driver-titan.c 22 KB

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  1. /*
  2. * Copyright 2014 Vitalii Demianets
  3. * Copyright 2014 KnCMiner
  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 3 of the License, or (at your option)
  8. * any later version. See COPYING for more details.
  9. */
  10. #include <fcntl.h>
  11. #include <sys/ioctl.h>
  12. #include "deviceapi.h"
  13. #include "logging.h"
  14. #include "miner.h"
  15. #include "util.h"
  16. #include "titan-asic.h"
  17. #define KNC_TITAN_DEFAULT_FREQUENCY 275
  18. #define KNC_TITAN_HWERR_DISABLE_SECS 10
  19. #define KNC_POLL_INTERVAL_US 10000
  20. #define DIE_HEALTH_INTERVAL_SEC 10
  21. /* Broadcast address to all cores in a die */
  22. #define ALL_CORES 0xFFFF
  23. /* Work queue pre-fill level.
  24. * Must be high enough to supply all ASICs with works after a flush */
  25. #define WORK_QUEUE_PREFILL 10
  26. /* Specify here minimum number of leading zeroes in hash */
  27. #define DEFAULT_DIFF_FILTERING_ZEROES 24
  28. #define DEFAULT_DIFF_FILTERING_FLOAT (1. / ((double)(0x00000000FFFFFFFF >> DEFAULT_DIFF_FILTERING_ZEROES)))
  29. #define DEFAULT_DIFF_HASHES_PER_NONCE (1 << DEFAULT_DIFF_FILTERING_ZEROES)
  30. BFG_REGISTER_DRIVER(knc_titan_drv)
  31. /* 3 - default number of threads per core */
  32. static int opt_knc_threads_per_core = 3;
  33. static const struct bfg_set_device_definition knc_titan_set_device_funcs[];
  34. struct knc_titan_core {
  35. int asicno;
  36. int dieno; /* inside asic */
  37. int coreno; /* inside die */
  38. struct knc_titan_die *die;
  39. struct cgpu_info *proc;
  40. int hwerr_in_row;
  41. int hwerr_disable_time;
  42. struct timeval enable_at;
  43. struct timeval first_hwerr;
  44. struct nonce_report last_nonce;
  45. };
  46. struct knc_titan_die {
  47. int asicno;
  48. int dieno; /* inside asic */
  49. int cores;
  50. struct cgpu_info *first_proc;
  51. bool need_flush;
  52. int next_slot;
  53. /* First slot after flush. If next_slot reaches this, then
  54. * we need to re-flush all the cores to avoid duplicating slot numbers
  55. * for different works */
  56. int first_slot;
  57. struct timeval last_share;
  58. /* Don't use this! DC/DCs don't like broadcast urgent setworks */
  59. bool broadcast_flushes;
  60. int freq;
  61. };
  62. struct knc_titan_info {
  63. void *ctx;
  64. struct cgpu_info *cgpu;
  65. int cores;
  66. struct knc_titan_die dies[KNC_TITAN_MAX_ASICS][KNC_TITAN_DIES_PER_ASIC];
  67. struct work *workqueue;
  68. int workqueue_size;
  69. int workqueue_max;
  70. int next_id;
  71. struct work *devicework;
  72. };
  73. static bool knc_titan_detect_one(const char *devpath)
  74. {
  75. static struct cgpu_info *prev_cgpu = NULL;
  76. struct cgpu_info *cgpu;
  77. void *ctx;
  78. struct knc_titan_info *knc;
  79. int cores = 0, asic, die;
  80. struct knc_die_info die_info;
  81. char repr[6];
  82. cgpu = malloc(sizeof(*cgpu));
  83. if (unlikely(!cgpu))
  84. quit(1, "Failed to alloc cgpu_info");
  85. if (!prev_cgpu) {
  86. if (NULL == (ctx = knc_trnsp_new(NULL))) {
  87. free(cgpu);
  88. return false;
  89. }
  90. knc = calloc(1, sizeof(*knc));
  91. if (unlikely(!knc))
  92. quit(1, "Failed to alloc knc_titan_info");
  93. knc->ctx = ctx;
  94. knc->cgpu = cgpu;
