libztex.c 24 KB

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  1. /**
  2. * libztex.c - Ztex 1.15x/1.15y fpga board support library
  3. *
  4. * Copyright (c) 2012 nelisky.btc@gmail.com
  5. * Copyright (c) 2012 Denis Ahrens <denis@h3q.com>
  6. * Copyright (c) 2012 Peter Stuge <peter@stuge.se>
  7. *
  8. * This work is based upon the Java SDK provided by ztex which is
  9. * Copyright (C) 2009-2011 ZTEX GmbH.
  10. * http://www.ztex.de
  11. *
  12. * This program is free software; you can redistribute it and/or modify
  13. * it under the terms of the GNU General Public License version 2 as
  14. * published by the Free Software Foundation.
  15. *
  16. * This program is distributed in the hope that it will be useful, but
  17. * WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  19. * General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, see http://www.gnu.org/licenses/.
  23. **/
  24. #define _GNU_SOURCE
  25. #include "config.h"
  26. #include <stdio.h>
  27. #include <unistd.h>
  28. #include <string.h>
  29. #include "dynclock.h"
  30. #include "miner.h"
  31. #include "fpgautils.h"
  32. #include "libztex.h"
  33. //* Capability index for EEPROM support.
  34. #define CAPABILITY_EEPROM 0,0
  35. //* Capability index for FPGA configuration support.
  36. #define CAPABILITY_FPGA 0,1
  37. //* Capability index for FLASH memory support.
  38. #define CAPABILITY_FLASH 0,2
  39. //* Capability index for DEBUG helper support.
  40. #define CAPABILITY_DEBUG 0,3
  41. //* Capability index for AVR XMEGA support.
  42. #define CAPABILITY_XMEGA 0,4
  43. //* Capability index for AVR XMEGA support.
  44. #define CAPABILITY_HS_FPGA 0,5
  45. //* Capability index for AVR XMEGA support.
  46. #define CAPABILITY_MAC_EEPROM 0,6
  47. //* Capability index for multi FPGA support.
  48. #define CAPABILITY_MULTI_FPGA 0,7
  49. static int libztex_get_string_descriptor_ascii(libusb_device_handle *dev, uint8_t desc_index,
  50. unsigned char *data, int length)
  51. {
  52. int i, cnt;
  53. uint16_t langid;
  54. unsigned char buf[260];
  55. /* We open code string descriptor retrieval and ASCII decoding here
  56. * in order to work around that libusb_get_string_descriptor_ascii()
  57. * in the FreeBSD libusb implementation hits a bug in ZTEX firmware,
  58. * where the device returns more bytes than requested, causing babble,
  59. * which makes FreeBSD return an error to us.
  60. *
  61. * Avoid the mess by doing it manually the same way as libusb-1.0.
  62. */
  63. cnt = libusb_control_transfer(dev, LIBUSB_ENDPOINT_IN,
  64. LIBUSB_REQUEST_GET_DESCRIPTOR, (LIBUSB_DT_STRING << 8) | 0,
  65. 0x0000, buf, sizeof(buf), 1000);
  66. if (cnt < 0) {
  67. applog(LOG_ERR, "%s: Failed to read LANGIDs: %s", __func__, libusb_error_name(cnt));
  68. return cnt;
  69. }
  70. langid = libusb_le16_to_cpu(((uint16_t *)buf)[1]);
  71. cnt = libusb_control_transfer(dev, LIBUSB_ENDPOINT_IN,
  72. LIBUSB_REQUEST_GET_DESCRIPTOR, (LIBUSB_DT_STRING << 8) | desc_index,
  73. langid, buf, sizeof(buf), 1000);
  74. if (cnt < 0) {
  75. applog(LOG_ERR, "%s: Failed to read string descriptor: %s", __func__, libusb_error_name(cnt));
  76. return cnt;
  77. }
  78. /* num chars = (all bytes except bLength and bDescriptorType) / 2 */
  79. for (i = 0; i <= (cnt - 2) / 2 && i < length-1; i++)
  80. data[i] = buf[2 + i*2];
  81. data[i] = 0;
  82. return LIBUSB_SUCCESS;
  83. }
  84. enum check_result
  85. {
  86. CHECK_ERROR,
  87. CHECK_IS_NOT_ZTEX,
