDtlsHandShakeMsg()");
  12687. /* parse header */
  12688. if (GetDtlsHandShakeHeader(ssl, input, inOutIdx, &type,
  12689. &size, &fragOffset, &fragSz, totalSz) != 0) {
  12690. WOLFSSL_ERROR(PARSE_ERROR);
  12691. return PARSE_ERROR;
  12692. }
  12693. /* Cap the maximum size of a handshake message to something reasonable.
  12694. * By default is the maximum size of a certificate message assuming
  12695. * nine 2048-bit RSA certificates in the chain. */
  12696. if (size > MAX_HANDSHAKE_SZ) {
  12697. WOLFSSL_MSG("Handshake message too large");
  12698. return HANDSHAKE_SIZE_ERROR;
  12699. }
  12700. /* check that we have complete fragment */
  12701. if (*inOutIdx + fragSz > totalSz) {
  12702. WOLFSSL_ERROR(INCOMPLETE_DATA);
  12703. return INCOMPLETE_DATA;
  12704. }
  12705. if (type == finished && ssl->keys.dtls_peer_handshake_number >=
  12706. ssl->keys.dtls_expected_peer_handshake_number &&
  12707. ssl->keys.curEpoch == ssl->keys.dtls_epoch) {
  12708. /* finished msg should be ignore from the current epoch
  12709. * if it comes from a previous handshake */
  12710. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  12711. ignoreFinished = ssl->options.connectState < FINISHED_DONE;
  12712. }
  12713. else {
  12714. ignoreFinished = ssl->options.acceptState < ACCEPT_FINISHED_DONE;
  12715. }
  12716. }
  12717. /* Check the handshake sequence number first. If out of order,
  12718. * add the current message to the list. If the message is in order,
  12719. * but it is a fragment, add the current message to the list, then
  12720. * check the head of the list to see if it is complete, if so, pop
  12721. * it out as the current message. If the message is complete and in
  12722. * order, process it. Check the head of the list to see if it is in
  12723. * order, if so, process it. (Repeat until list exhausted.) If the
  12724. * head is out of order, return for more processing.
  12725. */
  12726. if (ssl->keys.dtls_peer_handshake_number >
  12727. ssl->keys.dtls_expected_peer_handshake_number &&
  12728. /* Only client_hello shouldn't be ignored if the handshake
  12729. * num is greater */
  12730. (type == client_hello ||
  12731. ssl->options.handShakeState != HANDSHAKE_DONE) &&
  12732. !ignoreFinished) {
  12733. /* Current message is out of order. It will get stored in the list.
  12734. * Storing also takes care of defragmentation. If the messages is a
  12735. * client hello, we need to process this out of order; the server
  12736. * is not supposed to keep state, but the second client hello will
  12737. * have a different handshake sequence number than is expected, and
  12738. * the server shouldn't be expecting any particular handshake sequence
  12739. * number. (If the cookie changes multiple times in quick succession,
  12740. * the client could be sending multiple new client hello messages
  12741. * with newer and newer cookies.) */
  12742. if (type != client_hello) {
  12743. WOLFSSL_MSG("Current message is out of order");
  12744. if (ssl->dtls_rx_msg_list_sz < DTLS_POOL_SZ) {
  12745. DtlsMsgStore(ssl, ssl->keys.curEpoch,
  12746. ssl->keys.dtls_peer_handshake_number,
  12747. input + *inOutIdx, size, type,
  12748. fragOffset, fragSz, ssl->heap);
  12749. }
  12750. *inOutIdx += fragSz;
  12751. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12752. if (ssl->options.startedETMRead && ssl->keys.curEpoch != 0) {
  12753. word32 digestSz = MacSize(ssl);
  12754. if (*inOutIdx + ssl->keys.padSz + digestSz > totalSz)
  12755. return BUFFER_E;
  12756. *inOutIdx += digestSz;
  12757. }
  12758. else
  12759. #endif
  12760. {
  12761. if (*inOutIdx + ssl->keys.padSz > totalSz) {
  12762. WOLFSSL_ERROR(BUFFER_E);
  12763. return BUFFER_E;
  12764. }
  12765. }
  12766. *inOutIdx += ssl->keys.padSz;
  12767. ret = 0;
  12768. #ifndef WOLFSSL_DTLS_RESEND_ONLY_TIMEOUT
  12769. /* If we receive an out of order last flight msg then retransmit */
  12770. if (type == server_hello_done || type == finished) {
  12771. ret = DtlsMsgPoolSend(ssl, 0);
  12772. }
  12773. #endif
  12774. }
  12775. else {
  12776. ret = DoHandShakeMsgType(ssl, input, inOutIdx, type, size, totalSz);
  12777. }
  12778. }
  12779. else if (ssl->keys.dtls_peer_handshake_number <
  12780. ssl->keys.dtls_expected_peer_handshake_number ||
  12781. /* ignore all handshake messages if we are done with the
  12782. * handshake */
  12783. (ssl->keys.dtls_peer_handshake_number >
  12784. ssl->keys.dtls_expected_peer_handshake_number &&
  12785. ssl->options.handShakeState == HANDSHAKE_DONE) ||
  12786. ignoreFinished) {
  12787. /* Already saw this message and processed it. It can be ignored. */
  12788. WOLFSSL_MSG("Already saw this message and processed it");
  12789. *inOutIdx += fragSz;
  12790. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12791. if (ssl->options.startedETMRead && ssl->keys.curEpoch != 0) {
  12792. word32 digestSz = MacSize(ssl);
  12793. if (*inOutIdx + ssl->keys.padSz + digestSz > totalSz)
  12794. return BUFFER_E;
  12795. *inOutIdx += digestSz;
  12796. }
  12797. else
  12798. #endif
  12799. {
  12800. if (*inOutIdx + ssl->keys.padSz > totalSz) {
  12801. WOLFSSL_ERROR(BUFFER_E);
  12802. return BUFFER_E;
  12803. }
  12804. }
  12805. #ifndef WOLFSSL_DTLS_RESEND_ONLY_TIMEOUT
  12806. if (IsDtlsNotSctpMode(ssl) &&
  12807. VerifyForDtlsMsgPoolSend(ssl, type, fragOffset)) {
  12808. ret = DtlsMsgPoolSend(ssl, 0);
  12809. }
  12810. #endif
  12811. *inOutIdx += ssl->keys.padSz;
  12812. }
  12813. else if (fragSz < size) {
  12814. /* Since this branch is in order, but fragmented, dtls_rx_msg_list will
  12815. * be pointing to the message with this fragment in it. Check it to see
  12816. * if it is completed. */
  12817. WOLFSSL_MSG("Branch is in order, but fragmented");
  12818. if (ssl->dtls_rx_msg_list_sz < DTLS_POOL_SZ) {
  12819. DtlsMsgStore(ssl, ssl->keys.curEpoch,
  12820. ssl->keys.dtls_peer_handshake_number,
  12821. input + *inOutIdx, size, type,
  12822. fragOffset, fragSz, ssl->heap);
  12823. }
  12824. *inOutIdx += fragSz;
  12825. *inOutIdx += ssl->keys.padSz;
  12826. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12827. if (ssl->options.startedETMRead && ssl->keys.curEpoch != 0) {
  12828. word32 digestSz = MacSize(ssl);
  12829. if (*inOutIdx + digestSz > totalSz)
  12830. return BUFFER_E;
  12831. *inOutIdx += digestSz;
  12832. }
  12833. #endif
  12834. ret = 0;
  12835. if (ssl->dtls_rx_msg_list != NULL &&
  12836. ssl->dtls_rx_msg_list->fragSz >= ssl->dtls_rx_msg_list->sz)
  12837. ret = DtlsMsgDrain(ssl);
  12838. }
  12839. else {
  12840. /* This branch is in order next, and a complete message. On success
  12841. * clean the tx list. */
  12842. #ifdef WOLFSSL_ASYNC_CRYPT
  12843. word32 idx = *inOutIdx;
  12844. #endif
  12845. WOLFSSL_MSG("Branch is in order and a complete message");
  12846. #ifdef WOLFSSL_ASYNC_CRYPT
  12847. /* In async mode always store the message and process it with
  12848. * DtlsMsgDrain because in case of a WC_PENDING_E it will be
  12849. * easier this way. */
  12850. if (ssl->dtls_rx_msg_list_sz < DTLS_POOL_SZ) {
  12851. DtlsMsgStore(ssl, ssl->keys.curEpoch,
  12852. ssl->keys.dtls_peer_handshake_number,
  12853. input + idx, size, type,
  12854. fragOffset, fragSz, ssl->heap);
  12855. }
  12856. if (idx + fragSz + ssl->keys.padSz > totalSz)
  12857. return BUFFER_E;
  12858. *inOutIdx = idx + fragSz + ssl->keys.padSz;
  12859. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  12860. if (ssl->options.startedETMRead && ssl->keys.curEpoch != 0) {
  12861. word32 digestSz = MacSize(ssl);
  12862. if (*inOutIdx + digestSz > totalSz)
  12863. return BUFFER_E;
  12864. *inOutIdx += digestSz;
  12865. }
  12866. #endif
  12867. ret = DtlsMsgDrain(ssl);
  12868. #else
  12869. ret = DoHandShakeMsgType(ssl, input, inOutIdx, type, size, totalSz);
  12870. if (ret == 0) {
  12871. DtlsTxMsgListClean(ssl);
  12872. if (ssl->dtls_rx_msg_list != NULL) {
  12873. ret = DtlsMsgDrain(ssl);
  12874. }
  12875. }
  12876. #endif
  12877. }
  12878. WOLFSSL_LEAVE("DoDtlsHandShakeMsg()", ret);
  12879. return ret;
  12880. }
  12881. #endif
  12882. #ifndef WOLFSSL_NO_TLS12
  12883. #ifdef HAVE_AEAD
  12884. #if (!defined(NO_PUBLIC_GCM_SET_IV) && \
  12885. ((defined(HAVE_FIPS) || defined(HAVE_SELFTEST)) && \
  12886. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION < 2)))) || \
  12887. (defined(HAVE_POLY1305) && defined(HAVE_CHACHA))
  12888. static WC_INLINE void AeadIncrementExpIV(WOLFSSL* ssl)
  12889. {
  12890. int i;
  12891. for (i = AEAD_MAX_EXP_SZ-1; i >= 0; i--) {
  12892. if (++ssl->keys.aead_exp_IV[i]) return;
  12893. }
  12894. }
  12895. #endif
  12896. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305) && !defined(NO_CHAPOL_AEAD)
  12897. /* Used for the older version of creating AEAD tags with Poly1305 */
  12898. static int Poly1305TagOld(WOLFSSL* ssl, byte* additional, const byte* out,
  12899. byte* cipher, word16 sz, byte* tag)
  12900. {
  12901. int ret = 0;
  12902. int msglen = (sz - ssl->specs.aead_mac_size);
  12903. word32 keySz = 32;
  12904. byte padding[8]; /* used to temporarily store lengths */
  12905. #ifdef CHACHA_AEAD_TEST
  12906. printf("Using old version of poly1305 input.\n");
  12907. #endif
  12908. if (msglen < 0)
  12909. return INPUT_CASE_ERROR;
  12910. if ((ret = wc_Poly1305SetKey(ssl->auth.poly1305, cipher, keySz)) != 0)
  12911. return ret;
  12912. if ((ret = wc_Poly1305Update(ssl->auth.poly1305, additional,
  12913. AEAD_AUTH_DATA_SZ)) != 0)
  12914. return ret;
  12915. /* length of additional input plus padding */
  12916. XMEMSET(padding, 0, sizeof(padding));
  12917. padding[0] = AEAD_AUTH_DATA_SZ;
  12918. if ((ret = wc_Poly1305Update(ssl->auth.poly1305, padding,
  12919. sizeof(padding))) != 0)
  12920. return ret;
  12921. /* add cipher info and then its length */
  12922. XMEMSET(padding, 0, sizeof(padding));
  12923. if ((ret = wc_Poly1305Update(ssl->auth.poly1305, out, msglen)) != 0)
  12924. return ret;
  12925. /* 32 bit size of cipher to 64 bit endian */
  12926. padding[0] = msglen & 0xff;
  12927. padding[1] = (msglen >> 8) & 0xff;
  12928. padding[2] = ((word32)msglen >> 16) & 0xff;
  12929. padding[3] = ((word32)msglen >> 24) & 0xff;
  12930. if ((ret = wc_Poly1305Update(ssl->auth.poly1305, padding, sizeof(padding)))
  12931. != 0)
  12932. return ret;
  12933. /* generate tag */
  12934. if ((ret = wc_Poly1305Final(ssl->auth.poly1305, tag)) != 0)
  12935. return ret;
  12936. return ret;
  12937. }
  12938. /* When the flag oldPoly is not set this follows RFC7905. When oldPoly is set
  12939. * the implementation follows an older draft for creating the nonce and MAC.
  12940. * The flag oldPoly gets set automatically depending on what cipher suite was
  12941. * negotiated in the handshake. This is able to be done because the IDs for the
  12942. * cipher suites was updated in RFC7905 giving unique values for the older
  12943. * draft in comparison to the more recent RFC.
  12944. *
  12945. * ssl WOLFSSL structure to get cipher and TLS state from
  12946. * out output buffer to hold encrypted data
  12947. * input data to encrypt
  12948. * sz size of input
  12949. *
  12950. * Return 0 on success negative values in error case
  12951. */
  12952. static int ChachaAEADEncrypt(WOLFSSL* ssl, byte* out, const byte* input,
  12953. word16 sz)
  12954. {
  12955. const byte* additionalSrc = input - RECORD_HEADER_SZ;
  12956. int ret = 0;
  12957. word32 msgLen = (sz - ssl->specs.aead_mac_size);
  12958. byte tag[POLY1305_AUTH_SZ];
  12959. byte add[AEAD_AUTH_DATA_SZ];
  12960. byte nonce[CHACHA20_NONCE_SZ];
  12961. byte poly[CHACHA20_256_KEY_SIZE]; /* generated key for poly1305 */
  12962. #ifdef CHACHA_AEAD_TEST
  12963. int i;
  12964. #endif
  12965. Keys* keys = &ssl->keys;
  12966. XMEMSET(tag, 0, sizeof(tag));
  12967. XMEMSET(nonce, 0, sizeof(nonce));
  12968. XMEMSET(poly, 0, sizeof(poly));
  12969. XMEMSET(add, 0, sizeof(add));
  12970. #if defined(WOLFSSL_DTLS) && defined(HAVE_SECURE_RENEGOTIATION)
  12971. /*
  12972. * For epochs 2+:
  12973. * * use ssl->secure_renegotiation when encrypting the current epoch as it
  12974. * has the current epoch cipher material
  12975. * * use PREV_ORDER if encrypting the epoch not in
  12976. * ssl->secure_renegotiation
  12977. */
  12978. /* opaque SEQ number stored for AD */
  12979. if (ssl->options.dtls && DtlsSCRKeysSet(ssl)) {
  12980. if (ssl->keys.dtls_epoch ==
  12981. ssl->secure_renegotiation->tmp_keys.dtls_epoch) {
  12982. keys = &ssl->secure_renegotiation->tmp_keys;
  12983. WriteSEQ(ssl, CUR_ORDER, add);
  12984. }
  12985. else
  12986. WriteSEQ(ssl, PREV_ORDER, add);
  12987. }
  12988. else
  12989. #endif
  12990. WriteSEQ(ssl, CUR_ORDER, add);
  12991. if (ssl->options.oldPoly != 0) {
  12992. /* get nonce. SEQ should not be incremented again here */
  12993. XMEMCPY(nonce + CHACHA20_OLD_OFFSET, add, OPAQUE32_LEN * 2);
  12994. }
  12995. /* Store the type, version. Unfortunately, they are in
  12996. * the input buffer ahead of the plaintext. */
  12997. #ifdef WOLFSSL_DTLS
  12998. if (ssl->options.dtls) {
  12999. additionalSrc -= DTLS_HANDSHAKE_EXTRA;
  13000. }
  13001. #endif
  13002. /* add TLS message size to additional data */
  13003. add[AEAD_AUTH_DATA_SZ - 2] = (msgLen >> 8) & 0xff;
  13004. add[AEAD_AUTH_DATA_SZ - 1] = msgLen & 0xff;
  13005. XMEMCPY(add + AEAD_TYPE_OFFSET, additionalSrc, 3);
  13006. #ifdef CHACHA_AEAD_TEST
  13007. printf("Encrypt Additional : ");
  13008. for (i = 0; i < AEAD_AUTH_DATA_SZ; i++) {
  13009. printf("%02x", add[i]);
  13010. }
  13011. printf("\n\n");
  13012. printf("input before encryption :\n");
  13013. for (i = 0; i < sz; i++) {
  13014. printf("%02x", input[i]);
  13015. if ((i + 1) % 16 == 0)
  13016. printf("\n");
  13017. }
  13018. printf("\n");
  13019. #endif
  13020. if (ssl->options.oldPoly == 0) {
  13021. /* nonce is formed by 4 0x00 byte padded to the left followed by 8 byte
  13022. * record sequence number XORed with client_write_IV/server_write_IV */
  13023. XMEMCPY(nonce, keys->aead_enc_imp_IV, CHACHA20_IMP_IV_SZ);
  13024. nonce[4] ^= add[0];
  13025. nonce[5] ^= add[1];
  13026. nonce[6] ^= add[2];
  13027. nonce[7] ^= add[3];
  13028. nonce[8] ^= add[4];
  13029. nonce[9] ^= add[5];
  13030. nonce[10] ^= add[6];
  13031. nonce[11] ^= add[7];
  13032. }
  13033. /* set the nonce for chacha and get poly1305 key */
  13034. if ((ret = wc_Chacha_SetIV(ssl->encrypt.chacha, nonce, 0)) != 0) {
  13035. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13036. return ret;
  13037. }
  13038. /* create Poly1305 key using chacha20 keystream */
  13039. if ((ret = wc_Chacha_Process(ssl->encrypt.chacha, poly,
  13040. poly, sizeof(poly))) != 0) {
  13041. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13042. return ret;
  13043. }
  13044. /* set the counter after getting poly1305 key */
  13045. if ((ret = wc_Chacha_SetIV(ssl->encrypt.chacha, nonce, 1)) != 0) {
  13046. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13047. return ret;
  13048. }
  13049. ForceZero(nonce, CHACHA20_NONCE_SZ); /* done with nonce, clear it */
  13050. /* encrypt the plain text */
  13051. if ((ret = wc_Chacha_Process(ssl->encrypt.chacha, out,
  13052. input, msgLen)) != 0) {
  13053. ForceZero(poly, sizeof(poly));
  13054. return ret;
  13055. }
  13056. /* get the poly1305 tag using either old padding scheme or more recent */
  13057. if (ssl->options.oldPoly != 0) {
  13058. if ((ret = Poly1305TagOld(ssl, add, (const byte* )out,
  13059. poly, sz, tag)) != 0) {
  13060. ForceZero(poly, sizeof(poly));
  13061. return ret;
  13062. }
  13063. }
  13064. else {
  13065. if ((ret = wc_Poly1305SetKey(ssl->auth.poly1305, poly,
  13066. sizeof(poly))) != 0) {
  13067. ForceZero(poly, sizeof(poly));
  13068. return ret;
  13069. }
  13070. if ((ret = wc_Poly1305_MAC(ssl->auth.poly1305, add,
  13071. sizeof(add), out, msgLen, tag, sizeof(tag))) != 0) {
  13072. ForceZero(poly, sizeof(poly));
  13073. return ret;
  13074. }
  13075. }
  13076. ForceZero(poly, sizeof(poly)); /* done with poly1305 key, clear it */
  13077. /* append tag to ciphertext */
  13078. XMEMCPY(out + msgLen, tag, sizeof(tag));
  13079. AeadIncrementExpIV(ssl);
  13080. #ifdef CHACHA_AEAD_TEST
  13081. printf("mac tag :\n");
  13082. for (i = 0; i < 16; i++) {
  13083. printf("%02x", tag[i]);
  13084. if ((i + 1) % 16 == 0)
  13085. printf("\n");
  13086. }
  13087. printf("\n\noutput after encrypt :\n");
  13088. for (i = 0; i < sz; i++) {
  13089. printf("%02x", out[i]);
  13090. if ((i + 1) % 16 == 0)
  13091. printf("\n");
  13092. }
  13093. printf("\n");
  13094. #endif
  13095. return ret;
  13096. }
  13097. /* When the flag oldPoly is not set this follows RFC7905. When oldPoly is set
  13098. * the implementation follows an older draft for creating the nonce and MAC.
  13099. * The flag oldPoly gets set automatically depending on what cipher suite was
  13100. * negotiated in the handshake. This is able to be done because the IDs for the
  13101. * cipher suites was updated in RFC7905 giving unique values for the older
  13102. * draft in comparison to the more recent RFC.
  13103. *
  13104. * ssl WOLFSSL structure to get cipher and TLS state from
  13105. * plain output buffer to hold decrypted data
  13106. * input data to decrypt
  13107. * sz size of input
  13108. *
  13109. * Return 0 on success negative values in error case
  13110. */
  13111. static int ChachaAEADDecrypt(WOLFSSL* ssl, byte* plain, const byte* input,
  13112. word16 sz)
  13113. {
  13114. byte add[AEAD_AUTH_DATA_SZ];
  13115. byte nonce[CHACHA20_NONCE_SZ];
  13116. byte tag[POLY1305_AUTH_SZ];
  13117. byte poly[CHACHA20_256_KEY_SIZE]; /* generated key for mac */
  13118. int ret = 0;
  13119. int msgLen = (sz - ssl->specs.aead_mac_size);
  13120. Keys* keys = &ssl->keys;
  13121. #ifdef CHACHA_AEAD_TEST
  13122. int i;
  13123. printf("input before decrypt :\n");
  13124. for (i = 0; i < sz; i++) {
  13125. printf("%02x", input[i]);
  13126. if ((i + 1) % 16 == 0)
  13127. printf("\n");
  13128. }
  13129. printf("\n");
  13130. #endif
  13131. XMEMSET(tag, 0, sizeof(tag));
  13132. XMEMSET(poly, 0, sizeof(poly));
  13133. XMEMSET(nonce, 0, sizeof(nonce));
  13134. XMEMSET(add, 0, sizeof(add));
  13135. #if defined(WOLFSSL_DTLS) && defined(HAVE_SECURE_RENEGOTIATION)
  13136. /*
  13137. * For epochs 2+:
  13138. * * use ssl->secure_renegotiation when decrypting the latest epoch as it
  13139. * has the latest epoch cipher material
  13140. */
  13141. if (ssl->options.dtls && DtlsSCRKeysSet(ssl) &&
  13142. ssl->keys.curEpoch == ssl->secure_renegotiation->tmp_keys.dtls_epoch)
  13143. keys = &ssl->secure_renegotiation->tmp_keys;
  13144. #endif
  13145. /* sequence number field is 64-bits */
  13146. WriteSEQ(ssl, PEER_ORDER, add);
  13147. if (ssl->options.oldPoly != 0) {
  13148. /* get nonce, SEQ should not be incremented again here */
  13149. XMEMCPY(nonce + CHACHA20_OLD_OFFSET, add, OPAQUE32_LEN * 2);
  13150. }
  13151. /* get AD info */
  13152. /* Store the type, version. */
  13153. add[AEAD_TYPE_OFFSET] = ssl->curRL.type;
  13154. add[AEAD_VMAJ_OFFSET] = ssl->curRL.pvMajor;
  13155. add[AEAD_VMIN_OFFSET] = ssl->curRL.pvMinor;
  13156. /* add TLS message size to additional data */
  13157. add[AEAD_AUTH_DATA_SZ - 2] = (msgLen >> 8) & 0xff;
  13158. add[AEAD_AUTH_DATA_SZ - 1] = msgLen & 0xff;
  13159. #ifdef CHACHA_AEAD_TEST
  13160. printf("Decrypt Additional : ");
  13161. for (i = 0; i < AEAD_AUTH_DATA_SZ; i++) {
  13162. printf("%02x", add[i]);
  13163. }
  13164. printf("\n\n");
  13165. #endif
  13166. if (ssl->options.oldPoly == 0) {
  13167. /* nonce is formed by 4 0x00 byte padded to the left followed by 8 byte
  13168. * record sequence number XORed with client_write_IV/server_write_IV */
  13169. XMEMCPY(nonce, keys->aead_dec_imp_IV, CHACHA20_IMP_IV_SZ);
  13170. nonce[4] ^= add[0];
  13171. nonce[5] ^= add[1];
  13172. nonce[6] ^= add[2];
  13173. nonce[7] ^= add[3];
  13174. nonce[8] ^= add[4];
  13175. nonce[9] ^= add[5];
  13176. nonce[10] ^= add[6];
  13177. nonce[11] ^= add[7];
  13178. }
  13179. /* set nonce and get poly1305 key */
  13180. if ((ret = wc_Chacha_SetIV(ssl->decrypt.chacha, nonce, 0)) != 0) {
  13181. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13182. return ret;
  13183. }
  13184. /* use chacha20 keystream to get poly1305 key for tag */
  13185. if ((ret = wc_Chacha_Process(ssl->decrypt.chacha, poly,
  13186. poly, sizeof(poly))) != 0) {
  13187. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13188. return ret;
  13189. }
  13190. /* set counter after getting poly1305 key */
  13191. if ((ret = wc_Chacha_SetIV(ssl->decrypt.chacha, nonce, 1)) != 0) {
  13192. ForceZero(nonce, CHACHA20_NONCE_SZ);
  13193. return ret;
  13194. }
  13195. ForceZero(nonce, CHACHA20_NONCE_SZ); /* done with nonce, clear it */
  13196. /* get the tag using Poly1305 */
  13197. if (ssl->options.oldPoly != 0) {
  13198. if ((ret = Poly1305TagOld(ssl, add, input, poly, sz, tag)) != 0) {
  13199. ForceZero(poly, sizeof(poly));
  13200. return ret;
  13201. }
  13202. }
  13203. else {
  13204. if ((ret = wc_Poly1305SetKey(ssl->auth.poly1305, poly,
  13205. sizeof(poly))) != 0) {
  13206. ForceZero(poly, sizeof(poly));
  13207. return ret;
  13208. }
  13209. if ((ret = wc_Poly1305_MAC(ssl->auth.poly1305, add,
  13210. sizeof(add), input, msgLen, tag, sizeof(tag))) != 0) {
  13211. ForceZero(poly, sizeof(poly));
  13212. return ret;
  13213. }
  13214. }
  13215. ForceZero(poly, sizeof(poly)); /* done with poly1305 key, clear it */
  13216. /* check tag sent along with packet */
  13217. if (ConstantCompare(input + msgLen, tag, ssl->specs.aead_mac_size) != 0) {
  13218. WOLFSSL_MSG("MAC did not match");
  13219. if (!ssl->options.dtls)
  13220. SendAlert(ssl, alert_fatal, bad_record_mac);
  13221. return VERIFY_MAC_ERROR;
  13222. }
  13223. /* if the tag was good decrypt message */
  13224. if ((ret = wc_Chacha_Process(ssl->decrypt.chacha, plain,
  13225. input, msgLen)) != 0)
  13226. return ret;
  13227. #ifdef CHACHA_AEAD_TEST
  13228. printf("plain after decrypt :\n");
  13229. for (i = 0; i < sz; i++) {
  13230. printf("%02x", plain[i]);
  13231. if ((i + 1) % 16 == 0)
  13232. printf("\n");
  13233. }
  13234. printf("\n");
  13235. #endif
  13236. return ret;
  13237. }
  13238. #endif /* HAVE_CHACHA && HAVE_POLY1305 && !NO_CHAPOL_AEAD*/
  13239. #endif /* HAVE_AEAD */
  13240. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13241. #if !defined(NO_GCM_ENCRYPT_EXTRA) && \
  13242. ((!defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)) || \
  13243. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION >= 2)))
  13244. /* The following type is used to share code between AES-GCM and AES-CCM. */
  13245. typedef int (*AesAuthEncryptFunc)(Aes* aes, byte* out,
  13246. const byte* in, word32 sz,
  13247. byte* iv, word32 ivSz,
  13248. byte* authTag, word32 authTagSz,
  13249. const byte* authIn, word32 authInSz);
  13250. #define AES_AUTH_ENCRYPT_FUNC AesAuthEncryptFunc
  13251. #define AES_GCM_ENCRYPT wc_AesGcmEncrypt_ex
  13252. #define AES_CCM_ENCRYPT wc_AesCcmEncrypt_ex
  13253. #else
  13254. #define AES_AUTH_ENCRYPT_FUNC wc_AesAuthEncryptFunc
  13255. #define AES_GCM_ENCRYPT wc_AesGcmEncrypt
  13256. #define AES_CCM_ENCRYPT wc_AesCcmEncrypt
  13257. #endif
  13258. #endif
  13259. static WC_INLINE int EncryptDo(WOLFSSL* ssl, byte* out, const byte* input,
  13260. word16 sz, int asyncOkay)
  13261. {
  13262. int ret = 0;
  13263. #ifdef WOLFSSL_ASYNC_CRYPT
  13264. WC_ASYNC_DEV* asyncDev = NULL;
  13265. word32 event_flags = WC_ASYNC_FLAG_CALL_AGAIN;
  13266. #else
  13267. (void)asyncOkay;
  13268. #endif
  13269. (void)out;
  13270. (void)input;
  13271. (void)sz;
  13272. switch (ssl->specs.bulk_cipher_algorithm) {
  13273. #ifdef BUILD_ARC4
  13274. case wolfssl_rc4:
  13275. wc_Arc4Process(ssl->encrypt.arc4, out, input, sz);
  13276. break;
  13277. #endif
  13278. #ifdef BUILD_DES3
  13279. case wolfssl_triple_des:
  13280. #ifdef WOLFSSL_ASYNC_CRYPT
  13281. /* initialize event */
  13282. asyncDev = &ssl->encrypt.des3->asyncDev;
  13283. ret = wolfSSL_AsyncInit(ssl, asyncDev, event_flags);
  13284. if (ret != 0)
  13285. break;
  13286. #endif
  13287. ret = wc_Des3_CbcEncrypt(ssl->encrypt.des3, out, input, sz);
  13288. #ifdef WOLFSSL_ASYNC_CRYPT
  13289. if (ret == WC_PENDING_E && asyncOkay) {
  13290. ret = wolfSSL_AsyncPush(ssl, asyncDev);
  13291. }
  13292. #endif
  13293. break;
  13294. #endif
  13295. #if defined(BUILD_AES) && defined(HAVE_AES_CBC)
  13296. case wolfssl_aes:
  13297. #ifdef WOLFSSL_ASYNC_CRYPT
  13298. /* initialize event */
  13299. asyncDev = &ssl->encrypt.aes->asyncDev;
  13300. ret = wolfSSL_AsyncInit(ssl, asyncDev, event_flags);
  13301. if (ret != 0)
  13302. break;
  13303. #endif
  13304. #if defined(WOLFSSL_RENESAS_TSIP_TLS) && \
  13305. !defined(NO_WOLFSSL_RENESAS_TSIP_TLS_SESSION)
  13306. if (tsip_useable(ssl)) {
  13307. ret = wc_tsip_AesCbcEncrypt(ssl->encrypt.aes, out, input, sz);
  13308. } else
  13309. #endif
  13310. ret = wc_AesCbcEncrypt(ssl->encrypt.aes, out, input, sz);
  13311. #ifdef WOLFSSL_ASYNC_CRYPT
  13312. if (ret == WC_PENDING_E && asyncOkay) {
  13313. ret = wolfSSL_AsyncPush(ssl, asyncDev);
  13314. }
  13315. #endif
  13316. break;
  13317. #endif
  13318. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13319. case wolfssl_aes_gcm:
  13320. case wolfssl_aes_ccm:/* GCM AEAD macros use same size as CCM */
  13321. {
  13322. AES_AUTH_ENCRYPT_FUNC aes_auth_fn;
  13323. const byte* additionalSrc;
  13324. #ifdef WOLFSSL_ASYNC_CRYPT
  13325. /* initialize event */
  13326. asyncDev = &ssl->encrypt.aes->asyncDev;
  13327. ret = wolfSSL_AsyncInit(ssl, asyncDev, event_flags);
  13328. if (ret != 0)
  13329. break;
  13330. #endif
  13331. #if defined(BUILD_AESGCM) && defined(HAVE_AESCCM)
  13332. aes_auth_fn = (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm)
  13333. ? AES_GCM_ENCRYPT : AES_CCM_ENCRYPT;
  13334. #elif defined(BUILD_AESGCM)
  13335. aes_auth_fn = AES_GCM_ENCRYPT;
  13336. #else
  13337. aes_auth_fn = AES_CCM_ENCRYPT;
  13338. #endif
  13339. additionalSrc = input - 5;
  13340. XMEMSET(ssl->encrypt.additional, 0, AEAD_AUTH_DATA_SZ);
  13341. /* sequence number field is 64-bits */
  13342. WriteSEQ(ssl, CUR_ORDER, ssl->encrypt.additional);
  13343. /* Store the type, version. Unfortunately, they are in
  13344. * the input buffer ahead of the plaintext. */
  13345. #ifdef WOLFSSL_DTLS
  13346. if (ssl->options.dtls) {
  13347. additionalSrc -= DTLS_HANDSHAKE_EXTRA;
  13348. }
  13349. #endif
  13350. XMEMCPY(ssl->encrypt.additional + AEAD_TYPE_OFFSET,
  13351. additionalSrc, 3);
  13352. /* Store the length of the plain text minus the explicit
  13353. * IV length minus the authentication tag size. */
  13354. c16toa(sz - AESGCM_EXP_IV_SZ - ssl->specs.aead_mac_size,
  13355. ssl->encrypt.additional + AEAD_LEN_OFFSET);
  13356. #if !defined(NO_PUBLIC_GCM_SET_IV) && \
  13357. ((defined(HAVE_FIPS) || defined(HAVE_SELFTEST)) && \
  13358. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION < 2)))
  13359. XMEMCPY(ssl->encrypt.nonce,
  13360. ssl->keys.aead_enc_imp_IV, AESGCM_IMP_IV_SZ);
  13361. XMEMCPY(ssl->encrypt.nonce + AESGCM_IMP_IV_SZ,
  13362. ssl->keys.aead_exp_IV, AESGCM_EXP_IV_SZ);
  13363. #endif
  13364. ret = aes_auth_fn(ssl->encrypt.aes,
  13365. out + AESGCM_EXP_IV_SZ, input + AESGCM_EXP_IV_SZ,
  13366. sz - AESGCM_EXP_IV_SZ - ssl->specs.aead_mac_size,
  13367. ssl->encrypt.nonce, AESGCM_NONCE_SZ,
  13368. out + sz - ssl->specs.aead_mac_size,
  13369. ssl->specs.aead_mac_size,
  13370. ssl->encrypt.additional, AEAD_AUTH_DATA_SZ);
  13371. #ifdef WOLFSSL_ASYNC_CRYPT
  13372. if (ret == WC_PENDING_E && asyncOkay) {
  13373. ret = wolfSSL_AsyncPush(ssl, asyncDev);
  13374. }
  13375. #endif
  13376. #if !defined(NO_PUBLIC_GCM_SET_IV) && \
  13377. ((!defined(HAVE_FIPS) && !defined(HAVE_SELFTEST)) || \
  13378. (defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION >= 2)))
  13379. XMEMCPY(out,
  13380. ssl->encrypt.nonce + AESGCM_IMP_IV_SZ, AESGCM_EXP_IV_SZ);
  13381. #endif
  13382. }
  13383. break;
  13384. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13385. #ifdef HAVE_CAMELLIA
  13386. case wolfssl_camellia:
  13387. ret = wc_CamelliaCbcEncrypt(ssl->encrypt.cam, out, input, sz);
  13388. break;
  13389. #endif
  13390. #ifdef HAVE_HC128
  13391. case wolfssl_hc128:
  13392. ret = wc_Hc128_Process(ssl->encrypt.hc128, out, input, sz);
  13393. break;
  13394. #endif
  13395. #ifdef BUILD_RABBIT
  13396. case wolfssl_rabbit:
  13397. ret = wc_RabbitProcess(ssl->encrypt.rabbit, out, input, sz);
  13398. break;
  13399. #endif
  13400. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305) && \
  13401. !defined(NO_CHAPOL_AEAD)
  13402. case wolfssl_chacha:
  13403. ret = ChachaAEADEncrypt(ssl, out, input, sz);
  13404. break;
  13405. #endif
  13406. #ifdef HAVE_NULL_CIPHER
  13407. case wolfssl_cipher_null:
  13408. if (input != out) {
  13409. XMEMMOVE(out, input, sz);
  13410. }
  13411. break;
  13412. #endif
  13413. #ifdef HAVE_IDEA
  13414. case wolfssl_idea:
  13415. ret = wc_IdeaCbcEncrypt(ssl->encrypt.idea, out, input, sz);
  13416. break;
  13417. #endif
  13418. default:
  13419. WOLFSSL_MSG("wolfSSL Encrypt programming error");
  13420. ret = ENCRYPT_ERROR;
  13421. }
  13422. #ifdef WOLFSSL_ASYNC_CRYPT
  13423. /* if async is not okay, then block */
  13424. if (ret == WC_PENDING_E && !asyncOkay) {
  13425. ret = wc_AsyncWait(ret, asyncDev, event_flags);
  13426. }
  13427. #endif
  13428. return ret;
  13429. }
  13430. static WC_INLINE int Encrypt(WOLFSSL* ssl, byte* out, const byte* input, word16 sz,
  13431. int asyncOkay)
  13432. {
  13433. int ret = 0;
  13434. #ifdef WOLFSSL_ASYNC_CRYPT
  13435. if (ssl->error == WC_PENDING_E) {
  13436. ssl->error = 0; /* clear async */
  13437. }
  13438. #endif
  13439. switch (ssl->encrypt.state) {
  13440. case CIPHER_STATE_BEGIN:
  13441. {
  13442. if (ssl->encrypt.setup == 0) {
  13443. WOLFSSL_MSG("Encrypt ciphers not setup");
  13444. return ENCRYPT_ERROR;
  13445. }
  13446. #ifdef HAVE_FUZZER
  13447. if (ssl->fuzzerCb)
  13448. ssl->fuzzerCb(ssl, input, sz, FUZZ_ENCRYPT, ssl->fuzzerCtx);
  13449. #endif
  13450. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13451. /* make sure AES GCM/CCM memory is allocated */
  13452. /* free for these happens in FreeCiphers */
  13453. if (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_ccm ||
  13454. ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm) {
  13455. /* make sure auth iv and auth are allocated */
  13456. if (ssl->encrypt.additional == NULL)
  13457. ssl->encrypt.additional = (byte*)XMALLOC(AEAD_AUTH_DATA_SZ,
  13458. ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  13459. if (ssl->encrypt.nonce == NULL)
  13460. ssl->encrypt.nonce = (byte*)XMALLOC(AESGCM_NONCE_SZ,
  13461. ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  13462. if (ssl->encrypt.additional == NULL ||
  13463. ssl->encrypt.nonce == NULL) {
  13464. return MEMORY_E;
  13465. }
  13466. }
  13467. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13468. /* Advance state and proceed */
  13469. ssl->encrypt.state = CIPHER_STATE_DO;
  13470. }
  13471. FALL_THROUGH;
  13472. case CIPHER_STATE_DO:
  13473. {
  13474. ret = EncryptDo(ssl, out, input, sz, asyncOkay);
  13475. /* Advance state */
  13476. ssl->encrypt.state = CIPHER_STATE_END;
  13477. #ifdef WOLFSSL_ASYNC_CRYPT
  13478. /* If pending, then leave and return will resume below */
  13479. if (ret == WC_PENDING_E) {
  13480. return ret;
  13481. }
  13482. #endif
  13483. }
  13484. FALL_THROUGH;
  13485. case CIPHER_STATE_END:
  13486. {
  13487. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13488. if (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_ccm ||
  13489. ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm)
  13490. {
  13491. /* finalize authentication cipher */
  13492. #if !defined(NO_PUBLIC_GCM_SET_IV) && \
  13493. ((defined(HAVE_FIPS) || defined(HAVE_SELFTEST)) && \
  13494. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION < 2)))
  13495. AeadIncrementExpIV(ssl);
  13496. #endif
  13497. if (ssl->encrypt.nonce)
  13498. ForceZero(ssl->encrypt.nonce, AESGCM_NONCE_SZ);
  13499. }
  13500. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13501. break;
  13502. }
  13503. default:
  13504. break;
  13505. }
  13506. /* Reset state */
  13507. ssl->encrypt.state = CIPHER_STATE_BEGIN;
  13508. return ret;
  13509. }
  13510. static WC_INLINE int DecryptDo(WOLFSSL* ssl, byte* plain, const byte* input,
  13511. word16 sz)
  13512. {
  13513. int ret = 0;
  13514. (void)plain;
  13515. (void)input;
  13516. (void)sz;
  13517. switch (ssl->specs.bulk_cipher_algorithm)
  13518. {
  13519. #ifdef BUILD_ARC4
  13520. case wolfssl_rc4:
  13521. wc_Arc4Process(ssl->decrypt.arc4, plain, input, sz);
  13522. break;
  13523. #endif
  13524. #ifdef BUILD_DES3
  13525. case wolfssl_triple_des:
  13526. #ifdef WOLFSSL_ASYNC_CRYPT
  13527. /* initialize event */
  13528. ret = wolfSSL_AsyncInit(ssl, &ssl->decrypt.des3->asyncDev,
  13529. WC_ASYNC_FLAG_CALL_AGAIN);
  13530. if (ret != 0)
  13531. break;
  13532. #endif
  13533. ret = wc_Des3_CbcDecrypt(ssl->decrypt.des3, plain, input, sz);
  13534. #ifdef WOLFSSL_ASYNC_CRYPT
  13535. if (ret == WC_PENDING_E) {
  13536. ret = wolfSSL_AsyncPush(ssl, &ssl->decrypt.des3->asyncDev);
  13537. }
  13538. #endif
  13539. break;
  13540. #endif
  13541. #if defined(BUILD_AES) && defined(HAVE_AES_CBC)
  13542. case wolfssl_aes:
  13543. #ifdef WOLFSSL_ASYNC_CRYPT
  13544. /* initialize event */
  13545. ret = wolfSSL_AsyncInit(ssl, &ssl->decrypt.aes->asyncDev,
  13546. WC_ASYNC_FLAG_CALL_AGAIN);
  13547. if (ret != 0)
  13548. break;
  13549. #endif
  13550. #if defined(WOLFSSL_RENESAS_TSIP_TLS) && \
  13551. !defined(NO_WOLFSSL_RENESAS_TSIP_TLS_SESSION)
  13552. if (tsip_useable(ssl)) {
  13553. ret = wc_tsip_AesCbcDecrypt(ssl->decrypt.aes, plain, input, sz);
  13554. } else
  13555. #endif
  13556. ret = wc_AesCbcDecrypt(ssl->decrypt.aes, plain, input, sz);
  13557. #ifdef WOLFSSL_ASYNC_CRYPT
  13558. if (ret == WC_PENDING_E) {
  13559. ret = wolfSSL_AsyncPush(ssl, &ssl->decrypt.aes->asyncDev);
  13560. }
  13561. #endif
  13562. break;
  13563. #endif
  13564. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13565. case wolfssl_aes_gcm:
  13566. case wolfssl_aes_ccm: /* GCM AEAD macros use same size as CCM */
  13567. {
  13568. wc_AesAuthDecryptFunc aes_auth_fn;
  13569. #ifdef WOLFSSL_ASYNC_CRYPT
  13570. /* initialize event */
  13571. ret = wolfSSL_AsyncInit(ssl, &ssl->decrypt.aes->asyncDev,
  13572. WC_ASYNC_FLAG_CALL_AGAIN);
  13573. if (ret != 0)
  13574. break;
  13575. #endif
  13576. #if defined(BUILD_AESGCM) && defined(HAVE_AESCCM)
  13577. aes_auth_fn = (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm)
  13578. ? wc_AesGcmDecrypt : wc_AesCcmDecrypt;
  13579. #elif defined(BUILD_AESGCM)
  13580. aes_auth_fn = wc_AesGcmDecrypt;
  13581. #else
  13582. aes_auth_fn = wc_AesCcmDecrypt;
  13583. #endif
  13584. XMEMSET(ssl->decrypt.additional, 0, AEAD_AUTH_DATA_SZ);
  13585. /* sequence number field is 64-bits */
  13586. WriteSEQ(ssl, PEER_ORDER, ssl->decrypt.additional);
  13587. ssl->decrypt.additional[AEAD_TYPE_OFFSET] = ssl->curRL.type;
  13588. ssl->decrypt.additional[AEAD_VMAJ_OFFSET] = ssl->curRL.pvMajor;
  13589. ssl->decrypt.additional[AEAD_VMIN_OFFSET] = ssl->curRL.pvMinor;
  13590. c16toa(sz - AESGCM_EXP_IV_SZ - ssl->specs.aead_mac_size,
  13591. ssl->decrypt.additional + AEAD_LEN_OFFSET);
  13592. #if defined(WOLFSSL_DTLS) && defined(HAVE_SECURE_RENEGOTIATION)
  13593. if (ssl->options.dtls && IsDtlsMsgSCRKeys(ssl))
  13594. XMEMCPY(ssl->decrypt.nonce,
  13595. ssl->secure_renegotiation->tmp_keys.aead_dec_imp_IV,
  13596. AESGCM_IMP_IV_SZ);
  13597. else
  13598. #endif
  13599. XMEMCPY(ssl->decrypt.nonce, ssl->keys.aead_dec_imp_IV,
  13600. AESGCM_IMP_IV_SZ);
  13601. XMEMCPY(ssl->decrypt.nonce + AESGCM_IMP_IV_SZ, input,
  13602. AESGCM_EXP_IV_SZ);
  13603. if ((ret = aes_auth_fn(ssl->decrypt.aes,
  13604. plain + AESGCM_EXP_IV_SZ,
  13605. input + AESGCM_EXP_IV_SZ,
  13606. sz - AESGCM_EXP_IV_SZ - ssl->specs.aead_mac_size,
  13607. ssl->decrypt.nonce, AESGCM_NONCE_SZ,
  13608. input + sz - ssl->specs.aead_mac_size,
  13609. ssl->specs.aead_mac_size,
  13610. ssl->decrypt.additional, AEAD_AUTH_DATA_SZ)) < 0) {
  13611. #ifdef WOLFSSL_ASYNC_CRYPT
  13612. if (ret == WC_PENDING_E) {
  13613. ret = wolfSSL_AsyncPush(ssl, &ssl->decrypt.aes->asyncDev);
  13614. }
  13615. #endif
  13616. }
  13617. }
  13618. break;
  13619. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13620. #ifdef HAVE_CAMELLIA
  13621. case wolfssl_camellia:
  13622. ret = wc_CamelliaCbcDecrypt(ssl->decrypt.cam, plain, input, sz);
  13623. break;
  13624. #endif
  13625. #ifdef HAVE_HC128
  13626. case wolfssl_hc128:
  13627. ret = wc_Hc128_Process(ssl->decrypt.hc128, plain, input, sz);
  13628. break;
  13629. #endif
  13630. #ifdef BUILD_RABBIT
  13631. case wolfssl_rabbit:
  13632. ret = wc_RabbitProcess(ssl->decrypt.rabbit, plain, input, sz);
  13633. break;
  13634. #endif
  13635. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305) && \
  13636. !defined(NO_CHAPOL_AEAD)
  13637. case wolfssl_chacha:
  13638. ret = ChachaAEADDecrypt(ssl, plain, input, sz);
  13639. break;
  13640. #endif
  13641. #ifdef HAVE_NULL_CIPHER
  13642. case wolfssl_cipher_null:
  13643. if (input != plain) {
  13644. XMEMMOVE(plain, input, sz);
  13645. }
  13646. break;
  13647. #endif
  13648. #ifdef HAVE_IDEA
  13649. case wolfssl_idea:
  13650. ret = wc_IdeaCbcDecrypt(ssl->decrypt.idea, plain, input, sz);
  13651. break;
  13652. #endif
  13653. default:
  13654. WOLFSSL_MSG("wolfSSL Decrypt programming error");
  13655. ret = DECRYPT_ERROR;
  13656. }
  13657. return ret;
  13658. }
  13659. static WC_INLINE int Decrypt(WOLFSSL* ssl, byte* plain, const byte* input,
  13660. word16 sz)
  13661. {
  13662. int ret = 0;
  13663. #ifdef WOLFSSL_ASYNC_CRYPT
  13664. ret = wolfSSL_AsyncPop(ssl, &ssl->decrypt.state);
  13665. if (ret != WC_NOT_PENDING_E) {
  13666. /* check for still pending */
  13667. if (ret == WC_PENDING_E)
  13668. return ret;
  13669. ssl->error = 0; /* clear async */
  13670. /* let failures through so CIPHER_STATE_END logic is run */
  13671. }
  13672. else
  13673. #endif
  13674. {
  13675. /* Reset state */
  13676. ret = 0;
  13677. ssl->decrypt.state = CIPHER_STATE_BEGIN;
  13678. }
  13679. switch (ssl->decrypt.state) {
  13680. case CIPHER_STATE_BEGIN:
  13681. {
  13682. if (ssl->decrypt.setup == 0) {
  13683. WOLFSSL_MSG("Decrypt ciphers not setup");
  13684. return DECRYPT_ERROR;
  13685. }
  13686. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13687. /* make sure AES GCM/CCM memory is allocated */
  13688. /* free for these happens in FreeCiphers */
  13689. if (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_ccm ||
  13690. ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm) {
  13691. /* make sure auth iv and auth are allocated */
  13692. if (ssl->decrypt.additional == NULL)
  13693. ssl->decrypt.additional = (byte*)XMALLOC(AEAD_AUTH_DATA_SZ,
  13694. ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  13695. if (ssl->decrypt.nonce == NULL)
  13696. ssl->decrypt.nonce = (byte*)XMALLOC(AESGCM_NONCE_SZ,
  13697. ssl->heap, DYNAMIC_TYPE_AES_BUFFER);
  13698. if (ssl->decrypt.additional == NULL ||
  13699. ssl->decrypt.nonce == NULL) {
  13700. return MEMORY_E;
  13701. }
  13702. }
  13703. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13704. /* Advance state and proceed */
  13705. ssl->decrypt.state = CIPHER_STATE_DO;
  13706. }
  13707. FALL_THROUGH;
  13708. case CIPHER_STATE_DO:
  13709. {
  13710. #if defined(WOLFSSL_DTLS) && defined(HAVE_SECURE_RENEGOTIATION)
  13711. if (ssl->options.dtls && DtlsSCRKeysSet(ssl)) {
  13712. /* For epochs >1 the current cipher parameters are located in
  13713. * ssl->secure_renegotiation->tmp_keys. Previous cipher
  13714. * parameters and for epoch 1 use ssl->keys */
  13715. if (ssl->keys.curEpoch ==
  13716. ssl->secure_renegotiation->tmp_keys.dtls_epoch) {
  13717. if (ssl->decrypt.src != SCR) {
  13718. ssl->secure_renegotiation->cache_status =
  13719. SCR_CACHE_NEEDED;
  13720. if ((ret = SetKeysSide(ssl, DECRYPT_SIDE_ONLY)) != 0)
  13721. break;
  13722. }
  13723. }
  13724. else {
  13725. if (ssl->decrypt.src != KEYS) {
  13726. ssl->secure_renegotiation->cache_status =
  13727. SCR_CACHE_NULL;
  13728. if ((ret = SetKeysSide(ssl, DECRYPT_SIDE_ONLY)) != 0)
  13729. break;
  13730. }
  13731. }
  13732. }
  13733. #endif
  13734. ret = DecryptDo(ssl, plain, input, sz);
  13735. /* Advance state */
  13736. ssl->decrypt.state = CIPHER_STATE_END;
  13737. #ifdef WOLFSSL_ASYNC_CRYPT
  13738. /* If pending, leave and return below */
  13739. if (ret == WC_PENDING_E) {
  13740. return ret;
  13741. }
  13742. #endif
  13743. }
  13744. FALL_THROUGH;
  13745. case CIPHER_STATE_END:
  13746. {
  13747. #if defined(BUILD_AESGCM) || defined(HAVE_AESCCM)
  13748. /* make sure AES GCM/CCM nonce is cleared */
  13749. if (ssl->specs.bulk_cipher_algorithm == wolfssl_aes_ccm ||
  13750. ssl->specs.bulk_cipher_algorithm == wolfssl_aes_gcm) {
  13751. if (ssl->decrypt.nonce)
  13752. ForceZero(ssl->decrypt.nonce, AESGCM_NONCE_SZ);
  13753. if (ret < 0)
  13754. ret = VERIFY_MAC_ERROR;
  13755. }
  13756. #endif /* BUILD_AESGCM || HAVE_AESCCM */
  13757. break;
  13758. }
  13759. default:
  13760. break;
  13761. }
  13762. /* Reset state */
  13763. ssl->decrypt.state = CIPHER_STATE_BEGIN;
  13764. /* handle mac error case */
  13765. if (ret == VERIFY_MAC_ERROR) {
  13766. if (!ssl->options.dtls)
  13767. SendAlert(ssl, alert_fatal, bad_record_mac);
  13768. #ifdef WOLFSSL_DTLS_DROP_STATS
  13769. ssl->macDropCount++;
  13770. #endif /* WOLFSSL_DTLS_DROP_STATS */
  13771. }
  13772. return ret;
  13773. }
  13774. #endif /* !WOLFSSL_NO_TLS12 */
  13775. /* Check conditions for a cipher to have an explicit IV.
  13776. *
  13777. * ssl The SSL/TLS object.
  13778. * returns 1 if the cipher in use has an explicit IV and 0 otherwise.
  13779. */
  13780. static WC_INLINE int CipherHasExpIV(WOLFSSL *ssl)
  13781. {
  13782. #ifdef WOLFSSL_TLS13
  13783. if (ssl->options.tls1_3)
  13784. return 0;
  13785. #endif
  13786. return (ssl->specs.cipher_type == aead) &&
  13787. (ssl->specs.bulk_cipher_algorithm != wolfssl_chacha);
  13788. }
  13789. /* check cipher text size for sanity */
  13790. static int SanityCheckCipherText(WOLFSSL* ssl, word32 encryptSz)
  13791. {
  13792. #ifdef HAVE_TRUNCATED_HMAC
  13793. word32 minLength = ssl->truncated_hmac ? (byte)TRUNCATED_HMAC_SZ
  13794. : ssl->specs.hash_size;
  13795. #else
  13796. word32 minLength = ssl->specs.hash_size; /* covers stream */
  13797. #endif
  13798. #ifndef WOLFSSL_AEAD_ONLY
  13799. if (ssl->specs.cipher_type == block) {
  13800. #ifdef HAVE_ENCRYPT_THEN_MAC
  13801. if (ssl->options.startedETMRead) {
  13802. if ((encryptSz - MacSize(ssl)) % ssl->specs.block_size) {
  13803. WOLFSSL_MSG("Block ciphertext not block size");
  13804. return SANITY_CIPHER_E;
  13805. }
  13806. }
  13807. else
  13808. #endif
  13809. if (encryptSz % ssl->specs.block_size) {
  13810. WOLFSSL_MSG("Block ciphertext not block size");
  13811. return SANITY_CIPHER_E;
  13812. }
  13813. minLength++; /* pad byte */
  13814. if (ssl->specs.block_size > minLength)
  13815. minLength = ssl->specs.block_size;
  13816. if (ssl->options.tls1_1)
  13817. minLength += ssl->specs.block_size; /* explicit IV */
  13818. }
  13819. else
  13820. #endif
  13821. if (ssl->specs.cipher_type == aead) {
  13822. minLength = ssl->specs.aead_mac_size; /* authTag size */
  13823. if (CipherHasExpIV(ssl))
  13824. minLength += AESGCM_EXP_IV_SZ; /* explicit IV */
  13825. }
  13826. if (encryptSz < minLength) {
  13827. WOLFSSL_MSG("Ciphertext not minimum size");
  13828. return SANITY_CIPHER_E;
  13829. }
  13830. return 0;
  13831. }
  13832. #ifndef WOLFSSL_AEAD_ONLY
  13833. /* check all length bytes for the pad value, return 0 on success */
  13834. static int PadCheck(const byte* a, byte pad, int length)
  13835. {
  13836. int i;
  13837. int compareSum = 0;
  13838. for (i = 0; i < length; i++) {
  13839. compareSum |= a[i] ^ pad;
  13840. }
  13841. return compareSum;
  13842. }
  13843. /* Mask the padding bytes with the expected values.
  13844. * Constant time implementation - does maximum pad size possible.
  13845. *
  13846. * data Message data.
  13847. * sz Size of the message including MAC and padding and padding length.
  13848. * macSz Size of the MAC.
  13849. * returns 0 on success, otherwise failure.
  13850. */
  13851. static byte MaskPadding(const byte* data, int sz, int macSz)
  13852. {
  13853. int i;
  13854. int checkSz = sz - 1;
  13855. byte paddingSz = data[sz - 1];
  13856. byte mask;
  13857. byte good = ctMaskGT(paddingSz, sz - 1 - macSz);
  13858. if (checkSz > TLS_MAX_PAD_SZ)
  13859. checkSz = TLS_MAX_PAD_SZ;
  13860. for (i = 0; i < checkSz; i++) {
  13861. mask = ctMaskLTE(i, paddingSz);
  13862. good |= mask & (data[sz - 1 - i] ^ paddingSz);
  13863. }
  13864. return good;
  13865. }
  13866. /* Mask the MAC in the message with the MAC calculated.
  13867. * Constant time implementation - starts looking for MAC where maximum padding
  13868. * size has it.
  13869. *
  13870. * data Message data.
  13871. * sz Size of the message including MAC and padding and padding length.
  13872. * macSz Size of the MAC data.
  13873. * expMac Expected MAC value.
  13874. * returns 0 on success, otherwise failure.
  13875. */
  13876. static byte MaskMac(const byte* data, int sz, int macSz, byte* expMac)
  13877. {
  13878. int i, j;
  13879. unsigned char mac[WC_MAX_DIGEST_SIZE];
  13880. int scanStart = sz - 1 - TLS_MAX_PAD_SZ - macSz;
  13881. int macEnd = sz - 1 - data[sz - 1];
  13882. int macStart = macEnd - macSz;
  13883. int r = 0;
  13884. unsigned char started, notEnded;
  13885. unsigned char good = 0;
  13886. scanStart &= ctMaskIntGTE(scanStart, 0);
  13887. macStart &= ctMaskIntGTE(macStart, 0);
  13888. /* Div on Intel has different speeds depending on value.
  13889. * Use a bitwise AND or mod a specific value (converted to mul). */
  13890. if ((macSz & (macSz - 1)) == 0)
  13891. r = (macSz - (scanStart - macStart)) & (macSz - 1);
  13892. #ifndef NO_SHA
  13893. else if (macSz == WC_SHA_DIGEST_SIZE)
  13894. r = (macSz - (scanStart - macStart)) % WC_SHA_DIGEST_SIZE;
  13895. #endif
  13896. #ifdef WOLFSSL_SHA384
  13897. else if (macSz == WC_SHA384_DIGEST_SIZE)
  13898. r = (macSz - (scanStart - macStart)) % WC_SHA384_DIGEST_SIZE;
  13899. #endif
  13900. XMEMSET(mac, 0, macSz);
  13901. for (i = scanStart; i < sz; i += macSz) {
  13902. for (j = 0; j < macSz && j + i < sz; j++) {
  13903. started = ctMaskGTE(i + j, macStart);
  13904. notEnded = ctMaskLT(i + j, macEnd);
  13905. mac[j] |= started & notEnded & data[i + j];
  13906. }
  13907. }
  13908. if ((macSz & (macSz - 1)) == 0) {
  13909. for (i = 0; i < macSz; i++)
  13910. good |= expMac[i] ^ mac[(i + r) & (macSz - 1)];
  13911. }
  13912. #ifndef NO_SHA
  13913. else if (macSz == WC_SHA_DIGEST_SIZE) {
  13914. for (i = 0; i < macSz; i++)
  13915. good |= expMac[i] ^ mac[(i + r) % WC_SHA_DIGEST_SIZE];
  13916. }
  13917. #endif
  13918. #ifdef WOLFSSL_SHA384
  13919. else if (macSz == WC_SHA384_DIGEST_SIZE) {
  13920. for (i = 0; i < macSz; i++)
  13921. good |= expMac[i] ^ mac[(i + r) % WC_SHA384_DIGEST_SIZE];
  13922. }
  13923. #endif
  13924. return good;
  13925. }
  13926. /* timing resistant pad/verify check, return 0 on success */
  13927. int TimingPadVerify(WOLFSSL* ssl, const byte* input, int padLen, int macSz,
  13928. int pLen, int content)
  13929. {
  13930. byte verify[WC_MAX_DIGEST_SIZE];
  13931. byte good;
  13932. int ret = 0;
  13933. good = MaskPadding(input, pLen, macSz);
  13934. /* 4th argument has potential to underflow, ssl->hmac function should
  13935. * either increment the size by (macSz + padLen + 1) before use or check on
  13936. * the size to make sure is valid. */
  13937. ret = ssl->hmac(ssl, verify, input, pLen - macSz - padLen - 1, padLen,
  13938. content, 1, PEER_ORDER);
  13939. good |= MaskMac(input, pLen, ssl->specs.hash_size, verify);
  13940. /* Non-zero on failure. */
  13941. good = (byte)~(word32)good;
  13942. good &= good >> 4;
  13943. good &= good >> 2;
  13944. good &= good >> 1;
  13945. /* Make ret negative on masking failure. */
  13946. ret -= 1 - good;
  13947. /* Treat any failure as verify MAC error. */
  13948. if (ret != 0)
  13949. ret = VERIFY_MAC_ERROR;
  13950. return ret;
  13951. }
  13952. #endif
  13953. int DoApplicationData(WOLFSSL* ssl, byte* input, word32* inOutIdx, int sniff)
  13954. {
  13955. word32 msgSz = ssl->keys.encryptSz;
  13956. word32 idx = *inOutIdx;
  13957. int dataSz;
  13958. int ivExtra = 0;
  13959. byte* rawData = input + idx; /* keep current for hmac */
  13960. #ifdef HAVE_LIBZ
  13961. byte decomp[MAX_RECORD_SIZE + MAX_COMP_EXTRA];
  13962. #endif
  13963. #ifdef WOLFSSL_EARLY_DATA
  13964. if (ssl->options.tls1_3 && ssl->options.handShakeDone == 0) {
  13965. int process = 0;
  13966. if (ssl->options.side == WOLFSSL_SERVER_END) {
  13967. if ((ssl->earlyData != no_early_data) &&
  13968. (ssl->options.clientState == CLIENT_HELLO_COMPLETE)) {
  13969. process = 1;
  13970. }
  13971. if (!process) {
  13972. WOLFSSL_MSG("Ignoring EarlyData!");
  13973. *inOutIdx = ssl->buffers.inputBuffer.length;
  13974. return 0;
  13975. }
  13976. }
  13977. if (!process) {
  13978. WOLFSSL_MSG("Received App data before a handshake completed");
  13979. if (sniff == NO_SNIFF) {
  13980. SendAlert(ssl, alert_fatal, unexpected_message);
  13981. }
  13982. return OUT_OF_ORDER_E;
  13983. }
  13984. }
  13985. else
  13986. #endif
  13987. if (ssl->options.handShakeDone == 0) {
  13988. WOLFSSL_MSG("Received App data before a handshake completed");
  13989. if (sniff == NO_SNIFF) {
  13990. SendAlert(ssl, alert_fatal, unexpected_message);
  13991. }
  13992. return OUT_OF_ORDER_E;
  13993. }
  13994. #ifndef WOLFSSL_AEAD_ONLY
  13995. if (ssl->specs.cipher_type == block) {
  13996. if (ssl->options.tls1_1)
  13997. ivExtra = ssl->specs.block_size;
  13998. }
  13999. else
  14000. #endif
  14001. if (ssl->specs.cipher_type == aead) {
  14002. if (CipherHasExpIV(ssl))
  14003. ivExtra = AESGCM_EXP_IV_SZ;
  14004. }
  14005. dataSz = msgSz - ivExtra - ssl->keys.padSz;
  14006. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14007. if (ssl->options.startedETMRead)
  14008. dataSz -= MacSize(ssl);
  14009. #endif
  14010. if (dataSz < 0) {
  14011. WOLFSSL_MSG("App data buffer error, malicious input?");
  14012. if (sniff == NO_SNIFF) {
  14013. SendAlert(ssl, alert_fatal, unexpected_message);
  14014. }
  14015. return BUFFER_ERROR;
  14016. }
  14017. #ifdef WOLFSSL_EARLY_DATA
  14018. if (ssl->earlyData > early_data_ext) {
  14019. if (ssl->earlyDataSz + dataSz > ssl->options.maxEarlyDataSz) {
  14020. if (sniff == NO_SNIFF) {
  14021. SendAlert(ssl, alert_fatal, unexpected_message);
  14022. }
  14023. return WOLFSSL_FATAL_ERROR;
  14024. }
  14025. ssl->earlyDataSz += dataSz;
  14026. }
  14027. #endif
  14028. /* read data */
  14029. if (dataSz) {
  14030. int rawSz = dataSz; /* keep raw size for idx adjustment */
  14031. #ifdef HAVE_LIBZ
  14032. if (ssl->options.usingCompression) {
  14033. dataSz = myDeCompress(ssl, rawData, dataSz, decomp, sizeof(decomp));
  14034. if (dataSz < 0) return dataSz;
  14035. }
  14036. #endif
  14037. idx += rawSz;
  14038. ssl->buffers.clearOutputBuffer.buffer = rawData;
  14039. ssl->buffers.clearOutputBuffer.length = dataSz;
  14040. }
  14041. idx += ssl->keys.padSz;
  14042. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14043. if (ssl->options.startedETMRead)
  14044. idx += MacSize(ssl);
  14045. #endif
  14046. #ifdef HAVE_LIBZ
  14047. /* decompress could be bigger, overwrite after verify */
  14048. if (ssl->options.usingCompression)
  14049. XMEMMOVE(rawData, decomp, dataSz);
  14050. #endif
  14051. *inOutIdx = idx;
  14052. #ifdef HAVE_SECURE_RENEGOTIATION
  14053. if (IsSCR(ssl)) {
  14054. /* Reset the processReply state since
  14055. * we finished processing this message. */
  14056. ssl->options.processReply = doProcessInit;
  14057. /* If we are in a secure renegotiation then APP DATA is treated
  14058. * differently */
  14059. return APP_DATA_READY;
  14060. }
  14061. #endif
  14062. return 0;
  14063. }
  14064. const char* AlertTypeToString(int type)
  14065. {
  14066. switch (type) {
  14067. case close_notify:
  14068. {
  14069. static const char close_notify_str[] =
  14070. "close_notify";
  14071. return close_notify_str;
  14072. }
  14073. case unexpected_message:
  14074. {
  14075. static const char unexpected_message_str[] =
  14076. "unexpected_message";
  14077. return unexpected_message_str;
  14078. }
  14079. case bad_record_mac:
  14080. {
  14081. static const char bad_record_mac_str[] =
  14082. "bad_record_mac";
  14083. return bad_record_mac_str;
  14084. }
  14085. case record_overflow:
  14086. {
  14087. static const char record_overflow_str[] =
  14088. "record_overflow";
  14089. return record_overflow_str;
  14090. }
  14091. case decompression_failure:
  14092. {
  14093. static const char decompression_failure_str[] =
  14094. "decompression_failure";
  14095. return decompression_failure_str;
  14096. }
  14097. case handshake_failure:
  14098. {
  14099. static const char handshake_failure_str[] =
  14100. "handshake_failure";
  14101. return handshake_failure_str;
  14102. }
  14103. case no_certificate:
  14104. {
  14105. static const char no_certificate_str[] =
  14106. "no_certificate";
  14107. return no_certificate_str;
  14108. }
  14109. case bad_certificate:
  14110. {
  14111. static const char bad_certificate_str[] =
  14112. "bad_certificate";
  14113. return bad_certificate_str;
  14114. }
  14115. case unsupported_certificate:
  14116. {
  14117. static const char unsupported_certificate_str[] =
  14118. "unsupported_certificate";
  14119. return unsupported_certificate_str;
  14120. }
  14121. case certificate_revoked:
  14122. {
  14123. static const char certificate_revoked_str[] =
  14124. "certificate_revoked";
  14125. return certificate_revoked_str;
  14126. }
  14127. case certificate_expired:
  14128. {
  14129. static const char certificate_expired_str[] =
  14130. "certificate_expired";
  14131. return certificate_expired_str;
  14132. }
  14133. case certificate_unknown:
  14134. {
  14135. static const char certificate_unknown_str[] =
  14136. "certificate_unknown";
  14137. return certificate_unknown_str;
  14138. }
  14139. case illegal_parameter:
  14140. {
  14141. static const char illegal_parameter_str[] =
  14142. "illegal_parameter";
  14143. return illegal_parameter_str;
  14144. }
  14145. case unknown_ca:
  14146. {
  14147. static const char unknown_ca_str[] =
  14148. "unknown_ca";
  14149. return unknown_ca_str;
  14150. }
  14151. case access_denied:
  14152. {
  14153. static const char access_denied_str[] =
  14154. "access_denied";
  14155. return access_denied_str;
  14156. }
  14157. case decode_error:
  14158. {
  14159. static const char decode_error_str[] =
  14160. "decode_error";
  14161. return decode_error_str;
  14162. }
  14163. case decrypt_error:
  14164. {
  14165. static const char decrypt_error_str[] =
  14166. "decrypt_error";
  14167. return decrypt_error_str;
  14168. }
  14169. #ifdef WOLFSSL_MYSQL_COMPATIBLE
  14170. /* catch name conflict for enum protocol with MYSQL build */
  14171. case wc_protocol_version:
  14172. {
  14173. static const char wc_protocol_version_str[] =
  14174. "wc_protocol_version";
  14175. return wc_protocol_version_str;
  14176. }
  14177. #else
  14178. case protocol_version:
  14179. {
  14180. static const char protocol_version_str[] =
  14181. "protocol_version";
  14182. return protocol_version_str;
  14183. }
  14184. #endif
  14185. case insufficient_security:
  14186. {
  14187. static const char insufficient_security_str[] =
  14188. "insufficient_security";
  14189. return insufficient_security_str;
  14190. }
  14191. case internal_error:
  14192. {
  14193. static const char internal_error_str[] =
  14194. "internal_error";
  14195. return internal_error_str;
  14196. }
  14197. case user_canceled:
  14198. {
  14199. static const char user_canceled_str[] =
  14200. "user_canceled";
  14201. return user_canceled_str;
  14202. }
  14203. case no_renegotiation:
  14204. {
  14205. static const char no_renegotiation_str[] =
  14206. "no_renegotiation";
  14207. return no_renegotiation_str;
  14208. }
  14209. case unrecognized_name:
  14210. {
  14211. static const char unrecognized_name_str[] =
  14212. "unrecognized_name";
  14213. return unrecognized_name_str;
  14214. }
  14215. case bad_certificate_status_response:
  14216. {
  14217. static const char bad_certificate_status_response_str[] =
  14218. "bad_certificate_status_response";
  14219. return bad_certificate_status_response_str;
  14220. }
  14221. case no_application_protocol:
  14222. {
  14223. static const char no_application_protocol_str[] =
  14224. "no_application_protocol";
  14225. return no_application_protocol_str;
  14226. }
  14227. default:
  14228. WOLFSSL_MSG("Unknown Alert");
  14229. return NULL;
  14230. }
  14231. }
  14232. static void LogAlert(int type)
  14233. {
  14234. (void)type;
  14235. #ifdef DEBUG_WOLFSSL
  14236. const char* typeStr;
  14237. char buff[60];
  14238. typeStr = AlertTypeToString(type);
  14239. if (typeStr != NULL) {
  14240. XSNPRINTF(buff, sizeof(buff), "Alert type: %s", typeStr);
  14241. WOLFSSL_MSG(buff);
  14242. }
  14243. #endif /* DEBUG_WOLFSSL */
  14244. }
  14245. /* process alert, return level */
  14246. static int DoAlert(WOLFSSL* ssl, byte* input, word32* inOutIdx, int* type)
  14247. {
  14248. byte level;
  14249. byte code;
  14250. word32 dataSz = (word32)ssl->curSize;
  14251. int ivExtra = 0;
  14252. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  14253. if (ssl->hsInfoOn)
  14254. AddPacketName(ssl, "Alert");
  14255. if (ssl->toInfoOn)
  14256. /* add record header back on to info + alert bytes level/code */
  14257. AddPacketInfo(ssl, "Alert", alert, input + *inOutIdx -
  14258. RECORD_HEADER_SZ, RECORD_HEADER_SZ + ALERT_SIZE,
  14259. READ_PROTO, ssl->heap);
  14260. #endif
  14261. #ifndef WOLFSSL_AEAD_ONLY
  14262. if (ssl->specs.cipher_type == block) {
  14263. if (ssl->options.tls1_1)
  14264. ivExtra = ssl->specs.block_size;
  14265. }
  14266. else
  14267. #endif
  14268. if (ssl->specs.cipher_type == aead) {
  14269. if (CipherHasExpIV(ssl))
  14270. ivExtra = AESGCM_EXP_IV_SZ;
  14271. }
  14272. dataSz -= ivExtra;
  14273. if (IsEncryptionOn(ssl, 0)) {
  14274. dataSz -= ssl->keys.padSz;
  14275. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14276. if (ssl->options.startedETMRead)
  14277. dataSz -= MacSize(ssl);
  14278. #endif
  14279. }
  14280. /* make sure can read the message */
  14281. if (dataSz != ALERT_SIZE) {
  14282. #ifdef WOLFSSL_EXTRA_ALERTS
  14283. SendAlert(ssl, alert_fatal, unexpected_message);
  14284. #endif
  14285. return BUFFER_E;
  14286. }
  14287. level = input[(*inOutIdx)++];
  14288. code = input[(*inOutIdx)++];
  14289. ssl->alert_history.last_rx.code = code;
  14290. ssl->alert_history.last_rx.level = level;
  14291. *type = code;
  14292. if (level == alert_fatal) {
  14293. ssl->options.isClosed = 1; /* Don't send close_notify */
  14294. }
  14295. if (++ssl->options.alertCount >= WOLFSSL_ALERT_COUNT_MAX) {
  14296. WOLFSSL_MSG("Alert count exceeded");
  14297. #ifdef WOLFSSL_EXTRA_ALERTS
  14298. if (level != alert_warning || code != close_notify)
  14299. SendAlert(ssl, alert_fatal, unexpected_message);
  14300. #endif
  14301. return ALERT_COUNT_E;
  14302. }
  14303. LogAlert(*type);
  14304. if (*type == close_notify) {
  14305. ssl->options.closeNotify = 1;
  14306. }
  14307. WOLFSSL_ERROR(*type);
  14308. if (IsEncryptionOn(ssl, 0)) {
  14309. *inOutIdx += ssl->keys.padSz;
  14310. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14311. if (ssl->options.startedETMRead)
  14312. *inOutIdx += MacSize(ssl);
  14313. #endif
  14314. }
  14315. return level;
  14316. }
  14317. static int GetInputData(WOLFSSL *ssl, word32 size)
  14318. {
  14319. int in;
  14320. int inSz;
  14321. int maxLength;
  14322. int usedLength;
  14323. int dtlsExtra = 0;
  14324. /* check max input length */
  14325. usedLength = ssl->buffers.inputBuffer.length - ssl->buffers.inputBuffer.idx;
  14326. maxLength = ssl->buffers.inputBuffer.bufferSize - usedLength;
  14327. inSz = (int)(size - usedLength); /* from last partial read */
  14328. #ifdef WOLFSSL_DTLS
  14329. if (ssl->options.dtls) {
  14330. if (size < ssl->dtls_expected_rx)
  14331. dtlsExtra = (int)(ssl->dtls_expected_rx - size);
  14332. inSz = ssl->dtls_expected_rx;
  14333. }
  14334. #endif
  14335. /* check that no lengths or size values are negative */
  14336. if (usedLength < 0 || maxLength < 0 || inSz <= 0) {
  14337. return BUFFER_ERROR;
  14338. }
  14339. if (inSz > maxLength) {
  14340. if (GrowInputBuffer(ssl, size + dtlsExtra, usedLength) < 0)
  14341. return MEMORY_E;
  14342. }
  14343. /* Put buffer data at start if not there */
  14344. if (usedLength > 0 && ssl->buffers.inputBuffer.idx != 0)
  14345. XMEMMOVE(ssl->buffers.inputBuffer.buffer,
  14346. ssl->buffers.inputBuffer.buffer + ssl->buffers.inputBuffer.idx,
  14347. usedLength);
  14348. /* remove processed data */
  14349. ssl->buffers.inputBuffer.idx = 0;
  14350. ssl->buffers.inputBuffer.length = usedLength;
  14351. /* read data from network */
  14352. do {
  14353. in = wolfSSLReceive(ssl,
  14354. ssl->buffers.inputBuffer.buffer +
  14355. ssl->buffers.inputBuffer.length,
  14356. inSz);
  14357. if (in == WANT_READ)
  14358. return WANT_READ;
  14359. if (in < 0)
  14360. return SOCKET_ERROR_E;
  14361. if (in > inSz)
  14362. return RECV_OVERFLOW_E;
  14363. ssl->buffers.inputBuffer.length += in;
  14364. inSz -= in;
  14365. } while (ssl->buffers.inputBuffer.length < size);
  14366. #ifdef WOLFSSL_DEBUG_TLS
  14367. if (ssl->buffers.inputBuffer.idx == 0) {
  14368. WOLFSSL_MSG("Data received");
  14369. WOLFSSL_BUFFER(ssl->buffers.inputBuffer.buffer,
  14370. ssl->buffers.inputBuffer.length);
  14371. }
  14372. #endif
  14373. return 0;
  14374. }
  14375. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14376. static WC_INLINE int VerifyMacEnc(WOLFSSL* ssl, const byte* input, word32 msgSz,
  14377. int content)
  14378. {
  14379. int ret;
  14380. #ifdef HAVE_TRUNCATED_HMAC
  14381. word32 digestSz = ssl->truncated_hmac ? (byte)TRUNCATED_HMAC_SZ
  14382. : ssl->specs.hash_size;
  14383. #else
  14384. word32 digestSz = ssl->specs.hash_size;
  14385. #endif
  14386. byte verify[WC_MAX_DIGEST_SIZE];
  14387. WOLFSSL_MSG("Verify MAC of Encrypted Data");
  14388. if (msgSz < digestSz) {
  14389. return VERIFY_MAC_ERROR;
  14390. }
  14391. ret = ssl->hmac(ssl, verify, input, msgSz - digestSz, -1, content, 1, PEER_ORDER);
  14392. ret |= ConstantCompare(verify, input + msgSz - digestSz, digestSz);
  14393. if (ret != 0) {
  14394. return VERIFY_MAC_ERROR;
  14395. }
  14396. return 0;
  14397. }
  14398. #endif
  14399. static WC_INLINE int VerifyMac(WOLFSSL* ssl, const byte* input, word32 msgSz,
  14400. int content, word32* padSz)
  14401. {
  14402. #if !defined(WOLFSSL_NO_TLS12) && !defined(WOLFSSL_AEAD_ONLY)
  14403. int ivExtra = 0;
  14404. int ret;
  14405. word32 pad = 0;
  14406. word32 padByte = 0;
  14407. #ifdef HAVE_TRUNCATED_HMAC
  14408. word32 digestSz = ssl->truncated_hmac ? (byte)TRUNCATED_HMAC_SZ
  14409. : ssl->specs.hash_size;
  14410. #else
  14411. word32 digestSz = ssl->specs.hash_size;
  14412. #endif
  14413. byte verify[WC_MAX_DIGEST_SIZE];
  14414. if (ssl->specs.cipher_type == block) {
  14415. if (ssl->options.tls1_1)
  14416. ivExtra = ssl->specs.block_size;
  14417. pad = *(input + msgSz - ivExtra - 1);
  14418. padByte = 1;
  14419. if (ssl->options.tls) {
  14420. ret = TimingPadVerify(ssl, input, pad, digestSz, msgSz - ivExtra,
  14421. content);
  14422. if (ret != 0)
  14423. return ret;
  14424. }
  14425. else { /* sslv3, some implementations have bad padding, but don't
  14426. * allow bad read */
  14427. int badPadLen = 0;
  14428. byte dmy[sizeof(WOLFSSL) >= MAX_PAD_SIZE ? 1 : MAX_PAD_SIZE] = {0};
  14429. byte* dummy = sizeof(dmy) < MAX_PAD_SIZE ? (byte*) ssl : dmy;
  14430. (void)dmy;
  14431. if (pad > (msgSz - digestSz - 1)) {
  14432. WOLFSSL_MSG("Plain Len not long enough for pad/mac");
  14433. pad = 0; /* no bad read */
  14434. badPadLen = 1;
  14435. }
  14436. PadCheck(dummy, (byte)pad, MAX_PAD_SIZE); /* timing only */
  14437. ret = ssl->hmac(ssl, verify, input, msgSz - digestSz - pad - 1,
  14438. pad, content, 1, PEER_ORDER);
  14439. if (ConstantCompare(verify, input + msgSz - digestSz - pad - 1,
  14440. digestSz) != 0)
  14441. return VERIFY_MAC_ERROR;
  14442. if (ret != 0 || badPadLen)
  14443. return VERIFY_MAC_ERROR;
  14444. }
  14445. }
  14446. else if (ssl->specs.cipher_type == stream) {
  14447. ret = ssl->hmac(ssl, verify, input, msgSz - digestSz, -1, content, 1,
  14448. PEER_ORDER);
  14449. if (ConstantCompare(verify, input + msgSz - digestSz, digestSz) != 0){
  14450. return VERIFY_MAC_ERROR;
  14451. }
  14452. if (ret != 0)
  14453. return VERIFY_MAC_ERROR;
  14454. }
  14455. #endif /* !WOLFSSL_NO_TLS12 && !WOLFSSL_AEAD_ONLY */
  14456. if (ssl->specs.cipher_type == aead) {
  14457. *padSz = ssl->specs.aead_mac_size;
  14458. }
  14459. #if !defined(WOLFSSL_NO_TLS12) && !defined(WOLFSSL_AEAD_ONLY)
  14460. else {
  14461. *padSz = digestSz + pad + padByte;
  14462. }
  14463. #endif /* !WOLFSSL_NO_TLS12 && !WOLFSSL_AEAD_ONLY */
  14464. (void)input;
  14465. (void)msgSz;
  14466. (void)content;
  14467. return 0;
  14468. }
  14469. int ProcessReply(WOLFSSL* ssl)
  14470. {
  14471. return ProcessReplyEx(ssl, 0);
  14472. }
  14473. /* Process input requests. Return 0 is done, 1 is call again to complete, and
  14474. negative number is error. If allowSocketErr is set, SOCKET_ERROR_E in
  14475. ssl->error will be whitelisted. This is useful when the connection has been
  14476. closed and the endpoint wants to check for an alert sent by the other end. */
  14477. int ProcessReplyEx(WOLFSSL* ssl, int allowSocketErr)
  14478. {
  14479. int ret = 0, type, readSz;
  14480. int atomicUser = 0;
  14481. word32 startIdx = 0;
  14482. #if defined(WOLFSSL_DTLS)
  14483. int used;
  14484. #endif
  14485. #ifdef ATOMIC_USER
  14486. if (ssl->ctx->DecryptVerifyCb)
  14487. atomicUser = 1;
  14488. #endif
  14489. if (ssl->error != 0 && ssl->error != WANT_READ && ssl->error != WANT_WRITE
  14490. #ifdef HAVE_SECURE_RENEGOTIATION
  14491. && ssl->error != APP_DATA_READY
  14492. #endif
  14493. #ifdef WOLFSSL_ASYNC_CRYPT
  14494. && ssl->error != WC_PENDING_E
  14495. #endif
  14496. #ifdef WOLFSSL_NONBLOCK_OCSP
  14497. && ssl->error != OCSP_WANT_READ
  14498. #endif
  14499. && (allowSocketErr != 1 || ssl->error != SOCKET_ERROR_E)
  14500. ) {
  14501. WOLFSSL_MSG("ProcessReply retry in error state, not allowed");
  14502. return ssl->error;
  14503. }
  14504. #if defined(WOLFSSL_DTLS) && defined(WOLFSSL_ASYNC_CRYPT)
  14505. /* process any pending DTLS messages - this flow can happen with async */
  14506. if (ssl->dtls_rx_msg_list != NULL) {
  14507. ret = DtlsMsgDrain(ssl);
  14508. if (ret != 0) {
  14509. WOLFSSL_ERROR(ret);
  14510. return ret;
  14511. }
  14512. }
  14513. #endif
  14514. for (;;) {
  14515. switch (ssl->options.processReply) {
  14516. /* in the WOLFSSL_SERVER case, get the first byte for detecting
  14517. * old client hello */
  14518. case doProcessInit:
  14519. readSz = RECORD_HEADER_SZ;
  14520. #ifdef WOLFSSL_DTLS
  14521. if (ssl->options.dtls)
  14522. readSz = DTLS_RECORD_HEADER_SZ;
  14523. #endif
  14524. /* get header or return error */
  14525. if (!ssl->options.dtls) {
  14526. if ((ret = GetInputData(ssl, readSz)) < 0)
  14527. return ret;
  14528. } else {
  14529. #ifdef WOLFSSL_DTLS
  14530. /* read ahead may already have header */
  14531. used = ssl->buffers.inputBuffer.length -
  14532. ssl->buffers.inputBuffer.idx;
  14533. if (used < readSz) {
  14534. if ((ret = GetInputData(ssl, readSz)) < 0)
  14535. return ret;
  14536. }
  14537. #endif
  14538. }
  14539. #ifdef OLD_HELLO_ALLOWED
  14540. /* see if sending SSLv2 client hello */
  14541. if ( ssl->options.side == WOLFSSL_SERVER_END &&
  14542. ssl->options.clientState == NULL_STATE &&
  14543. ssl->buffers.inputBuffer.buffer[ssl->buffers.inputBuffer.idx]
  14544. != handshake) {
  14545. byte b0, b1;
  14546. ssl->options.processReply = runProcessOldClientHello;
  14547. /* sanity checks before getting size at front */
  14548. if (ssl->buffers.inputBuffer.buffer[
  14549. ssl->buffers.inputBuffer.idx + OPAQUE16_LEN] != OLD_HELLO_ID) {
  14550. WOLFSSL_MSG("Not a valid old client hello");
  14551. return PARSE_ERROR;
  14552. }
  14553. if (ssl->buffers.inputBuffer.buffer[
  14554. ssl->buffers.inputBuffer.idx + OPAQUE24_LEN] != SSLv3_MAJOR &&
  14555. ssl->buffers.inputBuffer.buffer[
  14556. ssl->buffers.inputBuffer.idx + OPAQUE24_LEN] != DTLS_MAJOR) {
  14557. WOLFSSL_MSG("Not a valid version in old client hello");
  14558. return PARSE_ERROR;
  14559. }
  14560. /* how many bytes need ProcessOldClientHello */
  14561. b0 =
  14562. ssl->buffers.inputBuffer.buffer[ssl->buffers.inputBuffer.idx++];
  14563. b1 =
  14564. ssl->buffers.inputBuffer.buffer[ssl->buffers.inputBuffer.idx++];
  14565. ssl->curSize = (word16)(((b0 & 0x7f) << 8) | b1);
  14566. }
  14567. else {
  14568. ssl->options.processReply = getRecordLayerHeader;
  14569. continue;
  14570. }
  14571. FALL_THROUGH;
  14572. /* in the WOLFSSL_SERVER case, run the old client hello */
  14573. case runProcessOldClientHello:
  14574. /* get sz bytes or return error */
  14575. if (!ssl->options.dtls) {
  14576. if ((ret = GetInputData(ssl, ssl->curSize)) < 0)
  14577. return ret;
  14578. } else {
  14579. #ifdef WOLFSSL_DTLS
  14580. /* read ahead may already have */
  14581. used = ssl->buffers.inputBuffer.length -
  14582. ssl->buffers.inputBuffer.idx;
  14583. if (used < ssl->curSize)
  14584. if ((ret = GetInputData(ssl, ssl->curSize - used)) < 0)
  14585. return ret;
  14586. #endif /* WOLFSSL_DTLS */
  14587. }
  14588. ret = ProcessOldClientHello(ssl, ssl->buffers.inputBuffer.buffer,
  14589. &ssl->buffers.inputBuffer.idx,
  14590. ssl->buffers.inputBuffer.length -
  14591. ssl->buffers.inputBuffer.idx,
  14592. ssl->curSize);
  14593. if (ret < 0)
  14594. return ret;
  14595. else if (ssl->buffers.inputBuffer.idx ==
  14596. ssl->buffers.inputBuffer.length) {
  14597. ssl->options.processReply = doProcessInit;
  14598. return 0;
  14599. }
  14600. #endif /* OLD_HELLO_ALLOWED */
  14601. FALL_THROUGH;
  14602. /* get the record layer header */
  14603. case getRecordLayerHeader:
  14604. ret = GetRecordHeader(ssl, ssl->buffers.inputBuffer.buffer,
  14605. &ssl->buffers.inputBuffer.idx,
  14606. &ssl->curRL, &ssl->curSize);
  14607. #ifdef WOLFSSL_DTLS
  14608. if (ssl->options.dtls && ret == SEQUENCE_ERROR) {
  14609. WOLFSSL_MSG("Silently dropping out of order DTLS message");
  14610. ssl->options.processReply = doProcessInit;
  14611. ssl->buffers.inputBuffer.length = 0;
  14612. ssl->buffers.inputBuffer.idx = 0;
  14613. #ifdef WOLFSSL_DTLS_DROP_STATS
  14614. ssl->replayDropCount++;
  14615. #endif /* WOLFSSL_DTLS_DROP_STATS */
  14616. continue;
  14617. }
  14618. #endif
  14619. if (ret != 0)
  14620. return ret;
  14621. #ifdef WOLFSSL_TLS13
  14622. if (IsAtLeastTLSv1_3(ssl->version) && IsEncryptionOn(ssl, 0) &&
  14623. ssl->curRL.type != application_data &&
  14624. ssl->curRL.type != change_cipher_spec) {
  14625. SendAlert(ssl, alert_fatal, unexpected_message);
  14626. return PARSE_ERROR;
  14627. }
  14628. #endif
  14629. ssl->options.processReply = getData;
  14630. FALL_THROUGH;
  14631. /* retrieve record layer data */
  14632. case getData:
  14633. /* get sz bytes or return error */
  14634. if (!ssl->options.dtls) {
  14635. if ((ret = GetInputData(ssl, ssl->curSize)) < 0) {
  14636. #ifdef WOLFSSL_EXTRA_ALERTS
  14637. if (ret != WANT_READ)
  14638. SendAlert(ssl, alert_fatal, bad_record_mac);
  14639. #endif
  14640. return ret;
  14641. }
  14642. }
  14643. else {
  14644. #ifdef WOLFSSL_DTLS
  14645. /* read ahead may already have */
  14646. used = ssl->buffers.inputBuffer.length -
  14647. ssl->buffers.inputBuffer.idx;
  14648. if (used < ssl->curSize)
  14649. if ((ret = GetInputData(ssl, ssl->curSize)) < 0)
  14650. return ret;
  14651. #endif
  14652. }
  14653. if (IsEncryptionOn(ssl, 0)) {
  14654. #if defined(WOLFSSL_TLS13) || defined(WOLFSSL_EXTRA_ALERTS)
  14655. int tooLong = 0;
  14656. #endif
  14657. #ifdef WOLFSSL_TLS13
  14658. if (IsAtLeastTLSv1_3(ssl->version)) {
  14659. tooLong = ssl->curSize > MAX_TLS13_ENC_SZ;
  14660. tooLong |= ssl->curSize - ssl->specs.aead_mac_size >
  14661. MAX_TLS13_PLAIN_SZ;
  14662. }
  14663. #endif
  14664. #ifdef WOLFSSL_EXTRA_ALERTS
  14665. if (!IsAtLeastTLSv1_3(ssl->version))
  14666. tooLong = ssl->curSize > MAX_TLS_CIPHER_SZ;
  14667. #endif
  14668. #if defined(WOLFSSL_TLS13) || defined(WOLFSSL_EXTRA_ALERTS)
  14669. if (tooLong) {
  14670. WOLFSSL_MSG("Encrypted data too long");
  14671. SendAlert(ssl, alert_fatal, record_overflow);
  14672. return BUFFER_ERROR;
  14673. }
  14674. #endif
  14675. }
  14676. ssl->keys.padSz = 0;
  14677. ssl->options.processReply = verifyEncryptedMessage;
  14678. startIdx = ssl->buffers.inputBuffer.idx; /* in case > 1 msg per */
  14679. FALL_THROUGH;
  14680. /* verify digest of encrypted message */
  14681. case verifyEncryptedMessage:
  14682. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14683. if (IsEncryptionOn(ssl, 0) && ssl->keys.decryptedCur == 0 &&
  14684. !atomicUser && ssl->options.startedETMRead) {
  14685. ret = VerifyMacEnc(ssl, ssl->buffers.inputBuffer.buffer +
  14686. ssl->buffers.inputBuffer.idx,
  14687. ssl->curSize, ssl->curRL.type);
  14688. #ifdef WOLFSSL_ASYNC_CRYPT
  14689. if (ret == WC_PENDING_E)
  14690. return ret;
  14691. #endif
  14692. if (ret < 0) {
  14693. WOLFSSL_MSG("VerifyMacEnc failed");
  14694. WOLFSSL_ERROR(ret);
  14695. #ifdef WOLFSSL_DTLS
  14696. /* If in DTLS mode, if the decrypt fails for any
  14697. * reason, pretend the datagram never happened. */
  14698. if (ssl->options.dtls) {
  14699. ssl->options.processReply = doProcessInit;
  14700. ssl->buffers.inputBuffer.idx =
  14701. ssl->buffers.inputBuffer.length;
  14702. #ifdef WOLFSSL_DTLS_DROP_STATS
  14703. ssl->macDropCount++;
  14704. #endif /* WOLFSSL_DTLS_DROP_STATS */
  14705. }
  14706. #endif /* WOLFSSL_DTLS */
  14707. #ifdef WOLFSSL_EXTRA_ALERTS
  14708. if (!ssl->options.dtls)
  14709. SendAlert(ssl, alert_fatal, bad_record_mac);
  14710. #endif
  14711. return DECRYPT_ERROR;
  14712. }
  14713. ssl->keys.encryptSz = ssl->curSize;
  14714. }
  14715. #endif
  14716. ssl->options.processReply = decryptMessage;
  14717. FALL_THROUGH;
  14718. /* decrypt message */
  14719. case decryptMessage:
  14720. if (IsEncryptionOn(ssl, 0) && ssl->keys.decryptedCur == 0 &&
  14721. (!IsAtLeastTLSv1_3(ssl->version) ||
  14722. ssl->curRL.type != change_cipher_spec))
  14723. {
  14724. bufferStatic* in = &ssl->buffers.inputBuffer;
  14725. ret = SanityCheckCipherText(ssl, ssl->curSize);
  14726. if (ret < 0) {
  14727. #ifdef WOLFSSL_EXTRA_ALERTS
  14728. SendAlert(ssl, alert_fatal, bad_record_mac);
  14729. #endif
  14730. return ret;
  14731. }
  14732. if (atomicUser) {
  14733. #ifdef ATOMIC_USER
  14734. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14735. if (ssl->options.startedETMRead) {
  14736. ret = ssl->ctx->VerifyDecryptCb(ssl,
  14737. in->buffer + in->idx, in->buffer + in->idx,
  14738. ssl->curSize - MacSize(ssl),
  14739. ssl->curRL.type, 1, &ssl->keys.padSz,
  14740. ssl->DecryptVerifyCtx);
  14741. }
  14742. else
  14743. #endif
  14744. {
  14745. ret = ssl->ctx->DecryptVerifyCb(ssl,
  14746. in->buffer + in->idx,
  14747. in->buffer + in->idx,
  14748. ssl->curSize, ssl->curRL.type, 1,
  14749. &ssl->keys.padSz, ssl->DecryptVerifyCtx);
  14750. }
  14751. #endif /* ATOMIC_USER */
  14752. }
  14753. else {
  14754. if (!ssl->options.tls1_3) {
  14755. #ifndef WOLFSSL_NO_TLS12
  14756. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14757. if (ssl->options.startedETMRead) {
  14758. word32 digestSz = MacSize(ssl);
  14759. ret = Decrypt(ssl,
  14760. in->buffer + in->idx,
  14761. in->buffer + in->idx,
  14762. ssl->curSize - (word16)digestSz);
  14763. if (ret == 0) {
  14764. byte invalid = 0;
  14765. byte padding = (byte)-1;
  14766. word32 i;
  14767. word32 off = in->idx + ssl->curSize - digestSz - 1;
  14768. /* Last of padding bytes - indicates length. */
  14769. ssl->keys.padSz = in->buffer[off];
  14770. /* Constant time checking of padding - don't leak
  14771. * the length of the data.
