s3_cbc.c 17 KB

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  1. /*
  2. * Copyright 2012-2016 The OpenSSL Project Authors. All Rights Reserved.
  3. *
  4. * Licensed under the OpenSSL license (the "License"). You may not use
  5. * this file except in compliance with the License. You can obtain a copy
  6. * in the file LICENSE in the source distribution or at
  7. * https://www.openssl.org/source/license.html
  8. */
  9. #include "internal/constant_time_locl.h"
  10. #include "ssl_locl.h"
  11. #include <openssl/md5.h>
  12. #include <openssl/sha.h>
  13. /*
  14. * MAX_HASH_BIT_COUNT_BYTES is the maximum number of bytes in the hash's
  15. * length field. (SHA-384/512 have 128-bit length.)
  16. */
  17. #define MAX_HASH_BIT_COUNT_BYTES 16
  18. /*
  19. * MAX_HASH_BLOCK_SIZE is the maximum hash block size that we'll support.
  20. * Currently SHA-384/512 has a 128-byte block size and that's the largest
  21. * supported by TLS.)
  22. */
  23. #define MAX_HASH_BLOCK_SIZE 128
  24. /*
  25. * u32toLE serialises an unsigned, 32-bit number (n) as four bytes at (p) in
  26. * little-endian order. The value of p is advanced by four.
  27. */
  28. #define u32toLE(n, p) \
  29. (*((p)++)=(unsigned char)(n), \
  30. *((p)++)=(unsigned char)(n>>8), \
  31. *((p)++)=(unsigned char)(n>>16), \
  32. *((p)++)=(unsigned char)(n>>24))
  33. /*
  34. * These functions serialize the state of a hash and thus perform the
  35. * standard "final" operation without adding the padding and length that such
  36. * a function typically does.
  37. */
  38. static void tls1_md5_final_raw(void *ctx, unsigned char *md_out)
  39. {
  40. MD5_CTX *md5 = ctx;
  41. u32toLE(md5->A, md_out);
  42. u32toLE(md5->B, md_out);
  43. u32toLE(md5->C, md_out);
  44. u32toLE(md5->D, md_out);
  45. }
  46. static void tls1_sha1_final_raw(void *ctx, unsigned char *md_out)
  47. {
  48. SHA_CTX *sha1 = ctx;
  49. l2n(sha1->h0, md_out);
  50. l2n(sha1->h1, md_out);
  51. l2n(sha1->h2, md_out);
  52. l2n(sha1->h3, md_out);
  53. l2n(sha1->h4, md_out);
  54. }
  55. static void tls1_sha256_final_raw(void *ctx, unsigned char *md_out)
  56. {
  57. SHA256_CTX *sha256 = ctx;
  58. unsigned i;
  59. for (i = 0; i < 8; i++) {
  60. l2n(sha256->h[i], md_out);
  61. }
  62. }
  63. static void tls1_sha512_final_raw(void *ctx, unsigned char *md_out)
  64. {
  65. SHA512_CTX *sha512 = ctx;
  66. unsigned i;
  67. for (i = 0; i < 8; i++) {
  68. l2n8(sha512->h[i], md_out);
  69. }
  70. }
  71. #undef LARGEST_DIGEST_CTX
  72. #define LARGEST_DIGEST_CTX SHA512_CTX
  73. /*
  74. * ssl3_cbc_record_digest_supported returns 1 iff |ctx| uses a hash function
  75. * which ssl3_cbc_digest_record supports.
  76. */
  77. char ssl3_cbc_record_digest_supported(const EVP_MD_CTX *ctx)
  78. {
  79. switch (EVP_MD_CTX_type(ctx)) {
  80. case NID_md5:
  81. case NID_sha1:
  82. case NID_sha224:
  83. case NID_sha256:
  84. case NID_sha384:
  85. case NID_sha512:
  86. return 1;
  87. default:
  88. return 0;
  89. }
  90. }
  91. /*-
  92. * ssl3_cbc_digest_record computes the MAC of a decrypted, padded SSLv3/TLS
  93. * record.
  94. *
  95. * ctx: the EVP_MD_CTX from which we take the hash function.
  96. * ssl3_cbc_record_digest_supported must return true for this EVP_MD_CTX.