  88. CHECK_OK,
  89. CHECK_RESCAN,
  90. };
  91. static bool libztex_firmwareReset(struct libusb_device_handle *hndl, bool enable)
  92. {
  93. uint8_t reset = enable;
  94. int cnt = libusb_control_transfer(hndl, 0x40, 0xA0, 0xE600, 0, &reset, 1, 1000);
  95. if (cnt < 0)
  96. {
  97. applog(LOG_ERR, "Ztex reset %d failed: %s", libusb_error_name(cnt), enable);
  98. return 1;
  99. }
  100. return 0;
  101. }
  102. static enum check_result libztex_checkDevice(struct libusb_device *dev)
  103. {
  104. FILE *fp = NULL;
  105. libusb_device_handle *hndl = NULL;
  106. struct libusb_device_descriptor desc;
  107. int ret = CHECK_ERROR, err, cnt;
  108. size_t got_bytes, length;
  109. unsigned char buf[64], *fw_buf;
  110. unsigned int i;
  111. err = libusb_get_device_descriptor(dev, &desc);
  112. if (unlikely(err != 0)) {
  113. applog(LOG_ERR, "Ztex check device: Failed to open read descriptor with error %d", err);
  114. return CHECK_ERROR;
  115. }
  116. if (desc.idVendor != LIBZTEX_IDVENDOR || desc.idProduct != LIBZTEX_IDPRODUCT) {
  117. applog(LOG_DEBUG, "Not a ZTEX device %0.4x:%0.4x", desc.idVendor, desc.idProduct);
  118. return CHECK_IS_NOT_ZTEX;
  119. }
  120. err = libusb_open(dev, &hndl);
  121. if (err != LIBUSB_SUCCESS) {
  122. applog(LOG_ERR, "%s: Can not open ZTEX device: %s", __func__, libusb_error_name(err));
  123. goto done;
  124. }
  125. cnt = libusb_control_transfer(hndl, 0xc0, 0x22, 0, 0, buf, 40, 500);
  126. if (unlikely(cnt < 0)) {
  127. applog(LOG_ERR, "Ztex check device: Failed to read ztex descriptor with err %d", cnt);
  128. goto done;
  129. }
  130. if (buf[0] != 40 || buf[1] != 1 || buf[2] != 'Z' || buf[3] != 'T' || buf[4] != 'E' || buf[5] != 'X') {
  131. applog(LOG_ERR, "Ztex check device: Error reading ztex descriptor");
  132. goto done;
  133. }
  134. if (buf[6] != 10)
  135. {
  136. ret = CHECK_IS_NOT_ZTEX;
  137. goto done;
  138. }
  139. // 15 = 1.15y 13 = 1.15d or 1.15x
  140. switch(buf[7])
  141. {
  142. case 13:
  143. applog(LOG_ERR, "Found ztex board 1.15d or 1.15x");
  144. break;
  145. case 15:
  146. applog(LOG_ERR, "Found ztex board 1.15y");
  147. break;
  148. default:
  149. applog(LOG_ERR, "Found unknown ztex board");
  150. ret = CHECK_IS_NOT_ZTEX;
  151. goto done;
  152. }
  153. // testing for dummy firmware
  154. if (buf[8] != 0) {
  155. ret = CHECK_OK;
  156. goto done;
  157. }
  158. applog(LOG_ERR, "Found dummy firmware, trying to send mining firmware");
  159. char productString[32];
  160. cnt = libztex_get_string_descriptor_ascii(hndl, desc.iProduct, (unsigned char*)productString, sizeof(productString));
  161. if (unlikely(cnt < 0)) {
  162. applog(LOG_ERR, "Ztex check device: Failed to read device productString with err %d", cnt);
  163. return cnt;
  164. }
  165. applog(LOG_ERR, "productString: %s", productString);
  166. unsigned char productID2 = buf[7];
  167. char *firmware = NULL;
  168. if (strcmp("USB-FPGA Module 1.15d (default)", productString) == 0 && productID2 == 13)
  169. {
  170. firmware = "ztex_ufm1_15d4.bin";
  171. }
  172. else if (strcmp("USB-FPGA Module 1.15x (default)", productString) == 0 && productID2 == 13)
  173. {
  174. firmware = "ztex_ufm1_15d4.bin";
  175. }
  176. else if (strcmp("USB-FPGA Module 1.15y (default)", productString) == 0 && productID2 == 15)
  177. {
  178. firmware = "ztex_ufm1_15y1.bin";
  179. }
  180. if (firmware == NULL)
  181. {
  182. applog(LOG_ERR, "could not figure out which firmware to use");