  14772. */
  14773. /* Compare max pad bytes or at most data + pad. */
  14774. for (i = 1; i < MAX_PAD_SIZE && off >= i; i++) {
  14775. /* Mask on indicates this is expected to be a
  14776. * padding byte.
  14777. */
  14778. padding &= ctMaskLTE(i, ssl->keys.padSz);
  14779. /* When this is a padding byte and not equal
  14780. * to length then mask is set.
  14781. */
  14782. invalid |= padding &
  14783. ctMaskNotEq(in->buffer[off - i],
  14784. ssl->keys.padSz);
  14785. }
  14786. /* If mask is set then there was an error. */
  14787. if (invalid) {
  14788. ret = DECRYPT_ERROR;
  14789. }
  14790. ssl->keys.padSz += 1;
  14791. ssl->keys.decryptedCur = 1;
  14792. }
  14793. }
  14794. else
  14795. #endif
  14796. {
  14797. ret = Decrypt(ssl,
  14798. in->buffer + in->idx,
  14799. in->buffer + in->idx,
  14800. ssl->curSize);
  14801. }
  14802. #else
  14803. ret = DECRYPT_ERROR;
  14804. #endif
  14805. }
  14806. else
  14807. {
  14808. #ifdef WOLFSSL_TLS13
  14809. ret = DecryptTls13(ssl,
  14810. in->buffer + in->idx,
  14811. in->buffer + in->idx,
  14812. ssl->curSize,
  14813. (byte*)&ssl->curRL, RECORD_HEADER_SZ);
  14814. #else
  14815. ret = DECRYPT_ERROR;
  14816. #endif /* WOLFSSL_TLS13 */
  14817. }
  14818. }
  14819. #ifdef WOLFSSL_ASYNC_CRYPT
  14820. if (ret == WC_PENDING_E)
  14821. return ret;
  14822. #endif
  14823. if (ret >= 0) {
  14824. #ifndef WOLFSSL_NO_TLS12
  14825. /* handle success */
  14826. #ifndef WOLFSSL_AEAD_ONLY
  14827. if (ssl->options.tls1_1 && ssl->specs.cipher_type == block)
  14828. ssl->buffers.inputBuffer.idx += ssl->specs.block_size;
  14829. #endif
  14830. /* go past TLSv1.1 IV */
  14831. if (CipherHasExpIV(ssl))
  14832. ssl->buffers.inputBuffer.idx += AESGCM_EXP_IV_SZ;
  14833. #endif
  14834. }
  14835. else {
  14836. WOLFSSL_MSG("Decrypt failed");
  14837. WOLFSSL_ERROR(ret);
  14838. #ifdef WOLFSSL_EARLY_DATA
  14839. if (ssl->options.tls1_3) {
  14840. if (ssl->options.side == WOLFSSL_SERVER_END &&
  14841. ssl->earlyData != no_early_data &&
  14842. ssl->options.clientState <
  14843. CLIENT_FINISHED_COMPLETE) {
  14844. ssl->earlyDataSz += ssl->curSize;
  14845. if (ssl->earlyDataSz <=
  14846. ssl->options.maxEarlyDataSz) {
  14847. WOLFSSL_MSG("Ignoring EarlyData!");
  14848. if (ssl->keys.peer_sequence_number_lo-- == 0)
  14849. ssl->keys.peer_sequence_number_hi--;
  14850. ssl->options.processReply = doProcessInit;
  14851. ssl->buffers.inputBuffer.idx =
  14852. ssl->buffers.inputBuffer.length;
  14853. return 0;
  14854. }
  14855. WOLFSSL_MSG("Too much EarlyData!");
  14856. }
  14857. SendAlert(ssl, alert_fatal, bad_record_mac);
  14858. }
  14859. #endif
  14860. #ifdef WOLFSSL_DTLS
  14861. /* If in DTLS mode, if the decrypt fails for any
  14862. * reason, pretend the datagram never happened. */
  14863. if (ssl->options.dtls) {
  14864. ssl->options.processReply = doProcessInit;
  14865. ssl->buffers.inputBuffer.idx =
  14866. ssl->buffers.inputBuffer.length;
  14867. #ifdef WOLFSSL_DTLS_DROP_STATS
  14868. ssl->macDropCount++;
  14869. #endif /* WOLFSSL_DTLS_DROP_STATS */
  14870. }
  14871. #endif /* WOLFSSL_DTLS */
  14872. return DECRYPT_ERROR;
  14873. }
  14874. }
  14875. ssl->options.processReply = verifyMessage;
  14876. FALL_THROUGH;
  14877. /* verify digest of message */
  14878. case verifyMessage:
  14879. if (IsEncryptionOn(ssl, 0) && ssl->keys.decryptedCur == 0 &&
  14880. (!IsAtLeastTLSv1_3(ssl->version) ||
  14881. ssl->curRL.type != change_cipher_spec))
  14882. {
  14883. if (!atomicUser
  14884. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14885. && !ssl->options.startedETMRead
  14886. #endif
  14887. ) {
  14888. ret = VerifyMac(ssl, ssl->buffers.inputBuffer.buffer +
  14889. ssl->buffers.inputBuffer.idx,
  14890. ssl->curSize, ssl->curRL.type,
  14891. &ssl->keys.padSz);
  14892. #ifdef WOLFSSL_ASYNC_CRYPT
  14893. if (ret == WC_PENDING_E)
  14894. return ret;
  14895. #endif
  14896. if (ret < 0) {
  14897. WOLFSSL_MSG("VerifyMac failed");
  14898. WOLFSSL_ERROR(ret);
  14899. #ifdef WOLFSSL_DTLS
  14900. /* If in DTLS mode, if the decrypt fails for any
  14901. * reason, pretend the datagram never happened. */
  14902. if (ssl->options.dtls) {
  14903. ssl->options.processReply = doProcessInit;
  14904. ssl->buffers.inputBuffer.idx =
  14905. ssl->buffers.inputBuffer.length;
  14906. #ifdef WOLFSSL_DTLS_DROP_STATS
  14907. ssl->macDropCount++;
  14908. #endif /* WOLFSSL_DTLS_DROP_STATS */
  14909. }
  14910. #endif /* WOLFSSL_DTLS */
  14911. #ifdef WOLFSSL_EXTRA_ALERTS
  14912. if (!ssl->options.dtls)
  14913. SendAlert(ssl, alert_fatal, bad_record_mac);
  14914. #endif
  14915. return DECRYPT_ERROR;
  14916. }
  14917. }
  14918. ssl->keys.encryptSz = ssl->curSize;
  14919. ssl->keys.decryptedCur = 1;
  14920. #ifdef WOLFSSL_TLS13
  14921. if (ssl->options.tls1_3) {
  14922. word16 i = (word16)(ssl->buffers.inputBuffer.length -
  14923. ssl->keys.padSz);
  14924. /* sanity check on underflow */
  14925. if (ssl->keys.padSz >= ssl->buffers.inputBuffer.length) {
  14926. WOLFSSL_ERROR(DECRYPT_ERROR);
  14927. return DECRYPT_ERROR;
  14928. }
  14929. /* Remove padding from end of plain text. */
  14930. for (--i; i > ssl->buffers.inputBuffer.idx; i--) {
  14931. if (ssl->buffers.inputBuffer.buffer[i] != 0)
  14932. break;
  14933. }
  14934. /* Get the real content type from the end of the data. */
  14935. ssl->curRL.type = ssl->buffers.inputBuffer.buffer[i];
  14936. ssl->keys.padSz = ssl->buffers.inputBuffer.length - i;
  14937. }
  14938. #endif
  14939. }
  14940. ssl->options.processReply = runProcessingOneMessage;
  14941. FALL_THROUGH;
  14942. /* the record layer is here */
  14943. case runProcessingOneMessage:
  14944. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  14945. if (IsEncryptionOn(ssl, 0) && ssl->options.startedETMRead) {
  14946. if ((ssl->buffers.inputBuffer.length -
  14947. ssl->keys.padSz -
  14948. MacSize(ssl) -
  14949. ssl->buffers.inputBuffer.idx > MAX_PLAINTEXT_SZ)
  14950. #ifdef WOLFSSL_ASYNC_CRYPT
  14951. && ssl->buffers.inputBuffer.length !=
  14952. ssl->buffers.inputBuffer.idx
  14953. #endif
  14954. ) {
  14955. WOLFSSL_MSG("Plaintext too long - Encrypt-Then-MAC");
  14956. #if defined(WOLFSSL_EXTRA_ALERTS)
  14957. SendAlert(ssl, alert_fatal, record_overflow);
  14958. #endif
  14959. return BUFFER_ERROR;
  14960. }
  14961. }
  14962. else
  14963. #endif
  14964. if (ssl->buffers.inputBuffer.length -
  14965. ssl->keys.padSz -
  14966. ssl->buffers.inputBuffer.idx > MAX_PLAINTEXT_SZ
  14967. #ifdef WOLFSSL_ASYNC_CRYPT
  14968. && ssl->buffers.inputBuffer.length !=
  14969. ssl->buffers.inputBuffer.idx
  14970. #endif
  14971. ) {
  14972. WOLFSSL_MSG("Plaintext too long");
  14973. #if defined(WOLFSSL_TLS13) || defined(WOLFSSL_EXTRA_ALERTS)
  14974. SendAlert(ssl, alert_fatal, record_overflow);
  14975. #endif
  14976. return BUFFER_ERROR;
  14977. }
  14978. #ifdef WOLFSSL_DTLS
  14979. if (IsDtlsNotSctpMode(ssl)) {
  14980. DtlsUpdateWindow(ssl);
  14981. }
  14982. #endif /* WOLFSSL_DTLS */
  14983. WOLFSSL_MSG("received record layer msg");
  14984. switch (ssl->curRL.type) {
  14985. case handshake :
  14986. WOLFSSL_MSG("got HANDSHAKE");
  14987. /* debugging in DoHandShakeMsg */
  14988. if (ssl->options.dtls) {
  14989. #ifdef WOLFSSL_DTLS
  14990. ret = DoDtlsHandShakeMsg(ssl,
  14991. ssl->buffers.inputBuffer.buffer,
  14992. &ssl->buffers.inputBuffer.idx,
  14993. ssl->buffers.inputBuffer.length);
  14994. #endif
  14995. }
  14996. else if (!IsAtLeastTLSv1_3(ssl->version)
  14997. #if defined(WOLFSSL_TLS13) && !defined(WOLFSSL_NO_TLS12)
  14998. || !TLSv1_3_Capable(ssl)
  14999. #endif
  15000. ) {
  15001. #ifndef WOLFSSL_NO_TLS12
  15002. ret = DoHandShakeMsg(ssl,
  15003. ssl->buffers.inputBuffer.buffer,
  15004. &ssl->buffers.inputBuffer.idx,
  15005. ssl->buffers.inputBuffer.length);
  15006. #else
  15007. ret = BUFFER_ERROR;
  15008. #endif
  15009. }
  15010. else {
  15011. #ifdef WOLFSSL_TLS13
  15012. ssl->msgsReceived.got_change_cipher = 0;
  15013. ret = DoTls13HandShakeMsg(ssl,
  15014. ssl->buffers.inputBuffer.buffer,
  15015. &ssl->buffers.inputBuffer.idx,
  15016. ssl->buffers.inputBuffer.length);
  15017. #ifdef WOLFSSL_EARLY_DATA
  15018. if (ret != 0)
  15019. return ret;
  15020. if (ssl->options.side == WOLFSSL_SERVER_END &&
  15021. ssl->earlyData > early_data_ext &&
  15022. ssl->options.handShakeState == HANDSHAKE_DONE) {
  15023. ssl->earlyData = no_early_data;
  15024. ssl->options.processReply = doProcessInit;
  15025. return ZERO_RETURN;
  15026. }
  15027. #endif
  15028. #else
  15029. ret = BUFFER_ERROR;
  15030. #endif
  15031. }
  15032. if (ret != 0
  15033. #ifdef WOLFSSL_ASYNC_CRYPT
  15034. /* In async case, on pending, move onto next message.
  15035. * Current message should have been DtlsMsgStore'ed and
  15036. * should be processed with DtlsMsgDrain */
  15037. && (!ssl->options.dtls
  15038. || ret != WC_PENDING_E)
  15039. #endif
  15040. ) {
  15041. WOLFSSL_ERROR(ret);
  15042. return ret;
  15043. }
  15044. break;
  15045. case change_cipher_spec:
  15046. WOLFSSL_MSG("got CHANGE CIPHER SPEC");
  15047. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  15048. if (ssl->hsInfoOn)
  15049. AddPacketName(ssl, "ChangeCipher");
  15050. /* add record header back on info */
  15051. if (ssl->toInfoOn) {
  15052. AddPacketInfo(ssl, "ChangeCipher",
  15053. change_cipher_spec,
  15054. ssl->buffers.inputBuffer.buffer +
  15055. ssl->buffers.inputBuffer.idx - RECORD_HEADER_SZ -
  15056. (ssl->options.dtls ? DTLS_RECORD_EXTRA : 0),
  15057. 1 + RECORD_HEADER_SZ, READ_PROTO, ssl->heap);
  15058. #ifdef WOLFSSL_CALLBACKS
  15059. AddLateRecordHeader(&ssl->curRL, &ssl->timeoutInfo);
  15060. #endif
  15061. }
  15062. #endif
  15063. #ifdef WOLFSSL_TLS13
  15064. if (IsAtLeastTLSv1_3(ssl->version)) {
  15065. word32 i = ssl->buffers.inputBuffer.idx;
  15066. if (ssl->options.handShakeState == HANDSHAKE_DONE) {
  15067. SendAlert(ssl, alert_fatal, unexpected_message);
  15068. return UNKNOWN_RECORD_TYPE;
  15069. }
  15070. if (ssl->curSize != 1 ||
  15071. ssl->buffers.inputBuffer.buffer[i] != 1) {
  15072. SendAlert(ssl, alert_fatal, illegal_parameter);
  15073. return UNKNOWN_RECORD_TYPE;
  15074. }
  15075. ssl->buffers.inputBuffer.idx++;
  15076. if (!ssl->msgsReceived.got_change_cipher) {
  15077. ssl->msgsReceived.got_change_cipher = 1;
  15078. }
  15079. else {
  15080. SendAlert(ssl, alert_fatal, illegal_parameter);
  15081. return UNKNOWN_RECORD_TYPE;
  15082. }
  15083. break;
  15084. }
  15085. #endif
  15086. #ifndef WOLFSSL_NO_TLS12
  15087. if (ssl->buffers.inputBuffer.idx >=
  15088. ssl->buffers.inputBuffer.length ||
  15089. ssl->curSize < 1) {
  15090. WOLFSSL_MSG("ChangeCipher msg too short");
  15091. return LENGTH_ERROR;
  15092. }
  15093. if (ssl->buffers.inputBuffer.buffer[
  15094. ssl->buffers.inputBuffer.idx] != 1) {
  15095. WOLFSSL_MSG("ChangeCipher msg wrong value");
  15096. return LENGTH_ERROR;
  15097. }
  15098. if (IsEncryptionOn(ssl, 0) && ssl->options.handShakeDone) {
  15099. #ifdef HAVE_AEAD
  15100. if (ssl->specs.cipher_type == aead) {
  15101. if (ssl->specs.bulk_cipher_algorithm != wolfssl_chacha)
  15102. ssl->curSize -= AESGCM_EXP_IV_SZ;
  15103. ssl->buffers.inputBuffer.idx += ssl->specs.aead_mac_size;
  15104. ssl->curSize -= ssl->specs.aead_mac_size;
  15105. }
  15106. else
  15107. #endif
  15108. {
  15109. ssl->buffers.inputBuffer.idx += ssl->keys.padSz;
  15110. ssl->curSize -= (word16)ssl->keys.padSz;
  15111. ssl->curSize -= ssl->specs.iv_size;
  15112. }
  15113. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15114. if (ssl->options.startedETMRead) {
  15115. word32 digestSz = MacSize(ssl);
  15116. ssl->buffers.inputBuffer.idx += digestSz;
  15117. ssl->curSize -= (word16)digestSz;
  15118. }
  15119. #endif
  15120. }
  15121. if (ssl->curSize != 1) {
  15122. WOLFSSL_MSG("Malicious or corrupted ChangeCipher msg");
  15123. return LENGTH_ERROR;
  15124. }
  15125. ssl->buffers.inputBuffer.idx++;
  15126. ret = SanityCheckMsgReceived(ssl, change_cipher_hs);
  15127. if (ret != 0) {
  15128. if (!ssl->options.dtls) {
  15129. return ret;
  15130. }
  15131. else {
  15132. #ifdef WOLFSSL_DTLS
  15133. /* Check for duplicate CCS message in DTLS mode.
  15134. * DTLS allows for duplicate messages, and it should be
  15135. * skipped. Also skip if out of order. */
  15136. if (ret != DUPLICATE_MSG_E && ret != OUT_OF_ORDER_E)
  15137. return ret;
  15138. /* Reset error */
  15139. ret = 0;
  15140. break;
  15141. #endif /* WOLFSSL_DTLS */
  15142. }
  15143. }
  15144. ssl->keys.encryptionOn = 1;
  15145. /* setup decrypt keys for following messages */
  15146. /* XXX This might not be what we want to do when
  15147. * receiving a CCS with multicast. We update the
  15148. * key when the application updates them. */
  15149. if ((ret = SetKeysSide(ssl, DECRYPT_SIDE_ONLY)) != 0)
  15150. return ret;
  15151. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15152. ssl->options.startedETMRead = ssl->options.encThenMac;
  15153. #endif
  15154. #ifdef WOLFSSL_DTLS
  15155. if (ssl->options.dtls) {
  15156. WOLFSSL_DTLS_PEERSEQ* peerSeq = ssl->keys.peerSeq;
  15157. #ifdef WOLFSSL_MULTICAST
  15158. if (ssl->options.haveMcast) {
  15159. peerSeq += ssl->keys.curPeerId;
  15160. peerSeq->highwaterMark = UpdateHighwaterMark(0,
  15161. ssl->ctx->mcastFirstSeq,
  15162. ssl->ctx->mcastSecondSeq,
  15163. ssl->ctx->mcastMaxSeq);
  15164. }
  15165. #endif
  15166. peerSeq->nextEpoch++;
  15167. peerSeq->prevSeq_lo = peerSeq->nextSeq_lo;
  15168. peerSeq->prevSeq_hi = peerSeq->nextSeq_hi;
  15169. peerSeq->nextSeq_lo = 0;
  15170. peerSeq->nextSeq_hi = 0;
  15171. XMEMCPY(peerSeq->prevWindow, peerSeq->window,
  15172. DTLS_SEQ_SZ);
  15173. XMEMSET(peerSeq->window, 0, DTLS_SEQ_SZ);
  15174. }
  15175. #endif
  15176. #ifdef HAVE_LIBZ
  15177. if (ssl->options.usingCompression)
  15178. if ( (ret = InitStreams(ssl)) != 0)
  15179. return ret;
  15180. #endif
  15181. ret = BuildFinished(ssl, &ssl->hsHashes->verifyHashes,
  15182. ssl->options.side == WOLFSSL_CLIENT_END ?
  15183. server : client);
  15184. if (ret != 0)
  15185. return ret;
  15186. #endif /* !WOLFSSL_NO_TLS12 */
  15187. break;
  15188. case application_data:
  15189. WOLFSSL_MSG("got app DATA");
  15190. #ifdef WOLFSSL_DTLS
  15191. if (ssl->options.dtls && ssl->options.dtlsHsRetain) {
  15192. #ifdef HAVE_SECURE_RENEGOTIATION
  15193. /*
  15194. * Only free HS resources when not in the process of a
  15195. * secure renegotiation and we have received APP DATA
  15196. * from the current epoch
  15197. */
  15198. if (!IsSCR(ssl) && (DtlsUseSCRKeys(ssl)
  15199. || !DtlsSCRKeysSet(ssl))) {
  15200. FreeHandshakeResources(ssl);
  15201. ssl->options.dtlsHsRetain = 0;
  15202. }
  15203. #else
  15204. FreeHandshakeResources(ssl);
  15205. ssl->options.dtlsHsRetain = 0;
  15206. #endif
  15207. }
  15208. #endif
  15209. #ifdef WOLFSSL_TLS13
  15210. if (ssl->keys.keyUpdateRespond) {
  15211. WOLFSSL_MSG("No KeyUpdate from peer seen");
  15212. return SANITY_MSG_E;
  15213. }
  15214. #endif
  15215. if ((ret = DoApplicationData(ssl,
  15216. ssl->buffers.inputBuffer.buffer,
  15217. &ssl->buffers.inputBuffer.idx,
  15218. NO_SNIFF)) != 0) {
  15219. WOLFSSL_ERROR(ret);
  15220. return ret;
  15221. }
  15222. break;
  15223. case alert:
  15224. WOLFSSL_MSG("got ALERT!");
  15225. ret = DoAlert(ssl, ssl->buffers.inputBuffer.buffer,
  15226. &ssl->buffers.inputBuffer.idx, &type);
  15227. if (ret == alert_fatal)
  15228. return FATAL_ERROR;
  15229. else if (ret < 0)
  15230. return ret;
  15231. /* catch warnings that are handled as errors */
  15232. if (type == close_notify)
  15233. return ssl->error = ZERO_RETURN;
  15234. if (type == decrypt_error)
  15235. return FATAL_ERROR;
  15236. /* Reset error if we got an alert level in ret */
  15237. if (ret > 0)
  15238. ret = 0;
  15239. break;
  15240. default:
  15241. WOLFSSL_ERROR(UNKNOWN_RECORD_TYPE);
  15242. return UNKNOWN_RECORD_TYPE;
  15243. }
  15244. ssl->options.processReply = doProcessInit;
  15245. /* input exhausted */
  15246. if (ssl->buffers.inputBuffer.idx >= ssl->buffers.inputBuffer.length
  15247. #ifdef WOLFSSL_DTLS
  15248. /* If app data was processed then return now to avoid
  15249. * dropping any app data. */
  15250. || (ssl->options.dtls && ssl->curRL.type == application_data)
  15251. #endif
  15252. )
  15253. return ret;
  15254. /* more messages per record */
  15255. else if ((ssl->buffers.inputBuffer.idx - startIdx) < ssl->curSize) {
  15256. WOLFSSL_MSG("More messages in record");
  15257. ssl->options.processReply = runProcessingOneMessage;
  15258. if (IsEncryptionOn(ssl, 0)) {
  15259. WOLFSSL_MSG("Bundled encrypted messages, remove middle pad");
  15260. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15261. if (ssl->options.startedETMRead) {
  15262. word32 digestSz = MacSize(ssl);
  15263. if (ssl->buffers.inputBuffer.idx >=
  15264. ssl->keys.padSz + digestSz) {
  15265. ssl->buffers.inputBuffer.idx -=
  15266. ssl->keys.padSz + digestSz;
  15267. }
  15268. else {
  15269. WOLFSSL_MSG("\tmiddle padding error");
  15270. return FATAL_ERROR;
  15271. }
  15272. }
  15273. else
  15274. #endif
  15275. {
  15276. if (ssl->buffers.inputBuffer.idx >= ssl->keys.padSz) {
  15277. ssl->buffers.inputBuffer.idx -= ssl->keys.padSz;
  15278. }
  15279. else {
  15280. WOLFSSL_MSG("\tmiddle padding error");
  15281. return FATAL_ERROR;
  15282. }
  15283. }
  15284. }
  15285. }
  15286. /* more records */
  15287. else {
  15288. WOLFSSL_MSG("More records in input");
  15289. }
  15290. #ifdef WOLFSSL_ASYNC_CRYPT
  15291. /* We are setup to read next message/record but we had an error
  15292. * (probably WC_PENDING_E) so return that so it can be handled
  15293. * by higher layers. */
  15294. if (ret != 0)
  15295. return ret;
  15296. #endif
  15297. continue;
  15298. default:
  15299. WOLFSSL_MSG("Bad process input state, programming error");
  15300. return INPUT_CASE_ERROR;
  15301. }
  15302. }
  15303. }
  15304. #if !defined(WOLFSSL_NO_TLS12) || !defined(NO_OLD_TLS) || \
  15305. (defined(WOLFSSL_TLS13) && defined(WOLFSSL_TLS13_MIDDLEBOX_COMPAT))
  15306. int SendChangeCipher(WOLFSSL* ssl)
  15307. {
  15308. byte *output;
  15309. int sendSz = RECORD_HEADER_SZ + ENUM_LEN;
  15310. int idx = RECORD_HEADER_SZ;
  15311. int ret;
  15312. #ifdef OPENSSL_EXTRA
  15313. ssl->cbmode = SSL_CB_MODE_WRITE;
  15314. if (ssl->options.side == WOLFSSL_SERVER_END){
  15315. ssl->options.serverState = SERVER_CHANGECIPHERSPEC_COMPLETE;
  15316. if (ssl->CBIS != NULL)
  15317. ssl->CBIS(ssl, SSL_CB_ACCEPT_LOOP, SSL_SUCCESS);
  15318. }
  15319. else{
  15320. ssl->options.clientState =
  15321. CLIENT_CHANGECIPHERSPEC_COMPLETE;
  15322. if (ssl->CBIS != NULL)
  15323. ssl->CBIS(ssl, SSL_CB_CONNECT_LOOP, SSL_SUCCESS);
  15324. }
  15325. #endif
  15326. #ifdef WOLFSSL_DTLS
  15327. if (ssl->options.dtls) {
  15328. sendSz += DTLS_RECORD_EXTRA;
  15329. idx += DTLS_RECORD_EXTRA;
  15330. }
  15331. #endif
  15332. /* are we in scr */
  15333. if (IsEncryptionOn(ssl, 1) && ssl->options.handShakeDone) {
  15334. sendSz += MAX_MSG_EXTRA;
  15335. }
  15336. /* check for available size */
  15337. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  15338. return ret;
  15339. /* get output buffer */
  15340. output = ssl->buffers.outputBuffer.buffer +
  15341. ssl->buffers.outputBuffer.length;
  15342. AddRecordHeader(output, 1, change_cipher_spec, ssl, CUR_ORDER);
  15343. output[idx] = 1; /* turn it on */
  15344. if (IsEncryptionOn(ssl, 1) && ssl->options.handShakeDone) {
  15345. byte input[ENUM_LEN];
  15346. int inputSz = ENUM_LEN;
  15347. input[0] = 1; /* turn it on */
  15348. #ifdef WOLFSSL_DTLS
  15349. if (IsDtlsNotSctpMode(ssl) &&
  15350. (ret = DtlsMsgPoolSave(ssl, input, inputSz, change_cipher_hs)) != 0) {
  15351. return ret;
  15352. }
  15353. #endif
  15354. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  15355. change_cipher_spec, 0, 0, 0, CUR_ORDER);
  15356. if (sendSz < 0) {
  15357. return sendSz;
  15358. }
  15359. }
  15360. #ifdef WOLFSSL_DTLS
  15361. else {
  15362. if (IsDtlsNotSctpMode(ssl)) {
  15363. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, change_cipher_hs)) != 0)
  15364. return ret;
  15365. DtlsSEQIncrement(ssl, CUR_ORDER);
  15366. }
  15367. }
  15368. #endif
  15369. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  15370. if (ssl->hsInfoOn) AddPacketName(ssl, "ChangeCipher");
  15371. if (ssl->toInfoOn)
  15372. AddPacketInfo(ssl, "ChangeCipher", change_cipher_spec, output,
  15373. sendSz, WRITE_PROTO, ssl->heap);
  15374. #endif
  15375. ssl->buffers.outputBuffer.length += sendSz;
  15376. #ifdef WOLFSSL_TLS13
  15377. if (!ssl->options.tls1_3)
  15378. #endif
  15379. {
  15380. /* setup encrypt keys */
  15381. if ((ret = SetKeysSide(ssl, ENCRYPT_SIDE_ONLY)) != 0)
  15382. return ret;
  15383. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15384. ssl->options.startedETMWrite = ssl->options.encThenMac;
  15385. #endif
  15386. }
  15387. if (ssl->options.groupMessages)
  15388. return 0;
  15389. #if defined(WOLFSSL_DTLS) && !defined(WOLFSSL_DEBUG_DTLS)
  15390. else if (ssl->options.dtls) {
  15391. /* If using DTLS, force the ChangeCipherSpec message to be in the
  15392. * same datagram as the finished message. */
  15393. return 0;
  15394. }
  15395. #endif
  15396. else
  15397. return SendBuffered(ssl);
  15398. }
  15399. #endif
  15400. #if !defined(NO_OLD_TLS) && !defined(WOLFSSL_AEAD_ONLY)
  15401. static int SSL_hmac(WOLFSSL* ssl, byte* digest, const byte* in, word32 sz,
  15402. int padLen, int content, int verify, int epochOrder)
  15403. {
  15404. byte result[WC_MAX_DIGEST_SIZE];
  15405. word32 digestSz = ssl->specs.hash_size; /* actual sizes */
  15406. word32 padSz = ssl->specs.pad_size;
  15407. int ret = 0;
  15408. wc_Md5 md5;
  15409. wc_Sha sha;
  15410. /* data */
  15411. byte seq[SEQ_SZ];
  15412. byte conLen[ENUM_LEN + LENGTH_SZ]; /* content & length */
  15413. const byte* macSecret = NULL;
  15414. (void)padLen;
  15415. #ifdef HAVE_FUZZER
  15416. if (ssl->fuzzerCb)
  15417. ssl->fuzzerCb(ssl, in, sz, FUZZ_HMAC, ssl->fuzzerCtx);
  15418. #endif
  15419. #ifdef WOLFSSL_DTLS
  15420. if (ssl->options.dtls)
  15421. macSecret = wolfSSL_GetDtlsMacSecret(ssl, verify, epochOrder);
  15422. else
  15423. macSecret = wolfSSL_GetMacSecret(ssl, verify);
  15424. #else
  15425. macSecret = wolfSSL_GetMacSecret(ssl, verify);
  15426. #endif
  15427. XMEMSET(seq, 0, SEQ_SZ);
  15428. conLen[0] = (byte)content;
  15429. c16toa((word16)sz, &conLen[ENUM_LEN]);
  15430. WriteSEQ(ssl, epochOrder, seq);
  15431. if (ssl->specs.mac_algorithm == md5_mac) {
  15432. ret = wc_InitMd5_ex(&md5, ssl->heap, ssl->devId);
  15433. if (ret != 0)
  15434. return ret;
  15435. /* inner */
  15436. ret = wc_Md5Update(&md5, macSecret, digestSz);
  15437. ret |= wc_Md5Update(&md5, PAD1, padSz);
  15438. ret |= wc_Md5Update(&md5, seq, SEQ_SZ);
  15439. ret |= wc_Md5Update(&md5, conLen, sizeof(conLen));
  15440. /* in buffer */
  15441. ret |= wc_Md5Update(&md5, in, sz);
  15442. if (ret != 0)
  15443. return VERIFY_MAC_ERROR;
  15444. ret = wc_Md5Final(&md5, result);
  15445. #ifdef WOLFSSL_ASYNC_CRYPT
  15446. /* TODO: Make non-blocking */
  15447. if (ret == WC_PENDING_E) {
  15448. ret = wc_AsyncWait(ret, &md5.asyncDev, WC_ASYNC_FLAG_NONE);
  15449. }
  15450. #endif
  15451. if (ret != 0)
  15452. return VERIFY_MAC_ERROR;
  15453. /* outer */
  15454. ret = wc_Md5Update(&md5, macSecret, digestSz);
  15455. ret |= wc_Md5Update(&md5, PAD2, padSz);
  15456. ret |= wc_Md5Update(&md5, result, digestSz);
  15457. if (ret != 0)
  15458. return VERIFY_MAC_ERROR;
  15459. ret = wc_Md5Final(&md5, digest);
  15460. #ifdef WOLFSSL_ASYNC_CRYPT
  15461. /* TODO: Make non-blocking */
  15462. if (ret == WC_PENDING_E) {
  15463. ret = wc_AsyncWait(ret, &md5.asyncDev, WC_ASYNC_FLAG_NONE);
  15464. }
  15465. #endif
  15466. if (ret != 0)
  15467. return VERIFY_MAC_ERROR;
  15468. wc_Md5Free(&md5);
  15469. }
  15470. else {
  15471. ret = wc_InitSha_ex(&sha, ssl->heap, ssl->devId);
  15472. if (ret != 0)
  15473. return ret;
  15474. /* inner */
  15475. ret = wc_ShaUpdate(&sha, macSecret, digestSz);
  15476. ret |= wc_ShaUpdate(&sha, PAD1, padSz);
  15477. ret |= wc_ShaUpdate(&sha, seq, SEQ_SZ);
  15478. ret |= wc_ShaUpdate(&sha, conLen, sizeof(conLen));
  15479. /* in buffer */
  15480. ret |= wc_ShaUpdate(&sha, in, sz);
  15481. if (ret != 0)
  15482. return VERIFY_MAC_ERROR;
  15483. ret = wc_ShaFinal(&sha, result);
  15484. #ifdef WOLFSSL_ASYNC_CRYPT
  15485. /* TODO: Make non-blocking */
  15486. if (ret == WC_PENDING_E) {
  15487. ret = wc_AsyncWait(ret, &sha.asyncDev, WC_ASYNC_FLAG_NONE);
  15488. }
  15489. #endif
  15490. if (ret != 0)
  15491. return VERIFY_MAC_ERROR;
  15492. /* outer */
  15493. ret = wc_ShaUpdate(&sha, macSecret, digestSz);
  15494. ret |= wc_ShaUpdate(&sha, PAD2, padSz);
  15495. ret |= wc_ShaUpdate(&sha, result, digestSz);
  15496. if (ret != 0)
  15497. return VERIFY_MAC_ERROR;
  15498. ret = wc_ShaFinal(&sha, digest);
  15499. #ifdef WOLFSSL_ASYNC_CRYPT
  15500. /* TODO: Make non-blocking */
  15501. if (ret == WC_PENDING_E) {
  15502. ret = wc_AsyncWait(ret, &sha.asyncDev, WC_ASYNC_FLAG_NONE);
  15503. }
  15504. #endif
  15505. if (ret != 0)
  15506. return VERIFY_MAC_ERROR;
  15507. wc_ShaFree(&sha);
  15508. }
  15509. return 0;
  15510. }
  15511. #endif /* !NO_OLD_TLS && !WOLFSSL_AEAD_ONLY */
  15512. #if !defined(NO_MD5) && !defined(NO_OLD_TLS)
  15513. static int BuildMD5_CertVerify(WOLFSSL* ssl, byte* digest)
  15514. {
  15515. int ret;
  15516. byte md5_result[WC_MD5_DIGEST_SIZE];
  15517. #ifdef WOLFSSL_SMALL_STACK
  15518. wc_Md5* md5 = (wc_Md5*)XMALLOC(sizeof(wc_Md5), ssl->heap, DYNAMIC_TYPE_HASHCTX);
  15519. #else
  15520. wc_Md5 md5[1];
  15521. #endif
  15522. /* make md5 inner */
  15523. ret = wc_Md5Copy(&ssl->hsHashes->hashMd5, md5); /* Save current position */
  15524. if (ret == 0)
  15525. ret = wc_Md5Update(md5, ssl->arrays->masterSecret,SECRET_LEN);
  15526. if (ret == 0)
  15527. ret = wc_Md5Update(md5, PAD1, PAD_MD5);
  15528. if (ret == 0)
  15529. ret = wc_Md5Final(md5, md5_result);
  15530. /* make md5 outer */
  15531. if (ret == 0) {
  15532. ret = wc_InitMd5_ex(md5, ssl->heap, ssl->devId);
  15533. if (ret == 0) {
  15534. ret = wc_Md5Update(md5, ssl->arrays->masterSecret, SECRET_LEN);
  15535. if (ret == 0)
  15536. ret = wc_Md5Update(md5, PAD2, PAD_MD5);
  15537. if (ret == 0)
  15538. ret = wc_Md5Update(md5, md5_result, WC_MD5_DIGEST_SIZE);
  15539. if (ret == 0)
  15540. ret = wc_Md5Final(md5, digest);
  15541. wc_Md5Free(md5);
  15542. }
  15543. }
  15544. #ifdef WOLFSSL_SMALL_STACK
  15545. XFREE(md5, ssl->heap, DYNAMIC_TYPE_HASHCTX);
  15546. #endif
  15547. return ret;
  15548. }
  15549. #endif /* !NO_MD5 && !NO_OLD_TLS */
  15550. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  15551. defined(WOLFSSL_ALLOW_TLS_SHA1))
  15552. static int BuildSHA_CertVerify(WOLFSSL* ssl, byte* digest)
  15553. {
  15554. int ret;
  15555. byte sha_result[WC_SHA_DIGEST_SIZE];
  15556. #ifdef WOLFSSL_SMALL_STACK
  15557. wc_Sha* sha = (wc_Sha*)XMALLOC(sizeof(wc_Sha), ssl->heap, DYNAMIC_TYPE_HASHCTX);
  15558. #else
  15559. wc_Sha sha[1];
  15560. #endif
  15561. /* make sha inner */
  15562. ret = wc_ShaCopy(&ssl->hsHashes->hashSha, sha); /* Save current position */
  15563. if (ret == 0)
  15564. ret = wc_ShaUpdate(sha, ssl->arrays->masterSecret,SECRET_LEN);
  15565. if (ret == 0)
  15566. ret = wc_ShaUpdate(sha, PAD1, PAD_SHA);
  15567. if (ret == 0)
  15568. ret = wc_ShaFinal(sha, sha_result);
  15569. /* make sha outer */
  15570. if (ret == 0) {
  15571. ret = wc_InitSha_ex(sha, ssl->heap, ssl->devId);
  15572. if (ret == 0) {
  15573. ret = wc_ShaUpdate(sha, ssl->arrays->masterSecret,SECRET_LEN);
  15574. if (ret == 0)
  15575. ret = wc_ShaUpdate(sha, PAD2, PAD_SHA);
  15576. if (ret == 0)
  15577. ret = wc_ShaUpdate(sha, sha_result, WC_SHA_DIGEST_SIZE);
  15578. if (ret == 0)
  15579. ret = wc_ShaFinal(sha, digest);
  15580. wc_ShaFree(sha);
  15581. }
  15582. }
  15583. #ifdef WOLFSSL_SMALL_STACK
  15584. XFREE(sha, ssl->heap, DYNAMIC_TYPE_HASHCTX);
  15585. #endif
  15586. return ret;
  15587. }
  15588. #endif /* !NO_SHA && (!NO_OLD_TLS || WOLFSSL_ALLOW_TLS_SHA1) */
  15589. int BuildCertHashes(WOLFSSL* ssl, Hashes* hashes)
  15590. {
  15591. int ret = 0;
  15592. (void)hashes;
  15593. if (ssl->options.tls) {
  15594. #if !defined(NO_MD5) && !defined(NO_OLD_TLS)
  15595. ret = wc_Md5GetHash(&ssl->hsHashes->hashMd5, hashes->md5);
  15596. if (ret != 0)
  15597. return ret;
  15598. #endif
  15599. #if !defined(NO_SHA)
  15600. ret = wc_ShaGetHash(&ssl->hsHashes->hashSha, hashes->sha);
  15601. if (ret != 0)
  15602. return ret;
  15603. #endif
  15604. if (IsAtLeastTLSv1_2(ssl)) {
  15605. #ifndef NO_SHA256
  15606. ret = wc_Sha256GetHash(&ssl->hsHashes->hashSha256,
  15607. hashes->sha256);
  15608. if (ret != 0)
  15609. return ret;
  15610. #endif
  15611. #ifdef WOLFSSL_SHA384
  15612. ret = wc_Sha384GetHash(&ssl->hsHashes->hashSha384,
  15613. hashes->sha384);
  15614. if (ret != 0)
  15615. return ret;
  15616. #endif
  15617. #ifdef WOLFSSL_SHA512
  15618. ret = wc_Sha512GetHash(&ssl->hsHashes->hashSha512,
  15619. hashes->sha512);
  15620. if (ret != 0)
  15621. return ret;
  15622. #endif
  15623. }
  15624. }
  15625. else {
  15626. #if !defined(NO_MD5) && !defined(NO_OLD_TLS)
  15627. ret = BuildMD5_CertVerify(ssl, hashes->md5);
  15628. if (ret != 0)
  15629. return ret;
  15630. #endif
  15631. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  15632. defined(WOLFSSL_ALLOW_TLS_SHA1))
  15633. ret = BuildSHA_CertVerify(ssl, hashes->sha);
  15634. if (ret != 0)
  15635. return ret;
  15636. #endif
  15637. }
  15638. return ret;
  15639. }
  15640. #ifndef WOLFSSL_NO_TLS12
  15641. void FreeBuildMsgArgs(WOLFSSL* ssl, BuildMsgArgs* args)
  15642. {
  15643. if (args) {
  15644. if (ssl && args->iv)
  15645. XFREE(args->iv, ssl->heap, DYNAMIC_TYPE_SALT);
  15646. XMEMSET(args, 0, sizeof(BuildMsgArgs));
  15647. }
  15648. }
  15649. #endif
  15650. /* Build SSL Message, encrypted */
  15651. int BuildMessage(WOLFSSL* ssl, byte* output, int outSz, const byte* input,
  15652. int inSz, int type, int hashOutput, int sizeOnly, int asyncOkay,
  15653. int epochOrder)
  15654. {
  15655. #ifndef WOLFSSL_NO_TLS12
  15656. int ret;
  15657. BuildMsgArgs* args;
  15658. BuildMsgArgs lcl_args;
  15659. #ifdef WOLFSSL_ASYNC_CRYPT
  15660. args = &ssl->async.buildArgs;
  15661. #endif
  15662. #endif
  15663. WOLFSSL_ENTER("BuildMessage");
  15664. if (ssl == NULL) {
  15665. return BAD_FUNC_ARG;
  15666. }
  15667. (void)epochOrder;
  15668. #ifdef WOLFSSL_NO_TLS12
  15669. return BuildTls13Message(ssl, output, outSz, input, inSz, type,
  15670. hashOutput, sizeOnly, asyncOkay);
  15671. #else
  15672. #ifdef WOLFSSL_TLS13
  15673. if (ssl->options.tls1_3) {
  15674. return BuildTls13Message(ssl, output, outSz, input, inSz, type,
  15675. hashOutput, sizeOnly, asyncOkay);
  15676. }
  15677. #endif
  15678. #ifdef WOLFSSL_ASYNC_CRYPT
  15679. ret = WC_NOT_PENDING_E;
  15680. if (asyncOkay) {
  15681. ret = wolfSSL_AsyncPop(ssl, &ssl->options.buildMsgState);
  15682. if (ret != WC_NOT_PENDING_E) {
  15683. /* Check for error */
  15684. if (ret < 0)
  15685. goto exit_buildmsg;
  15686. }
  15687. }
  15688. else
  15689. #endif
  15690. {
  15691. args = &lcl_args;
  15692. }
  15693. /* Reset state */
  15694. #ifdef WOLFSSL_ASYNC_CRYPT
  15695. if (ret == WC_NOT_PENDING_E)
  15696. #endif
  15697. {
  15698. ret = 0;
  15699. ssl->options.buildMsgState = BUILD_MSG_BEGIN;
  15700. XMEMSET(args, 0, sizeof(BuildMsgArgs));
  15701. args->sz = RECORD_HEADER_SZ + inSz;
  15702. args->idx = RECORD_HEADER_SZ;
  15703. args->headerSz = RECORD_HEADER_SZ;
  15704. }
  15705. switch (ssl->options.buildMsgState) {
  15706. case BUILD_MSG_BEGIN:
  15707. {
  15708. /* catch mistaken sizeOnly parameter */
  15709. if (!sizeOnly && (output == NULL || input == NULL) ) {
  15710. ERROR_OUT(BAD_FUNC_ARG, exit_buildmsg);
  15711. }
  15712. if (sizeOnly && (output || input) ) {
  15713. WOLFSSL_MSG("BuildMessage w/sizeOnly doesn't need input/output");
  15714. ERROR_OUT(BAD_FUNC_ARG, exit_buildmsg);
  15715. }
  15716. #if defined(WOLFSSL_DTLS) && defined(HAVE_SECURE_RENEGOTIATION)
  15717. if (ssl->options.dtls && DtlsSCRKeysSet(ssl)) {
  15718. /* For epochs >1 the current cipher parameters are located in
  15719. * ssl->secure_renegotiation->tmp_keys. Previous cipher
  15720. * parameters and for epoch 1 use ssl->keys */
  15721. switch (epochOrder) {
  15722. case PREV_ORDER:
  15723. if (ssl->encrypt.src != KEYS) {
  15724. ssl->secure_renegotiation->cache_status =
  15725. SCR_CACHE_NULL;
  15726. if ((ret = SetKeysSide(ssl, ENCRYPT_SIDE_ONLY)) != 0)
  15727. ERROR_OUT(ret, exit_buildmsg);
  15728. }
  15729. break;
  15730. case CUR_ORDER:
  15731. if (ssl->keys.dtls_epoch ==
  15732. ssl->secure_renegotiation->tmp_keys.dtls_epoch) {
  15733. if (ssl->encrypt.src != SCR) {
  15734. ssl->secure_renegotiation->cache_status =
  15735. SCR_CACHE_NEEDED;
  15736. if ((ret = SetKeysSide(ssl, ENCRYPT_SIDE_ONLY))
  15737. != 0)
  15738. ERROR_OUT(ret, exit_buildmsg);
  15739. }
  15740. }
  15741. else {
  15742. if (ssl->encrypt.src != KEYS) {
  15743. ssl->secure_renegotiation->cache_status =
  15744. SCR_CACHE_NULL;
  15745. if ((ret = SetKeysSide(ssl, ENCRYPT_SIDE_ONLY))
  15746. != 0)
  15747. ERROR_OUT(ret, exit_buildmsg);
  15748. }
  15749. }
  15750. break;
  15751. default:
  15752. WOLFSSL_MSG("BuildMessage only supports PREV_ORDER and "
  15753. "CUR_ORDER");
  15754. ERROR_OUT(BAD_FUNC_ARG, exit_buildmsg);
  15755. }
  15756. }
  15757. #endif
  15758. ssl->options.buildMsgState = BUILD_MSG_SIZE;
  15759. }
  15760. FALL_THROUGH;
  15761. case BUILD_MSG_SIZE:
  15762. {
  15763. args->digestSz = ssl->specs.hash_size;
  15764. #ifdef HAVE_TRUNCATED_HMAC
  15765. if (ssl->truncated_hmac)
  15766. args->digestSz = min(TRUNCATED_HMAC_SZ, args->digestSz);
  15767. #endif
  15768. args->sz += args->digestSz;
  15769. #ifdef WOLFSSL_DTLS
  15770. if (ssl->options.dtls) {
  15771. args->sz += DTLS_RECORD_EXTRA;
  15772. args->idx += DTLS_RECORD_EXTRA;
  15773. args->headerSz += DTLS_RECORD_EXTRA;
  15774. }
  15775. #endif
  15776. #ifndef WOLFSSL_AEAD_ONLY
  15777. if (ssl->specs.cipher_type == block) {
  15778. word32 blockSz = ssl->specs.block_size;
  15779. if (blockSz == 0) {
  15780. WOLFSSL_MSG("Invalid block size with block cipher type");
  15781. ERROR_OUT(BAD_STATE_E, exit_buildmsg);
  15782. }
  15783. if (ssl->options.tls1_1) {
  15784. args->ivSz = blockSz;
  15785. args->sz += args->ivSz;
  15786. if (args->ivSz > MAX_IV_SZ)
  15787. ERROR_OUT(BUFFER_E, exit_buildmsg);
  15788. }
  15789. args->sz += 1; /* pad byte */
  15790. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15791. if (ssl->options.startedETMWrite) {
  15792. args->pad = (args->sz - args->headerSz -
  15793. args->digestSz) % blockSz;
  15794. }
  15795. else
  15796. #endif
  15797. args->pad = (args->sz - args->headerSz) % blockSz;
  15798. #ifdef OPENSSL_EXTRA
  15799. if(args->pad != 0)
  15800. #endif
  15801. args->pad = blockSz - args->pad;
  15802. args->sz += args->pad;
  15803. }
  15804. #endif /* WOLFSSL_AEAD_ONLY */
  15805. #ifdef HAVE_AEAD
  15806. if (ssl->specs.cipher_type == aead) {
  15807. if (ssl->specs.bulk_cipher_algorithm != wolfssl_chacha)
  15808. args->ivSz = AESGCM_EXP_IV_SZ;
  15809. args->sz += (args->ivSz + ssl->specs.aead_mac_size - args->digestSz);
  15810. }
  15811. #endif
  15812. /* done with size calculations */
  15813. if (sizeOnly)
  15814. goto exit_buildmsg;
  15815. if (args->sz > (word32)outSz) {
  15816. WOLFSSL_MSG("Oops, want to write past output buffer size");
  15817. ERROR_OUT(BUFFER_E, exit_buildmsg);
  15818. }
  15819. if (args->ivSz > 0) {
  15820. args->iv = (byte*)XMALLOC(args->ivSz, ssl->heap, DYNAMIC_TYPE_SALT);
  15821. if (args->iv == NULL)
  15822. ERROR_OUT(MEMORY_E, exit_buildmsg);
  15823. ret = wc_RNG_GenerateBlock(ssl->rng, args->iv, args->ivSz);
  15824. if (ret != 0)
  15825. goto exit_buildmsg;
  15826. XMEMSET(args->iv, 0, args->ivSz);
  15827. }
  15828. #if !defined(NO_PUBLIC_GCM_SET_IV) && \
  15829. ((defined(HAVE_FIPS) || defined(HAVE_SELFTEST)) && \
  15830. (!defined(HAVE_FIPS_VERSION) || (HAVE_FIPS_VERSION < 2)) && \
  15831. defined(HAVE_AEAD))
  15832. if (ssl->specs.cipher_type == aead) {
  15833. if (ssl->specs.bulk_cipher_algorithm != wolfssl_chacha)
  15834. XMEMCPY(args->iv, ssl->keys.aead_exp_IV, AESGCM_EXP_IV_SZ);
  15835. }
  15836. #endif
  15837. args->size = (word16)(args->sz - args->headerSz); /* include mac and digest */
  15838. AddRecordHeader(output, args->size, (byte)type, ssl, epochOrder);
  15839. /* write to output */
  15840. if (args->ivSz > 0) {
  15841. XMEMCPY(output + args->idx, args->iv,
  15842. min(args->ivSz, MAX_IV_SZ));
  15843. args->idx += args->ivSz;
  15844. }
  15845. XMEMCPY(output + args->idx, input, inSz);
  15846. args->idx += inSz;
  15847. ssl->options.buildMsgState = BUILD_MSG_HASH;
  15848. }
  15849. FALL_THROUGH;
  15850. case BUILD_MSG_HASH:
  15851. {
  15852. if (type == handshake && hashOutput) {
  15853. ret = HashOutput(ssl, output, args->headerSz + inSz, args->ivSz);
  15854. if (ret != 0)
  15855. goto exit_buildmsg;
  15856. }
  15857. #ifndef WOLFSSL_AEAD_ONLY
  15858. if (ssl->specs.cipher_type == block) {
  15859. word32 tmpIdx;
  15860. word32 i;
  15861. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15862. if (ssl->options.startedETMWrite)
  15863. tmpIdx = args->idx;
  15864. else
  15865. #endif
  15866. tmpIdx = args->idx + args->digestSz;
  15867. for (i = 0; i <= args->pad; i++)
  15868. output[tmpIdx++] = (byte)args->pad; /* pad byte gets pad value */
  15869. }
  15870. #endif
  15871. ssl->options.buildMsgState = BUILD_MSG_VERIFY_MAC;
  15872. }
  15873. FALL_THROUGH;
  15874. case BUILD_MSG_VERIFY_MAC:
  15875. {
  15876. /* User Record Layer Callback handling */
  15877. #ifdef ATOMIC_USER
  15878. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15879. if (ssl->options.startedETMWrite) {
  15880. if (ssl->ctx->EncryptMacCb) {
  15881. ret = ssl->ctx->EncryptMacCb(ssl, output + args->idx +
  15882. args->pad + 1, type, 0,
  15883. output + args->headerSz,
  15884. output + args->headerSz,
  15885. args->size - args->digestSz,
  15886. ssl->MacEncryptCtx);
  15887. goto exit_buildmsg;
  15888. }
  15889. }
  15890. else
  15891. #endif
  15892. {
  15893. if (ssl->ctx->MacEncryptCb) {
  15894. ret = ssl->ctx->MacEncryptCb(ssl, output + args->idx,
  15895. output + args->headerSz + args->ivSz, inSz,
  15896. type, 0, output + args->headerSz,
  15897. output + args->headerSz, args->size,
  15898. ssl->MacEncryptCtx);
  15899. goto exit_buildmsg;
  15900. }
  15901. }
  15902. #endif
  15903. #ifndef WOLFSSL_AEAD_ONLY
  15904. if (ssl->specs.cipher_type != aead
  15905. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15906. && !ssl->options.startedETMWrite
  15907. #endif
  15908. ) {
  15909. #ifdef HAVE_TRUNCATED_HMAC
  15910. if (ssl->truncated_hmac &&
  15911. ssl->specs.hash_size > args->digestSz) {
  15912. #ifdef WOLFSSL_SMALL_STACK
  15913. byte* hmac;
  15914. #else
  15915. byte hmac[WC_MAX_DIGEST_SIZE];
  15916. #endif
  15917. #ifdef WOLFSSL_SMALL_STACK
  15918. hmac = (byte*)XMALLOC(WC_MAX_DIGEST_SIZE, ssl->heap,
  15919. DYNAMIC_TYPE_DIGEST);
  15920. if (hmac == NULL)
  15921. ERROR_OUT(MEMORY_E, exit_buildmsg);
  15922. #endif
  15923. ret = ssl->hmac(ssl, hmac,
  15924. output + args->headerSz + args->ivSz, inSz,
  15925. -1, type, 0, epochOrder);
  15926. XMEMCPY(output + args->idx, hmac, args->digestSz);
  15927. #ifdef WOLFSSL_SMALL_STACK
  15928. XFREE(hmac, ssl->heap, DYNAMIC_TYPE_DIGEST);
  15929. #endif
  15930. }
  15931. else
  15932. #endif
  15933. {
  15934. ret = ssl->hmac(ssl, output + args->idx, output +
  15935. args->headerSz + args->ivSz, inSz, -1, type, 0, epochOrder);
  15936. }
  15937. }
  15938. #endif /* WOLFSSL_AEAD_ONLY */
  15939. if (ret != 0)
  15940. goto exit_buildmsg;
  15941. ssl->options.buildMsgState = BUILD_MSG_ENCRYPT;
  15942. }
  15943. FALL_THROUGH;
  15944. case BUILD_MSG_ENCRYPT:
  15945. {
  15946. #if defined(HAVE_SECURE_RENEGOTIATION) && defined(WOLFSSL_DTLS)
  15947. /* If we want the PREV_ORDER then modify CUR_ORDER sequence number
  15948. * for all encryption algos that use it for encryption parameters */
  15949. word16 dtls_epoch = 0;
  15950. word16 dtls_sequence_number_hi = 0;
  15951. word32 dtls_sequence_number_lo = 0;
  15952. int swap_seq = ssl->options.dtls && epochOrder == PREV_ORDER &&
  15953. DtlsUseSCRKeys(ssl);
  15954. if (swap_seq) {
  15955. dtls_epoch = ssl->keys.dtls_epoch;
  15956. dtls_sequence_number_hi = ssl->keys.dtls_sequence_number_hi;
  15957. dtls_sequence_number_lo = ssl->keys.dtls_sequence_number_lo;
  15958. ssl->keys.dtls_epoch--;
  15959. ssl->keys.dtls_sequence_number_hi =
  15960. ssl->keys.dtls_prev_sequence_number_hi;
  15961. ssl->keys.dtls_sequence_number_lo =
  15962. ssl->keys.dtls_prev_sequence_number_lo;
  15963. }
  15964. #endif
  15965. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15966. if (ssl->options.startedETMWrite) {
  15967. ret = Encrypt(ssl, output + args->headerSz,
  15968. output + args->headerSz,
  15969. (word16)(args->size - args->digestSz),
  15970. asyncOkay);
  15971. }
  15972. else
  15973. #endif
  15974. {
  15975. ret = Encrypt(ssl, output + args->headerSz,
  15976. output + args->headerSz, args->size, asyncOkay);
  15977. }
  15978. #if defined(HAVE_SECURE_RENEGOTIATION) && defined(WOLFSSL_DTLS)
  15979. /* Restore sequence numbers */
  15980. if (swap_seq) {
  15981. ssl->keys.dtls_epoch = dtls_epoch;
  15982. ssl->keys.dtls_sequence_number_hi = dtls_sequence_number_hi;
  15983. ssl->keys.dtls_sequence_number_lo = dtls_sequence_number_lo;
  15984. }
  15985. #endif
  15986. if (ret != 0)
  15987. goto exit_buildmsg;
  15988. ssl->options.buildMsgState = BUILD_MSG_ENCRYPTED_VERIFY_MAC;
  15989. }
  15990. FALL_THROUGH;
  15991. case BUILD_MSG_ENCRYPTED_VERIFY_MAC:
  15992. {
  15993. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  15994. if (ssl->options.startedETMWrite) {
  15995. WOLFSSL_MSG("Calculate MAC of Encrypted Data");
  15996. #ifdef HAVE_TRUNCATED_HMAC
  15997. if (ssl->truncated_hmac &&
  15998. ssl->specs.hash_size > args->digestSz) {
  15999. #ifdef WOLFSSL_SMALL_STACK
  16000. byte* hmac = NULL;
  16001. #else
  16002. byte hmac[WC_MAX_DIGEST_SIZE];
  16003. #endif
  16004. #ifdef WOLFSSL_SMALL_STACK
  16005. hmac = (byte*)XMALLOC(WC_MAX_DIGEST_SIZE, ssl->heap,
  16006. DYNAMIC_TYPE_DIGEST);
  16007. if (hmac == NULL)
  16008. ERROR_OUT(MEMORY_E, exit_buildmsg);
  16009. #endif
  16010. ret = ssl->hmac(ssl, hmac, output + args->headerSz,
  16011. args->ivSz + inSz + args->pad + 1, -1, type,
  16012. 0, epochOrder);
  16013. XMEMCPY(output + args->idx + args->pad + 1, hmac,
  16014. args->digestSz);
  16015. #ifdef WOLFSSL_SMALL_STACK
  16016. XFREE(hmac, ssl->heap, DYNAMIC_TYPE_DIGEST);
  16017. #endif
  16018. }
  16019. else
  16020. #endif
  16021. {
  16022. ret = ssl->hmac(ssl, output + args->idx + args->pad + 1,
  16023. output + args->headerSz,
  16024. args->ivSz + inSz + args->pad + 1, -1, type,
  16025. 0, epochOrder);
  16026. }
  16027. }
  16028. #endif /* HAVE_ENCRYPT_THEN_MAC && !WOLFSSL_AEAD_ONLY */
  16029. }
  16030. FALL_THROUGH;
  16031. default:
  16032. break;
  16033. }
  16034. exit_buildmsg:
  16035. WOLFSSL_LEAVE("BuildMessage", ret);
  16036. #ifdef WOLFSSL_ASYNC_CRYPT
  16037. if (ret == WC_PENDING_E) {
  16038. return ret;
  16039. }
  16040. #endif
  16041. /* make sure build message state is reset */
  16042. ssl->options.buildMsgState = BUILD_MSG_BEGIN;
  16043. #ifdef WOLFSSL_DTLS
  16044. if (ret == 0 && ssl->options.dtls)
  16045. DtlsSEQIncrement(ssl, epochOrder);
  16046. #endif
  16047. /* return sz on success */
  16048. if (ret == 0)
  16049. ret = args->sz;
  16050. /* Final cleanup */
  16051. FreeBuildMsgArgs(ssl, args);
  16052. return ret;
  16053. #endif /* !WOLFSSL_NO_TLS12 */
  16054. }
  16055. #ifndef WOLFSSL_NO_TLS12
  16056. int SendFinished(WOLFSSL* ssl)
  16057. {
  16058. int sendSz,
  16059. finishedSz = ssl->options.tls ? TLS_FINISHED_SZ :
  16060. FINISHED_SZ;
  16061. byte input[FINISHED_SZ + DTLS_HANDSHAKE_HEADER_SZ]; /* max */
  16062. byte *output;
  16063. Hashes* hashes;
  16064. int ret;
  16065. int headerSz = HANDSHAKE_HEADER_SZ;
  16066. int outputSz;
  16067. WOLFSSL_START(WC_FUNC_FINISHED_SEND);
  16068. WOLFSSL_ENTER("SendFinished");
  16069. /* check for available size */
  16070. outputSz = sizeof(input) + MAX_MSG_EXTRA;
  16071. if ((ret = CheckAvailableSize(ssl, outputSz)) != 0)
  16072. return ret;
  16073. #ifdef WOLFSSL_DTLS
  16074. if (ssl->options.dtls) {
  16075. headerSz += DTLS_HANDSHAKE_EXTRA;
  16076. ssl->keys.dtls_epoch++;
  16077. ssl->keys.dtls_prev_sequence_number_hi =
  16078. ssl->keys.dtls_sequence_number_hi;
  16079. ssl->keys.dtls_prev_sequence_number_lo =
  16080. ssl->keys.dtls_sequence_number_lo;
  16081. ssl->keys.dtls_sequence_number_hi = 0;
  16082. ssl->keys.dtls_sequence_number_lo = 0;
  16083. }
  16084. #endif
  16085. /* get output buffer */
  16086. output = ssl->buffers.outputBuffer.buffer +
  16087. ssl->buffers.outputBuffer.length;
  16088. AddHandShakeHeader(input, finishedSz, 0, finishedSz, finished, ssl);
  16089. /* make finished hashes */
  16090. hashes = (Hashes*)&input[headerSz];
  16091. ret = BuildFinished(ssl, hashes,
  16092. ssl->options.side == WOLFSSL_CLIENT_END ? client : server);
  16093. if (ret != 0) return ret;
  16094. #ifdef HAVE_SECURE_RENEGOTIATION
  16095. if (ssl->secure_renegotiation) {
  16096. if (ssl->options.side == WOLFSSL_CLIENT_END)
  16097. XMEMCPY(ssl->secure_renegotiation->client_verify_data, hashes,
  16098. TLS_FINISHED_SZ);
  16099. else
  16100. XMEMCPY(ssl->secure_renegotiation->server_verify_data, hashes,
  16101. TLS_FINISHED_SZ);
  16102. }
  16103. #endif
  16104. #if defined(OPENSSL_ALL) || defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_WPAS)
  16105. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  16106. XMEMCPY(ssl->clientFinished,
  16107. hashes, TLS_FINISHED_SZ);
  16108. ssl->clientFinished_len = TLS_FINISHED_SZ;
  16109. }
  16110. else {
  16111. XMEMCPY(ssl->serverFinished,
  16112. hashes, TLS_FINISHED_SZ);
  16113. ssl->serverFinished_len = TLS_FINISHED_SZ;
  16114. }
  16115. #endif
  16116. #ifdef WOLFSSL_DTLS
  16117. if (IsDtlsNotSctpMode(ssl)) {
  16118. if ((ret = DtlsMsgPoolSave(ssl, input, headerSz + finishedSz, finished)) != 0)
  16119. return ret;
  16120. }
  16121. #endif
  16122. sendSz = BuildMessage(ssl, output, outputSz, input, headerSz + finishedSz,
  16123. handshake, 1, 0, 0, CUR_ORDER);
  16124. if (sendSz < 0)
  16125. return BUILD_MSG_ERROR;
  16126. if (!ssl->options.resuming) {
  16127. #ifndef NO_SESSION_CACHE
  16128. AddSession(ssl); /* just try */
  16129. #endif
  16130. if (ssl->options.side == WOLFSSL_SERVER_END) {
  16131. #ifdef OPENSSL_EXTRA
  16132. ssl->options.serverState = SERVER_FINISHED_COMPLETE;
  16133. ssl->cbmode = SSL_CB_MODE_WRITE;
  16134. if (ssl->CBIS != NULL)
  16135. ssl->CBIS(ssl, SSL_CB_HANDSHAKE_DONE, SSL_SUCCESS);
  16136. #endif
  16137. ssl->options.handShakeState = HANDSHAKE_DONE;
  16138. ssl->options.handShakeDone = 1;
  16139. }
  16140. }
  16141. else {
  16142. if (ssl->options.side == WOLFSSL_CLIENT_END) {
  16143. #ifdef OPENSSL_EXTRA
  16144. ssl->options.clientState = CLIENT_FINISHED_COMPLETE;
  16145. ssl->cbmode = SSL_CB_MODE_WRITE;
  16146. if (ssl->CBIS != NULL)
  16147. ssl->CBIS(ssl, SSL_CB_HANDSHAKE_DONE, SSL_SUCCESS);
  16148. #endif
  16149. ssl->options.handShakeState = HANDSHAKE_DONE;
  16150. ssl->options.handShakeDone = 1;
  16151. }
  16152. }
  16153. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  16154. if (ssl->hsInfoOn) AddPacketName(ssl, "Finished");
  16155. if (ssl->toInfoOn)
  16156. AddPacketInfo(ssl, "Finished", handshake, output, sendSz,
  16157. WRITE_PROTO, ssl->heap);
  16158. #endif
  16159. ssl->buffers.outputBuffer.length += sendSz;
  16160. ret = SendBuffered(ssl);
  16161. #ifdef WOLFSSL_DTLS
  16162. if ((!ssl->options.resuming &&
  16163. ssl->options.side == WOLFSSL_SERVER_END) ||
  16164. (ssl->options.resuming &&
  16165. ssl->options.side == WOLFSSL_CLIENT_END)) {
  16166. ssl->keys.dtls_handshake_number = 0;
  16167. ssl->keys.dtls_expected_peer_handshake_number = 0;
  16168. }
  16169. #endif
  16170. WOLFSSL_LEAVE("SendFinished", ret);
  16171. WOLFSSL_END(WC_FUNC_FINISHED_SEND);
  16172. return ret;
  16173. }
  16174. #endif /* WOLFSSL_NO_TLS12 */
  16175. #ifndef NO_WOLFSSL_SERVER
  16176. #if (!defined(WOLFSSL_NO_TLS12) && \
  16177. (defined(HAVE_CERTIFICATE_STATUS_REQUEST) || \
  16178. defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2))) || \
  16179. (defined(WOLFSSL_TLS13) && defined(HAVE_CERTIFICATE_STATUS_REQUEST))
  16180. /* Parses and decodes the certificate then initializes "request". In the case
  16181. * of !ssl->buffers.weOwnCert, ssl->ctx->certOcspRequest gets set to "request".
  16182. *
  16183. * Returns 0 on success
  16184. */
  16185. static int CreateOcspRequest(WOLFSSL* ssl, OcspRequest* request,
  16186. DecodedCert* cert, byte* certData, word32 length)
  16187. {
  16188. int ret;
  16189. if (request != NULL)
  16190. XMEMSET(request, 0, sizeof(OcspRequest));
  16191. InitDecodedCert(cert, certData, length, ssl->heap);
  16192. /* TODO: Setup async support here */
  16193. ret = ParseCertRelative(cert, CERT_TYPE, VERIFY, SSL_CM(ssl));
  16194. if (ret != 0) {
  16195. WOLFSSL_MSG("ParseCert failed");
  16196. }
  16197. if (ret == 0)
  16198. ret = InitOcspRequest(request, cert, 0, ssl->heap);
  16199. if (ret == 0) {
  16200. /* make sure ctx OCSP request is updated */
  16201. if (!ssl->buffers.weOwnCert) {
  16202. wolfSSL_Mutex* ocspLock = &SSL_CM(ssl)->ocsp_stapling->ocspLock;
  16203. if (wc_LockMutex(ocspLock) == 0) {
  16204. if (ssl->ctx->certOcspRequest == NULL)
  16205. ssl->ctx->certOcspRequest = request;
  16206. wc_UnLockMutex(ocspLock);
  16207. }
  16208. }
  16209. }
  16210. FreeDecodedCert(cert);
  16211. return ret;
  16212. }
  16213. /* Creates OCSP response and places it in variable "response". Memory
  16214. * management for "buffer* response" is up to the caller.
  16215. *
  16216. * Also creates an OcspRequest in the case that ocspRequest is null or that
  16217. * ssl->buffers.weOwnCert is set. In those cases managing ocspRequest free'ing
  16218. * is up to the caller. NOTE: in OcspCreateRequest ssl->ctx->certOcspRequest can
  16219. * be set to point to "ocspRequest" and it then should not be free'd since
  16220. * wolfSSL_CTX_free will take care of it.
  16221. *
  16222. * Returns 0 on success
  16223. */
  16224. int CreateOcspResponse(WOLFSSL* ssl, OcspRequest** ocspRequest,
  16225. buffer* response)
  16226. {
  16227. int ret = 0;
  16228. OcspRequest* request = NULL;
  16229. byte createdRequest = 0;
  16230. if (ssl == NULL || ocspRequest == NULL || response == NULL)
  16231. return BAD_FUNC_ARG;
  16232. XMEMSET(response, 0, sizeof(*response));
  16233. request = *ocspRequest;
  16234. /* unable to fetch status. skip. */
  16235. if (SSL_CM(ssl) == NULL || SSL_CM(ssl)->ocspStaplingEnabled == 0)
  16236. return 0;
  16237. if (request == NULL || ssl->buffers.weOwnCert) {
  16238. DerBuffer* der = ssl->buffers.certificate;
  16239. #ifdef WOLFSSL_SMALL_STACK
  16240. DecodedCert* cert = NULL;
  16241. #else
  16242. DecodedCert cert[1];
  16243. #endif
  16244. /* unable to fetch status. skip. */
  16245. if (der->buffer == NULL || der->length == 0)
  16246. return 0;
  16247. #ifdef WOLFSSL_SMALL_STACK
  16248. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), ssl->heap,
  16249. DYNAMIC_TYPE_DCERT);
  16250. if (cert == NULL)
  16251. return MEMORY_E;
  16252. #endif
  16253. request = (OcspRequest*)XMALLOC(sizeof(OcspRequest), ssl->heap,
  16254. DYNAMIC_TYPE_OCSP_REQUEST);
  16255. if (request == NULL)
  16256. ret = MEMORY_E;
  16257. createdRequest = 1;
  16258. if (ret == 0) {
  16259. ret = CreateOcspRequest(ssl, request, cert, der->buffer,
  16260. der->length);
  16261. }
  16262. if (ret != 0) {
  16263. XFREE(request, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16264. request = NULL;
  16265. }
  16266. #ifdef WOLFSSL_SMALL_STACK
  16267. XFREE(cert, ssl->heap, DYNAMIC_TYPE_DCERT);
  16268. #endif
  16269. }
  16270. if (ret == 0) {
  16271. request->ssl = ssl;
  16272. ret = CheckOcspRequest(SSL_CM(ssl)->ocsp_stapling, request, response);
  16273. /* Suppressing, not critical */
  16274. if (ret == OCSP_CERT_REVOKED ||
  16275. ret == OCSP_CERT_UNKNOWN ||
  16276. ret == OCSP_LOOKUP_FAIL) {
  16277. ret = 0;
  16278. }
  16279. }
  16280. /* free request up if error case found otherwise return it */
  16281. if (ret != 0 && createdRequest) {
  16282. FreeOcspRequest(request);
  16283. XFREE(request, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16284. }
  16285. if (ret == 0)
  16286. *ocspRequest = request;
  16287. return ret;
  16288. }
  16289. #endif
  16290. #endif /* !NO_WOLFSSL_SERVER */
  16291. static int cipherExtraData(WOLFSSL* ssl)
  16292. {
  16293. /* Cipher data that may be added by BuildMessage */
  16294. return ssl->specs.hash_size + ssl->specs.block_size +
  16295. ssl->specs.aead_mac_size + ssl->specs.iv_size +
  16296. ssl->specs.pad_size;
  16297. }
  16298. #ifndef WOLFSSL_NO_TLS12
  16299. #ifndef NO_CERTS
  16300. #if !defined(NO_WOLFSSL_SERVER) || !defined(WOLFSSL_NO_CLIENT_AUTH)
  16301. /* handle generation of certificate (11) */
  16302. int SendCertificate(WOLFSSL* ssl)
  16303. {
  16304. int ret = 0;
  16305. word32 certSz, certChainSz, headerSz, listSz, payloadSz;
  16306. word32 length, maxFragment;
  16307. WOLFSSL_START(WC_FUNC_CERTIFICATE_SEND);
  16308. WOLFSSL_ENTER("SendCertificate");
  16309. if (ssl->options.usingPSK_cipher || ssl->options.usingAnon_cipher)
  16310. return 0; /* not needed */
  16311. if (ssl->options.sendVerify == SEND_BLANK_CERT) {
  16312. #ifdef OPENSSL_EXTRA
  16313. if (ssl->version.major == SSLv3_MAJOR
  16314. && ssl->version.minor == SSLv3_MINOR){
  16315. SendAlert(ssl, alert_warning, no_certificate);
  16316. return 0;
  16317. } else {
  16318. #endif
  16319. certSz = 0;
  16320. certChainSz = 0;
  16321. headerSz = CERT_HEADER_SZ;
  16322. length = CERT_HEADER_SZ;
  16323. listSz = 0;
  16324. #ifdef OPENSSL_EXTRA
  16325. }
  16326. #endif
  16327. }
  16328. else {
  16329. if (!ssl->buffers.certificate) {
  16330. WOLFSSL_MSG("Send Cert missing certificate buffer");
  16331. return BUFFER_ERROR;
  16332. }
  16333. certSz = ssl->buffers.certificate->length;
  16334. headerSz = 2 * CERT_HEADER_SZ;
  16335. /* list + cert size */
  16336. length = certSz + headerSz;
  16337. listSz = certSz + CERT_HEADER_SZ;
  16338. /* may need to send rest of chain, already has leading size(s) */
  16339. if (certSz && ssl->buffers.certChain) {
  16340. certChainSz = ssl->buffers.certChain->length;
  16341. length += certChainSz;
  16342. listSz += certChainSz;
  16343. }
  16344. else
  16345. certChainSz = 0;
  16346. }
  16347. payloadSz = length;
  16348. if (ssl->fragOffset != 0)
  16349. length -= (ssl->fragOffset + headerSz);
  16350. maxFragment = MAX_RECORD_SIZE;
  16351. maxFragment = wolfSSL_GetMaxRecordSize(ssl, maxFragment);
  16352. while (length > 0 && ret == 0) {
  16353. byte* output = NULL;
  16354. word32 fragSz = 0;
  16355. word32 i = RECORD_HEADER_SZ;
  16356. int sendSz = RECORD_HEADER_SZ;
  16357. if (!ssl->options.dtls) {
  16358. if (ssl->fragOffset == 0) {
  16359. if (headerSz + certSz + certChainSz <=
  16360. maxFragment - HANDSHAKE_HEADER_SZ) {
  16361. fragSz = headerSz + certSz + certChainSz;
  16362. }
  16363. else {
  16364. fragSz = maxFragment - HANDSHAKE_HEADER_SZ;
  16365. }
  16366. sendSz += fragSz + HANDSHAKE_HEADER_SZ;
  16367. i += HANDSHAKE_HEADER_SZ;
  16368. }
  16369. else {
  16370. fragSz = min(length, maxFragment);
  16371. sendSz += fragSz;
  16372. }
  16373. if (IsEncryptionOn(ssl, 1))
  16374. sendSz += MAX_MSG_EXTRA;
  16375. }
  16376. else {
  16377. #ifdef WOLFSSL_DTLS
  16378. fragSz = min(length, maxFragment);
  16379. sendSz += fragSz + DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA
  16380. + HANDSHAKE_HEADER_SZ;
  16381. i += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA
  16382. + HANDSHAKE_HEADER_SZ;
  16383. #endif
  16384. }
  16385. if (IsEncryptionOn(ssl, 1))
  16386. sendSz += cipherExtraData(ssl);
  16387. /* check for available size */
  16388. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  16389. return ret;
  16390. /* get output buffer */
  16391. output = ssl->buffers.outputBuffer.buffer +
  16392. ssl->buffers.outputBuffer.length;
  16393. if (ssl->fragOffset == 0) {
  16394. if (!ssl->options.dtls) {
  16395. AddFragHeaders(output, fragSz, 0, payloadSz, certificate, ssl);
  16396. if (!IsEncryptionOn(ssl, 1))
  16397. HashRaw(ssl, output + RECORD_HEADER_SZ,
  16398. HANDSHAKE_HEADER_SZ);
  16399. }
  16400. else {
  16401. #ifdef WOLFSSL_DTLS
  16402. AddHeaders(output, payloadSz, certificate, ssl);
  16403. HashRaw(ssl,
  16404. output + RECORD_HEADER_SZ + DTLS_RECORD_EXTRA,
  16405. HANDSHAKE_HEADER_SZ + DTLS_HANDSHAKE_EXTRA);
  16406. /* Adding the headers increments these, decrement them for
  16407. * actual message header. */
  16408. ssl->keys.dtls_handshake_number--;
  16409. AddFragHeaders(output, fragSz, 0, payloadSz, certificate, ssl);
  16410. ssl->keys.dtls_handshake_number--;
  16411. #endif /* WOLFSSL_DTLS */
  16412. }
  16413. /* list total */
  16414. c32to24(listSz, output + i);
  16415. if (ssl->options.dtls || !IsEncryptionOn(ssl, 1))
  16416. HashRaw(ssl, output + i, CERT_HEADER_SZ);
  16417. i += CERT_HEADER_SZ;
  16418. length -= CERT_HEADER_SZ;
  16419. fragSz -= CERT_HEADER_SZ;
  16420. if (certSz) {
  16421. c32to24(certSz, output + i);
  16422. if (ssl->options.dtls || !IsEncryptionOn(ssl, 1))
  16423. HashRaw(ssl, output + i, CERT_HEADER_SZ);
  16424. i += CERT_HEADER_SZ;
  16425. length -= CERT_HEADER_SZ;
  16426. fragSz -= CERT_HEADER_SZ;
  16427. if (ssl->options.dtls || !IsEncryptionOn(ssl, 1)) {
  16428. HashRaw(ssl, ssl->buffers.certificate->buffer, certSz);
  16429. if (certChainSz)
  16430. HashRaw(ssl, ssl->buffers.certChain->buffer,
  16431. certChainSz);
  16432. }
  16433. }
  16434. }
  16435. else {
  16436. if (!ssl->options.dtls) {
  16437. AddRecordHeader(output, fragSz, handshake, ssl, CUR_ORDER);
  16438. }
  16439. else {
  16440. #ifdef WOLFSSL_DTLS
  16441. AddFragHeaders(output, fragSz, ssl->fragOffset + headerSz,
  16442. payloadSz, certificate, ssl);
  16443. ssl->keys.dtls_handshake_number--;
  16444. #endif /* WOLFSSL_DTLS */
  16445. }
  16446. }
  16447. /* member */
  16448. if (certSz && ssl->fragOffset < certSz) {
  16449. word32 copySz = min(certSz - ssl->fragOffset, fragSz);
  16450. XMEMCPY(output + i,
  16451. ssl->buffers.certificate->buffer + ssl->fragOffset, copySz);
  16452. i += copySz;
  16453. ssl->fragOffset += copySz;
  16454. length -= copySz;
  16455. fragSz -= copySz;
  16456. }
  16457. if (certChainSz && fragSz) {
  16458. word32 copySz = min(certChainSz + certSz - ssl->fragOffset, fragSz);
  16459. XMEMCPY(output + i,
  16460. ssl->buffers.certChain->buffer + ssl->fragOffset - certSz,
  16461. copySz);
  16462. i += copySz;
  16463. ssl->fragOffset += copySz;
  16464. length -= copySz;
  16465. }
  16466. if (IsEncryptionOn(ssl, 1)) {
  16467. byte* input = NULL;
  16468. int inputSz = i; /* build msg adds rec hdr */
  16469. int recordHeaderSz = RECORD_HEADER_SZ;
  16470. if (ssl->options.dtls)
  16471. recordHeaderSz += DTLS_RECORD_EXTRA;
  16472. inputSz -= recordHeaderSz;
  16473. if (inputSz < 0) {
  16474. WOLFSSL_MSG("Send Cert bad inputSz");
  16475. return BUFFER_E;
  16476. }
  16477. if (inputSz > 0) { /* clang thinks could be zero, let's help */
  16478. input = (byte*)XMALLOC(inputSz, ssl->heap,
  16479. DYNAMIC_TYPE_IN_BUFFER);
  16480. if (input == NULL)
  16481. return MEMORY_E;
  16482. XMEMCPY(input, output + recordHeaderSz, inputSz);
  16483. }
  16484. #ifndef WOLFSSL_DTLS
  16485. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  16486. handshake, 1, 0, 0, CUR_ORDER);
  16487. #else
  16488. if (!ssl->options.dtls)
  16489. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  16490. handshake, 1, 0, 0, CUR_ORDER);
  16491. else /* DTLS 1.2 has to ignore fragmentation in hashing so we need to
  16492. * calculate the hash ourselves above */ {
  16493. if ((ret = DtlsMsgPoolSave(ssl, input, inputSz, certificate)) != 0) {
  16494. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16495. return ret;
  16496. }
  16497. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  16498. handshake, 0, 0, 0, CUR_ORDER);
  16499. }
  16500. #endif
  16501. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16502. if (sendSz < 0)
  16503. return sendSz;
  16504. }
  16505. else {
  16506. sendSz = i;
  16507. #ifdef WOLFSSL_DTLS
  16508. if (IsDtlsNotSctpMode(ssl)) {
  16509. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, certificate)) != 0)
  16510. return ret;
  16511. }
  16512. if (ssl->options.dtls)
  16513. DtlsSEQIncrement(ssl, CUR_ORDER);
  16514. #endif
  16515. }
  16516. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  16517. if (ssl->hsInfoOn)
  16518. AddPacketName(ssl, "Certificate");
  16519. if (ssl->toInfoOn)
  16520. AddPacketInfo(ssl, "Certificate", handshake, output, sendSz,
  16521. WRITE_PROTO, ssl->heap);
  16522. #endif
  16523. ssl->buffers.outputBuffer.length += sendSz;
  16524. if (!ssl->options.groupMessages)
  16525. ret = SendBuffered(ssl);
  16526. }
  16527. if (ret != WANT_WRITE) {
  16528. /* Clean up the fragment offset. */
  16529. ssl->fragOffset = 0;
  16530. #ifdef WOLFSSL_DTLS
  16531. if (ssl->options.dtls)
  16532. ssl->keys.dtls_handshake_number++;
  16533. #endif
  16534. if (ssl->options.side == WOLFSSL_SERVER_END){
  16535. ssl->options.serverState = SERVER_CERT_COMPLETE;
  16536. }
  16537. }
  16538. WOLFSSL_LEAVE("SendCertificate", ret);
  16539. WOLFSSL_END(WC_FUNC_CERTIFICATE_SEND);
  16540. return ret;
  16541. }
  16542. #endif /* !NO_WOLFSSL_SERVER || !WOLFSSL_NO_CLIENT_AUTH */
  16543. /* handle generation of certificate_request (13) */
  16544. int SendCertificateRequest(WOLFSSL* ssl)
  16545. {
  16546. byte *output;
  16547. int ret;
  16548. int sendSz;
  16549. word32 i = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  16550. word32 dnLen = 0;
  16551. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  16552. WOLF_STACK_OF(WOLFSSL_X509_NAME)* names;
  16553. #endif
  16554. int typeTotal = 1; /* only 1 for now */
  16555. int reqSz = ENUM_LEN + typeTotal + REQ_HEADER_SZ; /* add auth later */
  16556. WOLFSSL_START(WC_FUNC_CERTIFICATE_REQUEST_SEND);
  16557. WOLFSSL_ENTER("SendCertificateRequest");
  16558. if (IsAtLeastTLSv1_2(ssl))
  16559. reqSz += LENGTH_SZ + ssl->suites->hashSigAlgoSz;
  16560. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  16561. /* Certificate Authorities */
  16562. names = SSL_CA_NAMES(ssl);
  16563. while (names != NULL) {
  16564. byte seq[MAX_SEQ_SZ];
  16565. WOLFSSL_X509_NAME* name = names->data.name;
  16566. if (name != NULL) {
  16567. /* 16-bit length | SEQ | Len | DER of name */
  16568. dnLen += OPAQUE16_LEN + SetSequence(name->rawLen, seq) +
  16569. name->rawLen;
  16570. }
  16571. names = names->next;
  16572. }
  16573. reqSz += dnLen;
  16574. #endif
  16575. if (ssl->options.usingPSK_cipher || ssl->options.usingAnon_cipher)
  16576. return 0; /* not needed */
  16577. sendSz = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ + reqSz;
  16578. if (!ssl->options.dtls) {
  16579. if (IsEncryptionOn(ssl, 1))
  16580. sendSz += MAX_MSG_EXTRA;
  16581. }
  16582. else {
  16583. #ifdef WOLFSSL_DTLS
  16584. sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  16585. i += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  16586. #endif
  16587. }
  16588. if (IsEncryptionOn(ssl, 1))
  16589. sendSz += cipherExtraData(ssl);
  16590. /* check for available size */
  16591. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  16592. return ret;
  16593. /* get output buffer */
  16594. output = ssl->buffers.outputBuffer.buffer +
  16595. ssl->buffers.outputBuffer.length;
  16596. AddHeaders(output, reqSz, certificate_request, ssl);
  16597. /* write to output */
  16598. output[i++] = (byte)typeTotal; /* # of types */
  16599. #ifdef HAVE_ECC
  16600. if ((ssl->options.cipherSuite0 == ECC_BYTE ||
  16601. ssl->options.cipherSuite0 == CHACHA_BYTE) &&
  16602. ssl->specs.sig_algo == ecc_dsa_sa_algo) {
  16603. output[i++] = ecdsa_sign;
  16604. } else
  16605. #endif /* HAVE_ECC */
  16606. {
  16607. output[i++] = rsa_sign;
  16608. }
  16609. /* supported hash/sig */
  16610. if (IsAtLeastTLSv1_2(ssl)) {
  16611. c16toa(ssl->suites->hashSigAlgoSz, &output[i]);
  16612. i += OPAQUE16_LEN;
  16613. XMEMCPY(&output[i],
  16614. ssl->suites->hashSigAlgo, ssl->suites->hashSigAlgoSz);
  16615. i += ssl->suites->hashSigAlgoSz;
  16616. }
  16617. /* Certificate Authorities */
  16618. c16toa((word16)dnLen, &output[i]); /* auth's */
  16619. i += REQ_HEADER_SZ;
  16620. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  16621. names = SSL_CA_NAMES(ssl);
  16622. while (names != NULL) {
  16623. byte seq[MAX_SEQ_SZ];
  16624. WOLFSSL_X509_NAME* name = names->data.name;
  16625. if (name != NULL) {
  16626. c16toa((word16)name->rawLen +
  16627. SetSequence(name->rawLen, seq), &output[i]);
  16628. i += OPAQUE16_LEN;
  16629. i += SetSequence(name->rawLen, output + i);
  16630. XMEMCPY(output + i, name->raw, name->rawLen);
  16631. i += name->rawLen;
  16632. }
  16633. names = names->next;
  16634. }
  16635. #endif
  16636. (void)i;
  16637. if (IsEncryptionOn(ssl, 1)) {
  16638. byte* input = NULL;
  16639. int inputSz = i; /* build msg adds rec hdr */
  16640. int recordHeaderSz = RECORD_HEADER_SZ;
  16641. if (ssl->options.dtls)
  16642. recordHeaderSz += DTLS_RECORD_EXTRA;
  16643. inputSz -= recordHeaderSz;
  16644. if (inputSz <= 0) {
  16645. WOLFSSL_MSG("Send Cert Req bad inputSz");
  16646. return BUFFER_E;
  16647. }
  16648. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16649. if (input == NULL)
  16650. return MEMORY_E;
  16651. XMEMCPY(input, output + recordHeaderSz, inputSz);
  16652. #ifdef WOLFSSL_DTLS
  16653. if (IsDtlsNotSctpMode(ssl) &&
  16654. (ret = DtlsMsgPoolSave(ssl, input, inputSz, certificate_request)) != 0) {
  16655. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16656. return ret;
  16657. }
  16658. #endif
  16659. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  16660. handshake, 1, 0, 0, CUR_ORDER);
  16661. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16662. if (sendSz < 0)
  16663. return sendSz;
  16664. } else {
  16665. sendSz = i;
  16666. #ifdef WOLFSSL_DTLS
  16667. if (IsDtlsNotSctpMode(ssl)) {
  16668. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, certificate_request)) != 0)
  16669. return ret;
  16670. }
  16671. if (ssl->options.dtls)
  16672. DtlsSEQIncrement(ssl, CUR_ORDER);
  16673. #endif
  16674. ret = HashOutput(ssl, output, sendSz, 0);
  16675. if (ret != 0)
  16676. return ret;
  16677. }
  16678. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  16679. if (ssl->hsInfoOn)
  16680. AddPacketName(ssl, "CertificateRequest");
  16681. if (ssl->toInfoOn)
  16682. AddPacketInfo(ssl, "CertificateRequest", handshake, output, sendSz,
  16683. WRITE_PROTO, ssl->heap);
  16684. #endif
  16685. ssl->buffers.outputBuffer.length += sendSz;
  16686. if (ssl->options.groupMessages)
  16687. ret = 0;
  16688. else
  16689. ret = SendBuffered(ssl);
  16690. WOLFSSL_LEAVE("SendCertificateRequest", ret);
  16691. WOLFSSL_END(WC_FUNC_CERTIFICATE_REQUEST_SEND);
  16692. return ret;
  16693. }
  16694. #ifndef NO_WOLFSSL_SERVER
  16695. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  16696. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  16697. static int BuildCertificateStatus(WOLFSSL* ssl, byte type, buffer* status,
  16698. byte count)
  16699. {
  16700. byte* output = NULL;
  16701. word32 idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  16702. word32 length = ENUM_LEN;
  16703. int sendSz = 0;
  16704. int ret = 0;
  16705. int i = 0;
  16706. WOLFSSL_ENTER("BuildCertificateStatus");
  16707. switch (type) {
  16708. case WOLFSSL_CSR2_OCSP_MULTI:
  16709. length += OPAQUE24_LEN;
  16710. FALL_THROUGH; /* followed by */
  16711. case WOLFSSL_CSR2_OCSP:
  16712. for (i = 0; i < count; i++)
  16713. length += OPAQUE24_LEN + status[i].length;
  16714. break;
  16715. default:
  16716. return 0;
  16717. }
  16718. sendSz = idx + length;
  16719. if (ssl->keys.encryptionOn)
  16720. sendSz += MAX_MSG_EXTRA;
  16721. if ((ret = CheckAvailableSize(ssl, sendSz)) == 0) {
  16722. output = ssl->buffers.outputBuffer.buffer +
  16723. ssl->buffers.outputBuffer.length;
  16724. AddHeaders(output, length, certificate_status, ssl);
  16725. output[idx++] = type;
  16726. if (type == WOLFSSL_CSR2_OCSP_MULTI) {
  16727. c32to24(length - (ENUM_LEN + OPAQUE24_LEN), output + idx);
  16728. idx += OPAQUE24_LEN;
  16729. }
  16730. for (i = 0; i < count; i++) {
  16731. c32to24(status[i].length, output + idx);
  16732. idx += OPAQUE24_LEN;
  16733. XMEMCPY(output + idx, status[i].buffer, status[i].length);
  16734. idx += status[i].length;
  16735. }
  16736. if (IsEncryptionOn(ssl, 1)) {
  16737. byte* input;
  16738. int inputSz = idx; /* build msg adds rec hdr */
  16739. int recordHeaderSz = RECORD_HEADER_SZ;
  16740. if (ssl->options.dtls)
  16741. recordHeaderSz += DTLS_RECORD_EXTRA;
  16742. inputSz -= recordHeaderSz;
  16743. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16744. if (input == NULL)
  16745. return MEMORY_E;
  16746. XMEMCPY(input, output + recordHeaderSz, inputSz);
  16747. #ifdef WOLFSSL_DTLS
  16748. ret = DtlsMsgPoolSave(ssl, input, inputSz, certificate_status);
  16749. #endif
  16750. if (ret == 0)
  16751. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  16752. handshake, 1, 0, 0, CUR_ORDER);
  16753. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  16754. if (sendSz < 0)
  16755. ret = sendSz;
  16756. }
  16757. else {
  16758. #ifdef WOLFSSL_DTLS
  16759. if (ret == 0 && IsDtlsNotSctpMode(ssl))
  16760. ret = DtlsMsgPoolSave(ssl, output, sendSz, certificate_status);
  16761. if (ret == 0 && ssl->options.dtls)
  16762. DtlsSEQIncrement(ssl, CUR_ORDER);
  16763. #endif
  16764. ret = HashOutput(ssl, output, sendSz, 0);
  16765. }
  16766. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  16767. if (ret == 0 && ssl->hsInfoOn)
  16768. AddPacketName(ssl, "CertificateStatus");
  16769. if (ret == 0 && ssl->toInfoOn)
  16770. AddPacketInfo(ssl, "CertificateStatus", handshake, output, sendSz,
  16771. WRITE_PROTO, ssl->heap);
  16772. #endif
  16773. if (ret == 0) {
  16774. ssl->buffers.outputBuffer.length += sendSz;
  16775. if (!ssl->options.groupMessages)
  16776. ret = SendBuffered(ssl);
  16777. }
  16778. }
  16779. WOLFSSL_LEAVE("BuildCertificateStatus", ret);
  16780. return ret;
  16781. }
  16782. #endif
  16783. #endif /* NO_WOLFSSL_SERVER */
  16784. /* handle generation of certificate_status (22) */
  16785. int SendCertificateStatus(WOLFSSL* ssl)
  16786. {
  16787. int ret = 0;
  16788. byte status_type = 0;
  16789. WOLFSSL_START(WC_FUNC_CERTIFICATE_STATUS_SEND);
  16790. WOLFSSL_ENTER("SendCertificateStatus");
  16791. (void) ssl;
  16792. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST
  16793. status_type = ssl->status_request;
  16794. #endif
  16795. #ifdef HAVE_CERTIFICATE_STATUS_REQUEST_V2
  16796. status_type = status_type ? status_type : ssl->status_request_v2;
  16797. #endif
  16798. switch (status_type) {
  16799. #ifndef NO_WOLFSSL_SERVER
  16800. #if defined(HAVE_CERTIFICATE_STATUS_REQUEST) \
  16801. || defined(HAVE_CERTIFICATE_STATUS_REQUEST_V2)
  16802. /* case WOLFSSL_CSR_OCSP: */
  16803. case WOLFSSL_CSR2_OCSP:
  16804. {
  16805. OcspRequest* request = ssl->ctx->certOcspRequest;
  16806. buffer response;
  16807. ret = CreateOcspResponse(ssl, &request, &response);
  16808. /* if a request was successfully created and not stored in
  16809. * ssl->ctx then free it */
  16810. if (ret == 0 && request != ssl->ctx->certOcspRequest) {
  16811. FreeOcspRequest(request);
  16812. XFREE(request, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16813. request = NULL;
  16814. }
  16815. if (ret == 0 && response.buffer) {
  16816. ret = BuildCertificateStatus(ssl, status_type, &response, 1);
  16817. XFREE(response.buffer, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16818. response.buffer = NULL;
  16819. }
  16820. break;
  16821. }
  16822. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST */
  16823. /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  16824. #if defined HAVE_CERTIFICATE_STATUS_REQUEST_V2
  16825. case WOLFSSL_CSR2_OCSP_MULTI:
  16826. {
  16827. OcspRequest* request = ssl->ctx->certOcspRequest;
  16828. buffer responses[1 + MAX_CHAIN_DEPTH];
  16829. int i = 0;
  16830. XMEMSET(responses, 0, sizeof(responses));
  16831. ret = CreateOcspResponse(ssl, &request, &responses[0]);
  16832. /* if a request was successfully created and not stored in
  16833. * ssl->ctx then free it */
  16834. if (ret == 0 && request != ssl->ctx->certOcspRequest) {
  16835. FreeOcspRequest(request);
  16836. XFREE(request, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16837. request = NULL;
  16838. }
  16839. if (ret == 0 && (!ssl->ctx->chainOcspRequest[0]
  16840. || ssl->buffers.weOwnCertChain)) {
  16841. buffer der;
  16842. word32 idx = 0;
  16843. #ifdef WOLFSSL_SMALL_STACK
  16844. DecodedCert* cert;
  16845. #else
  16846. DecodedCert cert[1];
  16847. #endif
  16848. DerBuffer* chain;
  16849. #ifdef WOLFSSL_SMALL_STACK
  16850. cert = (DecodedCert*)XMALLOC(sizeof(DecodedCert), ssl->heap,
  16851. DYNAMIC_TYPE_DCERT);
  16852. if (cert == NULL)
  16853. return MEMORY_E;
  16854. #endif
  16855. request = (OcspRequest*)XMALLOC(sizeof(OcspRequest), ssl->heap,
  16856. DYNAMIC_TYPE_OCSP_REQUEST);
  16857. if (request == NULL) {
  16858. #ifdef WOLFSSL_SMALL_STACK
  16859. XFREE(cert, ssl->heap, DYNAMIC_TYPE_DCERT);
  16860. #endif
  16861. return MEMORY_E;
  16862. }
  16863. /* use certChain if available, otherwise use peer certificate */
  16864. chain = ssl->buffers.certChain;
  16865. if (chain == NULL) {
  16866. chain = ssl->buffers.certificate;
  16867. }
  16868. if (chain && chain->buffer) {
  16869. while (idx + OPAQUE24_LEN < chain->length) {
  16870. c24to32(chain->buffer + idx, &der.length);
  16871. idx += OPAQUE24_LEN;
  16872. der.buffer = chain->buffer + idx;
  16873. idx += der.length;
  16874. if (idx > chain->length)
  16875. break;
  16876. ret = CreateOcspRequest(ssl, request, cert, der.buffer,
  16877. der.length);
  16878. if (ret == 0) {
  16879. request->ssl = ssl;
  16880. ret = CheckOcspRequest(SSL_CM(ssl)->ocsp_stapling,
  16881. request, &responses[i + 1]);
  16882. /* Suppressing, not critical */
  16883. if (ret == OCSP_CERT_REVOKED ||
  16884. ret == OCSP_CERT_UNKNOWN ||
  16885. ret == OCSP_LOOKUP_FAIL) {
  16886. ret = 0;
  16887. }
  16888. i++;
  16889. FreeOcspRequest(request);
  16890. }
  16891. }
  16892. }
  16893. XFREE(request, ssl->heap, DYNAMIC_TYPE_OCSP_REQUEST);
  16894. #ifdef WOLFSSL_SMALL_STACK
  16895. XFREE(cert, ssl->heap, DYNAMIC_TYPE_DCERT);
  16896. #endif
  16897. }
  16898. else {
  16899. while (ret == 0 &&
  16900. NULL != (request = ssl->ctx->chainOcspRequest[i])) {
  16901. request->ssl = ssl;
  16902. ret = CheckOcspRequest(SSL_CM(ssl)->ocsp_stapling,
  16903. request, &responses[++i]);
  16904. /* Suppressing, not critical */
  16905. if (ret == OCSP_CERT_REVOKED ||
  16906. ret == OCSP_CERT_UNKNOWN ||
  16907. ret == OCSP_LOOKUP_FAIL) {
  16908. ret = 0;
  16909. }
  16910. }
  16911. }
  16912. if (responses[0].buffer) {
  16913. if (ret == 0) {
  16914. ret = BuildCertificateStatus(ssl, status_type, responses,
  16915. (byte)i + 1);
  16916. }
  16917. for (i = 0; i < 1 + MAX_CHAIN_DEPTH; i++) {
  16918. if (responses[i].buffer) {
  16919. XFREE(responses[i].buffer, ssl->heap,
  16920. DYNAMIC_TYPE_OCSP_REQUEST);
  16921. }
  16922. }
  16923. }
  16924. break;
  16925. }
  16926. #endif /* HAVE_CERTIFICATE_STATUS_REQUEST_V2 */
  16927. #endif /* NO_WOLFSSL_SERVER */
  16928. default:
  16929. break;
  16930. }
  16931. WOLFSSL_LEAVE("SendCertificateStatus", ret);
  16932. WOLFSSL_END(WC_FUNC_CERTIFICATE_STATUS_SEND);
  16933. return ret;
  16934. }
  16935. #endif /* !NO_CERTS */
  16936. #endif /* WOLFSSL_NO_TLS12 */
  16937. #if defined(HAVE_SECURE_RENEGOTIATION) && defined(WOLFSSL_DTLS)
  16938. /**
  16939. * Check if the SCR keys are set in ssl->secure_renegotiation->tmp_keys.
