rmd256.c 11 KB

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  1. /*
  2. * Cryptographic API.
  3. *
  4. * RIPEMD-256 - RACE Integrity Primitives Evaluation Message Digest.
  5. *
  6. * Based on the reference implementation by Antoon Bosselaers, ESAT-COSIC
  7. *
  8. * Copyright (c) 2008 Adrian-Ken Rueegsegger <rueegsegger (at) swiss-it.ch>
  9. *
  10. * This program is free software; you can redistribute it and/or modify it
  11. * under the terms of the GNU General Public License as published by the Free
  12. * Software Foundation; either version 2 of the License, or (at your option)
  13. * any later version.
  14. *
  15. */
  16. #include <linux/init.h>
  17. #include <linux/module.h>
  18. #include <linux/mm.h>
  19. #include <linux/crypto.h>
  20. #include <linux/cryptohash.h>
  21. #include <linux/types.h>
  22. #include <asm/byteorder.h>
  23. #include "ripemd.h"
  24. struct rmd256_ctx {
  25. u64 byte_count;
  26. u32 state[8];
  27. __le32 buffer[16];
  28. };
  29. #define K1 RMD_K1
  30. #define K2 RMD_K2
  31. #define K3 RMD_K3
  32. #define K4 RMD_K4
  33. #define KK1 RMD_K6
  34. #define KK2 RMD_K7
  35. #define KK3 RMD_K8
  36. #define KK4 RMD_K1
  37. #define F1(x, y, z) (x ^ y ^ z) /* XOR */
  38. #define F2(x, y, z) (z ^ (x & (y ^ z))) /* x ? y : z */
  39. #define F3(x, y, z) ((x | ~y) ^ z)
  40. #define F4(x, y, z) (y ^ (z & (x ^ y))) /* z ? x : y */
  41. #define ROUND(a, b, c, d, f, k, x, s) { \
  42. (a) += f((b), (c), (d)) + le32_to_cpup(&(x)) + (k); \
  43. (a) = rol32((a), (s)); \
  44. }
  45. static void rmd256_transform(u32 *state, const __le32 *in)
  46. {
  47. u32 aa, bb, cc, dd, aaa, bbb, ccc, ddd, tmp;
  48. /* Initialize left lane */
  49. aa = state[0];
  50. bb = state[1];
  51. cc = state[2];
  52. dd = state[3];
  53. /* Initialize right lane */
  54. aaa = state[4];
  55. bbb = state[5];
  56. ccc = state[6];
  57. ddd = state[7];
  58. /* round 1: left lane */
  59. ROUND(aa, bb, cc, dd, F1, K1, in[0], 11);
  60. ROUND(dd, aa, bb, cc, F1, K1, in[1], 14);
  61. ROUND(cc, dd, aa, bb, F1, K1, in[2], 15);
  62. ROUND(bb, cc, dd, aa, F1, K1, in[3], 12);
  63. ROUND(aa, bb, cc, dd, F1, K1, in[4], 5);
  64. ROUND(dd, aa, bb, cc, F1, K1, in[5], 8);
  65. ROUND(cc, dd, aa, bb, F1, K1, in[6], 7);
  66. ROUND(bb, cc, dd, aa, F1, K1, in[7], 9);
  67. ROUND(aa, bb, cc, dd, F1, K1, in[8], 11);
  68. ROUND(dd, aa, bb, cc, F1, K1, in[9], 13);
  69. ROUND(cc, dd, aa, bb, F1, K1, in[10], 14);
