driver-cpu.c 20 KB

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  1. /*
  2. * Copyright 2011-2012 Con Kolivas
  3. * Copyright 2011-2012 Luke Dashjr
  4. * Copyright 2010 Jeff Garzik
  5. *
  6. * This program is free software; you can redistribute it and/or modify it
  7. * under the terms of the GNU General Public License as published by the Free
  8. * Software Foundation; either version 3 of the License, or (at your option)
  9. * any later version. See COPYING for more details.
  10. */
  11. #include "config.h"
  12. #include <stdio.h>
  13. #include <stdlib.h>
  14. #include <string.h>
  15. #include <stdbool.h>
  16. #include <stdint.h>
  17. #include <unistd.h>
  18. #include <signal.h>
  19. #include <sys/stat.h>
  20. #include <sys/types.h>
  21. #ifndef WIN32
  22. #include <sys/wait.h>
  23. #include <sys/resource.h>
  24. #endif
  25. #include <libgen.h>
  26. #include "compat.h"
  27. #include "miner.h"
  28. #include "bench_block.h"
  29. #include "driver-cpu.h"
  30. #if defined(unix)
  31. #include <errno.h>
  32. #include <fcntl.h>
  33. #endif
  34. #if defined(__linux) && defined(cpu_set_t) /* Linux specific policy and affinity management */
  35. #include <sched.h>
  36. static inline void drop_policy(void)
  37. {
  38. struct sched_param param;
  39. #ifdef SCHED_BATCH
  40. #ifdef SCHED_IDLE
  41. if (unlikely(sched_setscheduler(0, SCHED_IDLE, &param) == -1))
  42. #endif
  43. sched_setscheduler(0, SCHED_BATCH, &param);
  44. #endif
  45. }
  46. static inline void affine_to_cpu(int id, int cpu)
  47. {
  48. cpu_set_t set;
  49. CPU_ZERO(&set);
  50. CPU_SET(cpu, &set);
  51. sched_setaffinity(0, sizeof(&set), &set);
  52. applog(LOG_INFO, "Binding cpu mining thread %d to cpu %d", id, cpu);
  53. }
  54. #else
  55. static inline void drop_policy(void)
  56. {
  57. }
  58. static inline void affine_to_cpu(int id, int cpu)
  59. {
  60. }
  61. #endif
  62. /* TODO: resolve externals */
  63. extern bool submit_work_sync(struct thr_info *thr, const struct work *work_in);
  64. extern char *set_int_range(const char *arg, int *i, int min, int max);
  65. extern int dev_from_id(int thr_id);
  66. /* chipset-optimized hash functions */
  67. extern bool ScanHash_4WaySSE2(struct thr_info*, const unsigned char *pmidstate,
  68. unsigned char *pdata, unsigned char *phash1, unsigned char *phash,
  69. const unsigned char *ptarget,
  70. uint32_t max_nonce, uint32_t *last_nonce, uint32_t nonce);
  71. extern bool ScanHash_altivec_4way(struct thr_info*, const unsigned char *pmidstate,
  72. unsigned char *pdata,
  73. unsigned char *phash1, unsigned char *phash,
  74. const unsigned char *ptarget,
  75. uint32_t max_nonce, uint32_t *last_nonce, uint32_t nonce);
  76. extern bool scanhash_via(struct thr_info*, const unsigned char *pmidstate,
  77. unsigned char *pdata,
  78. unsigned char *phash1, unsigned char *phash,
  79. const unsigned char *target,
  80. uint32_t max_nonce, uint32_t *last_nonce, uint32_t n);
  81. extern bool scanhash_c(struct thr_info*, const unsigned char *midstate, unsigned char *data,
  82. unsigned char *hash1, unsigned char *hash,
  83. const unsigned char *target,
  84. uint32_t max_nonce, uint32_t *last_nonce, uint32_t n);
  85. extern bool scanhash_cryptopp(struct thr_info*, const unsigned char *midstate,unsigned char *data,
  86. unsigned char *hash1, unsigned char *hash,
  87. const unsigned char *target,
