scrypt121016.cl 23 KB

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  1. /*-
  2. * Copyright 2009 Colin Percival, 2011 ArtForz, 2011 pooler, 2012 mtrlt,
  3. * 2012-2013 Con Kolivas.
  4. * All rights reserved.
  5. *
  6. * Redistribution and use in source and binary forms, with or without
  7. * modification, are permitted provided that the following conditions
  8. * are met:
  9. * 1. Redistributions of source code must retain the above copyright
  10. * notice, this list of conditions and the following disclaimer.
  11. * 2. Redistributions in binary form must reproduce the above copyright
  12. * notice, this list of conditions and the following disclaimer in the
  13. * documentation and/or other materials provided with the distribution.
  14. *
  15. * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
  16. * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  17. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  18. * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
  19. * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  20. * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  21. * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  22. * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
  23. * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
  24. * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
  25. * SUCH DAMAGE.
  26. *
  27. * This file was originally written by Colin Percival as part of the Tarsnap
  28. * online backup system.
  29. */
  30. __constant uint ES[2] = { 0x00FF00FF, 0xFF00FF00 };
  31. #define rotl(x,y) rotate(x,y)
  32. #define Ch(x,y,z) bitselect(z,y,x)
  33. #define Maj(x,y,z) Ch((x^z),y,z)
  34. #define EndianSwap(n) (rotl(n & ES[0], 24U)|rotl(n & ES[1], 8U))
  35. #define Tr2(x) (rotl(x, 30U) ^ rotl(x, 19U) ^ rotl(x, 10U))
  36. #define Tr1(x) (rotl(x, 26U) ^ rotl(x, 21U) ^ rotl(x, 7U))
  37. #define Wr2(x) (rotl(x, 25U) ^ rotl(x, 14U) ^ (x>>3U))
  38. #define Wr1(x) (rotl(x, 15U) ^ rotl(x, 13U) ^ (x>>10U))
  39. #define RND(a, b, c, d, e, f, g, h, k) \
  40. h += Tr1(e); \
  41. h += Ch(e, f, g); \
  42. h += k; \
  43. d += h; \
  44. h += Tr2(a); \
  45. h += Maj(a, b, c);
  46. void SHA256(uint4*restrict state0,uint4*restrict state1, const uint4 block0, const uint4 block1, const uint4 block2, const uint4 block3)
  47. {
  48. uint4 S0 = *state0;
  49. uint4 S1 = *state1;
  50. #define A S0.x
  51. #define B S0.y
  52. #define C S0.z
  53. #define D S0.w
  54. #define E S1.x
  55. #define F S1.y
  56. #define G S1.z
  57. #define H S1.w
  58. uint4 W[4];
  59. W[ 0].x = block0.x;
  60. RND(A,B,C,D,E,F,G,H, W[0].x+0x428a2f98U);
  61. W[ 0].y = block0.y;
  62. RND(H,A,B,C,D,E,F,G, W[0].y+0x71374491U);
  63. W[ 0].z = block0.z;
  64. RND(G,H,A,B,C,D,E,F, W[0].z+0xb5c0fbcfU);
  65. W[ 0].w = block0.w;
  66. RND(F,G,H,A,B,C,D,E, W[0].w+0xe9b5dba5U);
  67. W[ 1].x = block1.x;
  68. RND(E,F,G,H,A,B,C,D, W[1].x+0x3956c25bU);
  69. W[ 1].y = block1.y;
  70. RND(D,E,F,G,H,A,B,C, W[1].y+0x59f111f1U);
  71. W[ 1].z = block1.z;
  72. RND(C,D,E,F,G,H,A,B, W[1].z+0x923f82a4U);
  73. W[ 1].w = block1.w;
  74. RND(B,C,D,E,F,G,H,A, W[1].w+0xab1c5ed5U);
  75. W[ 2].x = block2.x;
