ssl_tls.c 64 KB

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  1. /*
  2. * SSLv3/TLSv1 shared functions
  3. *
  4. * Copyright (C) 2006-2010, Brainspark B.V.
  5. *
  6. * This file is part of PolarSSL (http://www.polarssl.org)
  7. * Lead Maintainer: Paul Bakker <polarssl_maintainer at polarssl.org>
  8. *
  9. * All rights reserved.
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or
  14. * (at your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License along
  22. * with this program; if not, write to the Free Software Foundation, Inc.,
  23. * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
  24. */
  25. /*
  26. * The SSL 3.0 specification was drafted by Netscape in 1996,
  27. * and became an IETF standard in 1999.
  28. *
  29. * http://wp.netscape.com/eng/ssl3/
  30. * http://www.ietf.org/rfc/rfc2246.txt
  31. * http://www.ietf.org/rfc/rfc4346.txt
  32. */
  33. #include "config.h"
  34. #include "FreeRTOS.h"
  35. #include "task.h"
  36. #if defined(POLARSSL_SSL_TLS_C)
  37. #include "polarssl/aes.h"
  38. #include "polarssl/arc4.h"
  39. #include "polarssl/camellia.h"
  40. #include "polarssl/des.h"
  41. #include "polarssl/debug.h"
  42. #include "polarssl/ssl.h"
  43. #include <stdlib.h>
  44. #include <time.h>
  45. #include <stdlib.h>
  46. #if defined ( __GNUC__ )
  47. #include <my_strings.h>
  48. #endif
  49. #if defined _MSC_VER && !defined strcasecmp
  50. #define strcasecmp _stricmp
  51. #endif
  52. /*
  53. * Key material generation
  54. */
  55. static int tls1_prf( unsigned char *secret, size_t slen, char *label,
  56. unsigned char *random, size_t rlen,
  57. unsigned char *dstbuf, size_t dlen )
  58. {
  59. size_t nb, hs;
  60. size_t i, j, k;
  61. unsigned char *S1, *S2;
  62. unsigned char tmp[128];
  63. unsigned char h_i[20];
  64. if( sizeof( tmp ) < 20 + strlen( label ) + rlen )
  65. return( POLARSSL_ERR_SSL_BAD_INPUT_DATA );
  66. hs = ( slen + 1 ) / 2;
  67. S1 = secret;
  68. S2 = secret + slen - hs;
  69. nb = strlen( label );
  70. memcpy( tmp + 20, label, nb );
  71. memcpy( tmp + 20 + nb, random, rlen );
  72. nb += rlen;
  73. /*
  74. * First compute P_md5(secret,label+random)[0..dlen]
  75. */
  76. md5_hmac( S1, hs, tmp + 20, nb, 4 + tmp );
  77. for( i = 0; i < dlen; i += 16 )
  78. {
  79. md5_hmac( S1, hs, 4 + tmp, 16 + nb, h_i );
  80. md5_hmac( S1, hs, 4 + tmp, 16, 4 + tmp );
  81. k = ( i + 16 > dlen ) ? dlen % 16 : 16;
  82. for( j = 0; j < k; j++ )
  83. dstbuf[i + j] = h_i[j];
  84. }
  85. /*
  86. * XOR out with P_sha1(secret,label+random)[0..dlen]
  87. */
  88. sha1_hmac( S2, hs, tmp + 20, nb, tmp );
  89. for( i = 0; i < dlen; i += 20 )
  90. {
  91. sha1_hmac( S2, hs, tmp, 20 + nb, h_i );
  92. sha1_hmac( S2, hs, tmp, 20, tmp );
  93. k = ( i + 20 > dlen ) ? dlen % 20 : 20;
  94. for( j = 0; j < k; j++ )
  95. dstbuf[i + j] = (unsigned char)( dstbuf[i + j] ^ h_i[j] );
  96. }
  97. memset( tmp, 0, sizeof( tmp ) );
  98. memset( h_i, 0, sizeof( h_i ) );
  99. return( 0 );
  100. }
  101. int ssl_derive_keys( ssl_context *ssl )
  102. {
  103. int i;
  104. md5_context md5;
  105. sha1_context sha1;
  106. unsigned char tmp[64];
  107. unsigned char padding[16];
  108. unsigned char sha1sum[20];
  109. unsigned char keyblk[256];
  110. unsigned char *key1;
  111. unsigned char *key2;
  112. SSL_DEBUG_MSG( 2, ( "=> derive keys" ) );
  113. /*
  114. * SSLv3:
  115. * master =
  116. * MD5( premaster + SHA1( 'A' + premaster + randbytes ) ) +
  117. * MD5( premaster + SHA1( 'BB' + premaster + randbytes ) ) +
  118. * MD5( premaster + SHA1( 'CCC' + premaster + randbytes ) )
  119. *
  120. * TLSv1:
  121. * master = PRF( premaster, "master secret", randbytes )[0..47]
  122. */
  123. if( ssl->resume == 0 )
  124. {
  125. size_t len = ssl->pmslen;
  126. SSL_DEBUG_BUF( 3, "premaster secret", ssl->premaster, len );
  127. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  128. {
  129. for( i = 0; i < 3; i++ )
  130. {
  131. memset( padding, 'A' + i, 1 + i );
  132. sha1_starts( &sha1 );
  133. sha1_update( &sha1, padding, 1 + i );
  134. sha1_update( &sha1, ssl->premaster, len );
  135. sha1_update( &sha1, ssl->randbytes, 64 );
  136. sha1_finish( &sha1, sha1sum );
  137. md5_starts( &md5 );
  138. md5_update( &md5, ssl->premaster, len );
  139. md5_update( &md5, sha1sum, 20 );
  140. md5_finish( &md5, ssl->session->master + i * 16 );
  141. }
  142. }
  143. else
  144. tls1_prf( ssl->premaster, len, "master secret",
  145. ssl->randbytes, 64, ssl->session->master, 48 );
  146. memset( ssl->premaster, 0, sizeof( ssl->premaster ) );
  147. }
  148. else
  149. SSL_DEBUG_MSG( 3, ( "no premaster (session resumed)" ) );
  150. /*
  151. * Swap the client and server random values.
  152. */
  153. memcpy( tmp, ssl->randbytes, 64 );
  154. memcpy( ssl->randbytes, tmp + 32, 32 );
  155. memcpy( ssl->randbytes + 32, tmp, 32 );
  156. memset( tmp, 0, sizeof( tmp ) );
  157. /*
  158. * SSLv3:
  159. * key block =
  160. * MD5( master + SHA1( 'A' + master + randbytes ) ) +
  161. * MD5( master + SHA1( 'BB' + master + randbytes ) ) +
  162. * MD5( master + SHA1( 'CCC' + master + randbytes ) ) +
  163. * MD5( master + SHA1( 'DDDD' + master + randbytes ) ) +
  164. * ...
  165. *
  166. * TLSv1:
  167. * key block = PRF( master, "key expansion", randbytes )
  168. */
  169. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  170. {
  171. for( i = 0; i < 16; i++ )
  172. {
  173. memset( padding, 'A' + i, 1 + i );
  174. sha1_starts( &sha1 );
  175. sha1_update( &sha1, padding, 1 + i );
  176. sha1_update( &sha1, ssl->session->master, 48 );
  177. sha1_update( &sha1, ssl->randbytes, 64 );
  178. sha1_finish( &sha1, sha1sum );
  179. md5_starts( &md5 );
  180. md5_update( &md5, ssl->session->master, 48 );
  181. md5_update( &md5, sha1sum, 20 );
  182. md5_finish( &md5, keyblk + i * 16 );
  183. }
  184. memset( &md5, 0, sizeof( md5 ) );
  185. memset( &sha1, 0, sizeof( sha1 ) );
  186. memset( padding, 0, sizeof( padding ) );
  187. memset( sha1sum, 0, sizeof( sha1sum ) );
  188. }
  189. else
  190. tls1_prf( ssl->session->master, 48, "key expansion",
  191. ssl->randbytes, 64, keyblk, 256 );
  192. SSL_DEBUG_MSG( 3, ( "ciphersuite = %s", ssl_get_ciphersuite( ssl ) ) );
  193. SSL_DEBUG_BUF( 3, "master secret", ssl->session->master, 48 );
  194. SSL_DEBUG_BUF( 4, "random bytes", ssl->randbytes, 64 );
  195. SSL_DEBUG_BUF( 4, "key block", keyblk, 256 );
  196. memset( ssl->randbytes, 0, sizeof( ssl->randbytes ) );
  197. /*
  198. * Determine the appropriate key, IV and MAC length.
  199. */
  200. switch( ssl->session->ciphersuite )
  201. {
  202. #if defined(POLARSSL_ARC4_C)
  203. case SSL_RSA_RC4_128_MD5:
  204. ssl->keylen = 16; ssl->minlen = 16;
  205. ssl->ivlen = 0; ssl->maclen = 16;
  206. break;
  207. case SSL_RSA_RC4_128_SHA:
  208. ssl->keylen = 16; ssl->minlen = 20;
  209. ssl->ivlen = 0; ssl->maclen = 20;
  210. break;
  211. #endif
  212. #if defined(POLARSSL_DES_C)
  213. case SSL_RSA_DES_168_SHA:
  214. case SSL_EDH_RSA_DES_168_SHA:
  215. ssl->keylen = 24; ssl->minlen = 24;
  216. ssl->ivlen = 8; ssl->maclen = 20;
  217. break;
  218. #endif
  219. #if defined(POLARSSL_AES_C)
  220. case SSL_RSA_AES_128_SHA:
  221. case SSL_EDH_RSA_AES_128_SHA:
  222. ssl->keylen = 16; ssl->minlen = 32;
  223. ssl->ivlen = 16; ssl->maclen = 20;
  224. break;
  225. case SSL_RSA_AES_256_SHA:
  226. case SSL_EDH_RSA_AES_256_SHA:
  227. ssl->keylen = 32; ssl->minlen = 32;
  228. ssl->ivlen = 16; ssl->maclen = 20;
  229. break;
  230. #endif
  231. #if defined(POLARSSL_CAMELLIA_C)
  232. case SSL_RSA_CAMELLIA_128_SHA:
  233. case SSL_EDH_RSA_CAMELLIA_128_SHA:
  234. ssl->keylen = 16; ssl->minlen = 32;
  235. ssl->ivlen = 16; ssl->maclen = 20;
  236. break;
  237. case SSL_RSA_CAMELLIA_256_SHA:
  238. case SSL_EDH_RSA_CAMELLIA_256_SHA:
  239. ssl->keylen = 32; ssl->minlen = 32;
  240. ssl->ivlen = 16; ssl->maclen = 20;
  241. break;
  242. #endif
  243. default:
  244. SSL_DEBUG_MSG( 1, ( "ciphersuite %s is not available",
  245. ssl_get_ciphersuite( ssl ) ) );
  246. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  247. }
  248. SSL_DEBUG_MSG( 3, ( "keylen: %d, minlen: %d, ivlen: %d, maclen: %d",
  249. ssl->keylen, ssl->minlen, ssl->ivlen, ssl->maclen ) );
  250. /*
  251. * Finally setup the cipher contexts, IVs and MAC secrets.