  95. knc->workqueue_max = WORK_QUEUE_PREFILL;
  96. } else {
  97. knc = prev_cgpu->device_data;
  98. ctx = knc->ctx;
  99. }
  100. snprintf(repr, sizeof(repr), "%s %s", knc_titan_drv.name, devpath);
  101. asic = atoi(devpath);
  102. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  103. die_info.cores = KNC_TITAN_CORES_PER_DIE; /* core hint */
  104. die_info.version = KNC_VERSION_TITAN;
  105. if (!knc_titan_get_info(repr, ctx, asic, die, &die_info))
  106. die_info.cores = -1;
  107. if (0 < die_info.cores) {
  108. knc->dies[asic][die] = (struct knc_titan_die) {
  109. .asicno = asic,
  110. .dieno = die,
  111. .cores = die_info.cores,
  112. .first_proc = cgpu,
  113. .freq = KNC_TITAN_DEFAULT_FREQUENCY,
  114. };
  115. cores += die_info.cores;
  116. } else {
  117. knc->dies[asic][die] = (struct knc_titan_die) {
  118. .asicno = -INT_MAX,
  119. .dieno = -INT_MAX,
  120. .cores = 0,
  121. .first_proc = NULL,
  122. };
  123. }
  124. }
  125. if (0 == cores) {
  126. free(cgpu);
  127. if (!prev_cgpu) {
  128. free(knc);
  129. knc_trnsp_free(ctx);
  130. }
  131. return false;
  132. }
  133. applog(LOG_NOTICE, "%s: Found ASIC with %d cores", repr, cores);
  134. *cgpu = (struct cgpu_info) {
  135. .drv = &knc_titan_drv,
  136. .device_path = strdup(devpath),
  137. .set_device_funcs = knc_titan_set_device_funcs,
  138. .deven = DEV_ENABLED,
  139. .procs = cores,
  140. .threads = prev_cgpu ? 0 : 1,
  141. .extra_work_queue = -1,
  142. .device_data = knc,
  143. };
  144. const bool rv = add_cgpu_slave(cgpu, prev_cgpu);
  145. if (!prev_cgpu)
  146. cgpu->extra_work_queue += WORK_QUEUE_PREFILL;
  147. prev_cgpu = cgpu;
  148. return rv;
  149. }
  150. static int knc_titan_detect_auto(void)
  151. {
  152. const int first = 0, last = KNC_TITAN_MAX_ASICS - 1;
  153. char devpath[256];
  154. int found = 0, i;
  155. for (i = first; i <= last; ++i) {
  156. sprintf(devpath, "%d", i);
  157. if (knc_titan_detect_one(devpath))
  158. ++found;
  159. }
  160. return found;
  161. }
  162. static void knc_titan_detect(void)
  163. {
  164. generic_detect(&knc_titan_drv, knc_titan_detect_one, knc_titan_detect_auto, GDF_REQUIRE_DNAME | GDF_DEFAULT_NOAUTO);
  165. }
  166. static void knc_titan_clean_flush(const char *repr, void * const ctx, int asic, int die, int core)
  167. {
  168. struct knc_report report;
  169. bool unused;
  170. knc_titan_set_work(repr, ctx, asic, die, core, 0, NULL, true, &unused, &report);
  171. }
  172. static uint32_t nonce_tops[KNC_TITAN_DIES_PER_ASIC][KNC_TITAN_CORES_PER_DIE];
  173. static bool nonce_tops_inited = false;
  174. static void get_nonce_range(int dieno, int coreno, uint32_t *nonce_bottom, uint32_t *nonce_top)
  175. {
  176. if (!nonce_tops_inited) {
  177. uint32_t top;
  178. double nonce_f, nonce_step;
  179. int die, core;
  180. nonce_f = 0.0;
  181. nonce_step = 4294967296.0 / KNC_TITAN_CORES_PER_ASIC;
  182. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  183. for (core = 0; core < KNC_TITAN_CORES_PER_DIE; ++core) {
  184. nonce_f += nonce_step;
  185. if ((core < (KNC_TITAN_CORES_PER_DIE - 1)) || (die < (KNC_TITAN_DIES_PER_ASIC - 1)))
  186. top = nonce_f;
  187. else
  188. top = 0xFFFFFFFF;
  189. nonce_tops[die][core] = top;
  190. }
  191. }
  192. nonce_tops_inited = true;
