driver-klondike.c 45 KB

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  1. /*
  2. * Copyright 2013 Andrew Smith
  3. * Copyright 2013 Con Kolivas
  4. * Copyright 2013 Chris Savery
  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 <float.h>
  12. #include <limits.h>
  13. #include <pthread.h>
  14. #include <stdint.h>
  15. #include <stdio.h>
  16. #include <strings.h>
  17. #include <sys/time.h>
  18. #include <unistd.h>
  19. #include <math.h>
  20. #include "config.h"
  21. #ifdef WIN32
  22. #include <windows.h>
  23. #endif
  24. #include "compat.h"
  25. #include "deviceapi.h"
  26. #include "lowlevel.h"
  27. #include "miner.h"
  28. #define K1 "K1"
  29. #define K16 "K16"
  30. #define K64 "K64"
  31. static const char *msg_detect_send = "DSend";
  32. static const char *msg_detect_reply = "DReply";
  33. static const char *msg_send = "Send";
  34. static const char *msg_reply = "Reply";
  35. #define KLN_CMD_ABORT 'A'
  36. #define KLN_CMD_CONFIG 'C'
  37. #define KLN_CMD_ENABLE 'E'
  38. #define KLN_CMD_IDENT 'I'
  39. #define KLN_CMD_NONCE '='
  40. #define KLN_CMD_STATUS 'S'
  41. #define KLN_CMD_WORK 'W'
  42. #define KLN_CMD_ENABLE_OFF '0'
  43. #define KLN_CMD_ENABLE_ON '1'
  44. #define MIDSTATE_BYTES 32
  45. #define MERKLE_OFFSET 64
  46. #define MERKLE_BYTES 12
  47. #define REPLY_SIZE 15 // adequate for all types of replies
  48. #define MAX_KLINES 1024 // unhandled reply limit
  49. #define REPLY_WAIT_TIME 100 // poll interval for a cmd waiting it's reply
  50. #define CMD_REPLY_RETRIES 8 // how many retries for cmds
  51. #define MAX_WORK_COUNT 4 // for now, must be binary multiple and match firmware
  52. #define TACH_FACTOR 87890 // fan rpm divisor
  53. #define KLN_KILLWORK_TEMP 53.5
  54. #define KLN_COOLED_DOWN 45.5
  55. /*
  56. * Work older than 5s will already be completed
  57. * FYI it must not be possible to complete 256 work
  58. * items this quickly on a single device -
  59. * thus limited to 219.9GH/s per device
  60. */
  61. #define OLD_WORK_MS ((int)(5 * 1000))
  62. /*
  63. * How many incorrect slave counts to ignore in a row
  64. * 2 means it allows random grabage returned twice
  65. * Until slaves are implemented, this should never occur
  66. * so allowing 2 in a row should ignore random errros
  67. */
  68. #define KLN_ISS_IGNORE 2
  69. /*
  70. * If the queue status hasn't been updated for this long then do it now
  71. * 5GH/s = 859ms per full nonce range
  72. */
  73. #define LATE_UPDATE_MS ((int)(2.5 * 1000))
  74. // If 5 late updates in a row, try to reset the device
  75. #define LATE_UPDATE_LIMIT 5
  76. // If the reset fails sleep for 1s
  77. #define LATE_UPDATE_SLEEP_MS 1000
  78. // However give up after 8s
  79. #define LATE_UPDATE_NODEV_MS ((int)(8.0 * 1000))
  80. BFG_REGISTER_DRIVER(klondike_drv)
  81. typedef struct klondike_header {
  82. uint8_t cmd;
  83. uint8_t dev;
  84. uint8_t buf[REPLY_SIZE-2];
  85. } HEADER;
  86. #define K_2(_bytes) ((int)(_bytes[0]) + \
  87. ((int)(_bytes[1]) << 8))
  88. #define K_4(_bytes) ((uint64_t)(_bytes[0]) + \
  89. ((uint64_t)(_bytes[1]) << 8) + \
  90. ((uint64_t)(_bytes[2]) << 16) + \
  91. ((uint64_t)(_bytes[3]) << 24))
  92. #define K_SERIAL(_serial) K_4(_serial)
  93. #define K_HASHCOUNT(_hashcount) K_2(_hashcount)
  94. #define K_MAXCOUNT(_maxcount) K_2(_maxcount)
  95. #define K_NONCE(_nonce) K_4(_nonce)
  96. #define K_HASHCLOCK(_hashclock) K_2(_hashclock)
  97. #define SET_HASHCLOCK(_hashclock, _value) do { \
  98. (_hashclock)[0] = (uint8_t)((_value) & 0xff); \
  99. (_hashclock)[1] = (uint8_t)(((_value) >> 8) & 0xff); \
  100. } while(0)
  101. #define KSENDHD(_add) (sizeof(uint8_t) + sizeof(uint8_t) + _add)
  102. typedef struct klondike_id {
  103. uint8_t cmd;
  104. uint8_t dev;
  105. uint8_t version;
  106. uint8_t product[7];
  107. uint8_t serial[4];
  108. } IDENTITY;
  109. typedef struct klondike_status {
  110. uint8_t cmd;
  111. uint8_t dev;
  112. uint8_t state;
  113. uint8_t chipcount;
  114. uint8_t slavecount;
  115. uint8_t workqc;
  116. uint8_t workid;
  117. uint8_t temp;
  118. uint8_t fanspeed;
  119. uint8_t errorcount;
  120. uint8_t hashcount[2];
  121. uint8_t maxcount[2];
  122. uint8_t noise;
  123. } WORKSTATUS;
  124. typedef struct _worktask {
  125. uint8_t cmd;
  126. uint8_t dev;
  127. uint8_t workid;
  128. uint8_t midstate[32];
  129. uint8_t merkle[12];
  130. } WORKTASK;
  131. typedef struct _workresult {
  132. uint8_t cmd;
  133. uint8_t dev;
  134. uint8_t workid;
  135. uint8_t nonce[4];
  136. } WORKRESULT;
  137. typedef struct klondike_cfg {
  138. uint8_t cmd;
  139. uint8_t dev;
  140. uint8_t hashclock[2];
  141. uint8_t temptarget;
  142. uint8_t tempcritical;
  143. uint8_t fantarget;
  144. uint8_t pad2;
  145. } WORKCFG;
  146. typedef struct kline {
  147. union {
  148. HEADER hd;
  149. IDENTITY id;
  150. WORKSTATUS ws;
  151. WORKTASK wt;
  152. WORKRESULT wr;
  153. WORKCFG cfg;
  154. };
  155. } KLINE;
  156. #define zero_kline(_kline) memset((void *)(_kline), 0, sizeof(KLINE));
  157. typedef struct device_info {
  158. uint32_t noncecount;
  159. uint32_t nextworkid;
  160. uint16_t lasthashcount;
  161. uint64_t totalhashcount;
  162. uint32_t rangesize;
  163. uint32_t *chipstats;
  164. } DEVINFO;
  165. typedef struct klist {
  166. struct klist *prev;
  167. struct klist *next;
  168. KLINE kline;
  169. struct timeval tv_when;
  170. int block_seq;
  171. bool ready;
  172. bool working;
  173. } KLIST;
  174. typedef struct jobque {
  175. int workqc;
  176. struct timeval last_update;
  177. bool overheat;
  178. bool flushed;
  179. int late_update_count;
  180. int late_update_sequential;
  181. } JOBQUE;
  182. struct klondike_info {
  183. pthread_rwlock_t stat_lock;
  184. struct thr_info replies_thr;
  185. cglock_t klist_lock;
  186. KLIST *used;
  187. KLIST *free;
  188. int kline_count;
  189. int used_count;
  190. int block_seq;
  191. KLIST *status;
  192. DEVINFO *devinfo;
  193. KLIST *cfg;
  194. JOBQUE *jobque;
  195. int noncecount;
  196. uint64_t hashcount;
  197. uint64_t errorcount;
  198. uint64_t noisecount;
  199. int incorrect_slave_sequential;
  200. // us Delay from USB reply to being processed
  201. double delay_count;
  202. double delay_total;
  203. double delay_min;
  204. double delay_max;
  205. struct timeval tv_last_nonce_received;
  206. // Time from recieving one nonce to the next
  207. double nonce_count;