  252. */
  253. if( ssl->endpoint == SSL_IS_CLIENT )
  254. {
  255. key1 = keyblk + ssl->maclen * 2;
  256. key2 = keyblk + ssl->maclen * 2 + ssl->keylen;
  257. memcpy( ssl->mac_enc, keyblk, ssl->maclen );
  258. memcpy( ssl->mac_dec, keyblk + ssl->maclen, ssl->maclen );
  259. /*
  260. * This is not used in TLS v1.1.
  261. */
  262. memcpy( ssl->iv_enc, key2 + ssl->keylen, ssl->ivlen );
  263. memcpy( ssl->iv_dec, key2 + ssl->keylen + ssl->ivlen,
  264. ssl->ivlen );
  265. }
  266. else
  267. {
  268. key1 = keyblk + ssl->maclen * 2 + ssl->keylen;
  269. key2 = keyblk + ssl->maclen * 2;
  270. memcpy( ssl->mac_dec, keyblk, ssl->maclen );
  271. memcpy( ssl->mac_enc, keyblk + ssl->maclen, ssl->maclen );
  272. /*
  273. * This is not used in TLS v1.1.
  274. */
  275. memcpy( ssl->iv_dec, key1 + ssl->keylen, ssl->ivlen );
  276. memcpy( ssl->iv_enc, key1 + ssl->keylen + ssl->ivlen,
  277. ssl->ivlen );
  278. }
  279. switch( ssl->session->ciphersuite )
  280. {
  281. #if defined(POLARSSL_ARC4_C)
  282. case SSL_RSA_RC4_128_MD5:
  283. case SSL_RSA_RC4_128_SHA:
  284. arc4_setup( (arc4_context *) ssl->ctx_enc, key1, ssl->keylen );
  285. arc4_setup( (arc4_context *) ssl->ctx_dec, key2, ssl->keylen );
  286. break;
  287. #endif
  288. #if defined(POLARSSL_DES_C)
  289. case SSL_RSA_DES_168_SHA:
  290. case SSL_EDH_RSA_DES_168_SHA:
  291. des3_set3key_enc( (des3_context *) ssl->ctx_enc, key1 );
  292. des3_set3key_dec( (des3_context *) ssl->ctx_dec, key2 );
  293. break;
  294. #endif
  295. #if defined(POLARSSL_AES_C)
  296. case SSL_RSA_AES_128_SHA:
  297. case SSL_EDH_RSA_AES_128_SHA:
  298. aes_setkey_enc( (aes_context *) ssl->ctx_enc, key1, 128 );
  299. aes_setkey_dec( (aes_context *) ssl->ctx_dec, key2, 128 );
  300. break;
  301. case SSL_RSA_AES_256_SHA:
  302. case SSL_EDH_RSA_AES_256_SHA:
  303. aes_setkey_enc( (aes_context *) ssl->ctx_enc, key1, 256 );
  304. aes_setkey_dec( (aes_context *) ssl->ctx_dec, key2, 256 );
  305. break;
  306. #endif
  307. #if defined(POLARSSL_CAMELLIA_C)
  308. case SSL_RSA_CAMELLIA_128_SHA:
  309. case SSL_EDH_RSA_CAMELLIA_128_SHA:
  310. camellia_setkey_enc( (camellia_context *) ssl->ctx_enc, key1, 128 );
  311. camellia_setkey_dec( (camellia_context *) ssl->ctx_dec, key2, 128 );
  312. break;
  313. case SSL_RSA_CAMELLIA_256_SHA:
  314. case SSL_EDH_RSA_CAMELLIA_256_SHA:
  315. camellia_setkey_enc( (camellia_context *) ssl->ctx_enc, key1, 256 );
  316. camellia_setkey_dec( (camellia_context *) ssl->ctx_dec, key2, 256 );
  317. break;
  318. #endif
  319. default:
  320. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  321. }
  322. memset( keyblk, 0, sizeof( keyblk ) );
  323. SSL_DEBUG_MSG( 2, ( "<= derive keys" ) );
  324. return( 0 );
  325. }
  326. void ssl_calc_verify( ssl_context *ssl, unsigned char hash[36] )
  327. {
  328. md5_context md5;
  329. sha1_context sha1;
  330. unsigned char pad_1[48];
  331. unsigned char pad_2[48];
  332. SSL_DEBUG_MSG( 2, ( "=> calc verify" ) );
  333. memcpy( &md5 , &ssl->fin_md5 , sizeof( md5_context ) );
  334. memcpy( &sha1, &ssl->fin_sha1, sizeof( sha1_context ) );
  335. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  336. {
  337. memset( pad_1, 0x36, 48 );
  338. memset( pad_2, 0x5C, 48 );
  339. md5_update( &md5, ssl->session->master, 48 );
  340. md5_update( &md5, pad_1, 48 );
  341. md5_finish( &md5, hash );
  342. md5_starts( &md5 );
  343. md5_update( &md5, ssl->session->master, 48 );
  344. md5_update( &md5, pad_2, 48 );
  345. md5_update( &md5, hash, 16 );
  346. md5_finish( &md5, hash );
  347. sha1_update( &sha1, ssl->session->master, 48 );
  348. sha1_update( &sha1, pad_1, 40 );
  349. sha1_finish( &sha1, hash + 16 );
  350. sha1_starts( &sha1 );
  351. sha1_update( &sha1, ssl->session->master, 48 );
  352. sha1_update( &sha1, pad_2, 40 );
  353. sha1_update( &sha1, hash + 16, 20 );
  354. sha1_finish( &sha1, hash + 16 );
  355. }
  356. else /* TLSv1 */
  357. {
  358. md5_finish( &md5, hash );
  359. sha1_finish( &sha1, hash + 16 );
  360. }
  361. SSL_DEBUG_BUF( 3, "calculated verify result", hash, 36 );
  362. SSL_DEBUG_MSG( 2, ( "<= calc verify" ) );
  363. return;
  364. }
  365. /*
  366. * SSLv3.0 MAC functions
  367. */
  368. static void ssl_mac_md5( unsigned char *secret,
  369. unsigned char *buf, size_t len,
  370. unsigned char *ctr, int type )
  371. {
  372. unsigned char header[11];
  373. unsigned char padding[48];
  374. md5_context md5;
  375. memcpy( header, ctr, 8 );
  376. header[ 8] = (unsigned char) type;
  377. header[ 9] = (unsigned char)( len >> 8 );
  378. header[10] = (unsigned char)( len );
  379. memset( padding, 0x36, 48 );
  380. md5_starts( &md5 );
  381. md5_update( &md5, secret, 16 );
  382. md5_update( &md5, padding, 48 );
  383. md5_update( &md5, header, 11 );
  384. md5_update( &md5, buf, len );
  385. md5_finish( &md5, buf + len );
  386. memset( padding, 0x5C, 48 );
  387. md5_starts( &md5 );
  388. md5_update( &md5, secret, 16 );
  389. md5_update( &md5, padding, 48 );
  390. md5_update( &md5, buf + len, 16 );
  391. md5_finish( &md5, buf + len );
  392. }
  393. static void ssl_mac_sha1( unsigned char *secret,
  394. unsigned char *buf, size_t len,
  395. unsigned char *ctr, int type )
  396. {
  397. unsigned char header[11];
  398. unsigned char padding[40];
  399. sha1_context sha1;
  400. memcpy( header, ctr, 8 );
  401. header[ 8] = (unsigned char) type;
  402. header[ 9] = (unsigned char)( len >> 8 );
  403. header[10] = (unsigned char)( len );
  404. memset( padding, 0x36, 40 );
  405. sha1_starts( &sha1 );
  406. sha1_update( &sha1, secret, 20 );
  407. sha1_update( &sha1, padding, 40 );
  408. sha1_update( &sha1, header, 11 );
  409. sha1_update( &sha1, buf, len );
  410. sha1_finish( &sha1, buf + len );
  411. memset( padding, 0x5C, 40 );
  412. sha1_starts( &sha1 );
  413. sha1_update( &sha1, secret, 20 );
  414. sha1_update( &sha1, padding, 40 );
  415. sha1_update( &sha1, buf + len, 20 );
  416. sha1_finish( &sha1, buf + len );
  417. }
  418. /*
  419. * Encryption/decryption functions
  420. */
  421. static int ssl_encrypt_buf( ssl_context *ssl )
  422. {
  423. size_t i, padlen;
  424. SSL_DEBUG_MSG( 2, ( "=> encrypt buf" ) );
  425. /*
  426. * Add MAC then encrypt
  427. */
  428. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  429. {
  430. if( ssl->maclen == 16 )
  431. ssl_mac_md5( ssl->mac_enc,
  432. ssl->out_msg, ssl->out_msglen,
  433. ssl->out_ctr, ssl->out_msgtype );
  434. if( ssl->maclen == 20 )
  435. ssl_mac_sha1( ssl->mac_enc,
  436. ssl->out_msg, ssl->out_msglen,
  437. ssl->out_ctr, ssl->out_msgtype );
  438. }
  439. else
  440. {
  441. if( ssl->maclen == 16 )
  442. md5_hmac( ssl->mac_enc, 16,
  443. ssl->out_ctr, ssl->out_msglen + 13,
  444. ssl->out_msg + ssl->out_msglen );
  445. if( ssl->maclen == 20 )
  446. sha1_hmac( ssl->mac_enc, 20,
  447. ssl->out_ctr, ssl->out_msglen + 13,
  448. ssl->out_msg + ssl->out_msglen );
  449. }
  450. SSL_DEBUG_BUF( 4, "computed mac",
  451. ssl->out_msg + ssl->out_msglen, ssl->maclen );
  452. ssl->out_msglen += ssl->maclen;
  453. for( i = 8; i > 0; i-- )
  454. if( ++ssl->out_ctr[i - 1] != 0 )
  455. break;
  456. if( ssl->ivlen == 0 )
  457. {
  458. #if defined(POLARSSL_ARC4_C)
  459. padlen = 0;
  460. SSL_DEBUG_MSG( 3, ( "before encrypt: msglen = %d, "
  461. "including %d bytes of padding",
  462. ssl->out_msglen, 0 ) );
  463. SSL_DEBUG_BUF( 4, "before encrypt: output payload",
  464. ssl->out_msg, ssl->out_msglen );
  465. arc4_crypt( (arc4_context *) ssl->ctx_enc,
  466. ssl->out_msglen, ssl->out_msg,
  467. ssl->out_msg );
  468. #else
  469. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  470. #endif
  471. }
  472. else
  473. {
  474. unsigned char *enc_msg;
  475. size_t enc_msglen;
  476. padlen = ssl->ivlen - ( ssl->out_msglen + 1 ) % ssl->ivlen;
  477. if( padlen == ssl->ivlen )
  478. padlen = 0;