  183. goto done;
  184. }
  185. applog(LOG_ERR, "Mining firmware filename: %s", firmware);
  186. fp = open_bitstream("ztex", firmware);
  187. if (!fp) {
  188. applog(LOG_ERR, "failed to open firmware file '%s'", firmware);
  189. goto done;
  190. }
  191. if (0 != fseek(fp, 0, SEEK_END)) {
  192. applog(LOG_ERR, "Ztex firmware fseek: %s", strerror(errno));
  193. goto done;
  194. }
  195. length = ftell(fp);
  196. rewind(fp);
  197. fw_buf = malloc(length);
  198. if (!fw_buf) {
  199. applog(LOG_ERR, "%s: Can not allocate memory: %s", __func__, strerror(errno));
  200. goto done;
  201. }
  202. got_bytes = fread(fw_buf, 1, length, fp);
  203. fclose(fp);
  204. fp = NULL;
  205. if (got_bytes < length) {
  206. applog(LOG_ERR, "%s: Incomplete firmware read: %d/%d", __func__, got_bytes, length);
  207. goto done;
  208. }
  209. // in buf[] is still the identifier of the dummy firmware
  210. // use it to compare it with the new firmware
  211. char *rv = memmem(fw_buf, got_bytes, buf, 8);
  212. if (rv == NULL)
  213. {
  214. applog(LOG_ERR, "%s: found firmware is not ZTEX", __func__);
  215. goto done;
  216. }
  217. // check for dummy firmware
  218. if (rv[8] == 0)
  219. {
  220. applog(LOG_ERR, "%s: found a ZTEX dummy firmware", __func__);
  221. goto done;
  222. }
  223. if (libztex_firmwareReset(hndl, true))
  224. goto done;
  225. for (i = 0; i < length; i+= 256) {
  226. // firmware wants data in small chunks like 256 bytes
  227. int numbytes = (length - i) < 256 ? (length - i) : 256;
  228. int k = libusb_control_transfer(hndl, 0x40, 0xA0, i, 0, fw_buf + i, numbytes, 1000);
  229. if (k < numbytes)
  230. {
  231. applog(LOG_ERR, "Ztex device: Failed to write firmware at %d with: %s", i, libusb_error_name(k));
  232. goto done;
  233. }
  234. }
  235. if (libztex_firmwareReset(hndl, false))
  236. goto done;
  237. applog(LOG_ERR, "Ztex device: succesfully wrote firmware");
  238. ret = CHECK_RESCAN;
  239. done:
  240. if (fp)
  241. fclose(fp);
  242. if (hndl)
  243. libusb_close(hndl);
  244. return ret;
  245. }
  246. static bool libztex_checkCapability(struct libztex_device *ztex, int i, int j)
  247. {
  248. if (!((i >= 0) && (i <= 5) && (j >= 0) && (j < 8) &&
  249. (((ztex->interfaceCapabilities[i] & 255) & (1 << j)) != 0))) {
  250. applog(LOG_ERR, "%s: capability missing: %d %d", ztex->repr, i, j);
  251. return false;
  252. }
  253. return true;
  254. }
  255. static char libztex_detectBitstreamBitOrder(const unsigned char *buf, int size)
  256. {
  257. int i;
  258. for (i = 0; i < size - 4; i++) {
  259. if (((buf[i] & 255) == 0xaa) && ((buf[i + 1] & 255) == 0x99) && ((buf[i + 2] & 255) == 0x55) && ((buf[i + 3] & 255) == 0x66))
  260. return 1;
  261. if (((buf[i] & 255) == 0x55) && ((buf[i + 1] & 255) == 0x99) && ((buf[i + 2] & 255) == 0xaa) && ((buf[i + 3] & 255) == 0x66))
  262. return 0;
  263. }
  264. applog(LOG_WARNING, "Unable to determine bitstream bit order: no signature found");
  265. return 0;
  266. }
  267. static void libztex_swapBits(unsigned char *buf, int size)
  268. {
  269. unsigned char c;
  270. int i;
  271. for (i = 0; i < size; i++) {
  272. c = buf[i];
  273. buf[i] = ((c & 128) >> 7) |
  274. ((c & 64) >> 5) |
  275. ((c & 32) >> 3) |
  276. ((c & 16) >> 1) |
  277. ((c & 8) << 1) |
  278. ((c & 4) << 3) |
  279. ((c & 2) << 5) |
  280. ((c & 1) << 7);
  281. }
  282. }
  283. static int libztex_getFpgaState(struct libztex_device *ztex, struct libztex_fpgastate *state)
