md5.c 9.5 KB

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  1. /* MD5C.C - RSA Data Security, Inc., MD5 message-digest algorithm
  2. */
  3. /* Copyright (C) 1991-2, RSA Data Security, Inc. Created 1991. All
  4. rights reserved.
  5. License to copy and use this software is granted provided that it
  6. is identified as the "RSA Data Security, Inc. MD5 Message-Digest
  7. Algorithm" in all material mentioning or referencing this software
  8. or this function.
  9. License is also granted to make and use derivative works provided
  10. that such works are identified as "derived from the RSA Data
  11. Security, Inc. MD5 Message-Digest Algorithm" in all material
  12. mentioning or referencing the derived work.
  13. RSA Data Security, Inc. makes no representations concerning either
  14. the merchantability of this software or the suitability of this
  15. software for any particular purpose. It is provided "as is"
  16. without express or implied warranty of any kind.
  17. These notices must be retained in any copies of any part of this
  18. documentation and/or software.
  19. */
  20. #include "md5.h"
  21. #include <string.h>
  22. /* Constants for MD5Transform routine.
  23. */
  24. #define S11 7
  25. #define S12 12
  26. #define S13 17
  27. #define S14 22
  28. #define S21 5
  29. #define S22 9
  30. #define S23 14
  31. #define S24 20
  32. #define S31 4
  33. #define S32 11
  34. #define S33 16
  35. #define S34 23
  36. #define S41 6
  37. #define S42 10
  38. #define S43 15
  39. #define S44 21
  40. static void MD5Transform(uint32[4], const unsigned char[64]);
  41. static void Encode(unsigned char *, uint32 *, unsigned int);
  42. static void Decode(uint32 *, const unsigned char *, unsigned int);
  43. static unsigned char PADDING[64] =
  44. {
  45. 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  46. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  47. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
  48. };
  49. /* F, G, H and I are basic MD5 functions.
  50. */
  51. #define F(x, y, z) (((x) & (y)) | ((~x) & (z)))
  52. #define G(x, y, z) (((x) & (z)) | ((y) & (~z)))
  53. #define H(x, y, z) ((x) ^ (y) ^ (z))
  54. #define I(x, y, z) ((y) ^ ((x) | (~z)))
  55. /* ROTATE_LEFT rotates x left n bits.
  56. */
  57. #define ROTATE_LEFT(x, n) (((x) << (n)) | ((x) >> (32-(n))))
  58. /* FF, GG, HH, and II transformations for rounds 1, 2, 3, and 4.
  59. Rotation is separate from addition to prevent recomputation.
  60. */
  61. #define FF(a, b, c, d, x, s, ac) { \
  62. (a) += F ((b), (c), (d)) + (x) + (uint32)(ac); \
  63. (a) = ROTATE_LEFT ((a), (s)); \
  64. (a) += (b); \
  65. }
  66. #define GG(a, b, c, d, x, s, ac) { \
  67. (a) += G ((b), (c), (d)) + (x) + (uint32)(ac); \
  68. (a) = ROTATE_LEFT ((a), (s)); \
  69. (a) += (b); \
  70. }
  71. #define HH(a, b, c, d, x, s, ac) { \
  72. (a) += H ((b), (c), (d)) + (x) + (uint32)(ac); \
  73. (a) = ROTATE_LEFT ((a), (s)); \
  74. (a) += (b); \
  75. }
  76. #define II(a, b, c, d, x, s, ac) { \
  77. (a) += I ((b), (c), (d)) + (x) + (uint32)(ac); \
  78. (a) = ROTATE_LEFT ((a), (s)); \
  79. (a) += (b); \
  80. }
  81. /* {{{ MD5Init
  82. * MD5 initialization. Begins an MD5 operation, writing a new context.
  83. */
  84. void MD5Init(PP_MD5_CTX * context)
  85. {
  86. context->count[0] = context->count[1] = 0;
  87. /* Load magic initialization constants.
  88. */
  89. context->state[0] = 0x67452301;
  90. context->state[1] = 0xefcdab89;
  91. context->state[2] = 0x98badcfe;
  92. context->state[3] = 0x10325476;
  93. }
  94. /* }}} */
  95. /* {{{ MD5Update
  96. MD5 block update operation. Continues an MD5 message-digest
  97. operation, processing another message block, and updating the
  98. context.
  99. */
  100. void MD5Update(PP_MD5_CTX * context, const unsigned char *input,
  101. unsigned int inputLen)
  102. {
  103. unsigned int i, index, partLen;
  104. /* Compute number of bytes mod 64 */
  105. index = (unsigned int) ((context->count[0] >> 3) & 0x3F);
  106. /* Update number of bits */
  107. if ((context->count[0] += ((uint32) inputLen << 3))
  108. < ((uint32) inputLen << 3))
  109. context->count[1]++;
  110. context->count[1] += ((uint32) inputLen >> 29);
  111. partLen = 64 - index;
  112. /* Transform as many times as possible.