  479. for( i = 0; i <= padlen; i++ )
  480. ssl->out_msg[ssl->out_msglen + i] = (unsigned char) padlen;
  481. ssl->out_msglen += padlen + 1;
  482. enc_msglen = ssl->out_msglen;
  483. enc_msg = ssl->out_msg;
  484. /*
  485. * Prepend per-record IV for block cipher in TLS v1.1 as per
  486. * Method 1 (6.2.3.2. in RFC4346)
  487. */
  488. if( ssl->minor_ver == SSL_MINOR_VERSION_2 )
  489. {
  490. /*
  491. * Generate IV
  492. */
  493. for( i = 0; i < ssl->ivlen; i++ )
  494. ssl->iv_enc[i] = ssl->f_rng( ssl->p_rng );
  495. /*
  496. * Shift message for ivlen bytes and prepend IV
  497. */
  498. memmove( ssl->out_msg + ssl->ivlen, ssl->out_msg, ssl->out_msglen );
  499. memcpy( ssl->out_msg, ssl->iv_enc, ssl->ivlen );
  500. /*
  501. * Fix pointer positions and message length with added IV
  502. */
  503. enc_msg = ssl->out_msg + ssl->ivlen;
  504. enc_msglen = ssl->out_msglen;
  505. ssl->out_msglen += ssl->ivlen;
  506. }
  507. SSL_DEBUG_MSG( 3, ( "before encrypt: msglen = %d, "
  508. "including %d bytes of IV and %d bytes of padding",
  509. ssl->out_msglen, ssl->ivlen, padlen + 1 ) );
  510. SSL_DEBUG_BUF( 4, "before encrypt: output payload",
  511. ssl->out_msg, ssl->out_msglen );
  512. switch( ssl->ivlen )
  513. {
  514. case 8:
  515. #if defined(POLARSSL_DES_C)
  516. des3_crypt_cbc( (des3_context *) ssl->ctx_enc,
  517. DES_ENCRYPT, enc_msglen,
  518. ssl->iv_enc, enc_msg, enc_msg );
  519. break;
  520. #endif
  521. case 16:
  522. #if defined(POLARSSL_AES_C)
  523. if ( ssl->session->ciphersuite == SSL_RSA_AES_128_SHA ||
  524. ssl->session->ciphersuite == SSL_EDH_RSA_AES_128_SHA ||
  525. ssl->session->ciphersuite == SSL_RSA_AES_256_SHA ||
  526. ssl->session->ciphersuite == SSL_EDH_RSA_AES_256_SHA)
  527. {
  528. aes_crypt_cbc( (aes_context *) ssl->ctx_enc,
  529. AES_ENCRYPT, enc_msglen,
  530. ssl->iv_enc, enc_msg, enc_msg);
  531. break;
  532. }
  533. #endif
  534. #if defined(POLARSSL_CAMELLIA_C)
  535. if ( ssl->session->ciphersuite == SSL_RSA_CAMELLIA_128_SHA ||
  536. ssl->session->ciphersuite == SSL_EDH_RSA_CAMELLIA_128_SHA ||
  537. ssl->session->ciphersuite == SSL_RSA_CAMELLIA_256_SHA ||
  538. ssl->session->ciphersuite == SSL_EDH_RSA_CAMELLIA_256_SHA)
  539. {
  540. camellia_crypt_cbc( (camellia_context *) ssl->ctx_enc,
  541. CAMELLIA_ENCRYPT, enc_msglen,
  542. ssl->iv_enc, enc_msg, enc_msg );
  543. break;
  544. }
  545. #endif
  546. default:
  547. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  548. }
  549. }
  550. SSL_DEBUG_MSG( 2, ( "<= encrypt buf" ) );
  551. return( 0 );
  552. }
  553. static int ssl_decrypt_buf( ssl_context *ssl )
  554. {
  555. size_t i, padlen;
  556. unsigned char tmp[20];
  557. SSL_DEBUG_MSG( 2, ( "=> decrypt buf" ) );
  558. if( ssl->in_msglen < ssl->minlen )
  559. {
  560. SSL_DEBUG_MSG( 1, ( "in_msglen (%d) < minlen (%d)",
  561. ssl->in_msglen, ssl->minlen ) );
  562. return( POLARSSL_ERR_SSL_INVALID_MAC );
  563. }
  564. if( ssl->ivlen == 0 )
  565. {
  566. #if defined(POLARSSL_ARC4_C)
  567. padlen = 0;
  568. arc4_crypt( (arc4_context *) ssl->ctx_dec,
  569. ssl->in_msglen, ssl->in_msg,
  570. ssl->in_msg );
  571. #else
  572. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  573. #endif
  574. }
  575. else
  576. {
  577. unsigned char *dec_msg;
  578. unsigned char *dec_msg_result;
  579. size_t dec_msglen;
  580. /*
  581. * Decrypt and check the padding
  582. */
  583. if( ssl->in_msglen % ssl->ivlen != 0 )
  584. {
  585. SSL_DEBUG_MSG( 1, ( "msglen (%d) %% ivlen (%d) != 0",
  586. ssl->in_msglen, ssl->ivlen ) );
  587. return( POLARSSL_ERR_SSL_INVALID_MAC );
  588. }
  589. dec_msglen = ssl->in_msglen;
  590. dec_msg = ssl->in_msg;
  591. dec_msg_result = ssl->in_msg;
  592. /*
  593. * Initialize for prepended IV for block cipher in TLS v1.1
  594. */
  595. if( ssl->minor_ver == SSL_MINOR_VERSION_2 )
  596. {
  597. dec_msg += ssl->ivlen;
  598. dec_msglen -= ssl->ivlen;
  599. ssl->in_msglen -= ssl->ivlen;
  600. for( i = 0; i < ssl->ivlen; i++ )
  601. ssl->iv_dec[i] = ssl->in_msg[i];
  602. }
  603. switch( ssl->ivlen )
  604. {
  605. #if defined(POLARSSL_DES_C)
  606. case 8:
  607. des3_crypt_cbc( (des3_context *) ssl->ctx_dec,
  608. DES_DECRYPT, dec_msglen,
  609. ssl->iv_dec, dec_msg, dec_msg_result );
  610. break;
  611. #endif
  612. case 16:
  613. #if defined(POLARSSL_AES_C)
  614. if ( ssl->session->ciphersuite == SSL_RSA_AES_128_SHA ||
  615. ssl->session->ciphersuite == SSL_EDH_RSA_AES_128_SHA ||
  616. ssl->session->ciphersuite == SSL_RSA_AES_256_SHA ||
  617. ssl->session->ciphersuite == SSL_EDH_RSA_AES_256_SHA)
  618. {
  619. aes_crypt_cbc( (aes_context *) ssl->ctx_dec,
  620. AES_DECRYPT, dec_msglen,
  621. ssl->iv_dec, dec_msg, dec_msg_result );
  622. break;
  623. }
  624. #endif
  625. #if defined(POLARSSL_CAMELLIA_C)
  626. if ( ssl->session->ciphersuite == SSL_RSA_CAMELLIA_128_SHA ||
  627. ssl->session->ciphersuite == SSL_EDH_RSA_CAMELLIA_128_SHA ||
  628. ssl->session->ciphersuite == SSL_RSA_CAMELLIA_256_SHA ||
  629. ssl->session->ciphersuite == SSL_EDH_RSA_CAMELLIA_256_SHA)
  630. {
  631. camellia_crypt_cbc( (camellia_context *) ssl->ctx_dec,
  632. CAMELLIA_DECRYPT, dec_msglen,
  633. ssl->iv_dec, dec_msg, dec_msg_result );
  634. break;
  635. }
  636. #endif
  637. default:
  638. return( POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE );
  639. }
  640. padlen = 1 + ssl->in_msg[ssl->in_msglen - 1];
  641. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  642. {
  643. if( padlen > ssl->ivlen )
  644. {
  645. SSL_DEBUG_MSG( 1, ( "bad padding length: is %d, "
  646. "should be no more than %d",
  647. padlen, ssl->ivlen ) );
  648. padlen = 0;
  649. }
  650. }
  651. else
  652. {
  653. /*
  654. * TLSv1: always check the padding
  655. */
  656. for( i = 1; i <= padlen; i++ )
  657. {
  658. if( ssl->in_msg[ssl->in_msglen - i] != padlen - 1 )
  659. {
  660. SSL_DEBUG_MSG( 1, ( "bad padding byte: should be "
  661. "%02x, but is %02x", padlen - 1,
  662. ssl->in_msg[ssl->in_msglen - i] ) );
  663. padlen = 0;
  664. }
  665. }
  666. }
  667. }
  668. SSL_DEBUG_BUF( 4, "raw buffer after decryption",
  669. ssl->in_msg, ssl->in_msglen );
  670. /*
  671. * Always compute the MAC (RFC4346, CBCTIME).
  672. */
  673. ssl->in_msglen -= ( ssl->maclen + padlen );
  674. ssl->in_hdr[3] = (unsigned char)( ssl->in_msglen >> 8 );
  675. ssl->in_hdr[4] = (unsigned char)( ssl->in_msglen );
  676. memcpy( tmp, ssl->in_msg + ssl->in_msglen, 20 );
  677. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  678. {
  679. if( ssl->maclen == 16 )
  680. ssl_mac_md5( ssl->mac_dec,
  681. ssl->in_msg, ssl->in_msglen,
  682. ssl->in_ctr, ssl->in_msgtype );
  683. else
  684. ssl_mac_sha1( ssl->mac_dec,
  685. ssl->in_msg, ssl->in_msglen,
  686. ssl->in_ctr, ssl->in_msgtype );
  687. }
  688. else
  689. {
  690. if( ssl->maclen == 16 )
  691. md5_hmac( ssl->mac_dec, 16,
  692. ssl->in_ctr, ssl->in_msglen + 13,
  693. ssl->in_msg + ssl->in_msglen );
  694. else
  695. sha1_hmac( ssl->mac_dec, 20,
  696. ssl->in_ctr, ssl->in_msglen + 13,
  697. ssl->in_msg + ssl->in_msglen );
  698. }
  699. SSL_DEBUG_BUF( 4, "message mac", tmp, ssl->maclen );
  700. SSL_DEBUG_BUF( 4, "computed mac", ssl->in_msg + ssl->in_msglen,
  701. ssl->maclen );
  702. if( memcmp( tmp, ssl->in_msg + ssl->in_msglen,
  703. ssl->maclen ) != 0 )
  704. {
  705. SSL_DEBUG_MSG( 1, ( "message mac does not match" ) );
  706. return( POLARSSL_ERR_SSL_INVALID_MAC );
  707. }
  708. /*
  709. * Finally check the padding length; bad padding
  710. * will produce the same error as an invalid MAC.
  711. */
  712. if( ssl->ivlen != 0 && padlen == 0 )
  713. return( POLARSSL_ERR_SSL_INVALID_MAC );
  714. if( ssl->in_msglen == 0 )
  715. {
  716. ssl->nb_zero++;
  717. /*
  718. * Three or more empty messages may be a DoS attack
  719. * (excessive CPU consumption).
