driver-icarus.c 29 KB

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  1. /*
  2. * Copyright 2012-2013 Andrew Smith
  3. * Copyright 2012 Xiangfu <xiangfu@openmobilefree.com>
  4. * Copyright 2013 Con Kolivas <kernel@kolivas.org>
  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. /*
  12. * Those code should be works fine with V2 and V3 bitstream of Icarus.
  13. * Operation:
  14. * No detection implement.
  15. * Input: 64B = 32B midstate + 20B fill bytes + last 12 bytes of block head.
  16. * Return: send back 32bits immediately when Icarus found a valid nonce.
  17. * no query protocol implemented here, if no data send back in ~11.3
  18. * seconds (full cover time on 32bit nonce range by 380MH/s speed)
  19. * just send another work.
  20. * Notice:
  21. * 1. Icarus will start calculate when you push a work to them, even they
  22. * are busy.
  23. * 2. The 2 FPGAs on Icarus will distribute the job, one will calculate the
  24. * 0 ~ 7FFFFFFF, another one will cover the 80000000 ~ FFFFFFFF.
  25. * 3. It's possible for 2 FPGAs both find valid nonce in the meantime, the 2
  26. * valid nonce will all be send back.
  27. * 4. Icarus will stop work when: a valid nonce has been found or 32 bits
  28. * nonce range is completely calculated.
  29. */
  30. #include <float.h>
  31. #include <limits.h>
  32. #include <pthread.h>
  33. #include <stdint.h>
  34. #include <stdio.h>
  35. #include <strings.h>
  36. #include <sys/time.h>
  37. #include <unistd.h>
  38. #include "config.h"
  39. #ifdef WIN32
  40. #include <windows.h>
  41. #endif
  42. #include "compat.h"
  43. #include "miner.h"
  44. #include "usbutils.h"
  45. // The serial I/O speed - Linux uses a define 'B115200' in bits/termios.h
  46. #define ICARUS_IO_SPEED 115200
  47. // The size of a successful nonce read
  48. #define ICARUS_READ_SIZE 4
  49. // Ensure the sizes are correct for the Serial read
  50. #if (ICARUS_READ_SIZE != 4)
  51. #error ICARUS_READ_SIZE must be 4
  52. #endif
  53. #define ASSERT1(condition) __maybe_unused static char sizeof_uint32_t_must_be_4[(condition)?1:-1]
  54. ASSERT1(sizeof(uint32_t) == 4);
  55. // TODO: USB? Different calculation? - see usbstats to work it out e.g. 1/2 of normal send time
  56. // or even use that number? 1/2
  57. // #define ICARUS_READ_TIME(baud) ((double)ICARUS_READ_SIZE * (double)8.0 / (double)(baud))
  58. // maybe 1ms?
  59. #define ICARUS_READ_TIME(baud) (0.001)
  60. // USB ms timeout to wait
  61. #define ICARUS_WAIT_TIMEOUT 100
  62. // In timing mode: Default starting value until an estimate can be obtained
  63. // 5000 ms allows for up to a ~840MH/s device
  64. #define ICARUS_READ_COUNT_TIMING 5000
  65. #define ICARUS_READ_COUNT_MIN ICARUS_WAIT_TIMEOUT
  66. #define SECTOMS(s) ((int)((s) * 1000))
  67. // How many ms below the expected completion time to abort work
  68. // extra in case the last read is delayed
  69. #define ICARUS_READ_REDUCE ((int)(ICARUS_WAIT_TIMEOUT * 1.5))
  70. // For a standard Icarus REV3 (to 5 places)
  71. // Since this rounds up a the last digit - it is a slight overestimate
  72. // Thus the hash rate will be a VERY slight underestimate
  73. // (by a lot less than the displayed accuracy)
  74. // Minor inaccuracy of these numbers doesn't affect the work done,
  75. // only the displayed MH/s
  76. #define ICARUS_REV3_HASH_TIME 0.0000000026316
  77. #define LANCELOT_HASH_TIME 0.0000000025000
  78. #define ASICMINERUSB_HASH_TIME 0.0000000029761
  79. // TODO: What is it?
