driver-bflsc.c 52 KB

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  1. /*
  2. * Copyright 2013 Andrew Smith
  3. * Copyright 2013 Con Kolivas
  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 <float.h>
  11. #include <limits.h>
  12. #include <pthread.h>
  13. #include <stdint.h>
  14. #include <stdio.h>
  15. #include <strings.h>
  16. #include <sys/time.h>
  17. #include <unistd.h>
  18. #include "config.h"
  19. #ifdef WIN32
  20. #include <windows.h>
  21. #endif
  22. #include "compat.h"
  23. #include "miner.h"
  24. #include "usbutils.h"
  25. #define BLANK ""
  26. #define LFSTR "<LF>"
  27. /*
  28. * With Firmware 1.0.0 and a result queue of 20 the Max is:
  29. * inprocess = 12
  30. * max count = 9
  31. * 64+1+24+1+1+(1+8)*8+1 per line = 164 * 20
  32. * OK = 3
  33. * Total: 3304
  34. */
  35. #define BFLSC_BUFSIZ (0x1000)
  36. #define BFLSC_INFO_TIMEOUT 999
  37. #define BFLSC_DI_FIRMWARE "FIRMWARE"
  38. #define BFLSC_DI_ENGINES "ENGINES"
  39. #define BFLSC_DI_JOBSINQUE "JOBS IN QUEUE"
  40. #define BFLSC_DI_XLINKMODE "XLINK MODE"
  41. #define BFLSC_DI_XLINKPRESENT "XLINK PRESENT"
  42. #define BFLSC_DI_DEVICESINCHAIN "DEVICES IN CHAIN"
  43. #define BFLSC_DI_CHAINPRESENCE "CHAIN PRESENCE MASK"
  44. #define FULLNONCE 0x100000000ULL
  45. struct bflsc_dev {
  46. // Work
  47. unsigned int ms_work;
  48. int work_queued;
  49. int work_complete;
  50. int nonces_hw; // TODO: this - need to add a paramter to submit_nonce()
  51. // so can pass 'dev' to hw_error
  52. uint64_t hashes_unsent;
  53. uint64_t hashes_sent;
  54. uint64_t nonces_found;
  55. struct timeval last_check_result;
  56. struct timeval last_dev_result; // array > 0
  57. struct timeval last_nonce_result; // > 0 nonce
  58. // Info
  59. char getinfo[(BFLSC_BUFSIZ+4)*4];
  60. char *firmware;
  61. int engines; // each engine represents a 'thread' in a chip
  62. char *xlink_mode;
  63. char *xlink_present;
  64. // Status
  65. bool dead; // TODO: handle seperate x-link devices failing?
  66. bool overheat;
  67. // Stats
  68. float temp1;
  69. float temp2;
  70. float vcc1;
  71. float vcc2;
  72. float vmain;
  73. float temp1_max;
  74. float temp2_max;
  75. time_t temp1_max_time;
  76. time_t temp2_max_time;
  77. float temp1_5min_av; // TODO:
  78. float temp2_5min_av; // TODO:
  79. // To handle the fact that flushing the queue may not remove all work
  80. // (normally one item is still being processed)
  81. // and also that once the queue is flushed, results may still be in
  82. // the output queue - but we don't want to process them at the time of doing an LP
  83. // when result_id > flush_id+1, flushed work can be discarded since it
  84. // is no longer in the device
  85. uint64_t flush_id; // counter when results were last flushed
  86. uint64_t result_id; // counter when results were last checked
  87. bool flushed; // are any flushed?
  88. };
  89. struct bflsc_info {
  90. pthread_rwlock_t stat_lock;
  91. struct thr_info results_thr;
  92. uint64_t hashes_sent;
  93. uint32_t update_count;
  94. struct timeval last_update;
  95. int sc_count;
  96. struct bflsc_dev *sc_devs;
  97. unsigned int scan_sleep_time;
  98. unsigned int results_sleep_time;
  99. unsigned int default_ms_work;
  100. bool shutdown;
  101. bool flash_led;
  102. bool not_first_work; // allow ignoring the first nonce error
  103. bool fanauto;
  104. };
  105. #define BFLSC_XLINKHDR '@'
  106. #define BFLSC_MAXPAYLOAD 255
  107. struct DataForwardToChain {
  108. uint8_t header;
  109. uint8_t deviceAddress;
  110. uint8_t payloadSize;
  111. uint8_t payloadData[BFLSC_MAXPAYLOAD];
  112. };
  113. #define DATAFORWARDSIZE(data) (1 + 1 + 1 + data.payloadSize)
  114. #define MIDSTATE_BYTES 32
  115. #define MERKLE_OFFSET 64
  116. #define MERKLE_BYTES 12
  117. #define BFLSC_QJOBSIZ (MIDSTATE_BYTES+MERKLE_BYTES+1)
  118. #define BFLSC_EOB 0xaa
  119. struct QueueJobStructure {
  120. uint8_t payloadSize;
  121. uint8_t midState[MIDSTATE_BYTES];
  122. uint8_t blockData[MERKLE_BYTES];
  123. uint8_t endOfBlock;
  124. };
  125. #define QUE_RES_LINES_MIN 3
  126. #define QUE_MIDSTATE 0
  127. #define QUE_BLOCKDATA 1
  128. #define QUE_NONCECOUNT 2
  129. #define QUE_FLD_MIN 3
  130. #define QUE_FLD_MAX 11
  131. #define BFLSC_SIGNATURE 0xc1
  132. #define BFLSC_EOW 0xfe
  133. // N.B. this will only work with 5 jobs
  134. // requires a different jobs[N] for each job count
  135. // but really only need to handle 5 anyway
  136. struct QueueJobPackStructure {
  137. uint8_t payloadSize;
  138. uint8_t signature;
  139. uint8_t jobsInArray;
  140. struct QueueJobStructure jobs[5];
  141. uint8_t endOfWrapper;
  142. };
  143. // TODO: Implement in API and also in usb device selection
  144. struct SaveString {
  145. uint8_t payloadSize;
  146. uint8_t payloadData[BFLSC_MAXPAYLOAD];
  147. };
  148. // Commands
  149. #define BFLSC_IDENTIFY "ZGX"
  150. #define BFLSC_IDENTIFY_LEN (sizeof(BFLSC_IDENTIFY)-1)
  151. #define BFLSC_DETAILS "ZCX"
  152. #define BFLSC_DETAILS_LEN (sizeof(BFLSC_DETAILS)-1)
  153. #define BFLSC_FIRMWARE "ZJX"
  154. #define BFLSC_FIRMWARE_LEN (sizeof(BFLSC_FIRMWARE)-1)
  155. #define BFLSC_FLASH "ZMX"
  156. #define BFLSC_FLASH_LEN (sizeof(BFLSC_FLASH)-1)
  157. #define BFLSC_VOLTAGE "ZTX"
  158. #define BFLSC_VOLTAGE_LEN (sizeof(BFLSC_VOLTAGE)-1)
  159. #define BFLSC_TEMPERATURE "ZLX"
  160. #define BFLSC_TEMPERATURE_LEN (sizeof(BFLSC_TEMPERATURE)-1)
  161. #define BFLSC_QJOB "ZNX"
  162. #define BFLSC_QJOB_LEN (sizeof(BFLSC_QJOB)-1)
  163. #define BFLSC_QJOBS "ZWX"
  164. #define BFLSC_QJOBS_LEN (sizeof(BFLSC_QJOBS)-1)
  165. #define BFLSC_QRES "ZOX"
  166. #define BFLSC_QRES_LEN (sizeof(BFLSC_QRES)-1)
  167. #define BFLSC_QFLUSH "ZQX"
  168. #define BFLSC_QFLUSH_LEN (sizeof(BFLSC_QFLUSH)-1)
  169. #define BFLSC_FANAUTO "Z5X"
  170. #define BFLSC_FANOUT_LEN (sizeof(BFLSC_FANAUTO)-1)
  171. #define BFLSC_FAN0 "Z0X"
  172. #define BFLSC_FAN0_LEN (sizeof(BFLSC_FAN0)-1)
  173. #define BFLSC_FAN1 "Z1X"
  174. #define BFLSC_FAN1_LEN (sizeof(BFLSC_FAN1)-1)
  175. #define BFLSC_FAN2 "Z2X"
  176. #define BFLSC_FAN2_LEN (sizeof(BFLSC_FAN2)-1)
  177. #define BFLSC_FAN3 "Z3X"
  178. #define BFLSC_FAN3_LEN (sizeof(BFLSC_FAN3)-1)
  179. #define BFLSC_FAN4 "Z4X"
  180. #define BFLSC_FAN4_LEN (sizeof(BFLSC_FAN4)-1)
  181. #define BFLSC_SAVESTR "ZSX"
  182. #define BFLSC_SAVESTR_LEN (sizeof(BFLSC_SAVESTR)-1)
  183. #define BFLSC_LOADSTR "ZUX"
  184. #define BFLSC_LOADSTR_LEN (sizeof(BFLSC_LOADSTR)-1)
  185. // Replies
  186. #define BFLSC_IDENTITY "BitFORCE SC"
  187. #define BFLSC_BFLSC "SHA256 SC"
  188. #define BFLSC_OK "OK\n"
  189. #define BFLSC_OK_LEN (sizeof(BFLSC_OK)-1)
  190. #define BFLSC_SUCCESS "SUCCESS\n"
  191. #define BFLSC_SUCCESS_LEN (sizeof(BFLSC_SUCCESS)-1)
  192. #define BFLSC_RESULT "COUNT:"
  193. #define BFLSC_RESULT_LEN (sizeof(BFLSC_RESULT)-1)
  194. #define BFLSC_ANERR "ERR:"
  195. #define BFLSC_ANERR_LEN (sizeof(BFLSC_ANERR)-1)
  196. #define BFLSC_TIMEOUT BFLSC_ANERR "TIMEOUT"
  197. #define BFLSC_TIMEOUT_LEN (sizeof(BFLSC_TIMEOUT)-1)
  198. #define BFLSC_INVALID BFLSC_ANERR "INVALID DATA"
  199. #define BFLSC_INVALID_LEN (sizeof(BFLSC_INVALID)-1)
  200. #define BFLSC_ERRSIG BFLSC_ANERR "SIGNATURE"
  201. #define BFLSC_ERRSIG_LEN (sizeof(BFLSC_ERRSIG)-1)
  202. #define BFLSC_OKQ "OK:QUEUED"
  203. #define BFLSC_OKQ_LEN (sizeof(BFLSC_OKQ)-1)
  204. // Followed by N=1..5
  205. #define BFLSC_OKQN "OK:QUEUED "
  206. #define BFLSC_OKQN_LEN (sizeof(BFLSC_OKQN)-1)
  207. #define BFLSC_QFULL "QUEUE FULL"