  208. double nonce_total;
  209. double nonce_min;
  210. double nonce_max;
  211. int wque_size;
  212. int wque_cleared;
  213. bool initialised;
  214. struct libusb_device_handle *usbdev_handle;
  215. // TODO:
  216. bool usbinfo_nodev;
  217. };
  218. static KLIST *new_klist_set(struct cgpu_info *klncgpu)
  219. {
  220. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  221. KLIST *klist = NULL;
  222. int i;
  223. klist = calloc(MAX_KLINES, sizeof(*klist));
  224. if (!klist)
  225. quit(1, "Failed to calloc klist - when old count=%d", klninfo->kline_count);
  226. klninfo->kline_count += MAX_KLINES;
  227. klist[0].prev = NULL;
  228. klist[0].next = &(klist[1]);
  229. for (i = 1; i < MAX_KLINES-1; i++) {
  230. klist[i].prev = &klist[i-1];
  231. klist[i].next = &klist[i+1];
  232. }
  233. klist[MAX_KLINES-1].prev = &(klist[MAX_KLINES-2]);
  234. klist[MAX_KLINES-1].next = NULL;
  235. return klist;
  236. }
  237. static KLIST *allocate_kitem(struct cgpu_info *klncgpu)
  238. {
  239. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  240. KLIST *kitem = NULL;
  241. int ran_out = 0;
  242. char errbuf[1024];
  243. cg_wlock(&klninfo->klist_lock);
  244. if (klninfo->free == NULL) {
  245. ran_out = klninfo->kline_count;
  246. klninfo->free = new_klist_set(klncgpu);
  247. snprintf(errbuf, sizeof(errbuf),
  248. "%s%i: KLINE count exceeded %d, now %d",
  249. klncgpu->drv->name, klncgpu->device_id,
  250. ran_out, klninfo->kline_count);
  251. }
  252. kitem = klninfo->free;
  253. klninfo->free = klninfo->free->next;
  254. if (klninfo->free)
  255. klninfo->free->prev = NULL;
  256. kitem->next = klninfo->used;
  257. kitem->prev = NULL;
  258. if (kitem->next)
  259. kitem->next->prev = kitem;
  260. klninfo->used = kitem;
  261. kitem->ready = false;
  262. kitem->working = false;
  263. memset((void *)&(kitem->kline), 0, sizeof(kitem->kline));
  264. klninfo->used_count++;
  265. cg_wunlock(&klninfo->klist_lock);
  266. if (ran_out > 0)
  267. applog(LOG_WARNING, "%s", errbuf);
  268. return kitem;
  269. }
  270. static KLIST *release_kitem(struct cgpu_info *klncgpu, KLIST *kitem)
  271. {
  272. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  273. cg_wlock(&klninfo->klist_lock);
  274. if (kitem == klninfo->used)
  275. klninfo->used = kitem->next;
  276. if (kitem->next)
  277. kitem->next->prev = kitem->prev;
  278. if (kitem->prev)
  279. kitem->prev->next = kitem->next;
  280. kitem->next = klninfo->free;
  281. if (klninfo->free)
  282. klninfo->free->prev = kitem;
  283. kitem->prev = NULL;
  284. klninfo->free = kitem;
  285. klninfo->used_count--;
  286. cg_wunlock(&klninfo->klist_lock);
  287. return NULL;
  288. }
  289. static
  290. int usb_init(struct cgpu_info * const klncgpu, struct libusb_device * const dev)
  291. {
  292. struct klondike_info * const klninfo = klncgpu->device_data;
  293. int e;
  294. if (libusb_open(dev, &klninfo->usbdev_handle) != LIBUSB_SUCCESS)
  295. return 0;
  296. if (LIBUSB_SUCCESS != (e = libusb_set_configuration(klninfo->usbdev_handle, 1)))
  297. {
  298. applog(LOG_DEBUG, "%s: Failed to set configuration 1: %s",
  299. klondike_drv.dname, bfg_strerror(e, BST_LIBUSB));
  300. fail:
  301. libusb_close(klninfo->usbdev_handle);
  302. return 0;
  303. }
  304. if (LIBUSB_SUCCESS != (e = libusb_claim_interface(klninfo->usbdev_handle, 0)))
  305. {
  306. applog(LOG_DEBUG, "%s: Failed to claim interface 0: %s",
  307. klondike_drv.dname, bfg_strerror(e, BST_LIBUSB));
  308. goto fail;
  309. }
  310. return 1;
  311. }
  312. static
  313. int _usb_rw(struct cgpu_info * const klncgpu, void * const buf, const size_t bufsiz, int * const processed, int ep)
  314. {
  315. struct klondike_info * const klninfo = klncgpu->device_data;
  316. const unsigned int timeout = 999;
  317. unsigned char *cbuf = buf;
  318. int err, sent;
  319. *processed = 0;
  320. while (*processed < bufsiz)
  321. {
  322. err = libusb_bulk_transfer(klninfo->usbdev_handle, ep, cbuf, bufsiz, &sent, timeout);
  323. if (unlikely(err))
  324. return err;
  325. *processed += sent;
  326. }
  327. return LIBUSB_SUCCESS;
  328. }
  329. #define usb_read( klncgpu, buf, bufsiz, processed) _usb_rw(klncgpu, buf, bufsiz, processed, 1 | LIBUSB_ENDPOINT_IN)
  330. #define usb_write(klncgpu, buf, bufsiz, processed) _usb_rw(klncgpu, buf, bufsiz, processed, 1 | LIBUSB_ENDPOINT_OUT)
  331. static
  332. void usb_nodev(__maybe_unused struct cgpu_info * const klncgpu)
  333. {
  334. // TODO
  335. }
  336. static
  337. void usb_uninit(struct cgpu_info * const klncgpu)
  338. {
  339. struct klondike_info * const klninfo = klncgpu->device_data;
  340. libusb_release_interface(klninfo->usbdev_handle, 0);
  341. libusb_close(klninfo->usbdev_handle);
  342. }
  343. static double cvtKlnToC(uint8_t temp)
  344. {
  345. double Rt, stein, celsius;
  346. if (temp == 0)
  347. return 0.0;
  348. Rt = 1000.0 * 255.0 / (double)temp - 1000.0;
  349. stein = log(Rt / 2200.0) / 3987.0;
  350. stein += 1.0 / (double)(25.0 + 273.15);
  351. celsius = (1.0 / stein) - 273.15;
  352. // For display of bad data
  353. if (celsius < 0.0)
  354. celsius = 0.0;
  355. if (celsius > 200.0)
  356. celsius = 200.0;
  357. return celsius;
  358. }
  359. static int cvtCToKln(double deg)
  360. {
  361. double Rt, stein, temp;
  362. if (deg < 0.0)
  363. deg = 0.0;
  364. stein = 1.0 / (deg + 273.15);
  365. stein -= 1.0 / (double)(25.0 + 273.15);
  366. Rt = exp(stein * 3987.0) * 2200.0;
  367. if (Rt == -1000.0)
  368. Rt++;
  369. temp = 1000.0 * 256.0 / (Rt + 1000.0);
  370. if (temp > 255)
  371. temp = 255;
  372. if (temp < 0)
  373. temp = 0;
  374. return (int)temp;
  375. }
  376. // Change this to LOG_WARNING if you wish to always see the replies
  377. #define READ_DEBUG LOG_DEBUG
  378. static void display_kline(struct cgpu_info *klncgpu, KLINE *kline, const char *msg)
  379. {
  380. switch (kline->hd.cmd) {
  381. case KLN_CMD_NONCE:
  382. applog(READ_DEBUG,
  383. "%s%i:%d %s work [%c] dev=%d workid=%d"
  384. " nonce=0x%08x",
  385. klncgpu->drv->name, klncgpu->device_id,
  386. (int)(kline->wr.dev), msg, kline->wr.cmd,
  387. (int)(kline->wr.dev),
  388. (int)(kline->wr.workid),
  389. (unsigned int)K_NONCE(kline->wr.nonce) - 0xC0);
  390. break;
  391. case KLN_CMD_STATUS:
  392. case KLN_CMD_WORK:
  393. case KLN_CMD_ENABLE:
  394. case KLN_CMD_ABORT:
  395. applog(READ_DEBUG,
  396. "%s%i:%d %s status [%c] dev=%d chips=%d"