  284. {
  285. unsigned char buf[9];
  286. int cnt;
  287. if (!libztex_checkCapability(ztex, CAPABILITY_FPGA))
  288. return -1;
  289. cnt = libusb_control_transfer(ztex->hndl, 0xc0, 0x30, 0, 0, buf, 9, 1000);
  290. if (unlikely(cnt < 0)) {
  291. applog(LOG_ERR, "%s: Failed getFpgaState with err %d", ztex->repr, cnt);
  292. return cnt;
  293. }
  294. state->fpgaConfigured = (buf[0] == 0);
  295. state->fpgaChecksum = buf[1] & 0xff;
  296. state->fpgaBytes = ((buf[5] & 0xff) << 24) | ((buf[4] & 0xff) << 16) | ((buf[3] & 0xff) << 8) | (buf[2] & 0xff);
  297. state->fpgaInitB = buf[6] & 0xff;
  298. state->fpgaFlashResult = buf[7];
  299. state->fpgaFlashBitSwap = (buf[8] != 0);
  300. return 0;
  301. }
  302. static int libztex_configureFpgaHS(struct libztex_device *ztex, const char* firmware, bool force, char bs)
  303. {
  304. struct libztex_fpgastate state;
  305. const int transactionBytes = 65536;
  306. unsigned char buf[transactionBytes], settings[2];
  307. int tries, cnt, err;
  308. FILE *fp;
  309. if (!libztex_checkCapability(ztex, CAPABILITY_HS_FPGA))
  310. return -1;
  311. libztex_getFpgaState(ztex, &state);
  312. if (!force && state.fpgaConfigured) {
  313. applog(LOG_INFO, "Bitstream already configured");
  314. return 0;
  315. }
  316. cnt = libusb_control_transfer(ztex->hndl, 0xc0, 0x33, 0, 0, settings, 2, 1000);
  317. if (unlikely(cnt < 0)) {
  318. applog(LOG_ERR, "%s: Failed getHSFpgaSettings with err %d", ztex->repr, cnt);
  319. return cnt;
  320. }
  321. libusb_claim_interface(ztex->hndl, settings[1]);
  322. for (tries = 3; tries > 0; tries--) {
  323. fp = open_bitstream("ztex", firmware);
  324. if (!fp) {
  325. applog(LOG_ERR, "%s: failed to read bitstream '%s'", ztex->repr, firmware);
  326. return -2;
  327. }
  328. libusb_control_transfer(ztex->hndl, 0x40, 0x34, 0, 0, NULL, 0, 1000);
  329. // 0x34 - initHSFPGAConfiguration
  330. do
  331. {
  332. int length = fread(buf,1,transactionBytes,fp);
  333. if (bs != 0 && bs != 1)
  334. bs = libztex_detectBitstreamBitOrder(buf, length);
  335. if (bs == 1)
  336. libztex_swapBits(buf, length);
  337. err = libusb_bulk_transfer(ztex->hndl, settings[0], buf, length, &cnt, 1000);
  338. if (cnt != length)
  339. applog(LOG_ERR, "%s: cnt != length", ztex->repr);
  340. if (err != 0)
  341. applog(LOG_ERR, "%s: Failed send hs fpga data", ztex->repr);
  342. }
  343. while (!feof(fp));
  344. libusb_control_transfer(ztex->hndl, 0x40, 0x35, 0, 0, NULL, 0, 1000);
  345. // 0x35 - finishHSFPGAConfiguration
  346. if (cnt >= 0)
  347. tries = 0;
  348. fclose(fp);
  349. libztex_getFpgaState(ztex, &state);
  350. if (!state.fpgaConfigured) {
  351. applog(LOG_ERR, "%s: HS FPGA configuration failed: DONE pin does not go high", ztex->repr);
  352. return -3;
  353. }
  354. }
  355. libusb_release_interface(ztex->hndl, settings[1]);
  356. nmsleep(200);
  357. applog(LOG_INFO, "%s: HS FPGA configuration done", ztex->repr);
  358. return 0;
  359. }
  360. static int libztex_configureFpgaLS(struct libztex_device *ztex, const char* firmware, bool force, char bs)
  361. {
  362. struct libztex_fpgastate state;
  363. const int transactionBytes = 2048;
  364. unsigned char buf[transactionBytes];
  365. int tries, cnt;
  366. FILE *fp;
  367. if (!libztex_checkCapability(ztex, CAPABILITY_FPGA))
  368. return -1;
  369. libztex_getFpgaState(ztex, &state);
  370. if (!force && state.fpgaConfigured) {
  371. applog(LOG_DEBUG, "Bitstream already configured");
