sha2.cpp 24 KB

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  1. /*
  2. ---------------------------------------------------------------------------
  3. Copyright (c) 2002, Dr Brian Gladman <brg@gladman.me.uk>, Worcester, UK.
  4. All rights reserved.
  5. LICENSE TERMS
  6. The free distribution and use of this software in both source and binary
  7. form is allowed (with or without changes) provided that:
  8. 1. distributions of this source code include the above copyright
  9. notice, this list of conditions and the following disclaimer;
  10. 2. distributions in binary form include the above copyright
  11. notice, this list of conditions and the following disclaimer
  12. in the documentation and/or other associated materials;
  13. 3. the copyright holder's name is not used to endorse products
  14. built using this software without specific written permission.
  15. ALTERNATIVELY, provided that this notice is retained in full, this product
  16. may be distributed under the terms of the GNU General Public License (GPL),
  17. in which case the provisions of the GPL apply INSTEAD OF those given above.
  18. DISCLAIMER
  19. This software is provided 'as is' with no explicit or implied warranties
  20. in respect of its properties, including, but not limited to, correctness
  21. and/or fitness for purpose.
  22. ---------------------------------------------------------------------------
  23. Issue Date: 30/11/2002
  24. This is a byte oriented version of SHA2 that operates on arrays of bytes
  25. stored in memory. This code implements sha256, sha384 and sha512 but the
  26. latter two functions rely on efficient 64-bit integer operations that
  27. may not be very efficient on 32-bit machines
  28. The sha256 functions use a type 'sha256_ctx' to hold details of the
  29. current hash state and uses the following three calls:
  30. void sha256_begin(sha256_ctx ctx[1])
  31. void sha256_hash(const unsigned char data[],
  32. unsigned long len, sha256_ctx ctx[1])
  33. void sha256_end(unsigned char hval[], sha256_ctx ctx[1])
  34. The first subroutine initialises a hash computation by setting up the
  35. context in the sha256_ctx context. The second subroutine hashes 8-bit
  36. bytes from array data[] into the hash state withinh sha256_ctx context,
  37. the number of bytes to be hashed being given by the the unsigned long
  38. integer len. The third subroutine completes the hash calculation and
  39. places the resulting digest value in the array of 8-bit bytes hval[].
  40. The sha384 and sha512 functions are similar and use the interfaces:
  41. void sha384_begin(sha384_ctx ctx[1]);
  42. void sha384_hash(const unsigned char data[],
  43. unsigned long len, sha384_ctx ctx[1]);
  44. void sha384_end(unsigned char hval[], sha384_ctx ctx[1]);
  45. void sha512_begin(sha512_ctx ctx[1]);
  46. void sha512_hash(const unsigned char data[],
  47. unsigned long len, sha512_ctx ctx[1]);
  48. void sha512_end(unsigned char hval[], sha512_ctx ctx[1]);
  49. In addition there is a function sha2 that can be used to call all these
  50. functions using a call with a hash length parameter as follows:
  51. int sha2_begin(unsigned long len, sha2_ctx ctx[1]);
  52. void sha2_hash(const unsigned char data[],
  53. unsigned long len, sha2_ctx ctx[1]);
  54. void sha2_end(unsigned char hval[], sha2_ctx ctx[1]);
  55. My thanks to Erik Andersen <andersen@codepoet.org> for testing this code
  56. on big-endian systems and for his assistance with corrections
  57. */
  58. /* define the hash functions that you need */
  59. #define SHA_2 /* for dynamic hash length */
  60. #define SHA_256
  61. #define SHA_384
  62. #define SHA_512
  63. #include <string.h> /* for memcpy() etc. */
  64. #include <stdlib.h> /* for _lrotr with VC++ */
  65. #include "sha2.h"
  66. /* 1. PLATFORM SPECIFIC INCLUDES */
  67. #if defined(__GNU_LIBRARY__)
  68. # include <byteswap.h>
  69. # include <endian.h>
  70. #elif defined(__CRYPTLIB__)
  71. # if defined( INC_ALL )
  72. # include "crypt.h"
  73. # elif defined( INC_CHILD )
  74. # include "../crypt.h"
  75. # else
  76. # include "crypt.h"
  77. # endif
  78. # if defined(DATA_LITTLEENDIAN)
  79. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  80. # else
  81. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  82. # endif
  83. #elif defined(_MSC_VER)
  84. # include <stdlib.h>
  85. #elif !defined(WIN32)
  86. # include <stdlib.h>
  87. # if !defined (_ENDIAN_H)
  88. # include <sys/param.h>
  89. # else
  90. # include _ENDIAN_H
  91. # endif
  92. #endif
  93. /* 2. BYTE ORDER IN 32-BIT WORDS
  94. To obtain the highest speed on processors with 32-bit words, this code
  95. needs to determine the order in which bytes are packed into such words.