  208. #define BFLSC_QFULL_LEN (sizeof(BFLSC_QFULL)-1)
  209. #define BFLSC_HITEMP "HIGH TEMPERATURE RECOVERY"
  210. #define BFLSC_HITEMP_LEN (sizeof(BFLSC_HITEMP)-1)
  211. #define BFLSC_EMPTYSTR "MEMORY EMPTY"
  212. #define BFLSC_EMPTYSTR_LEN (sizeof(BFLSC_EMPTYSTR)-1)
  213. // Queued and non-queued are the same
  214. #define FullNonceRangeJob QueueJobStructure
  215. #define BFLSC_JOBSIZ BFLSC_QJOBSIZ
  216. // Non queued commands
  217. #define BFLSC_SENDWORK "ZDX"
  218. #define BFLSC_SENDWORK_LEN (sizeof(BFLSC_SENDWORK)-1)
  219. // Non queued commands (not used)
  220. #define BFLSC_WORKSTATUS "ZFX"
  221. #define BFLSC_WORKSTATUS_LEN (sizeof(BFLSC_WORKSTATUS)-1)
  222. #define BFLSC_SENDRANGE "ZPX"
  223. #define BFLSC_SENDRANGE_LEN (sizeof(BFLSC_SENDRANGE)-1)
  224. // Non queued work replies (not used)
  225. #define BFLSC_NONCE "NONCE-FOUND:"
  226. #define BFLSC_NONCE_LEN (sizeof(BFLSC_NONCE)-1)
  227. #define BFLSC_NO_NONCE "NO-NONCE"
  228. #define BFLSC_NO_NONCE_LEN (sizeof(BFLSC_NO_NONCE)-1)
  229. #define BFLSC_IDLE "IDLE"
  230. #define BFLSC_IDLE_LEN (sizeof(BFLSC_IDLE)-1)
  231. #define BFLSC_BUSY "BUSY"
  232. #define BFLSC_BUSY_LEN (sizeof(BFLSC_BUSY)-1)
  233. #define BFLSC_MINIRIG "BAM"
  234. #define BFLSC_SINGLE "BAS"
  235. #define BFLSC_LITTLESINGLE "BAL"
  236. #define BFLSC_JALAPENO "BAJ"
  237. // Default expected time for a nonce range
  238. // - thus no need to check until this + last time work was found
  239. // 60GH/s MiniRig (1 board) or Single
  240. #define BAM_WORK_TIME 71.58
  241. #define BAS_WORK_TIME 71.58
  242. // 30GH/s Little Single
  243. #define BAL_WORK_TIME 143.17
  244. // 4.5GH/s Jalapeno
  245. #define BAJ_WORK_TIME 954.44
  246. // Defaults (slightly over half the work time) but ensure none are above 100
  247. // SCAN_TIME - delay after sending work
  248. // RES_TIME - delay between checking for results
  249. #define BAM_SCAN_TIME 20
  250. #define BAM_RES_TIME 2
  251. #define BAS_SCAN_TIME 360
  252. #define BAS_RES_TIME 36
  253. #define BAL_SCAN_TIME 720
  254. #define BAL_RES_TIME 72
  255. #define BAJ_SCAN_TIME 1000
  256. #define BAJ_RES_TIME 100
  257. #define BFLSC_MAX_SLEEP 2000
  258. #define BAJ_LATENCY LATENCY_STD
  259. #define BAL_LATENCY LATENCY_STD
  260. #define BAS_LATENCY LATENCY_STD
  261. #define BAM_LATENCY 2
  262. #define BFLSC_TEMP_SLEEPMS 5
  263. #define BFLSC_QUE_SIZE 20
  264. #define BFLSC_QUE_FULL_ENOUGH 13
  265. #define BFLSC_QUE_WATERMARK 6
  266. // Must drop this far below cutoff before resuming work
  267. #define BFLSC_TEMP_RECOVER 5
  268. // If initialisation fails the first time,
  269. // sleep this amount (ms) and try again
  270. #define REINIT_TIME_FIRST_MS 100
  271. // Max ms per sleep
  272. #define REINIT_TIME_MAX_MS 800
  273. // Keep trying up to this many us
  274. #define REINIT_TIME_MAX 3000000
  275. static const char *blank = "";
  276. struct device_drv bflsc_drv;
  277. static void xlinkstr(char *xlink, int dev, struct bflsc_info *sc_info)
  278. {
  279. if (dev > 0)
  280. sprintf(xlink, " x-%d", dev);
  281. else {
  282. if (sc_info->sc_count > 1)
  283. strcpy(xlink, " master");
  284. else
  285. *xlink = '\0';
  286. }
  287. }
  288. static void bflsc_applog(struct cgpu_info *bflsc, int dev, enum usb_cmds cmd, int amount, int err)
  289. {
  290. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  291. char xlink[17];
  292. xlinkstr(xlink, dev, sc_info);
  293. usb_applog(bflsc, cmd, xlink, amount, err);
  294. }
  295. // Break an input up into lines with LFs removed
  296. // false means an error, but if *lines > 0 then data was also found
  297. // error would be no data or missing LF at the end
  298. static bool tolines(struct cgpu_info *bflsc, int dev, char *buf, int *lines, char ***items, enum usb_cmds cmd)
  299. {
  300. bool ok = true;
  301. char *ptr;
  302. #define p_lines (*lines)
  303. #define p_items (*items)
  304. p_lines = 0;
  305. p_items = NULL;
  306. if (!buf || !(*buf)) {
  307. applog(LOG_DEBUG, "USB: %s%i: (%d) empty %s",
  308. bflsc->drv->name, bflsc->device_id, dev, usb_cmdname(cmd));
  309. return false;
  310. }
  311. ptr = strdup(buf);
  312. while (ptr && *ptr) {
  313. p_items = realloc(p_items, ++p_lines * sizeof(*p_items));
  314. if (unlikely(!p_items))
  315. quit(1, "Failed to realloc p_items in tolines");
  316. p_items[p_lines-1] = ptr;
  317. ptr = strchr(ptr, '\n');
  318. if (ptr)
  319. *(ptr++) = '\0';
  320. else {
  321. if (ok) {
  322. applog(LOG_DEBUG, "USB: %s%i: (%d) missing lf(s) in %s",
  323. bflsc->drv->name, bflsc->device_id, dev, usb_cmdname(cmd));
  324. }
  325. ok = false;
  326. }
  327. }
  328. return ok;
  329. }
  330. static void freetolines(int *lines, char ***items)
  331. {
  332. if (*lines > 0) {
  333. free(**items);
  334. free(*items);
  335. }
  336. *lines = 0;
  337. *items = NULL;
  338. }
  339. enum breakmode {
  340. NOCOLON,
  341. ONECOLON,
  342. ALLCOLON // Temperature uses this
  343. };
  344. // Break down a single line into 'fields'
  345. // 'lf' will be a pointer to the final LF if it is there (or NULL)
  346. // firstname will be the allocated buf copy pointer which is also
  347. // the string before ':' for ONECOLON and ALLCOLON
  348. // If any string is missing the ':' when it was expected, false is returned
  349. static bool breakdown(enum breakmode mode, char *buf, int *count, char **firstname, char ***fields, char **lf)
  350. {
  351. char *ptr, *colon, *comma;
  352. bool ok;
  353. #define p_count (*count)
  354. #define p_firstname (*firstname)
  355. #define p_fields (*fields)
  356. #define p_lf (*lf)
  357. p_count = 0;
  358. p_firstname = NULL;
  359. p_fields = NULL;
  360. p_lf = NULL;
  361. if (!buf || !(*buf))
  362. return false;
  363. ptr = p_firstname = strdup(buf);
  364. p_lf = strchr(p_firstname, '\n');
  365. if (mode == ONECOLON) {
  366. colon = strchr(ptr, ':');
  367. if (colon) {
  368. ptr = colon;
  369. *(ptr++) = '\0';
  370. } else
  371. ok = false;
  372. }
  373. while (*ptr == ' ')
  374. ptr++;
  375. ok = true;
  376. while (ptr && *ptr) {
  377. if (mode == ALLCOLON) {
  378. colon = strchr(ptr, ':');
  379. if (colon)
  380. ptr = colon + 1;
  381. else
  382. ok = false;
  383. }
  384. while (*ptr == ' ')
  385. ptr++;
  386. comma = strchr(ptr, ',');
  387. if (comma)
  388. *(comma++) = '\0';
  389. p_fields = realloc(p_fields, ++p_count * sizeof(*p_fields));
  390. if (unlikely(!p_fields))
  391. quit(1, "Failed to realloc p_fields in breakdown");
  392. p_fields[p_count-1] = ptr;
  393. ptr = comma;
  394. }
  395. return ok;
  396. }
  397. static void freebreakdown(int *count, char **firstname, char ***fields)
  398. {
  399. if (*firstname)
  400. free(*firstname);
  401. if (*count > 0)
  402. free(*fields);
  403. *count = 0;
  404. *firstname = NULL;
  405. *fields = NULL;
  406. }
  407. static int write_to_dev(struct cgpu_info *bflsc, int dev, char *buf, int buflen, int *amount, enum usb_cmds cmd)
  408. {
  409. struct DataForwardToChain data;
  410. int len;
  411. /*
  412. * The protocol is syncronous so any previous excess can be
  413. * discarded and assumed corrupt data or failed USB transfers
  414. */
  415. usb_buffer_clear(bflsc);
  416. if (dev == 0)
  417. return usb_write(bflsc, buf, buflen, amount, cmd);
  418. data.header = BFLSC_XLINKHDR;
  419. data.deviceAddress = (uint8_t)dev;
  420. data.payloadSize = buflen;
  421. memcpy(data.payloadData, buf, buflen);
  422. len = DATAFORWARDSIZE(data);
  423. // TODO: handle xlink timeout message - here or at call?
