md5c.c 7.9 KB

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  1. /*
  2. * This code implements the MD5 message-digest algorithm.
  3. * The algorithm is due to Ron Rivest. This code was
  4. * written by Colin Plumb in 1993, no copyright is claimed.
  5. * This code is in the public domain; do with it what you wish.
  6. *
  7. * Equivalent code is available from RSA Data Security, Inc.
  8. * This code has been tested against that, and is equivalent,
  9. * except that you don't need to include two pages of legalese
  10. * with every copy.
  11. *
  12. * To compute the message digest of a chunk of bytes, declare an
  13. * MD5Context structure, pass it to MD5Init, call MD5Update as
  14. * needed on buffers full of bytes, and then call MD5Final, which
  15. * will fill a supplied 16-byte array with the digest.
  16. */
  17. #include "md5.h"
  18. #include <string.h> /* for memcpy() */
  19. #ifdef WORDS_LITTLEENDIAN
  20. #define byteReverse(buf, len) /* Nothing */
  21. #else
  22. static void byteReverse(unsigned char *buf, unsigned longs);
  23. /*
  24. * Note: this code is harmless on little-endian machines.
  25. */
  26. static void byteReverse(unsigned char *buf, unsigned longs)
  27. {
  28. uint32_t t;
  29. do {
  30. t = (uint32_t) ((unsigned) buf[3] << 8 | buf[2]) << 16 |
  31. ((unsigned) buf[1] << 8 | buf[0]);
  32. *(uint32_t *) buf = t;
  33. buf += 4;
  34. } while (--longs);
  35. }
  36. #endif
  37. /*
  38. * Start MD5 accumulation. Set bit count to 0 and buffer to mysterious
  39. * initialization constants.
  40. */
  41. void MD5Init(MD5_CTX *ctx)
  42. {
  43. ctx->buf[0] = 0x67452301;
  44. ctx->buf[1] = 0xefcdab89;
  45. ctx->buf[2] = 0x98badcfe;
  46. ctx->buf[3] = 0x10325476;
  47. ctx->bits[0] = 0;
  48. ctx->bits[1] = 0;
  49. }
  50. /*
  51. * Update context to reflect the concatenation of another buffer full
  52. * of bytes.
  53. */
  54. void MD5Update(MD5_CTX *ctx, unsigned char const *buf, unsigned len)
  55. {
  56. uint32_t t;
  57. /* Update bitcount */
  58. t = ctx->bits[0];
  59. if ((ctx->bits[0] = t + ((uint32_t) len << 3)) < t)
  60. ctx->bits[1]++; /* Carry from low to high */
  61. ctx->bits[1] += len >> 29;
  62. t = (t >> 3) & 0x3f; /* Bytes already in shsInfo->data */
  63. /* Handle any leading odd-sized chunks */
  64. if (t) {
  65. unsigned char *p = (unsigned char *) ctx->in + t;
  66. t = 64 - t;
  67. if (len < t) {
  68. memcpy(p, buf, len);
  69. return;
  70. }
  71. memcpy(p, buf, t);
  72. byteReverse(ctx->in, 16);
  73. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  74. buf += t;
  75. len -= t;
  76. }
  77. /* Process data in 64-byte chunks */
  78. while (len >= 64) {
  79. memcpy(ctx->in, buf, 64);
  80. byteReverse(ctx->in, 16);
  81. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  82. buf += 64;
  83. len -= 64;
  84. }
  85. /* Handle any remaining bytes of data. */
  86. memcpy(ctx->in, buf, len);
  87. }
  88. /*
