sha1.c 9.1 KB

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  1. /*
  2. * This file is adapted from PolarSSL 1.3.19 (GPL)
  3. */
  4. /*
  5. * FIPS-180-1 compliant SHA-1 implementation
  6. *
  7. * Copyright (C) 2006-2014, ARM Limited, All Rights Reserved
  8. *
  9. * This file is part of mbed TLS (https://tls.mbed.org)
  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 SHA-1 standard was published by NIST in 1993.
  27. *
  28. * http://www.itl.nist.gov/fipspubs/fip180-1.htm
  29. */
  30. #include <string.h>
  31. #include <stddef.h>
  32. #include <stdint.h>
  33. typedef struct
  34. {
  35. uint32_t total[2]; /*!< number of bytes processed */
  36. uint32_t state[5]; /*!< intermediate digest state */
  37. unsigned char buffer[64]; /*!< data block being processed */
  38. }
  39. sha1_context;
  40. /* Implementation that should never be optimized out by the compiler */
  41. static void polarssl_zeroize( void *v, size_t n ) {
  42. volatile unsigned char *p = (unsigned char *) v; while( n-- ) *p++ = 0;
  43. }
  44. /*
  45. * 32-bit integer manipulation macros (big endian)
  46. */
  47. #ifndef GET_UINT32_BE
  48. #define GET_UINT32_BE(n,b,i) \
  49. { \
  50. (n) = ( (uint32_t) (b)[(i) ] << 24 ) \
  51. | ( (uint32_t) (b)[(i) + 1] << 16 ) \
  52. | ( (uint32_t) (b)[(i) + 2] << 8 ) \
  53. | ( (uint32_t) (b)[(i) + 3] ); \
  54. }
  55. #endif
  56. #ifndef PUT_UINT32_BE
  57. #define PUT_UINT32_BE(n,b,i) \
  58. { \
  59. (b)[(i) ] = (unsigned char) ( (n) >> 24 ); \
  60. (b)[(i) + 1] = (unsigned char) ( (n) >> 16 ); \
  61. (b)[(i) + 2] = (unsigned char) ( (n) >> 8 ); \
  62. (b)[(i) + 3] = (unsigned char) ( (n) ); \
  63. }
  64. #endif
  65. void sha1_init( sha1_context *ctx )
  66. {
  67. memset( ctx, 0, sizeof( sha1_context ) );
  68. }
  69. void sha1_free( sha1_context *ctx )
  70. {
  71. if( ctx == NULL )
  72. return;
  73. polarssl_zeroize( ctx, sizeof( sha1_context ) );
  74. }
  75. /*
  76. * SHA-1 context setup
  77. */
  78. void sha1_starts( sha1_context *ctx )
  79. {
  80. ctx->total[0] = 0;
  81. ctx->total[1] = 0;
  82. ctx->state[0] = 0x67452301;
  83. ctx->state[1] = 0xEFCDAB89;
  84. ctx->state[2] = 0x98BADCFE;
  85. ctx->state[3] = 0x10325476;
  86. ctx->state[4] = 0xC3D2E1F0;
  87. }
  88. void sha1_process( sha1_context *ctx, const unsigned char data[64] )
  89. {
  90. uint32_t temp, W[16], A, B, C, D, E;
  91. GET_UINT32_BE( W[ 0], data, 0 );
  92. GET_UINT32_BE( W[ 1], data, 4 );
  93. GET_UINT32_BE( W[ 2], data, 8 );
  94. GET_UINT32_BE( W[ 3], data, 12 );
  95. GET_UINT32_BE( W[ 4], data, 16 );
  96. GET_UINT32_BE( W[ 5], data, 20 );
  97. GET_UINT32_BE( W[ 6], data, 24 );
  98. GET_UINT32_BE( W[ 7], data, 28 );
  99. GET_UINT32_BE( W[ 8], data, 32 );
  100. GET_UINT32_BE( W[ 9], data, 36 );
  101. GET_UINT32_BE( W[10], data, 40 );
  102. GET_UINT32_BE( W[11], data, 44 );
  103. GET_UINT32_BE( W[12], data, 48 );
  104. GET_UINT32_BE( W[13], data, 52 );
  105. GET_UINT32_BE( W[14], data, 56 );
  106. GET_UINT32_BE( W[15], data, 60 );