  70. ROUND(bb, cc, dd, aa, F1, K1, in[11], 15);
  71. ROUND(aa, bb, cc, dd, F1, K1, in[12], 6);
  72. ROUND(dd, aa, bb, cc, F1, K1, in[13], 7);
  73. ROUND(cc, dd, aa, bb, F1, K1, in[14], 9);
  74. ROUND(bb, cc, dd, aa, F1, K1, in[15], 8);
  75. /* round 1: right lane */
  76. ROUND(aaa, bbb, ccc, ddd, F4, KK1, in[5], 8);
  77. ROUND(ddd, aaa, bbb, ccc, F4, KK1, in[14], 9);
  78. ROUND(ccc, ddd, aaa, bbb, F4, KK1, in[7], 9);
  79. ROUND(bbb, ccc, ddd, aaa, F4, KK1, in[0], 11);
  80. ROUND(aaa, bbb, ccc, ddd, F4, KK1, in[9], 13);
  81. ROUND(ddd, aaa, bbb, ccc, F4, KK1, in[2], 15);
  82. ROUND(ccc, ddd, aaa, bbb, F4, KK1, in[11], 15);
  83. ROUND(bbb, ccc, ddd, aaa, F4, KK1, in[4], 5);
  84. ROUND(aaa, bbb, ccc, ddd, F4, KK1, in[13], 7);
  85. ROUND(ddd, aaa, bbb, ccc, F4, KK1, in[6], 7);
  86. ROUND(ccc, ddd, aaa, bbb, F4, KK1, in[15], 8);
  87. ROUND(bbb, ccc, ddd, aaa, F4, KK1, in[8], 11);
  88. ROUND(aaa, bbb, ccc, ddd, F4, KK1, in[1], 14);
  89. ROUND(ddd, aaa, bbb, ccc, F4, KK1, in[10], 14);
  90. ROUND(ccc, ddd, aaa, bbb, F4, KK1, in[3], 12);
  91. ROUND(bbb, ccc, ddd, aaa, F4, KK1, in[12], 6);
  92. /* Swap contents of "a" registers */
  93. tmp = aa; aa = aaa; aaa = tmp;
  94. /* round 2: left lane */
  95. ROUND(aa, bb, cc, dd, F2, K2, in[7], 7);
  96. ROUND(dd, aa, bb, cc, F2, K2, in[4], 6);
  97. ROUND(cc, dd, aa, bb, F2, K2, in[13], 8);
  98. ROUND(bb, cc, dd, aa, F2, K2, in[1], 13);
  99. ROUND(aa, bb, cc, dd, F2, K2, in[10], 11);
  100. ROUND(dd, aa, bb, cc, F2, K2, in[6], 9);
  101. ROUND(cc, dd, aa, bb, F2, K2, in[15], 7);
  102. ROUND(bb, cc, dd, aa, F2, K2, in[3], 15);
  103. ROUND(aa, bb, cc, dd, F2, K2, in[12], 7);
  104. ROUND(dd, aa, bb, cc, F2, K2, in[0], 12);
  105. ROUND(cc, dd, aa, bb, F2, K2, in[9], 15);
  106. ROUND(bb, cc, dd, aa, F2, K2, in[5], 9);
  107. ROUND(aa, bb, cc, dd, F2, K2, in[2], 11);
  108. ROUND(dd, aa, bb, cc, F2, K2, in[14], 7);
  109. ROUND(cc, dd, aa, bb, F2, K2, in[11], 13);
  110. ROUND(bb, cc, dd, aa, F2, K2, in[8], 12);
  111. /* round 2: right lane */
  112. ROUND(aaa, bbb, ccc, ddd, F3, KK2, in[6], 9);
  113. ROUND(ddd, aaa, bbb, ccc, F3, KK2, in[11], 13);
  114. ROUND(ccc, ddd, aaa, bbb, F3, KK2, in[3], 15);
  115. ROUND(bbb, ccc, ddd, aaa, F3, KK2, in[7], 7);
  116. ROUND(aaa, bbb, ccc, ddd, F3, KK2, in[0], 12);
  117. ROUND(ddd, aaa, bbb, ccc, F3, KK2, in[13], 8);
  118. ROUND(ccc, ddd, aaa, bbb, F3, KK2, in[5], 9);
  119. ROUND(bbb, ccc, ddd, aaa, F3, KK2, in[10], 11);