  89. * Final wrapup - pad to 64-byte boundary with the bit pattern
  90. * 1 0* (64-bit count of bits processed, MSB-first)
  91. */
  92. void MD5Final(unsigned char digest[16], MD5_CTX *ctx)
  93. {
  94. unsigned count;
  95. unsigned char *p;
  96. /* Compute number of bytes mod 64 */
  97. count = (ctx->bits[0] >> 3) & 0x3F;
  98. /* Set the first char of padding to 0x80. This is safe since there is
  99. always at least one byte free */
  100. p = ctx->in + count;
  101. *p++ = 0x80;
  102. /* Bytes of padding needed to make 64 bytes */
  103. count = 64 - 1 - count;
  104. /* Pad out to 56 mod 64 */
  105. if (count < 8) {
  106. /* Two lots of padding: Pad the first block to 64 bytes */
  107. memset(p, 0, count);
  108. byteReverse(ctx->in, 16);
  109. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  110. /* Now fill the next block with 56 bytes */
  111. memset(ctx->in, 0, 56);
  112. } else {
  113. /* Pad block to 56 bytes */
  114. memset(p, 0, count - 8);
  115. }
  116. byteReverse(ctx->in, 14);
  117. /* Append length in bits and transform */
  118. ((uint32_t *) ctx->in)[14] = ctx->bits[0];
  119. ((uint32_t *) ctx->in)[15] = ctx->bits[1];
  120. MD5Transform(ctx->buf, (uint32_t *) ctx->in);
  121. byteReverse((unsigned char *) ctx->buf, 4);
  122. memcpy(digest, ctx->buf, 16);
  123. memset((char *) ctx, 0, sizeof(*ctx)); /* In case it's sensitive */
  124. }
  125. /* The four core functions - F1 is optimized somewhat */
  126. /* #define F1(x, y, z) (x & y | ~x & z) */
  127. #define F1(x, y, z) (z ^ (x & (y ^ z)))
  128. #define F2(x, y, z) F1(z, x, y)
  129. #define F3(x, y, z) (x ^ y ^ z)
  130. #define F4(x, y, z) (y ^ (x | ~z))
  131. /* This is the central step in the MD5 algorithm. */
  132. #define MD5STEP(f, w, x, y, z, data, s) \
  133. ( w += f(x, y, z) + data, w = w<<s | w>>(32-s), w += x )
  134. /*
  135. * The core of the MD5 algorithm, this alters an existing MD5 hash to
  136. * reflect the addition of 16 longwords of new data. MD5Update blocks
  137. * the data and converts bytes into longwords for this routine.
  138. */
  139. void MD5Transform(uint32_t buf[4], uint32_t const in[16])
  140. {
  141. register uint32_t a, b, c, d;
  142. a = buf[0];
  143. b = buf[1];
  144. c = buf[2];
  145. d = buf[3];
  146. MD5STEP(F1, a, b, c, d, in[0] + 0xd76aa478, 7);
  147. MD5STEP(F1, d, a, b, c, in[1] + 0xe8c7b756, 12);
  148. MD5STEP(F1, c, d, a, b, in[2] + 0x242070db, 17);
  149. MD5STEP(F1, b, c, d, a, in[3] + 0xc1bdceee, 22);
  150. MD5STEP(F1, a, b, c, d, in[4] + 0xf57c0faf, 7);
  151. MD5STEP(F1, d, a, b, c, in[5] + 0x4787c62a, 12);
  152. MD5STEP(F1, c, d, a, b, in[6] + 0xa8304613, 17);
  153. MD5STEP(F1, b, c, d, a, in[7] + 0xfd469501, 22);
  154. MD5STEP(F1, a, b, c, d, in[8] + 0x698098d8, 7);
  155. MD5STEP(F1, d, a, b, c, in[9] + 0x8b44f7af, 12);
  156. MD5STEP(F1, c, d, a, b, in[10] + 0xffff5bb1, 17);
  157. MD5STEP(F1, b, c, d, a, in[11] + 0x895cd7be, 22);
