crypto.c 46 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, tomstdenis@iahu.ca, http://libtomcrypt.com
  10. */
  11. #include <assert.h>
  12. #include <string.h>
  13. #include <stdio.h>
  14. #include <stdlib.h>
  15. #include <sys/types.h>
  16. #include <sys/stat.h>
  17. #include <sys/poll.h>
  18. #if defined(COROSYNC_BSD)
  19. #include <sys/endian.h>
  20. #endif
  21. #include <fcntl.h>
  22. #include <unistd.h>
  23. #include <stdint.h>
  24. #include "crypto.h"
  25. #define CONST64(n) n ## ULL
  26. typedef uint32_t ulong32;
  27. typedef uint64_t ulong64;
  28. #if __BYTE_ORDER == __LITTLE_ENDIAN
  29. #define ENDIAN_LITTLE
  30. #elif __BYTE_ORDER == __BIG_ENDIAN
  31. #define ENDIAN_BIG
  32. #elif _BYTE_ORDER == _LITTLE_ENDIAN
  33. #define ENDIAN_LITTLE
  34. #elif _BYTE_ORDER == _BIG_ENDIAN
  35. #define ENDIAN_BIG
  36. #else
  37. #error "cannot detect byte order"
  38. #endif
  39. #if defined(COROSYNC_LINUX)
  40. #if __WORDSIZE == 64
  41. #define ENDIAN_64BITWORD
  42. #endif
  43. #if __WORDSIZE == 32
  44. #define ENDIAN_32BITWORD
  45. #endif
  46. #else
  47. /* XXX need to find a better default
  48. */
  49. #define ENDIAN_32BITWORD
  50. #endif
  51. /* ---- HELPER MACROS ---- */
  52. #ifdef ENDIAN_NEUTRAL
  53. #define STORE32L(x, y) \
  54. { (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  55. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  56. #define LOAD32L(x, y) \
  57. { x = ((unsigned long)((y)[3] & 255)<<24) | \
  58. ((unsigned long)((y)[2] & 255)<<16) | \
  59. ((unsigned long)((y)[1] & 255)<<8) | \
  60. ((unsigned long)((y)[0] & 255)); }
  61. #define STORE64L(x, y) \
  62. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  63. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  64. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  65. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  66. #define LOAD64L(x, y) \
  67. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48)| \
  68. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32)| \
  69. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16)| \
  70. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  71. #define STORE32H(x, y) \
  72. { (y)[0] = (unsigned char)(((x)>>24)&255); (y)[1] = (unsigned char)(((x)>>16)&255); \
  73. (y)[2] = (unsigned char)(((x)>>8)&255); (y)[3] = (unsigned char)((x)&255); }
  74. #define LOAD32H(x, y) \
  75. { x = ((unsigned long)((y)[0] & 255)<<24) | \
  76. ((unsigned long)((y)[1] & 255)<<16) | \
  77. ((unsigned long)((y)[2] & 255)<<8) | \
  78. ((unsigned long)((y)[3] & 255)); }
  79. #define STORE64H(x, y) \
  80. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  81. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  82. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  83. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  84. #define LOAD64H(x, y) \
  85. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48) | \
  86. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32) | \
  87. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16) | \
  88. (((ulong64)((y)[6] & 255))<<8)|(((ulong64)((y)[7] & 255))); }
  89. #endif /* ENDIAN_NEUTRAL */
  90. #ifdef ENDIAN_LITTLE
  91. #define STORE32H(x, y) \
  92. { (y)[0] = (unsigned char)(((x)>>24)&255); (y)[1] = (unsigned char)(((x)>>16)&255); \
  93. (y)[2] = (unsigned char)(((x)>>8)&255); (y)[3] = (unsigned char)((x)&255); }
  94. #define LOAD32H(x, y) \
  95. { x = ((unsigned long)((y)[0] & 255)<<24) | \
  96. ((unsigned long)((y)[1] & 255)<<16) | \
  97. ((unsigned long)((y)[2] & 255)<<8) | \
  98. ((unsigned long)((y)[3] & 255)); }
  99. #define STORE64H(x, y) \
  100. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  101. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  102. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  103. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  104. #define LOAD64H(x, y) \
  105. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48) | \
  106. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32) | \
  107. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16) | \
  108. (((ulong64)((y)[6] & 255))<<8)|(((ulong64)((y)[7] & 255))); }
  109. #ifdef ENDIAN_32BITWORD
  110. #define STORE32L(x, y) \
  111. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  112. #define LOAD32L(x, y) \
  113. memcpy(&(x), y, 4);
  114. #define STORE64L(x, y) \
  115. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  116. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  117. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  118. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  119. #define LOAD64L(x, y) \
  120. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48)| \
  121. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32)| \
  122. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16)| \
  123. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  124. #else /* 64-bit words then */
  125. #define STORE32L(x, y) \
  126. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  127. #define LOAD32L(x, y) \
  128. { memcpy(&(x), y, 4); x &= 0xFFFFFFFF; }
  129. #define STORE64L(x, y) \
  130. { ulong64 __t = (x); memcpy(y, &__t, 8); }
  131. #define LOAD64L(x, y) \
  132. { memcpy(&(x), y, 8); }
  133. #endif /* ENDIAN_64BITWORD */
  134. #endif /* ENDIAN_LITTLE */
  135. #ifdef ENDIAN_BIG
  136. #define STORE32L(x, y) \
  137. { (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  138. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  139. #define LOAD32L(x, y) \