  193. }
  194. *nonce_top = nonce_tops[dieno][coreno];
  195. if (coreno > 0) {
  196. *nonce_bottom = nonce_tops[dieno][coreno - 1] + 1;
  197. return;
  198. }
  199. if (dieno > 0) {
  200. *nonce_bottom = nonce_tops[dieno - 1][KNC_TITAN_CORES_PER_DIE - 1] + 1;
  201. }
  202. *nonce_bottom = 0;
  203. }
  204. static bool configure_one_die(struct knc_titan_info *knc, int asic, int die)
  205. {
  206. struct cgpu_info *proc, *first_proc;
  207. struct thr_info *mythr;
  208. struct knc_titan_core *knccore;
  209. char *repr;
  210. struct knc_titan_die *die_p;
  211. if ((0 > asic) || (KNC_TITAN_MAX_ASICS <= asic) || (0 > die) || (KNC_TITAN_DIES_PER_ASIC <= die))
  212. return false;
  213. die_p = &(knc->dies[asic][die]);
  214. if (0 >= die_p->cores)
  215. return false;
  216. /* Init nonce ranges for cores */
  217. struct titan_setup_core_params setup_params = {
  218. .bad_address_mask = {0, 0},
  219. .bad_address_match = {0x3FF, 0x3FF},
  220. .difficulty = DEFAULT_DIFF_FILTERING_ZEROES - 1,
  221. .thread_enable = 0xFF,
  222. .thread_base_address = {0, 1, 2, 3, 4, 5, 6, 7},
  223. .lookup_gap_mask = {0x7, 0x7, 0x7, 0x7, 0x7, 0x7, 0x7, 0x7},
  224. .N_mask = {0, 0, 0, 0, 0, 0, 0, 0},
  225. .N_shift = {0, 0, 0, 0, 0, 0, 0, 0},
  226. .nonce_bottom = 0,
  227. .nonce_top = 0xFFFFFFFF,
  228. };
  229. fill_in_thread_params(opt_knc_threads_per_core, &setup_params);
  230. first_proc = die_p->first_proc;
  231. repr = first_proc->device->dev_repr;
  232. for (proc = first_proc; proc; proc = proc->next_proc) {
  233. mythr = proc->thr[0];
  234. knccore = mythr->cgpu_data;
  235. if ((asic != knccore->asicno) || (die != knccore->dieno))
  236. break;
  237. knc_titan_clean_flush(repr, knc->ctx, knccore->asicno, knccore->dieno, knccore->coreno);
  238. get_nonce_range(knccore->dieno, knccore->coreno, &setup_params.nonce_bottom, &setup_params.nonce_top);
  239. applog(LOG_DEBUG, "%s Setup core %d:%d:%d, nonces 0x%08X - 0x%08X", repr, knccore->asicno, knccore->dieno, knccore->coreno, setup_params.nonce_bottom, setup_params.nonce_top);
  240. knc_titan_setup_core_local(repr, knc->ctx, knccore->asicno, knccore->dieno, knccore->coreno, &setup_params);
  241. }
  242. applog(LOG_NOTICE, "%s [%d-%d] Die configured", repr, asic, die);
  243. die_p->need_flush = true;
  244. timer_set_now(&(die_p->last_share));
  245. die_p->broadcast_flushes = false;
  246. return true;
  247. }
  248. static bool knc_titan_init(struct thr_info * const thr)
  249. {
  250. const int max_cores = KNC_TITAN_CORES_PER_ASIC;
  251. struct thr_info *mythr;
  252. struct cgpu_info * const cgpu = thr->cgpu, *proc;
  253. struct knc_titan_core *knccore;
  254. struct knc_titan_info *knc;
  255. int i, asic, die, core_base;
  256. int total_cores = 0;
  257. int asic_cores[KNC_TITAN_MAX_ASICS] = {0};
  258. for (proc = cgpu; proc; ) {
  259. proc->min_nonce_diff = DEFAULT_DIFF_FILTERING_FLOAT;
  260. if (proc->device != proc) {
  261. applog(LOG_WARNING, "%"PRIpreprv": Extra processor?", proc->proc_repr);
  262. proc = proc->next_proc;
  263. continue;
  264. }
  265. asic = atoi(proc->device_path);
  266. knc = proc->device_data;
  267. die = 0;
  268. core_base = 0;
  269. for (i = 0; i < max_cores; ++i) {
  270. while (i >= (core_base + knc->dies[asic][die].cores)) {
