rmd160.c 14 KB

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  1. /* LibTomCrypt, modular cryptographic library -- Tom St Denis
  2. *
  3. * LibTomCrypt is a library that provides various cryptographic
  4. * algorithms in a highly modular and flexible manner.
  5. *
  6. * The library is free for all purposes without any express
  7. * guarantee it works.
  8. *
  9. * Tom St Denis, [email protected], http://libtomcrypt.org
  10. */
  11. /* Implementation of RIPEMD-160 based on the source by Antoon Bosselaers, ESAT-COSIC
  12. *
  13. * This source has been radically overhauled to be portable and work within
  14. * the LibTomCrypt API by Tom St Denis
  15. */
  16. #include "mycrypt.h"
  17. #ifdef RIPEMD160
  18. const struct _hash_descriptor rmd160_desc =
  19. {
  20. "rmd160",
  21. 9,
  22. 20,
  23. 64,
  24. /* DER identifier */
  25. { 0x30, 0x21, 0x30, 0x09, 0x06, 0x05, 0x2B, 0x24,
  26. 0x03, 0x02, 0x01, 0x05, 0x00, 0x04, 0x14 },
  27. 15,
  28. &rmd160_init,
  29. &rmd160_process,
  30. &rmd160_done,
  31. &rmd160_test
  32. };
  33. /* the five basic functions F(), G() and H() */
  34. #define F(x, y, z) ((x) ^ (y) ^ (z))
  35. #define G(x, y, z) (((x) & (y)) | (~(x) & (z)))
  36. #define H(x, y, z) (((x) | ~(y)) ^ (z))
  37. #define I(x, y, z) (((x) & (z)) | ((y) & ~(z)))
  38. #define J(x, y, z) ((x) ^ ((y) | ~(z)))
  39. /* the ten basic operations FF() through III() */
  40. #define FF(a, b, c, d, e, x, s) \
  41. (a) += F((b), (c), (d)) + (x);\
  42. (a) = ROL((a), (s)) + (e);\
  43. (c) = ROL((c), 10);
  44. #define GG(a, b, c, d, e, x, s) \
  45. (a) += G((b), (c), (d)) + (x) + 0x5a827999UL;\
  46. (a) = ROL((a), (s)) + (e);\
  47. (c) = ROL((c), 10);
  48. #define HH(a, b, c, d, e, x, s) \
  49. (a) += H((b), (c), (d)) + (x) + 0x6ed9eba1UL;\
  50. (a) = ROL((a), (s)) + (e);\
  51. (c) = ROL((c), 10);
  52. #define II(a, b, c, d, e, x, s) \
  53. (a) += I((b), (c), (d)) + (x) + 0x8f1bbcdcUL;\
  54. (a) = ROL((a), (s)) + (e);\
  55. (c) = ROL((c), 10);
  56. #define JJ(a, b, c, d, e, x, s) \
  57. (a) += J((b), (c), (d)) + (x) + 0xa953fd4eUL;\
  58. (a) = ROL((a), (s)) + (e);\
  59. (c) = ROL((c), 10);
  60. #define FFF(a, b, c, d, e, x, s) \
  61. (a) += F((b), (c), (d)) + (x);\
  62. (a) = ROL((a), (s)) + (e);\
  63. (c) = ROL((c), 10);
  64. #define GGG(a, b, c, d, e, x, s) \
  65. (a) += G((b), (c), (d)) + (x) + 0x7a6d76e9UL;\
  66. (a) = ROL((a), (s)) + (e);\
  67. (c) = ROL((c), 10);
  68. #define HHH(a, b, c, d, e, x, s) \