  720. */
  721. if( ssl->nb_zero > 3 )
  722. {
  723. SSL_DEBUG_MSG( 1, ( "received four consecutive empty "
  724. "messages, possible DoS attack" ) );
  725. return( POLARSSL_ERR_SSL_INVALID_MAC );
  726. }
  727. }
  728. else
  729. ssl->nb_zero = 0;
  730. for( i = 8; i > 0; i-- )
  731. if( ++ssl->in_ctr[i - 1] != 0 )
  732. break;
  733. SSL_DEBUG_MSG( 2, ( "<= decrypt buf" ) );
  734. return( 0 );
  735. }
  736. /*
  737. * Fill the input message buffer
  738. */
  739. int ssl_fetch_input( ssl_context *ssl, size_t nb_want )
  740. {
  741. int ret;
  742. size_t len;
  743. SSL_DEBUG_MSG( 2, ( "=> fetch input" ) );
  744. while( ssl->in_left < nb_want )
  745. {
  746. len = nb_want - ssl->in_left;
  747. ret = ssl->f_recv( ssl->p_recv, ssl->in_hdr + ssl->in_left, len );
  748. SSL_DEBUG_MSG( 2, ( "in_left: %d, nb_want: %d",
  749. ssl->in_left, nb_want ) );
  750. SSL_DEBUG_RET( 2, "ssl->f_recv", ret );
  751. if( ret == 0 )
  752. return( POLARSSL_ERR_SSL_CONN_EOF );
  753. if( ret < 0 )
  754. return( ret );
  755. ssl->in_left += ret;
  756. }
  757. SSL_DEBUG_MSG( 2, ( "<= fetch input" ) );
  758. return( 0 );
  759. }
  760. /*
  761. * Flush any data not yet written
  762. */
  763. int ssl_flush_output( ssl_context *ssl )
  764. {
  765. int ret;
  766. unsigned char *buf;
  767. SSL_DEBUG_MSG( 2, ( "=> flush output" ) );
  768. while( ssl->out_left > 0 )
  769. {
  770. SSL_DEBUG_MSG( 2, ( "message length: %d, out_left: %d",
  771. 5 + ssl->out_msglen, ssl->out_left ) );
  772. buf = ssl->out_hdr + 5 + ssl->out_msglen - ssl->out_left;
  773. ret = ssl->f_send( ssl->p_send, buf, ssl->out_left );
  774. SSL_DEBUG_RET( 2, "ssl->f_send", ret );
  775. if( ret <= 0 )
  776. return( ret );
  777. ssl->out_left -= ret;
  778. }
  779. SSL_DEBUG_MSG( 2, ( "<= flush output" ) );
  780. return( 0 );
  781. }
  782. /*
  783. * Record layer functions
  784. */
  785. int ssl_write_record( ssl_context *ssl )
  786. {
  787. int ret;
  788. size_t len = ssl->out_msglen;
  789. SSL_DEBUG_MSG( 2, ( "=> write record" ) );
  790. ssl->out_hdr[0] = (unsigned char) ssl->out_msgtype;
  791. ssl->out_hdr[1] = (unsigned char) ssl->major_ver;
  792. ssl->out_hdr[2] = (unsigned char) ssl->minor_ver;
  793. ssl->out_hdr[3] = (unsigned char)( len >> 8 );
  794. ssl->out_hdr[4] = (unsigned char)( len );
  795. if( ssl->out_msgtype == SSL_MSG_HANDSHAKE )
  796. {
  797. ssl->out_msg[1] = (unsigned char)( ( len - 4 ) >> 16 );
  798. ssl->out_msg[2] = (unsigned char)( ( len - 4 ) >> 8 );
  799. ssl->out_msg[3] = (unsigned char)( ( len - 4 ) );
  800. md5_update( &ssl->fin_md5 , ssl->out_msg, len );
  801. sha1_update( &ssl->fin_sha1, ssl->out_msg, len );
  802. }
  803. if( ssl->do_crypt != 0 )
  804. {
  805. if( ( ret = ssl_encrypt_buf( ssl ) ) != 0 )
  806. {
  807. SSL_DEBUG_RET( 1, "ssl_encrypt_buf", ret );
  808. return( ret );
  809. }
  810. len = ssl->out_msglen;
  811. ssl->out_hdr[3] = (unsigned char)( len >> 8 );
  812. ssl->out_hdr[4] = (unsigned char)( len );
  813. }
  814. ssl->out_left = 5 + ssl->out_msglen;
  815. SSL_DEBUG_MSG( 3, ( "output record: msgtype = %d, "
  816. "version = [%d:%d], msglen = %d",
  817. ssl->out_hdr[0], ssl->out_hdr[1], ssl->out_hdr[2],
  818. ( ssl->out_hdr[3] << 8 ) | ssl->out_hdr[4] ) );
  819. SSL_DEBUG_BUF( 4, "output record sent to network",
  820. ssl->out_hdr, 5 + ssl->out_msglen );
  821. if( ( ret = ssl_flush_output( ssl ) ) != 0 )
  822. {
  823. SSL_DEBUG_RET( 1, "ssl_flush_output", ret );
  824. return( ret );
  825. }
  826. SSL_DEBUG_MSG( 2, ( "<= write record" ) );
  827. return( 0 );
  828. }
  829. int ssl_read_record( ssl_context *ssl )
  830. {
  831. int ret;
  832. SSL_DEBUG_MSG( 2, ( "=> read record" ) );
  833. if( ssl->in_hslen != 0 &&
  834. ssl->in_hslen < ssl->in_msglen )
  835. {
  836. /*
  837. * Get next Handshake message in the current record
  838. */
  839. ssl->in_msglen -= ssl->in_hslen;
  840. memmove( ssl->in_msg, ssl->in_msg + ssl->in_hslen,
  841. ssl->in_msglen );
  842. ssl->in_hslen = 4;
  843. ssl->in_hslen += ( ssl->in_msg[2] << 8 ) | ssl->in_msg[3];
  844. SSL_DEBUG_MSG( 3, ( "handshake message: msglen ="
  845. " %d, type = %d, hslen = %d",
  846. ssl->in_msglen, ssl->in_msg[0], ssl->in_hslen ) );
  847. if( ssl->in_msglen < 4 || ssl->in_msg[1] != 0 )
  848. {
  849. SSL_DEBUG_MSG( 1, ( "bad handshake length" ) );
  850. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  851. }
  852. if( ssl->in_msglen < ssl->in_hslen )
  853. {
  854. SSL_DEBUG_MSG( 1, ( "bad handshake length" ) );
  855. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  856. }
  857. md5_update( &ssl->fin_md5 , ssl->in_msg, ssl->in_hslen );
  858. sha1_update( &ssl->fin_sha1, ssl->in_msg, ssl->in_hslen );
  859. return( 0 );
  860. }
  861. ssl->in_hslen = 0;
  862. /*
  863. * Read the record header and validate it
  864. */
  865. if( ( ret = ssl_fetch_input( ssl, 5 ) ) != 0 )
  866. {
  867. SSL_DEBUG_RET( 1, "ssl_fetch_input", ret );
  868. return( ret );
  869. }
  870. ssl->in_msgtype = ssl->in_hdr[0];
  871. ssl->in_msglen = ( ssl->in_hdr[3] << 8 ) | ssl->in_hdr[4];
  872. SSL_DEBUG_MSG( 3, ( "input record: msgtype = %d, "
  873. "version = [%d:%d], msglen = %d",
  874. ssl->in_hdr[0], ssl->in_hdr[1], ssl->in_hdr[2],
  875. ( ssl->in_hdr[3] << 8 ) | ssl->in_hdr[4] ) );
  876. if( ssl->in_hdr[1] != ssl->major_ver )
  877. {
  878. SSL_DEBUG_MSG( 1, ( "major version mismatch" ) );
  879. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  880. }
  881. if( ssl->in_hdr[2] > ssl->max_minor_ver )
  882. {
  883. SSL_DEBUG_MSG( 1, ( "minor version mismatch" ) );
  884. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  885. }
  886. /*
  887. * Make sure the message length is acceptable
  888. */
  889. if( ssl->do_crypt == 0 )
  890. {
  891. if( ssl->in_msglen < 1 ||
  892. ssl->in_msglen > SSL_MAX_CONTENT_LEN )
  893. {
  894. SSL_DEBUG_MSG( 1, ( "bad message length" ) );
  895. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  896. }
  897. }
  898. else
  899. {
  900. if( ssl->in_msglen < ssl->minlen )
  901. {
  902. SSL_DEBUG_MSG( 1, ( "bad message length" ) );
  903. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  904. }
  905. if( ssl->minor_ver == SSL_MINOR_VERSION_0 &&
  906. ssl->in_msglen > ssl->minlen + SSL_MAX_CONTENT_LEN )
  907. {
  908. SSL_DEBUG_MSG( 1, ( "bad message length" ) );
  909. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  910. }
  911. /*
  912. * TLS encrypted messages can have up to 256 bytes of padding
  913. */
  914. if( ssl->minor_ver == SSL_MINOR_VERSION_1 &&
  915. ssl->in_msglen > ssl->minlen + SSL_MAX_CONTENT_LEN + 256 )
  916. {
  917. SSL_DEBUG_MSG( 1, ( "bad message length" ) );
  918. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  919. }
  920. }
  921. /*
  922. * Read and optionally decrypt the message contents
  923. */
  924. if( ( ret = ssl_fetch_input( ssl, 5 + ssl->in_msglen ) ) != 0 )
  925. {
  926. SSL_DEBUG_RET( 1, "ssl_fetch_input", ret );
  927. return( ret );
  928. }
  929. SSL_DEBUG_BUF( 4, "input record from network",
  930. ssl->in_hdr, 5 + ssl->in_msglen );
  931. if( ssl->do_crypt != 0 )
  932. {
  933. if( ( ret = ssl_decrypt_buf( ssl ) ) != 0 )
  934. {
  935. SSL_DEBUG_RET( 1, "ssl_decrypt_buf", ret );
  936. return( ret );
  937. }
  938. SSL_DEBUG_BUF( 4, "input payload after decrypt",
  939. ssl->in_msg, ssl->in_msglen );
  940. if( ssl->in_msglen > SSL_MAX_CONTENT_LEN )
  941. {
  942. SSL_DEBUG_MSG( 1, ( "bad message length" ) );
  943. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  944. }
  945. }
  946. if( ssl->in_msgtype == SSL_MSG_HANDSHAKE )
  947. {
  948. ssl->in_hslen = 4;
  949. ssl->in_hslen += ( ssl->in_msg[2] << 8 ) | ssl->in_msg[3];
  950. SSL_DEBUG_MSG( 3, ( "handshake message: msglen ="
  951. " %d, type = %d, hslen = %d",
  952. ssl->in_msglen, ssl->in_msg[0], ssl->in_hslen ) );
  953. /*
  954. * Additional checks to validate the handshake header
  955. */
  956. if( ssl->in_msglen < 4 || ssl->in_msg[1] != 0 )
  957. {
  958. SSL_DEBUG_MSG( 1, ( "bad handshake length" ) );
  959. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  960. }
  961. if( ssl->in_msglen < ssl->in_hslen )
  962. {
  963. SSL_DEBUG_MSG( 1, ( "bad handshake length" ) );
  964. return( POLARSSL_ERR_SSL_INVALID_RECORD );
  965. }
  966. md5_update( &ssl->fin_md5 , ssl->in_msg, ssl->in_hslen );
  967. sha1_update( &ssl->fin_sha1, ssl->in_msg, ssl->in_hslen );
  968. }
  969. if( ssl->in_msgtype == SSL_MSG_ALERT )
  970. {
  971. SSL_DEBUG_MSG( 2, ( "got an alert message, type: [%d:%d]",
  972. ssl->in_msg[0], ssl->in_msg[1] ) );
  973. /*
  974. * Ignore non-fatal alerts, except close_notify
  975. */
  976. if( ssl->in_msg[0] == SSL_ALERT_LEVEL_FATAL )
  977. {
  978. SSL_DEBUG_MSG( 1, ( "is a fatal alert message" ) );
  979. /**
  980. * Subtract from error code as ssl->in_msg[1] is 7-bit positive
  981. * error identifier.