  16940. */
  16941. int DtlsSCRKeysSet(WOLFSSL* ssl)
  16942. {
  16943. return ssl->secure_renegotiation &&
  16944. ssl->secure_renegotiation->tmp_keys.dtls_epoch != 0;
  16945. }
  16946. /**
  16947. * ssl->keys contains the current cipher parameters only for epoch 1. For
  16948. * epochs >1 ssl->secure_renegotiation->tmp_keys contains the current
  16949. * cipher parameters. This function checks if the message currently being
  16950. * processed should use ssl->keys or ssl->secure_renegotiation->tmp_keys.
  16951. */
  16952. int IsDtlsMsgSCRKeys(WOLFSSL* ssl)
  16953. {
  16954. return DtlsSCRKeysSet(ssl) &&
  16955. ssl->keys.curEpoch ==
  16956. ssl->secure_renegotiation->tmp_keys.dtls_epoch;
  16957. }
  16958. /**
  16959. * ssl->keys contains the current cipher parameters only for epoch 1. For
  16960. * epochs >1 ssl->secure_renegotiation->tmp_keys contains the current
  16961. * cipher parameters. This function checks if the message currently being
  16962. * built should use ssl->keys or ssl->secure_renegotiation->tmp_keys.
  16963. */
  16964. int DtlsUseSCRKeys(WOLFSSL* ssl)
  16965. {
  16966. return DtlsSCRKeysSet(ssl) &&
  16967. ssl->secure_renegotiation->tmp_keys.dtls_epoch ==
  16968. ssl->keys.dtls_epoch;
  16969. }
  16970. /**
  16971. * If ssl->secure_renegotiation->tmp_keys.dtls_epoch > ssl->keys.dtls_epoch
  16972. * then PREV_ORDER refers to the current epoch.
  16973. * */
  16974. int DtlsCheckOrder(WOLFSSL* ssl, int order)
  16975. {
  16976. if (order == PREV_ORDER && ssl->secure_renegotiation &&
  16977. ssl->secure_renegotiation->tmp_keys.dtls_epoch > ssl->keys.dtls_epoch) {
  16978. return CUR_ORDER;
  16979. }
  16980. else {
  16981. return order;
  16982. }
  16983. }
  16984. #endif /* HAVE_SECURE_RENEGOTIATION && WOLFSSL_DTLS */
  16985. /* If secure renegotiation is disabled, this will always return false.
  16986. * Otherwise it checks to see if we are currently renegotiating. */
  16987. int IsSCR(WOLFSSL* ssl)
  16988. {
  16989. #ifndef HAVE_SECURE_RENEGOTIATION
  16990. (void)ssl;
  16991. #else /* HAVE_SECURE_RENEGOTIATION */
  16992. if (ssl->secure_renegotiation &&
  16993. ssl->secure_renegotiation->enabled && /* Is SCR enabled? */
  16994. ssl->options.handShakeDone && /* At least one handshake done? */
  16995. ssl->options.handShakeState != HANDSHAKE_DONE) /* Currently handshaking? */
  16996. return 1;
  16997. #endif /* HAVE_SECURE_RENEGOTIATION */
  16998. return 0;
  16999. }
  17000. int SendData(WOLFSSL* ssl, const void* data, int sz)
  17001. {
  17002. int sent = 0, /* plainText size */
  17003. sendSz,
  17004. ret;
  17005. #if defined(WOLFSSL_EARLY_DATA) && defined(WOLFSSL_EARLY_DATA_GROUP)
  17006. int groupMsgs = 0;
  17007. #endif
  17008. if (ssl->error == WANT_WRITE
  17009. #ifdef WOLFSSL_ASYNC_CRYPT
  17010. || ssl->error == WC_PENDING_E
  17011. #endif
  17012. ) {
  17013. ssl->error = 0;
  17014. }
  17015. /* don't allow write after decrypt or mac error */
  17016. if (ssl->error == VERIFY_MAC_ERROR || ssl->error == DECRYPT_ERROR) {
  17017. /* For DTLS allow these possible errors and allow the session
  17018. to continue despite them */
  17019. if (ssl->options.dtls) {
  17020. ssl->error = 0;
  17021. }
  17022. else {
  17023. WOLFSSL_MSG("Not allowing write after decrypt or mac error");
  17024. return WOLFSSL_FATAL_ERROR;
  17025. }
  17026. }
  17027. #ifdef WOLFSSL_EARLY_DATA
  17028. if (ssl->earlyData != no_early_data) {
  17029. if (ssl->options.handShakeState == HANDSHAKE_DONE) {
  17030. WOLFSSL_MSG("handshake complete, trying to send early data");
  17031. ssl->error = BUILD_MSG_ERROR;
  17032. return WOLFSSL_FATAL_ERROR;
  17033. }
  17034. #ifdef WOLFSSL_EARLY_DATA_GROUP
  17035. groupMsgs = 1;
  17036. #endif
  17037. }
  17038. else
  17039. #endif
  17040. if (ssl->options.handShakeState != HANDSHAKE_DONE && !IsSCR(ssl)) {
  17041. int err;
  17042. WOLFSSL_MSG("handshake not complete, trying to finish");
  17043. if ( (err = wolfSSL_negotiate(ssl)) != WOLFSSL_SUCCESS) {
  17044. #ifdef WOLFSSL_ASYNC_CRYPT
  17045. /* if async would block return WANT_WRITE */
  17046. if (ssl->error == WC_PENDING_E) {
  17047. return WOLFSSL_CBIO_ERR_WANT_WRITE;
  17048. }
  17049. #endif
  17050. return err;
  17051. }
  17052. }
  17053. /* last time system socket output buffer was full, try again to send */
  17054. if (ssl->buffers.outputBuffer.length > 0
  17055. #if defined(WOLFSSL_EARLY_DATA) && defined(WOLFSSL_EARLY_DATA_GROUP)
  17056. && !groupMsgs
  17057. #endif
  17058. ) {
  17059. WOLFSSL_MSG("output buffer was full, trying to send again");
  17060. if ( (ssl->error = SendBuffered(ssl)) < 0) {
  17061. WOLFSSL_ERROR(ssl->error);
  17062. if (ssl->error == SOCKET_ERROR_E && (ssl->options.connReset ||
  17063. ssl->options.isClosed)) {
  17064. ssl->error = SOCKET_PEER_CLOSED_E;
  17065. WOLFSSL_ERROR(ssl->error);
  17066. return 0; /* peer reset or closed */
  17067. }
  17068. return ssl->error;
  17069. }
  17070. else {
  17071. /* advance sent to previous sent + plain size just sent */
  17072. sent = ssl->buffers.prevSent + ssl->buffers.plainSz;
  17073. WOLFSSL_MSG("sent write buffered data");
  17074. if (sent > sz) {
  17075. WOLFSSL_MSG("error: write() after WANT_WRITE with short size");
  17076. return ssl->error = BAD_FUNC_ARG;
  17077. }
  17078. }
  17079. }
  17080. for (;;) {
  17081. byte* out;
  17082. byte* sendBuffer = (byte*)data + sent; /* may switch on comp */
  17083. int buffSz; /* may switch on comp */
  17084. int outputSz;
  17085. #ifdef HAVE_LIBZ
  17086. byte comp[MAX_RECORD_SIZE + MAX_COMP_EXTRA];
  17087. #endif
  17088. if (sent == sz) break;
  17089. buffSz = wolfSSL_GetMaxRecordSize(ssl, sz - sent);
  17090. #if defined(WOLFSSL_DTLS) && !defined(WOLFSSL_NO_DTLS_SIZE_CHECK)
  17091. if (ssl->options.dtls && (buffSz < sz - sent)) {
  17092. ssl->error = DTLS_SIZE_ERROR;
  17093. WOLFSSL_ERROR(ssl->error);
  17094. return ssl->error;
  17095. }
  17096. #endif
  17097. outputSz = buffSz + COMP_EXTRA + DTLS_RECORD_HEADER_SZ +
  17098. DTLS_HANDSHAKE_HEADER_SZ;
  17099. if (IsEncryptionOn(ssl, 1))
  17100. outputSz += cipherExtraData(ssl);
  17101. /* check for available size */
  17102. if ((ret = CheckAvailableSize(ssl, outputSz)) != 0)
  17103. return ssl->error = ret;
  17104. /* get output buffer */
  17105. out = ssl->buffers.outputBuffer.buffer +
  17106. ssl->buffers.outputBuffer.length;
  17107. #ifdef HAVE_LIBZ
  17108. if (ssl->options.usingCompression) {
  17109. buffSz = myCompress(ssl, sendBuffer, buffSz, comp, sizeof(comp));
  17110. if (buffSz < 0) {
  17111. return buffSz;
  17112. }
  17113. sendBuffer = comp;
  17114. }
  17115. #endif
  17116. if (!ssl->options.tls1_3) {
  17117. sendSz = BuildMessage(ssl, out, outputSz, sendBuffer, buffSz,
  17118. application_data, 0, 0, 1, CUR_ORDER);
  17119. }
  17120. else {
  17121. #ifdef WOLFSSL_TLS13
  17122. sendSz = BuildTls13Message(ssl, out, outputSz, sendBuffer, buffSz,
  17123. application_data, 0, 0, 1);
  17124. #else
  17125. sendSz = BUFFER_ERROR;
  17126. #endif
  17127. }
  17128. if (sendSz < 0) {
  17129. #ifdef WOLFSSL_ASYNC_CRYPT
  17130. if (sendSz == WC_PENDING_E)
  17131. ssl->error = sendSz;
  17132. #endif
  17133. return BUILD_MSG_ERROR;
  17134. }
  17135. ssl->buffers.outputBuffer.length += sendSz;
  17136. if ( (ssl->error = SendBuffered(ssl)) < 0) {
  17137. WOLFSSL_ERROR(ssl->error);
  17138. /* store for next call if WANT_WRITE or user embedSend() that
  17139. doesn't present like WANT_WRITE */
  17140. ssl->buffers.plainSz = buffSz;
  17141. ssl->buffers.prevSent = sent;
  17142. if (ssl->error == SOCKET_ERROR_E && (ssl->options.connReset ||
  17143. ssl->options.isClosed)) {
  17144. ssl->error = SOCKET_PEER_CLOSED_E;
  17145. WOLFSSL_ERROR(ssl->error);
  17146. return 0; /* peer reset or closed */
  17147. }
  17148. return ssl->error;
  17149. }
  17150. sent += buffSz;
  17151. /* only one message per attempt */
  17152. if (ssl->options.partialWrite == 1) {
  17153. WOLFSSL_MSG("Partial Write on, only sending one record");
  17154. break;
  17155. }
  17156. }
  17157. return sent;
  17158. }
  17159. /* process input data */
  17160. int ReceiveData(WOLFSSL* ssl, byte* output, int sz, int peek)
  17161. {
  17162. int size;
  17163. WOLFSSL_ENTER("ReceiveData()");
  17164. /* reset error state */
  17165. if (ssl->error == WANT_READ || ssl->error == WOLFSSL_ERROR_WANT_READ) {
  17166. ssl->error = 0;
  17167. }
  17168. #ifdef WOLFSSL_DTLS
  17169. if (ssl->options.dtls) {
  17170. /* In DTLS mode, we forgive some errors and allow the session
  17171. * to continue despite them. */
  17172. if (ssl->error == VERIFY_MAC_ERROR ||
  17173. ssl->error == DECRYPT_ERROR ||
  17174. ssl->error == DTLS_SIZE_ERROR) {
  17175. ssl->error = 0;
  17176. }
  17177. }
  17178. #endif /* WOLFSSL_DTLS */
  17179. if (ssl->error != 0 && ssl->error != WANT_WRITE
  17180. #ifdef WOLFSSL_ASYNC_CRYPT
  17181. && ssl->error != WC_PENDING_E
  17182. #endif
  17183. #ifdef HAVE_SECURE_RENEGOTIATION
  17184. && ssl->error != APP_DATA_READY
  17185. #endif
  17186. ) {
  17187. WOLFSSL_MSG("User calling wolfSSL_read in error state, not allowed");
  17188. return ssl->error;
  17189. }
  17190. #ifdef WOLFSSL_EARLY_DATA
  17191. if (ssl->earlyData != no_early_data) {
  17192. }
  17193. else
  17194. #endif
  17195. {
  17196. int negotiate = 0;
  17197. #ifdef HAVE_SECURE_RENEGOTIATION
  17198. if (ssl->secure_renegotiation && ssl->secure_renegotiation->enabled) {
  17199. if (ssl->options.handShakeState != HANDSHAKE_DONE
  17200. && ssl->buffers.clearOutputBuffer.length == 0)
  17201. negotiate = 1;
  17202. }
  17203. else
  17204. #endif
  17205. if (ssl->options.handShakeState != HANDSHAKE_DONE)
  17206. negotiate = 1;
  17207. if (negotiate) {
  17208. int err;
  17209. WOLFSSL_MSG("Handshake not complete, trying to finish");
  17210. if ( (err = wolfSSL_negotiate(ssl)) != WOLFSSL_SUCCESS) {
  17211. #ifdef WOLFSSL_ASYNC_CRYPT
  17212. /* if async would block return WANT_WRITE */
  17213. if (ssl->error == WC_PENDING_E) {
  17214. return WOLFSSL_CBIO_ERR_WANT_READ;
  17215. }
  17216. #endif
  17217. return err;
  17218. }
  17219. }
  17220. }
  17221. #ifdef HAVE_SECURE_RENEGOTIATION
  17222. startScr:
  17223. if (ssl->secure_renegotiation && ssl->secure_renegotiation->startScr) {
  17224. int ret;
  17225. WOLFSSL_MSG("Need to start scr, server requested");
  17226. ret = wolfSSL_Rehandshake(ssl);
  17227. ssl->secure_renegotiation->startScr = 0; /* only start once */
  17228. if (ret != WOLFSSL_SUCCESS)
  17229. return ret;
  17230. }
  17231. #endif
  17232. while (ssl->buffers.clearOutputBuffer.length == 0) {
  17233. if ( (ssl->error = ProcessReply(ssl)) < 0) {
  17234. WOLFSSL_ERROR(ssl->error);
  17235. if (ssl->error == ZERO_RETURN) {
  17236. WOLFSSL_MSG("Zero return, no more data coming");
  17237. return 0; /* no more data coming */
  17238. }
  17239. if (ssl->error == SOCKET_ERROR_E) {
  17240. if (ssl->options.connReset || ssl->options.isClosed) {
  17241. WOLFSSL_MSG("Peer reset or closed, connection done");
  17242. ssl->error = SOCKET_PEER_CLOSED_E;
  17243. WOLFSSL_ERROR(ssl->error);
  17244. return 0; /* peer reset or closed */
  17245. }
  17246. }
  17247. return ssl->error;
  17248. }
  17249. #ifdef HAVE_SECURE_RENEGOTIATION
  17250. if (ssl->secure_renegotiation &&
  17251. ssl->secure_renegotiation->startScr) {
  17252. goto startScr;
  17253. }
  17254. if (ssl->secure_renegotiation && ssl->secure_renegotiation->enabled &&
  17255. ssl->options.handShakeState != HANDSHAKE_DONE
  17256. && ssl->buffers.clearOutputBuffer.length == 0) {
  17257. /* ProcessReply processed a handshake packet and not any APP DATA
  17258. * so let's move the handshake along */
  17259. int err;
  17260. WOLFSSL_MSG("Handshake not complete, trying to finish");
  17261. if ( (err = wolfSSL_negotiate(ssl)) != WOLFSSL_SUCCESS) {
  17262. #ifdef WOLFSSL_ASYNC_CRYPT
  17263. /* if async would block return WANT_WRITE */
  17264. if (ssl->error == WC_PENDING_E) {
  17265. return WOLFSSL_CBIO_ERR_WANT_READ;
  17266. }
  17267. #endif
  17268. return err;
  17269. }
  17270. }
  17271. #endif
  17272. #ifndef WOLFSSL_TLS13_NO_PEEK_HANDSHAKE_DONE
  17273. #ifdef WOLFSSL_TLS13
  17274. if (IsAtLeastTLSv1_3(ssl->version) && ssl->options.handShakeDone &&
  17275. ssl->curRL.type == handshake && peek) {
  17276. WOLFSSL_MSG("Got Handshake Messge in APP data");
  17277. if (ssl->buffers.inputBuffer.length == 0) {
  17278. ssl->error = WOLFSSL_ERROR_WANT_READ;
  17279. return 0;
  17280. }
  17281. }
  17282. #endif
  17283. #endif
  17284. }
  17285. size = min(sz, (int)ssl->buffers.clearOutputBuffer.length);
  17286. XMEMCPY(output, ssl->buffers.clearOutputBuffer.buffer, size);
  17287. if (peek == 0) {
  17288. ssl->buffers.clearOutputBuffer.length -= size;
  17289. ssl->buffers.clearOutputBuffer.buffer += size;
  17290. }
  17291. if (ssl->buffers.clearOutputBuffer.length == 0 &&
  17292. ssl->buffers.inputBuffer.dynamicFlag)
  17293. ShrinkInputBuffer(ssl, NO_FORCED_FREE);
  17294. WOLFSSL_LEAVE("ReceiveData()", size);
  17295. return size;
  17296. }
  17297. /* send alert message */
  17298. int SendAlert(WOLFSSL* ssl, int severity, int type)
  17299. {
  17300. byte input[ALERT_SIZE];
  17301. byte *output;
  17302. int sendSz;
  17303. int ret;
  17304. int outputSz;
  17305. int dtlsExtra = 0;
  17306. WOLFSSL_ENTER("SendAlert");
  17307. #ifdef HAVE_WRITE_DUP
  17308. if (ssl->dupWrite && ssl->dupSide == READ_DUP_SIDE) {
  17309. int notifyErr = 0;
  17310. WOLFSSL_MSG("Read dup side cannot write alerts, notifying sibling");
  17311. if (type == close_notify) {
  17312. notifyErr = ZERO_RETURN;
  17313. } else if (severity == alert_fatal) {
  17314. notifyErr = FATAL_ERROR;
  17315. }
  17316. if (notifyErr != 0) {
  17317. return NotifyWriteSide(ssl, notifyErr);
  17318. }
  17319. return 0;
  17320. }
  17321. #endif
  17322. /* if sendalert is called again for nonblocking */
  17323. if (ssl->options.sendAlertState != 0) {
  17324. ret = SendBuffered(ssl);
  17325. if (ret == 0)
  17326. ssl->options.sendAlertState = 0;
  17327. return ret;
  17328. }
  17329. #ifdef OPENSSL_EXTRA
  17330. if (ssl->CBIS != NULL) {
  17331. ssl->CBIS(ssl, SSL_CB_ALERT, type);
  17332. }
  17333. #endif
  17334. #ifdef WOLFSSL_DTLS
  17335. if (ssl->options.dtls)
  17336. dtlsExtra = DTLS_RECORD_EXTRA;
  17337. #endif
  17338. /* check for available size */
  17339. outputSz = ALERT_SIZE + MAX_MSG_EXTRA + dtlsExtra;
  17340. if ((ret = CheckAvailableSize(ssl, outputSz)) != 0)
  17341. return ret;
  17342. /* Check output buffer */
  17343. if (ssl->buffers.outputBuffer.buffer == NULL)
  17344. return BUFFER_E;
  17345. /* get output buffer */
  17346. output = ssl->buffers.outputBuffer.buffer +
  17347. ssl->buffers.outputBuffer.length;
  17348. input[0] = (byte)severity;
  17349. input[1] = (byte)type;
  17350. ssl->alert_history.last_tx.code = type;
  17351. ssl->alert_history.last_tx.level = severity;
  17352. if (severity == alert_fatal) {
  17353. ssl->options.isClosed = 1; /* Don't send close_notify */
  17354. }
  17355. /* send encrypted alert if encryption is on - can be a rehandshake over
  17356. * an existing encrypted channel.
  17357. * TLS 1.3 encrypts handshake packets after the ServerHello
  17358. */
  17359. if (IsEncryptionOn(ssl, 1)) {
  17360. sendSz = BuildMessage(ssl, output, outputSz, input, ALERT_SIZE, alert,
  17361. 0, 0, 0, CUR_ORDER);
  17362. }
  17363. else {
  17364. AddRecordHeader(output, ALERT_SIZE, alert, ssl, CUR_ORDER);
  17365. output += RECORD_HEADER_SZ;
  17366. #ifdef WOLFSSL_DTLS
  17367. if (ssl->options.dtls)
  17368. output += DTLS_RECORD_EXTRA;
  17369. #endif
  17370. XMEMCPY(output, input, ALERT_SIZE);
  17371. sendSz = RECORD_HEADER_SZ + ALERT_SIZE;
  17372. #ifdef WOLFSSL_DTLS
  17373. if (ssl->options.dtls)
  17374. sendSz += DTLS_RECORD_EXTRA;
  17375. #endif
  17376. }
  17377. if (sendSz < 0)
  17378. return BUILD_MSG_ERROR;
  17379. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  17380. if (ssl->hsInfoOn)
  17381. AddPacketName(ssl, "Alert");
  17382. if (ssl->toInfoOn)
  17383. AddPacketInfo(ssl, "Alert", alert, output, sendSz, WRITE_PROTO,
  17384. ssl->heap);
  17385. #endif
  17386. ssl->buffers.outputBuffer.length += sendSz;
  17387. ssl->options.sendAlertState = 1;
  17388. ret = SendBuffered(ssl);
  17389. WOLFSSL_LEAVE("SendAlert", ret);
  17390. return ret;
  17391. }
  17392. const char* wolfSSL_ERR_reason_error_string(unsigned long e)
  17393. {
  17394. #ifdef NO_ERROR_STRINGS
  17395. (void)e;
  17396. return "no support for error strings built in";
  17397. #else
  17398. int error = (int)e;
  17399. #ifdef OPENSSL_EXTRA
  17400. /* OpenSSL uses positive error codes */
  17401. if (error > 0) {
  17402. error = -error;
  17403. }
  17404. #endif
  17405. /* pass to wolfCrypt */
  17406. if (error < MAX_CODE_E && error > MIN_CODE_E) {
  17407. return wc_GetErrorString(error);
  17408. }
  17409. switch (error) {
  17410. #ifdef WOLFSSL_WPAS
  17411. case 0 :
  17412. return "ok";
  17413. #endif
  17414. case UNSUPPORTED_SUITE :
  17415. return "unsupported cipher suite";
  17416. case INPUT_CASE_ERROR :
  17417. return "input state error";
  17418. case PREFIX_ERROR :
  17419. return "bad index to key rounds";
  17420. case MEMORY_ERROR :
  17421. return "out of memory";
  17422. case VERIFY_FINISHED_ERROR :
  17423. return "verify problem on finished";
  17424. case VERIFY_MAC_ERROR :
  17425. return "verify mac problem";
  17426. case PARSE_ERROR :
  17427. return "parse error on header";
  17428. case SIDE_ERROR :
  17429. return "wrong client/server type";
  17430. case NO_PEER_CERT :
  17431. return "peer didn't send cert";
  17432. case UNKNOWN_HANDSHAKE_TYPE :
  17433. return "weird handshake type";
  17434. case SOCKET_ERROR_E :
  17435. return "error state on socket";
  17436. case SOCKET_NODATA :
  17437. return "expected data, not there";
  17438. case INCOMPLETE_DATA :
  17439. return "don't have enough data to complete task";
  17440. case UNKNOWN_RECORD_TYPE :
  17441. return "unknown type in record hdr";
  17442. case DECRYPT_ERROR :
  17443. return "error during decryption";
  17444. case FATAL_ERROR :
  17445. return "received alert fatal error";
  17446. case ENCRYPT_ERROR :
  17447. return "error during encryption";
  17448. case FREAD_ERROR :
  17449. return "fread problem";
  17450. case NO_PEER_KEY :
  17451. return "need peer's key";
  17452. case NO_PRIVATE_KEY :
  17453. return "need the private key";
  17454. case NO_DH_PARAMS :
  17455. return "server missing DH params";
  17456. case RSA_PRIVATE_ERROR :
  17457. return "error during rsa priv op";
  17458. case MATCH_SUITE_ERROR :
  17459. return "can't match cipher suite";
  17460. case COMPRESSION_ERROR :
  17461. return "compression mismatch error";
  17462. case BUILD_MSG_ERROR :
  17463. return "build message failure";
  17464. case BAD_HELLO :
  17465. return "client hello malformed";
  17466. case DOMAIN_NAME_MISMATCH :
  17467. return "peer subject name mismatch";
  17468. case IPADDR_MISMATCH :
  17469. return "peer ip address mismatch";
  17470. case WANT_READ :
  17471. case WOLFSSL_ERROR_WANT_READ :
  17472. return "non-blocking socket wants data to be read";
  17473. case NOT_READY_ERROR :
  17474. return "handshake layer not ready yet, complete first";
  17475. case VERSION_ERROR :
  17476. return "record layer version error";
  17477. case WANT_WRITE :
  17478. case WOLFSSL_ERROR_WANT_WRITE :
  17479. return "non-blocking socket write buffer full";
  17480. case BUFFER_ERROR :
  17481. return "malformed buffer input error";
  17482. case VERIFY_CERT_ERROR :
  17483. return "verify problem on certificate";
  17484. case VERIFY_SIGN_ERROR :
  17485. return "verify problem based on signature";
  17486. case CLIENT_ID_ERROR :
  17487. return "psk client identity error";
  17488. case SERVER_HINT_ERROR:
  17489. return "psk server hint error";
  17490. case PSK_KEY_ERROR:
  17491. return "psk key callback error";
  17492. case GETTIME_ERROR:
  17493. return "gettimeofday() error";
  17494. case GETITIMER_ERROR:
  17495. return "getitimer() error";
  17496. case SIGACT_ERROR:
  17497. return "sigaction() error";
  17498. case SETITIMER_ERROR:
  17499. return "setitimer() error";
  17500. case LENGTH_ERROR:
  17501. return "record layer length error";
  17502. case PEER_KEY_ERROR:
  17503. return "cant decode peer key";
  17504. case ZERO_RETURN:
  17505. case WOLFSSL_ERROR_ZERO_RETURN:
  17506. return "peer sent close notify alert";
  17507. case ECC_CURVETYPE_ERROR:
  17508. return "Bad ECC Curve Type or unsupported";
  17509. case ECC_CURVE_ERROR:
  17510. return "Bad ECC Curve or unsupported";
  17511. case ECC_PEERKEY_ERROR:
  17512. return "Bad ECC Peer Key";
  17513. case ECC_MAKEKEY_ERROR:
  17514. return "ECC Make Key failure";
  17515. case ECC_EXPORT_ERROR:
  17516. return "ECC Export Key failure";
  17517. case ECC_SHARED_ERROR:
  17518. return "ECC DHE shared failure";
  17519. case NOT_CA_ERROR:
  17520. return "Not a CA by basic constraint error";
  17521. case BAD_CERT_MANAGER_ERROR:
  17522. return "Bad Cert Manager error";
  17523. case OCSP_CERT_REVOKED:
  17524. return "OCSP Cert revoked";
  17525. case CRL_CERT_REVOKED:
  17526. return "CRL Cert revoked";
  17527. case CRL_MISSING:
  17528. return "CRL missing, not loaded";
  17529. case MONITOR_SETUP_E:
  17530. return "CRL monitor setup error";
  17531. case THREAD_CREATE_E:
  17532. return "Thread creation problem";
  17533. case OCSP_NEED_URL:
  17534. return "OCSP need URL";
  17535. case OCSP_CERT_UNKNOWN:
  17536. return "OCSP Cert unknown";
  17537. case OCSP_LOOKUP_FAIL:
  17538. return "OCSP Responder lookup fail";
  17539. case MAX_CHAIN_ERROR:
  17540. return "Maximum Chain Depth Exceeded";
  17541. case COOKIE_ERROR:
  17542. return "DTLS Cookie Error";
  17543. case SEQUENCE_ERROR:
  17544. return "DTLS Sequence Error";
  17545. case SUITES_ERROR:
  17546. return "Suites Pointer Error";
  17547. case OUT_OF_ORDER_E:
  17548. return "Out of order message, fatal";
  17549. case BAD_KEA_TYPE_E:
  17550. return "Bad KEA type found";
  17551. case SANITY_CIPHER_E:
  17552. return "Sanity check on ciphertext failed";
  17553. case RECV_OVERFLOW_E:
  17554. return "Receive callback returned more than requested";
  17555. case GEN_COOKIE_E:
  17556. return "Generate Cookie Error";
  17557. case NO_PEER_VERIFY:
  17558. return "Need peer certificate verify Error";
  17559. case FWRITE_ERROR:
  17560. return "fwrite Error";
  17561. case CACHE_MATCH_ERROR:
  17562. return "Cache restore header match Error";
  17563. case UNKNOWN_SNI_HOST_NAME_E:
  17564. return "Unrecognized host name Error";
  17565. case UNKNOWN_MAX_FRAG_LEN_E:
  17566. return "Unrecognized max frag len Error";
  17567. case KEYUSE_SIGNATURE_E:
  17568. return "Key Use digitalSignature not set Error";
  17569. case KEYUSE_ENCIPHER_E:
  17570. return "Key Use keyEncipherment not set Error";
  17571. case EXTKEYUSE_AUTH_E:
  17572. return "Ext Key Use server/client auth not set Error";
  17573. case SEND_OOB_READ_E:
  17574. return "Send Callback Out of Bounds Read Error";
  17575. case SECURE_RENEGOTIATION_E:
  17576. return "Invalid Renegotiation Error";
  17577. case SESSION_TICKET_LEN_E:
  17578. return "Session Ticket Too Long Error";
  17579. case SESSION_TICKET_EXPECT_E:
  17580. return "Session Ticket Error";
  17581. case SESSION_SECRET_CB_E:
  17582. return "Session Secret Callback Error";
  17583. case NO_CHANGE_CIPHER_E:
  17584. return "Finished received from peer before Change Cipher Error";
  17585. case SANITY_MSG_E:
  17586. return "Sanity Check on message order Error";
  17587. case DUPLICATE_MSG_E:
  17588. return "Duplicate HandShake message Error";
  17589. case SNI_UNSUPPORTED:
  17590. return "Protocol version does not support SNI Error";
  17591. case SOCKET_PEER_CLOSED_E:
  17592. return "Peer closed underlying transport Error";
  17593. case BAD_TICKET_KEY_CB_SZ:
  17594. return "Bad user session ticket key callback Size Error";
  17595. case BAD_TICKET_MSG_SZ:
  17596. return "Bad session ticket message Size Error";
  17597. case BAD_TICKET_ENCRYPT:
  17598. return "Bad user ticket callback encrypt Error";
  17599. case DH_KEY_SIZE_E:
  17600. return "DH key too small Error";
  17601. case SNI_ABSENT_ERROR:
  17602. return "No Server Name Indication extension Error";
  17603. case RSA_SIGN_FAULT:
  17604. return "RSA Signature Fault Error";
  17605. case HANDSHAKE_SIZE_ERROR:
  17606. return "Handshake message too large Error";
  17607. case UNKNOWN_ALPN_PROTOCOL_NAME_E:
  17608. return "Unrecognized protocol name Error";
  17609. case BAD_CERTIFICATE_STATUS_ERROR:
  17610. return "Bad Certificate Status Message Error";
  17611. case OCSP_INVALID_STATUS:
  17612. return "Invalid OCSP Status Error";
  17613. case OCSP_WANT_READ:
  17614. return "OCSP nonblock wants read";
  17615. case RSA_KEY_SIZE_E:
  17616. return "RSA key too small";
  17617. case ECC_KEY_SIZE_E:
  17618. return "ECC key too small";
  17619. case DTLS_EXPORT_VER_E:
  17620. return "Version needs updated after code change or version mismatch";
  17621. case INPUT_SIZE_E:
  17622. return "Input size too large Error";
  17623. case CTX_INIT_MUTEX_E:
  17624. return "Initialize ctx mutex error";
  17625. case EXT_MASTER_SECRET_NEEDED_E:
  17626. return "Extended Master Secret must be enabled to resume EMS session";
  17627. case DTLS_POOL_SZ_E:
  17628. return "Maximum DTLS pool size exceeded";
  17629. case DECODE_E:
  17630. return "Decode handshake message error";
  17631. case WRITE_DUP_READ_E:
  17632. return "Write dup write side can't read error";
  17633. case WRITE_DUP_WRITE_E:
  17634. return "Write dup read side can't write error";
  17635. case INVALID_CERT_CTX_E:
  17636. return "Certificate context does not match request or not empty";
  17637. case BAD_KEY_SHARE_DATA:
  17638. return "The Key Share data contains group that wasn't in Client Hello";
  17639. case MISSING_HANDSHAKE_DATA:
  17640. return "The handshake message is missing required data";
  17641. case BAD_BINDER:
  17642. return "Binder value does not match value server calculated";
  17643. case EXT_NOT_ALLOWED:
  17644. return "Extension type not allowed in handshake message type";
  17645. case INVALID_PARAMETER:
  17646. return "The security parameter is invalid";
  17647. case UNSUPPORTED_EXTENSION:
  17648. return "TLS Extension not requested by the client";
  17649. case PRF_MISSING:
  17650. return "Pseudo-random function is not enabled";
  17651. case KEY_SHARE_ERROR:
  17652. return "Key share extension did not contain a valid named group";
  17653. case POST_HAND_AUTH_ERROR:
  17654. return "Client will not do post handshake authentication";
  17655. case HRR_COOKIE_ERROR:
  17656. return "Cookie does not match one sent in HelloRetryRequest";
  17657. case MCAST_HIGHWATER_CB_E:
  17658. return "Multicast highwater callback returned error";
  17659. case ALERT_COUNT_E:
  17660. return "Alert Count exceeded error";
  17661. case EXT_MISSING:
  17662. return "Required TLS extension missing";
  17663. case DTLS_RETX_OVER_TX:
  17664. return "DTLS interrupting flight transmit with retransmit";
  17665. case DH_PARAMS_NOT_FFDHE_E:
  17666. return "Server DH parameters were not from the FFDHE set as required";
  17667. case TCA_INVALID_ID_TYPE:
  17668. return "TLS Extension Trusted CA ID type invalid";
  17669. case TCA_ABSENT_ERROR:
  17670. return "TLS Extension Trusted CA ID response absent";
  17671. case TSIP_MAC_DIGSZ_E:
  17672. return "TSIP MAC size invalid, must be sized for SHA-1 or SHA-256";
  17673. case CLIENT_CERT_CB_ERROR:
  17674. return "Error importing client cert or key from callback";
  17675. case SSL_SHUTDOWN_ALREADY_DONE_E:
  17676. return "Shutdown has already occurred";
  17677. case TLS13_SECRET_CB_E:
  17678. return "TLS1.3 Secret Callback Error";
  17679. case DTLS_SIZE_ERROR:
  17680. return "DTLS trying to send too much in single datagram error";
  17681. case NO_CERT_ERROR:
  17682. return "TLS1.3 No Certificate Set Error";
  17683. case APP_DATA_READY:
  17684. return "Application data is available for reading";
  17685. case TOO_MUCH_EARLY_DATA:
  17686. return "Too much early data";
  17687. case SOCKET_FILTERED_E:
  17688. return "Session stopped by network filter";
  17689. #ifdef HAVE_HTTP_CLIENT
  17690. case HTTP_TIMEOUT:
  17691. return "HTTP timeout for OCSP or CRL req";
  17692. case HTTP_RECV_ERR:
  17693. return "HTTP Receive error";
  17694. case HTTP_HEADER_ERR:
  17695. return "HTTP Header error";
  17696. case HTTP_PROTO_ERR:
  17697. return "HTTP Protocol error";
  17698. case HTTP_STATUS_ERR:
  17699. return "HTTP Status error";
  17700. case HTTP_VERSION_ERR:
  17701. return "HTTP Version error";
  17702. case HTTP_APPSTR_ERR:
  17703. return "HTTP Application string error";
  17704. #endif
  17705. case UNSUPPORTED_PROTO_VERSION:
  17706. #ifdef OPENSSL_ALL
  17707. return "WRONG_SSL_VERSION";
  17708. #else
  17709. return "bad/unsupported protocol version";
  17710. #endif
  17711. default :
  17712. return "unknown error number";
  17713. }
  17714. #endif /* NO_ERROR_STRINGS */
  17715. }
  17716. const char* wolfSSL_ERR_func_error_string(unsigned long e)
  17717. {
  17718. (void)e;
  17719. WOLFSSL_MSG("wolfSSL_ERR_func_error_string does not return the name of "
  17720. "the function that failed. Please inspect the wolfSSL debug "
  17721. "logs to determine where the error occurred.");
  17722. return "";
  17723. }
  17724. /* return library name
  17725. * @param e error code
  17726. * @return text library name,
  17727. * if there is no suitable library found, returns empty string
  17728. */
  17729. const char* wolfSSL_ERR_lib_error_string(unsigned long e)
  17730. {
  17731. int libe = 0;
  17732. (void)libe;
  17733. (void)e;
  17734. #if defined(OPENSSL_EXTRA)
  17735. libe = wolfSSL_ERR_GET_LIB(e);
  17736. switch (libe) {
  17737. case ERR_LIB_PEM:
  17738. return "wolfSSL PEM routines";
  17739. case ERR_LIB_EVP:
  17740. return "wolfSSL digital envelope routines";
  17741. default:
  17742. return "";
  17743. }
  17744. #else
  17745. return "";
  17746. #endif
  17747. }
  17748. void SetErrorString(int error, char* str)
  17749. {
  17750. XSTRNCPY(str, wolfSSL_ERR_reason_error_string(error), WOLFSSL_MAX_ERROR_SZ);
  17751. str[WOLFSSL_MAX_ERROR_SZ-1] = 0;
  17752. }
  17753. #ifdef NO_CIPHER_SUITE_ALIASES
  17754. #ifndef NO_ERROR_STRINGS
  17755. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  17756. #define SUITE_INFO(x,y,z,w,v,u) {(x),(y),(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17757. #define SUITE_ALIAS(x,z,w,v,u)
  17758. #else
  17759. #define SUITE_INFO(x,y,z,w,v,u) {(x),(y),(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17760. #define SUITE_ALIAS(x,z,w,v,u)
  17761. #endif
  17762. #else
  17763. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT)
  17764. #define SUITE_INFO(x,y,z,w,v,u) {(x),(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17765. #define SUITE_ALIAS(x,z,w,v,u)
  17766. #else
  17767. #define SUITE_INFO(x,y,z,w,v,u) {(x),(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17768. #define SUITE_ALIAS(x,z,w,v,u)
  17769. #endif
  17770. #endif
  17771. #else /* !NO_CIPHER_SUITE_ALIASES */
  17772. /* note that the comma is included at the end of the SUITE_ALIAS() macro
  17773. * definitions, to allow aliases to be gated out by the above null macros
  17774. * in the NO_CIPHER_SUITE_ALIASES section.
  17775. */
  17776. #ifndef NO_ERROR_STRINGS
  17777. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT) || \
  17778. defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_NGINX)
  17779. #define SUITE_INFO(x,y,z,w,v,u) {(x),(y),(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17780. #define SUITE_ALIAS(x,z,w,v,u) {(x),"",(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS},
  17781. #else
  17782. #define SUITE_INFO(x,y,z,w,v,u) {(x),(y),(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17783. #define SUITE_ALIAS(x,z,w,v,u) {(x),"",(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS},
  17784. #endif
  17785. #else
  17786. #if defined(OPENSSL_ALL) || defined(WOLFSSL_QT) || \
  17787. defined(WOLFSSL_HAPROXY) || defined(WOLFSSL_NGINX)
  17788. #define SUITE_INFO(x,y,z,w,v,u) {(x),(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17789. #define SUITE_ALIAS(x,z,w,v,u) {(x),(z),(w),(v),(u),WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS},
  17790. #else
  17791. #define SUITE_INFO(x,y,z,w,v,u) {(x),(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NONE}
  17792. #define SUITE_ALIAS(x,z,w,v,u) {(x),(z),(w),WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS},
  17793. #endif
  17794. #endif
  17795. #endif /* NO_CIPHER_SUITE_ALIASES */
  17796. static const CipherSuiteInfo cipher_names[] =
  17797. {
  17798. #ifdef BUILD_TLS_AES_128_GCM_SHA256
  17799. SUITE_INFO("TLS13-AES128-GCM-SHA256","TLS_AES_128_GCM_SHA256",TLS13_BYTE,TLS_AES_128_GCM_SHA256, TLSv1_3_MINOR, SSLv3_MAJOR),
  17800. #endif
  17801. #ifdef BUILD_TLS_AES_256_GCM_SHA384
  17802. SUITE_INFO("TLS13-AES256-GCM-SHA384","TLS_AES_256_GCM_SHA384",TLS13_BYTE,TLS_AES_256_GCM_SHA384, TLSv1_3_MINOR, SSLv3_MAJOR),
  17803. #endif
  17804. #ifdef BUILD_TLS_CHACHA20_POLY1305_SHA256
  17805. SUITE_INFO("TLS13-CHACHA20-POLY1305-SHA256","TLS_CHACHA20_POLY1305_SHA256",TLS13_BYTE,TLS_CHACHA20_POLY1305_SHA256, TLSv1_3_MINOR, SSLv3_MAJOR),
  17806. #endif
  17807. #ifdef BUILD_TLS_AES_128_CCM_SHA256
  17808. SUITE_INFO("TLS13-AES128-CCM-SHA256","TLS_AES_128_CCM_SHA256",TLS13_BYTE,TLS_AES_128_CCM_SHA256, TLSv1_3_MINOR, SSLv3_MAJOR),
  17809. #endif
  17810. #ifdef BUILD_TLS_AES_128_CCM_8_SHA256
  17811. SUITE_INFO("TLS13-AES128-CCM-8-SHA256","TLS_AES_128_CCM_8_SHA256",TLS13_BYTE,TLS_AES_128_CCM_8_SHA256,TLSv1_3_MINOR, SSLv3_MAJOR),
  17812. SUITE_ALIAS("TLS13-AES128-CCM8-SHA256",TLS13_BYTE,TLS_AES_128_CCM_8_SHA256,TLSv1_3_MINOR, SSLv3_MAJOR)
  17813. #endif
  17814. #ifdef BUILD_TLS_SHA256_SHA256
  17815. SUITE_INFO("TLS13-SHA256-SHA256","TLS_SHA256_SHA256",ECC_BYTE,TLS_SHA256_SHA256,TLSv1_3_MINOR, SSLv3_MAJOR),
  17816. #endif
  17817. #ifdef BUILD_TLS_SHA384_SHA384
  17818. SUITE_INFO("TLS13-SHA384-SHA384","TLS_SHA384_SHA384",ECC_BYTE,TLS_SHA384_SHA384,TLSv1_3_MINOR, SSLv3_MAJOR),
  17819. #endif
  17820. #ifndef WOLFSSL_NO_TLS12
  17821. #ifdef BUILD_SSL_RSA_WITH_RC4_128_SHA
  17822. SUITE_INFO("RC4-SHA","SSL_RSA_WITH_RC4_128_SHA",CIPHER_BYTE,SSL_RSA_WITH_RC4_128_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17823. #endif
  17824. #ifdef BUILD_SSL_RSA_WITH_RC4_128_MD5
  17825. SUITE_INFO("RC4-MD5","SSL_RSA_WITH_RC4_128_MD5",CIPHER_BYTE,SSL_RSA_WITH_RC4_128_MD5,SSLv3_MINOR,SSLv3_MAJOR),
  17826. #endif
  17827. #ifdef BUILD_SSL_RSA_WITH_3DES_EDE_CBC_SHA
  17828. SUITE_INFO("DES-CBC3-SHA","SSL_RSA_WITH_3DES_EDE_CBC_SHA",CIPHER_BYTE,SSL_RSA_WITH_3DES_EDE_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17829. #endif
  17830. #ifdef BUILD_TLS_RSA_WITH_AES_128_CBC_SHA
  17831. SUITE_INFO("AES128-SHA","TLS_RSA_WITH_AES_128_CBC_SHA",CIPHER_BYTE,TLS_RSA_WITH_AES_128_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17832. #endif
  17833. #ifdef BUILD_TLS_RSA_WITH_AES_256_CBC_SHA
  17834. SUITE_INFO("AES256-SHA","TLS_RSA_WITH_AES_256_CBC_SHA",CIPHER_BYTE,TLS_RSA_WITH_AES_256_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17835. #endif
  17836. #ifdef BUILD_TLS_RSA_WITH_NULL_MD5
  17837. SUITE_INFO("NULL-MD5","TLS_RSA_WITH_NULL_MD5",CIPHER_BYTE,TLS_RSA_WITH_NULL_MD5,SSLv3_MINOR,SSLv3_MAJOR),
  17838. #endif
  17839. #ifdef BUILD_TLS_RSA_WITH_NULL_SHA
  17840. SUITE_INFO("NULL-SHA","TLS_RSA_WITH_NULL_SHA",CIPHER_BYTE,TLS_RSA_WITH_NULL_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17841. #endif
  17842. #ifdef BUILD_TLS_RSA_WITH_NULL_SHA256
  17843. SUITE_INFO("NULL-SHA256","TLS_RSA_WITH_NULL_SHA256",CIPHER_BYTE,TLS_RSA_WITH_NULL_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  17844. #endif
  17845. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_CBC_SHA
  17846. SUITE_INFO("DHE-RSA-AES128-SHA","TLS_DHE_RSA_WITH_AES_128_CBC_SHA",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_128_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17847. #endif
  17848. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_CBC_SHA
  17849. SUITE_INFO("DHE-RSA-AES256-SHA","TLS_DHE_RSA_WITH_AES_256_CBC_SHA",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_256_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  17850. #endif
  17851. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_GCM_SHA384
  17852. SUITE_INFO("DHE-PSK-AES256-GCM-SHA384","TLS_DHE_PSK_WITH_AES_256_GCM_SHA384",CIPHER_BYTE,TLS_DHE_PSK_WITH_AES_256_GCM_SHA384,TLSv1_2_MINOR,SSLv3_MAJOR),
  17853. #endif
  17854. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_GCM_SHA256
  17855. SUITE_INFO("DHE-PSK-AES128-GCM-SHA256","TLS_DHE_PSK_WITH_AES_128_GCM_SHA256",CIPHER_BYTE,TLS_DHE_PSK_WITH_AES_128_GCM_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  17856. #endif
  17857. #ifdef BUILD_TLS_PSK_WITH_AES_256_GCM_SHA384
  17858. SUITE_INFO("PSK-AES256-GCM-SHA384","TLS_PSK_WITH_AES_256_GCM_SHA384",CIPHER_BYTE,TLS_PSK_WITH_AES_256_GCM_SHA384,TLSv1_2_MINOR,SSLv3_MAJOR),
  17859. #endif
  17860. #ifdef BUILD_TLS_PSK_WITH_AES_128_GCM_SHA256
  17861. SUITE_INFO("PSK-AES128-GCM-SHA256","TLS_PSK_WITH_AES_128_GCM_SHA256",CIPHER_BYTE,TLS_PSK_WITH_AES_128_GCM_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  17862. #endif
  17863. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_CBC_SHA384
  17864. SUITE_INFO("DHE-PSK-AES256-CBC-SHA384","TLS_DHE_PSK_WITH_AES_256_CBC_SHA384",CIPHER_BYTE,TLS_DHE_PSK_WITH_AES_256_CBC_SHA384,TLSv1_MINOR,SSLv3_MAJOR),
  17865. #endif
  17866. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_CBC_SHA256
  17867. SUITE_INFO("DHE-PSK-AES128-CBC-SHA256","TLS_DHE_PSK_WITH_AES_128_CBC_SHA256",CIPHER_BYTE,TLS_DHE_PSK_WITH_AES_128_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  17868. #endif
  17869. #ifdef BUILD_TLS_PSK_WITH_AES_256_CBC_SHA384
  17870. SUITE_INFO("PSK-AES256-CBC-SHA384","TLS_PSK_WITH_AES_256_CBC_SHA384",CIPHER_BYTE,TLS_PSK_WITH_AES_256_CBC_SHA384,TLSv1_MINOR,SSLv3_MAJOR),
  17871. #endif
  17872. #ifdef BUILD_TLS_PSK_WITH_AES_128_CBC_SHA256
  17873. SUITE_INFO("PSK-AES128-CBC-SHA256","TLS_PSK_WITH_AES_128_CBC_SHA256",CIPHER_BYTE,TLS_PSK_WITH_AES_128_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  17874. #endif
  17875. #ifdef BUILD_TLS_PSK_WITH_AES_128_CBC_SHA
  17876. SUITE_INFO("PSK-AES128-CBC-SHA","TLS_PSK_WITH_AES_128_CBC_SHA",CIPHER_BYTE,TLS_PSK_WITH_AES_128_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17877. #endif
  17878. #ifdef BUILD_TLS_PSK_WITH_AES_256_CBC_SHA
  17879. SUITE_INFO("PSK-AES256-CBC-SHA","TLS_PSK_WITH_AES_256_CBC_SHA",CIPHER_BYTE,TLS_PSK_WITH_AES_256_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17880. #endif
  17881. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_128_CCM
  17882. SUITE_INFO("DHE-PSK-AES128-CCM","TLS_DHE_PSK_WITH_AES_128_CCM",ECC_BYTE,TLS_DHE_PSK_WITH_AES_128_CCM,TLSv1_MINOR,SSLv3_MAJOR),
  17883. #endif
  17884. #ifdef BUILD_TLS_DHE_PSK_WITH_AES_256_CCM
  17885. SUITE_INFO("DHE-PSK-AES256-CCM","TLS_DHE_PSK_WITH_AES_256_CCM",ECC_BYTE,TLS_DHE_PSK_WITH_AES_256_CCM,TLSv1_MINOR,SSLv3_MAJOR),
  17886. #endif
  17887. #ifdef BUILD_TLS_PSK_WITH_AES_128_CCM
  17888. SUITE_INFO("PSK-AES128-CCM","TLS_PSK_WITH_AES_128_CCM",ECC_BYTE,TLS_PSK_WITH_AES_128_CCM,TLSv1_MINOR,SSLv3_MAJOR),
  17889. #endif
  17890. #ifdef BUILD_TLS_PSK_WITH_AES_256_CCM
  17891. SUITE_INFO("PSK-AES256-CCM","TLS_PSK_WITH_AES_256_CCM",ECC_BYTE,TLS_PSK_WITH_AES_256_CCM,TLSv1_MINOR,SSLv3_MAJOR),
  17892. #endif
  17893. #ifdef BUILD_TLS_PSK_WITH_AES_128_CCM_8
  17894. SUITE_INFO("PSK-AES128-CCM-8","TLS_PSK_WITH_AES_128_CCM_8",ECC_BYTE,TLS_PSK_WITH_AES_128_CCM_8,TLSv1_MINOR,SSLv3_MAJOR),
  17895. SUITE_ALIAS("PSK-AES128-CCM8",ECC_BYTE,TLS_PSK_WITH_AES_128_CCM_8,TLSv1_MINOR,SSLv3_MAJOR)
  17896. #endif
  17897. #ifdef BUILD_TLS_PSK_WITH_AES_256_CCM_8
  17898. SUITE_INFO("PSK-AES256-CCM-8","TLS_PSK_WITH_AES_256_CCM_8",ECC_BYTE,TLS_PSK_WITH_AES_256_CCM_8,TLSv1_MINOR,SSLv3_MAJOR),
  17899. SUITE_ALIAS("PSK-AES256-CCM8",ECC_BYTE,TLS_PSK_WITH_AES_256_CCM_8,TLSv1_MINOR,SSLv3_MAJOR)
  17900. #endif
  17901. #ifdef BUILD_TLS_DHE_PSK_WITH_NULL_SHA384
  17902. SUITE_INFO("DHE-PSK-NULL-SHA384","TLS_DHE_PSK_WITH_NULL_SHA384",CIPHER_BYTE,TLS_DHE_PSK_WITH_NULL_SHA384,TLSv1_MINOR,SSLv3_MAJOR),
  17903. #endif
  17904. #ifdef BUILD_TLS_DHE_PSK_WITH_NULL_SHA256
  17905. SUITE_INFO("DHE-PSK-NULL-SHA256","TLS_DHE_PSK_WITH_NULL_SHA256",CIPHER_BYTE,TLS_DHE_PSK_WITH_NULL_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  17906. #endif
  17907. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA384
  17908. SUITE_INFO("PSK-NULL-SHA384","TLS_PSK_WITH_NULL_SHA384",CIPHER_BYTE,TLS_PSK_WITH_NULL_SHA384,TLSv1_MINOR,SSLv3_MAJOR),
  17909. #endif
  17910. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA256
  17911. SUITE_INFO("PSK-NULL-SHA256","TLS_PSK_WITH_NULL_SHA256",CIPHER_BYTE,TLS_PSK_WITH_NULL_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  17912. #endif
  17913. #ifdef BUILD_TLS_PSK_WITH_NULL_SHA
  17914. SUITE_INFO("PSK-NULL-SHA","TLS_PSK_WITH_NULL_SHA",CIPHER_BYTE,TLS_PSK_WITH_NULL_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17915. #endif
  17916. #ifdef BUILD_TLS_RSA_WITH_HC_128_MD5
  17917. SUITE_INFO("HC128-MD5","TLS_RSA_WITH_HC_128_MD5",CIPHER_BYTE,TLS_RSA_WITH_HC_128_MD5,TLSv1_MINOR,SSLv3_MAJOR),
  17918. #endif
  17919. #ifdef BUILD_TLS_RSA_WITH_HC_128_SHA
  17920. SUITE_INFO("HC128-SHA","TLS_RSA_WITH_HC_128_SHA",CIPHER_BYTE,TLS_RSA_WITH_HC_128_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17921. #endif
  17922. #ifdef BUILD_TLS_RSA_WITH_RABBIT_SHA
  17923. SUITE_INFO("RABBIT-SHA","TLS_RSA_WITH_RABBIT_SHA",CIPHER_BYTE,TLS_RSA_WITH_RABBIT_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17924. #endif
  17925. #ifdef BUILD_TLS_RSA_WITH_AES_128_CCM_8
  17926. SUITE_INFO("AES128-CCM-8","TLS_RSA_WITH_AES_128_CCM_8",ECC_BYTE,TLS_RSA_WITH_AES_128_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR),
  17927. SUITE_ALIAS("AES128-CCM8",ECC_BYTE,TLS_RSA_WITH_AES_128_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR)
  17928. #endif
  17929. #ifdef BUILD_TLS_RSA_WITH_AES_256_CCM_8
  17930. SUITE_INFO("AES256-CCM-8","TLS_RSA_WITH_AES_256_CCM_8",ECC_BYTE,TLS_RSA_WITH_AES_256_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR),
  17931. SUITE_ALIAS("AES256-CCM8",ECC_BYTE,TLS_RSA_WITH_AES_256_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR)
  17932. #endif
  17933. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CCM
  17934. SUITE_INFO("ECDHE-ECDSA-AES128-CCM","TLS_ECDHE_ECDSA_WITH_AES_128_CCM",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_CCM, TLSv1_2_MINOR, SSLv3_MAJOR),
  17935. #endif
  17936. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8
  17937. SUITE_INFO("ECDHE-ECDSA-AES128-CCM-8","TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR),
  17938. SUITE_ALIAS("ECDHE-ECDSA-AES128-CCM8",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR)
  17939. #endif
  17940. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8
  17941. SUITE_INFO("ECDHE-ECDSA-AES256-CCM-8","TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR),
  17942. SUITE_ALIAS("ECDHE-ECDSA-AES256-CCM8",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_256_CCM_8, TLSv1_2_MINOR, SSLv3_MAJOR)
  17943. #endif
  17944. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA
  17945. SUITE_INFO("ECDHE-RSA-AES128-SHA","TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17946. #endif
  17947. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA
  17948. SUITE_INFO("ECDHE-RSA-AES256-SHA","TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  17949. #endif
  17950. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA
  17951. SUITE_INFO("ECDHE-ECDSA-AES128-SHA","TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17952. #endif
  17953. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA
  17954. SUITE_INFO("ECDHE-ECDSA-AES256-SHA","TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17955. #endif
  17956. #ifdef BUILD_TLS_ECDHE_RSA_WITH_RC4_128_SHA
  17957. SUITE_INFO("ECDHE-RSA-RC4-SHA","TLS_ECDHE_RSA_WITH_RC4_128_SHA",ECC_BYTE,TLS_ECDHE_RSA_WITH_RC4_128_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17958. #endif
  17959. #ifdef BUILD_TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA
  17960. SUITE_INFO("ECDHE-RSA-DES-CBC3-SHA","TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA",ECC_BYTE,TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17961. #endif
  17962. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_RC4_128_SHA
  17963. SUITE_INFO("ECDHE-ECDSA-RC4-SHA","TLS_ECDHE_ECDSA_WITH_RC4_128_SHA",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_RC4_128_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17964. #endif
  17965. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA
  17966. SUITE_INFO("ECDHE-ECDSA-DES-CBC3-SHA","TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17967. #endif
  17968. #ifdef BUILD_TLS_RSA_WITH_AES_128_CBC_SHA256
  17969. SUITE_INFO("AES128-SHA256","TLS_RSA_WITH_AES_128_CBC_SHA256",CIPHER_BYTE,TLS_RSA_WITH_AES_128_CBC_SHA256, TLSv1_MINOR, SSLv3_MAJOR),
  17970. #endif
  17971. #ifdef BUILD_TLS_RSA_WITH_AES_256_CBC_SHA256
  17972. SUITE_INFO("AES256-SHA256","TLS_RSA_WITH_AES_256_CBC_SHA256",CIPHER_BYTE,TLS_RSA_WITH_AES_256_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  17973. #endif
  17974. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_CBC_SHA256
  17975. SUITE_INFO("DHE-RSA-AES128-SHA256","TLS_DHE_RSA_WITH_AES_128_CBC_SHA256",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_128_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  17976. #endif
  17977. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_CBC_SHA256
  17978. SUITE_INFO("DHE-RSA-AES256-SHA256","TLS_DHE_RSA_WITH_AES_256_CBC_SHA256",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_256_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  17979. #endif
  17980. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_CBC_SHA
  17981. SUITE_INFO("ECDH-RSA-AES128-SHA","TLS_ECDH_RSA_WITH_AES_128_CBC_SHA",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_128_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17982. #endif
  17983. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_CBC_SHA
  17984. SUITE_INFO("ECDH-RSA-AES256-SHA","TLS_ECDH_RSA_WITH_AES_256_CBC_SHA",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_256_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17985. #endif
  17986. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA
  17987. SUITE_INFO("ECDH-ECDSA-AES128-SHA","TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17988. #endif
  17989. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA
  17990. SUITE_INFO("ECDH-ECDSA-AES256-SHA","TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17991. #endif
  17992. #ifdef BUILD_TLS_ECDH_RSA_WITH_RC4_128_SHA
  17993. SUITE_INFO("ECDH-RSA-RC4-SHA","TLS_ECDH_RSA_WITH_RC4_128_SHA",ECC_BYTE,TLS_ECDH_RSA_WITH_RC4_128_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17994. #endif
  17995. #ifdef BUILD_TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA
  17996. SUITE_INFO("ECDH-RSA-DES-CBC3-SHA","TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA",ECC_BYTE,TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  17997. #endif
  17998. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_RC4_128_SHA
  17999. SUITE_INFO("ECDH-ECDSA-RC4-SHA","TLS_ECDH_ECDSA_WITH_RC4_128_SHA",ECC_BYTE,TLS_ECDH_ECDSA_WITH_RC4_128_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  18000. #endif
  18001. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA
  18002. SUITE_INFO("ECDH-ECDSA-DES-CBC3-SHA","TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA",ECC_BYTE,TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  18003. #endif
  18004. #ifdef BUILD_TLS_RSA_WITH_AES_128_GCM_SHA256
  18005. SUITE_INFO("AES128-GCM-SHA256","TLS_RSA_WITH_AES_128_GCM_SHA256",CIPHER_BYTE,TLS_RSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18006. #endif
  18007. #ifdef BUILD_TLS_RSA_WITH_AES_256_GCM_SHA384
  18008. SUITE_INFO("AES256-GCM-SHA384","TLS_RSA_WITH_AES_256_GCM_SHA384",CIPHER_BYTE,TLS_RSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18009. #endif
  18010. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_128_GCM_SHA256
  18011. SUITE_INFO("DHE-RSA-AES128-GCM-SHA256","TLS_DHE_RSA_WITH_AES_128_GCM_SHA256",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18012. #endif
  18013. #ifdef BUILD_TLS_DHE_RSA_WITH_AES_256_GCM_SHA384
  18014. SUITE_INFO("DHE-RSA-AES256-GCM-SHA384","TLS_DHE_RSA_WITH_AES_256_GCM_SHA384",CIPHER_BYTE,TLS_DHE_RSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18015. #endif
  18016. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256
  18017. SUITE_INFO("ECDHE-RSA-AES128-GCM-SHA256","TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18018. #endif
  18019. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384
  18020. SUITE_INFO("ECDHE-RSA-AES256-GCM-SHA384","TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18021. #endif
  18022. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256
  18023. SUITE_INFO("ECDHE-ECDSA-AES128-GCM-SHA256","TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18024. #endif
  18025. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384
  18026. SUITE_INFO("ECDHE-ECDSA-AES256-GCM-SHA384","TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18027. #endif
  18028. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256
  18029. SUITE_INFO("ECDH-RSA-AES128-GCM-SHA256","TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18030. #endif
  18031. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384
  18032. SUITE_INFO("ECDH-RSA-AES256-GCM-SHA384","TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18033. #endif
  18034. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256
  18035. SUITE_INFO("ECDH-ECDSA-AES128-GCM-SHA256","TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18036. #endif
  18037. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384
  18038. SUITE_INFO("ECDH-ECDSA-AES256-GCM-SHA384","TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18039. #endif
  18040. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_128_CBC_SHA
  18041. SUITE_INFO("CAMELLIA128-SHA","TLS_RSA_WITH_CAMELLIA_128_CBC_SHA",CIPHER_BYTE,TLS_RSA_WITH_CAMELLIA_128_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  18042. #endif
  18043. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA
  18044. SUITE_INFO("DHE-RSA-CAMELLIA128-SHA","TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA",CIPHER_BYTE,TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  18045. #endif
  18046. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_256_CBC_SHA
  18047. SUITE_INFO("CAMELLIA256-SHA","TLS_RSA_WITH_CAMELLIA_256_CBC_SHA",CIPHER_BYTE,TLS_RSA_WITH_CAMELLIA_256_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  18048. #endif
  18049. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA
  18050. SUITE_INFO("DHE-RSA-CAMELLIA256-SHA","TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA",CIPHER_BYTE,TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA,TLSv1_MINOR,SSLv3_MAJOR),
  18051. #endif
  18052. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256
  18053. SUITE_INFO("CAMELLIA128-SHA256","TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256",CIPHER_BYTE,TLS_RSA_WITH_CAMELLIA_128_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18054. #endif
  18055. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256
  18056. SUITE_INFO("DHE-RSA-CAMELLIA128-SHA256","TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256",CIPHER_BYTE,TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18057. #endif
  18058. #ifdef BUILD_TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256
  18059. SUITE_INFO("CAMELLIA256-SHA256","TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256",CIPHER_BYTE,TLS_RSA_WITH_CAMELLIA_256_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18060. #endif
  18061. #ifdef BUILD_TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256
  18062. SUITE_INFO("DHE-RSA-CAMELLIA256-SHA256","TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256",CIPHER_BYTE,TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18063. #endif
  18064. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256
  18065. SUITE_INFO("ECDHE-RSA-AES128-SHA256","TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18066. #endif
  18067. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256
  18068. SUITE_INFO("ECDHE-ECDSA-AES128-SHA256","TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18069. #endif
  18070. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256
  18071. SUITE_INFO("ECDH-RSA-AES128-SHA256","TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_128_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18072. #endif
  18073. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256
  18074. SUITE_INFO("ECDH-ECDSA-AES128-SHA256","TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18075. #endif
  18076. #ifdef BUILD_TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384
  18077. SUITE_INFO("ECDHE-RSA-AES256-SHA384","TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384",ECC_BYTE,TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18078. #endif
  18079. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384
  18080. SUITE_INFO("ECDHE-ECDSA-AES256-SHA384","TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18081. #endif
  18082. #ifdef BUILD_TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384
  18083. SUITE_INFO("ECDH-RSA-AES256-SHA384","TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384",ECC_BYTE,TLS_ECDH_RSA_WITH_AES_256_CBC_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18084. #endif
  18085. #ifdef BUILD_TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384
  18086. SUITE_INFO("ECDH-ECDSA-AES256-SHA384","TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384",ECC_BYTE,TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18087. #endif
  18088. #ifdef BUILD_TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256
  18089. SUITE_INFO("ECDHE-RSA-CHACHA20-POLY1305","TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18090. #endif
  18091. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256
  18092. SUITE_INFO("ECDHE-ECDSA-CHACHA20-POLY1305","TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18093. #endif
  18094. #ifdef BUILD_TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256
  18095. SUITE_INFO("DHE-RSA-CHACHA20-POLY1305","TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18096. #endif
  18097. #ifdef BUILD_TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  18098. SUITE_INFO("ECDHE-RSA-CHACHA20-POLY1305-OLD","TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256",CHACHA_BYTE,TLS_ECDHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18099. #endif
  18100. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  18101. SUITE_INFO("ECDHE-ECDSA-CHACHA20-POLY1305-OLD","TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256",CHACHA_BYTE,TLS_ECDHE_ECDSA_WITH_CHACHA20_OLD_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18102. #endif
  18103. #ifdef BUILD_TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256
  18104. SUITE_INFO("DHE-RSA-CHACHA20-POLY1305-OLD","TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256",CHACHA_BYTE,TLS_DHE_RSA_WITH_CHACHA20_OLD_POLY1305_SHA256, TLSv1_2_MINOR, SSLv3_MAJOR),
  18105. #endif
  18106. #ifdef BUILD_TLS_DH_anon_WITH_AES_128_CBC_SHA
  18107. SUITE_INFO("ADH-AES128-SHA","TLS_DH_anon_WITH_AES_128_CBC_SHA",CIPHER_BYTE,TLS_DH_anon_WITH_AES_128_CBC_SHA, TLSv1_2_MINOR, SSLv3_MAJOR),
  18108. #endif
  18109. #ifdef BUILD_TLS_DH_anon_WITH_AES_256_GCM_SHA384
  18110. SUITE_INFO("ADH-AES256-GCM-SHA384","TLS_DH_anon_WITH_AES_256_GCM_SHA384",CIPHER_BYTE,TLS_DH_anon_WITH_AES_256_GCM_SHA384, TLSv1_2_MINOR, SSLv3_MAJOR),
  18111. #endif
  18112. #ifdef HAVE_RENEGOTIATION_INDICATION
  18113. SUITE_INFO("RENEGOTIATION-INFO","TLS_EMPTY_RENEGOTIATION_INFO_SCSV",CIPHER_BYTE,TLS_EMPTY_RENEGOTIATION_INFO_SCSV,SSLv3_MINOR,SSLv3_MAJOR),
  18114. #endif
  18115. #ifdef BUILD_SSL_RSA_WITH_IDEA_CBC_SHA
  18116. SUITE_INFO("IDEA-CBC-SHA","SSL_RSA_WITH_IDEA_CBC_SHA",CIPHER_BYTE,SSL_RSA_WITH_IDEA_CBC_SHA,SSLv3_MINOR,SSLv3_MAJOR),
  18117. #endif
  18118. #ifdef BUILD_TLS_ECDHE_ECDSA_WITH_NULL_SHA
  18119. SUITE_INFO("ECDHE-ECDSA-NULL-SHA","TLS_ECDHE_ECDSA_WITH_NULL_SHA",ECC_BYTE,TLS_ECDHE_ECDSA_WITH_NULL_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  18120. #endif
  18121. #ifdef BUILD_TLS_ECDHE_PSK_WITH_NULL_SHA256
  18122. SUITE_INFO("ECDHE-PSK-NULL-SHA256","TLS_ECDHE_PSK_WITH_NULL_SHA256",ECC_BYTE,TLS_ECDHE_PSK_WITH_NULL_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18123. #endif
  18124. #ifdef BUILD_TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256
  18125. SUITE_INFO("ECDHE-PSK-AES128-CBC-SHA256","TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256",ECC_BYTE,TLS_ECDHE_PSK_WITH_AES_128_CBC_SHA256,TLSv1_MINOR,SSLv3_MAJOR),
  18126. #endif
  18127. #ifdef BUILD_TLS_PSK_WITH_CHACHA20_POLY1305_SHA256
  18128. SUITE_INFO("PSK-CHACHA20-POLY1305","TLS_PSK_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_PSK_WITH_CHACHA20_POLY1305_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  18129. #endif
  18130. #ifdef BUILD_TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256
  18131. SUITE_INFO("ECDHE-PSK-CHACHA20-POLY1305","TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_ECDHE_PSK_WITH_CHACHA20_POLY1305_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  18132. #endif
  18133. #ifdef BUILD_TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256
  18134. SUITE_INFO("DHE-PSK-CHACHA20-POLY1305","TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256",CHACHA_BYTE,TLS_DHE_PSK_WITH_CHACHA20_POLY1305_SHA256,TLSv1_2_MINOR,SSLv3_MAJOR),
  18135. #endif
  18136. #ifdef BUILD_TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA
  18137. SUITE_INFO("EDH-RSA-DES-CBC3-SHA","TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA",CIPHER_BYTE,TLS_DHE_RSA_WITH_3DES_EDE_CBC_SHA, TLSv1_MINOR, SSLv3_MAJOR),
  18138. #endif
  18139. #ifdef BUILD_WDM_WITH_NULL_SHA256
  18140. SUITE_INFO("WDM-NULL-SHA256","WDM_WITH_NULL_SHA256",CIPHER_BYTE,WDM_WITH_NULL_SHA256, TLSv1_3_MINOR, SSLv3_MAJOR)
  18141. #endif
  18142. #endif /* WOLFSSL_NO_TLS12 */
  18143. };
  18144. /* returns the cipher_names array */
  18145. const CipherSuiteInfo* GetCipherNames(void)
  18146. {
  18147. return cipher_names;
  18148. }
  18149. /* returns the number of elements in the cipher_names array */
  18150. int GetCipherNamesSize(void)
  18151. {
  18152. return (int)(sizeof(cipher_names) / sizeof(CipherSuiteInfo));
  18153. }
  18154. const char* GetCipherNameInternal(const byte cipherSuite0, const byte cipherSuite)
  18155. {
  18156. int i;
  18157. const char* nameInternal = "None";
  18158. for (i = 0; i < GetCipherNamesSize(); i++) {
  18159. if ((cipher_names[i].cipherSuite0 == cipherSuite0) &&
  18160. (cipher_names[i].cipherSuite == cipherSuite)
  18161. #ifndef NO_CIPHER_SUITE_ALIASES
  18162. && (! (cipher_names[i].flags & WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS))
  18163. #endif
  18164. ) {
  18165. nameInternal = cipher_names[i].name;
  18166. break;
  18167. }
  18168. }
  18169. return nameInternal;
  18170. }
  18171. #if defined(WOLFSSL_QT) || defined(OPENSSL_ALL)
  18172. /* Segment cipher name into n[n0,n1,n2,n4]
  18173. * @param cipher a pointer to WOLFSSL_CIPHER
  18174. * @param n return segment cipher name
  18175. * return cipher name if cipher is in the list,
  18176. * otherwise NULL
  18177. */
  18178. const char* GetCipherSegment(const WOLFSSL_CIPHER* cipher, char n[][MAX_SEGMENT_SZ])
  18179. {
  18180. int i,j,k;
  18181. int strLen;
  18182. unsigned long offset;
  18183. const char* name;
  18184. /* sanity check */
  18185. if (cipher == NULL || n == NULL)
  18186. return NULL;
  18187. offset = cipher->offset;
  18188. if (offset >= (unsigned long)GetCipherNamesSize())
  18189. return NULL;
  18190. name = cipher_names[offset].name;
  18191. if (name == NULL)
  18192. return NULL;
  18193. /* Segment cipher name into n[n0,n1,n2,n4]
  18194. * These are used later for comparisons to create:
  18195. * keaStr, authStr, encStr, macStr
  18196. *
  18197. * If cipher_name = ECDHE-ECDSA-AES256-SHA
  18198. * then n0 = "ECDHE", n1 = "ECDSA", n2 = "AES256", n3 = "SHA"
  18199. * and n = [n0,n1,n2,n3,0]
  18200. */
  18201. strLen = (int)XSTRLEN(name);
  18202. for (i = 0, j = 0, k = 0; i <= strLen; i++) {
  18203. if (k >= MAX_SEGMENTS || j >= MAX_SEGMENT_SZ)
  18204. break;
  18205. if (name[i] != '-' && name[i] != '\0') {
  18206. n[k][j] = name[i]; /* Fill kth segment string until '-' */
  18207. j++;
  18208. }
  18209. else {
  18210. n[k][j] = '\0';
  18211. j = 0;
  18212. k++;
  18213. }
  18214. }
  18215. return name;
  18216. }
  18217. const char* GetCipherKeaStr(char n[][MAX_SEGMENT_SZ]) {
  18218. const char* keaStr = NULL;
  18219. const char *n0,*n1,*n2,*n3,*n4;
  18220. n0 = n[0];
  18221. n1 = n[1];
  18222. n2 = n[2];
  18223. n3 = n[3];
  18224. n4 = n[4];
  18225. if (XSTRNCMP(n0,"ECDHE",5) == 0 && XSTRNCMP(n1,"PSK",3) == 0)
  18226. keaStr = "ECDHEPSK";
  18227. else if (XSTRNCMP(n0,"ECDH",4) == 0)
  18228. keaStr = "ECDH";
  18229. else if (XSTRNCMP(n0,"DHE",3) == 0 && XSTRNCMP(n1,"PSK",3) == 0)
  18230. keaStr = "DHEPSK";
  18231. else if (XSTRNCMP(n0,"DHE",3) == 0)
  18232. keaStr = "DH";
  18233. else if (XSTRNCMP(n0,"RSA",3) == 0 && XSTRNCMP(n1,"PSK",3) == 0)
  18234. keaStr = "RSAPSK";
  18235. else if (XSTRNCMP(n0,"SRP",3) == 0)
  18236. keaStr = "SRP";
  18237. else if (XSTRNCMP(n0,"PSK",3) == 0)
  18238. keaStr = "PSK";
  18239. else if (XSTRNCMP(n0,"EDH",3) == 0)
  18240. keaStr = "EDH";
  18241. else if ((XSTRNCMP(n1,"SHA",3) == 0) || (XSTRNCMP(n2,"SHA",3) == 0) ||
  18242. (XSTRNCMP(n3,"SHA",3) == 0) || (XSTRNCMP(n4,"SHA",3) == 0) ||
  18243. (XSTRNCMP(n2,"RSA",3) == 0) || (XSTRNCMP(n0,"AES128",6) == 0) ||
  18244. (XSTRNCMP(n0,"AES256",6) == 0) || (XSTRNCMP(n1,"MD5",3) == 0))
  18245. keaStr = "RSA";
  18246. else
  18247. keaStr = "unknown";
  18248. return keaStr;
  18249. }
  18250. const char* GetCipherAuthStr(char n[][MAX_SEGMENT_SZ]) {
  18251. const char* authStr = NULL;
  18252. const char *n0,*n1,*n2;
  18253. n0 = n[0];
  18254. n1 = n[1];
  18255. n2 = n[2];
  18256. if ((XSTRNCMP(n0,"AES128",6) == 0) || (XSTRNCMP(n0,"AES256",6) == 0) ||
  18257. ((XSTRNCMP(n0,"TLS13",5) == 0) && ((XSTRNCMP(n1,"AES128",6) == 0) ||
  18258. (XSTRNCMP(n1,"AES256",6) == 0) || (XSTRNCMP(n1,"CHACHA20",8) == 0))) ||
  18259. (XSTRNCMP(n0,"RSA",3) == 0) || (XSTRNCMP(n1,"RSA",3) == 0) ||
  18260. (XSTRNCMP(n1,"SHA",3) == 0) || (XSTRNCMP(n2,"SHA",3) == 0) ||
  18261. (XSTRNCMP(n1,"MD5",3) == 0))
  18262. authStr = "RSA";
  18263. else if (XSTRNCMP(n0,"PSK",3) == 0 || XSTRNCMP(n1,"PSK",3) == 0)
  18264. authStr = "PSK";
  18265. else if (XSTRNCMP(n0,"SRP",3) == 0 && XSTRNCMP(n1,"AES",3) == 0)
  18266. authStr = "SRP";
  18267. else if (XSTRNCMP(n1,"ECDSA",5) == 0)
  18268. authStr = "ECDSA";
  18269. else if (XSTRNCMP(n0,"ADH",3) == 0)
  18270. authStr = "None";
  18271. else
  18272. authStr = "unknown";
  18273. return authStr;
  18274. }
  18275. const char* GetCipherEncStr(char n[][MAX_SEGMENT_SZ]) {
  18276. const char* encStr = NULL;
  18277. const char *n0,*n1,*n2,*n3;
  18278. n0 = n[0];
  18279. n1 = n[1];
  18280. n2 = n[2];
  18281. n3 = n[3];
  18282. if ((XSTRNCMP(n0,"AES256",6) == 0 && XSTRNCMP(n1,"GCM",3) == 0) ||
  18283. (XSTRNCMP(n1,"AES256",6) == 0 && XSTRNCMP(n2,"GCM",3) == 0) ||
  18284. (XSTRNCMP(n2,"AES256",6) == 0 && XSTRNCMP(n3,"GCM",3) == 0))
  18285. encStr = "AESGCM(256)";
  18286. else if ((XSTRNCMP(n0,"AES128",6) == 0 && XSTRNCMP(n1,"GCM",3) == 0) ||
  18287. (XSTRNCMP(n1,"AES128",6) == 0 && XSTRNCMP(n2,"GCM",3) == 0) ||
  18288. (XSTRNCMP(n2,"AES128",6) == 0 && XSTRNCMP(n3,"GCM",3) == 0))
  18289. encStr = "AESGCM(128)";
  18290. else if ((XSTRNCMP(n0,"AES128",6) == 0 && XSTRNCMP(n1,"CCM",3) == 0) ||
  18291. (XSTRNCMP(n1,"AES128",6) == 0 && XSTRNCMP(n2,"CCM",3) == 0) ||
  18292. (XSTRNCMP(n2,"AES128",6) == 0 && XSTRNCMP(n3,"CCM",3) == 0))
  18293. encStr = "AESCCM(128)";
  18294. else if ((XSTRNCMP(n0,"AES128",6) == 0) ||
  18295. (XSTRNCMP(n1,"AES128",6) == 0) ||
  18296. (XSTRNCMP(n2,"AES128",6) == 0) ||
  18297. (XSTRNCMP(n1,"AES",3) == 0 && XSTRNCMP(n2,"128",3) == 0) ||
  18298. (XSTRNCMP(n2,"AES",3) == 0 && XSTRNCMP(n3,"128",3) == 0))
  18299. encStr = "AES(128)";
  18300. else if ((XSTRNCMP(n0,"AES256",6) == 0) ||
  18301. (XSTRNCMP(n1,"AES256",6) == 0) ||
  18302. (XSTRNCMP(n2,"AES256",6) == 0) ||
  18303. (XSTRNCMP(n1,"AES",3) == 0 && XSTRNCMP(n2,"256",3) == 0) ||
  18304. (XSTRNCMP(n2,"AES",3) == 0 && XSTRNCMP(n3,"256",3) == 0))
  18305. encStr = "AES(256)";
  18306. else if ((XSTRNCMP(n0,"CAMELLIA256",11) == 0) ||
  18307. (XSTRNCMP(n2,"CAMELLIA256",11) == 0))
  18308. encStr = "CAMELLIA(256)";
  18309. else if ((XSTRNCMP(n0,"CAMELLIA128",11) == 0) ||
  18310. (XSTRNCMP(n2,"CAMELLIA128",11) == 0))
  18311. encStr = "CAMELLIA(128)";
  18312. else if ((XSTRNCMP(n0,"RC4",3) == 0) || (XSTRNCMP(n1,"RC4",3) == 0) ||
  18313. (XSTRNCMP(n2,"RC4",3) == 0))
  18314. encStr = "RC4";
  18315. else if (((XSTRNCMP(n0,"DES",3) == 0) || (XSTRNCMP(n1,"DES",3) == 0) ||
  18316. (XSTRNCMP(n2,"DES",3) == 0)) &&
  18317. ((XSTRNCMP(n1,"CBC3",4) == 0) || (XSTRNCMP(n2,"CBC3",4) == 0) ||
  18318. (XSTRNCMP(n3,"CBC3",4) == 0)))
  18319. encStr = "3DES";
  18320. else if ((XSTRNCMP(n1,"CHACHA20",8) == 0 && XSTRNCMP(n2,"POLY1305",8) == 0) ||
  18321. (XSTRNCMP(n2,"CHACHA20",8) == 0 && XSTRNCMP(n3,"POLY1305",8) == 0))
  18322. encStr = "CHACHA20/POLY1305(256)";
  18323. else if ((XSTRNCMP(n0,"NULL",4) == 0) || (XSTRNCMP(n1,"NULL",4) == 0) ||
  18324. (XSTRNCMP(n2,"NULL",4) == 0) ||
  18325. ((XSTRNCMP(n0,"TLS13",5) == 0) && (XSTRNCMP(n3,"",0) == 0)))
  18326. encStr = "None";
  18327. else if ((XSTRNCMP(n0,"IDEA",4) == 0))
  18328. encStr = "IDEA";
  18329. else if ((XSTRNCMP(n0,"RABBIT",4) == 0))
  18330. encStr = "RABBIT";
  18331. else if ((XSTRNCMP(n0,"HC128",5) == 0))
  18332. encStr = "HC128";
  18333. else
  18334. encStr = "unknown";
  18335. return encStr;
  18336. }
  18337. /* Check if a cipher is AEAD
  18338. * @param n return segment cipher name
  18339. * return 1 if the cipher is AEAD, otherwise 0
  18340. */
  18341. int IsCipherAEAD(char n[][MAX_SEGMENT_SZ])
  18342. {
  18343. const char *n1,*n2,*n3;
  18344. n1 = n[1];
  18345. n2 = n[2];
  18346. n3 = n[3];
  18347. WOLFSSL_ENTER("IsCipherAEAD");
  18348. if (n == NULL) {
  18349. WOLFSSL_MSG("bad function argumet. n is NULL.");
  18350. return 0;
  18351. }
  18352. if ((XSTRNCMP(n2,"GCM",3) == 0) || (XSTRNCMP(n3,"GCM",3) == 0) ||
  18353. (XSTRNCMP(n1,"CCM",3) == 0) ||
  18354. (XSTRNCMP(n2,"CCM",3) == 0) || (XSTRNCMP(n3,"CCM",3) == 0) ||
  18355. (XSTRNCMP(n1,"CHACHA20",8) == 0 && XSTRNCMP(n2,"POLY1305",8) == 0) ||
  18356. (XSTRNCMP(n2,"CHACHA20",8) == 0 && XSTRNCMP(n3,"POLY1305",8) == 0))
  18357. return 1;
  18358. return 0;
  18359. }
  18360. /* Returns the MAC string of a cipher or "unknown" on failure */
  18361. const char* GetCipherMacStr(char n[][MAX_SEGMENT_SZ]) {
  18362. const char* macStr = NULL;
  18363. const char *n1,*n2,*n3,*n4;
  18364. n1 = n[1];
  18365. n2 = n[2];
  18366. n3 = n[3];
  18367. n4 = n[4];
  18368. if ((XSTRNCMP(n4,"SHA256",6) == 0) || (XSTRNCMP(n3,"SHA256",6) == 0) ||
  18369. (XSTRNCMP(n2,"SHA256",6) == 0) || (XSTRNCMP(n1,"SHA256",6) == 0))
  18370. macStr = "SHA256";
  18371. else if ((XSTRNCMP(n4,"SHA384",6) == 0) ||
  18372. (XSTRNCMP(n3,"SHA384",6) == 0) ||
  18373. (XSTRNCMP(n2,"SHA384",6) == 0) ||
  18374. (XSTRNCMP(n1,"SHA384",6) == 0))
  18375. macStr = "SHA384";
  18376. else if ((XSTRNCMP(n4,"SHA",3) == 0) || (XSTRNCMP(n3,"SHA",3) == 0) ||
  18377. (XSTRNCMP(n2,"SHA",3) == 0) || (XSTRNCMP(n1,"SHA",3) == 0) ||
  18378. (XSTRNCMP(n1,"MD5",3) == 0))
  18379. macStr = "SHA1";
  18380. else if ((XSTRNCMP(n3,"GCM",3) == 0) ||
  18381. (XSTRNCMP(n1,"CCM",3) == 0) ||
  18382. (XSTRNCMP(n2,"CCM",3) == 0) || (XSTRNCMP(n3,"CCM",3) == 0) ||
  18383. (XSTRNCMP(n1,"CHACHA20",8) == 0 && XSTRNCMP(n2,"POLY1305",8) == 0) ||
  18384. (XSTRNCMP(n2,"CHACHA20",8) == 0 && XSTRNCMP(n3,"POLY1305",8) == 0))
  18385. macStr = "AEAD";
  18386. else
  18387. macStr = "unknown";
  18388. return macStr;
  18389. }
  18390. /* Returns the number of bits based on the cipher enc string, or 0 on failure */
  18391. int SetCipherBits(const char* enc) {
  18392. int ret = WOLFSSL_FAILURE;
  18393. if ((XSTRNCMP(enc,"AESGCM(256)",11) == 0) ||
  18394. (XSTRNCMP(enc,"AES(256)",8) == 0) ||
  18395. (XSTRNCMP(enc,"CAMELLIA(256)",13) == 0) ||
  18396. (XSTRNCMP(enc,"CHACHA20/POLY1305(256)",22) == 0))
  18397. ret = 256;
  18398. else if
  18399. ((XSTRNCMP(enc,"3DES",4) == 0))
  18400. ret = 168;
  18401. else if
  18402. ((XSTRNCMP(enc,"AESGCM(128)",11) == 0) ||
  18403. (XSTRNCMP(enc,"AES(128)",8) == 0) ||
  18404. (XSTRNCMP(enc,"CAMELLIA(128)",13) == 0) ||
  18405. (XSTRNCMP(enc,"IDEA",4) == 0) ||
  18406. (XSTRNCMP(enc,"RC4",3) == 0))
  18407. ret = 128;
  18408. else if
  18409. ((XSTRNCMP(enc,"DES",3) == 0))
  18410. ret = 56;
  18411. return ret;
  18412. }
  18413. #endif /* WOLFSSL_QT || OPENSSL_ALL */
  18414. const char* GetCipherNameIana(const byte cipherSuite0, const byte cipherSuite)
  18415. {
  18416. #ifndef NO_ERROR_STRINGS
  18417. int i;
  18418. const char* nameIana = "NONE";
  18419. for (i = 0; i < GetCipherNamesSize(); i++) {
  18420. if ((cipher_names[i].cipherSuite0 == cipherSuite0) &&
  18421. (cipher_names[i].cipherSuite == cipherSuite)
  18422. #ifndef NO_CIPHER_SUITE_ALIASES
  18423. && (! (cipher_names[i].flags & WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS))
  18424. #endif
  18425. ) {
  18426. nameIana = cipher_names[i].name_iana;
  18427. break;
  18428. }
  18429. }
  18430. return nameIana;
  18431. #else
  18432. (void)cipherSuite0;
  18433. (void)cipherSuite;
  18434. return NULL;
  18435. #endif
  18436. }
  18437. const char* wolfSSL_get_cipher_name_internal(WOLFSSL* ssl)
  18438. {
  18439. if (ssl == NULL) {
  18440. return NULL;
  18441. }
  18442. return GetCipherNameInternal(ssl->options.cipherSuite0, ssl->options.cipherSuite);
  18443. }
  18444. const char* wolfSSL_get_cipher_name_iana(WOLFSSL* ssl)
  18445. {
  18446. if (ssl == NULL) {
  18447. return NULL;
  18448. }
  18449. return GetCipherNameIana(ssl->options.cipherSuite0, ssl->options.cipherSuite);
  18450. }
  18451. int GetCipherSuiteFromName(const char* name, byte* cipherSuite0,
  18452. byte* cipherSuite, int* flags)
  18453. {
  18454. int ret = BAD_FUNC_ARG;
  18455. int i;
  18456. unsigned long len;
  18457. const char* nameDelim;
  18458. /* Support trailing : */
  18459. nameDelim = XSTRSTR(name, ":");
  18460. if (nameDelim)
  18461. len = (unsigned long)(nameDelim - name);
  18462. else
  18463. len = (unsigned long)XSTRLEN(name);
  18464. for (i = 0; i < GetCipherNamesSize(); i++) {
  18465. if ((XSTRNCMP(name, cipher_names[i].name, len) == 0) &&
  18466. (cipher_names[i].name[len] == 0)) {
  18467. *cipherSuite0 = cipher_names[i].cipherSuite0;
  18468. *cipherSuite = cipher_names[i].cipherSuite;
  18469. *flags = cipher_names[i].flags;
  18470. ret = 0;
  18471. break;
  18472. }
  18473. }
  18474. return ret;
  18475. }
  18476. /**
  18477. Set the enabled cipher suites.
  18478. @param [out] suites Suites structure.
