driver-opencl.c 47 KB

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  1. /*
  2. * Copyright 2011-2012 Con Kolivas
  3. * Copyright 2011-2013 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. #ifdef WIN32
  13. #include <winsock2.h>
  14. #endif
  15. #ifdef HAVE_CURSES
  16. #include <curses.h>
  17. #endif
  18. #ifndef WIN32
  19. #include <dlfcn.h>
  20. #else
  21. #include <windows.h>
  22. #endif
  23. #include <string.h>
  24. #include <stdbool.h>
  25. #include <stdint.h>
  26. #include <sys/types.h>
  27. #ifndef WIN32
  28. #include <sys/resource.h>
  29. #endif
  30. #include <ccan/opt/opt.h>
  31. #define OMIT_OPENCL_API
  32. #include "compat.h"
  33. #include "miner.h"
  34. #include "driver-opencl.h"
  35. #include "findnonce.h"
  36. #include "ocl.h"
  37. #include "adl.h"
  38. /* TODO: cleanup externals ********************/
  39. #ifdef HAVE_OPENCL
  40. /* Platform API */
  41. CL_API_ENTRY cl_int CL_API_CALL
  42. (*clGetPlatformIDs)(cl_uint /* num_entries */,
  43. cl_platform_id * /* platforms */,
  44. cl_uint * /* num_platforms */) CL_API_SUFFIX__VERSION_1_0;
  45. CL_API_ENTRY cl_int CL_API_CALL
  46. (*clGetPlatformInfo)(cl_platform_id /* platform */,
  47. cl_platform_info /* param_name */,
  48. size_t /* param_value_size */,
  49. void * /* param_value */,
  50. size_t * /* param_value_size_ret */) CL_API_SUFFIX__VERSION_1_0;
  51. /* Device APIs */
  52. CL_API_ENTRY cl_int CL_API_CALL
  53. (*clGetDeviceIDs)(cl_platform_id /* platform */,
  54. cl_device_type /* device_type */,
  55. cl_uint /* num_entries */,
  56. cl_device_id * /* devices */,
  57. cl_uint * /* num_devices */) CL_API_SUFFIX__VERSION_1_0;
  58. CL_API_ENTRY cl_int CL_API_CALL
  59. (*clGetDeviceInfo)(cl_device_id /* device */,
  60. cl_device_info /* param_name */,
  61. size_t /* param_value_size */,
  62. void * /* param_value */,
  63. size_t * /* param_value_size_ret */) CL_API_SUFFIX__VERSION_1_0;
  64. /* Context APIs */
  65. CL_API_ENTRY cl_context CL_API_CALL
  66. (*clCreateContextFromType)(const cl_context_properties * /* properties */,
  67. cl_device_type /* device_type */,
  68. void (CL_CALLBACK * /* pfn_notify*/ )(const char *, const void *, size_t, void *),
  69. void * /* user_data */,
  70. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  71. CL_API_ENTRY cl_int CL_API_CALL
  72. (*clReleaseContext)(cl_context /* context */) CL_API_SUFFIX__VERSION_1_0;
  73. /* Command Queue APIs */
  74. CL_API_ENTRY cl_command_queue CL_API_CALL
  75. (*clCreateCommandQueue)(cl_context /* context */,
  76. cl_device_id /* device */,
  77. cl_command_queue_properties /* properties */,
  78. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  79. CL_API_ENTRY cl_int CL_API_CALL
  80. (*clReleaseCommandQueue)(cl_command_queue /* command_queue */) CL_API_SUFFIX__VERSION_1_0;
  81. /* Memory Object APIs */
  82. CL_API_ENTRY cl_mem CL_API_CALL
  83. (*clCreateBuffer)(cl_context /* context */,
  84. cl_mem_flags /* flags */,
  85. size_t /* size */,
  86. void * /* host_ptr */,
  87. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  88. /* Program Object APIs */
  89. CL_API_ENTRY cl_program CL_API_CALL
  90. (*clCreateProgramWithSource)(cl_context /* context */,
  91. cl_uint /* count */,
  92. const char ** /* strings */,
  93. const size_t * /* lengths */,
  94. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  95. CL_API_ENTRY cl_program CL_API_CALL
  96. (*clCreateProgramWithBinary)(cl_context /* context */,
  97. cl_uint /* num_devices */,
  98. const cl_device_id * /* device_list */,
  99. const size_t * /* lengths */,
  100. const unsigned char ** /* binaries */,
  101. cl_int * /* binary_status */,
  102. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  103. CL_API_ENTRY cl_int CL_API_CALL
  104. (*clReleaseProgram)(cl_program /* program */) CL_API_SUFFIX__VERSION_1_0;
  105. CL_API_ENTRY cl_int CL_API_CALL
  106. (*clBuildProgram)(cl_program /* program */,
  107. cl_uint /* num_devices */,
  108. const cl_device_id * /* device_list */,
  109. const char * /* options */,
  110. void (CL_CALLBACK * /* pfn_notify */)(cl_program /* program */, void * /* user_data */),
  111. void * /* user_data */) CL_API_SUFFIX__VERSION_1_0;
  112. CL_API_ENTRY cl_int CL_API_CALL
  113. (*clGetProgramInfo)(cl_program /* program */,
  114. cl_program_info /* param_name */,
  115. size_t /* param_value_size */,
  116. void * /* param_value */,
  117. size_t * /* param_value_size_ret */) CL_API_SUFFIX__VERSION_1_0;
  118. CL_API_ENTRY cl_int CL_API_CALL
  119. (*clGetProgramBuildInfo)(cl_program /* program */,
  120. cl_device_id /* device */,
  121. cl_program_build_info /* param_name */,
  122. size_t /* param_value_size */,
  123. void * /* param_value */,
  124. size_t * /* param_value_size_ret */) CL_API_SUFFIX__VERSION_1_0;
  125. /* Kernel Object APIs */
  126. CL_API_ENTRY cl_kernel CL_API_CALL
  127. (*clCreateKernel)(cl_program /* program */,
  128. const char * /* kernel_name */,
  129. cl_int * /* errcode_ret */) CL_API_SUFFIX__VERSION_1_0;
  130. CL_API_ENTRY cl_int CL_API_CALL
  131. (*clReleaseKernel)(cl_kernel /* kernel */) CL_API_SUFFIX__VERSION_1_0;
  132. CL_API_ENTRY cl_int CL_API_CALL
  133. (*clSetKernelArg)(cl_kernel /* kernel */,
  134. cl_uint /* arg_index */,
  135. size_t /* arg_size */,
  136. const void * /* arg_value */) CL_API_SUFFIX__VERSION_1_0;
  137. /* Flush and Finish APIs */
  138. CL_API_ENTRY cl_int CL_API_CALL
  139. (*clFinish)(cl_command_queue /* command_queue */) CL_API_SUFFIX__VERSION_1_0;
  140. /* Enqueued Commands APIs */
  141. CL_API_ENTRY cl_int CL_API_CALL
  142. (*clEnqueueReadBuffer)(cl_command_queue /* command_queue */,
  143. cl_mem /* buffer */,
  144. cl_bool /* blocking_read */,
  145. size_t /* offset */,
  146. size_t /* size */,
  147. void * /* ptr */,
  148. cl_uint /* num_events_in_wait_list */,
  149. const cl_event * /* event_wait_list */,
  150. cl_event * /* event */) CL_API_SUFFIX__VERSION_1_0;
  151. CL_API_ENTRY cl_int CL_API_CALL
  152. (*clEnqueueWriteBuffer)(cl_command_queue /* command_queue */,
  153. cl_mem /* buffer */,
  154. cl_bool /* blocking_write */,
  155. size_t /* offset */,
  156. size_t /* size */,
  157. const void * /* ptr */,
  158. cl_uint /* num_events_in_wait_list */,
  159. const cl_event * /* event_wait_list */,
  160. cl_event * /* event */) CL_API_SUFFIX__VERSION_1_0;
  161. CL_API_ENTRY cl_int CL_API_CALL
  162. (*clEnqueueNDRangeKernel)(cl_command_queue /* command_queue */,
  163. cl_kernel /* kernel */,
  164. cl_uint /* work_dim */,
  165. const size_t * /* global_work_offset */,
  166. const size_t * /* global_work_size */,
  167. const size_t * /* local_work_size */,
  168. cl_uint /* num_events_in_wait_list */,