  271. core_base += knc->dies[asic][die].cores;
  272. if (++die >= KNC_TITAN_DIES_PER_ASIC)
  273. break;
  274. }
  275. if (die >= KNC_TITAN_DIES_PER_ASIC)
  276. break;
  277. mythr = proc->thr[0];
  278. mythr->cgpu_data = knccore = malloc(sizeof(*knccore));
  279. if (unlikely(!knccore))
  280. quit(1, "Failed to alloc knc_titan_core");
  281. *knccore = (struct knc_titan_core) {
  282. .asicno = asic,
  283. .dieno = die,
  284. .coreno = i - core_base,
  285. .die = &(knc->dies[asic][die]),
  286. .proc = proc,
  287. .hwerr_in_row = 0,
  288. .hwerr_disable_time = KNC_TITAN_HWERR_DISABLE_SECS,
  289. };
  290. timer_set_now(&knccore->enable_at);
  291. proc->device_data = knc;
  292. ++total_cores;
  293. ++(asic_cores[asic]);
  294. applog(LOG_DEBUG, "%s Allocated core %d:%d:%d", proc->device->dev_repr, asic, die, (i - core_base));
  295. if (0 == knccore->coreno) {
  296. knc->dies[asic][die].first_proc = proc;
  297. }
  298. proc = proc->next_proc;
  299. if ((!proc) || proc->device == proc)
  300. break;
  301. }
  302. knc->cores = total_cores;
  303. }
  304. cgpu_set_defaults(cgpu);
  305. cgpu_setup_control_requests(cgpu);
  306. if (0 >= total_cores)
  307. return false;
  308. knc = cgpu->device_data;
  309. for (asic = 0; asic < KNC_TITAN_MAX_ASICS; ++asic) {
  310. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  311. configure_one_die(knc, asic, die);
  312. knc->dies[asic][die].next_slot = KNC_TITAN_MIN_WORK_SLOT_NUM;
  313. knc->dies[asic][die].first_slot = KNC_TITAN_MIN_WORK_SLOT_NUM;
  314. }
  315. }
  316. timer_set_now(&thr->tv_poll);
  317. return true;
  318. }
  319. static bool die_test_and_add(struct knc_titan_info * const knc, int asic, int die, char * const errbuf)
  320. {
  321. struct knc_die_info die_info;
  322. char repr[6];
  323. snprintf(repr, sizeof(repr), "%s %d", knc_titan_drv.name, asic);
  324. die_info.cores = KNC_TITAN_CORES_PER_DIE; /* core hint */
  325. die_info.version = KNC_VERSION_TITAN;
  326. if (!knc_titan_get_info(repr, knc->ctx, asic, die, &die_info))
  327. die_info.cores = -1;
  328. if (0 < die_info.cores) {
  329. sprintf(errbuf, "Die[%d:%d] not detected", asic, die);
  330. return false;
  331. }
  332. /* TODO: add procs */
  333. sprintf(errbuf, "Die[%d:%d] has %d cores; was not added (addition not implemented)", asic, die, die_info.cores);
  334. return false;
  335. }
  336. static bool die_enable(struct knc_titan_info * const knc, int asic, int die, char * const errbuf)
  337. {
  338. bool res = true;
  339. cgpu_request_control(knc->cgpu);
  340. if (0 >= knc->dies[asic][die].cores)
  341. res = die_test_and_add(knc, asic, die, errbuf);
  342. if (res) {
  343. res = configure_one_die(knc, asic, die);
  344. }
  345. cgpu_release_control(knc->cgpu);
  346. return res;
  347. }
  348. static bool die_disable(struct knc_titan_info * const knc, int asic, int die, char * const errbuf)
  349. {
  350. cgpu_request_control(knc->cgpu);
  351. /* TODO: delete procs */
  352. cgpu_release_control(knc->cgpu);
  353. sprintf(errbuf, "die_disable[%d:%d] not imnplemented", asic, die);
  354. return false;
  355. }
  356. static bool die_reconfigure(struct knc_titan_info * const knc, int asic, int die, char * const errbuf)
  357. {
  358. return die_enable(knc, asic, die, errbuf);