  69. (a) += H((b), (c), (d)) + (x) + 0x6d703ef3UL;\
  70. (a) = ROL((a), (s)) + (e);\
  71. (c) = ROL((c), 10);
  72. #define III(a, b, c, d, e, x, s) \
  73. (a) += I((b), (c), (d)) + (x) + 0x5c4dd124UL;\
  74. (a) = ROL((a), (s)) + (e);\
  75. (c) = ROL((c), 10);
  76. #define JJJ(a, b, c, d, e, x, s) \
  77. (a) += J((b), (c), (d)) + (x) + 0x50a28be6UL;\
  78. (a) = ROL((a), (s)) + (e);\
  79. (c) = ROL((c), 10);
  80. #ifdef CLEAN_STACK
  81. static int _rmd160_compress(hash_state *md, unsigned char *buf)
  82. #else
  83. static int rmd160_compress(hash_state *md, unsigned char *buf)
  84. #endif
  85. {
  86. ulong32 aa,bb,cc,dd,ee,aaa,bbb,ccc,ddd,eee,X[16];
  87. int i;
  88. /* load words X */
  89. for (i = 0; i < 16; i++){
  90. LOAD32L(X[i], buf + (4 * i));
  91. }
  92. /* load state */
  93. aa = aaa = md->rmd160.state[0];
  94. bb = bbb = md->rmd160.state[1];
  95. cc = ccc = md->rmd160.state[2];
  96. dd = ddd = md->rmd160.state[3];
  97. ee = eee = md->rmd160.state[4];
  98. /* round 1 */
  99. FF(aa, bb, cc, dd, ee, X[ 0], 11);
  100. FF(ee, aa, bb, cc, dd, X[ 1], 14);
  101. FF(dd, ee, aa, bb, cc, X[ 2], 15);
  102. FF(cc, dd, ee, aa, bb, X[ 3], 12);
  103. FF(bb, cc, dd, ee, aa, X[ 4], 5);
  104. FF(aa, bb, cc, dd, ee, X[ 5], 8);
  105. FF(ee, aa, bb, cc, dd, X[ 6], 7);
  106. FF(dd, ee, aa, bb, cc, X[ 7], 9);
  107. FF(cc, dd, ee, aa, bb, X[ 8], 11);
  108. FF(bb, cc, dd, ee, aa, X[ 9], 13);
  109. FF(aa, bb, cc, dd, ee, X[10], 14);
  110. FF(ee, aa, bb, cc, dd, X[11], 15);
  111. FF(dd, ee, aa, bb, cc, X[12], 6);
  112. FF(cc, dd, ee, aa, bb, X[13], 7);
  113. FF(bb, cc, dd, ee, aa, X[14], 9);
  114. FF(aa, bb, cc, dd, ee, X[15], 8);
  115. /* round 2 */
  116. GG(ee, aa, bb, cc, dd, X[ 7], 7);
  117. GG(dd, ee, aa, bb, cc, X[ 4], 6);
  118. GG(cc, dd, ee, aa, bb, X[13], 8);
  119. GG(bb, cc, dd, ee, aa, X[ 1], 13);
  120. GG(aa, bb, cc, dd, ee, X[10], 11);
  121. GG(ee, aa, bb, cc, dd, X[ 6], 9);
  122. GG(dd, ee, aa, bb, cc, X[15], 7);
  123. GG(cc, dd, ee, aa, bb, X[ 3], 15);
  124. GG(bb, cc, dd, ee, aa, X[12], 7);
  125. GG(aa, bb, cc, dd, ee, X[ 0], 12);
  126. GG(ee, aa, bb, cc, dd, X[ 9], 15);
  127. GG(dd, ee, aa, bb, cc, X[ 5], 9);
  128. GG(cc, dd, ee, aa, bb, X[ 2], 11);
  129. GG(bb, cc, dd, ee, aa, X[14], 7);
  130. GG(aa, bb, cc, dd, ee, X[11], 13);
  131. GG(ee, aa, bb, cc, dd, X[ 8], 12);
  132. /* round 3 */
  133. HH(dd, ee, aa, bb, cc, X[ 3], 11);
  134. HH(cc, dd, ee, aa, bb, X[10], 13);
  135. HH(bb, cc, dd, ee, aa, X[14], 6);
  136. HH(aa, bb, cc, dd, ee, X[ 4], 7);