  424. return usb_write(bflsc, (char *)&data, len, amount, cmd);
  425. }
  426. static bool getok(struct cgpu_info *bflsc, enum usb_cmds cmd, int *err, int *amount)
  427. {
  428. char buf[BFLSC_BUFSIZ+1];
  429. *err = usb_read_nl(bflsc, buf, sizeof(buf)-1, amount, cmd);
  430. if (*err < 0 || *amount < (int)BFLSC_OK_LEN)
  431. return false;
  432. else
  433. return true;
  434. }
  435. static bool getokerr(struct cgpu_info *bflsc, enum usb_cmds cmd, int *err, int *amount, char *buf, size_t bufsiz)
  436. {
  437. *err = usb_read_nl(bflsc, buf, bufsiz-1, amount, cmd);
  438. if (*err < 0 || *amount < (int)BFLSC_OK_LEN)
  439. return false;
  440. else {
  441. if (*amount > (int)BFLSC_ANERR_LEN && strncmp(buf, BFLSC_ANERR, BFLSC_ANERR_LEN) == 0)
  442. return false;
  443. else
  444. return true;
  445. }
  446. }
  447. static void bflsc_send_flush_work(struct cgpu_info *bflsc, int dev)
  448. {
  449. int err, amount;
  450. // Device is gone
  451. if (bflsc->usbinfo.nodev)
  452. return;
  453. mutex_lock(&bflsc->device_mutex);
  454. err = write_to_dev(bflsc, dev, BFLSC_QFLUSH, BFLSC_QFLUSH_LEN, &amount, C_QUEFLUSH);
  455. if (err < 0 || amount != BFLSC_QFLUSH_LEN) {
  456. mutex_unlock(&bflsc->device_mutex);
  457. bflsc_applog(bflsc, dev, C_QUEFLUSH, amount, err);
  458. } else {
  459. // TODO: do we care if we don't get 'OK'? (always will in normal processing)
  460. err = getok(bflsc, C_QUEFLUSHREPLY, &err, &amount);
  461. mutex_unlock(&bflsc->device_mutex);
  462. // TODO: report an error if not 'OK' ?
  463. }
  464. }
  465. /* return True = attempted usb_read_ok()
  466. * set ignore to true means no applog/ignore errors */
  467. static bool bflsc_qres(struct cgpu_info *bflsc, char *buf, size_t bufsiz, int dev, int *err, int *amount, bool ignore)
  468. {
  469. bool readok = false;
  470. mutex_lock(&(bflsc->device_mutex));
  471. *err = write_to_dev(bflsc, dev, BFLSC_QRES, BFLSC_QRES_LEN, amount, C_REQUESTRESULTS);
  472. if (*err < 0 || *amount != BFLSC_QRES_LEN) {
  473. mutex_unlock(&(bflsc->device_mutex));
  474. if (!ignore)
  475. bflsc_applog(bflsc, dev, C_REQUESTRESULTS, *amount, *err);
  476. // TODO: do what? flag as dead device?
  477. // count how many times it has happened and reset/fail it
  478. // or even make sure it is all x-link and that means device
  479. // has failed after some limit of this?
  480. // of course all other I/O must also be failing ...
  481. } else {
  482. readok = true;
  483. *err = usb_read_ok(bflsc, buf, bufsiz-1, amount, C_GETRESULTS);
  484. mutex_unlock(&(bflsc->device_mutex));
  485. if (*err < 0 || *amount < 1) {
  486. if (!ignore)
  487. bflsc_applog(bflsc, dev, C_GETRESULTS, *amount, *err);
  488. // TODO: do what? ... see above
  489. }
  490. }
  491. return readok;
  492. }
  493. static void __bflsc_initialise(struct cgpu_info *bflsc)
  494. {
  495. int err;
  496. // TODO: does x-link bypass the other device FTDI? (I think it does)
  497. // So no initialisation required except for the master device?
  498. if (bflsc->usbinfo.nodev)
  499. return;
  500. // Reset
  501. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_RESET,
  502. FTDI_VALUE_RESET, bflsc->usbdev->found->interface, C_RESET);
  503. applog(LOG_DEBUG, "%s%i: reset got err %d",
  504. bflsc->drv->name, bflsc->device_id, err);
  505. if (bflsc->usbinfo.nodev)
  506. return;
  507. usb_ftdi_set_latency(bflsc);
  508. if (bflsc->usbinfo.nodev)
  509. return;
  510. // Set data control
  511. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_DATA,
  512. FTDI_VALUE_DATA_BAS, bflsc->usbdev->found->interface, C_SETDATA);
  513. applog(LOG_DEBUG, "%s%i: setdata got err %d",
  514. bflsc->drv->name, bflsc->device_id, err);
  515. if (bflsc->usbinfo.nodev)
  516. return;
  517. // Set the baud
  518. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_BAUD, FTDI_VALUE_BAUD_BAS,
  519. (FTDI_INDEX_BAUD_BAS & 0xff00) | bflsc->usbdev->found->interface,
  520. C_SETBAUD);
  521. applog(LOG_DEBUG, "%s%i: setbaud got err %d",
  522. bflsc->drv->name, bflsc->device_id, err);
  523. if (bflsc->usbinfo.nodev)
  524. return;
  525. // Set Flow Control
  526. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_FLOW,
  527. FTDI_VALUE_FLOW, bflsc->usbdev->found->interface, C_SETFLOW);
  528. applog(LOG_DEBUG, "%s%i: setflowctrl got err %d",
  529. bflsc->drv->name, bflsc->device_id, err);
  530. if (bflsc->usbinfo.nodev)
  531. return;
  532. // Set Modem Control
  533. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_MODEM,
  534. FTDI_VALUE_MODEM, bflsc->usbdev->found->interface, C_SETMODEM);
  535. applog(LOG_DEBUG, "%s%i: setmodemctrl got err %d",
  536. bflsc->drv->name, bflsc->device_id, err);
  537. if (bflsc->usbinfo.nodev)
  538. return;
  539. // Clear any sent data
  540. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_RESET,
  541. FTDI_VALUE_PURGE_TX, bflsc->usbdev->found->interface, C_PURGETX);
  542. applog(LOG_DEBUG, "%s%i: purgetx got err %d",
  543. bflsc->drv->name, bflsc->device_id, err);
  544. if (bflsc->usbinfo.nodev)
  545. return;
  546. // Clear any received data
  547. err = usb_transfer(bflsc, FTDI_TYPE_OUT, FTDI_REQUEST_RESET,
  548. FTDI_VALUE_PURGE_RX, bflsc->usbdev->found->interface, C_PURGERX);
  549. applog(LOG_DEBUG, "%s%i: purgerx got err %d",
  550. bflsc->drv->name, bflsc->device_id, err);
  551. if (!bflsc->cutofftemp)
  552. bflsc->cutofftemp = 80;
  553. }
  554. static void bflsc_initialise(struct cgpu_info *bflsc)
  555. {
  556. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  557. char buf[BFLSC_BUFSIZ+1];
  558. int err, amount;
  559. int dev;
  560. mutex_lock(&(bflsc->device_mutex));
  561. __bflsc_initialise(bflsc);
  562. mutex_unlock(&(bflsc->device_mutex));
  563. for (dev = 0; dev < sc_info->sc_count; dev++) {
  564. bflsc_send_flush_work(bflsc, dev);
  565. bflsc_qres(bflsc, buf, sizeof(buf), dev, &err, &amount, true);
  566. }
  567. }
  568. static bool getinfo(struct cgpu_info *bflsc, int dev)
  569. {
  570. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  571. struct bflsc_dev sc_dev;
  572. char buf[BFLSC_BUFSIZ+1];
  573. int err, amount;
  574. char **items, *firstname, **fields, *lf;
  575. int i, lines, count;
  576. bool res, ok;
  577. char *tmp;
  578. /*
  579. * Kano's first dev Jalapeno output:
  580. * DEVICE: BitFORCE SC<LF>
  581. * FIRMWARE: 1.0.0<LF>
  582. * ENGINES: 30<LF>
  583. * FREQUENCY: [UNKNOWN]<LF>
  584. * XLINK MODE: MASTER<LF>
  585. * XLINK PRESENT: YES<LF>
  586. * --DEVICES IN CHAIN: 0<LF>
  587. * --CHAIN PRESENCE MASK: 00000000<LF>
  588. * OK<LF>
  589. */
  590. // TODO: if dev is ever > 0 must handle xlink timeout message
  591. err = write_to_dev(bflsc, dev, BFLSC_DETAILS, BFLSC_DETAILS_LEN, &amount, C_REQUESTDETAILS);
  592. if (err < 0 || amount != BFLSC_DETAILS_LEN) {
  593. applog(LOG_ERR, "%s detect (%s) send details request failed (%d:%d)",
  594. bflsc->drv->dname, bflsc->device_path, amount, err);
  595. return false;
  596. }
  597. err = usb_read_ok_timeout(bflsc, buf, sizeof(buf)-1, &amount,
  598. BFLSC_INFO_TIMEOUT, C_GETDETAILS);
  599. if (err < 0 || amount < 1) {
  600. if (err < 0) {
  601. applog(LOG_ERR, "%s detect (%s) get details return invalid/timed out (%d:%d)",
  602. bflsc->drv->dname, bflsc->device_path, amount, err);
  603. } else {
  604. applog(LOG_ERR, "%s detect (%s) get details returned nothing (%d:%d)",