  96. The following block of code is an attempt to capture the most obvious
  97. ways in which various environemnts specify their endian definitions.
  98. It may well fail, in which case the definitions will need to be set by
  99. editing at the points marked **** EDIT HERE IF NECESSARY **** below.
  100. */
  101. #define SHA_LITTLE_ENDIAN 1234 /* byte 0 is least significant (i386) */
  102. #define SHA_BIG_ENDIAN 4321 /* byte 0 is most significant (mc68k) */
  103. #if !defined(PLATFORM_BYTE_ORDER)
  104. #if defined(LITTLE_ENDIAN) || defined(BIG_ENDIAN)
  105. # if defined(LITTLE_ENDIAN) && defined(BIG_ENDIAN)
  106. # if defined(BYTE_ORDER)
  107. # if (BYTE_ORDER == LITTLE_ENDIAN)
  108. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  109. # elif (BYTE_ORDER == BIG_ENDIAN)
  110. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  111. # endif
  112. # endif
  113. # elif defined(LITTLE_ENDIAN) && !defined(BIG_ENDIAN)
  114. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  115. # elif !defined(LITTLE_ENDIAN) && defined(BIG_ENDIAN)
  116. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  117. # endif
  118. #elif defined(_LITTLE_ENDIAN) || defined(_BIG_ENDIAN)
  119. # if defined(_LITTLE_ENDIAN) && defined(_BIG_ENDIAN)
  120. # if defined(_BYTE_ORDER)
  121. # if (_BYTE_ORDER == _LITTLE_ENDIAN)
  122. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  123. # elif (_BYTE_ORDER == _BIG_ENDIAN)
  124. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  125. # endif
  126. # endif
  127. # elif defined(_LITTLE_ENDIAN) && !defined(_BIG_ENDIAN)
  128. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  129. # elif !defined(_LITTLE_ENDIAN) && defined(_BIG_ENDIAN)
  130. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  131. # endif
  132. #elif 0 /* **** EDIT HERE IF NECESSARY **** */
  133. #define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  134. #elif 0 /* **** EDIT HERE IF NECESSARY **** */
  135. #define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  136. #elif (('1234' >> 24) == '1')
  137. # define PLATFORM_BYTE_ORDER SHA_LITTLE_ENDIAN
  138. #elif (('4321' >> 24) == '1')
  139. # define PLATFORM_BYTE_ORDER SHA_BIG_ENDIAN
  140. #endif
  141. #endif
  142. #if !defined(PLATFORM_BYTE_ORDER)
  143. # error Please set undetermined byte order (lines 159 or 161 of sha2.c).