  982. */
  983. return( POLARSSL_ERR_SSL_FATAL_ALERT_MESSAGE - ssl->in_msg[1] );
  984. }
  985. if( ssl->in_msg[0] == SSL_ALERT_LEVEL_WARNING &&
  986. ssl->in_msg[1] == SSL_ALERT_MSG_CLOSE_NOTIFY )
  987. {
  988. SSL_DEBUG_MSG( 2, ( "is a close notify message" ) );
  989. return( POLARSSL_ERR_SSL_PEER_CLOSE_NOTIFY );
  990. }
  991. }
  992. ssl->in_left = 0;
  993. SSL_DEBUG_MSG( 2, ( "<= read record" ) );
  994. return( 0 );
  995. }
  996. /*
  997. * Handshake functions
  998. */
  999. int ssl_write_certificate( ssl_context *ssl )
  1000. {
  1001. int ret;
  1002. size_t i, n;
  1003. const x509_cert *crt;
  1004. SSL_DEBUG_MSG( 2, ( "=> write certificate" ) );
  1005. if( ssl->endpoint == SSL_IS_CLIENT )
  1006. {
  1007. if( ssl->client_auth == 0 )
  1008. {
  1009. SSL_DEBUG_MSG( 2, ( "<= skip write certificate" ) );
  1010. ssl->state++;
  1011. return( 0 );
  1012. }
  1013. /*
  1014. * If using SSLv3 and got no cert, send an Alert message
  1015. * (otherwise an empty Certificate message will be sent).
  1016. */
  1017. if( ssl->own_cert == NULL &&
  1018. ssl->minor_ver == SSL_MINOR_VERSION_0 )
  1019. {
  1020. ssl->out_msglen = 2;
  1021. ssl->out_msgtype = SSL_MSG_ALERT;
  1022. ssl->out_msg[0] = SSL_ALERT_LEVEL_WARNING;
  1023. ssl->out_msg[1] = SSL_ALERT_MSG_NO_CERT;
  1024. SSL_DEBUG_MSG( 2, ( "got no certificate to send" ) );
  1025. goto write_msg;
  1026. }
  1027. }
  1028. else /* SSL_IS_SERVER */
  1029. {
  1030. if( ssl->own_cert == NULL )
  1031. {
  1032. SSL_DEBUG_MSG( 1, ( "got no certificate to send" ) );
  1033. return( POLARSSL_ERR_SSL_CERTIFICATE_REQUIRED );
  1034. }
  1035. }
  1036. SSL_DEBUG_CRT( 3, "own certificate", ssl->own_cert );
  1037. /*
  1038. * 0 . 0 handshake type
  1039. * 1 . 3 handshake length
  1040. * 4 . 6 length of all certs
  1041. * 7 . 9 length of cert. 1
  1042. * 10 . n-1 peer certificate
  1043. * n . n+2 length of cert. 2
  1044. * n+3 . ... upper level cert, etc.
  1045. */
  1046. i = 7;
  1047. crt = ssl->own_cert;
  1048. while( crt != NULL )
  1049. {
  1050. n = crt->raw.len;
  1051. if( i + 3 + n > SSL_MAX_CONTENT_LEN )
  1052. {
  1053. SSL_DEBUG_MSG( 1, ( "certificate too large, %d > %d",
  1054. i + 3 + n, SSL_MAX_CONTENT_LEN ) );
  1055. return( POLARSSL_ERR_SSL_CERTIFICATE_TOO_LARGE );
  1056. }
  1057. ssl->out_msg[i ] = (unsigned char)( n >> 16 );
  1058. ssl->out_msg[i + 1] = (unsigned char)( n >> 8 );
  1059. ssl->out_msg[i + 2] = (unsigned char)( n );
  1060. i += 3; memcpy( ssl->out_msg + i, crt->raw.p, n );
  1061. i += n; crt = crt->next;
  1062. }
  1063. ssl->out_msg[4] = (unsigned char)( ( i - 7 ) >> 16 );
  1064. ssl->out_msg[5] = (unsigned char)( ( i - 7 ) >> 8 );
  1065. ssl->out_msg[6] = (unsigned char)( ( i - 7 ) );
  1066. ssl->out_msglen = i;
  1067. ssl->out_msgtype = SSL_MSG_HANDSHAKE;
  1068. ssl->out_msg[0] = SSL_HS_CERTIFICATE;
  1069. write_msg:
  1070. ssl->state++;
  1071. if( ( ret = ssl_write_record( ssl ) ) != 0 )
  1072. {
  1073. SSL_DEBUG_RET( 1, "ssl_write_record", ret );
  1074. return( ret );
  1075. }
  1076. SSL_DEBUG_MSG( 2, ( "<= write certificate" ) );
  1077. return( 0 );
  1078. }
  1079. int ssl_parse_certificate( ssl_context *ssl )
  1080. {
  1081. int ret;
  1082. size_t i, n;
  1083. SSL_DEBUG_MSG( 2, ( "=> parse certificate" ) );
  1084. if( ssl->endpoint == SSL_IS_SERVER &&
  1085. ssl->authmode == SSL_VERIFY_NONE )
  1086. {
  1087. ssl->verify_result = BADCERT_SKIP_VERIFY;
  1088. SSL_DEBUG_MSG( 2, ( "<= skip parse certificate" ) );
  1089. ssl->state++;
  1090. return( 0 );
  1091. }
  1092. if( ( ret = ssl_read_record( ssl ) ) != 0 )
  1093. {
  1094. SSL_DEBUG_RET( 1, "ssl_read_record", ret );
  1095. return( ret );
  1096. }
  1097. ssl->state++;
  1098. /*
  1099. * Check if the client sent an empty certificate
  1100. */
  1101. if( ssl->endpoint == SSL_IS_SERVER &&
  1102. ssl->minor_ver == SSL_MINOR_VERSION_0 )
  1103. {
  1104. if( ssl->in_msglen == 2 &&
  1105. ssl->in_msgtype == SSL_MSG_ALERT &&
  1106. ssl->in_msg[0] == SSL_ALERT_LEVEL_WARNING &&
  1107. ssl->in_msg[1] == SSL_ALERT_MSG_NO_CERT )
  1108. {
  1109. SSL_DEBUG_MSG( 1, ( "SSLv3 client has no certificate" ) );
  1110. ssl->verify_result = BADCERT_MISSING;
  1111. if( ssl->authmode == SSL_VERIFY_OPTIONAL )
  1112. return( 0 );
  1113. else
  1114. return( POLARSSL_ERR_SSL_NO_CLIENT_CERTIFICATE );
  1115. }
  1116. }
  1117. if( ssl->endpoint == SSL_IS_SERVER &&
  1118. ssl->minor_ver != SSL_MINOR_VERSION_0 )
  1119. {
  1120. if( ssl->in_hslen == 7 &&
  1121. ssl->in_msgtype == SSL_MSG_HANDSHAKE &&
  1122. ssl->in_msg[0] == SSL_HS_CERTIFICATE &&
  1123. memcmp( ssl->in_msg + 4, "\0\0\0", 3 ) == 0 )
  1124. {
  1125. SSL_DEBUG_MSG( 1, ( "TLSv1 client has no certificate" ) );
  1126. ssl->verify_result = BADCERT_MISSING;
  1127. if( ssl->authmode == SSL_VERIFY_REQUIRED )
  1128. return( POLARSSL_ERR_SSL_NO_CLIENT_CERTIFICATE );
  1129. else
  1130. return( 0 );
  1131. }
  1132. }
  1133. if( ssl->in_msgtype != SSL_MSG_HANDSHAKE )
  1134. {
  1135. SSL_DEBUG_MSG( 1, ( "bad certificate message" ) );
  1136. return( POLARSSL_ERR_SSL_UNEXPECTED_MESSAGE );
  1137. }
  1138. if( ssl->in_msg[0] != SSL_HS_CERTIFICATE || ssl->in_hslen < 10 )
  1139. {
  1140. SSL_DEBUG_MSG( 1, ( "bad certificate message" ) );
  1141. return( POLARSSL_ERR_SSL_BAD_HS_CERTIFICATE );
  1142. }
  1143. /*
  1144. * Same message structure as in ssl_write_certificate()
  1145. */
  1146. n = ( ssl->in_msg[5] << 8 ) | ssl->in_msg[6];
  1147. if( ssl->in_msg[4] != 0 || ssl->in_hslen != 7 + n )
  1148. {
  1149. SSL_DEBUG_MSG( 1, ( "bad certificate message" ) );
  1150. return( POLARSSL_ERR_SSL_BAD_HS_CERTIFICATE );
  1151. }
  1152. if( ( ssl->peer_cert = (x509_cert *) malloc(
  1153. sizeof( x509_cert ) ) ) == NULL )
  1154. {
  1155. SSL_DEBUG_MSG( 1, ( "malloc(%d bytes) failed",
  1156. sizeof( x509_cert ) ) );
  1157. return( 1 );
  1158. }
  1159. memset( ssl->peer_cert, 0, sizeof( x509_cert ) );
  1160. i = 7;
  1161. while( i < ssl->in_hslen )
  1162. {
  1163. if( ssl->in_msg[i] != 0 )
  1164. {