  605. bflsc->drv->dname, bflsc->device_path, amount, err);
  606. }
  607. return false;
  608. }
  609. memset(&sc_dev, 0, sizeof(struct bflsc_dev));
  610. sc_info->sc_count = 1;
  611. res = tolines(bflsc, dev, &(buf[0]), &lines, &items, C_GETDETAILS);
  612. if (!res)
  613. return false;
  614. tmp = str_text(buf);
  615. strcpy(sc_dev.getinfo, tmp);
  616. free(tmp);
  617. for (i = 0; i < lines-2; i++) {
  618. res = breakdown(ONECOLON, items[i], &count, &firstname, &fields, &lf);
  619. if (lf)
  620. *lf = '\0';
  621. if (!res || count != 1) {
  622. tmp = str_text(items[i]);
  623. applog(LOG_WARNING, "%s detect (%s) invalid details line: '%s' %d",
  624. bflsc->drv->dname, bflsc->device_path, tmp, count);
  625. free(tmp);
  626. dev_error(bflsc, REASON_DEV_COMMS_ERROR);
  627. goto mata;
  628. }
  629. if (strcmp(firstname, BFLSC_DI_FIRMWARE) == 0) {
  630. sc_dev.firmware = strdup(fields[0]);
  631. if (strcmp(sc_dev.firmware, "1.0.0")) {
  632. tmp = str_text(items[i]);
  633. applog(LOG_WARNING, "%s detect (%s) Warning unknown firmware '%s'",
  634. bflsc->drv->dname, bflsc->device_path, tmp);
  635. free(tmp);
  636. }
  637. }
  638. else if (strcmp(firstname, BFLSC_DI_ENGINES) == 0) {
  639. sc_dev.engines = atoi(fields[0]);
  640. if (sc_dev.engines < 1) {
  641. tmp = str_text(items[i]);
  642. applog(LOG_WARNING, "%s detect (%s) invalid engine count: '%s'",
  643. bflsc->drv->dname, bflsc->device_path, tmp);
  644. free(tmp);
  645. goto mata;
  646. }
  647. }
  648. else if (strcmp(firstname, BFLSC_DI_XLINKMODE) == 0)
  649. sc_dev.xlink_mode = strdup(fields[0]);
  650. else if (strcmp(firstname, BFLSC_DI_XLINKPRESENT) == 0)
  651. sc_dev.xlink_present = strdup(fields[0]);
  652. else if (strcmp(firstname, BFLSC_DI_DEVICESINCHAIN) == 0) {
  653. sc_info->sc_count = atoi(fields[0]) + 1;
  654. if (sc_info->sc_count < 1 || sc_info->sc_count > 30) {
  655. tmp = str_text(items[i]);
  656. applog(LOG_WARNING, "%s detect (%s) invalid s-link count: '%s'",
  657. bflsc->drv->dname, bflsc->device_path, tmp);
  658. free(tmp);
  659. goto mata;
  660. }
  661. }
  662. freebreakdown(&count, &firstname, &fields);
  663. }
  664. sc_info->sc_devs = calloc(sc_info->sc_count, sizeof(struct bflsc_dev));
  665. if (unlikely(!sc_info->sc_devs))
  666. quit(1, "Failed to calloc in getinfo");
  667. memcpy(&(sc_info->sc_devs[0]), &sc_dev, sizeof(sc_dev));
  668. // TODO: do we care about getting this info for the rest if > 0 x-link
  669. ok = true;
  670. goto ne;
  671. mata:
  672. freebreakdown(&count, &firstname, &fields);
  673. ok = false;
  674. ne:
  675. freetolines(&lines, &items);
  676. return ok;
  677. }
  678. static bool bflsc_detect_one(struct libusb_device *dev, struct usb_find_devices *found)
  679. {
  680. struct bflsc_info *sc_info = NULL;
  681. char buf[BFLSC_BUFSIZ+1];
  682. int i, err, amount;
  683. struct timeval init_start, init_now;
  684. int init_sleep, init_count;
  685. bool ident_first;
  686. char *newname;
  687. uint16_t latency;
  688. struct cgpu_info *bflsc = usb_alloc_cgpu(&bflsc_drv, 1);
  689. sc_info = calloc(1, sizeof(*sc_info));
  690. if (unlikely(!sc_info))
  691. quit(1, "Failed to calloc sc_info in bflsc_detect_one");
  692. // TODO: fix ... everywhere ...
  693. bflsc->device_data = (FILE *)sc_info;
  694. if (!usb_init(bflsc, dev, found))
  695. goto shin;
  696. // Allow 2 complete attempts if the 1st time returns an unrecognised reply
  697. ident_first = true;
  698. retry:
  699. init_count = 0;
  700. init_sleep = REINIT_TIME_FIRST_MS;
  701. cgtime(&init_start);
  702. reinit:
  703. __bflsc_initialise(bflsc);
  704. err = write_to_dev(bflsc, 0, BFLSC_IDENTIFY, BFLSC_IDENTIFY_LEN, &amount, C_REQUESTIDENTIFY);
  705. if (err < 0 || amount != BFLSC_IDENTIFY_LEN) {
  706. applog(LOG_ERR, "%s detect (%s) send identify request failed (%d:%d)",
  707. bflsc->drv->dname, bflsc->device_path, amount, err);
  708. goto unshin;
  709. }
  710. err = usb_read_nl(bflsc, buf, sizeof(buf)-1, &amount, C_GETIDENTIFY);
  711. if (err < 0 || amount < 1) {
  712. init_count++;
  713. cgtime(&init_now);
  714. if (us_tdiff(&init_now, &init_start) <= REINIT_TIME_MAX) {
  715. if (init_count == 2) {
  716. applog(LOG_WARNING, "%s detect (%s) 2nd init failed (%d:%d) - retrying",
  717. bflsc->drv->dname, bflsc->device_path, amount, err);
  718. }
  719. nmsleep(init_sleep);
  720. if ((init_sleep * 2) <= REINIT_TIME_MAX_MS)
  721. init_sleep *= 2;
  722. goto reinit;
  723. }
  724. if (init_count > 0)
  725. applog(LOG_WARNING, "%s detect (%s) init failed %d times %.2fs",
  726. bflsc->drv->dname, bflsc->device_path, init_count, tdiff(&init_now, &init_start));
  727. if (err < 0) {
  728. applog(LOG_ERR, "%s detect (%s) error identify reply (%d:%d)",
  729. bflsc->drv->dname, bflsc->device_path, amount, err);
  730. } else {
  731. applog(LOG_ERR, "%s detect (%s) empty identify reply (%d)",
  732. bflsc->drv->dname, bflsc->device_path, amount);
  733. }
  734. goto unshin;
  735. }
  736. buf[amount] = '\0';
  737. if (unlikely(!strstr(buf, BFLSC_BFLSC))) {
  738. applog(LOG_DEBUG, "%s detect (%s) found an FPGA '%s' ignoring",
  739. bflsc->drv->dname, bflsc->device_path, buf);
  740. goto unshin;
  741. }
  742. if (unlikely(strstr(buf, BFLSC_IDENTITY))) {
  743. if (ident_first) {
  744. applog(LOG_DEBUG, "%s detect (%s) didn't recognise '%s' trying again ...",
  745. bflsc->drv->dname, bflsc->device_path, buf);
  746. ident_first = false;
  747. goto retry;
  748. }
  749. applog(LOG_DEBUG, "%s detect (%s) didn't recognise '%s' on 2nd attempt",
  750. bflsc->drv->dname, bflsc->device_path, buf);
  751. goto unshin;
  752. }
  753. if (!getinfo(bflsc, 0))
  754. goto unshin;
  755. sc_info->scan_sleep_time = BAS_SCAN_TIME;
  756. sc_info->results_sleep_time = BAS_RES_TIME;
  757. sc_info->default_ms_work = BAS_WORK_TIME;
  758. latency = BAS_LATENCY;
  759. /* When getinfo() "FREQUENCY: [UNKNOWN]" is fixed -
  760. * use 'freq * engines' to estimate.
  761. * Otherwise for now: */
  762. newname = NULL;
  763. if (sc_info->sc_count > 1) {
  764. newname = BFLSC_MINIRIG;
  765. sc_info->scan_sleep_time = BAM_SCAN_TIME;
  766. sc_info->results_sleep_time = BAM_RES_TIME;
  767. sc_info->default_ms_work = BAM_WORK_TIME;
  768. bflsc->usbdev->ident = IDENT_BAM;
  769. latency = BAM_LATENCY;
  770. } else {
  771. if (sc_info->sc_devs[0].engines < 34) { // 16 * 2 + 2
  772. newname = BFLSC_JALAPENO;
  773. sc_info->scan_sleep_time = BAJ_SCAN_TIME;
  774. sc_info->results_sleep_time = BAJ_RES_TIME;
  775. sc_info->default_ms_work = BAJ_WORK_TIME;
  776. bflsc->usbdev->ident = IDENT_BAJ;
  777. latency = BAJ_LATENCY;
  778. } else if (sc_info->sc_devs[0].engines < 130) { // 16 * 8 + 2
  779. newname = BFLSC_LITTLESINGLE;
  780. sc_info->scan_sleep_time = BAL_SCAN_TIME;
  781. sc_info->results_sleep_time = BAL_RES_TIME;
  782. sc_info->default_ms_work = BAL_WORK_TIME;
  783. bflsc->usbdev->ident = IDENT_BAL;
  784. latency = BAL_LATENCY;
  785. }
  786. }
  787. if (latency != bflsc->usbdev->found->latency) {
  788. bflsc->usbdev->found->latency = latency;
  789. usb_ftdi_set_latency(bflsc);
  790. }
  791. for (i = 0; i < sc_info->sc_count; i++)
  792. sc_info->sc_devs[i].ms_work = sc_info->default_ms_work;
  793. if (newname) {
  794. if (!bflsc->drv->copy)
  795. bflsc->drv = copy_drv(bflsc->drv);
  796. bflsc->drv->name = newname;
  797. }
  798. // We have a real BFLSC!