  140. { x = ((unsigned long)((y)[3] & 255)<<24) | \
  141. ((unsigned long)((y)[2] & 255)<<16) | \
  142. ((unsigned long)((y)[1] & 255)<<8) | \
  143. ((unsigned long)((y)[0] & 255)); }
  144. #define STORE64L(x, y) \
  145. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  146. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  147. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  148. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  149. #define LOAD64L(x, y) \
  150. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48) | \
  151. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32) | \
  152. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16) | \
  153. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  154. #ifdef ENDIAN_32BITWORD
  155. #define STORE32H(x, y) \
  156. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  157. #define LOAD32H(x, y) \
  158. memcpy(&(x), y, 4);
  159. #define STORE64H(x, y) \
  160. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  161. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  162. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  163. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  164. #define LOAD64H(x, y) \
  165. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48)| \
  166. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32)| \
  167. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16)| \
  168. (((ulong64)((y)[6] & 255))<<8)| (((ulong64)((y)[7] & 255))); }
  169. #else /* 64-bit words then */
  170. #define STORE32H(x, y) \
  171. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  172. #define LOAD32H(x, y) \
  173. { memcpy(&(x), y, 4); x &= 0xFFFFFFFF; }
  174. #define STORE64H(x, y) \
  175. { ulong64 __t = (x); memcpy(y, &__t, 8); }
  176. #define LOAD64H(x, y) \
  177. { memcpy(&(x), y, 8); }
  178. #endif /* ENDIAN_64BITWORD */
  179. #endif /* ENDIAN_BIG */
  180. #define BSWAP(x) ( ((x>>24)&0x000000FFUL) | ((x<<24)&0xFF000000UL) | \
  181. ((x>>8)&0x0000FF00UL) | ((x<<8)&0x00FF0000UL) )
  182. #if defined(__GNUC__) && defined(__i386__) && !defined(INTEL_CC)
  183. static inline unsigned long ROL(unsigned long word, int i)
  184. {
  185. __asm__("roll %%cl,%0"
  186. :"=r" (word)
  187. :"0" (word),"c" (i));
  188. return word;
  189. }
  190. static inline unsigned long ROR(unsigned long word, int i)
  191. {
  192. __asm__("rorl %%cl,%0"
  193. :"=r" (word)
  194. :"0" (word),"c" (i));
  195. return word;
  196. }
  197. #else
  198. /* rotates the hard way */
  199. #define ROL(x, y) ( (((unsigned long)(x)<<(unsigned long)((y)&31)) | (((unsigned long)(x)&0xFFFFFFFFUL)>>(unsigned long)(32-((y)&31)))) & 0xFFFFFFFFUL)
  200. #define ROR(x, y) ( ((((unsigned long)(x)&0xFFFFFFFFUL)>>(unsigned long)((y)&31)) | ((unsigned long)(x)<<(unsigned long)(32-((y)&31)))) & 0xFFFFFFFFUL)
  201. #endif
  202. #define ROL64(x, y) \
  203. ( (((x)<<((ulong64)(y)&63)) | \
  204. (((x)&CONST64(0xFFFFFFFFFFFFFFFF))>>((ulong64)64-((y)&63)))) & CONST64(0xFFFFFFFFFFFFFFFF))
  205. #define ROR64(x, y) \
  206. ( ((((x)&CONST64(0xFFFFFFFFFFFFFFFF))>>((ulong64)(y)&CONST64(63))) | \
  207. ((x)<<((ulong64)(64-((y)&CONST64(63)))))) & CONST64(0xFFFFFFFFFFFFFFFF))
  208. #undef MAX
  209. #undef MIN
  210. #define MAX(x, y) ( ((x)>(y))?(x):(y) )
  211. #define MIN(x, y) ( ((x)<(y))?(x):(y) )
  212. /* extract a byte portably */
  213. #define byte(x, n) (((x) >> (8 * (n))) & 255)
  214. #define CONST64(n) n ## ULL
  215. /* a simple macro for making hash "process" functions */
  216. #define HASH_PROCESS(func_name, compress_name, state_var, block_size) \
  217. int func_name (hash_state * md, const unsigned char *buf, unsigned long len) \
  218. { \
  219. unsigned long n; \
  220. if (md-> state_var .curlen > sizeof(md-> state_var .buf)) { \
  221. return CRYPT_INVALID_ARG; \
  222. } \
  223. while (len > 0) { \
  224. if (md-> state_var .curlen == 0 && len >= block_size) { \
  225. compress_name (md, (unsigned char *)buf); \
  226. md-> state_var .length += block_size * 8; \
  227. buf += block_size; \
  228. len -= block_size; \
  229. } else { \
  230. n = MIN(len, (block_size - md-> state_var .curlen)); \
  231. memcpy(md-> state_var .buf + md-> state_var.curlen, buf, (size_t)n); \
  232. md-> state_var .curlen += n; \
  233. buf += n; \
  234. len -= n; \
  235. if (md-> state_var .curlen == block_size) { \
  236. compress_name (md, md-> state_var .buf); \
  237. md-> state_var .length += 8*block_size; \
  238. md-> state_var .curlen = 0; \
  239. } \
  240. } \
  241. } \
  242. return CRYPT_OK; \
  243. }
  244. #define MAXBLOCKSIZE 128
  245. /*
  246. * The mycrypt_macros.h file
  247. */
  248. /* ---- HELPER MACROS ---- */
  249. #ifdef ENDIAN_NEUTRAL
  250. #define STORE32L(x, y) \
  251. { (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  252. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  253. #define LOAD32L(x, y) \
  254. { x = ((unsigned long)((y)[3] & 255)<<24) | \
  255. ((unsigned long)((y)[2] & 255)<<16) | \
  256. ((unsigned long)((y)[1] & 255)<<8) | \
  257. ((unsigned long)((y)[0] & 255)); }
  258. #define STORE64L(x, y) \
  259. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  260. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  261. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  262. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  263. #define LOAD64L(x, y) \
  264. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48)| \
  265. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32)| \