  372. return 0;
  373. }
  374. for (tries = 10; tries > 0; tries--) {
  375. fp = open_bitstream("ztex", firmware);
  376. if (!fp) {
  377. applog(LOG_ERR, "%s: failed to read bitstream '%s'", ztex->repr, firmware);
  378. return -2;
  379. }
  380. //* Reset fpga
  381. cnt = libztex_resetFpga(ztex);
  382. if (unlikely(cnt < 0)) {
  383. applog(LOG_ERR, "%s: Failed reset fpga with err %d", ztex->repr, cnt);
  384. continue;
  385. }
  386. do
  387. {
  388. int length = fread(buf, 1, transactionBytes, fp);
  389. if (bs != 0 && bs != 1)
  390. bs = libztex_detectBitstreamBitOrder(buf, length);
  391. if (bs == 1)
  392. libztex_swapBits(buf, length);
  393. cnt = libusb_control_transfer(ztex->hndl, 0x40, 0x32, 0, 0, buf, length, 5000);
  394. if (cnt != length)
  395. {
  396. applog(LOG_ERR, "%s: Failed send hs fpga data", ztex->repr);
  397. break;
  398. }
  399. }
  400. while (!feof(fp));
  401. if (cnt > 0)
  402. tries = 0;
  403. fclose(fp);
  404. }
  405. libztex_getFpgaState(ztex, &state);
  406. if (!state.fpgaConfigured) {
  407. applog(LOG_ERR, "%s: LS FPGA configuration failed: DONE pin does not go high", ztex->repr);
  408. return -3;
  409. }
  410. nmsleep(200);
  411. applog(LOG_INFO, "%s: FPGA configuration done", ztex->repr);
  412. return 0;
  413. }
  414. int libztex_configureFpga(struct libztex_device *ztex)
  415. {
  416. char buf[256];
  417. int rv;
  418. strcpy(buf, ztex->bitFileName);
  419. strcat(buf, ".bit");
  420. rv = libztex_configureFpgaHS(ztex, buf, true, 2);
  421. if (rv != 0)
  422. rv = libztex_configureFpgaLS(ztex, buf, true, 2);
  423. return rv;
  424. }
  425. int libztex_numberOfFpgas(struct libztex_device *ztex)
  426. {
  427. int cnt;
  428. unsigned char buf[3];
  429. if (ztex->numberOfFpgas < 0) {
  430. if (libztex_checkCapability(ztex, CAPABILITY_MULTI_FPGA)) {
  431. cnt = libusb_control_transfer(ztex->hndl, 0xc0, 0x50, 0, 0, buf, 3, 1000);
  432. if (unlikely(cnt < 0)) {
  433. applog(LOG_ERR, "%s: Failed getMultiFpgaInfo with err %d", ztex->repr, cnt);
  434. return cnt;
  435. }
  436. ztex->numberOfFpgas = buf[0] + 1;
  437. ztex->selectedFpga = -1;//buf[1];
  438. ztex->parallelConfigSupport = (buf[2] == 1);
  439. } else {
  440. ztex->numberOfFpgas = 1;
  441. ztex->selectedFpga = -1;//0;
  442. ztex->parallelConfigSupport = false;
  443. }
  444. }
  445. return ztex->numberOfFpgas;
  446. }
  447. int libztex_selectFpga(struct libztex_device *ztex)
  448. {
  449. int cnt, fpgacnt = libztex_numberOfFpgas(ztex->root);
  450. int16_t number = ztex->fpgaNum;
  451. if (number < 0 || number >= fpgacnt) {
  452. applog(LOG_WARNING, "%s: Trying to select wrong fpga (%d in %d)", ztex->repr, number, fpgacnt);
  453. return 1;
  454. }
  455. if (ztex->root->selectedFpga != number && libztex_checkCapability(ztex->root, CAPABILITY_MULTI_FPGA)) {
  456. cnt = libusb_control_transfer(ztex->root->hndl, 0x40, 0x51, (uint16_t)number, 0, NULL, 0, 500);
  457. if (unlikely(cnt < 0)) {
  458. applog(LOG_ERR, "Ztex check device: Failed to set fpga with err %d", cnt);
  459. ztex->root->selectedFpga = -1;
  460. return cnt;
  461. }
  462. ztex->root->selectedFpga = number;
  463. }
  464. return 0;
  465. }
  466. int libztex_setFreq(struct libztex_device *ztex, uint16_t freq)
  467. {
  468. int cnt;
  469. uint16_t oldfreq = ztex->dclk.freqM;
  470. if (freq > ztex->dclk.freqMaxM)
  471. freq = ztex->dclk.freqMaxM;
  472. cnt = libusb_control_transfer(ztex->hndl, 0x40, 0x83, freq, 0, NULL, 0, 500);