  76. RND(A,B,C,D,E,F,G,H, W[2].x+0xd807aa98U);
  77. W[ 2].y = block2.y;
  78. RND(H,A,B,C,D,E,F,G, W[2].y+0x12835b01U);
  79. W[ 2].z = block2.z;
  80. RND(G,H,A,B,C,D,E,F, W[2].z+0x243185beU);
  81. W[ 2].w = block2.w;
  82. RND(F,G,H,A,B,C,D,E, W[2].w+0x550c7dc3U);
  83. W[ 3].x = block3.x;
  84. RND(E,F,G,H,A,B,C,D, W[3].x+0x72be5d74U);
  85. W[ 3].y = block3.y;
  86. RND(D,E,F,G,H,A,B,C, W[3].y+0x80deb1feU);
  87. W[ 3].z = block3.z;
  88. RND(C,D,E,F,G,H,A,B, W[3].z+0x9bdc06a7U);
  89. W[ 3].w = block3.w;
  90. RND(B,C,D,E,F,G,H,A, W[3].w+0xc19bf174U);
  91. W[ 0].x += Wr1(W[ 3].z) + W[ 2].y + Wr2(W[ 0].y);
  92. RND(A,B,C,D,E,F,G,H, W[0].x+0xe49b69c1U);
  93. W[ 0].y += Wr1(W[ 3].w) + W[ 2].z + Wr2(W[ 0].z);
  94. RND(H,A,B,C,D,E,F,G, W[0].y+0xefbe4786U);
  95. W[ 0].z += Wr1(W[ 0].x) + W[ 2].w + Wr2(W[ 0].w);
  96. RND(G,H,A,B,C,D,E,F, W[0].z+0x0fc19dc6U);
  97. W[ 0].w += Wr1(W[ 0].y) + W[ 3].x + Wr2(W[ 1].x);
  98. RND(F,G,H,A,B,C,D,E, W[0].w+0x240ca1ccU);
  99. W[ 1].x += Wr1(W[ 0].z) + W[ 3].y + Wr2(W[ 1].y);
  100. RND(E,F,G,H,A,B,C,D, W[1].x+0x2de92c6fU);
  101. W[ 1].y += Wr1(W[ 0].w) + W[ 3].z + Wr2(W[ 1].z);
  102. RND(D,E,F,G,H,A,B,C, W[1].y+0x4a7484aaU);
  103. W[ 1].z += Wr1(W[ 1].x) + W[ 3].w + Wr2(W[ 1].w);
  104. RND(C,D,E,F,G,H,A,B, W[1].z+0x5cb0a9dcU);
  105. W[ 1].w += Wr1(W[ 1].y) + W[ 0].x + Wr2(W[ 2].x);
  106. RND(B,C,D,E,F,G,H,A, W[1].w+0x76f988daU);
  107. W[ 2].x += Wr1(W[ 1].z) + W[ 0].y + Wr2(W[ 2].y);
  108. RND(A,B,C,D,E,F,G,H, W[2].x+0x983e5152U);
  109. W[ 2].y += Wr1(W[ 1].w) + W[ 0].z + Wr2(W[ 2].z);
  110. RND(H,A,B,C,D,E,F,G, W[2].y+0xa831c66dU);
  111. W[ 2].z += Wr1(W[ 2].x) + W[ 0].w + Wr2(W[ 2].w);
  112. RND(G,H,A,B,C,D,E,F, W[2].z+0xb00327c8U);
  113. W[ 2].w += Wr1(W[ 2].y) + W[ 1].x + Wr2(W[ 3].x);
  114. RND(F,G,H,A,B,C,D,E, W[2].w+0xbf597fc7U);
  115. W[ 3].x += Wr1(W[ 2].z) + W[ 1].y + Wr2(W[ 3].y);
  116. RND(E,F,G,H,A,B,C,D, W[3].x+0xc6e00bf3U);
  117. W[ 3].y += Wr1(W[ 2].w) + W[ 1].z + Wr2(W[ 3].z);
  118. RND(D,E,F,G,H,A,B,C, W[3].y+0xd5a79147U);
  119. W[ 3].z += Wr1(W[ 3].x) + W[ 1].w + Wr2(W[ 3].w);
  120. RND(C,D,E,F,G,H,A,B, W[3].z+0x06ca6351U);
  121. W[ 3].w += Wr1(W[ 3].y) + W[ 2].x + Wr2(W[ 0].x);
  122. RND(B,C,D,E,F,G,H,A, W[3].w+0x14292967U);
  123. W[ 0].x += Wr1(W[ 3].z) + W[ 2].y + Wr2(W[ 0].y);
  124. RND(A,B,C,D,E,F,G,H, W[0].x+0x27b70a85U);
  125. W[ 0].y += Wr1(W[ 3].w) + W[ 2].z + Wr2(W[ 0].z);
  126. RND(H,A,B,C,D,E,F,G, W[0].y+0x2e1b2138U);
  127. W[ 0].z += Wr1(W[ 0].x) + W[ 2].w + Wr2(W[ 0].w);
  128. RND(G,H,A,B,C,D,E,F, W[0].z+0x4d2c6dfcU);
  129. W[ 0].w += Wr1(W[ 0].y) + W[ 3].x + Wr2(W[ 1].x);
  130. RND(F,G,H,A,B,C,D,E, W[0].w+0x53380d13U);
  131. W[ 1].x += Wr1(W[ 0].z) + W[ 3].y + Wr2(W[ 1].y);
  132. RND(E,F,G,H,A,B,C,D, W[1].x+0x650a7354U);
  133. W[ 1].y += Wr1(W[ 0].w) + W[ 3].z + Wr2(W[ 1].z);
  134. RND(D,E,F,G,H,A,B,C, W[1].y+0x766a0abbU);
  135. W[ 1].z += Wr1(W[ 1].x) + W[ 3].w + Wr2(W[ 1].w);
  136. RND(C,D,E,F,G,H,A,B, W[1].z+0x81c2c92eU);
  137. W[ 1].w += Wr1(W[ 1].y) + W[ 0].x + Wr2(W[ 2].x);
  138. RND(B,C,D,E,F,G,H,A, W[1].w+0x92722c85U);
  139. W[ 2].x += Wr1(W[ 1].z) + W[ 0].y + Wr2(W[ 2].y);
  140. RND(A,B,C,D,E,F,G,H, W[2].x+0xa2bfe8a1U);
