nss.c 75 KB

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  1. /***************************************************************************
  2. * _ _ ____ _
  3. * Project ___| | | | _ \| |
  4. * / __| | | | |_) | |
  5. * | (__| |_| | _ <| |___
  6. * \___|\___/|_| \_\_____|
  7. *
  8. * Copyright (C) 1998 - 2022, Daniel Stenberg, <daniel@haxx.se>, et al.
  9. *
  10. * This software is licensed as described in the file COPYING, which
  11. * you should have received as part of this distribution. The terms
  12. * are also available at https://curl.se/docs/copyright.html.
  13. *
  14. * You may opt to use, copy, modify, merge, publish, distribute and/or sell
  15. * copies of the Software, and permit persons to whom the Software is
  16. * furnished to do so, under the terms of the COPYING file.
  17. *
  18. * This software is distributed on an "AS IS" basis, WITHOUT WARRANTY OF ANY
  19. * KIND, either express or implied.
  20. *
  21. ***************************************************************************/
  22. /*
  23. * Source file for all NSS-specific code for the TLS/SSL layer. No code
  24. * but vtls.c should ever call or use these functions.
  25. */
  26. #include "curl_setup.h"
  27. #ifdef USE_NSS
  28. #include "urldata.h"
  29. #include "sendf.h"
  30. #include "formdata.h" /* for the boundary function */
  31. #include "url.h" /* for the ssl config check function */
  32. #include "connect.h"
  33. #include "strcase.h"
  34. #include "select.h"
  35. #include "vtls.h"
  36. #include "llist.h"
  37. #include "multiif.h"
  38. #include "curl_printf.h"
  39. #include "nssg.h"
  40. #include <nspr.h>
  41. #include <nss.h>
  42. #include <ssl.h>
  43. #include <sslerr.h>
  44. #include <secerr.h>
  45. #include <secmod.h>
  46. #include <sslproto.h>
  47. #include <prtypes.h>
  48. #include <pk11pub.h>
  49. #include <prio.h>
  50. #include <secitem.h>
  51. #include <secport.h>
  52. #include <certdb.h>
  53. #include <base64.h>
  54. #include <cert.h>
  55. #include <prerror.h>
  56. #include <keyhi.h> /* for SECKEY_DestroyPublicKey() */
  57. #include <private/pprio.h> /* for PR_ImportTCPSocket */
  58. #define NSSVERNUM ((NSS_VMAJOR<<16)|(NSS_VMINOR<<8)|NSS_VPATCH)
  59. #if NSSVERNUM >= 0x030f00 /* 3.15.0 */
  60. #include <ocsp.h>
  61. #endif
  62. #include "strcase.h"
  63. #include "warnless.h"
  64. #include "x509asn1.h"
  65. /* The last #include files should be: */
  66. #include "curl_memory.h"
  67. #include "memdebug.h"
  68. #define SSL_DIR "/etc/pki/nssdb"
  69. /* enough to fit the string "PEM Token #[0|1]" */
  70. #define SLOTSIZE 13
  71. struct ssl_backend_data {
  72. PRFileDesc *handle;
  73. char *client_nickname;
  74. struct Curl_easy *data;
  75. struct Curl_llist obj_list;
  76. PK11GenericObject *obj_clicert;
  77. };
  78. static PRLock *nss_initlock = NULL;
  79. static PRLock *nss_crllock = NULL;
  80. static PRLock *nss_findslot_lock = NULL;
  81. static PRLock *nss_trustload_lock = NULL;
  82. static struct Curl_llist nss_crl_list;
  83. static NSSInitContext *nss_context = NULL;
  84. static volatile int initialized = 0;
  85. /* type used to wrap pointers as list nodes */
  86. struct ptr_list_wrap {
  87. void *ptr;
  88. struct Curl_llist_element node;
  89. };
  90. struct cipher_s {
  91. const char *name;
  92. int num;
  93. };
  94. #define PK11_SETATTRS(_attr, _idx, _type, _val, _len) do { \
  95. CK_ATTRIBUTE *ptr = (_attr) + ((_idx)++); \
  96. ptr->type = (_type); \
  97. ptr->pValue = (_val); \
  98. ptr->ulValueLen = (_len); \
  99. } while(0)
  100. #define CERT_NewTempCertificate __CERT_NewTempCertificate
  101. #define NUM_OF_CIPHERS sizeof(cipherlist)/sizeof(cipherlist[0])
  102. static const struct cipher_s cipherlist[] = {
  103. /* SSL2 cipher suites */
  104. {"rc4", SSL_EN_RC4_128_WITH_MD5},
  105. {"rc4-md5", SSL_EN_RC4_128_WITH_MD5},
  106. {"rc4export", SSL_EN_RC4_128_EXPORT40_WITH_MD5},
  107. {"rc2", SSL_EN_RC2_128_CBC_WITH_MD5},
  108. {"rc2export", SSL_EN_RC2_128_CBC_EXPORT40_WITH_MD5},
  109. {"des", SSL_EN_DES_64_CBC_WITH_MD5},
  110. {"desede3", SSL_EN_DES_192_EDE3_CBC_WITH_MD5},
  111. /* SSL3/TLS cipher suites */
  112. {"rsa_rc4_128_md5", SSL_RSA_WITH_RC4_128_MD5},
  113. {"rsa_rc4_128_sha", SSL_RSA_WITH_RC4_128_SHA},
  114. {"rsa_3des_sha", SSL_RSA_WITH_3DES_EDE_CBC_SHA},
  115. {"rsa_des_sha", SSL_RSA_WITH_DES_CBC_SHA},
  116. {"rsa_rc4_40_md5", SSL_RSA_EXPORT_WITH_RC4_40_MD5},
  117. {"rsa_rc2_40_md5", SSL_RSA_EXPORT_WITH_RC2_CBC_40_MD5},
  118. {"rsa_null_md5", SSL_RSA_WITH_NULL_MD5},
  119. {"rsa_null_sha", SSL_RSA_WITH_NULL_SHA},
  120. {"fips_3des_sha", SSL_RSA_FIPS_WITH_3DES_EDE_CBC_SHA},
  121. {"fips_des_sha", SSL_RSA_FIPS_WITH_DES_CBC_SHA},
  122. {"fortezza", SSL_FORTEZZA_DMS_WITH_FORTEZZA_CBC_SHA},
  123. {"fortezza_rc4_128_sha", SSL_FORTEZZA_DMS_WITH_RC4_128_SHA},
  124. {"fortezza_null", SSL_FORTEZZA_DMS_WITH_NULL_SHA},
  125. {"dhe_rsa_3des_sha", SSL_DHE_RSA_WITH_3DES_EDE_CBC_SHA},
  126. {"dhe_dss_3des_sha", SSL_DHE_DSS_WITH_3DES_EDE_CBC_SHA},
  127. {"dhe_rsa_des_sha", SSL_DHE_RSA_WITH_DES_CBC_SHA},
  128. {"dhe_dss_des_sha", SSL_DHE_DSS_WITH_DES_CBC_SHA},
  129. /* TLS 1.0: Exportable 56-bit Cipher Suites. */
  130. {"rsa_des_56_sha", TLS_RSA_EXPORT1024_WITH_DES_CBC_SHA},
  131. {"rsa_rc4_56_sha", TLS_RSA_EXPORT1024_WITH_RC4_56_SHA},
  132. /* Ephemeral DH with RC4 bulk encryption */
  133. {"dhe_dss_rc4_128_sha", TLS_DHE_DSS_WITH_RC4_128_SHA},
  134. /* AES ciphers. */
  135. {"dhe_dss_aes_128_cbc_sha", TLS_DHE_DSS_WITH_AES_128_CBC_SHA},
  136. {"dhe_dss_aes_256_cbc_sha", TLS_DHE_DSS_WITH_AES_256_CBC_SHA},
  137. {"dhe_rsa_aes_128_cbc_sha", TLS_DHE_RSA_WITH_AES_128_CBC_SHA},
  138. {"dhe_rsa_aes_256_cbc_sha", TLS_DHE_RSA_WITH_AES_256_CBC_SHA},
  139. {"rsa_aes_128_sha", TLS_RSA_WITH_AES_128_CBC_SHA},
  140. {"rsa_aes_256_sha", TLS_RSA_WITH_AES_256_CBC_SHA},
  141. /* ECC ciphers. */
  142. {"ecdh_ecdsa_null_sha", TLS_ECDH_ECDSA_WITH_NULL_SHA},
  143. {"ecdh_ecdsa_rc4_128_sha", TLS_ECDH_ECDSA_WITH_RC4_128_SHA},
  144. {"ecdh_ecdsa_3des_sha", TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA},
  145. {"ecdh_ecdsa_aes_128_sha", TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA},
  146. {"ecdh_ecdsa_aes_256_sha", TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA},
  147. {"ecdhe_ecdsa_null_sha", TLS_ECDHE_ECDSA_WITH_NULL_SHA},
  148. {"ecdhe_ecdsa_rc4_128_sha", TLS_ECDHE_ECDSA_WITH_RC4_128_SHA},
  149. {"ecdhe_ecdsa_3des_sha", TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA},
  150. {"ecdhe_ecdsa_aes_128_sha", TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA},
  151. {"ecdhe_ecdsa_aes_256_sha", TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA},
  152. {"ecdh_rsa_null_sha", TLS_ECDH_RSA_WITH_NULL_SHA},
  153. {"ecdh_rsa_128_sha", TLS_ECDH_RSA_WITH_RC4_128_SHA},
  154. {"ecdh_rsa_3des_sha", TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA},
  155. {"ecdh_rsa_aes_128_sha", TLS_ECDH_RSA_WITH_AES_128_CBC_SHA},
  156. {"ecdh_rsa_aes_256_sha", TLS_ECDH_RSA_WITH_AES_256_CBC_SHA},
  157. {"ecdhe_rsa_null", TLS_ECDHE_RSA_WITH_NULL_SHA},
  158. {"ecdhe_rsa_rc4_128_sha", TLS_ECDHE_RSA_WITH_RC4_128_SHA},
  159. {"ecdhe_rsa_3des_sha", TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA},
  160. {"ecdhe_rsa_aes_128_sha", TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA},
  161. {"ecdhe_rsa_aes_256_sha", TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA},
  162. {"ecdh_anon_null_sha", TLS_ECDH_anon_WITH_NULL_SHA},
  163. {"ecdh_anon_rc4_128sha", TLS_ECDH_anon_WITH_RC4_128_SHA},
  164. {"ecdh_anon_3des_sha", TLS_ECDH_anon_WITH_3DES_EDE_CBC_SHA},
  165. {"ecdh_anon_aes_128_sha", TLS_ECDH_anon_WITH_AES_128_CBC_SHA},
  166. {"ecdh_anon_aes_256_sha", TLS_ECDH_anon_WITH_AES_256_CBC_SHA},
  167. #ifdef TLS_RSA_WITH_NULL_SHA256
  168. /* new HMAC-SHA256 cipher suites specified in RFC */
  169. {"rsa_null_sha_256", TLS_RSA_WITH_NULL_SHA256},
  170. {"rsa_aes_128_cbc_sha_256", TLS_RSA_WITH_AES_128_CBC_SHA256},
  171. {"rsa_aes_256_cbc_sha_256", TLS_RSA_WITH_AES_256_CBC_SHA256},
  172. {"dhe_rsa_aes_128_cbc_sha_256", TLS_DHE_RSA_WITH_AES_128_CBC_SHA256},
  173. {"dhe_rsa_aes_256_cbc_sha_256", TLS_DHE_RSA_WITH_AES_256_CBC_SHA256},
  174. {"ecdhe_ecdsa_aes_128_cbc_sha_256", TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256},
  175. {"ecdhe_rsa_aes_128_cbc_sha_256", TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256},
  176. #endif
  177. #ifdef TLS_RSA_WITH_AES_128_GCM_SHA256
  178. /* AES GCM cipher suites in RFC 5288 and RFC 5289 */
  179. {"rsa_aes_128_gcm_sha_256", TLS_RSA_WITH_AES_128_GCM_SHA256},
  180. {"dhe_rsa_aes_128_gcm_sha_256", TLS_DHE_RSA_WITH_AES_128_GCM_SHA256},
  181. {"dhe_dss_aes_128_gcm_sha_256", TLS_DHE_DSS_WITH_AES_128_GCM_SHA256},
  182. {"ecdhe_ecdsa_aes_128_gcm_sha_256", TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256},
  183. {"ecdh_ecdsa_aes_128_gcm_sha_256", TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256},
  184. {"ecdhe_rsa_aes_128_gcm_sha_256", TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256},
  185. {"ecdh_rsa_aes_128_gcm_sha_256", TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256},
  186. #endif
  187. #ifdef TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384
  188. /* cipher suites using SHA384 */
  189. {"rsa_aes_256_gcm_sha_384", TLS_RSA_WITH_AES_256_GCM_SHA384},
  190. {"dhe_rsa_aes_256_gcm_sha_384", TLS_DHE_RSA_WITH_AES_256_GCM_SHA384},
  191. {"dhe_dss_aes_256_gcm_sha_384", TLS_DHE_DSS_WITH_AES_256_GCM_SHA384},
  192. {"ecdhe_ecdsa_aes_256_sha_384", TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384},
  193. {"ecdhe_rsa_aes_256_sha_384", TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384},
  194. {"ecdhe_ecdsa_aes_256_gcm_sha_384", TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384},
  195. {"ecdhe_rsa_aes_256_gcm_sha_384", TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384},
  196. #endif
  197. #ifdef TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256
  198. /* chacha20-poly1305 cipher suites */
  199. {"ecdhe_rsa_chacha20_poly1305_sha_256",
  200. TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256},
  201. {"ecdhe_ecdsa_chacha20_poly1305_sha_256",
  202. TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256},
  203. {"dhe_rsa_chacha20_poly1305_sha_256",
  204. TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256},
  205. #endif
  206. #ifdef TLS_AES_256_GCM_SHA384
  207. {"aes_128_gcm_sha_256", TLS_AES_128_GCM_SHA256},
  208. {"aes_256_gcm_sha_384", TLS_AES_256_GCM_SHA384},
  209. {"chacha20_poly1305_sha_256", TLS_CHACHA20_POLY1305_SHA256},
  210. #endif
  211. #ifdef TLS_DHE_DSS_WITH_AES_128_CBC_SHA256
  212. /* AES CBC cipher suites in RFC 5246. Introduced in NSS release 3.20 */
  213. {"dhe_dss_aes_128_sha_256", TLS_DHE_DSS_WITH_AES_128_CBC_SHA256},
  214. {"dhe_dss_aes_256_sha_256", TLS_DHE_DSS_WITH_AES_256_CBC_SHA256},
  215. #endif
  216. #ifdef TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA
  217. /* Camellia cipher suites in RFC 4132/5932.