  1165. SSL_DEBUG_MSG( 1, ( "bad certificate message" ) );
  1166. return( POLARSSL_ERR_SSL_BAD_HS_CERTIFICATE );
  1167. }
  1168. n = ( (unsigned int) ssl->in_msg[i + 1] << 8 )
  1169. | (unsigned int) ssl->in_msg[i + 2];
  1170. i += 3;
  1171. if( n < 128 || i + n > ssl->in_hslen )
  1172. {
  1173. SSL_DEBUG_MSG( 1, ( "bad certificate message" ) );
  1174. return( POLARSSL_ERR_SSL_BAD_HS_CERTIFICATE );
  1175. }
  1176. ret = x509parse_crt( ssl->peer_cert, ssl->in_msg + i, n );
  1177. if( ret != 0 )
  1178. {
  1179. SSL_DEBUG_RET( 1, " x509parse_crt", ret );
  1180. return( ret );
  1181. }
  1182. i += n;
  1183. }
  1184. SSL_DEBUG_CRT( 3, "peer certificate", ssl->peer_cert );
  1185. if( ssl->authmode != SSL_VERIFY_NONE )
  1186. {
  1187. if( ssl->ca_chain == NULL )
  1188. {
  1189. SSL_DEBUG_MSG( 1, ( "got no CA chain" ) );
  1190. return( POLARSSL_ERR_SSL_CA_CHAIN_REQUIRED );
  1191. }
  1192. ret = x509parse_verify( ssl->peer_cert, ssl->ca_chain, ssl->ca_crl,
  1193. ssl->peer_cn, &ssl->verify_result,
  1194. ssl->f_vrfy, ssl->p_vrfy );
  1195. if( ret != 0 )
  1196. SSL_DEBUG_RET( 1, "x509_verify_cert", ret );
  1197. if( ssl->authmode != SSL_VERIFY_REQUIRED )
  1198. ret = 0;
  1199. }
  1200. SSL_DEBUG_MSG( 2, ( "<= parse certificate" ) );
  1201. return( ret );
  1202. }
  1203. int ssl_write_change_cipher_spec( ssl_context *ssl )
  1204. {
  1205. int ret;
  1206. SSL_DEBUG_MSG( 2, ( "=> write change cipher spec" ) );
  1207. ssl->out_msgtype = SSL_MSG_CHANGE_CIPHER_SPEC;
  1208. ssl->out_msglen = 1;
  1209. ssl->out_msg[0] = 1;
  1210. ssl->do_crypt = 0;
  1211. ssl->state++;
  1212. if( ( ret = ssl_write_record( ssl ) ) != 0 )
  1213. {
  1214. SSL_DEBUG_RET( 1, "ssl_write_record", ret );
  1215. return( ret );
  1216. }
  1217. SSL_DEBUG_MSG( 2, ( "<= write change cipher spec" ) );
  1218. return( 0 );
  1219. }
  1220. int ssl_parse_change_cipher_spec( ssl_context *ssl )
  1221. {
  1222. int ret;
  1223. SSL_DEBUG_MSG( 2, ( "=> parse change cipher spec" ) );
  1224. ssl->do_crypt = 0;
  1225. if( ( ret = ssl_read_record( ssl ) ) != 0 )
  1226. {
  1227. SSL_DEBUG_RET( 1, "ssl_read_record", ret );
  1228. return( ret );
  1229. }
  1230. if( ssl->in_msgtype != SSL_MSG_CHANGE_CIPHER_SPEC )
  1231. {
  1232. SSL_DEBUG_MSG( 1, ( "bad change cipher spec message" ) );
  1233. return( POLARSSL_ERR_SSL_UNEXPECTED_MESSAGE );
  1234. }
  1235. if( ssl->in_msglen != 1 || ssl->in_msg[0] != 1 )
  1236. {
  1237. SSL_DEBUG_MSG( 1, ( "bad change cipher spec message" ) );
  1238. return( POLARSSL_ERR_SSL_BAD_HS_CHANGE_CIPHER_SPEC );
  1239. }
  1240. ssl->state++;
  1241. SSL_DEBUG_MSG( 2, ( "<= parse change cipher spec" ) );
  1242. return( 0 );
  1243. }
  1244. static void ssl_calc_finished(
  1245. ssl_context *ssl, unsigned char *buf, int from,
  1246. md5_context *md5, sha1_context *sha1 )
  1247. {
  1248. int len = 12;
  1249. char *sender;
  1250. unsigned char padbuf[48];
  1251. unsigned char md5sum[16];
  1252. unsigned char sha1sum[20];
  1253. SSL_DEBUG_MSG( 2, ( "=> calc finished" ) );
  1254. /*
  1255. * SSLv3:
  1256. * hash =
  1257. * MD5( master + pad2 +
  1258. * MD5( handshake + sender + master + pad1 ) )
  1259. * + SHA1( master + pad2 +
  1260. * SHA1( handshake + sender + master + pad1 ) )
  1261. *
  1262. * TLSv1:
  1263. * hash = PRF( master, finished_label,
  1264. * MD5( handshake ) + SHA1( handshake ) )[0..11]
  1265. */
  1266. SSL_DEBUG_BUF( 4, "finished md5 state", (unsigned char *)
  1267. md5->state, sizeof( md5->state ) );
  1268. SSL_DEBUG_BUF( 4, "finished sha1 state", (unsigned char *)
  1269. sha1->state, sizeof( sha1->state ) );
  1270. if( ssl->minor_ver == SSL_MINOR_VERSION_0 )
  1271. {
  1272. sender = ( from == SSL_IS_CLIENT ) ? (char *) "CLNT"
  1273. : (char *) "SRVR";
  1274. memset( padbuf, 0x36, 48 );
  1275. md5_update( md5, (unsigned char *) sender, 4 );
  1276. md5_update( md5, ssl->session->master, 48 );
  1277. md5_update( md5, padbuf, 48 );
  1278. md5_finish( md5, md5sum );
  1279. sha1_update( sha1, (unsigned char *) sender, 4 );
  1280. sha1_update( sha1, ssl->session->master, 48 );
  1281. sha1_update( sha1, padbuf, 40 );
  1282. sha1_finish( sha1, sha1sum );
  1283. memset( padbuf, 0x5C, 48 );
  1284. md5_starts( md5 );
  1285. md5_update( md5, ssl->session->master, 48 );
  1286. md5_update( md5, padbuf, 48 );
  1287. md5_update( md5, md5sum, 16 );
  1288. md5_finish( md5, buf );
  1289. sha1_starts( sha1 );
  1290. sha1_update( sha1, ssl->session->master, 48 );
  1291. sha1_update( sha1, padbuf , 40 );
  1292. sha1_update( sha1, sha1sum, 20 );
  1293. sha1_finish( sha1, buf + 16 );
  1294. len += 24;
  1295. }
  1296. else
  1297. {
  1298. sender = ( from == SSL_IS_CLIENT )
  1299. ? (char *) "client finished"
  1300. : (char *) "server finished";
  1301. md5_finish( md5, padbuf );
  1302. sha1_finish( sha1, padbuf + 16 );
  1303. tls1_prf( ssl->session->master, 48, sender,
  1304. padbuf, 36, buf, len );
  1305. }
  1306. SSL_DEBUG_BUF( 3, "calc finished result", buf, len );
  1307. memset( md5, 0, sizeof( md5_context ) );
  1308. memset( sha1, 0, sizeof( sha1_context ) );
  1309. memset( padbuf, 0, sizeof( padbuf ) );
  1310. memset( md5sum, 0, sizeof( md5sum ) );
  1311. memset( sha1sum, 0, sizeof( sha1sum ) );
  1312. SSL_DEBUG_MSG( 2, ( "<= calc finished" ) );
  1313. }
  1314. int ssl_write_finished( ssl_context *ssl )
  1315. {
  1316. int ret, hash_len;
  1317. md5_context md5;
  1318. sha1_context sha1;
  1319. SSL_DEBUG_MSG( 2, ( "=> write finished" ) );
  1320. memcpy( &md5 , &ssl->fin_md5 , sizeof( md5_context ) );
  1321. memcpy( &sha1, &ssl->fin_sha1, sizeof( sha1_context ) );
  1322. ssl_calc_finished( ssl, ssl->out_msg + 4,
  1323. ssl->endpoint, &md5, &sha1 );
  1324. hash_len = ( ssl->minor_ver == SSL_MINOR_VERSION_0 ) ? 36 : 12;
  1325. ssl->out_msglen = 4 + hash_len;
  1326. ssl->out_msgtype = SSL_MSG_HANDSHAKE;
  1327. ssl->out_msg[0] = SSL_HS_FINISHED;
  1328. /*
  1329. * In case of session resuming, invert the client and server
  1330. * ChangeCipherSpec messages order.