  266. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16)| \
  267. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  268. #define STORE32H(x, y) \
  269. { (y)[0] = (unsigned char)(((x)>>24)&255); (y)[1] = (unsigned char)(((x)>>16)&255); \
  270. (y)[2] = (unsigned char)(((x)>>8)&255); (y)[3] = (unsigned char)((x)&255); }
  271. #define LOAD32H(x, y) \
  272. { x = ((unsigned long)((y)[0] & 255)<<24) | \
  273. ((unsigned long)((y)[1] & 255)<<16) | \
  274. ((unsigned long)((y)[2] & 255)<<8) | \
  275. ((unsigned long)((y)[3] & 255)); }
  276. #define STORE64H(x, y) \
  277. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  278. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  279. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  280. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  281. #define LOAD64H(x, y) \
  282. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48) | \
  283. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32) | \
  284. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16) | \
  285. (((ulong64)((y)[6] & 255))<<8)|(((ulong64)((y)[7] & 255))); }
  286. #endif /* ENDIAN_NEUTRAL */
  287. #ifdef ENDIAN_LITTLE
  288. #define STORE32H(x, y) \
  289. { (y)[0] = (unsigned char)(((x)>>24)&255); (y)[1] = (unsigned char)(((x)>>16)&255); \
  290. (y)[2] = (unsigned char)(((x)>>8)&255); (y)[3] = (unsigned char)((x)&255); }
  291. #define LOAD32H(x, y) \
  292. { x = ((unsigned long)((y)[0] & 255)<<24) | \
  293. ((unsigned long)((y)[1] & 255)<<16) | \
  294. ((unsigned long)((y)[2] & 255)<<8) | \
  295. ((unsigned long)((y)[3] & 255)); }
  296. #define STORE64H(x, y) \
  297. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  298. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  299. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  300. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  301. #define LOAD64H(x, y) \
  302. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48) | \
  303. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32) | \
  304. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16) | \
  305. (((ulong64)((y)[6] & 255))<<8)|(((ulong64)((y)[7] & 255))); }
  306. #ifdef ENDIAN_32BITWORD
  307. #define STORE32L(x, y) \
  308. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  309. #define LOAD32L(x, y) \
  310. memcpy(&(x), y, 4);
  311. #define STORE64L(x, y) \
  312. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  313. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  314. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  315. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  316. #define LOAD64L(x, y) \
  317. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48)| \
  318. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32)| \
  319. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16)| \
  320. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  321. #else /* 64-bit words then */
  322. #define STORE32L(x, y) \
  323. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  324. #define LOAD32L(x, y) \
  325. { memcpy(&(x), y, 4); x &= 0xFFFFFFFF; }
  326. #define STORE64L(x, y) \
  327. { ulong64 __t = (x); memcpy(y, &__t, 8); }
  328. #define LOAD64L(x, y) \
  329. { memcpy(&(x), y, 8); }
  330. #endif /* ENDIAN_64BITWORD */
  331. #endif /* ENDIAN_LITTLE */
  332. #ifdef ENDIAN_BIG
  333. #define STORE32L(x, y) \
  334. { (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  335. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  336. #define LOAD32L(x, y) \
  337. { x = ((unsigned long)((y)[3] & 255)<<24) | \
  338. ((unsigned long)((y)[2] & 255)<<16) | \
  339. ((unsigned long)((y)[1] & 255)<<8) | \
  340. ((unsigned long)((y)[0] & 255)); }
  341. #define STORE64L(x, y) \
  342. { (y)[7] = (unsigned char)(((x)>>56)&255); (y)[6] = (unsigned char)(((x)>>48)&255); \
  343. (y)[5] = (unsigned char)(((x)>>40)&255); (y)[4] = (unsigned char)(((x)>>32)&255); \
  344. (y)[3] = (unsigned char)(((x)>>24)&255); (y)[2] = (unsigned char)(((x)>>16)&255); \
  345. (y)[1] = (unsigned char)(((x)>>8)&255); (y)[0] = (unsigned char)((x)&255); }
  346. #define LOAD64L(x, y) \
  347. { x = (((ulong64)((y)[7] & 255))<<56)|(((ulong64)((y)[6] & 255))<<48) | \
  348. (((ulong64)((y)[5] & 255))<<40)|(((ulong64)((y)[4] & 255))<<32) | \
  349. (((ulong64)((y)[3] & 255))<<24)|(((ulong64)((y)[2] & 255))<<16) | \
  350. (((ulong64)((y)[1] & 255))<<8)|(((ulong64)((y)[0] & 255))); }
  351. #ifdef ENDIAN_32BITWORD
  352. #define STORE32H(x, y) \
  353. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  354. #define LOAD32H(x, y) \
  355. memcpy(&(x), y, 4);
  356. #define STORE64H(x, y) \
  357. { (y)[0] = (unsigned char)(((x)>>56)&255); (y)[1] = (unsigned char)(((x)>>48)&255); \
  358. (y)[2] = (unsigned char)(((x)>>40)&255); (y)[3] = (unsigned char)(((x)>>32)&255); \
  359. (y)[4] = (unsigned char)(((x)>>24)&255); (y)[5] = (unsigned char)(((x)>>16)&255); \
  360. (y)[6] = (unsigned char)(((x)>>8)&255); (y)[7] = (unsigned char)((x)&255); }
  361. #define LOAD64H(x, y) \
  362. { x = (((ulong64)((y)[0] & 255))<<56)|(((ulong64)((y)[1] & 255))<<48)| \
  363. (((ulong64)((y)[2] & 255))<<40)|(((ulong64)((y)[3] & 255))<<32)| \
  364. (((ulong64)((y)[4] & 255))<<24)|(((ulong64)((y)[5] & 255))<<16)| \
  365. (((ulong64)((y)[6] & 255))<<8)| (((ulong64)((y)[7] & 255))); }
  366. #else /* 64-bit words then */
  367. #define STORE32H(x, y) \
  368. { unsigned long __t = (x); memcpy(y, &__t, 4); }
  369. #define LOAD32H(x, y) \
  370. { memcpy(&(x), y, 4); x &= 0xFFFFFFFF; }
  371. #define STORE64H(x, y) \