  144. #endif
  145. #ifdef _MSC_VER
  146. #pragma intrinsic(memcpy)
  147. #endif
  148. #define rotr32(x,n) (((x) >> n) | ((x) << (32 - n)))
  149. #if !defined(bswap_32)
  150. #define bswap_32(x) (rotr32((x), 24) & 0x00ff00ff | rotr32((x), 8) & 0xff00ff00)
  151. #endif
  152. #if (PLATFORM_BYTE_ORDER == SHA_LITTLE_ENDIAN)
  153. #define SWAP_BYTES
  154. #else
  155. #undef SWAP_BYTES
  156. #endif
  157. #if defined(SHA_2) || defined(SHA_256)
  158. #define SHA256_MASK (SHA256_BLOCK_SIZE - 1)
  159. #if defined(SWAP_BYTES)
  160. #define bsw_32(p,n) { int _i = (n); while(_i--) p[_i] = bswap_32(p[_i]); }
  161. #else
  162. #define bsw_32(p,n)
  163. #endif
  164. /* SHA256 mixing function definitions */
  165. #define ch(x,y,z) (((x) & (y)) ^ (~(x) & (z)))
  166. #define maj(x,y,z) (((x) & (y)) ^ ((x) & (z)) ^ ((y) & (z)))
  167. #define s256_0(x) (rotr32((x), 2) ^ rotr32((x), 13) ^ rotr32((x), 22))
  168. #define s256_1(x) (rotr32((x), 6) ^ rotr32((x), 11) ^ rotr32((x), 25))
  169. #define g256_0(x) (rotr32((x), 7) ^ rotr32((x), 18) ^ ((x) >> 3))
  170. #define g256_1(x) (rotr32((x), 17) ^ rotr32((x), 19) ^ ((x) >> 10))
  171. /* rotated SHA256 round definition. Rather than swapping variables as in */
  172. /* FIPS-180, different variables are 'rotated' on each round, returning */
  173. /* to their starting positions every eight rounds */
  174. #define h2(i) ctx->wbuf[i & 15] += \
  175. g256_1(ctx->wbuf[(i + 14) & 15]) + ctx->wbuf[(i + 9) & 15] + g256_0(ctx->wbuf[(i + 1) & 15])
  176. #define h2_cycle(i,j) \
  177. v[(7 - i) & 7] += (j ? h2(i) : ctx->wbuf[i & 15]) + k256[i + j] \
  178. + s256_1(v[(4 - i) & 7]) + ch(v[(4 - i) & 7], v[(5 - i) & 7], v[(6 - i) & 7]); \
  179. v[(3 - i) & 7] += v[(7 - i) & 7]; \
  180. v[(7 - i) & 7] += s256_0(v[(0 - i) & 7]) + maj(v[(0 - i) & 7], v[(1 - i) & 7], v[(2 - i) & 7])
  181. /* SHA256 mixing data */
  182. const sha2_32t k256[64] =
  183. { n_u32(428a2f98), n_u32(71374491), n_u32(b5c0fbcf), n_u32(e9b5dba5),
  184. n_u32(3956c25b), n_u32(59f111f1), n_u32(923f82a4), n_u32(ab1c5ed5),
  185. n_u32(d807aa98), n_u32(12835b01), n_u32(243185be), n_u32(550c7dc3),
  186. n_u32(72be5d74), n_u32(80deb1fe), n_u32(9bdc06a7), n_u32(c19bf174),
  187. n_u32(e49b69c1), n_u32(efbe4786), n_u32(0fc19dc6), n_u32(240ca1cc),
  188. n_u32(2de92c6f), n_u32(4a7484aa), n_u32(5cb0a9dc), n_u32(76f988da),
  189. n_u32(983e5152), n_u32(a831c66d), n_u32(b00327c8), n_u32(bf597fc7),
  190. n_u32(c6e00bf3), n_u32(d5a79147), n_u32(06ca6351), n_u32(14292967),
  191. n_u32(27b70a85), n_u32(2e1b2138), n_u32(4d2c6dfc), n_u32(53380d13),
  192. n_u32(650a7354), n_u32(766a0abb), n_u32(81c2c92e), n_u32(92722c85),
  193. n_u32(a2bfe8a1), n_u32(a81a664b), n_u32(c24b8b70), n_u32(c76c51a3),
  194. n_u32(d192e819), n_u32(d6990624), n_u32(f40e3585), n_u32(106aa070),
  195. n_u32(19a4c116), n_u32(1e376c08), n_u32(2748774c), n_u32(34b0bcb5),
  196. n_u32(391c0cb3), n_u32(4ed8aa4a), n_u32(5b9cca4f), n_u32(682e6ff3),
  197. n_u32(748f82ee), n_u32(78a5636f), n_u32(84c87814), n_u32(8cc70208),
  198. n_u32(90befffa), n_u32(a4506ceb), n_u32(bef9a3f7), n_u32(c67178f2),
  199. };
  200. /* SHA256 initialisation data */
  201. const sha2_32t i256[8] =
