driver-x6500.c 16 KB

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  1. /*
  2. * Copyright 2012 Luke Dashjr
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License as published by the Free
  6. * Software Foundation; either version 3 of the License, or (at your option)
  7. * any later version. See COPYING for more details.
  8. */
  9. #include "config.h"
  10. #include <sys/time.h>
  11. #include <libusb-1.0/libusb.h>
  12. #include "compat.h"
  13. #include "dynclock.h"
  14. #include "jtag.h"
  15. #include "logging.h"
  16. #include "miner.h"
  17. #include "fpgautils.h"
  18. #include "ft232r.h"
  19. #define X6500_USB_PRODUCT "X6500 FPGA Miner"
  20. #define X6500_BITSTREAM_FILENAME "fpgaminer_x6500-overclocker-0402.bit"
  21. // NOTE: X6500_BITSTREAM_USERID is bitflipped
  22. #define X6500_BITSTREAM_USERID "\x40\x20\x24\x42"
  23. #define X6500_MINIMUM_CLOCK 2
  24. #define X6500_DEFAULT_CLOCK 190
  25. #define X6500_MAXIMUM_CLOCK 250
  26. struct device_api x6500_api;
  27. #define fromlebytes(ca, j) (ca[j] | (((uint16_t)ca[j+1])<<8) | (((uint32_t)ca[j+2])<<16) | (((uint32_t)ca[j+3])<<24))
  28. static
  29. void int2bits(uint32_t n, uint8_t *b, uint8_t bits)
  30. {
  31. uint8_t i;
  32. for (i = (bits + 7) / 8; i > 0; )
  33. b[--i] = 0;
  34. for (i = 0; i < bits; ++i) {
  35. if (n & 1)
  36. b[i/8] |= 0x80 >> (i % 8);
  37. n >>= 1;
  38. }
  39. }
  40. static
  41. uint32_t bits2int(uint8_t *b, uint8_t bits)
  42. {
  43. uint32_t n, i;
  44. n = 0;
  45. for (i = 0; i < bits; ++i)
  46. if (b[i/8] & (0x80 >> (i % 8)))
  47. n |= 1<<i;
  48. return n;
  49. }
  50. static
  51. void checksum(uint8_t *b, uint8_t bits)
  52. {
  53. uint8_t i;
  54. uint8_t checksum = 1;
  55. for(i = 0; i < bits; ++i)
  56. checksum ^= (b[i/8] & (0x80 >> (i % 8))) ? 1 : 0;
  57. if (checksum)
  58. b[i/8] |= 0x80 >> (i % 8);
  59. }
  60. static
  61. void x6500_jtag_set(struct jtag_port *jp, uint8_t pinoffset)
  62. {
  63. jp->tck = pinoffset << 3;
  64. jp->tms = pinoffset << 2;
  65. jp->tdi = pinoffset << 1;
  66. jp->tdo = pinoffset << 0;
  67. jp->ignored = ~(jp->tdo | jp->tdi | jp->tms | jp->tck);
  68. }
  69. static uint32_t x6500_get_register(struct jtag_port *jp, uint8_t addr);
  70. static
  71. void x6500_set_register(struct jtag_port *jp, uint8_t addr, uint32_t nv)
  72. {
  73. uint8_t buf[38];
  74. retry:
  75. jtag_write(jp, JTAG_REG_IR, "\x40", 6);
  76. int2bits(nv, &buf[0], 32);
  77. int2bits(addr, &buf[4], 4);
  78. buf[4] |= 8;
  79. checksum(buf, 37);
  80. jtag_write(jp, JTAG_REG_DR, buf, 38);
  81. jtag_run(jp);
  82. #ifdef DEBUG_X6500_SET_REGISTER
  83. if (x6500_get_register(jp, addr) != nv)
  84. #else
  85. if (0)
  86. #endif
  87. {
  88. applog(LOG_WARNING, "x6500_set_register failed %x=%08x", addr, nv);
  89. goto retry;
  90. }
  91. }
  92. static
  93. uint32_t x6500_get_register(struct jtag_port *jp, uint8_t addr)
  94. {
  95. uint8_t buf[4] = {0};
  96. jtag_write(jp, JTAG_REG_IR, "\x40", 6);
  97. int2bits(addr, &buf[0], 4);
  98. checksum(buf, 5);
  99. jtag_write(jp, JTAG_REG_DR, buf, 6);
  100. jtag_read (jp, JTAG_REG_DR, buf, 32);
  101. jtag_reset(jp);
  102. return bits2int(buf, 32);
  103. }
  104. static bool x6500_foundusb(libusb_device *dev, const char *product, const char *serial)
  105. {
  106. struct cgpu_info *x6500;
  107. x6500 = calloc(1, sizeof(*x6500));
  108. x6500->api = &x6500_api;
  109. mutex_init(&x6500->device_mutex);
  110. x6500->device_path = strdup(serial);
  111. x6500->deven = DEV_ENABLED;
  112. x6500->threads = 2;
  113. x6500->name = strdup(product);
  114. x6500->cutofftemp = 85;
  115. x6500->cgpu_data = dev;
  116. return add_cgpu(x6500);
  117. }
  118. static bool x6500_detect_one(const char *serial)