  80. #define CAIRNSMORE1_HASH_TIME 0.0000000026316
  81. #define NANOSEC 1000000000.0
  82. // Icarus Rev3 doesn't send a completion message when it finishes
  83. // the full nonce range, so to avoid being idle we must abort the
  84. // work (by starting a new work item) shortly before it finishes
  85. //
  86. // Thus we need to estimate 2 things:
  87. // 1) How many hashes were done if the work was aborted
  88. // 2) How high can the timeout be before the Icarus is idle,
  89. // to minimise the number of work items started
  90. // We set 2) to 'the calculated estimate' - ICARUS_READ_REDUCE
  91. // to ensure the estimate ends before idle
  92. //
  93. // The simple calculation used is:
  94. // Tn = Total time in seconds to calculate n hashes
  95. // Hs = seconds per hash
  96. // Xn = number of hashes
  97. // W = code/usb overhead per work
  98. //
  99. // Rough but reasonable estimate:
  100. // Tn = Hs * Xn + W (of the form y = mx + b)
  101. //
  102. // Thus:
  103. // Line of best fit (using least squares)
  104. //
  105. // Hs = (n*Sum(XiTi)-Sum(Xi)*Sum(Ti))/(n*Sum(Xi^2)-Sum(Xi)^2)
  106. // W = Sum(Ti)/n - (Hs*Sum(Xi))/n
  107. //
  108. // N.B. W is less when aborting work since we aren't waiting for the reply
  109. // to be transferred back (ICARUS_READ_TIME)
  110. // Calculating the hashes aborted at n seconds is thus just n/Hs
  111. // (though this is still a slight overestimate due to code delays)
  112. //
  113. // Both below must be exceeded to complete a set of data
  114. // Minimum how long after the first, the last data point must be
  115. #define HISTORY_SEC 60
  116. // Minimum how many points a single ICARUS_HISTORY should have
  117. #define MIN_DATA_COUNT 5
  118. // The value MIN_DATA_COUNT used is doubled each history until it exceeds:
  119. #define MAX_MIN_DATA_COUNT 100
  120. static struct timeval history_sec = { HISTORY_SEC, 0 };
  121. // Store the last INFO_HISTORY data sets
  122. // [0] = current data, not yet ready to be included as an estimate
  123. // Each new data set throws the last old set off the end thus
  124. // keeping a ongoing average of recent data
  125. #define INFO_HISTORY 10
  126. struct ICARUS_HISTORY {
  127. struct timeval finish;
  128. double sumXiTi;
  129. double sumXi;
  130. double sumTi;
  131. double sumXi2;
  132. uint32_t values;
  133. uint32_t hash_count_min;
  134. uint32_t hash_count_max;
  135. };
  136. enum timing_mode { MODE_DEFAULT, MODE_SHORT, MODE_LONG, MODE_VALUE };
  137. static const char *MODE_DEFAULT_STR = "default";
  138. static const char *MODE_SHORT_STR = "short";
  139. static const char *MODE_LONG_STR = "long";
  140. static const char *MODE_VALUE_STR = "value";
  141. static const char *MODE_UNKNOWN_STR = "unknown";
  142. struct ICARUS_INFO {
  143. // time to calculate the golden_ob
  144. uint64_t golden_hashes;
  145. struct timeval golden_tv;
  146. struct ICARUS_HISTORY history[INFO_HISTORY+1];
  147. uint32_t min_data_count;
  148. // seconds per Hash
  149. double Hs;
  150. // ms til we abort
  151. int read_time;
  152. enum timing_mode timing_mode;
  153. bool do_icarus_timing;
  154. double fullnonce;
  155. int count;
  156. double W;
  157. uint32_t values;
  158. uint64_t hash_count_range;
  159. // Determine the cost of history processing
  160. // (which will only affect W)
  161. uint64_t history_count;
  162. struct timeval history_time;
  163. // icarus-options
  164. int baud;
  165. int work_division;
  166. int fpga_count;
  167. uint32_t nonce_mask;
  168. };
  169. #define END_CONDITION 0x0000ffff
  170. // One for each possible device
  171. static struct ICARUS_INFO **icarus_info;
  172. // Looking for options in --icarus-timing and --icarus-options:
  173. //
  174. // Code increments this each time we start to look at a device
  175. // However, this means that if other devices are checked by
  176. // the Icarus code (e.g. Avalon only as at 20130517)
  177. // they will count in the option offset
  178. //
  179. // This, however, is deterministic so that's OK
  180. //
  181. // If we were to increment after successfully finding an Icarus
  182. // that would be random since an Icarus may fail and thus we'd
  183. // not be able to predict the option order
  184. //
  185. // Devices are checked in the order libusb finds them which is ?