  202. {
  203. n_u32(6a09e667), n_u32(bb67ae85), n_u32(3c6ef372), n_u32(a54ff53a),
  204. n_u32(510e527f), n_u32(9b05688c), n_u32(1f83d9ab), n_u32(5be0cd19)
  205. };
  206. void sha256_begin(sha256_ctx ctx[1])
  207. {
  208. ctx->count[0] = ctx->count[1] = 0;
  209. memcpy(ctx->hash, i256, 8 * sizeof(sha2_32t));
  210. }
  211. /* Compile 64 bytes of hash data into SHA256 digest value */
  212. /* NOTE: this routine assumes that the byte order in the */
  213. /* ctx->wbuf[] at this point is in such an order that low */
  214. /* address bytes in the ORIGINAL byte stream placed in this */
  215. /* buffer will now go to the high end of words on BOTH big */
  216. /* and little endian systems */
  217. void sha256_compile(sha256_ctx ctx[1])
  218. { sha2_32t v[8], j;
  219. memcpy(v, ctx->hash, 8 * sizeof(sha2_32t));
  220. for(j = 0; j < 64; j += 16)
  221. {
  222. h2_cycle( 0, j); h2_cycle( 1, j); h2_cycle( 2, j); h2_cycle( 3, j);
  223. h2_cycle( 4, j); h2_cycle( 5, j); h2_cycle( 6, j); h2_cycle( 7, j);
  224. h2_cycle( 8, j); h2_cycle( 9, j); h2_cycle(10, j); h2_cycle(11, j);
  225. h2_cycle(12, j); h2_cycle(13, j); h2_cycle(14, j); h2_cycle(15, j);
  226. }
  227. ctx->hash[0] += v[0]; ctx->hash[1] += v[1]; ctx->hash[2] += v[2]; ctx->hash[3] += v[3];
  228. ctx->hash[4] += v[4]; ctx->hash[5] += v[5]; ctx->hash[6] += v[6]; ctx->hash[7] += v[7];
  229. }
  230. /* SHA256 hash data in an array of bytes into hash buffer */
  231. /* and call the hash_compile function as required. */
  232. void sha256_hash(const unsigned char data[], unsigned long len, sha256_ctx ctx[1])
  233. { sha2_32t pos = (sha2_32t)(ctx->count[0] & SHA256_MASK),
  234. space = SHA256_BLOCK_SIZE - pos;
  235. const unsigned char *sp = data;
  236. if((ctx->count[0] += len) < len)
  237. ++(ctx->count[1]);
  238. while(len >= space) /* tranfer whole blocks while possible */
  239. {
  240. memcpy(((unsigned char*)ctx->wbuf) + pos, sp, space);
  241. sp += space; len -= space; space = SHA256_BLOCK_SIZE; pos = 0;
  242. bsw_32(ctx->wbuf, SHA256_BLOCK_SIZE >> 2)
  243. sha256_compile(ctx);
  244. }
  245. memcpy(((unsigned char*)ctx->wbuf) + pos, sp, len);
  246. }
  247. /* SHA256 Final padding and digest calculation */
  248. static sha2_32t m1[4] =
  249. {
  250. n_u32(00000000), n_u32(ff000000), n_u32(ffff0000), n_u32(ffffff00)
  251. };
  252. static sha2_32t b1[4] =
  253. {
  254. n_u32(80000000), n_u32(00800000), n_u32(00008000), n_u32(00000080)
  255. };
  256. void sha256_end(unsigned char hval[], sha256_ctx ctx[1])
  257. { sha2_32t i = (sha2_32t)(ctx->count[0] & SHA256_MASK);
  258. bsw_32(ctx->wbuf, (i + 3) >> 2)
  259. /* bytes in the buffer are now in an order in which references */
  260. /* to 32-bit words will put bytes with lower addresses into the */
  261. /* top of 32 bit words on BOTH big and little endian machines */
  262. /* we now need to mask valid bytes and add the padding which is */
  263. /* a single 1 bit and as many zero bits as necessary. */
  264. ctx->wbuf[i >> 2] = (ctx->wbuf[i >> 2] & m1[i & 3]) | b1[i & 3];
  265. /* we need 9 or more empty positions, one for the padding byte */
  266. /* (above) and eight for the length count. If there is not */