  119. {
  120. return ft232r_detect(X6500_USB_PRODUCT, serial, x6500_foundusb);
  121. }
  122. static int x6500_detect_auto()
  123. {
  124. return ft232r_detect(X6500_USB_PRODUCT, NULL, x6500_foundusb);
  125. }
  126. static void x6500_detect()
  127. {
  128. serial_detect_auto(&x6500_api, x6500_detect_one, x6500_detect_auto);
  129. }
  130. static bool x6500_prepare(struct thr_info *thr)
  131. {
  132. if (thr->device_thread)
  133. return true;
  134. struct cgpu_info *x6500 = thr->cgpu;
  135. mutex_init(&x6500->device_mutex);
  136. struct ft232r_device_handle *ftdi = ft232r_open(x6500->cgpu_data);
  137. x6500->device_ft232r = NULL;
  138. if (!ftdi)
  139. return false;
  140. if (!ft232r_set_bitmode(ftdi, 0xee, 4))
  141. return false;
  142. if (!ft232r_purge_buffers(ftdi, FTDI_PURGE_BOTH))
  143. return false;
  144. x6500->device_ft232r = ftdi;
  145. struct jtag_port_a *jtag_a;
  146. unsigned char *pdone = calloc(1, sizeof(*jtag_a) + 1);
  147. *pdone = 101;
  148. jtag_a = (void*)(pdone + 1);
  149. jtag_a->ftdi = ftdi;
  150. x6500->cgpu_data = jtag_a;
  151. return true;
  152. }
  153. struct x6500_fpga_data {
  154. struct jtag_port jtag;
  155. struct work prevwork;
  156. struct timeval tv_workstart;
  157. struct dclk_data dclk;
  158. float temp;
  159. };
  160. #define bailout2(...) do { \
  161. applog(__VA_ARGS__); \
  162. return false; \
  163. } while(0)
  164. static bool
  165. x6500_fpga_upload_bitstream(struct cgpu_info *x6500, struct jtag_port *jp1)
  166. {
  167. char buf[0x100];
  168. unsigned long len, flen;
  169. unsigned char *pdone = (unsigned char*)x6500->cgpu_data - 1;
  170. struct ft232r_device_handle *ftdi = jp1->a->ftdi;
  171. FILE *f = open_xilinx_bitstream(x6500, X6500_BITSTREAM_FILENAME, &len);
  172. if (!f)
  173. return false;
  174. flen = len;
  175. applog(LOG_WARNING, "%s %u: Programming %s...",
  176. x6500->api->name, x6500->device_id, x6500->device_path);
  177. x6500->status = LIFE_INIT;
  178. // "Magic" jtag_port configured to access both FPGAs concurrently
  179. struct jtag_port jpt = {
  180. .a = jp1->a,
  181. };
  182. struct jtag_port *jp = &jpt;
  183. uint8_t i, j;
  184. x6500_jtag_set(jp, 0x11);
  185. // Need to reset here despite previous FPGA state, since we are programming all at once
  186. jtag_reset(jp);
  187. jtag_write(jp, JTAG_REG_IR, "\xd0", 6); // JPROGRAM
  188. // Poll each FPGA status individually since they might not be ready at the same time
  189. for (j = 0; j < 2; ++j) {
  190. x6500_jtag_set(jp, j ? 0x10 : 1);
  191. do {
  192. i = 0xd0; // Re-set JPROGRAM while reading status
  193. jtag_read(jp, JTAG_REG_IR, &i, 6);
  194. } while (i & 8);
  195. applog(LOG_DEBUG, "%s %u.%u: JPROGRAM ready",
  196. x6500->api->name, x6500->device_id, j);
  197. }
  198. x6500_jtag_set(jp, 0x11);
  199. jtag_write(jp, JTAG_REG_IR, "\xa0", 6); // CFG_IN
  200. sleep(1);
  201. if (fread(buf, 32, 1, f) != 1)
  202. bailout2(LOG_ERR, "%s %u: File underrun programming %s (%d bytes left)", x6500->api->name, x6500->device_id, x6500->device_path, len);
  203. jtag_swrite(jp, JTAG_REG_DR, buf, 256);
  204. len -= 32;
  205. // Put ft232r chip in asynchronous bitbang mode so we don't need to read back tdo
  206. // This takes upload time down from about an hour to about 3 minutes
  207. if (!ft232r_set_bitmode(ftdi, 0xee, 1))
  208. return false;
  209. if (!ft232r_purge_buffers(ftdi, FTDI_PURGE_BOTH))
  210. return false;
  211. jp->a->async = true;
  212. ssize_t buflen;
  213. char nextstatus = 25;
  214. while (len) {
  215. buflen = len < 32 ? len : 32;
  216. if (fread(buf, buflen, 1, f) != 1)
  217. bailout2(LOG_ERR, "%s %u: File underrun programming %s (%d bytes left)", x6500->api->name, x6500->device_id, x6500->device_path, len);