  97. * md_out: the digest output. At most EVP_MAX_MD_SIZE bytes will be written.
  98. * md_out_size: if non-NULL, the number of output bytes is written here.
  99. * header: the 13-byte, TLS record header.
  100. * data: the record data itself, less any preceding explicit IV.
  101. * data_plus_mac_size: the secret, reported length of the data and MAC
  102. * once the padding has been removed.
  103. * data_plus_mac_plus_padding_size: the public length of the whole
  104. * record, including padding.
  105. * is_sslv3: non-zero if we are to use SSLv3. Otherwise, TLS.
  106. *
  107. * On entry: by virtue of having been through one of the remove_padding
  108. * functions, above, we know that data_plus_mac_size is large enough to contain
  109. * a padding byte and MAC. (If the padding was invalid, it might contain the
  110. * padding too. )
  111. * Returns 1 on success or 0 on error
  112. */
  113. int ssl3_cbc_digest_record(const EVP_MD_CTX *ctx,
  114. unsigned char *md_out,
  115. size_t *md_out_size,
  116. const unsigned char header[13],
  117. const unsigned char *data,
  118. size_t data_plus_mac_size,
  119. size_t data_plus_mac_plus_padding_size,
  120. const unsigned char *mac_secret,
  121. size_t mac_secret_length, char is_sslv3)
  122. {
  123. union {
  124. double align;
  125. unsigned char c[sizeof(LARGEST_DIGEST_CTX)];
  126. } md_state;
  127. void (*md_final_raw) (void *ctx, unsigned char *md_out);
  128. void (*md_transform) (void *ctx, const unsigned char *block);
  129. size_t md_size, md_block_size = 64;
  130. size_t sslv3_pad_length = 40, header_length, variance_blocks,
  131. len, max_mac_bytes, num_blocks,
  132. num_starting_blocks, k, mac_end_offset, c, index_a, index_b;
  133. size_t bits; /* at most 18 bits */
  134. unsigned char length_bytes[MAX_HASH_BIT_COUNT_BYTES];
  135. /* hmac_pad is the masked HMAC key. */
  136. unsigned char hmac_pad[MAX_HASH_BLOCK_SIZE];
  137. unsigned char first_block[MAX_HASH_BLOCK_SIZE];
  138. unsigned char mac_out[EVP_MAX_MD_SIZE];
  139. size_t i, j;
  140. unsigned md_out_size_u;
  141. EVP_MD_CTX *md_ctx = NULL;
  142. /*
  143. * mdLengthSize is the number of bytes in the length field that
  144. * terminates * the hash.
  145. */
  146. size_t md_length_size = 8;
  147. char length_is_big_endian = 1;
  148. int ret;
  149. /*
  150. * This is a, hopefully redundant, check that allows us to forget about
  151. * many possible overflows later in this function.
  152. */
  153. OPENSSL_assert(data_plus_mac_plus_padding_size < 1024 * 1024);
  154. switch (EVP_MD_CTX_type(ctx)) {
  155. case NID_md5:
  156. if (MD5_Init((MD5_CTX *)md_state.c) <= 0)
  157. return 0;
  158. md_final_raw = tls1_md5_final_raw;
  159. md_transform =
  160. (void (*)(void *ctx, const unsigned char *block))MD5_Transform;
  161. md_size = 16;
  162. sslv3_pad_length = 48;
  163. length_is_big_endian = 0;
  164. break;
  165. case NID_sha1:
  166. if (SHA1_Init((SHA_CTX *)md_state.c) <= 0)
  167. return 0;
  168. md_final_raw = tls1_sha1_final_raw;
  169. md_transform =
  170. (void (*)(void *ctx, const unsigned char *block))SHA1_Transform;
  171. md_size = 20;
  172. break;
  173. case NID_sha224:
  174. if (SHA224_Init((SHA256_CTX *)md_state.c) <= 0)
  175. return 0;
  176. md_final_raw = tls1_sha256_final_raw;
  177. md_transform =
  178. (void (*)(void *ctx, const unsigned char *block))SHA256_Transform;
  179. md_size = 224 / 8;
  180. break;
  181. case NID_sha256:
  182. if (SHA256_Init((SHA256_CTX *)md_state.c) <= 0)
  183. return 0;
  184. md_final_raw = tls1_sha256_final_raw;
  185. md_transform =