  267. /* enough space pad and empty the buffer */
  268. if(i > SHA256_BLOCK_SIZE - 9)
  269. {
  270. if(i < 60) ctx->wbuf[15] = 0;
  271. sha256_compile(ctx);
  272. i = 0;
  273. }
  274. else /* compute a word index for the empty buffer positions */
  275. i = (i >> 2) + 1;
  276. while(i < 14) /* and zero pad all but last two positions */
  277. ctx->wbuf[i++] = 0;
  278. /* the following 32-bit length fields are assembled in the */
  279. /* wrong byte order on little endian machines but this is */
  280. /* corrected later since they are only ever used as 32-bit */
  281. /* word values. */
  282. ctx->wbuf[14] = (ctx->count[1] << 3) | (ctx->count[0] >> 29);
  283. ctx->wbuf[15] = ctx->count[0] << 3;
  284. sha256_compile(ctx);
  285. /* extract the hash value as bytes in case the hash buffer is */
  286. /* mislaigned for 32-bit words */
  287. for(i = 0; i < SHA256_DIGEST_SIZE; ++i)
  288. hval[i] = (unsigned char)(ctx->hash[i >> 2] >> 8 * (~i & 3));
  289. }
  290. void sha256(unsigned char hval[], const unsigned char data[], unsigned long len)
  291. { sha256_ctx cx[1];
  292. sha256_begin(cx); sha256_hash(data, len, cx); sha256_end(hval, cx);
  293. }
  294. #endif
  295. #if defined(SHA_2) || defined(SHA_384) || defined(SHA_512)
  296. #define SHA512_MASK (SHA512_BLOCK_SIZE - 1)
  297. #define rotr64(x,n) (((x) >> n) | ((x) << (64 - n)))
  298. #if !defined(bswap_64)
  299. #define bswap_64(x) (((sha2_64t)(bswap_32((sha2_32t)(x)))) << 32 | bswap_32((sha2_32t)((x) >> 32)))
  300. #endif
  301. #if defined(SWAP_BYTES)
  302. #define bsw_64(p,n) { int _i = (n); while(_i--) p[_i] = bswap_64(p[_i]); }
  303. #else
  304. #define bsw_64(p,n)
  305. #endif
  306. /* SHA512 mixing function definitions */
  307. #define s512_0(x) (rotr64((x), 28) ^ rotr64((x), 34) ^ rotr64((x), 39))
  308. #define s512_1(x) (rotr64((x), 14) ^ rotr64((x), 18) ^ rotr64((x), 41))
  309. #define g512_0(x) (rotr64((x), 1) ^ rotr64((x), 8) ^ ((x) >> 7))
  310. #define g512_1(x) (rotr64((x), 19) ^ rotr64((x), 61) ^ ((x) >> 6))
  311. /* rotated SHA512 round definition. Rather than swapping variables as in */
  312. /* FIPS-180, different variables are 'rotated' on each round, returning */
  313. /* to their starting positions every eight rounds */
  314. #define h5(i) ctx->wbuf[i & 15] += \
  315. g512_1(ctx->wbuf[(i + 14) & 15]) + ctx->wbuf[(i + 9) & 15] + g512_0(ctx->wbuf[(i + 1) & 15])
  316. #define h5_cycle(i,j) \
  317. v[(7 - i) & 7] += (j ? h5(i) : ctx->wbuf[i & 15]) + k512[i + j] \
  318. + s512_1(v[(4 - i) & 7]) + ch(v[(4 - i) & 7], v[(5 - i) & 7], v[(6 - i) & 7]); \
  319. v[(3 - i) & 7] += v[(7 - i) & 7]; \
  320. v[(7 - i) & 7] += s512_0(v[(0 - i) & 7]) + maj(v[(0 - i) & 7], v[(1 - i) & 7], v[(2 - i) & 7])
  321. /* SHA384/SHA512 mixing data */
  322. const sha2_64t k512[80] =
  323. {
  324. n_u64(428a2f98d728ae22), n_u64(7137449123ef65cd),
  325. n_u64(b5c0fbcfec4d3b2f), n_u64(e9b5dba58189dbbc),
  326. n_u64(3956c25bf348b538), n_u64(59f111f1b605d019),
  327. n_u64(923f82a4af194f9b), n_u64(ab1c5ed5da6d8118),
  328. n_u64(d807aa98a3030242), n_u64(12835b0145706fbe),
  329. n_u64(243185be4ee4b28c), n_u64(550c7dc3d5ffb4e2),