  397. " slaves=%d workcq=%d workid=%d temp=%d fan=%d"
  398. " errors=%d hashes=%d max=%d noise=%d",
  399. klncgpu->drv->name, klncgpu->device_id,
  400. (int)(kline->ws.dev), msg, kline->ws.cmd,
  401. (int)(kline->ws.dev),
  402. (int)(kline->ws.chipcount),
  403. (int)(kline->ws.slavecount),
  404. (int)(kline->ws.workqc),
  405. (int)(kline->ws.workid),
  406. (int)(kline->ws.temp),
  407. (int)(kline->ws.fanspeed),
  408. (int)(kline->ws.errorcount),
  409. K_HASHCOUNT(kline->ws.hashcount),
  410. K_MAXCOUNT(kline->ws.maxcount),
  411. (int)(kline->ws.noise));
  412. break;
  413. case KLN_CMD_CONFIG:
  414. applog(READ_DEBUG,
  415. "%s%i:%d %s config [%c] dev=%d clock=%d"
  416. " temptarget=%d tempcrit=%d fan=%d",
  417. klncgpu->drv->name, klncgpu->device_id,
  418. (int)(kline->cfg.dev), msg, kline->cfg.cmd,
  419. (int)(kline->cfg.dev),
  420. K_HASHCLOCK(kline->cfg.hashclock),
  421. (int)(kline->cfg.temptarget),
  422. (int)(kline->cfg.tempcritical),
  423. (int)(kline->cfg.fantarget));
  424. break;
  425. case KLN_CMD_IDENT:
  426. applog(READ_DEBUG,
  427. "%s%i:%d %s info [%c] version=0x%02x prod=%.7s"
  428. " serial=0x%08x",
  429. klncgpu->drv->name, klncgpu->device_id,
  430. (int)(kline->hd.dev), msg, kline->hd.cmd,
  431. (int)(kline->id.version),
  432. kline->id.product,
  433. (unsigned int)K_SERIAL(kline->id.serial));
  434. break;
  435. default:
  436. {
  437. char hexdata[REPLY_SIZE * 2];
  438. bin2hex(hexdata, &kline->hd.dev, REPLY_SIZE - 1);
  439. applog(LOG_ERR,
  440. "%s%i:%d %s [%c:%s] unknown and ignored",
  441. klncgpu->drv->name, klncgpu->device_id,
  442. (int)(kline->hd.dev), msg, kline->hd.cmd,
  443. hexdata);
  444. free(hexdata);
  445. break;
  446. }
  447. }
  448. }
  449. static void display_send_kline(struct cgpu_info *klncgpu, KLINE *kline, const char *msg)
  450. {
  451. switch (kline->hd.cmd) {
  452. case KLN_CMD_WORK:
  453. applog(READ_DEBUG,
  454. "%s%i:%d %s work [%c] dev=%d workid=0x%02x ...",
  455. klncgpu->drv->name, klncgpu->device_id,
  456. (int)(kline->wt.dev), msg, kline->ws.cmd,
  457. (int)(kline->wt.dev),
  458. (int)(kline->wt.workid));
  459. break;
  460. case KLN_CMD_CONFIG:
  461. applog(READ_DEBUG,
  462. "%s%i:%d %s config [%c] dev=%d clock=%d"
  463. " temptarget=%d tempcrit=%d fan=%d",
  464. klncgpu->drv->name, klncgpu->device_id,
  465. (int)(kline->cfg.dev), msg, kline->cfg.cmd,
  466. (int)(kline->cfg.dev),
  467. K_HASHCLOCK(kline->cfg.hashclock),
  468. (int)(kline->cfg.temptarget),
  469. (int)(kline->cfg.tempcritical),
  470. (int)(kline->cfg.fantarget));
  471. break;
  472. case KLN_CMD_IDENT:
  473. case KLN_CMD_STATUS:
  474. case KLN_CMD_ABORT:
  475. applog(READ_DEBUG,
  476. "%s%i:%d %s cmd [%c]",
  477. klncgpu->drv->name, klncgpu->device_id,
  478. (int)(kline->hd.dev), msg, kline->hd.cmd);
  479. break;
  480. case KLN_CMD_ENABLE:
  481. applog(READ_DEBUG,
  482. "%s%i:%d %s enable [%c] enable=%c",
  483. klncgpu->drv->name, klncgpu->device_id,
  484. (int)(kline->hd.dev), msg, kline->hd.cmd,
  485. (char)(kline->hd.buf[0]));
  486. break;
  487. case KLN_CMD_NONCE:
  488. default:
  489. {
  490. char hexdata[REPLY_SIZE * 2];
  491. bin2hex(hexdata, (unsigned char *)&(kline->hd.dev), REPLY_SIZE - 1);
  492. applog(LOG_ERR,
  493. "%s%i:%d %s [%c:%s] unknown/unexpected and ignored",
  494. klncgpu->drv->name, klncgpu->device_id,
  495. (int)(kline->hd.dev), msg, kline->hd.cmd,
  496. hexdata);
  497. break;
  498. }
  499. }
  500. }
  501. static bool SendCmd(struct cgpu_info *klncgpu, KLINE *kline, int datalen)
  502. {
  503. struct klondike_info * const klninfo = klncgpu->device_data;
  504. int err, amt, writ;
  505. if (klninfo->usbinfo_nodev)
  506. return false;
  507. display_send_kline(klncgpu, kline, msg_send);
  508. writ = KSENDHD(datalen);
  509. err = usb_write(klncgpu, kline, writ, &amt);
  510. if (err < 0 || amt != writ) {
  511. applog(LOG_ERR, "%s%i:%d Cmd:%c Dev:%d, write failed (%d:%d:%d)",
  512. klncgpu->drv->name, klncgpu->device_id,
  513. (int)(kline->hd.dev),
  514. kline->hd.cmd, (int)(kline->hd.dev),
  515. writ, amt, err);
  516. return false;
  517. }
  518. return true;
  519. }
  520. static KLIST *GetReply(struct cgpu_info *klncgpu, uint8_t cmd, uint8_t dev)
  521. {
  522. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  523. KLIST *kitem;
  524. int retries = CMD_REPLY_RETRIES;
  525. while (retries-- > 0 && klncgpu->shutdown == false) {
  526. cgsleep_ms(REPLY_WAIT_TIME);
  527. cg_rlock(&klninfo->klist_lock);
  528. kitem = klninfo->used;
  529. while (kitem) {
  530. if (kitem->kline.hd.cmd == cmd &&
  531. kitem->kline.hd.dev == dev &&
  532. kitem->ready == true && kitem->working == false) {
  533. kitem->working = true;
  534. cg_runlock(&klninfo->klist_lock);
  535. return kitem;
  536. }
  537. kitem = kitem->next;
  538. }
  539. cg_runlock(&klninfo->klist_lock);
  540. }
  541. return NULL;
  542. }
  543. static KLIST *SendCmdGetReply(struct cgpu_info *klncgpu, KLINE *kline, int datalen)
  544. {
  545. if (!SendCmd(klncgpu, kline, datalen))
  546. return NULL;
  547. return GetReply(klncgpu, kline->hd.cmd, kline->hd.dev);
  548. }
  549. static bool klondike_get_stats(struct cgpu_info *klncgpu)
  550. {
  551. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  552. KLIST *kitem;
  553. KLINE kline;
  554. int slaves, dev;
  555. uint8_t temp = 0xFF;
  556. if (klninfo->usbinfo_nodev || klninfo->status == NULL)
  557. return false;
  558. applog(LOG_DEBUG, "%s%i: getting status",
  559. klncgpu->drv->name, klncgpu->device_id);
  560. rd_lock(&(klninfo->stat_lock));
  561. slaves = klninfo->status[0].kline.ws.slavecount;
  562. rd_unlock(&(klninfo->stat_lock));
  563. // loop thru devices and get status for each
  564. for (dev = 0; dev <= slaves; dev++) {
  565. zero_kline(&kline);
  566. kline.hd.cmd = KLN_CMD_STATUS;
  567. kline.hd.dev = dev;
  568. kitem = SendCmdGetReply(klncgpu, &kline, 0);
  569. if (kitem != NULL) {
  570. wr_lock(&(klninfo->stat_lock));
  571. memcpy((void *)(&(klninfo->status[dev])),
  572. (void *)kitem,
  573. sizeof(klninfo->status[dev]));
  574. wr_unlock(&(klninfo->stat_lock));
  575. kitem = release_kitem(klncgpu, kitem);
  576. } else {
  577. applog(LOG_ERR, "%s%i:%d failed to update stats",
  578. klncgpu->drv->name, klncgpu->device_id, dev);
  579. }
  580. if (klninfo->status[dev].kline.ws.temp < temp)
  581. temp = klninfo->status[dev].kline.ws.temp;