  186. (void (*)(void *ctx, const unsigned char *block))SHA256_Transform;
  187. md_size = 32;
  188. break;
  189. case NID_sha384:
  190. if (SHA384_Init((SHA512_CTX *)md_state.c) <= 0)
  191. return 0;
  192. md_final_raw = tls1_sha512_final_raw;
  193. md_transform =
  194. (void (*)(void *ctx, const unsigned char *block))SHA512_Transform;
  195. md_size = 384 / 8;
  196. md_block_size = 128;
  197. md_length_size = 16;
  198. break;
  199. case NID_sha512:
  200. if (SHA512_Init((SHA512_CTX *)md_state.c) <= 0)
  201. return 0;
  202. md_final_raw = tls1_sha512_final_raw;
  203. md_transform =
  204. (void (*)(void *ctx, const unsigned char *block))SHA512_Transform;
  205. md_size = 64;
  206. md_block_size = 128;
  207. md_length_size = 16;
  208. break;
  209. default:
  210. /*
  211. * ssl3_cbc_record_digest_supported should have been called first to
  212. * check that the hash function is supported.
  213. */
  214. OPENSSL_assert(0);
  215. if (md_out_size)
  216. *md_out_size = 0;
  217. return 0;
  218. }
  219. OPENSSL_assert(md_length_size <= MAX_HASH_BIT_COUNT_BYTES);
  220. OPENSSL_assert(md_block_size <= MAX_HASH_BLOCK_SIZE);
  221. OPENSSL_assert(md_size <= EVP_MAX_MD_SIZE);
  222. header_length = 13;
  223. if (is_sslv3) {
  224. header_length = mac_secret_length + sslv3_pad_length + 8 /* sequence
  225. * number */ +
  226. 1 /* record type */ +
  227. 2 /* record length */ ;
  228. }
  229. /*
  230. * variance_blocks is the number of blocks of the hash that we have to
  231. * calculate in constant time because they could be altered by the
  232. * padding value. In SSLv3, the padding must be minimal so the end of
  233. * the plaintext varies by, at most, 15+20 = 35 bytes. (We conservatively
  234. * assume that the MAC size varies from 0..20 bytes.) In case the 9 bytes
  235. * of hash termination (0x80 + 64-bit length) don't fit in the final
  236. * block, we say that the final two blocks can vary based on the padding.
  237. * TLSv1 has MACs up to 48 bytes long (SHA-384) and the padding is not
  238. * required to be minimal. Therefore we say that the final six blocks can
  239. * vary based on the padding. Later in the function, if the message is
  240. * short and there obviously cannot be this many blocks then
  241. * variance_blocks can be reduced.
  242. */
  243. variance_blocks = is_sslv3 ? 2 : 6;
  244. /*
  245. * From now on we're dealing with the MAC, which conceptually has 13
  246. * bytes of `header' before the start of the data (TLS) or 71/75 bytes
  247. * (SSLv3)
  248. */
  249. len = data_plus_mac_plus_padding_size + header_length;
  250. /*
  251. * max_mac_bytes contains the maximum bytes of bytes in the MAC,
  252. * including * |header|, assuming that there's no padding.
  253. */
  254. max_mac_bytes = len - md_size - 1;
  255. /* num_blocks is the maximum number of hash blocks. */
  256. num_blocks =
  257. (max_mac_bytes + 1 + md_length_size + md_block_size -
  258. 1) / md_block_size;
  259. /*
  260. * In order to calculate the MAC in constant time we have to handle the
  261. * final blocks specially because the padding value could cause the end
  262. * to appear somewhere in the final |variance_blocks| blocks and we can't
  263. * leak where. However, |num_starting_blocks| worth of data can be hashed
  264. * right away because no padding value can affect whether they are
  265. * plaintext.
  266. */
  267. num_starting_blocks = 0;
  268. /*
  269. * k is the starting byte offset into the conceptual header||data where
  270. * we start processing.
  271. */
  272. k = 0;
  273. /*
  274. * mac_end_offset is the index just past the end of the data to be MACed.