  218. Introduced in NSS release 3.12 */
  219. {"dhe_rsa_camellia_128_sha", TLS_DHE_RSA_WITH_CAMELLIA_128_CBC_SHA},
  220. {"dhe_dss_camellia_128_sha", TLS_DHE_DSS_WITH_CAMELLIA_128_CBC_SHA},
  221. {"dhe_rsa_camellia_256_sha", TLS_DHE_RSA_WITH_CAMELLIA_256_CBC_SHA},
  222. {"dhe_dss_camellia_256_sha", TLS_DHE_DSS_WITH_CAMELLIA_256_CBC_SHA},
  223. {"rsa_camellia_128_sha", TLS_RSA_WITH_CAMELLIA_128_CBC_SHA},
  224. {"rsa_camellia_256_sha", TLS_RSA_WITH_CAMELLIA_256_CBC_SHA},
  225. #endif
  226. #ifdef TLS_RSA_WITH_SEED_CBC_SHA
  227. /* SEED cipher suite in RFC 4162. Introduced in NSS release 3.12.3 */
  228. {"rsa_seed_sha", TLS_RSA_WITH_SEED_CBC_SHA},
  229. #endif
  230. };
  231. #if defined(WIN32)
  232. static const char *pem_library = "nsspem.dll";
  233. static const char *trust_library = "nssckbi.dll";
  234. #elif defined(__APPLE__)
  235. static const char *pem_library = "libnsspem.dylib";
  236. static const char *trust_library = "libnssckbi.dylib";
  237. #else
  238. static const char *pem_library = "libnsspem.so";
  239. static const char *trust_library = "libnssckbi.so";
  240. #endif
  241. static SECMODModule *pem_module = NULL;
  242. static SECMODModule *trust_module = NULL;
  243. /* NSPR I/O layer we use to detect blocking direction during SSL handshake */
  244. static PRDescIdentity nspr_io_identity = PR_INVALID_IO_LAYER;
  245. static PRIOMethods nspr_io_methods;
  246. static const char *nss_error_to_name(PRErrorCode code)
  247. {
  248. const char *name = PR_ErrorToName(code);
  249. if(name)
  250. return name;
  251. return "unknown error";
  252. }
  253. static void nss_print_error_message(struct Curl_easy *data, PRUint32 err)
  254. {
  255. failf(data, "%s", PR_ErrorToString(err, PR_LANGUAGE_I_DEFAULT));
  256. }
  257. static char *nss_sslver_to_name(PRUint16 nssver)
  258. {
  259. switch(nssver) {
  260. case SSL_LIBRARY_VERSION_2:
  261. return strdup("SSLv2");
  262. case SSL_LIBRARY_VERSION_3_0:
  263. return strdup("SSLv3");
  264. case SSL_LIBRARY_VERSION_TLS_1_0:
  265. return strdup("TLSv1.0");
  266. #ifdef SSL_LIBRARY_VERSION_TLS_1_1
  267. case SSL_LIBRARY_VERSION_TLS_1_1:
  268. return strdup("TLSv1.1");
  269. #endif
  270. #ifdef SSL_LIBRARY_VERSION_TLS_1_2
  271. case SSL_LIBRARY_VERSION_TLS_1_2:
  272. return strdup("TLSv1.2");
  273. #endif
  274. #ifdef SSL_LIBRARY_VERSION_TLS_1_3
  275. case SSL_LIBRARY_VERSION_TLS_1_3:
  276. return strdup("TLSv1.3");
  277. #endif
  278. default:
  279. return curl_maprintf("0x%04x", nssver);
  280. }
  281. }
  282. /* the longest cipher name this supports */
  283. #define MAX_CIPHER_LENGTH 128
  284. static SECStatus set_ciphers(struct Curl_easy *data, PRFileDesc *model,
  285. const char *cipher_list)
  286. {
  287. unsigned int i;
  288. const char *cipher;
  289. /* use accessors to avoid dynamic linking issues after an update of NSS */
  290. const PRUint16 num_implemented_ciphers = SSL_GetNumImplementedCiphers();
  291. const PRUint16 *implemented_ciphers = SSL_GetImplementedCiphers();
  292. if(!implemented_ciphers)
  293. return SECFailure;
  294. /* First disable all ciphers. This uses a different max value in case
  295. * NSS adds more ciphers later we don't want them available by
  296. * accident
  297. */
  298. for(i = 0; i < num_implemented_ciphers; i++) {
  299. SSL_CipherPrefSet(model, implemented_ciphers[i], PR_FALSE);
  300. }
  301. cipher = cipher_list;
  302. while(cipher && cipher[0]) {
  303. const char *end;
  304. char name[MAX_CIPHER_LENGTH + 1];
  305. size_t len;
  306. bool found = FALSE;
  307. while((*cipher) && (ISSPACE(*cipher)))
  308. ++cipher;
  309. end = strpbrk(cipher, ":, ");
  310. if(end)
  311. len = end - cipher;
  312. else
  313. len = strlen(cipher);
  314. if(len > MAX_CIPHER_LENGTH) {
  315. failf(data, "Bad cipher list");
  316. return SECFailure;
  317. }
  318. else if(len) {
  319. memcpy(name, cipher, len);
  320. name[len] = 0;
  321. for(i = 0; i<NUM_OF_CIPHERS; i++) {
  322. if(strcasecompare(name, cipherlist[i].name)) {
  323. /* Enable the selected cipher */
  324. if(SSL_CipherPrefSet(model, cipherlist[i].num, PR_TRUE) !=
  325. SECSuccess) {
  326. failf(data, "cipher-suite not supported by NSS: %s", name);
  327. return SECFailure;
  328. }
  329. found = TRUE;
  330. break;
  331. }
  332. }
  333. }
  334. if(!found && len) {
  335. failf(data, "Unknown cipher: %s", name);
  336. return SECFailure;
  337. }
  338. if(end)
  339. cipher = ++end;
  340. else
  341. break;
  342. }
  343. return SECSuccess;
  344. }
  345. /*
  346. * Return true if at least one cipher-suite is enabled. Used to determine
  347. * if we need to call NSS_SetDomesticPolicy() to enable the default ciphers.
  348. */
  349. static bool any_cipher_enabled(void)
  350. {
  351. unsigned int i;
  352. for(i = 0; i<NUM_OF_CIPHERS; i++) {
  353. PRInt32 policy = 0;
  354. SSL_CipherPolicyGet(cipherlist[i].num, &policy);
  355. if(policy)
  356. return TRUE;
  357. }
  358. return FALSE;
  359. }
  360. /*
  361. * Determine whether the nickname passed in is a filename that needs to
  362. * be loaded as a PEM or a regular NSS nickname.
  363. *
  364. * returns 1 for a file
  365. * returns 0 for not a file (NSS nickname)
  366. */
  367. static int is_file(const char *filename)
  368. {
  369. struct_stat st;
  370. if(!filename)
  371. return 0;
  372. if(stat(filename, &st) == 0)
  373. if(S_ISREG(st.st_mode) || S_ISFIFO(st.st_mode) || S_ISCHR(st.st_mode))
  374. return 1;
  375. return 0;
  376. }
  377. /* Check if the given string is filename or nickname of a certificate. If the
  378. * given string is recognized as filename, return NULL. If the given string is
  379. * recognized as nickname, return a duplicated string. The returned string
  380. * should be later deallocated using free(). If the OOM failure occurs, we
  381. * return NULL, too.
  382. */
  383. static char *dup_nickname(struct Curl_easy *data, const char *str)
  384. {
  385. const char *n;
  386. if(!is_file(str))
  387. /* no such file exists, use the string as nickname */
  388. return strdup(str);
  389. /* search the first slash; we require at least one slash in a file name */
  390. n = strchr(str, '/');
  391. if(!n) {
  392. infof(data, "WARNING: certificate file name \"%s\" handled as nickname; "
  393. "please use \"./%s\" to force file name", str, str);
  394. return strdup(str);
  395. }
  396. /* we'll use the PEM reader to read the certificate from file */
  397. return NULL;
  398. }
  399. /* Lock/unlock wrapper for PK11_FindSlotByName() to work around race condition
  400. * in nssSlot_IsTokenPresent() causing spurious SEC_ERROR_NO_TOKEN. For more
  401. * details, go to <https://bugzilla.mozilla.org/1297397>.