  372. { ulong64 __t = (x); memcpy(y, &__t, 8); }
  373. #define LOAD64H(x, y) \
  374. { memcpy(&(x), y, 8); }
  375. #endif /* ENDIAN_64BITWORD */
  376. #endif /* ENDIAN_BIG */
  377. #define BSWAP(x) ( ((x>>24)&0x000000FFUL) | ((x<<24)&0xFF000000UL) | \
  378. ((x>>8)&0x0000FF00UL) | ((x<<8)&0x00FF0000UL) )
  379. #define ROL64(x, y) \
  380. ( (((x)<<((ulong64)(y)&63)) | \
  381. (((x)&CONST64(0xFFFFFFFFFFFFFFFF))>>((ulong64)64-((y)&63)))) & CONST64(0xFFFFFFFFFFFFFFFF))
  382. #define ROR64(x, y) \
  383. ( ((((x)&CONST64(0xFFFFFFFFFFFFFFFF))>>((ulong64)(y)&CONST64(63))) | \
  384. ((x)<<((ulong64)(64-((y)&CONST64(63)))))) & CONST64(0xFFFFFFFFFFFFFFFF))
  385. #undef MAX
  386. #undef MIN
  387. #define MAX(x, y) ( ((x)>(y))?(x):(y) )
  388. #define MIN(x, y) ( ((x)<(y))?(x):(y) )
  389. /* extract a byte portably */
  390. #define byte(x, n) (((x) >> (8 * (n))) & 255)
  391. /* $Id: s128multab.h 213 2003-12-16 04:27:12Z ggr $ */
  392. /* @(#)TuringMultab.h 1.3 (QUALCOMM) 02/09/03 */
  393. /* Multiplication table for Turing using 0xD02B4367 */
  394. static const ulong32 Multab[256] = {
  395. 0x00000000, 0xD02B4367, 0xED5686CE, 0x3D7DC5A9,
  396. 0x97AC41D1, 0x478702B6, 0x7AFAC71F, 0xAAD18478,
  397. 0x631582EF, 0xB33EC188, 0x8E430421, 0x5E684746,
  398. 0xF4B9C33E, 0x24928059, 0x19EF45F0, 0xC9C40697,
  399. 0xC62A4993, 0x16010AF4, 0x2B7CCF5D, 0xFB578C3A,
  400. 0x51860842, 0x81AD4B25, 0xBCD08E8C, 0x6CFBCDEB,
  401. 0xA53FCB7C, 0x7514881B, 0x48694DB2, 0x98420ED5,
  402. 0x32938AAD, 0xE2B8C9CA, 0xDFC50C63, 0x0FEE4F04,
  403. 0xC154926B, 0x117FD10C, 0x2C0214A5, 0xFC2957C2,
  404. 0x56F8D3BA, 0x86D390DD, 0xBBAE5574, 0x6B851613,
  405. 0xA2411084, 0x726A53E3, 0x4F17964A, 0x9F3CD52D,
  406. 0x35ED5155, 0xE5C61232, 0xD8BBD79B, 0x089094FC,
  407. 0x077EDBF8, 0xD755989F, 0xEA285D36, 0x3A031E51,
  408. 0x90D29A29, 0x40F9D94E, 0x7D841CE7, 0xADAF5F80,
  409. 0x646B5917, 0xB4401A70, 0x893DDFD9, 0x59169CBE,
  410. 0xF3C718C6, 0x23EC5BA1, 0x1E919E08, 0xCEBADD6F,
  411. 0xCFA869D6, 0x1F832AB1, 0x22FEEF18, 0xF2D5AC7F,
  412. 0x58042807, 0x882F6B60, 0xB552AEC9, 0x6579EDAE,
  413. 0xACBDEB39, 0x7C96A85E, 0x41EB6DF7, 0x91C02E90,
  414. 0x3B11AAE8, 0xEB3AE98F, 0xD6472C26, 0x066C6F41,
  415. 0x09822045, 0xD9A96322, 0xE4D4A68B, 0x34FFE5EC,
  416. 0x9E2E6194, 0x4E0522F3, 0x7378E75A, 0xA353A43D,
  417. 0x6A97A2AA, 0xBABCE1CD, 0x87C12464, 0x57EA6703,
  418. 0xFD3BE37B, 0x2D10A01C, 0x106D65B5, 0xC04626D2,
  419. 0x0EFCFBBD, 0xDED7B8DA, 0xE3AA7D73, 0x33813E14,
  420. 0x9950BA6C, 0x497BF90B, 0x74063CA2, 0xA42D7FC5,
  421. 0x6DE97952, 0xBDC23A35, 0x80BFFF9C, 0x5094BCFB,
  422. 0xFA453883, 0x2A6E7BE4, 0x1713BE4D, 0xC738FD2A,
  423. 0xC8D6B22E, 0x18FDF149, 0x258034E0, 0xF5AB7787,
  424. 0x5F7AF3FF, 0x8F51B098, 0xB22C7531, 0x62073656,
  425. 0xABC330C1, 0x7BE873A6, 0x4695B60F, 0x96BEF568,
  426. 0x3C6F7110, 0xEC443277, 0xD139F7DE, 0x0112B4B9,
  427. 0xD31DD2E1, 0x03369186, 0x3E4B542F, 0xEE601748,
  428. 0x44B19330, 0x949AD057, 0xA9E715FE, 0x79CC5699,
  429. 0xB008500E, 0x60231369, 0x5D5ED6C0, 0x8D7595A7,
  430. 0x27A411DF, 0xF78F52B8, 0xCAF29711, 0x1AD9D476,
  431. 0x15379B72, 0xC51CD815, 0xF8611DBC, 0x284A5EDB,
  432. 0x829BDAA3, 0x52B099C4, 0x6FCD5C6D, 0xBFE61F0A,
  433. 0x7622199D, 0xA6095AFA, 0x9B749F53, 0x4B5FDC34,
  434. 0xE18E584C, 0x31A51B2B, 0x0CD8DE82, 0xDCF39DE5,
  435. 0x1249408A, 0xC26203ED, 0xFF1FC644, 0x2F348523,
  436. 0x85E5015B, 0x55CE423C, 0x68B38795, 0xB898C4F2,
  437. 0x715CC265, 0xA1778102, 0x9C0A44AB, 0x4C2107CC,
  438. 0xE6F083B4, 0x36DBC0D3, 0x0BA6057A, 0xDB8D461D,
  439. 0xD4630919, 0x04484A7E, 0x39358FD7, 0xE91ECCB0,
  440. 0x43CF48C8, 0x93E40BAF, 0xAE99CE06, 0x7EB28D61,
  441. 0xB7768BF6, 0x675DC891, 0x5A200D38, 0x8A0B4E5F,
  442. 0x20DACA27, 0xF0F18940, 0xCD8C4CE9, 0x1DA70F8E,
  443. 0x1CB5BB37, 0xCC9EF850, 0xF1E33DF9, 0x21C87E9E,
  444. 0x8B19FAE6, 0x5B32B981, 0x664F7C28, 0xB6643F4F,
  445. 0x7FA039D8, 0xAF8B7ABF, 0x92F6BF16, 0x42DDFC71,
  446. 0xE80C7809, 0x38273B6E, 0x055AFEC7, 0xD571BDA0,
  447. 0xDA9FF2A4, 0x0AB4B1C3, 0x37C9746A, 0xE7E2370D,
  448. 0x4D33B375, 0x9D18F012, 0xA06535BB, 0x704E76DC,
  449. 0xB98A704B, 0x69A1332C, 0x54DCF685, 0x84F7B5E2,
  450. 0x2E26319A, 0xFE0D72FD, 0xC370B754, 0x135BF433,
  451. 0xDDE1295C, 0x0DCA6A3B, 0x30B7AF92, 0xE09CECF5,
  452. 0x4A4D688D, 0x9A662BEA, 0xA71BEE43, 0x7730AD24,
  453. 0xBEF4ABB3, 0x6EDFE8D4, 0x53A22D7D, 0x83896E1A,
  454. 0x2958EA62, 0xF973A905, 0xC40E6CAC, 0x14252FCB,
  455. 0x1BCB60CF, 0xCBE023A8, 0xF69DE601, 0x26B6A566,
  456. 0x8C67211E, 0x5C4C6279, 0x6131A7D0, 0xB11AE4B7,
  457. 0x78DEE220, 0xA8F5A147, 0x958864EE, 0x45A32789,
  458. 0xEF72A3F1, 0x3F59E096, 0x0224253F, 0xD20F6658,
  459. };
  460. /* $Id: s128sbox.h 213 2003-12-16 04:27:12Z ggr $ */
  461. /* Sbox for SOBER-128 */
  462. /*
  463. * This is really the combination of two SBoxes; the least significant
  464. * 24 bits comes from:
  465. * 8->32 Sbox generated by Millan et. al. at Queensland University of
  466. * Technology. See: E. Dawson, W. Millan, L. Burnett, G. Carter,
  467. * "On the Design of 8*32 S-boxes". Unpublished report, by the
  468. * Information Systems Research Centre,
  469. * Queensland University of Technology, 1999.
  470. *
  471. * The most significant 8 bits are the Skipjack "F table", which can be
  472. * found at http://csrc.nist.gov/CryptoToolkit/skipjack/skipjack.pdf .
  473. * In this optimised table, though, the intent is to XOR the word from
  474. * the table selected by the high byte with the input word. Thus, the
  475. * high byte is actually the Skipjack F-table entry XORED with its
  476. * table index.