  799. applog(LOG_DEBUG, "%s (%s) identified as: '%s'",
  800. bflsc->drv->dname, bflsc->device_path, bflsc->drv->name);
  801. if (!add_cgpu(bflsc))
  802. goto unshin;
  803. update_usb_stats(bflsc);
  804. mutex_init(&bflsc->device_mutex);
  805. rwlock_init(&sc_info->stat_lock);
  806. usb_buffer_enable(bflsc);
  807. return true;
  808. unshin:
  809. usb_uninit(bflsc);
  810. shin:
  811. free(bflsc->device_data);
  812. bflsc->device_data = NULL;
  813. if (bflsc->name != blank) {
  814. free(bflsc->name);
  815. bflsc->name = NULL;
  816. }
  817. bflsc = usb_free_cgpu(bflsc);
  818. return false;
  819. }
  820. static void bflsc_detect(void)
  821. {
  822. usb_detect(&bflsc_drv, bflsc_detect_one);
  823. }
  824. static void get_bflsc_statline_before(char *buf, struct cgpu_info *bflsc)
  825. {
  826. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  827. float temp = 0;
  828. float vcc1 = 0;
  829. int i;
  830. rd_lock(&(sc_info->stat_lock));
  831. for (i = 0; i < sc_info->sc_count; i++) {
  832. if (sc_info->sc_devs[i].temp1 > temp)
  833. temp = sc_info->sc_devs[i].temp1;
  834. if (sc_info->sc_devs[i].temp2 > temp)
  835. temp = sc_info->sc_devs[i].temp2;
  836. if (sc_info->sc_devs[i].vcc1 > vcc1)
  837. vcc1 = sc_info->sc_devs[i].vcc1;
  838. }
  839. rd_unlock(&(sc_info->stat_lock));
  840. tailsprintf(buf, " max%3.0fC %4.2fV | ", temp, vcc1);
  841. }
  842. static void flush_one_dev(struct cgpu_info *bflsc, int dev)
  843. {
  844. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  845. struct work *work, *tmp;
  846. bool did = false;
  847. bflsc_send_flush_work(bflsc, dev);
  848. rd_lock(&bflsc->qlock);
  849. HASH_ITER(hh, bflsc->queued_work, work, tmp) {
  850. if (work->queued && work->subid == dev) {
  851. // devflag is used to flag stale work
  852. work->devflag = true;
  853. did = true;
  854. }
  855. }
  856. rd_unlock(&bflsc->qlock);
  857. if (did) {
  858. wr_lock(&(sc_info->stat_lock));
  859. sc_info->sc_devs[dev].flushed = true;
  860. sc_info->sc_devs[dev].flush_id = sc_info->sc_devs[dev].result_id;
  861. sc_info->sc_devs[dev].work_queued = 0;
  862. wr_unlock(&(sc_info->stat_lock));
  863. }
  864. }
  865. static void bflsc_flush_work(struct cgpu_info *bflsc)
  866. {
  867. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  868. int dev;
  869. for (dev = 0; dev < sc_info->sc_count; dev++)
  870. flush_one_dev(bflsc, dev);
  871. }
  872. static void bflsc_flash_led(struct cgpu_info *bflsc, int dev)
  873. {
  874. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  875. int err, amount;
  876. // Device is gone
  877. if (bflsc->usbinfo.nodev)
  878. return;
  879. // It is not critical flashing the led so don't get stuck if we
  880. // can't grab the mutex now
  881. if (mutex_trylock(&bflsc->device_mutex))
  882. return;
  883. err = write_to_dev(bflsc, dev, BFLSC_FLASH, BFLSC_FLASH_LEN, &amount, C_REQUESTFLASH);
  884. if (err < 0 || amount != BFLSC_FLASH_LEN) {
  885. mutex_unlock(&(bflsc->device_mutex));
  886. bflsc_applog(bflsc, dev, C_REQUESTFLASH, amount, err);
  887. } else {
  888. getok(bflsc, C_FLASHREPLY, &err, &amount);
  889. mutex_unlock(&(bflsc->device_mutex));
  890. }
  891. // Once we've tried - don't do it until told to again
  892. // - even if it failed
  893. sc_info->flash_led = false;
  894. return;
  895. }
  896. static bool bflsc_get_temp(struct cgpu_info *bflsc, int dev)
  897. {
  898. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  899. struct bflsc_dev *sc_dev;
  900. char temp_buf[BFLSC_BUFSIZ+1];
  901. char volt_buf[BFLSC_BUFSIZ+1];
  902. char *tmp;
  903. int err, amount;
  904. char *firstname, **fields, *lf;
  905. char xlink[17];
  906. int count;
  907. bool res;
  908. float temp, temp1, temp2;
  909. float vcc1, vcc2, vmain;
  910. // Device is gone
  911. if (bflsc->usbinfo.nodev)
  912. return false;
  913. if (dev >= sc_info->sc_count) {
  914. applog(LOG_ERR, "%s%i: temp invalid xlink device %d - limit %d",
  915. bflsc->drv->name, bflsc->device_id, dev, sc_info->sc_count - 1);
  916. return false;
  917. }
  918. // Flash instead of Temp
  919. if (sc_info->flash_led) {
  920. bflsc_flash_led(bflsc, dev);
  921. return true;
  922. }
  923. /* It is not very critical getting temp so don't get stuck if we
  924. * can't grab the mutex here */
  925. if (mutex_trylock(&bflsc->device_mutex))
  926. return false;
  927. xlinkstr(&(xlink[0]), dev, sc_info);
  928. err = write_to_dev(bflsc, dev, BFLSC_TEMPERATURE, BFLSC_TEMPERATURE_LEN, &amount, C_REQUESTTEMPERATURE);
  929. if (err < 0 || amount != BFLSC_TEMPERATURE_LEN) {
  930. mutex_unlock(&(bflsc->device_mutex));
  931. applog(LOG_ERR, "%s%i: Error: Request%s temp invalid/timed out (%d:%d)",
  932. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  933. return false;
  934. }
  935. err = usb_read_nl(bflsc, temp_buf, sizeof(temp_buf)-1, &amount, C_GETTEMPERATURE);
  936. if (err < 0 || amount < 1) {
  937. mutex_unlock(&(bflsc->device_mutex));
  938. if (err < 0) {
  939. applog(LOG_ERR, "%s%i: Error: Get%s temp return invalid/timed out (%d:%d)",
  940. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  941. } else {
  942. applog(LOG_ERR, "%s%i: Error: Get%s temp returned nothing (%d:%d)",
  943. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  944. }
  945. return false;
  946. }
  947. // N.B. we only get the voltages if the temp succeeds - temp is the important one
  948. err = write_to_dev(bflsc, dev, BFLSC_VOLTAGE, BFLSC_VOLTAGE_LEN, &amount, C_REQUESTVOLTS);
  949. if (err < 0 || amount != BFLSC_VOLTAGE_LEN) {
  950. mutex_unlock(&(bflsc->device_mutex));
  951. applog(LOG_ERR, "%s%i: Error: Request%s volts invalid/timed out (%d:%d)",
  952. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  953. return false;
  954. }
  955. err = usb_read_nl(bflsc, volt_buf, sizeof(volt_buf)-1, &amount, C_GETTEMPERATURE);
  956. if (err < 0 || amount < 1) {
  957. mutex_unlock(&(bflsc->device_mutex));
  958. if (err < 0) {
  959. applog(LOG_ERR, "%s%i: Error: Get%s temp return invalid/timed out (%d:%d)",
  960. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  961. } else {
  962. applog(LOG_ERR, "%s%i: Error: Get%s temp returned nothing (%d:%d)",
  963. bflsc->drv->name, bflsc->device_id, xlink, amount, err);
  964. }
  965. return false;
  966. }
  967. mutex_unlock(&(bflsc->device_mutex));
  968. res = breakdown(ALLCOLON, temp_buf, &count, &firstname, &fields, &lf);
  969. if (lf)
  970. *lf = '\0';
  971. if (!res || count != 2 || !lf) {
  972. tmp = str_text(temp_buf);
  973. applog(LOG_WARNING, "%s%i: Invalid%s temp reply: '%s'",
  974. bflsc->drv->name, bflsc->device_id, xlink, tmp);
  975. free(tmp);
  976. freebreakdown(&count, &firstname, &fields);
  977. dev_error(bflsc, REASON_DEV_COMMS_ERROR);
  978. return false;
  979. }
  980. temp = temp1 = (float)atoi(fields[0]);
  981. temp2 = (float)atoi(fields[1]);
  982. res = breakdown(NOCOLON, volt_buf, &count, &firstname, &fields, &lf);
  983. if (lf)
  984. *lf = '\0';
  985. if (!res || count != 3 || !lf) {
  986. tmp = str_text(volt_buf);
  987. applog(LOG_WARNING, "%s%i: Invalid%s volt reply: '%s'",
  988. bflsc->drv->name, bflsc->device_id, xlink, tmp);
  989. free(tmp);
  990. freebreakdown(&count, &firstname, &fields);
  991. dev_error(bflsc, REASON_DEV_COMMS_ERROR);
  992. return false;
  993. }
  994. sc_dev = &sc_info->sc_devs[dev];
  995. vcc1 = (float)atoi(fields[0]) / 1000.0;
  996. vcc2 = (float)atoi(fields[1]) / 1000.0;
  997. vmain = (float)atoi(fields[2]) / 1000.0;
  998. if (vcc1 > 0 || vcc2 > 0 || vmain > 0) {
  999. wr_lock(&(sc_info->stat_lock));
  1000. if (vcc1 > 0) {
  1001. if (unlikely(sc_dev->vcc1 == 0))
  1002. sc_dev->vcc1 = vcc1;
  1003. else {
  1004. sc_dev->vcc1 += vcc1 * 0.63;
  1005. sc_dev->vcc1 /= 1.63;
  1006. }
  1007. }
  1008. if (vcc2 > 0) {
  1009. if (unlikely(sc_dev->vcc2 == 0))
  1010. sc_dev->vcc2 = vcc2;
  1011. else {
  1012. sc_dev->vcc2 += vcc2 * 0.63;
  1013. sc_dev->vcc2 /= 1.63;
  1014. }
  1015. }
  1016. if (vmain > 0) {
  1017. if (unlikely(sc_dev->vmain == 0))
  1018. sc_dev->vmain = vmain;
  1019. else {
  1020. sc_dev->vmain += vmain * 0.63;
  1021. sc_dev->vmain /= 1.63;
  1022. }
  1023. }
  1024. wr_unlock(&(sc_info->stat_lock));
  1025. }
  1026. if (temp1 > 0 || temp2 > 0) {
  1027. wr_lock(&(sc_info->stat_lock));
  1028. if (unlikely(!sc_dev->temp1))
  1029. sc_dev->temp1 = temp1;
  1030. else {
  1031. sc_dev->temp1 += temp1 * 0.63;
  1032. sc_dev->temp1 /= 1.63;
  1033. }
  1034. if (unlikely(!sc_dev->temp2))
  1035. sc_dev->temp2 = temp2;
  1036. else {
  1037. sc_dev->temp2 += temp2 * 0.63;
  1038. sc_dev->temp2 /= 1.63;
  1039. }
  1040. if (temp1 > sc_dev->temp1_max) {