  275. */
  276. mac_end_offset = data_plus_mac_size + header_length - md_size;
  277. /*
  278. * c is the index of the 0x80 byte in the final hash block that contains
  279. * application data.
  280. */
  281. c = mac_end_offset % md_block_size;
  282. /*
  283. * index_a is the hash block number that contains the 0x80 terminating
  284. * value.
  285. */
  286. index_a = mac_end_offset / md_block_size;
  287. /*
  288. * index_b is the hash block number that contains the 64-bit hash length,
  289. * in bits.
  290. */
  291. index_b = (mac_end_offset + md_length_size) / md_block_size;
  292. /*
  293. * bits is the hash-length in bits. It includes the additional hash block
  294. * for the masked HMAC key, or whole of |header| in the case of SSLv3.
  295. */
  296. /*
  297. * For SSLv3, if we're going to have any starting blocks then we need at
  298. * least two because the header is larger than a single block.
  299. */
  300. if (num_blocks > variance_blocks + (is_sslv3 ? 1 : 0)) {
  301. num_starting_blocks = num_blocks - variance_blocks;
  302. k = md_block_size * num_starting_blocks;
  303. }
  304. bits = 8 * mac_end_offset;
  305. if (!is_sslv3) {
  306. /*
  307. * Compute the initial HMAC block. For SSLv3, the padding and secret
  308. * bytes are included in |header| because they take more than a
  309. * single block.
  310. */
  311. bits += 8 * md_block_size;
  312. memset(hmac_pad, 0, md_block_size);
  313. OPENSSL_assert(mac_secret_length <= sizeof(hmac_pad));
  314. memcpy(hmac_pad, mac_secret, mac_secret_length);
  315. for (i = 0; i < md_block_size; i++)
  316. hmac_pad[i] ^= 0x36;
  317. md_transform(md_state.c, hmac_pad);
  318. }
  319. if (length_is_big_endian) {
  320. memset(length_bytes, 0, md_length_size - 4);
  321. length_bytes[md_length_size - 4] = (unsigned char)(bits >> 24);
  322. length_bytes[md_length_size - 3] = (unsigned char)(bits >> 16);
  323. length_bytes[md_length_size - 2] = (unsigned char)(bits >> 8);
  324. length_bytes[md_length_size - 1] = (unsigned char)bits;
  325. } else {
  326. memset(length_bytes, 0, md_length_size);
  327. length_bytes[md_length_size - 5] = (unsigned char)(bits >> 24);
  328. length_bytes[md_length_size - 6] = (unsigned char)(bits >> 16);
  329. length_bytes[md_length_size - 7] = (unsigned char)(bits >> 8);
  330. length_bytes[md_length_size - 8] = (unsigned char)bits;
  331. }
  332. if (k > 0) {
  333. if (is_sslv3) {
  334. size_t overhang;
  335. /*
  336. * The SSLv3 header is larger than a single block. overhang is
  337. * the number of bytes beyond a single block that the header
  338. * consumes: either 7 bytes (SHA1) or 11 bytes (MD5). There are no
  339. * ciphersuites in SSLv3 that are not SHA1 or MD5 based and
  340. * therefore we can be confident that the header_length will be
  341. * greater than |md_block_size|. However we add a sanity check just
  342. * in case
  343. */
  344. if (header_length <= md_block_size) {
  345. /* Should never happen */
  346. return 0;
  347. }
  348. overhang = header_length - md_block_size;
  349. md_transform(md_state.c, header);
  350. memcpy(first_block, header + md_block_size, overhang);
  351. memcpy(first_block + overhang, data, md_block_size - overhang);
  352. md_transform(md_state.c, first_block);
  353. for (i = 1; i < k / md_block_size - 1; i++)
  354. md_transform(md_state.c, data + md_block_size * i - overhang);
  355. } else {
  356. /* k is a multiple of md_block_size. */
  357. memcpy(first_block, header, 13);
  358. memcpy(first_block + 13, data, md_block_size - 13);
  359. md_transform(md_state.c, first_block);
  360. for (i = 1; i < k / md_block_size; i++)
  361. md_transform(md_state.c, data + md_block_size * i - 13);
  362. }
  363. }
  364. memset(mac_out, 0, sizeof(mac_out));
  365. /*
  366. * We now process the final hash blocks. For each block, we construct it
  367. * in constant time. If the |i==index_a| then we'll include the 0x80
  368. * bytes and zero pad etc. For each block we selectively copy it, in
  369. * constant time, to |mac_out|.