  169. const cl_event * /* event_wait_list */,
  170. cl_event * /* event */) CL_API_SUFFIX__VERSION_1_0;
  171. #ifdef WIN32
  172. #define dlsym (void*)GetProcAddress
  173. #define dlclose FreeLibrary
  174. #endif
  175. #define LOAD_OCL_SYM(sym) do { \
  176. if (!(sym = dlsym(cl, #sym))) { \
  177. applog(LOG_ERR, "Failed to load OpenCL symbol " #sym ", no GPUs usable"); \
  178. dlclose(cl); \
  179. return false; \
  180. } \
  181. } while(0)
  182. static bool
  183. load_opencl_symbols() {
  184. #if defined(__APPLE__)
  185. void *cl = dlopen("/System/Library/Frameworks/OpenCL.framework/Versions/Current/OpenCL", RTLD_LAZY);
  186. #elif !defined(WIN32)
  187. void *cl = dlopen("libOpenCL.so", RTLD_LAZY);
  188. #else
  189. HMODULE cl = LoadLibrary("OpenCL.dll");
  190. #endif
  191. if (!cl)
  192. {
  193. applog(LOG_ERR, "Failed to load OpenCL library, no GPUs usable");
  194. return false;
  195. }
  196. LOAD_OCL_SYM(clGetPlatformIDs);
  197. LOAD_OCL_SYM(clGetPlatformInfo);
  198. LOAD_OCL_SYM(clGetDeviceIDs);
  199. LOAD_OCL_SYM(clGetDeviceInfo);
  200. LOAD_OCL_SYM(clCreateContextFromType);
  201. LOAD_OCL_SYM(clReleaseContext);
  202. LOAD_OCL_SYM(clCreateCommandQueue);
  203. LOAD_OCL_SYM(clReleaseCommandQueue);
  204. LOAD_OCL_SYM(clCreateBuffer);
  205. LOAD_OCL_SYM(clCreateProgramWithSource);
  206. LOAD_OCL_SYM(clCreateProgramWithBinary);
  207. LOAD_OCL_SYM(clReleaseProgram);
  208. LOAD_OCL_SYM(clBuildProgram);
  209. LOAD_OCL_SYM(clGetProgramInfo);
  210. LOAD_OCL_SYM(clGetProgramBuildInfo);
  211. LOAD_OCL_SYM(clCreateKernel);
  212. LOAD_OCL_SYM(clReleaseKernel);
  213. LOAD_OCL_SYM(clSetKernelArg);
  214. LOAD_OCL_SYM(clFinish);
  215. LOAD_OCL_SYM(clEnqueueReadBuffer);
  216. LOAD_OCL_SYM(clEnqueueWriteBuffer);
  217. LOAD_OCL_SYM(clEnqueueNDRangeKernel);
  218. return true;
  219. }
  220. #endif
  221. #ifdef HAVE_CURSES
  222. extern WINDOW *mainwin, *statuswin, *logwin;
  223. extern void enable_curses(void);
  224. #endif
  225. extern int mining_threads;
  226. extern double total_secs;
  227. extern int opt_g_threads;
  228. extern bool ping;
  229. extern bool opt_loginput;
  230. extern char *opt_kernel_path;
  231. extern int gpur_thr_id;
  232. extern bool opt_noadl;
  233. extern bool have_opencl;
  234. extern void *miner_thread(void *userdata);
  235. extern int dev_from_id(int thr_id);
  236. extern void decay_time(double *f, double fadd);
  237. /**********************************************/
  238. #ifdef HAVE_ADL
  239. extern float gpu_temp(int gpu);
  240. extern int gpu_fanspeed(int gpu);
  241. extern int gpu_fanpercent(int gpu);
  242. #endif
  243. #ifdef HAVE_SENSORS
  244. #include <sensors/sensors.h>
  245. struct opencl_device_data {
  246. const sensors_chip_name *sensor;
  247. };
  248. #endif
  249. #ifdef HAVE_OPENCL
  250. char *set_vector(char *arg)
  251. {
  252. int i, val = 0, device = 0;
  253. char *nextptr;
  254. nextptr = strtok(arg, ",");
  255. if (nextptr == NULL)
  256. return "Invalid parameters for set vector";
  257. val = atoi(nextptr);
  258. if (val != 1 && val != 2 && val != 4)
  259. return "Invalid value passed to set_vector";
  260. gpus[device++].vwidth = val;
  261. while ((nextptr = strtok(NULL, ",")) != NULL) {
  262. val = atoi(nextptr);
  263. if (val != 1 && val != 2 && val != 4)
  264. return "Invalid value passed to set_vector";
  265. gpus[device++].vwidth = val;
  266. }
  267. if (device == 1) {
  268. for (i = device; i < MAX_GPUDEVICES; i++)
  269. gpus[i].vwidth = gpus[0].vwidth;
  270. }
  271. return NULL;
  272. }
  273. char *set_worksize(char *arg)
  274. {
  275. int i, val = 0, device = 0;
  276. char *nextptr;
  277. nextptr = strtok(arg, ",");
  278. if (nextptr == NULL)
  279. return "Invalid parameters for set work size";
  280. val = atoi(nextptr);
  281. if (val < 1 || val > 9999)
  282. return "Invalid value passed to set_worksize";
  283. gpus[device++].work_size = val;
  284. while ((nextptr = strtok(NULL, ",")) != NULL) {
  285. val = atoi(nextptr);
  286. if (val < 1 || val > 9999)
  287. return "Invalid value passed to set_worksize";
  288. gpus[device++].work_size = val;
  289. }
  290. if (device == 1) {
  291. for (i = device; i < MAX_GPUDEVICES; i++)
  292. gpus[i].work_size = gpus[0].work_size;
  293. }
  294. return NULL;
  295. }
  296. #ifdef USE_SCRYPT
  297. char *set_shaders(char *arg)
  298. {
  299. int i, val = 0, device = 0;
  300. char *nextptr;
  301. nextptr = strtok(arg, ",");
  302. if (nextptr == NULL)
  303. return "Invalid parameters for set lookup gap";
  304. val = atoi(nextptr);
  305. gpus[device++].shaders = val;
  306. while ((nextptr = strtok(NULL, ",")) != NULL) {
  307. val = atoi(nextptr);
  308. gpus[device++].shaders = val;
  309. }
  310. if (device == 1) {
  311. for (i = device; i < MAX_GPUDEVICES; i++)
  312. gpus[i].shaders = gpus[0].shaders;
  313. }
  314. return NULL;
  315. }
  316. char *set_lookup_gap(char *arg)
  317. {
  318. int i, val = 0, device = 0;
  319. char *nextptr;
  320. nextptr = strtok(arg, ",");
  321. if (nextptr == NULL)
  322. return "Invalid parameters for set lookup gap";
  323. val = atoi(nextptr);
  324. gpus[device++].opt_lg = val;
  325. while ((nextptr = strtok(NULL, ",")) != NULL) {
  326. val = atoi(nextptr);
  327. gpus[device++].opt_lg = val;
  328. }
  329. if (device == 1) {
  330. for (i = device; i < MAX_GPUDEVICES; i++)
  331. gpus[i].opt_lg = gpus[0].opt_lg;
  332. }
  333. return NULL;
  334. }
  335. char *set_thread_concurrency(char *arg)
  336. {
  337. int i, val = 0, device = 0;
  338. char *nextptr;
  339. nextptr = strtok(arg, ",");
  340. if (nextptr == NULL)
  341. return "Invalid parameters for set thread concurrency";
  342. val = atoi(nextptr);
  343. gpus[device++].opt_tc = val;
  344. while ((nextptr = strtok(NULL, ",")) != NULL) {
  345. val = atoi(nextptr);
  346. gpus[device++].opt_tc = val;
  347. }
  348. if (device == 1) {
  349. for (i = device; i < MAX_GPUDEVICES; i++)
  350. gpus[i].opt_tc = gpus[0].opt_tc;
  351. }
  352. return NULL;
  353. }
  354. #endif
  355. static enum cl_kernels select_kernel(char *arg)
  356. {
  357. if (!strcmp(arg, "diablo"))
  358. return KL_DIABLO;
  359. if (!strcmp(arg, "diakgcn"))
  360. return KL_DIAKGCN;
  361. if (!strcmp(arg, "poclbm"))
  362. return KL_POCLBM;
  363. if (!strcmp(arg, "phatk"))
  364. return KL_PHATK;
  365. #ifdef USE_SCRYPT
  366. if (!strcmp(arg, "scrypt"))
  367. return KL_SCRYPT;
  368. #endif
  369. return KL_NONE;
  370. }
  371. char *set_kernel(char *arg)
  372. {
  373. enum cl_kernels kern;
  374. int i, device = 0;
  375. char *nextptr;
  376. if (opt_scrypt)
  377. return "Cannot use sha256 kernel with scrypt";
  378. nextptr = strtok(arg, ",");
  379. if (nextptr == NULL)