  1041. sc_dev->temp1_max = temp1;
  1042. sc_dev->temp1_max_time = time(NULL);
  1043. }
  1044. if (temp2 > sc_dev->temp2_max) {
  1045. sc_dev->temp2_max = temp2;
  1046. sc_dev->temp2_max_time = time(NULL);
  1047. }
  1048. if (unlikely(sc_dev->temp1_5min_av == 0))
  1049. sc_dev->temp1_5min_av = temp1;
  1050. else {
  1051. sc_dev->temp1_5min_av += temp1 * .0042;
  1052. sc_dev->temp1_5min_av /= 1.0042;
  1053. }
  1054. if (unlikely(sc_dev->temp2_5min_av == 0))
  1055. sc_dev->temp2_5min_av = temp2;
  1056. else {
  1057. sc_dev->temp2_5min_av += temp2 * .0042;
  1058. sc_dev->temp2_5min_av /= 1.0042;
  1059. }
  1060. wr_unlock(&(sc_info->stat_lock));
  1061. if (temp < temp2)
  1062. temp = temp2;
  1063. bflsc->temp = temp;
  1064. if (bflsc->cutofftemp > 0 && temp >= bflsc->cutofftemp) {
  1065. applog(LOG_WARNING, "%s%i:%s temp (%.1f) hit thermal cutoff limit %d, stopping work!",
  1066. bflsc->drv->name, bflsc->device_id, xlink,
  1067. temp, bflsc->cutofftemp);
  1068. dev_error(bflsc, REASON_DEV_THERMAL_CUTOFF);
  1069. sc_dev->overheat = true;
  1070. flush_one_dev(bflsc, dev);
  1071. return false;
  1072. }
  1073. if (bflsc->cutofftemp > 0 && temp < (bflsc->cutofftemp - BFLSC_TEMP_RECOVER))
  1074. sc_dev->overheat = false;
  1075. }
  1076. freebreakdown(&count, &firstname, &fields);
  1077. return true;
  1078. }
  1079. static void process_nonces(struct cgpu_info *bflsc, int dev, char *xlink, char *data, int count, char **fields, int *nonces)
  1080. {
  1081. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1082. char midstate[MIDSTATE_BYTES], blockdata[MERKLE_BYTES];
  1083. struct work *work;
  1084. uint32_t nonce;
  1085. int i, num;
  1086. bool res;
  1087. char *tmp;
  1088. if (count < QUE_FLD_MIN) {
  1089. tmp = str_text(data);
  1090. applog(LOG_ERR, "%s%i:%s work returned too small (%d,%s)",
  1091. bflsc->drv->name, bflsc->device_id, xlink, count, tmp);
  1092. free(tmp);
  1093. inc_hw_errors(bflsc->thr[0]);
  1094. return;
  1095. }
  1096. if (count > QUE_FLD_MAX) {
  1097. applog(LOG_ERR, "%s%i:%s work returned too large (%d) processing %d anyway",
  1098. bflsc->drv->name, bflsc->device_id, xlink, count, QUE_FLD_MAX);
  1099. count = QUE_FLD_MAX;
  1100. inc_hw_errors(bflsc->thr[0]);
  1101. }
  1102. num = atoi(fields[QUE_NONCECOUNT]);
  1103. if (num != count - QUE_FLD_MIN) {
  1104. tmp = str_text(data);
  1105. applog(LOG_ERR, "%s%i:%s incorrect data count (%d) will use %d instead from (%s)",
  1106. bflsc->drv->name, bflsc->device_id, xlink, num, count - QUE_FLD_MAX, tmp);
  1107. free(tmp);
  1108. inc_hw_errors(bflsc->thr[0]);
  1109. }
  1110. memset(midstate, 0, MIDSTATE_BYTES);
  1111. memset(blockdata, 0, MERKLE_BYTES);
  1112. if (!hex2bin((unsigned char *)midstate, fields[QUE_MIDSTATE], MIDSTATE_BYTES) ||
  1113. !hex2bin((unsigned char *)blockdata, fields[QUE_BLOCKDATA], MERKLE_BYTES)) {
  1114. applog(LOG_ERR, "%s%i:%s Failed to convert binary data to hex result - ignored",
  1115. bflsc->drv->name, bflsc->device_id, xlink);
  1116. inc_hw_errors(bflsc->thr[0]);
  1117. return;
  1118. }
  1119. work = find_queued_work_bymidstate(bflsc, midstate, MIDSTATE_BYTES,
  1120. blockdata, MERKLE_OFFSET, MERKLE_BYTES);
  1121. if (!work) {
  1122. if (sc_info->not_first_work) {
  1123. applog(LOG_ERR, "%s%i:%s failed to find nonce work - can't be processed - ignored",
  1124. bflsc->drv->name, bflsc->device_id, xlink);
  1125. inc_hw_errors(bflsc->thr[0]);
  1126. }
  1127. return;
  1128. }
  1129. res = false;
  1130. for (i = QUE_FLD_MIN; i < count; i++) {
  1131. if (strlen(fields[i]) != 8) {
  1132. tmp = str_text(data);
  1133. applog(LOG_ERR, "%s%i:%s invalid nonce (%s) will try to process anyway",
  1134. bflsc->drv->name, bflsc->device_id, xlink, tmp);
  1135. free(tmp);
  1136. }
  1137. hex2bin((void*)&nonce, fields[i], 4);
  1138. nonce = htobe32(nonce);
  1139. wr_lock(&(sc_info->stat_lock));
  1140. sc_info->sc_devs[dev].nonces_found++;
  1141. wr_unlock(&(sc_info->stat_lock));
  1142. submit_nonce(bflsc->thr[0], work, nonce);
  1143. (*nonces)++;
  1144. res = true;
  1145. }
  1146. wr_lock(&(sc_info->stat_lock));
  1147. if (res)
  1148. sc_info->sc_devs[dev].result_id++;
  1149. sc_info->sc_devs[dev].work_complete++;
  1150. sc_info->sc_devs[dev].hashes_unsent += FULLNONCE;
  1151. // If not flushed (stale)
  1152. if (!(work->devflag))
  1153. sc_info->sc_devs[dev].work_queued -= 1;
  1154. wr_unlock(&(sc_info->stat_lock));
  1155. work_completed(bflsc, work);
  1156. }
  1157. static int process_results(struct cgpu_info *bflsc, int dev, char *buf, int *nonces)
  1158. {
  1159. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1160. char **items, *firstname, **fields, *lf;
  1161. int que, i, lines, count;
  1162. char xlink[17];
  1163. char *tmp, *tmp2;
  1164. *nonces = 0;
  1165. xlinkstr(&(xlink[0]), dev, sc_info);
  1166. tolines(bflsc, dev, buf, &lines, &items, C_GETRESULTS);
  1167. if (lines < 1) {
  1168. tmp = str_text(buf);
  1169. applog(LOG_ERR, "%s%i:%s empty result (%s) ignored",
  1170. bflsc->drv->name, bflsc->device_id, xlink, tmp);
  1171. free(tmp);
  1172. que = 0;
  1173. goto arigatou;
  1174. }
  1175. if (lines < QUE_RES_LINES_MIN) {
  1176. tmp = str_text(buf);
  1177. applog(LOG_ERR, "%s%i:%s result too small (%s) ignored",
  1178. bflsc->drv->name, bflsc->device_id, xlink, tmp);
  1179. free(tmp);
  1180. que = 0;
  1181. goto arigatou;
  1182. }
  1183. breakdown(ONECOLON, items[1], &count, &firstname, &fields, &lf);
  1184. if (count < 1) {
  1185. tmp = str_text(buf);
  1186. tmp2 = str_text(items[1]);
  1187. applog(LOG_ERR, "%s%i:%s empty result count (%s) in (%s) will try anyway",
  1188. bflsc->drv->name, bflsc->device_id, xlink, tmp2, tmp);
  1189. free(tmp2);
  1190. free(tmp);
  1191. } else if (count != 1) {
  1192. tmp = str_text(buf);
  1193. tmp2 = str_text(items[1]);
  1194. applog(LOG_ERR, "%s%i:%s incorrect result count %d (%s) in (%s) will try anyway",
  1195. bflsc->drv->name, bflsc->device_id, xlink, count, tmp2, tmp);
  1196. free(tmp2);
  1197. free(tmp);
  1198. }
  1199. que = atoi(fields[0]);
  1200. if (que != (lines - QUE_RES_LINES_MIN)) {
  1201. i = que;
  1202. // 1+ In case the last line isn't 'OK' - try to process it
  1203. que = 1 + lines - QUE_RES_LINES_MIN;
  1204. tmp = str_text(buf);
  1205. tmp2 = str_text(items[0]);
  1206. applog(LOG_ERR, "%s%i:%s incorrect result count %d (%s) will try %d (%s)",
  1207. bflsc->drv->name, bflsc->device_id, xlink, i, tmp2, que, tmp);
  1208. free(tmp2);
  1209. free(tmp);
  1210. }
  1211. freebreakdown(&count, &firstname, &fields);
  1212. for (i = 0; i < que; i++) {
  1213. breakdown(NOCOLON, items[i + QUE_RES_LINES_MIN - 1], &count, &firstname, &fields, &lf);
  1214. process_nonces(bflsc, dev, &(xlink[0]), items[i], count, fields, nonces);
  1215. freebreakdown(&count, &firstname, &fields);
  1216. sc_info->not_first_work = true;
  1217. }
  1218. arigatou:
  1219. freetolines(&lines, &items);
  1220. return que;
  1221. }
  1222. #define TVF(tv) ((float)((tv)->tv_sec) + ((float)((tv)->tv_usec) / 1000000.0))
  1223. #define TVFMS(tv) (TVF(tv) * 1000.0)
  1224. // Thread to simply keep looking for results
  1225. static void *bflsc_get_results(void *userdata)
  1226. {
  1227. struct cgpu_info *bflsc = (struct cgpu_info *)userdata;
  1228. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1229. struct timeval elapsed, now;
  1230. float oldest, f;
  1231. char buf[BFLSC_BUFSIZ+1];
  1232. int err, amount;
  1233. int i, que, dev, nonces;
  1234. bool readok;
  1235. cgtime(&now);
  1236. for (i = 0; i < sc_info->sc_count; i++) {
  1237. copy_time(&(sc_info->sc_devs[i].last_check_result), &now);
  1238. copy_time(&(sc_info->sc_devs[i].last_dev_result), &now);
  1239. copy_time(&(sc_info->sc_devs[i].last_nonce_result), &now);
  1240. }
  1241. while (sc_info->shutdown == false) {
  1242. if (bflsc->usbinfo.nodev)
  1243. return NULL;
  1244. dev = -1;
  1245. oldest = FLT_MAX;
  1246. cgtime(&now);
  1247. // Find the first oldest ... that also needs checking
  1248. for (i = 0; i < sc_info->sc_count; i++) {
  1249. timersub(&now, &(sc_info->sc_devs[i].last_check_result), &elapsed);
  1250. f = TVFMS(&elapsed);
  1251. if (f < oldest && f >= sc_info->sc_devs[i].ms_work) {
  1252. f = oldest;
  1253. dev = i;
  1254. }
  1255. }
  1256. if (bflsc->usbinfo.nodev)
  1257. return NULL;
  1258. if (dev == -1)
  1259. goto utsura;
  1260. cgtime(&(sc_info->sc_devs[dev].last_check_result));
  1261. readok = bflsc_qres(bflsc, buf, sizeof(buf), dev, &err, &amount, false);
  1262. if (err < 0 || (!readok && amount != BFLSC_QRES_LEN) || (readok && amount < 1)) {
  1263. // TODO: do what else?
