crypto_openssl.c 11 KB

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  1. /*
  2. * WPA Supplicant / wrapper functions for libcrypto
  3. * Copyright (c) 2004-2009, Jouni Malinen <j@w1.fi>
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License version 2 as
  7. * published by the Free Software Foundation.
  8. *
  9. * Alternatively, this software may be distributed under the terms of BSD
  10. * license.
  11. *
  12. * See README and COPYING for more details.
  13. */
  14. #include "includes.h"
  15. #include <openssl/opensslv.h>
  16. #include <openssl/err.h>
  17. #include <openssl/des.h>
  18. #include <openssl/aes.h>
  19. #include <openssl/bn.h>
  20. #include <openssl/evp.h>
  21. #include <openssl/dh.h>
  22. #include "common.h"
  23. #include "wpabuf.h"
  24. #include "dh_group5.h"
  25. #include "crypto.h"
  26. #if OPENSSL_VERSION_NUMBER < 0x00907000
  27. #define DES_key_schedule des_key_schedule
  28. #define DES_cblock des_cblock
  29. #define DES_set_key(key, schedule) des_set_key((key), *(schedule))
  30. #define DES_ecb_encrypt(input, output, ks, enc) \
  31. des_ecb_encrypt((input), (output), *(ks), (enc))
  32. #endif /* openssl < 0.9.7 */
  33. static BIGNUM * get_group5_prime(void)
  34. {
  35. #if OPENSSL_VERSION_NUMBER < 0x00908000
  36. static const unsigned char RFC3526_PRIME_1536[] = {
  37. 0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,0xC9,0x0F,0xDA,0xA2,
  38. 0x21,0x68,0xC2,0x34,0xC4,0xC6,0x62,0x8B,0x80,0xDC,0x1C,0xD1,
  39. 0x29,0x02,0x4E,0x08,0x8A,0x67,0xCC,0x74,0x02,0x0B,0xBE,0xA6,
  40. 0x3B,0x13,0x9B,0x22,0x51,0x4A,0x08,0x79,0x8E,0x34,0x04,0xDD,
  41. 0xEF,0x95,0x19,0xB3,0xCD,0x3A,0x43,0x1B,0x30,0x2B,0x0A,0x6D,
  42. 0xF2,0x5F,0x14,0x37,0x4F,0xE1,0x35,0x6D,0x6D,0x51,0xC2,0x45,
  43. 0xE4,0x85,0xB5,0x76,0x62,0x5E,0x7E,0xC6,0xF4,0x4C,0x42,0xE9,
  44. 0xA6,0x37,0xED,0x6B,0x0B,0xFF,0x5C,0xB6,0xF4,0x06,0xB7,0xED,
  45. 0xEE,0x38,0x6B,0xFB,0x5A,0x89,0x9F,0xA5,0xAE,0x9F,0x24,0x11,
  46. 0x7C,0x4B,0x1F,0xE6,0x49,0x28,0x66,0x51,0xEC,0xE4,0x5B,0x3D,
  47. 0xC2,0x00,0x7C,0xB8,0xA1,0x63,0xBF,0x05,0x98,0xDA,0x48,0x36,
  48. 0x1C,0x55,0xD3,0x9A,0x69,0x16,0x3F,0xA8,0xFD,0x24,0xCF,0x5F,
  49. 0x83,0x65,0x5D,0x23,0xDC,0xA3,0xAD,0x96,0x1C,0x62,0xF3,0x56,
  50. 0x20,0x85,0x52,0xBB,0x9E,0xD5,0x29,0x07,0x70,0x96,0x96,0x6D,
  51. 0x67,0x0C,0x35,0x4E,0x4A,0xBC,0x98,0x04,0xF1,0x74,0x6C,0x08,
  52. 0xCA,0x23,0x73,0x27,0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,0xFF,
  53. };
  54. return BN_bin2bn(RFC3526_PRIME_1536, sizeof(RFC3526_PRIME_1536), NULL);
  55. #else /* openssl < 0.9.8 */
  56. return get_rfc3526_prime_1536(NULL);
  57. #endif /* openssl < 0.9.8 */
  58. }
  59. #if OPENSSL_VERSION_NUMBER < 0x00908000