  402. */
  403. static PK11SlotInfo* nss_find_slot_by_name(const char *slot_name)
  404. {
  405. PK11SlotInfo *slot;
  406. PR_Lock(nss_findslot_lock);
  407. slot = PK11_FindSlotByName(slot_name);
  408. PR_Unlock(nss_findslot_lock);
  409. return slot;
  410. }
  411. /* wrap 'ptr' as list node and tail-insert into 'list' */
  412. static CURLcode insert_wrapped_ptr(struct Curl_llist *list, void *ptr)
  413. {
  414. struct ptr_list_wrap *wrap = malloc(sizeof(*wrap));
  415. if(!wrap)
  416. return CURLE_OUT_OF_MEMORY;
  417. wrap->ptr = ptr;
  418. Curl_llist_insert_next(list, list->tail, wrap, &wrap->node);
  419. return CURLE_OK;
  420. }
  421. /* Call PK11_CreateGenericObject() with the given obj_class and filename. If
  422. * the call succeeds, append the object handle to the list of objects so that
  423. * the object can be destroyed in nss_close(). */
  424. static CURLcode nss_create_object(struct ssl_connect_data *connssl,
  425. CK_OBJECT_CLASS obj_class,
  426. const char *filename, bool cacert)
  427. {
  428. PK11SlotInfo *slot;
  429. PK11GenericObject *obj;
  430. CK_BBOOL cktrue = CK_TRUE;
  431. CK_BBOOL ckfalse = CK_FALSE;
  432. CK_ATTRIBUTE attrs[/* max count of attributes */ 4];
  433. int attr_cnt = 0;
  434. CURLcode result = (cacert)
  435. ? CURLE_SSL_CACERT_BADFILE
  436. : CURLE_SSL_CERTPROBLEM;
  437. const int slot_id = (cacert) ? 0 : 1;
  438. char *slot_name = aprintf("PEM Token #%d", slot_id);
  439. struct ssl_backend_data *backend = connssl->backend;
  440. DEBUGASSERT(backend);
  441. if(!slot_name)
  442. return CURLE_OUT_OF_MEMORY;
  443. slot = nss_find_slot_by_name(slot_name);
  444. free(slot_name);
  445. if(!slot)
  446. return result;
  447. PK11_SETATTRS(attrs, attr_cnt, CKA_CLASS, &obj_class, sizeof(obj_class));
  448. PK11_SETATTRS(attrs, attr_cnt, CKA_TOKEN, &cktrue, sizeof(CK_BBOOL));
  449. PK11_SETATTRS(attrs, attr_cnt, CKA_LABEL, (unsigned char *)filename,
  450. (CK_ULONG)strlen(filename) + 1);
  451. if(CKO_CERTIFICATE == obj_class) {
  452. CK_BBOOL *pval = (cacert) ? (&cktrue) : (&ckfalse);
  453. PK11_SETATTRS(attrs, attr_cnt, CKA_TRUST, pval, sizeof(*pval));
  454. }
  455. /* PK11_CreateManagedGenericObject() was introduced in NSS 3.34 because
  456. * PK11_DestroyGenericObject() does not release resources allocated by
  457. * PK11_CreateGenericObject() early enough. */
  458. obj =
  459. #ifdef HAVE_PK11_CREATEMANAGEDGENERICOBJECT
  460. PK11_CreateManagedGenericObject
  461. #else
  462. PK11_CreateGenericObject
  463. #endif
  464. (slot, attrs, attr_cnt, PR_FALSE);
  465. PK11_FreeSlot(slot);
  466. if(!obj)
  467. return result;
  468. if(insert_wrapped_ptr(&backend->obj_list, obj) != CURLE_OK) {
  469. PK11_DestroyGenericObject(obj);
  470. return CURLE_OUT_OF_MEMORY;
  471. }
  472. if(!cacert && CKO_CERTIFICATE == obj_class)
  473. /* store reference to a client certificate */
  474. backend->obj_clicert = obj;
  475. return CURLE_OK;
  476. }
  477. /* Destroy the NSS object whose handle is given by ptr. This function is
  478. * a callback of Curl_llist_alloc() used by Curl_llist_destroy() to destroy
  479. * NSS objects in nss_close() */
  480. static void nss_destroy_object(void *user, void *ptr)
  481. {
  482. struct ptr_list_wrap *wrap = (struct ptr_list_wrap *) ptr;
  483. PK11GenericObject *obj = (PK11GenericObject *) wrap->ptr;
  484. (void) user;
  485. PK11_DestroyGenericObject(obj);
  486. free(wrap);
  487. }
  488. /* same as nss_destroy_object() but for CRL items */
  489. static void nss_destroy_crl_item(void *user, void *ptr)
  490. {
  491. struct ptr_list_wrap *wrap = (struct ptr_list_wrap *) ptr;
  492. SECItem *crl_der = (SECItem *) wrap->ptr;
  493. (void) user;
  494. SECITEM_FreeItem(crl_der, PR_TRUE);
  495. free(wrap);
  496. }
  497. static CURLcode nss_load_cert(struct ssl_connect_data *ssl,
  498. const char *filename, PRBool cacert)
  499. {
  500. CURLcode result = (cacert)
  501. ? CURLE_SSL_CACERT_BADFILE
  502. : CURLE_SSL_CERTPROBLEM;
  503. /* libnsspem.so leaks memory if the requested file does not exist. For more
  504. * details, go to <https://bugzilla.redhat.com/734760>. */
  505. if(is_file(filename))
  506. result = nss_create_object(ssl, CKO_CERTIFICATE, filename, cacert);
  507. if(!result && !cacert) {
  508. /* we have successfully loaded a client certificate */
  509. char *nickname = NULL;
  510. char *n = strrchr(filename, '/');
  511. if(n)
  512. n++;
  513. /* The following undocumented magic helps to avoid a SIGSEGV on call
  514. * of PK11_ReadRawAttribute() from SelectClientCert() when using an
  515. * immature version of libnsspem.so. For more details, go to
  516. * <https://bugzilla.redhat.com/733685>. */
  517. nickname = aprintf("PEM Token #1:%s", n);
  518. if(nickname) {
  519. CERTCertificate *cert = PK11_FindCertFromNickname(nickname, NULL);
  520. if(cert)
  521. CERT_DestroyCertificate(cert);
  522. free(nickname);
  523. }
  524. }
  525. return result;
  526. }
  527. /* add given CRL to cache if it is not already there */
  528. static CURLcode nss_cache_crl(SECItem *crl_der)
  529. {
  530. CERTCertDBHandle *db = CERT_GetDefaultCertDB();
  531. CERTSignedCrl *crl = SEC_FindCrlByDERCert(db, crl_der, 0);
  532. if(crl) {
  533. /* CRL already cached */
  534. SEC_DestroyCrl(crl);
  535. SECITEM_FreeItem(crl_der, PR_TRUE);
  536. return CURLE_OK;
  537. }
  538. /* acquire lock before call of CERT_CacheCRL() and accessing nss_crl_list */
  539. PR_Lock(nss_crllock);
  540. if(SECSuccess != CERT_CacheCRL(db, crl_der)) {
  541. /* unable to cache CRL */
  542. SECITEM_FreeItem(crl_der, PR_TRUE);
  543. PR_Unlock(nss_crllock);
  544. return CURLE_SSL_CRL_BADFILE;
  545. }
  546. /* store the CRL item so that we can free it in nss_cleanup() */
  547. if(insert_wrapped_ptr(&nss_crl_list, crl_der) != CURLE_OK) {
  548. if(SECSuccess == CERT_UncacheCRL(db, crl_der))
  549. SECITEM_FreeItem(crl_der, PR_TRUE);
  550. PR_Unlock(nss_crllock);
  551. return CURLE_OUT_OF_MEMORY;
  552. }
  553. /* we need to clear session cache, so that the CRL could take effect */
  554. SSL_ClearSessionCache();
  555. PR_Unlock(nss_crllock);
  556. return CURLE_OK;
  557. }
  558. static CURLcode nss_load_crl(const char *crlfilename)
  559. {
  560. PRFileDesc *infile;
  561. PRFileInfo info;
  562. SECItem filedata = { 0, NULL, 0 };
  563. SECItem *crl_der = NULL;
  564. char *body;
  565. infile = PR_Open(crlfilename, PR_RDONLY, 0);
  566. if(!infile)
  567. return CURLE_SSL_CRL_BADFILE;
  568. if(PR_SUCCESS != PR_GetOpenFileInfo(infile, &info))
  569. goto fail;
  570. if(!SECITEM_AllocItem(NULL, &filedata, info.size + /* zero ended */ 1))
  571. goto fail;
  572. if(info.size != PR_Read(infile, filedata.data, info.size))
  573. goto fail;
  574. crl_der = SECITEM_AllocItem(NULL, NULL, 0U);
  575. if(!crl_der)
  576. goto fail;
  577. /* place a trailing zero right after the visible data */
  578. body = (char *)filedata.data;
  579. body[--filedata.len] = '\0';
  580. body = strstr(body, "-----BEGIN");
  581. if(body) {
  582. /* assume ASCII */
  583. char *trailer;
  584. char *begin = PORT_Strchr(body, '\n');
  585. if(!begin)
  586. begin = PORT_Strchr(body, '\r');
  587. if(!begin)
  588. goto fail;
  589. trailer = strstr(++begin, "-----END");
  590. if(!trailer)
  591. goto fail;
  592. /* retrieve DER from ASCII */
  593. *trailer = '\0';
  594. if(ATOB_ConvertAsciiToItem(crl_der, begin))
  595. goto fail;
  596. SECITEM_FreeItem(&filedata, PR_FALSE);
  597. }
  598. else
  599. /* assume DER */
  600. *crl_der = filedata;
  601. PR_Close(infile);
  602. return nss_cache_crl(crl_der);
  603. fail:
  604. PR_Close(infile);
  605. SECITEM_FreeItem(crl_der, PR_TRUE);
  606. SECITEM_FreeItem(&filedata, PR_FALSE);
  607. return CURLE_SSL_CRL_BADFILE;
  608. }
  609. static CURLcode nss_load_key(struct Curl_easy *data, struct connectdata *conn,
  610. int sockindex, char *key_file)
  611. {
  612. PK11SlotInfo *slot, *tmp;
  613. SECStatus status;
  614. CURLcode result;
  615. struct ssl_connect_data *ssl = conn->ssl;
  616. (void)sockindex; /* unused */
  617. result = nss_create_object(ssl, CKO_PRIVATE_KEY, key_file, FALSE);
  618. if(result) {
  619. PR_SetError(SEC_ERROR_BAD_KEY, 0);
  620. return result;
  621. }
  622. slot = nss_find_slot_by_name("PEM Token #1");
  623. if(!slot)
  624. return CURLE_SSL_CERTPROBLEM;
  625. /* This will force the token to be seen as re-inserted */
  626. tmp = SECMOD_WaitForAnyTokenEvent(pem_module, 0, 0);
  627. if(tmp)
  628. PK11_FreeSlot(tmp);
  629. if(!PK11_IsPresent(slot)) {
  630. PK11_FreeSlot(slot);
  631. return CURLE_SSL_CERTPROBLEM;
  632. }
  633. status = PK11_Authenticate(slot, PR_TRUE, SSL_SET_OPTION(key_passwd));
  634. PK11_FreeSlot(slot);
  635. return (SECSuccess == status) ? CURLE_OK : CURLE_SSL_CERTPROBLEM;
  636. }
  637. static int display_error(struct Curl_easy *data, PRInt32 err,
  638. const char *filename)
  639. {
  640. switch(err) {
  641. case SEC_ERROR_BAD_PASSWORD:
  642. failf(data, "Unable to load client key: Incorrect password");
  643. return 1;
  644. case SEC_ERROR_UNKNOWN_CERT:
  645. failf(data, "Unable to load certificate %s", filename);
  646. return 1;
  647. default:
  648. break;
  649. }
  650. return 0; /* The caller will print a generic error */
  651. }
  652. static CURLcode cert_stuff(struct Curl_easy *data, struct connectdata *conn,
  653. int sockindex, char *cert_file, char *key_file)
  654. {
  655. CURLcode result;
  656. if(cert_file) {
  657. result = nss_load_cert(&conn->ssl[sockindex], cert_file, PR_FALSE);
  658. if(result) {
  659. const PRErrorCode err = PR_GetError();
  660. if(!display_error(data, err, cert_file)) {
  661. const char *err_name = nss_error_to_name(err);
  662. failf(data, "unable to load client cert: %d (%s)", err, err_name);
  663. }
  664. return result;
  665. }
  666. }
  667. if(key_file || (is_file(cert_file))) {
  668. if(key_file)
  669. result = nss_load_key(data, conn, sockindex, key_file);
  670. else
  671. /* In case the cert file also has the key */
  672. result = nss_load_key(data, conn, sockindex, cert_file);
  673. if(result) {
  674. const PRErrorCode err = PR_GetError();
  675. if(!display_error(data, err, key_file)) {
  676. const char *err_name = nss_error_to_name(err);
  677. failf(data, "unable to load client key: %d (%s)", err, err_name);
  678. }
  679. return result;
  680. }
  681. }
  682. return CURLE_OK;
  683. }
  684. static char *nss_get_password(PK11SlotInfo *slot, PRBool retry, void *arg)
  685. {
  686. (void)slot; /* unused */
  687. if(retry || !arg)
  688. return NULL;
  689. else
  690. return (char *)PORT_Strdup((char *)arg);
  691. }
  692. /* bypass the default SSL_AuthCertificate() hook in case we do not want to
  693. * verify peer */
  694. static SECStatus nss_auth_cert_hook(void *arg, PRFileDesc *fd, PRBool checksig,
  695. PRBool isServer)
  696. {
  697. struct Curl_easy *data = (struct Curl_easy *)arg;
  698. struct connectdata *conn = data->conn;
  699. #ifdef SSL_ENABLE_OCSP_STAPLING
  700. if(SSL_CONN_CONFIG(verifystatus)) {
  701. SECStatus cacheResult;
  702. const SECItemArray *csa = SSL_PeerStapledOCSPResponses(fd);
  703. if(!csa) {
  704. failf(data, "Invalid OCSP response");
  705. return SECFailure;
  706. }
  707. if(csa->len == 0) {
  708. failf(data, "No OCSP response received");
  709. return SECFailure;
  710. }
  711. cacheResult = CERT_CacheOCSPResponseFromSideChannel(
  712. CERT_GetDefaultCertDB(), SSL_PeerCertificate(fd),
  713. PR_Now(), &csa->items[0], arg
  714. );
  715. if(cacheResult != SECSuccess) {
  716. failf(data, "Invalid OCSP response");
  717. return cacheResult;
  718. }
  719. }
  720. #endif
  721. if(!SSL_CONN_CONFIG(verifypeer)) {
  722. infof(data, "skipping SSL peer certificate verification");
  723. return SECSuccess;
  724. }
  725. return SSL_AuthCertificate(CERT_GetDefaultCertDB(), fd, checksig, isServer);
  726. }
  727. /**
  728. * Inform the application that the handshake is complete.
  729. */
  730. static void HandshakeCallback(PRFileDesc *sock, void *arg)
  731. {
  732. struct Curl_easy *data = (struct Curl_easy *)arg;
  733. struct connectdata *conn = data->conn;
  734. unsigned int buflenmax = 50;
  735. unsigned char buf[50];
  736. unsigned int buflen;
  737. SSLNextProtoState state;
  738. if(!conn->bits.tls_enable_npn && !conn->bits.tls_enable_alpn) {
  739. return;
  740. }
  741. if(SSL_GetNextProto(sock, &state, buf, &buflen, buflenmax) == SECSuccess) {
  742. switch(state) {
  743. #if NSSVERNUM >= 0x031a00 /* 3.26.0 */
  744. /* used by NSS internally to implement 0-RTT */
  745. case SSL_NEXT_PROTO_EARLY_VALUE:
  746. /* fall through! */
  747. #endif
  748. case SSL_NEXT_PROTO_NO_SUPPORT:
  749. case SSL_NEXT_PROTO_NO_OVERLAP:
  750. infof(data, VTLS_INFOF_NO_ALPN);
  751. return;
  752. #ifdef SSL_ENABLE_ALPN
  753. case SSL_NEXT_PROTO_SELECTED:
  754. infof(data, VTLS_INFOF_ALPN_ACCEPTED_LEN_1STR, buflen, buf);
  755. break;
  756. #endif
  757. case SSL_NEXT_PROTO_NEGOTIATED:
  758. infof(data, "NPN, server accepted to use %.*s", buflen, buf);
  759. break;
  760. }
  761. #ifdef USE_HTTP2
  762. if(buflen == ALPN_H2_LENGTH &&
  763. !memcmp(ALPN_H2, buf, ALPN_H2_LENGTH)) {
  764. conn->negnpn = CURL_HTTP_VERSION_2;
  765. }
  766. else
  767. #endif
  768. if(buflen == ALPN_HTTP_1_1_LENGTH &&
  769. !memcmp(ALPN_HTTP_1_1, buf, ALPN_HTTP_1_1_LENGTH)) {
  770. conn->negnpn = CURL_HTTP_VERSION_1_1;
  771. }
  772. /* This callback might get called when PR_Recv() is used within
  773. * close_one() during a connection shutdown. At that point there might not
  774. * be any "bundle" associated with the connection anymore.
