sshmd5.c 11 KB

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  1. #include <assert.h>
  2. #include "ssh.h"
  3. /*
  4. * MD5 implementation for PuTTY. Written directly from the spec by
  5. * Simon Tatham.
  6. */
  7. /* ----------------------------------------------------------------------
  8. * Core MD5 algorithm: processes 16-word blocks into a message digest.
  9. */
  10. #define F(x,y,z) ( ((x) & (y)) | ((~(x)) & (z)) )
  11. #define G(x,y,z) ( ((x) & (z)) | ((~(z)) & (y)) )
  12. #define H(x,y,z) ( (x) ^ (y) ^ (z) )
  13. #define I(x,y,z) ( (y) ^ ( (x) | ~(z) ) )
  14. #define rol(x,y) ( ((x) << (y)) | (((uint32)x) >> (32-y)) )
  15. #define subround(f,w,x,y,z,k,s,ti) \
  16. w = x + rol(w + f(x,y,z) + block[k] + ti, s)
  17. static void MD5_Core_Init(MD5_Core_State * s)
  18. {
  19. s->h[0] = 0x67452301;
  20. s->h[1] = 0xefcdab89;
  21. s->h[2] = 0x98badcfe;
  22. s->h[3] = 0x10325476;
  23. }
  24. static void MD5_Block(MD5_Core_State * s, uint32 * block)
  25. {
  26. uint32 a, b, c, d;
  27. a = s->h[0];
  28. b = s->h[1];
  29. c = s->h[2];
  30. d = s->h[3];
  31. subround(F, a, b, c, d, 0, 7, 0xd76aa478);
  32. subround(F, d, a, b, c, 1, 12, 0xe8c7b756);
  33. subround(F, c, d, a, b, 2, 17, 0x242070db);
  34. subround(F, b, c, d, a, 3, 22, 0xc1bdceee);
  35. subround(F, a, b, c, d, 4, 7, 0xf57c0faf);
  36. subround(F, d, a, b, c, 5, 12, 0x4787c62a);
  37. subround(F, c, d, a, b, 6, 17, 0xa8304613);
  38. subround(F, b, c, d, a, 7, 22, 0xfd469501);
  39. subround(F, a, b, c, d, 8, 7, 0x698098d8);
  40. subround(F, d, a, b, c, 9, 12, 0x8b44f7af);
  41. subround(F, c, d, a, b, 10, 17, 0xffff5bb1);
  42. subround(F, b, c, d, a, 11, 22, 0x895cd7be);
  43. subround(F, a, b, c, d, 12, 7, 0x6b901122);
  44. subround(F, d, a, b, c, 13, 12, 0xfd987193);
  45. subround(F, c, d, a, b, 14, 17, 0xa679438e);
  46. subround(F, b, c, d, a, 15, 22, 0x49b40821);
  47. subround(G, a, b, c, d, 1, 5, 0xf61e2562);
  48. subround(G, d, a, b, c, 6, 9, 0xc040b340);
  49. subround(G, c, d, a, b, 11, 14, 0x265e5a51);
  50. subround(G, b, c, d, a, 0, 20, 0xe9b6c7aa);
  51. subround(G, a, b, c, d, 5, 5, 0xd62f105d);
  52. subround(G, d, a, b, c, 10, 9, 0x02441453);
  53. subround(G, c, d, a, b, 15, 14, 0xd8a1e681);
  54. subround(G, b, c, d, a, 4, 20, 0xe7d3fbc8);
  55. subround(G, a, b, c, d, 9, 5, 0x21e1cde6);
  56. subround(G, d, a, b, c, 14, 9, 0xc33707d6);
  57. subround(G, c, d, a, b, 3, 14, 0xf4d50d87);
  58. subround(G, b, c, d, a, 8, 20, 0x455a14ed);
  59. subround(G, a, b, c, d, 13, 5, 0xa9e3e905);
  60. subround(G, d, a, b, c, 2, 9, 0xfcefa3f8);
  61. subround(G, c, d, a, b, 7, 14, 0x676f02d9);
  62. subround(G, b, c, d, a, 12, 20, 0x8d2a4c8a);
  63. subround(H, a, b, c, d, 5, 4, 0xfffa3942);