  1264. } else {
  1265. que = process_results(bflsc, dev, buf, &nonces);
  1266. sc_info->not_first_work = true; // in case it failed processing it
  1267. if (que > 0)
  1268. cgtime(&(sc_info->sc_devs[dev].last_dev_result));
  1269. if (nonces > 0)
  1270. cgtime(&(sc_info->sc_devs[dev].last_nonce_result));
  1271. // TODO: if not getting results ... reinit?
  1272. }
  1273. utsura:
  1274. nmsleep(sc_info->results_sleep_time);
  1275. }
  1276. return NULL;
  1277. }
  1278. static bool bflsc_thread_prepare(struct thr_info *thr)
  1279. {
  1280. struct cgpu_info *bflsc = thr->cgpu;
  1281. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1282. struct timeval now;
  1283. if (thr_info_create(&(sc_info->results_thr), NULL, bflsc_get_results, (void *)bflsc)) {
  1284. applog(LOG_ERR, "%s%i: thread create failed", bflsc->drv->name, bflsc->device_id);
  1285. return false;
  1286. }
  1287. pthread_detach(sc_info->results_thr.pth);
  1288. cgtime(&now);
  1289. get_datestamp(bflsc->init, &now);
  1290. return true;
  1291. }
  1292. static void bflsc_shutdown(struct thr_info *thr)
  1293. {
  1294. struct cgpu_info *bflsc = thr->cgpu;
  1295. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1296. bflsc_flush_work(bflsc);
  1297. sc_info->shutdown = true;
  1298. }
  1299. static void bflsc_thread_enable(struct thr_info *thr)
  1300. {
  1301. struct cgpu_info *bflsc = thr->cgpu;
  1302. if (bflsc->usbinfo.nodev)
  1303. return;
  1304. bflsc_initialise(bflsc);
  1305. }
  1306. static bool bflsc_send_work(struct cgpu_info *bflsc, int dev, struct work *work)
  1307. {
  1308. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1309. struct FullNonceRangeJob data;
  1310. char buf[BFLSC_BUFSIZ+1];
  1311. int err, amount;
  1312. int len;
  1313. int try;
  1314. // Device is gone
  1315. if (bflsc->usbinfo.nodev)
  1316. return false;
  1317. // TODO: handle this everywhere
  1318. if (sc_info->sc_devs[dev].overheat == true)
  1319. return false;
  1320. // Initially code only deals with sending one work item
  1321. data.payloadSize = BFLSC_JOBSIZ;
  1322. memcpy(data.midState, work->midstate, MIDSTATE_BYTES);
  1323. memcpy(data.blockData, work->data + MERKLE_OFFSET, MERKLE_BYTES);
  1324. data.endOfBlock = BFLSC_EOB;
  1325. try = 0;
  1326. mutex_lock(&(bflsc->device_mutex));
  1327. re_send:
  1328. err = write_to_dev(bflsc, dev, BFLSC_QJOB, BFLSC_QJOB_LEN, &amount, C_REQUESTQUEJOB);
  1329. if (err < 0 || amount != BFLSC_QJOB_LEN) {
  1330. mutex_unlock(&(bflsc->device_mutex));
  1331. bflsc_applog(bflsc, dev, C_REQUESTQUEJOB, amount, err);
  1332. return false;
  1333. }
  1334. if (!getok(bflsc, C_REQUESTQUEJOBSTATUS, &err, &amount)) {
  1335. mutex_unlock(&(bflsc->device_mutex));
  1336. bflsc_applog(bflsc, dev, C_REQUESTQUEJOBSTATUS, amount, err);
  1337. return false;
  1338. }
  1339. len = sizeof(struct FullNonceRangeJob);
  1340. err = write_to_dev(bflsc, dev, (char *)&data, len, &amount, C_QUEJOB);
  1341. if (err < 0 || amount != len) {
  1342. mutex_unlock(&(bflsc->device_mutex));
  1343. bflsc_applog(bflsc, dev, C_QUEJOB, amount, err);
  1344. return false;
  1345. }
  1346. if (!getokerr(bflsc, C_QUEJOBSTATUS, &err, &amount, buf, sizeof(buf))) {
  1347. // TODO: check for QUEUE FULL and set work_queued to BFLSC_QUE_SIZE
  1348. // and report a code bug LOG_ERR - coz it should never happen
  1349. // Try twice
  1350. if (try++ < 1 && amount > 1 &&
  1351. strncasecmp(buf, BFLSC_TIMEOUT, BFLSC_TIMEOUT_LEN) == 0)
  1352. goto re_send;
  1353. mutex_unlock(&(bflsc->device_mutex));
  1354. bflsc_applog(bflsc, dev, C_QUEJOBSTATUS, amount, err);
  1355. return false;
  1356. }
  1357. mutex_unlock(&(bflsc->device_mutex));
  1358. wr_lock(&(sc_info->stat_lock));
  1359. sc_info->sc_devs[dev].work_queued++;
  1360. wr_unlock(&(sc_info->stat_lock));
  1361. work->subid = dev;
  1362. return true;
  1363. }
  1364. static bool bflsc_queue_full(struct cgpu_info *bflsc)
  1365. {
  1366. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1367. struct work *work = NULL;
  1368. int i, dev, tried, que;
  1369. bool ret = false;
  1370. int tries = 0;
  1371. tried = -1;
  1372. // if something is wrong with a device try the next one available
  1373. // TODO: try them all? Add an unavailable flag to sc_devs[i] init to 0 here first
  1374. while (++tries < 3) {
  1375. // Device is gone - shouldn't normally get here
  1376. if (bflsc->usbinfo.nodev) {
  1377. ret = true;
  1378. break;
  1379. }
  1380. dev = -1;
  1381. rd_lock(&(sc_info->stat_lock));
  1382. // Anything waiting - gets the work first
  1383. for (i = 0; i < sc_info->sc_count; i++) {
  1384. // TODO: and ignore x-link dead - once I work out how to decide it is dead
  1385. if (i != tried && sc_info->sc_devs[i].work_queued == 0 &&
  1386. !sc_info->sc_devs[i].overheat) {
  1387. dev = i;
  1388. break;
  1389. }
  1390. }
  1391. if (dev == -1) {
  1392. que = BFLSC_QUE_SIZE * 10; // 10x is certainly above the MAX it could be
  1393. // The first device with the smallest amount queued
  1394. for (i = 0; i < sc_info->sc_count; i++) {
  1395. if (i != tried && sc_info->sc_devs[i].work_queued < que &&
  1396. !sc_info->sc_devs[i].overheat) {
  1397. dev = i;
  1398. que = sc_info->sc_devs[i].work_queued;
  1399. }
  1400. }
  1401. if (que > BFLSC_QUE_FULL_ENOUGH)
  1402. dev = -1;
  1403. }
  1404. rd_unlock(&(sc_info->stat_lock));
  1405. // nothing needs work yet
  1406. if (dev == -1) {
  1407. ret = true;
  1408. break;
  1409. }
  1410. if (!work)
  1411. work = get_queued(bflsc);
  1412. if (unlikely(!work))
  1413. break;
  1414. if (bflsc_send_work(bflsc, dev, work)) {
  1415. work = NULL;
  1416. break;
  1417. } else
  1418. tried = dev;
  1419. }
  1420. if (unlikely(work))
  1421. work_completed(bflsc, work);
  1422. return ret;
  1423. }
  1424. static int64_t bflsc_scanwork(struct thr_info *thr)
  1425. {
  1426. struct cgpu_info *bflsc = thr->cgpu;
  1427. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1428. int64_t ret, unsent;
  1429. bool flushed, cleanup;
  1430. struct work *work, *tmp;
  1431. int dev, waited, i;
  1432. // Device is gone
  1433. if (bflsc->usbinfo.nodev)
  1434. return -1;
  1435. flushed = false;
  1436. // Single lock check if any are flagged as flushed
  1437. rd_lock(&(sc_info->stat_lock));
  1438. for (dev = 0; dev < sc_info->sc_count; dev++)
  1439. flushed |= sc_info->sc_devs[dev].flushed;
  1440. rd_unlock(&(sc_info->stat_lock));
  1441. // > 0 flagged as flushed
  1442. if (flushed) {
  1443. // TODO: something like this ......