  370. */
  371. for (i = num_starting_blocks; i <= num_starting_blocks + variance_blocks;
  372. i++) {
  373. unsigned char block[MAX_HASH_BLOCK_SIZE];
  374. unsigned char is_block_a = constant_time_eq_8_s(i, index_a);
  375. unsigned char is_block_b = constant_time_eq_8_s(i, index_b);
  376. for (j = 0; j < md_block_size; j++) {
  377. unsigned char b = 0, is_past_c, is_past_cp1;
  378. if (k < header_length)
  379. b = header[k];
  380. else if (k < data_plus_mac_plus_padding_size + header_length)
  381. b = data[k - header_length];
  382. k++;
  383. is_past_c = is_block_a & constant_time_ge_8_s(j, c);
  384. is_past_cp1 = is_block_a & constant_time_ge_8_s(j, c + 1);
  385. /*
  386. * If this is the block containing the end of the application
  387. * data, and we are at the offset for the 0x80 value, then
  388. * overwrite b with 0x80.
  389. */
  390. b = constant_time_select_8(is_past_c, 0x80, b);
  391. /*
  392. * If this the the block containing the end of the application
  393. * data and we're past the 0x80 value then just write zero.
  394. */
  395. b = b & ~is_past_cp1;
  396. /*
  397. * If this is index_b (the final block), but not index_a (the end
  398. * of the data), then the 64-bit length didn't fit into index_a
  399. * and we're having to add an extra block of zeros.
  400. */
  401. b &= ~is_block_b | is_block_a;
  402. /*
  403. * The final bytes of one of the blocks contains the length.
  404. */
  405. if (j >= md_block_size - md_length_size) {
  406. /* If this is index_b, write a length byte. */
  407. b = constant_time_select_8(is_block_b,
  408. length_bytes[j -
  409. (md_block_size -
  410. md_length_size)], b);
  411. }
  412. block[j] = b;
  413. }
  414. md_transform(md_state.c, block);
  415. md_final_raw(md_state.c, block);
  416. /* If this is index_b, copy the hash value to |mac_out|. */
  417. for (j = 0; j < md_size; j++)
  418. mac_out[j] |= block[j] & is_block_b;
  419. }
  420. md_ctx = EVP_MD_CTX_new();
  421. if (md_ctx == NULL)
  422. goto err;
  423. if (EVP_DigestInit_ex(md_ctx, EVP_MD_CTX_md(ctx), NULL /* engine */ ) <= 0)
  424. goto err;
  425. if (is_sslv3) {
  426. /* We repurpose |hmac_pad| to contain the SSLv3 pad2 block. */
  427. memset(hmac_pad, 0x5c, sslv3_pad_length);
  428. if (EVP_DigestUpdate(md_ctx, mac_secret, mac_secret_length) <= 0
  429. || EVP_DigestUpdate(md_ctx, hmac_pad, sslv3_pad_length) <= 0
  430. || EVP_DigestUpdate(md_ctx, mac_out, md_size) <= 0)
  431. goto err;
  432. } else {
  433. /* Complete the HMAC in the standard manner. */
  434. for (i = 0; i < md_block_size; i++)
  435. hmac_pad[i] ^= 0x6a;
  436. if (EVP_DigestUpdate(md_ctx, hmac_pad, md_block_size) <= 0
  437. || EVP_DigestUpdate(md_ctx, mac_out, md_size) <= 0)
  438. goto err;
  439. }
  440. /* TODO(size_t): Convert me */
  441. ret = EVP_DigestFinal(md_ctx, md_out, &md_out_size_u);
  442. if (ret && md_out_size)
  443. *md_out_size = md_out_size_u;
  444. EVP_MD_CTX_free(md_ctx);
  445. return 1;
  446. err:
  447. EVP_MD_CTX_free(md_ctx);
  448. return 0;
  449. }