  107. #define S(x,n) ((x << n) | ((x & 0xFFFFFFFF) >> (32 - n)))
  108. #define R(t) \
  109. ( \
  110. temp = W[( t - 3 ) & 0x0F] ^ W[( t - 8 ) & 0x0F] ^ \
  111. W[( t - 14 ) & 0x0F] ^ W[ t & 0x0F], \
  112. ( W[t & 0x0F] = S(temp,1) ) \
  113. )
  114. #define P(a,b,c,d,e,x) \
  115. { \
  116. e += S(a,5) + F(b,c,d) + K + x; b = S(b,30); \
  117. }
  118. A = ctx->state[0];
  119. B = ctx->state[1];
  120. C = ctx->state[2];
  121. D = ctx->state[3];
  122. E = ctx->state[4];
  123. #define F(x,y,z) (z ^ (x & (y ^ z)))
  124. #define K 0x5A827999
  125. P( A, B, C, D, E, W[0] );
  126. P( E, A, B, C, D, W[1] );
  127. P( D, E, A, B, C, W[2] );
  128. P( C, D, E, A, B, W[3] );
  129. P( B, C, D, E, A, W[4] );
  130. P( A, B, C, D, E, W[5] );
  131. P( E, A, B, C, D, W[6] );
  132. P( D, E, A, B, C, W[7] );
  133. P( C, D, E, A, B, W[8] );
  134. P( B, C, D, E, A, W[9] );
  135. P( A, B, C, D, E, W[10] );
  136. P( E, A, B, C, D, W[11] );
  137. P( D, E, A, B, C, W[12] );
  138. P( C, D, E, A, B, W[13] );
  139. P( B, C, D, E, A, W[14] );
  140. P( A, B, C, D, E, W[15] );
  141. P( E, A, B, C, D, R(16) );
  142. P( D, E, A, B, C, R(17) );
  143. P( C, D, E, A, B, R(18) );
  144. P( B, C, D, E, A, R(19) );
  145. #undef K
  146. #undef F
  147. #define F(x,y,z) (x ^ y ^ z)
  148. #define K 0x6ED9EBA1
  149. P( A, B, C, D, E, R(20) );
  150. P( E, A, B, C, D, R(21) );
  151. P( D, E, A, B, C, R(22) );
  152. P( C, D, E, A, B, R(23) );
  153. P( B, C, D, E, A, R(24) );
  154. P( A, B, C, D, E, R(25) );
  155. P( E, A, B, C, D, R(26) );
  156. P( D, E, A, B, C, R(27) );
  157. P( C, D, E, A, B, R(28) );
  158. P( B, C, D, E, A, R(29) );
  159. P( A, B, C, D, E, R(30) );
  160. P( E, A, B, C, D, R(31) );
  161. P( D, E, A, B, C, R(32) );
  162. P( C, D, E, A, B, R(33) );
  163. P( B, C, D, E, A, R(34) );
  164. P( A, B, C, D, E, R(35) );
  165. P( E, A, B, C, D, R(36) );
  166. P( D, E, A, B, C, R(37) );
  167. P( C, D, E, A, B, R(38) );
  168. P( B, C, D, E, A, R(39) );
  169. #undef K
  170. #undef F
  171. #define F(x,y,z) ((x & y) | (z & (x | y)))
  172. #define K 0x8F1BBCDC
  173. P( A, B, C, D, E, R(40) );
  174. P( E, A, B, C, D, R(41) );
  175. P( D, E, A, B, C, R(42) );
  176. P( C, D, E, A, B, R(43) );
  177. P( B, C, D, E, A, R(44) );
  178. P( A, B, C, D, E, R(45) );
  179. P( E, A, B, C, D, R(46) );
  180. P( D, E, A, B, C, R(47) );
  181. P( C, D, E, A, B, R(48) );
  182. P( B, C, D, E, A, R(49) );
  183. P( A, B, C, D, E, R(50) );
  184. P( E, A, B, C, D, R(51) );
  185. P( D, E, A, B, C, R(52) );
  186. P( C, D, E, A, B, R(53) );
  187. P( B, C, D, E, A, R(54) );
  188. P( A, B, C, D, E, R(55) );
  189. P( E, A, B, C, D, R(56) );
  190. P( D, E, A, B, C, R(57) );
  191. P( C, D, E, A, B, R(58) );
  192. P( B, C, D, E, A, R(59) );
  193. #undef K
  194. #undef F
  195. #define F(x,y,z) (x ^ y ^ z)
  196. #define K 0xCA62C1D6
  197. P( A, B, C, D, E, R(60) );
  198. P( E, A, B, C, D, R(61) );
  199. P( D, E, A, B, C, R(62) );
  200. P( C, D, E, A, B, R(63) );
  201. P( B, C, D, E, A, R(64) );