  186. //
  187. static int option_offset = -1;
  188. struct device_drv icarus_drv;
  189. static void _transfer(struct cgpu_info *icarus, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, uint32_t *data, int siz, enum usb_cmds cmd)
  190. {
  191. int err;
  192. err = usb_transfer_data(icarus, request_type, bRequest, wValue, wIndex, data, siz, cmd);
  193. applog(LOG_DEBUG, "%s%i: %s got err %d",
  194. icarus->drv->name, icarus->device_id,
  195. usb_cmdname(cmd), err);
  196. }
  197. #define transfer(icarus, request_type, bRequest, wValue, wIndex, cmd) \
  198. _transfer(icarus, request_type, bRequest, wValue, wIndex, NULL, 0, cmd)
  199. // TODO: handle baud
  200. static void icarus_initialise(struct cgpu_info *icarus, __maybe_unused int baud)
  201. {
  202. if (icarus->usbinfo.nodev)
  203. return;
  204. switch (icarus->usbdev->ident) {
  205. case IDENT_BLT:
  206. case IDENT_LLT:
  207. // Latency
  208. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_LATENCY, FTDI_VALUE_LATENCY,
  209. icarus->usbdev->found->interface, C_LATENCY);
  210. if (icarus->usbinfo.nodev)
  211. return;
  212. // Reset
  213. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_RESET, FTDI_VALUE_RESET,
  214. icarus->usbdev->found->interface, C_RESET);
  215. if (icarus->usbinfo.nodev)
  216. return;
  217. // Set data control
  218. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_DATA, FTDI_VALUE_DATA_BLT,
  219. icarus->usbdev->found->interface, C_SETDATA);
  220. if (icarus->usbinfo.nodev)
  221. return;
  222. // Set the baud
  223. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_BAUD, FTDI_VALUE_BAUD_BLT,
  224. (FTDI_INDEX_BAUD_BLT & 0xff00) | icarus->usbdev->found->interface,
  225. C_SETBAUD);
  226. if (icarus->usbinfo.nodev)
  227. return;
  228. // Set Modem Control
  229. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_MODEM, FTDI_VALUE_MODEM,
  230. icarus->usbdev->found->interface, C_SETMODEM);
  231. if (icarus->usbinfo.nodev)
  232. return;
  233. // Set Flow Control
  234. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_FLOW, FTDI_VALUE_FLOW,
  235. icarus->usbdev->found->interface, C_SETFLOW);
  236. if (icarus->usbinfo.nodev)
  237. return;
  238. // Clear any sent data
  239. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_RESET, FTDI_VALUE_PURGE_TX,
  240. icarus->usbdev->found->interface, C_PURGETX);
  241. if (icarus->usbinfo.nodev)
  242. return;
  243. // Clear any received data
  244. transfer(icarus, FTDI_TYPE_OUT, FTDI_REQUEST_RESET, FTDI_VALUE_PURGE_RX,
  245. icarus->usbdev->found->interface, C_PURGERX);
  246. break;
  247. case IDENT_ICA:
  248. break;
  249. case IDENT_AMU:
  250. // Set data control
  251. transfer(icarus, CP210X_TYPE_OUT, CP210X_REQUEST_DATA, CP210X_VALUE_DATA,
  252. icarus->usbdev->found->interface, C_SETDATA);
  253. if (icarus->usbinfo.nodev)
  254. return;
  255. // Set the baud
  256. uint32_t data = CP210X_DATA_BAUD;
  257. _transfer(icarus, CP210X_TYPE_OUT, CP210X_REQUEST_BAUD, 0,
  258. icarus->usbdev->found->interface,
  259. &data, sizeof(data), C_SETBAUD);
  260. break;
  261. case IDENT_CMR:
  262. break;
  263. default:
  264. quit(1, "icarus_intialise() called with invalid %s%i ident=%d",
  265. icarus->drv->name, icarus->device_id,
  266. icarus->usbdev->ident);
  267. }
  268. }
  269. static void rev(unsigned char *s, size_t l)
  270. {
  271. size_t i, j;
  272. unsigned char t;
  273. for (i = 0, j = l - 1; i < j; i++, j--) {
  274. t = s[i];
  275. s[i] = s[j];
  276. s[j] = t;
  277. }
  278. }
  279. #define ICA_NONCE_ERROR -1
  280. #define ICA_NONCE_OK 0
  281. #define ICA_NONCE_RESTART 1
  282. #define ICA_NONCE_TIMEOUT 2
  283. static int icarus_get_nonce(struct cgpu_info *icarus, unsigned char *buf, struct timeval *tv_start, struct timeval *tv_finish, struct thr_info *thr, int read_time)
  284. {
  285. struct timeval read_start, read_finish;
  286. int err, amt;
  287. int rc = 0;
  288. int read_amount = ICARUS_READ_SIZE;
  289. bool first = true;
  290. cgtime(tv_start);
  291. while (true) {
  292. if (icarus->usbinfo.nodev)
  293. return ICA_NONCE_ERROR;
  294. cgtime(&read_start);
  295. err = usb_read_timeout(icarus, (char *)buf, read_amount, &amt, ICARUS_WAIT_TIMEOUT, C_GETRESULTS);
  296. cgtime(&read_finish);
  297. if (err < 0 && err != LIBUSB_ERROR_TIMEOUT) {
  298. applog(LOG_ERR, "%s%i: Comms error", icarus->drv->name, icarus->device_id);
  299. dev_error(icarus, REASON_DEV_COMMS_ERROR);
  300. return ICA_NONCE_ERROR;
  301. }
  302. if (first)
  303. copy_time(tv_finish, &read_finish);
  304. // TODO: test if there is more data? to read a 2nd nonce?