  120. ROUND(aaa, bbb, ccc, ddd, F3, KK2, in[14], 7);
  121. ROUND(ddd, aaa, bbb, ccc, F3, KK2, in[15], 7);
  122. ROUND(ccc, ddd, aaa, bbb, F3, KK2, in[8], 12);
  123. ROUND(bbb, ccc, ddd, aaa, F3, KK2, in[12], 7);
  124. ROUND(aaa, bbb, ccc, ddd, F3, KK2, in[4], 6);
  125. ROUND(ddd, aaa, bbb, ccc, F3, KK2, in[9], 15);
  126. ROUND(ccc, ddd, aaa, bbb, F3, KK2, in[1], 13);
  127. ROUND(bbb, ccc, ddd, aaa, F3, KK2, in[2], 11);
  128. /* Swap contents of "b" registers */
  129. tmp = bb; bb = bbb; bbb = tmp;
  130. /* round 3: left lane */
  131. ROUND(aa, bb, cc, dd, F3, K3, in[3], 11);
  132. ROUND(dd, aa, bb, cc, F3, K3, in[10], 13);
  133. ROUND(cc, dd, aa, bb, F3, K3, in[14], 6);
  134. ROUND(bb, cc, dd, aa, F3, K3, in[4], 7);
  135. ROUND(aa, bb, cc, dd, F3, K3, in[9], 14);
  136. ROUND(dd, aa, bb, cc, F3, K3, in[15], 9);
  137. ROUND(cc, dd, aa, bb, F3, K3, in[8], 13);
  138. ROUND(bb, cc, dd, aa, F3, K3, in[1], 15);
  139. ROUND(aa, bb, cc, dd, F3, K3, in[2], 14);
  140. ROUND(dd, aa, bb, cc, F3, K3, in[7], 8);
  141. ROUND(cc, dd, aa, bb, F3, K3, in[0], 13);
  142. ROUND(bb, cc, dd, aa, F3, K3, in[6], 6);
  143. ROUND(aa, bb, cc, dd, F3, K3, in[13], 5);
  144. ROUND(dd, aa, bb, cc, F3, K3, in[11], 12);
  145. ROUND(cc, dd, aa, bb, F3, K3, in[5], 7);
  146. ROUND(bb, cc, dd, aa, F3, K3, in[12], 5);
  147. /* round 3: right lane */
  148. ROUND(aaa, bbb, ccc, ddd, F2, KK3, in[15], 9);
  149. ROUND(ddd, aaa, bbb, ccc, F2, KK3, in[5], 7);
  150. ROUND(ccc, ddd, aaa, bbb, F2, KK3, in[1], 15);
  151. ROUND(bbb, ccc, ddd, aaa, F2, KK3, in[3], 11);
  152. ROUND(aaa, bbb, ccc, ddd, F2, KK3, in[7], 8);
  153. ROUND(ddd, aaa, bbb, ccc, F2, KK3, in[14], 6);
  154. ROUND(ccc, ddd, aaa, bbb, F2, KK3, in[6], 6);
  155. ROUND(bbb, ccc, ddd, aaa, F2, KK3, in[9], 14);
  156. ROUND(aaa, bbb, ccc, ddd, F2, KK3, in[11], 12);
  157. ROUND(ddd, aaa, bbb, ccc, F2, KK3, in[8], 13);
  158. ROUND(ccc, ddd, aaa, bbb, F2, KK3, in[12], 5);
  159. ROUND(bbb, ccc, ddd, aaa, F2, KK3, in[2], 14);
  160. ROUND(aaa, bbb, ccc, ddd, F2, KK3, in[10], 13);
  161. ROUND(ddd, aaa, bbb, ccc, F2, KK3, in[0], 13);
  162. ROUND(ccc, ddd, aaa, bbb, F2, KK3, in[4], 7);
  163. ROUND(bbb, ccc, ddd, aaa, F2, KK3, in[13], 5);
  164. /* Swap contents of "c" registers */
  165. tmp = cc; cc = ccc; ccc = tmp;
  166. /* round 4: left lane */
  167. ROUND(aa, bb, cc, dd, F4, K4, in[1], 11);
  168. ROUND(dd, aa, bb, cc, F4, K4, in[9], 12);
  169. ROUND(cc, dd, aa, bb, F4, K4, in[11], 14);