  18479. @param [in] list List of cipher suites, only supports full name from
  18480. cipher_names[] delimited by ':'.
  18481. @return true on success, else false.
  18482. */
  18483. int SetCipherList(WOLFSSL_CTX* ctx, Suites* suites, const char* list)
  18484. {
  18485. int ret = 0;
  18486. int idx = 0;
  18487. int haveRSAsig = 0;
  18488. int haveECDSAsig = 0;
  18489. int haveAnon = 0;
  18490. const int suiteSz = GetCipherNamesSize();
  18491. char* next = (char*)list;
  18492. if (suites == NULL || list == NULL) {
  18493. WOLFSSL_MSG("SetCipherList parameter error");
  18494. return 0;
  18495. }
  18496. if (next[0] == 0 || XSTRNCMP(next, "ALL", 3) == 0 ||
  18497. XSTRNCMP(next, "DEFAULT", 7) == 0 || XSTRNCMP(next, "HIGH", 4) == 0)
  18498. return 1; /* wolfSSL default */
  18499. do {
  18500. char* current = next;
  18501. char name[MAX_SUITE_NAME + 1];
  18502. int i;
  18503. word32 length;
  18504. next = XSTRSTR(next, ":");
  18505. length = MAX_SUITE_NAME;
  18506. if (next != NULL) {
  18507. word32 currLen = (word32)(next - current);
  18508. if (length > currLen) {
  18509. length = currLen;
  18510. }
  18511. }
  18512. XSTRNCPY(name, current, length);
  18513. name[(length == sizeof(name)) ? length - 1 : length] = 0;
  18514. for (i = 0; i < suiteSz; i++) {
  18515. if (XSTRNCMP(name, cipher_names[i].name, sizeof(name)) == 0
  18516. #ifndef NO_ERROR_STRINGS
  18517. || XSTRNCMP(name, cipher_names[i].name_iana, sizeof(name)) == 0
  18518. #endif
  18519. ) {
  18520. #ifdef WOLFSSL_DTLS
  18521. /* don't allow stream ciphers with DTLS */
  18522. if (ctx->method->version.major == DTLS_MAJOR) {
  18523. if (XSTRSTR(name, "RC4") ||
  18524. XSTRSTR(name, "HC128") ||
  18525. XSTRSTR(name, "RABBIT"))
  18526. {
  18527. WOLFSSL_MSG("Stream ciphers not supported with DTLS");
  18528. continue;
  18529. }
  18530. }
  18531. #endif /* WOLFSSL_DTLS */
  18532. if (idx + 1 >= WOLFSSL_MAX_SUITE_SZ) {
  18533. WOLFSSL_MSG("WOLFSSL_MAX_SUITE_SZ set too low");
  18534. return 0; /* suites buffer not large enough, error out */
  18535. }
  18536. suites->suites[idx++] = cipher_names[i].cipherSuite0;
  18537. suites->suites[idx++] = cipher_names[i].cipherSuite;
  18538. /* The suites are either ECDSA, RSA, PSK, or Anon. The RSA
  18539. * suites don't necessarily have RSA in the name. */
  18540. #ifdef WOLFSSL_TLS13
  18541. if (cipher_names[i].cipherSuite0 == TLS13_BYTE ||
  18542. (cipher_names[i].cipherSuite0 == ECC_BYTE &&
  18543. (cipher_names[i].cipherSuite == TLS_SHA256_SHA256 ||
  18544. cipher_names[i].cipherSuite == TLS_SHA384_SHA384))) {
  18545. #ifndef NO_RSA
  18546. haveRSAsig = 1;
  18547. #endif
  18548. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  18549. defined(HAVE_ED448)
  18550. haveECDSAsig = 1;
  18551. #endif
  18552. }
  18553. else
  18554. #endif
  18555. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  18556. defined(HAVE_ED448)
  18557. if ((haveECDSAsig == 0) && XSTRSTR(name, "ECDSA"))
  18558. haveECDSAsig = 1;
  18559. else
  18560. #endif
  18561. #ifdef HAVE_ANON
  18562. if (XSTRSTR(name, "ADH"))
  18563. haveAnon = 1;
  18564. else
  18565. #endif
  18566. if (haveRSAsig == 0
  18567. #ifndef NO_PSK
  18568. && (XSTRSTR(name, "PSK") == NULL)
  18569. #endif
  18570. ) {
  18571. haveRSAsig = 1;
  18572. }
  18573. ret = 1; /* found at least one */
  18574. break;
  18575. }
  18576. }
  18577. }
  18578. while (next++); /* ++ needed to skip ':' */
  18579. if (ret) {
  18580. int keySz = 0;
  18581. #ifndef NO_CERTS
  18582. keySz = ctx->privateKeySz;
  18583. #endif
  18584. suites->setSuites = 1;
  18585. suites->suiteSz = (word16)idx;
  18586. InitSuitesHashSigAlgo(suites, haveECDSAsig, haveRSAsig, haveAnon, 1,
  18587. keySz);
  18588. }
  18589. (void)ctx;
  18590. return ret;
  18591. }
  18592. #ifdef OPENSSL_EXTRA
  18593. struct mac_algs {
  18594. byte alg;
  18595. const char* name;
  18596. } mac_names[] = {
  18597. #ifndef NO_SHA256
  18598. { sha256_mac, "SHA256" },
  18599. #endif
  18600. #ifdef WOLFSSL_SHA384
  18601. { sha384_mac, "SHA384" },
  18602. #endif
  18603. #ifdef WOLFSSL_SHA512
  18604. { sha512_mac, "SHA512" },
  18605. #endif
  18606. #ifdef WOLFSSL_SHA224
  18607. { sha224_mac, "SHA224" },
  18608. #endif
  18609. #if !defined(NO_SHA) && (!defined(NO_OLD_TLS) || \
  18610. defined(WOLFSSL_ALLOW_TLS_SHA1))
  18611. { sha_mac, "SHA1" },
  18612. #endif
  18613. };
  18614. #define MAC_NAMES_SZ (int)(sizeof(mac_names)/sizeof(*mac_names))
  18615. /* Convert the hash algorithm string to a TLS MAC algorithm num. */
  18616. static byte GetMacAlgFromName(const char* name, int len)
  18617. {
  18618. byte alg = no_mac;
  18619. int i;
  18620. for (i = 0; i < MAC_NAMES_SZ; i++) {
  18621. if (((int)XSTRLEN(mac_names[i].name) == len) &&
  18622. (XMEMCMP(mac_names[i].name, name, len) == 0)) {
  18623. alg = mac_names[i].alg;
  18624. break;
  18625. }
  18626. }
  18627. return alg;
  18628. }
  18629. struct sig_algs {
  18630. byte alg;
  18631. const char* name;
  18632. } sig_names[] = {
  18633. #ifndef NO_RSA
  18634. { rsa_sa_algo, "RSA" },
  18635. #ifdef WC_RSA_PSS
  18636. { rsa_pss_sa_algo, "RSA-PSS" },
  18637. { rsa_pss_sa_algo, "PSS" },
  18638. #endif
  18639. #endif
  18640. #ifdef HAVE_ECC
  18641. { ecc_dsa_sa_algo, "ECDSA" },
  18642. #endif
  18643. #ifdef HAVE_ED25519
  18644. { ed25519_sa_algo, "ED25519" },
  18645. #endif
  18646. #ifdef HAVE_ED448
  18647. { ed448_sa_algo, "ED448" },
  18648. #endif
  18649. #ifndef NO_DSA
  18650. { dsa_sa_algo, "DSA" },
  18651. #endif
  18652. };
  18653. #define SIG_NAMES_SZ (int)(sizeof(sig_names)/sizeof(*sig_names))
  18654. /* Convert the signature algorithm string to a TLS signature algorithm num. */
  18655. static byte GetSigAlgFromName(const char* name, int len)
  18656. {
  18657. byte alg = anonymous_sa_algo;
  18658. int i;
  18659. for (i = 0; i < SIG_NAMES_SZ; i++) {
  18660. if (((int)XSTRLEN(sig_names[i].name) == len) &&
  18661. (XMEMCMP(sig_names[i].name, name, len) == 0)) {
  18662. alg = sig_names[i].alg;
  18663. break;
  18664. }
  18665. }
  18666. return alg;
  18667. }
  18668. /* Set the hash/signature algorithms that are supported for certificate signing.
  18669. *
  18670. * suites [in,out] Cipher suites and signature algorithms.
  18671. * list [in] String representing hash/signature algorithms to set.
  18672. * returns 0 on failure.
  18673. * 1 on success.
  18674. */
  18675. int SetSuitesHashSigAlgo(Suites* suites, const char* list)
  18676. {
  18677. int ret = 1;
  18678. word16 idx = 0;
  18679. const char* s = list;
  18680. byte sig_alg = 0;
  18681. byte mac_alg = no_mac;
  18682. /* Setting is destructive on error. */
  18683. suites->hashSigAlgoSz = 0;
  18684. do {
  18685. if (*list == '+') {
  18686. if (mac_alg != 0) {
  18687. ret = 0;
  18688. break;
  18689. }
  18690. sig_alg = GetSigAlgFromName(s, (int)(list - s));
  18691. if (sig_alg == 0) {
  18692. ret = 0;
  18693. break;
  18694. }
  18695. s = list + 1;
  18696. }
  18697. else if (*list == ':' || *list == '\0') {
  18698. if (sig_alg == 0) {
  18699. /* No signature algorithm set yet.
  18700. * Ed25519 and Ed448 have implied MAC algorithm.
  18701. */
  18702. sig_alg = GetSigAlgFromName(s, (int)(list - s));
  18703. if (sig_alg != ed25519_sa_algo && sig_alg != ed448_sa_algo) {
  18704. ret = 0;
  18705. break;
  18706. }
  18707. }
  18708. else {
  18709. mac_alg = GetMacAlgFromName(s, (int)(list - s));
  18710. if (mac_alg == 0) {
  18711. ret = 0;
  18712. break;
  18713. }
  18714. }
  18715. AddSuiteHashSigAlgo(suites, mac_alg, sig_alg, 0, &idx);
  18716. sig_alg = 0;
  18717. mac_alg = no_mac;
  18718. s = list + 1;
  18719. }
  18720. list++;
  18721. }
  18722. while (*(list-1) != '\0');
  18723. if (s != list && (sig_alg != 0 || mac_alg != 0)) {
  18724. ret = 0;
  18725. }
  18726. else {
  18727. suites->hashSigAlgoSz = idx;
  18728. }
  18729. return ret;
  18730. }
  18731. #endif /* OPENSSL_EXTRA */
  18732. #if !defined(NO_WOLFSSL_SERVER) || !defined(NO_CERTS)
  18733. static int MatchSigAlgo(WOLFSSL* ssl, int sigAlgo)
  18734. {
  18735. #ifdef HAVE_ED25519
  18736. if (ssl->pkCurveOID == ECC_ED25519_OID) {
  18737. /* Certificate has Ed25519 key, only match with Ed25519 sig alg */
  18738. return sigAlgo == ed25519_sa_algo;
  18739. }
  18740. #endif
  18741. #ifdef HAVE_ED448
  18742. if (ssl->pkCurveOID == ECC_ED448_OID) {
  18743. /* Certificate has Ed448 key, only match with Ed448 sig alg */
  18744. return sigAlgo == ed448_sa_algo;
  18745. }
  18746. #endif
  18747. #ifdef WC_RSA_PSS
  18748. /* RSA certificate and PSS sig alg. */
  18749. if (ssl->suites->sigAlgo == rsa_sa_algo) {
  18750. #if defined(WOLFSSL_TLS13)
  18751. /* TLS 1.3 only supports RSA-PSS. */
  18752. if (IsAtLeastTLSv1_3(ssl->version))
  18753. return sigAlgo == rsa_pss_sa_algo;
  18754. #endif
  18755. /* TLS 1.2 and below - RSA-PSS allowed. */
  18756. if (sigAlgo == rsa_pss_sa_algo)
  18757. return 1;
  18758. }
  18759. #endif
  18760. /* Signature algorithm matches certificate. */
  18761. return sigAlgo == ssl->suites->sigAlgo;
  18762. }
  18763. #if defined(HAVE_ECC) && defined(WOLFSSL_TLS13) || \
  18764. defined(USE_ECDSA_KEYSZ_HASH_ALGO)
  18765. static int CmpEccStrength(int hashAlgo, int curveSz)
  18766. {
  18767. int dgstSz = GetMacDigestSize((byte)hashAlgo);
  18768. if (dgstSz <= 0)
  18769. return -1;
  18770. return dgstSz - (curveSz & (~0x3));
  18771. }
  18772. #endif
  18773. static byte MinHashAlgo(WOLFSSL* ssl)
  18774. {
  18775. #ifdef WOLFSSL_TLS13
  18776. if (IsAtLeastTLSv1_3(ssl->version)) {
  18777. return sha256_mac;
  18778. }
  18779. #endif
  18780. #if !defined(WOLFSSL_NO_TLS12) && !defined(WOLFSSL_ALLOW_TLS_SHA1)
  18781. if (IsAtLeastTLSv1_2(ssl)) {
  18782. return sha256_mac;
  18783. }
  18784. #endif /* WOLFSSL_NO_TLS12 */
  18785. (void)ssl;
  18786. return sha_mac;
  18787. }
  18788. int PickHashSigAlgo(WOLFSSL* ssl, const byte* hashSigAlgo, word32 hashSigAlgoSz)
  18789. {
  18790. word32 i;
  18791. int ret = MATCH_SUITE_ERROR;
  18792. byte minHash;
  18793. /* set defaults */
  18794. if (IsAtLeastTLSv1_3(ssl->version)) {
  18795. #ifndef NO_CERTS
  18796. /* TLS 1.3 cipher suites don't have public key algorithms in them.
  18797. * Using the one in the certificate - if any.
  18798. */
  18799. ssl->suites->sigAlgo = ssl->buffers.keyType;
  18800. #endif
  18801. }
  18802. else
  18803. ssl->suites->sigAlgo = ssl->specs.sig_algo;
  18804. if (ssl->suites->sigAlgo == 0) {
  18805. /* PSK ciphersuite - get digest to use from cipher suite */
  18806. ssl->suites->hashAlgo = ssl->specs.mac_algorithm;
  18807. return 0;
  18808. }
  18809. ssl->suites->hashAlgo = minHash = MinHashAlgo(ssl);
  18810. /* No list means go with the defaults. */
  18811. if (hashSigAlgoSz == 0)
  18812. return 0;
  18813. /* i+1 since two bytes used to describe hash and signature algorithm */
  18814. for (i = 0; (i+1) < hashSigAlgoSz; i += HELLO_EXT_SIGALGO_SZ) {
  18815. byte hashAlgo = 0, sigAlgo = 0;
  18816. DecodeSigAlg(&hashSigAlgo[i], &hashAlgo, &sigAlgo);
  18817. /* Keep looking if hash algorithm not strong enough. */
  18818. if (hashAlgo < minHash)
  18819. continue;
  18820. /* Keep looking if signature algorithm isn't supported by cert. */
  18821. if (!MatchSigAlgo(ssl, sigAlgo))
  18822. continue;
  18823. #ifdef HAVE_ED25519
  18824. if (ssl->pkCurveOID == ECC_ED25519_OID) {
  18825. /* Matched Ed25519 - set chosen and finished. */
  18826. ssl->suites->sigAlgo = sigAlgo;
  18827. ssl->suites->hashAlgo = hashAlgo;
  18828. ret = 0;
  18829. break;
  18830. }
  18831. #endif
  18832. #ifdef HAVE_ED448
  18833. if (ssl->pkCurveOID == ECC_ED448_OID) {
  18834. /* Matched Ed448 - set chosen and finished. */
  18835. ssl->suites->sigAlgo = sigAlgo;
  18836. ssl->suites->hashAlgo = hashAlgo;
  18837. ret = 0;
  18838. break;
  18839. }
  18840. #endif
  18841. #if defined(WOLFSSL_ECDSA_MATCH_HASH) && defined(USE_ECDSA_KEYSZ_HASH_ALGO)
  18842. #error "WOLFSSL_ECDSA_MATCH_HASH and USE_ECDSA_KEYSZ_HASH_ALGO cannot "
  18843. "be used together"
  18844. #endif
  18845. #if defined(HAVE_ECC) && (defined(WOLFSSL_TLS13) || \
  18846. defined(WOLFSSL_ECDSA_MATCH_HASH))
  18847. if (sigAlgo == ecc_dsa_sa_algo
  18848. #ifndef WOLFSSL_ECDSA_MATCH_HASH
  18849. && IsAtLeastTLSv1_3(ssl->version)
  18850. #endif
  18851. ) {
  18852. /* Must be exact match. */
  18853. if (CmpEccStrength(hashAlgo, ssl->buffers.keySz) != 0)
  18854. continue;
  18855. /* Matched ECDSA exaclty - set chosen and finished. */
  18856. ssl->suites->hashAlgo = hashAlgo;
  18857. ssl->suites->sigAlgo = sigAlgo;
  18858. ret = 0;
  18859. break;
  18860. }
  18861. #endif
  18862. /* For ECDSA the `USE_ECDSA_KEYSZ_HASH_ALGO` build option will choose a hash
  18863. * algorithm that matches the ephemeral ECDHE key size or the next highest
  18864. * available. This workaround resolves issue with some peer's that do not
  18865. * properly support scenarios such as a P-256 key hashed with SHA512.
  18866. */
  18867. #if defined(HAVE_ECC) && defined(USE_ECDSA_KEYSZ_HASH_ALGO)
  18868. if (sigAlgo == ecc_dsa_sa_algo) {
  18869. int cmp = CmpEccStrength(hashAlgo, ssl->eccTempKeySz);
  18870. /* Keep looking if digest not strong enough. */
  18871. if (cmp < 0)
  18872. continue;
  18873. /* Looking for exact match or next highest. */
  18874. if (ret != 0 || hashAlgo <= ssl->suites->hashAlgo) {
  18875. ssl->suites->hashAlgo = hashAlgo;
  18876. ssl->suites->sigAlgo = sigAlgo;
  18877. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  18878. ssl->namedGroup = 0;
  18879. #endif
  18880. ret = 0;
  18881. }
  18882. /* Continue looking if not the same strength. */
  18883. if (cmp > 0)
  18884. continue;
  18885. /* Exact match - finished. */
  18886. break;
  18887. }
  18888. #endif
  18889. switch (hashAlgo) {
  18890. #ifndef NO_SHA
  18891. case sha_mac:
  18892. #endif
  18893. #ifdef WOLFSSL_SHA224
  18894. case sha224_mac:
  18895. #endif
  18896. #ifndef NO_SHA256
  18897. case sha256_mac:
  18898. #endif
  18899. #ifdef WOLFSSL_SHA384
  18900. case sha384_mac:
  18901. #endif
  18902. #ifdef WOLFSSL_SHA512
  18903. case sha512_mac:
  18904. #endif
  18905. #ifdef WOLFSSL_STRONGEST_HASH_SIG
  18906. /* Is hash algorithm weaker than chosen/min? */
  18907. if (hashAlgo < ssl->suites->hashAlgo)
  18908. break;
  18909. #else
  18910. /* Is hash algorithm stonger than last chosen? */
  18911. if (ret == 0 && hashAlgo > ssl->suites->hashAlgo)
  18912. break;
  18913. #endif
  18914. /* The chosen one - but keep looking. */
  18915. ssl->suites->hashAlgo = hashAlgo;
  18916. ssl->suites->sigAlgo = sigAlgo;
  18917. ret = 0;
  18918. break;
  18919. default:
  18920. /* Support for hash algorithm not compiled in. */
  18921. break;
  18922. }
  18923. }
  18924. return ret;
  18925. }
  18926. #endif /* !defined(NO_WOLFSSL_SERVER) || !defined(NO_CERTS) */
  18927. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  18928. /* Initialize HandShakeInfo */
  18929. void InitHandShakeInfo(HandShakeInfo* info, WOLFSSL* ssl)
  18930. {
  18931. int i;
  18932. info->ssl = ssl;
  18933. info->cipherName[0] = 0;
  18934. for (i = 0; i < MAX_PACKETS_HANDSHAKE; i++)
  18935. info->packetNames[i][0] = 0;
  18936. info->numberPackets = 0;
  18937. info->negotiationError = 0;
  18938. }
  18939. /* Set Final HandShakeInfo parameters */
  18940. void FinishHandShakeInfo(HandShakeInfo* info)
  18941. {
  18942. int i;
  18943. int sz = GetCipherNamesSize();
  18944. for (i = 0; i < sz; i++) {
  18945. #ifndef NO_CIPHER_SUITE_ALIASES
  18946. if (cipher_names[i].flags & WOLFSSL_CIPHER_SUITE_FLAG_NAMEALIAS)
  18947. continue;
  18948. #endif
  18949. if (info->ssl->options.cipherSuite ==
  18950. (byte)cipher_names[i].cipherSuite) {
  18951. if (info->ssl->options.cipherSuite0 == ECC_BYTE)
  18952. continue; /* ECC suites at end */
  18953. XSTRNCPY(info->cipherName, cipher_names[i].name, MAX_CIPHERNAME_SZ);
  18954. info->cipherName[MAX_CIPHERNAME_SZ] = '\0';
  18955. break;
  18956. }
  18957. }
  18958. /* error max and min are negative numbers */
  18959. if (info->ssl->error <= MIN_PARAM_ERR && info->ssl->error >= MAX_PARAM_ERR)
  18960. info->negotiationError = info->ssl->error;
  18961. }
  18962. /* Add name to info packet names, increase packet name count */
  18963. void AddPacketName(WOLFSSL* ssl, const char* name)
  18964. {
  18965. #ifdef WOLFSSL_CALLBACKS
  18966. HandShakeInfo* info = &ssl->handShakeInfo;
  18967. if (info->numberPackets < MAX_PACKETS_HANDSHAKE) {
  18968. char* packetName = info->packetNames[info->numberPackets];
  18969. XSTRNCPY(packetName, name, MAX_PACKETNAME_SZ);
  18970. packetName[MAX_PACKETNAME_SZ] = '\0';
  18971. info->numberPackets++;
  18972. }
  18973. #endif
  18974. (void)ssl;
  18975. (void)name;
  18976. }
  18977. #ifdef WOLFSSL_CALLBACKS
  18978. /* Initialize TimeoutInfo */
  18979. void InitTimeoutInfo(TimeoutInfo* info)
  18980. {
  18981. int i;
  18982. info->timeoutName[0] = 0;
  18983. info->flags = 0;
  18984. for (i = 0; i < MAX_PACKETS_HANDSHAKE; i++) {
  18985. info->packets[i].packetName[0] = 0;
  18986. info->packets[i].timestamp.tv_sec = 0;
  18987. info->packets[i].timestamp.tv_usec = 0;
  18988. info->packets[i].bufferValue = 0;
  18989. info->packets[i].valueSz = 0;
  18990. }
  18991. info->numberPackets = 0;
  18992. info->timeoutValue.tv_sec = 0;
  18993. info->timeoutValue.tv_usec = 0;
  18994. }
  18995. /* Free TimeoutInfo */
  18996. void FreeTimeoutInfo(TimeoutInfo* info, void* heap)
  18997. {
  18998. int i;
  18999. (void)heap;
  19000. for (i = 0; i < MAX_PACKETS_HANDSHAKE; i++)
  19001. if (info->packets[i].bufferValue) {
  19002. XFREE(info->packets[i].bufferValue, heap, DYNAMIC_TYPE_INFO);
  19003. info->packets[i].bufferValue = 0;
  19004. }
  19005. }
  19006. /* Add packet name to previously added packet info */
  19007. void AddLateName(const char* name, TimeoutInfo* info)
  19008. {
  19009. /* make sure we have a valid previous one */
  19010. if (info->numberPackets > 0 && info->numberPackets <
  19011. MAX_PACKETS_HANDSHAKE) {
  19012. char* packetName = info->packets[info->numberPackets-1].packetName;
  19013. XSTRNCPY(packetName, name, MAX_PACKETNAME_SZ);
  19014. packetName[MAX_PACKETNAME_SZ] = '\0';
  19015. }
  19016. }
  19017. /* Add record header to previously added packet info */
  19018. void AddLateRecordHeader(const RecordLayerHeader* rl, TimeoutInfo* info)
  19019. {
  19020. /* make sure we have a valid previous one */
  19021. if (info->numberPackets > 0 && info->numberPackets <
  19022. MAX_PACKETS_HANDSHAKE) {
  19023. if (info->packets[info->numberPackets - 1].bufferValue)
  19024. XMEMCPY(info->packets[info->numberPackets - 1].bufferValue, rl,
  19025. RECORD_HEADER_SZ);
  19026. else
  19027. XMEMCPY(info->packets[info->numberPackets - 1].value, rl,
  19028. RECORD_HEADER_SZ);
  19029. }
  19030. }
  19031. #endif /* WOLFSSL_CALLBACKS */
  19032. /* Add PacketInfo to TimeoutInfo
  19033. *
  19034. * ssl WOLFSSL structure sending or receiving packet
  19035. * name name of packet being sent
  19036. * type type of packet being sent
  19037. * data data bing sent with packet
  19038. * sz size of data buffer
  19039. * written 1 if this packet is being written to wire, 0 if being read
  19040. * heap custom heap to use for mallocs/frees
  19041. */
  19042. void AddPacketInfo(WOLFSSL* ssl, const char* name, int type,
  19043. const byte* data, int sz, int written, void* heap)
  19044. {
  19045. #ifdef WOLFSSL_CALLBACKS
  19046. TimeoutInfo* info = &ssl->timeoutInfo;
  19047. if (info->numberPackets < (MAX_PACKETS_HANDSHAKE - 1)) {
  19048. WOLFSSL_TIMEVAL currTime;
  19049. /* may add name after */
  19050. if (name) {
  19051. char* packetName = info->packets[info->numberPackets].packetName;
  19052. XSTRNCPY(packetName, name, MAX_PACKETNAME_SZ);
  19053. packetName[MAX_PACKETNAME_SZ] = '\0';
  19054. }
  19055. /* add data, put in buffer if bigger than static buffer */
  19056. info->packets[info->numberPackets].valueSz = sz;
  19057. if (sz < MAX_VALUE_SZ)
  19058. XMEMCPY(info->packets[info->numberPackets].value, data, sz);
  19059. else {
  19060. info->packets[info->numberPackets].bufferValue =
  19061. (byte*)XMALLOC(sz, heap, DYNAMIC_TYPE_INFO);
  19062. if (!info->packets[info->numberPackets].bufferValue)
  19063. /* let next alloc catch, just don't fill, not fatal here */
  19064. info->packets[info->numberPackets].valueSz = 0;
  19065. else
  19066. XMEMCPY(info->packets[info->numberPackets].bufferValue,
  19067. data, sz);
  19068. }
  19069. gettimeofday(&currTime, 0);
  19070. info->packets[info->numberPackets].timestamp.tv_sec =
  19071. currTime.tv_sec;
  19072. info->packets[info->numberPackets].timestamp.tv_usec =
  19073. currTime.tv_usec;
  19074. info->numberPackets++;
  19075. }
  19076. #endif /* WOLFSSL_CALLBACKS */
  19077. #ifdef OPENSSL_EXTRA
  19078. if (ssl->protoMsgCb != NULL && sz > RECORD_HEADER_SZ) {
  19079. /* version from hex to dec 16 is 16^1, 256 from 16^2 and
  19080. 4096 from 16^3 */
  19081. int version = (ssl->version.minor & 0x0F) +
  19082. ((ssl->version.minor & 0xF0) << 4) +
  19083. ((ssl->version.major & 0x0F) << 8) +
  19084. ((ssl->version.major & 0xF0) << 12);
  19085. ssl->protoMsgCb(written, version, type,
  19086. (const void *)(data + RECORD_HEADER_SZ),
  19087. (size_t)(sz - RECORD_HEADER_SZ),
  19088. ssl, ssl->protoMsgCtx);
  19089. }
  19090. #endif /* OPENSSL_EXTRA */
  19091. (void)written;
  19092. (void)name;
  19093. (void)heap;
  19094. (void)type;
  19095. (void)ssl;
  19096. }
  19097. #endif /* WOLFSSL_CALLBACKS */
  19098. #if !defined(NO_CERTS)
  19099. #ifdef WOLF_CRYPTO_CB
  19100. /* Create a private key for a device.
  19101. *
  19102. * pkey Key object.
  19103. * data Data to identify key.
  19104. * length Length of data.
  19105. * hsType Type of the key to create.
  19106. * heap Custom heap to use for mallocs/frees
  19107. * devId Id for device.
  19108. * return 0 on success.
  19109. * return NOT_COMPILED_IN if algorithm type not supported.
  19110. * return MEMORY_E on memory allocation failure.
  19111. * return other internal error
  19112. */
  19113. int CreateDevPrivateKey(void** pkey, byte* data, word32 length, int hsType,
  19114. int label, int id, void* heap, int devId)
  19115. {
  19116. int ret = NOT_COMPILED_IN;
  19117. if (hsType == DYNAMIC_TYPE_RSA) {
  19118. #ifndef NO_RSA
  19119. RsaKey* rsaKey;
  19120. rsaKey = (RsaKey*)XMALLOC(sizeof(RsaKey), heap, DYNAMIC_TYPE_RSA);
  19121. if (rsaKey == NULL) {
  19122. return MEMORY_E;
  19123. }
  19124. if (label) {
  19125. ret = wc_InitRsaKey_Label(rsaKey, (char*)data, heap, devId);
  19126. }
  19127. else if (id) {
  19128. ret = wc_InitRsaKey_Id(rsaKey, data, length, heap, devId);
  19129. }
  19130. if (ret == 0) {
  19131. *pkey = (void*)rsaKey;
  19132. }
  19133. else {
  19134. XFREE(rsaKey, heap, DYNAMIC_TYPE_RSA);
  19135. }
  19136. #endif
  19137. }
  19138. else if (hsType == DYNAMIC_TYPE_ECC) {
  19139. #ifdef HAVE_ECC
  19140. ecc_key* ecKey;
  19141. ecKey = (ecc_key*)XMALLOC(sizeof(ecc_key), heap, DYNAMIC_TYPE_ECC);
  19142. if (ecKey == NULL) {
  19143. return MEMORY_E;
  19144. }
  19145. if (label) {
  19146. ret = wc_ecc_init_label(ecKey, (char*)data, heap, devId);
  19147. }
  19148. else if (id) {
  19149. ret = wc_ecc_init_id(ecKey, data, length, heap, devId);
  19150. }
  19151. if (ret == 0) {
  19152. *pkey = (void*)ecKey;
  19153. }
  19154. else {
  19155. XFREE(ecKey, heap, DYNAMIC_TYPE_ECC);
  19156. }
  19157. #endif
  19158. }
  19159. return ret;
  19160. }
  19161. #endif
  19162. /* Decode the private key - RSA/ECC/Ed25519/Ed448 - and creates a key object.
  19163. * The signature type is set as well.
  19164. * The maximum length of a signature is returned.
  19165. *
  19166. * ssl The SSL/TLS object.
  19167. * length The length of a signature.
  19168. * returns 0 on success, otherwise failure.
  19169. */
  19170. int DecodePrivateKey(WOLFSSL *ssl, word16* length)
  19171. {
  19172. int ret = BAD_FUNC_ARG;
  19173. int keySz;
  19174. word32 idx;
  19175. #ifdef HAVE_PK_CALLBACKS
  19176. /* allow no private key if using PK callbacks and CB is set */
  19177. if (wolfSSL_IsPrivatePkSet(ssl)) {
  19178. *length = GetPrivateKeySigSize(ssl);
  19179. return 0;
  19180. }
  19181. else
  19182. #endif
  19183. /* make sure private key exists */
  19184. if (ssl->buffers.key == NULL || ssl->buffers.key->buffer == NULL) {
  19185. WOLFSSL_MSG("Private key missing!");
  19186. ERROR_OUT(NO_PRIVATE_KEY, exit_dpk);
  19187. }
  19188. #ifdef HAVE_PKCS11
  19189. if (ssl->buffers.keyDevId != INVALID_DEVID && (ssl->buffers.keyId ||
  19190. ssl->buffers.keyLabel)) {
  19191. if (ssl->buffers.keyType == rsa_sa_algo)
  19192. ssl->hsType = DYNAMIC_TYPE_RSA;
  19193. else if (ssl->buffers.keyType == ecc_dsa_sa_algo)
  19194. ssl->hsType = DYNAMIC_TYPE_ECC;
  19195. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  19196. if (ret != 0) {
  19197. goto exit_dpk;
  19198. }
  19199. if (ssl->buffers.keyType == rsa_sa_algo) {
  19200. #ifndef NO_RSA
  19201. if (ssl->buffers.keyLabel) {
  19202. ret = wc_InitRsaKey_Label((RsaKey*)ssl->hsKey,
  19203. (char*)ssl->buffers.key->buffer,
  19204. ssl->heap, ssl->buffers.keyDevId);
  19205. }
  19206. else if (ssl->buffers.keyId) {
  19207. ret = wc_InitRsaKey_Id((RsaKey*)ssl->hsKey,
  19208. ssl->buffers.key->buffer,
  19209. ssl->buffers.key->length, ssl->heap,
  19210. ssl->buffers.keyDevId);
  19211. }
  19212. if (ret == 0) {
  19213. if (ssl->buffers.keySz < ssl->options.minRsaKeySz) {
  19214. WOLFSSL_MSG("RSA key size too small");
  19215. ERROR_OUT(RSA_KEY_SIZE_E, exit_dpk);
  19216. }
  19217. /* Return the maximum signature length. */
  19218. *length = (word16)ssl->buffers.keySz;
  19219. }
  19220. #else
  19221. ret = NOT_COMPILED_IN;
  19222. #endif
  19223. }
  19224. else if (ssl->buffers.keyType == ecc_dsa_sa_algo) {
  19225. #ifdef HAVE_ECC
  19226. if (ssl->buffers.keyLabel) {
  19227. ret = wc_ecc_init_label((ecc_key*)ssl->hsKey,
  19228. (char*)ssl->buffers.key->buffer,
  19229. ssl->heap, ssl->buffers.keyDevId);
  19230. }
  19231. else if (ssl->buffers.keyId) {
  19232. ret = wc_ecc_init_id((ecc_key*)ssl->hsKey,
  19233. ssl->buffers.key->buffer,
  19234. ssl->buffers.key->length, ssl->heap,
  19235. ssl->buffers.keyDevId);
  19236. }
  19237. if (ret == 0) {
  19238. if (ssl->buffers.keySz < ssl->options.minEccKeySz) {
  19239. WOLFSSL_MSG("ECC key size too small");
  19240. ERROR_OUT(ECC_KEY_SIZE_E, exit_dpk);
  19241. }
  19242. /* Return the maximum signature length. */
  19243. *length = (word16)wc_ecc_sig_size_calc(ssl->buffers.keySz);
  19244. }
  19245. #else
  19246. ret = NOT_COMPILED_IN;
  19247. #endif
  19248. }
  19249. goto exit_dpk;
  19250. }
  19251. #endif
  19252. #ifndef NO_RSA
  19253. if (ssl->buffers.keyType == rsa_sa_algo || ssl->buffers.keyType == 0) {
  19254. ssl->hsType = DYNAMIC_TYPE_RSA;
  19255. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  19256. if (ret != 0) {
  19257. goto exit_dpk;
  19258. }
  19259. WOLFSSL_MSG("Trying RSA private key");
  19260. /* Set start of data to beginning of buffer. */
  19261. idx = 0;
  19262. /* Decode the key assuming it is an RSA private key. */
  19263. ret = wc_RsaPrivateKeyDecode(ssl->buffers.key->buffer, &idx,
  19264. (RsaKey*)ssl->hsKey, ssl->buffers.key->length);
  19265. #ifdef WOLF_CRYPTO_CB
  19266. /* if using crypto callbacks allow using a public key */
  19267. if (ret != 0 && ssl->devId != INVALID_DEVID) {
  19268. WOLFSSL_MSG("Trying RSA public key with crypto callbacks");
  19269. idx = 0;
  19270. ret = wc_RsaPublicKeyDecode(ssl->buffers.key->buffer, &idx,
  19271. (RsaKey*)ssl->hsKey, ssl->buffers.key->length);
  19272. }
  19273. #endif
  19274. if (ret == 0) {
  19275. WOLFSSL_MSG("Using RSA private key");
  19276. /* It worked so check it meets minimum key size requirements. */
  19277. keySz = wc_RsaEncryptSize((RsaKey*)ssl->hsKey);
  19278. if (keySz < 0) { /* check if keySz has error case */
  19279. ERROR_OUT(keySz, exit_dpk);
  19280. }
  19281. if (keySz < ssl->options.minRsaKeySz) {
  19282. WOLFSSL_MSG("RSA key size too small");
  19283. ERROR_OUT(RSA_KEY_SIZE_E, exit_dpk);
  19284. }
  19285. /* Return the maximum signature length. */
  19286. *length = (word16)keySz;
  19287. goto exit_dpk;
  19288. }
  19289. }
  19290. #endif /* !NO_RSA */
  19291. #ifdef HAVE_ECC
  19292. #ifndef NO_RSA
  19293. FreeKey(ssl, ssl->hsType, (void**)&ssl->hsKey);
  19294. #endif /* !NO_RSA */
  19295. if (ssl->buffers.keyType == ecc_dsa_sa_algo || ssl->buffers.keyType == 0) {
  19296. ssl->hsType = DYNAMIC_TYPE_ECC;
  19297. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  19298. if (ret != 0) {
  19299. goto exit_dpk;
  19300. }
  19301. #ifndef NO_RSA
  19302. WOLFSSL_MSG("Trying ECC private key, RSA didn't work");
  19303. #else
  19304. WOLFSSL_MSG("Trying ECC private key");
  19305. #endif
  19306. /* Set start of data to beginning of buffer. */
  19307. idx = 0;
  19308. /* Decode the key assuming it is an ECC private key. */
  19309. ret = wc_EccPrivateKeyDecode(ssl->buffers.key->buffer, &idx,
  19310. (ecc_key*)ssl->hsKey,
  19311. ssl->buffers.key->length);
  19312. #ifdef WOLF_CRYPTO_CB
  19313. /* if using crypto callbacks allow using a public key */
  19314. if (ret != 0 && ssl->devId != INVALID_DEVID) {
  19315. WOLFSSL_MSG("Trying ECC public key with crypto callbacks");
  19316. idx = 0;
  19317. ret = wc_EccPublicKeyDecode(ssl->buffers.key->buffer, &idx,
  19318. (ecc_key*)ssl->hsKey,
  19319. ssl->buffers.key->length);
  19320. }
  19321. #endif
  19322. if (ret == 0) {
  19323. WOLFSSL_MSG("Using ECC private key");
  19324. /* Check it meets the minimum ECC key size requirements. */
  19325. keySz = wc_ecc_size((ecc_key*)ssl->hsKey);
  19326. if (keySz < ssl->options.minEccKeySz) {
  19327. WOLFSSL_MSG("ECC key size too small");
  19328. ERROR_OUT(ECC_KEY_SIZE_E, exit_dpk);
  19329. }
  19330. /* Return the maximum signature length. */
  19331. *length = (word16)wc_ecc_sig_size((ecc_key*)ssl->hsKey);
  19332. goto exit_dpk;
  19333. }
  19334. }
  19335. #endif
  19336. #if defined(HAVE_ED25519) && defined(HAVE_ED25519_KEY_IMPORT)
  19337. #if !defined(NO_RSA) || defined(HAVE_ECC)
  19338. FreeKey(ssl, ssl->hsType, (void**)&ssl->hsKey);
  19339. #endif
  19340. if (ssl->buffers.keyType == ed25519_sa_algo || ssl->buffers.keyType == 0) {
  19341. ssl->hsType = DYNAMIC_TYPE_ED25519;
  19342. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  19343. if (ret != 0) {
  19344. goto exit_dpk;
  19345. }
  19346. #ifdef HAVE_ECC
  19347. WOLFSSL_MSG("Trying ED25519 private key, ECC didn't work");
  19348. #elif !defined(NO_RSA)
  19349. WOLFSSL_MSG("Trying ED25519 private key, RSA didn't work");
  19350. #else
  19351. WOLFSSL_MSG("Trying ED25519 private key");
  19352. #endif
  19353. /* Set start of data to beginning of buffer. */
  19354. idx = 0;
  19355. /* Decode the key assuming it is an ED25519 private key. */
  19356. ret = wc_Ed25519PrivateKeyDecode(ssl->buffers.key->buffer, &idx,
  19357. (ed25519_key*)ssl->hsKey,
  19358. ssl->buffers.key->length);
  19359. #ifdef WOLF_CRYPTO_CB
  19360. /* if using crypto callbacks allow using a public key */
  19361. if (ret != 0 && ssl->devId != INVALID_DEVID) {
  19362. WOLFSSL_MSG("Trying ED25519 public key with crypto callbacks");
  19363. idx = 0;
  19364. ret = wc_Ed25519PublicKeyDecode(ssl->buffers.key->buffer, &idx,
  19365. (ed25519_key*)ssl->hsKey,
  19366. ssl->buffers.key->length);
  19367. }
  19368. #endif
  19369. if (ret == 0) {
  19370. WOLFSSL_MSG("Using ED25519 private key");
  19371. /* Check it meets the minimum ECC key size requirements. */
  19372. if (ED25519_KEY_SIZE < ssl->options.minEccKeySz) {
  19373. WOLFSSL_MSG("ED25519 key size too small");
  19374. ERROR_OUT(ECC_KEY_SIZE_E, exit_dpk);
  19375. }
  19376. /* Return the maximum signature length. */
  19377. *length = ED25519_SIG_SIZE;
  19378. goto exit_dpk;
  19379. }
  19380. }
  19381. #endif /* HAVE_ED25519 && HAVE_ED25519_KEY_IMPORT */
  19382. #if defined(HAVE_ED448) && defined(HAVE_ED448_KEY_IMPORT)
  19383. #if !defined(NO_RSA) || defined(HAVE_ECC)
  19384. FreeKey(ssl, ssl->hsType, (void**)&ssl->hsKey);
  19385. #endif
  19386. if (ssl->buffers.keyType == ed448_sa_algo || ssl->buffers.keyType == 0) {
  19387. ssl->hsType = DYNAMIC_TYPE_ED448;
  19388. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  19389. if (ret != 0) {
  19390. goto exit_dpk;
  19391. }
  19392. #ifdef HAVE_ED25519
  19393. WOLFSSL_MSG("Trying ED448 private key, ED25519 didn't work");
  19394. #elif defined(HAVE_ECC)
  19395. WOLFSSL_MSG("Trying ED448 private key, ECC didn't work");
  19396. #elif !defined(NO_RSA)
  19397. WOLFSSL_MSG("Trying ED448 private key, RSA didn't work");
  19398. #else
  19399. WOLFSSL_MSG("Trying ED448 private key");
  19400. #endif
  19401. /* Set start of data to beginning of buffer. */
  19402. idx = 0;
  19403. /* Decode the key assuming it is an ED448 private key. */
  19404. ret = wc_Ed448PrivateKeyDecode(ssl->buffers.key->buffer, &idx,
  19405. (ed448_key*)ssl->hsKey,
  19406. ssl->buffers.key->length);
  19407. if (ret == 0) {
  19408. WOLFSSL_MSG("Using ED448 private key");
  19409. /* Check it meets the minimum ECC key size requirements. */
  19410. if (ED448_KEY_SIZE < ssl->options.minEccKeySz) {
  19411. WOLFSSL_MSG("ED448 key size too small");
  19412. ERROR_OUT(ECC_KEY_SIZE_E, exit_dpk);
  19413. }
  19414. /* Return the maximum signature length. */
  19415. *length = ED448_SIG_SIZE;
  19416. goto exit_dpk;
  19417. }
  19418. }
  19419. #endif /* HAVE_ED448 && HAVE_ED448_KEY_IMPORT */
  19420. (void)idx;
  19421. (void)keySz;
  19422. (void)length;
  19423. exit_dpk:
  19424. return ret;
  19425. }
  19426. #endif /* WOLFSSL_TLS13 || !NO_WOLFSSL_CLIENT */
  19427. #if defined(WOLFSSL_TLS13) && !defined(WOLFSSL_NO_TLS12)
  19428. /* returns 1 if able to do TLS 1.3 otherwise 0 */
  19429. int TLSv1_3_Capable(WOLFSSL* ssl)
  19430. {
  19431. #ifndef WOLFSSL_TLS13
  19432. return 0;
  19433. #else
  19434. int ret = 0;
  19435. if (IsAtLeastTLSv1_3(ssl->ctx->method->version)) {
  19436. ret = 1;
  19437. }
  19438. #ifdef OPENSSL_EXTRA
  19439. if ((wolfSSL_get_options(ssl) & SSL_OP_NO_TLSv1_3)) {
  19440. /* option set at run time to disable TLS 1.3 */
  19441. ret = 0;
  19442. }
  19443. #endif
  19444. return ret;
  19445. #endif
  19446. }
  19447. #endif /* WOLFSSL_TLS13 */
  19448. /* client only parts */
  19449. #ifndef NO_WOLFSSL_CLIENT
  19450. #ifndef WOLFSSL_NO_TLS12
  19451. /* handle generation of client_hello (1) */
  19452. int SendClientHello(WOLFSSL* ssl)
  19453. {
  19454. byte *output;
  19455. word32 length, idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  19456. int sendSz;
  19457. int idSz = ssl->options.resuming
  19458. ? ssl->session.sessionIDSz
  19459. : 0;
  19460. int ret;
  19461. word16 extSz = 0;
  19462. #ifdef WOLFSSL_TLS13
  19463. if (IsAtLeastTLSv1_3(ssl->version))
  19464. return SendTls13ClientHello(ssl);
  19465. #endif
  19466. WOLFSSL_START(WC_FUNC_CLIENT_HELLO_SEND);
  19467. WOLFSSL_ENTER("SendClientHello");
  19468. if (ssl->suites == NULL) {
  19469. WOLFSSL_MSG("Bad suites pointer in SendClientHello");
  19470. return SUITES_ERROR;
  19471. }
  19472. #ifdef HAVE_SESSION_TICKET
  19473. if (ssl->options.resuming && ssl->session.ticketLen > 0) {
  19474. SessionTicket* ticket;
  19475. ticket = TLSX_SessionTicket_Create(0, ssl->session.ticket,
  19476. ssl->session.ticketLen, ssl->heap);
  19477. if (ticket == NULL) return MEMORY_E;
  19478. ret = TLSX_UseSessionTicket(&ssl->extensions, ticket, ssl->heap);
  19479. if (ret != WOLFSSL_SUCCESS) {
  19480. TLSX_SessionTicket_Free(ticket, ssl->heap);
  19481. return ret;
  19482. }
  19483. idSz = 0;
  19484. }
  19485. #endif
  19486. length = VERSION_SZ + RAN_LEN
  19487. + idSz + ENUM_LEN
  19488. + ssl->suites->suiteSz + SUITE_LEN
  19489. + COMP_LEN + ENUM_LEN;
  19490. #ifdef HAVE_TLS_EXTENSIONS
  19491. /* auto populate extensions supported unless user defined */
  19492. if ((ret = TLSX_PopulateExtensions(ssl, 0)) != 0)
  19493. return ret;
  19494. extSz = 0;
  19495. ret = TLSX_GetRequestSize(ssl, client_hello, &extSz);
  19496. if (ret != 0)
  19497. return ret;
  19498. length += extSz;
  19499. #else
  19500. if (IsAtLeastTLSv1_2(ssl) && ssl->suites->hashSigAlgoSz)
  19501. extSz += HELLO_EXT_SZ + HELLO_EXT_SIGALGO_SZ
  19502. + ssl->suites->hashSigAlgoSz;
  19503. #ifdef HAVE_EXTENDED_MASTER
  19504. if (ssl->options.haveEMS)
  19505. extSz += HELLO_EXT_SZ;
  19506. #endif
  19507. if (extSz != 0)
  19508. length += extSz + HELLO_EXT_SZ_SZ;
  19509. #endif
  19510. sendSz = length + HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  19511. #ifdef WOLFSSL_DTLS
  19512. if (ssl->options.dtls) {
  19513. length += ENUM_LEN; /* cookie */
  19514. if (ssl->arrays->cookieSz != 0) length += ssl->arrays->cookieSz;
  19515. sendSz = length + DTLS_HANDSHAKE_HEADER_SZ + DTLS_RECORD_HEADER_SZ;
  19516. idx += DTLS_HANDSHAKE_EXTRA + DTLS_RECORD_EXTRA;
  19517. }
  19518. #endif
  19519. if (IsEncryptionOn(ssl, 1))
  19520. sendSz += MAX_MSG_EXTRA;
  19521. /* check for available size */
  19522. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  19523. return ret;
  19524. /* get output buffer */
  19525. output = ssl->buffers.outputBuffer.buffer +
  19526. ssl->buffers.outputBuffer.length;
  19527. AddHeaders(output, length, client_hello, ssl);
  19528. /* client hello, first version */
  19529. output[idx++] = ssl->version.major;
  19530. output[idx++] = ssl->version.minor;
  19531. ssl->chVersion = ssl->version; /* store in case changed */
  19532. /* then random */
  19533. if (ssl->options.connectState == CONNECT_BEGIN) {
  19534. ret = wc_RNG_GenerateBlock(ssl->rng, output + idx, RAN_LEN);
  19535. if (ret != 0)
  19536. return ret;
  19537. /* store random */
  19538. XMEMCPY(ssl->arrays->clientRandom, output + idx, RAN_LEN);
  19539. } else {
  19540. #ifdef WOLFSSL_DTLS
  19541. /* send same random on hello again */
  19542. XMEMCPY(output + idx, ssl->arrays->clientRandom, RAN_LEN);
  19543. #endif
  19544. }
  19545. idx += RAN_LEN;
  19546. /* then session id */
  19547. output[idx++] = (byte)idSz;
  19548. if (idSz) {
  19549. XMEMCPY(output + idx, ssl->session.sessionID,
  19550. ssl->session.sessionIDSz);
  19551. idx += ssl->session.sessionIDSz;
  19552. }
  19553. /* then DTLS cookie */
  19554. #ifdef WOLFSSL_DTLS
  19555. if (ssl->options.dtls) {
  19556. byte cookieSz = ssl->arrays->cookieSz;
  19557. output[idx++] = cookieSz;
  19558. if (cookieSz) {
  19559. XMEMCPY(&output[idx], ssl->arrays->cookie, cookieSz);
  19560. idx += cookieSz;
  19561. }
  19562. }
  19563. #endif
  19564. /* then cipher suites */
  19565. c16toa(ssl->suites->suiteSz, output + idx);
  19566. idx += OPAQUE16_LEN;
  19567. XMEMCPY(output + idx, &ssl->suites->suites, ssl->suites->suiteSz);
  19568. idx += ssl->suites->suiteSz;
  19569. /* last, compression */
  19570. output[idx++] = COMP_LEN;
  19571. if (ssl->options.usingCompression)
  19572. output[idx++] = ZLIB_COMPRESSION;
  19573. else
  19574. output[idx++] = NO_COMPRESSION;
  19575. #ifdef HAVE_TLS_EXTENSIONS
  19576. extSz = 0;
  19577. ret = TLSX_WriteRequest(ssl, output + idx, client_hello, &extSz);
  19578. if (ret != 0)
  19579. return ret;
  19580. idx += extSz;
  19581. (void)idx; /* suppress analyzer warning, keep idx current */
  19582. #else
  19583. if (extSz != 0) {
  19584. c16toa(extSz, output + idx);
  19585. idx += HELLO_EXT_SZ_SZ;
  19586. if (IsAtLeastTLSv1_2(ssl)) {
  19587. if (ssl->suites->hashSigAlgoSz) {
  19588. word16 i;
  19589. /* extension type */
  19590. c16toa(HELLO_EXT_SIG_ALGO, output + idx);
  19591. idx += HELLO_EXT_TYPE_SZ;
  19592. /* extension data length */
  19593. c16toa(HELLO_EXT_SIGALGO_SZ + ssl->suites->hashSigAlgoSz,
  19594. output + idx);
  19595. idx += HELLO_EXT_SZ_SZ;
  19596. /* sig algos length */
  19597. c16toa(ssl->suites->hashSigAlgoSz, output + idx);
  19598. idx += HELLO_EXT_SIGALGO_SZ;
  19599. for (i=0; i < ssl->suites->hashSigAlgoSz; i++, idx++) {
  19600. output[idx] = ssl->suites->hashSigAlgo[i];
  19601. }
  19602. }
  19603. }
  19604. #ifdef HAVE_EXTENDED_MASTER
  19605. if (ssl->options.haveEMS) {
  19606. c16toa(HELLO_EXT_EXTMS, output + idx);
  19607. idx += HELLO_EXT_TYPE_SZ;
  19608. c16toa(0, output + idx);
  19609. idx += HELLO_EXT_SZ_SZ;
  19610. }
  19611. #endif
  19612. }
  19613. #endif
  19614. if (IsEncryptionOn(ssl, 1)) {
  19615. byte* input;
  19616. int inputSz = idx; /* build msg adds rec hdr */
  19617. int recordHeaderSz = RECORD_HEADER_SZ;
  19618. if (ssl->options.dtls)
  19619. recordHeaderSz += DTLS_RECORD_EXTRA;
  19620. inputSz -= recordHeaderSz;
  19621. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  19622. if (input == NULL)
  19623. return MEMORY_E;
  19624. XMEMCPY(input, output + recordHeaderSz, inputSz);
  19625. #ifdef WOLFSSL_DTLS
  19626. if (IsDtlsNotSctpMode(ssl) &&
  19627. (ret = DtlsMsgPoolSave(ssl, input, inputSz, client_hello)) != 0) {
  19628. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  19629. return ret;
  19630. }
  19631. #endif
  19632. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  19633. handshake, 1, 0, 0, CUR_ORDER);
  19634. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  19635. if (sendSz < 0)
  19636. return sendSz;
  19637. } else {
  19638. #ifdef WOLFSSL_DTLS
  19639. if (IsDtlsNotSctpMode(ssl)) {
  19640. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, client_hello)) != 0)
  19641. return ret;
  19642. }
  19643. if (ssl->options.dtls)
  19644. DtlsSEQIncrement(ssl, CUR_ORDER);
  19645. #endif
  19646. ret = HashOutput(ssl, output, sendSz, 0);
  19647. if (ret != 0)
  19648. return ret;
  19649. }
  19650. ssl->options.clientState = CLIENT_HELLO_COMPLETE;
  19651. #ifdef OPENSSL_EXTRA
  19652. ssl->cbmode = SSL_CB_MODE_WRITE;
  19653. if (ssl->CBIS != NULL)
  19654. ssl->CBIS(ssl, SSL_CB_CONNECT_LOOP, SSL_SUCCESS);
  19655. #endif
  19656. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  19657. if (ssl->hsInfoOn) AddPacketName(ssl, "ClientHello");
  19658. if (ssl->toInfoOn)
  19659. AddPacketInfo(ssl, "ClientHello", handshake, output, sendSz,
  19660. WRITE_PROTO, ssl->heap);
  19661. #endif
  19662. ssl->buffers.outputBuffer.length += sendSz;
  19663. ret = SendBuffered(ssl);
  19664. WOLFSSL_LEAVE("SendClientHello", ret);
  19665. WOLFSSL_END(WC_FUNC_CLIENT_HELLO_SEND);
  19666. return ret;
  19667. }
  19668. /* handle processing of DTLS hello_verify_request (3) */
  19669. static int DoHelloVerifyRequest(WOLFSSL* ssl, const byte* input,
  19670. word32* inOutIdx, word32 size)
  19671. {
  19672. ProtocolVersion pv;
  19673. byte cookieSz;
  19674. word32 begin = *inOutIdx;
  19675. #ifdef WOLFSSL_CALLBACKS
  19676. if (ssl->hsInfoOn) AddPacketName(ssl, "HelloVerifyRequest");
  19677. if (ssl->toInfoOn) AddLateName("HelloVerifyRequest", &ssl->timeoutInfo);
  19678. #endif
  19679. #ifdef WOLFSSL_DTLS
  19680. if (ssl->options.dtls) {
  19681. DtlsMsgPoolReset(ssl);
  19682. }
  19683. #endif
  19684. if (OPAQUE16_LEN + OPAQUE8_LEN > size)
  19685. return BUFFER_ERROR;
  19686. XMEMCPY(&pv, input + *inOutIdx, OPAQUE16_LEN);
  19687. *inOutIdx += OPAQUE16_LEN;
  19688. if (pv.major != DTLS_MAJOR ||
  19689. (pv.minor != DTLS_MINOR && pv.minor != DTLSv1_2_MINOR))
  19690. return VERSION_ERROR;
  19691. cookieSz = input[(*inOutIdx)++];
  19692. if (cookieSz) {
  19693. if ((*inOutIdx - begin) + cookieSz > size)
  19694. return BUFFER_ERROR;
  19695. #ifdef WOLFSSL_DTLS
  19696. if (cookieSz <= MAX_COOKIE_LEN) {
  19697. XMEMCPY(ssl->arrays->cookie, input + *inOutIdx, cookieSz);
  19698. ssl->arrays->cookieSz = cookieSz;
  19699. }
  19700. #endif
  19701. *inOutIdx += cookieSz;
  19702. }
  19703. ssl->options.serverState = SERVER_HELLOVERIFYREQUEST_COMPLETE;
  19704. return 0;
  19705. }
  19706. static WC_INLINE int DSH_CheckSessionId(WOLFSSL* ssl)
  19707. {
  19708. int ret = 0;
  19709. #ifdef HAVE_SECRET_CALLBACK
  19710. /* If a session secret callback exists, we are using that
  19711. * key instead of the saved session key. */
  19712. ret = ret || (ssl->sessionSecretCb != NULL);
  19713. #endif
  19714. #ifdef HAVE_SESSION_TICKET
  19715. /* server may send blank ticket which may not be expected to indicate
  19716. * existing one ok but will also be sending a new one */
  19717. ret = ret || (ssl->session.ticketLen > 0);
  19718. #endif
  19719. ret = ret ||
  19720. (ssl->options.haveSessionId && XMEMCMP(ssl->arrays->sessionID,
  19721. ssl->session.sessionID, ID_LEN) == 0);
  19722. return ret;
  19723. }
  19724. /* Check the version in the received message is valid and set protocol
  19725. * version to use.
  19726. *
  19727. * ssl The SSL/TLS object.
  19728. * pv The protocol version from the packet.
  19729. * returns 0 on success, otherwise failure.
  19730. */
  19731. int CheckVersion(WOLFSSL *ssl, ProtocolVersion pv)
  19732. {
  19733. #ifdef WOLFSSL_TLS13_DRAFT
  19734. if (pv.major == TLS_DRAFT_MAJOR) {
  19735. pv.major = SSLv3_MAJOR;
  19736. pv.minor = TLSv1_3_MINOR;
  19737. }
  19738. #endif
  19739. #ifdef OPENSSL_EXTRA
  19740. if (ssl->CBIS != NULL) {
  19741. ssl->CBIS(ssl, SSL_CB_HANDSHAKE_START, SSL_SUCCESS);
  19742. }
  19743. #endif
  19744. if (pv.minor > ssl->version.minor) {
  19745. WOLFSSL_MSG("Server using higher version, fatal error");
  19746. return VERSION_ERROR;
  19747. }
  19748. if (pv.minor < ssl->version.minor) {
  19749. WOLFSSL_MSG("server using lower version");
  19750. /* Check for downgrade attack. */
  19751. if (!ssl->options.downgrade) {
  19752. WOLFSSL_MSG("\tno downgrade allowed, fatal error");
  19753. return VERSION_ERROR;
  19754. }
  19755. if (pv.minor < ssl->options.minDowngrade) {
  19756. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  19757. return VERSION_ERROR;
  19758. }
  19759. #ifdef HAVE_SECURE_RENEGOTIATION
  19760. if (ssl->secure_renegotiation &&
  19761. ssl->secure_renegotiation->enabled &&
  19762. ssl->options.handShakeDone) {
  19763. WOLFSSL_MSG("Server changed version during scr");
  19764. return VERSION_ERROR;
  19765. }
  19766. #endif
  19767. /* Checks made - OK to downgrade. */
  19768. if (pv.minor == SSLv3_MINOR) {
  19769. /* turn off tls */
  19770. WOLFSSL_MSG("\tdowngrading to SSLv3");
  19771. ssl->options.tls = 0;
  19772. ssl->options.tls1_1 = 0;
  19773. ssl->version.minor = SSLv3_MINOR;
  19774. }
  19775. else if (pv.minor == TLSv1_MINOR) {
  19776. /* turn off tls 1.1+ */
  19777. WOLFSSL_MSG("\tdowngrading to TLSv1");
  19778. ssl->options.tls1_1 = 0;
  19779. ssl->version.minor = TLSv1_MINOR;
  19780. }
  19781. else if (pv.minor == TLSv1_1_MINOR) {
  19782. WOLFSSL_MSG("\tdowngrading to TLSv1.1");
  19783. ssl->version.minor = TLSv1_1_MINOR;
  19784. }
  19785. else if (pv.minor == TLSv1_2_MINOR) {
  19786. WOLFSSL_MSG(" downgrading to TLSv1.2");
  19787. ssl->version.minor = TLSv1_2_MINOR;
  19788. }
  19789. }
  19790. #ifdef OPENSSL_EXTRA
  19791. /* check if option is set to not allow the current version
  19792. * set from either wolfSSL_set_options or wolfSSL_CTX_set_options */
  19793. if (!ssl->options.dtls && ssl->options.downgrade &&
  19794. ssl->options.mask > 0) {
  19795. if (ssl->version.minor == TLSv1_2_MINOR &&
  19796. (ssl->options.mask & SSL_OP_NO_TLSv1_2) == SSL_OP_NO_TLSv1_2) {
  19797. WOLFSSL_MSG("\tOption set to not allow TLSv1.2, Downgrading");
  19798. ssl->version.minor = TLSv1_1_MINOR;
  19799. }
  19800. if (ssl->version.minor == TLSv1_1_MINOR &&
  19801. (ssl->options.mask & SSL_OP_NO_TLSv1_1) == SSL_OP_NO_TLSv1_1) {
  19802. WOLFSSL_MSG("\tOption set to not allow TLSv1.1, Downgrading");
  19803. ssl->options.tls1_1 = 0;
  19804. ssl->version.minor = TLSv1_MINOR;
  19805. }
  19806. if (ssl->version.minor == TLSv1_MINOR &&
  19807. (ssl->options.mask & SSL_OP_NO_TLSv1) == SSL_OP_NO_TLSv1) {
  19808. WOLFSSL_MSG("\tOption set to not allow TLSv1, Downgrading");
  19809. ssl->options.tls = 0;
  19810. ssl->options.tls1_1 = 0;
  19811. ssl->version.minor = SSLv3_MINOR;
  19812. }
  19813. if (ssl->version.minor == SSLv3_MINOR &&
  19814. (ssl->options.mask & SSL_OP_NO_SSLv3) == SSL_OP_NO_SSLv3) {
  19815. WOLFSSL_MSG("\tError, option set to not allow SSLv3");
  19816. return VERSION_ERROR;
  19817. }
  19818. if (ssl->version.minor < ssl->options.minDowngrade) {
  19819. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  19820. return VERSION_ERROR;
  19821. }
  19822. }
  19823. #endif
  19824. return 0;
  19825. }
  19826. /* handle processing of server_hello (2) */
  19827. int DoServerHello(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  19828. word32 helloSz)
  19829. {
  19830. byte cs0; /* cipher suite bytes 0, 1 */
  19831. byte cs1;
  19832. ProtocolVersion pv;
  19833. byte compression;
  19834. word32 i = *inOutIdx;
  19835. word32 begin = i;
  19836. int ret;
  19837. WOLFSSL_START(WC_FUNC_SERVER_HELLO_DO);
  19838. WOLFSSL_ENTER("DoServerHello");
  19839. #ifdef WOLFSSL_CALLBACKS
  19840. if (ssl->hsInfoOn) AddPacketName(ssl, "ServerHello");
  19841. if (ssl->toInfoOn) AddLateName("ServerHello", &ssl->timeoutInfo);
  19842. #endif
  19843. /* protocol version, random and session id length check */
  19844. if (OPAQUE16_LEN + RAN_LEN + OPAQUE8_LEN > helloSz)
  19845. return BUFFER_ERROR;
  19846. /* protocol version */
  19847. XMEMCPY(&pv, input + i, OPAQUE16_LEN);
  19848. i += OPAQUE16_LEN;
  19849. ret = CheckVersion(ssl, pv);
  19850. if (ret != 0)
  19851. return ret;
  19852. #ifdef WOLFSSL_TLS13
  19853. if (IsAtLeastTLSv1_3(pv)) {
  19854. byte type = server_hello;
  19855. return DoTls13ServerHello(ssl, input, inOutIdx, helloSz, &type);
  19856. }
  19857. #endif
  19858. /* random */
  19859. XMEMCPY(ssl->arrays->serverRandom, input + i, RAN_LEN);
  19860. i += RAN_LEN;
  19861. /* session id */
  19862. ssl->arrays->sessionIDSz = input[i++];
  19863. if (ssl->arrays->sessionIDSz > ID_LEN) {
  19864. WOLFSSL_MSG("Invalid session ID size");
  19865. ssl->arrays->sessionIDSz = 0;
  19866. return BUFFER_ERROR;
  19867. }
  19868. else if (ssl->arrays->sessionIDSz) {
  19869. if ((i - begin) + ssl->arrays->sessionIDSz > helloSz)
  19870. return BUFFER_ERROR;
  19871. XMEMCPY(ssl->arrays->sessionID, input + i,
  19872. ssl->arrays->sessionIDSz);
  19873. i += ssl->arrays->sessionIDSz;
  19874. ssl->options.haveSessionId = 1;
  19875. }
  19876. /* suite and compression */
  19877. if ((i - begin) + OPAQUE16_LEN + OPAQUE8_LEN > helloSz)
  19878. return BUFFER_ERROR;
  19879. cs0 = input[i++];
  19880. cs1 = input[i++];
  19881. #ifdef HAVE_SECURE_RENEGOTIATION
  19882. if (ssl->secure_renegotiation && ssl->secure_renegotiation->enabled &&
  19883. ssl->options.handShakeDone) {
  19884. if (ssl->options.cipherSuite0 != cs0 ||
  19885. ssl->options.cipherSuite != cs1) {
  19886. WOLFSSL_MSG("Server changed cipher suite during scr");
  19887. return MATCH_SUITE_ERROR;
  19888. }
  19889. }
  19890. #endif
  19891. ssl->options.cipherSuite0 = cs0;
  19892. ssl->options.cipherSuite = cs1;
  19893. #ifdef WOLFSSL_DEBUG_TLS
  19894. WOLFSSL_MSG("Chosen cipher suite:");
  19895. WOLFSSL_MSG(GetCipherNameInternal(ssl->options.cipherSuite0,
  19896. ssl->options.cipherSuite));
  19897. #endif
  19898. compression = input[i++];
  19899. #ifndef WOLFSSL_NO_STRICT_CIPHER_SUITE
  19900. {
  19901. word32 idx, found = 0;
  19902. /* confirm server_hello cipher suite is one sent in client_hello */
  19903. for (idx = 0; idx < ssl->suites->suiteSz; idx += 2) {
  19904. if (ssl->suites->suites[idx] == cs0 &&
  19905. ssl->suites->suites[idx+1] == cs1) {
  19906. found = 1;
  19907. break;
  19908. }
  19909. }
  19910. if (!found) {
  19911. WOLFSSL_MSG("ServerHello did not use cipher suite from ClientHello");
  19912. return MATCH_SUITE_ERROR;
  19913. }
  19914. }
  19915. #endif /* !WOLFSSL_NO_STRICT_CIPHER_SUITE */
  19916. if (compression != NO_COMPRESSION && !ssl->options.usingCompression) {
  19917. WOLFSSL_MSG("Server forcing compression w/o support");
  19918. return COMPRESSION_ERROR;
  19919. }
  19920. if (compression != ZLIB_COMPRESSION && ssl->options.usingCompression) {
  19921. WOLFSSL_MSG("Server refused compression, turning off");
  19922. ssl->options.usingCompression = 0; /* turn off if server refused */
  19923. }
  19924. *inOutIdx = i;
  19925. #ifdef HAVE_TLS_EXTENSIONS
  19926. if ( (i - begin) < helloSz) {
  19927. if (TLSX_SupportExtensions(ssl)) {
  19928. word16 totalExtSz;
  19929. if ((i - begin) + OPAQUE16_LEN > helloSz)
  19930. return BUFFER_ERROR;
  19931. ato16(&input[i], &totalExtSz);
  19932. i += OPAQUE16_LEN;
  19933. if ((i - begin) + totalExtSz > helloSz)
  19934. return BUFFER_ERROR;
  19935. if ((ret = TLSX_Parse(ssl, (byte *) input + i, totalExtSz,
  19936. server_hello, NULL)))
  19937. return ret;
  19938. i += totalExtSz;
  19939. *inOutIdx = i;
  19940. }
  19941. else
  19942. *inOutIdx = begin + helloSz; /* skip extensions */
  19943. }
  19944. else
  19945. ssl->options.haveEMS = 0; /* If no extensions, no EMS */
  19946. #else
  19947. {
  19948. int allowExt = 0;
  19949. byte pendingEMS = 0;
  19950. if ( (i - begin) < helloSz) {
  19951. if (ssl->version.major == SSLv3_MAJOR &&
  19952. ssl->version.minor >= TLSv1_MINOR) {
  19953. allowExt = 1;
  19954. }
  19955. #ifdef WOLFSSL_DTLS
  19956. if (ssl->version.major == DTLS_MAJOR)
  19957. allowExt = 1;
  19958. #endif
  19959. if (allowExt) {
  19960. word16 totalExtSz;
  19961. if ((i - begin) + OPAQUE16_LEN > helloSz)
  19962. return BUFFER_ERROR;
  19963. ato16(&input[i], &totalExtSz);
  19964. i += OPAQUE16_LEN;
  19965. if ((i - begin) + totalExtSz > helloSz)
  19966. return BUFFER_ERROR;
  19967. while (totalExtSz) {
  19968. word16 extId, extSz;
  19969. if (OPAQUE16_LEN + OPAQUE16_LEN > totalExtSz)
  19970. return BUFFER_ERROR;
  19971. ato16(&input[i], &extId);
  19972. i += OPAQUE16_LEN;
  19973. ato16(&input[i], &extSz);
  19974. i += OPAQUE16_LEN;
  19975. if (OPAQUE16_LEN + OPAQUE16_LEN + extSz > totalExtSz)
  19976. return BUFFER_ERROR;
  19977. if (extId == HELLO_EXT_EXTMS)
  19978. pendingEMS = 1;
  19979. else
  19980. i += extSz;
  19981. totalExtSz -= OPAQUE16_LEN + OPAQUE16_LEN + extSz;
  19982. }
  19983. *inOutIdx = i;
  19984. }
  19985. else
  19986. *inOutIdx = begin + helloSz; /* skip extensions */
  19987. }
  19988. if (!pendingEMS && ssl->options.haveEMS)
  19989. ssl->options.haveEMS = 0;
  19990. }
  19991. #endif
  19992. ssl->options.serverState = SERVER_HELLO_COMPLETE;
  19993. if (IsEncryptionOn(ssl, 0)) {
  19994. *inOutIdx += ssl->keys.padSz;
  19995. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  19996. if (ssl->options.startedETMWrite &&
  19997. ssl->specs.cipher_type == block) {
  19998. *inOutIdx += MacSize(ssl);
  19999. }
  20000. #endif
  20001. }
  20002. #ifdef HAVE_SECRET_CALLBACK
  20003. if (ssl->sessionSecretCb != NULL) {
  20004. int secretSz = SECRET_LEN;
  20005. ret = ssl->sessionSecretCb(ssl, ssl->session.masterSecret,
  20006. &secretSz, ssl->sessionSecretCtx);
  20007. if (ret != 0 || secretSz != SECRET_LEN)
  20008. return SESSION_SECRET_CB_E;
  20009. }
  20010. #endif /* HAVE_SECRET_CALLBACK */
  20011. ret = CompleteServerHello(ssl);
  20012. WOLFSSL_LEAVE("DoServerHello", ret);
  20013. WOLFSSL_END(WC_FUNC_SERVER_HELLO_DO);
  20014. return ret;
  20015. }
  20016. int CompleteServerHello(WOLFSSL* ssl)
  20017. {
  20018. int ret;
  20019. if (!ssl->options.resuming) {
  20020. byte* down = ssl->arrays->serverRandom + RAN_LEN -
  20021. TLS13_DOWNGRADE_SZ - 1;
  20022. byte vers = ssl->arrays->serverRandom[RAN_LEN - 1];
  20023. #ifdef WOLFSSL_TLS13
  20024. if (TLSv1_3_Capable(ssl)) {
  20025. /* TLS v1.3 capable client not allowed to downgrade when
  20026. * connecting to TLS v1.3 capable server unless cipher suite
  20027. * demands it.
  20028. */
  20029. if (XMEMCMP(down, tls13Downgrade, TLS13_DOWNGRADE_SZ) == 0 &&
  20030. (vers == 0 || vers == 1)) {
  20031. SendAlert(ssl, alert_fatal, illegal_parameter);
  20032. return VERSION_ERROR;
  20033. }
  20034. }
  20035. else
  20036. #endif
  20037. if (ssl->ctx->method->version.major == SSLv3_MAJOR &&
  20038. ssl->ctx->method->version.minor == TLSv1_2_MINOR
  20039. #ifdef OPENSSL_EXTRA
  20040. && (wolfSSL_get_options(ssl) & SSL_OP_NO_TLSv1_2) == 0
  20041. #endif
  20042. ) {
  20043. /* TLS v1.2 capable client not allowed to downgrade when
  20044. * connecting to TLS v1.2 capable server.
