md5.c 7.5 KB

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  1. #include "md5.h"
  2. #include <string.h>
  3. /*
  4. * 32-bit integer manipulation macros (little endian)
  5. */
  6. #ifndef GET_UINT32_LE
  7. #define GET_UINT32_LE(n,b,i) \
  8. { \
  9. (n) = ( (uint32_t) (b)[(i) ] ) \
  10. | ( (uint32_t) (b)[(i) + 1] << 8 ) \
  11. | ( (uint32_t) (b)[(i) + 2] << 16 ) \
  12. | ( (uint32_t) (b)[(i) + 3] << 24 ); \
  13. }
  14. #endif
  15. #ifndef PUT_UINT32_LE
  16. #define PUT_UINT32_LE(n,b,i) \
  17. { \
  18. (b)[(i) ] = (unsigned char) ( ( (n) ) & 0xFF ); \
  19. (b)[(i) + 1] = (unsigned char) ( ( (n) >> 8 ) & 0xFF ); \
  20. (b)[(i) + 2] = (unsigned char) ( ( (n) >> 16 ) & 0xFF ); \
  21. (b)[(i) + 3] = (unsigned char) ( ( (n) >> 24 ) & 0xFF ); \
  22. }
  23. #endif
  24. void mbedtls_md5_init( mbedtls_md5_context *ctx )
  25. {
  26. memset( ctx, 0, sizeof( mbedtls_md5_context ) );
  27. }
  28. void mbedtls_md5_clone( mbedtls_md5_context *dst,
  29. const mbedtls_md5_context *src )
  30. {
  31. *dst = *src;
  32. }
  33. /*
  34. * MD5 context setup
  35. */
  36. void mbedtls_md5_starts( mbedtls_md5_context *ctx )
  37. {
  38. ctx->total[0] = 0;
  39. ctx->total[1] = 0;
  40. ctx->state[0] = 0x67452301;
  41. ctx->state[1] = 0xEFCDAB89;
  42. ctx->state[2] = 0x98BADCFE;
  43. ctx->state[3] = 0x10325476;
  44. }
  45. #if !defined(MBEDTLS_MD5_PROCESS_ALT)
  46. void mbedtls_md5_process( mbedtls_md5_context *ctx, const unsigned char data[64] )
  47. {
  48. uint32_t X[16], A, B, C, D;
  49. GET_UINT32_LE( X[ 0], data, 0 );
  50. GET_UINT32_LE( X[ 1], data, 4 );
  51. GET_UINT32_LE( X[ 2], data, 8 );
  52. GET_UINT32_LE( X[ 3], data, 12 );
  53. GET_UINT32_LE( X[ 4], data, 16 );
  54. GET_UINT32_LE( X[ 5], data, 20 );
  55. GET_UINT32_LE( X[ 6], data, 24 );
  56. GET_UINT32_LE( X[ 7], data, 28 );
  57. GET_UINT32_LE( X[ 8], data, 32 );
  58. GET_UINT32_LE( X[ 9], data, 36 );
  59. GET_UINT32_LE( X[10], data, 40 );
  60. GET_UINT32_LE( X[11], data, 44 );
  61. GET_UINT32_LE( X[12], data, 48 );
  62. GET_UINT32_LE( X[13], data, 52 );
  63. GET_UINT32_LE( X[14], data, 56 );
  64. GET_UINT32_LE( X[15], data, 60 );
  65. #define S(x,n) ((x << n) | ((x & 0xFFFFFFFF) >> (32 - n)))
  66. #define P(a,b,c,d,k,s,t) \
  67. { \
  68. a += F(b,c,d) + X[k] + t; a = S(a,s) + b; \
  69. }
  70. A = ctx->state[0];
  71. B = ctx->state[1];
  72. C = ctx->state[2];
  73. D = ctx->state[3];
  74. #define F(x,y,z) (z ^ (x & (y ^ z)))
  75. P( A, B, C, D, 0, 7, 0xD76AA478 );
  76. P( D, A, B, C, 1, 12, 0xE8C7B756 );
  77. P( C, D, A, B, 2, 17, 0x242070DB );
  78. P( B, C, D, A, 3, 22, 0xC1BDCEEE );