  582. }
  583. klncgpu->temp = cvtKlnToC(temp);
  584. return true;
  585. }
  586. // TODO: this only enables the master (no slaves)
  587. static bool kln_enable(struct cgpu_info *klncgpu)
  588. {
  589. KLIST *kitem;
  590. KLINE kline;
  591. int tries = 2;
  592. bool ok = false;
  593. zero_kline(&kline);
  594. kline.hd.cmd = KLN_CMD_ENABLE;
  595. kline.hd.dev = 0;
  596. kline.hd.buf[0] = KLN_CMD_ENABLE_ON;
  597. while (tries-- > 0) {
  598. kitem = SendCmdGetReply(klncgpu, &kline, 1);
  599. if (kitem) {
  600. kitem = release_kitem(klncgpu, kitem);
  601. ok = true;
  602. break;
  603. }
  604. cgsleep_ms(50);
  605. }
  606. if (ok)
  607. cgsleep_ms(50);
  608. return ok;
  609. }
  610. static void kln_disable(struct cgpu_info *klncgpu, int dev, bool all)
  611. {
  612. KLINE kline;
  613. int i;
  614. zero_kline(&kline);
  615. kline.hd.cmd = KLN_CMD_ENABLE;
  616. kline.hd.buf[0] = KLN_CMD_ENABLE_OFF;
  617. for (i = (all ? 0 : dev); i <= dev; i++) {
  618. kline.hd.dev = i;
  619. SendCmd(klncgpu, &kline, KSENDHD(1));
  620. }
  621. }
  622. static bool klondike_init(struct cgpu_info *klncgpu)
  623. {
  624. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  625. KLIST *kitem;
  626. KLINE kline;
  627. int slaves, dev;
  628. klninfo->initialised = false;
  629. zero_kline(&kline);
  630. kline.hd.cmd = KLN_CMD_STATUS;
  631. kline.hd.dev = 0;
  632. kitem = SendCmdGetReply(klncgpu, &kline, 0);
  633. if (kitem == NULL)
  634. return false;
  635. slaves = kitem->kline.ws.slavecount;
  636. if (klninfo->status == NULL) {
  637. applog(LOG_DEBUG, "%s%i: initializing data",
  638. klncgpu->drv->name, klncgpu->device_id);
  639. // alloc space for status, devinfo, cfg and jobque for master and slaves
  640. klninfo->status = calloc(slaves+1, sizeof(*(klninfo->status)));
  641. if (unlikely(!klninfo->status))
  642. quit(1, "Failed to calloc status array in klondke_get_stats");
  643. klninfo->devinfo = calloc(slaves+1, sizeof(*(klninfo->devinfo)));
  644. if (unlikely(!klninfo->devinfo))
  645. quit(1, "Failed to calloc devinfo array in klondke_get_stats");
  646. klninfo->cfg = calloc(slaves+1, sizeof(*(klninfo->cfg)));
  647. if (unlikely(!klninfo->cfg))
  648. quit(1, "Failed to calloc cfg array in klondke_get_stats");
  649. klninfo->jobque = calloc(slaves+1, sizeof(*(klninfo->jobque)));
  650. if (unlikely(!klninfo->jobque))
  651. quit(1, "Failed to calloc jobque array in klondke_get_stats");
  652. }
  653. memcpy((void *)(&(klninfo->status[0])), (void *)kitem, sizeof(klninfo->status[0]));
  654. kitem = release_kitem(klncgpu, kitem);
  655. // zero init triggers read back only
  656. zero_kline(&kline);
  657. kline.cfg.cmd = KLN_CMD_CONFIG;
  658. int size = 2;
  659. // boundaries are checked by device, with valid values returned
  660. if (opt_klondike_options != NULL) {
  661. int hashclock;
  662. double temptarget;
  663. sscanf(opt_klondike_options, "%d:%lf", &hashclock, &temptarget);
  664. SET_HASHCLOCK(kline.cfg.hashclock, hashclock);
  665. kline.cfg.temptarget = cvtCToKln(temptarget);
  666. kline.cfg.tempcritical = 0; // hard code for old firmware
  667. kline.cfg.fantarget = 0xff; // hard code for old firmware
  668. size = sizeof(kline.cfg) - 2;
  669. }
  670. for (dev = 0; dev <= slaves; dev++) {
  671. kline.cfg.dev = dev;
  672. kitem = SendCmdGetReply(klncgpu, &kline, size);
  673. if (kitem != NULL) {
  674. memcpy((void *)&(klninfo->cfg[dev]), kitem, sizeof(klninfo->cfg[dev]));
  675. applog(LOG_WARNING, "%s%i:%d config (%d: Clk: %d, T:%.0lf, C:%.0lf, F:%d)",
  676. klncgpu->drv->name, klncgpu->device_id, dev,
  677. dev, K_HASHCLOCK(klninfo->cfg[dev].kline.cfg.hashclock),
  678. cvtKlnToC(klninfo->cfg[dev].kline.cfg.temptarget),
  679. cvtKlnToC(klninfo->cfg[dev].kline.cfg.tempcritical),
  680. (int)100*klninfo->cfg[dev].kline.cfg.fantarget/256);
  681. kitem = release_kitem(klncgpu, kitem);
  682. }
  683. }
  684. klondike_get_stats(klncgpu);
  685. klninfo->initialised = true;
  686. for (dev = 0; dev <= slaves; dev++) {
  687. klninfo->devinfo[dev].rangesize = ((uint64_t)1<<32) / klninfo->status[dev].kline.ws.chipcount;
  688. klninfo->devinfo[dev].chipstats = calloc(klninfo->status[dev].kline.ws.chipcount*2 , sizeof(uint32_t));
  689. }
  690. bool ok = kln_enable(klncgpu);
  691. if (!ok)
  692. applog(LOG_ERR, "%s%i: failed to enable", klncgpu->drv->name, klncgpu->device_id);
  693. return ok;
  694. }
  695. static void control_init(struct cgpu_info *klncgpu)
  696. {
  697. struct klondike_info * const klninfo = klncgpu->device_data;
  698. int err, interface;
  699. if (klninfo->usbinfo_nodev)
  700. return;
  701. interface = 0;
  702. err = libusb_control_transfer(klninfo->usbdev_handle, 0, 9, 1, interface, NULL, 0, 999);
  703. applog(LOG_DEBUG, "%s%i: reset got err %d",
  704. klncgpu->drv->name, klncgpu->device_id, err);
  705. }
  706. static
  707. bool klondike_foundlowl(struct lowlevel_device_info * const info, __maybe_unused void * const userp)
  708. {
  709. if (unlikely(info->lowl != &lowl_usb))
  710. {
  711. applog(LOG_WARNING, "%s: Matched \"%s\" serial \"%s\", but lowlevel driver is not usb!",
  712. __func__, info->product, info->serial);
  713. return false;
  714. }
  715. struct libusb_device * const dev = info->lowl_data;
  716. // static bool klondike_detect_one(struct libusb_device *dev, struct usb_find_devices *found)
  717. struct cgpu_info * const klncgpu = malloc(sizeof(*klncgpu));
  718. struct klondike_info *klninfo = NULL;
  719. KLINE kline;
  720. if (unlikely(!klncgpu))
  721. quit(1, "Failed to calloc klncgpu in klondike_detect_one");
  722. *klncgpu = (struct cgpu_info){
  723. .drv = &klondike_drv,
  724. .deven = DEV_ENABLED,
  725. .threads = 1,
  726. .cutofftemp = (int)KLN_KILLWORK_TEMP,
  727. };
  728. klninfo = calloc(1, sizeof(*klninfo));
  729. if (unlikely(!klninfo))
  730. quit(1, "Failed to calloc klninfo in klondke_detect_one");
  731. klncgpu->device_data = (void *)klninfo;
  732. klninfo->free = new_klist_set(klncgpu);
  733. if (usb_init(klncgpu, dev)) {
  734. int sent, recd, err;
  735. KLIST kitem;
  736. int attempts = 0;
  737. klncgpu->device_path = strdup(info->devid);
  738. control_init(klncgpu);
  739. while (attempts++ < 3) {
  740. kline.hd.cmd = KLN_CMD_IDENT;
  741. kline.hd.dev = 0;
  742. display_send_kline(klncgpu, &kline, msg_detect_send);
  743. err = usb_write(klncgpu, (char *)&(kline.hd), 2, &sent);