  20045. */
  20046. if (XMEMCMP(down, tls13Downgrade, TLS13_DOWNGRADE_SZ) == 0 &&
  20047. vers == 0) {
  20048. SendAlert(ssl, alert_fatal, illegal_parameter);
  20049. return VERSION_ERROR;
  20050. }
  20051. }
  20052. }
  20053. else {
  20054. if (DSH_CheckSessionId(ssl)) {
  20055. if (SetCipherSpecs(ssl) == 0) {
  20056. XMEMCPY(ssl->arrays->masterSecret,
  20057. ssl->session.masterSecret, SECRET_LEN);
  20058. #ifdef NO_OLD_TLS
  20059. ret = DeriveTlsKeys(ssl);
  20060. #else
  20061. ret = -1; /* default value */
  20062. #ifndef NO_TLS
  20063. if (ssl->options.tls)
  20064. ret = DeriveTlsKeys(ssl);
  20065. #endif
  20066. if (!ssl->options.tls)
  20067. ret = DeriveKeys(ssl);
  20068. #endif /* NO_OLD_TLS */
  20069. ssl->options.serverState = SERVER_HELLODONE_COMPLETE;
  20070. return ret;
  20071. }
  20072. else {
  20073. WOLFSSL_MSG("Unsupported cipher suite, DoServerHello");
  20074. return UNSUPPORTED_SUITE;
  20075. }
  20076. }
  20077. else {
  20078. WOLFSSL_MSG("Server denied resumption attempt");
  20079. ssl->options.resuming = 0; /* server denied resumption try */
  20080. }
  20081. }
  20082. return SetCipherSpecs(ssl);
  20083. }
  20084. #endif /* !WOLFSSL_NO_TLS12 */
  20085. /* Make sure client setup is valid for this suite, true on success */
  20086. int VerifyClientSuite(WOLFSSL* ssl)
  20087. {
  20088. #ifndef NO_PSK
  20089. int havePSK = ssl->options.havePSK;
  20090. #endif
  20091. byte first = ssl->options.cipherSuite0;
  20092. byte second = ssl->options.cipherSuite;
  20093. WOLFSSL_ENTER("VerifyClientSuite");
  20094. if (CipherRequires(first, second, REQUIRES_PSK)) {
  20095. WOLFSSL_MSG("Requires PSK");
  20096. #ifndef NO_PSK
  20097. if (havePSK == 0)
  20098. #endif
  20099. {
  20100. WOLFSSL_MSG("Don't have PSK");
  20101. return 0;
  20102. }
  20103. }
  20104. return 1; /* success */
  20105. }
  20106. #ifndef WOLFSSL_NO_TLS12
  20107. #ifndef NO_CERTS
  20108. /* handle processing of certificate_request (13) */
  20109. static int DoCertificateRequest(WOLFSSL* ssl, const byte* input, word32*
  20110. inOutIdx, word32 size)
  20111. {
  20112. word16 len;
  20113. word32 begin = *inOutIdx;
  20114. #if defined(OPENSSL_EXTRA) || defined(OPENSSL_ALL) || \
  20115. defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  20116. int ret;
  20117. #endif
  20118. #ifdef OPENSSL_EXTRA
  20119. WOLFSSL_X509* x509 = NULL;
  20120. WOLFSSL_EVP_PKEY* pkey = NULL;
  20121. #endif
  20122. WOLFSSL_START(WC_FUNC_CERTIFICATE_REQUEST_DO);
  20123. WOLFSSL_ENTER("DoCertificateRequest");
  20124. #ifdef WOLFSSL_CALLBACKS
  20125. if (ssl->hsInfoOn)
  20126. AddPacketName(ssl, "CertificateRequest");
  20127. if (ssl->toInfoOn)
  20128. AddLateName("CertificateRequest", &ssl->timeoutInfo);
  20129. #endif
  20130. if (OPAQUE8_LEN > size)
  20131. return BUFFER_ERROR;
  20132. len = input[(*inOutIdx)++];
  20133. if ((*inOutIdx - begin) + len > size)
  20134. return BUFFER_ERROR;
  20135. /* types, read in here */
  20136. *inOutIdx += len;
  20137. /* signature and hash signature algorithm */
  20138. if (IsAtLeastTLSv1_2(ssl)) {
  20139. if ((*inOutIdx - begin) + OPAQUE16_LEN > size)
  20140. return BUFFER_ERROR;
  20141. ato16(input + *inOutIdx, &len);
  20142. *inOutIdx += OPAQUE16_LEN;
  20143. if ((len > size) || ((*inOutIdx - begin) + len > size))
  20144. return BUFFER_ERROR;
  20145. if (PickHashSigAlgo(ssl, input + *inOutIdx, len) != 0 &&
  20146. ssl->buffers.certificate &&
  20147. ssl->buffers.certificate->buffer) {
  20148. #ifdef HAVE_PK_CALLBACKS
  20149. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx)) {
  20150. WOLFSSL_MSG("Using PK for client private key");
  20151. return INVALID_PARAMETER;
  20152. }
  20153. #endif
  20154. if (ssl->buffers.key && ssl->buffers.key->buffer) {
  20155. return INVALID_PARAMETER;
  20156. }
  20157. }
  20158. *inOutIdx += len;
  20159. #ifdef WC_RSA_PSS
  20160. ssl->pssAlgo = 0;
  20161. if (ssl->suites->sigAlgo == rsa_pss_sa_algo)
  20162. ssl->pssAlgo |= 1 << ssl->suites->hashAlgo;
  20163. #endif
  20164. }
  20165. /* authorities */
  20166. if ((*inOutIdx - begin) + OPAQUE16_LEN > size)
  20167. return BUFFER_ERROR;
  20168. /* DN seq length */
  20169. ato16(input + *inOutIdx, &len);
  20170. *inOutIdx += OPAQUE16_LEN;
  20171. if ((*inOutIdx - begin) + len > size)
  20172. return BUFFER_ERROR;
  20173. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  20174. if (ssl->ca_names != ssl->ctx->ca_names)
  20175. wolfSSL_sk_X509_NAME_pop_free(ssl->ca_names, NULL);
  20176. ssl->ca_names = wolfSSL_sk_X509_NAME_new(NULL);
  20177. if (ssl->ca_names == NULL) {
  20178. return MEMORY_ERROR;
  20179. }
  20180. #endif
  20181. while (len) {
  20182. word16 dnSz;
  20183. if ((*inOutIdx - begin) + OPAQUE16_LEN > size)
  20184. return BUFFER_ERROR;
  20185. ato16(input + *inOutIdx, &dnSz);
  20186. *inOutIdx += OPAQUE16_LEN;
  20187. if ((*inOutIdx - begin) + dnSz > size)
  20188. return BUFFER_ERROR;
  20189. #if defined(OPENSSL_ALL) || defined(WOLFSSL_NGINX) || defined(HAVE_LIGHTY)
  20190. {
  20191. /* Use a DecodedCert struct to get access to GetName to
  20192. * parse DN name */
  20193. DecodedCert cert;
  20194. WOLFSSL_X509_NAME* name;
  20195. InitDecodedCert(&cert, input + *inOutIdx, dnSz, ssl->heap);
  20196. if ((ret = GetName(&cert, SUBJECT, dnSz)) != 0) {
  20197. FreeDecodedCert(&cert);
  20198. return ret;
  20199. }
  20200. if ((name = wolfSSL_X509_NAME_new()) == NULL) {
  20201. FreeDecodedCert(&cert);
  20202. return MEMORY_ERROR;
  20203. }
  20204. CopyDecodedName(name, &cert, SUBJECT);
  20205. if (wolfSSL_sk_X509_NAME_push(ssl->ca_names, name)
  20206. == WOLFSSL_FAILURE) {
  20207. FreeDecodedCert(&cert);
  20208. wolfSSL_X509_NAME_free(name);
  20209. return MEMORY_ERROR;
  20210. }
  20211. FreeDecodedCert(&cert);
  20212. }
  20213. #endif
  20214. *inOutIdx += dnSz;
  20215. len -= OPAQUE16_LEN + dnSz;
  20216. }
  20217. #ifdef OPENSSL_EXTRA
  20218. /* call client cert callback if no cert has been loaded */
  20219. if ((ssl->ctx->CBClientCert != NULL) &&
  20220. (!ssl->buffers.certificate || !ssl->buffers.certificate->buffer)) {
  20221. ret = ssl->ctx->CBClientCert(ssl, &x509, &pkey);
  20222. if (ret == 1) {
  20223. if ((wolfSSL_use_certificate(ssl, x509) != WOLFSSL_SUCCESS) ||
  20224. (wolfSSL_use_PrivateKey(ssl, pkey) != WOLFSSL_SUCCESS)) {
  20225. return CLIENT_CERT_CB_ERROR;
  20226. }
  20227. wolfSSL_X509_free(x509);
  20228. wolfSSL_EVP_PKEY_free(pkey);
  20229. } else if (ret < 0) {
  20230. return WOLFSSL_ERROR_WANT_X509_LOOKUP;
  20231. }
  20232. }
  20233. if ((ret = CertSetupCbWrapper(ssl)) != 0)
  20234. return ret;
  20235. #endif
  20236. /* don't send client cert or cert verify if user hasn't provided
  20237. cert and private key */
  20238. if (ssl->buffers.certificate && ssl->buffers.certificate->buffer) {
  20239. #ifdef HAVE_PK_CALLBACKS
  20240. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx)) {
  20241. WOLFSSL_MSG("Using PK for client private key");
  20242. ssl->options.sendVerify = SEND_CERT;
  20243. }
  20244. #endif
  20245. if (ssl->buffers.key && ssl->buffers.key->buffer) {
  20246. ssl->options.sendVerify = SEND_CERT;
  20247. }
  20248. }
  20249. #ifdef OPENSSL_EXTRA
  20250. else
  20251. #else
  20252. else if (IsTLS(ssl))
  20253. #endif
  20254. {
  20255. ssl->options.sendVerify = SEND_BLANK_CERT;
  20256. }
  20257. if (IsEncryptionOn(ssl, 0)) {
  20258. *inOutIdx += ssl->keys.padSz;
  20259. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  20260. if (ssl->options.startedETMRead)
  20261. *inOutIdx += MacSize(ssl);
  20262. #endif
  20263. }
  20264. WOLFSSL_LEAVE("DoCertificateRequest", 0);
  20265. WOLFSSL_END(WC_FUNC_CERTIFICATE_REQUEST_DO);
  20266. return 0;
  20267. }
  20268. #endif /* !NO_CERTS */
  20269. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  20270. static int CheckCurveId(int tlsCurveId)
  20271. {
  20272. int ret = ECC_CURVE_ERROR;
  20273. switch (tlsCurveId) {
  20274. #if (defined(HAVE_ECC160) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 160
  20275. #ifndef NO_ECC_SECP
  20276. case WOLFSSL_ECC_SECP160R1: return ECC_SECP160R1_OID;
  20277. #endif /* !NO_ECC_SECP */
  20278. #ifdef HAVE_ECC_SECPR2
  20279. case WOLFSSL_ECC_SECP160R2: return ECC_SECP160R2_OID;
  20280. #endif /* HAVE_ECC_SECPR2 */
  20281. #ifdef HAVE_ECC_KOBLITZ
  20282. case WOLFSSL_ECC_SECP160K1: return ECC_SECP160K1_OID;
  20283. #endif /* HAVE_ECC_KOBLITZ */
  20284. #endif
  20285. #if (defined(HAVE_ECC192) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 192
  20286. #ifndef NO_ECC_SECP
  20287. case WOLFSSL_ECC_SECP192R1: return ECC_SECP192R1_OID;
  20288. #endif /* !NO_ECC_SECP */
  20289. #ifdef HAVE_ECC_KOBLITZ
  20290. case WOLFSSL_ECC_SECP192K1: return ECC_SECP192K1_OID;
  20291. #endif /* HAVE_ECC_KOBLITZ */
  20292. #endif
  20293. #if (defined(HAVE_ECC224) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 224
  20294. #ifndef NO_ECC_SECP
  20295. case WOLFSSL_ECC_SECP224R1: return ECC_SECP224R1_OID;
  20296. #endif /* !NO_ECC_SECP */
  20297. #ifdef HAVE_ECC_KOBLITZ
  20298. case WOLFSSL_ECC_SECP224K1: return ECC_SECP224K1_OID;
  20299. #endif /* HAVE_ECC_KOBLITZ */
  20300. #endif
  20301. #if defined(HAVE_CURVE25519) && ECC_MIN_KEY_SZ <= 256
  20302. case WOLFSSL_ECC_X25519: return ECC_X25519_OID;
  20303. #endif
  20304. #if (!defined(NO_ECC256) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 256
  20305. #ifndef NO_ECC_SECP
  20306. case WOLFSSL_ECC_SECP256R1: return ECC_SECP256R1_OID;
  20307. #endif /* !NO_ECC_SECP */
  20308. #ifdef HAVE_ECC_KOBLITZ
  20309. case WOLFSSL_ECC_SECP256K1: return ECC_SECP256K1_OID;
  20310. #endif /* HAVE_ECC_KOBLITZ */
  20311. #ifdef HAVE_ECC_BRAINPOOL
  20312. case WOLFSSL_ECC_BRAINPOOLP256R1: return ECC_BRAINPOOLP256R1_OID;
  20313. #endif /* HAVE_ECC_BRAINPOOL */
  20314. #endif
  20315. #if defined(HAVE_CURVE448) && ECC_MIN_KEY_SZ <= 448
  20316. case WOLFSSL_ECC_X448: return ECC_X448_OID;
  20317. #endif
  20318. #if (defined(HAVE_ECC384) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 384
  20319. #ifndef NO_ECC_SECP
  20320. case WOLFSSL_ECC_SECP384R1: return ECC_SECP384R1_OID;
  20321. #endif /* !NO_ECC_SECP */
  20322. #ifdef HAVE_ECC_BRAINPOOL
  20323. case WOLFSSL_ECC_BRAINPOOLP384R1: return ECC_BRAINPOOLP384R1_OID;
  20324. #endif /* HAVE_ECC_BRAINPOOL */
  20325. #endif
  20326. #if (defined(HAVE_ECC512) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 512
  20327. #ifdef HAVE_ECC_BRAINPOOL
  20328. case WOLFSSL_ECC_BRAINPOOLP512R1: return ECC_BRAINPOOLP512R1_OID;
  20329. #endif /* HAVE_ECC_BRAINPOOL */
  20330. #endif
  20331. #if (defined(HAVE_ECC521) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 521
  20332. #ifndef NO_ECC_SECP
  20333. case WOLFSSL_ECC_SECP521R1: return ECC_SECP521R1_OID;
  20334. #endif /* !NO_ECC_SECP */
  20335. #endif
  20336. default: break;
  20337. }
  20338. return ret;
  20339. }
  20340. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  20341. /* Persistable DoServerKeyExchange arguments */
  20342. typedef struct DskeArgs {
  20343. byte* output; /* not allocated */
  20344. #if !defined(NO_DH) || defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  20345. defined(HAVE_CURVE448)
  20346. byte* verifySig;
  20347. #endif
  20348. word32 idx;
  20349. word32 begin;
  20350. #if !defined(NO_DH) || defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  20351. defined(HAVE_CURVE448)
  20352. word16 verifySigSz;
  20353. #endif
  20354. word16 sigSz;
  20355. byte sigAlgo;
  20356. byte hashAlgo;
  20357. #if !defined(NO_RSA) && defined(WC_RSA_PSS)
  20358. int bits;
  20359. #endif
  20360. } DskeArgs;
  20361. static void FreeDskeArgs(WOLFSSL* ssl, void* pArgs)
  20362. {
  20363. DskeArgs* args = (DskeArgs*)pArgs;
  20364. (void)ssl;
  20365. (void)args;
  20366. #if !defined(NO_DH) || defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  20367. defined(HAVE_CURVE448)
  20368. if (args->verifySig) {
  20369. XFREE(args->verifySig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  20370. args->verifySig = NULL;
  20371. }
  20372. #endif
  20373. }
  20374. #ifndef NO_DH
  20375. static int GetDhPublicKey(WOLFSSL* ssl, const byte* input, word32 size,
  20376. DskeArgs* args)
  20377. {
  20378. int ret = 0;
  20379. word16 length;
  20380. #ifdef HAVE_FFDHE
  20381. const DhParams* params = NULL;
  20382. word16 group = 0;
  20383. #endif
  20384. if (ssl->buffers.weOwnDH) {
  20385. if (ssl->buffers.serverDH_P.buffer) {
  20386. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20387. DYNAMIC_TYPE_PUBLIC_KEY);
  20388. ssl->buffers.serverDH_P.buffer = NULL;
  20389. }
  20390. if (ssl->buffers.serverDH_G.buffer) {
  20391. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  20392. DYNAMIC_TYPE_PUBLIC_KEY);
  20393. ssl->buffers.serverDH_G.buffer = NULL;
  20394. }
  20395. }
  20396. if (ssl->buffers.serverDH_Pub.buffer) {
  20397. XFREE(ssl->buffers.serverDH_Pub.buffer, ssl->heap,
  20398. DYNAMIC_TYPE_PUBLIC_KEY);
  20399. ssl->buffers.serverDH_Pub.buffer = NULL;
  20400. }
  20401. /* p */
  20402. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20403. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20404. }
  20405. ato16(input + args->idx, &length);
  20406. args->idx += OPAQUE16_LEN;
  20407. if ((args->idx - args->begin) + length > size) {
  20408. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20409. }
  20410. if (length < ssl->options.minDhKeySz) {
  20411. WOLFSSL_MSG("Server using a DH key that is too small");
  20412. SendAlert(ssl, alert_fatal, handshake_failure);
  20413. ERROR_OUT(DH_KEY_SIZE_E, exit_gdpk);
  20414. }
  20415. if (length > ssl->options.maxDhKeySz) {
  20416. WOLFSSL_MSG("Server using a DH key that is too big");
  20417. SendAlert(ssl, alert_fatal, handshake_failure);
  20418. ERROR_OUT(DH_KEY_SIZE_E, exit_gdpk);
  20419. }
  20420. ssl->buffers.serverDH_P.buffer =
  20421. (byte*)XMALLOC(length, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  20422. if (ssl->buffers.serverDH_P.buffer) {
  20423. ssl->buffers.serverDH_P.length = length;
  20424. }
  20425. else {
  20426. ERROR_OUT(MEMORY_ERROR, exit_gdpk);
  20427. }
  20428. XMEMCPY(ssl->buffers.serverDH_P.buffer, input + args->idx,
  20429. length);
  20430. args->idx += length;
  20431. ssl->options.dhKeySz = length;
  20432. /* g */
  20433. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20434. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20435. DYNAMIC_TYPE_PUBLIC_KEY);
  20436. ssl->buffers.serverDH_P.buffer = NULL;
  20437. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20438. }
  20439. ato16(input + args->idx, &length);
  20440. args->idx += OPAQUE16_LEN;
  20441. if ((args->idx - args->begin) + length > size) {
  20442. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20443. DYNAMIC_TYPE_PUBLIC_KEY);
  20444. ssl->buffers.serverDH_P.buffer = NULL;
  20445. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20446. }
  20447. if (length > ssl->options.maxDhKeySz) {
  20448. WOLFSSL_MSG("Server using a DH key generator that is too big");
  20449. SendAlert(ssl, alert_fatal, handshake_failure);
  20450. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20451. DYNAMIC_TYPE_PUBLIC_KEY);
  20452. ssl->buffers.serverDH_P.buffer = NULL;
  20453. ERROR_OUT(DH_KEY_SIZE_E, exit_gdpk);
  20454. }
  20455. ssl->buffers.serverDH_G.buffer =
  20456. (byte*)XMALLOC(length, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  20457. if (ssl->buffers.serverDH_G.buffer) {
  20458. ssl->buffers.serverDH_G.length = length;
  20459. }
  20460. else {
  20461. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20462. DYNAMIC_TYPE_PUBLIC_KEY);
  20463. ssl->buffers.serverDH_P.buffer = NULL;
  20464. ERROR_OUT(MEMORY_ERROR, exit_gdpk);
  20465. }
  20466. XMEMCPY(ssl->buffers.serverDH_G.buffer, input + args->idx,
  20467. length);
  20468. args->idx += length;
  20469. /* pub */
  20470. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20471. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20472. DYNAMIC_TYPE_PUBLIC_KEY);
  20473. ssl->buffers.serverDH_P.buffer = NULL;
  20474. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  20475. DYNAMIC_TYPE_PUBLIC_KEY);
  20476. ssl->buffers.serverDH_G.buffer = NULL;
  20477. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20478. }
  20479. ato16(input + args->idx, &length);
  20480. args->idx += OPAQUE16_LEN;
  20481. if ((args->idx - args->begin) + length > size) {
  20482. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20483. DYNAMIC_TYPE_PUBLIC_KEY);
  20484. ssl->buffers.serverDH_P.buffer = NULL;
  20485. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  20486. DYNAMIC_TYPE_PUBLIC_KEY);
  20487. ssl->buffers.serverDH_G.buffer = NULL;
  20488. ERROR_OUT(BUFFER_ERROR, exit_gdpk);
  20489. }
  20490. if (length > ssl->options.maxDhKeySz) {
  20491. WOLFSSL_MSG("Server using a public DH key that is too big");
  20492. SendAlert(ssl, alert_fatal, handshake_failure);
  20493. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20494. DYNAMIC_TYPE_PUBLIC_KEY);
  20495. ssl->buffers.serverDH_P.buffer = NULL;
  20496. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  20497. DYNAMIC_TYPE_PUBLIC_KEY);
  20498. ssl->buffers.serverDH_G.buffer = NULL;
  20499. ERROR_OUT(DH_KEY_SIZE_E, exit_gdpk);
  20500. }
  20501. ssl->buffers.serverDH_Pub.buffer =
  20502. (byte*)XMALLOC(length, ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  20503. if (ssl->buffers.serverDH_Pub.buffer) {
  20504. ssl->buffers.serverDH_Pub.length = length;
  20505. }
  20506. else {
  20507. XFREE(ssl->buffers.serverDH_P.buffer, ssl->heap,
  20508. DYNAMIC_TYPE_PUBLIC_KEY);
  20509. ssl->buffers.serverDH_P.buffer = NULL;
  20510. XFREE(ssl->buffers.serverDH_G.buffer, ssl->heap,
  20511. DYNAMIC_TYPE_PUBLIC_KEY);
  20512. ssl->buffers.serverDH_G.buffer = NULL;
  20513. ERROR_OUT(MEMORY_ERROR, exit_gdpk);
  20514. }
  20515. XMEMCPY(ssl->buffers.serverDH_Pub.buffer, input + args->idx,
  20516. length);
  20517. ssl->buffers.weOwnDH = 1;
  20518. args->idx += length;
  20519. #ifdef HAVE_FFDHE
  20520. switch (ssl->options.dhKeySz) {
  20521. #ifdef HAVE_FFDHE_2048
  20522. case 2048/8:
  20523. params = wc_Dh_ffdhe2048_Get();
  20524. group = WOLFSSL_FFDHE_2048;
  20525. break;
  20526. #endif
  20527. #ifdef HAVE_FFDHE_3072
  20528. case 3072/8:
  20529. params = wc_Dh_ffdhe3072_Get();
  20530. group = WOLFSSL_FFDHE_3072;
  20531. break;
  20532. #endif
  20533. #ifdef HAVE_FFDHE_4096
  20534. case 4096/8:
  20535. params = wc_Dh_ffdhe4096_Get();
  20536. group = WOLFSSL_FFDHE_4096;
  20537. break;
  20538. #endif
  20539. #ifdef HAVE_FFDHE_6144
  20540. case 6144/8:
  20541. params = wc_Dh_ffdhe6144_Get();
  20542. group = WOLFSSL_FFDHE_6144;
  20543. break;
  20544. #endif
  20545. #ifdef HAVE_FFDHE_8192
  20546. case 8192/8:
  20547. params = wc_Dh_ffdhe8192_Get();
  20548. group = WOLFSSL_FFDHE_8192;
  20549. break;
  20550. #endif
  20551. default:
  20552. break;
  20553. }
  20554. if (params == NULL || params->g_len != ssl->buffers.serverDH_G.length ||
  20555. (XMEMCMP(ssl->buffers.serverDH_G.buffer, params->g,
  20556. params->g_len) != 0) ||
  20557. (XMEMCMP(ssl->buffers.serverDH_P.buffer, params->p,
  20558. params->p_len) != 0)) {
  20559. WOLFSSL_MSG("Server not using FFDHE parameters");
  20560. #ifdef WOLFSSL_REQUIRE_FFDHE
  20561. SendAlert(ssl, alert_fatal, handshake_failure);
  20562. ERROR_OUT(DH_PARAMS_NOT_FFDHE_E, exit_gdpk);
  20563. #endif
  20564. }
  20565. else {
  20566. ssl->namedGroup = group;
  20567. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && !defined(HAVE_FIPS) && \
  20568. !defined(HAVE_SELFTEST)
  20569. ssl->options.dhDoKeyTest = 0;
  20570. #endif
  20571. }
  20572. #endif /* HAVE_FFDHE */
  20573. exit_gdpk:
  20574. return ret;
  20575. }
  20576. #endif
  20577. /* handle processing of server_key_exchange (12) */
  20578. static int DoServerKeyExchange(WOLFSSL* ssl, const byte* input,
  20579. word32* inOutIdx, word32 size)
  20580. {
  20581. int ret = 0;
  20582. #ifdef WOLFSSL_ASYNC_CRYPT
  20583. DskeArgs* args = (DskeArgs*)ssl->async.args;
  20584. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  20585. (void)sizeof(args_test);
  20586. #else
  20587. DskeArgs args[1];
  20588. #endif
  20589. (void)input;
  20590. (void)size;
  20591. WOLFSSL_START(WC_FUNC_SERVER_KEY_EXCHANGE_DO);
  20592. WOLFSSL_ENTER("DoServerKeyExchange");
  20593. #ifdef WOLFSSL_ASYNC_CRYPT
  20594. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  20595. if (ret != WC_NOT_PENDING_E) {
  20596. /* Check for error */
  20597. if (ret < 0)
  20598. goto exit_dske;
  20599. }
  20600. else
  20601. #endif
  20602. {
  20603. /* Reset state */
  20604. ret = 0;
  20605. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  20606. XMEMSET(args, 0, sizeof(DskeArgs));
  20607. args->idx = *inOutIdx;
  20608. args->begin = *inOutIdx;
  20609. args->sigAlgo = ssl->specs.sig_algo;
  20610. args->hashAlgo = sha_mac;
  20611. #ifdef WOLFSSL_ASYNC_CRYPT
  20612. ssl->async.freeArgs = FreeDskeArgs;
  20613. #endif
  20614. }
  20615. switch(ssl->options.asyncState)
  20616. {
  20617. case TLS_ASYNC_BEGIN:
  20618. {
  20619. #ifdef WOLFSSL_CALLBACKS
  20620. if (ssl->hsInfoOn)
  20621. AddPacketName(ssl, "ServerKeyExchange");
  20622. if (ssl->toInfoOn)
  20623. AddLateName("ServerKeyExchange", &ssl->timeoutInfo);
  20624. #endif
  20625. switch(ssl->specs.kea)
  20626. {
  20627. #ifndef NO_PSK
  20628. case psk_kea:
  20629. {
  20630. int srvHintLen;
  20631. word16 length;
  20632. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20633. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20634. }
  20635. ato16(input + args->idx, &length);
  20636. args->idx += OPAQUE16_LEN;
  20637. if ((args->idx - args->begin) + length > size) {
  20638. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20639. }
  20640. /* get PSK server hint from the wire */
  20641. srvHintLen = min(length, MAX_PSK_ID_LEN);
  20642. XMEMCPY(ssl->arrays->server_hint, input + args->idx,
  20643. srvHintLen);
  20644. ssl->arrays->server_hint[srvHintLen] = '\0'; /* null term */
  20645. args->idx += length;
  20646. break;
  20647. }
  20648. #endif /* !NO_PSK */
  20649. #ifndef NO_DH
  20650. case diffie_hellman_kea:
  20651. {
  20652. ret = GetDhPublicKey(ssl, input, size, args);
  20653. if (ret != 0)
  20654. goto exit_dske;
  20655. break;
  20656. }
  20657. #endif /* !NO_DH */
  20658. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  20659. defined(HAVE_CURVE448)
  20660. case ecc_diffie_hellman_kea:
  20661. {
  20662. byte b;
  20663. #ifdef HAVE_ECC
  20664. int curveId;
  20665. #endif
  20666. int curveOid;
  20667. word16 length;
  20668. if ((args->idx - args->begin) + ENUM_LEN + OPAQUE16_LEN +
  20669. OPAQUE8_LEN > size) {
  20670. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20671. }
  20672. b = input[args->idx++];
  20673. if (b != named_curve) {
  20674. ERROR_OUT(ECC_CURVETYPE_ERROR, exit_dske);
  20675. }
  20676. args->idx += 1; /* curve type, eat leading 0 */
  20677. b = input[args->idx++];
  20678. if ((curveOid = CheckCurveId(b)) < 0) {
  20679. ERROR_OUT(ECC_CURVE_ERROR, exit_dske);
  20680. }
  20681. ssl->ecdhCurveOID = curveOid;
  20682. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  20683. ssl->namedGroup = 0;
  20684. #endif
  20685. length = input[args->idx++];
  20686. if ((args->idx - args->begin) + length > size) {
  20687. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20688. }
  20689. #ifdef HAVE_CURVE25519
  20690. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  20691. if (ssl->peerX25519Key == NULL) {
  20692. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE25519,
  20693. (void**)&ssl->peerX25519Key);
  20694. if (ret != 0) {
  20695. goto exit_dske;
  20696. }
  20697. } else if (ssl->peerX25519KeyPresent) {
  20698. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE25519,
  20699. ssl->peerX25519Key);
  20700. ssl->peerX25519KeyPresent = 0;
  20701. if (ret != 0) {
  20702. goto exit_dske;
  20703. }
  20704. }
  20705. if ((ret = wc_curve25519_check_public(
  20706. input + args->idx, length,
  20707. EC25519_LITTLE_ENDIAN)) != 0) {
  20708. #ifdef WOLFSSL_EXTRA_ALERTS
  20709. if (ret == BUFFER_E)
  20710. SendAlert(ssl, alert_fatal, decode_error);
  20711. else if (ret == ECC_OUT_OF_RANGE_E)
  20712. SendAlert(ssl, alert_fatal, bad_record_mac);
  20713. else {
  20714. SendAlert(ssl, alert_fatal, illegal_parameter);
  20715. }
  20716. #endif
  20717. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20718. }
  20719. if (wc_curve25519_import_public_ex(input + args->idx,
  20720. length, ssl->peerX25519Key,
  20721. EC25519_LITTLE_ENDIAN) != 0) {
  20722. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20723. }
  20724. args->idx += length;
  20725. ssl->peerX25519KeyPresent = 1;
  20726. break;
  20727. }
  20728. #endif
  20729. #ifdef HAVE_CURVE448
  20730. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  20731. if (ssl->peerX448Key == NULL) {
  20732. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE448,
  20733. (void**)&ssl->peerX448Key);
  20734. if (ret != 0) {
  20735. goto exit_dske;
  20736. }
  20737. } else if (ssl->peerX448KeyPresent) {
  20738. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE448,
  20739. ssl->peerX448Key);
  20740. ssl->peerX448KeyPresent = 0;
  20741. if (ret != 0) {
  20742. goto exit_dske;
  20743. }
  20744. }
  20745. if ((ret = wc_curve448_check_public(
  20746. input + args->idx, length,
  20747. EC448_LITTLE_ENDIAN)) != 0) {
  20748. #ifdef WOLFSSL_EXTRA_ALERTS
  20749. if (ret == BUFFER_E)
  20750. SendAlert(ssl, alert_fatal, decode_error);
  20751. else if (ret == ECC_OUT_OF_RANGE_E)
  20752. SendAlert(ssl, alert_fatal, bad_record_mac);
  20753. else {
  20754. SendAlert(ssl, alert_fatal, illegal_parameter);
  20755. }
  20756. #endif
  20757. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20758. }
  20759. if (wc_curve448_import_public_ex(input + args->idx,
  20760. length, ssl->peerX448Key,
  20761. EC448_LITTLE_ENDIAN) != 0) {
  20762. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20763. }
  20764. args->idx += length;
  20765. ssl->peerX448KeyPresent = 1;
  20766. break;
  20767. }
  20768. #endif
  20769. #ifdef HAVE_ECC
  20770. if (ssl->peerEccKey == NULL) {
  20771. ret = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  20772. (void**)&ssl->peerEccKey);
  20773. if (ret != 0) {
  20774. goto exit_dske;
  20775. }
  20776. } else if (ssl->peerEccKeyPresent) {
  20777. ret = ReuseKey(ssl, DYNAMIC_TYPE_ECC, ssl->peerEccKey);
  20778. ssl->peerEccKeyPresent = 0;
  20779. if (ret != 0) {
  20780. goto exit_dske;
  20781. }
  20782. }
  20783. curveId = wc_ecc_get_oid(curveOid, NULL, NULL);
  20784. if (wc_ecc_import_x963_ex(input + args->idx, length,
  20785. ssl->peerEccKey, curveId) != 0) {
  20786. #ifdef WOLFSSL_EXTRA_ALERTS
  20787. SendAlert(ssl, alert_fatal, illegal_parameter);
  20788. #endif
  20789. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20790. }
  20791. args->idx += length;
  20792. ssl->peerEccKeyPresent = 1;
  20793. #endif
  20794. break;
  20795. }
  20796. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  20797. #if !defined(NO_DH) && !defined(NO_PSK)
  20798. case dhe_psk_kea:
  20799. {
  20800. int srvHintLen;
  20801. word16 length;
  20802. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20803. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20804. }
  20805. ato16(input + args->idx, &length);
  20806. args->idx += OPAQUE16_LEN;
  20807. if ((args->idx - args->begin) + length > size) {
  20808. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20809. }
  20810. /* get PSK server hint from the wire */
  20811. srvHintLen = min(length, MAX_PSK_ID_LEN);
  20812. XMEMCPY(ssl->arrays->server_hint, input + args->idx,
  20813. srvHintLen);
  20814. ssl->arrays->server_hint[srvHintLen] = '\0'; /* null term */
  20815. args->idx += length;
  20816. ret = GetDhPublicKey(ssl, input, size, args);
  20817. if (ret != 0)
  20818. goto exit_dske;
  20819. break;
  20820. }
  20821. #endif /* !NO_DH && !NO_PSK */
  20822. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  20823. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  20824. case ecdhe_psk_kea:
  20825. {
  20826. byte b;
  20827. int curveOid, curveId;
  20828. int srvHintLen;
  20829. word16 length;
  20830. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  20831. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20832. }
  20833. ato16(input + args->idx, &length);
  20834. args->idx += OPAQUE16_LEN;
  20835. if ((args->idx - args->begin) + length > size) {
  20836. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20837. }
  20838. /* get PSK server hint from the wire */
  20839. srvHintLen = min(length, MAX_PSK_ID_LEN);
  20840. XMEMCPY(ssl->arrays->server_hint, input + args->idx,
  20841. srvHintLen);
  20842. ssl->arrays->server_hint[srvHintLen] = '\0'; /* null term */
  20843. args->idx += length;
  20844. if ((args->idx - args->begin) + ENUM_LEN + OPAQUE16_LEN +
  20845. OPAQUE8_LEN > size) {
  20846. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20847. }
  20848. /* Check curve name and ID */
  20849. b = input[args->idx++];
  20850. if (b != named_curve) {
  20851. ERROR_OUT(ECC_CURVETYPE_ERROR, exit_dske);
  20852. }
  20853. args->idx += 1; /* curve type, eat leading 0 */
  20854. b = input[args->idx++];
  20855. if ((curveOid = CheckCurveId(b)) < 0) {
  20856. ERROR_OUT(ECC_CURVE_ERROR, exit_dske);
  20857. }
  20858. length = input[args->idx++];
  20859. if ((args->idx - args->begin) + length > size) {
  20860. ERROR_OUT(BUFFER_ERROR, exit_dske);
  20861. }
  20862. #ifdef HAVE_CURVE25519
  20863. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  20864. if (ssl->peerX25519Key == NULL) {
  20865. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE25519,
  20866. (void**)&ssl->peerX25519Key);
  20867. if (ret != 0) {
  20868. goto exit_dske;
  20869. }
  20870. } else if (ssl->peerEccKeyPresent) {
  20871. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE25519,
  20872. ssl->peerX25519Key);
  20873. ssl->peerX25519KeyPresent = 0;
  20874. if (ret != 0) {
  20875. goto exit_dske;
  20876. }
  20877. }
  20878. if ((ret = wc_curve25519_check_public(
  20879. input + args->idx, length,
  20880. EC25519_LITTLE_ENDIAN)) != 0) {
  20881. #ifdef WOLFSSL_EXTRA_ALERTS
  20882. if (ret == BUFFER_E)
  20883. SendAlert(ssl, alert_fatal, decode_error);
  20884. else if (ret == ECC_OUT_OF_RANGE_E)
  20885. SendAlert(ssl, alert_fatal, bad_record_mac);
  20886. else {
  20887. SendAlert(ssl, alert_fatal, illegal_parameter);
  20888. }
  20889. #endif
  20890. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20891. }
  20892. if (wc_curve25519_import_public_ex(input + args->idx,
  20893. length, ssl->peerX25519Key,
  20894. EC25519_LITTLE_ENDIAN) != 0) {
  20895. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20896. }
  20897. args->idx += length;
  20898. ssl->peerX25519KeyPresent = 1;
  20899. break;
  20900. }
  20901. #endif
  20902. #ifdef HAVE_CURVE448
  20903. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  20904. if (ssl->peerX448Key == NULL) {
  20905. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE448,
  20906. (void**)&ssl->peerX448Key);
  20907. if (ret != 0) {
  20908. goto exit_dske;
  20909. }
  20910. } else if (ssl->peerEccKeyPresent) {
  20911. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE448,
  20912. ssl->peerX448Key);
  20913. ssl->peerX448KeyPresent = 0;
  20914. if (ret != 0) {
  20915. goto exit_dske;
  20916. }
  20917. }
  20918. if ((ret = wc_curve448_check_public(
  20919. input + args->idx, length,
  20920. EC448_LITTLE_ENDIAN)) != 0) {
  20921. #ifdef WOLFSSL_EXTRA_ALERTS
  20922. if (ret == BUFFER_E)
  20923. SendAlert(ssl, alert_fatal, decode_error);
  20924. else if (ret == ECC_OUT_OF_RANGE_E)
  20925. SendAlert(ssl, alert_fatal, bad_record_mac);
  20926. else {
  20927. SendAlert(ssl, alert_fatal, illegal_parameter);
  20928. }
  20929. #endif
  20930. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20931. }
  20932. if (wc_curve448_import_public_ex(input + args->idx,
  20933. length, ssl->peerX448Key,
  20934. EC448_LITTLE_ENDIAN) != 0) {
  20935. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20936. }
  20937. args->idx += length;
  20938. ssl->peerX448KeyPresent = 1;
  20939. break;
  20940. }
  20941. #endif
  20942. if (ssl->peerEccKey == NULL) {
  20943. ret = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  20944. (void**)&ssl->peerEccKey);
  20945. if (ret != 0) {
  20946. goto exit_dske;
  20947. }
  20948. } else if (ssl->peerEccKeyPresent) {
  20949. ret = ReuseKey(ssl, DYNAMIC_TYPE_ECC, ssl->peerEccKey);
  20950. ssl->peerEccKeyPresent = 0;
  20951. if (ret != 0) {
  20952. goto exit_dske;
  20953. }
  20954. }
  20955. curveId = wc_ecc_get_oid(curveOid, NULL, NULL);
  20956. if (wc_ecc_import_x963_ex(input + args->idx, length,
  20957. ssl->peerEccKey, curveId) != 0) {
  20958. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dske);
  20959. }
  20960. args->idx += length;
  20961. ssl->peerEccKeyPresent = 1;
  20962. break;
  20963. }
  20964. #endif /* (HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448) && !NO_PSK */
  20965. default:
  20966. ret = BAD_KEA_TYPE_E;
  20967. } /* switch(ssl->specs.kea) */
  20968. /* Check for error */
  20969. if (ret != 0) {
  20970. goto exit_dske;
  20971. }
  20972. /* Advance state and proceed */
  20973. ssl->options.asyncState = TLS_ASYNC_BUILD;
  20974. } /* case TLS_ASYNC_BEGIN */
  20975. FALL_THROUGH;
  20976. case TLS_ASYNC_BUILD:
  20977. {
  20978. switch(ssl->specs.kea)
  20979. {
  20980. case psk_kea:
  20981. case dhe_psk_kea:
  20982. case ecdhe_psk_kea:
  20983. {
  20984. /* Nothing to do in this sub-state */
  20985. break;
  20986. }
  20987. case diffie_hellman_kea:
  20988. case ecc_diffie_hellman_kea:
  20989. {
  20990. #if defined(NO_DH) && !defined(HAVE_ECC) && \
  20991. !defined(HAVE_CURVE25519) && !defined(HAVE_CURVE448)
  20992. ERROR_OUT(NOT_COMPILED_IN, exit_dske);
  20993. #else
  20994. enum wc_HashType hashType;
  20995. word16 verifySz;
  20996. if (ssl->options.usingAnon_cipher) {
  20997. break;
  20998. }
  20999. verifySz = (word16)(args->idx - args->begin);
  21000. if (verifySz > MAX_DH_SZ) {
  21001. ERROR_OUT(BUFFER_ERROR, exit_dske);
  21002. }
  21003. if (IsAtLeastTLSv1_2(ssl)) {
  21004. if ((args->idx - args->begin) + ENUM_LEN + ENUM_LEN >
  21005. size) {
  21006. ERROR_OUT(BUFFER_ERROR, exit_dske);
  21007. }
  21008. DecodeSigAlg(&input[args->idx], &args->hashAlgo,
  21009. &args->sigAlgo);
  21010. args->idx += 2;
  21011. hashType = HashAlgoToType(args->hashAlgo);
  21012. if (hashType == WC_HASH_TYPE_NONE) {
  21013. ERROR_OUT(ALGO_ID_E, exit_dske);
  21014. }
  21015. } else {
  21016. /* only using sha and md5 for rsa */
  21017. #ifndef NO_OLD_TLS
  21018. hashType = WC_HASH_TYPE_SHA;
  21019. if (args->sigAlgo == rsa_sa_algo) {
  21020. hashType = WC_HASH_TYPE_MD5_SHA;
  21021. }
  21022. #else
  21023. ERROR_OUT(ALGO_ID_E, exit_dske);
  21024. #endif
  21025. }
  21026. /* signature */
  21027. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  21028. ERROR_OUT(BUFFER_ERROR, exit_dske);
  21029. }
  21030. ato16(input + args->idx, &args->verifySigSz);
  21031. args->idx += OPAQUE16_LEN;
  21032. if ((args->idx - args->begin) + args->verifySigSz > size) {
  21033. ERROR_OUT(BUFFER_ERROR, exit_dske);
  21034. }
  21035. /* buffer for signature */
  21036. ssl->buffers.sig.buffer = (byte*)XMALLOC(SEED_LEN + verifySz,
  21037. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21038. if (ssl->buffers.sig.buffer == NULL) {
  21039. ERROR_OUT(MEMORY_E, exit_dske);
  21040. }
  21041. ssl->buffers.sig.length = SEED_LEN + verifySz;
  21042. /* build message to hash */
  21043. XMEMCPY(ssl->buffers.sig.buffer,
  21044. ssl->arrays->clientRandom, RAN_LEN);
  21045. XMEMCPY(&ssl->buffers.sig.buffer[RAN_LEN],
  21046. ssl->arrays->serverRandom, RAN_LEN);
  21047. XMEMCPY(&ssl->buffers.sig.buffer[RAN_LEN * 2],
  21048. input + args->begin, verifySz); /* message */
  21049. if (args->sigAlgo != ed25519_sa_algo) {
  21050. int digest_sz = wc_HashGetDigestSize(hashType);
  21051. if (digest_sz <= 0) {
  21052. ERROR_OUT(BUFFER_ERROR, exit_dske);
  21053. }
  21054. ssl->buffers.digest.length = (unsigned int)digest_sz;
  21055. /* buffer for hash */
  21056. ssl->buffers.digest.buffer = (byte*)XMALLOC(
  21057. ssl->buffers.digest.length, ssl->heap,
  21058. DYNAMIC_TYPE_DIGEST);
  21059. if (ssl->buffers.digest.buffer == NULL) {
  21060. ERROR_OUT(MEMORY_E, exit_dske);
  21061. }
  21062. /* Perform hash */
  21063. ret = wc_Hash(hashType, ssl->buffers.sig.buffer,
  21064. ssl->buffers.sig.length,
  21065. ssl->buffers.digest.buffer,
  21066. ssl->buffers.digest.length);
  21067. if (ret != 0) {
  21068. goto exit_dske;
  21069. }
  21070. }
  21071. switch (args->sigAlgo)
  21072. {
  21073. #ifndef NO_RSA
  21074. #ifdef WC_RSA_PSS
  21075. case rsa_pss_sa_algo:
  21076. #endif
  21077. case rsa_sa_algo:
  21078. {
  21079. if (ssl->peerRsaKey == NULL ||
  21080. !ssl->peerRsaKeyPresent) {
  21081. ERROR_OUT(NO_PEER_KEY, exit_dske);
  21082. }
  21083. break;
  21084. }
  21085. #endif /* !NO_RSA */
  21086. #ifdef HAVE_ECC
  21087. case ecc_dsa_sa_algo:
  21088. {
  21089. if (!ssl->peerEccDsaKeyPresent) {
  21090. ERROR_OUT(NO_PEER_KEY, exit_dske);
  21091. }
  21092. break;
  21093. }
  21094. #endif /* HAVE_ECC */
  21095. #if defined(HAVE_ED25519)
  21096. case ed25519_sa_algo:
  21097. {
  21098. if (!ssl->peerEd25519KeyPresent) {
  21099. ERROR_OUT(NO_PEER_KEY, exit_dske);
  21100. }
  21101. break;
  21102. }
  21103. #endif /* HAVE_ED25519 */
  21104. #if defined(HAVE_ED448)
  21105. case ed448_sa_algo:
  21106. {
  21107. if (!ssl->peerEd448KeyPresent) {
  21108. ERROR_OUT(NO_PEER_KEY, exit_dske);
  21109. }
  21110. break;
  21111. }
  21112. #endif /* HAVE_ED448 */
  21113. default:
  21114. ret = ALGO_ID_E;
  21115. } /* switch (args->sigAlgo) */
  21116. #endif /* NO_DH && !HAVE_ECC && !HAVE_ED25519 && !HAVE_ED448 */
  21117. break;
  21118. }
  21119. default:
  21120. ret = BAD_KEA_TYPE_E;
  21121. } /* switch(ssl->specs.kea) */
  21122. /* Check for error */
  21123. if (ret != 0) {
  21124. goto exit_dske;
  21125. }
  21126. /* Advance state and proceed */
  21127. ssl->options.asyncState = TLS_ASYNC_DO;
  21128. } /* case TLS_ASYNC_BUILD */
  21129. FALL_THROUGH;
  21130. case TLS_ASYNC_DO:
  21131. {
  21132. switch(ssl->specs.kea)
  21133. {
  21134. case psk_kea:
  21135. case dhe_psk_kea:
  21136. case ecdhe_psk_kea:
  21137. {
  21138. /* Nothing to do in this sub-state */
  21139. break;
  21140. }
  21141. case diffie_hellman_kea:
  21142. case ecc_diffie_hellman_kea:
  21143. {
  21144. #if defined(NO_DH) && !defined(HAVE_ECC) && \
  21145. !defined(HAVE_CURVE25519) && !defined(HAVE_CURVE448)
  21146. ERROR_OUT(NOT_COMPILED_IN, exit_dske);
  21147. #else
  21148. if (ssl->options.usingAnon_cipher) {
  21149. break;
  21150. }
  21151. if (args->verifySig == NULL) {
  21152. args->verifySig = (byte*)XMALLOC(args->verifySigSz,
  21153. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21154. if (args->verifySig == NULL) {
  21155. ERROR_OUT(MEMORY_E, exit_dske);
  21156. }
  21157. XMEMCPY(args->verifySig, input + args->idx,
  21158. args->verifySigSz);
  21159. }
  21160. switch (args->sigAlgo)
  21161. {
  21162. #ifndef NO_RSA
  21163. #ifdef WC_RSA_PSS
  21164. case rsa_pss_sa_algo:
  21165. #endif
  21166. case rsa_sa_algo:
  21167. {
  21168. ret = RsaVerify(ssl,
  21169. args->verifySig, args->verifySigSz,
  21170. &args->output,
  21171. args->sigAlgo, args->hashAlgo,
  21172. ssl->peerRsaKey,
  21173. #ifdef HAVE_PK_CALLBACKS
  21174. &ssl->buffers.peerRsaKey
  21175. #else
  21176. NULL
  21177. #endif
  21178. );
  21179. if (ret >= 0) {
  21180. args->sigSz = (word16)ret;
  21181. #ifdef WC_RSA_PSS
  21182. args->bits = mp_count_bits(&ssl->peerRsaKey->n);
  21183. #endif
  21184. ret = 0;
  21185. }
  21186. #ifdef WOLFSSL_ASYNC_CRYPT
  21187. if (ret != WC_PENDING_E)
  21188. #endif
  21189. {
  21190. /* peerRsaKey */
  21191. FreeKey(ssl, DYNAMIC_TYPE_RSA,
  21192. (void**)&ssl->peerRsaKey);
  21193. ssl->peerRsaKeyPresent = 0;
  21194. }
  21195. break;
  21196. }
  21197. #endif /* !NO_RSA */
  21198. #ifdef HAVE_ECC
  21199. case ecc_dsa_sa_algo:
  21200. {
  21201. ret = EccVerify(ssl,
  21202. args->verifySig, args->verifySigSz,
  21203. ssl->buffers.digest.buffer,
  21204. ssl->buffers.digest.length,
  21205. ssl->peerEccDsaKey,
  21206. #ifdef HAVE_PK_CALLBACKS
  21207. &ssl->buffers.peerEccDsaKey
  21208. #else
  21209. NULL
  21210. #endif
  21211. );
  21212. #ifdef WOLFSSL_ASYNC_CRYPT
  21213. if (ret != WC_PENDING_E)
  21214. #endif
  21215. {
  21216. /* peerEccDsaKey */
  21217. FreeKey(ssl, DYNAMIC_TYPE_ECC,
  21218. (void**)&ssl->peerEccDsaKey);
  21219. ssl->peerEccDsaKeyPresent = 0;
  21220. }
  21221. break;
  21222. }
  21223. #endif /* HAVE_ECC */
  21224. #if defined(HAVE_ED25519)
  21225. case ed25519_sa_algo:
  21226. {
  21227. ret = Ed25519Verify(ssl,
  21228. args->verifySig, args->verifySigSz,
  21229. ssl->buffers.sig.buffer,
  21230. ssl->buffers.sig.length,
  21231. ssl->peerEd25519Key,
  21232. #ifdef HAVE_PK_CALLBACKS
  21233. &ssl->buffers.peerEd25519Key
  21234. #else
  21235. NULL
  21236. #endif
  21237. );
  21238. #ifdef WOLFSSL_ASYNC_CRYPT
  21239. if (ret != WC_PENDING_E)
  21240. #endif
  21241. {
  21242. /* peerEccDsaKey */
  21243. FreeKey(ssl, DYNAMIC_TYPE_ED25519,
  21244. (void**)&ssl->peerEd25519Key);
  21245. ssl->peerEd25519KeyPresent = 0;
  21246. }
  21247. break;
  21248. }
  21249. #endif /* HAVE_ED25519 */
  21250. #if defined(HAVE_ED448)
  21251. case ed448_sa_algo:
  21252. {
  21253. ret = Ed448Verify(ssl,
  21254. args->verifySig, args->verifySigSz,
  21255. ssl->buffers.sig.buffer,
  21256. ssl->buffers.sig.length,
  21257. ssl->peerEd448Key,
  21258. #ifdef HAVE_PK_CALLBACKS
  21259. &ssl->buffers.peerEd448Key
  21260. #else
  21261. NULL
  21262. #endif
  21263. );
  21264. #ifdef WOLFSSL_ASYNC_CRYPT
  21265. if (ret != WC_PENDING_E)
  21266. #endif
  21267. {
  21268. /* peerEccDsaKey */
  21269. FreeKey(ssl, DYNAMIC_TYPE_ED448,
  21270. (void**)&ssl->peerEd448Key);
  21271. ssl->peerEd448KeyPresent = 0;
  21272. }
  21273. break;
  21274. }
  21275. #endif /* HAVE_ED448 */
  21276. default:
  21277. ret = ALGO_ID_E;
  21278. } /* switch (sigAlgo) */
  21279. #endif /* NO_DH && !HAVE_ECC && !HAVE_ED25519 && !HAVE_ED448 */
  21280. break;
  21281. }
  21282. default:
  21283. ret = BAD_KEA_TYPE_E;
  21284. } /* switch(ssl->specs.kea) */
  21285. /* Check for error */
  21286. if (ret != 0) {
  21287. goto exit_dske;
  21288. }
  21289. /* Advance state and proceed */
  21290. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  21291. } /* case TLS_ASYNC_DO */
  21292. FALL_THROUGH;
  21293. case TLS_ASYNC_VERIFY:
  21294. {
  21295. switch(ssl->specs.kea)
  21296. {
  21297. case psk_kea:
  21298. case dhe_psk_kea:
  21299. case ecdhe_psk_kea:
  21300. {
  21301. /* Nothing to do in this sub-state */
  21302. break;
  21303. }
  21304. case diffie_hellman_kea:
  21305. case ecc_diffie_hellman_kea:
  21306. {
  21307. #if defined(NO_DH) && !defined(HAVE_ECC) && \
  21308. !defined(HAVE_CURVE25519) && !defined(HAVE_CURVE448)
  21309. ERROR_OUT(NOT_COMPILED_IN, exit_dske);
  21310. #else
  21311. if (ssl->options.usingAnon_cipher) {
  21312. break;
  21313. }
  21314. /* increment index after verify is done */
  21315. args->idx += args->verifySigSz;
  21316. switch(args->sigAlgo)
  21317. {
  21318. #ifndef NO_RSA
  21319. #ifdef WC_RSA_PSS
  21320. case rsa_pss_sa_algo:
  21321. #ifdef HAVE_SELFTEST
  21322. ret = wc_RsaPSS_CheckPadding(
  21323. ssl->buffers.digest.buffer,
  21324. ssl->buffers.digest.length,
  21325. args->output, args->sigSz,
  21326. HashAlgoToType(args->hashAlgo));
  21327. #else
  21328. ret = wc_RsaPSS_CheckPadding_ex(
  21329. ssl->buffers.digest.buffer,
  21330. ssl->buffers.digest.length,
  21331. args->output, args->sigSz,
  21332. HashAlgoToType(args->hashAlgo),
  21333. -1, args->bits);
  21334. #endif
  21335. if (ret != 0)
  21336. return ret;
  21337. break;
  21338. #endif
  21339. case rsa_sa_algo:
  21340. {
  21341. if (IsAtLeastTLSv1_2(ssl)) {
  21342. #ifdef WOLFSSL_SMALL_STACK
  21343. byte* encodedSig;
  21344. #else
  21345. byte encodedSig[MAX_ENCODED_SIG_SZ];
  21346. #endif
  21347. word32 encSigSz;
  21348. #ifdef WOLFSSL_SMALL_STACK
  21349. encodedSig = (byte*)XMALLOC(MAX_ENCODED_SIG_SZ,
  21350. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21351. if (encodedSig == NULL) {
  21352. ERROR_OUT(MEMORY_E, exit_dske);
  21353. }
  21354. #endif
  21355. encSigSz = wc_EncodeSignature(encodedSig,
  21356. ssl->buffers.digest.buffer,
  21357. ssl->buffers.digest.length,
  21358. TypeHash(args->hashAlgo));
  21359. if (encSigSz != args->sigSz || !args->output ||
  21360. XMEMCMP(args->output, encodedSig,
  21361. min(encSigSz, MAX_ENCODED_SIG_SZ)) != 0) {
  21362. ret = VERIFY_SIGN_ERROR;
  21363. }
  21364. #ifdef WOLFSSL_SMALL_STACK
  21365. XFREE(encodedSig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21366. #endif
  21367. if (ret != 0) {
  21368. goto exit_dske;
  21369. }
  21370. }
  21371. else if (args->sigSz != FINISHED_SZ ||
  21372. !args->output ||
  21373. XMEMCMP(args->output,
  21374. ssl->buffers.digest.buffer,
  21375. FINISHED_SZ) != 0) {
  21376. ERROR_OUT(VERIFY_SIGN_ERROR, exit_dske);
  21377. }
  21378. break;
  21379. }
  21380. #endif /* !NO_RSA */
  21381. #ifdef HAVE_ECC
  21382. case ecc_dsa_sa_algo:
  21383. /* Nothing to do in this algo */
  21384. break;
  21385. #endif /* HAVE_ECC */
  21386. #if defined(HAVE_ED25519)
  21387. case ed25519_sa_algo:
  21388. /* Nothing to do in this algo */
  21389. break;
  21390. #endif /* HAVE_ED25519 */
  21391. #if defined(HAVE_ED448)
  21392. case ed448_sa_algo:
  21393. /* Nothing to do in this algo */
  21394. break;
  21395. #endif /* HAVE_ED448 */
  21396. default:
  21397. ret = ALGO_ID_E;
  21398. } /* switch (sigAlgo) */
  21399. #endif /* NO_DH && !HAVE_ECC && !HAVE_ED25519 && !HAVE_ED448 */
  21400. break;
  21401. }
  21402. default:
  21403. ret = BAD_KEA_TYPE_E;
  21404. } /* switch(ssl->specs.kea) */
  21405. /* Check for error */
  21406. if (ret != 0) {
  21407. goto exit_dske;
  21408. }
  21409. /* Advance state and proceed */
  21410. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  21411. } /* case TLS_ASYNC_VERIFY */
  21412. FALL_THROUGH;
  21413. case TLS_ASYNC_FINALIZE:
  21414. {
  21415. if (IsEncryptionOn(ssl, 0)) {
  21416. args->idx += ssl->keys.padSz;
  21417. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  21418. if (ssl->options.startedETMRead)
  21419. args->idx += MacSize(ssl);
  21420. #endif
  21421. }
  21422. /* Advance state and proceed */
  21423. ssl->options.asyncState = TLS_ASYNC_END;
  21424. } /* case TLS_ASYNC_FINALIZE */
  21425. FALL_THROUGH;
  21426. case TLS_ASYNC_END:
  21427. {
  21428. /* return index */
  21429. *inOutIdx = args->idx;
  21430. ssl->options.serverState = SERVER_KEYEXCHANGE_COMPLETE;
  21431. break;
  21432. }
  21433. default:
  21434. ret = INPUT_CASE_ERROR;
  21435. } /* switch(ssl->options.asyncState) */
  21436. exit_dske:
  21437. WOLFSSL_LEAVE("DoServerKeyExchange", ret);
  21438. WOLFSSL_END(WC_FUNC_SERVER_KEY_EXCHANGE_DO);
  21439. #ifdef WOLFSSL_ASYNC_CRYPT
  21440. /* Handle async operation */
  21441. if (ret == WC_PENDING_E) {
  21442. /* Mark message as not received so it can process again */
  21443. ssl->msgsReceived.got_server_key_exchange = 0;
  21444. return ret;
  21445. }
  21446. #endif /* WOLFSSL_ASYNC_CRYPT */
  21447. /* Final cleanup */
  21448. FreeDskeArgs(ssl, args);
  21449. FreeKeyExchange(ssl);
  21450. return ret;
  21451. }
  21452. typedef struct SckeArgs {
  21453. byte* output; /* not allocated */
  21454. byte* encSecret;
  21455. byte* input;
  21456. word32 encSz;
  21457. word32 length;
  21458. int sendSz;
  21459. int inputSz;
  21460. } SckeArgs;
  21461. static void FreeSckeArgs(WOLFSSL* ssl, void* pArgs)
  21462. {
  21463. SckeArgs* args = (SckeArgs*)pArgs;
  21464. (void)ssl;
  21465. if (args->encSecret) {
  21466. XFREE(args->encSecret, ssl->heap, DYNAMIC_TYPE_SECRET);
  21467. args->encSecret = NULL;
  21468. }
  21469. if (args->input) {
  21470. XFREE(args->input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  21471. args->input = NULL;
  21472. }
  21473. }
  21474. /* handle generation client_key_exchange (16) */
  21475. int SendClientKeyExchange(WOLFSSL* ssl)
  21476. {
  21477. int ret = 0;
  21478. #ifdef WOLFSSL_ASYNC_CRYPT
  21479. SckeArgs* args = (SckeArgs*)ssl->async.args;
  21480. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  21481. (void)sizeof(args_test);
  21482. #else
  21483. SckeArgs args[1];
  21484. #endif
  21485. WOLFSSL_START(WC_FUNC_CLIENT_KEY_EXCHANGE_SEND);
  21486. WOLFSSL_ENTER("SendClientKeyExchange");
  21487. #ifdef OPENSSL_EXTRA
  21488. ssl->options.clientState = CLIENT_KEYEXCHANGE_COMPLETE;
  21489. ssl->cbmode = SSL_CB_MODE_WRITE;
  21490. if (ssl->CBIS != NULL)
  21491. ssl->CBIS(ssl, SSL_CB_CONNECT_LOOP, SSL_SUCCESS);
  21492. #endif
  21493. #ifdef WOLFSSL_ASYNC_CRYPT
  21494. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  21495. if (ret != WC_NOT_PENDING_E) {
  21496. /* Check for error */
  21497. if (ret < 0)
  21498. goto exit_scke;
  21499. }
  21500. else
  21501. #endif
  21502. {
  21503. /* Reset state */
  21504. ret = 0;
  21505. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  21506. XMEMSET(args, 0, sizeof(SckeArgs));
  21507. #ifdef WOLFSSL_ASYNC_CRYPT
  21508. ssl->async.freeArgs = FreeSckeArgs;
  21509. #endif
  21510. }
  21511. switch(ssl->options.asyncState)
  21512. {
  21513. case TLS_ASYNC_BEGIN:
  21514. {
  21515. switch (ssl->specs.kea) {
  21516. #ifndef NO_RSA
  21517. case rsa_kea:
  21518. if (ssl->peerRsaKey == NULL ||
  21519. ssl->peerRsaKeyPresent == 0) {
  21520. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21521. }
  21522. break;
  21523. #endif
  21524. #ifndef NO_DH
  21525. case diffie_hellman_kea:
  21526. if (ssl->buffers.serverDH_P.buffer == NULL ||
  21527. ssl->buffers.serverDH_G.buffer == NULL ||
  21528. ssl->buffers.serverDH_Pub.buffer == NULL) {
  21529. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21530. }
  21531. break;
  21532. #endif /* NO_DH */
  21533. #ifndef NO_PSK
  21534. case psk_kea:
  21535. /* sanity check that PSK client callback has been set */
  21536. if (ssl->options.client_psk_cb == NULL) {
  21537. WOLFSSL_MSG("No client PSK callback set");
  21538. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21539. }
  21540. break;
  21541. #endif /* NO_PSK */
  21542. #if !defined(NO_DH) && !defined(NO_PSK)
  21543. case dhe_psk_kea:
  21544. if (ssl->buffers.serverDH_P.buffer == NULL ||
  21545. ssl->buffers.serverDH_G.buffer == NULL ||
  21546. ssl->buffers.serverDH_Pub.buffer == NULL) {
  21547. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21548. }
  21549. /* sanity check that PSK client callback has been set */
  21550. if (ssl->options.client_psk_cb == NULL) {
  21551. WOLFSSL_MSG("No client PSK callback set");
  21552. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21553. }
  21554. break;
  21555. #endif /* !NO_DH && !NO_PSK */
  21556. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  21557. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  21558. case ecdhe_psk_kea:
  21559. /* sanity check that PSK client callback has been set */
  21560. if (ssl->options.client_psk_cb == NULL) {
  21561. WOLFSSL_MSG("No client PSK callback set");
  21562. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21563. }
  21564. #ifdef HAVE_CURVE25519
  21565. if (ssl->peerX25519KeyPresent) {
  21566. /* Check client ECC public key */
  21567. if (!ssl->peerX25519Key || !ssl->peerX25519Key->dp) {
  21568. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21569. }
  21570. #ifdef HAVE_PK_CALLBACKS
  21571. /* if callback then use it for shared secret */
  21572. if (ssl->ctx->X25519SharedSecretCb != NULL) {
  21573. break;
  21574. }
  21575. #endif
  21576. /* create private key */
  21577. ssl->hsType = DYNAMIC_TYPE_CURVE25519;
  21578. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21579. if (ret != 0) {
  21580. goto exit_scke;
  21581. }
  21582. ret = X25519MakeKey(ssl, (curve25519_key*)ssl->hsKey,
  21583. ssl->peerX25519Key);
  21584. break;
  21585. }
  21586. #endif
  21587. #ifdef HAVE_CURVE448
  21588. if (ssl->peerX448KeyPresent) {
  21589. /* Check client ECC public key */
  21590. if (!ssl->peerX448Key) {
  21591. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21592. }
  21593. #ifdef HAVE_PK_CALLBACKS
  21594. /* if callback then use it for shared secret */
  21595. if (ssl->ctx->X448SharedSecretCb != NULL) {
  21596. break;
  21597. }
  21598. #endif
  21599. /* create private key */
  21600. ssl->hsType = DYNAMIC_TYPE_CURVE448;
  21601. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21602. if (ret != 0) {
  21603. goto exit_scke;
  21604. }
  21605. ret = X448MakeKey(ssl, (curve448_key*)ssl->hsKey,
  21606. ssl->peerX448Key);
  21607. break;
  21608. }
  21609. #endif
  21610. /* Check client ECC public key */
  21611. if (!ssl->peerEccKey || !ssl->peerEccKeyPresent ||
  21612. !ssl->peerEccKey->dp) {
  21613. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21614. }
  21615. #ifdef HAVE_PK_CALLBACKS
  21616. /* if callback then use it for shared secret */
  21617. if (ssl->ctx->EccSharedSecretCb != NULL) {
  21618. break;
  21619. }
  21620. #endif
  21621. /* create ephemeral private key */
  21622. ssl->hsType = DYNAMIC_TYPE_ECC;
  21623. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21624. if (ret != 0) {
  21625. goto exit_scke;
  21626. }
  21627. ret = EccMakeKey(ssl, (ecc_key*)ssl->hsKey, ssl->peerEccKey);
  21628. break;
  21629. #endif /* (HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448) && !NO_PSK */
  21630. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  21631. defined(HAVE_CURVE448)
  21632. case ecc_diffie_hellman_kea:
  21633. {
  21634. #ifdef HAVE_ECC
  21635. ecc_key* peerKey;
  21636. #endif
  21637. #ifdef HAVE_PK_CALLBACKS
  21638. /* if callback then use it for shared secret */
  21639. #ifdef HAVE_CURVE25519
  21640. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  21641. if (ssl->ctx->X25519SharedSecretCb != NULL)
  21642. break;
  21643. }
  21644. else
  21645. #endif
  21646. #ifdef HAVE_CURVE448
  21647. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  21648. if (ssl->ctx->X448SharedSecretCb != NULL)
  21649. break;
  21650. }
  21651. else
  21652. #endif
  21653. #ifdef HAVE_ECC
  21654. if (ssl->ctx->EccSharedSecretCb != NULL) {
  21655. break;
  21656. }
  21657. else
  21658. #endif
  21659. {
  21660. }
  21661. #endif /* HAVE_PK_CALLBACKS */
  21662. #ifdef HAVE_CURVE25519
  21663. if (ssl->peerX25519KeyPresent) {
  21664. if (!ssl->peerX25519Key || !ssl->peerX25519Key->dp) {
  21665. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21666. }
  21667. /* create private key */
  21668. ssl->hsType = DYNAMIC_TYPE_CURVE25519;
  21669. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21670. if (ret != 0) {
  21671. goto exit_scke;
  21672. }
  21673. ret = X25519MakeKey(ssl, (curve25519_key*)ssl->hsKey,
  21674. ssl->peerX25519Key);
  21675. break;
  21676. }
  21677. #endif
  21678. #ifdef HAVE_CURVE448
  21679. if (ssl->peerX448KeyPresent) {
  21680. if (!ssl->peerX448Key) {
  21681. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21682. }
  21683. /* create private key */
  21684. ssl->hsType = DYNAMIC_TYPE_CURVE448;
  21685. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21686. if (ret != 0) {
  21687. goto exit_scke;
  21688. }
  21689. ret = X448MakeKey(ssl, (curve448_key*)ssl->hsKey,
  21690. ssl->peerX448Key);
  21691. break;
  21692. }
  21693. #endif
  21694. #ifdef HAVE_ECC
  21695. if (ssl->specs.static_ecdh) {
  21696. /* Note: EccDsa is really fixed Ecc key here */
  21697. if (!ssl->peerEccDsaKey || !ssl->peerEccDsaKeyPresent) {
  21698. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21699. }
  21700. peerKey = ssl->peerEccDsaKey;
  21701. }
  21702. else {
  21703. if (!ssl->peerEccKey || !ssl->peerEccKeyPresent) {
  21704. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21705. }
  21706. peerKey = ssl->peerEccKey;
  21707. }
  21708. if (peerKey == NULL) {
  21709. ERROR_OUT(NO_PEER_KEY, exit_scke);
  21710. }
  21711. /* create ephemeral private key */
  21712. ssl->hsType = DYNAMIC_TYPE_ECC;
  21713. ret = AllocKey(ssl, ssl->hsType, &ssl->hsKey);
  21714. if (ret != 0) {
  21715. goto exit_scke;
  21716. }
  21717. ret = EccMakeKey(ssl, (ecc_key*)ssl->hsKey, peerKey);
  21718. #endif
  21719. break;
  21720. }
  21721. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  21722. default:
  21723. ret = BAD_KEA_TYPE_E;
  21724. } /* switch(ssl->specs.kea) */
  21725. /* Check for error */
  21726. if (ret != 0) {
  21727. goto exit_scke;
  21728. }
  21729. /* Advance state and proceed */
  21730. ssl->options.asyncState = TLS_ASYNC_BUILD;
  21731. } /* case TLS_ASYNC_BEGIN */
  21732. FALL_THROUGH;
  21733. case TLS_ASYNC_BUILD:
  21734. {
  21735. args->encSz = MAX_ENCRYPT_SZ;
  21736. args->encSecret = (byte*)XMALLOC(MAX_ENCRYPT_SZ, ssl->heap,
  21737. DYNAMIC_TYPE_SECRET);
  21738. if (args->encSecret == NULL) {
  21739. ERROR_OUT(MEMORY_E, exit_scke);
  21740. }
  21741. if (ssl->arrays->preMasterSecret == NULL) {
  21742. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  21743. ssl->arrays->preMasterSecret = (byte*)XMALLOC(ENCRYPT_LEN,
  21744. ssl->heap, DYNAMIC_TYPE_SECRET);
  21745. if (ssl->arrays->preMasterSecret == NULL) {
  21746. ERROR_OUT(MEMORY_E, exit_scke);
  21747. }
  21748. XMEMSET(ssl->arrays->preMasterSecret, 0, ENCRYPT_LEN);
  21749. }
  21750. switch(ssl->specs.kea)
  21751. {
  21752. #ifndef NO_RSA
  21753. case rsa_kea:
  21754. {
  21755. /* build PreMasterSecret with RNG data */
  21756. #if defined(WOLFSSL_RENESAS_TSIP_TLS) && \
  21757. !defined(NO_WOLFSSL_RENESAS_TSIP_TLS_SESSION)
  21758. if (tsip_useable(ssl)) {
  21759. ret = tsip_generatePremasterSecret(
  21760. &ssl->arrays->preMasterSecret[VERSION_SZ],
  21761. ENCRYPT_LEN - VERSION_SZ);
  21762. } else {
  21763. #endif
  21764. ret = wc_RNG_GenerateBlock(ssl->rng,
  21765. &ssl->arrays->preMasterSecret[VERSION_SZ],
  21766. SECRET_LEN - VERSION_SZ);
  21767. #if defined(WOLFSSL_RENESAS_TSIP_TLS) && \
  21768. !defined(NO_WOLFSSL_RENESAS_TSIP_TLS_SESSION)
  21769. }
  21770. #endif
  21771. if (ret != 0) {
  21772. goto exit_scke;
  21773. }
  21774. ssl->arrays->preMasterSecret[0] = ssl->chVersion.major;
  21775. ssl->arrays->preMasterSecret[1] = ssl->chVersion.minor;
  21776. ssl->arrays->preMasterSz = SECRET_LEN;
  21777. break;
  21778. }
  21779. #endif /* !NO_RSA */
  21780. #ifndef NO_DH
  21781. case diffie_hellman_kea:
  21782. {
  21783. ssl->buffers.sig.length = ENCRYPT_LEN;
  21784. ssl->buffers.sig.buffer = (byte*)XMALLOC(ENCRYPT_LEN,
  21785. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21786. if (ssl->buffers.sig.buffer == NULL) {
  21787. ERROR_OUT(MEMORY_E, exit_scke);
  21788. }
  21789. ret = AllocKey(ssl, DYNAMIC_TYPE_DH,
  21790. (void**)&ssl->buffers.serverDH_Key);
  21791. if (ret != 0) {
  21792. goto exit_scke;
  21793. }
  21794. #if !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST) && \
  21795. !defined(WOLFSSL_OLD_PRIME_CHECK)
  21796. if (ssl->options.dhDoKeyTest &&
  21797. !ssl->options.dhKeyTested)
  21798. {
  21799. ret = wc_DhSetCheckKey(ssl->buffers.serverDH_Key,
  21800. ssl->buffers.serverDH_P.buffer,
  21801. ssl->buffers.serverDH_P.length,
  21802. ssl->buffers.serverDH_G.buffer,
  21803. ssl->buffers.serverDH_G.length,
  21804. NULL, 0, 0, ssl->rng);
  21805. if (ret != 0) {
  21806. goto exit_scke;
  21807. }
  21808. ssl->options.dhKeyTested = 1;
  21809. }
  21810. else
  21811. #endif
  21812. {
  21813. ret = wc_DhSetKey(ssl->buffers.serverDH_Key,
  21814. ssl->buffers.serverDH_P.buffer,
  21815. ssl->buffers.serverDH_P.length,
  21816. ssl->buffers.serverDH_G.buffer,
  21817. ssl->buffers.serverDH_G.length);
  21818. if (ret != 0) {
  21819. goto exit_scke;
  21820. }
  21821. }
  21822. /* for DH, encSecret is Yc, agree is pre-master */
  21823. ret = DhGenKeyPair(ssl, ssl->buffers.serverDH_Key,
  21824. ssl->buffers.sig.buffer, (word32*)&ssl->buffers.sig.length,
  21825. args->encSecret, &args->encSz);
  21826. /* set the max agree result size */
  21827. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  21828. break;
  21829. }
  21830. #endif /* !NO_DH */
  21831. #ifndef NO_PSK
  21832. case psk_kea:
  21833. {
  21834. byte* pms = ssl->arrays->preMasterSecret;
  21835. ssl->arrays->psk_keySz = ssl->options.client_psk_cb(ssl,
  21836. ssl->arrays->server_hint, ssl->arrays->client_identity,
  21837. MAX_PSK_ID_LEN, ssl->arrays->psk_key, MAX_PSK_KEY_LEN);
  21838. if (ssl->arrays->psk_keySz == 0 ||
  21839. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  21840. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21841. }
  21842. ssl->arrays->client_identity[MAX_PSK_ID_LEN] = '\0'; /* null term */
  21843. args->encSz = (word32)XSTRLEN(ssl->arrays->client_identity);
  21844. if (args->encSz > MAX_PSK_ID_LEN) {
  21845. ERROR_OUT(CLIENT_ID_ERROR, exit_scke);
  21846. }
  21847. XMEMCPY(args->encSecret, ssl->arrays->client_identity,
  21848. args->encSz);
  21849. /* make psk pre master secret */
  21850. /* length of key + length 0s + length of key + key */
  21851. c16toa((word16)ssl->arrays->psk_keySz, pms);
  21852. pms += OPAQUE16_LEN;
  21853. XMEMSET(pms, 0, ssl->arrays->psk_keySz);
  21854. pms += ssl->arrays->psk_keySz;
  21855. c16toa((word16)ssl->arrays->psk_keySz, pms);
  21856. pms += OPAQUE16_LEN;
  21857. XMEMCPY(pms, ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  21858. ssl->arrays->preMasterSz = (ssl->arrays->psk_keySz * 2) +
  21859. (2 * OPAQUE16_LEN);
  21860. ForceZero(ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  21861. ssl->arrays->psk_keySz = 0; /* No further need */
  21862. break;
  21863. }
  21864. #endif /* !NO_PSK */
  21865. #if !defined(NO_DH) && !defined(NO_PSK)
  21866. case dhe_psk_kea:
  21867. {
  21868. word32 esSz = 0;
  21869. args->output = args->encSecret;
  21870. ssl->arrays->psk_keySz = ssl->options.client_psk_cb(ssl,
  21871. ssl->arrays->server_hint, ssl->arrays->client_identity,
  21872. MAX_PSK_ID_LEN, ssl->arrays->psk_key, MAX_PSK_KEY_LEN);
  21873. if (ssl->arrays->psk_keySz == 0 ||
  21874. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  21875. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21876. }
  21877. ssl->arrays->client_identity[MAX_PSK_ID_LEN] = '\0'; /* null term */
  21878. esSz = (word32)XSTRLEN(ssl->arrays->client_identity);
  21879. if (esSz > MAX_PSK_ID_LEN) {
  21880. ERROR_OUT(CLIENT_ID_ERROR, exit_scke);
  21881. }
  21882. ssl->buffers.sig.length = ENCRYPT_LEN;
  21883. ssl->buffers.sig.buffer = (byte*)XMALLOC(ENCRYPT_LEN,
  21884. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  21885. if (ssl->buffers.sig.buffer == NULL) {
  21886. ERROR_OUT(MEMORY_E, exit_scke);
  21887. }
  21888. c16toa((word16)esSz, args->output);
  21889. args->output += OPAQUE16_LEN;
  21890. XMEMCPY(args->output, ssl->arrays->client_identity, esSz);
  21891. args->output += esSz;
  21892. args->length = args->encSz - esSz - OPAQUE16_LEN;
  21893. args->encSz = esSz + OPAQUE16_LEN;
  21894. ret = AllocKey(ssl, DYNAMIC_TYPE_DH,
  21895. (void**)&ssl->buffers.serverDH_Key);
  21896. if (ret != 0) {
  21897. goto exit_scke;
  21898. }
  21899. #if !defined(HAVE_FIPS) && !defined(HAVE_SELFTEST) && \
  21900. !defined(WOLFSSL_OLD_PRIME_CHECK)
  21901. if (ssl->options.dhDoKeyTest &&
  21902. !ssl->options.dhKeyTested)
  21903. {
  21904. ret = wc_DhSetCheckKey(ssl->buffers.serverDH_Key,
  21905. ssl->buffers.serverDH_P.buffer,
  21906. ssl->buffers.serverDH_P.length,
  21907. ssl->buffers.serverDH_G.buffer,
  21908. ssl->buffers.serverDH_G.length,
  21909. NULL, 0, 0, ssl->rng);
  21910. if (ret != 0) {
  21911. goto exit_scke;
  21912. }
  21913. ssl->options.dhKeyTested = 1;
  21914. }
  21915. else
  21916. #endif
  21917. {
  21918. ret = wc_DhSetKey(ssl->buffers.serverDH_Key,
  21919. ssl->buffers.serverDH_P.buffer,
  21920. ssl->buffers.serverDH_P.length,
  21921. ssl->buffers.serverDH_G.buffer,
  21922. ssl->buffers.serverDH_G.length);
  21923. if (ret != 0) {
  21924. goto exit_scke;
  21925. }
  21926. }
  21927. /* for DH, encSecret is Yc, agree is pre-master */
  21928. ret = DhGenKeyPair(ssl, ssl->buffers.serverDH_Key,
  21929. ssl->buffers.sig.buffer, (word32*)&ssl->buffers.sig.length,
  21930. args->output + OPAQUE16_LEN, &args->length);
  21931. break;
  21932. }
  21933. #endif /* !NO_DH && !NO_PSK */
  21934. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  21935. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  21936. case ecdhe_psk_kea:
  21937. {
  21938. word32 esSz = 0;
  21939. args->output = args->encSecret;
  21940. /* Send PSK client identity */
  21941. ssl->arrays->psk_keySz = ssl->options.client_psk_cb(ssl,
  21942. ssl->arrays->server_hint, ssl->arrays->client_identity,
  21943. MAX_PSK_ID_LEN, ssl->arrays->psk_key, MAX_PSK_KEY_LEN);
  21944. if (ssl->arrays->psk_keySz == 0 ||
  21945. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  21946. ERROR_OUT(PSK_KEY_ERROR, exit_scke);
  21947. }
  21948. ssl->arrays->client_identity[MAX_PSK_ID_LEN] = '\0'; /* null term */
  21949. esSz = (word32)XSTRLEN(ssl->arrays->client_identity);
  21950. if (esSz > MAX_PSK_ID_LEN) {
  21951. ERROR_OUT(CLIENT_ID_ERROR, exit_scke);
  21952. }
  21953. /* place size and identity in output buffer sz:identity */
  21954. c16toa((word16)esSz, args->output);
  21955. args->output += OPAQUE16_LEN;
  21956. XMEMCPY(args->output, ssl->arrays->client_identity, esSz);
  21957. args->output += esSz;
  21958. args->encSz = esSz + OPAQUE16_LEN;
  21959. /* length is used for public key size */
  21960. args->length = MAX_ENCRYPT_SZ;
  21961. /* Create shared ECC key leaving room at the beginning
  21962. of buffer for size of shared key. */
  21963. ssl->arrays->preMasterSz = ENCRYPT_LEN - OPAQUE16_LEN;
  21964. #ifdef HAVE_CURVE25519
  21965. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  21966. #ifdef HAVE_PK_CALLBACKS
  21967. /* if callback then use it for shared secret */
  21968. if (ssl->ctx->X25519SharedSecretCb != NULL) {
  21969. break;
  21970. }
  21971. #endif
  21972. ret = wc_curve25519_export_public_ex(
  21973. (curve25519_key*)ssl->hsKey,
  21974. args->output + OPAQUE8_LEN, &args->length,
  21975. EC25519_LITTLE_ENDIAN);
  21976. if (ret != 0) {
  21977. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  21978. }
  21979. break;
  21980. }
  21981. #endif
  21982. #ifdef HAVE_CURVE448
  21983. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  21984. #ifdef HAVE_PK_CALLBACKS
  21985. /* if callback then use it for shared secret */
  21986. if (ssl->ctx->X448SharedSecretCb != NULL) {
  21987. break;
  21988. }
  21989. #endif
  21990. ret = wc_curve448_export_public_ex(
  21991. (curve448_key*)ssl->hsKey,
  21992. args->output + OPAQUE8_LEN, &args->length,
  21993. EC448_LITTLE_ENDIAN);
  21994. if (ret != 0) {
  21995. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  21996. }
  21997. break;
  21998. }
  21999. #endif
  22000. #ifdef HAVE_PK_CALLBACKS
  22001. /* if callback then use it for shared secret */
  22002. if (ssl->ctx->EccSharedSecretCb != NULL) {
  22003. break;
  22004. }
  22005. #endif
  22006. /* Place ECC key in output buffer, leaving room for size */
  22007. ret = wc_ecc_export_x963((ecc_key*)ssl->hsKey,
  22008. args->output + OPAQUE8_LEN, &args->length);
  22009. if (ret != 0) {
  22010. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  22011. }
  22012. break;
  22013. }
  22014. #endif /* (HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448) && !NO_PSK */
  22015. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  22016. defined(HAVE_CURVE448)
  22017. case ecc_diffie_hellman_kea:
  22018. {
  22019. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  22020. #ifdef HAVE_CURVE25519
  22021. if (ssl->hsType == DYNAMIC_TYPE_CURVE25519) {
  22022. #ifdef HAVE_PK_CALLBACKS
  22023. /* if callback then use it for shared secret */
  22024. if (ssl->ctx->X25519SharedSecretCb != NULL) {
  22025. break;
  22026. }
  22027. #endif
  22028. ret = wc_curve25519_export_public_ex(
  22029. (curve25519_key*)ssl->hsKey,
  22030. args->encSecret + OPAQUE8_LEN, &args->encSz,
  22031. EC25519_LITTLE_ENDIAN);
  22032. if (ret != 0) {
  22033. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  22034. }
  22035. break;
  22036. }
  22037. #endif
  22038. #ifdef HAVE_CURVE448
  22039. if (ssl->hsType == DYNAMIC_TYPE_CURVE448) {
  22040. #ifdef HAVE_PK_CALLBACKS
  22041. /* if callback then use it for shared secret */
  22042. if (ssl->ctx->X448SharedSecretCb != NULL) {
  22043. break;
  22044. }
  22045. #endif
  22046. ret = wc_curve448_export_public_ex(
  22047. (curve448_key*)ssl->hsKey,
  22048. args->encSecret + OPAQUE8_LEN, &args->encSz,
  22049. EC448_LITTLE_ENDIAN);
  22050. if (ret != 0) {
  22051. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  22052. }
  22053. break;
  22054. }
  22055. #endif
  22056. #if defined(HAVE_ECC) && defined(HAVE_ECC_KEY_EXPORT)
  22057. #ifdef HAVE_PK_CALLBACKS
  22058. /* if callback then use it for shared secret */
  22059. if (ssl->ctx->EccSharedSecretCb != NULL) {
  22060. break;
  22061. }
  22062. #endif
  22063. /* Place ECC key in buffer, leaving room for size */
  22064. ret = wc_ecc_export_x963((ecc_key*)ssl->hsKey,
  22065. args->encSecret + OPAQUE8_LEN, &args->encSz);
  22066. if (ret != 0) {
  22067. ERROR_OUT(ECC_EXPORT_ERROR, exit_scke);
  22068. }
  22069. #endif /* HAVE_ECC */
  22070. break;
  22071. }
  22072. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  22073. default:
  22074. ret = BAD_KEA_TYPE_E;
  22075. } /* switch(ssl->specs.kea) */
  22076. /* Check for error */
  22077. if (ret != 0) {
  22078. goto exit_scke;
  22079. }
  22080. /* Advance state and proceed */
  22081. ssl->options.asyncState = TLS_ASYNC_DO;
  22082. } /* case TLS_ASYNC_BUILD */
  22083. FALL_THROUGH;
  22084. case TLS_ASYNC_DO:
  22085. {
  22086. switch(ssl->specs.kea)
  22087. {
  22088. #ifndef NO_RSA
  22089. case rsa_kea:
  22090. {
  22091. #if defined(WOLFSSL_RENESAS_TSIP_TLS) && \
  22092. !defined(NO_WOLFSSL_RENESAS_TSIP_TLS_SESSION)
  22093. if (tsip_useable(ssl) &&
  22094. wc_RsaEncryptSize(ssl->peerRsaKey) == 256) {
  22095. ret = tsip_generateEncryptPreMasterSecret(ssl,
  22096. args->encSecret,
  22097. &args->encSz);
  22098. } else
  22099. #endif
  22100. ret = RsaEnc(ssl,
  22101. ssl->arrays->preMasterSecret, SECRET_LEN,
  22102. args->encSecret, &args->encSz,
  22103. ssl->peerRsaKey,
  22104. #if defined(HAVE_PK_CALLBACKS)
  22105. &ssl->buffers.peerRsaKey
  22106. #else
  22107. NULL
  22108. #endif
  22109. );
  22110. break;
  22111. }
  22112. #endif /* !NO_RSA */
  22113. #ifndef NO_DH
  22114. case diffie_hellman_kea:
  22115. {
  22116. ret = DhAgree(ssl, ssl->buffers.serverDH_Key,
  22117. ssl->buffers.sig.buffer, ssl->buffers.sig.length,
  22118. ssl->buffers.serverDH_Pub.buffer,
  22119. ssl->buffers.serverDH_Pub.length,
  22120. ssl->arrays->preMasterSecret,
  22121. &ssl->arrays->preMasterSz,
  22122. ssl->buffers.serverDH_P.buffer,
  22123. ssl->buffers.serverDH_P.length);
  22124. break;
  22125. }
  22126. #endif /* !NO_DH */
  22127. #ifndef NO_PSK
  22128. case psk_kea:
  22129. {
  22130. break;
  22131. }
  22132. #endif /* !NO_PSK */
  22133. #if !defined(NO_DH) && !defined(NO_PSK)
  22134. case dhe_psk_kea:
  22135. {
  22136. ret = DhAgree(ssl, ssl->buffers.serverDH_Key,
  22137. ssl->buffers.sig.buffer, ssl->buffers.sig.length,
  22138. ssl->buffers.serverDH_Pub.buffer,
  22139. ssl->buffers.serverDH_Pub.length,
  22140. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  22141. &ssl->arrays->preMasterSz,
  22142. ssl->buffers.serverDH_P.buffer,
  22143. ssl->buffers.serverDH_P.length);
  22144. break;
  22145. }
  22146. #endif /* !NO_DH && !NO_PSK */
  22147. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  22148. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  22149. case ecdhe_psk_kea:
  22150. {
  22151. #ifdef HAVE_CURVE25519
  22152. if (ssl->peerX25519KeyPresent) {
  22153. ret = X25519SharedSecret(ssl,
  22154. (curve25519_key*)ssl->hsKey, ssl->peerX25519Key,
  22155. args->output + OPAQUE8_LEN, &args->length,
  22156. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  22157. &ssl->arrays->preMasterSz,
  22158. WOLFSSL_CLIENT_END
  22159. );
  22160. if (!ssl->specs.static_ecdh
  22161. #ifdef WOLFSSL_ASYNC_CRYPT
  22162. && ret != WC_PENDING_E
  22163. #endif
  22164. ) {
  22165. FreeKey(ssl, DYNAMIC_TYPE_CURVE25519,
  22166. (void**)&ssl->peerX25519Key);
  22167. ssl->peerX25519KeyPresent = 0;
  22168. }
  22169. break;
  22170. }
  22171. #endif
  22172. #ifdef HAVE_CURVE448
  22173. if (ssl->peerX448KeyPresent) {
  22174. ret = X448SharedSecret(ssl,
  22175. (curve448_key*)ssl->hsKey, ssl->peerX448Key,
  22176. args->output + OPAQUE8_LEN, &args->length,
  22177. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  22178. &ssl->arrays->preMasterSz,
  22179. WOLFSSL_CLIENT_END
  22180. );
  22181. if (!ssl->specs.static_ecdh
  22182. #ifdef WOLFSSL_ASYNC_CRYPT
  22183. && ret != WC_PENDING_E
  22184. #endif
  22185. ) {
  22186. FreeKey(ssl, DYNAMIC_TYPE_CURVE448,
  22187. (void**)&ssl->peerX448Key);
  22188. ssl->peerX448KeyPresent = 0;
  22189. }
  22190. break;
  22191. }
  22192. #endif
  22193. ret = EccSharedSecret(ssl,
  22194. (ecc_key*)ssl->hsKey, ssl->peerEccKey,
  22195. args->output + OPAQUE8_LEN, &args->length,
  22196. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  22197. &ssl->arrays->preMasterSz,
  22198. WOLFSSL_CLIENT_END
  22199. );
  22200. #ifdef WOLFSSL_ASYNC_CRYPT
  22201. if (ret != WC_PENDING_E)
  22202. #endif
  22203. {
  22204. FreeKey(ssl, DYNAMIC_TYPE_ECC,
  22205. (void**)&ssl->peerEccKey);
  22206. ssl->peerEccKeyPresent = 0;
  22207. }
  22208. break;
  22209. }
  22210. #endif /* (HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448) && !NO_PSK */
  22211. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  22212. defined(HAVE_CURVE448)
  22213. case ecc_diffie_hellman_kea:
  22214. {
  22215. #ifdef HAVE_ECC
  22216. ecc_key* peerKey;
  22217. #endif
  22218. #ifdef HAVE_CURVE25519
  22219. if (ssl->peerX25519KeyPresent) {
  22220. ret = X25519SharedSecret(ssl,
  22221. (curve25519_key*)ssl->hsKey, ssl->peerX25519Key,
  22222. args->encSecret + OPAQUE8_LEN, &args->encSz,
  22223. ssl->arrays->preMasterSecret,
  22224. &ssl->arrays->preMasterSz,
  22225. WOLFSSL_CLIENT_END
  22226. );
  22227. if (!ssl->specs.static_ecdh
  22228. #ifdef WOLFSSL_ASYNC_CRYPT
  22229. && ret != WC_PENDING_E
  22230. #endif
  22231. ) {
  22232. FreeKey(ssl, DYNAMIC_TYPE_CURVE25519,
  22233. (void**)&ssl->peerX25519Key);
  22234. ssl->peerX25519KeyPresent = 0;
  22235. }
  22236. break;
  22237. }
  22238. #endif
  22239. #ifdef HAVE_CURVE448
  22240. if (ssl->peerX448KeyPresent) {
  22241. ret = X448SharedSecret(ssl,
  22242. (curve448_key*)ssl->hsKey, ssl->peerX448Key,
  22243. args->encSecret + OPAQUE8_LEN, &args->encSz,
  22244. ssl->arrays->preMasterSecret,
  22245. &ssl->arrays->preMasterSz,
  22246. WOLFSSL_CLIENT_END
  22247. );
  22248. if (!ssl->specs.static_ecdh
  22249. #ifdef WOLFSSL_ASYNC_CRYPT
  22250. && ret != WC_PENDING_E
  22251. #endif
  22252. ) {
  22253. FreeKey(ssl, DYNAMIC_TYPE_CURVE448,
  22254. (void**)&ssl->peerX448Key);
  22255. ssl->peerX448KeyPresent = 0;
  22256. }
  22257. break;
  22258. }
  22259. #endif
  22260. #ifdef HAVE_ECC
  22261. peerKey = (ssl->specs.static_ecdh) ?