  477. */
  478. static const ulong32 Sbox[256] = {
  479. 0xa3aa1887, 0xd65e435c, 0x0b65c042, 0x800e6ef4,
  480. 0xfc57ee20, 0x4d84fed3, 0xf066c502, 0xf354e8ae,
  481. 0xbb2ee9d9, 0x281f38d4, 0x1f829b5d, 0x735cdf3c,
  482. 0x95864249, 0xbc2e3963, 0xa1f4429f, 0xf6432c35,
  483. 0xf7f40325, 0x3cc0dd70, 0x5f973ded, 0x9902dc5e,
  484. 0xda175b42, 0x590012bf, 0xdc94d78c, 0x39aab26b,
  485. 0x4ac11b9a, 0x8c168146, 0xc3ea8ec5, 0x058ac28f,
  486. 0x52ed5c0f, 0x25b4101c, 0x5a2db082, 0x370929e1,
  487. 0x2a1843de, 0xfe8299fc, 0x202fbc4b, 0x833915dd,
  488. 0x33a803fa, 0xd446b2de, 0x46233342, 0x4fcee7c3,
  489. 0x3ad607ef, 0x9e97ebab, 0x507f859b, 0xe81f2e2f,
  490. 0xc55b71da, 0xd7e2269a, 0x1339c3d1, 0x7ca56b36,
  491. 0xa6c9def2, 0xb5c9fc5f, 0x5927b3a3, 0x89a56ddf,
  492. 0xc625b510, 0x560f85a7, 0xace82e71, 0x2ecb8816,
  493. 0x44951e2a, 0x97f5f6af, 0xdfcbc2b3, 0xce4ff55d,
  494. 0xcb6b6214, 0x2b0b83e3, 0x549ea6f5, 0x9de041af,
  495. 0x792f1f17, 0xf73b99ee, 0x39a65ec0, 0x4c7016c6,
  496. 0x857709a4, 0xd6326e01, 0xc7b280d9, 0x5cfb1418,
  497. 0xa6aff227, 0xfd548203, 0x506b9d96, 0xa117a8c0,
  498. 0x9cd5bf6e, 0xdcee7888, 0x61fcfe64, 0xf7a193cd,
  499. 0x050d0184, 0xe8ae4930, 0x88014f36, 0xd6a87088,
  500. 0x6bad6c2a, 0x1422c678, 0xe9204de7, 0xb7c2e759,
  501. 0x0200248e, 0x013b446b, 0xda0d9fc2, 0x0414a895,
  502. 0x3a6cc3a1, 0x56fef170, 0x86c19155, 0xcf7b8a66,
  503. 0x551b5e69, 0xb4a8623e, 0xa2bdfa35, 0xc4f068cc,
  504. 0x573a6acd, 0x6355e936, 0x03602db9, 0x0edf13c1,
  505. 0x2d0bb16d, 0x6980b83c, 0xfeb23763, 0x3dd8a911,
  506. 0x01b6bc13, 0xf55579d7, 0xf55c2fa8, 0x19f4196e,
  507. 0xe7db5476, 0x8d64a866, 0xc06e16ad, 0xb17fc515,
  508. 0xc46feb3c, 0x8bc8a306, 0xad6799d9, 0x571a9133,
  509. 0x992466dd, 0x92eb5dcd, 0xac118f50, 0x9fafb226,
  510. 0xa1b9cef3, 0x3ab36189, 0x347a19b1, 0x62c73084,
  511. 0xc27ded5c, 0x6c8bc58f, 0x1cdde421, 0xed1e47fb,
  512. 0xcdcc715e, 0xb9c0ff99, 0x4b122f0f, 0xc4d25184,
  513. 0xaf7a5e6c, 0x5bbf18bc, 0x8dd7c6e0, 0x5fb7e420,
  514. 0x521f523f, 0x4ad9b8a2, 0xe9da1a6b, 0x97888c02,
  515. 0x19d1e354, 0x5aba7d79, 0xa2cc7753, 0x8c2d9655,
  516. 0x19829da1, 0x531590a7, 0x19c1c149, 0x3d537f1c,
  517. 0x50779b69, 0xed71f2b7, 0x463c58fa, 0x52dc4418,
  518. 0xc18c8c76, 0xc120d9f0, 0xafa80d4d, 0x3b74c473,
  519. 0xd09410e9, 0x290e4211, 0xc3c8082b, 0x8f6b334a,
  520. 0x3bf68ed2, 0xa843cc1b, 0x8d3c0ff3, 0x20e564a0,
  521. 0xf8f55a4f, 0x2b40f8e7, 0xfea7f15f, 0xcf00fe21,
  522. 0x8a6d37d6, 0xd0d506f1, 0xade00973, 0xefbbde36,
  523. 0x84670fa8, 0xfa31ab9e, 0xaedab618, 0xc01f52f5,
  524. 0x6558eb4f, 0x71b9e343, 0x4b8d77dd, 0x8cb93da6,
  525. 0x740fd52d, 0x425412f8, 0xc5a63360, 0x10e53ad0,
  526. 0x5a700f1c, 0x8324ed0b, 0xe53dc1ec, 0x1a366795,
  527. 0x6d549d15, 0xc5ce46d7, 0xe17abe76, 0x5f48e0a0,
  528. 0xd0f07c02, 0x941249b7, 0xe49ed6ba, 0x37a47f78,
  529. 0xe1cfffbd, 0xb007ca84, 0xbb65f4da, 0xb59f35da,
  530. 0x33d2aa44, 0x417452ac, 0xc0d674a7, 0x2d61a46a,
  531. 0xdc63152a, 0x3e12b7aa, 0x6e615927, 0xa14fb118,
  532. 0xa151758d, 0xba81687b, 0xe152f0b3, 0x764254ed,
  533. 0x34c77271, 0x0a31acab, 0x54f94aec, 0xb9e994cd,
  534. 0x574d9e81, 0x5b623730, 0xce8a21e8, 0x37917f0b,
  535. 0xe8a9b5d6, 0x9697adf8, 0xf3d30431, 0x5dcac921,
  536. 0x76b35d46, 0xaa430a36, 0xc2194022, 0x22bca65e,
  537. 0xdaec70ba, 0xdfaea8cc, 0x777bae8b, 0x242924d5,
  538. 0x1f098a5a, 0x4b396b81, 0x55de2522, 0x435c1cb8,
  539. 0xaeb8fe1d, 0x9db3c697, 0x5b164f83, 0xe0c16376,
  540. 0xa319224c, 0xd0203b35, 0x433ac0fe, 0x1466a19a,
  541. 0x45f0b24f, 0x51fda998, 0xc0d52d71, 0xfa0896a8,
  542. 0xf9e6053f, 0xa4b0d300, 0xd499cbcc, 0xb95e3d40,
  543. };
  544. /* Implementation of SOBER-128 by Tom St Denis.
  545. * Based on s128fast.c reference code supplied by Greg Rose of QUALCOMM.
  546. */
  547. const struct _prng_descriptor sober128_desc =
  548. {
  549. "sober128", 64,
  550. &sober128_start,
  551. &sober128_add_entropy,
  552. &sober128_ready,
  553. &sober128_read,
  554. };
  555. const struct _prng_descriptor *prng_descriptor[] = {
  556. &sober128_desc
  557. };
  558. /* don't change these... */
  559. #define N 17
  560. #define FOLD N /* how many iterations of folding to do */
  561. #define INITKONST 0x6996c53a /* value of KONST to use during key loading */
  562. #define KEYP 15 /* where to insert key words */
  563. #define FOLDP 4 /* where to insert non-linear feedback */
  564. #define B(x,i) ((unsigned char)(((x) >> (8*i)) & 0xFF))
  565. static ulong32 BYTE2WORD(const unsigned char *b)
  566. {
  567. ulong32 t;
  568. LOAD32L(t, b);
  569. return t;
  570. }
  571. #define WORD2BYTE(w, b) STORE32L(b, w)
  572. static void XORWORD(ulong32 w, unsigned char *b)
  573. {
  574. ulong32 t;
  575. LOAD32L(t, b);
  576. t ^= w;
  577. STORE32L(t, b);
  578. }
  579. /* give correct offset for the current position of the register,
  580. * where logically R[0] is at position "zero".
  581. */
  582. #define OFF(zero, i) (((zero)+(i)) % N)
  583. /* step the LFSR */
  584. /* After stepping, "zero" moves right one place */
  585. #define STEP(R,z) \
  586. R[OFF(z,0)] = R[OFF(z,15)] ^ R[OFF(z,4)] ^ (R[OFF(z,0)] << 8) ^ Multab[(R[OFF(z,0)] >> 24) & 0xFF];
  587. static void cycle(ulong32 *R)
  588. {
  589. ulong32 t;
  590. int i;
  591. STEP(R,0);
  592. t = R[0];
  593. for (i = 1; i < N; ++i) {
  594. R[i-1] = R[i];
  595. }
  596. R[N-1] = t;
  597. }
  598. /* Return a non-linear function of some parts of the register.