  473. if (unlikely(cnt < 0)) {
  474. applog(LOG_ERR, "Ztex check device: Failed to set frequency with err %d", cnt);
  475. return cnt;
  476. }
  477. ztex->dclk.freqM = freq;
  478. if (oldfreq > ztex->dclk.freqMaxM)
  479. applog(LOG_WARNING, "%s: Frequency set to %u MHz (range: %u-%u)",
  480. ztex->repr,
  481. (unsigned)(ztex->freqM1 * (ztex->dclk.freqM + 1)),
  482. (unsigned)ztex->freqM1,
  483. (unsigned)(ztex->freqM1 * (ztex->dclk.freqMaxM + 1))
  484. );
  485. else
  486. dclk_msg_freqchange(ztex->repr,
  487. ztex->freqM1 * (oldfreq + 1),
  488. ztex->freqM1 * (ztex->dclk.freqM + 1),
  489. NULL);
  490. return 0;
  491. }
  492. int libztex_resetFpga(struct libztex_device *ztex)
  493. {
  494. return libusb_control_transfer(ztex->hndl, 0x40, 0x31, 0, 0, NULL, 0, 1000);
  495. }
  496. int libztex_suspend(struct libztex_device *ztex)
  497. {
  498. if (ztex->suspendSupported) {
  499. return libusb_control_transfer(ztex->hndl, 0x40, 0x84, 0, 0, NULL, 0, 1000);
  500. } else {
  501. return 0;
  502. }
  503. }
  504. int libztex_prepare_device(struct libusb_device *dev, struct libztex_device** ztex)
  505. {
  506. struct libztex_device *newdev = *ztex;
  507. int i, cnt, err;
  508. unsigned char buf[64];
  509. dclk_prepare(&newdev->dclk);
  510. err = libusb_open(dev, &newdev->hndl);
  511. if (err != LIBUSB_SUCCESS) {
  512. applog(LOG_ERR, "%s: Can not open ZTEX device: %s", __func__, libusb_error_name(err));
  513. return CHECK_ERROR;
  514. }
  515. err = libusb_get_device_descriptor(dev, &newdev->descriptor);
  516. if (unlikely(err != 0)) {
  517. applog(LOG_ERR, "Ztex check device: Failed to open read descriptor with error %d", err);
  518. return CHECK_ERROR;
  519. }
  520. cnt = libztex_get_string_descriptor_ascii(newdev->hndl, newdev->descriptor.iSerialNumber, newdev->snString, sizeof(newdev->snString));
  521. if (unlikely(cnt < 0)) {
  522. applog(LOG_ERR, "Ztex check device: Failed to read device snString with err %d", cnt);
  523. return cnt;
  524. }
  525. cnt = libusb_control_transfer(newdev->hndl, 0xc0, 0x22, 0, 0, buf, 40, 500);
  526. if (unlikely(cnt < 0)) {
  527. applog(LOG_ERR, "Ztex check device: Failed to read ztex descriptor with err %d", cnt);
  528. return cnt;
  529. }
  530. if (buf[0] != 40 || buf[1] != 1 || buf[2] != 'Z' || buf[3] != 'T' || buf[4] != 'E' || buf[5] != 'X') {
  531. applog(LOG_ERR, "Ztex check device: Error reading ztex descriptor");
  532. return 2;
  533. }
  534. newdev->productId[0] = buf[6];
  535. newdev->productId[1] = buf[7];
  536. newdev->productId[2] = buf[8];
  537. newdev->productId[3] = buf[9];
  538. newdev->fwVersion = buf[10];
  539. newdev->interfaceVersion = buf[11];
  540. newdev->interfaceCapabilities[0] = buf[12];
  541. newdev->interfaceCapabilities[1] = buf[13];
  542. newdev->interfaceCapabilities[2] = buf[14];
  543. newdev->interfaceCapabilities[3] = buf[15];
  544. newdev->interfaceCapabilities[4] = buf[16];
  545. newdev->interfaceCapabilities[5] = buf[17];
  546. newdev->moduleReserved[0] = buf[18];
  547. newdev->moduleReserved[1] = buf[19];
  548. newdev->moduleReserved[2] = buf[20];
  549. newdev->moduleReserved[3] = buf[21];
  550. newdev->moduleReserved[4] = buf[22];
  551. newdev->moduleReserved[5] = buf[23];
  552. newdev->moduleReserved[6] = buf[24];
  553. newdev->moduleReserved[7] = buf[25];
  554. newdev->moduleReserved[8] = buf[26];
  555. newdev->moduleReserved[9] = buf[27];