  22262. ssl->peerEccDsaKey : ssl->peerEccKey;
  22263. ret = EccSharedSecret(ssl,
  22264. (ecc_key*)ssl->hsKey, peerKey,
  22265. args->encSecret + OPAQUE8_LEN, &args->encSz,
  22266. ssl->arrays->preMasterSecret,
  22267. &ssl->arrays->preMasterSz,
  22268. WOLFSSL_CLIENT_END
  22269. );
  22270. if (!ssl->specs.static_ecdh
  22271. #ifdef WOLFSSL_ASYNC_CRYPT
  22272. && ret != WC_PENDING_E
  22273. #endif
  22274. && !ssl->options.keepResources) {
  22275. FreeKey(ssl, DYNAMIC_TYPE_ECC,
  22276. (void**)&ssl->peerEccKey);
  22277. ssl->peerEccKeyPresent = 0;
  22278. }
  22279. #endif
  22280. break;
  22281. }
  22282. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  22283. default:
  22284. ret = BAD_KEA_TYPE_E;
  22285. } /* switch(ssl->specs.kea) */
  22286. /* Check for error */
  22287. if (ret != 0) {
  22288. goto exit_scke;
  22289. }
  22290. /* Advance state and proceed */
  22291. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  22292. } /* case TLS_ASYNC_DO */
  22293. FALL_THROUGH;
  22294. case TLS_ASYNC_VERIFY:
  22295. {
  22296. switch(ssl->specs.kea)
  22297. {
  22298. #ifndef NO_RSA
  22299. case rsa_kea:
  22300. {
  22301. break;
  22302. }
  22303. #endif /* !NO_RSA */
  22304. #ifndef NO_DH
  22305. case diffie_hellman_kea:
  22306. {
  22307. break;
  22308. }
  22309. #endif /* !NO_DH */
  22310. #ifndef NO_PSK
  22311. case psk_kea:
  22312. {
  22313. break;
  22314. }
  22315. #endif /* !NO_PSK */
  22316. #if !defined(NO_DH) && !defined(NO_PSK)
  22317. case dhe_psk_kea:
  22318. {
  22319. byte* pms = ssl->arrays->preMasterSecret;
  22320. /* validate args */
  22321. if (args->output == NULL || args->length == 0) {
  22322. ERROR_OUT(BAD_FUNC_ARG, exit_scke);
  22323. }
  22324. c16toa((word16)args->length, args->output);
  22325. args->encSz += args->length + OPAQUE16_LEN;
  22326. c16toa((word16)ssl->arrays->preMasterSz, pms);
  22327. ssl->arrays->preMasterSz += OPAQUE16_LEN;
  22328. pms += ssl->arrays->preMasterSz;
  22329. /* make psk pre master secret */
  22330. /* length of key + length 0s + length of key + key */
  22331. c16toa((word16)ssl->arrays->psk_keySz, pms);
  22332. pms += OPAQUE16_LEN;
  22333. XMEMCPY(pms, ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  22334. ssl->arrays->preMasterSz +=
  22335. ssl->arrays->psk_keySz + OPAQUE16_LEN;
  22336. ForceZero(ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  22337. ssl->arrays->psk_keySz = 0; /* No further need */
  22338. break;
  22339. }
  22340. #endif /* !NO_DH && !NO_PSK */
  22341. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  22342. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  22343. case ecdhe_psk_kea:
  22344. {
  22345. byte* pms = ssl->arrays->preMasterSecret;
  22346. /* validate args */
  22347. if (args->output == NULL || args->length > ENCRYPT_LEN) {
  22348. ERROR_OUT(BAD_FUNC_ARG, exit_scke);
  22349. }
  22350. /* place size of public key in output buffer */
  22351. *args->output = (byte)args->length;
  22352. args->encSz += args->length + OPAQUE8_LEN;
  22353. /* Create pre master secret is the concatenation of
  22354. eccSize + eccSharedKey + pskSize + pskKey */
  22355. c16toa((word16)ssl->arrays->preMasterSz, pms);
  22356. ssl->arrays->preMasterSz += OPAQUE16_LEN;
  22357. pms += ssl->arrays->preMasterSz;
  22358. c16toa((word16)ssl->arrays->psk_keySz, pms);
  22359. pms += OPAQUE16_LEN;
  22360. XMEMCPY(pms, ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  22361. ssl->arrays->preMasterSz +=
  22362. ssl->arrays->psk_keySz + OPAQUE16_LEN;
  22363. ForceZero(ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  22364. ssl->arrays->psk_keySz = 0; /* No further need */
  22365. break;
  22366. }
  22367. #endif /* (HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448) && !NO_PSK */
  22368. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  22369. defined(HAVE_CURVE448)
  22370. case ecc_diffie_hellman_kea:
  22371. {
  22372. /* place size of public key in buffer */
  22373. *args->encSecret = (byte)args->encSz;
  22374. args->encSz += OPAQUE8_LEN;
  22375. break;
  22376. }
  22377. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  22378. default:
  22379. ret = BAD_KEA_TYPE_E;
  22380. } /* switch(ssl->specs.kea) */
  22381. /* Check for error */
  22382. if (ret != 0) {
  22383. goto exit_scke;
  22384. }
  22385. /* Advance state and proceed */
  22386. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  22387. } /* case TLS_ASYNC_VERIFY */
  22388. FALL_THROUGH;
  22389. case TLS_ASYNC_FINALIZE:
  22390. {
  22391. word32 tlsSz = 0;
  22392. word32 idx = 0;
  22393. if (ssl->options.tls || ssl->specs.kea == diffie_hellman_kea) {
  22394. tlsSz = 2;
  22395. }
  22396. if (ssl->specs.kea == ecc_diffie_hellman_kea ||
  22397. ssl->specs.kea == dhe_psk_kea ||
  22398. ssl->specs.kea == ecdhe_psk_kea) { /* always off */
  22399. tlsSz = 0;
  22400. }
  22401. idx = HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  22402. args->sendSz = args->encSz + tlsSz + idx;
  22403. #ifdef WOLFSSL_DTLS
  22404. if (ssl->options.dtls) {
  22405. idx += DTLS_HANDSHAKE_EXTRA + DTLS_RECORD_EXTRA;
  22406. args->sendSz += DTLS_HANDSHAKE_EXTRA + DTLS_RECORD_EXTRA;
  22407. }
  22408. #endif
  22409. if (IsEncryptionOn(ssl, 1)) {
  22410. args->sendSz += MAX_MSG_EXTRA;
  22411. }
  22412. /* check for available size */
  22413. if ((ret = CheckAvailableSize(ssl, args->sendSz)) != 0) {
  22414. goto exit_scke;
  22415. }
  22416. /* get output buffer */
  22417. args->output = ssl->buffers.outputBuffer.buffer +
  22418. ssl->buffers.outputBuffer.length;
  22419. AddHeaders(args->output, args->encSz + tlsSz, client_key_exchange, ssl);
  22420. if (tlsSz) {
  22421. c16toa((word16)args->encSz, &args->output[idx]);
  22422. idx += OPAQUE16_LEN;
  22423. }
  22424. XMEMCPY(args->output + idx, args->encSecret, args->encSz);
  22425. idx += args->encSz;
  22426. if (IsEncryptionOn(ssl, 1)) {
  22427. int recordHeaderSz = RECORD_HEADER_SZ;
  22428. if (ssl->options.dtls)
  22429. recordHeaderSz += DTLS_RECORD_EXTRA;
  22430. args->inputSz = idx - recordHeaderSz; /* buildmsg adds rechdr */
  22431. args->input = (byte*)XMALLOC(args->inputSz, ssl->heap,
  22432. DYNAMIC_TYPE_IN_BUFFER);
  22433. if (args->input == NULL) {
  22434. ERROR_OUT(MEMORY_E, exit_scke);
  22435. }
  22436. XMEMCPY(args->input, args->output + recordHeaderSz,
  22437. args->inputSz);
  22438. }
  22439. /* Advance state and proceed */
  22440. ssl->options.asyncState = TLS_ASYNC_END;
  22441. } /* case TLS_ASYNC_FINALIZE */
  22442. FALL_THROUGH;
  22443. case TLS_ASYNC_END:
  22444. {
  22445. if (IsEncryptionOn(ssl, 1)) {
  22446. #ifdef WOLFSSL_DTLS
  22447. if (IsDtlsNotSctpMode(ssl) &&
  22448. (ret = DtlsMsgPoolSave(ssl, args->input, args->inputSz, client_key_exchange)) != 0) {
  22449. goto exit_scke;
  22450. }
  22451. #endif
  22452. ret = BuildMessage(ssl, args->output, args->sendSz,
  22453. args->input, args->inputSz, handshake, 1, 0, 0, CUR_ORDER);
  22454. XFREE(args->input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  22455. args->input = NULL; /* make sure its not double free'd on cleanup */
  22456. if (ret >= 0) {
  22457. args->sendSz = ret;
  22458. ret = 0;
  22459. }
  22460. }
  22461. else {
  22462. #ifdef WOLFSSL_DTLS
  22463. if (IsDtlsNotSctpMode(ssl)) {
  22464. if ((ret = DtlsMsgPoolSave(ssl, args->output, args->sendSz, client_key_exchange)) != 0) {
  22465. goto exit_scke;
  22466. }
  22467. }
  22468. if (ssl->options.dtls)
  22469. DtlsSEQIncrement(ssl, CUR_ORDER);
  22470. #endif
  22471. ret = HashOutput(ssl, args->output, args->sendSz, 0);
  22472. }
  22473. if (ret != 0) {
  22474. goto exit_scke;
  22475. }
  22476. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  22477. if (ssl->hsInfoOn)
  22478. AddPacketName(ssl, "ClientKeyExchange");
  22479. if (ssl->toInfoOn)
  22480. AddPacketInfo(ssl, "ClientKeyExchange", handshake,
  22481. args->output, args->sendSz, WRITE_PROTO, ssl->heap);
  22482. #endif
  22483. ssl->buffers.outputBuffer.length += args->sendSz;
  22484. if (!ssl->options.groupMessages) {
  22485. ret = SendBuffered(ssl);
  22486. }
  22487. if (ret == 0 || ret == WANT_WRITE) {
  22488. int tmpRet = MakeMasterSecret(ssl);
  22489. if (tmpRet != 0) {
  22490. ret = tmpRet; /* save WANT_WRITE unless more serious */
  22491. }
  22492. ssl->options.clientState = CLIENT_KEYEXCHANGE_COMPLETE;
  22493. }
  22494. #if defined(OPENSSL_EXTRA) && defined(HAVE_SECRET_CALLBACK)
  22495. if (ssl->keyLogCb != NULL) {
  22496. int secretSz = SECRET_LEN;
  22497. ret = ssl->keyLogCb(ssl, ssl->arrays->masterSecret, &secretSz,
  22498. NULL);
  22499. if (ret != 0 || secretSz != SECRET_LEN)
  22500. return SESSION_SECRET_CB_E;
  22501. }
  22502. #endif /* OPENSSL_EXTRA && HAVE_SECRET_CALLBACK */
  22503. break;
  22504. }
  22505. default:
  22506. ret = INPUT_CASE_ERROR;
  22507. } /* switch(ssl->options.asyncState) */
  22508. exit_scke:
  22509. WOLFSSL_LEAVE("SendClientKeyExchange", ret);
  22510. WOLFSSL_END(WC_FUNC_CLIENT_KEY_EXCHANGE_SEND);
  22511. #ifdef WOLFSSL_ASYNC_CRYPT
  22512. /* Handle async operation */
  22513. if (ret == WC_PENDING_E)
  22514. return ret;
  22515. #endif
  22516. /* No further need for PMS */
  22517. if (ssl->arrays->preMasterSecret != NULL) {
  22518. ForceZero(ssl->arrays->preMasterSecret, ssl->arrays->preMasterSz);
  22519. }
  22520. ssl->arrays->preMasterSz = 0;
  22521. /* Final cleanup */
  22522. FreeSckeArgs(ssl, args);
  22523. FreeKeyExchange(ssl);
  22524. return ret;
  22525. }
  22526. #endif /* !WOLFSSL_NO_TLS12 */
  22527. #ifndef NO_CERTS
  22528. #ifndef WOLFSSL_NO_TLS12
  22529. #ifndef WOLFSSL_NO_CLIENT_AUTH
  22530. typedef struct ScvArgs {
  22531. byte* output; /* not allocated */
  22532. #ifndef NO_RSA
  22533. byte* verifySig;
  22534. #endif
  22535. byte* verify; /* not allocated */
  22536. byte* input;
  22537. word32 idx;
  22538. word32 extraSz;
  22539. word32 sigSz;
  22540. int sendSz;
  22541. int inputSz;
  22542. word16 length;
  22543. byte sigAlgo;
  22544. } ScvArgs;
  22545. static void FreeScvArgs(WOLFSSL* ssl, void* pArgs)
  22546. {
  22547. ScvArgs* args = (ScvArgs*)pArgs;
  22548. (void)ssl;
  22549. #ifndef NO_RSA
  22550. if (args->verifySig) {
  22551. XFREE(args->verifySig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  22552. args->verifySig = NULL;
  22553. }
  22554. #endif
  22555. if (args->input) {
  22556. XFREE(args->input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  22557. args->input = NULL;
  22558. }
  22559. }
  22560. /* handle generation of certificate_verify (15) */
  22561. int SendCertificateVerify(WOLFSSL* ssl)
  22562. {
  22563. int ret = 0;
  22564. #ifdef WOLFSSL_ASYNC_CRYPT
  22565. ScvArgs* args = (ScvArgs*)ssl->async.args;
  22566. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  22567. (void)sizeof(args_test);
  22568. #else
  22569. ScvArgs args[1];
  22570. #endif
  22571. WOLFSSL_START(WC_FUNC_CERTIFICATE_VERIFY_SEND);
  22572. WOLFSSL_ENTER("SendCertificateVerify");
  22573. #ifdef WOLFSSL_ASYNC_CRYPT
  22574. /* BuildMessage does its own Pop */
  22575. if (ssl->error != WC_PENDING_E ||
  22576. ssl->options.asyncState != TLS_ASYNC_END)
  22577. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  22578. if (ret != WC_NOT_PENDING_E) {
  22579. /* Check for error */
  22580. if (ret < 0)
  22581. goto exit_scv;
  22582. }
  22583. else
  22584. #endif
  22585. {
  22586. /* Reset state */
  22587. ret = 0;
  22588. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  22589. XMEMSET(args, 0, sizeof(ScvArgs));
  22590. #ifdef WOLFSSL_ASYNC_CRYPT
  22591. ssl->async.freeArgs = FreeScvArgs;
  22592. #endif
  22593. }
  22594. switch(ssl->options.asyncState)
  22595. {
  22596. case TLS_ASYNC_BEGIN:
  22597. {
  22598. if (ssl->options.sendVerify == SEND_BLANK_CERT) {
  22599. return 0; /* sent blank cert, can't verify */
  22600. }
  22601. args->sendSz = MAX_CERT_VERIFY_SZ + MAX_MSG_EXTRA;
  22602. if (IsEncryptionOn(ssl, 1)) {
  22603. args->sendSz += MAX_MSG_EXTRA;
  22604. }
  22605. /* Use tmp buffer */
  22606. args->input = (byte*)XMALLOC(args->sendSz,
  22607. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  22608. if (args->input == NULL)
  22609. ERROR_OUT(MEMORY_E, exit_scv);
  22610. args->output = args->input;
  22611. /* Advance state and proceed */
  22612. ssl->options.asyncState = TLS_ASYNC_BUILD;
  22613. } /* case TLS_ASYNC_BEGIN */
  22614. FALL_THROUGH;
  22615. case TLS_ASYNC_BUILD:
  22616. {
  22617. ret = BuildCertHashes(ssl, &ssl->hsHashes->certHashes);
  22618. if (ret != 0) {
  22619. goto exit_scv;
  22620. }
  22621. if (ssl->buffers.key == NULL) {
  22622. #ifdef HAVE_PK_CALLBACKS
  22623. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx))
  22624. args->length = GetPrivateKeySigSize(ssl);
  22625. else
  22626. #endif
  22627. ERROR_OUT(NO_PRIVATE_KEY, exit_scv);
  22628. }
  22629. else {
  22630. /* Decode private key. */
  22631. ret = DecodePrivateKey(ssl, &args->length);
  22632. if (ret != 0) {
  22633. goto exit_scv;
  22634. }
  22635. }
  22636. if (args->length == 0) {
  22637. ERROR_OUT(NO_PRIVATE_KEY, exit_scv);
  22638. }
  22639. /* idx is used to track verify pointer offset to output */
  22640. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  22641. args->verify = &args->output[RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ];
  22642. args->extraSz = 0; /* tls 1.2 hash/sig */
  22643. /* build encoded signature buffer */
  22644. ssl->buffers.sig.length = MAX_ENCODED_SIG_SZ;
  22645. ssl->buffers.sig.buffer = (byte*)XMALLOC(MAX_ENCODED_SIG_SZ,
  22646. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  22647. if (ssl->buffers.sig.buffer == NULL) {
  22648. ERROR_OUT(MEMORY_E, exit_scv);
  22649. }
  22650. #ifdef WOLFSSL_DTLS
  22651. if (ssl->options.dtls) {
  22652. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  22653. args->verify += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  22654. }
  22655. #endif
  22656. #ifndef NO_OLD_TLS
  22657. #ifndef NO_SHA
  22658. /* old tls default */
  22659. SetDigest(ssl, sha_mac);
  22660. #endif
  22661. #else
  22662. #ifndef NO_SHA256
  22663. /* new tls default */
  22664. SetDigest(ssl, sha256_mac);
  22665. #endif
  22666. #endif /* !NO_OLD_TLS */
  22667. if (ssl->hsType == DYNAMIC_TYPE_RSA) {
  22668. #ifdef WC_RSA_PSS
  22669. if (IsAtLeastTLSv1_2(ssl) &&
  22670. (ssl->pssAlgo & (1 << ssl->suites->hashAlgo))) {
  22671. args->sigAlgo = rsa_pss_sa_algo;
  22672. }
  22673. else
  22674. #endif
  22675. args->sigAlgo = rsa_sa_algo;
  22676. }
  22677. else if (ssl->hsType == DYNAMIC_TYPE_ECC)
  22678. args->sigAlgo = ecc_dsa_sa_algo;
  22679. else if (ssl->hsType == DYNAMIC_TYPE_ED25519)
  22680. args->sigAlgo = ed25519_sa_algo;
  22681. else if (ssl->hsType == DYNAMIC_TYPE_ED448)
  22682. args->sigAlgo = ed448_sa_algo;
  22683. if (IsAtLeastTLSv1_2(ssl)) {
  22684. EncodeSigAlg(ssl->suites->hashAlgo, args->sigAlgo,
  22685. args->verify);
  22686. args->extraSz = HASH_SIG_SIZE;
  22687. SetDigest(ssl, ssl->suites->hashAlgo);
  22688. }
  22689. #ifndef NO_OLD_TLS
  22690. else {
  22691. /* if old TLS load MD5 and SHA hash as value to sign
  22692. * MD5 and SHA must be first two buffers in stucture */
  22693. XMEMCPY(ssl->buffers.sig.buffer,
  22694. (byte*)&ssl->hsHashes->certHashes, FINISHED_SZ);
  22695. }
  22696. #endif
  22697. #ifndef NO_RSA
  22698. if (args->sigAlgo == rsa_sa_algo) {
  22699. ssl->buffers.sig.length = FINISHED_SZ;
  22700. args->sigSz = ENCRYPT_LEN;
  22701. if (IsAtLeastTLSv1_2(ssl)) {
  22702. ssl->buffers.sig.length = wc_EncodeSignature(
  22703. ssl->buffers.sig.buffer, ssl->buffers.digest.buffer,
  22704. ssl->buffers.digest.length,
  22705. TypeHash(ssl->suites->hashAlgo));
  22706. }
  22707. /* prepend hdr */
  22708. c16toa(args->length, args->verify + args->extraSz);
  22709. }
  22710. #ifdef WC_RSA_PSS
  22711. else if (args->sigAlgo == rsa_pss_sa_algo) {
  22712. XMEMCPY(ssl->buffers.sig.buffer, ssl->buffers.digest.buffer,
  22713. ssl->buffers.digest.length);
  22714. ssl->buffers.sig.length = ssl->buffers.digest.length;
  22715. args->sigSz = ENCRYPT_LEN;
  22716. /* prepend hdr */
  22717. c16toa(args->length, args->verify + args->extraSz);
  22718. }
  22719. #endif
  22720. #endif /* !NO_RSA */
  22721. #if defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)
  22722. if (args->sigAlgo == ed25519_sa_algo) {
  22723. ret = Ed25519CheckPubKey(ssl);
  22724. if (ret != 0)
  22725. goto exit_scv;
  22726. }
  22727. #endif /* HAVE_ED25519 && !NO_ED25519_CLIENT_AUTH */
  22728. #if defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)
  22729. if (args->sigAlgo == ed448_sa_algo) {
  22730. ret = Ed448CheckPubKey(ssl);
  22731. if (ret != 0)
  22732. goto exit_scv;
  22733. }
  22734. #endif /* HAVE_ED448 && !NO_ED448_CLIENT_AUTH */
  22735. /* Advance state and proceed */
  22736. ssl->options.asyncState = TLS_ASYNC_DO;
  22737. } /* case TLS_ASYNC_BUILD */
  22738. FALL_THROUGH;
  22739. case TLS_ASYNC_DO:
  22740. {
  22741. #ifdef HAVE_ECC
  22742. if (ssl->hsType == DYNAMIC_TYPE_ECC) {
  22743. ecc_key* key = (ecc_key*)ssl->hsKey;
  22744. ret = EccSign(ssl,
  22745. ssl->buffers.digest.buffer, ssl->buffers.digest.length,
  22746. ssl->buffers.sig.buffer, (word32*)&ssl->buffers.sig.length,
  22747. key,
  22748. #ifdef HAVE_PK_CALLBACKS
  22749. ssl->buffers.key
  22750. #else
  22751. NULL
  22752. #endif
  22753. );
  22754. }
  22755. #endif /* HAVE_ECC */
  22756. #if defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)
  22757. if (ssl->hsType == DYNAMIC_TYPE_ED25519) {
  22758. ed25519_key* key = (ed25519_key*)ssl->hsKey;
  22759. ret = Ed25519Sign(ssl,
  22760. ssl->hsHashes->messages, ssl->hsHashes->length,
  22761. ssl->buffers.sig.buffer, (word32*)&ssl->buffers.sig.length,
  22762. key,
  22763. #ifdef HAVE_PK_CALLBACKS
  22764. ssl->buffers.key
  22765. #else
  22766. NULL
  22767. #endif
  22768. );
  22769. }
  22770. #endif /* HAVE_ED25519 && !NO_ED25519_CLIENT_AUTH */
  22771. #if defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)
  22772. if (ssl->hsType == DYNAMIC_TYPE_ED448) {
  22773. ed448_key* key = (ed448_key*)ssl->hsKey;
  22774. ret = Ed448Sign(ssl,
  22775. ssl->hsHashes->messages, ssl->hsHashes->length,
  22776. ssl->buffers.sig.buffer, (word32*)&ssl->buffers.sig.length,
  22777. key,
  22778. #ifdef HAVE_PK_CALLBACKS
  22779. ssl->buffers.key
  22780. #else
  22781. NULL
  22782. #endif
  22783. );
  22784. }
  22785. #endif /* HAVE_ED448 && !NO_ED448_CLIENT_AUTH */
  22786. #ifndef NO_RSA
  22787. if (ssl->hsType == DYNAMIC_TYPE_RSA) {
  22788. RsaKey* key = (RsaKey*)ssl->hsKey;
  22789. /* restore verify pointer */
  22790. args->verify = &args->output[args->idx];
  22791. ret = RsaSign(ssl,
  22792. ssl->buffers.sig.buffer, ssl->buffers.sig.length,
  22793. args->verify + args->extraSz + VERIFY_HEADER, &args->sigSz,
  22794. args->sigAlgo, ssl->suites->hashAlgo, key,
  22795. ssl->buffers.key
  22796. );
  22797. }
  22798. #endif /* !NO_RSA */
  22799. /* Check for error */
  22800. if (ret != 0) {
  22801. goto exit_scv;
  22802. }
  22803. /* Advance state and proceed */
  22804. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  22805. } /* case TLS_ASYNC_DO */
  22806. FALL_THROUGH;
  22807. case TLS_ASYNC_VERIFY:
  22808. {
  22809. /* restore verify pointer */
  22810. args->verify = &args->output[args->idx];
  22811. switch (ssl->hsType) {
  22812. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448)
  22813. #ifdef HAVE_ECC
  22814. case DYNAMIC_TYPE_ECC:
  22815. #endif
  22816. #ifdef HAVE_ED25519
  22817. case DYNAMIC_TYPE_ED25519:
  22818. #endif
  22819. #ifdef HAVE_ED448
  22820. case DYNAMIC_TYPE_ED448:
  22821. #endif
  22822. args->length = (word16)ssl->buffers.sig.length;
  22823. /* prepend hdr */
  22824. c16toa(args->length, args->verify + args->extraSz);
  22825. XMEMCPY(args->verify + args->extraSz + VERIFY_HEADER,
  22826. ssl->buffers.sig.buffer, ssl->buffers.sig.length);
  22827. break;
  22828. #endif
  22829. #ifndef NO_RSA
  22830. case DYNAMIC_TYPE_RSA:
  22831. {
  22832. RsaKey* key = (RsaKey*)ssl->hsKey;
  22833. if (args->verifySig == NULL) {
  22834. args->verifySig = (byte*)XMALLOC(args->sigSz, ssl->heap,
  22835. DYNAMIC_TYPE_SIGNATURE);
  22836. if (args->verifySig == NULL) {
  22837. ERROR_OUT(MEMORY_E, exit_scv);
  22838. }
  22839. XMEMCPY(args->verifySig, args->verify + args->extraSz +
  22840. VERIFY_HEADER, args->sigSz);
  22841. }
  22842. /* check for signature faults */
  22843. ret = VerifyRsaSign(ssl,
  22844. args->verifySig, args->sigSz,
  22845. ssl->buffers.sig.buffer, ssl->buffers.sig.length,
  22846. args->sigAlgo, ssl->suites->hashAlgo, key,
  22847. ssl->buffers.key
  22848. );
  22849. /* free temporary buffer now */
  22850. if (ret != WC_PENDING_E) {
  22851. XFREE(args->verifySig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  22852. args->verifySig = NULL;
  22853. }
  22854. break;
  22855. }
  22856. #endif /* !NO_RSA */
  22857. default:
  22858. break;
  22859. }
  22860. /* Check for error */
  22861. if (ret != 0) {
  22862. goto exit_scv;
  22863. }
  22864. /* Advance state and proceed */
  22865. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  22866. } /* case TLS_ASYNC_VERIFY */
  22867. FALL_THROUGH;
  22868. case TLS_ASYNC_FINALIZE:
  22869. {
  22870. if (args->output == NULL) {
  22871. ERROR_OUT(BUFFER_ERROR, exit_scv);
  22872. }
  22873. AddHeaders(args->output, (word32)args->length + args->extraSz +
  22874. VERIFY_HEADER, certificate_verify, ssl);
  22875. /* Advance state and proceed */
  22876. ssl->options.asyncState = TLS_ASYNC_END;
  22877. } /* case TLS_ASYNC_FINALIZE */
  22878. FALL_THROUGH;
  22879. case TLS_ASYNC_END:
  22880. {
  22881. ret = SendHandshakeMsg(ssl, args->output,
  22882. (word32)args->length + args->extraSz + VERIFY_HEADER,
  22883. certificate_verify, "CertificateVerify");
  22884. if (ret != 0)
  22885. goto exit_scv;
  22886. break;
  22887. }
  22888. default:
  22889. ret = INPUT_CASE_ERROR;
  22890. } /* switch(ssl->options.asyncState) */
  22891. exit_scv:
  22892. WOLFSSL_LEAVE("SendCertificateVerify", ret);
  22893. WOLFSSL_END(WC_FUNC_CERTIFICATE_VERIFY_SEND);
  22894. #ifdef WOLFSSL_ASYNC_CRYPT
  22895. /* Handle async operation */
  22896. if (ret == WC_PENDING_E) {
  22897. return ret;
  22898. }
  22899. #endif /* WOLFSSL_ASYNC_CRYPT */
  22900. /* Digest is not allocated, so do this to prevent free */
  22901. ssl->buffers.digest.buffer = NULL;
  22902. ssl->buffers.digest.length = 0;
  22903. /* Final cleanup */
  22904. FreeScvArgs(ssl, args);
  22905. FreeKeyExchange(ssl);
  22906. return ret;
  22907. }
  22908. #endif /* WOLFSSL_NO_CLIENT_AUTH */
  22909. #endif /* WOLFSSL_NO_TLS12 */
  22910. #endif /* NO_CERTS */
  22911. #ifdef HAVE_SESSION_TICKET
  22912. int SetTicket(WOLFSSL* ssl, const byte* ticket, word32 length)
  22913. {
  22914. /* Free old dynamic ticket if we already had one */
  22915. if (ssl->session.isDynamic) {
  22916. XFREE(ssl->session.ticket, ssl->heap, DYNAMIC_TYPE_SESSION_TICK);
  22917. ssl->session.ticket = ssl->session.staticTicket;
  22918. ssl->session.isDynamic = 0;
  22919. }
  22920. if (length > sizeof(ssl->session.staticTicket)) {
  22921. byte* sessionTicket =
  22922. (byte*)XMALLOC(length, ssl->heap, DYNAMIC_TYPE_SESSION_TICK);
  22923. if (sessionTicket == NULL)
  22924. return MEMORY_E;
  22925. ssl->session.ticket = sessionTicket;
  22926. ssl->session.isDynamic = 1;
  22927. }
  22928. ssl->session.ticketLen = (word16)length;
  22929. if (length > 0) {
  22930. XMEMCPY(ssl->session.ticket, ticket, length);
  22931. if (ssl->session_ticket_cb != NULL) {
  22932. ssl->session_ticket_cb(ssl,
  22933. ssl->session.ticket, ssl->session.ticketLen,
  22934. ssl->session_ticket_ctx);
  22935. }
  22936. /* Create a fake sessionID based on the ticket, this will
  22937. * supersede the existing session cache info. */
  22938. ssl->options.haveSessionId = 1;
  22939. #ifdef WOLFSSL_TLS13
  22940. if (ssl->options.tls1_3) {
  22941. XMEMCPY(ssl->session.sessionID,
  22942. ssl->session.ticket + length - ID_LEN, ID_LEN);
  22943. }
  22944. else
  22945. #endif
  22946. XMEMCPY(ssl->arrays->sessionID,
  22947. ssl->session.ticket + length - ID_LEN, ID_LEN);
  22948. }
  22949. return 0;
  22950. }
  22951. #ifndef WOLFSSL_NO_TLS12
  22952. /* handle processing of session_ticket (4) */
  22953. static int DoSessionTicket(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  22954. word32 size)
  22955. {
  22956. word32 begin = *inOutIdx;
  22957. word32 lifetime;
  22958. word16 length;
  22959. int ret;
  22960. if (ssl->expect_session_ticket == 0) {
  22961. WOLFSSL_MSG("Unexpected session ticket");
  22962. return SESSION_TICKET_EXPECT_E;
  22963. }
  22964. if (OPAQUE32_LEN > size)
  22965. return BUFFER_ERROR;
  22966. ato32(input + *inOutIdx, &lifetime);
  22967. *inOutIdx += OPAQUE32_LEN;
  22968. if ((*inOutIdx - begin) + OPAQUE16_LEN > size)
  22969. return BUFFER_ERROR;
  22970. ato16(input + *inOutIdx, &length);
  22971. *inOutIdx += OPAQUE16_LEN;
  22972. if ((*inOutIdx - begin) + length > size)
  22973. return BUFFER_ERROR;
  22974. if ((ret = SetTicket(ssl, input + *inOutIdx, length)) != 0)
  22975. return ret;
  22976. *inOutIdx += length;
  22977. if (length > 0) {
  22978. ssl->timeout = lifetime;
  22979. #ifndef NO_SESSION_CACHE
  22980. AddSession(ssl);
  22981. #endif
  22982. }
  22983. if (IsEncryptionOn(ssl, 0)) {
  22984. *inOutIdx += ssl->keys.padSz;
  22985. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  22986. if (ssl->options.startedETMRead)
  22987. *inOutIdx += MacSize(ssl);
  22988. #endif
  22989. }
  22990. ssl->expect_session_ticket = 0;
  22991. return 0;
  22992. }
  22993. #endif /* !WOLFSSL_NO_TLS12 */
  22994. #endif /* HAVE_SESSION_TICKET */
  22995. #endif /* NO_WOLFSSL_CLIENT */
  22996. #ifndef NO_CERTS
  22997. #ifdef HAVE_PK_CALLBACKS
  22998. int GetPrivateKeySigSize(WOLFSSL* ssl)
  22999. {
  23000. int sigSz = 0;
  23001. if (ssl == NULL)
  23002. return 0;
  23003. switch (ssl->buffers.keyType) {
  23004. #ifndef NO_RSA
  23005. #ifdef WC_RSA_PSS
  23006. case rsa_pss_sa_algo:
  23007. #endif
  23008. case rsa_sa_algo:
  23009. sigSz = ssl->buffers.keySz;
  23010. ssl->hsType = DYNAMIC_TYPE_RSA;
  23011. break;
  23012. #endif
  23013. #ifdef HAVE_ECC
  23014. case ecc_dsa_sa_algo:
  23015. sigSz = wc_ecc_sig_size_calc(ssl->buffers.keySz);
  23016. ssl->hsType = DYNAMIC_TYPE_ECC;
  23017. break;
  23018. #endif
  23019. #ifdef HAVE_ED25519
  23020. case ed25519_sa_algo:
  23021. sigSz = ED25519_SIG_SIZE; /* fixed known value */
  23022. ssl->hsType = DYNAMIC_TYPE_ED25519;
  23023. break;
  23024. #endif
  23025. #ifdef HAVE_ED448
  23026. case ed448_sa_algo:
  23027. sigSz = ED448_SIG_SIZE; /* fixed known value */
  23028. ssl->hsType = DYNAMIC_TYPE_ED448;
  23029. break;
  23030. #endif
  23031. default:
  23032. break;
  23033. }
  23034. return sigSz;
  23035. }
  23036. #endif /* HAVE_PK_CALLBACKS */
  23037. #endif /* NO_CERTS */
  23038. #ifdef HAVE_ECC
  23039. /* returns the WOLFSSL_* version of the curve from the OID sum */
  23040. word16 GetCurveByOID(int oidSum) {
  23041. switch(oidSum) {
  23042. #if (defined(HAVE_ECC160) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 160
  23043. #ifndef NO_ECC_SECP
  23044. case ECC_SECP160R1_OID:
  23045. return WOLFSSL_ECC_SECP160R1;
  23046. #endif /* !NO_ECC_SECP */
  23047. #ifdef HAVE_ECC_SECPR2
  23048. case ECC_SECP160R2_OID:
  23049. return WOLFSSL_ECC_SECP160R2;
  23050. #endif /* HAVE_ECC_SECPR2 */
  23051. #ifdef HAVE_ECC_KOBLITZ
  23052. case ECC_SECP160K1_OID:
  23053. return WOLFSSL_ECC_SECP160K1;
  23054. #endif /* HAVE_ECC_KOBLITZ */
  23055. #endif
  23056. #if (defined(HAVE_ECC192) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 192
  23057. #ifndef NO_ECC_SECP
  23058. case ECC_SECP192R1_OID:
  23059. return WOLFSSL_ECC_SECP192R1;
  23060. #endif /* !NO_ECC_SECP */
  23061. #ifdef HAVE_ECC_KOBLITZ
  23062. case ECC_SECP192K1_OID:
  23063. return WOLFSSL_ECC_SECP192K1;
  23064. #endif /* HAVE_ECC_KOBLITZ */
  23065. #endif
  23066. #if (defined(HAVE_ECC224) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 224
  23067. #ifndef NO_ECC_SECP
  23068. case ECC_SECP224R1_OID:
  23069. return WOLFSSL_ECC_SECP224R1;
  23070. #endif /* !NO_ECC_SECP */
  23071. #ifdef HAVE_ECC_KOBLITZ
  23072. case ECC_SECP224K1_OID:
  23073. return WOLFSSL_ECC_SECP224K1;
  23074. #endif /* HAVE_ECC_KOBLITZ */
  23075. #endif
  23076. #if (!defined(NO_ECC256) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 256
  23077. #ifndef NO_ECC_SECP
  23078. case ECC_SECP256R1_OID:
  23079. return WOLFSSL_ECC_SECP256R1;
  23080. #endif /* !NO_ECC_SECP */
  23081. #ifdef HAVE_ECC_KOBLITZ
  23082. case ECC_SECP256K1_OID:
  23083. return WOLFSSL_ECC_SECP256K1;
  23084. #endif /* HAVE_ECC_KOBLITZ */
  23085. #ifdef HAVE_ECC_BRAINPOOL
  23086. case ECC_BRAINPOOLP256R1_OID:
  23087. return WOLFSSL_ECC_BRAINPOOLP256R1;
  23088. #endif /* HAVE_ECC_BRAINPOOL */
  23089. #endif
  23090. #if (defined(HAVE_ECC384) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 384
  23091. #ifndef NO_ECC_SECP
  23092. case ECC_SECP384R1_OID:
  23093. return WOLFSSL_ECC_SECP384R1;
  23094. #endif /* !NO_ECC_SECP */
  23095. #ifdef HAVE_ECC_BRAINPOOL
  23096. case ECC_BRAINPOOLP384R1_OID:
  23097. return WOLFSSL_ECC_BRAINPOOLP384R1;
  23098. #endif /* HAVE_ECC_BRAINPOOL */
  23099. #endif
  23100. #if (defined(HAVE_ECC512) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 512
  23101. #ifdef HAVE_ECC_BRAINPOOL
  23102. case ECC_BRAINPOOLP512R1_OID:
  23103. return WOLFSSL_ECC_BRAINPOOLP512R1;
  23104. #endif /* HAVE_ECC_BRAINPOOL */
  23105. #endif
  23106. #if (defined(HAVE_ECC521) || defined(HAVE_ALL_CURVES)) && ECC_MIN_KEY_SZ <= 521
  23107. #ifndef NO_ECC_SECP
  23108. case ECC_SECP521R1_OID:
  23109. return WOLFSSL_ECC_SECP521R1;
  23110. #endif /* !NO_ECC_SECP */
  23111. #endif
  23112. default:
  23113. WOLFSSL_MSG("Curve OID not compiled in or implemented");
  23114. return 0;
  23115. }
  23116. }
  23117. #endif /* HAVE_ECC */
  23118. #ifndef NO_WOLFSSL_SERVER
  23119. #ifndef WOLFSSL_NO_TLS12
  23120. /* handle generation of server_hello (2) */
  23121. int SendServerHello(WOLFSSL* ssl)
  23122. {
  23123. int ret;
  23124. byte *output;
  23125. word16 length;
  23126. word32 idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  23127. int sendSz;
  23128. byte sessIdSz = ID_LEN;
  23129. #if defined(HAVE_TLS_EXTENSIONS) && defined(HAVE_SESSION_TICKET)
  23130. byte echoId = 0; /* ticket echo id flag */
  23131. #endif
  23132. byte cacheOff = 0; /* session cache off flag */
  23133. WOLFSSL_START(WC_FUNC_SERVER_HELLO_SEND);
  23134. WOLFSSL_ENTER("SendServerHello");
  23135. length = VERSION_SZ + RAN_LEN
  23136. + ID_LEN + ENUM_LEN
  23137. + SUITE_LEN
  23138. + ENUM_LEN;
  23139. #ifdef HAVE_TLS_EXTENSIONS
  23140. ret = TLSX_GetResponseSize(ssl, server_hello, &length);
  23141. if (ret != 0)
  23142. return ret;
  23143. #ifdef HAVE_SESSION_TICKET
  23144. if (ssl->options.useTicket) {
  23145. /* echo session id sz can be 0,32 or bogus len in between */
  23146. sessIdSz = ssl->arrays->sessionIDSz;
  23147. if (sessIdSz > ID_LEN) {
  23148. WOLFSSL_MSG("Bad bogus session id len");
  23149. return BUFFER_ERROR;
  23150. }
  23151. if (!IsAtLeastTLSv1_3(ssl->version))
  23152. length -= (ID_LEN - sessIdSz); /* adjust ID_LEN assumption */
  23153. echoId = 1;
  23154. }
  23155. #endif /* HAVE_SESSION_TICKET */
  23156. #else
  23157. if (ssl->options.haveEMS) {
  23158. length += HELLO_EXT_SZ_SZ + HELLO_EXT_SZ;
  23159. }
  23160. #endif
  23161. /* is the session cache off at build or runtime */
  23162. #ifdef NO_SESSION_CACHE
  23163. cacheOff = 1;
  23164. #else
  23165. if (ssl->options.sessionCacheOff == 1) {
  23166. cacheOff = 1;
  23167. }
  23168. #endif
  23169. /* if no session cache don't send a session ID unless we're echoing
  23170. * an ID as part of session tickets */
  23171. if (cacheOff == 1
  23172. #if defined(HAVE_TLS_EXTENSIONS) && defined(HAVE_SESSION_TICKET)
  23173. && echoId == 0
  23174. #endif
  23175. ) {
  23176. length -= ID_LEN; /* adjust ID_LEN assumption */
  23177. sessIdSz = 0;
  23178. }
  23179. sendSz = length + HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  23180. #ifdef WOLFSSL_DTLS
  23181. if (ssl->options.dtls) {
  23182. if (((ssl->keys.dtls_sequence_number_hi == ssl->keys.curSeq_hi &&
  23183. ssl->keys.dtls_sequence_number_lo < ssl->keys.curSeq_lo) ||
  23184. (ssl->keys.dtls_sequence_number_hi < ssl->keys.curSeq_hi))) {
  23185. /* Server Hello should use the same sequence number as the
  23186. * Client Hello if available. */
  23187. ssl->keys.dtls_sequence_number_hi = ssl->keys.curSeq_hi;
  23188. ssl->keys.dtls_sequence_number_lo = ssl->keys.curSeq_lo;
  23189. }
  23190. idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23191. sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23192. }
  23193. #endif /* WOLFSSL_DTLS */
  23194. if (IsEncryptionOn(ssl, 1))
  23195. sendSz += MAX_MSG_EXTRA;
  23196. /* check for available size */
  23197. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  23198. return ret;
  23199. /* get output buffer */
  23200. output = ssl->buffers.outputBuffer.buffer +
  23201. ssl->buffers.outputBuffer.length;
  23202. AddHeaders(output, length, server_hello, ssl);
  23203. /* now write to output */
  23204. /* first version */
  23205. output[idx++] = (byte)ssl->version.major;
  23206. output[idx++] = (byte)ssl->version.minor;
  23207. /* then random and session id */
  23208. if (!ssl->options.resuming) {
  23209. /* generate random part and session id */
  23210. ret = wc_RNG_GenerateBlock(ssl->rng, output + idx,
  23211. RAN_LEN + sizeof(sessIdSz) + sessIdSz);
  23212. if (ret != 0)
  23213. return ret;
  23214. #ifdef WOLFSSL_TLS13
  23215. if (TLSv1_3_Capable(ssl)) {
  23216. /* TLS v1.3 capable server downgraded. */
  23217. XMEMCPY(output + idx + RAN_LEN - (TLS13_DOWNGRADE_SZ + 1),
  23218. tls13Downgrade, TLS13_DOWNGRADE_SZ);
  23219. output[idx + RAN_LEN - 1] = (byte)IsAtLeastTLSv1_2(ssl);
  23220. }
  23221. else
  23222. #endif
  23223. if (ssl->ctx->method->version.major == SSLv3_MAJOR &&
  23224. ssl->ctx->method->version.minor == TLSv1_2_MINOR &&
  23225. #ifdef OPENSSL_EXTRA
  23226. (wolfSSL_get_options(ssl) & SSL_OP_NO_TLSv1_2) == 0 &&
  23227. #endif
  23228. !IsAtLeastTLSv1_2(ssl)) {
  23229. /* TLS v1.2 capable server downgraded. */
  23230. XMEMCPY(output + idx + RAN_LEN - (TLS13_DOWNGRADE_SZ + 1),
  23231. tls13Downgrade, TLS13_DOWNGRADE_SZ);
  23232. output[idx + RAN_LEN - 1] = 0;
  23233. }
  23234. /* store info in SSL for later */
  23235. XMEMCPY(ssl->arrays->serverRandom, output + idx, RAN_LEN);
  23236. idx += RAN_LEN;
  23237. output[idx++] = sessIdSz;
  23238. XMEMCPY(ssl->arrays->sessionID, output + idx, sessIdSz);
  23239. ssl->arrays->sessionIDSz = sessIdSz;
  23240. }
  23241. else {
  23242. /* If resuming, use info from SSL */
  23243. XMEMCPY(output + idx, ssl->arrays->serverRandom, RAN_LEN);
  23244. idx += RAN_LEN;
  23245. output[idx++] = sessIdSz;
  23246. XMEMCPY(output + idx, ssl->arrays->sessionID, sessIdSz);
  23247. }
  23248. idx += sessIdSz;
  23249. #ifdef SHOW_SECRETS
  23250. {
  23251. int j;
  23252. printf("server random: ");
  23253. for (j = 0; j < RAN_LEN; j++)
  23254. printf("%02x", ssl->arrays->serverRandom[j]);
  23255. printf("\n");
  23256. }
  23257. #endif
  23258. /* then cipher suite */
  23259. output[idx++] = ssl->options.cipherSuite0;
  23260. output[idx++] = ssl->options.cipherSuite;
  23261. /* then compression */
  23262. if (ssl->options.usingCompression)
  23263. output[idx++] = ZLIB_COMPRESSION;
  23264. else
  23265. output[idx++] = NO_COMPRESSION;
  23266. /* last, extensions */
  23267. #ifdef HAVE_TLS_EXTENSIONS
  23268. {
  23269. word16 offset = 0;
  23270. ret = TLSX_WriteResponse(ssl, output + idx, server_hello, &offset);
  23271. if (ret != 0)
  23272. return ret;
  23273. idx += offset;
  23274. }
  23275. #else
  23276. #ifdef HAVE_EXTENDED_MASTER
  23277. if (ssl->options.haveEMS) {
  23278. c16toa(HELLO_EXT_SZ, output + idx);
  23279. idx += HELLO_EXT_SZ_SZ;
  23280. c16toa(HELLO_EXT_EXTMS, output + idx);
  23281. idx += HELLO_EXT_TYPE_SZ;
  23282. c16toa(0, output + idx);
  23283. /*idx += HELLO_EXT_SZ_SZ;*/
  23284. /* idx is not used after this point. uncomment the line above
  23285. * if adding any more extensions in the future. */
  23286. }
  23287. #endif
  23288. #endif
  23289. if (IsEncryptionOn(ssl, 1)) {
  23290. byte* input;
  23291. int inputSz = idx; /* build msg adds rec hdr */
  23292. int recordHeaderSz = RECORD_HEADER_SZ;
  23293. if (ssl->options.dtls)
  23294. recordHeaderSz += DTLS_RECORD_EXTRA;
  23295. inputSz -= recordHeaderSz;
  23296. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23297. if (input == NULL)
  23298. return MEMORY_E;
  23299. XMEMCPY(input, output + recordHeaderSz, inputSz);
  23300. #ifdef WOLFSSL_DTLS
  23301. if (IsDtlsNotSctpMode(ssl) &&
  23302. (ret = DtlsMsgPoolSave(ssl, input, inputSz, server_hello)) != 0) {
  23303. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23304. return ret;
  23305. }
  23306. #endif
  23307. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  23308. handshake, 1, 0, 0, CUR_ORDER);
  23309. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23310. if (sendSz < 0)
  23311. return sendSz;
  23312. } else {
  23313. #ifdef WOLFSSL_DTLS
  23314. if (IsDtlsNotSctpMode(ssl)) {
  23315. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, server_hello)) != 0)
  23316. return ret;
  23317. }
  23318. if (ssl->options.dtls)
  23319. DtlsSEQIncrement(ssl, CUR_ORDER);
  23320. #endif
  23321. ret = HashOutput(ssl, output, sendSz, 0);
  23322. if (ret != 0)
  23323. return ret;
  23324. }
  23325. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  23326. if (ssl->hsInfoOn)
  23327. AddPacketName(ssl, "ServerHello");
  23328. if (ssl->toInfoOn)
  23329. AddPacketInfo(ssl, "ServerHello", handshake, output, sendSz,
  23330. WRITE_PROTO, ssl->heap);
  23331. #endif
  23332. ssl->options.serverState = SERVER_HELLO_COMPLETE;
  23333. ssl->buffers.outputBuffer.length += sendSz;
  23334. if (ssl->options.groupMessages)
  23335. ret = 0;
  23336. else
  23337. ret = SendBuffered(ssl);
  23338. WOLFSSL_LEAVE("SendServerHello", ret);
  23339. WOLFSSL_END(WC_FUNC_SERVER_HELLO_SEND);
  23340. return ret;
  23341. }
  23342. #if defined(HAVE_ECC)
  23343. static byte SetCurveId(ecc_key* key)
  23344. {
  23345. if (key == NULL || key->dp == NULL) {
  23346. WOLFSSL_MSG("SetCurveId: Invalid key!");
  23347. return 0;
  23348. }
  23349. return (byte)GetCurveByOID(key->dp->oidSum);
  23350. }
  23351. #endif /* HAVE_ECC */
  23352. typedef struct SskeArgs {
  23353. byte* output; /* not allocated */
  23354. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  23355. !defined(NO_RSA)
  23356. byte* sigDataBuf;
  23357. #endif
  23358. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  23359. byte* exportBuf;
  23360. #endif
  23361. #ifndef NO_RSA
  23362. byte* verifySig;
  23363. #endif
  23364. byte* input;
  23365. word32 idx;
  23366. word32 tmpSigSz;
  23367. word32 length;
  23368. word32 sigSz;
  23369. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  23370. !defined(NO_RSA)
  23371. word32 sigDataSz;
  23372. #endif
  23373. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  23374. word32 exportSz;
  23375. #endif
  23376. int sendSz;
  23377. int inputSz;
  23378. } SskeArgs;
  23379. static void FreeSskeArgs(WOLFSSL* ssl, void* pArgs)
  23380. {
  23381. SskeArgs* args = (SskeArgs*)pArgs;
  23382. (void)ssl;
  23383. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)
  23384. if (args->exportBuf) {
  23385. XFREE(args->exportBuf, ssl->heap, DYNAMIC_TYPE_DER);
  23386. args->exportBuf = NULL;
  23387. }
  23388. #endif
  23389. #if defined(HAVE_ECC) || defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  23390. (!defined(NO_DH) && !defined(NO_RSA))
  23391. if (args->sigDataBuf) {
  23392. XFREE(args->sigDataBuf, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  23393. args->sigDataBuf = NULL;
  23394. }
  23395. #endif
  23396. #ifndef NO_RSA
  23397. if (args->verifySig) {
  23398. XFREE(args->verifySig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  23399. args->verifySig = NULL;
  23400. }
  23401. #endif
  23402. (void)args;
  23403. }
  23404. /* handle generation of server_key_exchange (12) */
  23405. int SendServerKeyExchange(WOLFSSL* ssl)
  23406. {
  23407. int ret;
  23408. #ifdef WOLFSSL_ASYNC_CRYPT
  23409. SskeArgs* args = (SskeArgs*)ssl->async.args;
  23410. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  23411. (void)sizeof(args_test);
  23412. #else
  23413. SskeArgs args[1];
  23414. #endif
  23415. WOLFSSL_START(WC_FUNC_SERVER_KEY_EXCHANGE_SEND);
  23416. WOLFSSL_ENTER("SendServerKeyExchange");
  23417. #ifdef WOLFSSL_ASYNC_CRYPT
  23418. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  23419. if (ret != WC_NOT_PENDING_E) {
  23420. /* Check for error */
  23421. if (ret < 0)
  23422. goto exit_sske;
  23423. }
  23424. else
  23425. #endif
  23426. {
  23427. /* Reset state */
  23428. ret = 0;
  23429. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  23430. XMEMSET(args, 0, sizeof(SskeArgs));
  23431. #ifdef WOLFSSL_ASYNC_CRYPT
  23432. ssl->async.freeArgs = FreeSskeArgs;
  23433. #endif
  23434. }
  23435. switch(ssl->options.asyncState)
  23436. {
  23437. case TLS_ASYNC_BEGIN:
  23438. {
  23439. /* Do some checks / debug msgs */
  23440. switch(ssl->specs.kea)
  23441. {
  23442. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  23443. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  23444. case ecdhe_psk_kea:
  23445. {
  23446. WOLFSSL_MSG("Using ephemeral ECDH PSK");
  23447. break;
  23448. }
  23449. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  23450. #if defined(HAVE_ECC)
  23451. case ecc_diffie_hellman_kea:
  23452. {
  23453. if (ssl->specs.static_ecdh) {
  23454. WOLFSSL_MSG("Using Static ECDH, not sending "
  23455. "ServerKeyExchange");
  23456. ERROR_OUT(0, exit_sske);
  23457. }
  23458. WOLFSSL_MSG("Using ephemeral ECDH");
  23459. break;
  23460. }
  23461. #endif /* HAVE_ECC */
  23462. }
  23463. /* Preparing keys */
  23464. switch(ssl->specs.kea)
  23465. {
  23466. #ifndef NO_PSK
  23467. case psk_kea:
  23468. {
  23469. /* Nothing to do in this sub-state */
  23470. break;
  23471. }
  23472. #endif /* !NO_PSK */
  23473. #if !defined(NO_DH) && (!defined(NO_PSK) || !defined(NO_RSA) \
  23474. || (defined(HAVE_ANON) && !defined(WOLFSSL_NO_TLS12)))
  23475. #if !defined(NO_PSK)
  23476. case dhe_psk_kea:
  23477. #endif
  23478. #if !defined(NO_RSA) || (defined(HAVE_ANON) && \
  23479. !defined(WOLFSSL_NO_TLS12))
  23480. case diffie_hellman_kea:
  23481. #endif
  23482. {
  23483. /* Allocate DH key buffers and generate key */
  23484. if (ssl->buffers.serverDH_P.buffer == NULL ||
  23485. ssl->buffers.serverDH_G.buffer == NULL) {
  23486. ERROR_OUT(NO_DH_PARAMS, exit_sske);
  23487. }
  23488. if (ssl->buffers.serverDH_Pub.buffer == NULL) {
  23489. /* Free'd in SSL_ResourceFree and FreeHandshakeResources */
  23490. ssl->buffers.serverDH_Pub.buffer = (byte*)XMALLOC(
  23491. ssl->buffers.serverDH_P.length + OPAQUE16_LEN,
  23492. ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  23493. if (ssl->buffers.serverDH_Pub.buffer == NULL) {
  23494. ERROR_OUT(MEMORY_E, exit_sske);
  23495. }
  23496. ssl->buffers.serverDH_Pub.length =
  23497. ssl->buffers.serverDH_P.length + OPAQUE16_LEN;
  23498. }
  23499. if (ssl->buffers.serverDH_Priv.buffer == NULL) {
  23500. /* Free'd in SSL_ResourceFree and FreeHandshakeResources */
  23501. ssl->buffers.serverDH_Priv.buffer = (byte*)XMALLOC(
  23502. ssl->buffers.serverDH_P.length + OPAQUE16_LEN,
  23503. ssl->heap, DYNAMIC_TYPE_PRIVATE_KEY);
  23504. if (ssl->buffers.serverDH_Priv.buffer == NULL) {
  23505. ERROR_OUT(MEMORY_E, exit_sske);
  23506. }
  23507. ssl->buffers.serverDH_Priv.length =
  23508. ssl->buffers.serverDH_P.length + OPAQUE16_LEN;
  23509. }
  23510. ssl->options.dhKeySz =
  23511. (word16)ssl->buffers.serverDH_P.length;
  23512. ret = AllocKey(ssl, DYNAMIC_TYPE_DH,
  23513. (void**)&ssl->buffers.serverDH_Key);
  23514. if (ret != 0) {
  23515. goto exit_sske;
  23516. }
  23517. #if !defined(WOLFSSL_OLD_PRIME_CHECK) && \
  23518. !defined(HAVE_FIPS) && \
  23519. !defined(HAVE_SELFTEST)
  23520. if (ssl->options.dhDoKeyTest &&
  23521. !ssl->options.dhKeyTested)
  23522. {
  23523. ret = wc_DhSetCheckKey(
  23524. ssl->buffers.serverDH_Key,
  23525. ssl->buffers.serverDH_P.buffer,
  23526. ssl->buffers.serverDH_P.length,
  23527. ssl->buffers.serverDH_G.buffer,
  23528. ssl->buffers.serverDH_G.length,
  23529. NULL, 0, 0, ssl->rng);
  23530. if (ret != 0) {
  23531. goto exit_sske;
  23532. }
  23533. ssl->options.dhKeyTested = 1;
  23534. }
  23535. else
  23536. #endif
  23537. {
  23538. ret = wc_DhSetKey(ssl->buffers.serverDH_Key,
  23539. ssl->buffers.serverDH_P.buffer,
  23540. ssl->buffers.serverDH_P.length,
  23541. ssl->buffers.serverDH_G.buffer,
  23542. ssl->buffers.serverDH_G.length);
  23543. if (ret != 0) {
  23544. goto exit_sske;
  23545. }
  23546. }
  23547. #ifdef HAVE_SECURE_RENEGOTIATION
  23548. /* Check that the DH public key buffer is large
  23549. * enough to hold the key. This may occur on a
  23550. * renegotiation when the key generated in the
  23551. * initial handshake is shorter than the key
  23552. * generated in the renegotiation. */
  23553. if (ssl->buffers.serverDH_Pub.length <
  23554. ssl->buffers.serverDH_P.length) {
  23555. byte* tmp = (byte*)XREALLOC(
  23556. ssl->buffers.serverDH_Pub.buffer,
  23557. ssl->buffers.serverDH_P.length +
  23558. OPAQUE16_LEN,
  23559. ssl->heap, DYNAMIC_TYPE_PUBLIC_KEY);
  23560. if (tmp == NULL)
  23561. ERROR_OUT(MEMORY_E, exit_sske);
  23562. ssl->buffers.serverDH_Pub.buffer = tmp;
  23563. ssl->buffers.serverDH_Pub.length =
  23564. ssl->buffers.serverDH_P.length + OPAQUE16_LEN;
  23565. }
  23566. #endif
  23567. ret = DhGenKeyPair(ssl, ssl->buffers.serverDH_Key,
  23568. ssl->buffers.serverDH_Priv.buffer,
  23569. (word32*)&ssl->buffers.serverDH_Priv.length,
  23570. ssl->buffers.serverDH_Pub.buffer,
  23571. (word32*)&ssl->buffers.serverDH_Pub.length);
  23572. break;
  23573. }
  23574. #endif /* !NO_DH && (!NO_PSK || !NO_RSA) */
  23575. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  23576. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  23577. case ecdhe_psk_kea:
  23578. /* Fall through to create temp ECC key */
  23579. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  23580. #if defined(HAVE_ECC) || \
  23581. ((defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)) && \
  23582. (defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  23583. !defined(NO_RSA)))
  23584. case ecc_diffie_hellman_kea:
  23585. {
  23586. #ifdef HAVE_CURVE25519
  23587. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  23588. /* need ephemeral key now, create it if missing */
  23589. if (ssl->eccTempKey == NULL) {
  23590. /* alloc/init on demand */
  23591. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE25519,
  23592. (void**)&ssl->eccTempKey);
  23593. if (ret != 0) {
  23594. goto exit_sske;
  23595. }
  23596. }
  23597. if (ssl->eccTempKeyPresent == 0) {
  23598. ret = X25519MakeKey(ssl,
  23599. (curve25519_key*)ssl->eccTempKey, NULL);
  23600. if (ret == 0 || ret == WC_PENDING_E) {
  23601. ssl->eccTempKeyPresent =
  23602. DYNAMIC_TYPE_CURVE25519;
  23603. }
  23604. }
  23605. break;
  23606. }
  23607. #endif
  23608. #ifdef HAVE_CURVE448
  23609. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  23610. /* need ephemeral key now, create it if missing */
  23611. if (ssl->eccTempKey == NULL) {
  23612. /* alloc/init on demand */
  23613. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE448,
  23614. (void**)&ssl->eccTempKey);
  23615. if (ret != 0) {
  23616. goto exit_sske;
  23617. }
  23618. }
  23619. if (ssl->eccTempKeyPresent == 0) {
  23620. ret = X448MakeKey(ssl,
  23621. (curve448_key*)ssl->eccTempKey, NULL);
  23622. if (ret == 0 || ret == WC_PENDING_E) {
  23623. ssl->eccTempKeyPresent =
  23624. DYNAMIC_TYPE_CURVE448;
  23625. }
  23626. }
  23627. break;
  23628. }
  23629. #endif
  23630. #ifdef HAVE_ECC
  23631. /* need ephemeral key now, create it if missing */
  23632. if (ssl->eccTempKey == NULL) {
  23633. /* alloc/init on demand */
  23634. ret = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  23635. (void**)&ssl->eccTempKey);
  23636. if (ret != 0) {
  23637. goto exit_sske;
  23638. }
  23639. }
  23640. if (ssl->eccTempKeyPresent == 0) {
  23641. ret = EccMakeKey(ssl, ssl->eccTempKey, NULL);
  23642. if (ret == 0 || ret == WC_PENDING_E) {
  23643. ssl->eccTempKeyPresent = DYNAMIC_TYPE_ECC;
  23644. }
  23645. }
  23646. #endif
  23647. break;
  23648. }
  23649. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  23650. default:
  23651. /* Skip ServerKeyExchange */
  23652. goto exit_sske;
  23653. } /* switch(ssl->specs.kea) */
  23654. /* Check for error */
  23655. if (ret != 0) {
  23656. goto exit_sske;
  23657. }
  23658. /* Advance state and proceed */
  23659. ssl->options.asyncState = TLS_ASYNC_BUILD;
  23660. } /* case TLS_ASYNC_BEGIN */
  23661. FALL_THROUGH;
  23662. case TLS_ASYNC_BUILD:
  23663. {
  23664. switch(ssl->specs.kea)
  23665. {
  23666. #ifndef NO_PSK
  23667. case psk_kea:
  23668. {
  23669. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  23670. if (ssl->arrays->server_hint[0] == 0) {
  23671. ERROR_OUT(0, exit_sske); /* don't send */
  23672. }
  23673. /* include size part */
  23674. args->length = (word32)XSTRLEN(ssl->arrays->server_hint);
  23675. if (args->length > MAX_PSK_ID_LEN) {
  23676. ERROR_OUT(SERVER_HINT_ERROR, exit_sske);
  23677. }
  23678. args->length += HINT_LEN_SZ;
  23679. args->sendSz = args->length + HANDSHAKE_HEADER_SZ +
  23680. RECORD_HEADER_SZ;
  23681. #ifdef WOLFSSL_DTLS
  23682. if (ssl->options.dtls) {
  23683. args->sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23684. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23685. }
  23686. #endif
  23687. if (IsEncryptionOn(ssl, 1)) {
  23688. args->sendSz += MAX_MSG_EXTRA;
  23689. }
  23690. /* Use tmp buffer */
  23691. args->input = (byte*)XMALLOC(args->sendSz,
  23692. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23693. if (args->input == NULL)
  23694. ERROR_OUT(MEMORY_E, exit_sske);
  23695. args->output = args->input;
  23696. AddHeaders(args->output, args->length,
  23697. server_key_exchange, ssl);
  23698. /* key data */
  23699. c16toa((word16)(args->length - HINT_LEN_SZ),
  23700. args->output + args->idx);
  23701. args->idx += HINT_LEN_SZ;
  23702. XMEMCPY(args->output + args->idx,
  23703. ssl->arrays->server_hint,
  23704. args->length - HINT_LEN_SZ);
  23705. break;
  23706. }
  23707. #endif /* !NO_PSK */
  23708. #if !defined(NO_DH) && !defined(NO_PSK)
  23709. case dhe_psk_kea:
  23710. {
  23711. word32 hintLen;
  23712. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  23713. args->length = LENGTH_SZ * 3 + /* p, g, pub */
  23714. ssl->buffers.serverDH_P.length +
  23715. ssl->buffers.serverDH_G.length +
  23716. ssl->buffers.serverDH_Pub.length;
  23717. /* include size part */
  23718. hintLen = (word32)XSTRLEN(ssl->arrays->server_hint);
  23719. if (hintLen > MAX_PSK_ID_LEN) {
  23720. ERROR_OUT(SERVER_HINT_ERROR, exit_sske);
  23721. }
  23722. args->length += hintLen + HINT_LEN_SZ;
  23723. args->sendSz = args->length + HANDSHAKE_HEADER_SZ +
  23724. RECORD_HEADER_SZ;
  23725. #ifdef WOLFSSL_DTLS
  23726. if (ssl->options.dtls) {
  23727. args->sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23728. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23729. }
  23730. #endif
  23731. if (IsEncryptionOn(ssl, 1)) {
  23732. args->sendSz += MAX_MSG_EXTRA;
  23733. }
  23734. /* Use tmp buffer */
  23735. args->input = (byte*)XMALLOC(args->sendSz,
  23736. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23737. if (args->input == NULL)
  23738. ERROR_OUT(MEMORY_E, exit_sske);
  23739. args->output = args->input;
  23740. AddHeaders(args->output, args->length,
  23741. server_key_exchange, ssl);
  23742. /* key data */
  23743. c16toa((word16)hintLen, args->output + args->idx);
  23744. args->idx += HINT_LEN_SZ;
  23745. XMEMCPY(args->output + args->idx,
  23746. ssl->arrays->server_hint, hintLen);
  23747. args->idx += hintLen;
  23748. /* add p, g, pub */
  23749. c16toa((word16)ssl->buffers.serverDH_P.length,
  23750. args->output + args->idx);
  23751. args->idx += LENGTH_SZ;
  23752. XMEMCPY(args->output + args->idx,
  23753. ssl->buffers.serverDH_P.buffer,
  23754. ssl->buffers.serverDH_P.length);
  23755. args->idx += ssl->buffers.serverDH_P.length;
  23756. /* g */
  23757. c16toa((word16)ssl->buffers.serverDH_G.length,
  23758. args->output + args->idx);
  23759. args->idx += LENGTH_SZ;
  23760. XMEMCPY(args->output + args->idx,
  23761. ssl->buffers.serverDH_G.buffer,
  23762. ssl->buffers.serverDH_G.length);
  23763. args->idx += ssl->buffers.serverDH_G.length;
  23764. /* pub */
  23765. c16toa((word16)ssl->buffers.serverDH_Pub.length,
  23766. args->output + args->idx);
  23767. args->idx += LENGTH_SZ;
  23768. XMEMCPY(args->output + args->idx,
  23769. ssl->buffers.serverDH_Pub.buffer,
  23770. ssl->buffers.serverDH_Pub.length);
  23771. /* No need to update idx, since sizes are already set */
  23772. /* args->idx += ssl->buffers.serverDH_Pub.length; */
  23773. break;
  23774. }
  23775. #endif /* !defined(NO_DH) && !defined(NO_PSK) */
  23776. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  23777. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  23778. case ecdhe_psk_kea:
  23779. {
  23780. word32 hintLen;
  23781. /* curve type, named curve, length(1) */
  23782. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  23783. args->length = ENUM_LEN + CURVE_LEN + ENUM_LEN;
  23784. args->exportSz = MAX_EXPORT_ECC_SZ;
  23785. args->exportBuf = (byte*)XMALLOC(MAX_EXPORT_ECC_SZ,
  23786. ssl->heap, DYNAMIC_TYPE_DER);
  23787. if (args->exportBuf == NULL) {
  23788. ERROR_OUT(MEMORY_E, exit_sske);
  23789. }
  23790. #ifdef HAVE_CURVE25519
  23791. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  23792. if (wc_curve25519_export_public_ex(
  23793. (curve25519_key*)ssl->eccTempKey,
  23794. args->exportBuf, &args->exportSz,
  23795. EC25519_LITTLE_ENDIAN) != 0) {
  23796. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23797. }
  23798. }
  23799. else
  23800. #endif
  23801. #ifdef HAVE_CURVE448
  23802. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  23803. if (wc_curve448_export_public_ex(
  23804. (curve448_key*)ssl->eccTempKey,
  23805. args->exportBuf, &args->exportSz,
  23806. EC448_LITTLE_ENDIAN) != 0) {
  23807. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23808. }
  23809. }
  23810. else
  23811. #endif
  23812. {
  23813. if (wc_ecc_export_x963(ssl->eccTempKey,
  23814. args->exportBuf, &args->exportSz) != 0) {
  23815. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23816. }
  23817. }
  23818. args->length += args->exportSz;
  23819. /* include size part */
  23820. hintLen = (word32)XSTRLEN(ssl->arrays->server_hint);
  23821. if (hintLen > MAX_PSK_ID_LEN) {
  23822. ERROR_OUT(SERVER_HINT_ERROR, exit_sske);
  23823. }
  23824. args->length += hintLen + HINT_LEN_SZ;
  23825. args->sendSz = args->length + HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  23826. #ifdef WOLFSSL_DTLS
  23827. if (ssl->options.dtls) {
  23828. args->sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23829. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  23830. }
  23831. #endif
  23832. if (IsEncryptionOn(ssl, 1)) {
  23833. args->sendSz += MAX_MSG_EXTRA;
  23834. }
  23835. /* Use tmp buffer */
  23836. args->input = (byte*)XMALLOC(args->sendSz,
  23837. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  23838. if (args->input == NULL)
  23839. ERROR_OUT(MEMORY_E, exit_sske);
  23840. args->output = args->input;
  23841. /* key data */
  23842. c16toa((word16)hintLen, args->output + args->idx);
  23843. args->idx += HINT_LEN_SZ;
  23844. XMEMCPY(args->output + args->idx,
  23845. ssl->arrays->server_hint, hintLen);
  23846. args->idx += hintLen;
  23847. /* ECC key exchange data */
  23848. args->output[args->idx++] = named_curve;
  23849. args->output[args->idx++] = 0x00; /* leading zero */
  23850. #ifdef HAVE_CURVE25519
  23851. if (ssl->ecdhCurveOID == ECC_X25519_OID)
  23852. args->output[args->idx++] = WOLFSSL_ECC_X25519;
  23853. else
  23854. #endif
  23855. #ifdef HAVE_CURVE448
  23856. if (ssl->ecdhCurveOID == ECC_X448_OID)
  23857. args->output[args->idx++] = WOLFSSL_ECC_X448;
  23858. else
  23859. #endif
  23860. {
  23861. #ifdef HAVE_ECC
  23862. args->output[args->idx++] =
  23863. SetCurveId(ssl->eccTempKey);
  23864. #endif
  23865. }
  23866. args->output[args->idx++] = (byte)args->exportSz;
  23867. XMEMCPY(args->output + args->idx, args->exportBuf,
  23868. args->exportSz);
  23869. break;
  23870. }
  23871. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  23872. #if defined(HAVE_ECC) || \
  23873. ((defined(HAVE_CURVE25519) || defined(HAVE_CURVE448)) && \
  23874. (defined(HAVE_ED25519) || defined(HAVE_ED448) || \
  23875. !defined(NO_RSA)))
  23876. case ecc_diffie_hellman_kea:
  23877. {
  23878. enum wc_HashType hashType;
  23879. word32 preSigSz, preSigIdx;
  23880. /* curve type, named curve, length(1) */
  23881. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  23882. args->length = ENUM_LEN + CURVE_LEN + ENUM_LEN;
  23883. /* Export temp ECC key and add to length */
  23884. args->exportSz = MAX_EXPORT_ECC_SZ;
  23885. args->exportBuf = (byte*)XMALLOC(MAX_EXPORT_ECC_SZ,
  23886. ssl->heap, DYNAMIC_TYPE_DER);
  23887. if (args->exportBuf == NULL) {
  23888. ERROR_OUT(MEMORY_E, exit_sske);
  23889. }
  23890. #ifdef HAVE_CURVE25519
  23891. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  23892. if (wc_curve25519_export_public_ex(
  23893. (curve25519_key*)ssl->eccTempKey,
  23894. args->exportBuf, &args->exportSz,
  23895. EC25519_LITTLE_ENDIAN) != 0) {
  23896. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23897. }
  23898. }
  23899. else
  23900. #endif
  23901. #ifdef HAVE_CURVE448
  23902. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  23903. if (wc_curve448_export_public_ex(
  23904. (curve448_key*)ssl->eccTempKey,
  23905. args->exportBuf, &args->exportSz,
  23906. EC448_LITTLE_ENDIAN) != 0) {
  23907. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23908. }
  23909. }
  23910. else
  23911. #endif
  23912. {
  23913. #if defined(HAVE_ECC) && defined(HAVE_ECC_KEY_EXPORT)
  23914. if (wc_ecc_export_x963(ssl->eccTempKey,
  23915. args->exportBuf, &args->exportSz) != 0) {
  23916. ERROR_OUT(ECC_EXPORT_ERROR, exit_sske);
  23917. }
  23918. #endif
  23919. }
  23920. args->length += args->exportSz;
  23921. preSigSz = args->length;
  23922. preSigIdx = args->idx;
  23923. if (ssl->buffers.key == NULL) {
  23924. #ifdef HAVE_PK_CALLBACKS
  23925. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx)) {
  23926. args->tmpSigSz = GetPrivateKeySigSize(ssl);
  23927. if (args->tmpSigSz == 0) {
  23928. ERROR_OUT(NO_PRIVATE_KEY, exit_sske);
  23929. }
  23930. }
  23931. else
  23932. #endif
  23933. ERROR_OUT(NO_PRIVATE_KEY, exit_sske);
  23934. }
  23935. else {
  23936. switch(ssl->suites->sigAlgo) {
  23937. #ifndef NO_RSA
  23938. #ifdef WC_RSA_PSS
  23939. case rsa_pss_sa_algo:
  23940. #endif
  23941. case rsa_sa_algo:
  23942. {
  23943. word16 keySz;
  23944. ssl->buffers.keyType = rsa_sa_algo;
  23945. ret = DecodePrivateKey(ssl, &keySz);
  23946. if (ret != 0) {
  23947. goto exit_sske;
  23948. }
  23949. args->tmpSigSz = (word32)keySz;
  23950. break;
  23951. }
  23952. #endif /* !NO_RSA */
  23953. #ifdef HAVE_ECC
  23954. case ecc_dsa_sa_algo:
  23955. {
  23956. word16 keySz;
  23957. ssl->buffers.keyType = ecc_dsa_sa_algo;
  23958. ret = DecodePrivateKey(ssl, &keySz);
  23959. if (ret != 0) {
  23960. goto exit_sske;
  23961. }
  23962. /* worst case estimate */
  23963. args->tmpSigSz = keySz;
  23964. break;
  23965. }
  23966. #endif
  23967. #ifdef HAVE_ED25519
  23968. case ed25519_sa_algo:
  23969. {
  23970. word16 keySz;
  23971. ssl->buffers.keyType = ed25519_sa_algo;
  23972. ret = DecodePrivateKey(ssl, &keySz);
  23973. if (ret != 0) {
  23974. goto exit_sske;
  23975. }
  23976. /* worst case estimate */
  23977. args->tmpSigSz = ED25519_SIG_SIZE;
  23978. break;
  23979. }
  23980. #endif /* HAVE_ED25519 */
  23981. #ifdef HAVE_ED448
  23982. case ed448_sa_algo:
  23983. {
  23984. word16 keySz;
  23985. ssl->buffers.keyType = ed448_sa_algo;
  23986. ret = DecodePrivateKey(ssl, &keySz);
  23987. if (ret != 0) {
  23988. goto exit_sske;
  23989. }
  23990. /* worst case estimate */
  23991. args->tmpSigSz = ED448_SIG_SIZE;
  23992. break;
  23993. }
  23994. #endif /* HAVE_ED448 */
  23995. default:
  23996. ERROR_OUT(ALGO_ID_E, exit_sske); /* unsupported type */
  23997. } /* switch(ssl->specs.sig_algo) */
  23998. }
  23999. /* sig length */
  24000. args->length += LENGTH_SZ;
  24001. args->length += args->tmpSigSz;
  24002. if (IsAtLeastTLSv1_2(ssl)) {
  24003. args->length += HASH_SIG_SIZE;
  24004. }
  24005. args->sendSz = args->length + HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  24006. #ifdef WOLFSSL_DTLS
  24007. if (ssl->options.dtls) {
  24008. args->sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  24009. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  24010. preSigIdx = args->idx;
  24011. }
  24012. #endif
  24013. if (IsEncryptionOn(ssl, 1)) {
  24014. args->sendSz += MAX_MSG_EXTRA;
  24015. }
  24016. /* Use tmp buffer */
  24017. args->input = (byte*)XMALLOC(args->sendSz,
  24018. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  24019. if (args->input == NULL)
  24020. ERROR_OUT(MEMORY_E, exit_sske);
  24021. args->output = args->input;
  24022. /* record and message headers will be added below, when we're sure
  24023. of the sig length */
  24024. /* key exchange data */
  24025. args->output[args->idx++] = named_curve;
  24026. args->output[args->idx++] = 0x00; /* leading zero */
  24027. #ifdef HAVE_CURVE25519
  24028. if (ssl->ecdhCurveOID == ECC_X25519_OID)
  24029. args->output[args->idx++] = WOLFSSL_ECC_X25519;
  24030. else
  24031. #endif
  24032. #ifdef HAVE_CURVE448
  24033. if (ssl->ecdhCurveOID == ECC_X448_OID)
  24034. args->output[args->idx++] = WOLFSSL_ECC_X448;
  24035. else
  24036. #endif
  24037. {
  24038. #ifdef HAVE_ECC
  24039. args->output[args->idx++] =
  24040. SetCurveId(ssl->eccTempKey);
  24041. #endif
  24042. }
  24043. args->output[args->idx++] = (byte)args->exportSz;
  24044. XMEMCPY(args->output + args->idx, args->exportBuf, args->exportSz);
  24045. args->idx += args->exportSz;
  24046. /* Determine hash type */
  24047. if (IsAtLeastTLSv1_2(ssl)) {
  24048. EncodeSigAlg(ssl->suites->hashAlgo,
  24049. ssl->suites->sigAlgo,
  24050. &args->output[args->idx]);
  24051. args->idx += 2;
  24052. hashType = HashAlgoToType(ssl->suites->hashAlgo);
  24053. if (hashType == WC_HASH_TYPE_NONE) {
  24054. ERROR_OUT(ALGO_ID_E, exit_sske);
  24055. }
  24056. } else {
  24057. /* only using sha and md5 for rsa */
  24058. #ifndef NO_OLD_TLS
  24059. hashType = WC_HASH_TYPE_SHA;
  24060. if (ssl->suites->sigAlgo == rsa_sa_algo) {
  24061. hashType = WC_HASH_TYPE_MD5_SHA;
  24062. }
  24063. #else
  24064. ERROR_OUT(ALGO_ID_E, exit_sske);
  24065. #endif
  24066. }
  24067. /* Signature length will be written later, when we're sure what it is */
  24068. #ifdef HAVE_FUZZER
  24069. if (ssl->fuzzerCb) {
  24070. ssl->fuzzerCb(ssl, args->output + preSigIdx,
  24071. preSigSz, FUZZ_SIGNATURE, ssl->fuzzerCtx);
  24072. }
  24073. #endif
  24074. /* Assemble buffer to hash for signature */
  24075. args->sigDataSz = RAN_LEN + RAN_LEN + preSigSz;
  24076. args->sigDataBuf = (byte*)XMALLOC(args->sigDataSz,
  24077. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  24078. if (args->sigDataBuf == NULL) {
  24079. ERROR_OUT(MEMORY_E, exit_sske);
  24080. }
  24081. XMEMCPY(args->sigDataBuf, ssl->arrays->clientRandom,
  24082. RAN_LEN);
  24083. XMEMCPY(args->sigDataBuf+RAN_LEN,
  24084. ssl->arrays->serverRandom, RAN_LEN);
  24085. XMEMCPY(args->sigDataBuf+RAN_LEN+RAN_LEN,
  24086. args->output + preSigIdx, preSigSz);
  24087. if (ssl->suites->sigAlgo != ed25519_sa_algo &&
  24088. ssl->suites->sigAlgo != ed448_sa_algo) {
  24089. ssl->buffers.sig.length =
  24090. wc_HashGetDigestSize(hashType);
  24091. if ((int)ssl->buffers.sig.length < 0) {
  24092. ERROR_OUT(HASH_TYPE_E, exit_sske);
  24093. }
  24094. ssl->buffers.sig.buffer = (byte*)XMALLOC(
  24095. ssl->buffers.sig.length,
  24096. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  24097. if (ssl->buffers.sig.buffer == NULL) {
  24098. ERROR_OUT(MEMORY_E, exit_sske);
  24099. }
  24100. /* Perform hash */
  24101. ret = wc_Hash(hashType, args->sigDataBuf,
  24102. args->sigDataSz,
  24103. ssl->buffers.sig.buffer,
  24104. ssl->buffers.sig.length);
  24105. if (ret != 0) {
  24106. goto exit_sske;
  24107. }
  24108. }
  24109. args->sigSz = args->tmpSigSz;
  24110. /* Sign hash to create signature */
  24111. switch (ssl->suites->sigAlgo)
  24112. {
  24113. #ifndef NO_RSA
  24114. case rsa_sa_algo:
  24115. {
  24116. /* For TLS 1.2 re-encode signature */
  24117. if (IsAtLeastTLSv1_2(ssl)) {
  24118. byte* encodedSig = (byte*)XMALLOC(
  24119. MAX_ENCODED_SIG_SZ, ssl->heap,
  24120. DYNAMIC_TYPE_SIGNATURE);
  24121. if (encodedSig == NULL) {
  24122. ERROR_OUT(MEMORY_E, exit_sske);
  24123. }
  24124. ssl->buffers.sig.length =
  24125. wc_EncodeSignature(encodedSig,
  24126. ssl->buffers.sig.buffer,
  24127. ssl->buffers.sig.length,
  24128. TypeHash(ssl->suites->hashAlgo));
  24129. /* Replace sig buffer with new one */
  24130. XFREE(ssl->buffers.sig.buffer, ssl->heap,
  24131. DYNAMIC_TYPE_SIGNATURE);
  24132. ssl->buffers.sig.buffer = encodedSig;
  24133. }
  24134. /* write sig size here */
  24135. c16toa((word16)args->sigSz,
  24136. args->output + args->idx);
  24137. args->idx += LENGTH_SZ;
  24138. break;
  24139. }
  24140. #ifdef WC_RSA_PSS
  24141. case rsa_pss_sa_algo:
  24142. /* write sig size here */
  24143. c16toa((word16)args->sigSz,
  24144. args->output + args->idx);
  24145. args->idx += LENGTH_SZ;
  24146. break;
  24147. #endif
  24148. #endif /* !NO_RSA */
  24149. case ecc_dsa_sa_algo:
  24150. {
  24151. break;
  24152. }
  24153. #ifdef HAVE_ED25519
  24154. case ed25519_sa_algo:
  24155. ret = Ed25519CheckPubKey(ssl);
  24156. if (ret != 0)
  24157. goto exit_sske;
  24158. break;
  24159. #endif /* HAVE_ED25519 */
  24160. #ifdef HAVE_ED448
  24161. case ed448_sa_algo:
  24162. ret = Ed448CheckPubKey(ssl);
  24163. if (ret != 0)
  24164. goto exit_sske;
  24165. break;
  24166. #endif /* HAVE_ED448 */
  24167. default:
  24168. break;
  24169. } /* switch(ssl->specs.sig_algo) */
  24170. break;
  24171. }
  24172. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  24173. #if !defined(NO_DH) && (!defined(NO_RSA) || \
  24174. (defined(HAVE_ANON) && !defined(WOLFSSL_NO_TLS12)))
  24175. case diffie_hellman_kea:
  24176. {
  24177. enum wc_HashType hashType;
  24178. word32 preSigSz, preSigIdx;
  24179. args->idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  24180. args->length = LENGTH_SZ * 3; /* p, g, pub */
  24181. args->length += ssl->buffers.serverDH_P.length +
  24182. ssl->buffers.serverDH_G.length +
  24183. ssl->buffers.serverDH_Pub.length;
  24184. preSigIdx = args->idx;
  24185. preSigSz = args->length;
  24186. if (!ssl->options.usingAnon_cipher) {
  24187. word16 keySz = 0;
  24188. /* sig length */
  24189. args->length += LENGTH_SZ;
  24190. if (ssl->buffers.key == NULL) {
  24191. #ifdef HAVE_PK_CALLBACKS
  24192. if (wolfSSL_CTX_IsPrivatePkSet(ssl->ctx))
  24193. keySz = (word32)GetPrivateKeySigSize(ssl);
  24194. else
  24195. #endif
  24196. ERROR_OUT(NO_PRIVATE_KEY, exit_sske);
  24197. }
  24198. else
  24199. {
  24200. if (ssl->buffers.keyType == 0)
  24201. ssl->buffers.keyType = rsa_sa_algo;
  24202. ret = DecodePrivateKey(ssl, &keySz);
  24203. if (ret != 0) {
  24204. goto exit_sske;
  24205. }
  24206. }
  24207. /* test if keySz has error */
  24208. if (keySz == 0) {
  24209. ERROR_OUT(keySz, exit_sske);
  24210. }
  24211. args->tmpSigSz = (word32)keySz;
  24212. args->length += args->tmpSigSz;
  24213. if (IsAtLeastTLSv1_2(ssl)) {
  24214. args->length += HASH_SIG_SIZE;
  24215. }
  24216. }
  24217. args->sendSz = args->length + HANDSHAKE_HEADER_SZ +
  24218. RECORD_HEADER_SZ;
  24219. #ifdef WOLFSSL_DTLS
  24220. if (ssl->options.dtls) {
  24221. args->sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  24222. args->idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  24223. preSigIdx = args->idx;
  24224. }
  24225. #endif
  24226. if (IsEncryptionOn(ssl, 1)) {
  24227. args->sendSz += MAX_MSG_EXTRA;
  24228. }
  24229. /* Use tmp buffer */
  24230. args->input = (byte*)XMALLOC(args->sendSz,
  24231. ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  24232. if (args->input == NULL)
  24233. ERROR_OUT(MEMORY_E, exit_sske);
  24234. args->output = args->input;
  24235. AddHeaders(args->output, args->length,
  24236. server_key_exchange, ssl);
  24237. /* add p, g, pub */
  24238. c16toa((word16)ssl->buffers.serverDH_P.length,
  24239. args->output + args->idx);
  24240. args->idx += LENGTH_SZ;
  24241. XMEMCPY(args->output + args->idx,
  24242. ssl->buffers.serverDH_P.buffer,
  24243. ssl->buffers.serverDH_P.length);
  24244. args->idx += ssl->buffers.serverDH_P.length;
  24245. /* g */
  24246. c16toa((word16)ssl->buffers.serverDH_G.length,
  24247. args->output + args->idx);
  24248. args->idx += LENGTH_SZ;
  24249. XMEMCPY(args->output + args->idx,
  24250. ssl->buffers.serverDH_G.buffer,
  24251. ssl->buffers.serverDH_G.length);
  24252. args->idx += ssl->buffers.serverDH_G.length;
  24253. /* pub */
  24254. c16toa((word16)ssl->buffers.serverDH_Pub.length,
  24255. args->output + args->idx);
  24256. args->idx += LENGTH_SZ;
  24257. XMEMCPY(args->output + args->idx,
  24258. ssl->buffers.serverDH_Pub.buffer,
  24259. ssl->buffers.serverDH_Pub.length);
  24260. args->idx += ssl->buffers.serverDH_Pub.length;
  24261. #ifdef HAVE_FUZZER
  24262. if (ssl->fuzzerCb) {
  24263. ssl->fuzzerCb(ssl, args->output + preSigIdx,
  24264. preSigSz, FUZZ_SIGNATURE, ssl->fuzzerCtx);
  24265. }
  24266. #endif
  24267. if (ssl->options.usingAnon_cipher) {
  24268. break;
  24269. }
  24270. /* Determine hash type */
  24271. if (IsAtLeastTLSv1_2(ssl)) {
  24272. EncodeSigAlg(ssl->suites->hashAlgo,
  24273. ssl->suites->sigAlgo,
  24274. &args->output[args->idx]);
  24275. args->idx += 2;
  24276. hashType = HashAlgoToType(ssl->suites->hashAlgo);
  24277. if (hashType == WC_HASH_TYPE_NONE) {
  24278. ERROR_OUT(ALGO_ID_E, exit_sske);
  24279. }
  24280. } else {
  24281. /* only using sha and md5 for rsa */
  24282. #ifndef NO_OLD_TLS
  24283. hashType = WC_HASH_TYPE_SHA;
  24284. if (ssl->suites->sigAlgo == rsa_sa_algo) {
  24285. hashType = WC_HASH_TYPE_MD5_SHA;
  24286. }
  24287. #else
  24288. ERROR_OUT(ALGO_ID_E, exit_sske);
  24289. #endif
  24290. }
  24291. /* signature size */
  24292. c16toa((word16)args->tmpSigSz, args->output + args->idx);
  24293. args->idx += LENGTH_SZ;
  24294. /* Assemble buffer to hash for signature */
  24295. args->sigDataSz = RAN_LEN + RAN_LEN + preSigSz;
  24296. args->sigDataBuf = (byte*)XMALLOC(args->sigDataSz,
  24297. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  24298. if (args->sigDataBuf == NULL) {
  24299. ERROR_OUT(MEMORY_E, exit_sske);
  24300. }
  24301. XMEMCPY(args->sigDataBuf, ssl->arrays->clientRandom,
  24302. RAN_LEN);
  24303. XMEMCPY(args->sigDataBuf+RAN_LEN,
  24304. ssl->arrays->serverRandom, RAN_LEN);
  24305. XMEMCPY(args->sigDataBuf+RAN_LEN+RAN_LEN,
  24306. args->output + preSigIdx, preSigSz);
  24307. if (ssl->suites->sigAlgo != ed25519_sa_algo &&
  24308. ssl->suites->sigAlgo != ed448_sa_algo) {
  24309. ssl->buffers.sig.length =
  24310. wc_HashGetDigestSize(hashType);
  24311. ssl->buffers.sig.buffer = (byte*)XMALLOC(
  24312. ssl->buffers.sig.length, ssl->heap,
  24313. DYNAMIC_TYPE_SIGNATURE);
  24314. if (ssl->buffers.sig.buffer == NULL) {
  24315. ERROR_OUT(MEMORY_E, exit_sske);
  24316. }
  24317. /* Perform hash */
  24318. ret = wc_Hash(hashType, args->sigDataBuf,
  24319. args->sigDataSz,
  24320. ssl->buffers.sig.buffer,
  24321. ssl->buffers.sig.length);
  24322. if (ret != 0) {
  24323. goto exit_sske;
  24324. }
  24325. }
  24326. args->sigSz = args->tmpSigSz;
  24327. /* Sign hash to create signature */
  24328. switch (ssl->suites->sigAlgo)
  24329. {
  24330. #ifndef NO_RSA
  24331. case rsa_sa_algo:
  24332. {
  24333. /* For TLS 1.2 re-encode signature */
  24334. if (IsAtLeastTLSv1_2(ssl)) {
  24335. byte* encodedSig = (byte*)XMALLOC(
  24336. MAX_ENCODED_SIG_SZ, ssl->heap,
  24337. DYNAMIC_TYPE_SIGNATURE);
  24338. if (encodedSig == NULL) {
  24339. ERROR_OUT(MEMORY_E, exit_sske);
  24340. }
  24341. ssl->buffers.sig.length =
  24342. wc_EncodeSignature(encodedSig,
  24343. ssl->buffers.sig.buffer,
  24344. ssl->buffers.sig.length,
  24345. TypeHash(ssl->suites->hashAlgo));
  24346. /* Replace sig buffer with new one */
  24347. XFREE(ssl->buffers.sig.buffer, ssl->heap,
  24348. DYNAMIC_TYPE_SIGNATURE);
  24349. ssl->buffers.sig.buffer = encodedSig;
  24350. }
  24351. break;
  24352. }
  24353. #endif /* NO_RSA */
  24354. default:
  24355. break;
  24356. } /* switch (ssl->suites->sigAlgo) */
  24357. break;
  24358. }
  24359. #endif /* !defined(NO_DH) && !defined(NO_RSA) */
  24360. default:
  24361. break;
  24362. } /* switch(ssl->specs.kea) */
  24363. /* Check for error */
  24364. if (ret != 0) {
  24365. goto exit_sske;
  24366. }
  24367. /* Advance state and proceed */
  24368. ssl->options.asyncState = TLS_ASYNC_DO;
  24369. } /* case TLS_ASYNC_BUILD */
  24370. FALL_THROUGH;
  24371. case TLS_ASYNC_DO:
  24372. {
  24373. switch(ssl->specs.kea)
  24374. {
  24375. #ifndef NO_PSK
  24376. case psk_kea:
  24377. {
  24378. break;
  24379. }
  24380. #endif /* !NO_PSK */
  24381. #if !defined(NO_DH) && !defined(NO_PSK)
  24382. case dhe_psk_kea:
  24383. {
  24384. break;
  24385. }
  24386. #endif /* !defined(NO_DH) && !defined(NO_PSK) */
  24387. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24388. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  24389. case ecdhe_psk_kea:
  24390. {
  24391. break;
  24392. }
  24393. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  24394. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24395. defined(HAVE_CURVE448)
  24396. case ecc_diffie_hellman_kea:
  24397. {
  24398. /* Sign hash to create signature */
  24399. switch (ssl->suites->sigAlgo)
  24400. {
  24401. #ifndef NO_RSA
  24402. #ifdef WC_RSA_PSS
  24403. case rsa_pss_sa_algo:
  24404. #endif
  24405. case rsa_sa_algo:
  24406. {
  24407. RsaKey* key = (RsaKey*)ssl->hsKey;
  24408. ret = RsaSign(ssl,
  24409. ssl->buffers.sig.buffer,
  24410. ssl->buffers.sig.length,
  24411. args->output + args->idx,
  24412. &args->sigSz,
  24413. ssl->suites->sigAlgo, ssl->suites->hashAlgo,
  24414. key,
  24415. ssl->buffers.key
  24416. );
  24417. break;
  24418. }
  24419. #endif /* !NO_RSA */
  24420. #ifdef HAVE_ECC
  24421. case ecc_dsa_sa_algo:
  24422. {
  24423. ecc_key* key = (ecc_key*)ssl->hsKey;
  24424. ret = EccSign(ssl,
  24425. ssl->buffers.sig.buffer,
  24426. ssl->buffers.sig.length,
  24427. args->output + LENGTH_SZ + args->idx,
  24428. &args->sigSz,
  24429. key,
  24430. #ifdef HAVE_PK_CALLBACKS
  24431. ssl->buffers.key
  24432. #else
  24433. NULL
  24434. #endif
  24435. );
  24436. break;
  24437. }
  24438. #endif /* HAVE_ECC */
  24439. #ifdef HAVE_ED25519
  24440. case ed25519_sa_algo:
  24441. {
  24442. ed25519_key* key = (ed25519_key*)ssl->hsKey;
  24443. ret = Ed25519Sign(ssl,
  24444. args->sigDataBuf, args->sigDataSz,
  24445. args->output + LENGTH_SZ + args->idx,
  24446. &args->sigSz,
  24447. key,
  24448. #ifdef HAVE_PK_CALLBACKS
  24449. ssl->buffers.key
  24450. #else
  24451. NULL
  24452. #endif
  24453. );
  24454. break;
  24455. }
  24456. #endif
  24457. #ifdef HAVE_ED448
  24458. case ed448_sa_algo:
  24459. {
  24460. ed448_key* key = (ed448_key*)ssl->hsKey;
  24461. ret = Ed448Sign(ssl,
  24462. args->sigDataBuf, args->sigDataSz,
  24463. args->output + LENGTH_SZ + args->idx,
  24464. &args->sigSz,
  24465. key,
  24466. #ifdef HAVE_PK_CALLBACKS
  24467. ssl->buffers.key
  24468. #else
  24469. NULL
  24470. #endif
  24471. );
  24472. break;
  24473. }
  24474. #endif
  24475. default:
  24476. ERROR_OUT(ALGO_ID_E, exit_sske);
  24477. } /* switch(ssl->specs.sig_algo) */
  24478. break;
  24479. }
  24480. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  24481. #if !defined(NO_DH) && !defined(NO_RSA)
  24482. case diffie_hellman_kea:
  24483. {
  24484. /* Sign hash to create signature */
  24485. switch (ssl->suites->sigAlgo)
  24486. {
  24487. #ifndef NO_RSA
  24488. #ifdef WC_RSA_PSS
  24489. case rsa_pss_sa_algo:
  24490. #endif
  24491. case rsa_sa_algo:
  24492. {
  24493. RsaKey* key = (RsaKey*)ssl->hsKey;
  24494. if (ssl->options.usingAnon_cipher) {
  24495. break;
  24496. }
  24497. ret = RsaSign(ssl,
  24498. ssl->buffers.sig.buffer,
  24499. ssl->buffers.sig.length,
  24500. args->output + args->idx,
  24501. &args->sigSz,
  24502. ssl->suites->sigAlgo, ssl->suites->hashAlgo,
  24503. key,
  24504. ssl->buffers.key
  24505. );
  24506. break;
  24507. }
  24508. #endif /* NO_RSA */
  24509. default:
  24510. break;
  24511. } /* switch (ssl->suites->sigAlgo) */
  24512. break;
  24513. }
  24514. #endif /* !defined(NO_DH) && !defined(NO_RSA) */
  24515. default:
  24516. break;
  24517. } /* switch(ssl->specs.kea) */
  24518. /* Check for error */
  24519. if (ret != 0) {
  24520. goto exit_sske;
  24521. }
  24522. /* Advance state and proceed */
  24523. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  24524. } /* case TLS_ASYNC_DO */
  24525. FALL_THROUGH;
  24526. case TLS_ASYNC_VERIFY:
  24527. {
  24528. switch(ssl->specs.kea)
  24529. {
  24530. #ifndef NO_PSK
  24531. case psk_kea:
  24532. {
  24533. /* Nothing to do in this sub-state */
  24534. break;
  24535. }
  24536. #endif /* !NO_PSK */
  24537. #if !defined(NO_DH) && !defined(NO_PSK)
  24538. case dhe_psk_kea:
  24539. {
  24540. /* Nothing to do in this sub-state */
  24541. break;
  24542. }
  24543. #endif /* !defined(NO_DH) && !defined(NO_PSK) */
  24544. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24545. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  24546. case ecdhe_psk_kea:
  24547. {
  24548. /* Nothing to do in this sub-state */
  24549. break;
  24550. }
  24551. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  24552. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24553. defined(HAVE_CURVE448)
  24554. case ecc_diffie_hellman_kea:
  24555. {
  24556. switch(ssl->suites->sigAlgo)
  24557. {
  24558. #ifndef NO_RSA
  24559. #ifdef WC_RSA_PSS
  24560. case rsa_pss_sa_algo:
  24561. #endif
  24562. case rsa_sa_algo:
  24563. {
  24564. RsaKey* key = (RsaKey*)ssl->hsKey;
  24565. if (args->verifySig == NULL) {
  24566. if (args->sigSz == 0) {
  24567. ERROR_OUT(BAD_COND_E, exit_sske);
  24568. }
  24569. args->verifySig = (byte*)XMALLOC(
  24570. args->sigSz, ssl->heap,
  24571. DYNAMIC_TYPE_SIGNATURE);
  24572. if (!args->verifySig) {
  24573. ERROR_OUT(MEMORY_E, exit_sske);
  24574. }
  24575. XMEMCPY(args->verifySig,
  24576. args->output + args->idx, args->sigSz);
  24577. }
  24578. /* check for signature faults */
  24579. ret = VerifyRsaSign(ssl,
  24580. args->verifySig, args->sigSz,
  24581. ssl->buffers.sig.buffer,
  24582. ssl->buffers.sig.length,
  24583. ssl->suites->sigAlgo, ssl->suites->hashAlgo,
  24584. key, ssl->buffers.key
  24585. );
  24586. break;
  24587. }
  24588. #endif
  24589. case ecc_dsa_sa_algo:
  24590. #ifdef HAVE_ED25519
  24591. case ed25519_sa_algo:
  24592. #endif
  24593. #ifdef HAVE_ED448
  24594. case ed448_sa_algo:
  24595. #endif
  24596. {
  24597. /* Now that we know the real sig size, write it. */
  24598. c16toa((word16)args->sigSz,
  24599. args->output + args->idx);
  24600. /* And adjust length and sendSz from estimates */
  24601. args->length += args->sigSz - args->tmpSigSz;
  24602. args->sendSz += args->sigSz - args->tmpSigSz;
  24603. break;
  24604. }
  24605. default:
  24606. ERROR_OUT(ALGO_ID_E, exit_sske); /* unsupported type */
  24607. } /* switch(ssl->specs.sig_algo) */
  24608. break;
  24609. }
  24610. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  24611. #if !defined(NO_DH) && !defined(NO_RSA)
  24612. case diffie_hellman_kea:
  24613. {
  24614. switch (ssl->suites->sigAlgo)
  24615. {
  24616. #ifndef NO_RSA
  24617. #ifndef WC_RSA_PSS
  24618. case rsa_pss_sa_algo:
  24619. #endif
  24620. case rsa_sa_algo:
  24621. {
  24622. RsaKey* key = (RsaKey*)ssl->hsKey;
  24623. if (ssl->options.usingAnon_cipher) {
  24624. break;
  24625. }
  24626. if (args->verifySig == NULL) {
  24627. if (args->sigSz == 0) {
  24628. ERROR_OUT(BAD_COND_E, exit_sske);
  24629. }
  24630. args->verifySig = (byte*)XMALLOC(
  24631. args->sigSz, ssl->heap,
  24632. DYNAMIC_TYPE_SIGNATURE);
  24633. if (!args->verifySig) {
  24634. ERROR_OUT(MEMORY_E, exit_sske);
  24635. }
  24636. XMEMCPY(args->verifySig,
  24637. args->output + args->idx, args->sigSz);
  24638. }
  24639. /* check for signature faults */
  24640. ret = VerifyRsaSign(ssl,
  24641. args->verifySig, args->sigSz,
  24642. ssl->buffers.sig.buffer,
  24643. ssl->buffers.sig.length,
  24644. ssl->suites->sigAlgo, ssl->suites->hashAlgo,
  24645. key, ssl->buffers.key
  24646. );
  24647. break;
  24648. }
  24649. #endif
  24650. } /* switch (ssl->suites->sigAlgo) */
  24651. break;
  24652. }
  24653. #endif /* !defined(NO_DH) && !defined(NO_RSA) */
  24654. default:
  24655. break;
  24656. } /* switch(ssl->specs.kea) */
  24657. /* Check for error */
  24658. if (ret != 0) {
  24659. goto exit_sske;
  24660. }
  24661. /* Advance state and proceed */
  24662. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  24663. } /* case TLS_ASYNC_VERIFY */
  24664. FALL_THROUGH;
  24665. case TLS_ASYNC_FINALIZE:
  24666. {
  24667. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24668. defined(HAVE_CURVE448)
  24669. if (ssl->specs.kea == ecdhe_psk_kea ||
  24670. ssl->specs.kea == ecc_diffie_hellman_kea) {
  24671. /* Check output to make sure it was set */
  24672. if (args->output) {
  24673. AddHeaders(args->output, args->length,
  24674. server_key_exchange, ssl);
  24675. }
  24676. else {
  24677. ERROR_OUT(BUFFER_ERROR, exit_sske);
  24678. }
  24679. }
  24680. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  24681. ret = SendHandshakeMsg(ssl, args->output, args->length,
  24682. server_key_exchange, "ServerKeyExchange");
  24683. if (ret != 0)
  24684. goto exit_sske;
  24685. /* Advance state and proceed */
  24686. ssl->options.asyncState = TLS_ASYNC_END;
  24687. } /* case TLS_ASYNC_FINALIZE */
  24688. FALL_THROUGH;
  24689. case TLS_ASYNC_END:
  24690. {
  24691. ssl->options.serverState = SERVER_KEYEXCHANGE_COMPLETE;
  24692. break;
  24693. }
  24694. default:
  24695. ret = INPUT_CASE_ERROR;
  24696. } /* switch(ssl->options.asyncState) */
  24697. exit_sske:
  24698. WOLFSSL_LEAVE("SendServerKeyExchange", ret);
  24699. WOLFSSL_END(WC_FUNC_SERVER_KEY_EXCHANGE_SEND);
  24700. #ifdef WOLFSSL_ASYNC_CRYPT
  24701. /* Handle async operation */
  24702. if (ret == WC_PENDING_E)
  24703. return ret;
  24704. #endif /* WOLFSSL_ASYNC_CRYPT */
  24705. /* Final cleanup */
  24706. if (args->input != NULL) {
  24707. XFREE(args->input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  24708. args->input = NULL;
  24709. }
  24710. FreeSskeArgs(ssl, args);
  24711. FreeKeyExchange(ssl);
  24712. return ret;
  24713. }
  24714. #if defined(HAVE_SERVER_RENEGOTIATION_INFO) || defined(HAVE_FALLBACK_SCSV) || \
  24715. defined(OPENSSL_ALL)
  24716. /* search suites for specific one, idx on success, negative on error */
  24717. static int FindSuite(Suites* suites, byte first, byte second)
  24718. {
  24719. int i;
  24720. if (suites == NULL || suites->suiteSz == 0) {
  24721. WOLFSSL_MSG("Suites pointer error or suiteSz 0");
  24722. return SUITES_ERROR;
  24723. }
  24724. for (i = 0; i < suites->suiteSz-1; i += SUITE_LEN) {
  24725. if (suites->suites[i] == first &&
  24726. suites->suites[i+1] == second )
  24727. return i;
  24728. }
  24729. return MATCH_SUITE_ERROR;
  24730. }
  24731. #endif
  24732. #endif /* !WOLFSSL_NO_TLS12 */
  24733. /* Make sure server cert/key are valid for this suite, true on success
  24734. * Returns 1 for valid server suite or 0 if not found
  24735. * For asynchronous this can return WC_PENDING_E
  24736. */
  24737. static int VerifyServerSuite(WOLFSSL* ssl, word16 idx)
  24738. {
  24739. int haveRSA = !ssl->options.haveStaticECC;
  24740. #ifndef NO_PSK
  24741. int havePSK = ssl->options.havePSK;
  24742. #endif
  24743. byte first;
  24744. byte second;
  24745. WOLFSSL_ENTER("VerifyServerSuite");
  24746. if (ssl->suites == NULL) {
  24747. WOLFSSL_MSG("Suites pointer error");
  24748. return 0;
  24749. }
  24750. first = ssl->suites->suites[idx];
  24751. second = ssl->suites->suites[idx+1];
  24752. if (CipherRequires(first, second, REQUIRES_RSA)) {
  24753. WOLFSSL_MSG("Requires RSA");
  24754. if (haveRSA == 0) {
  24755. WOLFSSL_MSG("Don't have RSA");
  24756. return 0;
  24757. }
  24758. }
  24759. if (CipherRequires(first, second, REQUIRES_DHE)) {
  24760. WOLFSSL_MSG("Requires DHE");
  24761. if (ssl->options.haveDH == 0) {
  24762. WOLFSSL_MSG("Don't have DHE");
  24763. return 0;
  24764. }
  24765. }
  24766. if (CipherRequires(first, second, REQUIRES_ECC)) {
  24767. WOLFSSL_MSG("Requires ECC");
  24768. if (ssl->options.haveECC == 0) {
  24769. WOLFSSL_MSG("Don't have ECC");
  24770. return 0;
  24771. }
  24772. }
  24773. if (CipherRequires(first, second, REQUIRES_ECC_STATIC)) {
  24774. WOLFSSL_MSG("Requires static ECC");
  24775. if (ssl->options.haveStaticECC == 0) {
  24776. WOLFSSL_MSG("Don't have static ECC");
  24777. return 0;
  24778. }
  24779. }
  24780. if (CipherRequires(first, second, REQUIRES_PSK)) {
  24781. WOLFSSL_MSG("Requires PSK");
  24782. #ifndef NO_PSK
  24783. if (havePSK == 0)
  24784. #endif
  24785. {
  24786. WOLFSSL_MSG("Don't have PSK");
  24787. return 0;
  24788. }
  24789. }
  24790. if (CipherRequires(first, second, REQUIRES_RSA_SIG)) {
  24791. WOLFSSL_MSG("Requires RSA Signature");
  24792. if (ssl->options.side == WOLFSSL_SERVER_END &&
  24793. ssl->options.haveECDSAsig == 1) {
  24794. WOLFSSL_MSG("Don't have RSA Signature");
  24795. return 0;
  24796. }
  24797. }
  24798. #if !defined(WOLFSSL_OLDTLS_AEAD_CIPHERSUITES)
  24799. if (CipherRequires(first, second, REQUIRES_AEAD)) {
  24800. WOLFSSL_MSG("Requires AEAD");
  24801. if (ssl->version.major == SSLv3_MAJOR &&
  24802. ssl->version.minor < TLSv1_2_MINOR) {
  24803. WOLFSSL_MSG("Version of SSL does not support AEAD ciphers");
  24804. return 0;
  24805. }
  24806. }
  24807. #endif
  24808. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  24809. defined(HAVE_CURVE448)) && defined(HAVE_SUPPORTED_CURVES)
  24810. if (!TLSX_ValidateSupportedCurves(ssl, first, second)) {
  24811. WOLFSSL_MSG("Don't have matching curves");
  24812. return 0;
  24813. }
  24814. #endif
  24815. #ifdef WOLFSSL_TLS13
  24816. if (IsAtLeastTLSv1_3(ssl->version) &&
  24817. ssl->options.side == WOLFSSL_SERVER_END) {
  24818. #ifdef HAVE_SUPPORTED_CURVES
  24819. int doHelloRetry = 0;
  24820. /* Try to establish a key share. */
  24821. int ret = TLSX_KeyShare_Establish(ssl, &doHelloRetry);
  24822. if (doHelloRetry) {
  24823. ssl->options.serverState = SERVER_HELLO_RETRY_REQUEST_COMPLETE;
  24824. }
  24825. #ifdef WOLFSSL_ASYNC_CRYPT
  24826. if (ret == WC_PENDING_E)
  24827. return ret;
  24828. #endif
  24829. if (!doHelloRetry && ret != 0) {
  24830. return 0; /* not found */
  24831. }
  24832. #endif /* HAVE_SUPPORTED_CURVES */
  24833. }
  24834. else if (first == TLS13_BYTE || (first == ECC_BYTE &&
  24835. (second == TLS_SHA256_SHA256 || second == TLS_SHA384_SHA384))) {
  24836. /* Can't negotiate TLS 1.3 cipher suites with lower protocol
  24837. * version. */
  24838. return 0;
  24839. }
  24840. #endif /* WOLFSSL_TLS13 */
  24841. return 1;
  24842. }
  24843. #ifndef NO_WOLFSSL_SERVER
  24844. static int CompareSuites(WOLFSSL* ssl, Suites* peerSuites, word16 i,
  24845. word16 j)
  24846. {
  24847. if (ssl->suites->suites[i] == peerSuites->suites[j] &&
  24848. ssl->suites->suites[i+1] == peerSuites->suites[j+1] ) {
  24849. int ret = VerifyServerSuite(ssl, i);
  24850. #ifdef WOLFSSL_ASYNC_CRYPT
  24851. if (ret == WC_PENDING_E)
  24852. return ret;
  24853. #endif
  24854. if (ret) {
  24855. WOLFSSL_MSG("Verified suite validity");
  24856. ssl->options.cipherSuite0 = ssl->suites->suites[i];
  24857. ssl->options.cipherSuite = ssl->suites->suites[i+1];
  24858. ret = SetCipherSpecs(ssl);
  24859. if (ret == 0) {
  24860. ret = PickHashSigAlgo(ssl, peerSuites->hashSigAlgo,
  24861. peerSuites->hashSigAlgoSz);
  24862. }
  24863. return ret;
  24864. }
  24865. else {
  24866. WOLFSSL_MSG("Could not verify suite validity, continue");
  24867. }
  24868. }
  24869. return MATCH_SUITE_ERROR;
  24870. }
  24871. int MatchSuite(WOLFSSL* ssl, Suites* peerSuites)
  24872. {
  24873. int ret;
  24874. word16 i, j;
  24875. WOLFSSL_ENTER("MatchSuite");
  24876. /* & 0x1 equivalent % 2 */
  24877. if (peerSuites->suiteSz == 0 || peerSuites->suiteSz & 0x1)
  24878. return BUFFER_ERROR;
  24879. if (ssl->suites == NULL)
  24880. return SUITES_ERROR;
  24881. if (!ssl->options.useClientOrder) {
  24882. /* Server order */
  24883. for (i = 0; i < ssl->suites->suiteSz; i += 2) {
  24884. for (j = 0; j < peerSuites->suiteSz; j += 2) {
  24885. ret = CompareSuites(ssl, peerSuites, i, j);
  24886. if (ret != MATCH_SUITE_ERROR)
  24887. return ret;
  24888. }
  24889. }
  24890. }
  24891. else {
  24892. /* Client order */
  24893. for (j = 0; j < peerSuites->suiteSz; j += 2) {
  24894. for (i = 0; i < ssl->suites->suiteSz; i += 2) {
  24895. ret = CompareSuites(ssl, peerSuites, i, j);
  24896. if (ret != MATCH_SUITE_ERROR)
  24897. return ret;
  24898. }
  24899. }
  24900. }
  24901. return MATCH_SUITE_ERROR;
  24902. }
  24903. #endif
  24904. #ifdef OLD_HELLO_ALLOWED
  24905. /* process old style client hello, deprecate? */
  24906. int ProcessOldClientHello(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  24907. word32 inSz, word16 sz)
  24908. {
  24909. word32 idx = *inOutIdx;
  24910. word16 sessionSz;
  24911. word16 randomSz;
  24912. word16 i, j;
  24913. ProtocolVersion pv;
  24914. Suites clSuites;
  24915. int ret = -1;
  24916. (void)inSz;
  24917. WOLFSSL_MSG("Got old format client hello");
  24918. #ifdef WOLFSSL_CALLBACKS
  24919. if (ssl->hsInfoOn)
  24920. AddPacketName(ssl, "ClientHello");
  24921. if (ssl->toInfoOn)
  24922. AddLateName("ClientHello", &ssl->timeoutInfo);
  24923. #endif
  24924. /* manually hash input since different format */
  24925. #ifndef NO_OLD_TLS
  24926. #ifndef NO_MD5
  24927. wc_Md5Update(&ssl->hsHashes->hashMd5, input + idx, sz);
  24928. #endif
  24929. #ifndef NO_SHA
  24930. wc_ShaUpdate(&ssl->hsHashes->hashSha, input + idx, sz);
  24931. #endif
  24932. #endif
  24933. #ifndef NO_SHA256
  24934. if (IsAtLeastTLSv1_2(ssl)) {
  24935. int shaRet = wc_Sha256Update(&ssl->hsHashes->hashSha256,
  24936. input + idx, sz);
  24937. if (shaRet != 0)
  24938. return shaRet;
  24939. }
  24940. #endif
  24941. /* does this value mean client_hello? */
  24942. idx++;
  24943. /* version */
  24944. pv.major = input[idx++];
  24945. pv.minor = input[idx++];
  24946. ssl->chVersion = pv; /* store */
  24947. if (ssl->version.minor > pv.minor) {
  24948. byte haveRSA = 0;
  24949. byte havePSK = 0;
  24950. int keySz = 0;
  24951. if (!ssl->options.downgrade) {
  24952. WOLFSSL_MSG("Client trying to connect with lesser version");
  24953. return VERSION_ERROR;
  24954. }
  24955. if (pv.minor < ssl->options.minDowngrade) {
  24956. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  24957. return VERSION_ERROR;
  24958. }
  24959. if (pv.minor == SSLv3_MINOR) {
  24960. /* turn off tls */
  24961. WOLFSSL_MSG("\tdowngrading to SSLv3");
  24962. ssl->options.tls = 0;
  24963. ssl->options.tls1_1 = 0;
  24964. ssl->version.minor = SSLv3_MINOR;
  24965. }
  24966. else if (pv.minor == TLSv1_MINOR) {
  24967. WOLFSSL_MSG("\tdowngrading to TLSv1");
  24968. /* turn off tls 1.1+ */
  24969. ssl->options.tls1_1 = 0;
  24970. ssl->version.minor = TLSv1_MINOR;
  24971. }
  24972. else if (pv.minor == TLSv1_1_MINOR) {
  24973. WOLFSSL_MSG("\tdowngrading to TLSv1.1");
  24974. ssl->version.minor = TLSv1_1_MINOR;
  24975. }
  24976. else if (pv.minor == TLSv1_2_MINOR) {
  24977. WOLFSSL_MSG(" downgrading to TLSv1.2");
  24978. ssl->version.minor = TLSv1_2_MINOR;
  24979. }
  24980. #ifndef NO_RSA
  24981. haveRSA = 1;
  24982. #endif
  24983. #ifndef NO_PSK
  24984. havePSK = ssl->options.havePSK;
  24985. #endif
  24986. #ifndef NO_CERTS
  24987. keySz = ssl->buffers.keySz;
  24988. #endif
  24989. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  24990. ssl->options.haveDH, ssl->options.haveECDSAsig,
  24991. ssl->options.haveECC, ssl->options.haveStaticECC,
  24992. ssl->options.haveAnon, ssl->options.side);
  24993. }
  24994. /* suite size */
  24995. ato16(&input[idx], &clSuites.suiteSz);
  24996. idx += OPAQUE16_LEN;
  24997. if (clSuites.suiteSz > WOLFSSL_MAX_SUITE_SZ)
  24998. return BUFFER_ERROR;
  24999. /* Make sure the suiteSz is a multiple of 3. (Old Client Hello) */
  25000. if (clSuites.suiteSz % 3 != 0)
  25001. return BUFFER_ERROR;
  25002. clSuites.hashSigAlgoSz = 0;
  25003. /* session size */
  25004. ato16(&input[idx], &sessionSz);
  25005. idx += OPAQUE16_LEN;
  25006. if (sessionSz > ID_LEN)
  25007. return BUFFER_ERROR;
  25008. /* random size */
  25009. ato16(&input[idx], &randomSz);
  25010. idx += OPAQUE16_LEN;
  25011. if (randomSz > RAN_LEN)
  25012. return BUFFER_ERROR;
  25013. /* suites */
  25014. for (i = 0, j = 0; i < clSuites.suiteSz; i += 3) {
  25015. byte first = input[idx++];
  25016. if (!first) { /* implicit: skip sslv2 type */
  25017. XMEMCPY(&clSuites.suites[j], &input[idx], SUITE_LEN);
  25018. j += SUITE_LEN;
  25019. }
  25020. idx += SUITE_LEN;
  25021. }
  25022. clSuites.suiteSz = j;
  25023. /* session id */
  25024. if (sessionSz) {
  25025. XMEMCPY(ssl->arrays->sessionID, input + idx, sessionSz);
  25026. ssl->arrays->sessionIDSz = (byte)sessionSz;
  25027. idx += sessionSz;
  25028. ssl->options.resuming = 1;
  25029. }
  25030. /* random */
  25031. if (randomSz < RAN_LEN)
  25032. XMEMSET(ssl->arrays->clientRandom, 0, RAN_LEN - randomSz);
  25033. XMEMCPY(&ssl->arrays->clientRandom[RAN_LEN - randomSz], input + idx,
  25034. randomSz);
  25035. idx += randomSz;
  25036. if (ssl->options.usingCompression)
  25037. ssl->options.usingCompression = 0; /* turn off */
  25038. ssl->options.clientState = CLIENT_HELLO_COMPLETE;
  25039. ssl->cbmode = SSL_CB_MODE_WRITE;
  25040. *inOutIdx = idx;
  25041. ssl->options.haveSessionId = 1;
  25042. /* DoClientHello uses same resume code */
  25043. if (ssl->options.resuming) { /* let's try */
  25044. WOLFSSL_SESSION* session = GetSession(ssl,
  25045. ssl->arrays->masterSecret, 1);
  25046. #ifdef HAVE_SESSION_TICKET
  25047. if (ssl->options.useTicket == 1) {
  25048. session = &ssl->session;
  25049. }
  25050. #endif
  25051. if (!session) {
  25052. WOLFSSL_MSG("Session lookup for resume failed");
  25053. ssl->options.resuming = 0;
  25054. } else {
  25055. #ifdef HAVE_EXT_CACHE
  25056. wolfSSL_SESSION_free(session);
  25057. #endif
  25058. if (MatchSuite(ssl, &clSuites) < 0) {
  25059. WOLFSSL_MSG("Unsupported cipher suite, OldClientHello");
  25060. return UNSUPPORTED_SUITE;
  25061. }
  25062. ret = wc_RNG_GenerateBlock(ssl->rng, ssl->arrays->serverRandom,
  25063. RAN_LEN);
  25064. if (ret != 0)
  25065. return ret;
  25066. #ifdef NO_OLD_TLS
  25067. ret = DeriveTlsKeys(ssl);
  25068. #else
  25069. #ifndef NO_TLS
  25070. if (ssl->options.tls)
  25071. ret = DeriveTlsKeys(ssl);
  25072. #endif
  25073. if (!ssl->options.tls)
  25074. ret = DeriveKeys(ssl);
  25075. #endif
  25076. ssl->options.clientState = CLIENT_KEYEXCHANGE_COMPLETE;
  25077. return ret;
  25078. }
  25079. }
  25080. ret = MatchSuite(ssl, &clSuites);
  25081. if (ret != 0)return ret;
  25082. return SanityCheckMsgReceived(ssl, client_hello);
  25083. }
  25084. #endif /* OLD_HELLO_ALLOWED */
  25085. #ifndef WOLFSSL_NO_TLS12
  25086. /**
  25087. * Handles session resumption.