  64. subround(H, d, a, b, c, 8, 11, 0x8771f681);
  65. subround(H, c, d, a, b, 11, 16, 0x6d9d6122);
  66. subround(H, b, c, d, a, 14, 23, 0xfde5380c);
  67. subround(H, a, b, c, d, 1, 4, 0xa4beea44);
  68. subround(H, d, a, b, c, 4, 11, 0x4bdecfa9);
  69. subround(H, c, d, a, b, 7, 16, 0xf6bb4b60);
  70. subround(H, b, c, d, a, 10, 23, 0xbebfbc70);
  71. subround(H, a, b, c, d, 13, 4, 0x289b7ec6);
  72. subround(H, d, a, b, c, 0, 11, 0xeaa127fa);
  73. subround(H, c, d, a, b, 3, 16, 0xd4ef3085);
  74. subround(H, b, c, d, a, 6, 23, 0x04881d05);
  75. subround(H, a, b, c, d, 9, 4, 0xd9d4d039);
  76. subround(H, d, a, b, c, 12, 11, 0xe6db99e5);
  77. subround(H, c, d, a, b, 15, 16, 0x1fa27cf8);
  78. subround(H, b, c, d, a, 2, 23, 0xc4ac5665);
  79. subround(I, a, b, c, d, 0, 6, 0xf4292244);
  80. subround(I, d, a, b, c, 7, 10, 0x432aff97);
  81. subround(I, c, d, a, b, 14, 15, 0xab9423a7);
  82. subround(I, b, c, d, a, 5, 21, 0xfc93a039);
  83. subround(I, a, b, c, d, 12, 6, 0x655b59c3);
  84. subround(I, d, a, b, c, 3, 10, 0x8f0ccc92);
  85. subround(I, c, d, a, b, 10, 15, 0xffeff47d);
  86. subround(I, b, c, d, a, 1, 21, 0x85845dd1);
  87. subround(I, a, b, c, d, 8, 6, 0x6fa87e4f);
  88. subround(I, d, a, b, c, 15, 10, 0xfe2ce6e0);
  89. subround(I, c, d, a, b, 6, 15, 0xa3014314);
  90. subround(I, b, c, d, a, 13, 21, 0x4e0811a1);
  91. subround(I, a, b, c, d, 4, 6, 0xf7537e82);
  92. subround(I, d, a, b, c, 11, 10, 0xbd3af235);
  93. subround(I, c, d, a, b, 2, 15, 0x2ad7d2bb);
  94. subround(I, b, c, d, a, 9, 21, 0xeb86d391);
  95. s->h[0] += a;
  96. s->h[1] += b;
  97. s->h[2] += c;
  98. s->h[3] += d;
  99. }
  100. /* ----------------------------------------------------------------------
  101. * Outer MD5 algorithm: take an arbitrary length byte string,
  102. * convert it into 16-word blocks with the prescribed padding at
  103. * the end, and pass those blocks to the core MD5 algorithm.
  104. */
  105. #define BLKSIZE 64
  106. static void MD5_BinarySink_write(BinarySink *bs, const void *data, size_t len);
  107. void MD5Init(struct MD5Context *s)
  108. {
  109. MD5_Core_Init(&s->core);
  110. s->blkused = 0;
  111. s->lenhi = s->lenlo = 0;
  112. BinarySink_INIT(s, MD5_BinarySink_write);
  113. }
  114. static void MD5_BinarySink_write(BinarySink *bs, const void *data, size_t len)
  115. {
  116. struct MD5Context *s = BinarySink_DOWNCAST(bs, struct MD5Context);
  117. const unsigned char *q = (const unsigned char *)data;
  118. uint32 wordblock[16];
  119. uint32 lenw = len;
  120. int i;
  121. assert(lenw == len);
  122. /*
  123. * Update the length field.
  124. */
  125. s->lenlo += lenw;
  126. s->lenhi += (s->lenlo < lenw);
  127. if (s->blkused + len < BLKSIZE) {
  128. /*
  129. * Trivial case: just add to the block.