  556. newdev->moduleReserved[10] = buf[28];
  557. newdev->moduleReserved[11] = buf[29];
  558. cnt = libusb_control_transfer(newdev->hndl, 0xc0, 0x82, 0, 0, buf, 64, 500);
  559. if (unlikely(cnt < 0)) {
  560. applog(LOG_ERR, "Ztex check device: Failed to read ztex descriptor with err %d", cnt);
  561. return cnt;
  562. }
  563. if (unlikely(buf[0] != 5)) {
  564. if (unlikely(buf[0] != 2 && buf[0] != 4)) {
  565. applog(LOG_ERR, "Invalid BTCMiner descriptor version. Firmware must be updated (%d).", buf[0]);
  566. return 3;
  567. }
  568. applog(LOG_WARNING, "Firmware out of date (%d).", buf[0]);
  569. }
  570. i = buf[0] > 4? 11: (buf[0] > 2? 10: 8);
  571. while (cnt < 64 && buf[cnt] != 0)
  572. cnt++;
  573. if (cnt < i + 1) {
  574. applog(LOG_ERR, "Invalid bitstream file name .");
  575. return 4;
  576. }
  577. newdev->bitFileName = malloc(sizeof(char) * (cnt + 1));
  578. memcpy(newdev->bitFileName, &buf[i], cnt);
  579. newdev->bitFileName[cnt] = 0;
  580. newdev->numNonces = buf[1] + 1;
  581. newdev->offsNonces = ((buf[2] & 255) | ((buf[3] & 255) << 8)) - 10000;
  582. newdev->freqM1 = ((buf[4] & 255) | ((buf[5] & 255) << 8) ) * 0.01;
  583. newdev->dclk.freqMaxM = (buf[7] & 255);
  584. newdev->dclk.freqM = (buf[6] & 255);
  585. newdev->dclk.freqMDefault = newdev->dclk.freqM;
  586. newdev->suspendSupported = (buf[0] == 5);
  587. newdev->hashesPerClock = buf[0] > 2? (((buf[8] & 255) | ((buf[9] & 255) << 8)) + 1) / 128.0: 1.0;
  588. newdev->extraSolutions = buf[0] > 4? buf[10]: 0;
  589. applog(LOG_DEBUG, "PID: %d numNonces: %d offsNonces: %d freqM1: %f freqMaxM: %d freqM: %d suspendSupported: %s hashesPerClock: %f extraSolutions: %d",
  590. buf[0], newdev->numNonces, newdev->offsNonces, newdev->freqM1, newdev->dclk.freqMaxM, newdev->dclk.freqM, newdev->suspendSupported ? "T": "F",
  591. newdev->hashesPerClock, newdev->extraSolutions);
  592. if (buf[0] < 4) {
  593. if (strncmp(newdev->bitFileName, "ztex_ufm1_15b", 13) != 0)
  594. newdev->hashesPerClock = 0.5;
  595. applog(LOG_WARNING, "HASHES_PER_CLOCK not defined, assuming %0.2f", newdev->hashesPerClock);
  596. }
  597. newdev->usbbus = libusb_get_bus_number(dev);
  598. newdev->usbaddress = libusb_get_device_address(dev);
  599. sprintf(newdev->repr, "ZTEX %s-1", newdev->snString);
  600. return 0;
  601. }
  602. void libztex_destroy_device(struct libztex_device* ztex)
  603. {
  604. if (ztex->hndl != NULL) {
  605. libusb_close(ztex->hndl);
  606. ztex->hndl = NULL;
  607. }
  608. if (ztex->bitFileName != NULL) {
  609. free(ztex->bitFileName);
  610. ztex->bitFileName = NULL;
  611. }
  612. free(ztex);
  613. }
  614. int libztex_scanDevices(struct libztex_dev_list*** devs_p)
  615. {
  616. int usbdevices[LIBZTEX_MAX_DESCRIPTORS];
  617. struct libztex_dev_list **devs = NULL;
  618. struct libztex_device *ztex = NULL;
  619. int found, max_found = 0, pos = 0, err, rescan, ret = 0;
  620. libusb_device **list = NULL;
  621. ssize_t cnt, i;
  622. do {
  623. cnt = libusb_get_device_list(NULL, &list);
  624. if (unlikely(cnt < 0)) {
  625. applog(LOG_ERR, "Ztex scan devices: Failed to list usb devices with err %d", cnt);
  626. goto done;
  627. }
  628. for (found = rescan = i = 0; i < cnt; i++) {
  629. err = libztex_checkDevice(list[i]);
  630. switch (err) {
  631. case CHECK_ERROR:
  632. applog(LOG_ERR, "Ztex: Can not check device: %s", libusb_error_name(err));
  633. continue;
  634. case CHECK_IS_NOT_ZTEX:
  635. continue;
  636. case CHECK_OK:
  637. // Got one!