  113. */
  114. if (inputLen >= partLen) {
  115. memcpy
  116. ((unsigned char*) & context->buffer[index], (unsigned char*) input, partLen);
  117. MD5Transform(context->state, context->buffer);
  118. for (i = partLen; i + 63 < inputLen; i += 64)
  119. MD5Transform(context->state, &input[i]);
  120. index = 0;
  121. } else
  122. i = 0;
  123. /* Buffer remaining input */
  124. memcpy
  125. ((unsigned char*) & context->buffer[index], (unsigned char*) & input[i],
  126. inputLen - i);
  127. }
  128. /* }}} */
  129. /* {{{ MD5Final
  130. MD5 finalization. Ends an MD5 message-digest operation, writing the
  131. the message digest and zeroizing the context.
  132. */
  133. void MD5Final(unsigned char digest[16], PP_MD5_CTX * context)
  134. {
  135. unsigned char bits[8];
  136. unsigned int index, padLen;
  137. /* Save number of bits */
  138. Encode(bits, context->count, 8);
  139. /* Pad out to 56 mod 64.
  140. */
  141. index = (unsigned int) ((context->count[0] >> 3) & 0x3f);
  142. padLen = (index < 56) ? (56 - index) : (120 - index);
  143. MD5Update(context, PADDING, padLen);
  144. /* Append length (before padding) */
  145. MD5Update(context, bits, 8);
  146. /* Store state in digest */
  147. Encode(digest, context->state, 16);
  148. /* Zeroize sensitive information.
  149. */
  150. memset((unsigned char*) context, 0, sizeof(*context));
  151. }
  152. /* }}} */
  153. /* {{{ MD5Transform
  154. * MD5 basic transformation. Transforms state based on block.
  155. */
  156. static void MD5Transform(state, block)
  157. uint32 state[4];
  158. const unsigned char block[64];
  159. {
  160. uint32 a = state[0], b = state[1], c = state[2], d = state[3], x[16];
  161. Decode(x, block, 64);
  162. /* Round 1 */
  163. FF(a, b, c, d, x[0], S11, 0xd76aa478); /* 1 */
  164. FF(d, a, b, c, x[1], S12, 0xe8c7b756); /* 2 */
  165. FF(c, d, a, b, x[2], S13, 0x242070db); /* 3 */
  166. FF(b, c, d, a, x[3], S14, 0xc1bdceee); /* 4 */
  167. FF(a, b, c, d, x[4], S11, 0xf57c0faf); /* 5 */
  168. FF(d, a, b, c, x[5], S12, 0x4787c62a); /* 6 */
  169. FF(c, d, a, b, x[6], S13, 0xa8304613); /* 7 */
  170. FF(b, c, d, a, x[7], S14, 0xfd469501); /* 8 */
  171. FF(a, b, c, d, x[8], S11, 0x698098d8); /* 9 */
  172. FF(d, a, b, c, x[9], S12, 0x8b44f7af); /* 10 */
  173. FF(c, d, a, b, x[10], S13, 0xffff5bb1); /* 11 */
  174. FF(b, c, d, a, x[11], S14, 0x895cd7be); /* 12 */
  175. FF(a, b, c, d, x[12], S11, 0x6b901122); /* 13 */
  176. FF(d, a, b, c, x[13], S12, 0xfd987193); /* 14 */
  177. FF(c, d, a, b, x[14], S13, 0xa679438e); /* 15 */
  178. FF(b, c, d, a, x[15], S14, 0x49b40821); /* 16 */
  179. /* Round 2 */
  180. GG(a, b, c, d, x[1], S21, 0xf61e2562); /* 17 */
  181. GG(d, a, b, c, x[6], S22, 0xc040b340); /* 18 */
  182. GG(c, d, a, b, x[11], S23, 0x265e5a51); /* 19 */
  183. GG(b, c, d, a, x[0], S24, 0xe9b6c7aa); /* 20 */
  184. GG(a, b, c, d, x[5], S21, 0xd62f105d); /* 21 */
  185. GG(d, a, b, c, x[10], S22, 0x2441453); /* 22 */
  186. GG(c, d, a, b, x[15], S23, 0xd8a1e681); /* 23 */
  187. GG(b, c, d, a, x[4], S24, 0xe7d3fbc8); /* 24 */
  188. GG(a, b, c, d, x[9], S21, 0x21e1cde6); /* 25 */
  189. GG(d, a, b, c, x[14], S22, 0xc33707d6); /* 26 */
  190. GG(c, d, a, b, x[3], S23, 0xf4d50d87); /* 27 */
  191. GG(b, c, d, a, x[8], S24, 0x455a14ed); /* 28 */
  192. GG(a, b, c, d, x[13], S21, 0xa9e3e905); /* 29 */
  193. GG(d, a, b, c, x[2], S22, 0xfcefa3f8); /* 30 */