  305. if (amt >= read_amount)
  306. return ICA_NONCE_OK;
  307. rc += SECTOMS(tdiff(&read_finish, &read_start));
  308. if (rc >= read_time) {
  309. if (amt > 0)
  310. applog(LOG_DEBUG, "Icarus Read: Timeout reading for %d ms", rc);
  311. else
  312. applog(LOG_DEBUG, "Icarus Read: No data for %d ms", rc);
  313. return ICA_NONCE_TIMEOUT;
  314. }
  315. if (thr && thr->work_restart) {
  316. if (opt_debug) {
  317. applog(LOG_DEBUG,
  318. "Icarus Read: Work restart at %d ms", rc);
  319. }
  320. return ICA_NONCE_RESTART;
  321. }
  322. if (amt > 0) {
  323. buf += amt;
  324. read_amount -= amt;
  325. first = false;
  326. }
  327. }
  328. }
  329. static const char *timing_mode_str(enum timing_mode timing_mode)
  330. {
  331. switch(timing_mode) {
  332. case MODE_DEFAULT:
  333. return MODE_DEFAULT_STR;
  334. case MODE_SHORT:
  335. return MODE_SHORT_STR;
  336. case MODE_LONG:
  337. return MODE_LONG_STR;
  338. case MODE_VALUE:
  339. return MODE_VALUE_STR;
  340. default:
  341. return MODE_UNKNOWN_STR;
  342. }
  343. }
  344. static void set_timing_mode(int this_option_offset, struct cgpu_info *icarus)
  345. {
  346. struct ICARUS_INFO *info = icarus_info[icarus->device_id];
  347. double Hs;
  348. char buf[BUFSIZ+1];
  349. char *ptr, *comma, *eq;
  350. size_t max;
  351. int i;
  352. if (opt_icarus_timing == NULL)
  353. buf[0] = '\0';
  354. else {
  355. ptr = opt_icarus_timing;
  356. for (i = 0; i < this_option_offset; i++) {
  357. comma = strchr(ptr, ',');
  358. if (comma == NULL)
  359. break;
  360. ptr = comma + 1;
  361. }
  362. comma = strchr(ptr, ',');
  363. if (comma == NULL)
  364. max = strlen(ptr);
  365. else
  366. max = comma - ptr;
  367. if (max > BUFSIZ)
  368. max = BUFSIZ;
  369. strncpy(buf, ptr, max);
  370. buf[max] = '\0';
  371. }
  372. switch (icarus->usbdev->ident) {
  373. case IDENT_ICA:
  374. info->Hs = ICARUS_REV3_HASH_TIME;
  375. break;
  376. case IDENT_BLT:
  377. case IDENT_LLT:
  378. info->Hs = LANCELOT_HASH_TIME;
  379. break;
  380. case IDENT_AMU:
  381. info->Hs = ASICMINERUSB_HASH_TIME;
  382. break;
  383. case IDENT_CMR:
  384. info->Hs = CAIRNSMORE1_HASH_TIME;
  385. break;
  386. default:
  387. quit(1, "Icarus get_options() called with invalid %s ident=%d",
  388. icarus->drv->name, icarus->usbdev->ident);
  389. }
  390. info->read_time = 0;
  391. // TODO: allow short=N and long=N
  392. if (strcasecmp(buf, MODE_SHORT_STR) == 0) {
  393. info->read_time = ICARUS_READ_COUNT_TIMING;
  394. info->timing_mode = MODE_SHORT;
  395. info->do_icarus_timing = true;
  396. } else if (strcasecmp(buf, MODE_LONG_STR) == 0) {
  397. info->read_time = ICARUS_READ_COUNT_TIMING;
  398. info->timing_mode = MODE_LONG;
  399. info->do_icarus_timing = true;
  400. } else if ((Hs = atof(buf)) != 0) {
  401. info->Hs = Hs / NANOSEC;
  402. info->fullnonce = info->Hs * (((double)0xffffffff) + 1);
  403. if ((eq = strchr(buf, '=')) != NULL)
  404. info->read_time = atoi(eq+1) * ICARUS_WAIT_TIMEOUT;
  405. if (info->read_time < ICARUS_READ_COUNT_MIN)
  406. info->read_time = SECTOMS(info->fullnonce) - ICARUS_READ_REDUCE;
  407. if (unlikely(info->read_time < ICARUS_READ_COUNT_MIN))
  408. info->read_time = ICARUS_READ_COUNT_MIN;
  409. info->timing_mode = MODE_VALUE;
  410. info->do_icarus_timing = false;
  411. } else {
  412. // Anything else in buf just uses DEFAULT mode
  413. info->fullnonce = info->Hs * (((double)0xffffffff) + 1);
  414. if ((eq = strchr(buf, '=')) != NULL)
  415. info->read_time = atoi(eq+1) * ICARUS_WAIT_TIMEOUT;
  416. if (info->read_time < ICARUS_READ_COUNT_MIN)
  417. info->read_time = SECTOMS(info->fullnonce) - ICARUS_READ_REDUCE;
  418. if (unlikely(info->read_time < ICARUS_READ_COUNT_MIN))
  419. info->read_time = ICARUS_READ_COUNT_MIN;
  420. info->timing_mode = MODE_DEFAULT;
  421. info->do_icarus_timing = false;
  422. }
  423. info->min_data_count = MIN_DATA_COUNT;
  424. applog(LOG_DEBUG, "Icarus: Init: %d mode=%s read_time=%dms Hs=%e",
  425. icarus->device_id, timing_mode_str(info->timing_mode), info->read_time, info->Hs);
  426. }
  427. static uint32_t mask(int work_division)
  428. {
  429. char err_buf[BUFSIZ+1];
  430. uint32_t nonce_mask = 0x7fffffff;
  431. // yes we can calculate these, but this way it's easy to see what they are