  88. uint32_t max_nonce, uint32_t *last_nonce, uint32_t n);
  89. extern bool scanhash_asm32(struct thr_info*, const unsigned char *midstate,unsigned char *data,
  90. unsigned char *hash1, unsigned char *hash,
  91. const unsigned char *target,
  92. uint32_t max_nonce, uint32_t *last_nonce, uint32_t nonce);
  93. extern bool scanhash_sse2_64(struct thr_info*, const unsigned char *pmidstate, unsigned char *pdata,
  94. unsigned char *phash1, unsigned char *phash,
  95. const unsigned char *ptarget,
  96. uint32_t max_nonce, uint32_t *last_nonce,
  97. uint32_t nonce);
  98. extern bool scanhash_sse4_64(struct thr_info*, const unsigned char *pmidstate, unsigned char *pdata,
  99. unsigned char *phash1, unsigned char *phash,
  100. const unsigned char *ptarget,
  101. uint32_t max_nonce, uint32_t *last_nonce,
  102. uint32_t nonce);
  103. extern bool scanhash_sse2_32(struct thr_info*, const unsigned char *pmidstate, unsigned char *pdata,
  104. unsigned char *phash1, unsigned char *phash,
  105. const unsigned char *ptarget,
  106. uint32_t max_nonce, uint32_t *last_nonce,
  107. uint32_t nonce);
  108. #ifdef WANT_CPUMINE
  109. static size_t max_name_len = 0;
  110. static char *name_spaces_pad = NULL;
  111. const char *algo_names[] = {
  112. [ALGO_C] = "c",
  113. #ifdef WANT_SSE2_4WAY
  114. [ALGO_4WAY] = "4way",
  115. #endif
  116. #ifdef WANT_VIA_PADLOCK
  117. [ALGO_VIA] = "via",
  118. #endif
  119. [ALGO_CRYPTOPP] = "cryptopp",
  120. #ifdef WANT_CRYPTOPP_ASM32
  121. [ALGO_CRYPTOPP_ASM32] = "cryptopp_asm32",
  122. #endif
  123. #ifdef WANT_X8632_SSE2
  124. [ALGO_SSE2_32] = "sse2_32",
  125. #endif
  126. #ifdef WANT_X8664_SSE2
  127. [ALGO_SSE2_64] = "sse2_64",
  128. #endif
  129. #ifdef WANT_X8664_SSE4
  130. [ALGO_SSE4_64] = "sse4_64",
  131. #endif
  132. #ifdef WANT_ALTIVEC_4WAY
  133. [ALGO_ALTIVEC_4WAY] = "altivec_4way",
  134. #endif
  135. };
  136. static const sha256_func sha256_funcs[] = {
  137. [ALGO_C] = (sha256_func)scanhash_c,
  138. #ifdef WANT_SSE2_4WAY
  139. [ALGO_4WAY] = (sha256_func)ScanHash_4WaySSE2,
  140. #endif
  141. #ifdef WANT_ALTIVEC_4WAY
  142. [ALGO_ALTIVEC_4WAY] = (sha256_func) ScanHash_altivec_4way,
  143. #endif
  144. #ifdef WANT_VIA_PADLOCK
  145. [ALGO_VIA] = (sha256_func)scanhash_via,
  146. #endif
  147. [ALGO_CRYPTOPP] = (sha256_func)scanhash_cryptopp,
  148. #ifdef WANT_CRYPTOPP_ASM32
  149. [ALGO_CRYPTOPP_ASM32] = (sha256_func)scanhash_asm32,
  150. #endif
  151. #ifdef WANT_X8632_SSE2
  152. [ALGO_SSE2_32] = (sha256_func)scanhash_sse2_32,
  153. #endif
  154. #ifdef WANT_X8664_SSE2
  155. [ALGO_SSE2_64] = (sha256_func)scanhash_sse2_64,
  156. #endif
  157. #ifdef WANT_X8664_SSE4
  158. [ALGO_SSE4_64] = (sha256_func)scanhash_sse4_64
  159. #endif
  160. };
  161. #endif
  162. #ifdef WANT_CPUMINE
  163. #if defined(WANT_X8664_SSE2) && defined(__SSE2__)
  164. enum sha256_algos opt_algo = ALGO_SSE2_64;
  165. #elif defined(WANT_X8632_SSE2) && defined(__SSE2__)
  166. enum sha256_algos opt_algo = ALGO_SSE2_32;
  167. #else
  168. enum sha256_algos opt_algo = ALGO_C;
  169. #endif
  170. bool opt_usecpu = false;
  171. static int cpur_thr_id;
  172. static bool forced_n_threads;
  173. #endif
  174. #ifdef WANT_CPUMINE
  175. // Algo benchmark, crash-prone, system independent stage
  176. double bench_algo_stage3(
  177. enum sha256_algos algo
  178. )
  179. {