  599. */
  600. #define NLFUNC(c,z) \
  601. { \
  602. t = c->R[OFF(z,0)] + c->R[OFF(z,16)]; \
  603. t ^= Sbox[(t >> 24) & 0xFF]; \
  604. t = ROR(t, 8); \
  605. t = ((t + c->R[OFF(z,1)]) ^ c->konst) + c->R[OFF(z,6)]; \
  606. t ^= Sbox[(t >> 24) & 0xFF]; \
  607. t = t + c->R[OFF(z,13)]; \
  608. }
  609. static ulong32 nltap(struct sober128_prng *c)
  610. {
  611. ulong32 t;
  612. NLFUNC(c, 0);
  613. return t;
  614. }
  615. /* initialise to known state
  616. */
  617. int sober128_start(prng_state *prng)
  618. {
  619. int i;
  620. struct sober128_prng *c;
  621. c = &(prng->sober128);
  622. /* Register initialised to Fibonacci numbers */
  623. c->R[0] = 1;
  624. c->R[1] = 1;
  625. for (i = 2; i < N; ++i) {
  626. c->R[i] = c->R[i-1] + c->R[i-2];
  627. }
  628. c->konst = INITKONST;
  629. /* next add_entropy will be the key */
  630. c->flag = 1;
  631. c->set = 0;
  632. return CRYPT_OK;
  633. }
  634. /* Save the current register state
  635. */
  636. static void s128_savestate(struct sober128_prng *c)
  637. {
  638. int i;
  639. for (i = 0; i < N; ++i) {
  640. c->initR[i] = c->R[i];
  641. }
  642. }
  643. /* initialise to previously saved register state
  644. */
  645. static void s128_reloadstate(struct sober128_prng *c)
  646. {
  647. int i;
  648. for (i = 0; i < N; ++i) {
  649. c->R[i] = c->initR[i];
  650. }
  651. }
  652. /* Initialise "konst"
  653. */
  654. static void s128_genkonst(struct sober128_prng *c)
  655. {
  656. ulong32 newkonst;
  657. do {
  658. cycle(c->R);
  659. newkonst = nltap(c);
  660. } while ((newkonst & 0xFF000000) == 0);
  661. c->konst = newkonst;
  662. }
  663. /* Load key material into the register
  664. */
  665. #define ADDKEY(k) \
  666. c->R[KEYP] += (k);
  667. #define XORNL(nl) \
  668. c->R[FOLDP] ^= (nl);
  669. /* nonlinear diffusion of register for key */
  670. #define DROUND(z) STEP(c->R,z); NLFUNC(c,(z+1)); c->R[OFF((z+1),FOLDP)] ^= t;
  671. static void s128_diffuse(struct sober128_prng *c)
  672. {
  673. ulong32 t;
  674. /* relies on FOLD == N == 17! */
  675. DROUND(0);
  676. DROUND(1);
  677. DROUND(2);
  678. DROUND(3);
  679. DROUND(4);
  680. DROUND(5);
  681. DROUND(6);
  682. DROUND(7);
  683. DROUND(8);
  684. DROUND(9);
  685. DROUND(10);
  686. DROUND(11);
  687. DROUND(12);
  688. DROUND(13);
  689. DROUND(14);
  690. DROUND(15);
  691. DROUND(16);
  692. }
  693. int sober128_add_entropy(const unsigned char *buf, unsigned long len, prng_state *prng)
  694. {
  695. struct sober128_prng *c;
  696. ulong32 i, k;
  697. c = &(prng->sober128);
  698. if (c->flag == 1) {
  699. /* this is the first call to the add_entropy so this input is the key */
  700. /* len must be multiple of 4 bytes */
  701. assert ((len & 3) == 0);
  702. for (i = 0; i < len; i += 4) {
  703. k = BYTE2WORD(&buf[i]);
  704. ADDKEY(k);
  705. cycle(c->R);
  706. XORNL(nltap(c));
  707. }
  708. /* also fold in the length of the key */
  709. ADDKEY(len);
  710. /* now diffuse */
  711. s128_diffuse(c);
  712. s128_genkonst(c);
  713. s128_savestate(c);
  714. c->nbuf = 0;
  715. c->flag = 0;
  716. c->set = 1;
  717. } else {
  718. /* ok we are adding an IV then... */
  719. s128_reloadstate(c);
  720. /* len must be multiple of 4 bytes */
  721. assert ((len & 3) == 0);
  722. for (i = 0; i < len; i += 4) {
  723. k = BYTE2WORD(&buf[i]);
  724. ADDKEY(k);
  725. cycle(c->R);
  726. XORNL(nltap(c));
  727. }
  728. /* also fold in the length of the key */
  729. ADDKEY(len);
  730. /* now diffuse */
  731. s128_diffuse(c);
  732. c->nbuf = 0;
  733. }
  734. return CRYPT_OK;
  735. }
  736. int sober128_ready(prng_state *prng)
  737. {
  738. return prng->sober128.set == 1 ? CRYPT_OK : CRYPT_ERROR;
  739. }
  740. /* XOR pseudo-random bytes into buffer
  741. */
  742. #define SROUND(z) STEP(c->R,z); NLFUNC(c,(z+1)); XORWORD(t, buf+(z*4));
  743. unsigned long sober128_read(unsigned char *buf, unsigned long nbytes, prng_state *prng)
  744. {
  745. struct sober128_prng *c;
  746. ulong32 t, tlen;
  747. c = &(prng->sober128);
  748. t = 0;
  749. tlen = nbytes;
  750. /* handle any previously buffered bytes */
  751. while (c->nbuf != 0 && nbytes != 0) {
  752. *buf++ ^= c->sbuf & 0xFF;
  753. c->sbuf >>= 8;
  754. c->nbuf -= 8;
  755. --nbytes;
  756. }
  757. #ifndef SMALL_CODE
  758. /* do lots at a time, if there's enough to do */
  759. while (nbytes >= N*4) {
  760. SROUND(0);
  761. SROUND(1);
  762. SROUND(2);
  763. SROUND(3);
  764. SROUND(4);
  765. SROUND(5);
  766. SROUND(6);
  767. SROUND(7);
  768. SROUND(8);
  769. SROUND(9);
  770. SROUND(10);
  771. SROUND(11);
  772. SROUND(12);
  773. SROUND(13);
  774. SROUND(14);
  775. SROUND(15);
  776. SROUND(16);
  777. buf += 4*N;
  778. nbytes -= 4*N;
  779. }
  780. #endif
  781. /* do small or odd size buffers the slow way */
  782. while (4 <= nbytes) {
  783. cycle(c->R);
  784. t = nltap(c);
  785. XORWORD(t, buf);
  786. buf += 4;
  787. nbytes -= 4;
  788. }
  789. /* handle any trailing bytes */
  790. if (nbytes != 0) {
  791. cycle(c->R);
  792. c->sbuf = nltap(c);