  60. #ifndef OPENSSL_NO_SHA256
  61. #ifndef OPENSSL_FIPS
  62. #define NO_SHA256_WRAPPER
  63. #endif
  64. #endif
  65. #endif /* openssl < 0.9.8 */
  66. #ifdef OPENSSL_NO_SHA256
  67. #define NO_SHA256_WRAPPER
  68. #endif
  69. static int openssl_digest_vector(const EVP_MD *type, int non_fips,
  70. size_t num_elem, const u8 *addr[],
  71. const size_t *len, u8 *mac)
  72. {
  73. EVP_MD_CTX ctx;
  74. size_t i;
  75. unsigned int mac_len;
  76. EVP_MD_CTX_init(&ctx);
  77. #ifdef CONFIG_FIPS
  78. #ifdef OPENSSL_FIPS
  79. if (non_fips)
  80. EVP_MD_CTX_set_flags(&ctx, EVP_MD_CTX_FLAG_NON_FIPS_ALLOW);
  81. #endif /* OPENSSL_FIPS */
  82. #endif /* CONFIG_FIPS */
  83. if (!EVP_DigestInit_ex(&ctx, type, NULL)) {
  84. wpa_printf(MSG_ERROR, "OpenSSL: EVP_DigestInit_ex failed: %s",
  85. ERR_error_string(ERR_get_error(), NULL));
  86. return -1;
  87. }
  88. for (i = 0; i < num_elem; i++) {
  89. if (!EVP_DigestUpdate(&ctx, addr[i], len[i])) {
  90. wpa_printf(MSG_ERROR, "OpenSSL: EVP_DigestUpdate "
  91. "failed: %s",
  92. ERR_error_string(ERR_get_error(), NULL));
  93. return -1;
  94. }
  95. }
  96. if (!EVP_DigestFinal(&ctx, mac, &mac_len)) {
  97. wpa_printf(MSG_ERROR, "OpenSSL: EVP_DigestFinal failed: %s",
  98. ERR_error_string(ERR_get_error(), NULL));
  99. return -1;
  100. }
  101. return 0;
  102. }
  103. int md4_vector(size_t num_elem, const u8 *addr[], const size_t *len, u8 *mac)
  104. {
  105. return openssl_digest_vector(EVP_md4(), 0, num_elem, addr, len, mac);
  106. }
  107. void des_encrypt(const u8 *clear, const u8 *key, u8 *cypher)
  108. {
  109. u8 pkey[8], next, tmp;
  110. int i;
  111. DES_key_schedule ks;
  112. /* Add parity bits to the key */
  113. next = 0;
  114. for (i = 0; i < 7; i++) {
  115. tmp = key[i];
  116. pkey[i] = (tmp >> i) | next | 1;
  117. next = tmp << (7 - i);
  118. }
  119. pkey[i] = next | 1;
  120. DES_set_key(&pkey, &ks);
  121. DES_ecb_encrypt((DES_cblock *) clear, (DES_cblock *) cypher, &ks,
  122. DES_ENCRYPT);
  123. }
  124. int rc4_skip(const u8 *key, size_t keylen, size_t skip,
  125. u8 *data, size_t data_len)
  126. {
  127. #ifdef OPENSSL_NO_RC4
  128. return -1;
  129. #else /* OPENSSL_NO_RC4 */
  130. EVP_CIPHER_CTX ctx;
  131. int outl;
  132. int res = -1;
  133. unsigned char skip_buf[16];
  134. EVP_CIPHER_CTX_init(&ctx);
  135. if (!EVP_CIPHER_CTX_set_padding(&ctx, 0) ||
  136. !EVP_CipherInit_ex(&ctx, EVP_rc4(), NULL, NULL, NULL, 1) ||
  137. !EVP_CIPHER_CTX_set_key_length(&ctx, keylen) ||
  138. !EVP_CipherInit_ex(&ctx, NULL, NULL, key, NULL, 1))
  139. goto out;
  140. while (skip >= sizeof(skip_buf)) {
  141. size_t len = skip;
  142. if (len > sizeof(skip_buf))
  143. len = sizeof(skip_buf);
