findnonce.c 8.3 KB

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  1. /*
  2. * Copyright 2011 Con Kolivas
  3. * Copyright 2011 Nils Schneider
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of the GNU General Public License as published by the Free
  7. * Software Foundation; either version 2 of the License, or (at your option)
  8. * any later version. See COPYING for more details.
  9. */
  10. #include "config.h"
  11. #ifdef HAVE_OPENCL
  12. #include <stdio.h>
  13. #include <inttypes.h>
  14. #include <pthread.h>
  15. #include <string.h>
  16. #include "ocl.h"
  17. #include "findnonce.h"
  18. #include "miner.h"
  19. const uint32_t SHA256_K[64] = {
  20. 0x428a2f98, 0x71374491, 0xb5c0fbcf, 0xe9b5dba5,
  21. 0x3956c25b, 0x59f111f1, 0x923f82a4, 0xab1c5ed5,
  22. 0xd807aa98, 0x12835b01, 0x243185be, 0x550c7dc3,
  23. 0x72be5d74, 0x80deb1fe, 0x9bdc06a7, 0xc19bf174,
  24. 0xe49b69c1, 0xefbe4786, 0x0fc19dc6, 0x240ca1cc,
  25. 0x2de92c6f, 0x4a7484aa, 0x5cb0a9dc, 0x76f988da,
  26. 0x983e5152, 0xa831c66d, 0xb00327c8, 0xbf597fc7,
  27. 0xc6e00bf3, 0xd5a79147, 0x06ca6351, 0x14292967,
  28. 0x27b70a85, 0x2e1b2138, 0x4d2c6dfc, 0x53380d13,
  29. 0x650a7354, 0x766a0abb, 0x81c2c92e, 0x92722c85,
  30. 0xa2bfe8a1, 0xa81a664b, 0xc24b8b70, 0xc76c51a3,
  31. 0xd192e819, 0xd6990624, 0xf40e3585, 0x106aa070,
  32. 0x19a4c116, 0x1e376c08, 0x2748774c, 0x34b0bcb5,
  33. 0x391c0cb3, 0x4ed8aa4a, 0x5b9cca4f, 0x682e6ff3,
  34. 0x748f82ee, 0x78a5636f, 0x84c87814, 0x8cc70208,
  35. 0x90befffa, 0xa4506ceb, 0xbef9a3f7, 0xc67178f2
  36. };
  37. inline uint32_t ByteReverse(uint32_t value)
  38. {
  39. __asm__ ("bswap %0" : "=r" (value) : "0" (value));
  40. return value;
  41. }
  42. #define rotate(x,y) ((x<<y) | (x>>(sizeof(x)*8-y)))
  43. #define rotr(x,y) ((x>>y) | (x<<(sizeof(x)*8-y)))
  44. #define R(a, b, c, d, e, f, g, h, w, k) \
  45. h = h + (rotate(e, 26) ^ rotate(e, 21) ^ rotate(e, 7)) + (g ^ (e & (f ^ g))) + k + w; \
  46. d = d + h; \
  47. h = h + (rotate(a, 30) ^ rotate(a, 19) ^ rotate(a, 10)) + ((a & b) | (c & (a | b)))
  48. void precalc_hash(dev_blk_ctx *blk, uint32_t *state, uint32_t *data) {
  49. cl_uint A, B, C, D, E, F, G, H;
  50. A = state[0];
  51. B = state[1];
  52. C = state[2];
  53. D = state[3];
  54. E = state[4];
  55. F = state[5];
  56. G = state[6];
  57. H = state[7];
  58. R(A, B, C, D, E, F, G, H, data[0], SHA256_K[0]);
  59. R(H, A, B, C, D, E, F, G, data[1], SHA256_K[1]);
  60. R(G, H, A, B, C, D, E, F, data[2], SHA256_K[2]);
  61. blk->cty_a = A;
  62. blk->cty_b = B;
  63. blk->cty_c = C;
  64. blk->C1addK5 = C + 0x59f111f1;
  65. blk->cty_d = D;
  66. blk->D1A = D + 0xb956c25b;
  67. blk->cty_e = E;
  68. blk->cty_f = F;
  69. blk->cty_g = G;
  70. blk->cty_h = H;
  71. blk->ctx_a = state[0];
  72. blk->ctx_b = state[1];
  73. blk->ctx_c = state[2];
  74. blk->ctx_d = state[3];
  75. blk->ctx_e = state[4];
  76. blk->ctx_f = state[5];
  77. blk->ctx_g = state[6];
  78. blk->ctx_h = state[7];
  79. blk->merkle = data[0];
  80. blk->ntime = data[1];
  81. blk->nbits = data[2];
  82. blk->W16 = blk->fW0 = data[0] + (rotr(data[1], 7) ^ rotr(data[1], 18) ^ (data[1] >> 3));
  83. blk->W17 = blk->fW1 = data[1] + (rotr(data[2], 7) ^ rotr(data[2], 18) ^ (data[2] >> 3)) + 0x01100000;