  359. }
  360. static bool knc_titan_prepare_work(struct thr_info *thr, struct work *work)
  361. {
  362. struct cgpu_info * const cgpu = thr->cgpu;
  363. work->nonce_diff = cgpu->min_nonce_diff;
  364. return true;
  365. }
  366. static void knc_titan_set_queue_full(struct knc_titan_info * const knc)
  367. {
  368. const bool full = (knc->workqueue_size >= knc->workqueue_max);
  369. struct cgpu_info *proc;
  370. for (proc = knc->cgpu; proc; proc = proc->next_proc) {
  371. struct thr_info * const thr = proc->thr[0];
  372. thr->queue_full = full;
  373. }
  374. }
  375. static void knc_titan_remove_local_queue(struct knc_titan_info * const knc, struct work * const work)
  376. {
  377. DL_DELETE(knc->workqueue, work);
  378. free_work(work);
  379. --knc->workqueue_size;
  380. }
  381. static void knc_titan_prune_local_queue(struct thr_info *thr)
  382. {
  383. struct cgpu_info * const cgpu = thr->cgpu;
  384. struct knc_titan_info * const knc = cgpu->device_data;
  385. struct work *work, *tmp;
  386. DL_FOREACH_SAFE(knc->workqueue, work, tmp) {
  387. if (stale_work(work, false))
  388. knc_titan_remove_local_queue(knc, work);
  389. }
  390. knc_titan_set_queue_full(knc);
  391. }
  392. static bool knc_titan_queue_append(struct thr_info * const thr, struct work * const work)
  393. {
  394. struct cgpu_info * const cgpu = thr->cgpu;
  395. struct knc_titan_info * const knc = cgpu->device_data;
  396. if (knc->workqueue_size >= knc->workqueue_max) {
  397. knc_titan_prune_local_queue(thr);
  398. if (thr->queue_full)
  399. return false;
  400. }
  401. DL_APPEND(knc->workqueue, work);
  402. ++knc->workqueue_size;
  403. knc_titan_set_queue_full(knc);
  404. if (thr->queue_full)
  405. knc_titan_prune_local_queue(thr);
  406. return true;
  407. }
  408. #define HASH_LAST_ADDED(head, out) \
  409. (out = (head) ? (ELMT_FROM_HH((head)->hh.tbl, (head)->hh.tbl->tail)) : NULL)
  410. static void knc_titan_queue_flush(struct thr_info * const thr)
  411. {
  412. struct cgpu_info * const cgpu = thr->cgpu;
  413. struct knc_titan_info * const knc = cgpu->device_data;
  414. struct work *work, *tmp;
  415. if (knc->cgpu != cgpu)
  416. return;
  417. DL_FOREACH_SAFE(knc->workqueue, work, tmp){
  418. knc_titan_remove_local_queue(knc, work);
  419. }
  420. knc_titan_set_queue_full(knc);
  421. HASH_LAST_ADDED(knc->devicework, work);
  422. if (work && stale_work(work, true)) {
  423. int asic, die;
  424. for (asic = 0; asic < KNC_TITAN_MAX_ASICS; ++asic) {
  425. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  426. knc->dies[asic][die].need_flush = true;
  427. }
  428. }
  429. timer_set_now(&thr->tv_poll);
  430. }
  431. }
  432. #define MAKE_WORKID(asic, die, slot) ((((uint32_t)(asic)) << 16) | ((uint32_t)(die) << 8) | ((uint32_t)(slot)))
  433. #define ASIC_FROM_WORKID(workid) ((((uint32_t)(workid)) >> 16) & 0xFF)
  434. #define DIE_FROM_WORKID(workid) ((((uint32_t)(workid)) >> 8) & 0xFF)
  435. #define SLOT_FROM_WORKID(workid) (((uint32_t)(workid)) & 0xFF)
  436. static void knc_titan_poll(struct thr_info * const thr)
  437. {
  438. struct thr_info *mythr;
  439. struct cgpu_info * const cgpu = thr->cgpu, *proc;
  440. struct knc_titan_info * const knc = cgpu->device_data;
  441. struct knc_titan_core *knccore, *core1;