  144. if (!EVP_CipherUpdate(&ctx, skip_buf, &outl, skip_buf, len))
  145. goto out;
  146. skip -= len;
  147. }
  148. if (EVP_CipherUpdate(&ctx, data, &outl, data, data_len))
  149. res = 0;
  150. out:
  151. EVP_CIPHER_CTX_cleanup(&ctx);
  152. return res;
  153. #endif /* OPENSSL_NO_RC4 */
  154. }
  155. int md5_vector(size_t num_elem, const u8 *addr[], const size_t *len, u8 *mac)
  156. {
  157. return openssl_digest_vector(EVP_md5(), 0, num_elem, addr, len, mac);
  158. }
  159. #ifdef CONFIG_FIPS
  160. int md5_vector_non_fips_allow(size_t num_elem, const u8 *addr[],
  161. const size_t *len, u8 *mac)
  162. {
  163. return openssl_digest_vector(EVP_md5(), 1, num_elem, addr, len, mac);
  164. }
  165. #endif /* CONFIG_FIPS */
  166. int sha1_vector(size_t num_elem, const u8 *addr[], const size_t *len, u8 *mac)
  167. {
  168. return openssl_digest_vector(EVP_sha1(), 0, num_elem, addr, len, mac);
  169. }
  170. #ifndef NO_SHA256_WRAPPER
  171. int sha256_vector(size_t num_elem, const u8 *addr[], const size_t *len,
  172. u8 *mac)
  173. {
  174. return openssl_digest_vector(EVP_sha256(), 0, num_elem, addr, len,
  175. mac);
  176. }
  177. #endif /* NO_SHA256_WRAPPER */
  178. void * aes_encrypt_init(const u8 *key, size_t len)
  179. {
  180. AES_KEY *ak;
  181. ak = os_malloc(sizeof(*ak));
  182. if (ak == NULL)
  183. return NULL;
  184. if (AES_set_encrypt_key(key, 8 * len, ak) < 0) {
  185. os_free(ak);
  186. return NULL;
  187. }
  188. return ak;
  189. }
  190. void aes_encrypt(void *ctx, const u8 *plain, u8 *crypt)
  191. {
  192. AES_encrypt(plain, crypt, ctx);
  193. }
  194. void aes_encrypt_deinit(void *ctx)
  195. {
  196. os_free(ctx);
  197. }
  198. void * aes_decrypt_init(const u8 *key, size_t len)
  199. {
  200. AES_KEY *ak;
  201. ak = os_malloc(sizeof(*ak));
  202. if (ak == NULL)
  203. return NULL;
  204. if (AES_set_decrypt_key(key, 8 * len, ak) < 0) {
  205. os_free(ak);
  206. return NULL;
  207. }
  208. return ak;
  209. }
  210. void aes_decrypt(void *ctx, const u8 *crypt, u8 *plain)
  211. {
  212. AES_decrypt(crypt, plain, ctx);
  213. }
  214. void aes_decrypt_deinit(void *ctx)
  215. {
  216. os_free(ctx);
  217. }
  218. int crypto_mod_exp(const u8 *base, size_t base_len,
  219. const u8 *power, size_t power_len,
  220. const u8 *modulus, size_t modulus_len,
  221. u8 *result, size_t *result_len)
  222. {
  223. BIGNUM *bn_base, *bn_exp, *bn_modulus, *bn_result;
  224. int ret = -1;
  225. BN_CTX *ctx;
  226. ctx = BN_CTX_new();
  227. if (ctx == NULL)
  228. return -1;
  229. bn_base = BN_bin2bn(base, base_len, NULL);
  230. bn_exp = BN_bin2bn(power, power_len, NULL);
  231. bn_modulus = BN_bin2bn(modulus, modulus_len, NULL);