  130. */
  131. memcpy(s->block + s->blkused, q, len);
  132. s->blkused += len;
  133. } else {
  134. /*
  135. * We must complete and process at least one block.
  136. */
  137. while (s->blkused + len >= BLKSIZE) {
  138. memcpy(s->block + s->blkused, q, BLKSIZE - s->blkused);
  139. q += BLKSIZE - s->blkused;
  140. len -= BLKSIZE - s->blkused;
  141. /* Now process the block. Gather bytes little-endian into words */
  142. for (i = 0; i < 16; i++) {
  143. wordblock[i] =
  144. (((uint32) s->block[i * 4 + 3]) << 24) |
  145. (((uint32) s->block[i * 4 + 2]) << 16) |
  146. (((uint32) s->block[i * 4 + 1]) << 8) |
  147. (((uint32) s->block[i * 4 + 0]) << 0);
  148. }
  149. MD5_Block(&s->core, wordblock);
  150. s->blkused = 0;
  151. }
  152. #ifdef MPEXT
  153. if (len > 0)
  154. #endif
  155. memcpy(s->block, q, len);
  156. s->blkused = len;
  157. }
  158. }
  159. void MD5Final(unsigned char output[16], struct MD5Context *s)
  160. {
  161. int i;
  162. unsigned pad;
  163. unsigned char c[64];
  164. uint32 lenhi, lenlo;
  165. if (s->blkused >= 56)
  166. pad = 56 + 64 - s->blkused;
  167. else
  168. pad = 56 - s->blkused;
  169. lenhi = (s->lenhi << 3) | (s->lenlo >> (32 - 3));
  170. lenlo = (s->lenlo << 3);
  171. memset(c, 0, pad);
  172. c[0] = 0x80;
  173. put_data(s, c, pad);
  174. c[7] = (lenhi >> 24) & 0xFF;
  175. c[6] = (lenhi >> 16) & 0xFF;
  176. c[5] = (lenhi >> 8) & 0xFF;
  177. c[4] = (lenhi >> 0) & 0xFF;
  178. c[3] = (lenlo >> 24) & 0xFF;
  179. c[2] = (lenlo >> 16) & 0xFF;
  180. c[1] = (lenlo >> 8) & 0xFF;
  181. c[0] = (lenlo >> 0) & 0xFF;
  182. put_data(s, c, 8);
  183. for (i = 0; i < 4; i++) {
  184. output[4 * i + 3] = (s->core.h[i] >> 24) & 0xFF;
  185. output[4 * i + 2] = (s->core.h[i] >> 16) & 0xFF;
  186. output[4 * i + 1] = (s->core.h[i] >> 8) & 0xFF;
  187. output[4 * i + 0] = (s->core.h[i] >> 0) & 0xFF;
  188. }
  189. }
  190. void MD5Simple(void const *p, unsigned len, unsigned char output[16])
  191. {
  192. struct MD5Context s;
  193. MD5Init(&s);
  194. put_data(&s, (unsigned char const *)p, len);
  195. MD5Final(output, &s);
  196. smemclr(&s, sizeof(s));
  197. }
  198. /* ----------------------------------------------------------------------
  199. * The above is the MD5 algorithm itself. Now we implement the
  200. * HMAC wrapper on it.
  201. *
  202. * Some of these functions are exported directly, because they are
  203. * useful elsewhere (SOCKS5 CHAP authentication uses HMAC-MD5).