  380. return "Invalid parameters for set kernel";
  381. kern = select_kernel(nextptr);
  382. if (kern == KL_NONE)
  383. return "Invalid parameter to set_kernel";
  384. gpus[device++].kernel = kern;
  385. while ((nextptr = strtok(NULL, ",")) != NULL) {
  386. kern = select_kernel(nextptr);
  387. if (kern == KL_NONE)
  388. return "Invalid parameter to set_kernel";
  389. gpus[device++].kernel = kern;
  390. }
  391. if (device == 1) {
  392. for (i = device; i < MAX_GPUDEVICES; i++)
  393. gpus[i].kernel = gpus[0].kernel;
  394. }
  395. return NULL;
  396. }
  397. #endif
  398. #ifdef HAVE_ADL
  399. /* This function allows us to map an adl device to an opencl device for when
  400. * simple enumeration has failed to match them. */
  401. char *set_gpu_map(char *arg)
  402. {
  403. int val1 = 0, val2 = 0;
  404. char *nextptr;
  405. nextptr = strtok(arg, ",");
  406. if (nextptr == NULL)
  407. return "Invalid parameters for set gpu map";
  408. if (sscanf(arg, "%d:%d", &val1, &val2) != 2)
  409. return "Invalid description for map pair";
  410. if (val1 < 0 || val1 > MAX_GPUDEVICES || val2 < 0 || val2 > MAX_GPUDEVICES)
  411. return "Invalid value passed to set_gpu_map";
  412. gpus[val1].virtual_adl = val2;
  413. gpus[val1].mapped = true;
  414. while ((nextptr = strtok(NULL, ",")) != NULL) {
  415. if (sscanf(nextptr, "%d:%d", &val1, &val2) != 2)
  416. return "Invalid description for map pair";
  417. if (val1 < 0 || val1 > MAX_GPUDEVICES || val2 < 0 || val2 > MAX_GPUDEVICES)
  418. return "Invalid value passed to set_gpu_map";
  419. gpus[val1].virtual_adl = val2;
  420. gpus[val1].mapped = true;
  421. }
  422. return NULL;
  423. }
  424. void get_intrange(char *arg, int *val1, int *val2)
  425. {
  426. if (sscanf(arg, "%d-%d", val1, val2) == 1) {
  427. *val2 = *val1;
  428. *val1 = 0;
  429. }
  430. }
  431. char *set_gpu_engine(char *arg)
  432. {
  433. int i, val1 = 0, val2 = 0, device = 0;
  434. char *nextptr;
  435. nextptr = strtok(arg, ",");
  436. if (nextptr == NULL)
  437. return "Invalid parameters for set gpu engine";
  438. get_intrange(nextptr, &val1, &val2);
  439. if (val1 < 0 || val1 > 9999 || val2 < 0 || val2 > 9999)
  440. return "Invalid value passed to set_gpu_engine";
  441. gpus[device].min_engine = val1;
  442. gpus[device].gpu_engine = val2;
  443. device++;
  444. while ((nextptr = strtok(NULL, ",")) != NULL) {
  445. get_intrange(nextptr, &val1, &val2);
  446. if (val1 < 0 || val1 > 9999 || val2 < 0 || val2 > 9999)
  447. return "Invalid value passed to set_gpu_engine";
  448. gpus[device].min_engine = val1;
  449. gpus[device].gpu_engine = val2;
  450. device++;
  451. }
  452. if (device == 1) {
  453. for (i = 1; i < MAX_GPUDEVICES; i++) {
  454. gpus[i].min_engine = gpus[0].min_engine;
  455. gpus[i].gpu_engine = gpus[0].gpu_engine;
  456. }
  457. }
  458. return NULL;
  459. }
  460. char *set_gpu_fan(char *arg)
  461. {
  462. int i, val1 = 0, val2 = 0, device = 0;
  463. char *nextptr;
  464. nextptr = strtok(arg, ",");
  465. if (nextptr == NULL)
  466. return "Invalid parameters for set gpu fan";
  467. get_intrange(nextptr, &val1, &val2);
  468. if (val1 < 0 || val1 > 100 || val2 < 0 || val2 > 100)
  469. return "Invalid value passed to set_gpu_fan";
  470. gpus[device].min_fan = val1;
  471. gpus[device].gpu_fan = val2;
  472. device++;
  473. while ((nextptr = strtok(NULL, ",")) != NULL) {
  474. get_intrange(nextptr, &val1, &val2);
  475. if (val1 < 0 || val1 > 100 || val2 < 0 || val2 > 100)
  476. return "Invalid value passed to set_gpu_fan";
  477. gpus[device].min_fan = val1;
  478. gpus[device].gpu_fan = val2;
  479. device++;
  480. }
  481. if (device == 1) {
  482. for (i = 1; i < MAX_GPUDEVICES; i++) {
  483. gpus[i].min_fan = gpus[0].min_fan;
  484. gpus[i].gpu_fan = gpus[0].gpu_fan;
  485. }
  486. }
  487. return NULL;
  488. }
  489. char *set_gpu_memclock(char *arg)
  490. {
  491. int i, val = 0, device = 0;
  492. char *nextptr;
  493. nextptr = strtok(arg, ",");
  494. if (nextptr == NULL)
  495. return "Invalid parameters for set gpu memclock";
  496. val = atoi(nextptr);
  497. if (val < 0 || val >= 9999)
  498. return "Invalid value passed to set_gpu_memclock";
  499. gpus[device++].gpu_memclock = val;
  500. while ((nextptr = strtok(NULL, ",")) != NULL) {
  501. val = atoi(nextptr);
  502. if (val < 0 || val >= 9999)
  503. return "Invalid value passed to set_gpu_memclock";
  504. gpus[device++].gpu_memclock = val;
  505. }
  506. if (device == 1) {
  507. for (i = device; i < MAX_GPUDEVICES; i++)
  508. gpus[i].gpu_memclock = gpus[0].gpu_memclock;
  509. }
  510. return NULL;
  511. }
  512. char *set_gpu_memdiff(char *arg)
  513. {
  514. int i, val = 0, device = 0;
  515. char *nextptr;
  516. nextptr = strtok(arg, ",");
  517. if (nextptr == NULL)
  518. return "Invalid parameters for set gpu memdiff";
  519. val = atoi(nextptr);
  520. if (val < -9999 || val > 9999)
  521. return "Invalid value passed to set_gpu_memdiff";
  522. gpus[device++].gpu_memdiff = val;
  523. while ((nextptr = strtok(NULL, ",")) != NULL) {
  524. val = atoi(nextptr);
  525. if (val < -9999 || val > 9999)
  526. return "Invalid value passed to set_gpu_memdiff";
  527. gpus[device++].gpu_memdiff = val;
  528. }
  529. if (device == 1) {
  530. for (i = device; i < MAX_GPUDEVICES; i++)
  531. gpus[i].gpu_memdiff = gpus[0].gpu_memdiff;
  532. }
  533. return NULL;
  534. }
  535. char *set_gpu_powertune(char *arg)
  536. {
  537. int i, val = 0, device = 0;
  538. char *nextptr;
  539. nextptr = strtok(arg, ",");
  540. if (nextptr == NULL)
  541. return "Invalid parameters for set gpu powertune";
  542. val = atoi(nextptr);
  543. if (val < -99 || val > 99)
  544. return "Invalid value passed to set_gpu_powertune";
  545. gpus[device++].gpu_powertune = val;
  546. while ((nextptr = strtok(NULL, ",")) != NULL) {
  547. val = atoi(nextptr);
  548. if (val < -99 || val > 99)
  549. return "Invalid value passed to set_gpu_powertune";
  550. gpus[device++].gpu_powertune = val;
  551. }
  552. if (device == 1) {
  553. for (i = device; i < MAX_GPUDEVICES; i++)
  554. gpus[i].gpu_powertune = gpus[0].gpu_powertune;
  555. }
  556. return NULL;
  557. }
  558. char *set_gpu_vddc(char *arg)
  559. {
  560. int i, device = 0;
  561. float val = 0;
  562. char *nextptr;
  563. nextptr = strtok(arg, ",");
  564. if (nextptr == NULL)
  565. return "Invalid parameters for set gpu vddc";
  566. val = atof(nextptr);
  567. if (val < 0 || val >= 9999)
  568. return "Invalid value passed to set_gpu_vddc";
  569. gpus[device++].gpu_vddc = val;
  570. while ((nextptr = strtok(NULL, ",")) != NULL) {
  571. val = atof(nextptr);
  572. if (val < 0 || val >= 9999)
  573. return "Invalid value passed to set_gpu_vddc";