  744. if (err < 0 || sent != 2) {
  745. applog(LOG_ERR, "%s (%s) detect write failed (%d:%d)",
  746. klncgpu->drv->dname,
  747. klncgpu->device_path,
  748. sent, err);
  749. }
  750. cgsleep_ms(REPLY_WAIT_TIME*10);
  751. err = usb_read(klncgpu, &kitem.kline, REPLY_SIZE, &recd);
  752. if (err < 0) {
  753. applog(LOG_ERR, "%s (%s) detect read failed (%d:%d)",
  754. klncgpu->drv->dname,
  755. klncgpu->device_path,
  756. recd, err);
  757. } else if (recd < 1) {
  758. applog(LOG_ERR, "%s (%s) detect empty reply (%d)",
  759. klncgpu->drv->dname,
  760. klncgpu->device_path,
  761. recd);
  762. } else if (kitem.kline.hd.cmd == KLN_CMD_IDENT && kitem.kline.hd.dev == 0) {
  763. display_kline(klncgpu, &kitem.kline, msg_detect_reply);
  764. applog(LOG_DEBUG, "%s (%s) detect successful (%d attempt%s)",
  765. klncgpu->drv->dname,
  766. klncgpu->device_path,
  767. attempts, attempts == 1 ? "" : "s");
  768. if (!add_cgpu(klncgpu))
  769. break;
  770. applog(LOG_DEBUG, "Klondike cgpu added");
  771. rwlock_init(&klninfo->stat_lock);
  772. cglock_init(&klninfo->klist_lock);
  773. return true;
  774. }
  775. }
  776. usb_uninit(klncgpu);
  777. }
  778. free(klninfo->free);
  779. free(klninfo);
  780. free(klncgpu);
  781. return false;
  782. }
  783. static
  784. bool klondike_detect_one(const char *serial)
  785. {
  786. return lowlevel_detect_serial(klondike_foundlowl, serial);
  787. }
  788. static
  789. int klondike_autodetect()
  790. {
  791. return lowlevel_detect(klondike_foundlowl, "K16");
  792. }
  793. static
  794. void klondike_detect()
  795. {
  796. generic_detect(&klondike_drv, klondike_detect_one, klondike_autodetect, 0);
  797. }
  798. static
  799. bool klondike_identify(__maybe_unused struct cgpu_info * const klncgpu)
  800. {
  801. /*
  802. KLINE kline;
  803. zero_kline(&kline);
  804. kline.hd.cmd = KLN_CMD_IDENT;
  805. kline.hd.dev = 0;
  806. SendCmdGetReply(klncgpu, &kline, KSENDHD(0));
  807. */
  808. return false;
  809. }
  810. static void klondike_check_nonce(struct cgpu_info *klncgpu, KLIST *kitem)
  811. {
  812. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  813. struct work *work, *look, *tmp;
  814. KLINE *kline = &(kitem->kline);
  815. struct timeval tv_now;
  816. double us_diff;
  817. uint32_t nonce = K_NONCE(kline->wr.nonce) - 0xC0;
  818. applog(LOG_DEBUG, "%s%i:%d FOUND NONCE (%02x:%08x)",
  819. klncgpu->drv->name, klncgpu->device_id, (int)(kline->wr.dev),
  820. kline->wr.workid, (unsigned int)nonce);
  821. work = NULL;
  822. cgtime(&tv_now);
  823. rd_lock(&(klncgpu->qlock));
  824. HASH_ITER(hh, klncgpu->queued_work, look, tmp) {
  825. if (ms_tdiff(&tv_now, &(look->tv_stamp)) < OLD_WORK_MS &&
  826. (look->subid == (kline->wr.dev*256 + kline->wr.workid))) {
  827. work = look;
  828. break;
  829. }
  830. }
  831. rd_unlock(&(klncgpu->qlock));
  832. if (work) {
  833. wr_lock(&(klninfo->stat_lock));
  834. klninfo->devinfo[kline->wr.dev].noncecount++;
  835. klninfo->noncecount++;
  836. wr_unlock(&(klninfo->stat_lock));
  837. applog(LOG_DEBUG, "%s%i:%d SUBMIT NONCE (%02x:%08x)",
  838. klncgpu->drv->name, klncgpu->device_id, (int)(kline->wr.dev),
  839. kline->wr.workid, (unsigned int)nonce);
  840. cgtime(&tv_now);
  841. bool ok = submit_nonce(klncgpu->thr[0], work, nonce);
  842. applog(LOG_DEBUG, "%s%i:%d chip stats %d, %08x, %d, %d",
  843. klncgpu->drv->name, klncgpu->device_id, (int)(kline->wr.dev),
  844. kline->wr.dev, (unsigned int)nonce,
  845. klninfo->devinfo[kline->wr.dev].rangesize,
  846. klninfo->status[kline->wr.dev].kline.ws.chipcount);
  847. klninfo->devinfo[kline->wr.dev].chipstats[(nonce / klninfo->devinfo[kline->wr.dev].rangesize) + (ok ? 0 : klninfo->status[kline->wr.dev].kline.ws.chipcount)]++;
  848. us_diff = us_tdiff(&tv_now, &(kitem->tv_when));
  849. if (klninfo->delay_count == 0) {
  850. klninfo->delay_min = us_diff;
  851. klninfo->delay_max = us_diff;
  852. } else {
  853. if (klninfo->delay_min > us_diff)
  854. klninfo->delay_min = us_diff;
  855. if (klninfo->delay_max < us_diff)
  856. klninfo->delay_max = us_diff;
  857. }
  858. klninfo->delay_count++;
  859. klninfo->delay_total += us_diff;
  860. if (klninfo->nonce_count > 0) {
  861. us_diff = us_tdiff(&(kitem->tv_when), &(klninfo->tv_last_nonce_received));
  862. if (klninfo->nonce_count == 1) {
  863. klninfo->nonce_min = us_diff;
  864. klninfo->nonce_max = us_diff;
  865. } else {
  866. if (klninfo->nonce_min > us_diff)
  867. klninfo->nonce_min = us_diff;
  868. if (klninfo->nonce_max < us_diff)
  869. klninfo->nonce_max = us_diff;
  870. }
  871. klninfo->nonce_total += us_diff;
  872. }
  873. klninfo->nonce_count++;
  874. memcpy(&(klninfo->tv_last_nonce_received), &(kitem->tv_when),
  875. sizeof(klninfo->tv_last_nonce_received));
  876. return;
  877. }
  878. applog(LOG_ERR, "%s%i:%d unknown work (%02x:%08x) - ignored",
  879. klncgpu->drv->name, klncgpu->device_id, (int)(kline->wr.dev),
  880. kline->wr.workid, (unsigned int)nonce);
  881. //inc_hw_errors(klncgpu->thr[0]);
  882. }
  883. // thread to keep looking for replies
  884. static void *klondike_get_replies(void *userdata)
  885. {
  886. struct cgpu_info *klncgpu = (struct cgpu_info *)userdata;
  887. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  888. KLIST *kitem = NULL;
  889. int err, recd, slaves, dev, isc;
  890. bool overheat, sent;
  891. applog(LOG_DEBUG, "%s%i: listening for replies",
  892. klncgpu->drv->name, klncgpu->device_id);
  893. while (klncgpu->shutdown == false) {
  894. if (klninfo->usbinfo_nodev)
  895. return NULL;
  896. if (kitem == NULL)
  897. kitem = allocate_kitem(klncgpu);
  898. else
  899. memset((void *)&(kitem->kline), 0, sizeof(kitem->kline));
  900. err = usb_read(klncgpu, &kitem->kline, REPLY_SIZE, &recd);
  901. if (err || recd != REPLY_SIZE) {
  902. if (err != -7)
  903. applog(LOG_ERR, "%s%i: reply err=%d amt=%d",
  904. klncgpu->drv->name, klncgpu->device_id,
  905. err, recd);
  906. }
  907. if (!err && recd == REPLY_SIZE) {
  908. cgtime(&(kitem->tv_when));
  909. rd_lock(&(klninfo->stat_lock));
  910. kitem->block_seq = klninfo->block_seq;
  911. rd_unlock(&(klninfo->stat_lock));
  912. if (opt_log_level <= READ_DEBUG) {
  913. char hexdata[recd * 2];
  914. bin2hex(hexdata, &kitem->kline.hd.dev, recd-1);
  915. applog(READ_DEBUG, "%s%i:%d reply [%c:%s]",
  916. klncgpu->drv->name, klncgpu->device_id,
  917. (int)(kitem->kline.hd.dev),
  918. kitem->kline.hd.cmd, hexdata);