  793. c->nbuf = 32;
  794. while (c->nbuf != 0 && nbytes != 0) {
  795. *buf++ ^= c->sbuf & 0xFF;
  796. c->sbuf >>= 8;
  797. c->nbuf -= 8;
  798. --nbytes;
  799. }
  800. }
  801. return tlen;
  802. }
  803. /* SHA1 code by Tom St Denis */
  804. const struct _hash_descriptor sha1_desc =
  805. {
  806. "sha1",
  807. 2,
  808. 20,
  809. 64,
  810. /* DER identifier */
  811. { 0x30, 0x21, 0x30, 0x09, 0x06, 0x05, 0x2B, 0x0E,
  812. 0x03, 0x02, 0x1A, 0x05, 0x00, 0x04, 0x14 },
  813. 15,
  814. &sha1_init,
  815. &sha1_process,
  816. &sha1_done,
  817. };
  818. #define F0(x,y,z) (z ^ (x & (y ^ z)))
  819. #define F1(x,y,z) (x ^ y ^ z)
  820. #define F2(x,y,z) ((x & y) | (z & (x | y)))
  821. #define F3(x,y,z) (x ^ y ^ z)
  822. static void sha1_compress(hash_state *md, const unsigned char *buf)
  823. {
  824. ulong32 a,b,c,d,e,W[80],i;
  825. /* copy the state into 512-bits into W[0..15] */
  826. for (i = 0; i < 16; i++) {
  827. LOAD32H(W[i], buf + (4*i));
  828. }
  829. /* copy state */
  830. a = md->sha1.state[0];
  831. b = md->sha1.state[1];
  832. c = md->sha1.state[2];
  833. d = md->sha1.state[3];
  834. e = md->sha1.state[4];
  835. /* expand it */
  836. for (i = 16; i < 80; i++) {
  837. W[i] = ROL(W[i-3] ^ W[i-8] ^ W[i-14] ^ W[i-16], 1);
  838. }
  839. /* compress */
  840. /* round one */
  841. #define FF0(a,b,c,d,e,i) e = (ROL(a, 5) + F0(b,c,d) + e + W[i] + 0x5a827999UL); b = ROL(b, 30);
  842. #define FF1(a,b,c,d,e,i) e = (ROL(a, 5) + F1(b,c,d) + e + W[i] + 0x6ed9eba1UL); b = ROL(b, 30);
  843. #define FF2(a,b,c,d,e,i) e = (ROL(a, 5) + F2(b,c,d) + e + W[i] + 0x8f1bbcdcUL); b = ROL(b, 30);
  844. #define FF3(a,b,c,d,e,i) e = (ROL(a, 5) + F3(b,c,d) + e + W[i] + 0xca62c1d6UL); b = ROL(b, 30);
  845. for (i = 0; i < 20; ) {
  846. FF0(a,b,c,d,e,i++);
  847. FF0(e,a,b,c,d,i++);
  848. FF0(d,e,a,b,c,i++);
  849. FF0(c,d,e,a,b,i++);
  850. FF0(b,c,d,e,a,i++);
  851. }
  852. /* round two */
  853. for (; i < 40; ) {
  854. FF1(a,b,c,d,e,i++);
  855. FF1(e,a,b,c,d,i++);
  856. FF1(d,e,a,b,c,i++);
  857. FF1(c,d,e,a,b,i++);
  858. FF1(b,c,d,e,a,i++);
  859. }
  860. /* round three */
  861. for (; i < 60; ) {
  862. FF2(a,b,c,d,e,i++);
  863. FF2(e,a,b,c,d,i++);
  864. FF2(d,e,a,b,c,i++);
  865. FF2(c,d,e,a,b,i++);
  866. FF2(b,c,d,e,a,i++);
  867. }
  868. /* round four */
  869. for (; i < 80; ) {
  870. FF3(a,b,c,d,e,i++);
  871. FF3(e,a,b,c,d,i++);
  872. FF3(d,e,a,b,c,i++);
  873. FF3(c,d,e,a,b,i++);
  874. FF3(b,c,d,e,a,i++);
  875. }
  876. #undef FF0
  877. #undef FF1
  878. #undef FF2
  879. #undef FF3
  880. /* store */
  881. md->sha1.state[0] = md->sha1.state[0] + a;
  882. md->sha1.state[1] = md->sha1.state[1] + b;
  883. md->sha1.state[2] = md->sha1.state[2] + c;
  884. md->sha1.state[3] = md->sha1.state[3] + d;
  885. md->sha1.state[4] = md->sha1.state[4] + e;
  886. }
  887. void sha1_init(hash_state * md)
  888. {
  889. md->sha1.state[0] = 0x67452301UL;
  890. md->sha1.state[1] = 0xefcdab89UL;
  891. md->sha1.state[2] = 0x98badcfeUL;
  892. md->sha1.state[3] = 0x10325476UL;
  893. md->sha1.state[4] = 0xc3d2e1f0UL;
  894. md->sha1.curlen = 0;
  895. md->sha1.length = 0;
  896. }
  897. HASH_PROCESS(sha1_process, sha1_compress, sha1, 64)
  898. int sha1_done(hash_state * md, unsigned char *hash)
  899. {
  900. int i;
  901. /*
  902. * Assert there isn't an invalid argument
  903. */
  904. assert (md->sha1.curlen < sizeof (md->sha1.buf));
  905. /* increase the length of the message */
  906. md->sha1.length += md->sha1.curlen * 8;
  907. /* append the '1' bit */
  908. md->sha1.buf[md->sha1.curlen++] = (unsigned char)0x80;
  909. /* if the length is currently above 56 bytes we append zeros
  910. * then compress. Then we can fall back to padding zeros and length
  911. * encoding like normal.
  912. */
  913. if (md->sha1.curlen > 56) {
  914. while (md->sha1.curlen < 64) {
  915. md->sha1.buf[md->sha1.curlen++] = (unsigned char)0;
  916. }
  917. sha1_compress(md, md->sha1.buf);
  918. md->sha1.curlen = 0;
  919. }
  920. /* pad upto 56 bytes of zeroes */
  921. while (md->sha1.curlen < 56) {
  922. md->sha1.buf[md->sha1.curlen++] = (unsigned char)0;
  923. }
  924. /* store length */
  925. STORE64H(md->sha1.length, md->sha1.buf+56);
  926. sha1_compress(md, md->sha1.buf);
  927. /* copy output */
  928. for (i = 0; i < 5; i++) {
  929. STORE32H(md->sha1.state[i], hash+(4*i));
  930. }
  931. return CRYPT_OK;
  932. }
  933. /* Submited by Dobes Vandermeer (dobes@smartt.com) */
  934. /*
  935. (1) append zeros to the end of K to create a B byte string
  936. (e.g., if K is of length 20 bytes and B=64, then K will be
  937. appended with 44 zero bytes 0x00)
  938. (2) XOR (bitwise exclusive-OR) the B byte string computed in step
  939. (1) with ipad (ipad = the byte 0x36 repeated B times)
  940. (3) append the stream of data 'text' to the B byte string resulting
  941. from step (2)
  942. (4) apply H to the stream generated in step (3)
  943. (5) XOR (bitwise exclusive-OR) the B byte string computed in
  944. step (1) with opad (opad = the byte 0x5C repeated B times.)