  574. gpus[device++].gpu_vddc = val;
  575. }
  576. if (device == 1) {
  577. for (i = device; i < MAX_GPUDEVICES; i++)
  578. gpus[i].gpu_vddc = gpus[0].gpu_vddc;
  579. }
  580. return NULL;
  581. }
  582. char *set_temp_overheat(char *arg)
  583. {
  584. int i, val = 0, device = 0, *to;
  585. char *nextptr;
  586. nextptr = strtok(arg, ",");
  587. if (nextptr == NULL)
  588. return "Invalid parameters for set temp overheat";
  589. val = atoi(nextptr);
  590. if (val < 0 || val > 200)
  591. return "Invalid value passed to set temp overheat";
  592. to = &gpus[device++].adl.overtemp;
  593. *to = val;
  594. while ((nextptr = strtok(NULL, ",")) != NULL) {
  595. val = atoi(nextptr);
  596. if (val < 0 || val > 200)
  597. return "Invalid value passed to set temp overheat";
  598. to = &gpus[device++].adl.overtemp;
  599. *to = val;
  600. }
  601. if (device == 1) {
  602. for (i = device; i < MAX_GPUDEVICES; i++) {
  603. to = &gpus[i].adl.overtemp;
  604. *to = val;
  605. }
  606. }
  607. return NULL;
  608. }
  609. #endif
  610. #ifdef HAVE_OPENCL
  611. char *set_intensity(char *arg)
  612. {
  613. int i, device = 0, *tt;
  614. char *nextptr, val = 0;
  615. nextptr = strtok(arg, ",");
  616. if (nextptr == NULL)
  617. return "Invalid parameters for set intensity";
  618. if (!strncasecmp(nextptr, "d", 1))
  619. gpus[device].dynamic = true;
  620. else {
  621. gpus[device].dynamic = false;
  622. val = atoi(nextptr);
  623. if (val < MIN_INTENSITY || val > MAX_INTENSITY)
  624. return "Invalid value passed to set intensity";
  625. tt = &gpus[device].intensity;
  626. *tt = val;
  627. }
  628. device++;
  629. while ((nextptr = strtok(NULL, ",")) != NULL) {
  630. if (!strncasecmp(nextptr, "d", 1))
  631. gpus[device].dynamic = true;
  632. else {
  633. gpus[device].dynamic = false;
  634. val = atoi(nextptr);
  635. if (val < MIN_INTENSITY || val > MAX_INTENSITY)
  636. return "Invalid value passed to set intensity";
  637. tt = &gpus[device].intensity;
  638. *tt = val;
  639. }
  640. device++;
  641. }
  642. if (device == 1) {
  643. for (i = device; i < MAX_GPUDEVICES; i++) {
  644. gpus[i].dynamic = gpus[0].dynamic;
  645. gpus[i].intensity = gpus[0].intensity;
  646. }
  647. }
  648. return NULL;
  649. }
  650. #endif
  651. #ifdef HAVE_OPENCL
  652. struct device_drv opencl_api;
  653. char *print_ndevs_and_exit(int *ndevs)
  654. {
  655. opt_log_output = true;
  656. opencl_api.drv_detect();
  657. clear_adl(*ndevs);
  658. applog(LOG_INFO, "%i GPU devices max detected", *ndevs);
  659. exit(*ndevs);
  660. }
  661. #endif
  662. struct cgpu_info gpus[MAX_GPUDEVICES]; /* Maximum number apparently possible */
  663. struct cgpu_info *cpus;
  664. #ifdef HAVE_OPENCL
  665. /* In dynamic mode, only the first thread of each device will be in use.
  666. * This potentially could start a thread that was stopped with the start-stop
  667. * options if one were to disable dynamic from the menu on a paused GPU */
  668. void pause_dynamic_threads(int gpu)
  669. {
  670. struct cgpu_info *cgpu = &gpus[gpu];
  671. int i;
  672. for (i = 1; i < cgpu->threads; i++) {
  673. struct thr_info *thr;
  674. thr = get_thread(i);
  675. if (!thr->pause && cgpu->dynamic) {
  676. applog(LOG_WARNING, "Disabling extra threads due to dynamic mode.");
  677. applog(LOG_WARNING, "Tune dynamic intensity with --gpu-dyninterval");
  678. }
  679. thr->pause = cgpu->dynamic;
  680. if (!cgpu->dynamic && cgpu->deven != DEV_DISABLED)
  681. mt_enable(thr);
  682. }
  683. }
  684. struct device_drv opencl_api;
  685. #endif /* HAVE_OPENCL */
  686. #if defined(HAVE_OPENCL) && defined(HAVE_CURSES)
  687. void manage_gpu(void)
  688. {
  689. struct thr_info *thr;
  690. int selected, gpu, i;
  691. char checkin[40];
  692. char input;
  693. if (!opt_g_threads)
  694. return;
  695. opt_loginput = true;
  696. immedok(logwin, true);
  697. clear_logwin();
  698. retry:
  699. for (gpu = 0; gpu < nDevs; gpu++) {
  700. struct cgpu_info *cgpu = &gpus[gpu];
  701. double displayed_rolling, displayed_total;
  702. bool mhash_base = true;
  703. displayed_rolling = cgpu->rolling;
  704. displayed_total = cgpu->total_mhashes / total_secs;
  705. if (displayed_rolling < 1) {
  706. displayed_rolling *= 1000;
  707. displayed_total *= 1000;
  708. mhash_base = false;
  709. }
  710. wlog("%"PRIpreprv": %.1f / %.1f %sh/s | A:%d R:%d HW:%d U:%.2f/m I:%d\n",
  711. cgpu->proc_repr,
  712. displayed_rolling, displayed_total, mhash_base ? "M" : "K",
  713. cgpu->accepted, cgpu->rejected, cgpu->hw_errors,
  714. cgpu->utility, cgpu->intensity);
  715. #ifdef HAVE_ADL
  716. if (gpus[gpu].has_adl) {
  717. int engineclock = 0, memclock = 0, activity = 0, fanspeed = 0, fanpercent = 0, powertune = 0;
  718. float temp = 0, vddc = 0;
  719. if (gpu_stats(gpu, &temp, &engineclock, &memclock, &vddc, &activity, &fanspeed, &fanpercent, &powertune)) {
  720. char logline[255];
  721. strcpy(logline, ""); // In case it has no data
  722. if (temp != -1)
  723. sprintf(logline, "%.1f C ", temp);
  724. if (fanspeed != -1 || fanpercent != -1) {
  725. tailsprintf(logline, "F: ");
  726. if (fanpercent != -1)
  727. tailsprintf(logline, "%d%% ", fanpercent);
  728. if (fanspeed != -1)
  729. tailsprintf(logline, "(%d RPM) ", fanspeed);
  730. tailsprintf(logline, " ");
  731. }
  732. if (engineclock != -1)
  733. tailsprintf(logline, "E: %d MHz ", engineclock);
  734. if (memclock != -1)
  735. tailsprintf(logline, "M: %d MHz ", memclock);
  736. if (vddc != -1)
  737. tailsprintf(logline, "V: %.3fV ", vddc);
  738. if (activity != -1)
  739. tailsprintf(logline, "A: %d%% ", activity);
  740. if (powertune != -1)
  741. tailsprintf(logline, "P: %d%%", powertune);
  742. tailsprintf(logline, "\n");
  743. wlog(logline);
  744. }
  745. }
  746. #endif
  747. wlog("Last initialised: %s\n", cgpu->init);
  748. wlog("Intensity: ");
  749. if (gpus[gpu].dynamic)
  750. wlog("Dynamic (only one thread in use)\n");
  751. else
  752. wlog("%d\n", gpus[gpu].intensity);
  753. for (i = 0; i < mining_threads; i++) {
  754. thr = get_thread(i);
  755. if (thr->cgpu != cgpu)
  756. continue;
  757. get_datestamp(checkin, &thr->last);
  758. displayed_rolling = thr->rolling;
  759. if (!mhash_base)
  760. displayed_rolling *= 1000;
  761. wlog("Thread %d: %.1f %sh/s %s ", i, displayed_rolling, mhash_base ? "M" : "K" , cgpu->deven != DEV_DISABLED ? "Enabled" : "Disabled");
  762. switch (cgpu->status) {
  763. default:
  764. case LIFE_WELL:
  765. wlog("ALIVE");
  766. break;
  767. case LIFE_SICK:
  768. wlog("SICK reported in %s", checkin);
  769. break;
  770. case LIFE_DEAD:
  771. wlog("DEAD reported in %s", checkin);
  772. break;
  773. case LIFE_INIT:
  774. case LIFE_NOSTART:
  775. wlog("Never started");
  776. break;
  777. }
  778. if (thr->pause)
  779. wlog(" paused");
  780. wlog("\n");
  781. }
  782. wlog("\n");
  783. }
  784. wlogprint("[E]nable [D]isable [I]ntensity [R]estart GPU %s\n",adl_active ? "[C]hange settings" : "");
  785. wlogprint("Or press any other key to continue\n");
  786. input = getch();
  787. if (nDevs == 1)
  788. selected = 0;
  789. else
  790. selected = -1;
  791. if (!strncasecmp(&input, "e", 1)) {
  792. struct cgpu_info *cgpu;
  793. if (selected)
  794. selected = curses_int("Select GPU to enable");
  795. if (selected < 0 || selected >= nDevs) {
  796. wlogprint("Invalid selection\n");
  797. goto retry;
  798. }
  799. cgpu = &gpus[selected];
  800. if (gpus[selected].deven != DEV_DISABLED) {
  801. wlogprint("Device already enabled\n");
  802. goto retry;
  803. }
  804. gpus[selected].deven = DEV_ENABLED;
  805. if (cgpu->status != LIFE_WELL) {
  806. wlogprint("Must restart device before enabling it");
  807. goto retry;
  808. }
  809. proc_enable(cgpu);
  810. goto retry;
  811. } if (!strncasecmp(&input, "d", 1)) {
  812. if (selected)
  813. selected = curses_int("Select GPU to disable");
  814. if (selected < 0 || selected >= nDevs) {
  815. wlogprint("Invalid selection\n");
  816. goto retry;
  817. }
  818. if (gpus[selected].deven == DEV_DISABLED) {
  819. wlogprint("Device already disabled\n");
  820. goto retry;
  821. }
  822. gpus[selected].deven = DEV_DISABLED;
  823. goto retry;
  824. } else if (!strncasecmp(&input, "i", 1)) {
  825. int intensity;
  826. char *intvar;
  827. if (selected)
  828. selected = curses_int("Select GPU to change intensity on");
  829. if (selected < 0 || selected >= nDevs) {
  830. wlogprint("Invalid selection\n");
  831. goto retry;
  832. }
  833. intvar = curses_input("Set GPU scan intensity (d or " _MIN_INTENSITY_STR " -> " _MAX_INTENSITY_STR ")");
  834. if (!intvar) {
  835. wlogprint("Invalid input\n");
  836. goto retry;
  837. }
  838. if (!strncasecmp(intvar, "d", 1)) {
  839. wlogprint("Dynamic mode enabled on gpu %d\n", selected);
  840. gpus[selected].dynamic = true;
  841. pause_dynamic_threads(selected);
  842. free(intvar);
  843. goto retry;
  844. }
  845. intensity = atoi(intvar);
  846. free(intvar);
  847. if (intensity < MIN_INTENSITY || intensity > MAX_INTENSITY) {
  848. wlogprint("Invalid selection\n");
  849. goto retry;
  850. }
  851. gpus[selected].dynamic = false;
  852. gpus[selected].intensity = intensity;
  853. wlogprint("Intensity on gpu %d set to %d\n", selected, intensity);
  854. pause_dynamic_threads(selected);
  855. goto retry;
  856. } else if (!strncasecmp(&input, "r", 1)) {
  857. if (selected)
  858. selected = curses_int("Select GPU to attempt to restart");
  859. if (selected < 0 || selected >= nDevs) {
  860. wlogprint("Invalid selection\n");
  861. goto retry;
  862. }
  863. wlogprint("Attempting to restart threads of GPU %d\n", selected);
  864. reinit_device(&gpus[selected]);
  865. goto retry;
  866. } else if (adl_active && (!strncasecmp(&input, "c", 1))) {
  867. if (selected)
  868. selected = curses_int("Select GPU to change settings on");
  869. if (selected < 0 || selected >= nDevs) {
  870. wlogprint("Invalid selection\n");
  871. goto retry;
  872. }
  873. change_gpusettings(selected);
  874. goto retry;
  875. } else
  876. clear_logwin();
  877. immedok(logwin, false);
  878. opt_loginput = false;
  879. }
  880. #else
  881. void manage_gpu(void)
  882. {
  883. }
  884. #endif
  885. #ifdef HAVE_OPENCL
  886. static _clState *clStates[MAX_GPUDEVICES];
  887. #define CL_SET_BLKARG(blkvar) status |= clSetKernelArg(*kernel, num++, sizeof(uint), (void *)&blk->blkvar)
  888. #define CL_SET_ARG(var) status |= clSetKernelArg(*kernel, num++, sizeof(var), (void *)&var)
  889. #define CL_SET_VARG(args, var) status |= clSetKernelArg(*kernel, num++, args * sizeof(uint), (void *)var)
  890. static cl_int queue_poclbm_kernel(_clState *clState, dev_blk_ctx *blk, cl_uint threads)
  891. {
  892. cl_kernel *kernel = &clState->kernel;
  893. unsigned int num = 0;
  894. cl_int status = 0;
  895. CL_SET_BLKARG(ctx_a);
  896. CL_SET_BLKARG(ctx_b);
  897. CL_SET_BLKARG(ctx_c);
  898. CL_SET_BLKARG(ctx_d);
  899. CL_SET_BLKARG(ctx_e);
  900. CL_SET_BLKARG(ctx_f);
  901. CL_SET_BLKARG(ctx_g);
  902. CL_SET_BLKARG(ctx_h);
  903. CL_SET_BLKARG(cty_b);
  904. CL_SET_BLKARG(cty_c);
  905. CL_SET_BLKARG(cty_f);
  906. CL_SET_BLKARG(cty_g);
  907. CL_SET_BLKARG(cty_h);
  908. if (!clState->goffset) {
  909. cl_uint vwidth = clState->vwidth;
  910. uint *nonces = alloca(sizeof(uint) * vwidth);
  911. unsigned int i;
  912. for (i = 0; i < vwidth; i++)
  913. nonces[i] = blk->nonce + (i * threads);
  914. CL_SET_VARG(vwidth, nonces);
  915. }
  916. CL_SET_BLKARG(fW0);
  917. CL_SET_BLKARG(fW1);
  918. CL_SET_BLKARG(fW2);
  919. CL_SET_BLKARG(fW3);
  920. CL_SET_BLKARG(fW15);
  921. CL_SET_BLKARG(fW01r);
  922. CL_SET_BLKARG(D1A);
  923. CL_SET_BLKARG(C1addK5);
  924. CL_SET_BLKARG(B1addK6);
  925. CL_SET_BLKARG(W16addK16);
  926. CL_SET_BLKARG(W17addK17);
  927. CL_SET_BLKARG(PreVal4addT1);
  928. CL_SET_BLKARG(PreVal0);
  929. CL_SET_ARG(clState->outputBuffer);
  930. return status;
  931. }
  932. static cl_int queue_phatk_kernel(_clState *clState, dev_blk_ctx *blk,
  933. __maybe_unused cl_uint threads)
  934. {
  935. cl_kernel *kernel = &clState->kernel;
  936. cl_uint vwidth = clState->vwidth;
  937. unsigned int i, num = 0;
  938. cl_int status = 0;
  939. uint *nonces;
  940. CL_SET_BLKARG(ctx_a);
  941. CL_SET_BLKARG(ctx_b);
  942. CL_SET_BLKARG(ctx_c);
  943. CL_SET_BLKARG(ctx_d);
  944. CL_SET_BLKARG(ctx_e);
  945. CL_SET_BLKARG(ctx_f);
  946. CL_SET_BLKARG(ctx_g);
  947. CL_SET_BLKARG(ctx_h);
  948. CL_SET_BLKARG(cty_b);
  949. CL_SET_BLKARG(cty_c);
  950. CL_SET_BLKARG(cty_d);
  951. CL_SET_BLKARG(cty_f);
  952. CL_SET_BLKARG(cty_g);
  953. CL_SET_BLKARG(cty_h);
  954. nonces = alloca(sizeof(uint) * vwidth);
  955. for (i = 0; i < vwidth; i++)
  956. nonces[i] = blk->nonce + i;
  957. CL_SET_VARG(vwidth, nonces);
  958. CL_SET_BLKARG(W16);
  959. CL_SET_BLKARG(W17);
  960. CL_SET_BLKARG(PreVal4_2);
  961. CL_SET_BLKARG(PreVal0);
  962. CL_SET_BLKARG(PreW18);
  963. CL_SET_BLKARG(PreW19);
  964. CL_SET_BLKARG(PreW31);
  965. CL_SET_BLKARG(PreW32);
  966. CL_SET_ARG(clState->outputBuffer);
  967. return status;
  968. }
  969. static cl_int queue_diakgcn_kernel(_clState *clState, dev_blk_ctx *blk,
  970. __maybe_unused cl_uint threads)
  971. {
  972. cl_kernel *kernel = &clState->kernel;
  973. unsigned int num = 0;
  974. cl_int status = 0;
  975. if (!clState->goffset) {
  976. cl_uint vwidth = clState->vwidth;
  977. uint *nonces = alloca(sizeof(uint) * vwidth);
  978. unsigned int i;