  25088. * Session tickets are checked for validity based on the time each ticket
  25089. * was created, timeout value and the current time. If the tickets are
  25090. * judged expired, falls back to full-handshake. If you want disable this
  25091. * sessin ticket validation check in TLS1.2 and below, define
  25092. * WOLFSSL_NO_TICKET_EXPRE.
  25093. */
  25094. int HandleTlsResumption(WOLFSSL* ssl, int bogusID, Suites* clSuites)
  25095. {
  25096. int ret = 0;
  25097. WOLFSSL_SESSION* session;
  25098. (void)bogusID;
  25099. session = GetSession(ssl, ssl->arrays->masterSecret, 1);
  25100. #ifdef HAVE_SESSION_TICKET
  25101. if (ssl->options.useTicket == 1) {
  25102. session = &ssl->session;
  25103. } else if (bogusID == 1 && ssl->options.rejectTicket == 0) {
  25104. WOLFSSL_MSG("Bogus session ID without session ticket");
  25105. return BUFFER_ERROR;
  25106. }
  25107. #endif
  25108. if (!session) {
  25109. WOLFSSL_MSG("Session lookup for resume failed");
  25110. ssl->options.resuming = 0;
  25111. return ret;
  25112. }
  25113. #if defined(HAVE_SESSION_TICKET) && !defined(WOLFSSL_NO_TICKET_EXPIRE) && \
  25114. !defined(NO_ASN_TIME)
  25115. /* check if the ticket is valid */
  25116. if (LowResTimer() > session->bornOn + ssl->timeout) {
  25117. WOLFSSL_MSG("Expired session ticket, fall back to full handshake.");
  25118. ssl->options.resuming = 0;
  25119. }
  25120. #endif /* HAVE_SESSION_TICKET && !WOLFSSL_NO_TICKET_EXPIRE && !NO_ASN_TIME */
  25121. else if (session->haveEMS != ssl->options.haveEMS) {
  25122. /* RFC 7627, 5.3, server-side */
  25123. /* if old sess didn't have EMS, but new does, full handshake */
  25124. if (!session->haveEMS && ssl->options.haveEMS) {
  25125. WOLFSSL_MSG("Attempting to resume a session that didn't "
  25126. "use EMS with a new session with EMS. Do full "
  25127. "handshake.");
  25128. ssl->options.resuming = 0;
  25129. }
  25130. /* if old sess used EMS, but new doesn't, MUST abort */
  25131. else if (session->haveEMS && !ssl->options.haveEMS) {
  25132. WOLFSSL_MSG("Trying to resume a session with EMS without "
  25133. "using EMS");
  25134. #ifdef WOLFSSL_EXTRA_ALERTS
  25135. SendAlert(ssl, alert_fatal, handshake_failure);
  25136. #endif
  25137. #ifdef HAVE_EXT_CACHE
  25138. wolfSSL_SESSION_free(session);
  25139. #endif
  25140. return EXT_MASTER_SECRET_NEEDED_E;
  25141. }
  25142. #ifdef HAVE_EXT_CACHE
  25143. wolfSSL_SESSION_free(session);
  25144. #endif
  25145. }
  25146. else {
  25147. #ifndef NO_RESUME_SUITE_CHECK
  25148. int j;
  25149. /* Check client suites include the one in session */
  25150. for (j = 0; j < clSuites->suiteSz; j += 2) {
  25151. if (clSuites->suites[j] == session->cipherSuite0 &&
  25152. clSuites->suites[j+1] == session->cipherSuite) {
  25153. break;
  25154. }
  25155. }
  25156. if (j == clSuites->suiteSz) {
  25157. WOLFSSL_MSG("Prev session's cipher suite not in ClientHello");
  25158. #ifdef WOLFSSL_EXTRA_ALERTS
  25159. SendAlert(ssl, alert_fatal, illegal_parameter);
  25160. #endif
  25161. return UNSUPPORTED_SUITE;
  25162. }
  25163. #endif
  25164. #ifdef HAVE_EXT_CACHE
  25165. wolfSSL_SESSION_free(session);
  25166. #endif
  25167. if (MatchSuite(ssl, clSuites) < 0) {
  25168. WOLFSSL_MSG("Unsupported cipher suite, ClientHello");
  25169. return UNSUPPORTED_SUITE;
  25170. }
  25171. ret = wc_RNG_GenerateBlock(ssl->rng, ssl->arrays->serverRandom,
  25172. RAN_LEN);
  25173. if (ret != 0)
  25174. return ret;
  25175. #ifdef NO_OLD_TLS
  25176. ret = DeriveTlsKeys(ssl);
  25177. #else
  25178. #ifndef NO_TLS
  25179. if (ssl->options.tls)
  25180. ret = DeriveTlsKeys(ssl);
  25181. #endif
  25182. if (!ssl->options.tls)
  25183. ret = DeriveKeys(ssl);
  25184. #endif
  25185. ssl->options.clientState = CLIENT_KEYEXCHANGE_COMPLETE;
  25186. }
  25187. return ret;
  25188. }
  25189. /* handle processing of client_hello (1) */
  25190. int DoClientHello(WOLFSSL* ssl, const byte* input, word32* inOutIdx,
  25191. word32 helloSz)
  25192. {
  25193. byte b;
  25194. byte bogusID = 0; /* flag for a bogus session id */
  25195. ProtocolVersion pv;
  25196. Suites clSuites;
  25197. word32 i = *inOutIdx;
  25198. word32 begin = i;
  25199. int ret = 0;
  25200. #ifdef WOLFSSL_DTLS
  25201. Hmac cookieHmac;
  25202. byte peerCookie[MAX_COOKIE_LEN];
  25203. byte peerCookieSz = 0;
  25204. byte cookieType;
  25205. byte cookieSz = 0;
  25206. XMEMSET(&cookieHmac, 0, sizeof(Hmac));
  25207. #endif /* WOLFSSL_DTLS */
  25208. WOLFSSL_START(WC_FUNC_CLIENT_HELLO_DO);
  25209. WOLFSSL_ENTER("DoClientHello");
  25210. #ifdef WOLFSSL_CALLBACKS
  25211. if (ssl->hsInfoOn) AddPacketName(ssl, "ClientHello");
  25212. if (ssl->toInfoOn) AddLateName("ClientHello", &ssl->timeoutInfo);
  25213. #endif
  25214. /* protocol version, random and session id length check */
  25215. if (OPAQUE16_LEN + RAN_LEN + OPAQUE8_LEN > helloSz)
  25216. return BUFFER_ERROR;
  25217. /* protocol version */
  25218. XMEMCPY(&pv, input + i, OPAQUE16_LEN);
  25219. ssl->chVersion = pv; /* store */
  25220. #ifdef WOLFSSL_DTLS
  25221. if (IsDtlsNotSctpMode(ssl) && !IsSCR(ssl) && !ssl->options.resuming) {
  25222. #if defined(NO_SHA) && defined(NO_SHA256)
  25223. #error "DTLS needs either SHA or SHA-256"
  25224. #endif /* NO_SHA && NO_SHA256 */
  25225. #if !defined(NO_SHA) && defined(NO_SHA256)
  25226. cookieType = WC_SHA;
  25227. cookieSz = WC_SHA_DIGEST_SIZE;
  25228. #endif /* NO_SHA */
  25229. #ifndef NO_SHA256
  25230. cookieType = WC_SHA256;
  25231. cookieSz = WC_SHA256_DIGEST_SIZE;
  25232. #endif /* NO_SHA256 */
  25233. ret = wc_HmacSetKey(&cookieHmac, cookieType,
  25234. ssl->buffers.dtlsCookieSecret.buffer,
  25235. ssl->buffers.dtlsCookieSecret.length);
  25236. if (ret != 0) goto out;
  25237. ret = wc_HmacUpdate(&cookieHmac,
  25238. (const byte*)ssl->buffers.dtlsCtx.peer.sa,
  25239. ssl->buffers.dtlsCtx.peer.sz);
  25240. if (ret != 0) goto out;
  25241. ret = wc_HmacUpdate(&cookieHmac, input + i, OPAQUE16_LEN);
  25242. if (ret != 0) goto out;
  25243. }
  25244. #endif /* WOLFSSL_DTLS */
  25245. i += OPAQUE16_LEN;
  25246. /* Legacy protocol version cannot negotiate TLS 1.3 or higher. */
  25247. if (pv.major == SSLv3_MAJOR && pv.minor >= TLSv1_3_MINOR)
  25248. pv.minor = TLSv1_2_MINOR;
  25249. if ((!ssl->options.dtls && ssl->version.minor > pv.minor) ||
  25250. (ssl->options.dtls && ssl->version.minor != DTLS_MINOR
  25251. && ssl->version.minor != DTLSv1_2_MINOR && pv.minor != DTLS_MINOR
  25252. && pv.minor != DTLSv1_2_MINOR)) {
  25253. word16 haveRSA = 0;
  25254. word16 havePSK = 0;
  25255. int keySz = 0;
  25256. if (!ssl->options.downgrade) {
  25257. WOLFSSL_MSG("Client trying to connect with lesser version");
  25258. #if defined(WOLFSSL_EXTRA_ALERTS) || defined(OPENSSL_EXTRA)
  25259. SendAlert(ssl, alert_fatal, handshake_failure);
  25260. #endif
  25261. ret = VERSION_ERROR;
  25262. goto out;
  25263. }
  25264. if (pv.minor < ssl->options.minDowngrade) {
  25265. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  25266. #if defined(WOLFSSL_EXTRA_ALERTS) || defined(OPENSSL_EXTRA)
  25267. SendAlert(ssl, alert_fatal, handshake_failure);
  25268. #endif
  25269. ret = VERSION_ERROR;
  25270. goto out;
  25271. }
  25272. if (pv.minor == SSLv3_MINOR) {
  25273. /* turn off tls */
  25274. WOLFSSL_MSG("\tdowngrading to SSLv3");
  25275. ssl->options.tls = 0;
  25276. ssl->options.tls1_1 = 0;
  25277. ssl->version.minor = SSLv3_MINOR;
  25278. }
  25279. else if (pv.minor == TLSv1_MINOR) {
  25280. /* turn off tls 1.1+ */
  25281. WOLFSSL_MSG("\tdowngrading to TLSv1");
  25282. ssl->options.tls1_1 = 0;
  25283. ssl->version.minor = TLSv1_MINOR;
  25284. }
  25285. else if (pv.minor == TLSv1_1_MINOR) {
  25286. WOLFSSL_MSG("\tdowngrading to TLSv1.1");
  25287. ssl->version.minor = TLSv1_1_MINOR;
  25288. }
  25289. else if (pv.minor == TLSv1_2_MINOR) {
  25290. WOLFSSL_MSG(" downgrading to TLSv1.2");
  25291. ssl->version.minor = TLSv1_2_MINOR;
  25292. }
  25293. #ifndef NO_RSA
  25294. haveRSA = 1;
  25295. #endif
  25296. #ifndef NO_PSK
  25297. havePSK = ssl->options.havePSK;
  25298. #endif
  25299. #ifndef NO_CERTS
  25300. keySz = ssl->buffers.keySz;
  25301. #endif
  25302. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  25303. ssl->options.haveDH, ssl->options.haveECDSAsig,
  25304. ssl->options.haveECC, ssl->options.haveStaticECC,
  25305. ssl->options.haveAnon, ssl->options.side);
  25306. }
  25307. #ifdef OPENSSL_EXTRA
  25308. /* check if option is set to not allow the current version
  25309. * set from either wolfSSL_set_options or wolfSSL_CTX_set_options */
  25310. if (!ssl->options.dtls && ssl->options.downgrade &&
  25311. ssl->options.mask > 0) {
  25312. int reset = 0;
  25313. if (ssl->version.minor == TLSv1_2_MINOR &&
  25314. (ssl->options.mask & SSL_OP_NO_TLSv1_2) == SSL_OP_NO_TLSv1_2) {
  25315. WOLFSSL_MSG("\tOption set to not allow TLSv1.2, Downgrading");
  25316. ssl->version.minor = TLSv1_1_MINOR;
  25317. reset = 1;
  25318. }
  25319. if (ssl->version.minor == TLSv1_1_MINOR &&
  25320. (ssl->options.mask & SSL_OP_NO_TLSv1_1) == SSL_OP_NO_TLSv1_1) {
  25321. WOLFSSL_MSG("\tOption set to not allow TLSv1.1, Downgrading");
  25322. ssl->options.tls1_1 = 0;
  25323. ssl->version.minor = TLSv1_MINOR;
  25324. reset = 1;
  25325. }
  25326. if (ssl->version.minor == TLSv1_MINOR &&
  25327. (ssl->options.mask & SSL_OP_NO_TLSv1) == SSL_OP_NO_TLSv1) {
  25328. WOLFSSL_MSG("\tOption set to not allow TLSv1, Downgrading");
  25329. ssl->options.tls = 0;
  25330. ssl->options.tls1_1 = 0;
  25331. ssl->version.minor = SSLv3_MINOR;
  25332. reset = 1;
  25333. }
  25334. if (ssl->version.minor == SSLv3_MINOR &&
  25335. (ssl->options.mask & SSL_OP_NO_SSLv3) == SSL_OP_NO_SSLv3) {
  25336. WOLFSSL_MSG("\tError, option set to not allow SSLv3");
  25337. ret = VERSION_ERROR;
  25338. goto out;
  25339. }
  25340. if (ssl->version.minor < ssl->options.minDowngrade) {
  25341. WOLFSSL_MSG("\tversion below minimum allowed, fatal error");
  25342. ret = VERSION_ERROR;
  25343. goto out;
  25344. }
  25345. if (reset) {
  25346. word16 haveRSA = 0;
  25347. word16 havePSK = 0;
  25348. int keySz = 0;
  25349. #ifndef NO_RSA
  25350. haveRSA = 1;
  25351. #endif
  25352. #ifndef NO_PSK
  25353. havePSK = ssl->options.havePSK;
  25354. #endif
  25355. #ifndef NO_CERTS
  25356. keySz = ssl->buffers.keySz;
  25357. #endif
  25358. /* reset cipher suites to account for TLS version change */
  25359. InitSuites(ssl->suites, ssl->version, keySz, haveRSA, havePSK,
  25360. ssl->options.haveDH, ssl->options.haveECDSAsig,
  25361. ssl->options.haveECC, ssl->options.haveStaticECC,
  25362. ssl->options.haveAnon, ssl->options.side);
  25363. }
  25364. }
  25365. #endif
  25366. /* random */
  25367. XMEMCPY(ssl->arrays->clientRandom, input + i, RAN_LEN);
  25368. #ifdef WOLFSSL_DTLS
  25369. if (IsDtlsNotSctpMode(ssl) && !IsSCR(ssl) && !ssl->options.resuming) {
  25370. ret = wc_HmacUpdate(&cookieHmac, input + i, RAN_LEN);
  25371. if (ret != 0) goto out;
  25372. }
  25373. #endif /* WOLFSSL_DTLS */
  25374. i += RAN_LEN;
  25375. #ifdef SHOW_SECRETS
  25376. {
  25377. int j;
  25378. printf("client random: ");
  25379. for (j = 0; j < RAN_LEN; j++)
  25380. printf("%02x", ssl->arrays->clientRandom[j]);
  25381. printf("\n");
  25382. }
  25383. #endif
  25384. /* session id */
  25385. b = input[i++];
  25386. #ifdef HAVE_SESSION_TICKET
  25387. if (b > 0 && b < ID_LEN) {
  25388. bogusID = 1;
  25389. WOLFSSL_MSG("Client sent bogus session id, let's allow for echo");
  25390. }
  25391. #endif
  25392. if (b == ID_LEN || bogusID) {
  25393. if ((i - begin) + b > helloSz) {
  25394. ret = BUFFER_ERROR;
  25395. goto out;
  25396. }
  25397. XMEMCPY(ssl->arrays->sessionID, input + i, b);
  25398. #ifdef WOLFSSL_DTLS
  25399. if (IsDtlsNotSctpMode(ssl) && !IsSCR(ssl) &&
  25400. !ssl->options.resuming) {
  25401. ret = wc_HmacUpdate(&cookieHmac, input + i - 1, b + 1);
  25402. if (ret != 0) goto out;
  25403. }
  25404. #endif /* WOLFSSL_DTLS */
  25405. ssl->arrays->sessionIDSz = b;
  25406. i += b;
  25407. ssl->options.resuming = 1; /* client wants to resume */
  25408. WOLFSSL_MSG("Client wants to resume session");
  25409. }
  25410. else if (b) {
  25411. WOLFSSL_MSG("Invalid session ID size");
  25412. ret = BUFFER_ERROR; /* session ID nor 0 neither 32 bytes long */
  25413. goto out;
  25414. }
  25415. #ifdef WOLFSSL_DTLS
  25416. /* cookie */
  25417. if (ssl->options.dtls) {
  25418. if ((i - begin) + OPAQUE8_LEN > helloSz) {
  25419. ret = BUFFER_ERROR;
  25420. goto out;
  25421. }
  25422. peerCookieSz = input[i++];
  25423. if (peerCookieSz) {
  25424. if (peerCookieSz > MAX_COOKIE_LEN) {
  25425. ret = BUFFER_ERROR;
  25426. goto out;
  25427. }
  25428. if ((i - begin) + peerCookieSz > helloSz) {
  25429. ret = BUFFER_ERROR;
  25430. goto out;
  25431. }
  25432. XMEMCPY(peerCookie, input + i, peerCookieSz);
  25433. i += peerCookieSz;
  25434. }
  25435. }
  25436. #endif
  25437. /* suites */
  25438. if ((i - begin) + OPAQUE16_LEN > helloSz) {
  25439. ret = BUFFER_ERROR;
  25440. goto out;
  25441. }
  25442. ato16(&input[i], &clSuites.suiteSz);
  25443. i += OPAQUE16_LEN;
  25444. /* Cipher suite lists are always multiples of two in length. */
  25445. if (clSuites.suiteSz % 2 != 0) {
  25446. ret = BUFFER_ERROR;
  25447. goto out;
  25448. }
  25449. /* suites and compression length check */
  25450. if ((i - begin) + clSuites.suiteSz + OPAQUE8_LEN > helloSz) {
  25451. ret = BUFFER_ERROR;
  25452. goto out;
  25453. }
  25454. if (clSuites.suiteSz > WOLFSSL_MAX_SUITE_SZ) {
  25455. ret = BUFFER_ERROR;
  25456. goto out;
  25457. }
  25458. XMEMCPY(clSuites.suites, input + i, clSuites.suiteSz);
  25459. #ifdef HAVE_SERVER_RENEGOTIATION_INFO
  25460. /* check for TLS_EMPTY_RENEGOTIATION_INFO_SCSV suite */
  25461. if (FindSuite(&clSuites, 0, TLS_EMPTY_RENEGOTIATION_INFO_SCSV) >= 0) {
  25462. TLSX* extension;
  25463. /* check for TLS_EMPTY_RENEGOTIATION_INFO_SCSV suite */
  25464. ret = TLSX_AddEmptyRenegotiationInfo(&ssl->extensions, ssl->heap);
  25465. if (ret != WOLFSSL_SUCCESS)
  25466. goto out;
  25467. extension = TLSX_Find(ssl->extensions, TLSX_RENEGOTIATION_INFO);
  25468. if (extension) {
  25469. ssl->secure_renegotiation =
  25470. (SecureRenegotiation*)extension->data;
  25471. ssl->secure_renegotiation->enabled = 1;
  25472. }
  25473. }
  25474. #endif /* HAVE_SERVER_RENEGOTIATION_INFO */
  25475. #if defined(HAVE_FALLBACK_SCSV) || defined(OPENSSL_ALL)
  25476. /* check for TLS_FALLBACK_SCSV suite */
  25477. if (FindSuite(&clSuites, TLS_FALLBACK_SCSV, 0) >= 0) {
  25478. WOLFSSL_MSG("Found Fallback SCSV");
  25479. if (ssl->ctx->method->version.minor > pv.minor) {
  25480. WOLFSSL_MSG("Client trying to connect with lesser version");
  25481. SendAlert(ssl, alert_fatal, inappropriate_fallback);
  25482. ret = VERSION_ERROR;
  25483. goto out;
  25484. }
  25485. }
  25486. #endif
  25487. #ifdef WOLFSSL_DTLS
  25488. if (IsDtlsNotSctpMode(ssl) && !IsSCR(ssl) && !ssl->options.resuming) {
  25489. ret = wc_HmacUpdate(&cookieHmac,
  25490. input + i - OPAQUE16_LEN,
  25491. clSuites.suiteSz + OPAQUE16_LEN);
  25492. if (ret != 0) goto out;
  25493. }
  25494. #endif /* WOLFSSL_DTLS */
  25495. i += clSuites.suiteSz;
  25496. clSuites.hashSigAlgoSz = 0;
  25497. /* compression length */
  25498. b = input[i++];
  25499. if ((i - begin) + b > helloSz) {
  25500. ret = BUFFER_ERROR;
  25501. goto out;
  25502. }
  25503. if (b == 0) {
  25504. WOLFSSL_MSG("No compression types in list");
  25505. #ifdef WOLFSSL_EXTRA_ALERTS
  25506. SendAlert(ssl, alert_fatal, decode_error);
  25507. #endif
  25508. ret = COMPRESSION_ERROR;
  25509. goto out;
  25510. }
  25511. #ifdef WOLFSSL_DTLS
  25512. if (IsDtlsNotSctpMode(ssl)) {
  25513. if (!IsSCR(ssl) && !ssl->options.resuming) {
  25514. byte newCookie[MAX_COOKIE_LEN];
  25515. ret = wc_HmacUpdate(&cookieHmac, input + i - 1, b + 1);
  25516. if (ret != 0) goto out;
  25517. ret = wc_HmacFinal(&cookieHmac, newCookie);
  25518. if (ret != 0) goto out;
  25519. /* If a cookie callback is set, call it to overwrite the cookie.
  25520. * This should be deprecated. The code now calculates the cookie
  25521. * using an HMAC as expected. */
  25522. if (ssl->ctx->CBIOCookie != NULL &&
  25523. ssl->ctx->CBIOCookie(ssl, newCookie, cookieSz,
  25524. ssl->IOCB_CookieCtx) != cookieSz) {
  25525. ret = COOKIE_ERROR;
  25526. goto out;
  25527. }
  25528. /* Check the cookie, see if we progress the state machine. */
  25529. if (peerCookieSz != cookieSz ||
  25530. XMEMCMP(peerCookie, newCookie, cookieSz) != 0) {
  25531. /* Send newCookie to client in a HelloVerifyRequest message
  25532. * and let the state machine alone. */
  25533. ssl->msgsReceived.got_client_hello = 0;
  25534. ssl->keys.dtls_handshake_number = 0;
  25535. ssl->keys.dtls_expected_peer_handshake_number = 0;
  25536. *inOutIdx += helloSz;
  25537. ret = SendHelloVerifyRequest(ssl, newCookie, cookieSz);
  25538. goto out;
  25539. }
  25540. }
  25541. /* This was skipped in the DTLS case so we could handle the hello
  25542. * verify request. */
  25543. ret = HashInput(ssl, input + *inOutIdx, helloSz);
  25544. if (ret != 0) goto out;
  25545. }
  25546. #endif /* WOLFSSL_DTLS */
  25547. {
  25548. /* compression match types */
  25549. int matchNo = 0;
  25550. int matchZlib = 0;
  25551. while (b--) {
  25552. byte comp = input[i++];
  25553. if (comp == NO_COMPRESSION) {
  25554. matchNo = 1;
  25555. }
  25556. if (comp == ZLIB_COMPRESSION) {
  25557. matchZlib = 1;
  25558. }
  25559. }
  25560. if (ssl->options.usingCompression == 0 && matchNo) {
  25561. WOLFSSL_MSG("Matched No Compression");
  25562. } else if (ssl->options.usingCompression && matchZlib) {
  25563. WOLFSSL_MSG("Matched zlib Compression");
  25564. } else if (ssl->options.usingCompression && matchNo) {
  25565. WOLFSSL_MSG("Could only match no compression, turning off");
  25566. ssl->options.usingCompression = 0; /* turn off */
  25567. } else {
  25568. WOLFSSL_MSG("Could not match compression");
  25569. #ifdef WOLFSSL_EXTRA_ALERTS
  25570. SendAlert(ssl, alert_fatal, illegal_parameter);
  25571. #endif
  25572. ret = COMPRESSION_ERROR;
  25573. goto out;
  25574. }
  25575. }
  25576. *inOutIdx = i;
  25577. /* tls extensions */
  25578. if ((i - begin) < helloSz) {
  25579. #ifdef HAVE_TLS_EXTENSIONS
  25580. if (TLSX_SupportExtensions(ssl))
  25581. #else
  25582. if (IsAtLeastTLSv1_2(ssl))
  25583. #endif
  25584. {
  25585. /* Process the hello extension. Skip unsupported. */
  25586. word16 totalExtSz;
  25587. #ifdef HAVE_TLS_EXTENSIONS
  25588. /* auto populate extensions supported unless user defined */
  25589. if ((ret = TLSX_PopulateExtensions(ssl, 1)) != 0)
  25590. goto out;
  25591. #endif
  25592. if ((i - begin) + OPAQUE16_LEN > helloSz) {
  25593. ret = BUFFER_ERROR;
  25594. goto out;
  25595. }
  25596. ato16(&input[i], &totalExtSz);
  25597. i += OPAQUE16_LEN;
  25598. if ((i - begin) + totalExtSz > helloSz) {
  25599. ret = BUFFER_ERROR;
  25600. goto out;
  25601. }
  25602. #ifdef HAVE_TLS_EXTENSIONS
  25603. /* tls extensions */
  25604. if ((ret = TLSX_Parse(ssl, input + i, totalExtSz, client_hello,
  25605. &clSuites)))
  25606. goto out;
  25607. #ifdef WOLFSSL_TLS13
  25608. if (TLSX_Find(ssl->extensions,
  25609. TLSX_SUPPORTED_VERSIONS) != NULL) {
  25610. WOLFSSL_MSG(
  25611. "Client attempting to connect with higher version");
  25612. ret = VERSION_ERROR;
  25613. goto out;
  25614. }
  25615. #endif
  25616. #ifdef HAVE_SNI
  25617. if((ret=SNI_Callback(ssl)))
  25618. goto out;
  25619. ssl->options.side = WOLFSSL_SERVER_END;
  25620. #endif
  25621. i += totalExtSz;
  25622. #else
  25623. while (totalExtSz) {
  25624. word16 extId, extSz;
  25625. if (OPAQUE16_LEN + OPAQUE16_LEN > totalExtSz) {
  25626. ret = BUFFER_ERROR;
  25627. goto out;
  25628. }
  25629. ato16(&input[i], &extId);
  25630. i += OPAQUE16_LEN;
  25631. ato16(&input[i], &extSz);
  25632. i += OPAQUE16_LEN;
  25633. if (OPAQUE16_LEN + OPAQUE16_LEN + extSz > totalExtSz) {
  25634. ret = BUFFER_ERROR;
  25635. goto out;
  25636. }
  25637. if (extId == HELLO_EXT_SIG_ALGO) {
  25638. word16 hashSigAlgoSz;
  25639. ato16(&input[i], &hashSigAlgoSz);
  25640. i += OPAQUE16_LEN;
  25641. if (OPAQUE16_LEN + hashSigAlgoSz > extSz) {
  25642. ret = BUFFER_ERROR;
  25643. goto out;
  25644. }
  25645. if (hashSigAlgoSz % 2 != 0) {
  25646. ret = BUFFER_ERROR;
  25647. goto out;
  25648. }
  25649. clSuites.hashSigAlgoSz = hashSigAlgoSz;
  25650. if (clSuites.hashSigAlgoSz > WOLFSSL_MAX_SIGALGO) {
  25651. WOLFSSL_MSG("ClientHello SigAlgo list exceeds max, "
  25652. "truncating");
  25653. clSuites.hashSigAlgoSz = WOLFSSL_MAX_SIGALGO;
  25654. }
  25655. XMEMCPY(clSuites.hashSigAlgo, &input[i],
  25656. clSuites.hashSigAlgoSz);
  25657. i += hashSigAlgoSz;
  25658. }
  25659. #ifdef HAVE_EXTENDED_MASTER
  25660. else if (extId == HELLO_EXT_EXTMS)
  25661. ssl->options.haveEMS = 1;
  25662. #endif
  25663. else
  25664. i += extSz;
  25665. totalExtSz -= OPAQUE16_LEN + OPAQUE16_LEN + extSz;
  25666. }
  25667. #endif
  25668. *inOutIdx = i;
  25669. }
  25670. else
  25671. *inOutIdx = begin + helloSz; /* skip extensions */
  25672. }
  25673. ssl->options.clientState = CLIENT_HELLO_COMPLETE;
  25674. ssl->options.haveSessionId = 1;
  25675. /* ProcessOld uses same resume code */
  25676. if (ssl->options.resuming) {
  25677. ret = HandleTlsResumption(ssl, bogusID, &clSuites);
  25678. if (ret != 0)
  25679. goto out;
  25680. if (ssl->options.clientState == CLIENT_KEYEXCHANGE_COMPLETE) {
  25681. WOLFSSL_LEAVE("DoClientHello", ret);
  25682. WOLFSSL_END(WC_FUNC_CLIENT_HELLO_DO);
  25683. goto out;
  25684. }
  25685. }
  25686. #if defined(HAVE_TLS_EXTENSIONS) && defined(HAVE_DH_DEFAULT_PARAMS)
  25687. #if defined(HAVE_FFDHE) && defined(HAVE_SUPPORTED_CURVES)
  25688. if (TLSX_Find(ssl->extensions, TLSX_SUPPORTED_GROUPS) != NULL) {
  25689. /* Set FFDHE parameters or clear DHE parameters if FFDH parameters
  25690. * present and no matches in the server's list. */
  25691. ret = TLSX_SupportedFFDHE_Set(ssl);
  25692. if (ret != 0)
  25693. goto out;
  25694. }
  25695. #endif
  25696. #endif
  25697. ret = MatchSuite(ssl, &clSuites);
  25698. #ifdef WOLFSSL_EXTRA_ALERTS
  25699. if (ret == BUFFER_ERROR)
  25700. SendAlert(ssl, alert_fatal, decode_error);
  25701. else if (ret < 0)
  25702. SendAlert(ssl, alert_fatal, handshake_failure);
  25703. #endif
  25704. #ifdef WOLFSSL_DTLS
  25705. if (ret == 0 && ssl->options.dtls)
  25706. DtlsMsgPoolReset(ssl);
  25707. #endif
  25708. WOLFSSL_LEAVE("DoClientHello", ret);
  25709. WOLFSSL_END(WC_FUNC_CLIENT_HELLO_DO);
  25710. out:
  25711. #ifdef WOLFSSL_DTLS
  25712. wc_HmacFree(&cookieHmac);
  25713. #endif
  25714. #ifdef OPENSSL_EXTRA
  25715. if (ret == 0)
  25716. ret = CertSetupCbWrapper(ssl);
  25717. #endif
  25718. return ret;
  25719. }
  25720. #if (!defined(NO_RSA) || defined(HAVE_ECC) || defined(HAVE_ED25519) || \
  25721. defined(HAVE_ED448)) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  25722. typedef struct DcvArgs {
  25723. byte* output; /* not allocated */
  25724. word32 sendSz;
  25725. word16 sz;
  25726. word32 sigSz;
  25727. word32 idx;
  25728. word32 begin;
  25729. byte hashAlgo;
  25730. byte sigAlgo;
  25731. } DcvArgs;
  25732. static void FreeDcvArgs(WOLFSSL* ssl, void* pArgs)
  25733. {
  25734. DcvArgs* args = (DcvArgs*)pArgs;
  25735. (void)ssl;
  25736. (void)args;
  25737. }
  25738. /* handle processing of certificate_verify (15) */
  25739. static int DoCertificateVerify(WOLFSSL* ssl, byte* input,
  25740. word32* inOutIdx, word32 size)
  25741. {
  25742. int ret = 0;
  25743. #ifdef WOLFSSL_ASYNC_CRYPT
  25744. DcvArgs* args = (DcvArgs*)ssl->async.args;
  25745. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  25746. (void)sizeof(args_test);
  25747. #else
  25748. DcvArgs args[1];
  25749. #endif
  25750. WOLFSSL_START(WC_FUNC_CERTIFICATE_VERIFY_DO);
  25751. WOLFSSL_ENTER("DoCertificateVerify");
  25752. #ifdef WOLFSSL_ASYNC_CRYPT
  25753. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  25754. if (ret != WC_NOT_PENDING_E) {
  25755. /* Check for error */
  25756. if (ret < 0)
  25757. goto exit_dcv;
  25758. }
  25759. else
  25760. #endif
  25761. {
  25762. /* Reset state */
  25763. ret = 0;
  25764. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  25765. XMEMSET(args, 0, sizeof(DcvArgs));
  25766. args->hashAlgo = sha_mac;
  25767. args->sigAlgo = anonymous_sa_algo;
  25768. args->idx = *inOutIdx;
  25769. args->begin = *inOutIdx;
  25770. #ifdef WOLFSSL_ASYNC_CRYPT
  25771. ssl->async.freeArgs = FreeDcvArgs;
  25772. #endif
  25773. }
  25774. switch(ssl->options.asyncState)
  25775. {
  25776. case TLS_ASYNC_BEGIN:
  25777. {
  25778. #ifdef WOLFSSL_CALLBACKS
  25779. if (ssl->hsInfoOn)
  25780. AddPacketName(ssl, "CertificateVerify");
  25781. if (ssl->toInfoOn)
  25782. AddLateName("CertificateVerify", &ssl->timeoutInfo);
  25783. #endif
  25784. /* Advance state and proceed */
  25785. ssl->options.asyncState = TLS_ASYNC_BUILD;
  25786. } /* case TLS_ASYNC_BEGIN */
  25787. FALL_THROUGH;
  25788. case TLS_ASYNC_BUILD:
  25789. {
  25790. if (IsAtLeastTLSv1_2(ssl)) {
  25791. if ((args->idx - args->begin) + ENUM_LEN + ENUM_LEN > size) {
  25792. ERROR_OUT(BUFFER_ERROR, exit_dcv);
  25793. }
  25794. DecodeSigAlg(&input[args->idx], &args->hashAlgo,
  25795. &args->sigAlgo);
  25796. args->idx += 2;
  25797. }
  25798. #ifndef NO_RSA
  25799. else if (ssl->peerRsaKey != NULL && ssl->peerRsaKeyPresent != 0)
  25800. args->sigAlgo = rsa_sa_algo;
  25801. #endif
  25802. #ifdef HAVE_ECC
  25803. else if (ssl->peerEccDsaKeyPresent)
  25804. args->sigAlgo = ecc_dsa_sa_algo;
  25805. #endif
  25806. #if defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)
  25807. else if (ssl->peerEd25519KeyPresent)
  25808. args->sigAlgo = ed25519_sa_algo;
  25809. #endif /* HAVE_ED25519 && !NO_ED25519_CLIENT_AUTH */
  25810. #if defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)
  25811. else if (ssl->peerEd448KeyPresent)
  25812. args->sigAlgo = ed448_sa_algo;
  25813. #endif /* HAVE_ED448 && !NO_ED448_CLIENT_AUTH */
  25814. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  25815. ERROR_OUT(BUFFER_ERROR, exit_dcv);
  25816. }
  25817. ato16(input + args->idx, &args->sz);
  25818. args->idx += OPAQUE16_LEN;
  25819. if ((args->idx - args->begin) + args->sz > size ||
  25820. args->sz > ENCRYPT_LEN) {
  25821. ERROR_OUT(BUFFER_ERROR, exit_dcv);
  25822. }
  25823. #ifdef HAVE_ECC
  25824. if (ssl->peerEccDsaKeyPresent) {
  25825. WOLFSSL_MSG("Doing ECC peer cert verify");
  25826. /* make sure a default is defined */
  25827. #if !defined(NO_SHA)
  25828. SetDigest(ssl, sha_mac);
  25829. #elif !defined(NO_SHA256)
  25830. SetDigest(ssl, sha256_mac);
  25831. #elif defined(WOLFSSL_SHA384)
  25832. SetDigest(ssl, sha384_mac);
  25833. #elif defined(WOLFSSL_SHA512)
  25834. SetDigest(ssl, sha512_mac);
  25835. #else
  25836. #error No digest enabled for ECC sig verify
  25837. #endif
  25838. if (IsAtLeastTLSv1_2(ssl)) {
  25839. if (args->sigAlgo != ecc_dsa_sa_algo) {
  25840. WOLFSSL_MSG("Oops, peer sent ECC key but not in verify");
  25841. }
  25842. SetDigest(ssl, args->hashAlgo);
  25843. }
  25844. }
  25845. #endif /* HAVE_ECC */
  25846. #if defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)
  25847. if (ssl->peerEd25519KeyPresent) {
  25848. WOLFSSL_MSG("Doing ED25519 peer cert verify");
  25849. if (IsAtLeastTLSv1_2(ssl) &&
  25850. args->sigAlgo != ed25519_sa_algo) {
  25851. WOLFSSL_MSG(
  25852. "Oops, peer sent ED25519 key but not in verify");
  25853. }
  25854. }
  25855. #endif /* HAVE_ED25519 && !NO_ED25519_CLIENT_AUTH */
  25856. #if defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)
  25857. if (ssl->peerEd448KeyPresent) {
  25858. WOLFSSL_MSG("Doing ED448 peer cert verify");
  25859. if (IsAtLeastTLSv1_2(ssl) &&
  25860. args->sigAlgo != ed448_sa_algo) {
  25861. WOLFSSL_MSG(
  25862. "Oops, peer sent ED448 key but not in verify");
  25863. }
  25864. }
  25865. #endif /* HAVE_ED448 && !NO_ED448_CLIENT_AUTH */
  25866. /* Advance state and proceed */
  25867. ssl->options.asyncState = TLS_ASYNC_DO;
  25868. } /* case TLS_ASYNC_BUILD */
  25869. FALL_THROUGH;
  25870. case TLS_ASYNC_DO:
  25871. {
  25872. #ifndef NO_RSA
  25873. if (ssl->peerRsaKey != NULL && ssl->peerRsaKeyPresent != 0) {
  25874. WOLFSSL_MSG("Doing RSA peer cert verify");
  25875. ret = RsaVerify(ssl,
  25876. input + args->idx,
  25877. args->sz,
  25878. &args->output,
  25879. args->sigAlgo, args->hashAlgo,
  25880. ssl->peerRsaKey,
  25881. #ifdef HAVE_PK_CALLBACKS
  25882. &ssl->buffers.peerRsaKey
  25883. #else
  25884. NULL
  25885. #endif
  25886. );
  25887. if (ret >= 0) {
  25888. if (args->sigAlgo == rsa_sa_algo)
  25889. args->sendSz = ret;
  25890. else {
  25891. args->sigSz = ret;
  25892. args->sendSz = ssl->buffers.digest.length;
  25893. }
  25894. ret = 0;
  25895. }
  25896. }
  25897. #endif /* !NO_RSA */
  25898. #ifdef HAVE_ECC
  25899. if (ssl->peerEccDsaKeyPresent) {
  25900. WOLFSSL_MSG("Doing ECC peer cert verify");
  25901. ret = EccVerify(ssl,
  25902. input + args->idx, args->sz,
  25903. ssl->buffers.digest.buffer, ssl->buffers.digest.length,
  25904. ssl->peerEccDsaKey,
  25905. #ifdef HAVE_PK_CALLBACKS
  25906. &ssl->buffers.peerEccDsaKey
  25907. #else
  25908. NULL
  25909. #endif
  25910. );
  25911. }
  25912. #endif /* HAVE_ECC */
  25913. #if defined(HAVE_ED25519) && !defined(NO_ED25519_CLIENT_AUTH)
  25914. if (ssl->peerEd25519KeyPresent) {
  25915. WOLFSSL_MSG("Doing Ed25519 peer cert verify");
  25916. ret = Ed25519Verify(ssl,
  25917. input + args->idx, args->sz,
  25918. ssl->hsHashes->messages, ssl->hsHashes->prevLen,
  25919. ssl->peerEd25519Key,
  25920. #ifdef HAVE_PK_CALLBACKS
  25921. &ssl->buffers.peerEd25519Key
  25922. #else
  25923. NULL
  25924. #endif
  25925. );
  25926. }
  25927. #endif /* HAVE_ED25519 && !NO_ED25519_CLIENT_AUTH */
  25928. #if defined(HAVE_ED448) && !defined(NO_ED448_CLIENT_AUTH)
  25929. if (ssl->peerEd448KeyPresent) {
  25930. WOLFSSL_MSG("Doing Ed448 peer cert verify");
  25931. ret = Ed448Verify(ssl,
  25932. input + args->idx, args->sz,
  25933. ssl->hsHashes->messages, ssl->hsHashes->prevLen,
  25934. ssl->peerEd448Key,
  25935. #ifdef HAVE_PK_CALLBACKS
  25936. &ssl->buffers.peerEd448Key
  25937. #else
  25938. NULL
  25939. #endif
  25940. );
  25941. }
  25942. #endif /* HAVE_ED448 && !NO_ED448_CLIENT_AUTH */
  25943. #ifdef WOLFSSL_ASYNC_CRYPT
  25944. /* handle async pending */
  25945. if (ret == WC_PENDING_E)
  25946. goto exit_dcv;
  25947. #endif
  25948. /* Check for error */
  25949. if (ret != 0) {
  25950. ret = SIG_VERIFY_E;
  25951. goto exit_dcv;
  25952. }
  25953. /* Advance state and proceed */
  25954. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  25955. } /* case TLS_ASYNC_DO */
  25956. FALL_THROUGH;
  25957. case TLS_ASYNC_VERIFY:
  25958. {
  25959. #ifndef NO_RSA
  25960. if (ssl->peerRsaKey != NULL && ssl->peerRsaKeyPresent != 0) {
  25961. if (IsAtLeastTLSv1_2(ssl)) {
  25962. #ifdef WC_RSA_PSS
  25963. if (args->sigAlgo == rsa_pss_sa_algo) {
  25964. SetDigest(ssl, args->hashAlgo);
  25965. #ifdef HAVE_SELFTEST
  25966. ret = wc_RsaPSS_CheckPadding(
  25967. ssl->buffers.digest.buffer,
  25968. ssl->buffers.digest.length,
  25969. args->output, args->sigSz,
  25970. HashAlgoToType(args->hashAlgo));
  25971. #else
  25972. ret = wc_RsaPSS_CheckPadding_ex(
  25973. ssl->buffers.digest.buffer,
  25974. ssl->buffers.digest.length,
  25975. args->output, args->sigSz,
  25976. HashAlgoToType(args->hashAlgo), -1,
  25977. mp_count_bits(&ssl->peerRsaKey->n));
  25978. #endif
  25979. if (ret != 0) {
  25980. ret = SIG_VERIFY_E;
  25981. goto exit_dcv;
  25982. }
  25983. }
  25984. else
  25985. #endif
  25986. {
  25987. #ifndef WOLFSSL_SMALL_STACK
  25988. byte encodedSig[MAX_ENCODED_SIG_SZ];
  25989. #else
  25990. byte* encodedSig = (byte*)XMALLOC(MAX_ENCODED_SIG_SZ,
  25991. ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  25992. if (encodedSig == NULL) {
  25993. ERROR_OUT(MEMORY_E, exit_dcv);
  25994. }
  25995. #endif
  25996. if (args->sigAlgo != rsa_sa_algo) {
  25997. WOLFSSL_MSG("Oops, peer sent RSA key but not "
  25998. "in verify");
  25999. }
  26000. SetDigest(ssl, args->hashAlgo);
  26001. args->sigSz = wc_EncodeSignature(encodedSig,
  26002. ssl->buffers.digest.buffer,
  26003. ssl->buffers.digest.length,
  26004. TypeHash(args->hashAlgo));
  26005. if (args->sendSz != args->sigSz || !args->output ||
  26006. XMEMCMP(args->output, encodedSig,
  26007. min(args->sigSz, MAX_ENCODED_SIG_SZ)) != 0) {
  26008. ret = VERIFY_CERT_ERROR;
  26009. }
  26010. #ifdef WOLFSSL_SMALL_STACK
  26011. XFREE(encodedSig, ssl->heap, DYNAMIC_TYPE_SIGNATURE);
  26012. #endif
  26013. }
  26014. }
  26015. else {
  26016. if (args->sendSz != FINISHED_SZ || !args->output ||
  26017. XMEMCMP(args->output,
  26018. &ssl->hsHashes->certHashes, FINISHED_SZ) != 0) {
  26019. ret = VERIFY_CERT_ERROR;
  26020. }
  26021. }
  26022. }
  26023. #endif /* !NO_RSA */
  26024. /* Advance state and proceed */
  26025. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  26026. } /* case TLS_ASYNC_VERIFY */
  26027. FALL_THROUGH;
  26028. case TLS_ASYNC_FINALIZE:
  26029. {
  26030. if (IsEncryptionOn(ssl, 0)) {
  26031. args->idx += ssl->keys.padSz;
  26032. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  26033. if (ssl->options.startedETMRead)
  26034. args->idx += MacSize(ssl);
  26035. #endif
  26036. }
  26037. ssl->options.havePeerVerify = 1;
  26038. /* Set final index */
  26039. args->idx += args->sz;
  26040. *inOutIdx = args->idx;
  26041. /* Advance state and proceed */
  26042. ssl->options.asyncState = TLS_ASYNC_END;
  26043. } /* case TLS_ASYNC_FINALIZE */
  26044. FALL_THROUGH;
  26045. case TLS_ASYNC_END:
  26046. {
  26047. break;
  26048. }
  26049. default:
  26050. ret = INPUT_CASE_ERROR;
  26051. } /* switch(ssl->options.asyncState) */
  26052. exit_dcv:
  26053. WOLFSSL_LEAVE("DoCertificateVerify", ret);
  26054. WOLFSSL_END(WC_FUNC_CERTIFICATE_VERIFY_DO);
  26055. #ifdef WOLFSSL_ASYNC_CRYPT
  26056. /* Handle async operation */
  26057. if (ret == WC_PENDING_E) {
  26058. /* Mark message as not received so it can process again */
  26059. ssl->msgsReceived.got_certificate_verify = 0;
  26060. return ret;
  26061. }
  26062. #endif /* WOLFSSL_ASYNC_CRYPT */
  26063. #ifdef WOLFSSL_EXTRA_ALERTS
  26064. if (ret == BUFFER_ERROR)
  26065. SendAlert(ssl, alert_fatal, decode_error);
  26066. else if (ret == SIG_VERIFY_E)
  26067. SendAlert(ssl, alert_fatal, decrypt_error);
  26068. else if (ret != 0)
  26069. SendAlert(ssl, alert_fatal, bad_certificate);
  26070. #endif
  26071. /* Digest is not allocated, so do this to prevent free */
  26072. ssl->buffers.digest.buffer = NULL;
  26073. ssl->buffers.digest.length = 0;
  26074. /* Final cleanup */
  26075. FreeDcvArgs(ssl, args);
  26076. FreeKeyExchange(ssl);
  26077. return ret;
  26078. }
  26079. #endif /* (!NO_RSA || ECC || ED25519 || ED448) && !WOLFSSL_NO_CLIENT_AUTH */
  26080. /* handle generation of server_hello_done (14) */
  26081. int SendServerHelloDone(WOLFSSL* ssl)
  26082. {
  26083. byte* output;
  26084. int sendSz = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  26085. int ret;
  26086. WOLFSSL_START(WC_FUNC_SERVER_HELLO_DONE_SEND);
  26087. WOLFSSL_ENTER("SendServerHelloDone");
  26088. #ifdef WOLFSSL_DTLS
  26089. if (ssl->options.dtls)
  26090. sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  26091. #endif
  26092. if (IsEncryptionOn(ssl, 1))
  26093. sendSz += MAX_MSG_EXTRA;
  26094. /* check for available size */
  26095. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  26096. return ret;
  26097. /* get output buffer */
  26098. output = ssl->buffers.outputBuffer.buffer +
  26099. ssl->buffers.outputBuffer.length;
  26100. AddHeaders(output, 0, server_hello_done, ssl);
  26101. if (IsEncryptionOn(ssl, 1)) {
  26102. byte* input;
  26103. int inputSz = HANDSHAKE_HEADER_SZ; /* build msg adds rec hdr */
  26104. int recordHeaderSz = RECORD_HEADER_SZ;
  26105. if (ssl->options.dtls) {
  26106. recordHeaderSz += DTLS_RECORD_EXTRA;
  26107. inputSz += DTLS_HANDSHAKE_EXTRA;
  26108. }
  26109. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26110. if (input == NULL)
  26111. return MEMORY_E;
  26112. XMEMCPY(input, output + recordHeaderSz, inputSz);
  26113. #ifdef WOLFSSL_DTLS
  26114. if (IsDtlsNotSctpMode(ssl) &&
  26115. (ret = DtlsMsgPoolSave(ssl, input, inputSz, server_hello_done)) != 0) {
  26116. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26117. return ret;
  26118. }
  26119. #endif
  26120. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  26121. handshake, 1, 0, 0, CUR_ORDER);
  26122. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26123. if (sendSz < 0)
  26124. return sendSz;
  26125. } else {
  26126. #ifdef WOLFSSL_DTLS
  26127. if (IsDtlsNotSctpMode(ssl)) {
  26128. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, server_hello_done)) != 0)
  26129. return ret;
  26130. }
  26131. if (ssl->options.dtls)
  26132. DtlsSEQIncrement(ssl, CUR_ORDER);
  26133. #endif
  26134. ret = HashOutput(ssl, output, sendSz, 0);
  26135. if (ret != 0)
  26136. return ret;
  26137. }
  26138. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  26139. if (ssl->hsInfoOn)
  26140. AddPacketName(ssl, "ServerHelloDone");
  26141. if (ssl->toInfoOn)
  26142. AddPacketInfo(ssl, "ServerHelloDone", handshake, output, sendSz,
  26143. WRITE_PROTO, ssl->heap);
  26144. #endif
  26145. ssl->options.serverState = SERVER_HELLODONE_COMPLETE;
  26146. ssl->buffers.outputBuffer.length += sendSz;
  26147. ret = SendBuffered(ssl);
  26148. WOLFSSL_LEAVE("SendServerHelloDone", ret);
  26149. WOLFSSL_END(WC_FUNC_SERVER_HELLO_DONE_SEND);
  26150. return ret;
  26151. }
  26152. #endif /* !WOLFSSL_NO_TLS12 */
  26153. #ifdef HAVE_SESSION_TICKET
  26154. #define WOLFSSL_TICKET_FIXED_SZ (WOLFSSL_TICKET_NAME_SZ + \
  26155. WOLFSSL_TICKET_IV_SZ + WOLFSSL_TICKET_MAC_SZ + LENGTH_SZ)
  26156. #define WOLFSSL_TICKET_ENC_SZ (SESSION_TICKET_LEN - WOLFSSL_TICKET_FIXED_SZ)
  26157. /* our ticket format */
  26158. typedef struct InternalTicket {
  26159. ProtocolVersion pv; /* version when ticket created */
  26160. byte suite[SUITE_LEN]; /* cipher suite when created */
  26161. byte msecret[SECRET_LEN]; /* master secret */
  26162. word32 timestamp; /* born on */
  26163. word16 haveEMS; /* have extended master secret */
  26164. #ifdef WOLFSSL_TLS13
  26165. word32 ageAdd; /* Obfuscation of age */
  26166. word16 namedGroup; /* Named group used */
  26167. TicketNonce ticketNonce; /* Ticket nonce */
  26168. #ifdef WOLFSSL_EARLY_DATA
  26169. word32 maxEarlyDataSz; /* Max size of early data */
  26170. #endif
  26171. #endif
  26172. } InternalTicket;
  26173. /* RFC 5077 defines this for session tickets */
  26174. /* fit within SESSION_TICKET_LEN */
  26175. typedef struct ExternalTicket {
  26176. byte key_name[WOLFSSL_TICKET_NAME_SZ]; /* key context name */
  26177. byte iv[WOLFSSL_TICKET_IV_SZ]; /* this ticket's iv */
  26178. byte enc_len[LENGTH_SZ]; /* encrypted length */
  26179. byte enc_ticket[WOLFSSL_TICKET_ENC_SZ]; /* encrypted internal ticket */
  26180. byte mac[WOLFSSL_TICKET_MAC_SZ]; /* total mac */
  26181. /* !! if add to structure, add to TICKET_FIXED_SZ !! */
  26182. } ExternalTicket;
  26183. /* create a new session ticket, 0 on success */
  26184. int CreateTicket(WOLFSSL* ssl)
  26185. {
  26186. InternalTicket it;
  26187. ExternalTicket* et = (ExternalTicket*)ssl->session.ticket;
  26188. int encLen;
  26189. int ret;
  26190. byte zeros[WOLFSSL_TICKET_MAC_SZ]; /* biggest cmp size */
  26191. XMEMSET(&it, 0, sizeof(it));
  26192. /* build internal */
  26193. it.pv.major = ssl->version.major;
  26194. it.pv.minor = ssl->version.minor;
  26195. it.suite[0] = ssl->options.cipherSuite0;
  26196. it.suite[1] = ssl->options.cipherSuite;
  26197. #ifdef WOLFSSL_EARLY_DATA
  26198. it.maxEarlyDataSz = ssl->options.maxEarlyDataSz;
  26199. #endif
  26200. if (!ssl->options.tls1_3) {
  26201. XMEMCPY(it.msecret, ssl->arrays->masterSecret, SECRET_LEN);
  26202. #ifndef NO_ASN_TIME
  26203. c32toa(LowResTimer(), (byte*)&it.timestamp);
  26204. #endif
  26205. it.haveEMS = ssl->options.haveEMS;
  26206. }
  26207. else {
  26208. #ifdef WOLFSSL_TLS13
  26209. /* Client adds to ticket age to obfuscate. */
  26210. ret = wc_RNG_GenerateBlock(ssl->rng, (byte*)&it.ageAdd,
  26211. sizeof(it.ageAdd));
  26212. if (ret != 0)
  26213. return BAD_TICKET_ENCRYPT;
  26214. ssl->session.ticketAdd = it.ageAdd;
  26215. it.namedGroup = ssl->session.namedGroup;
  26216. it.timestamp = TimeNowInMilliseconds();
  26217. /* Resumption master secret. */
  26218. XMEMCPY(it.msecret, ssl->session.masterSecret, SECRET_LEN);
  26219. XMEMCPY(&it.ticketNonce, &ssl->session.ticketNonce,
  26220. sizeof(TicketNonce));
  26221. #endif
  26222. }
  26223. /* encrypt */
  26224. encLen = WOLFSSL_TICKET_ENC_SZ; /* max size user can use */
  26225. if (ssl->ctx->ticketEncCb == NULL) {
  26226. ret = WOLFSSL_TICKET_RET_FATAL;
  26227. }
  26228. else {
  26229. /* build external */
  26230. XMEMCPY(et->enc_ticket, &it, sizeof(InternalTicket));
  26231. ret = ssl->ctx->ticketEncCb(ssl, et->key_name, et->iv, et->mac, 1,
  26232. et->enc_ticket, sizeof(InternalTicket),
  26233. &encLen, ssl->ctx->ticketEncCtx);
  26234. if (ret != WOLFSSL_TICKET_RET_OK) {
  26235. ForceZero(et->enc_ticket, sizeof(it));
  26236. }
  26237. }
  26238. if (ret == WOLFSSL_TICKET_RET_OK) {
  26239. if (encLen < (int)sizeof(InternalTicket) ||
  26240. encLen > WOLFSSL_TICKET_ENC_SZ) {
  26241. ForceZero(&it, sizeof(it));
  26242. ForceZero(et->enc_ticket, sizeof(it));
  26243. WOLFSSL_MSG("Bad user ticket encrypt size");
  26244. return BAD_TICKET_KEY_CB_SZ;
  26245. }
  26246. /* sanity checks on encrypt callback */
  26247. /* internal ticket can't be the same if encrypted */
  26248. if (XMEMCMP(et->enc_ticket, &it, sizeof(InternalTicket)) == 0) {
  26249. ForceZero(&it, sizeof(it));
  26250. ForceZero(et->enc_ticket, sizeof(it));
  26251. WOLFSSL_MSG("User ticket encrypt didn't encrypt");
  26252. return BAD_TICKET_ENCRYPT;
  26253. }
  26254. ForceZero(&it, sizeof(it));
  26255. XMEMSET(zeros, 0, sizeof(zeros));
  26256. /* name */
  26257. if (XMEMCMP(et->key_name, zeros, WOLFSSL_TICKET_NAME_SZ) == 0) {
  26258. WOLFSSL_MSG("User ticket encrypt didn't set name");
  26259. return BAD_TICKET_ENCRYPT;
  26260. }
  26261. /* iv */
  26262. if (XMEMCMP(et->iv, zeros, WOLFSSL_TICKET_IV_SZ) == 0) {
  26263. WOLFSSL_MSG("User ticket encrypt didn't set iv");
  26264. return BAD_TICKET_ENCRYPT;
  26265. }
  26266. /* mac */
  26267. if (XMEMCMP(et->mac, zeros, WOLFSSL_TICKET_MAC_SZ) == 0) {
  26268. WOLFSSL_MSG("User ticket encrypt didn't set mac");
  26269. return BAD_TICKET_ENCRYPT;
  26270. }
  26271. /* set size */
  26272. c16toa((word16)encLen, et->enc_len);
  26273. ssl->session.ticketLen = (word16)(encLen + WOLFSSL_TICKET_FIXED_SZ);
  26274. if (encLen < WOLFSSL_TICKET_ENC_SZ) {
  26275. /* move mac up since whole enc buffer not used */
  26276. XMEMMOVE(et->enc_ticket +encLen, et->mac,WOLFSSL_TICKET_MAC_SZ);
  26277. }
  26278. }
  26279. return ret;
  26280. }
  26281. /* Parse ticket sent by client, returns callback return value */
  26282. int DoClientTicket(WOLFSSL* ssl, const byte* input, word32 len)
  26283. {
  26284. ExternalTicket* et;
  26285. InternalTicket it;
  26286. int ret;
  26287. int outLen;
  26288. word16 inLen;
  26289. WOLFSSL_START(WC_FUNC_TICKET_DO);
  26290. WOLFSSL_ENTER("DoClientTicket");
  26291. if (len > SESSION_TICKET_LEN ||
  26292. len < (word32)(sizeof(InternalTicket) + WOLFSSL_TICKET_FIXED_SZ)) {
  26293. return BAD_TICKET_MSG_SZ;
  26294. }
  26295. et = (ExternalTicket*)input;
  26296. /* decrypt */
  26297. ato16(et->enc_len, &inLen);
  26298. if (inLen > (word16)(len - WOLFSSL_TICKET_FIXED_SZ)) {
  26299. return BAD_TICKET_MSG_SZ;
  26300. }
  26301. outLen = inLen; /* may be reduced by user padding */
  26302. if (ssl->ctx->ticketEncCb == NULL) {
  26303. ret = WOLFSSL_TICKET_RET_FATAL;
  26304. }
  26305. else {
  26306. ret = ssl->ctx->ticketEncCb(ssl, et->key_name, et->iv,
  26307. et->enc_ticket + inLen, 0,
  26308. et->enc_ticket, inLen, &outLen,
  26309. ssl->ctx->ticketEncCtx);
  26310. }
  26311. if (ret == WOLFSSL_TICKET_RET_FATAL || ret < 0) return ret;
  26312. if (outLen > (int)inLen || outLen < (int)sizeof(InternalTicket)) {
  26313. WOLFSSL_MSG("Bad user ticket decrypt len");
  26314. return BAD_TICKET_KEY_CB_SZ;
  26315. }
  26316. /* copy the decrypted ticket to avoid alignment issues */
  26317. XMEMCPY(&it, et->enc_ticket, sizeof(InternalTicket));
  26318. ForceZero(et->enc_ticket, sizeof(it));
  26319. /* get master secret */
  26320. if (ret == WOLFSSL_TICKET_RET_OK || ret == WOLFSSL_TICKET_RET_CREATE) {
  26321. if (ssl->version.minor < it.pv.minor) {
  26322. ForceZero(&it, sizeof(it));
  26323. WOLFSSL_MSG("Ticket has greater version");
  26324. return VERSION_ERROR;
  26325. }
  26326. else if (ssl->version.minor > it.pv.minor) {
  26327. if (IsAtLeastTLSv1_3(it.pv) != IsAtLeastTLSv1_3(ssl->version)) {
  26328. ForceZero(&it, sizeof(it));
  26329. WOLFSSL_MSG("Tickets cannot be shared between "
  26330. "TLS 1.3 and TLS 1.2 and lower");
  26331. return VERSION_ERROR;
  26332. }
  26333. if (!ssl->options.downgrade) {
  26334. ForceZero(&it, sizeof(it));
  26335. WOLFSSL_MSG("Ticket has lesser version");
  26336. return VERSION_ERROR;
  26337. }
  26338. WOLFSSL_MSG("Downgrading protocol due to ticket");
  26339. if (it.pv.minor < ssl->options.minDowngrade) {
  26340. ForceZero(&it, sizeof(it));
  26341. return VERSION_ERROR;
  26342. }
  26343. ssl->version.minor = it.pv.minor;
  26344. }
  26345. if (!IsAtLeastTLSv1_3(ssl->version)) {
  26346. XMEMCPY(ssl->arrays->masterSecret, it.msecret, SECRET_LEN);
  26347. /* Copy the haveExtendedMasterSecret property from the ticket to
  26348. * the saved session, so the property may be checked later. */
  26349. ssl->session.haveEMS = it.haveEMS;
  26350. ato32((const byte*)&it.timestamp, &ssl->session.bornOn);
  26351. #ifndef NO_RESUME_SUITE_CHECK
  26352. ssl->session.cipherSuite0 = it.suite[0];
  26353. ssl->session.cipherSuite = it.suite[1];
  26354. #endif
  26355. }
  26356. else {
  26357. #ifdef WOLFSSL_TLS13
  26358. /* Restore information to renegotiate. */
  26359. ssl->session.ticketSeen = it.timestamp;
  26360. ssl->session.ticketAdd = it.ageAdd;
  26361. ssl->session.cipherSuite0 = it.suite[0];
  26362. ssl->session.cipherSuite = it.suite[1];
  26363. #ifdef WOLFSSL_EARLY_DATA
  26364. ssl->session.maxEarlyDataSz = it.maxEarlyDataSz;
  26365. #endif
  26366. /* Resumption master secret. */
  26367. XMEMCPY(ssl->session.masterSecret, it.msecret, SECRET_LEN);
  26368. XMEMCPY(&ssl->session.ticketNonce, &it.ticketNonce,
  26369. sizeof(TicketNonce));
  26370. ssl->session.namedGroup = it.namedGroup;
  26371. #endif
  26372. }
  26373. }
  26374. ForceZero(&it, sizeof(it));
  26375. WOLFSSL_LEAVE("DoClientTicket", ret);
  26376. WOLFSSL_END(WC_FUNC_TICKET_DO);
  26377. return ret;
  26378. }
  26379. /* send Session Ticket */
  26380. int SendTicket(WOLFSSL* ssl)
  26381. {
  26382. byte* output;
  26383. int ret;
  26384. int sendSz;
  26385. word32 length = SESSION_HINT_SZ + LENGTH_SZ;
  26386. word32 idx = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  26387. WOLFSSL_START(WC_FUNC_TICKET_SEND);
  26388. WOLFSSL_ENTER("SendTicket");
  26389. if (ssl->options.createTicket) {
  26390. ret = CreateTicket(ssl);
  26391. if (ret != 0) return ret;
  26392. }
  26393. length += ssl->session.ticketLen;
  26394. sendSz = length + HANDSHAKE_HEADER_SZ + RECORD_HEADER_SZ;
  26395. if (!ssl->options.dtls) {
  26396. if (IsEncryptionOn(ssl, 1) && ssl->options.handShakeDone)
  26397. sendSz += MAX_MSG_EXTRA;
  26398. }
  26399. else {
  26400. #ifdef WOLFSSL_DTLS
  26401. sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  26402. idx += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  26403. #endif
  26404. }
  26405. if (IsEncryptionOn(ssl, 1) && ssl->options.handShakeDone)
  26406. sendSz += cipherExtraData(ssl);
  26407. /* check for available size */
  26408. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  26409. return ret;
  26410. /* get output buffer */
  26411. output = ssl->buffers.outputBuffer.buffer +
  26412. ssl->buffers.outputBuffer.length;
  26413. AddHeaders(output, length, session_ticket, ssl);
  26414. /* hint */
  26415. c32toa(ssl->ctx->ticketHint, output + idx);
  26416. idx += SESSION_HINT_SZ;
  26417. /* length */
  26418. c16toa(ssl->session.ticketLen, output + idx);
  26419. idx += LENGTH_SZ;
  26420. /* ticket */
  26421. XMEMCPY(output + idx, ssl->session.ticket, ssl->session.ticketLen);
  26422. idx += ssl->session.ticketLen;
  26423. if (IsEncryptionOn(ssl, 1) && ssl->options.handShakeDone) {
  26424. byte* input;
  26425. int inputSz = idx; /* build msg adds rec hdr */
  26426. int recordHeaderSz = RECORD_HEADER_SZ;
  26427. if (ssl->options.dtls)
  26428. recordHeaderSz += DTLS_RECORD_EXTRA;
  26429. inputSz -= recordHeaderSz;
  26430. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26431. if (input == NULL)
  26432. return MEMORY_E;
  26433. XMEMCPY(input, output + recordHeaderSz, inputSz);
  26434. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  26435. handshake, 1, 0, 0, CUR_ORDER);
  26436. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26437. if (sendSz < 0)
  26438. return sendSz;
  26439. }
  26440. else {
  26441. #ifdef WOLFSSL_DTLS
  26442. if (ssl->options.dtls) {
  26443. if ((ret = DtlsMsgPoolSave(ssl, output, sendSz, session_ticket)) != 0)
  26444. return ret;
  26445. DtlsSEQIncrement(ssl, CUR_ORDER);
  26446. }
  26447. #endif
  26448. ret = HashOutput(ssl, output, sendSz, 0);
  26449. if (ret != 0)
  26450. return ret;
  26451. }
  26452. ssl->buffers.outputBuffer.length += sendSz;
  26453. if (!ssl->options.groupMessages)
  26454. ret = SendBuffered(ssl);
  26455. WOLFSSL_LEAVE("SendTicket", ret);
  26456. WOLFSSL_END(WC_FUNC_TICKET_SEND);
  26457. return ret;
  26458. }
  26459. #ifndef WOLFSSL_NO_DEF_TICKET_ENC_CB
  26460. /* Initialize the context for session ticket encryption.
  26461. *
  26462. * @param [in] ctx SSL context.
  26463. * @param [in] keyCtx Context for session ticket encryption.
  26464. * @return 0 on success.
  26465. * @return BAD_MUTEX_E when initializing mutex fails.
  26466. */
  26467. static int TicketEncCbCtx_Init(WOLFSSL_CTX* ctx, TicketEncCbCtx* keyCtx)
  26468. {
  26469. int ret = 0;
  26470. XMEMSET(keyCtx, 0, sizeof(*keyCtx));
  26471. keyCtx->ctx = ctx;
  26472. #ifndef SINGLE_THREADED
  26473. ret = wc_InitMutex(&keyCtx->mutex);
  26474. #endif
  26475. return ret;
  26476. }
  26477. /* Setup the session ticket encryption context for this.
  26478. *
  26479. * Initialize RNG, generate name, generate primary key and set primary key
  26480. * expirary.
  26481. *
  26482. * @param [in] keyCtx Context for session ticket encryption.
  26483. * @param [in] heap Dynamic memory allocation hint.
  26484. * @param [in] devId Device identifier.
  26485. * @return 0 on success.
  26486. * @return Other value when random number generator fails.
  26487. */
  26488. static int TicketEncCbCtx_Setup(TicketEncCbCtx* keyCtx, void* heap, int devId)
  26489. {
  26490. int ret;
  26491. #ifndef SINGLE_THREADED
  26492. ret = 0;
  26493. /* Check that key wasn't set up while waiting. */
  26494. if (keyCtx->expirary[0] == 0)
  26495. #endif
  26496. {
  26497. ret = wc_InitRng_ex(&keyCtx->rng, heap, devId);
  26498. if (ret == 0) {
  26499. ret = wc_RNG_GenerateBlock(&keyCtx->rng, keyCtx->name,
  26500. sizeof(keyCtx->name));
  26501. }
  26502. if (ret == 0) {
  26503. /* Mask of the bottom bit - used for index of key. */
  26504. keyCtx->name[WOLFSSL_TICKET_NAME_SZ - 1] &= 0xfe;
  26505. /* Generate initial primary key. */
  26506. ret = wc_RNG_GenerateBlock(&keyCtx->rng, keyCtx->key[0],
  26507. WOLFSSL_TICKET_KEY_SZ);
  26508. }
  26509. if (ret == 0) {
  26510. keyCtx->expirary[0] = LowResTimer() + WOLFSSL_TICKET_KEY_LIFETIME;
  26511. }
  26512. }
  26513. return ret;
  26514. }
  26515. /* Free the context for session ticket encryption.