  79. P( A, B, C, D, 4, 7, 0xF57C0FAF );
  80. P( D, A, B, C, 5, 12, 0x4787C62A );
  81. P( C, D, A, B, 6, 17, 0xA8304613 );
  82. P( B, C, D, A, 7, 22, 0xFD469501 );
  83. P( A, B, C, D, 8, 7, 0x698098D8 );
  84. P( D, A, B, C, 9, 12, 0x8B44F7AF );
  85. P( C, D, A, B, 10, 17, 0xFFFF5BB1 );
  86. P( B, C, D, A, 11, 22, 0x895CD7BE );
  87. P( A, B, C, D, 12, 7, 0x6B901122 );
  88. P( D, A, B, C, 13, 12, 0xFD987193 );
  89. P( C, D, A, B, 14, 17, 0xA679438E );
  90. P( B, C, D, A, 15, 22, 0x49B40821 );
  91. #undef F
  92. #define F(x,y,z) (y ^ (z & (x ^ y)))
  93. P( A, B, C, D, 1, 5, 0xF61E2562 );
  94. P( D, A, B, C, 6, 9, 0xC040B340 );
  95. P( C, D, A, B, 11, 14, 0x265E5A51 );
  96. P( B, C, D, A, 0, 20, 0xE9B6C7AA );
  97. P( A, B, C, D, 5, 5, 0xD62F105D );
  98. P( D, A, B, C, 10, 9, 0x02441453 );
  99. P( C, D, A, B, 15, 14, 0xD8A1E681 );
  100. P( B, C, D, A, 4, 20, 0xE7D3FBC8 );
  101. P( A, B, C, D, 9, 5, 0x21E1CDE6 );
  102. P( D, A, B, C, 14, 9, 0xC33707D6 );
  103. P( C, D, A, B, 3, 14, 0xF4D50D87 );
  104. P( B, C, D, A, 8, 20, 0x455A14ED );
  105. P( A, B, C, D, 13, 5, 0xA9E3E905 );
  106. P( D, A, B, C, 2, 9, 0xFCEFA3F8 );
  107. P( C, D, A, B, 7, 14, 0x676F02D9 );
  108. P( B, C, D, A, 12, 20, 0x8D2A4C8A );
  109. #undef F
  110. #define F(x,y,z) (x ^ y ^ z)
  111. P( A, B, C, D, 5, 4, 0xFFFA3942 );
  112. P( D, A, B, C, 8, 11, 0x8771F681 );
  113. P( C, D, A, B, 11, 16, 0x6D9D6122 );
  114. P( B, C, D, A, 14, 23, 0xFDE5380C );
  115. P( A, B, C, D, 1, 4, 0xA4BEEA44 );
  116. P( D, A, B, C, 4, 11, 0x4BDECFA9 );
  117. P( C, D, A, B, 7, 16, 0xF6BB4B60 );
  118. P( B, C, D, A, 10, 23, 0xBEBFBC70 );
  119. P( A, B, C, D, 13, 4, 0x289B7EC6 );
  120. P( D, A, B, C, 0, 11, 0xEAA127FA );
  121. P( C, D, A, B, 3, 16, 0xD4EF3085 );
  122. P( B, C, D, A, 6, 23, 0x04881D05 );
  123. P( A, B, C, D, 9, 4, 0xD9D4D039 );
  124. P( D, A, B, C, 12, 11, 0xE6DB99E5 );
  125. P( C, D, A, B, 15, 16, 0x1FA27CF8 );
  126. P( B, C, D, A, 2, 23, 0xC4AC5665 );
  127. #undef F
  128. #define F(x,y,z) (y ^ (x | ~z))
  129. P( A, B, C, D, 0, 6, 0xF4292244 );
  130. P( D, A, B, C, 7, 10, 0x432AFF97 );
  131. P( C, D, A, B, 14, 15, 0xAB9423A7 );
  132. P( B, C, D, A, 5, 21, 0xFC93A039 );
  133. P( A, B, C, D, 12, 6, 0x655B59C3 );
  134. P( D, A, B, C, 3, 10, 0x8F0CCC92 );
  135. P( C, D, A, B, 10, 15, 0xFFEFF47D );
  136. P( B, C, D, A, 1, 21, 0x85845DD1 );
  137. P( A, B, C, D, 8, 6, 0x6FA87E4F );
  138. P( D, A, B, C, 15, 10, 0xFE2CE6E0 );
  139. P( C, D, A, B, 6, 15, 0xA3014314 );
  140. P( B, C, D, A, 13, 21, 0x4E0811A1 );
  141. P( A, B, C, D, 4, 6, 0xF7537E82 );
  142. P( D, A, B, C, 11, 10, 0xBD3AF235 );