  180. // Use a random work block pulled from a pool
  181. static uint8_t bench_block[] = { CGMINER_BENCHMARK_BLOCK };
  182. struct work work __attribute__((aligned(128)));
  183. size_t bench_size = sizeof(work);
  184. size_t work_size = sizeof(bench_block);
  185. size_t min_size = (work_size < bench_size ? work_size : bench_size);
  186. memset(&work, 0, sizeof(work));
  187. memcpy(&work, &bench_block, min_size);
  188. struct thr_info dummy = {0};
  189. struct timeval end;
  190. struct timeval start;
  191. uint32_t max_nonce = (1<<22);
  192. uint32_t last_nonce = 0;
  193. gettimeofday(&start, 0);
  194. {
  195. sha256_func func = sha256_funcs[algo];
  196. (*func)(
  197. &dummy,
  198. work.midstate,
  199. work.data,
  200. work.hash1,
  201. work.hash,
  202. work.target,
  203. max_nonce,
  204. &last_nonce,
  205. work.blk.nonce
  206. );
  207. }
  208. gettimeofday(&end, 0);
  209. uint64_t usec_end = ((uint64_t)end.tv_sec)*1000*1000 + end.tv_usec;
  210. uint64_t usec_start = ((uint64_t)start.tv_sec)*1000*1000 + start.tv_usec;
  211. uint64_t usec_elapsed = usec_end - usec_start;
  212. double rate = -1.0;
  213. if (0<usec_elapsed) {
  214. rate = (1.0*(last_nonce+1))/usec_elapsed;
  215. }
  216. return rate;
  217. }
  218. #if defined(unix)
  219. // Change non-blocking status on a file descriptor
  220. static void set_non_blocking(
  221. int fd,
  222. int yes
  223. )
  224. {
  225. int flags = fcntl(fd, F_GETFL, 0);
  226. if (flags<0) {
  227. perror("fcntl(GET) failed");
  228. exit(1);
  229. }
  230. flags = yes ? (flags|O_NONBLOCK) : (flags&~O_NONBLOCK);
  231. int r = fcntl(fd, F_SETFL, flags);
  232. if (r<0) {
  233. perror("fcntl(SET) failed");
  234. exit(1);
  235. }
  236. }
  237. #endif // defined(unix)
  238. // Algo benchmark, crash-safe, system-dependent stage
  239. static double bench_algo_stage2(
  240. enum sha256_algos algo
  241. )
  242. {
  243. // Here, the gig is to safely run a piece of code that potentially
  244. // crashes. Unfortunately, the Right Way (tm) to do this is rather
  245. // heavily platform dependent :(
  246. double rate = -1.23457;
  247. #if defined(unix)
  248. // Make a pipe: [readFD, writeFD]
  249. int pfd[2];
  250. int r = pipe(pfd);
  251. if (r<0) {
  252. perror("pipe - failed to create pipe for --algo auto");
  253. exit(1);
  254. }
  255. // Make pipe non blocking
  256. set_non_blocking(pfd[0], 1);
  257. set_non_blocking(pfd[1], 1);
  258. // Don't allow a crashing child to kill the main process
  259. sighandler_t sr0 = signal(SIGPIPE, SIG_IGN);
  260. sighandler_t sr1 = signal(SIGPIPE, SIG_IGN);
  261. if (SIG_ERR==sr0 || SIG_ERR==sr1) {
  262. perror("signal - failed to edit signal mask for --algo auto");
  263. exit(1);
  264. }
  265. // Fork a child to do the actual benchmarking
  266. pid_t child_pid = fork();
  267. if (child_pid<0) {
  268. perror("fork - failed to create a child process for --algo auto");
  269. exit(1);
  270. }
  271. // Do the dangerous work in the child, knowing we might crash
  272. if (0==child_pid) {
  273. // TODO: some umask trickery to prevent coredumps
  274. // Benchmark this algorithm
  275. double r = bench_algo_stage3(algo);
  276. // We survived, send result to parent and bail
  277. int loop_count = 0;
  278. while (1) {
  279. ssize_t bytes_written = write(pfd[1], &r, sizeof(r));
  280. int try_again = (0==bytes_written || (bytes_written<0 && EAGAIN==errno));