  204. */
  205. void *hmacmd5_make_context(void *cipher_ctx)
  206. {
  207. return snewn(3, struct MD5Context);
  208. }
  209. void hmacmd5_free_context(void *handle)
  210. {
  211. smemclr(handle, 3*sizeof(struct MD5Context));
  212. sfree(handle);
  213. }
  214. void hmacmd5_key(void *handle, void const *keyv, int len)
  215. {
  216. struct MD5Context *keys = (struct MD5Context *)handle;
  217. unsigned char foo[64];
  218. unsigned char const *key = (unsigned char const *)keyv;
  219. int i;
  220. memset(foo, 0x36, 64);
  221. for (i = 0; i < len && i < 64; i++)
  222. foo[i] ^= key[i];
  223. MD5Init(&keys[0]);
  224. put_data(&keys[0], foo, 64);
  225. memset(foo, 0x5C, 64);
  226. for (i = 0; i < len && i < 64; i++)
  227. foo[i] ^= key[i];
  228. MD5Init(&keys[1]);
  229. put_data(&keys[1], foo, 64);
  230. smemclr(foo, 64); /* burn the evidence */
  231. }
  232. static void hmacmd5_key_16(void *handle, const void *key)
  233. {
  234. hmacmd5_key(handle, key, 16);
  235. }
  236. static void hmacmd5_start(void *handle)
  237. {
  238. struct MD5Context *keys = (struct MD5Context *)handle;
  239. keys[2] = keys[0]; /* structure copy */
  240. BinarySink_COPIED(&keys[2]);
  241. }
  242. static BinarySink *hmacmd5_sink(void *handle)
  243. {
  244. struct MD5Context *keys = (struct MD5Context *)handle;
  245. return BinarySink_UPCAST(&keys[2]);
  246. }
  247. static void hmacmd5_genresult(void *handle, unsigned char *hmac)
  248. {
  249. struct MD5Context *keys = (struct MD5Context *)handle;
  250. struct MD5Context s;
  251. unsigned char intermediate[16];
  252. s = keys[2]; /* structure copy */
  253. BinarySink_COPIED(&s);
  254. MD5Final(intermediate, &s);
  255. s = keys[1]; /* structure copy */
  256. BinarySink_COPIED(&s);
  257. put_data(&s, intermediate, 16);
  258. MD5Final(hmac, &s);
  259. }
  260. static int hmacmd5_verresult(void *handle, unsigned char const *hmac)
  261. {
  262. unsigned char correct[16];
  263. hmacmd5_genresult(handle, correct);
  264. return smemeq(correct, hmac, 16);
  265. }
  266. static void hmacmd5_do_hmac_internal(void *handle,
  267. unsigned char const *blk, int len,
  268. unsigned char const *blk2, int len2,
  269. unsigned char *hmac)
  270. {
  271. BinarySink *bs = hmacmd5_sink(handle);
  272. hmacmd5_start(handle);
  273. put_data(bs, blk, len);
  274. if (blk2) put_data(bs, blk2, len2);
  275. hmacmd5_genresult(handle, hmac);
  276. }
  277. void hmacmd5_do_hmac(void *handle, unsigned char const *blk, int len,
  278. unsigned char *hmac)
  279. {
  280. hmacmd5_do_hmac_internal(handle, blk, len, NULL, 0, hmac);
  281. }
  282. static void hmacmd5_do_hmac_ssh(void *handle, unsigned char const *blk, int len,
  283. unsigned long seq, unsigned char *hmac)
  284. {
  285. unsigned char seqbuf[16];
  286. PUT_32BIT_MSB_FIRST(seqbuf, seq);
  287. hmacmd5_do_hmac_internal(handle, seqbuf, 4, blk, len, hmac);
  288. }
  289. static void hmacmd5_generate(void *handle, void *vblk, int len,
  290. unsigned long seq)
  291. {
  292. unsigned char *blk = (unsigned char *)vblk;
  293. hmacmd5_do_hmac_ssh(handle, blk, len, seq, blk + len);
  294. }
  295. static int hmacmd5_verify(void *handle, const void *vblk, int len,
  296. unsigned long seq)
  297. {
  298. const unsigned char *blk = (const unsigned char *)vblk;
  299. unsigned char correct[16];
  300. hmacmd5_do_hmac_ssh(handle, blk, len, seq, correct);
  301. return smemeq(correct, blk + len, 16);
  302. }
  303. const struct ssh_mac ssh_hmac_md5 = {
  304. hmacmd5_make_context, hmacmd5_free_context, hmacmd5_key_16,
  305. hmacmd5_generate, hmacmd5_verify,
  306. hmacmd5_start, hmacmd5_sink, hmacmd5_genresult, hmacmd5_verresult,
  307. "hmac-md5", "[email protected]",
  308. 16, 16,
  309. "HMAC-MD5"
  310. };