  232. bn_result = BN_new();
  233. if (bn_base == NULL || bn_exp == NULL || bn_modulus == NULL ||
  234. bn_result == NULL)
  235. goto error;
  236. if (BN_mod_exp(bn_result, bn_base, bn_exp, bn_modulus, ctx) != 1)
  237. goto error;
  238. *result_len = BN_bn2bin(bn_result, result);
  239. ret = 0;
  240. error:
  241. BN_free(bn_base);
  242. BN_free(bn_exp);
  243. BN_free(bn_modulus);
  244. BN_free(bn_result);
  245. BN_CTX_free(ctx);
  246. return ret;
  247. }
  248. struct crypto_cipher {
  249. EVP_CIPHER_CTX enc;
  250. EVP_CIPHER_CTX dec;
  251. };
  252. struct crypto_cipher * crypto_cipher_init(enum crypto_cipher_alg alg,
  253. const u8 *iv, const u8 *key,
  254. size_t key_len)
  255. {
  256. struct crypto_cipher *ctx;
  257. const EVP_CIPHER *cipher;
  258. ctx = os_zalloc(sizeof(*ctx));
  259. if (ctx == NULL)
  260. return NULL;
  261. switch (alg) {
  262. #ifndef OPENSSL_NO_RC4
  263. case CRYPTO_CIPHER_ALG_RC4:
  264. cipher = EVP_rc4();
  265. break;
  266. #endif /* OPENSSL_NO_RC4 */
  267. #ifndef OPENSSL_NO_AES
  268. case CRYPTO_CIPHER_ALG_AES:
  269. switch (key_len) {
  270. case 16:
  271. cipher = EVP_aes_128_cbc();
  272. break;
  273. case 24:
  274. cipher = EVP_aes_192_cbc();
  275. break;
  276. case 32:
  277. cipher = EVP_aes_256_cbc();
  278. break;
  279. default:
  280. os_free(ctx);
  281. return NULL;
  282. }
  283. break;
  284. #endif /* OPENSSL_NO_AES */
  285. #ifndef OPENSSL_NO_DES
  286. case CRYPTO_CIPHER_ALG_3DES:
  287. cipher = EVP_des_ede3_cbc();
  288. break;
  289. case CRYPTO_CIPHER_ALG_DES:
  290. cipher = EVP_des_cbc();
  291. break;
  292. #endif /* OPENSSL_NO_DES */
  293. #ifndef OPENSSL_NO_RC2
  294. case CRYPTO_CIPHER_ALG_RC2:
  295. cipher = EVP_rc2_ecb();
  296. break;
  297. #endif /* OPENSSL_NO_RC2 */
  298. default:
  299. os_free(ctx);
  300. return NULL;
  301. }
  302. EVP_CIPHER_CTX_init(&ctx->enc);
  303. EVP_CIPHER_CTX_set_padding(&ctx->enc, 0);
  304. if (!EVP_EncryptInit_ex(&ctx->enc, cipher, NULL, NULL, NULL) ||
  305. !EVP_CIPHER_CTX_set_key_length(&ctx->enc, key_len) ||
  306. !EVP_EncryptInit_ex(&ctx->enc, NULL, NULL, key, iv)) {
  307. EVP_CIPHER_CTX_cleanup(&ctx->enc);
  308. os_free(ctx);
  309. return NULL;
  310. }
  311. EVP_CIPHER_CTX_init(&ctx->dec);
  312. EVP_CIPHER_CTX_set_padding(&ctx->dec, 0);
  313. if (!EVP_DecryptInit_ex(&ctx->dec, cipher, NULL, NULL, NULL) ||
  314. !EVP_CIPHER_CTX_set_key_length(&ctx->dec, key_len) ||
  315. !EVP_DecryptInit_ex(&ctx->dec, NULL, NULL, key, iv)) {
  316. EVP_CIPHER_CTX_cleanup(&ctx->enc);
  317. EVP_CIPHER_CTX_cleanup(&ctx->dec);
  318. os_free(ctx);
  319. return NULL;
  320. }
  321. return ctx;
  322. }