  281. int success = (sizeof(r)==(size_t)bytes_written);
  282. if (success)
  283. break;
  284. if (!try_again) {
  285. perror("write - child failed to write benchmark result to pipe");
  286. exit(1);
  287. }
  288. if (5<loop_count) {
  289. applog(LOG_ERR, "child tried %d times to communicate with parent, giving up", loop_count);
  290. exit(1);
  291. }
  292. ++loop_count;
  293. sleep(1);
  294. }
  295. exit(0);
  296. }
  297. // Parent waits for a result from child
  298. int loop_count = 0;
  299. while (1) {
  300. // Wait for child to die
  301. int status;
  302. int r = waitpid(child_pid, &status, WNOHANG);
  303. if ((child_pid==r) || (r<0 && ECHILD==errno)) {
  304. // Child died somehow. Grab result and bail
  305. double tmp;
  306. ssize_t bytes_read = read(pfd[0], &tmp, sizeof(tmp));
  307. if (sizeof(tmp)==(size_t)bytes_read)
  308. rate = tmp;
  309. break;
  310. } else if (r<0) {
  311. perror("bench_algo: waitpid failed. giving up.");
  312. exit(1);
  313. }
  314. // Give up on child after a ~60s
  315. if (60<loop_count) {
  316. kill(child_pid, SIGKILL);
  317. waitpid(child_pid, &status, 0);
  318. break;
  319. }
  320. // Wait a bit longer
  321. ++loop_count;
  322. sleep(1);
  323. }
  324. // Close pipe
  325. r = close(pfd[0]);
  326. if (r<0) {
  327. perror("close - failed to close read end of pipe for --algo auto");
  328. exit(1);
  329. }
  330. r = close(pfd[1]);
  331. if (r<0) {
  332. perror("close - failed to close read end of pipe for --algo auto");
  333. exit(1);
  334. }
  335. #elif defined(WIN32)
  336. // Get handle to current exe
  337. HINSTANCE module = GetModuleHandle(0);
  338. if (!module) {
  339. applog(LOG_ERR, "failed to retrieve module handle");
  340. exit(1);
  341. }
  342. // Create a unique name
  343. char unique_name[32];
  344. snprintf(
  345. unique_name,
  346. sizeof(unique_name)-1,
  347. "cgminer-%p",
  348. (void*)module
  349. );
  350. // Create and init a chunked of shared memory
  351. HANDLE map_handle = CreateFileMapping(
  352. INVALID_HANDLE_VALUE, // use paging file
  353. NULL, // default security attributes
  354. PAGE_READWRITE, // read/write access
  355. 0, // size: high 32-bits
  356. 4096, // size: low 32-bits
  357. unique_name // name of map object
  358. );
  359. if (NULL==map_handle) {
  360. applog(LOG_ERR, "could not create shared memory");
  361. exit(1);
  362. }
  363. void *shared_mem = MapViewOfFile(
  364. map_handle, // object to map view of
  365. FILE_MAP_WRITE, // read/write access
  366. 0, // high offset: map from
  367. 0, // low offset: beginning
  368. 0 // default: map entire file
  369. );
  370. if (NULL==shared_mem) {
  371. applog(LOG_ERR, "could not map shared memory");
  372. exit(1);
  373. }
  374. SetEnvironmentVariable("CGMINER_SHARED_MEM", unique_name);
  375. CopyMemory(shared_mem, &rate, sizeof(rate));
  376. // Get path to current exe
  377. char cmd_line[256 + MAX_PATH];
  378. const size_t n = sizeof(cmd_line)-200;
  379. DWORD size = GetModuleFileName(module, cmd_line, n);
  380. if (0==size) {
  381. applog(LOG_ERR, "failed to retrieve module path");
  382. exit(1);
  383. }
  384. // Construct new command line based on that
  385. char *p = strlen(cmd_line) + cmd_line;
  386. sprintf(p, " --bench-algo %d", algo);
  387. SetEnvironmentVariable("CGMINER_BENCH_ALGO", "1");