  432. switch (work_division) {
  433. case 1:
  434. nonce_mask = 0xffffffff;
  435. break;
  436. case 2:
  437. nonce_mask = 0x7fffffff;
  438. break;
  439. case 4:
  440. nonce_mask = 0x3fffffff;
  441. break;
  442. case 8:
  443. nonce_mask = 0x1fffffff;
  444. break;
  445. default:
  446. sprintf(err_buf, "Invalid2 icarus-options for work_division (%d) must be 1, 2, 4 or 8", work_division);
  447. quit(1, err_buf);
  448. }
  449. return nonce_mask;
  450. }
  451. static void get_options(int this_option_offset, struct cgpu_info *icarus, int *baud, int *work_division, int *fpga_count)
  452. {
  453. char err_buf[BUFSIZ+1];
  454. char buf[BUFSIZ+1];
  455. char *ptr, *comma, *colon, *colon2;
  456. size_t max;
  457. int i, tmp;
  458. if (opt_icarus_options == NULL)
  459. buf[0] = '\0';
  460. else {
  461. ptr = opt_icarus_options;
  462. for (i = 0; i < this_option_offset; i++) {
  463. comma = strchr(ptr, ',');
  464. if (comma == NULL)
  465. break;
  466. ptr = comma + 1;
  467. }
  468. comma = strchr(ptr, ',');
  469. if (comma == NULL)
  470. max = strlen(ptr);
  471. else
  472. max = comma - ptr;
  473. if (max > BUFSIZ)
  474. max = BUFSIZ;
  475. strncpy(buf, ptr, max);
  476. buf[max] = '\0';
  477. }
  478. switch (icarus->usbdev->ident) {
  479. case IDENT_ICA:
  480. case IDENT_BLT:
  481. case IDENT_LLT:
  482. *baud = ICARUS_IO_SPEED;
  483. *work_division = 2;
  484. *fpga_count = 2;
  485. break;
  486. case IDENT_AMU:
  487. *baud = ICARUS_IO_SPEED;
  488. *work_division = 1;
  489. *fpga_count = 1;
  490. break;
  491. case IDENT_CMR:
  492. *baud = ICARUS_IO_SPEED;
  493. *work_division = 2;
  494. *fpga_count = 2;
  495. break;
  496. default:
  497. quit(1, "Icarus get_options() called with invalid %s ident=%d",
  498. icarus->drv->name, icarus->usbdev->ident);
  499. }
  500. if (*buf) {
  501. colon = strchr(buf, ':');
  502. if (colon)
  503. *(colon++) = '\0';
  504. if (*buf) {
  505. tmp = atoi(buf);
  506. switch (tmp) {
  507. case 115200:
  508. *baud = 115200;
  509. break;
  510. case 57600:
  511. *baud = 57600;
  512. break;
  513. default:
  514. sprintf(err_buf, "Invalid icarus-options for baud (%s) must be 115200 or 57600", buf);
  515. quit(1, err_buf);
  516. }
  517. }
  518. if (colon && *colon) {
  519. colon2 = strchr(colon, ':');
  520. if (colon2)
  521. *(colon2++) = '\0';
  522. if (*colon) {
  523. tmp = atoi(colon);
  524. if (tmp == 1 || tmp == 2 || tmp == 4 || tmp == 8) {
  525. *work_division = tmp;
  526. *fpga_count = tmp; // default to the same
  527. } else {
  528. sprintf(err_buf, "Invalid icarus-options for work_division (%s) must be 1, 2, 4 or 8", colon);
  529. quit(1, err_buf);
  530. }
  531. }
  532. if (colon2 && *colon2) {
  533. tmp = atoi(colon2);
  534. if (tmp > 0 && tmp <= *work_division)
  535. *fpga_count = tmp;
  536. else {
  537. sprintf(err_buf, "Invalid icarus-options for fpga_count (%s) must be >0 and <=work_division (%d)", colon2, *work_division);
  538. quit(1, err_buf);
  539. }
  540. }
  541. }
  542. }
  543. }
  544. static bool icarus_detect_one(struct libusb_device *dev, struct usb_find_devices *found)
  545. {
  546. int this_option_offset = ++option_offset;
  547. char devpath[20];
  548. struct ICARUS_INFO *info;
  549. struct timeval tv_start, tv_finish;
  550. // Block 171874 nonce = (0xa2870100) = 0x000187a2
  551. // N.B. golden_ob MUST take less time to calculate
  552. // than the timeout set in icarus_open()
  553. // This one takes ~0.53ms on Rev3 Icarus
  554. const char golden_ob[] =
  555. "4679ba4ec99876bf4bfe086082b40025"
  556. "4df6c356451471139a3afa71e48f544a"
  557. "00000000000000000000000000000000"
  558. "0000000087320b1a1426674f2fa722ce";
  559. const char golden_nonce[] = "000187a2";
  560. const uint32_t golden_nonce_val = 0x000187a2;
  561. unsigned char ob_bin[64], nonce_bin[ICARUS_READ_SIZE];
  562. char *nonce_hex;
  563. int baud, work_division, fpga_count;
  564. struct cgpu_info *icarus;
  565. int ret, err, amount, tries;
  566. icarus = calloc(1, sizeof(struct cgpu_info));
  567. if (unlikely(!icarus))
  568. quit(1, "Failed to calloc icarus in icarus_detect_one");
  569. icarus->drv = &icarus_drv;
  570. icarus->deven = DEV_ENABLED;