  330. n_u64(72be5d74f27b896f), n_u64(80deb1fe3b1696b1),
  331. n_u64(9bdc06a725c71235), n_u64(c19bf174cf692694),
  332. n_u64(e49b69c19ef14ad2), n_u64(efbe4786384f25e3),
  333. n_u64(0fc19dc68b8cd5b5), n_u64(240ca1cc77ac9c65),
  334. n_u64(2de92c6f592b0275), n_u64(4a7484aa6ea6e483),
  335. n_u64(5cb0a9dcbd41fbd4), n_u64(76f988da831153b5),
  336. n_u64(983e5152ee66dfab), n_u64(a831c66d2db43210),
  337. n_u64(b00327c898fb213f), n_u64(bf597fc7beef0ee4),
  338. n_u64(c6e00bf33da88fc2), n_u64(d5a79147930aa725),
  339. n_u64(06ca6351e003826f), n_u64(142929670a0e6e70),
  340. n_u64(27b70a8546d22ffc), n_u64(2e1b21385c26c926),
  341. n_u64(4d2c6dfc5ac42aed), n_u64(53380d139d95b3df),
  342. n_u64(650a73548baf63de), n_u64(766a0abb3c77b2a8),
  343. n_u64(81c2c92e47edaee6), n_u64(92722c851482353b),
  344. n_u64(a2bfe8a14cf10364), n_u64(a81a664bbc423001),
  345. n_u64(c24b8b70d0f89791), n_u64(c76c51a30654be30),
  346. n_u64(d192e819d6ef5218), n_u64(d69906245565a910),
  347. n_u64(f40e35855771202a), n_u64(106aa07032bbd1b8),
  348. n_u64(19a4c116b8d2d0c8), n_u64(1e376c085141ab53),
  349. n_u64(2748774cdf8eeb99), n_u64(34b0bcb5e19b48a8),
  350. n_u64(391c0cb3c5c95a63), n_u64(4ed8aa4ae3418acb),
  351. n_u64(5b9cca4f7763e373), n_u64(682e6ff3d6b2b8a3),
  352. n_u64(748f82ee5defb2fc), n_u64(78a5636f43172f60),
  353. n_u64(84c87814a1f0ab72), n_u64(8cc702081a6439ec),
  354. n_u64(90befffa23631e28), n_u64(a4506cebde82bde9),
  355. n_u64(bef9a3f7b2c67915), n_u64(c67178f2e372532b),
  356. n_u64(ca273eceea26619c), n_u64(d186b8c721c0c207),
  357. n_u64(eada7dd6cde0eb1e), n_u64(f57d4f7fee6ed178),
  358. n_u64(06f067aa72176fba), n_u64(0a637dc5a2c898a6),
  359. n_u64(113f9804bef90dae), n_u64(1b710b35131c471b),
  360. n_u64(28db77f523047d84), n_u64(32caab7b40c72493),
  361. n_u64(3c9ebe0a15c9bebc), n_u64(431d67c49c100d4c),
  362. n_u64(4cc5d4becb3e42b6), n_u64(597f299cfc657e2a),
  363. n_u64(5fcb6fab3ad6faec), n_u64(6c44198c4a475817)
  364. };
  365. /* Compile 64 bytes of hash data into SHA384/SHA512 digest value */
  366. void sha512_compile(sha512_ctx ctx[1])
  367. { sha2_64t v[8];
  368. sha2_32t j;
  369. memcpy(v, ctx->hash, 8 * sizeof(sha2_64t));
  370. for(j = 0; j < 80; j += 16)
  371. {
  372. h5_cycle( 0, j); h5_cycle( 1, j); h5_cycle( 2, j); h5_cycle( 3, j);
  373. h5_cycle( 4, j); h5_cycle( 5, j); h5_cycle( 6, j); h5_cycle( 7, j);
  374. h5_cycle( 8, j); h5_cycle( 9, j); h5_cycle(10, j); h5_cycle(11, j);
  375. h5_cycle(12, j); h5_cycle(13, j); h5_cycle(14, j); h5_cycle(15, j);
  376. }
  377. ctx->hash[0] += v[0]; ctx->hash[1] += v[1]; ctx->hash[2] += v[2]; ctx->hash[3] += v[3];
  378. ctx->hash[4] += v[4]; ctx->hash[5] += v[5]; ctx->hash[6] += v[6]; ctx->hash[7] += v[7];
  379. }
  380. /* Compile 128 bytes of hash data into SHA256 digest value */
  381. /* NOTE: this routine assumes that the byte order in the */
  382. /* ctx->wbuf[] at this point is in such an order that low */
  383. /* address bytes in the ORIGINAL byte stream placed in this */
  384. /* buffer will now go to the high end of words on BOTH big */
  385. /* and little endian systems */
  386. void sha512_hash(const unsigned char data[], unsigned long len, sha512_ctx ctx[1])