  1331. */
  1332. if( ssl->resume != 0 )
  1333. {
  1334. if( ssl->endpoint == SSL_IS_CLIENT )
  1335. ssl->state = SSL_HANDSHAKE_OVER;
  1336. else
  1337. ssl->state = SSL_CLIENT_CHANGE_CIPHER_SPEC;
  1338. }
  1339. else
  1340. ssl->state++;
  1341. ssl->do_crypt = 1;
  1342. if( ( ret = ssl_write_record( ssl ) ) != 0 )
  1343. {
  1344. SSL_DEBUG_RET( 1, "ssl_write_record", ret );
  1345. return( ret );
  1346. }
  1347. SSL_DEBUG_MSG( 2, ( "<= write finished" ) );
  1348. return( 0 );
  1349. }
  1350. int ssl_parse_finished( ssl_context *ssl )
  1351. {
  1352. int ret;
  1353. unsigned int hash_len;
  1354. unsigned char buf[36];
  1355. md5_context md5;
  1356. sha1_context sha1;
  1357. SSL_DEBUG_MSG( 2, ( "=> parse finished" ) );
  1358. memcpy( &md5 , &ssl->fin_md5 , sizeof( md5_context ) );
  1359. memcpy( &sha1, &ssl->fin_sha1, sizeof( sha1_context ) );
  1360. ssl->do_crypt = 1;
  1361. if( ( ret = ssl_read_record( ssl ) ) != 0 )
  1362. {
  1363. SSL_DEBUG_RET( 1, "ssl_read_record", ret );
  1364. return( ret );
  1365. }
  1366. if( ssl->in_msgtype != SSL_MSG_HANDSHAKE )
  1367. {
  1368. SSL_DEBUG_MSG( 1, ( "bad finished message" ) );
  1369. return( POLARSSL_ERR_SSL_UNEXPECTED_MESSAGE );
  1370. }
  1371. hash_len = ( ssl->minor_ver == SSL_MINOR_VERSION_0 ) ? 36 : 12;
  1372. if( ssl->in_msg[0] != SSL_HS_FINISHED ||
  1373. ssl->in_hslen != 4 + hash_len )
  1374. {
  1375. SSL_DEBUG_MSG( 1, ( "bad finished message" ) );
  1376. return( POLARSSL_ERR_SSL_BAD_HS_FINISHED );
  1377. }
  1378. ssl_calc_finished( ssl, buf, ssl->endpoint ^ 1, &md5, &sha1 );
  1379. if( memcmp( ssl->in_msg + 4, buf, hash_len ) != 0 )
  1380. {
  1381. SSL_DEBUG_MSG( 1, ( "bad finished message" ) );
  1382. return( POLARSSL_ERR_SSL_BAD_HS_FINISHED );
  1383. }
  1384. if( ssl->resume != 0 )
  1385. {
  1386. if( ssl->endpoint == SSL_IS_CLIENT )
  1387. ssl->state = SSL_CLIENT_CHANGE_CIPHER_SPEC;
  1388. if( ssl->endpoint == SSL_IS_SERVER )
  1389. ssl->state = SSL_HANDSHAKE_OVER;
  1390. }
  1391. else
  1392. ssl->state++;
  1393. SSL_DEBUG_MSG( 2, ( "<= parse finished" ) );
  1394. return( 0 );
  1395. }
  1396. /*
  1397. * Initialize an SSL context
  1398. */
  1399. int ssl_init( ssl_context *ssl )
  1400. {
  1401. int len = SSL_BUFFER_LEN;
  1402. memset( ssl, 0, sizeof( ssl_context ) );
  1403. ssl->in_ctr = (unsigned char *) malloc( len );
  1404. ssl->in_hdr = ssl->in_ctr + 8;
  1405. ssl->in_msg = ssl->in_ctr + 13;
  1406. if( ssl->in_ctr == NULL )
  1407. {
  1408. SSL_DEBUG_MSG( 1, ( "malloc(%d bytes) failed", len ) );
  1409. return( 1 );
  1410. }
  1411. ssl->out_ctr = (unsigned char *) malloc( len );
  1412. ssl->out_hdr = ssl->out_ctr + 8;
  1413. ssl->out_msg = ssl->out_ctr + 13;
  1414. if( ssl->out_ctr == NULL )
  1415. {
  1416. SSL_DEBUG_MSG( 1, ( "malloc(%d bytes) failed", len ) );
  1417. free( ssl-> in_ctr );
  1418. return( 1 );
  1419. }
  1420. memset( ssl-> in_ctr, 0, SSL_BUFFER_LEN );
  1421. memset( ssl->out_ctr, 0, SSL_BUFFER_LEN );
  1422. ssl->hostname = NULL;
  1423. ssl->hostname_len = 0;
  1424. md5_starts( &ssl->fin_md5 );
  1425. sha1_starts( &ssl->fin_sha1 );
  1426. return( 0 );
  1427. }
  1428. /*
  1429. * SSL set accessors
  1430. */
  1431. void ssl_set_endpoint( ssl_context *ssl, int endpoint )
  1432. {
  1433. ssl->endpoint = endpoint;
  1434. }
  1435. void ssl_set_authmode( ssl_context *ssl, int authmode )
  1436. {
  1437. ssl->authmode = authmode;
  1438. }
  1439. void ssl_set_verify( ssl_context *ssl,
  1440. int (*f_vrfy)(void *, x509_cert *, int, int),
  1441. void *p_vrfy )
  1442. {
  1443. ssl->f_vrfy = f_vrfy;
  1444. ssl->p_vrfy = p_vrfy;
  1445. }
  1446. void ssl_set_rng( ssl_context *ssl,
  1447. int (*f_rng)(void *),
  1448. void *p_rng )
  1449. {
  1450. ssl->f_rng = f_rng;
  1451. ssl->p_rng = p_rng;
  1452. }
  1453. void ssl_set_dbg( ssl_context *ssl,
  1454. void (*f_dbg)(void *, int, const char *),
  1455. void *p_dbg )
  1456. {
  1457. ssl->f_dbg = f_dbg;
  1458. ssl->p_dbg = p_dbg;
  1459. }
  1460. void ssl_set_bio( ssl_context *ssl,
  1461. int (*f_recv)(void *, unsigned char *, size_t), void *p_recv,
  1462. int (*f_send)(void *, const unsigned char *, size_t), void *p_send )
  1463. {
  1464. ssl->f_recv = f_recv;
  1465. ssl->f_send = f_send;
  1466. ssl->p_recv = p_recv;
  1467. ssl->p_send = p_send;
  1468. }
  1469. void ssl_set_scb( ssl_context *ssl,
  1470. int (*s_get)(ssl_context *),
  1471. int (*s_set)(ssl_context *) )
  1472. {
  1473. ssl->s_get = s_get;
  1474. ssl->s_set = s_set;
  1475. }
  1476. void ssl_set_session( ssl_context *ssl, int resume, int timeout,
  1477. ssl_session *session )
  1478. {
  1479. ssl->resume = resume;
  1480. ssl->timeout = timeout;
  1481. ssl->session = session;
  1482. }
  1483. void ssl_set_ciphersuites( ssl_context *ssl, int *ciphersuites )
  1484. {
  1485. ssl->ciphersuites = ciphersuites;
  1486. }
  1487. void ssl_set_ca_chain( ssl_context *ssl, x509_cert *ca_chain,
  1488. x509_crl *ca_crl, const char *peer_cn )
  1489. {
  1490. ssl->ca_chain = ca_chain;
  1491. ssl->ca_crl = ca_crl;
  1492. ssl->peer_cn = peer_cn;
  1493. }
  1494. void ssl_set_own_cert( ssl_context *ssl, x509_cert *own_cert,
  1495. rsa_context *rsa_key )
  1496. {
  1497. ssl->own_cert = own_cert;
  1498. ssl->rsa_key = rsa_key;
  1499. }
  1500. #if defined(POLARSSL_PKCS11_C)
  1501. void ssl_set_own_cert_pkcs11( ssl_context *ssl, x509_cert *own_cert,
  1502. pkcs11_context *pkcs11_key )
  1503. {
  1504. ssl->own_cert = own_cert;
  1505. ssl->pkcs11_key = pkcs11_key;
  1506. }
  1507. #endif
  1508. int ssl_set_dh_param( ssl_context *ssl, const char *dhm_P, const char *dhm_G )
  1509. {
  1510. int ret;
  1511. if( ( ret = mpi_read_string( &ssl->dhm_ctx.P, 16, dhm_P ) ) != 0 )
  1512. {
  1513. SSL_DEBUG_RET( 1, "mpi_read_string", ret );
  1514. return( ret );
  1515. }
  1516. if( ( ret = mpi_read_string( &ssl->dhm_ctx.G, 16, dhm_G ) ) != 0 )
  1517. {
  1518. SSL_DEBUG_RET( 1, "mpi_read_string", ret );
  1519. return( ret );
  1520. }
  1521. return( 0 );
  1522. }
  1523. int ssl_set_dh_param_ctx( ssl_context *ssl, dhm_context *dhm_ctx )
  1524. {
  1525. int ret;
  1526. if( ( ret = mpi_copy(&ssl->dhm_ctx.P, &dhm_ctx->P) ) != 0 )
  1527. {
  1528. SSL_DEBUG_RET( 1, "mpi_copy", ret );
  1529. return( ret );
  1530. }
  1531. if( ( ret = mpi_copy(&ssl->dhm_ctx.G, &dhm_ctx->G) ) != 0 )
  1532. {
  1533. SSL_DEBUG_RET( 1, "mpi_copy", ret );
  1534. return( ret );
  1535. }
  1536. return( 0 );
  1537. }
  1538. int ssl_set_hostname( ssl_context *ssl, const char *hostname )
  1539. {
  1540. if( hostname == NULL )
  1541. return( POLARSSL_ERR_SSL_BAD_INPUT_DATA );
  1542. ssl->hostname_len = strlen( hostname );
  1543. ssl->hostname = (unsigned char *) malloc( ssl->hostname_len + 1 );
  1544. memcpy( ssl->hostname, (unsigned char *) hostname,
  1545. ssl->hostname_len );
  1546. ssl->hostname[ssl->hostname_len] = '\0';
  1547. return( 0 );
  1548. }
  1549. /*
  1550. * SSL get accessors
  1551. */
  1552. size_t ssl_get_bytes_avail( const ssl_context *ssl )
  1553. {
  1554. return( ssl->in_offt == NULL ? 0 : ssl->in_msglen );
  1555. }
  1556. int ssl_get_verify_result( const ssl_context *ssl )
  1557. {
  1558. return( ssl->verify_result );
  1559. }
  1560. const char *ssl_get_ciphersuite_name( const int ciphersuite_id )
  1561. {
  1562. switch( ciphersuite_id )
  1563. {
  1564. #if defined(POLARSSL_ARC4_C)
  1565. case SSL_RSA_RC4_128_MD5:
  1566. return( "SSL-RSA-RC4-128-MD5" );
  1567. case SSL_RSA_RC4_128_SHA:
  1568. return( "SSL-RSA-RC4-128-SHA" );
  1569. #endif
  1570. #if defined(POLARSSL_DES_C)
  1571. case SSL_RSA_DES_168_SHA:
  1572. return( "SSL-RSA-DES-168-SHA" );
  1573. case SSL_EDH_RSA_DES_168_SHA:
  1574. return( "SSL-EDH-RSA-DES-168-SHA" );
  1575. #endif
  1576. #if defined(POLARSSL_AES_C)
  1577. case SSL_RSA_AES_128_SHA:
  1578. return( "SSL-RSA-AES-128-SHA" );
  1579. case SSL_EDH_RSA_AES_128_SHA:
  1580. return( "SSL-EDH-RSA-AES-128-SHA" );
  1581. case SSL_RSA_AES_256_SHA:
  1582. return( "SSL-RSA-AES-256-SHA" );
  1583. case SSL_EDH_RSA_AES_256_SHA:
  1584. return( "SSL-EDH-RSA-AES-256-SHA" );
  1585. #endif
  1586. #if defined(POLARSSL_CAMELLIA_C)
  1587. case SSL_RSA_CAMELLIA_128_SHA:
  1588. return( "SSL-RSA-CAMELLIA-128-SHA" );
  1589. case SSL_EDH_RSA_CAMELLIA_128_SHA:
  1590. return( "SSL-EDH-RSA-CAMELLIA-128-SHA" );
  1591. case SSL_RSA_CAMELLIA_256_SHA:
  1592. return( "SSL-RSA-CAMELLIA-256-SHA" );
  1593. case SSL_EDH_RSA_CAMELLIA_256_SHA:
  1594. return( "SSL-EDH-RSA-CAMELLIA-256-SHA" );
  1595. #endif
  1596. default:
  1597. break;
  1598. }