  141. W[ 2].y += Wr1(W[ 1].w) + W[ 0].z + Wr2(W[ 2].z);
  142. RND(H,A,B,C,D,E,F,G, W[2].y+0xa81a664bU);
  143. W[ 2].z += Wr1(W[ 2].x) + W[ 0].w + Wr2(W[ 2].w);
  144. RND(G,H,A,B,C,D,E,F, W[2].z+0xc24b8b70U);
  145. W[ 2].w += Wr1(W[ 2].y) + W[ 1].x + Wr2(W[ 3].x);
  146. RND(F,G,H,A,B,C,D,E, W[2].w+0xc76c51a3U);
  147. W[ 3].x += Wr1(W[ 2].z) + W[ 1].y + Wr2(W[ 3].y);
  148. RND(E,F,G,H,A,B,C,D, W[3].x+0xd192e819U);
  149. W[ 3].y += Wr1(W[ 2].w) + W[ 1].z + Wr2(W[ 3].z);
  150. RND(D,E,F,G,H,A,B,C, W[3].y+0xd6990624U);
  151. W[ 3].z += Wr1(W[ 3].x) + W[ 1].w + Wr2(W[ 3].w);
  152. RND(C,D,E,F,G,H,A,B, W[3].z+0xf40e3585U);
  153. W[ 3].w += Wr1(W[ 3].y) + W[ 2].x + Wr2(W[ 0].x);
  154. RND(B,C,D,E,F,G,H,A, W[3].w+0x106aa070U);
  155. W[ 0].x += Wr1(W[ 3].z) + W[ 2].y + Wr2(W[ 0].y);
  156. RND(A,B,C,D,E,F,G,H, W[0].x+0x19a4c116U);
  157. W[ 0].y += Wr1(W[ 3].w) + W[ 2].z + Wr2(W[ 0].z);
  158. RND(H,A,B,C,D,E,F,G, W[0].y+0x1e376c08U);
  159. W[ 0].z += Wr1(W[ 0].x) + W[ 2].w + Wr2(W[ 0].w);
  160. RND(G,H,A,B,C,D,E,F, W[0].z+0x2748774cU);
  161. W[ 0].w += Wr1(W[ 0].y) + W[ 3].x + Wr2(W[ 1].x);
  162. RND(F,G,H,A,B,C,D,E, W[0].w+0x34b0bcb5U);
  163. W[ 1].x += Wr1(W[ 0].z) + W[ 3].y + Wr2(W[ 1].y);
  164. RND(E,F,G,H,A,B,C,D, W[1].x+0x391c0cb3U);
  165. W[ 1].y += Wr1(W[ 0].w) + W[ 3].z + Wr2(W[ 1].z);
  166. RND(D,E,F,G,H,A,B,C, W[1].y+0x4ed8aa4aU);
  167. W[ 1].z += Wr1(W[ 1].x) + W[ 3].w + Wr2(W[ 1].w);
  168. RND(C,D,E,F,G,H,A,B, W[1].z+0x5b9cca4fU);
  169. W[ 1].w += Wr1(W[ 1].y) + W[ 0].x + Wr2(W[ 2].x);
  170. RND(B,C,D,E,F,G,H,A, W[1].w+0x682e6ff3U);
  171. W[ 2].x += Wr1(W[ 1].z) + W[ 0].y + Wr2(W[ 2].y);
  172. RND(A,B,C,D,E,F,G,H, W[2].x+0x748f82eeU);
  173. W[ 2].y += Wr1(W[ 1].w) + W[ 0].z + Wr2(W[ 2].z);
  174. RND(H,A,B,C,D,E,F,G, W[2].y+0x78a5636fU);
  175. W[ 2].z += Wr1(W[ 2].x) + W[ 0].w + Wr2(W[ 2].w);
  176. RND(G,H,A,B,C,D,E,F, W[2].z+0x84c87814U);
  177. W[ 2].w += Wr1(W[ 2].y) + W[ 1].x + Wr2(W[ 3].x);
  178. RND(F,G,H,A,B,C,D,E, W[2].w+0x8cc70208U);
  179. W[ 3].x += Wr1(W[ 2].z) + W[ 1].y + Wr2(W[ 3].y);
  180. RND(E,F,G,H,A,B,C,D, W[3].x+0x90befffaU);
  181. W[ 3].y += Wr1(W[ 2].w) + W[ 1].z + Wr2(W[ 3].z);
  182. RND(D,E,F,G,H,A,B,C, W[3].y+0xa4506cebU);
  183. W[ 3].z += Wr1(W[ 3].x) + W[ 1].w + Wr2(W[ 3].w);
  184. RND(C,D,E,F,G,H,A,B, W[3].z+0xbef9a3f7U);
  185. W[ 3].w += Wr1(W[ 3].y) + W[ 2].x + Wr2(W[ 0].x);
  186. RND(B,C,D,E,F,G,H,A, W[3].w+0xc67178f2U);
  187. #undef A
  188. #undef B
  189. #undef C
  190. #undef D
  191. #undef E
  192. #undef F
  193. #undef G
  194. #undef H
  195. *state0 += S0;
  196. *state1 += S1;
  197. }
  198. void SHA256_fresh(uint4*restrict state0,uint4*restrict state1, const uint4 block0, const uint4 block1, const uint4 block2, const uint4 block3)
  199. {
  200. #define A (*state0).x
  201. #define B (*state0).y
  202. #define C (*state0).z
  203. #define D (*state0).w
  204. #define E (*state1).x
  205. #define F (*state1).y
  206. #define G (*state1).z
  207. #define H (*state1).w
  208. uint4 W[4];
  209. W[0].x = block0.x;
  210. D=0x98c7e2a2U+W[0].x;
  211. H=0xfc08884dU+W[0].x;
  212. W[0].y = block0.y;
  213. C=0xcd2a11aeU+Tr1(D)+Ch(D,0x510e527fU,0x9b05688cU)+W[0].y;