  442. struct work *work, *tmp;
  443. int workaccept = 0;
  444. unsigned long delay_usecs = KNC_POLL_INTERVAL_US;
  445. struct knc_report report;
  446. struct knc_die_info die_info;
  447. int asic;
  448. int die;
  449. int i, tmp_int;
  450. struct knc_titan_die *die_p;
  451. struct timeval tv_now;
  452. knc_titan_prune_local_queue(thr);
  453. for (asic = 0; asic < KNC_TITAN_MAX_ASICS; ++asic) {
  454. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  455. die_p = &(knc->dies[asic][die]);
  456. if (0 >= die_p->cores)
  457. continue;
  458. struct cgpu_info *first_proc = die_p->first_proc;
  459. DL_FOREACH_SAFE(knc->workqueue, work, tmp) {
  460. bool work_accepted = false;
  461. bool need_replace;
  462. if (die_p->first_slot > KNC_TITAN_MIN_WORK_SLOT_NUM)
  463. need_replace = ((die_p->next_slot + 1) == die_p->first_slot);
  464. else
  465. need_replace = (die_p->next_slot == KNC_TITAN_MAX_WORK_SLOT_NUM);
  466. if (die_p->need_flush || need_replace) {
  467. bool unused;
  468. if (die_p->broadcast_flushes) {
  469. /* Use broadcast */
  470. if (knc_titan_set_work(proc->proc_repr, knc->ctx, asic, die, ALL_CORES, die_p->next_slot, work, true, &unused, &report)) {
  471. work_accepted = true;
  472. }
  473. } else {
  474. /* Use unicasts */
  475. for (proc = first_proc; proc; proc = proc->next_proc) {
  476. mythr = proc->thr[0];
  477. core1 = mythr->cgpu_data;
  478. if ((core1->dieno != die) || (core1->asicno != asic))
  479. break;
  480. if (knc_titan_set_work(proc->proc_repr, knc->ctx, asic, die, core1->coreno, die_p->next_slot, work, true, &unused, &report)) {
  481. core1->last_nonce.slot = report.nonce[0].slot;
  482. core1->last_nonce.nonce = report.nonce[0].nonce;
  483. work_accepted = true;
  484. }
  485. }
  486. }
  487. } else {
  488. if (!knc_titan_set_work(first_proc->dev_repr, knc->ctx, asic, die, ALL_CORES, die_p->next_slot, work, false, &work_accepted, &report))
  489. work_accepted = false;
  490. }
  491. knccore = first_proc->thr[0]->cgpu_data;
  492. if ((!work_accepted) || (NULL == knccore))
  493. break;
  494. bool was_flushed = false;
  495. if (die_p->need_flush || need_replace) {
  496. struct work *work1, *tmp1;
  497. applog(LOG_NOTICE, "%s[%d-%d] Flushing stale works (%s)", first_proc->dev_repr, asic, die,
  498. die_p->need_flush ? "New work" : "Slot collision");
  499. die_p->need_flush = false;
  500. die_p->first_slot = die_p->next_slot;
  501. HASH_ITER(hh, knc->devicework, work1, tmp1) {
  502. if ( (asic == ASIC_FROM_WORKID(work1->device_id)) &&
  503. (die == DIE_FROM_WORKID(work1->device_id)) ) {
  504. HASH_DEL(knc->devicework, work1);
  505. free_work(work1);
  506. }
  507. }
  508. delay_usecs = 0;
  509. was_flushed = true;
  510. }
  511. --knc->workqueue_size;
  512. DL_DELETE(knc->workqueue, work);
  513. work->device_id = MAKE_WORKID(asic, die, die_p->next_slot);
  514. HASH_ADD(hh, knc->devicework, device_id, sizeof(work->device_id), work);
  515. if (++(die_p->next_slot) > KNC_TITAN_MAX_WORK_SLOT_NUM)
  516. die_p->next_slot = KNC_TITAN_MIN_WORK_SLOT_NUM;
  517. ++workaccept;
  518. /* If we know for sure that this work was urgent, then we don't need to hurry up
  519. * with filling next slot, we have plenty of time until current work completes.