  194. GG(c, d, a, b, x[7], S23, 0x676f02d9); /* 31 */
  195. GG(b, c, d, a, x[12], S24, 0x8d2a4c8a); /* 32 */
  196. /* Round 3 */
  197. HH(a, b, c, d, x[5], S31, 0xfffa3942); /* 33 */
  198. HH(d, a, b, c, x[8], S32, 0x8771f681); /* 34 */
  199. HH(c, d, a, b, x[11], S33, 0x6d9d6122); /* 35 */
  200. HH(b, c, d, a, x[14], S34, 0xfde5380c); /* 36 */
  201. HH(a, b, c, d, x[1], S31, 0xa4beea44); /* 37 */
  202. HH(d, a, b, c, x[4], S32, 0x4bdecfa9); /* 38 */
  203. HH(c, d, a, b, x[7], S33, 0xf6bb4b60); /* 39 */
  204. HH(b, c, d, a, x[10], S34, 0xbebfbc70); /* 40 */
  205. HH(a, b, c, d, x[13], S31, 0x289b7ec6); /* 41 */
  206. HH(d, a, b, c, x[0], S32, 0xeaa127fa); /* 42 */
  207. HH(c, d, a, b, x[3], S33, 0xd4ef3085); /* 43 */
  208. HH(b, c, d, a, x[6], S34, 0x4881d05); /* 44 */
  209. HH(a, b, c, d, x[9], S31, 0xd9d4d039); /* 45 */
  210. HH(d, a, b, c, x[12], S32, 0xe6db99e5); /* 46 */
  211. HH(c, d, a, b, x[15], S33, 0x1fa27cf8); /* 47 */
  212. HH(b, c, d, a, x[2], S34, 0xc4ac5665); /* 48 */
  213. /* Round 4 */
  214. II(a, b, c, d, x[0], S41, 0xf4292244); /* 49 */
  215. II(d, a, b, c, x[7], S42, 0x432aff97); /* 50 */
  216. II(c, d, a, b, x[14], S43, 0xab9423a7); /* 51 */
  217. II(b, c, d, a, x[5], S44, 0xfc93a039); /* 52 */
  218. II(a, b, c, d, x[12], S41, 0x655b59c3); /* 53 */
  219. II(d, a, b, c, x[3], S42, 0x8f0ccc92); /* 54 */
  220. II(c, d, a, b, x[10], S43, 0xffeff47d); /* 55 */
  221. II(b, c, d, a, x[1], S44, 0x85845dd1); /* 56 */
  222. II(a, b, c, d, x[8], S41, 0x6fa87e4f); /* 57 */
  223. II(d, a, b, c, x[15], S42, 0xfe2ce6e0); /* 58 */
  224. II(c, d, a, b, x[6], S43, 0xa3014314); /* 59 */
  225. II(b, c, d, a, x[13], S44, 0x4e0811a1); /* 60 */
  226. II(a, b, c, d, x[4], S41, 0xf7537e82); /* 61 */
  227. II(d, a, b, c, x[11], S42, 0xbd3af235); /* 62 */
  228. II(c, d, a, b, x[2], S43, 0x2ad7d2bb); /* 63 */
  229. II(b, c, d, a, x[9], S44, 0xeb86d391); /* 64 */
  230. state[0] += a;
  231. state[1] += b;
  232. state[2] += c;
  233. state[3] += d;
  234. /* Zeroize sensitive information. */
  235. memset((unsigned char*) x, 0, sizeof(x));
  236. }
  237. /* }}} */
  238. /* {{{ Encode
  239. Encodes input (uint32) into output (unsigned char). Assumes len is
  240. a multiple of 4.
  241. */
  242. static void Encode(output, input, len)
  243. unsigned char *output;
  244. uint32 *input;
  245. unsigned int len;
  246. {
  247. unsigned int i, j;
  248. for (i = 0, j = 0; j < len; i++, j += 4) {
  249. output[j] = (unsigned char) (input[i] & 0xff);
  250. output[j + 1] = (unsigned char) ((input[i] >> 8) & 0xff);
  251. output[j + 2] = (unsigned char) ((input[i] >> 16) & 0xff);
  252. output[j + 3] = (unsigned char) ((input[i] >> 24) & 0xff);
  253. }
  254. }
  255. /* }}} */
  256. /* {{{ Decode
  257. Decodes input (unsigned char) into output (uint32). Assumes len is
  258. a multiple of 4.
  259. */
  260. static void Decode(output, input, len)
  261. uint32 *output;
  262. const unsigned char *input;
  263. unsigned int len;
  264. {
  265. unsigned int i, j;
  266. for (i = 0, j = 0; j < len; i++, j += 4)
  267. output[i] = ((uint32) input[j]) | (((uint32) input[j + 1]) << 8) |
  268. (((uint32) input[j + 2]) << 16) | (((uint32) input[j + 3]) << 24);
  269. }
  270. /* }}} */
  271. /*
  272. * Local variables:
  273. * tab-width: 4
  274. * c-basic-offset: 4
  275. * End:
  276. * vim600: sw=4 ts=4 fdm=marker
  277. * vim<600: sw=4 ts=4
  278. */