  775. */
  776. if(conn->bundle)
  777. Curl_multiuse_state(data, conn->negnpn == CURL_HTTP_VERSION_2 ?
  778. BUNDLE_MULTIPLEX : BUNDLE_NO_MULTIUSE);
  779. }
  780. }
  781. #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
  782. static SECStatus CanFalseStartCallback(PRFileDesc *sock, void *client_data,
  783. PRBool *canFalseStart)
  784. {
  785. struct Curl_easy *data = (struct Curl_easy *)client_data;
  786. SSLChannelInfo channelInfo;
  787. SSLCipherSuiteInfo cipherInfo;
  788. SECStatus rv;
  789. PRBool negotiatedExtension;
  790. *canFalseStart = PR_FALSE;
  791. if(SSL_GetChannelInfo(sock, &channelInfo, sizeof(channelInfo)) != SECSuccess)
  792. return SECFailure;
  793. if(SSL_GetCipherSuiteInfo(channelInfo.cipherSuite, &cipherInfo,
  794. sizeof(cipherInfo)) != SECSuccess)
  795. return SECFailure;
  796. /* Prevent version downgrade attacks from TLS 1.2, and avoid False Start for
  797. * TLS 1.3 and later. See https://bugzilla.mozilla.org/show_bug.cgi?id=861310
  798. */
  799. if(channelInfo.protocolVersion != SSL_LIBRARY_VERSION_TLS_1_2)
  800. goto end;
  801. /* Only allow ECDHE key exchange algorithm.
  802. * See https://bugzilla.mozilla.org/show_bug.cgi?id=952863 */
  803. if(cipherInfo.keaType != ssl_kea_ecdh)
  804. goto end;
  805. /* Prevent downgrade attacks on the symmetric cipher. We do not allow CBC
  806. * mode due to BEAST, POODLE, and other attacks on the MAC-then-Encrypt
  807. * design. See https://bugzilla.mozilla.org/show_bug.cgi?id=1109766 */
  808. if(cipherInfo.symCipher != ssl_calg_aes_gcm)
  809. goto end;
  810. /* Enforce ALPN or NPN to do False Start, as an indicator of server
  811. * compatibility. */
  812. rv = SSL_HandshakeNegotiatedExtension(sock, ssl_app_layer_protocol_xtn,
  813. &negotiatedExtension);
  814. if(rv != SECSuccess || !negotiatedExtension) {
  815. rv = SSL_HandshakeNegotiatedExtension(sock, ssl_next_proto_nego_xtn,
  816. &negotiatedExtension);
  817. }
  818. if(rv != SECSuccess || !negotiatedExtension)
  819. goto end;
  820. *canFalseStart = PR_TRUE;
  821. infof(data, "Trying TLS False Start");
  822. end:
  823. return SECSuccess;
  824. }
  825. #endif
  826. static void display_cert_info(struct Curl_easy *data,
  827. CERTCertificate *cert)
  828. {
  829. char *subject, *issuer, *common_name;
  830. PRExplodedTime printableTime;
  831. char timeString[256];
  832. PRTime notBefore, notAfter;
  833. subject = CERT_NameToAscii(&cert->subject);
  834. issuer = CERT_NameToAscii(&cert->issuer);
  835. common_name = CERT_GetCommonName(&cert->subject);
  836. infof(data, "subject: %s", subject);
  837. CERT_GetCertTimes(cert, &notBefore, &notAfter);
  838. PR_ExplodeTime(notBefore, PR_GMTParameters, &printableTime);
  839. PR_FormatTime(timeString, 256, "%b %d %H:%M:%S %Y GMT", &printableTime);
  840. infof(data, " start date: %s", timeString);
  841. PR_ExplodeTime(notAfter, PR_GMTParameters, &printableTime);
  842. PR_FormatTime(timeString, 256, "%b %d %H:%M:%S %Y GMT", &printableTime);
  843. infof(data, " expire date: %s", timeString);
  844. infof(data, " common name: %s", common_name);
  845. infof(data, " issuer: %s", issuer);
  846. PR_Free(subject);
  847. PR_Free(issuer);
  848. PR_Free(common_name);
  849. }
  850. static CURLcode display_conn_info(struct Curl_easy *data, PRFileDesc *sock)
  851. {
  852. CURLcode result = CURLE_OK;
  853. SSLChannelInfo channel;
  854. SSLCipherSuiteInfo suite;
  855. CERTCertificate *cert;
  856. CERTCertificate *cert2;
  857. CERTCertificate *cert3;
  858. PRTime now;
  859. if(SSL_GetChannelInfo(sock, &channel, sizeof(channel)) ==
  860. SECSuccess && channel.length == sizeof(channel) &&
  861. channel.cipherSuite) {
  862. if(SSL_GetCipherSuiteInfo(channel.cipherSuite,
  863. &suite, sizeof(suite)) == SECSuccess) {
  864. infof(data, "SSL connection using %s", suite.cipherSuiteName);
  865. }
  866. }
  867. cert = SSL_PeerCertificate(sock);
  868. if(cert) {
  869. infof(data, "Server certificate:");
  870. if(!data->set.ssl.certinfo) {
  871. display_cert_info(data, cert);
  872. CERT_DestroyCertificate(cert);
  873. }
  874. else {
  875. /* Count certificates in chain. */
  876. int i = 1;
  877. now = PR_Now();
  878. if(!cert->isRoot) {
  879. cert2 = CERT_FindCertIssuer(cert, now, certUsageSSLCA);
  880. while(cert2) {
  881. i++;
  882. if(cert2->isRoot) {
  883. CERT_DestroyCertificate(cert2);
  884. break;
  885. }
  886. cert3 = CERT_FindCertIssuer(cert2, now, certUsageSSLCA);
  887. CERT_DestroyCertificate(cert2);
  888. cert2 = cert3;
  889. }
  890. }
  891. result = Curl_ssl_init_certinfo(data, i);
  892. if(!result) {
  893. for(i = 0; cert; cert = cert2) {
  894. result = Curl_extract_certinfo(data, i++, (char *)cert->derCert.data,
  895. (char *)cert->derCert.data +
  896. cert->derCert.len);
  897. if(result)
  898. break;
  899. if(cert->isRoot) {
  900. CERT_DestroyCertificate(cert);
  901. break;
  902. }
  903. cert2 = CERT_FindCertIssuer(cert, now, certUsageSSLCA);
  904. CERT_DestroyCertificate(cert);
  905. }
  906. }
  907. }
  908. }
  909. return result;
  910. }
  911. static SECStatus BadCertHandler(void *arg, PRFileDesc *sock)
  912. {
  913. struct Curl_easy *data = (struct Curl_easy *)arg;
  914. struct connectdata *conn = data->conn;
  915. PRErrorCode err = PR_GetError();
  916. CERTCertificate *cert;
  917. /* remember the cert verification result */
  918. SSL_SET_OPTION_LVALUE(certverifyresult) = err;
  919. if(err == SSL_ERROR_BAD_CERT_DOMAIN && !SSL_CONN_CONFIG(verifyhost))
  920. /* we are asked not to verify the host name */
  921. return SECSuccess;
  922. /* print only info about the cert, the error is printed off the callback */
  923. cert = SSL_PeerCertificate(sock);
  924. if(cert) {
  925. infof(data, "Server certificate:");
  926. display_cert_info(data, cert);
  927. CERT_DestroyCertificate(cert);
  928. }
  929. return SECFailure;
  930. }
  931. /**
  932. *
  933. * Check that the Peer certificate's issuer certificate matches the one found
  934. * by issuer_nickname. This is not exactly the way OpenSSL and GNU TLS do the
  935. * issuer check, so we provide comments that mimic the OpenSSL
  936. * X509_check_issued function (in x509v3/v3_purp.c)
  937. */
  938. static SECStatus check_issuer_cert(PRFileDesc *sock,
  939. char *issuer_nickname)
  940. {
  941. CERTCertificate *cert, *cert_issuer, *issuer;
  942. SECStatus res = SECSuccess;
  943. void *proto_win = NULL;
  944. cert = SSL_PeerCertificate(sock);
  945. cert_issuer = CERT_FindCertIssuer(cert, PR_Now(), certUsageObjectSigner);
  946. proto_win = SSL_RevealPinArg(sock);
  947. issuer = PK11_FindCertFromNickname(issuer_nickname, proto_win);
  948. if((!cert_issuer) || (!issuer))
  949. res = SECFailure;
  950. else if(SECITEM_CompareItem(&cert_issuer->derCert,
  951. &issuer->derCert) != SECEqual)
  952. res = SECFailure;
  953. CERT_DestroyCertificate(cert);
  954. CERT_DestroyCertificate(issuer);
  955. CERT_DestroyCertificate(cert_issuer);
  956. return res;
  957. }
  958. static CURLcode cmp_peer_pubkey(struct ssl_connect_data *connssl,
  959. const char *pinnedpubkey)
  960. {
  961. CURLcode result = CURLE_SSL_PINNEDPUBKEYNOTMATCH;
  962. struct ssl_backend_data *backend = connssl->backend;
  963. struct Curl_easy *data = NULL;
  964. CERTCertificate *cert;
  965. DEBUGASSERT(backend);
  966. data = backend->data;
  967. if(!pinnedpubkey)
  968. /* no pinned public key specified */
  969. return CURLE_OK;
  970. /* get peer certificate */
  971. cert = SSL_PeerCertificate(backend->handle);
  972. if(cert) {
  973. /* extract public key from peer certificate */
  974. SECKEYPublicKey *pubkey = CERT_ExtractPublicKey(cert);
  975. if(pubkey) {
  976. /* encode the public key as DER */
  977. SECItem *cert_der = PK11_DEREncodePublicKey(pubkey);
  978. if(cert_der) {
  979. /* compare the public key with the pinned public key */
  980. result = Curl_pin_peer_pubkey(data, pinnedpubkey, cert_der->data,
  981. cert_der->len);
  982. SECITEM_FreeItem(cert_der, PR_TRUE);
  983. }
  984. SECKEY_DestroyPublicKey(pubkey);
  985. }
  986. CERT_DestroyCertificate(cert);
  987. }
  988. /* report the resulting status */
  989. switch(result) {
  990. case CURLE_OK:
  991. infof(data, "pinned public key verified successfully");
  992. break;
  993. case CURLE_SSL_PINNEDPUBKEYNOTMATCH:
  994. failf(data, "failed to verify pinned public key");
  995. break;
  996. default:
  997. /* OOM, etc. */
  998. break;
  999. }
  1000. return result;
  1001. }
  1002. /**
  1003. *
  1004. * Callback to pick the SSL client certificate.