  388. // Launch a debug copy of cgminer
  389. STARTUPINFO startup_info;
  390. PROCESS_INFORMATION process_info;
  391. ZeroMemory(&startup_info, sizeof(startup_info));
  392. ZeroMemory(&process_info, sizeof(process_info));
  393. startup_info.cb = sizeof(startup_info);
  394. BOOL ok = CreateProcess(
  395. NULL, // No module name (use command line)
  396. cmd_line, // Command line
  397. NULL, // Process handle not inheritable
  398. NULL, // Thread handle not inheritable
  399. FALSE, // Set handle inheritance to FALSE
  400. DEBUG_ONLY_THIS_PROCESS,// We're going to debug the child
  401. NULL, // Use parent's environment block
  402. NULL, // Use parent's starting directory
  403. &startup_info, // Pointer to STARTUPINFO structure
  404. &process_info // Pointer to PROCESS_INFORMATION structure
  405. );
  406. if (!ok) {
  407. applog(LOG_ERR, "CreateProcess failed with error %d\n", GetLastError() );
  408. exit(1);
  409. }
  410. // Debug the child (only clean way to catch exceptions)
  411. while (1) {
  412. // Wait for child to do something
  413. DEBUG_EVENT debug_event;
  414. ZeroMemory(&debug_event, sizeof(debug_event));
  415. BOOL ok = WaitForDebugEvent(&debug_event, 60 * 1000);
  416. if (!ok)
  417. break;
  418. // Decide if event is "normal"
  419. int go_on =
  420. CREATE_PROCESS_DEBUG_EVENT== debug_event.dwDebugEventCode ||
  421. CREATE_THREAD_DEBUG_EVENT == debug_event.dwDebugEventCode ||
  422. EXIT_THREAD_DEBUG_EVENT == debug_event.dwDebugEventCode ||
  423. EXCEPTION_DEBUG_EVENT == debug_event.dwDebugEventCode ||
  424. LOAD_DLL_DEBUG_EVENT == debug_event.dwDebugEventCode ||
  425. OUTPUT_DEBUG_STRING_EVENT == debug_event.dwDebugEventCode ||
  426. UNLOAD_DLL_DEBUG_EVENT == debug_event.dwDebugEventCode;
  427. if (!go_on)
  428. break;
  429. // Some exceptions are also "normal", apparently.
  430. if (EXCEPTION_DEBUG_EVENT== debug_event.dwDebugEventCode) {
  431. int go_on =
  432. EXCEPTION_BREAKPOINT== debug_event.u.Exception.ExceptionRecord.ExceptionCode;
  433. if (!go_on)
  434. break;
  435. }
  436. // If nothing unexpected happened, let child proceed
  437. ContinueDebugEvent(
  438. debug_event.dwProcessId,
  439. debug_event.dwThreadId,
  440. DBG_CONTINUE
  441. );
  442. }
  443. // Clean up child process
  444. TerminateProcess(process_info.hProcess, 1);
  445. CloseHandle(process_info.hProcess);
  446. CloseHandle(process_info.hThread);
  447. // Reap return value and cleanup
  448. CopyMemory(&rate, shared_mem, sizeof(rate));
  449. (void)UnmapViewOfFile(shared_mem);
  450. (void)CloseHandle(map_handle);
  451. #else
  452. // Not linux, not unix, not WIN32 ... do our best
  453. rate = bench_algo_stage3(algo);
  454. #endif // defined(unix)
  455. // Done
  456. return rate;
  457. }
  458. static void bench_algo(
  459. double *best_rate,
  460. enum sha256_algos *best_algo,
  461. enum sha256_algos algo
  462. )
  463. {
  464. size_t n = max_name_len - strlen(algo_names[algo]);
  465. memset(name_spaces_pad, ' ', n);
  466. name_spaces_pad[n] = 0;
  467. applog(
  468. LOG_ERR,
  469. "\"%s\"%s : benchmarking algorithm ...",
  470. algo_names[algo],
  471. name_spaces_pad
  472. );
  473. double rate = bench_algo_stage2(algo);
  474. if (rate<0.0) {
  475. applog(
  476. LOG_ERR,
  477. "\"%s\"%s : algorithm fails on this platform",
  478. algo_names[algo],
  479. name_spaces_pad
  480. );
  481. } else {
  482. applog(