  945. (6) append the H result from step (4) to the B byte string
  946. resulting from step (5)
  947. (7) apply H to the stream generated in step (6) and output
  948. the result
  949. */
  950. int hmac_init(hmac_state *hmac, int hash, const unsigned char *key, unsigned long keylen)
  951. {
  952. unsigned char buf[128];
  953. unsigned long hashsize;
  954. unsigned long i;
  955. int err;
  956. hmac->hash = hash;
  957. hashsize = hash_descriptor[hash]->hashsize;
  958. /* valid key length? */
  959. assert (keylen > 0);
  960. assert (keylen <= hash_descriptor[hash]->blocksize);
  961. memcpy(hmac->key, key, (size_t)keylen);
  962. if(keylen < hash_descriptor[hash]->blocksize) {
  963. memset((hmac->key) + keylen, 0, (size_t)(hash_descriptor[hash]->blocksize - keylen));
  964. }
  965. // Create the initial vector for step (3)
  966. for(i=0; i < hash_descriptor[hash]->blocksize; i++) {
  967. buf[i] = hmac->key[i] ^ 0x36;
  968. }
  969. // Pre-pend that to the hash data
  970. hash_descriptor[hash]->init(&hmac->md);
  971. err = hash_descriptor[hash]->process(&hmac->md, buf, hash_descriptor[hash]->blocksize);
  972. return err;
  973. }
  974. int hmac_process(hmac_state *hmac, const unsigned char *buf, unsigned long len)
  975. {
  976. return hash_descriptor[hmac->hash]->process(&hmac->md, buf, len);
  977. }
  978. /* Submited by Dobes Vandermeer (dobes@smartt.com) */
  979. /*
  980. (1) append zeros to the end of K to create a B byte string
  981. (e.g., if K is of length 20 bytes and B=64, then K will be
  982. appended with 44 zero bytes 0x00)
  983. (2) XOR (bitwise exclusive-OR) the B byte string computed in step
  984. (1) with ipad (ipad = the byte 0x36 repeated B times)
  985. (3) append the stream of data 'text' to the B byte string resulting
  986. from step (2)
  987. (4) apply H to the stream generated in step (3)
  988. (5) XOR (bitwise exclusive-OR) the B byte string computed in
  989. step (1) with opad (opad = the byte 0x5C repeated B times.)
  990. (6) append the H result from step (4) to the B byte string
  991. resulting from step (5)
  992. (7) apply H to the stream generated in step (6) and output
  993. the result
  994. */
  995. int hmac_done(hmac_state *hmac, unsigned char *hashOut, unsigned long *outlen)
  996. {
  997. unsigned char buf[128];
  998. unsigned char isha[256];
  999. unsigned long hashsize, i;
  1000. int hash, err;
  1001. /* test hash */
  1002. hash = hmac->hash;
  1003. /* get the hash message digest size */
  1004. hashsize = hash_descriptor[hash]->hashsize;
  1005. // Get the hash of the first HMAC vector plus the data
  1006. if ((err = hash_descriptor[hash]->done(&hmac->md, isha)) != CRYPT_OK) {
  1007. goto __ERR;
  1008. }
  1009. // Create the second HMAC vector vector for step (3)
  1010. for(i=0; i < hash_descriptor[hash]->blocksize; i++) {
  1011. buf[i] = hmac->key[i] ^ 0x5C;
  1012. }
  1013. // Now calculate the "outer" hash for step (5), (6), and (7)
  1014. hash_descriptor[hash]->init(&hmac->md);
  1015. if ((err = hash_descriptor[hash]->process(&hmac->md, buf, hash_descriptor[hash]->blocksize)) != CRYPT_OK) {
  1016. goto __ERR;
  1017. }
  1018. if ((err = hash_descriptor[hash]->process(&hmac->md, isha, hashsize)) != CRYPT_OK) {
  1019. goto __ERR;
  1020. }
  1021. if ((err = hash_descriptor[hash]->done(&hmac->md, buf)) != CRYPT_OK) {
  1022. goto __ERR;
  1023. }
  1024. // copy to output
  1025. for (i = 0; i < hashsize && i < *outlen; i++) {
  1026. hashOut[i] = buf[i];
  1027. }
  1028. *outlen = i;
  1029. err = CRYPT_OK;
  1030. __ERR:
  1031. return err;
  1032. }
  1033. const struct _hash_descriptor *hash_descriptor[] =
  1034. {
  1035. &sha1_desc
  1036. };
  1037. /* portable way to get secure random bits to feed a PRNG */
  1038. /* on *NIX read /dev/random */
  1039. static unsigned long rng_nix(unsigned char *buf, unsigned long len,
  1040. void (*callback)(void))
  1041. {
  1042. int fd;
  1043. unsigned long rb;
  1044. fd = open ("/dev/urandom", O_RDONLY);
  1045. rb = (unsigned long)read (fd, buf, len);
  1046. close (fd);
  1047. return (rb);
  1048. }
  1049. /* on ANSI C platforms with 100 < CLOCKS_PER_SEC < 10000 */
  1050. #if defined(XCLOCKS_PER_SEC)
  1051. #define ANSI_RNG
  1052. static unsigned long rng_ansic(unsigned char *buf, unsigned long len,
  1053. void (*callback)(void))
  1054. {
  1055. clock_t t1;
  1056. int l, acc, bits, a, b;
  1057. if (XCLOCKS_PER_SEC < 100 || XCLOCKS_PER_SEC > 10000) {
  1058. return 0;
  1059. }
  1060. l = len;
  1061. bits = 8;
  1062. acc = a = b = 0;
  1063. while (len--) {
  1064. if (callback != NULL) callback();
  1065. while (bits--) {
  1066. do {
  1067. t1 = XCLOCK(); while (t1 == XCLOCK()) a ^= 1;
  1068. t1 = XCLOCK(); while (t1 == XCLOCK()) b ^= 1;
  1069. } while (a == b);
  1070. acc = (acc << 1) | a;
  1071. }
  1072. *buf++ = acc;
  1073. acc = 0;
  1074. bits = 8;
  1075. }
  1076. acc = bits = a = b = 0;
  1077. return l;
  1078. }
  1079. #endif
  1080. unsigned long rng_get_bytes(unsigned char *buf, unsigned long len,
  1081. void (*callback)(void))
  1082. {
  1083. unsigned long x;
  1084. x = rng_nix(buf, len, callback); if (x != 0) { return x; }
  1085. #ifdef ANSI_RNG
  1086. x = rng_ansic(buf, len, callback); if (x != 0) { return x; }
  1087. #endif
  1088. return 0;
  1089. }
  1090. int rng_make_prng(int bits, int wprng, prng_state *prng,
  1091. void (*callback)(void))
  1092. {
  1093. unsigned char buf[256];
  1094. int err;
  1095. if (bits < 64 || bits > 1024) {
  1096. return CRYPT_INVALID_PRNGSIZE;
  1097. }
  1098. if ((err = prng_descriptor[wprng]->start(prng)) != CRYPT_OK) {
  1099. return err;
  1100. }
  1101. bits = ((bits/8)+((bits&7)!=0?1:0)) * 2;
  1102. if (rng_get_bytes(buf, (unsigned long)bits, callback) != (unsigned long)bits) {
  1103. return CRYPT_ERROR_READPRNG;
  1104. }
  1105. if ((err = prng_descriptor[wprng]->add_entropy(buf, (unsigned long)bits, prng)) != CRYPT_OK) {
  1106. return err;
  1107. }
  1108. if ((err = prng_descriptor[wprng]->ready(prng)) != CRYPT_OK) {
  1109. return err;
  1110. }
  1111. return CRYPT_OK;
  1112. }