  202. P( A, B, C, D, E, R(65) );
  203. P( E, A, B, C, D, R(66) );
  204. P( D, E, A, B, C, R(67) );
  205. P( C, D, E, A, B, R(68) );
  206. P( B, C, D, E, A, R(69) );
  207. P( A, B, C, D, E, R(70) );
  208. P( E, A, B, C, D, R(71) );
  209. P( D, E, A, B, C, R(72) );
  210. P( C, D, E, A, B, R(73) );
  211. P( B, C, D, E, A, R(74) );
  212. P( A, B, C, D, E, R(75) );
  213. P( E, A, B, C, D, R(76) );
  214. P( D, E, A, B, C, R(77) );
  215. P( C, D, E, A, B, R(78) );
  216. P( B, C, D, E, A, R(79) );
  217. #undef K
  218. #undef F
  219. ctx->state[0] += A;
  220. ctx->state[1] += B;
  221. ctx->state[2] += C;
  222. ctx->state[3] += D;
  223. ctx->state[4] += E;
  224. }
  225. /*
  226. * SHA-1 process buffer
  227. */
  228. void sha1_update( sha1_context *ctx, const unsigned char *input, size_t ilen )
  229. {
  230. size_t fill;
  231. uint32_t left;
  232. if( ilen == 0 )
  233. return;
  234. left = ctx->total[0] & 0x3F;
  235. fill = 64 - left;
  236. ctx->total[0] += (uint32_t) ilen;
  237. ctx->total[0] &= 0xFFFFFFFF;
  238. if( ctx->total[0] < (uint32_t) ilen )
  239. ctx->total[1]++;
  240. if( left && ilen >= fill )
  241. {
  242. memcpy( (void *) (ctx->buffer + left), input, fill );
  243. sha1_process( ctx, ctx->buffer );
  244. input += fill;
  245. ilen -= fill;
  246. left = 0;
  247. }
  248. while( ilen >= 64 )
  249. {
  250. sha1_process( ctx, input );
  251. input += 64;
  252. ilen -= 64;
  253. }
  254. if( ilen > 0 )
  255. memcpy( (void *) (ctx->buffer + left), input, ilen );
  256. }
  257. static const unsigned char sha1_padding[64] =
  258. {
  259. 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  260. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  261. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  262. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
  263. };
  264. /*
  265. * SHA-1 final digest
  266. */
  267. void sha1_finish( sha1_context *ctx, unsigned char output[20] )
  268. {
  269. uint32_t last, padn;
  270. uint32_t high, low;
  271. unsigned char msglen[8];
  272. high = ( ctx->total[0] >> 29 )
  273. | ( ctx->total[1] << 3 );
  274. low = ( ctx->total[0] << 3 );
  275. PUT_UINT32_BE( high, msglen, 0 );
  276. PUT_UINT32_BE( low, msglen, 4 );
  277. last = ctx->total[0] & 0x3F;
  278. padn = ( last < 56 ) ? ( 56 - last ) : ( 120 - last );
  279. sha1_update( ctx, sha1_padding, padn );
  280. sha1_update( ctx, msglen, 8 );
  281. PUT_UINT32_BE( ctx->state[0], output, 0 );
  282. PUT_UINT32_BE( ctx->state[1], output, 4 );
  283. PUT_UINT32_BE( ctx->state[2], output, 8 );
  284. PUT_UINT32_BE( ctx->state[3], output, 12 );
  285. PUT_UINT32_BE( ctx->state[4], output, 16 );
  286. }
  287. /*
  288. * output = SHA-1( input buffer )
  289. */
  290. void sha1( const unsigned char *input, size_t ilen, unsigned char output[20] )
  291. {
  292. sha1_context ctx;
  293. sha1_init( &ctx );
  294. sha1_starts( &ctx );
  295. sha1_update( &ctx, input, ilen );
  296. sha1_finish( &ctx, output );
  297. sha1_free( &ctx );
  298. }