  137. HH(ee, aa, bb, cc, dd, X[ 9], 14);
  138. HH(dd, ee, aa, bb, cc, X[15], 9);
  139. HH(cc, dd, ee, aa, bb, X[ 8], 13);
  140. HH(bb, cc, dd, ee, aa, X[ 1], 15);
  141. HH(aa, bb, cc, dd, ee, X[ 2], 14);
  142. HH(ee, aa, bb, cc, dd, X[ 7], 8);
  143. HH(dd, ee, aa, bb, cc, X[ 0], 13);
  144. HH(cc, dd, ee, aa, bb, X[ 6], 6);
  145. HH(bb, cc, dd, ee, aa, X[13], 5);
  146. HH(aa, bb, cc, dd, ee, X[11], 12);
  147. HH(ee, aa, bb, cc, dd, X[ 5], 7);
  148. HH(dd, ee, aa, bb, cc, X[12], 5);
  149. /* round 4 */
  150. II(cc, dd, ee, aa, bb, X[ 1], 11);
  151. II(bb, cc, dd, ee, aa, X[ 9], 12);
  152. II(aa, bb, cc, dd, ee, X[11], 14);
  153. II(ee, aa, bb, cc, dd, X[10], 15);
  154. II(dd, ee, aa, bb, cc, X[ 0], 14);
  155. II(cc, dd, ee, aa, bb, X[ 8], 15);
  156. II(bb, cc, dd, ee, aa, X[12], 9);
  157. II(aa, bb, cc, dd, ee, X[ 4], 8);
  158. II(ee, aa, bb, cc, dd, X[13], 9);
  159. II(dd, ee, aa, bb, cc, X[ 3], 14);
  160. II(cc, dd, ee, aa, bb, X[ 7], 5);
  161. II(bb, cc, dd, ee, aa, X[15], 6);
  162. II(aa, bb, cc, dd, ee, X[14], 8);
  163. II(ee, aa, bb, cc, dd, X[ 5], 6);
  164. II(dd, ee, aa, bb, cc, X[ 6], 5);
  165. II(cc, dd, ee, aa, bb, X[ 2], 12);
  166. /* round 5 */
  167. JJ(bb, cc, dd, ee, aa, X[ 4], 9);
  168. JJ(aa, bb, cc, dd, ee, X[ 0], 15);
  169. JJ(ee, aa, bb, cc, dd, X[ 5], 5);
  170. JJ(dd, ee, aa, bb, cc, X[ 9], 11);
  171. JJ(cc, dd, ee, aa, bb, X[ 7], 6);
  172. JJ(bb, cc, dd, ee, aa, X[12], 8);
  173. JJ(aa, bb, cc, dd, ee, X[ 2], 13);
  174. JJ(ee, aa, bb, cc, dd, X[10], 12);
  175. JJ(dd, ee, aa, bb, cc, X[14], 5);
  176. JJ(cc, dd, ee, aa, bb, X[ 1], 12);
  177. JJ(bb, cc, dd, ee, aa, X[ 3], 13);
  178. JJ(aa, bb, cc, dd, ee, X[ 8], 14);
  179. JJ(ee, aa, bb, cc, dd, X[11], 11);
  180. JJ(dd, ee, aa, bb, cc, X[ 6], 8);
  181. JJ(cc, dd, ee, aa, bb, X[15], 5);
  182. JJ(bb, cc, dd, ee, aa, X[13], 6);
  183. /* parallel round 1 */
  184. JJJ(aaa, bbb, ccc, ddd, eee, X[ 5], 8);
  185. JJJ(eee, aaa, bbb, ccc, ddd, X[14], 9);
  186. JJJ(ddd, eee, aaa, bbb, ccc, X[ 7], 9);
  187. JJJ(ccc, ddd, eee, aaa, bbb, X[ 0], 11);
  188. JJJ(bbb, ccc, ddd, eee, aaa, X[ 9], 13);
  189. JJJ(aaa, bbb, ccc, ddd, eee, X[ 2], 15);
  190. JJJ(eee, aaa, bbb, ccc, ddd, X[11], 15);
  191. JJJ(ddd, eee, aaa, bbb, ccc, X[ 4], 5);
  192. JJJ(ccc, ddd, eee, aaa, bbb, X[13], 7);
  193. JJJ(bbb, ccc, ddd, eee, aaa, X[ 6], 7);
  194. JJJ(aaa, bbb, ccc, ddd, eee, X[15], 8);
  195. JJJ(eee, aaa, bbb, ccc, ddd, X[ 8], 11);
  196. JJJ(ddd, eee, aaa, bbb, ccc, X[ 1], 14);