  1005. */
  1006. static SECStatus SelectClientCert(void *arg, PRFileDesc *sock,
  1007. struct CERTDistNamesStr *caNames,
  1008. struct CERTCertificateStr **pRetCert,
  1009. struct SECKEYPrivateKeyStr **pRetKey)
  1010. {
  1011. struct ssl_connect_data *connssl = (struct ssl_connect_data *)arg;
  1012. struct ssl_backend_data *backend = connssl->backend;
  1013. struct Curl_easy *data = NULL;
  1014. const char *nickname = NULL;
  1015. static const char pem_slotname[] = "PEM Token #1";
  1016. DEBUGASSERT(backend);
  1017. data = backend->data;
  1018. nickname = backend->client_nickname;
  1019. if(backend->obj_clicert) {
  1020. /* use the cert/key provided by PEM reader */
  1021. SECItem cert_der = { 0, NULL, 0 };
  1022. void *proto_win = SSL_RevealPinArg(sock);
  1023. struct CERTCertificateStr *cert;
  1024. struct SECKEYPrivateKeyStr *key;
  1025. PK11SlotInfo *slot = nss_find_slot_by_name(pem_slotname);
  1026. if(!slot) {
  1027. failf(data, "NSS: PK11 slot not found: %s", pem_slotname);
  1028. return SECFailure;
  1029. }
  1030. if(PK11_ReadRawAttribute(PK11_TypeGeneric, backend->obj_clicert, CKA_VALUE,
  1031. &cert_der) != SECSuccess) {
  1032. failf(data, "NSS: CKA_VALUE not found in PK11 generic object");
  1033. PK11_FreeSlot(slot);
  1034. return SECFailure;
  1035. }
  1036. cert = PK11_FindCertFromDERCertItem(slot, &cert_der, proto_win);
  1037. SECITEM_FreeItem(&cert_der, PR_FALSE);
  1038. if(!cert) {
  1039. failf(data, "NSS: client certificate from file not found");
  1040. PK11_FreeSlot(slot);
  1041. return SECFailure;
  1042. }
  1043. key = PK11_FindPrivateKeyFromCert(slot, cert, NULL);
  1044. PK11_FreeSlot(slot);
  1045. if(!key) {
  1046. failf(data, "NSS: private key from file not found");
  1047. CERT_DestroyCertificate(cert);
  1048. return SECFailure;
  1049. }
  1050. infof(data, "NSS: client certificate from file");
  1051. display_cert_info(data, cert);
  1052. *pRetCert = cert;
  1053. *pRetKey = key;
  1054. return SECSuccess;
  1055. }
  1056. /* use the default NSS hook */
  1057. if(SECSuccess != NSS_GetClientAuthData((void *)nickname, sock, caNames,
  1058. pRetCert, pRetKey)
  1059. || !*pRetCert) {
  1060. if(!nickname)
  1061. failf(data, "NSS: client certificate not found (nickname not "
  1062. "specified)");
  1063. else
  1064. failf(data, "NSS: client certificate not found: %s", nickname);
  1065. return SECFailure;
  1066. }
  1067. /* get certificate nickname if any */
  1068. nickname = (*pRetCert)->nickname;
  1069. if(!nickname)
  1070. nickname = "[unknown]";
  1071. if(!strncmp(nickname, pem_slotname, sizeof(pem_slotname) - 1U)) {
  1072. failf(data, "NSS: refusing previously loaded certificate from file: %s",
  1073. nickname);
  1074. return SECFailure;
  1075. }
  1076. if(!*pRetKey) {
  1077. failf(data, "NSS: private key not found for certificate: %s", nickname);
  1078. return SECFailure;
  1079. }
  1080. infof(data, "NSS: using client certificate: %s", nickname);
  1081. display_cert_info(data, *pRetCert);
  1082. return SECSuccess;
  1083. }
  1084. /* update blocking direction in case of PR_WOULD_BLOCK_ERROR */
  1085. static void nss_update_connecting_state(ssl_connect_state state, void *secret)
  1086. {
  1087. struct ssl_connect_data *connssl = (struct ssl_connect_data *)secret;
  1088. if(PR_GetError() != PR_WOULD_BLOCK_ERROR)
  1089. /* an unrelated error is passing by */
  1090. return;
  1091. switch(connssl->connecting_state) {
  1092. case ssl_connect_2:
  1093. case ssl_connect_2_reading:
  1094. case ssl_connect_2_writing:
  1095. break;
  1096. default:
  1097. /* we are not called from an SSL handshake */
  1098. return;
  1099. }
  1100. /* update the state accordingly */
  1101. connssl->connecting_state = state;
  1102. }
  1103. /* recv() wrapper we use to detect blocking direction during SSL handshake */
  1104. static PRInt32 nspr_io_recv(PRFileDesc *fd, void *buf, PRInt32 amount,
  1105. PRIntn flags, PRIntervalTime timeout)
  1106. {
  1107. const PRRecvFN recv_fn = fd->lower->methods->recv;
  1108. const PRInt32 rv = recv_fn(fd->lower, buf, amount, flags, timeout);
  1109. if(rv < 0)
  1110. /* check for PR_WOULD_BLOCK_ERROR and update blocking direction */
  1111. nss_update_connecting_state(ssl_connect_2_reading, fd->secret);
  1112. return rv;
  1113. }
  1114. /* send() wrapper we use to detect blocking direction during SSL handshake */
  1115. static PRInt32 nspr_io_send(PRFileDesc *fd, const void *buf, PRInt32 amount,
  1116. PRIntn flags, PRIntervalTime timeout)
  1117. {
  1118. const PRSendFN send_fn = fd->lower->methods->send;
  1119. const PRInt32 rv = send_fn(fd->lower, buf, amount, flags, timeout);
  1120. if(rv < 0)
  1121. /* check for PR_WOULD_BLOCK_ERROR and update blocking direction */
  1122. nss_update_connecting_state(ssl_connect_2_writing, fd->secret);
  1123. return rv;
  1124. }
  1125. /* close() wrapper to avoid assertion failure due to fd->secret != NULL */
  1126. static PRStatus nspr_io_close(PRFileDesc *fd)
  1127. {
  1128. const PRCloseFN close_fn = PR_GetDefaultIOMethods()->close;
  1129. fd->secret = NULL;
  1130. return close_fn(fd);
  1131. }
  1132. /* load a PKCS #11 module */
  1133. static CURLcode nss_load_module(SECMODModule **pmod, const char *library,
  1134. const char *name)
  1135. {
  1136. char *config_string;
  1137. SECMODModule *module = *pmod;
  1138. if(module)
  1139. /* already loaded */
  1140. return CURLE_OK;
  1141. config_string = aprintf("library=%s name=%s", library, name);
  1142. if(!config_string)
  1143. return CURLE_OUT_OF_MEMORY;
  1144. module = SECMOD_LoadUserModule(config_string, NULL, PR_FALSE);
  1145. free(config_string);
  1146. if(module && module->loaded) {
  1147. /* loaded successfully */
  1148. *pmod = module;
  1149. return CURLE_OK;
  1150. }
  1151. if(module)
  1152. SECMOD_DestroyModule(module);
  1153. return CURLE_FAILED_INIT;
  1154. }
  1155. /* unload a PKCS #11 module */
  1156. static void nss_unload_module(SECMODModule **pmod)
  1157. {
  1158. SECMODModule *module = *pmod;
  1159. if(!module)
  1160. /* not loaded */
  1161. return;
  1162. if(SECMOD_UnloadUserModule(module) != SECSuccess)
  1163. /* unload failed */
  1164. return;
  1165. SECMOD_DestroyModule(module);
  1166. *pmod = NULL;
  1167. }
  1168. /* data might be NULL */
  1169. static CURLcode nss_init_core(struct Curl_easy *data, const char *cert_dir)
  1170. {
  1171. NSSInitParameters initparams;
  1172. PRErrorCode err;
  1173. const char *err_name;
  1174. if(nss_context)
  1175. return CURLE_OK;
  1176. memset((void *) &initparams, '\0', sizeof(initparams));
  1177. initparams.length = sizeof(initparams);
  1178. if(cert_dir) {
  1179. char *certpath = aprintf("sql:%s", cert_dir);
  1180. if(!certpath)
  1181. return CURLE_OUT_OF_MEMORY;
  1182. infof(data, "Initializing NSS with certpath: %s", certpath);
  1183. nss_context = NSS_InitContext(certpath, "", "", "", &initparams,
  1184. NSS_INIT_READONLY | NSS_INIT_PK11RELOAD);
  1185. free(certpath);
  1186. if(nss_context)
  1187. return CURLE_OK;
  1188. err = PR_GetError();
  1189. err_name = nss_error_to_name(err);
  1190. infof(data, "Unable to initialize NSS database: %d (%s)", err, err_name);
  1191. }
  1192. infof(data, "Initializing NSS with certpath: none");
  1193. nss_context = NSS_InitContext("", "", "", "", &initparams, NSS_INIT_READONLY
  1194. | NSS_INIT_NOCERTDB | NSS_INIT_NOMODDB | NSS_INIT_FORCEOPEN
  1195. | NSS_INIT_NOROOTINIT | NSS_INIT_OPTIMIZESPACE | NSS_INIT_PK11RELOAD);
  1196. if(nss_context)
  1197. return CURLE_OK;
  1198. err = PR_GetError();
  1199. err_name = nss_error_to_name(err);
  1200. failf(data, "Unable to initialize NSS: %d (%s)", err, err_name);
  1201. return CURLE_SSL_CACERT_BADFILE;
  1202. }
  1203. /* data might be NULL */
  1204. static CURLcode nss_setup(struct Curl_easy *data)
  1205. {
  1206. char *cert_dir;
  1207. struct_stat st;
  1208. CURLcode result;
  1209. if(initialized)
  1210. return CURLE_OK;
  1211. /* list of all CRL items we need to destroy in nss_cleanup() */
  1212. Curl_llist_init(&nss_crl_list, nss_destroy_crl_item);
  1213. /* First we check if $SSL_DIR points to a valid dir */
  1214. cert_dir = getenv("SSL_DIR");
  1215. if(cert_dir) {
  1216. if((stat(cert_dir, &st) != 0) ||
  1217. (!S_ISDIR(st.st_mode))) {
  1218. cert_dir = NULL;
  1219. }
  1220. }
  1221. /* Now we check if the default location is a valid dir */
  1222. if(!cert_dir) {
  1223. if((stat(SSL_DIR, &st) == 0) &&
  1224. (S_ISDIR(st.st_mode))) {
  1225. cert_dir = (char *)SSL_DIR;
  1226. }
  1227. }
  1228. if(nspr_io_identity == PR_INVALID_IO_LAYER) {
  1229. /* allocate an identity for our own NSPR I/O layer */
  1230. nspr_io_identity = PR_GetUniqueIdentity("libcurl");
  1231. if(nspr_io_identity == PR_INVALID_IO_LAYER)
  1232. return CURLE_OUT_OF_MEMORY;
  1233. /* the default methods just call down to the lower I/O layer */
  1234. memcpy(&nspr_io_methods, PR_GetDefaultIOMethods(),
  1235. sizeof(nspr_io_methods));
  1236. /* override certain methods in the table by our wrappers */
  1237. nspr_io_methods.recv = nspr_io_recv;
  1238. nspr_io_methods.send = nspr_io_send;
  1239. nspr_io_methods.close = nspr_io_close;
  1240. }
  1241. result = nss_init_core(data, cert_dir);
  1242. if(result)
  1243. return result;
  1244. if(!any_cipher_enabled())
  1245. NSS_SetDomesticPolicy();
  1246. initialized = 1;
  1247. return CURLE_OK;
  1248. }
  1249. /**
  1250. * Global SSL init
  1251. *
  1252. * @retval 0 error initializing SSL
  1253. * @retval 1 SSL initialized successfully
  1254. */
  1255. static int nss_init(void)
  1256. {
  1257. /* curl_global_init() is not thread-safe so this test is ok */
  1258. if(!nss_initlock) {
  1259. PR_Init(PR_USER_THREAD, PR_PRIORITY_NORMAL, 0);
  1260. nss_initlock = PR_NewLock();
  1261. nss_crllock = PR_NewLock();
  1262. nss_findslot_lock = PR_NewLock();
  1263. nss_trustload_lock = PR_NewLock();
  1264. }
  1265. /* We will actually initialize NSS later */
  1266. return 1;
  1267. }
  1268. /* data might be NULL */
  1269. CURLcode Curl_nss_force_init(struct Curl_easy *data)
  1270. {
  1271. CURLcode result;
  1272. if(!nss_initlock) {
  1273. if(data)
  1274. failf(data, "unable to initialize NSS, curl_global_init() should have "
  1275. "been called with CURL_GLOBAL_SSL or CURL_GLOBAL_ALL");
  1276. return CURLE_FAILED_INIT;
  1277. }
  1278. PR_Lock(nss_initlock);
  1279. result = nss_setup(data);
  1280. PR_Unlock(nss_initlock);
  1281. return result;
  1282. }
  1283. /* Global cleanup */
  1284. static void nss_cleanup(void)
  1285. {
  1286. /* This function isn't required to be threadsafe and this is only done
  1287. * as a safety feature.
  1288. */
  1289. PR_Lock(nss_initlock);
  1290. if(initialized) {
  1291. /* Free references to client certificates held in the SSL session cache.
  1292. * Omitting this hampers destruction of the security module owning
  1293. * the certificates. */
  1294. SSL_ClearSessionCache();
  1295. nss_unload_module(&pem_module);
  1296. nss_unload_module(&trust_module);
  1297. NSS_ShutdownContext(nss_context);
  1298. nss_context = NULL;
  1299. }
  1300. /* destroy all CRL items */
  1301. Curl_llist_destroy(&nss_crl_list, NULL);
  1302. PR_Unlock(nss_initlock);
  1303. PR_DestroyLock(nss_initlock);
  1304. PR_DestroyLock(nss_crllock);
  1305. PR_DestroyLock(nss_findslot_lock);
  1306. PR_DestroyLock(nss_trustload_lock);
  1307. nss_initlock = NULL;
  1308. initialized = 0;
  1309. }
  1310. /*
  1311. * This function uses SSL_peek to determine connection status.