  214. G=0xC3910C8EU+C+Tr2(H)+Ch(H,0xfb6feee7U,0x2a01a605U);
  215. W[0].z = block0.z;
  216. B=0x0c2e12e0U+Tr1(C)+Ch(C,D,0x510e527fU)+W[0].z;
  217. F=0x4498517BU+B+Tr2(G)+Maj(G,H,0x6a09e667U);
  218. W[0].w = block0.w;
  219. A=0xa4ce148bU+Tr1(B)+Ch(B,C,D)+W[0].w;
  220. E=0x95F61999U+A+Tr2(F)+Maj(F,G,H);
  221. W[1].x = block1.x;
  222. RND(E,F,G,H,A,B,C,D, W[1].x+0x3956c25bU);
  223. W[1].y = block1.y;
  224. RND(D,E,F,G,H,A,B,C, W[1].y+0x59f111f1U);
  225. W[1].z = block1.z;
  226. RND(C,D,E,F,G,H,A,B, W[1].z+0x923f82a4U);
  227. W[1].w = block1.w;
  228. RND(B,C,D,E,F,G,H,A, W[1].w+0xab1c5ed5U);
  229. W[2].x = block2.x;
  230. RND(A,B,C,D,E,F,G,H, W[2].x+0xd807aa98U);
  231. W[2].y = block2.y;
  232. RND(H,A,B,C,D,E,F,G, W[2].y+0x12835b01U);
  233. W[2].z = block2.z;
  234. RND(G,H,A,B,C,D,E,F, W[2].z+0x243185beU);
  235. W[2].w = block2.w;
  236. RND(F,G,H,A,B,C,D,E, W[2].w+0x550c7dc3U);
  237. W[3].x = block3.x;
  238. RND(E,F,G,H,A,B,C,D, W[3].x+0x72be5d74U);
  239. W[3].y = block3.y;
  240. RND(D,E,F,G,H,A,B,C, W[3].y+0x80deb1feU);
  241. W[3].z = block3.z;
  242. RND(C,D,E,F,G,H,A,B, W[3].z+0x9bdc06a7U);
  243. W[3].w = block3.w;
  244. RND(B,C,D,E,F,G,H,A, W[3].w+0xc19bf174U);
  245. W[0].x += Wr1(W[3].z) + W[2].y + Wr2(W[0].y);
  246. RND(A,B,C,D,E,F,G,H, W[0].x+0xe49b69c1U);
  247. W[0].y += Wr1(W[3].w) + W[2].z + Wr2(W[0].z);
  248. RND(H,A,B,C,D,E,F,G, W[0].y+0xefbe4786U);
  249. W[0].z += Wr1(W[0].x) + W[2].w + Wr2(W[0].w);
  250. RND(G,H,A,B,C,D,E,F, W[0].z+0x0fc19dc6U);
  251. W[0].w += Wr1(W[0].y) + W[3].x + Wr2(W[1].x);
  252. RND(F,G,H,A,B,C,D,E, W[0].w+0x240ca1ccU);
  253. W[1].x += Wr1(W[0].z) + W[3].y + Wr2(W[1].y);
  254. RND(E,F,G,H,A,B,C,D, W[1].x+0x2de92c6fU);
  255. W[1].y += Wr1(W[0].w) + W[3].z + Wr2(W[1].z);
  256. RND(D,E,F,G,H,A,B,C, W[1].y+0x4a7484aaU);
  257. W[1].z += Wr1(W[1].x) + W[3].w + Wr2(W[1].w);
  258. RND(C,D,E,F,G,H,A,B, W[1].z+0x5cb0a9dcU);
  259. W[1].w += Wr1(W[1].y) + W[0].x + Wr2(W[2].x);
  260. RND(B,C,D,E,F,G,H,A, W[1].w+0x76f988daU);
  261. W[2].x += Wr1(W[1].z) + W[0].y + Wr2(W[2].y);
  262. RND(A,B,C,D,E,F,G,H, W[2].x+0x983e5152U);
  263. W[2].y += Wr1(W[1].w) + W[0].z + Wr2(W[2].z);
  264. RND(H,A,B,C,D,E,F,G, W[2].y+0xa831c66dU);
  265. W[2].z += Wr1(W[2].x) + W[0].w + Wr2(W[2].w);
  266. RND(G,H,A,B,C,D,E,F, W[2].z+0xb00327c8U);
  267. W[2].w += Wr1(W[2].y) + W[1].x + Wr2(W[3].x);
  268. RND(F,G,H,A,B,C,D,E, W[2].w+0xbf597fc7U);
  269. W[3].x += Wr1(W[2].z) + W[1].y + Wr2(W[3].y);
  270. RND(E,F,G,H,A,B,C,D, W[3].x+0xc6e00bf3U);
  271. W[3].y += Wr1(W[2].w) + W[1].z + Wr2(W[3].z);
  272. RND(D,E,F,G,H,A,B,C, W[3].y+0xd5a79147U);
  273. W[3].z += Wr1(W[3].x) + W[1].w + Wr2(W[3].w);
  274. RND(C,D,E,F,G,H,A,B, W[3].z+0x06ca6351U);
  275. W[3].w += Wr1(W[3].y) + W[2].x + Wr2(W[0].x);
  276. RND(B,C,D,E,F,G,H,A, W[3].w+0x14292967U);
  277. W[0].x += Wr1(W[3].z) + W[2].y + Wr2(W[0].y);
  278. RND(A,B,C,D,E,F,G,H, W[0].x+0x27b70a85U);
  279. W[0].y += Wr1(W[3].w) + W[2].z + Wr2(W[0].z);
  280. RND(H,A,B,C,D,E,F,G, W[0].y+0x2e1b2138U);
  281. W[0].z += Wr1(W[0].x) + W[2].w + Wr2(W[0].w);
  282. RND(G,H,A,B,C,D,E,F, W[0].z+0x4d2c6dfcU);
  283. W[0].w += Wr1(W[0].y) + W[3].x + Wr2(W[1].x);