  84. blk->PreVal4 = blk->fcty_e = E + (rotr(B, 6) ^ rotr(B, 11) ^ rotr(B, 25)) + (D ^ (B & (C ^ D))) + 0xe9b5dba5;
  85. blk->T1 = blk->fcty_e2 = (rotr(F, 2) ^ rotr(F, 13) ^ rotr(F, 22)) + ((F & G) | (H & (F | G)));
  86. blk->PreVal4_2 = blk->PreVal4 + blk->T1;
  87. blk->PreVal0 = blk->PreVal4 + state[0];
  88. blk->PreW31 = 0x00000280 + (rotr(blk->W16, 7) ^ rotr(blk->W16, 18) ^ (blk->W16 >> 3));
  89. blk->PreW32 = blk->W16 + ((rotr(blk->W17, 7) ^ rotr(blk->W17, 18) ^ (blk->W17 >> 3)));
  90. blk->PreW18 = data[2] + (rotr(blk->W16, 17) ^ rotr(blk->W16, 19) ^ (blk->W16 >> 10));
  91. blk->PreW19 = 0x11002000 + (rotr(blk->W17, 17) ^ rotr(blk->W17, 19) ^ (blk->W17 >> 10));
  92. blk->W2 = data[2];
  93. blk->W2A = blk->W2 + (rotr(blk->W16, 19) ^ rotr(blk->W16, 17) ^ (blk->W16 >> 10));
  94. blk->W17_2 = 0x11002000 + (rotr(blk->W17, 19) ^ rotr(blk->W17, 17) ^ (blk->W17 >> 10));
  95. blk->fW2 = data[2] + (rotr(blk->fW0, 17) ^ rotr(blk->fW0, 19) ^ (blk->fW0 >> 10));
  96. blk->fW3 = 0x11002000 + (rotr(blk->fW1, 17) ^ rotr(blk->fW1, 19) ^ (blk->fW1 >> 10));
  97. blk->fW15 = 0x00000280 + (rotr(blk->fW0, 7) ^ rotr(blk->fW0, 18) ^ (blk->fW0 >> 3));
  98. blk->fW01r = blk->fW0 + (rotr(blk->fW1, 7) ^ rotr(blk->fW1, 18) ^ (blk->fW1 >> 3));
  99. blk->PreVal4addT1 = blk->PreVal4 + blk->T1;
  100. blk->T1substate0 = state[0] - blk->T1;
  101. }
  102. #define P(t) (W[(t)&0xF] = W[(t-16)&0xF] + (rotate(W[(t-15)&0xF], 25) ^ rotate(W[(t-15)&0xF], 14) ^ (W[(t-15)&0xF] >> 3)) + W[(t-7)&0xF] + (rotate(W[(t-2)&0xF], 15) ^ rotate(W[(t-2)&0xF], 13) ^ (W[(t-2)&0xF] >> 10)))
  103. #define IR(u) \
  104. R(A, B, C, D, E, F, G, H, W[u+0], SHA256_K[u+0]); \
  105. R(H, A, B, C, D, E, F, G, W[u+1], SHA256_K[u+1]); \
  106. R(G, H, A, B, C, D, E, F, W[u+2], SHA256_K[u+2]); \
  107. R(F, G, H, A, B, C, D, E, W[u+3], SHA256_K[u+3]); \
  108. R(E, F, G, H, A, B, C, D, W[u+4], SHA256_K[u+4]); \
  109. R(D, E, F, G, H, A, B, C, W[u+5], SHA256_K[u+5]); \
  110. R(C, D, E, F, G, H, A, B, W[u+6], SHA256_K[u+6]); \
  111. R(B, C, D, E, F, G, H, A, W[u+7], SHA256_K[u+7])
  112. #define FR(u) \
  113. R(A, B, C, D, E, F, G, H, P(u+0), SHA256_K[u+0]); \
  114. R(H, A, B, C, D, E, F, G, P(u+1), SHA256_K[u+1]); \
  115. R(G, H, A, B, C, D, E, F, P(u+2), SHA256_K[u+2]); \
  116. R(F, G, H, A, B, C, D, E, P(u+3), SHA256_K[u+3]); \
  117. R(E, F, G, H, A, B, C, D, P(u+4), SHA256_K[u+4]); \
  118. R(D, E, F, G, H, A, B, C, P(u+5), SHA256_K[u+5]); \
  119. R(C, D, E, F, G, H, A, B, P(u+6), SHA256_K[u+6]); \
  120. R(B, C, D, E, F, G, H, A, P(u+7), SHA256_K[u+7])
  121. #define PIR(u) \
  122. R(F, G, H, A, B, C, D, E, W[u+3], SHA256_K[u+3]); \
  123. R(E, F, G, H, A, B, C, D, W[u+4], SHA256_K[u+4]); \
  124. R(D, E, F, G, H, A, B, C, W[u+5], SHA256_K[u+5]); \
  125. R(C, D, E, F, G, H, A, B, W[u+6], SHA256_K[u+6]); \
  126. R(B, C, D, E, F, G, H, A, W[u+7], SHA256_K[u+7])
  127. #define PFR(u) \
  128. R(A, B, C, D, E, F, G, H, P(u+0), SHA256_K[u+0]); \
  129. R(H, A, B, C, D, E, F, G, P(u+1), SHA256_K[u+1]); \
  130. R(G, H, A, B, C, D, E, F, P(u+2), SHA256_K[u+2]); \
  131. R(F, G, H, A, B, C, D, E, P(u+3), SHA256_K[u+3]); \
  132. R(E, F, G, H, A, B, C, D, P(u+4), SHA256_K[u+4]); \