  483. LOG_ERR,
  484. "\"%s\"%s : algorithm runs at %.5f MH/s",
  485. algo_names[algo],
  486. name_spaces_pad,
  487. rate
  488. );
  489. if (*best_rate<rate) {
  490. *best_rate = rate;
  491. *best_algo = algo;
  492. }
  493. }
  494. }
  495. // Figure out the longest algorithm name
  496. void init_max_name_len()
  497. {
  498. size_t i;
  499. size_t nb_names = sizeof(algo_names)/sizeof(algo_names[0]);
  500. for (i=0; i<nb_names; ++i) {
  501. const char *p = algo_names[i];
  502. size_t name_len = p ? strlen(p) : 0;
  503. if (max_name_len<name_len)
  504. max_name_len = name_len;
  505. }
  506. name_spaces_pad = (char*) malloc(max_name_len+16);
  507. if (0==name_spaces_pad) {
  508. perror("malloc failed");
  509. exit(1);
  510. }
  511. }
  512. // Pick the fastest CPU hasher
  513. static enum sha256_algos pick_fastest_algo()
  514. {
  515. double best_rate = -1.0;
  516. enum sha256_algos best_algo = 0;
  517. applog(LOG_ERR, "benchmarking all sha256 algorithms ...");
  518. bench_algo(&best_rate, &best_algo, ALGO_C);
  519. #if defined(WANT_SSE2_4WAY)
  520. bench_algo(&best_rate, &best_algo, ALGO_4WAY);
  521. #endif
  522. #if defined(WANT_VIA_PADLOCK)
  523. bench_algo(&best_rate, &best_algo, ALGO_VIA);
  524. #endif
  525. bench_algo(&best_rate, &best_algo, ALGO_CRYPTOPP);
  526. #if defined(WANT_CRYPTOPP_ASM32)
  527. bench_algo(&best_rate, &best_algo, ALGO_CRYPTOPP_ASM32);
  528. #endif
  529. #if defined(WANT_X8632_SSE2)
  530. bench_algo(&best_rate, &best_algo, ALGO_SSE2_32);
  531. #endif
  532. #if defined(WANT_X8664_SSE2)
  533. bench_algo(&best_rate, &best_algo, ALGO_SSE2_64);
  534. #endif
  535. #if defined(WANT_X8664_SSE4)
  536. bench_algo(&best_rate, &best_algo, ALGO_SSE4_64);
  537. #endif
  538. #if defined(WANT_ALTIVEC_4WAY)
  539. bench_algo(&best_rate, &best_algo, ALGO_ALTIVEC_4WAY);
  540. #endif
  541. size_t n = max_name_len - strlen(algo_names[best_algo]);
  542. memset(name_spaces_pad, ' ', n);
  543. name_spaces_pad[n] = 0;
  544. applog(
  545. LOG_ERR,
  546. "\"%s\"%s : is fastest algorithm at %.5f MH/s",
  547. algo_names[best_algo],
  548. name_spaces_pad,
  549. best_rate
  550. );
  551. return best_algo;
  552. }
  553. /* FIXME: Use asprintf for better errors. */
  554. char *set_algo(const char *arg, enum sha256_algos *algo)
  555. {
  556. enum sha256_algos i;
  557. if (!strcmp(arg, "auto")) {
  558. *algo = pick_fastest_algo();
  559. return NULL;
  560. }
  561. for (i = 0; i < ARRAY_SIZE(algo_names); i++) {
  562. if (algo_names[i] && !strcmp(arg, algo_names[i])) {
  563. *algo = i;
  564. return NULL;
  565. }
  566. }
  567. return "Unknown algorithm";
  568. }
  569. void show_algo(char buf[OPT_SHOW_LEN], const enum sha256_algos *algo)
  570. {
  571. strncpy(buf, algo_names[*algo], OPT_SHOW_LEN);
  572. }
  573. #endif
  574. #ifdef WANT_CPUMINE
  575. char *force_nthreads_int(const char *arg, int *i)
  576. {
  577. forced_n_threads = true;
  578. return set_int_range(arg, i, 0, 9999);
  579. }
  580. #endif
  581. #ifdef WANT_CPUMINE
  582. static void cpu_detect()
  583. {
  584. int i;
  585. // Reckon number of cores in the box
  586. #if defined(WIN32)
  587. {
  588. DWORD system_am;
  589. DWORD process_am;
  590. BOOL ok = GetProcessAffinityMask(
  591. GetCurrentProcess(),
  592. &system_am,
  593. &process_am
  594. );
  595. if (!ok) {