  284. RND(F,G,H,A,B,C,D,E, W[0].w+0x53380d13U);
  285. W[1].x += Wr1(W[0].z) + W[3].y + Wr2(W[1].y);
  286. RND(E,F,G,H,A,B,C,D, W[1].x+0x650a7354U);
  287. W[1].y += Wr1(W[0].w) + W[3].z + Wr2(W[1].z);
  288. RND(D,E,F,G,H,A,B,C, W[1].y+0x766a0abbU);
  289. W[1].z += Wr1(W[1].x) + W[3].w + Wr2(W[1].w);
  290. RND(C,D,E,F,G,H,A,B, W[1].z+0x81c2c92eU);
  291. W[1].w += Wr1(W[1].y) + W[0].x + Wr2(W[2].x);
  292. RND(B,C,D,E,F,G,H,A, W[1].w+0x92722c85U);
  293. W[2].x += Wr1(W[1].z) + W[0].y + Wr2(W[2].y);
  294. RND(A,B,C,D,E,F,G,H, W[2].x+0xa2bfe8a1U);
  295. W[2].y += Wr1(W[1].w) + W[0].z + Wr2(W[2].z);
  296. RND(H,A,B,C,D,E,F,G, W[2].y+0xa81a664bU);
  297. W[2].z += Wr1(W[2].x) + W[0].w + Wr2(W[2].w);
  298. RND(G,H,A,B,C,D,E,F, W[2].z+0xc24b8b70U);
  299. W[2].w += Wr1(W[2].y) + W[1].x + Wr2(W[3].x);
  300. RND(F,G,H,A,B,C,D,E, W[2].w+0xc76c51a3U);
  301. W[3].x += Wr1(W[2].z) + W[1].y + Wr2(W[3].y);
  302. RND(E,F,G,H,A,B,C,D, W[3].x+0xd192e819U);
  303. W[3].y += Wr1(W[2].w) + W[1].z + Wr2(W[3].z);
  304. RND(D,E,F,G,H,A,B,C, W[3].y+0xd6990624U);
  305. W[3].z += Wr1(W[3].x) + W[1].w + Wr2(W[3].w);
  306. RND(C,D,E,F,G,H,A,B, W[3].z+0xf40e3585U);
  307. W[3].w += Wr1(W[3].y) + W[2].x + Wr2(W[0].x);
  308. RND(B,C,D,E,F,G,H,A, W[3].w+0x106aa070U);
  309. W[0].x += Wr1(W[3].z) + W[2].y + Wr2(W[0].y);
  310. RND(A,B,C,D,E,F,G,H, W[0].x+0x19a4c116U);
  311. W[0].y += Wr1(W[3].w) + W[2].z + Wr2(W[0].z);
  312. RND(H,A,B,C,D,E,F,G, W[0].y+0x1e376c08U);
  313. W[0].z += Wr1(W[0].x) + W[2].w + Wr2(W[0].w);
  314. RND(G,H,A,B,C,D,E,F, W[0].z+0x2748774cU);
  315. W[0].w += Wr1(W[0].y) + W[3].x + Wr2(W[1].x);
  316. RND(F,G,H,A,B,C,D,E, W[0].w+0x34b0bcb5U);
  317. W[1].x += Wr1(W[0].z) + W[3].y + Wr2(W[1].y);
  318. RND(E,F,G,H,A,B,C,D, W[1].x+0x391c0cb3U);
  319. W[1].y += Wr1(W[0].w) + W[3].z + Wr2(W[1].z);
  320. RND(D,E,F,G,H,A,B,C, W[1].y+0x4ed8aa4aU);
  321. W[1].z += Wr1(W[1].x) + W[3].w + Wr2(W[1].w);
  322. RND(C,D,E,F,G,H,A,B, W[1].z+0x5b9cca4fU);
  323. W[1].w += Wr1(W[1].y) + W[0].x + Wr2(W[2].x);
  324. RND(B,C,D,E,F,G,H,A, W[1].w+0x682e6ff3U);
  325. W[2].x += Wr1(W[1].z) + W[0].y + Wr2(W[2].y);
  326. RND(A,B,C,D,E,F,G,H, W[2].x+0x748f82eeU);
  327. W[2].y += Wr1(W[1].w) + W[0].z + Wr2(W[2].z);
  328. RND(H,A,B,C,D,E,F,G, W[2].y+0x78a5636fU);
  329. W[2].z += Wr1(W[2].x) + W[0].w + Wr2(W[2].w);
  330. RND(G,H,A,B,C,D,E,F, W[2].z+0x84c87814U);
  331. W[2].w += Wr1(W[2].y) + W[1].x + Wr2(W[3].x);
  332. RND(F,G,H,A,B,C,D,E, W[2].w+0x8cc70208U);
  333. W[3].x += Wr1(W[2].z) + W[1].y + Wr2(W[3].y);
  334. RND(E,F,G,H,A,B,C,D, W[3].x+0x90befffaU);
  335. W[3].y += Wr1(W[2].w) + W[1].z + Wr2(W[3].z);
  336. RND(D,E,F,G,H,A,B,C, W[3].y+0xa4506cebU);
  337. W[3].z += Wr1(W[3].x) + W[1].w + Wr2(W[3].w);
  338. RND(C,D,E,F,G,H,A,B, W[3].z+0xbef9a3f7U);
  339. W[3].w += Wr1(W[3].y) + W[2].x + Wr2(W[0].x);
  340. RND(B,C,D,E,F,G,H,A, W[3].w+0xc67178f2U);
  341. #undef A
  342. #undef B
  343. #undef C
  344. #undef D
  345. #undef E
  346. #undef F
  347. #undef G
  348. #undef H
  349. *state0 += (uint4)(0x6A09E667U,0xBB67AE85U,0x3C6EF372U,0xA54FF53AU);
  350. *state1 += (uint4)(0x510E527FU,0x9B05688CU,0x1F83D9ABU,0x5BE0CD19U);
  351. }
  352. __constant uint fixedW[64] =