  919. }
  920. // We can't check this until it's initialised
  921. if (klninfo->initialised) {
  922. rd_lock(&(klninfo->stat_lock));
  923. slaves = klninfo->status[0].kline.ws.slavecount;
  924. rd_unlock(&(klninfo->stat_lock));
  925. if (kitem->kline.hd.dev > slaves) {
  926. applog(LOG_ERR, "%s%i: reply [%c] has invalid dev=%d (max=%d) using 0",
  927. klncgpu->drv->name, klncgpu->device_id,
  928. (char)(kitem->kline.hd.cmd),
  929. (int)(kitem->kline.hd.dev),
  930. slaves);
  931. /* TODO: this is rather problematic if there are slaves
  932. * however without slaves - it should always be zero */
  933. kitem->kline.hd.dev = 0;
  934. } else {
  935. wr_lock(&(klninfo->stat_lock));
  936. klninfo->jobque[kitem->kline.hd.dev].late_update_sequential = 0;
  937. wr_unlock(&(klninfo->stat_lock));
  938. }
  939. }
  940. switch (kitem->kline.hd.cmd) {
  941. case KLN_CMD_NONCE:
  942. klondike_check_nonce(klncgpu, kitem);
  943. display_kline(klncgpu, &kitem->kline, msg_reply);
  944. break;
  945. case KLN_CMD_WORK:
  946. // We can't do/check this until it's initialised
  947. if (klninfo->initialised) {
  948. dev = kitem->kline.ws.dev;
  949. if (kitem->kline.ws.workqc == 0) {
  950. bool idle = false;
  951. rd_lock(&(klninfo->stat_lock));
  952. if (klninfo->jobque[dev].flushed == false)
  953. idle = true;
  954. slaves = klninfo->status[0].kline.ws.slavecount;
  955. rd_unlock(&(klninfo->stat_lock));
  956. if (idle)
  957. applog(LOG_WARNING, "%s%i:%d went idle before work was sent",
  958. klncgpu->drv->name,
  959. klncgpu->device_id,
  960. dev);
  961. }
  962. wr_lock(&(klninfo->stat_lock));
  963. klninfo->jobque[dev].flushed = false;
  964. wr_unlock(&(klninfo->stat_lock));
  965. }
  966. case KLN_CMD_STATUS:
  967. case KLN_CMD_ABORT:
  968. // We can't do/check this until it's initialised
  969. if (klninfo->initialised) {
  970. isc = 0;
  971. dev = kitem->kline.ws.dev;
  972. wr_lock(&(klninfo->stat_lock));
  973. klninfo->jobque[dev].workqc = (int)(kitem->kline.ws.workqc);
  974. cgtime(&(klninfo->jobque[dev].last_update));
  975. slaves = klninfo->status[0].kline.ws.slavecount;
  976. overheat = klninfo->jobque[dev].overheat;
  977. if (dev == 0) {
  978. if (kitem->kline.ws.slavecount != slaves)
  979. isc = ++klninfo->incorrect_slave_sequential;
  980. else
  981. isc = klninfo->incorrect_slave_sequential = 0;
  982. }
  983. wr_unlock(&(klninfo->stat_lock));
  984. if (isc) {
  985. applog(LOG_ERR, "%s%i:%d reply [%c] has a diff"
  986. " # of slaves=%d (curr=%d)%s",
  987. klncgpu->drv->name,
  988. klncgpu->device_id,
  989. dev,
  990. (char)(kitem->kline.ws.cmd),
  991. (int)(kitem->kline.ws.slavecount),
  992. slaves,
  993. isc <= KLN_ISS_IGNORE ? "" :
  994. " disabling device");
  995. if (isc > KLN_ISS_IGNORE)
  996. usb_nodev(klncgpu);
  997. break;
  998. }
  999. if (!overheat) {
  1000. double temp = cvtKlnToC(kitem->kline.ws.temp);
  1001. if (temp >= KLN_KILLWORK_TEMP) {
  1002. KLINE kline;
  1003. wr_lock(&(klninfo->stat_lock));
  1004. klninfo->jobque[dev].overheat = true;
  1005. wr_unlock(&(klninfo->stat_lock));
  1006. applog(LOG_WARNING, "%s%i:%d Critical overheat (%.0fC)",
  1007. klncgpu->drv->name,
  1008. klncgpu->device_id,
  1009. dev, temp);
  1010. zero_kline(&kline);
  1011. kline.hd.cmd = KLN_CMD_ABORT;
  1012. kline.hd.dev = dev;
  1013. sent = SendCmd(klncgpu, &kline, KSENDHD(0));
  1014. kln_disable(klncgpu, dev, false);
  1015. if (!sent) {
  1016. applog(LOG_ERR, "%s%i:%d overheat failed to"
  1017. " abort work - disabling device",
  1018. klncgpu->drv->name,
  1019. klncgpu->device_id,
  1020. dev);
  1021. usb_nodev(klncgpu);
  1022. }
  1023. }
  1024. }
  1025. }
  1026. case KLN_CMD_ENABLE:
  1027. wr_lock(&(klninfo->stat_lock));
  1028. klninfo->errorcount += kitem->kline.ws.errorcount;
  1029. klninfo->noisecount += kitem->kline.ws.noise;
  1030. wr_unlock(&(klninfo->stat_lock));
  1031. display_kline(klncgpu, &kitem->kline, msg_reply);
  1032. kitem->ready = true;
  1033. kitem = NULL;
  1034. break;
  1035. case KLN_CMD_CONFIG:
  1036. display_kline(klncgpu, &kitem->kline, msg_reply);
  1037. kitem->ready = true;
  1038. kitem = NULL;
  1039. break;
  1040. case KLN_CMD_IDENT:
  1041. display_kline(klncgpu, &kitem->kline, msg_reply);
  1042. kitem->ready = true;
  1043. kitem = NULL;
  1044. break;
  1045. default:
  1046. display_kline(klncgpu, &kitem->kline, msg_reply);
  1047. break;
  1048. }
  1049. }
  1050. }
  1051. return NULL;
  1052. }
  1053. static void klondike_flush_work(struct cgpu_info *klncgpu)
  1054. {
  1055. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1056. KLIST *kitem;
  1057. KLINE kline;
  1058. int slaves, dev;
  1059. wr_lock(&(klninfo->stat_lock));
  1060. klninfo->block_seq++;
  1061. slaves = klninfo->status[0].kline.ws.slavecount;
  1062. wr_unlock(&(klninfo->stat_lock));
  1063. applog(LOG_DEBUG, "%s%i: flushing work",
  1064. klncgpu->drv->name, klncgpu->device_id);
  1065. zero_kline(&kline);
  1066. kline.hd.cmd = KLN_CMD_ABORT;
  1067. for (dev = 0; dev <= slaves; dev++) {
  1068. kline.hd.dev = dev;
  1069. kitem = SendCmdGetReply(klncgpu, &kline, KSENDHD(0));
  1070. if (kitem != NULL) {
  1071. wr_lock(&(klninfo->stat_lock));
  1072. memcpy((void *)&(klninfo->status[dev]),
  1073. kitem,
  1074. sizeof(klninfo->status[dev]));
  1075. klninfo->jobque[dev].flushed = true;
  1076. wr_unlock(&(klninfo->stat_lock));
  1077. kitem = release_kitem(klncgpu, kitem);
  1078. }
  1079. }
  1080. }
  1081. static bool klondike_thread_prepare(struct thr_info *thr)
  1082. {
  1083. struct cgpu_info *klncgpu = thr->cgpu;
  1084. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1085. if (thr_info_create(&(klninfo->replies_thr), NULL, klondike_get_replies, (void *)klncgpu)) {
  1086. applog(LOG_ERR, "%s%i: thread create failed", klncgpu->drv->name, klncgpu->device_id);
  1087. return false;
  1088. }
  1089. pthread_detach(klninfo->replies_thr.pth);
  1090. // let the listening get started
  1091. cgsleep_ms(100);
  1092. return klondike_init(klncgpu);
  1093. }
  1094. static bool klondike_thread_init(struct thr_info *thr)
  1095. {
  1096. struct cgpu_info *klncgpu = thr->cgpu;
  1097. struct klondike_info * const klninfo = klncgpu->device_data;
  1098. notifier_init(thr->work_restart_notifier);
  1099. if (klninfo->usbinfo_nodev)
  1100. return false;
  1101. klondike_flush_work(klncgpu);
  1102. return true;
  1103. }