  170. ROUND(bb, cc, dd, aa, F4, K4, in[10], 15);
  171. ROUND(aa, bb, cc, dd, F4, K4, in[0], 14);
  172. ROUND(dd, aa, bb, cc, F4, K4, in[8], 15);
  173. ROUND(cc, dd, aa, bb, F4, K4, in[12], 9);
  174. ROUND(bb, cc, dd, aa, F4, K4, in[4], 8);
  175. ROUND(aa, bb, cc, dd, F4, K4, in[13], 9);
  176. ROUND(dd, aa, bb, cc, F4, K4, in[3], 14);
  177. ROUND(cc, dd, aa, bb, F4, K4, in[7], 5);
  178. ROUND(bb, cc, dd, aa, F4, K4, in[15], 6);
  179. ROUND(aa, bb, cc, dd, F4, K4, in[14], 8);
  180. ROUND(dd, aa, bb, cc, F4, K4, in[5], 6);
  181. ROUND(cc, dd, aa, bb, F4, K4, in[6], 5);
  182. ROUND(bb, cc, dd, aa, F4, K4, in[2], 12);
  183. /* round 4: right lane */
  184. ROUND(aaa, bbb, ccc, ddd, F1, KK4, in[8], 15);
  185. ROUND(ddd, aaa, bbb, ccc, F1, KK4, in[6], 5);
  186. ROUND(ccc, ddd, aaa, bbb, F1, KK4, in[4], 8);
  187. ROUND(bbb, ccc, ddd, aaa, F1, KK4, in[1], 11);
  188. ROUND(aaa, bbb, ccc, ddd, F1, KK4, in[3], 14);
  189. ROUND(ddd, aaa, bbb, ccc, F1, KK4, in[11], 14);
  190. ROUND(ccc, ddd, aaa, bbb, F1, KK4, in[15], 6);
  191. ROUND(bbb, ccc, ddd, aaa, F1, KK4, in[0], 14);
  192. ROUND(aaa, bbb, ccc, ddd, F1, KK4, in[5], 6);
  193. ROUND(ddd, aaa, bbb, ccc, F1, KK4, in[12], 9);
  194. ROUND(ccc, ddd, aaa, bbb, F1, KK4, in[2], 12);
  195. ROUND(bbb, ccc, ddd, aaa, F1, KK4, in[13], 9);
  196. ROUND(aaa, bbb, ccc, ddd, F1, KK4, in[9], 12);
  197. ROUND(ddd, aaa, bbb, ccc, F1, KK4, in[7], 5);
  198. ROUND(ccc, ddd, aaa, bbb, F1, KK4, in[10], 15);
  199. ROUND(bbb, ccc, ddd, aaa, F1, KK4, in[14], 8);
  200. /* Swap contents of "d" registers */
  201. tmp = dd; dd = ddd; ddd = tmp;
  202. /* combine results */
  203. state[0] += aa;
  204. state[1] += bb;
  205. state[2] += cc;
  206. state[3] += dd;
  207. state[4] += aaa;
  208. state[5] += bbb;
  209. state[6] += ccc;
  210. state[7] += ddd;
  211. return;
  212. }
  213. static void rmd256_init(struct crypto_tfm *tfm)
  214. {
  215. struct rmd256_ctx *rctx = crypto_tfm_ctx(tfm);
  216. rctx->byte_count = 0;
  217. rctx->state[0] = RMD_H0;
  218. rctx->state[1] = RMD_H1;
  219. rctx->state[2] = RMD_H2;
  220. rctx->state[3] = RMD_H3;
  221. rctx->state[4] = RMD_H5;
  222. rctx->state[5] = RMD_H6;
  223. rctx->state[6] = RMD_H7;
  224. rctx->state[7] = RMD_H8;
  225. memset(rctx->buffer, 0, sizeof(rctx->buffer));
  226. }
  227. static void rmd256_update(struct crypto_tfm *tfm, const u8 *data,
  228. unsigned int len)
  229. {
  230. struct rmd256_ctx *rctx = crypto_tfm_ctx(tfm);