  353. {
  354. 0x428a2f99,0xf1374491,0xb5c0fbcf,0xe9b5dba5,0x3956c25b,0x59f111f1,0x923f82a4,0xab1c5ed5,
  355. 0xd807aa98,0x12835b01,0x243185be,0x550c7dc3,0x72be5d74,0x80deb1fe,0x9bdc06a7,0xc19bf794,
  356. 0xf59b89c2,0x73924787,0x23c6886e,0xa42ca65c,0x15ed3627,0x4d6edcbf,0xe28217fc,0xef02488f,
  357. 0xb707775c,0x0468c23f,0xe7e72b4c,0x49e1f1a2,0x4b99c816,0x926d1570,0xaa0fc072,0xadb36e2c,
  358. 0xad87a3ea,0xbcb1d3a3,0x7b993186,0x562b9420,0xbff3ca0c,0xda4b0c23,0x6cd8711a,0x8f337caa,
  359. 0xc91b1417,0xc359dce1,0xa83253a7,0x3b13c12d,0x9d3d725d,0xd9031a84,0xb1a03340,0x16f58012,
  360. 0xe64fb6a2,0xe84d923a,0xe93a5730,0x09837686,0x078ff753,0x29833341,0xd5de0b7e,0x6948ccf4,
  361. 0xe0a1adbe,0x7c728e11,0x511c78e4,0x315b45bd,0xfca71413,0xea28f96a,0x79703128,0x4e1ef848,
  362. };
  363. void SHA256_fixed(uint4*restrict state0,uint4*restrict state1)
  364. {
  365. uint4 S0 = *state0;
  366. uint4 S1 = *state1;
  367. #define A S0.x
  368. #define B S0.y
  369. #define C S0.z
  370. #define D S0.w
  371. #define E S1.x
  372. #define F S1.y
  373. #define G S1.z
  374. #define H S1.w
  375. RND(A,B,C,D,E,F,G,H, fixedW[0]);
  376. RND(H,A,B,C,D,E,F,G, fixedW[1]);
  377. RND(G,H,A,B,C,D,E,F, fixedW[2]);
  378. RND(F,G,H,A,B,C,D,E, fixedW[3]);
  379. RND(E,F,G,H,A,B,C,D, fixedW[4]);
  380. RND(D,E,F,G,H,A,B,C, fixedW[5]);
  381. RND(C,D,E,F,G,H,A,B, fixedW[6]);
  382. RND(B,C,D,E,F,G,H,A, fixedW[7]);
  383. RND(A,B,C,D,E,F,G,H, fixedW[8]);
  384. RND(H,A,B,C,D,E,F,G, fixedW[9]);
  385. RND(G,H,A,B,C,D,E,F, fixedW[10]);
  386. RND(F,G,H,A,B,C,D,E, fixedW[11]);
  387. RND(E,F,G,H,A,B,C,D, fixedW[12]);
  388. RND(D,E,F,G,H,A,B,C, fixedW[13]);
  389. RND(C,D,E,F,G,H,A,B, fixedW[14]);
  390. RND(B,C,D,E,F,G,H,A, fixedW[15]);
  391. RND(A,B,C,D,E,F,G,H, fixedW[16]);
  392. RND(H,A,B,C,D,E,F,G, fixedW[17]);
  393. RND(G,H,A,B,C,D,E,F, fixedW[18]);
  394. RND(F,G,H,A,B,C,D,E, fixedW[19]);
  395. RND(E,F,G,H,A,B,C,D, fixedW[20]);
  396. RND(D,E,F,G,H,A,B,C, fixedW[21]);
  397. RND(C,D,E,F,G,H,A,B, fixedW[22]);
  398. RND(B,C,D,E,F,G,H,A, fixedW[23]);
  399. RND(A,B,C,D,E,F,G,H, fixedW[24]);
  400. RND(H,A,B,C,D,E,F,G, fixedW[25]);
  401. RND(G,H,A,B,C,D,E,F, fixedW[26]);
  402. RND(F,G,H,A,B,C,D,E, fixedW[27]);
  403. RND(E,F,G,H,A,B,C,D, fixedW[28]);
  404. RND(D,E,F,G,H,A,B,C, fixedW[29]);
  405. RND(C,D,E,F,G,H,A,B, fixedW[30]);
  406. RND(B,C,D,E,F,G,H,A, fixedW[31]);
  407. RND(A,B,C,D,E,F,G,H, fixedW[32]);
  408. RND(H,A,B,C,D,E,F,G, fixedW[33]);
  409. RND(G,H,A,B,C,D,E,F, fixedW[34]);
  410. RND(F,G,H,A,B,C,D,E, fixedW[35]);
  411. RND(E,F,G,H,A,B,C,D, fixedW[36]);
  412. RND(D,E,F,G,H,A,B,C, fixedW[37]);
  413. RND(C,D,E,F,G,H,A,B, fixedW[38]);
  414. RND(B,C,D,E,F,G,H,A, fixedW[39]);
  415. RND(A,B,C,D,E,F,G,H, fixedW[40]);
  416. RND(H,A,B,C,D,E,F,G, fixedW[41]);
  417. RND(G,H,A,B,C,D,E,F, fixedW[42]);
  418. RND(F,G,H,A,B,C,D,E, fixedW[43]);
  419. RND(E,F,G,H,A,B,C,D, fixedW[44]);
  420. RND(D,E,F,G,H,A,B,C, fixedW[45]);
  421. RND(C,D,E,F,G,H,A,B, fixedW[46]);
  422. RND(B,C,D,E,F,G,H,A, fixedW[47]);
  423. RND(A,B,C,D,E,F,G,H, fixedW[48]);
  424. RND(H,A,B,C,D,E,F,G, fixedW[49]);
  425. RND(G,H,A,B,C,D,E,F, fixedW[50]);
  426. RND(F,G,H,A,B,C,D,E, fixedW[51]);