  1104. static void klondike_shutdown(struct thr_info *thr)
  1105. {
  1106. struct cgpu_info *klncgpu = thr->cgpu;
  1107. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1108. applog(LOG_DEBUG, "%s%i: shutting down work",
  1109. klncgpu->drv->name, klncgpu->device_id);
  1110. kln_disable(klncgpu, klninfo->status[0].kline.ws.slavecount, true);
  1111. klncgpu->shutdown = true;
  1112. }
  1113. static void klondike_thread_enable(struct thr_info *thr)
  1114. {
  1115. struct cgpu_info *klncgpu = thr->cgpu;
  1116. struct klondike_info * const klninfo = klncgpu->device_data;
  1117. if (klninfo->usbinfo_nodev)
  1118. return;
  1119. /*
  1120. KLINE kline;
  1121. zero_kline(&kline);
  1122. kline.hd.cmd = KLN_CMD_ENABLE;
  1123. kline.hd.dev = dev;
  1124. kline.hd.buf[0] = KLN_CMD_ENABLE_OFF;
  1125. kitem = SendCmdGetReply(klncgpu, &kline, KSENDHD(1));
  1126. */
  1127. }
  1128. static bool klondike_send_work(struct cgpu_info *klncgpu, int dev, struct work *work)
  1129. {
  1130. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1131. struct work *look, *tmp;
  1132. KLINE kline;
  1133. struct timeval tv_old;
  1134. int wque_size, wque_cleared;
  1135. if (klninfo->usbinfo_nodev)
  1136. return false;
  1137. zero_kline(&kline);
  1138. kline.wt.cmd = KLN_CMD_WORK;
  1139. kline.wt.dev = dev;
  1140. memcpy(kline.wt.midstate, work->midstate, MIDSTATE_BYTES);
  1141. memcpy(kline.wt.merkle, work->data + MERKLE_OFFSET, MERKLE_BYTES);
  1142. kline.wt.workid = (uint8_t)(klninfo->devinfo[dev].nextworkid++ & 0xFF);
  1143. work->subid = dev*256 + kline.wt.workid;
  1144. cgtime(&work->tv_stamp);
  1145. if (opt_log_level <= LOG_DEBUG) {
  1146. char hexdata[(sizeof(kline.wt) * 2) + 1];
  1147. bin2hex(hexdata, &kline.wt, sizeof(kline.wt));
  1148. applog(LOG_DEBUG, "WORKDATA: %s", hexdata);
  1149. }
  1150. applog(LOG_DEBUG, "%s%i:%d sending work (%d:%02x)",
  1151. klncgpu->drv->name, klncgpu->device_id, dev,
  1152. dev, kline.wt.workid);
  1153. KLIST *kitem = SendCmdGetReply(klncgpu, &kline, sizeof(kline.wt));
  1154. if (kitem != NULL) {
  1155. wr_lock(&(klninfo->stat_lock));
  1156. memcpy((void *)&(klninfo->status[dev]), kitem, sizeof(klninfo->status[dev]));
  1157. wr_unlock(&(klninfo->stat_lock));
  1158. kitem = release_kitem(klncgpu, kitem);
  1159. // remove old work
  1160. wque_size = 0;
  1161. wque_cleared = 0;
  1162. cgtime(&tv_old);
  1163. wr_lock(&klncgpu->qlock);
  1164. HASH_ITER(hh, klncgpu->queued_work, look, tmp) {
  1165. if (ms_tdiff(&tv_old, &(look->tv_stamp)) > OLD_WORK_MS) {
  1166. __work_completed(klncgpu, look);
  1167. free_work(look);
  1168. wque_cleared++;
  1169. } else
  1170. wque_size++;
  1171. }
  1172. wr_unlock(&klncgpu->qlock);
  1173. wr_lock(&(klninfo->stat_lock));
  1174. klninfo->wque_size = wque_size;
  1175. klninfo->wque_cleared = wque_cleared;
  1176. wr_unlock(&(klninfo->stat_lock));
  1177. return true;
  1178. }
  1179. return false;
  1180. }
  1181. static bool klondike_queue_full(struct cgpu_info *klncgpu)
  1182. {
  1183. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1184. struct work *work = NULL;
  1185. int dev, queued, slaves, seq, howlong;
  1186. struct timeval now;
  1187. bool nowork;
  1188. if (klncgpu->shutdown == true)
  1189. return true;
  1190. cgtime(&now);
  1191. rd_lock(&(klninfo->stat_lock));
  1192. slaves = klninfo->status[0].kline.ws.slavecount;
  1193. for (dev = 0; dev <= slaves; dev++)
  1194. if (ms_tdiff(&now, &(klninfo->jobque[dev].last_update)) > LATE_UPDATE_MS) {
  1195. klninfo->jobque[dev].late_update_count++;
  1196. seq = ++klninfo->jobque[dev].late_update_sequential;
  1197. rd_unlock(&(klninfo->stat_lock));
  1198. if (seq < LATE_UPDATE_LIMIT) {
  1199. applog(LOG_DEBUG, "%s%i:%d late update",
  1200. klncgpu->drv->name, klncgpu->device_id, dev);
  1201. klondike_get_stats(klncgpu);
  1202. goto que;
  1203. } else {
  1204. applog(LOG_WARNING, "%s%i:%d late update (%d) reached - attempting reset",
  1205. klncgpu->drv->name, klncgpu->device_id,
  1206. dev, LATE_UPDATE_LIMIT);
  1207. control_init(klncgpu);
  1208. kln_enable(klncgpu);
  1209. klondike_get_stats(klncgpu);
  1210. rd_lock(&(klninfo->stat_lock));
  1211. howlong = ms_tdiff(&now, &(klninfo->jobque[dev].last_update));
  1212. if (howlong > LATE_UPDATE_MS) {
  1213. rd_unlock(&(klninfo->stat_lock));
  1214. if (howlong > LATE_UPDATE_NODEV_MS) {
  1215. applog(LOG_ERR, "%s%i:%d reset failed - dropping device",
  1216. klncgpu->drv->name, klncgpu->device_id, dev);
  1217. usb_nodev(klncgpu);
  1218. } else
  1219. cgsleep_ms(LATE_UPDATE_SLEEP_MS);
  1220. return true;
  1221. }
  1222. break;
  1223. }
  1224. }
  1225. rd_unlock(&(klninfo->stat_lock));
  1226. que:
  1227. nowork = true;
  1228. for (queued = 0; queued < MAX_WORK_COUNT-1; queued++)
  1229. for (dev = 0; dev <= slaves; dev++) {
  1230. tryagain:
  1231. rd_lock(&(klninfo->stat_lock));
  1232. if (klninfo->jobque[dev].overheat) {
  1233. double temp = cvtKlnToC(klninfo->status[0].kline.ws.temp);
  1234. if ((queued == MAX_WORK_COUNT-2) &&
  1235. ms_tdiff(&now, &(klninfo->jobque[dev].last_update)) > (LATE_UPDATE_MS/2)) {
  1236. rd_unlock(&(klninfo->stat_lock));
  1237. klondike_get_stats(klncgpu);
  1238. goto tryagain;
  1239. }
  1240. if (temp <= KLN_COOLED_DOWN) {
  1241. klninfo->jobque[dev].overheat = false;
  1242. rd_unlock(&(klninfo->stat_lock));
  1243. applog(LOG_WARNING, "%s%i:%d Overheat recovered (%.0fC)",
  1244. klncgpu->drv->name, klncgpu->device_id,
  1245. dev, temp);
  1246. kln_enable(klncgpu);
  1247. goto tryagain;
  1248. } else {
  1249. rd_unlock(&(klninfo->stat_lock));
  1250. continue;
  1251. }
  1252. }
  1253. if (klninfo->jobque[dev].workqc <= queued) {
  1254. rd_unlock(&(klninfo->stat_lock));
  1255. if (!work)
  1256. work = get_queued(klncgpu);
  1257. if (unlikely(!work))
  1258. return false;
  1259. nowork = false;
  1260. if (klondike_send_work(klncgpu, dev, work))
  1261. return false;
  1262. } else
  1263. rd_unlock(&(klninfo->stat_lock));
  1264. }
  1265. if (nowork)
  1266. cgsleep_ms(10); // avoid a hard loop in case we have nothing to do
  1267. return true;
  1268. }
  1269. static int64_t klondike_scanwork(struct thr_info *thr)
  1270. {
  1271. struct cgpu_info *klncgpu = thr->cgpu;
  1272. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1273. int64_t newhashcount = 0;
  1274. int dev, slaves;
  1275. if (klninfo->usbinfo_nodev)
  1276. return -1;