  133. R(D, E, F, G, H, A, B, C, P(u+5), SHA256_K[u+5])
  134. struct pc_data {
  135. struct thr_info *thr;
  136. struct work *work;
  137. uint32_t res[MAXBUFFERS];
  138. pthread_t pth;
  139. };
  140. static void *postcalc_hash(void *userdata)
  141. {
  142. struct pc_data *pcd = (struct pc_data *)userdata;
  143. struct thr_info *thr = pcd->thr;
  144. dev_blk_ctx *blk = &pcd->work->blk;
  145. struct work *work = pcd->work;
  146. cl_uint A, B, C, D, E, F, G, H;
  147. cl_uint W[16];
  148. cl_uint nonce = 0;
  149. int entry = 0;
  150. pthread_detach(pthread_self());
  151. cycle:
  152. while (entry < OUTBUFFERS) {
  153. if (pcd->res[entry]) {
  154. nonce = pcd->res[entry++];
  155. break;
  156. }
  157. entry++;
  158. }
  159. if (entry == OUTBUFFERS)
  160. goto out;
  161. A = blk->cty_a; B = blk->cty_b;
  162. C = blk->cty_c; D = blk->cty_d;
  163. E = blk->cty_e; F = blk->cty_f;
  164. G = blk->cty_g; H = blk->cty_h;
  165. W[0] = blk->merkle; W[1] = blk->ntime;
  166. W[2] = blk->nbits; W[3] = nonce;;
  167. W[4] = 0x80000000; W[5] = 0x00000000; W[6] = 0x00000000; W[7] = 0x00000000;
  168. W[8] = 0x00000000; W[9] = 0x00000000; W[10] = 0x00000000; W[11] = 0x00000000;
  169. W[12] = 0x00000000; W[13] = 0x00000000; W[14] = 0x00000000; W[15] = 0x00000280;
  170. PIR(0); IR(8);
  171. FR(16); FR(24);
  172. FR(32); FR(40);
  173. FR(48); FR(56);
  174. W[0] = A + blk->ctx_a; W[1] = B + blk->ctx_b;
  175. W[2] = C + blk->ctx_c; W[3] = D + blk->ctx_d;
  176. W[4] = E + blk->ctx_e; W[5] = F + blk->ctx_f;
  177. W[6] = G + blk->ctx_g; W[7] = H + blk->ctx_h;
  178. W[8] = 0x80000000; W[9] = 0x00000000; W[10] = 0x00000000; W[11] = 0x00000000;
  179. W[12] = 0x00000000; W[13] = 0x00000000; W[14] = 0x00000000; W[15] = 0x00000100;
  180. A = 0x6a09e667; B = 0xbb67ae85;
  181. C = 0x3c6ef372; D = 0xa54ff53a;
  182. E = 0x510e527f; F = 0x9b05688c;
  183. G = 0x1f83d9ab; H = 0x5be0cd19;
  184. IR(0); IR(8);
  185. FR(16); FR(24);
  186. FR(32); FR(40);
  187. FR(48); PFR(56);
  188. if (likely(H == 0xA41F32E7)) {
  189. if (unlikely(submit_nonce(thr, work, nonce) == false)) {
  190. applog(LOG_ERR, "Failed to submit work, exiting");
  191. goto out;
  192. }
  193. } else {
  194. if (opt_debug)
  195. applog(LOG_DEBUG, "No best_g found! Error in OpenCL code?");
  196. hw_errors++;
  197. thr->cgpu->hw_errors++;
  198. }
  199. if (entry < OUTBUFFERS)
  200. goto cycle;
  201. out:
  202. free(pcd);
  203. return NULL;
  204. }
  205. void postcalc_hash_async(struct thr_info *thr, struct work *work, uint32_t *res)
  206. {
  207. struct pc_data *pcd = malloc(sizeof(struct pc_data));
  208. if (unlikely(!pcd)) {
  209. applog(LOG_ERR, "Failed to malloc pc_data in postcalc_hash_async");
  210. return;
  211. }
  212. pcd->work = calloc(1, sizeof(struct work));
  213. if (unlikely(!pcd->work)) {
  214. applog(LOG_ERR, "Failed to malloc work in postcalc_hash_async");
  215. return;
  216. }
  217. pcd->thr = thr;
  218. memcpy(pcd->work, work, sizeof(struct work));
  219. memcpy(&pcd->res, res, BUFFERSIZE);
  220. if (pthread_create(&pcd->pth, NULL, postcalc_hash, (void *)pcd)) {
  221. applog(LOG_ERR, "Failed to create postcalc_hash thread");
  222. return;
  223. }
  224. }
  225. #endif /* HAVE_OPENCL */