  1312. *
  1313. * Return codes:
  1314. * 1 means the connection is still in place
  1315. * 0 means the connection has been closed
  1316. * -1 means the connection status is unknown
  1317. */
  1318. static int nss_check_cxn(struct connectdata *conn)
  1319. {
  1320. struct ssl_connect_data *connssl = &conn->ssl[FIRSTSOCKET];
  1321. struct ssl_backend_data *backend = connssl->backend;
  1322. int rc;
  1323. char buf;
  1324. DEBUGASSERT(backend);
  1325. rc =
  1326. PR_Recv(backend->handle, (void *)&buf, 1, PR_MSG_PEEK,
  1327. PR_SecondsToInterval(1));
  1328. if(rc > 0)
  1329. return 1; /* connection still in place */
  1330. if(rc == 0)
  1331. return 0; /* connection has been closed */
  1332. return -1; /* connection status unknown */
  1333. }
  1334. static void close_one(struct ssl_connect_data *connssl)
  1335. {
  1336. /* before the cleanup, check whether we are using a client certificate */
  1337. struct ssl_backend_data *backend = connssl->backend;
  1338. bool client_cert = true;
  1339. DEBUGASSERT(backend);
  1340. client_cert = (backend->client_nickname != NULL)
  1341. || (backend->obj_clicert != NULL);
  1342. if(backend->handle) {
  1343. char buf[32];
  1344. /* Maybe the server has already sent a close notify alert.
  1345. Read it to avoid an RST on the TCP connection. */
  1346. (void)PR_Recv(backend->handle, buf, (int)sizeof(buf), 0,
  1347. PR_INTERVAL_NO_WAIT);
  1348. }
  1349. free(backend->client_nickname);
  1350. backend->client_nickname = NULL;
  1351. /* destroy all NSS objects in order to avoid failure of NSS shutdown */
  1352. Curl_llist_destroy(&backend->obj_list, NULL);
  1353. backend->obj_clicert = NULL;
  1354. if(backend->handle) {
  1355. if(client_cert)
  1356. /* A server might require different authentication based on the
  1357. * particular path being requested by the client. To support this
  1358. * scenario, we must ensure that a connection will never reuse the
  1359. * authentication data from a previous connection. */
  1360. SSL_InvalidateSession(backend->handle);
  1361. PR_Close(backend->handle);
  1362. backend->handle = NULL;
  1363. }
  1364. }
  1365. /*
  1366. * This function is called when an SSL connection is closed.
  1367. */
  1368. static void nss_close(struct Curl_easy *data, struct connectdata *conn,
  1369. int sockindex)
  1370. {
  1371. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  1372. #ifndef CURL_DISABLE_PROXY
  1373. struct ssl_connect_data *connssl_proxy = &conn->proxy_ssl[sockindex];
  1374. #endif
  1375. struct ssl_backend_data *backend = connssl->backend;
  1376. (void)data;
  1377. DEBUGASSERT(backend);
  1378. #ifndef CURL_DISABLE_PROXY
  1379. DEBUGASSERT(connssl_proxy->backend != NULL);
  1380. #endif
  1381. if(backend->handle
  1382. #ifndef CURL_DISABLE_PROXY
  1383. || connssl_proxy->backend->handle
  1384. #endif
  1385. ) {
  1386. /* NSS closes the socket we previously handed to it, so we must mark it
  1387. as closed to avoid double close */
  1388. fake_sclose(conn->sock[sockindex]);
  1389. conn->sock[sockindex] = CURL_SOCKET_BAD;
  1390. }
  1391. #ifndef CURL_DISABLE_PROXY
  1392. if(backend->handle)
  1393. /* nss_close(connssl) will transitively close also
  1394. connssl_proxy->backend->handle if both are used. Clear it to avoid
  1395. a double close leading to crash. */
  1396. connssl_proxy->backend->handle = NULL;
  1397. close_one(connssl_proxy);
  1398. #endif
  1399. close_one(connssl);
  1400. }
  1401. /* return true if NSS can provide error code (and possibly msg) for the
  1402. error */
  1403. static bool is_nss_error(CURLcode err)
  1404. {
  1405. switch(err) {
  1406. case CURLE_PEER_FAILED_VERIFICATION:
  1407. case CURLE_SSL_CERTPROBLEM:
  1408. case CURLE_SSL_CONNECT_ERROR:
  1409. case CURLE_SSL_ISSUER_ERROR:
  1410. return true;
  1411. default:
  1412. return false;
  1413. }
  1414. }
  1415. /* return true if the given error code is related to a client certificate */
  1416. static bool is_cc_error(PRInt32 err)
  1417. {
  1418. switch(err) {
  1419. case SSL_ERROR_BAD_CERT_ALERT:
  1420. case SSL_ERROR_EXPIRED_CERT_ALERT:
  1421. case SSL_ERROR_REVOKED_CERT_ALERT:
  1422. return true;
  1423. default:
  1424. return false;
  1425. }
  1426. }
  1427. static Curl_recv nss_recv;
  1428. static Curl_send nss_send;
  1429. static CURLcode nss_load_ca_certificates(struct Curl_easy *data,
  1430. struct connectdata *conn,
  1431. int sockindex)
  1432. {
  1433. const char *cafile = SSL_CONN_CONFIG(CAfile);
  1434. const char *capath = SSL_CONN_CONFIG(CApath);
  1435. bool use_trust_module;
  1436. CURLcode result = CURLE_OK;
  1437. /* treat empty string as unset */
  1438. if(cafile && !cafile[0])
  1439. cafile = NULL;
  1440. if(capath && !capath[0])
  1441. capath = NULL;
  1442. infof(data, " CAfile: %s", cafile ? cafile : "none");
  1443. infof(data, " CApath: %s", capath ? capath : "none");
  1444. /* load libnssckbi.so if no other trust roots were specified */
  1445. use_trust_module = !cafile && !capath;
  1446. PR_Lock(nss_trustload_lock);
  1447. if(use_trust_module && !trust_module) {
  1448. /* libnssckbi.so needed but not yet loaded --> load it! */
  1449. result = nss_load_module(&trust_module, trust_library, "trust");
  1450. infof(data, "%s %s", (result) ? "failed to load" : "loaded",
  1451. trust_library);
  1452. if(result == CURLE_FAILED_INIT)
  1453. /* If libnssckbi.so is not available (or fails to load), one can still
  1454. use CA certificates stored in NSS database. Ignore the failure. */
  1455. result = CURLE_OK;
  1456. }
  1457. else if(!use_trust_module && trust_module) {
  1458. /* libnssckbi.so not needed but already loaded --> unload it! */
  1459. infof(data, "unloading %s", trust_library);
  1460. nss_unload_module(&trust_module);
  1461. }
  1462. PR_Unlock(nss_trustload_lock);
  1463. if(cafile)
  1464. result = nss_load_cert(&conn->ssl[sockindex], cafile, PR_TRUE);
  1465. if(result)
  1466. return result;
  1467. if(capath) {
  1468. struct_stat st;
  1469. if(stat(capath, &st) == -1)
  1470. return CURLE_SSL_CACERT_BADFILE;
  1471. if(S_ISDIR(st.st_mode)) {
  1472. PRDirEntry *entry;
  1473. PRDir *dir = PR_OpenDir(capath);
  1474. if(!dir)
  1475. return CURLE_SSL_CACERT_BADFILE;
  1476. while((entry =
  1477. PR_ReadDir(dir, (PRDirFlags)(PR_SKIP_BOTH | PR_SKIP_HIDDEN)))) {
  1478. char *fullpath = aprintf("%s/%s", capath, entry->name);
  1479. if(!fullpath) {
  1480. PR_CloseDir(dir);
  1481. return CURLE_OUT_OF_MEMORY;
  1482. }
  1483. if(CURLE_OK != nss_load_cert(&conn->ssl[sockindex], fullpath, PR_TRUE))
  1484. /* This is purposefully tolerant of errors so non-PEM files can
  1485. * be in the same directory */
  1486. infof(data, "failed to load '%s' from CURLOPT_CAPATH", fullpath);
  1487. free(fullpath);
  1488. }
  1489. PR_CloseDir(dir);
  1490. }
  1491. else
  1492. infof(data, "WARNING: CURLOPT_CAPATH not a directory (%s)", capath);
  1493. }
  1494. return CURLE_OK;
  1495. }
  1496. static CURLcode nss_sslver_from_curl(PRUint16 *nssver, long version)
  1497. {
  1498. switch(version) {
  1499. case CURL_SSLVERSION_SSLv2:
  1500. *nssver = SSL_LIBRARY_VERSION_2;
  1501. return CURLE_OK;
  1502. case CURL_SSLVERSION_SSLv3:
  1503. return CURLE_NOT_BUILT_IN;
  1504. case CURL_SSLVERSION_TLSv1_0:
  1505. *nssver = SSL_LIBRARY_VERSION_TLS_1_0;
  1506. return CURLE_OK;
  1507. case CURL_SSLVERSION_TLSv1_1:
  1508. #ifdef SSL_LIBRARY_VERSION_TLS_1_1
  1509. *nssver = SSL_LIBRARY_VERSION_TLS_1_1;
  1510. return CURLE_OK;
  1511. #else
  1512. return CURLE_SSL_CONNECT_ERROR;
  1513. #endif
  1514. case CURL_SSLVERSION_TLSv1_2:
  1515. #ifdef SSL_LIBRARY_VERSION_TLS_1_2
  1516. *nssver = SSL_LIBRARY_VERSION_TLS_1_2;
  1517. return CURLE_OK;
  1518. #else
  1519. return CURLE_SSL_CONNECT_ERROR;
  1520. #endif
  1521. case CURL_SSLVERSION_TLSv1_3:
  1522. #ifdef SSL_LIBRARY_VERSION_TLS_1_3
  1523. *nssver = SSL_LIBRARY_VERSION_TLS_1_3;
  1524. return CURLE_OK;
  1525. #else
  1526. return CURLE_SSL_CONNECT_ERROR;
  1527. #endif
  1528. default:
  1529. return CURLE_SSL_CONNECT_ERROR;
  1530. }
  1531. }
  1532. static CURLcode nss_init_sslver(SSLVersionRange *sslver,
  1533. struct Curl_easy *data,
  1534. struct connectdata *conn)
  1535. {
  1536. CURLcode result;
  1537. const long min = SSL_CONN_CONFIG(version);
  1538. const long max = SSL_CONN_CONFIG(version_max);
  1539. SSLVersionRange vrange;
  1540. switch(min) {
  1541. case CURL_SSLVERSION_TLSv1:
  1542. case CURL_SSLVERSION_DEFAULT:
  1543. /* Bump our minimum TLS version if NSS has stricter requirements. */
  1544. if(SSL_VersionRangeGetDefault(ssl_variant_stream, &vrange) != SECSuccess)
  1545. return CURLE_SSL_CONNECT_ERROR;
  1546. if(sslver->min < vrange.min)
  1547. sslver->min = vrange.min;
  1548. break;
  1549. default:
  1550. result = nss_sslver_from_curl(&sslver->min, min);
  1551. if(result) {
  1552. failf(data, "unsupported min version passed via CURLOPT_SSLVERSION");
  1553. return result;
  1554. }
  1555. }
  1556. switch(max) {
  1557. case CURL_SSLVERSION_MAX_NONE:
  1558. case CURL_SSLVERSION_MAX_DEFAULT:
  1559. break;
  1560. default:
  1561. result = nss_sslver_from_curl(&sslver->max, max >> 16);
  1562. if(result) {
  1563. failf(data, "unsupported max version passed via CURLOPT_SSLVERSION");
  1564. return result;
  1565. }
  1566. }
  1567. return CURLE_OK;
  1568. }
  1569. static CURLcode nss_fail_connect(struct ssl_connect_data *connssl,
  1570. struct Curl_easy *data,
  1571. CURLcode curlerr)
  1572. {
  1573. struct ssl_backend_data *backend = connssl->backend;
  1574. DEBUGASSERT(backend);
  1575. if(is_nss_error(curlerr)) {
  1576. /* read NSPR error code */
  1577. PRErrorCode err = PR_GetError();
  1578. if(is_cc_error(err))
  1579. curlerr = CURLE_SSL_CERTPROBLEM;
  1580. /* print the error number and error string */
  1581. infof(data, "NSS error %d (%s)", err, nss_error_to_name(err));
  1582. /* print a human-readable message describing the error if available */
  1583. nss_print_error_message(data, err);
  1584. }
  1585. /* cleanup on connection failure */
  1586. Curl_llist_destroy(&backend->obj_list, NULL);
  1587. return curlerr;
  1588. }
  1589. /* Switch the SSL socket into blocking or non-blocking mode. */
  1590. static CURLcode nss_set_blocking(struct ssl_connect_data *connssl,
  1591. struct Curl_easy *data,
  1592. bool blocking)
  1593. {
  1594. PRSocketOptionData sock_opt;
  1595. struct ssl_backend_data *backend = connssl->backend;
  1596. DEBUGASSERT(backend);
  1597. sock_opt.option = PR_SockOpt_Nonblocking;
  1598. sock_opt.value.non_blocking = !blocking;