  158. MD5STEP(F1, a, b, c, d, in[12] + 0x6b901122, 7);
  159. MD5STEP(F1, d, a, b, c, in[13] + 0xfd987193, 12);
  160. MD5STEP(F1, c, d, a, b, in[14] + 0xa679438e, 17);
  161. MD5STEP(F1, b, c, d, a, in[15] + 0x49b40821, 22);
  162. MD5STEP(F2, a, b, c, d, in[1] + 0xf61e2562, 5);
  163. MD5STEP(F2, d, a, b, c, in[6] + 0xc040b340, 9);
  164. MD5STEP(F2, c, d, a, b, in[11] + 0x265e5a51, 14);
  165. MD5STEP(F2, b, c, d, a, in[0] + 0xe9b6c7aa, 20);
  166. MD5STEP(F2, a, b, c, d, in[5] + 0xd62f105d, 5);
  167. MD5STEP(F2, d, a, b, c, in[10] + 0x02441453, 9);
  168. MD5STEP(F2, c, d, a, b, in[15] + 0xd8a1e681, 14);
  169. MD5STEP(F2, b, c, d, a, in[4] + 0xe7d3fbc8, 20);
  170. MD5STEP(F2, a, b, c, d, in[9] + 0x21e1cde6, 5);
  171. MD5STEP(F2, d, a, b, c, in[14] + 0xc33707d6, 9);
  172. MD5STEP(F2, c, d, a, b, in[3] + 0xf4d50d87, 14);
  173. MD5STEP(F2, b, c, d, a, in[8] + 0x455a14ed, 20);
  174. MD5STEP(F2, a, b, c, d, in[13] + 0xa9e3e905, 5);
  175. MD5STEP(F2, d, a, b, c, in[2] + 0xfcefa3f8, 9);
  176. MD5STEP(F2, c, d, a, b, in[7] + 0x676f02d9, 14);
  177. MD5STEP(F2, b, c, d, a, in[12] + 0x8d2a4c8a, 20);
  178. MD5STEP(F3, a, b, c, d, in[5] + 0xfffa3942, 4);
  179. MD5STEP(F3, d, a, b, c, in[8] + 0x8771f681, 11);
  180. MD5STEP(F3, c, d, a, b, in[11] + 0x6d9d6122, 16);
  181. MD5STEP(F3, b, c, d, a, in[14] + 0xfde5380c, 23);
  182. MD5STEP(F3, a, b, c, d, in[1] + 0xa4beea44, 4);
  183. MD5STEP(F3, d, a, b, c, in[4] + 0x4bdecfa9, 11);
  184. MD5STEP(F3, c, d, a, b, in[7] + 0xf6bb4b60, 16);
  185. MD5STEP(F3, b, c, d, a, in[10] + 0xbebfbc70, 23);
  186. MD5STEP(F3, a, b, c, d, in[13] + 0x289b7ec6, 4);
  187. MD5STEP(F3, d, a, b, c, in[0] + 0xeaa127fa, 11);
  188. MD5STEP(F3, c, d, a, b, in[3] + 0xd4ef3085, 16);
  189. MD5STEP(F3, b, c, d, a, in[6] + 0x04881d05, 23);
  190. MD5STEP(F3, a, b, c, d, in[9] + 0xd9d4d039, 4);
  191. MD5STEP(F3, d, a, b, c, in[12] + 0xe6db99e5, 11);
  192. MD5STEP(F3, c, d, a, b, in[15] + 0x1fa27cf8, 16);
  193. MD5STEP(F3, b, c, d, a, in[2] + 0xc4ac5665, 23);
  194. MD5STEP(F4, a, b, c, d, in[0] + 0xf4292244, 6);
  195. MD5STEP(F4, d, a, b, c, in[7] + 0x432aff97, 10);
  196. MD5STEP(F4, c, d, a, b, in[14] + 0xab9423a7, 15);
  197. MD5STEP(F4, b, c, d, a, in[5] + 0xfc93a039, 21);
  198. MD5STEP(F4, a, b, c, d, in[12] + 0x655b59c3, 6);
  199. MD5STEP(F4, d, a, b, c, in[3] + 0x8f0ccc92, 10);
  200. MD5STEP(F4, c, d, a, b, in[10] + 0xffeff47d, 15);
  201. MD5STEP(F4, b, c, d, a, in[1] + 0x85845dd1, 21);
  202. MD5STEP(F4, a, b, c, d, in[8] + 0x6fa87e4f, 6);
  203. MD5STEP(F4, d, a, b, c, in[15] + 0xfe2ce6e0, 10);
  204. MD5STEP(F4, c, d, a, b, in[6] + 0xa3014314, 15);
  205. MD5STEP(F4, b, c, d, a, in[13] + 0x4e0811a1, 21);
  206. MD5STEP(F4, a, b, c, d, in[4] + 0xf7537e82, 6);
  207. MD5STEP(F4, d, a, b, c, in[11] + 0xbd3af235, 10);
  208. MD5STEP(F4, c, d, a, b, in[2] + 0x2ad7d2bb, 15);
  209. MD5STEP(F4, b, c, d, a, in[9] + 0xeb86d391, 21);
  210. buf[0] += a;
  211. buf[1] += b;
  212. buf[2] += c;
  213. buf[3] += d;
  214. }