  197. JJJ(ccc, ddd, eee, aaa, bbb, X[10], 14);
  198. JJJ(bbb, ccc, ddd, eee, aaa, X[ 3], 12);
  199. JJJ(aaa, bbb, ccc, ddd, eee, X[12], 6);
  200. /* parallel round 2 */
  201. III(eee, aaa, bbb, ccc, ddd, X[ 6], 9);
  202. III(ddd, eee, aaa, bbb, ccc, X[11], 13);
  203. III(ccc, ddd, eee, aaa, bbb, X[ 3], 15);
  204. III(bbb, ccc, ddd, eee, aaa, X[ 7], 7);
  205. III(aaa, bbb, ccc, ddd, eee, X[ 0], 12);
  206. III(eee, aaa, bbb, ccc, ddd, X[13], 8);
  207. III(ddd, eee, aaa, bbb, ccc, X[ 5], 9);
  208. III(ccc, ddd, eee, aaa, bbb, X[10], 11);
  209. III(bbb, ccc, ddd, eee, aaa, X[14], 7);
  210. III(aaa, bbb, ccc, ddd, eee, X[15], 7);
  211. III(eee, aaa, bbb, ccc, ddd, X[ 8], 12);
  212. III(ddd, eee, aaa, bbb, ccc, X[12], 7);
  213. III(ccc, ddd, eee, aaa, bbb, X[ 4], 6);
  214. III(bbb, ccc, ddd, eee, aaa, X[ 9], 15);
  215. III(aaa, bbb, ccc, ddd, eee, X[ 1], 13);
  216. III(eee, aaa, bbb, ccc, ddd, X[ 2], 11);
  217. /* parallel round 3 */
  218. HHH(ddd, eee, aaa, bbb, ccc, X[15], 9);
  219. HHH(ccc, ddd, eee, aaa, bbb, X[ 5], 7);
  220. HHH(bbb, ccc, ddd, eee, aaa, X[ 1], 15);
  221. HHH(aaa, bbb, ccc, ddd, eee, X[ 3], 11);
  222. HHH(eee, aaa, bbb, ccc, ddd, X[ 7], 8);
  223. HHH(ddd, eee, aaa, bbb, ccc, X[14], 6);
  224. HHH(ccc, ddd, eee, aaa, bbb, X[ 6], 6);
  225. HHH(bbb, ccc, ddd, eee, aaa, X[ 9], 14);
  226. HHH(aaa, bbb, ccc, ddd, eee, X[11], 12);
  227. HHH(eee, aaa, bbb, ccc, ddd, X[ 8], 13);
  228. HHH(ddd, eee, aaa, bbb, ccc, X[12], 5);
  229. HHH(ccc, ddd, eee, aaa, bbb, X[ 2], 14);
  230. HHH(bbb, ccc, ddd, eee, aaa, X[10], 13);
  231. HHH(aaa, bbb, ccc, ddd, eee, X[ 0], 13);
  232. HHH(eee, aaa, bbb, ccc, ddd, X[ 4], 7);
  233. HHH(ddd, eee, aaa, bbb, ccc, X[13], 5);
  234. /* parallel round 4 */
  235. GGG(ccc, ddd, eee, aaa, bbb, X[ 8], 15);
  236. GGG(bbb, ccc, ddd, eee, aaa, X[ 6], 5);
  237. GGG(aaa, bbb, ccc, ddd, eee, X[ 4], 8);
  238. GGG(eee, aaa, bbb, ccc, ddd, X[ 1], 11);
  239. GGG(ddd, eee, aaa, bbb, ccc, X[ 3], 14);
  240. GGG(ccc, ddd, eee, aaa, bbb, X[11], 14);
  241. GGG(bbb, ccc, ddd, eee, aaa, X[15], 6);
  242. GGG(aaa, bbb, ccc, ddd, eee, X[ 0], 14);
  243. GGG(eee, aaa, bbb, ccc, ddd, X[ 5], 6);
  244. GGG(ddd, eee, aaa, bbb, ccc, X[12], 9);
  245. GGG(ccc, ddd, eee, aaa, bbb, X[ 2], 12);
  246. GGG(bbb, ccc, ddd, eee, aaa, X[13], 9);
  247. GGG(aaa, bbb, ccc, ddd, eee, X[ 9], 12);
  248. GGG(eee, aaa, bbb, ccc, ddd, X[ 7], 5);
  249. GGG(ddd, eee, aaa, bbb, ccc, X[10], 15);
  250. GGG(ccc, ddd, eee, aaa, bbb, X[14], 8);
  251. /* parallel round 5 */