  1444. for (dev = 0; dev < sc_info->sc_count; dev++) {
  1445. cleanup = false;
  1446. // Is there any flushed work that can be removed?
  1447. rd_lock(&(sc_info->stat_lock));
  1448. if (sc_info->sc_devs[dev].flushed) {
  1449. if (sc_info->sc_devs[dev].result_id > (sc_info->sc_devs[dev].flush_id + 1))
  1450. cleanup = true;
  1451. }
  1452. rd_unlock(&(sc_info->stat_lock));
  1453. // yes remove the flushed work that can be removed
  1454. if (cleanup) {
  1455. wr_lock(&bflsc->qlock);
  1456. HASH_ITER(hh, bflsc->queued_work, work, tmp) {
  1457. if (work->devflag && work->subid == dev) {
  1458. bflsc->queued_count--;
  1459. HASH_DEL(bflsc->queued_work, work);
  1460. discard_work(work);
  1461. }
  1462. }
  1463. wr_unlock(&bflsc->qlock);
  1464. wr_lock(&(sc_info->stat_lock));
  1465. sc_info->sc_devs[dev].flushed = false;
  1466. wr_unlock(&(sc_info->stat_lock));
  1467. }
  1468. }
  1469. }
  1470. waited = restart_wait(sc_info->scan_sleep_time);
  1471. if (waited == ETIMEDOUT) {
  1472. unsigned int old_sleep_time, new_sleep_time = 0;
  1473. int min_queued = BFLSC_QUE_SIZE;
  1474. /* Only adjust the scan_sleep_time if we did not receive a
  1475. * restart message while waiting. Try to adjust sleep time
  1476. * so we drop to BFLSC_QUE_WATERMARK before getting more work.
  1477. */
  1478. rd_lock(&sc_info->stat_lock);
  1479. old_sleep_time = sc_info->scan_sleep_time;
  1480. for (i = 0; i < sc_info->sc_count; i++) {
  1481. if (sc_info->sc_devs[i].work_queued < min_queued)
  1482. min_queued = sc_info->sc_devs[i].work_queued;
  1483. }
  1484. rd_unlock(&sc_info->stat_lock);
  1485. new_sleep_time = old_sleep_time;
  1486. /* Increase slowly but decrease quickly */
  1487. if (min_queued > BFLSC_QUE_WATERMARK && old_sleep_time < BFLSC_MAX_SLEEP)
  1488. new_sleep_time = old_sleep_time * 21 / 20;
  1489. else if (min_queued < BFLSC_QUE_WATERMARK)
  1490. new_sleep_time = old_sleep_time * 2 / 3;
  1491. /* Do not sleep more than BFLSC_MAX_SLEEP so we can always
  1492. * report in at least 2 results per 5s log interval. */
  1493. if (new_sleep_time != old_sleep_time) {
  1494. if (new_sleep_time > BFLSC_MAX_SLEEP)
  1495. new_sleep_time = BFLSC_MAX_SLEEP;
  1496. else if (new_sleep_time == 0)
  1497. new_sleep_time = 1;
  1498. applog(LOG_DEBUG, "%s%i: Changed scan sleep time to %d",
  1499. bflsc->drv->name, bflsc->device_id, new_sleep_time);
  1500. wr_lock(&sc_info->stat_lock);
  1501. sc_info->scan_sleep_time = new_sleep_time;
  1502. wr_unlock(&sc_info->stat_lock);
  1503. }
  1504. }
  1505. // Count up the work done since we last were here
  1506. ret = 0;
  1507. wr_lock(&(sc_info->stat_lock));
  1508. for (dev = 0; dev < sc_info->sc_count; dev++) {
  1509. unsent = sc_info->sc_devs[dev].hashes_unsent;
  1510. sc_info->sc_devs[dev].hashes_unsent = 0;
  1511. sc_info->sc_devs[dev].hashes_sent += unsent;
  1512. sc_info->hashes_sent += unsent;
  1513. ret += unsent;
  1514. }
  1515. wr_unlock(&(sc_info->stat_lock));
  1516. return ret;
  1517. }
  1518. static void bflsc_set_fanspeed(struct cgpu_info *bflsc)
  1519. {
  1520. struct bflsc_info *sc_info = (struct bflsc_info *)bflsc->device_data;
  1521. int amount, err;
  1522. if ((bflsc->temp <= 60 && sc_info->fanauto) ||
  1523. (bflsc->temp > 60 && !sc_info->fanauto))
  1524. return;
  1525. mutex_lock(&bflsc->device_mutex);
  1526. if (bflsc->temp > 60) {
  1527. write_to_dev(bflsc, 0, BFLSC_FAN4, BFLSC_FAN4_LEN, &amount,
  1528. C_SETFAN);
  1529. sc_info->fanauto = false;
  1530. } else {
  1531. write_to_dev(bflsc, 0, BFLSC_FANAUTO, BFLSC_FANOUT_LEN,
  1532. &amount, C_SETFAN);
  1533. sc_info->fanauto = true;
  1534. }
  1535. getok(bflsc, C_FANREPLY, &err, &amount);
  1536. mutex_unlock(&bflsc->device_mutex);
  1537. }
  1538. static bool bflsc_get_stats(struct cgpu_info *bflsc)
  1539. {
  1540. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1541. bool allok = true;
  1542. int i;
  1543. // Device is gone
  1544. if (bflsc->usbinfo.nodev)
  1545. return false;
  1546. for (i = 0; i < sc_info->sc_count; i++) {
  1547. if (!bflsc_get_temp(bflsc, i))
  1548. allok = false;
  1549. // Device is gone
  1550. if (bflsc->usbinfo.nodev)
  1551. return false;
  1552. if (i < (sc_info->sc_count - 1))
  1553. nmsleep(BFLSC_TEMP_SLEEPMS);
  1554. }
  1555. bflsc_set_fanspeed(bflsc);
  1556. return allok;
  1557. }
  1558. static void bflsc_identify(struct cgpu_info *bflsc)
  1559. {
  1560. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1561. // TODO: handle x-link
  1562. sc_info->flash_led = true;
  1563. }
  1564. static bool bflsc_thread_init(struct thr_info *thr)
  1565. {
  1566. struct cgpu_info *bflsc = thr->cgpu;
  1567. if (bflsc->usbinfo.nodev)
  1568. return false;
  1569. bflsc_initialise(bflsc);
  1570. return true;
  1571. }
  1572. // there should be a new API function to return device info that isn't the standard stuff
  1573. // instead of bflsc_api_stats - since the stats should really just be internal code info
  1574. // and the new one should be UNusual device stats/extra details - like the stuff below
  1575. static struct api_data *bflsc_api_stats(struct cgpu_info *bflsc)
  1576. {
  1577. struct bflsc_info *sc_info = (struct bflsc_info *)(bflsc->device_data);
  1578. struct api_data *root = NULL;
  1579. //if no x-link ... etc
  1580. rd_lock(&(sc_info->stat_lock));
  1581. root = api_add_temp(root, "Temp1", &(sc_info->sc_devs[0].temp1), true);
  1582. root = api_add_temp(root, "Temp2", &(sc_info->sc_devs[0].temp2), true);
  1583. root = api_add_volts(root, "Vcc1", &(sc_info->sc_devs[0].vcc1), true);
  1584. root = api_add_volts(root, "Vcc2", &(sc_info->sc_devs[0].vcc2), true);
  1585. root = api_add_volts(root, "Vmain", &(sc_info->sc_devs[0].vmain), true);
  1586. root = api_add_temp(root, "Temp1 Max", &(sc_info->sc_devs[0].temp1_max), true);
  1587. root = api_add_temp(root, "Temp2 Max", &(sc_info->sc_devs[0].temp2_max), true);
  1588. root = api_add_time(root, "Temp1 Max Time", &(sc_info->sc_devs[0].temp1_max_time), true);
  1589. root = api_add_time(root, "Temp2 Max Time", &(sc_info->sc_devs[0].temp2_max_time), true);
  1590. rd_unlock(&(sc_info->stat_lock));
  1591. root = api_add_escape(root, "GetInfo", sc_info->sc_devs[0].getinfo, false);
  1592. /*
  1593. else a whole lot of something like these ... etc
  1594. root = api_add_temp(root, "X-%d-Temp1", &(sc_info->temp1), false);
  1595. root = api_add_temp(root, "X-%d-Temp2", &(sc_info->temp2), false);
  1596. root = api_add_volts(root, "X-%d-Vcc1", &(sc_info->vcc1), false);
  1597. root = api_add_volts(root, "X-%d-Vcc2", &(sc_info->vcc2), false);
  1598. root = api_add_volts(root, "X-%d-Vmain", &(sc_info->vmain), false);
  1599. */
  1600. return root;
  1601. }
  1602. struct device_drv bflsc_drv = {
  1603. .drv_id = DRIVER_BFLSC,
  1604. .dname = "BitForceSC",
  1605. .name = BFLSC_SINGLE,
  1606. .drv_detect = bflsc_detect,
  1607. .get_api_stats = bflsc_api_stats,
  1608. .get_statline_before = get_bflsc_statline_before,
  1609. .get_stats = bflsc_get_stats,
  1610. .identify_device = bflsc_identify,
  1611. .thread_prepare = bflsc_thread_prepare,
  1612. .thread_init = bflsc_thread_init,
  1613. .hash_work = hash_queued_work,
  1614. .scanwork = bflsc_scanwork,
  1615. .queue_full = bflsc_queue_full,
  1616. .flush_work = bflsc_flush_work,
  1617. .thread_shutdown = bflsc_shutdown,
  1618. .thread_enable = bflsc_thread_enable
  1619. };