  387. { sha2_32t pos = (sha2_32t)(ctx->count[0] & SHA512_MASK),
  388. space = SHA512_BLOCK_SIZE - pos;
  389. const unsigned char *sp = data;
  390. if((ctx->count[0] += len) < len)
  391. ++(ctx->count[1]);
  392. while(len >= space) /* tranfer whole blocks while possible */
  393. {
  394. memcpy(((unsigned char*)ctx->wbuf) + pos, sp, space);
  395. sp += space; len -= space; space = SHA512_BLOCK_SIZE; pos = 0;
  396. bsw_64(ctx->wbuf, SHA512_BLOCK_SIZE >> 3);
  397. sha512_compile(ctx);
  398. }
  399. memcpy(((unsigned char*)ctx->wbuf) + pos, sp, len);
  400. }
  401. /* SHA384/512 Final padding and digest calculation */
  402. static sha2_64t m2[8] =
  403. {
  404. n_u64(0000000000000000), n_u64(ff00000000000000),
  405. n_u64(ffff000000000000), n_u64(ffffff0000000000),
  406. n_u64(ffffffff00000000), n_u64(ffffffffff000000),
  407. n_u64(ffffffffffff0000), n_u64(ffffffffffffff00)
  408. };
  409. static sha2_64t b2[8] =
  410. {
  411. n_u64(8000000000000000), n_u64(0080000000000000),
  412. n_u64(0000800000000000), n_u64(0000008000000000),
  413. n_u64(0000000080000000), n_u64(0000000000800000),
  414. n_u64(0000000000008000), n_u64(0000000000000080)
  415. };
  416. static void sha_end(unsigned char hval[], sha512_ctx ctx[1], const unsigned int hlen)
  417. { sha2_32t i = (sha2_32t)(ctx->count[0] & SHA512_MASK);
  418. bsw_64(ctx->wbuf, (i + 7) >> 3);
  419. /* bytes in the buffer are now in an order in which references */
  420. /* to 64-bit words will put bytes with lower addresses into the */
  421. /* top of 64 bit words on BOTH big and little endian machines */
  422. /* we now need to mask valid bytes and add the padding which is */
  423. /* a single 1 bit and as many zero bits as necessary. */
  424. ctx->wbuf[i >> 3] = (ctx->wbuf[i >> 3] & m2[i & 7]) | b2[i & 7];
  425. /* we need 17 or more empty byte positions, one for the padding */
  426. /* byte (above) and sixteen for the length count. If there is */
  427. /* not enough space pad and empty the buffer */
  428. if(i > SHA512_BLOCK_SIZE - 17)
  429. {
  430. if(i < 120) ctx->wbuf[15] = 0;
  431. sha512_compile(ctx);
  432. i = 0;
  433. }
  434. else
  435. i = (i >> 3) + 1;
  436. while(i < 14)
  437. ctx->wbuf[i++] = 0;
  438. /* the following 64-bit length fields are assembled in the */
  439. /* wrong byte order on little endian machines but this is */
  440. /* corrected later since they are only ever used as 64-bit */
  441. /* word values. */
  442. ctx->wbuf[14] = (ctx->count[1] << 3) | (ctx->count[0] >> 61);
  443. ctx->wbuf[15] = ctx->count[0] << 3;
  444. sha512_compile(ctx);
  445. /* extract the hash value as bytes in case the hash buffer is */
  446. /* misaligned for 32-bit words */
  447. for(i = 0; i < hlen; ++i)
  448. hval[i] = (unsigned char)(ctx->hash[i >> 3] >> 8 * (~i & 7));
  449. }
  450. #endif
  451. #if defined(SHA_2) || defined(SHA_384)
  452. /* SHA384 initialisation data */
  453. const sha2_64t i384[80] =
  454. {
  455. n_u64(cbbb9d5dc1059ed8), n_u64(629a292a367cd507),
  456. n_u64(9159015a3070dd17), n_u64(152fecd8f70e5939),
  457. n_u64(67332667ffc00b31), n_u64(8eb44a8768581511),
  458. n_u64(db0c2e0d64f98fa7), n_u64(47b5481dbefa4fa4)
  459. };