  143. P( C, D, A, B, 2, 15, 0x2AD7D2BB );
  144. P( B, C, D, A, 9, 21, 0xEB86D391 );
  145. #undef F
  146. ctx->state[0] += A;
  147. ctx->state[1] += B;
  148. ctx->state[2] += C;
  149. ctx->state[3] += D;
  150. }
  151. #endif /* !MBEDTLS_MD5_PROCESS_ALT */
  152. /*
  153. * MD5 process buffer
  154. */
  155. void mbedtls_md5_update( mbedtls_md5_context *ctx, const unsigned char *input, size_t ilen )
  156. {
  157. size_t fill;
  158. uint32_t left;
  159. if( ilen == 0 )
  160. return;
  161. left = ctx->total[0] & 0x3F;
  162. fill = 64 - left;
  163. ctx->total[0] += (uint32_t) ilen;
  164. ctx->total[0] &= 0xFFFFFFFF;
  165. if( ctx->total[0] < (uint32_t) ilen )
  166. ctx->total[1]++;
  167. if( left && ilen >= fill )
  168. {
  169. memcpy( (void *) (ctx->buffer + left), input, fill );
  170. mbedtls_md5_process( ctx, ctx->buffer );
  171. input += fill;
  172. ilen -= fill;
  173. left = 0;
  174. }
  175. while( ilen >= 64 )
  176. {
  177. mbedtls_md5_process( ctx, input );
  178. input += 64;
  179. ilen -= 64;
  180. }
  181. if( ilen > 0 )
  182. {
  183. memcpy( (void *) (ctx->buffer + left), input, ilen );
  184. }
  185. }
  186. static const unsigned char md5_padding[64] =
  187. {
  188. 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  189. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  190. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  191. 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
  192. };
  193. /*
  194. * MD5 final digest
  195. */
  196. void mbedtls_md5_finish( mbedtls_md5_context *ctx, unsigned char output[16] )
  197. {
  198. uint32_t last, padn;
  199. uint32_t high, low;
  200. unsigned char msglen[8];
  201. high = ( ctx->total[0] >> 29 )
  202. | ( ctx->total[1] << 3 );
  203. low = ( ctx->total[0] << 3 );
  204. PUT_UINT32_LE( low, msglen, 0 );
  205. PUT_UINT32_LE( high, msglen, 4 );
  206. last = ctx->total[0] & 0x3F;
  207. padn = ( last < 56 ) ? ( 56 - last ) : ( 120 - last );
  208. mbedtls_md5_update( ctx, md5_padding, padn );
  209. mbedtls_md5_update( ctx, msglen, 8 );
  210. PUT_UINT32_LE( ctx->state[0], output, 0 );
  211. PUT_UINT32_LE( ctx->state[1], output, 4 );
  212. PUT_UINT32_LE( ctx->state[2], output, 8 );
  213. PUT_UINT32_LE( ctx->state[3], output, 12 );
  214. }
  215. /*
  216. * output = MD5( input buffer )
  217. */
  218. void mbedtls_md5( const unsigned char *input, size_t ilen, unsigned char output[16] )
  219. {
  220. mbedtls_md5_context ctx;
  221. mbedtls_md5_init( &ctx );
  222. mbedtls_md5_starts( &ctx );
  223. mbedtls_md5_update( &ctx, input, ilen );
  224. mbedtls_md5_finish( &ctx, output );
  225. }