  1599. return( "unknown" );
  1600. }
  1601. int ssl_get_ciphersuite_id( const char *ciphersuite_name )
  1602. {
  1603. #if defined(POLARSSL_ARC4_C)
  1604. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-RC4-128-MD5"))
  1605. return( SSL_RSA_RC4_128_MD5 );
  1606. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-RC4-128-SHA"))
  1607. return( SSL_RSA_RC4_128_SHA );
  1608. #endif
  1609. #if defined(POLARSSL_DES_C)
  1610. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-DES-168-SHA"))
  1611. return( SSL_RSA_DES_168_SHA );
  1612. if (0 == strcasecmp(ciphersuite_name, "SSL-EDH-RSA-DES-168-SHA"))
  1613. return( SSL_EDH_RSA_DES_168_SHA );
  1614. #endif
  1615. #if defined(POLARSSL_AES_C)
  1616. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-AES-128-SHA"))
  1617. return( SSL_RSA_AES_128_SHA );
  1618. if (0 == strcasecmp(ciphersuite_name, "SSL-EDH-RSA-AES-128-SHA"))
  1619. return( SSL_EDH_RSA_AES_128_SHA );
  1620. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-AES-256-SHA"))
  1621. return( SSL_RSA_AES_256_SHA );
  1622. if (0 == strcasecmp(ciphersuite_name, "SSL-EDH-RSA-AES-256-SHA"))
  1623. return( SSL_EDH_RSA_AES_256_SHA );
  1624. #endif
  1625. #if defined(POLARSSL_CAMELLIA_C)
  1626. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-CAMELLIA-128-SHA"))
  1627. return( SSL_RSA_CAMELLIA_128_SHA );
  1628. if (0 == strcasecmp(ciphersuite_name, "SSL-EDH-RSA-CAMELLIA-128-SHA"))
  1629. return( SSL_EDH_RSA_CAMELLIA_128_SHA );
  1630. if (0 == strcasecmp(ciphersuite_name, "SSL-RSA-CAMELLIA-256-SHA"))
  1631. return( SSL_RSA_CAMELLIA_256_SHA );
  1632. if (0 == strcasecmp(ciphersuite_name, "SSL-EDH-RSA-CAMELLIA-256-SHA"))
  1633. return( SSL_EDH_RSA_CAMELLIA_256_SHA );
  1634. #endif
  1635. return( 0 );
  1636. }
  1637. const char *ssl_get_ciphersuite( const ssl_context *ssl )
  1638. {
  1639. return ssl_get_ciphersuite_name( ssl->session->ciphersuite );
  1640. }
  1641. const char *ssl_get_version( const ssl_context *ssl )
  1642. {
  1643. switch( ssl->minor_ver )
  1644. {
  1645. case SSL_MINOR_VERSION_0:
  1646. return( "SSLv3.0" );
  1647. case SSL_MINOR_VERSION_1:
  1648. return( "TLSv1.0" );
  1649. case SSL_MINOR_VERSION_2:
  1650. return( "TLSv1.1" );
  1651. default:
  1652. break;
  1653. }
  1654. return( "unknown" );
  1655. }
  1656. int ssl_default_ciphersuites[] =
  1657. {
  1658. #if defined(POLARSSL_DHM_C)
  1659. #if defined(POLARSSL_AES_C)
  1660. SSL_EDH_RSA_AES_128_SHA,
  1661. SSL_EDH_RSA_AES_256_SHA,
  1662. #endif
  1663. #if defined(POLARSSL_CAMELLIA_C)
  1664. SSL_EDH_RSA_CAMELLIA_128_SHA,
  1665. SSL_EDH_RSA_CAMELLIA_256_SHA,
  1666. #endif
  1667. #if defined(POLARSSL_DES_C)
  1668. SSL_EDH_RSA_DES_168_SHA,
  1669. #endif
  1670. #endif
  1671. #if defined(POLARSSL_AES_C)
  1672. SSL_RSA_AES_256_SHA,
  1673. #endif
  1674. #if defined(POLARSSL_CAMELLIA_C)
  1675. SSL_RSA_CAMELLIA_256_SHA,
  1676. #endif
  1677. #if defined(POLARSSL_AES_C)
  1678. SSL_RSA_AES_128_SHA,
  1679. #endif
  1680. #if defined(POLARSSL_CAMELLIA_C)
  1681. SSL_RSA_CAMELLIA_128_SHA,
  1682. #endif
  1683. #if defined(POLARSSL_DES_C)
  1684. SSL_RSA_DES_168_SHA,
  1685. #endif
  1686. #if defined(POLARSSL_ARC4_C)
  1687. SSL_RSA_RC4_128_SHA,
  1688. SSL_RSA_RC4_128_MD5,
  1689. #endif
  1690. 0
  1691. };
  1692. /*
  1693. * Perform the SSL handshake
  1694. */
  1695. int ssl_handshake( ssl_context *ssl )
  1696. {
  1697. int ret = POLARSSL_ERR_SSL_FEATURE_UNAVAILABLE;
  1698. SSL_DEBUG_MSG( 2, ( "=> handshake" ) );
  1699. #if defined(POLARSSL_SSL_CLI_C)
  1700. if( ssl->endpoint == SSL_IS_CLIENT )
  1701. ret = ssl_handshake_client( ssl );
  1702. #endif
  1703. #if defined(POLARSSL_SSL_SRV_C)
  1704. if( ssl->endpoint == SSL_IS_SERVER )
  1705. ret = ssl_handshake_server( ssl );
  1706. #endif
  1707. SSL_DEBUG_MSG( 2, ( "<= handshake" ) );
  1708. return( ret );
  1709. }
  1710. /*
  1711. * Receive application data decrypted from the SSL layer
  1712. */
  1713. int ssl_read( ssl_context *ssl, unsigned char *buf, size_t len )
  1714. {
  1715. int ret;
  1716. size_t n;
  1717. SSL_DEBUG_MSG( 2, ( "=> read" ) );
  1718. if( ssl->state != SSL_HANDSHAKE_OVER )
  1719. {
  1720. if( ( ret = ssl_handshake( ssl ) ) != 0 )
  1721. {
  1722. SSL_DEBUG_RET( 1, "ssl_handshake", ret );
  1723. return( ret );
  1724. }
  1725. }
  1726. if( ssl->in_offt == NULL )
  1727. {
  1728. if( ( ret = ssl_read_record( ssl ) ) != 0 )
  1729. {
  1730. if( ret == POLARSSL_ERR_SSL_CONN_EOF )
  1731. return( 0 );
  1732. SSL_DEBUG_RET( 1, "ssl_read_record", ret );
  1733. return( ret );
  1734. }
  1735. if( ssl->in_msglen == 0 &&
  1736. ssl->in_msgtype == SSL_MSG_APPLICATION_DATA )
  1737. {
  1738. /*
  1739. * OpenSSL sends empty messages to randomize the IV
  1740. */
  1741. if( ( ret = ssl_read_record( ssl ) ) != 0 )
  1742. {
  1743. if( ret == POLARSSL_ERR_SSL_CONN_EOF )
  1744. return( 0 );
  1745. SSL_DEBUG_RET( 1, "ssl_read_record", ret );
  1746. return( ret );
  1747. }
  1748. }
  1749. if( ssl->in_msgtype != SSL_MSG_APPLICATION_DATA )
  1750. {
  1751. SSL_DEBUG_MSG( 1, ( "bad application data message" ) );
  1752. return( POLARSSL_ERR_SSL_UNEXPECTED_MESSAGE );
  1753. }
  1754. ssl->in_offt = ssl->in_msg;
  1755. }
  1756. n = ( len < ssl->in_msglen )
  1757. ? len : ssl->in_msglen;
  1758. memcpy( buf, ssl->in_offt, n );
  1759. ssl->in_msglen -= n;
  1760. if( ssl->in_msglen == 0 )
  1761. /* all bytes consumed */
  1762. ssl->in_offt = NULL;
  1763. else
  1764. /* more data available */
  1765. ssl->in_offt += n;
  1766. SSL_DEBUG_MSG( 2, ( "<= read" ) );
  1767. return( (int) n );
  1768. }
  1769. /*
  1770. * Send application data to be encrypted by the SSL layer
  1771. */
  1772. int ssl_write( ssl_context *ssl, const unsigned char *buf, size_t len )
  1773. {
  1774. int ret;
  1775. size_t n;
  1776. SSL_DEBUG_MSG( 2, ( "=> write" ) );
  1777. if( ssl->state != SSL_HANDSHAKE_OVER )
  1778. {
  1779. if( ( ret = ssl_handshake( ssl ) ) != 0 )
  1780. {
  1781. SSL_DEBUG_RET( 1, "ssl_handshake", ret );
  1782. return( ret );
  1783. }
  1784. }
  1785. n = ( len < SSL_MAX_CONTENT_LEN )
  1786. ? len : SSL_MAX_CONTENT_LEN;
  1787. if( ssl->out_left != 0 )
  1788. {
  1789. if( ( ret = ssl_flush_output( ssl ) ) != 0 )
  1790. {
  1791. SSL_DEBUG_RET( 1, "ssl_flush_output", ret );
  1792. return( ret );
  1793. }
  1794. }
  1795. else
  1796. {
  1797. ssl->out_msglen = n;
  1798. ssl->out_msgtype = SSL_MSG_APPLICATION_DATA;
  1799. memcpy( ssl->out_msg, buf, n );
  1800. if( ( ret = ssl_write_record( ssl ) ) != 0 )
  1801. {
  1802. SSL_DEBUG_RET( 1, "ssl_write_record", ret );
  1803. return( ret );
  1804. }
  1805. }
  1806. SSL_DEBUG_MSG( 2, ( "<= write" ) );
  1807. return( (int) n );
  1808. }
  1809. /*
  1810. * Notify the peer that the connection is being closed
  1811. */
  1812. int ssl_close_notify( ssl_context *ssl )
  1813. {
  1814. int ret;
  1815. SSL_DEBUG_MSG( 2, ( "=> write close notify" ) );
  1816. if( ( ret = ssl_flush_output( ssl ) ) != 0 )
  1817. {
  1818. SSL_DEBUG_RET( 1, "ssl_flush_output", ret );
  1819. return( ret );
  1820. }
  1821. if( ssl->state == SSL_HANDSHAKE_OVER )
  1822. {
  1823. ssl->out_msgtype = SSL_MSG_ALERT;
  1824. ssl->out_msglen = 2;
  1825. ssl->out_msg[0] = SSL_ALERT_LEVEL_WARNING;
  1826. ssl->out_msg[1] = SSL_ALERT_MSG_CLOSE_NOTIFY;
  1827. if( ( ret = ssl_write_record( ssl ) ) != 0 )
  1828. {
  1829. SSL_DEBUG_RET( 1, "ssl_write_record", ret );
  1830. return( ret );
  1831. }
  1832. }
  1833. SSL_DEBUG_MSG( 2, ( "<= write close notify" ) );
  1834. return( ret );
  1835. }
  1836. /*
  1837. * Free an SSL context
  1838. */
  1839. void ssl_free( ssl_context *ssl )
  1840. {
  1841. SSL_DEBUG_MSG( 2, ( "=> free" ) );
  1842. if( ssl->peer_cert != NULL )
  1843. {
  1844. x509_free( ssl->peer_cert );
  1845. memset( ssl->peer_cert, 0, sizeof( x509_cert ) );
  1846. free( ssl->peer_cert );
  1847. }
  1848. if( ssl->out_ctr != NULL )
  1849. {
  1850. memset( ssl->out_ctr, 0, SSL_BUFFER_LEN );
  1851. free( ssl->out_ctr );
  1852. }
  1853. if( ssl->in_ctr != NULL )
  1854. {
  1855. memset( ssl->in_ctr, 0, SSL_BUFFER_LEN );
  1856. free( ssl->in_ctr );
  1857. }
  1858. #if defined(POLARSSL_DHM_C)
  1859. dhm_free( &ssl->dhm_ctx );
  1860. #endif
  1861. if ( ssl->hostname != NULL)
  1862. {
  1863. memset( ssl->hostname, 0, ssl->hostname_len );
  1864. free( ssl->hostname );
  1865. ssl->hostname_len = 0;
  1866. }
  1867. SSL_DEBUG_MSG( 2, ( "<= free" ) );
  1868. /* Actually free after last debug message */
  1869. memset( ssl, 0, sizeof( ssl_context ) );
  1870. }
  1871. #endif