  1599. if(PR_SetSocketOption(backend->handle, &sock_opt) != PR_SUCCESS)
  1600. return nss_fail_connect(connssl, data, CURLE_SSL_CONNECT_ERROR);
  1601. return CURLE_OK;
  1602. }
  1603. static CURLcode nss_setup_connect(struct Curl_easy *data,
  1604. struct connectdata *conn, int sockindex)
  1605. {
  1606. PRFileDesc *model = NULL;
  1607. PRFileDesc *nspr_io = NULL;
  1608. PRFileDesc *nspr_io_stub = NULL;
  1609. PRBool ssl_no_cache;
  1610. PRBool ssl_cbc_random_iv;
  1611. curl_socket_t sockfd = conn->sock[sockindex];
  1612. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  1613. struct ssl_backend_data *backend = connssl->backend;
  1614. CURLcode result;
  1615. bool second_layer = FALSE;
  1616. SSLVersionRange sslver_supported;
  1617. SSLVersionRange sslver = {
  1618. SSL_LIBRARY_VERSION_TLS_1_0, /* min */
  1619. #ifdef SSL_LIBRARY_VERSION_TLS_1_3
  1620. SSL_LIBRARY_VERSION_TLS_1_3 /* max */
  1621. #elif defined SSL_LIBRARY_VERSION_TLS_1_2
  1622. SSL_LIBRARY_VERSION_TLS_1_2
  1623. #elif defined SSL_LIBRARY_VERSION_TLS_1_1
  1624. SSL_LIBRARY_VERSION_TLS_1_1
  1625. #else
  1626. SSL_LIBRARY_VERSION_TLS_1_0
  1627. #endif
  1628. };
  1629. char *snihost = Curl_ssl_snihost(data, SSL_HOST_NAME(), NULL);
  1630. if(!snihost) {
  1631. failf(data, "Failed to set SNI");
  1632. return CURLE_SSL_CONNECT_ERROR;
  1633. }
  1634. DEBUGASSERT(backend);
  1635. backend->data = data;
  1636. /* list of all NSS objects we need to destroy in nss_do_close() */
  1637. Curl_llist_init(&backend->obj_list, nss_destroy_object);
  1638. PR_Lock(nss_initlock);
  1639. result = nss_setup(data);
  1640. if(result) {
  1641. PR_Unlock(nss_initlock);
  1642. goto error;
  1643. }
  1644. PK11_SetPasswordFunc(nss_get_password);
  1645. result = nss_load_module(&pem_module, pem_library, "PEM");
  1646. PR_Unlock(nss_initlock);
  1647. if(result == CURLE_FAILED_INIT)
  1648. infof(data, "WARNING: failed to load NSS PEM library %s. Using "
  1649. "OpenSSL PEM certificates will not work.", pem_library);
  1650. else if(result)
  1651. goto error;
  1652. result = CURLE_SSL_CONNECT_ERROR;
  1653. model = PR_NewTCPSocket();
  1654. if(!model)
  1655. goto error;
  1656. model = SSL_ImportFD(NULL, model);
  1657. if(SSL_OptionSet(model, SSL_SECURITY, PR_TRUE) != SECSuccess)
  1658. goto error;
  1659. if(SSL_OptionSet(model, SSL_HANDSHAKE_AS_SERVER, PR_FALSE) != SECSuccess)
  1660. goto error;
  1661. if(SSL_OptionSet(model, SSL_HANDSHAKE_AS_CLIENT, PR_TRUE) != SECSuccess)
  1662. goto error;
  1663. /* do not use SSL cache if disabled or we are not going to verify peer */
  1664. ssl_no_cache = (SSL_SET_OPTION(primary.sessionid)
  1665. && SSL_CONN_CONFIG(verifypeer)) ? PR_FALSE : PR_TRUE;
  1666. if(SSL_OptionSet(model, SSL_NO_CACHE, ssl_no_cache) != SECSuccess)
  1667. goto error;
  1668. /* enable/disable the requested SSL version(s) */
  1669. if(nss_init_sslver(&sslver, data, conn) != CURLE_OK)
  1670. goto error;
  1671. if(SSL_VersionRangeGetSupported(ssl_variant_stream,
  1672. &sslver_supported) != SECSuccess)
  1673. goto error;
  1674. if(sslver_supported.max < sslver.max && sslver_supported.max >= sslver.min) {
  1675. char *sslver_req_str, *sslver_supp_str;
  1676. sslver_req_str = nss_sslver_to_name(sslver.max);
  1677. sslver_supp_str = nss_sslver_to_name(sslver_supported.max);
  1678. if(sslver_req_str && sslver_supp_str)
  1679. infof(data, "Falling back from %s to max supported SSL version (%s)",
  1680. sslver_req_str, sslver_supp_str);
  1681. free(sslver_req_str);
  1682. free(sslver_supp_str);
  1683. sslver.max = sslver_supported.max;
  1684. }
  1685. if(SSL_VersionRangeSet(model, &sslver) != SECSuccess)
  1686. goto error;
  1687. ssl_cbc_random_iv = !SSL_SET_OPTION(enable_beast);
  1688. #ifdef SSL_CBC_RANDOM_IV
  1689. /* unless the user explicitly asks to allow the protocol vulnerability, we
  1690. use the work-around */
  1691. if(SSL_OptionSet(model, SSL_CBC_RANDOM_IV, ssl_cbc_random_iv) != SECSuccess)
  1692. infof(data, "WARNING: failed to set SSL_CBC_RANDOM_IV = %d",
  1693. ssl_cbc_random_iv);
  1694. #else
  1695. if(ssl_cbc_random_iv)
  1696. infof(data, "WARNING: support for SSL_CBC_RANDOM_IV not compiled in");
  1697. #endif
  1698. if(SSL_CONN_CONFIG(cipher_list)) {
  1699. if(set_ciphers(data, model, SSL_CONN_CONFIG(cipher_list)) != SECSuccess) {
  1700. result = CURLE_SSL_CIPHER;
  1701. goto error;
  1702. }
  1703. }
  1704. if(!SSL_CONN_CONFIG(verifypeer) && SSL_CONN_CONFIG(verifyhost))
  1705. infof(data, "WARNING: ignoring value of ssl.verifyhost");
  1706. /* bypass the default SSL_AuthCertificate() hook in case we do not want to
  1707. * verify peer */
  1708. if(SSL_AuthCertificateHook(model, nss_auth_cert_hook, data) != SECSuccess)
  1709. goto error;
  1710. /* not checked yet */
  1711. SSL_SET_OPTION_LVALUE(certverifyresult) = 0;
  1712. if(SSL_BadCertHook(model, BadCertHandler, data) != SECSuccess)
  1713. goto error;
  1714. if(SSL_HandshakeCallback(model, HandshakeCallback, data) != SECSuccess)
  1715. goto error;
  1716. {
  1717. const CURLcode rv = nss_load_ca_certificates(data, conn, sockindex);
  1718. if((rv == CURLE_SSL_CACERT_BADFILE) && !SSL_CONN_CONFIG(verifypeer))
  1719. /* not a fatal error because we are not going to verify the peer */
  1720. infof(data, "WARNING: CA certificates failed to load");
  1721. else if(rv) {
  1722. result = rv;
  1723. goto error;
  1724. }
  1725. }
  1726. if(SSL_SET_OPTION(CRLfile)) {
  1727. const CURLcode rv = nss_load_crl(SSL_SET_OPTION(CRLfile));
  1728. if(rv) {
  1729. result = rv;
  1730. goto error;
  1731. }
  1732. infof(data, " CRLfile: %s", SSL_SET_OPTION(CRLfile));
  1733. }
  1734. if(SSL_SET_OPTION(primary.clientcert)) {
  1735. char *nickname = dup_nickname(data, SSL_SET_OPTION(primary.clientcert));
  1736. if(nickname) {
  1737. /* we are not going to use libnsspem.so to read the client cert */
  1738. backend->obj_clicert = NULL;
  1739. }
  1740. else {
  1741. CURLcode rv = cert_stuff(data, conn, sockindex,
  1742. SSL_SET_OPTION(primary.clientcert),
  1743. SSL_SET_OPTION(key));
  1744. if(rv) {
  1745. /* failf() is already done in cert_stuff() */
  1746. result = rv;
  1747. goto error;
  1748. }
  1749. }
  1750. /* store the nickname for SelectClientCert() called during handshake */
  1751. backend->client_nickname = nickname;
  1752. }
  1753. else
  1754. backend->client_nickname = NULL;
  1755. if(SSL_GetClientAuthDataHook(model, SelectClientCert,
  1756. (void *)connssl) != SECSuccess) {
  1757. result = CURLE_SSL_CERTPROBLEM;
  1758. goto error;
  1759. }
  1760. #ifndef CURL_DISABLE_PROXY
  1761. if(conn->proxy_ssl[sockindex].use) {
  1762. struct ssl_backend_data *proxy_backend;
  1763. proxy_backend = conn->proxy_ssl[sockindex].backend;
  1764. DEBUGASSERT(ssl_connection_complete == conn->proxy_ssl[sockindex].state);
  1765. DEBUGASSERT(proxy_backend);
  1766. DEBUGASSERT(proxy_backend->handle);
  1767. nspr_io = proxy_backend->handle;
  1768. second_layer = TRUE;
  1769. }
  1770. #endif
  1771. else {
  1772. /* wrap OS file descriptor by NSPR's file descriptor abstraction */
  1773. nspr_io = PR_ImportTCPSocket(sockfd);
  1774. if(!nspr_io)
  1775. goto error;
  1776. }
  1777. /* create our own NSPR I/O layer */
  1778. nspr_io_stub = PR_CreateIOLayerStub(nspr_io_identity, &nspr_io_methods);
  1779. if(!nspr_io_stub) {
  1780. if(!second_layer)
  1781. PR_Close(nspr_io);
  1782. goto error;
  1783. }
  1784. /* make the per-connection data accessible from NSPR I/O callbacks */
  1785. nspr_io_stub->secret = (void *)connssl;
  1786. /* push our new layer to the NSPR I/O stack */
  1787. if(PR_PushIOLayer(nspr_io, PR_TOP_IO_LAYER, nspr_io_stub) != PR_SUCCESS) {
  1788. if(!second_layer)
  1789. PR_Close(nspr_io);
  1790. PR_Close(nspr_io_stub);
  1791. goto error;
  1792. }
  1793. /* import our model socket onto the current I/O stack */
  1794. backend->handle = SSL_ImportFD(model, nspr_io);
  1795. if(!backend->handle) {
  1796. if(!second_layer)
  1797. PR_Close(nspr_io);
  1798. goto error;
  1799. }
  1800. PR_Close(model); /* We don't need this any more */
  1801. model = NULL;
  1802. /* This is the password associated with the cert that we're using */
  1803. if(SSL_SET_OPTION(key_passwd)) {
  1804. SSL_SetPKCS11PinArg(backend->handle, SSL_SET_OPTION(key_passwd));
  1805. }
  1806. #ifdef SSL_ENABLE_OCSP_STAPLING
  1807. if(SSL_CONN_CONFIG(verifystatus)) {
  1808. if(SSL_OptionSet(backend->handle, SSL_ENABLE_OCSP_STAPLING, PR_TRUE)
  1809. != SECSuccess)
  1810. goto error;
  1811. }
  1812. #endif
  1813. #ifdef SSL_ENABLE_NPN
  1814. if(SSL_OptionSet(backend->handle, SSL_ENABLE_NPN, conn->bits.tls_enable_npn
  1815. ? PR_TRUE : PR_FALSE) != SECSuccess)
  1816. goto error;
  1817. #endif
  1818. #ifdef SSL_ENABLE_ALPN
  1819. if(SSL_OptionSet(backend->handle, SSL_ENABLE_ALPN, conn->bits.tls_enable_alpn
  1820. ? PR_TRUE : PR_FALSE) != SECSuccess)
  1821. goto error;
  1822. #endif
  1823. #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
  1824. if(data->set.ssl.falsestart) {
  1825. if(SSL_OptionSet(backend->handle, SSL_ENABLE_FALSE_START, PR_TRUE)
  1826. != SECSuccess)
  1827. goto error;
  1828. if(SSL_SetCanFalseStartCallback(backend->handle, CanFalseStartCallback,
  1829. data) != SECSuccess)
  1830. goto error;
  1831. }
  1832. #endif
  1833. #if defined(SSL_ENABLE_NPN) || defined(SSL_ENABLE_ALPN)
  1834. if(conn->bits.tls_enable_npn || conn->bits.tls_enable_alpn) {
  1835. int cur = 0;
  1836. unsigned char protocols[128];
  1837. #ifdef USE_HTTP2
  1838. if(data->state.httpwant >= CURL_HTTP_VERSION_2
  1839. #ifndef CURL_DISABLE_PROXY
  1840. && (!SSL_IS_PROXY() || !conn->bits.tunnel_proxy)
  1841. #endif
  1842. ) {
  1843. protocols[cur++] = ALPN_H2_LENGTH;
  1844. memcpy(&protocols[cur], ALPN_H2, ALPN_H2_LENGTH);
  1845. cur += ALPN_H2_LENGTH;
  1846. }
  1847. #endif
  1848. protocols[cur++] = ALPN_HTTP_1_1_LENGTH;
  1849. memcpy(&protocols[cur], ALPN_HTTP_1_1, ALPN_HTTP_1_1_LENGTH);
  1850. cur += ALPN_HTTP_1_1_LENGTH;
  1851. if(SSL_SetNextProtoNego(backend->handle, protocols, cur) != SECSuccess)
  1852. goto error;
  1853. }
  1854. #endif
  1855. /* Force handshake on next I/O */
  1856. if(SSL_ResetHandshake(backend->handle, /* asServer */ PR_FALSE)
  1857. != SECSuccess)
  1858. goto error;
  1859. /* propagate hostname to the TLS layer */
  1860. if(SSL_SetURL(backend->handle, snihost) != SECSuccess)
  1861. goto error;
  1862. /* prevent NSS from re-using the session for a different hostname */
  1863. if(SSL_SetSockPeerID(backend->handle, snihost) != SECSuccess)
  1864. goto error;