  231. const u32 avail = sizeof(rctx->buffer) - (rctx->byte_count & 0x3f);
  232. rctx->byte_count += len;
  233. /* Enough space in buffer? If so copy and we're done */
  234. if (avail > len) {
  235. memcpy((char *)rctx->buffer + (sizeof(rctx->buffer) - avail),
  236. data, len);
  237. return;
  238. }
  239. memcpy((char *)rctx->buffer + (sizeof(rctx->buffer) - avail),
  240. data, avail);
  241. rmd256_transform(rctx->state, rctx->buffer);
  242. data += avail;
  243. len -= avail;
  244. while (len >= sizeof(rctx->buffer)) {
  245. memcpy(rctx->buffer, data, sizeof(rctx->buffer));
  246. rmd256_transform(rctx->state, rctx->buffer);
  247. data += sizeof(rctx->buffer);
  248. len -= sizeof(rctx->buffer);
  249. }
  250. memcpy(rctx->buffer, data, len);
  251. }
  252. /* Add padding and return the message digest. */
  253. static void rmd256_final(struct crypto_tfm *tfm, u8 *out)
  254. {
  255. struct rmd256_ctx *rctx = crypto_tfm_ctx(tfm);
  256. u32 i, index, padlen;
  257. __le64 bits;
  258. __le32 *dst = (__le32 *)out;
  259. static const u8 padding[64] = { 0x80, };
  260. bits = cpu_to_le64(rctx->byte_count << 3);
  261. /* Pad out to 56 mod 64 */
  262. index = rctx->byte_count & 0x3f;
  263. padlen = (index < 56) ? (56 - index) : ((64+56) - index);
  264. rmd256_update(tfm, padding, padlen);
  265. /* Append length */
  266. rmd256_update(tfm, (const u8 *)&bits, sizeof(bits));
  267. /* Store state in digest */
  268. for (i = 0; i < 8; i++)
  269. dst[i] = cpu_to_le32p(&rctx->state[i]);
  270. /* Wipe context */
  271. memset(rctx, 0, sizeof(*rctx));
  272. }
  273. static struct crypto_alg alg = {
  274. .cra_name = "rmd256",
  275. .cra_driver_name = "rmd256",
  276. .cra_flags = CRYPTO_ALG_TYPE_DIGEST,
  277. .cra_blocksize = RMD256_BLOCK_SIZE,
  278. .cra_ctxsize = sizeof(struct rmd256_ctx),
  279. .cra_module = THIS_MODULE,
  280. .cra_list = LIST_HEAD_INIT(alg.cra_list),
  281. .cra_u = { .digest = {
  282. .dia_digestsize = RMD256_DIGEST_SIZE,
  283. .dia_init = rmd256_init,
  284. .dia_update = rmd256_update,
  285. .dia_final = rmd256_final } }
  286. };
  287. static int __init rmd256_mod_init(void)
  288. {
  289. return crypto_register_alg(&alg);
  290. }
  291. static void __exit rmd256_mod_fini(void)
  292. {
  293. crypto_unregister_alg(&alg);
  294. }
  295. module_init(rmd256_mod_init);
  296. module_exit(rmd256_mod_fini);
  297. MODULE_LICENSE("GPL");
  298. MODULE_DESCRIPTION("RIPEMD-256 Message Digest");
  299. MODULE_ALIAS("rmd256");