  26516. *
  26517. * Zeroize keys and name.
  26518. *
  26519. * @param [in] keyCtx Context for session ticket encryption.
  26520. */
  26521. static void TicketEncCbCtx_Free(TicketEncCbCtx* keyCtx)
  26522. {
  26523. /* Zeroize sensitive data. */
  26524. ForceZero(keyCtx->name, sizeof(keyCtx->name));
  26525. ForceZero(keyCtx->key[0], sizeof(keyCtx->key[0]));
  26526. ForceZero(keyCtx->key[1], sizeof(keyCtx->key[1]));
  26527. #ifndef SINGLE_THREADED
  26528. wc_FreeMutex(&keyCtx->mutex);
  26529. #endif
  26530. wc_FreeRng(&keyCtx->rng);
  26531. }
  26532. #if defined(HAVE_CHACHA) && defined(HAVE_POLY1305) && \
  26533. !defined(WOLFSSL_TICKET_ENC_AES128_GCM) && \
  26534. !defined(WOLFSSL_TICKET_ENC_AES256_GCM)
  26535. /* Ticket encryption/decryption implementation.
  26536. *
  26537. * @param [in] key Key for encryption/decryption.
  26538. * @param [in] keyLen Length of key in bytes.
  26539. * @param [in] iv IV/Nonce for encryption/decryption.
  26540. * @param [in] aad Additional authentication data.
  26541. * @param [in] aadSz Length of additional authentication data.
  26542. * @param [in] in Data to encrypt/decrypt.
  26543. * @param [in] inLen Length of encrypted data.
  26544. * @param [out] out Resulting data from encrypt/decrypt.
  26545. * @param [out] outLen Size of resulting data.
  26546. * @param [in] tag Authentication tag for encrypted data.
  26547. * @param [in] heap Dynamic memory allocation data hint.
  26548. * @param [in] enc 1 when encrypting, 0 when decrypting.
  26549. * @return 0 on success.
  26550. * @return Other value when encryption/decryption fails.
  26551. */
  26552. static int TicketEncDec(byte* key, int keyLen, byte* iv, byte* aad, int aadSz,
  26553. byte* in, int inLen, byte* out, int* outLen, byte* tag,
  26554. void* heap, int enc)
  26555. {
  26556. int ret;
  26557. (void)keyLen;
  26558. (void)heap;
  26559. if (enc) {
  26560. ret = wc_ChaCha20Poly1305_Encrypt(key, iv, aad, aadSz, in, inLen, out,
  26561. tag);
  26562. }
  26563. else {
  26564. ret = wc_ChaCha20Poly1305_Decrypt(key, iv, aad, aadSz, in, inLen, tag,
  26565. out);
  26566. }
  26567. *outLen = inLen;
  26568. return ret;
  26569. }
  26570. #elif defined(HAVE_AESGCM)
  26571. /* Ticket encryption/decryption implementation.
  26572. *
  26573. * @param [in] key Key for encryption/decryption.
  26574. * @param [in] keyLen Length of key in bytes.
  26575. * @param [in] iv IV/Nonce for encryption/decryption.
  26576. * @param [in] aad Additional authentication data.
  26577. * @param [in] aadSz Length of additional authentication data.
  26578. * @param [in] in Data to encrypt/decrypt.
  26579. * @param [in] inLen Length of encrypted data.
  26580. * @param [out] out Resulting data from encrypt/decrypt.
  26581. * @param [out] outLen Size of resulting data.
  26582. * @param [in] tag Authentication tag for encrypted data.
  26583. * @param [in] heap Dynamic memory allocation data hint.
  26584. * @param [in] enc 1 when encrypting, 0 when decrypting.
  26585. * @return 0 on success.
  26586. * @return MEMORY_E when dynamic memory allocation fails.
  26587. * @return Other value when encryption/decryption fails.
  26588. */
  26589. static int TicketEncDec(byte* key, int keyLen, byte* iv, byte* aad, int aadSz,
  26590. byte* in, int inLen, byte* out, int* outLen, byte* tag,
  26591. void* heap, int enc)
  26592. {
  26593. int ret;
  26594. #ifdef WOLFSSL_SMALL_STACK
  26595. Aes* aes;
  26596. #else
  26597. Aes aes[1];
  26598. #endif
  26599. (void)heap;
  26600. #ifdef WOLFSSL_SMALL_STACK
  26601. aes = (Aes*)XMALLOC(sizeof(Aes), heap, DYNAMIC_TYPE_TMP_BUFFER);
  26602. if (aes == NULL)
  26603. return MEMORY_E;
  26604. #endif
  26605. if (enc) {
  26606. ret = wc_AesInit(aes, NULL, INVALID_DEVID);
  26607. if (ret == 0) {
  26608. ret = wc_AesGcmSetKey(aes, key, keyLen);
  26609. }
  26610. if (ret == 0) {
  26611. ret = wc_AesGcmEncrypt(aes, in, out, inLen, iv, GCM_NONCE_MID_SZ,
  26612. tag, AES_BLOCK_SIZE, aad, aadSz);
  26613. }
  26614. wc_AesFree(aes);
  26615. }
  26616. else {
  26617. ret = wc_AesInit(aes, NULL, INVALID_DEVID);
  26618. if (ret == 0) {
  26619. ret = wc_AesGcmSetKey(aes, key, keyLen);
  26620. }
  26621. if (ret == 0) {
  26622. ret = wc_AesGcmDecrypt(aes, in, out, inLen, iv, GCM_NONCE_MID_SZ,
  26623. tag, AES_BLOCK_SIZE, aad, aadSz);
  26624. }
  26625. wc_AesFree(aes);
  26626. }
  26627. #ifdef WOLFSSL_SMALL_STACK
  26628. XFREE(aes, heap, DYNAMIC_TYPE_TMP_BUFFER);
  26629. #endif
  26630. *outLen = inLen;
  26631. return ret;
  26632. }
  26633. #else
  26634. #error "No encryption algorithm available for default ticket encryption."
  26635. #endif
  26636. /* Choose a key to use for encryption.
  26637. *
  26638. * Generate a new key if the current ones are expired.
  26639. * If the secondary key has not been used and the primary key has expired then
  26640. * generate a new primary key.
  26641. *
  26642. * @param [in] Ticket encryption callback context.
  26643. * @param [in] Session ticket lifetime.
  26644. * @param [out] Index of key to use for encryption.
  26645. * @return 0 on success.
  26646. * @return Other value when random number generation fails.
  26647. */
  26648. static int TicketEncCbCtx_ChooseKey(TicketEncCbCtx* keyCtx, int ticketHint,
  26649. int* keyIdx)
  26650. {
  26651. int ret = 0;
  26652. /* Get new current time as lock may have taken some time. */
  26653. word32 now = LowResTimer();
  26654. /* Check expirary of primary key for encrypt. */
  26655. if (keyCtx->expirary[0] >= now + ticketHint) {
  26656. *keyIdx = 0;
  26657. }
  26658. /* Check expirary of primary key for encrypt. */
  26659. else if (keyCtx->expirary[1] >= now + ticketHint) {
  26660. *keyIdx = 1;
  26661. }
  26662. /* No key available to use. */
  26663. else {
  26664. int genKey;
  26665. /* Generate which ever key is expired for decrypt - primary first. */
  26666. if (keyCtx->expirary[0] < now) {
  26667. genKey = 0;
  26668. }
  26669. else if (keyCtx->expirary[1] < now) {
  26670. genKey = 1;
  26671. }
  26672. /* Timeouts and expirary should not allow this to happen. */
  26673. else {
  26674. return BAD_STATE_E;
  26675. }
  26676. /* Generate the required key */
  26677. ret = wc_RNG_GenerateBlock(&keyCtx->rng, keyCtx->key[genKey],
  26678. WOLFSSL_TICKET_KEY_SZ);
  26679. if (ret == 0) {
  26680. keyCtx->expirary[genKey] = now + WOLFSSL_TICKET_KEY_LIFETIME;
  26681. *keyIdx = genKey;
  26682. }
  26683. }
  26684. return ret;
  26685. }
  26686. /* Default Session Ticket encryption/decryption callback.
  26687. *
  26688. * Use ChaCha20-Poly1305 or AES-GCM to encrypt/decrypt the ticket.
  26689. * Two keys are used:
  26690. * - When the first expires for encryption, then use the other.
  26691. * - Don't encrypt with key if the ticket lifetime will go beyond expirary.
  26692. * - Generate a new primary key when primary key expired for decrypt and
  26693. * no secondary key is activate for encryption.
  26694. * - Generate a new secondary key when expired and needed.
  26695. * - Calculate expirary starting from first encrypted ticket.
  26696. * - Key name has last bit set to indicate index of key.
  26697. * Keys expire for decryption after ticket key lifetime from the first encrypted
  26698. * ticket.
  26699. * Keys can only be use for encryption while the ticket hint does not exceed
  26700. * the key lifetime.
  26701. * Lifetime of a key must be greater than the lifetime of a ticket. This means
  26702. * that if one ticket is only valid for decryption, then the other will be
  26703. * valid for encryption.
  26704. * AAD = key_name | iv | ticket len (16-bits network order)
  26705. *
  26706. * @param [in] ssl SSL connection.
  26707. * @param [in,out] key_name Name of key from client.
  26708. * Encrypt: name of key returned.
  26709. * Decrypt: name from ticket message to check.
  26710. * @param [in] iv IV to use in encryption/decryption.
  26711. * @param [in] mac MAC for authentication of encrypted data.
  26712. * @param [in] enc 1 when encrypting ticket, 0 when decrypting.
  26713. * @param [in,out] ticket Encrypted/decrypted session ticket bytes.
  26714. * @param [in] inLen Length of incoming ticket.
  26715. * @param [out] outLen Length of outgoing ticket.
  26716. * @param [in] userCtx Context for encryption/decryption of ticket.
  26717. * @return WOLFSSL_TICKET_RET_OK when successful.
  26718. * @return WOLFSSL_TICKET_RET_CREATE when successful and a new ticket is to
  26719. * be created for TLS 1.2 and below.
  26720. * @return WOLFSSL_TICKET_RET_REJECT when failed to produce valid encrypted or
  26721. * decrypted ticket.
  26722. * @return WOLFSSL_TICKET_RET_FATAL when key name does not match.
  26723. */
  26724. static int DefTicketEncCb(WOLFSSL* ssl, byte key_name[WOLFSSL_TICKET_NAME_SZ],
  26725. byte iv[WOLFSSL_TICKET_IV_SZ],
  26726. byte mac[WOLFSSL_TICKET_MAC_SZ],
  26727. int enc, byte* ticket, int inLen, int* outLen,
  26728. void* userCtx)
  26729. {
  26730. int ret;
  26731. TicketEncCbCtx* keyCtx = (TicketEncCbCtx*)userCtx;
  26732. WOLFSSL_CTX* ctx = keyCtx->ctx;
  26733. word16 sLen = XHTONS(inLen);
  26734. byte aad[WOLFSSL_TICKET_NAME_SZ + WOLFSSL_TICKET_IV_SZ + sizeof(sLen)];
  26735. int aadSz = WOLFSSL_TICKET_NAME_SZ + WOLFSSL_TICKET_IV_SZ + sizeof(sLen);
  26736. byte* p = aad;
  26737. int keyIdx = 0;
  26738. /* Check we have setup the RNG, name and primary key. */
  26739. if (keyCtx->expirary[0] == 0) {
  26740. #ifndef SINGLE_THREADED
  26741. /* Lock around access to expirary and key - stop initial key being
  26742. * generated twice at the same time. */
  26743. if (wc_LockMutex(&keyCtx->mutex) != 0) {
  26744. WOLFSSL_MSG("Couldn't lock key context mutex");
  26745. return WOLFSSL_TICKET_RET_REJECT;
  26746. }
  26747. #endif
  26748. /* Sets expirary of primary key in setup. */
  26749. ret = TicketEncCbCtx_Setup(keyCtx, ssl->ctx->heap, ssl->ctx->devId);
  26750. #ifndef SINGLE_THREADED
  26751. wc_UnLockMutex(&keyCtx->mutex);
  26752. #endif
  26753. if (ret != 0)
  26754. return ret;
  26755. }
  26756. if (enc) {
  26757. /* Return the name of the key - missing key index. */
  26758. XMEMCPY(key_name, keyCtx->name, WOLFSSL_TICKET_NAME_SZ);
  26759. /* Generate a new IV into buffer to be returned.
  26760. * Don't use the RNG in keyCtx as it's for generating private data. */
  26761. ret = wc_RNG_GenerateBlock(ssl->rng, iv, WOLFSSL_TICKET_IV_SZ);
  26762. if (ret != 0) {
  26763. return WOLFSSL_TICKET_RET_REJECT;
  26764. }
  26765. }
  26766. else {
  26767. /* Mask of last bit that is the key index. */
  26768. byte lastByte = key_name[WOLFSSL_TICKET_NAME_SZ - 1] & 0xfe;
  26769. /* For decryption, see if we know this key - check all but last byte. */
  26770. if (XMEMCMP(key_name, keyCtx->name, WOLFSSL_TICKET_NAME_SZ - 1) != 0) {
  26771. return WOLFSSL_TICKET_RET_FATAL;
  26772. }
  26773. /* Ensure last byte without index bit matches too. */
  26774. if (lastByte != keyCtx->name[WOLFSSL_TICKET_NAME_SZ - 1]) {
  26775. return WOLFSSL_TICKET_RET_FATAL;
  26776. }
  26777. }
  26778. /* Build AAD from: key name, iv, and length of ticket. */
  26779. XMEMCPY(p, keyCtx->name, WOLFSSL_TICKET_NAME_SZ);
  26780. p += WOLFSSL_TICKET_NAME_SZ;
  26781. XMEMCPY(p, iv, WOLFSSL_TICKET_IV_SZ);
  26782. p += WOLFSSL_TICKET_IV_SZ;
  26783. XMEMCPY(p, &sLen, sizeof(sLen));
  26784. /* Encrypt ticket. */
  26785. if (enc) {
  26786. word32 now;
  26787. now = LowResTimer();
  26788. /* As long as encryption expirary isn't imminent - no lock. */
  26789. if (keyCtx->expirary[0] > now + ctx->ticketHint) {
  26790. keyIdx = 0;
  26791. }
  26792. else if (keyCtx->expirary[1] > now + ctx->ticketHint) {
  26793. keyIdx = 1;
  26794. }
  26795. else {
  26796. #ifndef SINGLE_THREADED
  26797. /* Lock around access to expirary and key - stop key being generated
  26798. * twice at the same time. */
  26799. if (wc_LockMutex(&keyCtx->mutex) != 0) {
  26800. WOLFSSL_MSG("Couldn't lock key context mutex");
  26801. return WOLFSSL_TICKET_RET_REJECT;
  26802. }
  26803. #endif
  26804. ret = TicketEncCbCtx_ChooseKey(keyCtx, ctx->ticketHint, &keyIdx);
  26805. #ifndef SINGLE_THREADED
  26806. wc_UnLockMutex(&keyCtx->mutex);
  26807. #endif
  26808. if (ret != 0) {
  26809. return WOLFSSL_TICKET_RET_REJECT;
  26810. }
  26811. }
  26812. /* Set the name of the key to the index chosen. */
  26813. key_name[WOLFSSL_TICKET_NAME_SZ - 1] |= keyIdx;
  26814. /* Update AAD too. */
  26815. aad[WOLFSSL_TICKET_NAME_SZ - 1] |= keyIdx;
  26816. /* Encrypt ticket data. */
  26817. ret = TicketEncDec(keyCtx->key[keyIdx], WOLFSSL_TICKET_KEY_SZ, iv, aad,
  26818. aadSz, ticket, inLen, ticket, outLen, mac, ssl->heap,
  26819. 1);
  26820. if (ret != 0) return WOLFSSL_TICKET_RET_REJECT;
  26821. }
  26822. /* Decrypt ticket. */
  26823. else {
  26824. /* Get index of key from name. */
  26825. keyIdx = key_name[WOLFSSL_TICKET_NAME_SZ - 1] & 0x1;
  26826. /* Update AAD with index. */
  26827. aad[WOLFSSL_TICKET_NAME_SZ - 1] |= keyIdx;
  26828. /* Check expirary */
  26829. if (keyCtx->expirary[keyIdx] <= LowResTimer()) {
  26830. return WOLFSSL_TICKET_RET_REJECT;
  26831. }
  26832. /* Decrypt ticket data. */
  26833. ret = TicketEncDec(keyCtx->key[keyIdx], WOLFSSL_TICKET_KEY_SZ, iv, aad,
  26834. aadSz, ticket, inLen, ticket, outLen, mac, ssl->heap,
  26835. 0);
  26836. if (ret != 0) {
  26837. return WOLFSSL_TICKET_RET_REJECT;
  26838. }
  26839. }
  26840. #ifndef WOLFSSL_TICKET_DECRYPT_NO_CREATE
  26841. if (!IsAtLeastTLSv1_3(ssl->version) && !enc)
  26842. return WOLFSSL_TICKET_RET_CREATE;
  26843. #endif
  26844. return WOLFSSL_TICKET_RET_OK;
  26845. }
  26846. #endif /* !WOLFSSL_NO_DEF_TICKET_ENC_CB */
  26847. #endif /* HAVE_SESSION_TICKET */
  26848. #ifndef WOLFSSL_NO_TLS12
  26849. #if defined(HAVE_SECURE_RENEGOTIATION) && \
  26850. defined(HAVE_SERVER_RENEGOTIATION_INFO) && \
  26851. !defined(WOLFSSL_NO_SERVER)
  26852. /* handle generation of server's hello_request (0) */
  26853. int SendHelloRequest(WOLFSSL* ssl)
  26854. {
  26855. byte* output;
  26856. int sendSz = RECORD_HEADER_SZ + HANDSHAKE_HEADER_SZ;
  26857. int ret;
  26858. WOLFSSL_START(WC_FUNC_HELLO_REQUEST_SEND);
  26859. WOLFSSL_ENTER("SendHelloRequest");
  26860. if (IsEncryptionOn(ssl, 1))
  26861. sendSz += MAX_MSG_EXTRA;
  26862. if (ssl->options.dtls)
  26863. sendSz += DTLS_RECORD_EXTRA + DTLS_HANDSHAKE_EXTRA;
  26864. /* check for available size */
  26865. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  26866. return ret;
  26867. /* get output buffer */
  26868. output = ssl->buffers.outputBuffer.buffer +
  26869. ssl->buffers.outputBuffer.length;
  26870. AddHeaders(output, 0, hello_request, ssl);
  26871. if (IsEncryptionOn(ssl, 1)) {
  26872. byte* input;
  26873. int inputSz = HANDSHAKE_HEADER_SZ; /* build msg adds rec hdr */
  26874. int recordHeaderSz = RECORD_HEADER_SZ;
  26875. if (ssl->options.dtls) {
  26876. recordHeaderSz += DTLS_RECORD_EXTRA;
  26877. inputSz += DTLS_HANDSHAKE_EXTRA;
  26878. }
  26879. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26880. if (input == NULL)
  26881. return MEMORY_E;
  26882. XMEMCPY(input, output + recordHeaderSz, inputSz);
  26883. #ifdef WOLFSSL_DTLS
  26884. if (IsDtlsNotSctpMode(ssl) &&
  26885. (ret = DtlsMsgPoolSave(ssl, input, inputSz, hello_request)) != 0) {
  26886. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26887. return ret;
  26888. }
  26889. #endif
  26890. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  26891. handshake, 0, 0, 0, CUR_ORDER);
  26892. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26893. if (sendSz < 0)
  26894. return sendSz;
  26895. }
  26896. ssl->buffers.outputBuffer.length += sendSz;
  26897. ret = SendBuffered(ssl);
  26898. WOLFSSL_LEAVE("SendHelloRequest", ret);
  26899. WOLFSSL_END(WC_FUNC_HELLO_REQUEST_SEND);
  26900. return ret;
  26901. }
  26902. #endif /* HAVE_SECURE_RENEGOTIATION && HAVE_SERVER_RENEGOTIATION_INFO */
  26903. #ifdef WOLFSSL_DTLS
  26904. /* handle generation of DTLS hello_verify_request (3) */
  26905. static int SendHelloVerifyRequest(WOLFSSL* ssl,
  26906. const byte* cookie, byte cookieSz)
  26907. {
  26908. byte* output;
  26909. int length = VERSION_SZ + ENUM_LEN + cookieSz;
  26910. int idx = DTLS_RECORD_HEADER_SZ + DTLS_HANDSHAKE_HEADER_SZ;
  26911. int sendSz = length + idx;
  26912. int ret;
  26913. /* are we in scr */
  26914. if (IsEncryptionOn(ssl, 1)) {
  26915. sendSz += MAX_MSG_EXTRA;
  26916. }
  26917. /* check for available size */
  26918. if ((ret = CheckAvailableSize(ssl, sendSz)) != 0)
  26919. return ret;
  26920. /* get output buffer */
  26921. output = ssl->buffers.outputBuffer.buffer +
  26922. ssl->buffers.outputBuffer.length;
  26923. /* Hello Verify Request should use the same sequence number
  26924. * as the Client Hello unless we are in renegotiation then
  26925. * don't change numbers */
  26926. #ifdef HAVE_SECURE_RENEGOTIATION
  26927. if (!IsSCR(ssl))
  26928. #endif
  26929. {
  26930. ssl->keys.dtls_sequence_number_hi = ssl->keys.curSeq_hi;
  26931. ssl->keys.dtls_sequence_number_lo = ssl->keys.curSeq_lo;
  26932. }
  26933. AddHeaders(output, length, hello_verify_request, ssl);
  26934. #ifdef OPENSSL_EXTRA
  26935. output[idx++] = DTLS_MAJOR;
  26936. output[idx++] = DTLS_MINOR;
  26937. #else
  26938. output[idx++] = ssl->version.major;
  26939. output[idx++] = ssl->version.minor;
  26940. #endif
  26941. output[idx++] = cookieSz;
  26942. if (cookie == NULL || cookieSz == 0)
  26943. return COOKIE_ERROR;
  26944. XMEMCPY(output + idx, cookie, cookieSz);
  26945. #if defined(WOLFSSL_CALLBACKS) || defined(OPENSSL_EXTRA)
  26946. if (ssl->hsInfoOn)
  26947. AddPacketName(ssl, "HelloVerifyRequest");
  26948. if (ssl->toInfoOn)
  26949. AddPacketInfo(ssl, "HelloVerifyRequest", handshake, output,
  26950. sendSz, WRITE_PROTO, ssl->heap);
  26951. #endif
  26952. /* are we in scr */
  26953. if (IsEncryptionOn(ssl, 1)) {
  26954. byte* input;
  26955. int inputSz = DTLS_HANDSHAKE_HEADER_SZ + length; /* build msg adds rec hdr */
  26956. int recordHeaderSz = DTLS_RECORD_HEADER_SZ;
  26957. input = (byte*)XMALLOC(inputSz, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26958. if (input == NULL)
  26959. return MEMORY_E;
  26960. XMEMCPY(input, output + recordHeaderSz, inputSz);
  26961. sendSz = BuildMessage(ssl, output, sendSz, input, inputSz,
  26962. handshake, 0, 0, 0, CUR_ORDER);
  26963. XFREE(input, ssl->heap, DYNAMIC_TYPE_IN_BUFFER);
  26964. if (sendSz < 0)
  26965. return sendSz;
  26966. }
  26967. ssl->buffers.outputBuffer.length += sendSz;
  26968. DtlsSEQIncrement(ssl, CUR_ORDER);
  26969. return SendBuffered(ssl);
  26970. }
  26971. #endif /* WOLFSSL_DTLS */
  26972. typedef struct DckeArgs {
  26973. byte* output; /* not allocated */
  26974. word32 length;
  26975. word32 idx;
  26976. word32 begin;
  26977. word32 sigSz;
  26978. #ifndef NO_RSA
  26979. int lastErr;
  26980. #endif
  26981. } DckeArgs;
  26982. static void FreeDckeArgs(WOLFSSL* ssl, void* pArgs)
  26983. {
  26984. DckeArgs* args = (DckeArgs*)pArgs;
  26985. (void)ssl;
  26986. (void)args;
  26987. }
  26988. /* handle processing client_key_exchange (16) */
  26989. static int DoClientKeyExchange(WOLFSSL* ssl, byte* input, word32* inOutIdx,
  26990. word32 size)
  26991. {
  26992. int ret;
  26993. #ifdef WOLFSSL_ASYNC_CRYPT
  26994. DckeArgs* args = (DckeArgs*)ssl->async.args;
  26995. typedef char args_test[sizeof(ssl->async.args) >= sizeof(*args) ? 1 : -1];
  26996. (void)sizeof(args_test);
  26997. #else
  26998. DckeArgs args[1];
  26999. #endif
  27000. (void)size;
  27001. (void)input;
  27002. WOLFSSL_START(WC_FUNC_CLIENT_KEY_EXCHANGE_DO);
  27003. WOLFSSL_ENTER("DoClientKeyExchange");
  27004. #ifdef WOLFSSL_ASYNC_CRYPT
  27005. ret = wolfSSL_AsyncPop(ssl, &ssl->options.asyncState);
  27006. if (ret != WC_NOT_PENDING_E) {
  27007. /* Check for error */
  27008. if (ret < 0)
  27009. goto exit_dcke;
  27010. }
  27011. else
  27012. #endif /* WOLFSSL_ASYNC_CRYPT */
  27013. {
  27014. /* Reset state */
  27015. ret = 0;
  27016. ssl->options.asyncState = TLS_ASYNC_BEGIN;
  27017. XMEMSET(args, 0, sizeof(DckeArgs));
  27018. args->idx = *inOutIdx;
  27019. args->begin = *inOutIdx;
  27020. #ifdef WOLFSSL_ASYNC_CRYPT
  27021. ssl->async.freeArgs = FreeDckeArgs;
  27022. #endif
  27023. }
  27024. /* Do Client Key Exchange State Machine */
  27025. switch(ssl->options.asyncState)
  27026. {
  27027. case TLS_ASYNC_BEGIN:
  27028. {
  27029. /* Sanity checks */
  27030. if (ssl->options.side != WOLFSSL_SERVER_END) {
  27031. WOLFSSL_MSG("Client received client keyexchange, attack?");
  27032. WOLFSSL_ERROR(ssl->error = SIDE_ERROR);
  27033. ERROR_OUT(WOLFSSL_FATAL_ERROR, exit_dcke);
  27034. }
  27035. if (ssl->options.clientState < CLIENT_HELLO_COMPLETE) {
  27036. WOLFSSL_MSG("Client sending keyexchange at wrong time");
  27037. SendAlert(ssl, alert_fatal, unexpected_message);
  27038. ERROR_OUT(OUT_OF_ORDER_E, exit_dcke);
  27039. }
  27040. #if !defined(NO_CERTS) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  27041. if (ssl->options.verifyPeer && ssl->options.failNoCert) {
  27042. if (!ssl->options.havePeerCert) {
  27043. WOLFSSL_MSG("client didn't present peer cert");
  27044. ERROR_OUT(NO_PEER_CERT, exit_dcke);
  27045. }
  27046. }
  27047. if (ssl->options.verifyPeer && ssl->options.failNoCertxPSK) {
  27048. if (!ssl->options.havePeerCert &&
  27049. !ssl->options.usingPSK_cipher) {
  27050. WOLFSSL_MSG("client didn't present peer cert");
  27051. return NO_PEER_CERT;
  27052. }
  27053. }
  27054. #endif /* !NO_CERTS && !WOLFSSL_NO_CLIENT_AUTH */
  27055. #if defined(WOLFSSL_CALLBACKS)
  27056. if (ssl->hsInfoOn) {
  27057. AddPacketName(ssl, "ClientKeyExchange");
  27058. }
  27059. if (ssl->toInfoOn) {
  27060. AddLateName("ClientKeyExchange", &ssl->timeoutInfo);
  27061. }
  27062. #endif
  27063. if (ssl->arrays->preMasterSecret == NULL) {
  27064. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  27065. ssl->arrays->preMasterSecret = (byte*)XMALLOC(ENCRYPT_LEN,
  27066. ssl->heap, DYNAMIC_TYPE_SECRET);
  27067. if (ssl->arrays->preMasterSecret == NULL) {
  27068. ERROR_OUT(MEMORY_E, exit_dcke);
  27069. }
  27070. XMEMSET(ssl->arrays->preMasterSecret, 0, ENCRYPT_LEN);
  27071. }
  27072. switch (ssl->specs.kea) {
  27073. #ifndef NO_RSA
  27074. case rsa_kea:
  27075. {
  27076. break;
  27077. } /* rsa_kea */
  27078. #endif /* !NO_RSA */
  27079. #ifndef NO_PSK
  27080. case psk_kea:
  27081. {
  27082. /* sanity check that PSK server callback has been set */
  27083. if (ssl->options.server_psk_cb == NULL) {
  27084. WOLFSSL_MSG("No server PSK callback set");
  27085. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27086. }
  27087. break;
  27088. }
  27089. #endif /* !NO_PSK */
  27090. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27091. defined(HAVE_CURVE448)
  27092. case ecc_diffie_hellman_kea:
  27093. {
  27094. break;
  27095. }
  27096. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  27097. #ifndef NO_DH
  27098. case diffie_hellman_kea:
  27099. {
  27100. break;
  27101. }
  27102. #endif /* !NO_DH */
  27103. #if !defined(NO_DH) && !defined(NO_PSK)
  27104. case dhe_psk_kea:
  27105. {
  27106. /* sanity check that PSK server callback has been set */
  27107. if (ssl->options.server_psk_cb == NULL) {
  27108. WOLFSSL_MSG("No server PSK callback set");
  27109. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27110. }
  27111. break;
  27112. }
  27113. #endif /* !NO_DH && !NO_PSK */
  27114. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27115. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  27116. case ecdhe_psk_kea:
  27117. {
  27118. /* sanity check that PSK server callback has been set */
  27119. if (ssl->options.server_psk_cb == NULL) {
  27120. WOLFSSL_MSG("No server PSK callback set");
  27121. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27122. }
  27123. break;
  27124. }
  27125. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  27126. default:
  27127. WOLFSSL_MSG("Bad kea type");
  27128. ret = BAD_KEA_TYPE_E;
  27129. } /* switch (ssl->specs.kea) */
  27130. /* Check for error */
  27131. if (ret != 0) {
  27132. goto exit_dcke;
  27133. }
  27134. /* Advance state and proceed */
  27135. ssl->options.asyncState = TLS_ASYNC_BUILD;
  27136. } /* TLS_ASYNC_BEGIN */
  27137. FALL_THROUGH;
  27138. case TLS_ASYNC_BUILD:
  27139. {
  27140. switch (ssl->specs.kea) {
  27141. #ifndef NO_RSA
  27142. case rsa_kea:
  27143. {
  27144. word16 keySz;
  27145. ssl->buffers.keyType = rsa_sa_algo;
  27146. ret = DecodePrivateKey(ssl, &keySz);
  27147. if (ret != 0) {
  27148. goto exit_dcke;
  27149. }
  27150. args->length = (word32)keySz;
  27151. ssl->arrays->preMasterSz = SECRET_LEN;
  27152. if (ssl->options.tls) {
  27153. word16 check;
  27154. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27155. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27156. }
  27157. ato16(input + args->idx, &check);
  27158. args->idx += OPAQUE16_LEN;
  27159. if ((word32)check != args->length) {
  27160. WOLFSSL_MSG("RSA explicit size doesn't match");
  27161. #ifdef WOLFSSL_EXTRA_ALERTS
  27162. SendAlert(ssl, alert_fatal, bad_record_mac);
  27163. #endif
  27164. ERROR_OUT(RSA_PRIVATE_ERROR, exit_dcke);
  27165. }
  27166. }
  27167. if ((args->idx - args->begin) + args->length > size) {
  27168. WOLFSSL_MSG("RSA message too big");
  27169. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27170. }
  27171. /* pre-load PreMasterSecret with RNG data */
  27172. ret = wc_RNG_GenerateBlock(ssl->rng,
  27173. &ssl->arrays->preMasterSecret[VERSION_SZ],
  27174. SECRET_LEN - VERSION_SZ);
  27175. if (ret != 0) {
  27176. goto exit_dcke;
  27177. }
  27178. args->output = NULL;
  27179. break;
  27180. } /* rsa_kea */
  27181. #endif /* !NO_RSA */
  27182. #ifndef NO_PSK
  27183. case psk_kea:
  27184. {
  27185. byte* pms = ssl->arrays->preMasterSecret;
  27186. word16 ci_sz;
  27187. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27188. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27189. }
  27190. ato16(input + args->idx, &ci_sz);
  27191. args->idx += OPAQUE16_LEN;
  27192. if (ci_sz > MAX_PSK_ID_LEN) {
  27193. ERROR_OUT(CLIENT_ID_ERROR, exit_dcke);
  27194. }
  27195. if ((args->idx - args->begin) + ci_sz > size) {
  27196. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27197. }
  27198. XMEMCPY(ssl->arrays->client_identity,
  27199. input + args->idx, ci_sz);
  27200. args->idx += ci_sz;
  27201. ssl->arrays->client_identity[ci_sz] = '\0'; /* null term */
  27202. ssl->arrays->psk_keySz = ssl->options.server_psk_cb(ssl,
  27203. ssl->arrays->client_identity, ssl->arrays->psk_key,
  27204. MAX_PSK_KEY_LEN);
  27205. if (ssl->arrays->psk_keySz == 0 ||
  27206. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  27207. #if defined(WOLFSSL_EXTRA_ALERTS) || \
  27208. defined(WOLFSSL_PSK_IDENTITY_ALERT)
  27209. SendAlert(ssl, alert_fatal,
  27210. unknown_psk_identity);
  27211. #endif
  27212. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27213. }
  27214. /* make psk pre master secret */
  27215. /* length of key + length 0s + length of key + key */
  27216. c16toa((word16) ssl->arrays->psk_keySz, pms);
  27217. pms += OPAQUE16_LEN;
  27218. XMEMSET(pms, 0, ssl->arrays->psk_keySz);
  27219. pms += ssl->arrays->psk_keySz;
  27220. c16toa((word16) ssl->arrays->psk_keySz, pms);
  27221. pms += OPAQUE16_LEN;
  27222. XMEMCPY(pms, ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  27223. ssl->arrays->preMasterSz =
  27224. (ssl->arrays->psk_keySz * 2) + (OPAQUE16_LEN * 2);
  27225. break;
  27226. }
  27227. #endif /* !NO_PSK */
  27228. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27229. defined(HAVE_CURVE448)
  27230. case ecc_diffie_hellman_kea:
  27231. {
  27232. #ifdef HAVE_ECC
  27233. ecc_key* private_key = ssl->eccTempKey;
  27234. /* handle static private key */
  27235. if (ssl->specs.static_ecdh &&
  27236. ssl->ecdhCurveOID != ECC_X25519_OID &&
  27237. ssl->ecdhCurveOID != ECC_X448_OID) {
  27238. word16 keySz;
  27239. ssl->buffers.keyType = ecc_dsa_sa_algo;
  27240. ret = DecodePrivateKey(ssl, &keySz);
  27241. if (ret != 0) {
  27242. goto exit_dcke;
  27243. }
  27244. private_key = (ecc_key*)ssl->hsKey;
  27245. }
  27246. #endif
  27247. /* import peer ECC key */
  27248. if ((args->idx - args->begin) + OPAQUE8_LEN > size) {
  27249. #ifdef WOLFSSL_EXTRA_ALERTS
  27250. SendAlert(ssl, alert_fatal, decode_error);
  27251. #endif
  27252. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27253. }
  27254. args->length = input[args->idx++];
  27255. if ((args->idx - args->begin) + args->length > size) {
  27256. #ifdef WOLFSSL_EXTRA_ALERTS
  27257. SendAlert(ssl, alert_fatal, decode_error);
  27258. #endif
  27259. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27260. }
  27261. #ifdef HAVE_CURVE25519
  27262. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  27263. #ifdef HAVE_PK_CALLBACKS
  27264. /* if callback then use it for shared secret */
  27265. if (ssl->ctx->X25519SharedSecretCb != NULL) {
  27266. break;
  27267. }
  27268. #endif
  27269. if (ssl->peerX25519Key == NULL) {
  27270. /* alloc/init on demand */
  27271. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE25519,
  27272. (void**)&ssl->peerX25519Key);
  27273. if (ret != 0) {
  27274. goto exit_dcke;
  27275. }
  27276. } else if (ssl->peerX25519KeyPresent) {
  27277. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE25519,
  27278. ssl->peerX25519Key);
  27279. ssl->peerX25519KeyPresent = 0;
  27280. if (ret != 0) {
  27281. goto exit_dcke;
  27282. }
  27283. }
  27284. if ((ret = wc_curve25519_check_public(
  27285. input + args->idx, args->length,
  27286. EC25519_LITTLE_ENDIAN)) != 0) {
  27287. #ifdef WOLFSSL_EXTRA_ALERTS
  27288. if (ret == BUFFER_E)
  27289. SendAlert(ssl, alert_fatal, decode_error);
  27290. else if (ret == ECC_OUT_OF_RANGE_E)
  27291. SendAlert(ssl, alert_fatal, bad_record_mac);
  27292. else {
  27293. SendAlert(ssl, alert_fatal,
  27294. illegal_parameter);
  27295. }
  27296. #endif
  27297. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27298. }
  27299. if (wc_curve25519_import_public_ex(
  27300. input + args->idx, args->length,
  27301. ssl->peerX25519Key,
  27302. EC25519_LITTLE_ENDIAN)) {
  27303. #ifdef WOLFSSL_EXTRA_ALERTS
  27304. SendAlert(ssl, alert_fatal, illegal_parameter);
  27305. #endif
  27306. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27307. }
  27308. ssl->arrays->preMasterSz = CURVE25519_KEYSIZE;
  27309. ssl->peerX25519KeyPresent = 1;
  27310. break;
  27311. }
  27312. #endif
  27313. #ifdef HAVE_CURVE448
  27314. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  27315. #ifdef HAVE_PK_CALLBACKS
  27316. /* if callback then use it for shared secret */
  27317. if (ssl->ctx->X448SharedSecretCb != NULL) {
  27318. break;
  27319. }
  27320. #endif
  27321. if (ssl->peerX448Key == NULL) {
  27322. /* alloc/init on demand */
  27323. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE448,
  27324. (void**)&ssl->peerX448Key);
  27325. if (ret != 0) {
  27326. goto exit_dcke;
  27327. }
  27328. } else if (ssl->peerX448KeyPresent) {
  27329. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE448,
  27330. ssl->peerX448Key);
  27331. ssl->peerX448KeyPresent = 0;
  27332. if (ret != 0) {
  27333. goto exit_dcke;
  27334. }
  27335. }
  27336. if ((ret = wc_curve448_check_public(
  27337. input + args->idx, args->length,
  27338. EC448_LITTLE_ENDIAN)) != 0) {
  27339. #ifdef WOLFSSL_EXTRA_ALERTS
  27340. if (ret == BUFFER_E)
  27341. SendAlert(ssl, alert_fatal, decode_error);
  27342. else if (ret == ECC_OUT_OF_RANGE_E)
  27343. SendAlert(ssl, alert_fatal, bad_record_mac);
  27344. else {
  27345. SendAlert(ssl, alert_fatal,
  27346. illegal_parameter);
  27347. }
  27348. #endif
  27349. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27350. }
  27351. if (wc_curve448_import_public_ex(
  27352. input + args->idx, args->length,
  27353. ssl->peerX448Key,
  27354. EC448_LITTLE_ENDIAN)) {
  27355. #ifdef WOLFSSL_EXTRA_ALERTS
  27356. SendAlert(ssl, alert_fatal, illegal_parameter);
  27357. #endif
  27358. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27359. }
  27360. ssl->arrays->preMasterSz = CURVE448_KEY_SIZE;
  27361. ssl->peerX448KeyPresent = 1;
  27362. break;
  27363. }
  27364. #endif
  27365. #ifdef HAVE_ECC
  27366. #ifdef HAVE_PK_CALLBACKS
  27367. /* if callback then use it for shared secret */
  27368. if (ssl->ctx->EccSharedSecretCb != NULL) {
  27369. break;
  27370. }
  27371. #endif
  27372. if (!ssl->specs.static_ecdh &&
  27373. ssl->eccTempKeyPresent == 0) {
  27374. WOLFSSL_MSG("Ecc ephemeral key not made correctly");
  27375. ERROR_OUT(ECC_MAKEKEY_ERROR, exit_dcke);
  27376. }
  27377. if (ssl->peerEccKey == NULL) {
  27378. /* alloc/init on demand */
  27379. ret = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  27380. (void**)&ssl->peerEccKey);
  27381. if (ret != 0) {
  27382. goto exit_dcke;
  27383. }
  27384. } else if (ssl->peerEccKeyPresent) {
  27385. ret = ReuseKey(ssl, DYNAMIC_TYPE_ECC,
  27386. ssl->peerEccKey);
  27387. ssl->peerEccKeyPresent = 0;
  27388. if (ret != 0) {
  27389. goto exit_dcke;
  27390. }
  27391. }
  27392. if (wc_ecc_import_x963_ex(input + args->idx,
  27393. args->length, ssl->peerEccKey,
  27394. private_key->dp->id)) {
  27395. #ifdef WOLFSSL_EXTRA_ALERTS
  27396. SendAlert(ssl, alert_fatal, illegal_parameter);
  27397. #endif
  27398. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27399. }
  27400. ssl->arrays->preMasterSz = private_key->dp->size;
  27401. ssl->peerEccKeyPresent = 1;
  27402. #if defined(WOLFSSL_TLS13) || defined(HAVE_FFDHE)
  27403. /* client_hello may have sent FFEDH2048, which sets namedGroup,
  27404. but that is not being used, so clear it */
  27405. /* resolves issue with server side wolfSSL_get_curve_name */
  27406. ssl->namedGroup = 0;
  27407. #endif
  27408. #endif /* HAVE_ECC */
  27409. break;
  27410. }
  27411. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  27412. #ifndef NO_DH
  27413. case diffie_hellman_kea:
  27414. {
  27415. word16 clientPubSz;
  27416. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27417. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27418. }
  27419. ato16(input + args->idx, &clientPubSz);
  27420. args->idx += OPAQUE16_LEN;
  27421. if ((args->idx - args->begin) + clientPubSz > size) {
  27422. #ifdef WOLFSSL_EXTRA_ALERTS
  27423. SendAlert(ssl, alert_fatal, decode_error);
  27424. #endif
  27425. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27426. }
  27427. args->sigSz = clientPubSz;
  27428. ret = AllocKey(ssl, DYNAMIC_TYPE_DH,
  27429. (void**)&ssl->buffers.serverDH_Key);
  27430. if (ret != 0) {
  27431. goto exit_dcke;
  27432. }
  27433. ret = wc_DhSetKey(ssl->buffers.serverDH_Key,
  27434. ssl->buffers.serverDH_P.buffer,
  27435. ssl->buffers.serverDH_P.length,
  27436. ssl->buffers.serverDH_G.buffer,
  27437. ssl->buffers.serverDH_G.length);
  27438. /* set the max agree result size */
  27439. ssl->arrays->preMasterSz = ENCRYPT_LEN;
  27440. break;
  27441. }
  27442. #endif /* !NO_DH */
  27443. #if !defined(NO_DH) && !defined(NO_PSK)
  27444. case dhe_psk_kea:
  27445. {
  27446. word16 clientSz;
  27447. /* Read in the PSK hint */
  27448. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27449. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27450. }
  27451. ato16(input + args->idx, &clientSz);
  27452. args->idx += OPAQUE16_LEN;
  27453. if (clientSz > MAX_PSK_ID_LEN) {
  27454. ERROR_OUT(CLIENT_ID_ERROR, exit_dcke);
  27455. }
  27456. if ((args->idx - args->begin) + clientSz > size) {
  27457. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27458. }
  27459. XMEMCPY(ssl->arrays->client_identity, input + args->idx,
  27460. clientSz);
  27461. args->idx += clientSz;
  27462. ssl->arrays->client_identity[clientSz] = '\0'; /* null term */
  27463. /* Read in the DHE business */
  27464. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27465. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27466. }
  27467. ato16(input + args->idx, &clientSz);
  27468. args->idx += OPAQUE16_LEN;
  27469. if ((args->idx - args->begin) + clientSz > size) {
  27470. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27471. }
  27472. args->sigSz = clientSz;
  27473. ret = AllocKey(ssl, DYNAMIC_TYPE_DH,
  27474. (void**)&ssl->buffers.serverDH_Key);
  27475. if (ret != 0) {
  27476. goto exit_dcke;
  27477. }
  27478. ret = wc_DhSetKey(ssl->buffers.serverDH_Key,
  27479. ssl->buffers.serverDH_P.buffer,
  27480. ssl->buffers.serverDH_P.length,
  27481. ssl->buffers.serverDH_G.buffer,
  27482. ssl->buffers.serverDH_G.length);
  27483. break;
  27484. }
  27485. #endif /* !NO_DH && !NO_PSK */
  27486. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27487. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  27488. case ecdhe_psk_kea:
  27489. {
  27490. word16 clientSz;
  27491. /* Read in the PSK hint */
  27492. if ((args->idx - args->begin) + OPAQUE16_LEN > size) {
  27493. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27494. }
  27495. ato16(input + args->idx, &clientSz);
  27496. args->idx += OPAQUE16_LEN;
  27497. if (clientSz > MAX_PSK_ID_LEN) {
  27498. ERROR_OUT(CLIENT_ID_ERROR, exit_dcke);
  27499. }
  27500. if ((args->idx - args->begin) + clientSz > size) {
  27501. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27502. }
  27503. XMEMCPY(ssl->arrays->client_identity,
  27504. input + args->idx, clientSz);
  27505. args->idx += clientSz;
  27506. ssl->arrays->client_identity[clientSz] = '\0'; /* null term */
  27507. /* import peer ECC key */
  27508. if ((args->idx - args->begin) + OPAQUE8_LEN > size) {
  27509. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27510. }
  27511. args->length = input[args->idx++];
  27512. if ((args->idx - args->begin) + args->length > size) {
  27513. ERROR_OUT(BUFFER_ERROR, exit_dcke);
  27514. }
  27515. args->sigSz = ENCRYPT_LEN - OPAQUE16_LEN;
  27516. #ifdef HAVE_CURVE25519
  27517. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  27518. #ifdef HAVE_PK_CALLBACKS
  27519. /* if callback then use it for shared secret */
  27520. if (ssl->ctx->X25519SharedSecretCb != NULL) {
  27521. break;
  27522. }
  27523. #endif
  27524. if (ssl->eccTempKeyPresent == 0) {
  27525. WOLFSSL_MSG(
  27526. "X25519 ephemeral key not made correctly");
  27527. ERROR_OUT(ECC_MAKEKEY_ERROR, exit_dcke);
  27528. }
  27529. if (ssl->peerX25519Key == NULL) {
  27530. /* alloc/init on demand */
  27531. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE25519,
  27532. (void**)&ssl->peerX25519Key);
  27533. if (ret != 0) {
  27534. goto exit_dcke;
  27535. }
  27536. } else if (ssl->peerX25519KeyPresent) {
  27537. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE25519,
  27538. ssl->peerX25519Key);
  27539. ssl->peerX25519KeyPresent = 0;
  27540. if (ret != 0) {
  27541. goto exit_dcke;
  27542. }
  27543. }
  27544. if ((ret = wc_curve25519_check_public(
  27545. input + args->idx, args->length,
  27546. EC25519_LITTLE_ENDIAN)) != 0) {
  27547. #ifdef WOLFSSL_EXTRA_ALERTS
  27548. if (ret == BUFFER_E)
  27549. SendAlert(ssl, alert_fatal, decode_error);
  27550. else if (ret == ECC_OUT_OF_RANGE_E)
  27551. SendAlert(ssl, alert_fatal, bad_record_mac);
  27552. else {
  27553. SendAlert(ssl, alert_fatal,
  27554. illegal_parameter);
  27555. }
  27556. #endif
  27557. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27558. }
  27559. if (wc_curve25519_import_public_ex(
  27560. input + args->idx, args->length,
  27561. ssl->peerX25519Key,
  27562. EC25519_LITTLE_ENDIAN)) {
  27563. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27564. }
  27565. ssl->peerX25519KeyPresent = 1;
  27566. break;
  27567. }
  27568. #endif
  27569. #ifdef HAVE_CURVE448
  27570. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  27571. #ifdef HAVE_PK_CALLBACKS
  27572. /* if callback then use it for shared secret */
  27573. if (ssl->ctx->X448SharedSecretCb != NULL) {
  27574. break;
  27575. }
  27576. #endif
  27577. if (ssl->eccTempKeyPresent == 0) {
  27578. WOLFSSL_MSG(
  27579. "X448 ephemeral key not made correctly");
  27580. ERROR_OUT(ECC_MAKEKEY_ERROR, exit_dcke);
  27581. }
  27582. if (ssl->peerX448Key == NULL) {
  27583. /* alloc/init on demand */
  27584. ret = AllocKey(ssl, DYNAMIC_TYPE_CURVE448,
  27585. (void**)&ssl->peerX448Key);
  27586. if (ret != 0) {
  27587. goto exit_dcke;
  27588. }
  27589. } else if (ssl->peerX448KeyPresent) {
  27590. ret = ReuseKey(ssl, DYNAMIC_TYPE_CURVE448,
  27591. ssl->peerX448Key);
  27592. ssl->peerX448KeyPresent = 0;
  27593. if (ret != 0) {
  27594. goto exit_dcke;
  27595. }
  27596. }
  27597. if ((ret = wc_curve448_check_public(
  27598. input + args->idx, args->length,
  27599. EC448_LITTLE_ENDIAN)) != 0) {
  27600. #ifdef WOLFSSL_EXTRA_ALERTS
  27601. if (ret == BUFFER_E)
  27602. SendAlert(ssl, alert_fatal, decode_error);
  27603. else if (ret == ECC_OUT_OF_RANGE_E)
  27604. SendAlert(ssl, alert_fatal, bad_record_mac);
  27605. else {
  27606. SendAlert(ssl, alert_fatal,
  27607. illegal_parameter);
  27608. }
  27609. #endif
  27610. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27611. }
  27612. if (wc_curve448_import_public_ex(
  27613. input + args->idx, args->length,
  27614. ssl->peerX448Key,
  27615. EC448_LITTLE_ENDIAN)) {
  27616. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27617. }
  27618. ssl->peerX448KeyPresent = 1;
  27619. break;
  27620. }
  27621. #endif
  27622. #ifdef HAVE_PK_CALLBACKS
  27623. /* if callback then use it for shared secret */
  27624. if (ssl->ctx->EccSharedSecretCb != NULL) {
  27625. break;
  27626. }
  27627. #endif
  27628. if (ssl->eccTempKeyPresent == 0) {
  27629. WOLFSSL_MSG("Ecc ephemeral key not made correctly");
  27630. ERROR_OUT(ECC_MAKEKEY_ERROR, exit_dcke);
  27631. }
  27632. if (ssl->peerEccKey == NULL) {
  27633. /* alloc/init on demand */
  27634. ret = AllocKey(ssl, DYNAMIC_TYPE_ECC,
  27635. (void**)&ssl->peerEccKey);
  27636. if (ret != 0) {
  27637. goto exit_dcke;
  27638. }
  27639. }
  27640. else if (ssl->peerEccKeyPresent) {
  27641. ret = ReuseKey(ssl, DYNAMIC_TYPE_ECC,
  27642. ssl->peerEccKey);
  27643. ssl->peerEccKeyPresent = 0;
  27644. if (ret != 0) {
  27645. goto exit_dcke;
  27646. }
  27647. }
  27648. if (wc_ecc_import_x963_ex(input + args->idx,
  27649. args->length, ssl->peerEccKey,
  27650. ssl->eccTempKey->dp->id)) {
  27651. ERROR_OUT(ECC_PEERKEY_ERROR, exit_dcke);
  27652. }
  27653. ssl->peerEccKeyPresent = 1;
  27654. break;
  27655. }
  27656. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  27657. default:
  27658. ret = BAD_KEA_TYPE_E;
  27659. } /* switch (ssl->specs.kea) */
  27660. /* Check for error */
  27661. if (ret != 0) {
  27662. goto exit_dcke;
  27663. }
  27664. /* Advance state and proceed */
  27665. ssl->options.asyncState = TLS_ASYNC_DO;
  27666. } /* TLS_ASYNC_BUILD */
  27667. FALL_THROUGH;
  27668. case TLS_ASYNC_DO:
  27669. {
  27670. switch (ssl->specs.kea) {
  27671. #ifndef NO_RSA
  27672. case rsa_kea:
  27673. {
  27674. RsaKey* key = (RsaKey*)ssl->hsKey;
  27675. ret = RsaDec(ssl,
  27676. input + args->idx,
  27677. args->length,
  27678. &args->output,
  27679. &args->sigSz,
  27680. key,
  27681. #ifdef HAVE_PK_CALLBACKS
  27682. ssl->buffers.key
  27683. #else
  27684. NULL
  27685. #endif
  27686. );
  27687. /* Errors that can occur here that should be
  27688. * indistinguishable:
  27689. * RSA_BUFFER_E, RSA_PAD_E and RSA_PRIVATE_ERROR
  27690. */
  27691. #ifdef WOLFSSL_ASYNC_CRYPT
  27692. if (ret == WC_PENDING_E)
  27693. goto exit_dcke;
  27694. #endif
  27695. if (ret == BAD_FUNC_ARG)
  27696. goto exit_dcke;
  27697. args->lastErr = ret - (SECRET_LEN - args->sigSz);
  27698. ret = 0;
  27699. break;
  27700. } /* rsa_kea */
  27701. #endif /* !NO_RSA */
  27702. #ifndef NO_PSK
  27703. case psk_kea:
  27704. {
  27705. break;
  27706. }
  27707. #endif /* !NO_PSK */
  27708. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27709. defined(HAVE_CURVE448)
  27710. case ecc_diffie_hellman_kea:
  27711. {
  27712. void* private_key = ssl->eccTempKey;
  27713. (void)private_key;
  27714. #ifdef HAVE_CURVE25519
  27715. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  27716. ret = X25519SharedSecret(ssl,
  27717. (curve25519_key*)private_key,
  27718. ssl->peerX25519Key,
  27719. input + args->idx, &args->length,
  27720. ssl->arrays->preMasterSecret,
  27721. &ssl->arrays->preMasterSz,
  27722. WOLFSSL_SERVER_END
  27723. );
  27724. break;
  27725. }
  27726. #endif
  27727. #ifdef HAVE_CURVE448
  27728. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  27729. ret = X448SharedSecret(ssl,
  27730. (curve448_key*)private_key,
  27731. ssl->peerX448Key,
  27732. input + args->idx, &args->length,
  27733. ssl->arrays->preMasterSecret,
  27734. &ssl->arrays->preMasterSz,
  27735. WOLFSSL_SERVER_END
  27736. );
  27737. break;
  27738. }
  27739. #endif
  27740. #ifdef HAVE_ECC
  27741. if (ssl->specs.static_ecdh) {
  27742. private_key = ssl->hsKey;
  27743. }
  27744. /* Generate shared secret */
  27745. ret = EccSharedSecret(ssl,
  27746. (ecc_key*)private_key, ssl->peerEccKey,
  27747. input + args->idx, &args->length,
  27748. ssl->arrays->preMasterSecret,
  27749. &ssl->arrays->preMasterSz,
  27750. WOLFSSL_SERVER_END
  27751. );
  27752. #ifdef WOLFSSL_ASYNC_CRYPT
  27753. if (ret != WC_PENDING_E)
  27754. #endif
  27755. {
  27756. FreeKey(ssl, DYNAMIC_TYPE_ECC,
  27757. (void**)&ssl->peerEccKey);
  27758. ssl->peerEccKeyPresent = 0;
  27759. }
  27760. #endif
  27761. break;
  27762. }
  27763. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  27764. #ifndef NO_DH
  27765. case diffie_hellman_kea:
  27766. {
  27767. ret = DhAgree(ssl, ssl->buffers.serverDH_Key,
  27768. ssl->buffers.serverDH_Priv.buffer,
  27769. ssl->buffers.serverDH_Priv.length,
  27770. input + args->idx,
  27771. (word16)args->sigSz,
  27772. ssl->arrays->preMasterSecret,
  27773. &ssl->arrays->preMasterSz,
  27774. ssl->buffers.serverDH_P.buffer,
  27775. ssl->buffers.serverDH_P.length);
  27776. break;
  27777. }
  27778. #endif /* !NO_DH */
  27779. #if !defined(NO_DH) && !defined(NO_PSK)
  27780. case dhe_psk_kea:
  27781. {
  27782. ret = DhAgree(ssl, ssl->buffers.serverDH_Key,
  27783. ssl->buffers.serverDH_Priv.buffer,
  27784. ssl->buffers.serverDH_Priv.length,
  27785. input + args->idx,
  27786. (word16)args->sigSz,
  27787. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  27788. &ssl->arrays->preMasterSz,
  27789. ssl->buffers.serverDH_P.buffer,
  27790. ssl->buffers.serverDH_P.length);
  27791. break;
  27792. }
  27793. #endif /* !NO_DH && !NO_PSK */
  27794. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27795. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  27796. case ecdhe_psk_kea:
  27797. {
  27798. #ifdef HAVE_CURVE25519
  27799. if (ssl->ecdhCurveOID == ECC_X25519_OID) {
  27800. ret = X25519SharedSecret(ssl,
  27801. (curve25519_key*)ssl->eccTempKey,
  27802. ssl->peerX25519Key,
  27803. input + args->idx, &args->length,
  27804. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  27805. &args->sigSz,
  27806. WOLFSSL_SERVER_END
  27807. );
  27808. #ifdef WOLFSSL_ASYNC_CRYPT
  27809. if (ret != WC_PENDING_E)
  27810. #endif
  27811. {
  27812. FreeKey(ssl, DYNAMIC_TYPE_CURVE25519,
  27813. (void**)&ssl->peerX25519Key);
  27814. ssl->peerX25519KeyPresent = 0;
  27815. }
  27816. break;
  27817. }
  27818. #endif
  27819. #ifdef HAVE_CURVE448
  27820. if (ssl->ecdhCurveOID == ECC_X448_OID) {
  27821. ret = X448SharedSecret(ssl,
  27822. (curve448_key*)ssl->eccTempKey,
  27823. ssl->peerX448Key,
  27824. input + args->idx, &args->length,
  27825. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  27826. &args->sigSz,
  27827. WOLFSSL_SERVER_END
  27828. );
  27829. #ifdef WOLFSSL_ASYNC_CRYPT
  27830. if (ret != WC_PENDING_E)
  27831. #endif
  27832. {
  27833. FreeKey(ssl, DYNAMIC_TYPE_CURVE448,
  27834. (void**)&ssl->peerX448Key);
  27835. ssl->peerX448KeyPresent = 0;
  27836. }
  27837. break;
  27838. }
  27839. #endif
  27840. /* Generate shared secret */
  27841. ret = EccSharedSecret(ssl,
  27842. ssl->eccTempKey, ssl->peerEccKey,
  27843. input + args->idx, &args->length,
  27844. ssl->arrays->preMasterSecret + OPAQUE16_LEN,
  27845. &args->sigSz,
  27846. WOLFSSL_SERVER_END
  27847. );
  27848. if (!ssl->specs.static_ecdh
  27849. #ifdef WOLFSSL_ASYNC_CRYPT
  27850. && ret != WC_PENDING_E
  27851. #endif
  27852. ) {
  27853. FreeKey(ssl, DYNAMIC_TYPE_ECC,
  27854. (void**)&ssl->peerEccKey);
  27855. ssl->peerEccKeyPresent = 0;
  27856. }
  27857. break;
  27858. }
  27859. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  27860. default:
  27861. ret = BAD_KEA_TYPE_E;
  27862. } /* switch (ssl->specs.kea) */
  27863. /* Check for error */
  27864. if (ret != 0) {
  27865. goto exit_dcke;
  27866. }
  27867. /* Advance state and proceed */
  27868. ssl->options.asyncState = TLS_ASYNC_VERIFY;
  27869. } /* TLS_ASYNC_DO */
  27870. FALL_THROUGH;
  27871. case TLS_ASYNC_VERIFY:
  27872. {
  27873. switch (ssl->specs.kea) {
  27874. #ifndef NO_RSA
  27875. case rsa_kea:
  27876. {
  27877. byte mask;
  27878. int i;
  27879. /* Add the signature length to idx */
  27880. args->idx += args->length;
  27881. #ifdef DEBUG_WOLFSSL
  27882. /* check version (debug warning message only) */
  27883. if (args->output != NULL) {
  27884. if (args->output[0] != ssl->chVersion.major ||
  27885. args->output[1] != ssl->chVersion.minor) {
  27886. WOLFSSL_MSG("preMasterSecret version mismatch");
  27887. }
  27888. }
  27889. #endif
  27890. /* RFC5246 7.4.7.1:
  27891. * Treat incorrectly formatted message blocks and/or
  27892. * mismatched version numbers in a manner
  27893. * indistinguishable from correctly formatted RSA blocks
  27894. */
  27895. ret = args->lastErr;
  27896. args->lastErr = 0; /* reset */
  27897. /* On error 'ret' will be negative - top bit set */
  27898. mask = ((unsigned int)ret >>
  27899. ((sizeof(ret) * 8) - 1)) - 1;
  27900. /* build PreMasterSecret */
  27901. ssl->arrays->preMasterSecret[0] = ssl->chVersion.major;
  27902. ssl->arrays->preMasterSecret[1] = ssl->chVersion.minor;
  27903. if (args->output != NULL) {
  27904. /* Use random secret on error */
  27905. for (i = VERSION_SZ; i < SECRET_LEN; i++) {
  27906. ssl->arrays->preMasterSecret[i] =
  27907. ctMaskSel(mask, args->output[i],
  27908. ssl->arrays->preMasterSecret[i]);
  27909. }
  27910. }
  27911. /* preMasterSecret has RNG and version set
  27912. * return proper length and ignore error
  27913. * error will be caught as decryption error
  27914. */
  27915. args->sigSz = SECRET_LEN;
  27916. ret = 0;
  27917. break;
  27918. } /* rsa_kea */
  27919. #endif /* !NO_RSA */
  27920. #ifndef NO_PSK
  27921. case psk_kea:
  27922. {
  27923. break;
  27924. }
  27925. #endif /* !NO_PSK */
  27926. #if defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27927. defined(HAVE_CURVE448)
  27928. case ecc_diffie_hellman_kea:
  27929. {
  27930. /* skip past the imported peer key */
  27931. args->idx += args->length;
  27932. break;
  27933. }
  27934. #endif /* HAVE_ECC || HAVE_CURVE25519 || HAVE_CURVE448 */
  27935. #ifndef NO_DH
  27936. case diffie_hellman_kea:
  27937. {
  27938. args->idx += (word16)args->sigSz;
  27939. break;
  27940. }
  27941. #endif /* !NO_DH */
  27942. #if !defined(NO_DH) && !defined(NO_PSK)
  27943. case dhe_psk_kea:
  27944. {
  27945. byte* pms = ssl->arrays->preMasterSecret;
  27946. word16 clientSz = (word16)args->sigSz;
  27947. args->idx += clientSz;
  27948. c16toa((word16)ssl->arrays->preMasterSz, pms);
  27949. ssl->arrays->preMasterSz += OPAQUE16_LEN;
  27950. pms += ssl->arrays->preMasterSz;
  27951. /* Use the PSK hint to look up the PSK and add it to the
  27952. * preMasterSecret here. */
  27953. ssl->arrays->psk_keySz = ssl->options.server_psk_cb(ssl,
  27954. ssl->arrays->client_identity, ssl->arrays->psk_key,
  27955. MAX_PSK_KEY_LEN);
  27956. if (ssl->arrays->psk_keySz == 0 ||
  27957. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  27958. #if defined(WOLFSSL_EXTRA_ALERTS) || \
  27959. defined(WOLFSSL_PSK_IDENTITY_ALERT)
  27960. SendAlert(ssl, alert_fatal,
  27961. unknown_psk_identity);
  27962. #endif
  27963. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27964. }
  27965. c16toa((word16) ssl->arrays->psk_keySz, pms);
  27966. pms += OPAQUE16_LEN;
  27967. XMEMCPY(pms, ssl->arrays->psk_key,
  27968. ssl->arrays->psk_keySz);
  27969. ssl->arrays->preMasterSz += ssl->arrays->psk_keySz +
  27970. OPAQUE16_LEN;
  27971. break;
  27972. }
  27973. #endif /* !NO_DH && !NO_PSK */
  27974. #if (defined(HAVE_ECC) || defined(HAVE_CURVE25519) || \
  27975. defined(HAVE_CURVE448)) && !defined(NO_PSK)
  27976. case ecdhe_psk_kea:
  27977. {
  27978. byte* pms = ssl->arrays->preMasterSecret;
  27979. word16 clientSz = (word16)args->sigSz;
  27980. /* skip past the imported peer key */
  27981. args->idx += args->length;
  27982. /* Add preMasterSecret */
  27983. c16toa(clientSz, pms);
  27984. ssl->arrays->preMasterSz = OPAQUE16_LEN + clientSz;
  27985. pms += ssl->arrays->preMasterSz;
  27986. /* Use the PSK hint to look up the PSK and add it to the
  27987. * preMasterSecret here. */
  27988. ssl->arrays->psk_keySz = ssl->options.server_psk_cb(ssl,
  27989. ssl->arrays->client_identity, ssl->arrays->psk_key,
  27990. MAX_PSK_KEY_LEN);
  27991. if (ssl->arrays->psk_keySz == 0 ||
  27992. ssl->arrays->psk_keySz > MAX_PSK_KEY_LEN) {
  27993. ERROR_OUT(PSK_KEY_ERROR, exit_dcke);
  27994. }
  27995. c16toa((word16) ssl->arrays->psk_keySz, pms);
  27996. pms += OPAQUE16_LEN;
  27997. XMEMCPY(pms, ssl->arrays->psk_key, ssl->arrays->psk_keySz);
  27998. ssl->arrays->preMasterSz +=
  27999. ssl->arrays->psk_keySz + OPAQUE16_LEN;
  28000. break;
  28001. }
  28002. #endif /* (HAVE_ECC || CURVE25519 || CURVE448) && !NO_PSK */
  28003. default:
  28004. ret = BAD_KEA_TYPE_E;
  28005. } /* switch (ssl->specs.kea) */
  28006. /* Check for error */
  28007. if (ret != 0) {
  28008. goto exit_dcke;
  28009. }
  28010. /* Advance state and proceed */
  28011. ssl->options.asyncState = TLS_ASYNC_FINALIZE;
  28012. } /* TLS_ASYNC_VERIFY */
  28013. FALL_THROUGH;
  28014. case TLS_ASYNC_FINALIZE:
  28015. {
  28016. if (IsEncryptionOn(ssl, 0)) {
  28017. args->idx += ssl->keys.padSz;
  28018. #if defined(HAVE_ENCRYPT_THEN_MAC) && !defined(WOLFSSL_AEAD_ONLY)
  28019. if (ssl->options.startedETMRead)
  28020. args->idx += MacSize(ssl);
  28021. #endif
  28022. }
  28023. ret = MakeMasterSecret(ssl);
  28024. /* Check for error */
  28025. if (ret != 0) {
  28026. goto exit_dcke;
  28027. }
  28028. /* Advance state and proceed */
  28029. ssl->options.asyncState = TLS_ASYNC_END;
  28030. } /* TLS_ASYNC_FINALIZE */
  28031. FALL_THROUGH;
  28032. case TLS_ASYNC_END:
  28033. {
  28034. /* Set final index */
  28035. *inOutIdx = args->idx;
  28036. ssl->options.clientState = CLIENT_KEYEXCHANGE_COMPLETE;
  28037. #if !defined(NO_CERTS) && !defined(WOLFSSL_NO_CLIENT_AUTH)
  28038. if (ssl->options.verifyPeer) {
  28039. ret = BuildCertHashes(ssl, &ssl->hsHashes->certHashes);
  28040. }
  28041. #endif
  28042. break;
  28043. } /* TLS_ASYNC_END */
  28044. default:
  28045. ret = INPUT_CASE_ERROR;
  28046. } /* switch(ssl->options.asyncState) */
  28047. exit_dcke:
  28048. WOLFSSL_LEAVE("DoClientKeyExchange", ret);
  28049. WOLFSSL_END(WC_FUNC_CLIENT_KEY_EXCHANGE_DO);
  28050. #ifdef WOLFSSL_ASYNC_CRYPT
  28051. /* Handle async operation */
  28052. if (ret == WC_PENDING_E) {
  28053. /* Mark message as not received so it can process again */
  28054. ssl->msgsReceived.got_client_key_exchange = 0;
  28055. return ret;
  28056. }
  28057. #endif /* WOLFSSL_ASYNC_CRYPT */
  28058. #ifdef OPENSSL_ALL
  28059. /* add error ret value to error queue */
  28060. if (ret != 0) {
  28061. WOLFSSL_ERROR(ret);
  28062. }
  28063. #endif
  28064. /* Cleanup PMS */
  28065. if (ssl->arrays->preMasterSecret != NULL) {
  28066. ForceZero(ssl->arrays->preMasterSecret, ssl->arrays->preMasterSz);
  28067. }
  28068. ssl->arrays->preMasterSz = 0;
  28069. /* Final cleanup */
  28070. FreeDckeArgs(ssl, args);
  28071. FreeKeyExchange(ssl);
  28072. return ret;
  28073. }
  28074. #endif /* !WOLFSSL_NO_TLS12 */
  28075. #ifdef HAVE_SNI
  28076. int SNI_Callback(WOLFSSL* ssl)
  28077. {
  28078. int ad = 0;
  28079. int sniRet = 0;
  28080. /* Stunnel supports a custom sni callback to switch an SSL's ctx
  28081. * when SNI is received. Call it now if exists */
  28082. if(ssl && ssl->ctx && ssl->ctx->sniRecvCb) {
  28083. WOLFSSL_MSG("Calling custom sni callback");
  28084. sniRet = ssl->ctx->sniRecvCb(ssl, &ad, ssl->ctx->sniRecvCbArg);
  28085. switch (sniRet) {
  28086. case warning_return:
  28087. WOLFSSL_MSG("Error in custom sni callback. Warning alert");
  28088. SendAlert(ssl, alert_warning, ad);
  28089. break;
  28090. case fatal_return:
  28091. WOLFSSL_MSG("Error in custom sni callback. Fatal alert");
  28092. SendAlert(ssl, alert_fatal, ad);
  28093. return FATAL_ERROR;
  28094. case noack_return:
  28095. WOLFSSL_MSG("Server quietly not acking servername.");
  28096. break;
  28097. default:
  28098. break;
  28099. }
  28100. }
  28101. return 0;
  28102. }
  28103. #endif /* HAVE_SNI */
  28104. #endif /* NO_WOLFSSL_SERVER */
  28105. #ifdef WOLFSSL_ASYNC_CRYPT
  28106. int wolfSSL_AsyncPop(WOLFSSL* ssl, byte* state)
  28107. {
  28108. int ret = 0;
  28109. WC_ASYNC_DEV* asyncDev;
  28110. WOLF_EVENT* event;
  28111. if (ssl == NULL) {
  28112. return BAD_FUNC_ARG;
  28113. }
  28114. /* check for pending async */
  28115. asyncDev = ssl->async.dev;
  28116. if (asyncDev) {
  28117. /* grab event pointer */
  28118. event = &asyncDev->event;
  28119. ret = wolfAsync_EventPop(event, WOLF_EVENT_TYPE_ASYNC_WOLFSSL);
  28120. if (ret != WC_NOT_PENDING_E && ret != WC_PENDING_E) {
  28121. /* advance key share state if doesn't need called again */
  28122. if (state && (asyncDev->event.flags & WC_ASYNC_FLAG_CALL_AGAIN) == 0) {
  28123. (*state)++;
  28124. }
  28125. /* clear event */
  28126. XMEMSET(&asyncDev->event, 0, sizeof(WOLF_EVENT));
  28127. /* clear async dev */
  28128. ssl->async.dev = NULL;
  28129. }
  28130. }
  28131. else {
  28132. ret = WC_NOT_PENDING_E;
  28133. }
  28134. WOLFSSL_LEAVE("wolfSSL_AsyncPop", ret);
  28135. return ret;
  28136. }
  28137. int wolfSSL_AsyncInit(WOLFSSL* ssl, WC_ASYNC_DEV* asyncDev, word32 flags)
  28138. {
  28139. int ret;
  28140. WOLF_EVENT* event;
  28141. if (ssl == NULL || asyncDev == NULL) {
  28142. return BAD_FUNC_ARG;
  28143. }
  28144. /* grab event pointer */
  28145. event = &asyncDev->event;
  28146. /* init event */
  28147. ret = wolfAsync_EventInit(event, WOLF_EVENT_TYPE_ASYNC_WOLFSSL, ssl, flags);
  28148. WOLFSSL_LEAVE("wolfSSL_AsyncInit", ret);
  28149. return ret;
  28150. }
  28151. int wolfSSL_AsyncPush(WOLFSSL* ssl, WC_ASYNC_DEV* asyncDev)
  28152. {
  28153. int ret;
  28154. WOLF_EVENT* event;
  28155. if (ssl == NULL || asyncDev == NULL) {
  28156. return BAD_FUNC_ARG;
  28157. }
  28158. /* grab event pointer */
  28159. event = &asyncDev->event;
  28160. /* store reference to active async operation */
  28161. ssl->async.dev = asyncDev;
  28162. /* place event into queue */
  28163. ret = wolfAsync_EventQueuePush(&ssl->ctx->event_queue, event);
  28164. /* success means return WC_PENDING_E */
  28165. if (ret == 0) {
  28166. ret = WC_PENDING_E;
  28167. }
  28168. WOLFSSL_LEAVE("wolfSSL_AsyncPush", ret);
  28169. return ret;
  28170. }
  28171. #endif /* WOLFSSL_ASYNC_CRYPT */
  28172. /* return the max record size */
  28173. int wolfSSL_GetMaxRecordSize(WOLFSSL* ssl, int maxFragment)
  28174. {
  28175. (void) ssl; /* Avoid compiler warnings */
  28176. if (maxFragment > MAX_RECORD_SIZE) {
  28177. maxFragment = MAX_RECORD_SIZE;
  28178. }
  28179. #ifdef HAVE_MAX_FRAGMENT
  28180. if ((ssl->max_fragment != 0) && ((word16)maxFragment > ssl->max_fragment)) {
  28181. maxFragment = ssl->max_fragment;
  28182. }
  28183. #endif /* HAVE_MAX_FRAGMENT */
  28184. #ifdef WOLFSSL_DTLS
  28185. if (IsDtlsNotSctpMode(ssl)) {
  28186. int cipherExtra = IsEncryptionOn(ssl, 1) ? cipherExtraData(ssl) : 0;
  28187. if (maxFragment > MAX_UDP_SIZE) {
  28188. maxFragment = MAX_UDP_SIZE;
  28189. }
  28190. if (maxFragment > MAX_MTU - COMP_EXTRA - DTLS_RECORD_HEADER_SZ -
  28191. DTLS_HANDSHAKE_HEADER_SZ - cipherExtra) {
  28192. maxFragment = MAX_MTU - COMP_EXTRA - DTLS_RECORD_HEADER_SZ -
  28193. DTLS_HANDSHAKE_HEADER_SZ - cipherExtra;
  28194. }
  28195. #if defined(WOLFSSL_DTLS_MTU)
  28196. {
  28197. int overheadSz = DTLS_RECORD_HEADER_SZ + DTLS_HANDSHAKE_HEADER_SZ +
  28198. COMP_EXTRA + cipherExtra;
  28199. if (maxFragment > ssl->dtlsMtuSz - overheadSz) {
  28200. maxFragment = ssl->dtlsMtuSz - overheadSz;
  28201. }
  28202. }
  28203. #endif
  28204. }
  28205. #endif
  28206. return maxFragment;
  28207. }
  28208. #if defined(WOLFSSL_IOTSAFE) && defined(HAVE_PK_CALLBACKS)
  28209. IOTSAFE *wolfSSL_get_iotsafe_ctx(WOLFSSL *ssl)
  28210. {
  28211. if (ssl == NULL)
  28212. return NULL;
  28213. return &ssl->iotsafe;
  28214. }
  28215. int wolfSSL_set_iotsafe_ctx(WOLFSSL *ssl, IOTSAFE *iotsafe)
  28216. {
  28217. if ((ssl == NULL) || (iotsafe == NULL))
  28218. return BAD_FUNC_ARG;
  28219. XMEMCPY(&ssl->iotsafe, iotsafe, sizeof(IOTSAFE));
  28220. return 0;
  28221. }
  28222. #endif
  28223. #if defined(OPENSSL_ALL) && !defined(NO_FILESYSTEM) && !defined(NO_WOLFSSL_DIR)
  28224. /* create an instance of WOLFSSL_BY_DIR_HASH structure */
  28225. WOLFSSL_BY_DIR_HASH* wolfSSL_BY_DIR_HASH_new(void)
  28226. {
  28227. WOLFSSL_BY_DIR_HASH* dir_hash;
  28228. WOLFSSL_ENTER("wolfSSL_BY_DIR_HASH_new");
  28229. dir_hash = (WOLFSSL_BY_DIR_HASH*)XMALLOC(sizeof(WOLFSSL_BY_DIR_HASH), NULL,
  28230. DYNAMIC_TYPE_OPENSSL);
  28231. if (dir_hash) {
  28232. XMEMSET(dir_hash, 0, sizeof(WOLFSSL_BY_DIR_HASH));
  28233. }
  28234. return dir_hash;
  28235. }
  28236. /* release a WOLFSSL_BY_DIR_HASH resource */
  28237. void wolfSSL_BY_DIR_HASH_free(WOLFSSL_BY_DIR_HASH* dir_hash)
  28238. {
  28239. if (dir_hash == NULL)
  28240. return;
  28241. XFREE(dir_hash, NULL, DYNAMIC_TYPE_OPENSSL);
  28242. }
  28243. /* create an instance of WOLFSSL_STACK for STACK_TYPE_BY_DIR_hash */
  28244. WOLFSSL_STACK* wolfSSL_sk_BY_DIR_HASH_new_null(void)
  28245. {
  28246. WOLFSSL_STACK* sk = wolfSSL_sk_new_node(NULL);
  28247. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_new_null");
  28248. if (sk) {
  28249. sk->type = STACK_TYPE_BY_DIR_hash;
  28250. }
  28251. return sk;
  28252. }
  28253. /* returns value less than 0 on fail to match
  28254. * On a successful match the priority level found is returned
  28255. */
  28256. int wolfSSL_sk_BY_DIR_HASH_find(
  28257. WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH)* sk, const WOLFSSL_BY_DIR_HASH* toFind)
  28258. {
  28259. WOLFSSL_STACK* next;
  28260. int i, sz;
  28261. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_find");
  28262. if (sk == NULL || toFind == NULL) {
  28263. return WOLFSSL_FAILURE;
  28264. }
  28265. sz = wolfSSL_sk_BY_DIR_HASH_num(sk);
  28266. next = sk;
  28267. for (i = 0; i < sz && next != NULL; i++) {
  28268. if (next->data.dir_hash->hash_value == toFind->hash_value) {
  28269. return sz - i; /* reverse because stack pushed highest on first */
  28270. }
  28271. next = next->next;
  28272. }
  28273. return -1;
  28274. }
  28275. /* return a number of WOLFSSL_BY_DIR_HASH in stack */
  28276. int wolfSSL_sk_BY_DIR_HASH_num(const WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH) *sk)
  28277. {
  28278. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_num");
  28279. if (sk == NULL)
  28280. return -1;
  28281. return (int)sk->num;
  28282. }
  28283. /* return WOLFSSL_BY_DIR_HASH instance at i */
  28284. WOLFSSL_BY_DIR_HASH* wolfSSL_sk_BY_DIR_HASH_value(
  28285. const WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH) *sk, int i)
  28286. {
  28287. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_value");
  28288. for (; sk != NULL && i > 0; i--)
  28289. sk = sk->next;
  28290. if (i != 0 || sk == NULL)
  28291. return NULL;
  28292. return sk->data.dir_hash;
  28293. }
  28294. /* pop WOLFSSL_BY_DIR_HASH instance, and remove its node from stack */
  28295. WOLFSSL_BY_DIR_HASH* wolfSSL_sk_BY_DIR_HASH_pop(
  28296. WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH)* sk)
  28297. {
  28298. WOLFSSL_STACK* node;
  28299. WOLFSSL_BY_DIR_HASH* hash;
  28300. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_pop");
  28301. if (sk == NULL) {
  28302. return NULL;
  28303. }
  28304. node = sk->next;
  28305. hash = sk->data.dir_hash;
  28306. if (node != NULL) { /* update sk and remove node from stack */
  28307. sk->data.dir_hash = node->data.dir_hash;
  28308. sk->next = node->next;
  28309. wolfSSL_sk_free_node(node);
  28310. }
  28311. else { /* last x509 in stack */
  28312. sk->data.dir_hash = NULL;
  28313. }
  28314. if (sk->num > 0) {
  28315. sk->num -= 1;
  28316. }
  28317. return hash;
  28318. }
  28319. /* release all contents in stack, and then release stack itself. */
  28320. /* Second argument is a function pointer to release resouces. */
  28321. /* It calls the function to release resouces when t is passed */
  28322. /* instead of wolfSSL_BY_DIR_HASH_free(). */
  28323. void wolfSSL_sk_BY_DIR_HASH_pop_free(WOLF_STACK_OF(BY_DIR_HASH)* sk,
  28324. void (*f) (WOLFSSL_BY_DIR_HASH*))
  28325. {
  28326. WOLFSSL_STACK* node;
  28327. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_pop_free");
  28328. if (sk == NULL) {
  28329. return;
  28330. }
  28331. /* parse through stack freeing each node */
  28332. node = sk->next;
  28333. while (node && sk->num > 1) {
  28334. WOLFSSL_STACK* tmp = node;
  28335. node = node->next;
  28336. if (f)
  28337. f(tmp->data.dir_hash);
  28338. else
  28339. wolfSSL_BY_DIR_HASH_free(tmp->data.dir_hash);
  28340. tmp->data.dir_hash = NULL;
  28341. XFREE(tmp, NULL, DYNAMIC_TYPE_OPENSSL);
  28342. sk->num -= 1;
  28343. }
  28344. /* free head of stack */
  28345. if (sk->num == 1) {
  28346. if (f)
  28347. f(sk->data.dir_hash);
  28348. else
  28349. wolfSSL_BY_DIR_HASH_free(sk->data.dir_hash);
  28350. sk->data.dir_hash = NULL;
  28351. }
  28352. XFREE(sk, NULL, DYNAMIC_TYPE_OPENSSL);
  28353. }
  28354. /* release all contents in stack, and then release stack itself */
  28355. void wolfSSL_sk_BY_DIR_HASH_free(WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH) *sk)
  28356. {
  28357. wolfSSL_sk_BY_DIR_HASH_pop_free(sk, NULL);
  28358. }
  28359. /* Adds the WOLFSSL_BY_DIR_HASH to the stack "sk". "sk" takes control of "in" and
  28360. * tries to free it when the stack is free'd.
  28361. *
  28362. * return 1 on success 0 on fail
  28363. */
  28364. int wolfSSL_sk_BY_DIR_HASH_push(WOLF_STACK_OF(WOLFSSL_BY_DIR_HASH)* sk,
  28365. WOLFSSL_BY_DIR_HASH* in)
  28366. {
  28367. WOLFSSL_STACK* node;
  28368. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_HASH_push");
  28369. if (sk == NULL || in == NULL) {
  28370. return WOLFSSL_FAILURE;
  28371. }
  28372. /* no previous values in stack */
  28373. if (sk->data.dir_hash == NULL) {
  28374. sk->data.dir_hash = in;
  28375. sk->num += 1;
  28376. return WOLFSSL_SUCCESS;
  28377. }
  28378. /* stack already has value(s) create a new node and add more */
  28379. node = (WOLFSSL_STACK*)XMALLOC(sizeof(WOLFSSL_STACK), NULL,
  28380. DYNAMIC_TYPE_OPENSSL);
  28381. if (node == NULL) {
  28382. WOLFSSL_MSG("Memory error");
  28383. return WOLFSSL_FAILURE;
  28384. }
  28385. XMEMSET(node, 0, sizeof(WOLFSSL_STACK));
  28386. /* push new obj onto head of stack */
  28387. node->data.dir_hash = sk->data.dir_hash;
  28388. node->next = sk->next;
  28389. node->type = sk->type;
  28390. sk->next = node;
  28391. sk->data.dir_hash = in;
  28392. sk->num += 1;
  28393. return WOLFSSL_SUCCESS;
  28394. }
  28395. /* create an instance of WOLFSSL_BY_DIR_entry structure */
  28396. WOLFSSL_BY_DIR_entry* wolfSSL_BY_DIR_entry_new(void)
  28397. {
  28398. WOLFSSL_BY_DIR_entry* entry;
  28399. WOLFSSL_ENTER("wolfSSL_BY_DIR_entry_new");
  28400. entry = (WOLFSSL_BY_DIR_entry*)XMALLOC(sizeof(WOLFSSL_BY_DIR_entry), NULL,
  28401. DYNAMIC_TYPE_OPENSSL);
  28402. if (entry) {
  28403. XMEMSET(entry, 0, sizeof(WOLFSSL_BY_DIR_entry));
  28404. }
  28405. return entry;
  28406. }
  28407. /* release a WOLFSSL_BY_DIR_entry resource */
  28408. void wolfSSL_BY_DIR_entry_free(WOLFSSL_BY_DIR_entry* entry)
  28409. {
  28410. WOLFSSL_ENTER("wolfSSL_BY_DIR_entry_free");
  28411. if (entry == NULL)
  28412. return;
  28413. if (entry->hashes) {
  28414. wolfSSL_sk_BY_DIR_HASH_free(entry->hashes);
  28415. }
  28416. if (entry->dir_name != NULL) {
  28417. XFREE(entry->dir_name, NULL, DYNAMIC_TYPE_OPENSSL);
  28418. }
  28419. XFREE(entry, NULL, DYNAMIC_TYPE_OPENSSL);
  28420. }
  28421. WOLFSSL_STACK* wolfSSL_sk_BY_DIR_entry_new_null(void)
  28422. {
  28423. WOLFSSL_STACK* sk = wolfSSL_sk_new_node(NULL);
  28424. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_entry_new_null");
  28425. if (sk) {
  28426. sk->type = STACK_TYPE_BY_DIR_entry;
  28427. }
  28428. return sk;
  28429. }
  28430. /* return a number of WOLFSSL_BY_DIR_entry in stack */
  28431. int wolfSSL_sk_BY_DIR_entry_num(const WOLF_STACK_OF(WOLFSSL_BY_DIR_entry) *sk)
  28432. {
  28433. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_entry_num");
  28434. if (sk == NULL)
  28435. return -1;
  28436. return (int)sk->num;
  28437. }
  28438. /* return WOLFSSL_BY_DIR_entry instance at i */
  28439. WOLFSSL_BY_DIR_entry* wolfSSL_sk_BY_DIR_entry_value(
  28440. const WOLF_STACK_OF(WOLFSSL_BY_DIR_entry) *sk, int i)
  28441. {
  28442. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_entry_value");
  28443. for (; sk != NULL && i > 0; i--)
  28444. sk = sk->next;
  28445. if (i != 0 || sk == NULL)
  28446. return NULL;
  28447. return sk->data.dir_entry;
  28448. }
  28449. /* pop WOLFSSL_BY_DIR_entry instance first, and remove its node from stack */
  28450. WOLFSSL_BY_DIR_entry* wolfSSL_sk_BY_DIR_entry_pop(
  28451. WOLF_STACK_OF(WOLFSSL_BY_DIR_entry)* sk)
  28452. {
  28453. WOLFSSL_STACK* node;
  28454. WOLFSSL_BY_DIR_entry* entry;
  28455. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_entry_pop");
  28456. if (sk == NULL) {
  28457. return NULL;
  28458. }
  28459. node = sk->next;
  28460. entry = sk->data.dir_entry;
  28461. if (node != NULL) { /* update sk and remove node from stack */
  28462. sk->data.dir_entry = node->data.dir_entry;
  28463. sk->next = node->next;
  28464. wolfSSL_sk_free_node(node);
  28465. }
  28466. else { /* last x509 in stack */
  28467. sk->data.dir_entry = NULL;
  28468. }
  28469. if (sk->num > 0) {
  28470. sk->num -= 1;
  28471. }
  28472. return entry;
  28473. }
  28474. /* release all contents in stack, and then release stack itself. */
  28475. /* Second argument is a function pointer to release resouces. */
  28476. /* It calls the function to release resouces when t is passed */
  28477. /* instead of wolfSSL_BY_DIR_entry_free(). */
  28478. void wolfSSL_sk_BY_DIR_entry_pop_free(WOLF_STACK_OF(WOLFSSL_BY_DIR_entry)* sk,
  28479. void (*f) (WOLFSSL_BY_DIR_entry*))
  28480. {
  28481. WOLFSSL_STACK* node;
  28482. WOLFSSL_ENTER("wolfSSL_sk_BY_DIR_entry_pop_free");
  28483. if (sk == NULL) {
  28484. return;
  28485. }
  28486. /* parse through stack freeing each node */
  28487. node = sk->next;
  28488. while (node && sk->num > 1) {
  28489. WOLFSSL_STACK* tmp = node;
  28490. node = node->next;
  28491. if (f)
  28492. f(tmp->data.dir_entry);
  28493. else
  28494. wolfSSL_BY_DIR_entry_free(tmp->data.dir_entry);
  28495. tmp->data.dir_entry = NULL;
  28496. XFREE(tmp, NULL, DYNAMIC_TYPE_OPENSSL);
  28497. sk->num -= 1;
  28498. }
  28499. /* free head of stack */
  28500. if (sk->num == 1) {
  28501. if (f)
  28502. f(sk->data.dir_entry);
  28503. else
  28504. wolfSSL_BY_DIR_entry_free(sk->data.dir_entry);
  28505. sk->data.dir_entry = NULL;
  28506. }
  28507. XFREE(sk, NULL, DYNAMIC_TYPE_OPENSSL);
  28508. }
  28509. /* release all contents in stack, and then release stack itself */
  28510. void wolfSSL_sk_BY_DIR_entry_free(WOLF_STACK_OF(wolfSSL_BY_DIR_entry) *sk)
  28511. {
  28512. wolfSSL_sk_BY_DIR_entry_pop_free(sk, NULL);
  28513. }
  28514. /* Adds the wolfSSL_BY_DIR_entry to the stack "sk". "sk" takes control of "in" and
  28515. * tries to free it when the stack is free'd.
  28516. *
  28517. * return 1 on success 0 on fail
  28518. */
  28519. int wolfSSL_sk_BY_DIR_entry_push(WOLF_STACK_OF(WOLFSSL_BY_DIR_entry)* sk,
  28520. WOLFSSL_BY_DIR_entry* in)
  28521. {
  28522. WOLFSSL_STACK* node;
  28523. if (sk == NULL || in == NULL) {
  28524. return WOLFSSL_FAILURE;
  28525. }
  28526. /* no previous values in stack */
  28527. if (sk->data.dir_entry == NULL) {
  28528. sk->data.dir_entry = in;
  28529. sk->num += 1;
  28530. return WOLFSSL_SUCCESS;
  28531. }
  28532. /* stack already has value(s) create a new node and add more */
  28533. node = (WOLFSSL_STACK*)XMALLOC(sizeof(WOLFSSL_STACK), NULL,
  28534. DYNAMIC_TYPE_OPENSSL);
  28535. if (node == NULL) {
  28536. WOLFSSL_MSG("Memory error");
  28537. return WOLFSSL_FAILURE;
  28538. }
  28539. XMEMSET(node, 0, sizeof(WOLFSSL_STACK));
  28540. /* push new obj onto head of stack */
  28541. node->data.dir_entry = sk->data.dir_entry;
  28542. node->next = sk->next;
  28543. node->type = sk->type;
  28544. sk->next = node;
  28545. sk->data.dir_entry = in;
  28546. sk->num += 1;
  28547. return WOLFSSL_SUCCESS;
  28548. }
  28549. #endif /* OPENSSL_ALL */
  28550. #undef ERROR_OUT
  28551. #endif /* WOLFCRYPT_ONLY */