  427. RND(E,F,G,H,A,B,C,D, fixedW[52]);
  428. RND(D,E,F,G,H,A,B,C, fixedW[53]);
  429. RND(C,D,E,F,G,H,A,B, fixedW[54]);
  430. RND(B,C,D,E,F,G,H,A, fixedW[55]);
  431. RND(A,B,C,D,E,F,G,H, fixedW[56]);
  432. RND(H,A,B,C,D,E,F,G, fixedW[57]);
  433. RND(G,H,A,B,C,D,E,F, fixedW[58]);
  434. RND(F,G,H,A,B,C,D,E, fixedW[59]);
  435. RND(E,F,G,H,A,B,C,D, fixedW[60]);
  436. RND(D,E,F,G,H,A,B,C, fixedW[61]);
  437. RND(C,D,E,F,G,H,A,B, fixedW[62]);
  438. RND(B,C,D,E,F,G,H,A, fixedW[63]);
  439. #undef A
  440. #undef B
  441. #undef C
  442. #undef D
  443. #undef E
  444. #undef F
  445. #undef G
  446. #undef H
  447. *state0 += S0;
  448. *state1 += S1;
  449. }
  450. void shittify(uint4 B[8])
  451. {
  452. uint4 tmp[4];
  453. tmp[0] = (uint4)(B[1].x,B[2].y,B[3].z,B[0].w);
  454. tmp[1] = (uint4)(B[2].x,B[3].y,B[0].z,B[1].w);
  455. tmp[2] = (uint4)(B[3].x,B[0].y,B[1].z,B[2].w);
  456. tmp[3] = (uint4)(B[0].x,B[1].y,B[2].z,B[3].w);
  457. #pragma unroll
  458. for(uint i=0; i<4; ++i)
  459. B[i] = EndianSwap(tmp[i]);
  460. tmp[0] = (uint4)(B[5].x,B[6].y,B[7].z,B[4].w);
  461. tmp[1] = (uint4)(B[6].x,B[7].y,B[4].z,B[5].w);
  462. tmp[2] = (uint4)(B[7].x,B[4].y,B[5].z,B[6].w);
  463. tmp[3] = (uint4)(B[4].x,B[5].y,B[6].z,B[7].w);
  464. #pragma unroll
  465. for(uint i=0; i<4; ++i)
  466. B[i+4] = EndianSwap(tmp[i]);
  467. }
  468. void unshittify(uint4 B[8])
  469. {
  470. uint4 tmp[4];
  471. tmp[0] = (uint4)(B[3].x,B[2].y,B[1].z,B[0].w);
  472. tmp[1] = (uint4)(B[0].x,B[3].y,B[2].z,B[1].w);
  473. tmp[2] = (uint4)(B[1].x,B[0].y,B[3].z,B[2].w);
  474. tmp[3] = (uint4)(B[2].x,B[1].y,B[0].z,B[3].w);
  475. #pragma unroll
  476. for(uint i=0; i<4; ++i)
  477. B[i] = EndianSwap(tmp[i]);
  478. tmp[0] = (uint4)(B[7].x,B[6].y,B[5].z,B[4].w);
  479. tmp[1] = (uint4)(B[4].x,B[7].y,B[6].z,B[5].w);
  480. tmp[2] = (uint4)(B[5].x,B[4].y,B[7].z,B[6].w);
  481. tmp[3] = (uint4)(B[6].x,B[5].y,B[4].z,B[7].w);
  482. #pragma unroll
  483. for(uint i=0; i<4; ++i)
  484. B[i+4] = EndianSwap(tmp[i]);
  485. }
  486. void salsa(uint4 B[8])
  487. {
  488. uint4 w[4];
  489. #pragma unroll
  490. for(uint i=0; i<4; ++i)
  491. w[i] = (B[i]^=B[i+4]);
  492. #pragma unroll
  493. for(uint i=0; i<4; ++i)
  494. {
  495. w[0] ^= rotl(w[3] +w[2] , 7U);
  496. w[1] ^= rotl(w[0] +w[3] , 9U);
  497. w[2] ^= rotl(w[1] +w[0] ,13U);
  498. w[3] ^= rotl(w[2] +w[1] ,18U);
  499. w[2] ^= rotl(w[3].wxyz+w[0].zwxy, 7U);
  500. w[1] ^= rotl(w[2].wxyz+w[3].zwxy, 9U);
  501. w[0] ^= rotl(w[1].wxyz+w[2].zwxy,13U);
  502. w[3] ^= rotl(w[0].wxyz+w[1].zwxy,18U);
  503. }
  504. #pragma unroll
  505. for(uint i=0; i<4; ++i)
  506. w[i] = (B[i+4]^=(B[i]+=w[i]));
  507. #pragma unroll
  508. for(uint i=0; i<4; ++i)
  509. {
  510. w[0] ^= rotl(w[3] +w[2] , 7U);
  511. w[1] ^= rotl(w[0] +w[3] , 9U);
  512. w[2] ^= rotl(w[1] +w[0] ,13U);
  513. w[3] ^= rotl(w[2] +w[1] ,18U);
  514. w[2] ^= rotl(w[3].wxyz+w[0].zwxy, 7U);
  515. w[1] ^= rotl(w[2].wxyz+w[3].zwxy, 9U);
  516. w[0] ^= rotl(w[1].wxyz+w[2].zwxy,13U);
  517. w[3] ^= rotl(w[0].wxyz+w[1].zwxy,18U);
  518. }
  519. #pragma unroll
  520. for(uint i=0; i<4; ++i)
  521. B[i+4] += w[i];
  522. }