  979. for (i = 0; i < vwidth; i++)
  980. nonces[i] = blk->nonce + i;
  981. CL_SET_VARG(vwidth, nonces);
  982. }
  983. CL_SET_BLKARG(PreVal0);
  984. CL_SET_BLKARG(PreVal4_2);
  985. CL_SET_BLKARG(cty_h);
  986. CL_SET_BLKARG(D1A);
  987. CL_SET_BLKARG(cty_b);
  988. CL_SET_BLKARG(cty_c);
  989. CL_SET_BLKARG(cty_f);
  990. CL_SET_BLKARG(cty_g);
  991. CL_SET_BLKARG(C1addK5);
  992. CL_SET_BLKARG(B1addK6);
  993. CL_SET_BLKARG(PreVal0addK7);
  994. CL_SET_BLKARG(W16addK16);
  995. CL_SET_BLKARG(W17addK17);
  996. CL_SET_BLKARG(PreW18);
  997. CL_SET_BLKARG(PreW19);
  998. CL_SET_BLKARG(W16);
  999. CL_SET_BLKARG(W17);
  1000. CL_SET_BLKARG(PreW31);
  1001. CL_SET_BLKARG(PreW32);
  1002. CL_SET_BLKARG(ctx_a);
  1003. CL_SET_BLKARG(ctx_b);
  1004. CL_SET_BLKARG(ctx_c);
  1005. CL_SET_BLKARG(ctx_d);
  1006. CL_SET_BLKARG(ctx_e);
  1007. CL_SET_BLKARG(ctx_f);
  1008. CL_SET_BLKARG(ctx_g);
  1009. CL_SET_BLKARG(ctx_h);
  1010. CL_SET_BLKARG(zeroA);
  1011. CL_SET_BLKARG(zeroB);
  1012. CL_SET_BLKARG(oneA);
  1013. CL_SET_BLKARG(twoA);
  1014. CL_SET_BLKARG(threeA);
  1015. CL_SET_BLKARG(fourA);
  1016. CL_SET_BLKARG(fiveA);
  1017. CL_SET_BLKARG(sixA);
  1018. CL_SET_BLKARG(sevenA);
  1019. CL_SET_ARG(clState->outputBuffer);
  1020. return status;
  1021. }
  1022. static cl_int queue_diablo_kernel(_clState *clState, dev_blk_ctx *blk, cl_uint threads)
  1023. {
  1024. cl_kernel *kernel = &clState->kernel;
  1025. unsigned int num = 0;
  1026. cl_int status = 0;
  1027. if (!clState->goffset) {
  1028. cl_uint vwidth = clState->vwidth;
  1029. uint *nonces = alloca(sizeof(uint) * vwidth);
  1030. unsigned int i;
  1031. for (i = 0; i < vwidth; i++)
  1032. nonces[i] = blk->nonce + (i * threads);
  1033. CL_SET_VARG(vwidth, nonces);
  1034. }
  1035. CL_SET_BLKARG(PreVal0);
  1036. CL_SET_BLKARG(PreVal0addK7);
  1037. CL_SET_BLKARG(PreVal4addT1);
  1038. CL_SET_BLKARG(PreW18);
  1039. CL_SET_BLKARG(PreW19);
  1040. CL_SET_BLKARG(W16);
  1041. CL_SET_BLKARG(W17);
  1042. CL_SET_BLKARG(W16addK16);
  1043. CL_SET_BLKARG(W17addK17);
  1044. CL_SET_BLKARG(PreW31);
  1045. CL_SET_BLKARG(PreW32);
  1046. CL_SET_BLKARG(D1A);
  1047. CL_SET_BLKARG(cty_b);
  1048. CL_SET_BLKARG(cty_c);
  1049. CL_SET_BLKARG(cty_h);
  1050. CL_SET_BLKARG(cty_f);
  1051. CL_SET_BLKARG(cty_g);
  1052. CL_SET_BLKARG(C1addK5);
  1053. CL_SET_BLKARG(B1addK6);
  1054. CL_SET_BLKARG(ctx_a);
  1055. CL_SET_BLKARG(ctx_b);
  1056. CL_SET_BLKARG(ctx_c);
  1057. CL_SET_BLKARG(ctx_d);
  1058. CL_SET_BLKARG(ctx_e);
  1059. CL_SET_BLKARG(ctx_f);
  1060. CL_SET_BLKARG(ctx_g);
  1061. CL_SET_BLKARG(ctx_h);
  1062. CL_SET_ARG(clState->outputBuffer);
  1063. return status;
  1064. }
  1065. #ifdef USE_SCRYPT
  1066. static cl_int queue_scrypt_kernel(_clState *clState, dev_blk_ctx *blk, __maybe_unused cl_uint threads)
  1067. {
  1068. unsigned char *midstate = blk->work->midstate;
  1069. cl_kernel *kernel = &clState->kernel;
  1070. unsigned int num = 0;
  1071. cl_uint le_target;
  1072. cl_int status = 0;
  1073. le_target = *(cl_uint *)(blk->work->target + 28);
  1074. clState->cldata = blk->work->data;
  1075. status = clEnqueueWriteBuffer(clState->commandQueue, clState->CLbuffer0, true, 0, 80, clState->cldata, 0, NULL,NULL);
  1076. CL_SET_ARG(clState->CLbuffer0);
  1077. CL_SET_ARG(clState->outputBuffer);
  1078. CL_SET_ARG(clState->padbuffer8);
  1079. CL_SET_VARG(4, &midstate[0]);
  1080. CL_SET_VARG(4, &midstate[16]);
  1081. CL_SET_ARG(le_target);
  1082. return status;
  1083. }
  1084. #endif
  1085. static void set_threads_hashes(unsigned int vectors,int64_t *hashes, size_t *globalThreads,
  1086. unsigned int minthreads, __maybe_unused int *intensity)
  1087. {
  1088. unsigned int threads = 0;
  1089. while (threads < minthreads) {
  1090. threads = 1 << ((opt_scrypt ? 0 : 15) + *intensity);
  1091. if (threads < minthreads) {
  1092. if (likely(*intensity < MAX_INTENSITY))
  1093. (*intensity)++;
  1094. else
  1095. threads = minthreads;
  1096. }
  1097. }
  1098. *globalThreads = threads;
  1099. *hashes = threads * vectors;
  1100. }
  1101. #endif /* HAVE_OPENCL */
  1102. #ifdef HAVE_OPENCL
  1103. /* We have only one thread that ever re-initialises GPUs, thus if any GPU
  1104. * init command fails due to a completely wedged GPU, the thread will never
  1105. * return, unable to harm other GPUs. If it does return, it means we only had
  1106. * a soft failure and then the reinit_gpu thread is ready to tackle another
  1107. * GPU */
  1108. void *reinit_gpu(void *userdata)
  1109. {
  1110. struct thr_info *mythr = userdata;
  1111. struct cgpu_info *cgpu, *sel_cgpu;
  1112. struct thr_info *thr;
  1113. struct timeval now;
  1114. char name[256];
  1115. int thr_id;
  1116. int i;
  1117. pthread_detach(pthread_self());
  1118. RenameThread("reinit_gpu");
  1119. select_cgpu:
  1120. sel_cgpu =
  1121. cgpu = tq_pop(mythr->q, NULL);
  1122. if (!cgpu)
  1123. goto out;
  1124. if (clDevicesNum() != nDevs) {
  1125. applog(LOG_WARNING, "Hardware not reporting same number of active devices, will not attempt to restart GPU");
  1126. goto out;
  1127. }
  1128. for (i = 0; i < cgpu->threads; ++i)
  1129. {
  1130. thr = cgpu->thr[i];
  1131. thr_id = thr->id;
  1132. thr->rolling = thr->cgpu->rolling = 0;
  1133. /* Reports the last time we tried to revive a sick GPU */
  1134. gettimeofday(&thr->sick, NULL);
  1135. if (!pthread_cancel(thr->pth)) {
  1136. applog(LOG_WARNING, "Thread %d still exists, killing it off", thr_id);
  1137. } else
  1138. applog(LOG_WARNING, "Thread %d no longer exists", thr_id);
  1139. }
  1140. for (i = 0; i < cgpu->threads; ++i)
  1141. {
  1142. int virtual_gpu;
  1143. thr = cgpu->thr[i];
  1144. thr_id = thr->id;
  1145. virtual_gpu = cgpu->virtual_gpu;
  1146. /* Lose this ram cause we may get stuck here! */
  1147. //tq_freeze(thr->q);
  1148. thr->q = tq_new();
  1149. if (!thr->q)
  1150. quit(1, "Failed to tq_new in reinit_gpu");
  1151. /* Lose this ram cause we may dereference in the dying thread! */
  1152. //free(clState);
  1153. applog(LOG_INFO, "Reinit GPU thread %d", thr_id);
  1154. clStates[thr_id] = initCl(virtual_gpu, name, sizeof(name));
  1155. if (!clStates[thr_id]) {
  1156. applog(LOG_ERR, "Failed to reinit GPU thread %d", thr_id);
  1157. goto select_cgpu;
  1158. }
  1159. applog(LOG_INFO, "initCl() finished. Found %s", name);
  1160. if (unlikely(thr_info_create(thr, NULL, miner_thread, thr))) {
  1161. applog(LOG_ERR, "thread %d create failed", thr_id);
  1162. return NULL;
  1163. }
  1164. applog(LOG_WARNING, "Thread %d restarted", thr_id);
  1165. }
  1166. gettimeofday(&now, NULL);
  1167. get_datestamp(sel_cgpu->init, &now);
  1168. proc_enable(cgpu);
  1169. goto select_cgpu;
  1170. out:
  1171. return NULL;
  1172. }
  1173. #else
  1174. void *reinit_gpu(__maybe_unused void *userdata)
  1175. {
  1176. return NULL;
  1177. }
  1178. #endif
  1179. #ifdef HAVE_OPENCL
  1180. struct device_drv opencl_api;
  1181. static void opencl_detect()
  1182. {
  1183. #ifndef WIN32
  1184. if (!getenv("DISPLAY")) {
  1185. applog(LOG_DEBUG, "DISPLAY not set, setting :0 just in case");
  1186. setenv("DISPLAY", ":0", 1);
  1187. }
  1188. #endif
  1189. if (!load_opencl_symbols()) {
  1190. nDevs = 0;
  1191. return;
  1192. }
  1193. int i;
  1194. nDevs = clDevicesNum();
  1195. if (nDevs < 0) {
  1196. applog(LOG_ERR, "clDevicesNum returned error, no GPUs usable");
  1197. nDevs = 0;
  1198. }
  1199. if (!nDevs)
  1200. return;
  1201. /* If opt_g_threads is not set, use default 1 thread on scrypt and
  1202. * 2 for regular mining */
  1203. if (opt_g_threads == -1) {
  1204. if (opt_scrypt)
  1205. opt_g_threads = 1;
  1206. else
  1207. opt_g_threads = 2;
  1208. }
  1209. #ifdef HAVE_SENSORS
  1210. struct opencl_device_data *data;
  1211. const sensors_chip_name *cn;
  1212. int c = 0;
  1213. sensors_init(NULL);
  1214. sensors_chip_name cnm;
  1215. if (sensors_parse_chip_name("radeon-*", &cnm))
  1216. c = -1;
  1217. #endif
  1218. for (i = 0; i < nDevs; ++i) {
  1219. struct cgpu_info *cgpu;
  1220. cgpu = &gpus[i];
  1221. cgpu->devtype = "GPU";
  1222. cgpu->deven = DEV_ENABLED;
  1223. cgpu->drv = &opencl_api;
  1224. cgpu->device_id = i;
  1225. cgpu->threads = opt_g_threads;
  1226. cgpu->virtual_gpu = i;
  1227. #ifdef HAVE_SENSORS
  1228. cn = (c == -1) ? NULL : sensors_get_detected_chips(&cnm, &c);
  1229. cgpu->cgpu_data = data = malloc(sizeof(*data));
  1230. *data = (struct opencl_device_data){
  1231. .sensor = cn,
  1232. };
  1233. #endif
  1234. add_cgpu(cgpu);
  1235. }
  1236. if (!opt_noadl)
  1237. init_adl(nDevs);
  1238. }
  1239. static void reinit_opencl_device(struct cgpu_info *gpu)
  1240. {
  1241. tq_push(control_thr[gpur_thr_id].q, gpu);
  1242. }
  1243. static void get_opencl_statline_before(char *buf, struct cgpu_info *gpu)
  1244. {
  1245. #ifdef HAVE_SENSORS
  1246. struct opencl_device_data *data = gpu->cgpu_data;
  1247. if (data->sensor)
  1248. {
  1249. const sensors_chip_name *cn = data->sensor;
  1250. const sensors_feature *feat;
  1251. for (int f = 0; (feat = sensors_get_features(cn, &f)); )
  1252. {
  1253. const sensors_subfeature *subf;
  1254. subf = sensors_get_subfeature(cn, feat, SENSORS_SUBFEATURE_TEMP_INPUT);
  1255. if (!(subf && subf->flags & SENSORS_MODE_R))
  1256. continue;
  1257. double val;
  1258. int rc = sensors_get_value(cn, subf->number, &val);
  1259. if (rc)
  1260. continue;
  1261. gpu->temp = val;
  1262. tailsprintf(buf, "%5.1fC | ", val);
  1263. return;
  1264. }
  1265. }
  1266. #endif
  1267. #ifdef HAVE_ADL
  1268. if (gpu->has_adl) {
  1269. int gpuid = gpu->device_id;
  1270. float gt = gpu_temp(gpuid);
  1271. int gf = gpu_fanspeed(gpuid);
  1272. int gp;
  1273. if (gt != -1)
  1274. tailsprintf(buf, "%5.1fC ", gt);
  1275. else
  1276. tailsprintf(buf, " ", gt);
  1277. if (gf != -1)
  1278. tailsprintf(buf, "%4dRPM ", gf);
  1279. else if ((gp = gpu_fanpercent(gpuid)) != -1)
  1280. tailsprintf(buf, "%3d%% ", gp);
  1281. else
  1282. tailsprintf(buf, " ");
  1283. tailsprintf(buf, "| ");
  1284. }
  1285. else
  1286. #endif
  1287. tailsprintf(buf, " | ");
  1288. }
  1289. static struct api_data*
  1290. get_opencl_api_extra_device_status(struct cgpu_info *gpu)
  1291. {
  1292. struct api_data*root = NULL;
  1293. float gt, gv;
  1294. int ga, gf, gp, gc, gm, pt;
  1295. #ifdef HAVE_ADL
  1296. if (!gpu_stats(gpu->device_id, &gt, &gc, &gm, &gv, &ga, &gf, &gp, &pt))
  1297. #endif
  1298. gt = gv = gm = gc = ga = gf = gp = pt = 0;
  1299. root = api_add_int(root, "Fan Speed", &gf, true);
  1300. root = api_add_int(root, "Fan Percent", &gp, true);
  1301. root = api_add_int(root, "GPU Clock", &gc, true);
  1302. root = api_add_int(root, "Memory Clock", &gm, true);
  1303. root = api_add_volts(root, "GPU Voltage", &gv, true);
  1304. root = api_add_int(root, "GPU Activity", &ga, true);
  1305. root = api_add_int(root, "Powertune", &pt, true);
  1306. char intensity[20];
  1307. if (gpu->dynamic)
  1308. strcpy(intensity, "D");
  1309. else
  1310. sprintf(intensity, "%d", gpu->intensity);
  1311. root = api_add_string(root, "Intensity", intensity, true);
  1312. return root;
  1313. }
  1314. struct opencl_thread_data {
  1315. cl_int (*queue_kernel_parameters)(_clState *, dev_blk_ctx *, cl_uint);
  1316. uint32_t *res;
  1317. };
  1318. static uint32_t *blank_res;
  1319. static bool opencl_thread_prepare(struct thr_info *thr)
  1320. {
  1321. char name[256];
  1322. struct timeval now;
  1323. struct cgpu_info *cgpu = thr->cgpu;
  1324. int gpu = cgpu->device_id;
  1325. int virtual_gpu = cgpu->virtual_gpu;
  1326. int i = thr->id;
  1327. static bool failmessage = false;
  1328. if (!blank_res)
  1329. blank_res = calloc(BUFFERSIZE, 1);
  1330. if (!blank_res) {
  1331. applog(LOG_ERR, "Failed to calloc in opencl_thread_init");
  1332. return false;
  1333. }
  1334. strcpy(name, "");
  1335. applog(LOG_INFO, "Init GPU thread %i GPU %i virtual GPU %i", i, gpu, virtual_gpu);
  1336. clStates[i] = initCl(virtual_gpu, name, sizeof(name));
  1337. if (!clStates[i]) {
  1338. #ifdef HAVE_CURSES
  1339. if (use_curses)
  1340. enable_curses();
  1341. #endif
  1342. applog(LOG_ERR, "Failed to init GPU thread %d, disabling device %d", i, gpu);
  1343. if (!failmessage) {
  1344. applog(LOG_ERR, "Restarting the GPU from the menu will not fix this.");
  1345. applog(LOG_ERR, "Try restarting BFGMiner.");
  1346. failmessage = true;
  1347. #ifdef HAVE_CURSES
  1348. char *buf;
  1349. if (use_curses) {
  1350. buf = curses_input("Press enter to continue");
  1351. if (buf)
  1352. free(buf);
  1353. }
  1354. #endif
  1355. }
  1356. cgpu->deven = DEV_DISABLED;
  1357. cgpu->status = LIFE_NOSTART;
  1358. dev_error(cgpu, REASON_DEV_NOSTART);
  1359. return false;
  1360. }
  1361. if (!cgpu->name)
  1362. cgpu->name = strdup(name);
  1363. if (!cgpu->kname)
  1364. {
  1365. switch (clStates[i]->chosen_kernel) {
  1366. case KL_DIABLO:
  1367. cgpu->kname = "diablo";
  1368. break;
  1369. case KL_DIAKGCN:
  1370. cgpu->kname = "diakgcn";
  1371. break;
  1372. case KL_PHATK:
  1373. cgpu->kname = "phatk";
  1374. break;
  1375. #ifdef USE_SCRYPT
  1376. case KL_SCRYPT:
  1377. cgpu->kname = "scrypt";
  1378. break;
  1379. #endif
  1380. case KL_POCLBM:
  1381. cgpu->kname = "poclbm";
  1382. break;
  1383. default:
  1384. break;
  1385. }
  1386. }
  1387. applog(LOG_INFO, "initCl() finished. Found %s", name);
  1388. gettimeofday(&now, NULL);