  460. void sha384_begin(sha384_ctx ctx[1])
  461. {
  462. ctx->count[0] = ctx->count[1] = 0;
  463. memcpy(ctx->hash, i384, 8 * sizeof(sha2_64t));
  464. }
  465. void sha384_end(unsigned char hval[], sha384_ctx ctx[1])
  466. {
  467. sha_end(hval, ctx, SHA384_DIGEST_SIZE);
  468. }
  469. void sha384(unsigned char hval[], const unsigned char data[], unsigned long len)
  470. { sha384_ctx cx[1];
  471. sha384_begin(cx); sha384_hash(data, len, cx); sha384_end(hval, cx);
  472. }
  473. #endif
  474. #if defined(SHA_2) || defined(SHA_512)
  475. /* SHA512 initialisation data */
  476. const sha2_64t i512[80] =
  477. {
  478. n_u64(6a09e667f3bcc908), n_u64(bb67ae8584caa73b),
  479. n_u64(3c6ef372fe94f82b), n_u64(a54ff53a5f1d36f1),
  480. n_u64(510e527fade682d1), n_u64(9b05688c2b3e6c1f),
  481. n_u64(1f83d9abfb41bd6b), n_u64(5be0cd19137e2179)
  482. };
  483. void sha512_begin(sha512_ctx ctx[1])
  484. {
  485. ctx->count[0] = ctx->count[1] = 0;
  486. memcpy(ctx->hash, i512, 8 * sizeof(sha2_64t));
  487. }
  488. void sha512_end(unsigned char hval[], sha512_ctx ctx[1])
  489. {
  490. sha_end(hval, ctx, SHA512_DIGEST_SIZE);
  491. }
  492. void sha512(unsigned char hval[], const unsigned char data[], unsigned long len)
  493. { sha512_ctx cx[1];
  494. sha512_begin(cx); sha512_hash(data, len, cx); sha512_end(hval, cx);
  495. }
  496. #endif
  497. #if defined(SHA_2)
  498. #define CTX_256(x) ((x)->uu->ctx256)
  499. #define CTX_384(x) ((x)->uu->ctx512)
  500. #define CTX_512(x) ((x)->uu->ctx512)
  501. /* SHA2 initialisation */
  502. int sha2_begin(unsigned long len, sha2_ctx ctx[1])
  503. { unsigned long l = len;
  504. switch(len)
  505. {
  506. case 256: l = len >> 3;
  507. case 32: CTX_256(ctx)->count[0] = CTX_256(ctx)->count[1] = 0;
  508. memcpy(CTX_256(ctx)->hash, i256, 32); break;
  509. case 384: l = len >> 3;
  510. case 48: CTX_384(ctx)->count[0] = CTX_384(ctx)->count[1] = 0;
  511. memcpy(CTX_384(ctx)->hash, i384, 64); break;
  512. case 512: l = len >> 3;
  513. case 64: CTX_512(ctx)->count[0] = CTX_512(ctx)->count[1] = 0;
  514. memcpy(CTX_512(ctx)->hash, i512, 64); break;
  515. default: return SHA2_BAD;
  516. }
  517. ctx->sha2_len = l; return SHA2_GOOD;
  518. }
  519. void sha2_hash(const unsigned char data[], unsigned long len, sha2_ctx ctx[1])
  520. {
  521. switch(ctx->sha2_len)
  522. {
  523. case 32: sha256_hash(data, len, CTX_256(ctx)); return;
  524. case 48: sha384_hash(data, len, CTX_384(ctx)); return;
  525. case 64: sha512_hash(data, len, CTX_512(ctx)); return;
  526. }
  527. }
  528. void sha2_end(unsigned char hval[], sha2_ctx ctx[1])
  529. {
  530. switch(ctx->sha2_len)
  531. {
  532. case 32: sha256_end(hval, CTX_256(ctx)); return;
  533. case 48: sha_end(hval, CTX_384(ctx), SHA384_DIGEST_SIZE); return;
  534. case 64: sha_end(hval, CTX_512(ctx), SHA512_DIGEST_SIZE); return;
  535. }
  536. }
  537. int sha2(unsigned char hval[], unsigned long size,
  538. const unsigned char data[], unsigned long len)
  539. { sha2_ctx cx[1];
  540. if(sha2_begin(size, cx) == SHA2_GOOD)
  541. {
  542. sha2_hash(data, len, cx); sha2_end(hval, cx); return SHA2_GOOD;
  543. }
  544. else
  545. return SHA2_BAD;
  546. }
  547. #endif