  523. #define Coord(x,y,z) x+y*(x ## SIZE)+z*(y ## SIZE)*(x ## SIZE)
  524. #define CO Coord(z,x,y)
  525. void scrypt_core(uint4 X[8], __global uint4*restrict lookup)
  526. {
  527. shittify(X);
  528. const uint zSIZE = 8;
  529. const uint ySIZE = (1024/LOOKUP_GAP+(1024%LOOKUP_GAP>0));
  530. const uint xSIZE = CONCURRENT_THREADS;
  531. uint x = get_global_id(0)%xSIZE;
  532. for(uint y=0; y<1024/LOOKUP_GAP; ++y)
  533. {
  534. #pragma unroll
  535. for(uint z=0; z<zSIZE; ++z)
  536. lookup[CO] = X[z];
  537. for(uint i=0; i<LOOKUP_GAP; ++i)
  538. salsa(X);
  539. }
  540. #if (LOOKUP_GAP != 1) && (LOOKUP_GAP != 2) && (LOOKUP_GAP != 4) && (LOOKUP_GAP != 8)
  541. {
  542. uint y = (1024/LOOKUP_GAP);
  543. #pragma unroll
  544. for(uint z=0; z<zSIZE; ++z)
  545. lookup[CO] = X[z];
  546. for(uint i=0; i<1024%LOOKUP_GAP; ++i)
  547. salsa(X);
  548. }
  549. #endif
  550. for (uint i=0; i<1024; ++i)
  551. {
  552. uint4 V[8];
  553. uint j = X[7].x & 0x3FF;
  554. uint y = (j/LOOKUP_GAP);
  555. #pragma unroll
  556. for(uint z=0; z<zSIZE; ++z)
  557. V[z] = lookup[CO];
  558. #if (LOOKUP_GAP == 1)
  559. #elif (LOOKUP_GAP == 2)
  560. if (j&1)
  561. salsa(V);
  562. #else
  563. uint val = j%LOOKUP_GAP;
  564. for (uint z=0; z<val; ++z)
  565. salsa(V);
  566. #endif
  567. #pragma unroll
  568. for(uint z=0; z<zSIZE; ++z)
  569. X[z] ^= V[z];
  570. salsa(X);
  571. }
  572. unshittify(X);
  573. }
  574. #define FOUND (0x0F)
  575. #define SETFOUND(Xnonce) output[output[FOUND]++] = Xnonce
  576. __attribute__((reqd_work_group_size(WORKSIZE, 1, 1)))
  577. __kernel void search(__global const uint4 * restrict input,
  578. volatile __global uint*restrict output, __global uint4*restrict padcache,
  579. const uint4 midstate0, const uint4 midstate16, const uint target)
  580. {
  581. uint gid = get_global_id(0);
  582. uint4 X[8];
  583. uint4 tstate0, tstate1, ostate0, ostate1, tmp0, tmp1;
  584. uint4 data = (uint4)(input[4].x,input[4].y,input[4].z,gid);
  585. uint4 pad0 = midstate0, pad1 = midstate16;
  586. SHA256(&pad0,&pad1, data, (uint4)(0x80000000U,0,0,0), (uint4)(0,0,0,0), (uint4)(0,0,0,0x280));
  587. SHA256_fresh(&ostate0,&ostate1, pad0^0x5C5C5C5CU, pad1^0x5C5C5C5CU, 0x5C5C5C5CU, 0x5C5C5C5CU);
  588. SHA256_fresh(&tstate0,&tstate1, pad0^0x36363636U, pad1^0x36363636U, 0x36363636U, 0x36363636U);
  589. tmp0 = tstate0;
  590. tmp1 = tstate1;
  591. SHA256(&tstate0, &tstate1, input[0],input[1],input[2],input[3]);
  592. #pragma unroll
  593. for (uint i=0; i<4; i++)
  594. {
  595. pad0 = tstate0;
  596. pad1 = tstate1;
  597. X[i*2 ] = ostate0;
  598. X[i*2+1] = ostate1;
  599. SHA256(&pad0,&pad1, data, (uint4)(i+1,0x80000000U,0,0), (uint4)(0,0,0,0), (uint4)(0,0,0,0x4a0U));
  600. SHA256(X+i*2,X+i*2+1, pad0, pad1, (uint4)(0x80000000U, 0U, 0U, 0U), (uint4)(0U, 0U, 0U, 0x300U));
  601. }
  602. scrypt_core(X,padcache);
  603. SHA256(&tmp0,&tmp1, X[0], X[1], X[2], X[3]);
  604. SHA256(&tmp0,&tmp1, X[4], X[5], X[6], X[7]);
  605. SHA256_fixed(&tmp0,&tmp1);
  606. SHA256(&ostate0,&ostate1, tmp0, tmp1, (uint4)(0x80000000U, 0U, 0U, 0U), (uint4)(0U, 0U, 0U, 0x300U));
  607. bool result = (EndianSwap(ostate1.w) <= target);
  608. if (result)
  609. SETFOUND(gid);
  610. }