  520. * So, better to proceed with other ASICs/knc. */
  521. if (was_flushed)
  522. break;
  523. }
  524. }
  525. }
  526. applog(LOG_DEBUG, "%s: %d jobs accepted to queue (max=%d)", knc_titan_drv.dname, workaccept, knc->workqueue_max);
  527. timer_set_now(&tv_now);
  528. for (asic = 0; asic < KNC_TITAN_MAX_ASICS; ++asic) {
  529. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  530. die_p = &(knc->dies[asic][die]);
  531. if (0 >= die_p->cores)
  532. continue;
  533. die_info.cores = die_p->cores; /* core hint */
  534. die_info.version = KNC_VERSION_TITAN;
  535. if (!knc_titan_get_info(cgpu->dev_repr, knc->ctx, asic, die, &die_info))
  536. continue;
  537. for (proc = die_p->first_proc; proc; proc = proc->next_proc) {
  538. mythr = proc->thr[0];
  539. knccore = mythr->cgpu_data;
  540. if ((knccore->dieno != die) || (knccore->asicno != asic))
  541. break;
  542. if (!die_info.has_report[knccore->coreno])
  543. continue;
  544. if (!knc_titan_get_report(proc->proc_repr, knc->ctx, asic, die, knccore->coreno, &report))
  545. continue;
  546. timer_set_now(&(die_p->last_share));
  547. for (i = 0; i < KNC_TITAN_NONCES_PER_REPORT; ++i) {
  548. if ((report.nonce[i].slot == knccore->last_nonce.slot) &&
  549. (report.nonce[i].nonce == knccore->last_nonce.nonce))
  550. break;
  551. tmp_int = MAKE_WORKID(asic, die, report.nonce[i].slot);
  552. HASH_FIND_INT(knc->devicework, &tmp_int, work);
  553. if (!work) {
  554. applog(LOG_WARNING, "%"PRIpreprv": Got nonce for unknown work in slot %u (asic %d)", proc->proc_repr, (unsigned)report.nonce[i].slot, asic);
  555. continue;
  556. }
  557. if (submit_nonce(mythr, work, report.nonce[i].nonce)) {
  558. hashes_done2(mythr, DEFAULT_DIFF_HASHES_PER_NONCE, NULL);
  559. knccore->hwerr_in_row = 0;
  560. }
  561. }
  562. knccore->last_nonce.slot = report.nonce[0].slot;
  563. knccore->last_nonce.nonce = report.nonce[0].nonce;
  564. }
  565. }
  566. /* Check die health */
  567. for (die = 0; die < KNC_TITAN_DIES_PER_ASIC; ++die) {
  568. die_p = &(knc->dies[asic][die]);
  569. if (0 >= die_p->cores)
  570. continue;
  571. if (timer_elapsed(&(die_p->last_share), &tv_now) < DIE_HEALTH_INTERVAL_SEC)
  572. continue;
  573. /* Reconfigure die */
  574. configure_one_die(knc, asic, die);
  575. }
  576. }
  577. if (workaccept) {
  578. if (workaccept >= knc->workqueue_max) {
  579. knc->workqueue_max = workaccept;
  580. delay_usecs = 0;
  581. }
  582. knc_titan_set_queue_full(knc);
  583. }
  584. timer_set_delay_from_now(&thr->tv_poll, delay_usecs);
  585. }
  586. /*
  587. * specify settings / options via RPC or command line
  588. */
  589. /* support for --set-device
  590. * must be set before probing the device
  591. */
  592. static void knc_titan_set_clock_freq(struct cgpu_info * const device, int const val)
  593. {
  594. }
  595. static const char *knc_titan_set_clock(struct cgpu_info * const device, const char * const option, const char * const setting, char * const replybuf, enum bfg_set_device_replytype * const success)
  596. {