  1865. return CURLE_OK;
  1866. error:
  1867. if(model)
  1868. PR_Close(model);
  1869. return nss_fail_connect(connssl, data, result);
  1870. }
  1871. static CURLcode nss_do_connect(struct Curl_easy *data,
  1872. struct connectdata *conn, int sockindex)
  1873. {
  1874. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  1875. struct ssl_backend_data *backend = connssl->backend;
  1876. CURLcode result = CURLE_SSL_CONNECT_ERROR;
  1877. PRUint32 timeout;
  1878. /* check timeout situation */
  1879. const timediff_t time_left = Curl_timeleft(data, NULL, TRUE);
  1880. if(time_left < 0) {
  1881. failf(data, "timed out before SSL handshake");
  1882. result = CURLE_OPERATION_TIMEDOUT;
  1883. goto error;
  1884. }
  1885. DEBUGASSERT(backend);
  1886. /* Force the handshake now */
  1887. timeout = PR_MillisecondsToInterval((PRUint32) time_left);
  1888. if(SSL_ForceHandshakeWithTimeout(backend->handle, timeout) != SECSuccess) {
  1889. if(PR_GetError() == PR_WOULD_BLOCK_ERROR)
  1890. /* blocking direction is updated by nss_update_connecting_state() */
  1891. return CURLE_AGAIN;
  1892. else if(SSL_SET_OPTION(certverifyresult) == SSL_ERROR_BAD_CERT_DOMAIN)
  1893. result = CURLE_PEER_FAILED_VERIFICATION;
  1894. else if(SSL_SET_OPTION(certverifyresult) != 0)
  1895. result = CURLE_PEER_FAILED_VERIFICATION;
  1896. goto error;
  1897. }
  1898. result = display_conn_info(data, backend->handle);
  1899. if(result)
  1900. goto error;
  1901. if(SSL_CONN_CONFIG(issuercert)) {
  1902. SECStatus ret = SECFailure;
  1903. char *nickname = dup_nickname(data, SSL_CONN_CONFIG(issuercert));
  1904. if(nickname) {
  1905. /* we support only nicknames in case of issuercert for now */
  1906. ret = check_issuer_cert(backend->handle, nickname);
  1907. free(nickname);
  1908. }
  1909. if(SECFailure == ret) {
  1910. infof(data, "SSL certificate issuer check failed");
  1911. result = CURLE_SSL_ISSUER_ERROR;
  1912. goto error;
  1913. }
  1914. else {
  1915. infof(data, "SSL certificate issuer check ok");
  1916. }
  1917. }
  1918. result = cmp_peer_pubkey(connssl, SSL_PINNED_PUB_KEY());
  1919. if(result)
  1920. /* status already printed */
  1921. goto error;
  1922. return CURLE_OK;
  1923. error:
  1924. return nss_fail_connect(connssl, data, result);
  1925. }
  1926. static CURLcode nss_connect_common(struct Curl_easy *data,
  1927. struct connectdata *conn, int sockindex,
  1928. bool *done)
  1929. {
  1930. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  1931. const bool blocking = (done == NULL);
  1932. CURLcode result;
  1933. if(connssl->state == ssl_connection_complete) {
  1934. if(!blocking)
  1935. *done = TRUE;
  1936. return CURLE_OK;
  1937. }
  1938. if(connssl->connecting_state == ssl_connect_1) {
  1939. result = nss_setup_connect(data, conn, sockindex);
  1940. if(result)
  1941. /* we do not expect CURLE_AGAIN from nss_setup_connect() */
  1942. return result;
  1943. connssl->connecting_state = ssl_connect_2;
  1944. }
  1945. /* enable/disable blocking mode before handshake */
  1946. result = nss_set_blocking(connssl, data, blocking);
  1947. if(result)
  1948. return result;
  1949. result = nss_do_connect(data, conn, sockindex);
  1950. switch(result) {
  1951. case CURLE_OK:
  1952. break;
  1953. case CURLE_AGAIN:
  1954. /* CURLE_AGAIN in non-blocking mode is not an error */
  1955. if(!blocking)
  1956. return CURLE_OK;
  1957. else
  1958. return result;
  1959. default:
  1960. return result;
  1961. }
  1962. if(blocking) {
  1963. /* in blocking mode, set NSS non-blocking mode _after_ SSL handshake */
  1964. result = nss_set_blocking(connssl, data, /* blocking */ FALSE);
  1965. if(result)
  1966. return result;
  1967. }
  1968. else
  1969. /* signal completed SSL handshake */
  1970. *done = TRUE;
  1971. connssl->state = ssl_connection_complete;
  1972. conn->recv[sockindex] = nss_recv;
  1973. conn->send[sockindex] = nss_send;
  1974. /* ssl_connect_done is never used outside, go back to the initial state */
  1975. connssl->connecting_state = ssl_connect_1;
  1976. return CURLE_OK;
  1977. }
  1978. static CURLcode nss_connect(struct Curl_easy *data, struct connectdata *conn,
  1979. int sockindex)
  1980. {
  1981. return nss_connect_common(data, conn, sockindex, /* blocking */ NULL);
  1982. }
  1983. static CURLcode nss_connect_nonblocking(struct Curl_easy *data,
  1984. struct connectdata *conn,
  1985. int sockindex, bool *done)
  1986. {
  1987. return nss_connect_common(data, conn, sockindex, done);
  1988. }
  1989. static ssize_t nss_send(struct Curl_easy *data, /* transfer */
  1990. int sockindex, /* socketindex */
  1991. const void *mem, /* send this data */
  1992. size_t len, /* amount to write */
  1993. CURLcode *curlcode)
  1994. {
  1995. struct connectdata *conn = data->conn;
  1996. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  1997. struct ssl_backend_data *backend = connssl->backend;
  1998. ssize_t rc;
  1999. DEBUGASSERT(backend);
  2000. /* The SelectClientCert() hook uses this for infof() and failf() but the
  2001. handle stored in nss_setup_connect() could have already been freed. */
  2002. backend->data = data;
  2003. rc = PR_Send(backend->handle, mem, (int)len, 0, PR_INTERVAL_NO_WAIT);
  2004. if(rc < 0) {
  2005. PRInt32 err = PR_GetError();
  2006. if(err == PR_WOULD_BLOCK_ERROR)
  2007. *curlcode = CURLE_AGAIN;
  2008. else {
  2009. /* print the error number and error string */
  2010. const char *err_name = nss_error_to_name(err);
  2011. infof(data, "SSL write: error %d (%s)", err, err_name);
  2012. /* print a human-readable message describing the error if available */
  2013. nss_print_error_message(data, err);
  2014. *curlcode = (is_cc_error(err))
  2015. ? CURLE_SSL_CERTPROBLEM
  2016. : CURLE_SEND_ERROR;
  2017. }
  2018. return -1;
  2019. }
  2020. return rc; /* number of bytes */
  2021. }
  2022. static ssize_t nss_recv(struct Curl_easy *data, /* transfer */
  2023. int sockindex, /* socketindex */
  2024. char *buf, /* store read data here */
  2025. size_t buffersize, /* max amount to read */
  2026. CURLcode *curlcode)
  2027. {
  2028. struct connectdata *conn = data->conn;
  2029. struct ssl_connect_data *connssl = &conn->ssl[sockindex];
  2030. struct ssl_backend_data *backend = connssl->backend;
  2031. ssize_t nread;
  2032. DEBUGASSERT(backend);
  2033. /* The SelectClientCert() hook uses this for infof() and failf() but the
  2034. handle stored in nss_setup_connect() could have already been freed. */
  2035. backend->data = data;
  2036. nread = PR_Recv(backend->handle, buf, (int)buffersize, 0,
  2037. PR_INTERVAL_NO_WAIT);
  2038. if(nread < 0) {
  2039. /* failed SSL read */
  2040. PRInt32 err = PR_GetError();
  2041. if(err == PR_WOULD_BLOCK_ERROR)
  2042. *curlcode = CURLE_AGAIN;
  2043. else {
  2044. /* print the error number and error string */
  2045. const char *err_name = nss_error_to_name(err);
  2046. infof(data, "SSL read: errno %d (%s)", err, err_name);
  2047. /* print a human-readable message describing the error if available */
  2048. nss_print_error_message(data, err);
  2049. *curlcode = (is_cc_error(err))
  2050. ? CURLE_SSL_CERTPROBLEM
  2051. : CURLE_RECV_ERROR;
  2052. }
  2053. return -1;
  2054. }
  2055. return nread;
  2056. }
  2057. static size_t nss_version(char *buffer, size_t size)
  2058. {
  2059. return msnprintf(buffer, size, "NSS/%s", NSS_GetVersion());
  2060. }
  2061. /* data might be NULL */
  2062. static int Curl_nss_seed(struct Curl_easy *data)
  2063. {
  2064. /* make sure that NSS is initialized */
  2065. return !!Curl_nss_force_init(data);
  2066. }
  2067. /* data might be NULL */
  2068. static CURLcode nss_random(struct Curl_easy *data,
  2069. unsigned char *entropy,
  2070. size_t length)
  2071. {
  2072. Curl_nss_seed(data); /* Initiate the seed if not already done */
  2073. if(SECSuccess != PK11_GenerateRandom(entropy, curlx_uztosi(length)))
  2074. /* signal a failure */
  2075. return CURLE_FAILED_INIT;
  2076. return CURLE_OK;
  2077. }
  2078. static CURLcode nss_sha256sum(const unsigned char *tmp, /* input */
  2079. size_t tmplen,
  2080. unsigned char *sha256sum, /* output */
  2081. size_t sha256len)
  2082. {
  2083. PK11Context *SHA256pw = PK11_CreateDigestContext(SEC_OID_SHA256);
  2084. unsigned int SHA256out;
  2085. if(!SHA256pw)
  2086. return CURLE_NOT_BUILT_IN;
  2087. PK11_DigestOp(SHA256pw, tmp, curlx_uztoui(tmplen));
  2088. PK11_DigestFinal(SHA256pw, sha256sum, &SHA256out, curlx_uztoui(sha256len));
  2089. PK11_DestroyContext(SHA256pw, PR_TRUE);
  2090. return CURLE_OK;
  2091. }
  2092. static bool nss_cert_status_request(void)
  2093. {
  2094. #ifdef SSL_ENABLE_OCSP_STAPLING
  2095. return TRUE;
  2096. #else
  2097. return FALSE;
  2098. #endif
  2099. }
  2100. static bool nss_false_start(void)
  2101. {
  2102. #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
  2103. return TRUE;
  2104. #else
  2105. return FALSE;
  2106. #endif
  2107. }
  2108. static void *nss_get_internals(struct ssl_connect_data *connssl,
  2109. CURLINFO info UNUSED_PARAM)
  2110. {
  2111. struct ssl_backend_data *backend = connssl->backend;
  2112. (void)info;
  2113. DEBUGASSERT(backend);
  2114. return backend->handle;
  2115. }
  2116. const struct Curl_ssl Curl_ssl_nss = {
  2117. { CURLSSLBACKEND_NSS, "nss" }, /* info */
  2118. SSLSUPP_CA_PATH |
  2119. SSLSUPP_CERTINFO |
  2120. SSLSUPP_PINNEDPUBKEY |
  2121. SSLSUPP_HTTPS_PROXY,
  2122. sizeof(struct ssl_backend_data),
  2123. nss_init, /* init */
  2124. nss_cleanup, /* cleanup */
  2125. nss_version, /* version */
  2126. nss_check_cxn, /* check_cxn */
  2127. /* NSS has no shutdown function provided and thus always fail */
  2128. Curl_none_shutdown, /* shutdown */
  2129. Curl_none_data_pending, /* data_pending */
  2130. nss_random, /* random */
  2131. nss_cert_status_request, /* cert_status_request */
  2132. nss_connect, /* connect */
  2133. nss_connect_nonblocking, /* connect_nonblocking */
  2134. Curl_ssl_getsock, /* getsock */
  2135. nss_get_internals, /* get_internals */
  2136. nss_close, /* close_one */
  2137. Curl_none_close_all, /* close_all */
  2138. /* NSS has its own session ID cache */
  2139. Curl_none_session_free, /* session_free */
  2140. Curl_none_set_engine, /* set_engine */
  2141. Curl_none_set_engine_default, /* set_engine_default */
  2142. Curl_none_engines_list, /* engines_list */
  2143. nss_false_start, /* false_start */
  2144. nss_sha256sum, /* sha256sum */
  2145. NULL, /* associate_connection */
  2146. NULL /* disassociate_connection */
  2147. };
  2148. #endif /* USE_NSS */