  571. icarus->threads = 1;
  572. if (!usb_init(icarus, dev, found))
  573. goto shin;
  574. get_options(this_option_offset, icarus, &baud, &work_division, &fpga_count);
  575. sprintf(devpath, "%d:%d",
  576. (int)(icarus->usbinfo.bus_number),
  577. (int)(icarus->usbinfo.device_address));
  578. icarus->device_path = strdup(devpath);
  579. hex2bin(ob_bin, golden_ob, sizeof(ob_bin));
  580. tries = 0;
  581. retry:
  582. while (++tries) {
  583. icarus_initialise(icarus, baud);
  584. err = usb_write(icarus, (char *)ob_bin, sizeof(ob_bin), &amount, C_SENDTESTWORK);
  585. if (err == LIBUSB_SUCCESS && amount == sizeof(ob_bin))
  586. break;
  587. if (tries > 2)
  588. goto unshin;
  589. }
  590. memset(nonce_bin, 0, sizeof(nonce_bin));
  591. ret = icarus_get_nonce(icarus, nonce_bin, &tv_start, &tv_finish, NULL, 100);
  592. if (ret != ICA_NONCE_OK) {
  593. if (tries < 3)
  594. goto retry;
  595. goto unshin;
  596. }
  597. nonce_hex = bin2hex(nonce_bin, sizeof(nonce_bin));
  598. if (strncmp(nonce_hex, golden_nonce, 8)) {
  599. applog(LOG_ERR,
  600. "Icarus Detect: "
  601. "Test failed at %s: get %s, should: %s",
  602. devpath, nonce_hex, golden_nonce);
  603. free(nonce_hex);
  604. goto unshin;
  605. }
  606. applog(LOG_DEBUG,
  607. "Icarus Detect: "
  608. "Test succeeded at %s: got %s",
  609. devpath, nonce_hex);
  610. free(nonce_hex);
  611. /* We have a real Icarus! */
  612. if (!add_cgpu(icarus))
  613. goto unshin;
  614. update_usb_stats(icarus);
  615. icarus_info = realloc(icarus_info, sizeof(struct ICARUS_INFO *) * (total_devices + 1));
  616. if (unlikely(!icarus_info))
  617. quit(1, "Failed to realloc ICARUS_INFO");
  618. applog(LOG_INFO, "Found Icarus at %s, mark as %d",
  619. devpath, icarus->device_id);
  620. applog(LOG_DEBUG, "Icarus: Init: %d baud=%d work_division=%d fpga_count=%d",
  621. icarus->device_id, baud, work_division, fpga_count);
  622. // Since we are adding a new device on the end it needs to always be allocated
  623. icarus_info[icarus->device_id] = (struct ICARUS_INFO *)malloc(sizeof(struct ICARUS_INFO));
  624. if (unlikely(!(icarus_info[icarus->device_id])))
  625. quit(1, "Failed to malloc ICARUS_INFO");
  626. info = icarus_info[icarus->device_id];
  627. // Initialise everything to zero for a new device
  628. memset(info, 0, sizeof(struct ICARUS_INFO));
  629. info->baud = baud;
  630. info->work_division = work_division;
  631. info->fpga_count = fpga_count;
  632. info->nonce_mask = mask(work_division);
  633. info->golden_hashes = (golden_nonce_val & info->nonce_mask) * fpga_count;
  634. timersub(&tv_finish, &tv_start, &(info->golden_tv));
  635. set_timing_mode(this_option_offset, icarus);
  636. return true;
  637. unshin:
  638. usb_uninit(icarus);
  639. free(icarus->device_path);
  640. shin:
  641. free(icarus);
  642. return false;
  643. }
  644. static void icarus_detect()
  645. {
  646. usb_detect(&icarus_drv, icarus_detect_one);
  647. }
  648. static bool icarus_prepare(struct thr_info *thr)
  649. {
  650. struct cgpu_info *icarus = thr->cgpu;
  651. struct timeval now;
  652. cgtime(&now);
  653. get_datestamp(icarus->init, &now);
  654. return true;
  655. }
  656. static int64_t icarus_scanhash(struct thr_info *thr, struct work *work,
  657. __maybe_unused int64_t max_nonce)
  658. {
  659. struct cgpu_info *icarus = thr->cgpu;
  660. int ret, err, amount;
  661. struct ICARUS_INFO *info;
  662. unsigned char ob_bin[64], nonce_bin[ICARUS_READ_SIZE];
  663. char *ob_hex;
  664. uint32_t nonce;
  665. int64_t hash_count;
  666. struct timeval tv_start, tv_finish, elapsed;
  667. struct timeval tv_history_start, tv_history_finish;
  668. double Ti, Xi;
  669. int curr_hw_errors, i;
  670. bool was_hw_error;
  671. struct ICARUS_HISTORY *history0, *history;
  672. int count;
  673. double Hs, W, fullnonce;
  674. int read_time;
  675. int64_t estimate_hashes;
  676. uint32_t values;
  677. int64_t hash_count_range;
  678. // Device is gone
  679. if (icarus->usbinfo.nodev)
  680. return -1;
  681. info = icarus_info[icarus->device_id];
  682. elapsed.tv_sec = elapsed.tv_usec = 0;
  683. memset(ob_bin, 0, sizeof(ob_bin));
  684. memcpy(ob_bin, work->midstate, 32);
  685. memcpy(ob_bin + 52, work->data + 64, 12);