  597. knc_titan_set_clock_freq(device, atoi(setting));
  598. return NULL;
  599. }
  600. static const char *knc_titan_die_ena(struct cgpu_info * const device, const char * const option, const char * const setting, char * const replybuf, enum bfg_set_device_replytype * const success)
  601. {
  602. int asic, die;
  603. char str[256];
  604. /* command format: ASIC:N;DIE:N;MODE:ENABLE|DISABLE|RECONFIGURE */
  605. if (3 != sscanf(setting, "ASIC:%d;DIE:%d;MODE:%255s", &asic, &die, str)) {
  606. error_bad_params:
  607. sprintf(replybuf, "Die setup failed, bad parameters");
  608. return replybuf;
  609. }
  610. if (0 == strncasecmp(str, "enable", sizeof(str) - 1)) {
  611. if (!die_enable(device->device_data, asic, die, replybuf))
  612. return replybuf;
  613. } else if (0 == strncasecmp(str, "disable", sizeof(str) - 1)) {
  614. if (!die_disable(device->device_data, asic, die, replybuf))
  615. return replybuf;
  616. } else if (0 == strncasecmp(str, "reconfigure", sizeof(str) - 1)) {
  617. if (!die_reconfigure(device->device_data, asic, die, replybuf))
  618. return replybuf;
  619. } else
  620. goto error_bad_params;
  621. sprintf(replybuf, "Die setup Ok; asic %d die %d cmd %s", asic, die, str);
  622. *success = SDR_OK;
  623. return replybuf;
  624. }
  625. static const struct bfg_set_device_definition knc_titan_set_device_funcs[] = {
  626. { "clock", knc_titan_set_clock, NULL },
  627. { "die", knc_titan_die_ena, NULL },
  628. { NULL },
  629. };
  630. /*
  631. * specify settings / options via TUI
  632. */
  633. #ifdef HAVE_CURSES
  634. static void knc_titan_tui_wlogprint_choices(struct cgpu_info * const proc)
  635. {
  636. wlogprint("[C]lock speed ");
  637. }
  638. static const char *knc_titan_tui_handle_choice(struct cgpu_info * const proc, const int input)
  639. {
  640. static char buf[0x100]; /* Static for replies */
  641. switch (input)
  642. {
  643. case 'c': case 'C':
  644. {
  645. sprintf(buf, "Set clock speed");
  646. char * const setting = curses_input(buf);
  647. knc_titan_set_clock_freq(proc->device, atoi(setting));
  648. return "Clock speed changed\n";
  649. }
  650. }
  651. return NULL;
  652. }
  653. static void knc_titan_wlogprint_status(struct cgpu_info * const proc)
  654. {
  655. wlogprint("Clock speed: N/A\n");
  656. }
  657. #endif
  658. struct device_drv knc_titan_drv =
  659. {
  660. /* metadata */
  661. .dname = "titan",
  662. .name = "KNC",
  663. .supported_algos = POW_SCRYPT,
  664. .drv_detect = knc_titan_detect,
  665. .thread_init = knc_titan_init,
  666. /* specify mining type - queue */
  667. .minerloop = minerloop_queue,
  668. .queue_append = knc_titan_queue_append,
  669. .queue_flush = knc_titan_queue_flush,
  670. .poll = knc_titan_poll,
  671. .prepare_work = knc_titan_prepare_work,
  672. /* TUI support - e.g. setting clock via UI */
  673. #ifdef HAVE_CURSES
  674. .proc_wlogprint_status = knc_titan_wlogprint_status,
  675. .proc_tui_wlogprint_choices = knc_titan_tui_wlogprint_choices,
  676. .proc_tui_handle_choice = knc_titan_tui_handle_choice,
  677. #endif
  678. };