  1389. get_datestamp(cgpu->init, &now);
  1390. have_opencl = true;
  1391. return true;
  1392. }
  1393. static bool opencl_thread_init(struct thr_info *thr)
  1394. {
  1395. const int thr_id = thr->id;
  1396. struct cgpu_info *gpu = thr->cgpu;
  1397. struct opencl_thread_data *thrdata;
  1398. _clState *clState = clStates[thr_id];
  1399. cl_int status = 0;
  1400. thrdata = calloc(1, sizeof(*thrdata));
  1401. thr->cgpu_data = thrdata;
  1402. if (!thrdata) {
  1403. applog(LOG_ERR, "Failed to calloc in opencl_thread_init");
  1404. return false;
  1405. }
  1406. switch (clState->chosen_kernel) {
  1407. case KL_POCLBM:
  1408. thrdata->queue_kernel_parameters = &queue_poclbm_kernel;
  1409. break;
  1410. case KL_PHATK:
  1411. thrdata->queue_kernel_parameters = &queue_phatk_kernel;
  1412. break;
  1413. case KL_DIAKGCN:
  1414. thrdata->queue_kernel_parameters = &queue_diakgcn_kernel;
  1415. break;
  1416. #ifdef USE_SCRYPT
  1417. case KL_SCRYPT:
  1418. thrdata->queue_kernel_parameters = &queue_scrypt_kernel;
  1419. break;
  1420. #endif
  1421. default:
  1422. case KL_DIABLO:
  1423. thrdata->queue_kernel_parameters = &queue_diablo_kernel;
  1424. break;
  1425. }
  1426. thrdata->res = calloc(BUFFERSIZE, 1);
  1427. if (!thrdata->res) {
  1428. free(thrdata);
  1429. applog(LOG_ERR, "Failed to calloc in opencl_thread_init");
  1430. return false;
  1431. }
  1432. status |= clEnqueueWriteBuffer(clState->commandQueue, clState->outputBuffer, CL_TRUE, 0,
  1433. BUFFERSIZE, blank_res, 0, NULL, NULL);
  1434. if (unlikely(status != CL_SUCCESS)) {
  1435. applog(LOG_ERR, "Error: clEnqueueWriteBuffer failed.");
  1436. return false;
  1437. }
  1438. gpu->status = LIFE_WELL;
  1439. gpu->device_last_well = time(NULL);
  1440. return true;
  1441. }
  1442. static bool opencl_prepare_work(struct thr_info __maybe_unused *thr, struct work *work)
  1443. {
  1444. #ifdef USE_SCRYPT
  1445. if (opt_scrypt)
  1446. work->blk.work = work;
  1447. else
  1448. #endif
  1449. precalc_hash(&work->blk, (uint32_t *)(work->midstate), (uint32_t *)(work->data + 64));
  1450. return true;
  1451. }
  1452. extern int opt_dynamic_interval;
  1453. static int64_t opencl_scanhash(struct thr_info *thr, struct work *work,
  1454. int64_t __maybe_unused max_nonce)
  1455. {
  1456. const int thr_id = thr->id;
  1457. struct opencl_thread_data *thrdata = thr->cgpu_data;
  1458. struct cgpu_info *gpu = thr->cgpu;
  1459. _clState *clState = clStates[thr_id];
  1460. const cl_kernel *kernel = &clState->kernel;
  1461. const int dynamic_us = opt_dynamic_interval * 1000;
  1462. cl_int status;
  1463. size_t globalThreads[1];
  1464. size_t localThreads[1] = { clState->wsize };
  1465. int64_t hashes;
  1466. /* Windows' timer resolution is only 15ms so oversample 5x */
  1467. if (gpu->dynamic && (++gpu->intervals * dynamic_us) > 70000) {
  1468. struct timeval tv_gpuend;
  1469. double gpu_us;
  1470. gettimeofday(&tv_gpuend, NULL);
  1471. gpu_us = us_tdiff(&tv_gpuend, &gpu->tv_gpustart) / gpu->intervals;
  1472. if (gpu_us > dynamic_us) {
  1473. if (gpu->intensity > MIN_INTENSITY)
  1474. --gpu->intensity;
  1475. } else if (gpu_us < dynamic_us / 2) {
  1476. if (gpu->intensity < MAX_INTENSITY)
  1477. ++gpu->intensity;
  1478. }
  1479. memcpy(&(gpu->tv_gpustart), &tv_gpuend, sizeof(struct timeval));
  1480. gpu->intervals = 0;
  1481. }
  1482. set_threads_hashes(clState->vwidth, &hashes, globalThreads, localThreads[0], &gpu->intensity);
  1483. if (hashes > gpu->max_hashes)
  1484. gpu->max_hashes = hashes;
  1485. status = thrdata->queue_kernel_parameters(clState, &work->blk, globalThreads[0]);
  1486. if (unlikely(status != CL_SUCCESS)) {
  1487. applog(LOG_ERR, "Error: clSetKernelArg of all params failed.");
  1488. return -1;
  1489. }
  1490. if (clState->goffset) {
  1491. size_t global_work_offset[1];
  1492. global_work_offset[0] = work->blk.nonce;
  1493. status = clEnqueueNDRangeKernel(clState->commandQueue, *kernel, 1, global_work_offset,
  1494. globalThreads, localThreads, 0, NULL, NULL);
  1495. } else
  1496. status = clEnqueueNDRangeKernel(clState->commandQueue, *kernel, 1, NULL,
  1497. globalThreads, localThreads, 0, NULL, NULL);
  1498. if (unlikely(status != CL_SUCCESS)) {
  1499. applog(LOG_ERR, "Error %d: Enqueueing kernel onto command queue. (clEnqueueNDRangeKernel)", status);
  1500. return -1;
  1501. }
  1502. status = clEnqueueReadBuffer(clState->commandQueue, clState->outputBuffer, CL_FALSE, 0,
  1503. BUFFERSIZE, thrdata->res, 0, NULL, NULL);
  1504. if (unlikely(status != CL_SUCCESS)) {
  1505. applog(LOG_ERR, "Error: clEnqueueReadBuffer failed error %d. (clEnqueueReadBuffer)", status);
  1506. return -1;
  1507. }
  1508. /* The amount of work scanned can fluctuate when intensity changes
  1509. * and since we do this one cycle behind, we increment the work more
  1510. * than enough to prevent repeating work */
  1511. work->blk.nonce += gpu->max_hashes;
  1512. /* This finish flushes the readbuffer set with CL_FALSE in clEnqueueReadBuffer */
  1513. clFinish(clState->commandQueue);
  1514. /* FOUND entry is used as a counter to say how many nonces exist */
  1515. if (thrdata->res[FOUND]) {
  1516. /* Clear the buffer again */
  1517. status = clEnqueueWriteBuffer(clState->commandQueue, clState->outputBuffer, CL_FALSE, 0,
  1518. BUFFERSIZE, blank_res, 0, NULL, NULL);
  1519. if (unlikely(status != CL_SUCCESS)) {
  1520. applog(LOG_ERR, "Error: clEnqueueWriteBuffer failed.");
  1521. return -1;
  1522. }
  1523. applog(LOG_DEBUG, "GPU %d found something?", gpu->device_id);
  1524. postcalc_hash_async(thr, work, thrdata->res);
  1525. memset(thrdata->res, 0, BUFFERSIZE);
  1526. /* This finish flushes the writebuffer set with CL_FALSE in clEnqueueWriteBuffer */
  1527. clFinish(clState->commandQueue);
  1528. }
  1529. return hashes;
  1530. }
  1531. static void opencl_thread_shutdown(struct thr_info *thr)
  1532. {
  1533. const int thr_id = thr->id;
  1534. _clState *clState = clStates[thr_id];
  1535. clReleaseCommandQueue(clState->commandQueue);
  1536. clReleaseKernel(clState->kernel);
  1537. clReleaseProgram(clState->program);
  1538. clReleaseContext(clState->context);
  1539. }
  1540. struct device_drv opencl_api = {
  1541. .dname = "opencl",
  1542. .name = "OCL",
  1543. .drv_detect = opencl_detect,
  1544. .reinit_device = reinit_opencl_device,
  1545. .get_statline_before = get_opencl_statline_before,
  1546. .get_api_extra_device_status = get_opencl_api_extra_device_status,
  1547. .thread_prepare = opencl_thread_prepare,
  1548. .thread_init = opencl_thread_init,
  1549. .prepare_work = opencl_prepare_work,
  1550. .scanhash = opencl_scanhash,
  1551. .thread_shutdown = opencl_thread_shutdown,
  1552. };
  1553. #endif