  686. rev(ob_bin, 32);
  687. rev(ob_bin + 52, 12);
  688. err = usb_write(icarus, (char *)ob_bin, sizeof(ob_bin), &amount, C_SENDWORK);
  689. if (err < 0 || amount != sizeof(ob_bin)) {
  690. applog(LOG_ERR, "%s%i: Comms error (err=%d amt=%d)",
  691. icarus->drv->name, icarus->device_id, err, amount);
  692. dev_error(icarus, REASON_DEV_COMMS_ERROR);
  693. icarus_initialise(icarus, info->baud);
  694. return 0;
  695. }
  696. if (opt_debug) {
  697. ob_hex = bin2hex(ob_bin, sizeof(ob_bin));
  698. applog(LOG_DEBUG, "Icarus %d sent: %s",
  699. icarus->device_id, ob_hex);
  700. free(ob_hex);
  701. }
  702. /* Icarus will return 4 bytes (ICARUS_READ_SIZE) nonces or nothing */
  703. memset(nonce_bin, 0, sizeof(nonce_bin));
  704. ret = icarus_get_nonce(icarus, nonce_bin, &tv_start, &tv_finish, thr, info->read_time);
  705. if (ret == ICA_NONCE_ERROR)
  706. return 0;
  707. work->blk.nonce = 0xffffffff;
  708. // aborted before becoming idle, get new work
  709. if (ret == ICA_NONCE_TIMEOUT || ret == ICA_NONCE_RESTART) {
  710. timersub(&tv_finish, &tv_start, &elapsed);
  711. // ONLY up to just when it aborted
  712. // We didn't read a reply so we don't subtract ICARUS_READ_TIME
  713. estimate_hashes = ((double)(elapsed.tv_sec)
  714. + ((double)(elapsed.tv_usec))/((double)1000000)) / info->Hs;
  715. // If some Serial-USB delay allowed the full nonce range to
  716. // complete it can't have done more than a full nonce
  717. if (unlikely(estimate_hashes > 0xffffffff))
  718. estimate_hashes = 0xffffffff;
  719. if (opt_debug) {
  720. applog(LOG_DEBUG, "Icarus %d no nonce = 0x%08lX hashes (%ld.%06lds)",
  721. icarus->device_id, (long unsigned int)estimate_hashes,
  722. elapsed.tv_sec, elapsed.tv_usec);
  723. }
  724. return estimate_hashes;
  725. }
  726. memcpy((char *)&nonce, nonce_bin, sizeof(nonce_bin));
  727. nonce = htobe32(nonce);
  728. curr_hw_errors = icarus->hw_errors;
  729. submit_nonce(thr, work, nonce);
  730. was_hw_error = (curr_hw_errors > icarus->hw_errors);
  731. hash_count = (nonce & info->nonce_mask);
  732. hash_count++;
  733. hash_count *= info->fpga_count;
  734. if (opt_debug || info->do_icarus_timing)
  735. timersub(&tv_finish, &tv_start, &elapsed);
  736. if (opt_debug) {
  737. applog(LOG_DEBUG, "Icarus %d nonce = 0x%08x = 0x%08lX hashes (%ld.%06lds)",
  738. icarus->device_id, nonce, (long unsigned int)hash_count,
  739. elapsed.tv_sec, elapsed.tv_usec);
  740. }
  741. // ignore possible end condition values ... and hw errors
  742. if (info->do_icarus_timing
  743. && !was_hw_error
  744. && ((nonce & info->nonce_mask) > END_CONDITION)
  745. && ((nonce & info->nonce_mask) < (info->nonce_mask & ~END_CONDITION))) {
  746. cgtime(&tv_history_start);
  747. history0 = &(info->history[0]);
  748. if (history0->values == 0)
  749. timeradd(&tv_start, &history_sec, &(history0->finish));
  750. Ti = (double)(elapsed.tv_sec)
  751. + ((double)(elapsed.tv_usec))/((double)1000000)
  752. - ((double)ICARUS_READ_TIME(info->baud));
  753. Xi = (double)hash_count;
  754. history0->sumXiTi += Xi * Ti;
  755. history0->sumXi += Xi;
  756. history0->sumTi += Ti;
  757. history0->sumXi2 += Xi * Xi;
  758. history0->values++;
  759. if (history0->hash_count_max < hash_count)
  760. history0->hash_count_max = hash_count;
  761. if (history0->hash_count_min > hash_count || history0->hash_count_min == 0)
  762. history0->hash_count_min = hash_count;
  763. if (history0->values >= info->min_data_count
  764. && timercmp(&tv_start, &(history0->finish), >)) {
  765. for (i = INFO_HISTORY; i > 0; i--)
  766. memcpy(&(info->history[i]),
  767. &(info->history[i-1]),
  768. sizeof(struct ICARUS_HISTORY));
  769. // Initialise history0 to zero for summary calculation
  770. memset(history0, 0, sizeof(struct ICARUS_HISTORY));
  771. // We just completed a history data set
  772. // So now recalc read_time based on the whole history thus we will
  773. // initially get more accurate until it completes INFO_HISTORY
  774. // total data sets
  775. count = 0;
  776. for (i = 1 ; i <= INFO_HISTORY; i++) {
  777. history = &(info->history[i]);
  778. if (history->values >= MIN_DATA_COUNT) {
  779. count++;
  780. history0->sumXiTi += history->sumXiTi;
  781. history0->sumXi += history->sumXi;