  596. applog(LOG_ERR, "couldn't figure out number of processors :(");
  597. num_processors = 1;
  598. } else {
  599. size_t n = 32;
  600. num_processors = 0;
  601. while (n--)
  602. if (process_am & (1<<n))
  603. ++num_processors;
  604. }
  605. }
  606. #else
  607. num_processors = sysconf(_SC_NPROCESSORS_ONLN);
  608. #endif /* !WIN32 */
  609. if (opt_n_threads < 0 || !forced_n_threads) {
  610. if (total_devices && !opt_usecpu)
  611. opt_n_threads = 0;
  612. else
  613. opt_n_threads = num_processors;
  614. }
  615. if (num_processors < 1)
  616. return;
  617. cpus = calloc(opt_n_threads, sizeof(struct cgpu_info));
  618. if (unlikely(!cpus))
  619. quit(1, "Failed to calloc cpus");
  620. for (i = 0; i < opt_n_threads; ++i) {
  621. struct cgpu_info *cgpu;
  622. cgpu = &cpus[i];
  623. cgpu->api = &cpu_api;
  624. cgpu->deven = DEV_ENABLED;
  625. cgpu->threads = 1;
  626. cgpu->kname = algo_names[opt_algo];
  627. add_cgpu(cgpu);
  628. }
  629. }
  630. static void reinit_cpu_device(struct cgpu_info *cpu)
  631. {
  632. tq_push(thr_info[cpur_thr_id].q, cpu);
  633. }
  634. static bool cpu_thread_prepare(struct thr_info *thr)
  635. {
  636. thread_reportin(thr);
  637. return true;
  638. }
  639. static uint64_t cpu_can_limit_work(struct thr_info *thr)
  640. {
  641. return 0xfffff;
  642. }
  643. static bool cpu_thread_init(struct thr_info *thr)
  644. {
  645. const int thr_id = thr->id;
  646. /* Set worker threads to nice 19 and then preferentially to SCHED_IDLE
  647. * and if that fails, then SCHED_BATCH. No need for this to be an
  648. * error if it fails */
  649. setpriority(PRIO_PROCESS, 0, 19);
  650. drop_policy();
  651. /* Cpu affinity only makes sense if the number of threads is a multiple
  652. * of the number of CPUs */
  653. if (!(opt_n_threads % num_processors))
  654. affine_to_cpu(dev_from_id(thr_id), dev_from_id(thr_id) % num_processors);
  655. return true;
  656. }
  657. static int64_t cpu_scanhash(struct thr_info *thr, struct work *work, int64_t max_nonce)
  658. {
  659. const int thr_id = thr->id;
  660. uint32_t first_nonce = work->blk.nonce;
  661. uint32_t last_nonce;
  662. bool rc;
  663. CPUSearch:
  664. last_nonce = first_nonce;
  665. rc = false;
  666. /* scan nonces for a proof-of-work hash */
  667. {
  668. sha256_func func = sha256_funcs[opt_algo];
  669. rc = (*func)(
  670. thr,
  671. work->midstate,
  672. work->data,
  673. work->hash1,
  674. work->hash,
  675. work->target,
  676. max_nonce,
  677. &last_nonce,
  678. work->blk.nonce
  679. );
  680. }
  681. /* if nonce found, submit work */
  682. if (unlikely(rc)) {
  683. applog(LOG_DEBUG, "CPU %d found something?", dev_from_id(thr_id));
  684. if (unlikely(!submit_work_sync(thr, work))) {
  685. applog(LOG_ERR, "Failed to submit_work_sync in miner_thread %d", thr_id);
  686. }
  687. work->blk.nonce = last_nonce + 1;
  688. goto CPUSearch;
  689. }
  690. else
  691. if (unlikely(last_nonce == first_nonce))
  692. return 0;
  693. work->blk.nonce = last_nonce + 1;
  694. return last_nonce - first_nonce + 1;
  695. }
  696. struct device_api cpu_api = {
  697. .dname = "cpu",
  698. .name = "CPU",
  699. .api_detect = cpu_detect,
  700. .reinit_device = reinit_cpu_device,
  701. .thread_prepare = cpu_thread_prepare,
  702. .can_limit_work = cpu_can_limit_work,
  703. .thread_init = cpu_thread_init,
  704. .scanhash = cpu_scanhash,
  705. };
  706. #endif