  1277. restart_wait(thr, 200);
  1278. if (klninfo->status != NULL) {
  1279. rd_lock(&(klninfo->stat_lock));
  1280. slaves = klninfo->status[0].kline.ws.slavecount;
  1281. for (dev = 0; dev <= slaves; dev++) {
  1282. uint64_t newhashdev = 0, hashcount;
  1283. int maxcount;
  1284. hashcount = K_HASHCOUNT(klninfo->status[dev].kline.ws.hashcount);
  1285. maxcount = K_MAXCOUNT(klninfo->status[dev].kline.ws.maxcount);
  1286. // todo: chg this to check workid for wrapped instead
  1287. if (klninfo->devinfo[dev].lasthashcount > hashcount)
  1288. newhashdev += maxcount; // hash counter wrapped
  1289. newhashdev += hashcount - klninfo->devinfo[dev].lasthashcount;
  1290. klninfo->devinfo[dev].lasthashcount = hashcount;
  1291. if (maxcount != 0)
  1292. klninfo->hashcount += (newhashdev << 32) / maxcount;
  1293. }
  1294. newhashcount += 0xffffffffull * (uint64_t)klninfo->noncecount;
  1295. klninfo->noncecount = 0;
  1296. rd_unlock(&(klninfo->stat_lock));
  1297. }
  1298. return newhashcount;
  1299. }
  1300. #ifdef HAVE_CURSES
  1301. static
  1302. void klondike_wlogprint_status(struct cgpu_info *klncgpu)
  1303. {
  1304. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1305. uint16_t fan = 0;
  1306. uint16_t clock = 0;
  1307. int dev, slaves;
  1308. if (klninfo->status == NULL) {
  1309. return;
  1310. }
  1311. rd_lock(&(klninfo->stat_lock));
  1312. slaves = klninfo->status[0].kline.ws.slavecount;
  1313. for (dev = 0; dev <= slaves; dev++) {
  1314. fan += klninfo->cfg[dev].kline.cfg.fantarget;
  1315. clock += (uint16_t)K_HASHCLOCK(klninfo->cfg[dev].kline.cfg.hashclock);
  1316. }
  1317. rd_unlock(&(klninfo->stat_lock));
  1318. fan /= slaves + 1;
  1319. fan = 100 * fan / 255;
  1320. clock /= slaves + 1;
  1321. if (clock && clock <= 999)
  1322. wlogprint("Frequency: %d MHz\n", (int)clock);
  1323. if (fan && fan <= 100)
  1324. wlogprint("Fan speed: %d%%\n", fan);
  1325. }
  1326. #endif
  1327. static struct api_data *klondike_api_stats(struct cgpu_info *klncgpu)
  1328. {
  1329. struct klondike_info *klninfo = (struct klondike_info *)(klncgpu->device_data);
  1330. struct api_data *root = NULL;
  1331. char buf[32];
  1332. int dev, slaves;
  1333. if (klninfo->status == NULL)
  1334. return NULL;
  1335. rd_lock(&(klninfo->stat_lock));
  1336. slaves = klninfo->status[0].kline.ws.slavecount;
  1337. for (dev = 0; dev <= slaves; dev++) {
  1338. float fTemp = cvtKlnToC(klninfo->status[dev].kline.ws.temp);
  1339. sprintf(buf, "Temp %d", dev);
  1340. root = api_add_temp(root, buf, &fTemp, true);
  1341. double dClk = (double)K_HASHCLOCK(klninfo->cfg[dev].kline.cfg.hashclock);
  1342. sprintf(buf, "Clock %d", dev);
  1343. root = api_add_freq(root, buf, &dClk, true);
  1344. unsigned int iFan = (unsigned int)100 * klninfo->cfg[dev].kline.cfg.fantarget / 255;
  1345. sprintf(buf, "Fan Percent %d", dev);
  1346. root = api_add_int(root, buf, (int *)(&iFan), true);
  1347. iFan = 0;
  1348. if (klninfo->status[dev].kline.ws.fanspeed > 0)
  1349. iFan = (unsigned int)TACH_FACTOR / klninfo->status[dev].kline.ws.fanspeed;
  1350. sprintf(buf, "Fan RPM %d", dev);
  1351. root = api_add_int(root, buf, (int *)(&iFan), true);
  1352. if (klninfo->devinfo[dev].chipstats != NULL) {
  1353. char data[2048];
  1354. char one[32];
  1355. int n;
  1356. sprintf(buf, "Nonces / Chip %d", dev);
  1357. data[0] = '\0';
  1358. for (n = 0; n < klninfo->status[dev].kline.ws.chipcount; n++) {
  1359. snprintf(one, sizeof(one), "%07d ", klninfo->devinfo[dev].chipstats[n]);
  1360. strcat(data, one);
  1361. }
  1362. root = api_add_string(root, buf, data, true);
  1363. sprintf(buf, "Errors / Chip %d", dev);
  1364. data[0] = '\0';
  1365. for (n = 0; n < klninfo->status[dev].kline.ws.chipcount; n++) {
  1366. snprintf(one, sizeof(one), "%07d ", klninfo->devinfo[dev].chipstats[n + klninfo->status[dev].kline.ws.chipcount]);
  1367. strcat(data, one);
  1368. }
  1369. root = api_add_string(root, buf, data, true);
  1370. }
  1371. }
  1372. root = api_add_uint64(root, "Hash Count", &(klninfo->hashcount), true);
  1373. root = api_add_uint64(root, "Error Count", &(klninfo->errorcount), true);
  1374. root = api_add_uint64(root, "Noise Count", &(klninfo->noisecount), true);
  1375. root = api_add_int(root, "KLine Limit", &(klninfo->kline_count), true);
  1376. root = api_add_int(root, "KLine Used", &(klninfo->used_count), true);
  1377. root = api_add_elapsed(root, "KQue Delay Count", &(klninfo->delay_count), true);
  1378. root = api_add_elapsed(root, "KQue Delay Total", &(klninfo->delay_total), true);
  1379. root = api_add_elapsed(root, "KQue Delay Min", &(klninfo->delay_min), true);
  1380. root = api_add_elapsed(root, "KQue Delay Max", &(klninfo->delay_max), true);
  1381. double avg;
  1382. if (klninfo->delay_count == 0)
  1383. avg = 0;
  1384. else
  1385. avg = klninfo->delay_total / klninfo->delay_count;
  1386. root = api_add_diff(root, "KQue Delay Avg", &avg, true);
  1387. root = api_add_elapsed(root, "KQue Nonce Count", &(klninfo->nonce_count), true);
  1388. root = api_add_elapsed(root, "KQue Nonce Total", &(klninfo->nonce_total), true);
  1389. root = api_add_elapsed(root, "KQue Nonce Min", &(klninfo->nonce_min), true);
  1390. root = api_add_elapsed(root, "KQue Nonce Max", &(klninfo->nonce_max), true);
  1391. if (klninfo->nonce_count == 0)
  1392. avg = 0;
  1393. else
  1394. avg = klninfo->nonce_total / klninfo->nonce_count;
  1395. root = api_add_diff(root, "KQue Nonce Avg", &avg, true);
  1396. root = api_add_int(root, "WQue Size", &(klninfo->wque_size), true);
  1397. root = api_add_int(root, "WQue Cleared", &(klninfo->wque_cleared), true);
  1398. rd_unlock(&(klninfo->stat_lock));
  1399. return root;
  1400. }
  1401. struct device_drv klondike_drv = {
  1402. .dname = "Klondike",
  1403. .name = "KLN",
  1404. .drv_detect = klondike_detect,
  1405. .get_api_stats = klondike_api_stats,
  1406. .get_stats = klondike_get_stats,
  1407. .identify_device = klondike_identify,
  1408. .thread_prepare = klondike_thread_prepare,
  1409. .thread_init = klondike_thread_init,
  1410. .minerloop = hash_queued_work,
  1411. .scanwork = klondike_scanwork,
  1412. .queue_full = klondike_queue_full,
  1413. .flush_work = klondike_flush_work,
  1414. .thread_shutdown = klondike_shutdown,
  1415. .thread_enable = klondike_thread_enable,
  1416. #ifdef HAVE_CURSES
  1417. .proc_wlogprint_status = klondike_wlogprint_status,
  1418. #endif
  1419. };