  638. usbdevices[found++] = i;
  639. break;
  640. case CHECK_RESCAN:
  641. rescan = 1;
  642. found++;
  643. break;
  644. }
  645. }
  646. if (found < max_found)
  647. rescan = 1;
  648. else if (found > max_found)
  649. max_found = found;
  650. if (rescan)
  651. libusb_free_device_list(list, 1);
  652. } while (rescan);
  653. if (0 == found)
  654. goto done;
  655. devs = malloc(sizeof(struct libztex_dev_list *) * found);
  656. if (devs == NULL) {
  657. applog(LOG_ERR, "Ztex scan devices: Failed to allocate memory");
  658. goto done;
  659. }
  660. for (i = 0; i < found; i++) {
  661. if (!ztex) {
  662. ztex = malloc(sizeof(*ztex));
  663. if (!ztex) {
  664. applog(LOG_ERR, "%s: Can not allocate memory for device struct: %s", __func__, strerror(errno));
  665. goto done;
  666. }
  667. }
  668. ztex->bitFileName = NULL;
  669. ztex->numberOfFpgas = -1;
  670. err = libztex_prepare_device(list[usbdevices[i]], &ztex);
  671. if (unlikely(err != 0)) {
  672. applog(LOG_ERR, "prepare device: %d", err);
  673. libztex_destroy_device(ztex);
  674. ztex = NULL;
  675. continue;
  676. }
  677. devs[pos] = malloc(sizeof(struct libztex_dev_list));
  678. if (NULL == devs[pos]) {
  679. applog(LOG_ERR, "%s: Can not allocate memory for device: %s", __func__, strerror(errno));
  680. libztex_destroy_device(ztex);
  681. ztex = NULL;
  682. continue;
  683. }
  684. devs[pos]->dev = ztex;
  685. ztex = NULL;
  686. devs[pos]->next = NULL;
  687. if (pos > 0)
  688. devs[pos - 1]->next = devs[pos];
  689. pos++;
  690. }
  691. ret = pos;
  692. done:
  693. if (ret > 0)
  694. *devs_p = devs;
  695. else if (devs)
  696. free(devs);
  697. if (list)
  698. libusb_free_device_list(list, 1);
  699. return ret;
  700. }
  701. int libztex_sendHashData(struct libztex_device *ztex, unsigned char *sendbuf)
  702. {
  703. int cnt = 0, ret, len;
  704. if (ztex == NULL || ztex->hndl == NULL)
  705. return 0;
  706. ret = 44; len = 0;
  707. while (ret > 0) {
  708. cnt = libusb_control_transfer(ztex->hndl, 0x40, 0x80, 0, 0, sendbuf + len, ret, 1000);
  709. if (cnt >= 0) {
  710. ret -= cnt;
  711. len += cnt;
  712. } else
  713. break;
  714. }
  715. if (unlikely(cnt < 0))
  716. applog(LOG_ERR, "%s: Failed sendHashData with err %d", ztex->repr, cnt);
  717. return cnt;
  718. }
  719. int libztex_readHashData(struct libztex_device *ztex, struct libztex_hash_data nonces[])
  720. {
  721. int bufsize = 12 + ztex->extraSolutions * 4;
  722. int cnt = 0, i, j, ret, len;
  723. unsigned char *rbuf;
  724. if (ztex->hndl == NULL)
  725. return 0;
  726. rbuf = malloc(sizeof(unsigned char) * (ztex->numNonces * bufsize));
  727. if (rbuf == NULL) {
  728. applog(LOG_ERR, "%s: Failed to allocate memory for reading nonces", ztex->repr);
  729. return 0;
  730. }
  731. ret = bufsize * ztex->numNonces; len = 0;
  732. while (ret > 0) {
  733. cnt = libusb_control_transfer(ztex->hndl, 0xc0, 0x81, 0, 0, rbuf + len, ret, 1000);
  734. if (cnt >= 0) {
  735. ret -= cnt;
  736. len += cnt;
  737. } else
  738. break;
  739. }
  740. if (unlikely(cnt < 0)) {
  741. applog(LOG_ERR, "%s: Failed readHashData with err %d", ztex->repr, cnt);
  742. free(rbuf);
  743. return cnt;
  744. }
  745. for (i=0; i<ztex->numNonces; i++) {
  746. memcpy((char*)&nonces[i].goldenNonce[0], &rbuf[i*bufsize], 4);
  747. nonces[i].goldenNonce[0] -= ztex->offsNonces;
  748. //applog(LOG_DEBUG, "W %d:0 %0.8x", i, nonces[i].goldenNonce[0]);
  749. memcpy((char*)&nonces[i].nonce, &rbuf[(i*bufsize)+4], 4);
  750. nonces[i].nonce -= ztex->offsNonces;
  751. memcpy((char*)&nonces[i].hash7, &rbuf[(i*bufsize)+8], 4);
  752. for (j=0; j<ztex->extraSolutions; j++) {
  753. memcpy((char*)&nonces[i].goldenNonce[j+1], &rbuf[(i*bufsize)+12+(j*4)], 4);
  754. nonces[i].goldenNonce[j+1] -= ztex->offsNonces;
  755. //applog(LOG_DEBUG, "W %d:%d %0.8x", i, j+1, nonces[i].goldenNonce[j+1]);
  756. }
  757. }
  758. free(rbuf);
  759. return cnt;
  760. }
  761. void libztex_freeDevList(struct libztex_dev_list **devs)
  762. {
  763. bool done = false;
  764. ssize_t cnt = 0;
  765. while (!done) {
  766. if (devs[cnt]->next == NULL)
  767. done = true;
  768. free(devs[cnt++]);
  769. }
  770. free(devs);
  771. }