  252. FFF(bbb, ccc, ddd, eee, aaa, X[12] , 8);
  253. FFF(aaa, bbb, ccc, ddd, eee, X[15] , 5);
  254. FFF(eee, aaa, bbb, ccc, ddd, X[10] , 12);
  255. FFF(ddd, eee, aaa, bbb, ccc, X[ 4] , 9);
  256. FFF(ccc, ddd, eee, aaa, bbb, X[ 1] , 12);
  257. FFF(bbb, ccc, ddd, eee, aaa, X[ 5] , 5);
  258. FFF(aaa, bbb, ccc, ddd, eee, X[ 8] , 14);
  259. FFF(eee, aaa, bbb, ccc, ddd, X[ 7] , 6);
  260. FFF(ddd, eee, aaa, bbb, ccc, X[ 6] , 8);
  261. FFF(ccc, ddd, eee, aaa, bbb, X[ 2] , 13);
  262. FFF(bbb, ccc, ddd, eee, aaa, X[13] , 6);
  263. FFF(aaa, bbb, ccc, ddd, eee, X[14] , 5);
  264. FFF(eee, aaa, bbb, ccc, ddd, X[ 0] , 15);
  265. FFF(ddd, eee, aaa, bbb, ccc, X[ 3] , 13);
  266. FFF(ccc, ddd, eee, aaa, bbb, X[ 9] , 11);
  267. FFF(bbb, ccc, ddd, eee, aaa, X[11] , 11);
  268. /* combine results */
  269. ddd += cc + md->rmd160.state[1]; /* final result for md->rmd160.state[0] */
  270. md->rmd160.state[1] = md->rmd160.state[2] + dd + eee;
  271. md->rmd160.state[2] = md->rmd160.state[3] + ee + aaa;
  272. md->rmd160.state[3] = md->rmd160.state[4] + aa + bbb;
  273. md->rmd160.state[4] = md->rmd160.state[0] + bb + ccc;
  274. md->rmd160.state[0] = ddd;
  275. return CRYPT_OK;
  276. }
  277. #ifdef CLEAN_STACK
  278. static int rmd160_compress(hash_state *md, unsigned char *buf)
  279. {
  280. int err;
  281. err = _rmd160_compress(md, buf);
  282. burn_stack(sizeof(ulong32) * 26 + sizeof(int));
  283. return err;
  284. }
  285. #endif
  286. int rmd160_init(hash_state * md)
  287. {
  288. _ARGCHK(md != NULL);
  289. md->rmd160.state[0] = 0x67452301UL;
  290. md->rmd160.state[1] = 0xefcdab89UL;
  291. md->rmd160.state[2] = 0x98badcfeUL;
  292. md->rmd160.state[3] = 0x10325476UL;
  293. md->rmd160.state[4] = 0xc3d2e1f0UL;
  294. md->rmd160.curlen = 0;
  295. md->rmd160.length = 0;
  296. return CRYPT_OK;
  297. }
  298. HASH_PROCESS(rmd160_process, rmd160_compress, rmd160, 64)
  299. int rmd160_done(hash_state * md, unsigned char *hash)
  300. {
  301. int i;
  302. _ARGCHK(md != NULL);
  303. _ARGCHK(hash != NULL);
  304. if (md->rmd160.curlen >= sizeof(md->rmd160.buf)) {
  305. return CRYPT_INVALID_ARG;
  306. }
  307. /* increase the length of the message */
  308. md->rmd160.length += md->rmd160.curlen * 8;
  309. /* append the '1' bit */
  310. md->rmd160.buf[md->rmd160.curlen++] = (unsigned char)0x80;
  311. /* if the length is currently above 56 bytes we append zeros
  312. * then compress. Then we can fall back to padding zeros and length
  313. * encoding like normal.