  782. history0->sumTi += history->sumTi;
  783. history0->sumXi2 += history->sumXi2;
  784. history0->values += history->values;
  785. if (history0->hash_count_max < history->hash_count_max)
  786. history0->hash_count_max = history->hash_count_max;
  787. if (history0->hash_count_min > history->hash_count_min || history0->hash_count_min == 0)
  788. history0->hash_count_min = history->hash_count_min;
  789. }
  790. }
  791. // All history data
  792. Hs = (history0->values*history0->sumXiTi - history0->sumXi*history0->sumTi)
  793. / (history0->values*history0->sumXi2 - history0->sumXi*history0->sumXi);
  794. W = history0->sumTi/history0->values - Hs*history0->sumXi/history0->values;
  795. hash_count_range = history0->hash_count_max - history0->hash_count_min;
  796. values = history0->values;
  797. // Initialise history0 to zero for next data set
  798. memset(history0, 0, sizeof(struct ICARUS_HISTORY));
  799. fullnonce = W + Hs * (((double)0xffffffff) + 1);
  800. read_time = SECTOMS(fullnonce) - ICARUS_READ_REDUCE;
  801. info->Hs = Hs;
  802. info->read_time = read_time;
  803. info->fullnonce = fullnonce;
  804. info->count = count;
  805. info->W = W;
  806. info->values = values;
  807. info->hash_count_range = hash_count_range;
  808. if (info->min_data_count < MAX_MIN_DATA_COUNT)
  809. info->min_data_count *= 2;
  810. else if (info->timing_mode == MODE_SHORT)
  811. info->do_icarus_timing = false;
  812. // applog(LOG_WARNING, "Icarus %d Re-estimate: read_time=%d fullnonce=%fs history count=%d Hs=%e W=%e values=%d hash range=0x%08lx min data count=%u", icarus->device_id, read_time, fullnonce, count, Hs, W, values, hash_count_range, info->min_data_count);
  813. applog(LOG_WARNING, "Icarus %d Re-estimate: Hs=%e W=%e read_time=%dms fullnonce=%.3fs",
  814. icarus->device_id, Hs, W, read_time, fullnonce);
  815. }
  816. info->history_count++;
  817. cgtime(&tv_history_finish);
  818. timersub(&tv_history_finish, &tv_history_start, &tv_history_finish);
  819. timeradd(&tv_history_finish, &(info->history_time), &(info->history_time));
  820. }
  821. return hash_count;
  822. }
  823. static struct api_data *icarus_api_stats(struct cgpu_info *cgpu)
  824. {
  825. struct api_data *root = NULL;
  826. struct ICARUS_INFO *info = icarus_info[cgpu->device_id];
  827. // Warning, access to these is not locked - but we don't really
  828. // care since hashing performance is way more important than
  829. // locking access to displaying API debug 'stats'
  830. // If locking becomes an issue for any of them, use copy_data=true also
  831. root = api_add_int(root, "read_time", &(info->read_time), false);
  832. root = api_add_double(root, "fullnonce", &(info->fullnonce), false);
  833. root = api_add_int(root, "count", &(info->count), false);
  834. root = api_add_hs(root, "Hs", &(info->Hs), false);
  835. root = api_add_double(root, "W", &(info->W), false);
  836. root = api_add_uint(root, "total_values", &(info->values), false);
  837. root = api_add_uint64(root, "range", &(info->hash_count_range), false);
  838. root = api_add_uint64(root, "history_count", &(info->history_count), false);
  839. root = api_add_timeval(root, "history_time", &(info->history_time), false);
  840. root = api_add_uint(root, "min_data_count", &(info->min_data_count), false);
  841. root = api_add_uint(root, "timing_values", &(info->history[0].values), false);
  842. root = api_add_const(root, "timing_mode", timing_mode_str(info->timing_mode), false);
  843. root = api_add_bool(root, "is_timing", &(info->do_icarus_timing), false);
  844. root = api_add_int(root, "baud", &(info->baud), false);
  845. root = api_add_int(root, "work_division", &(info->work_division), false);
  846. root = api_add_int(root, "fpga_count", &(info->fpga_count), false);
  847. return root;
  848. }
  849. static void icarus_shutdown(__maybe_unused struct thr_info *thr)
  850. {
  851. // TODO: ?
  852. }
  853. struct device_drv icarus_drv = {
  854. .drv_id = DRIVER_ICARUS,
  855. .dname = "Icarus",
  856. .name = "ICA",
  857. .drv_detect = icarus_detect,
  858. .get_api_stats = icarus_api_stats,
  859. .thread_prepare = icarus_prepare,
  860. .scanhash = icarus_scanhash,
  861. .thread_shutdown = icarus_shutdown,
  862. };