  323. int crypto_cipher_encrypt(struct crypto_cipher *ctx, const u8 *plain,
  324. u8 *crypt, size_t len)
  325. {
  326. int outl;
  327. if (!EVP_EncryptUpdate(&ctx->enc, crypt, &outl, plain, len))
  328. return -1;
  329. return 0;
  330. }
  331. int crypto_cipher_decrypt(struct crypto_cipher *ctx, const u8 *crypt,
  332. u8 *plain, size_t len)
  333. {
  334. int outl;
  335. outl = len;
  336. if (!EVP_DecryptUpdate(&ctx->dec, plain, &outl, crypt, len))
  337. return -1;
  338. return 0;
  339. }
  340. void crypto_cipher_deinit(struct crypto_cipher *ctx)
  341. {
  342. EVP_CIPHER_CTX_cleanup(&ctx->enc);
  343. EVP_CIPHER_CTX_cleanup(&ctx->dec);
  344. os_free(ctx);
  345. }
  346. void * dh5_init(struct wpabuf **priv, struct wpabuf **publ)
  347. {
  348. DH *dh;
  349. struct wpabuf *pubkey = NULL, *privkey = NULL;
  350. size_t publen, privlen;
  351. *priv = NULL;
  352. *publ = NULL;
  353. dh = DH_new();
  354. if (dh == NULL)
  355. return NULL;
  356. dh->g = BN_new();
  357. if (dh->g == NULL || BN_set_word(dh->g, 2) != 1)
  358. goto err;
  359. dh->p = get_group5_prime();
  360. if (dh->p == NULL)
  361. goto err;
  362. if (DH_generate_key(dh) != 1)
  363. goto err;
  364. publen = BN_num_bytes(dh->pub_key);
  365. pubkey = wpabuf_alloc(publen);
  366. if (pubkey == NULL)
  367. goto err;
  368. privlen = BN_num_bytes(dh->priv_key);
  369. privkey = wpabuf_alloc(privlen);
  370. if (privkey == NULL)
  371. goto err;
  372. BN_bn2bin(dh->pub_key, wpabuf_put(pubkey, publen));
  373. BN_bn2bin(dh->priv_key, wpabuf_put(privkey, privlen));
  374. *priv = privkey;
  375. *publ = pubkey;
  376. return dh;
  377. err:
  378. wpabuf_free(pubkey);
  379. wpabuf_free(privkey);
  380. DH_free(dh);
  381. return NULL;
  382. }
  383. struct wpabuf * dh5_derive_shared(void *ctx, const struct wpabuf *peer_public,
  384. const struct wpabuf *own_private)
  385. {
  386. BIGNUM *pub_key;
  387. struct wpabuf *res = NULL;
  388. size_t rlen;
  389. DH *dh = ctx;
  390. int keylen;
  391. if (ctx == NULL)
  392. return NULL;
  393. pub_key = BN_bin2bn(wpabuf_head(peer_public), wpabuf_len(peer_public),
  394. NULL);
  395. if (pub_key == NULL)
  396. return NULL;
  397. rlen = DH_size(dh);
  398. res = wpabuf_alloc(rlen);
  399. if (res == NULL)
  400. goto err;
  401. keylen = DH_compute_key(wpabuf_mhead(res), pub_key, dh);
  402. if (keylen < 0)
  403. goto err;
  404. wpabuf_put(res, keylen);
  405. BN_free(pub_key);
  406. return res;
  407. err:
  408. BN_free(pub_key);
  409. wpabuf_free(res);
  410. return NULL;
  411. }
  412. void dh5_free(void *ctx)
  413. {
  414. DH *dh;
  415. if (ctx == NULL)
  416. return;
  417. dh = ctx;
  418. DH_free(dh);
  419. }