  314. */
  315. if (md->rmd160.curlen > 56) {
  316. while (md->rmd160.curlen < 64) {
  317. md->rmd160.buf[md->rmd160.curlen++] = (unsigned char)0;
  318. }
  319. rmd160_compress(md, md->rmd160.buf);
  320. md->rmd160.curlen = 0;
  321. }
  322. /* pad upto 56 bytes of zeroes */
  323. while (md->rmd160.curlen < 56) {
  324. md->rmd160.buf[md->rmd160.curlen++] = (unsigned char)0;
  325. }
  326. /* store length */
  327. STORE64L(md->rmd160.length, md->rmd160.buf+56);
  328. rmd160_compress(md, md->rmd160.buf);
  329. /* copy output */
  330. for (i = 0; i < 5; i++) {
  331. STORE32L(md->rmd160.state[i], hash+(4*i));
  332. }
  333. #ifdef CLEAN_STACK
  334. zeromem(md, sizeof(hash_state));
  335. #endif
  336. return CRYPT_OK;
  337. }
  338. int rmd160_test(void)
  339. {
  340. #ifndef LTC_TEST
  341. return CRYPT_NOP;
  342. #else
  343. static const struct {
  344. char *msg;
  345. unsigned char md[20];
  346. } tests[] = {
  347. { "",
  348. { 0x9c, 0x11, 0x85, 0xa5, 0xc5, 0xe9, 0xfc, 0x54, 0x61, 0x28,
  349. 0x08, 0x97, 0x7e, 0xe8, 0xf5, 0x48, 0xb2, 0x25, 0x8d, 0x31 }
  350. },
  351. { "a",
  352. { 0x0b, 0xdc, 0x9d, 0x2d, 0x25, 0x6b, 0x3e, 0xe9, 0xda, 0xae,
  353. 0x34, 0x7b, 0xe6, 0xf4, 0xdc, 0x83, 0x5a, 0x46, 0x7f, 0xfe }
  354. },
  355. { "abc",
  356. { 0x8e, 0xb2, 0x08, 0xf7, 0xe0, 0x5d, 0x98, 0x7a, 0x9b, 0x04,
  357. 0x4a, 0x8e, 0x98, 0xc6, 0xb0, 0x87, 0xf1, 0x5a, 0x0b, 0xfc }
  358. },
  359. { "message digest",
  360. { 0x5d, 0x06, 0x89, 0xef, 0x49, 0xd2, 0xfa, 0xe5, 0x72, 0xb8,
  361. 0x81, 0xb1, 0x23, 0xa8, 0x5f, 0xfa, 0x21, 0x59, 0x5f, 0x36 }
  362. },
  363. { "abcdefghijklmnopqrstuvwxyz",
  364. { 0xf7, 0x1c, 0x27, 0x10, 0x9c, 0x69, 0x2c, 0x1b, 0x56, 0xbb,
  365. 0xdc, 0xeb, 0x5b, 0x9d, 0x28, 0x65, 0xb3, 0x70, 0x8d, 0xbc }
  366. },
  367. { "abcdbcdecdefdefgefghfghighijhijkijkljklmklmnlmnomnopnopq",
  368. { 0x12, 0xa0, 0x53, 0x38, 0x4a, 0x9c, 0x0c, 0x88, 0xe4, 0x05,
  369. 0xa0, 0x6c, 0x27, 0xdc, 0xf4, 0x9a, 0xda, 0x62, 0xeb, 0x2b }
  370. }
  371. };
  372. int x;
  373. unsigned char buf[20];
  374. hash_state md;
  375. for (x = 0; x < (int)(sizeof(tests)/sizeof(tests[0])); x++) {
  376. rmd160_init(&md);
  377. rmd160_process(&md, (unsigned char *)tests[x].msg, strlen(tests[x].msg));
  378. rmd160_done(&md, buf);
  379. if (memcmp(buf, tests[x].md, 20) != 0) {
  380. #if 0
  381. printf("Failed test %d\n", x);
  382. #endif
  383. return CRYPT_FAIL_TESTVECTOR;
  384. }
  385. }
  386. return CRYPT_OK;
  387. #endif
  388. }
  389. #endif