  218. jtag_swrite_more(jp, buf, buflen * 8, len == (unsigned long)buflen);
  219. *pdone = 100 - ((len * 100) / flen);
  220. if (*pdone >= nextstatus)
  221. {
  222. nextstatus += 25;
  223. applog(LOG_WARNING, "%s %u: Programming %s... %d%% complete...", x6500->api->name, x6500->device_id, x6500->device_path, *pdone);
  224. }
  225. len -= buflen;
  226. }
  227. // Switch back to synchronous bitbang mode
  228. if (!ft232r_set_bitmode(ftdi, 0xee, 4))
  229. return false;
  230. if (!ft232r_purge_buffers(ftdi, FTDI_PURGE_BOTH))
  231. return false;
  232. jp->a->async = false;
  233. jp->a->bufread = 0;
  234. jtag_write(jp, JTAG_REG_IR, "\x30", 6); // JSTART
  235. for (i=0; i<16; ++i)
  236. jtag_run(jp);
  237. i = 0xff; // BYPASS
  238. jtag_read(jp, JTAG_REG_IR, &i, 6);
  239. if (!(i & 4))
  240. return false;
  241. applog(LOG_WARNING, "%s %u: Done programming %s", x6500->api->name, x6500->device_id, x6500->device_path);
  242. *pdone = 101;
  243. return true;
  244. }
  245. static bool x6500_change_clock(struct thr_info *thr, int multiplier)
  246. {
  247. struct x6500_fpga_data *fpga = thr->cgpu_data;
  248. struct jtag_port *jp = &fpga->jtag;
  249. x6500_set_register(jp, 0xD, multiplier * 2);
  250. ft232r_flush(jp->a->ftdi);
  251. fpga->dclk.freqM = multiplier;
  252. return true;
  253. }
  254. static bool x6500_dclk_change_clock(struct thr_info *thr, int multiplier)
  255. {
  256. struct cgpu_info *x6500 = thr->cgpu;
  257. char fpgaid = thr->device_thread;
  258. struct x6500_fpga_data *fpga = thr->cgpu_data;
  259. uint8_t oldFreq = fpga->dclk.freqM;
  260. mutex_lock(&x6500->device_mutex);
  261. if (!x6500_change_clock(thr, multiplier)) {
  262. mutex_unlock(&x6500->device_mutex);
  263. return false;
  264. }
  265. mutex_unlock(&x6500->device_mutex);
  266. char repr[0x10];
  267. sprintf(repr, "%s %u.%u", x6500->api->name, x6500->device_id, fpgaid);
  268. dclk_msg_freqchange(repr, oldFreq * 2, fpga->dclk.freqM * 2, NULL);
  269. return true;
  270. }
  271. static bool x6500_fpga_init(struct thr_info *thr)
  272. {
  273. struct cgpu_info *x6500 = thr->cgpu;
  274. struct ft232r_device_handle *ftdi = x6500->device_ft232r;
  275. struct x6500_fpga_data *fpga;
  276. struct jtag_port *jp;
  277. int fpgaid = thr->device_thread;
  278. uint8_t pinoffset = fpgaid ? 0x10 : 1;
  279. unsigned char buf[4] = {0};
  280. int i;
  281. if (!ftdi)
  282. return false;
  283. fpga = calloc(1, sizeof(*fpga));
  284. jp = &fpga->jtag;
  285. jp->a = x6500->cgpu_data;
  286. x6500_jtag_set(jp, pinoffset);
  287. mutex_lock(&x6500->device_mutex);
  288. if (!jtag_reset(jp)) {
  289. mutex_unlock(&x6500->device_mutex);
  290. applog(LOG_ERR, "%s %u: JTAG reset failed",
  291. x6500->api->name, x6500->device_id);
  292. return false;
  293. }
  294. i = jtag_detect(jp);
  295. if (i != 1) {
  296. mutex_unlock(&x6500->device_mutex);
  297. applog(LOG_ERR, "%s %u: JTAG detect returned %d",
  298. x6500->api->name, x6500->device_id, i);
  299. return false;
  300. }
  301. if (!(1
  302. && jtag_write(jp, JTAG_REG_IR, "\x10", 6)
  303. && jtag_read (jp, JTAG_REG_DR, buf, 32)
  304. && jtag_reset(jp)
  305. )) {
  306. mutex_unlock(&x6500->device_mutex);
  307. applog(LOG_ERR, "%s %u: JTAG error reading user code",
  308. x6500->api->name, x6500->device_id);
  309. return false;
  310. }
  311. if (memcmp(buf, X6500_BITSTREAM_USERID, 4)) {
  312. applog(LOG_ERR, "%s %u.%u: FPGA not programmed",
  313. x6500->api->name, x6500->device_id, fpgaid);
  314. if (!x6500_fpga_upload_bitstream(x6500, jp))
  315. return false;
  316. } else
  317. applog(LOG_DEBUG, "%s %u.%u: FPGA is already programmed :)",
  318. x6500->api->name, x6500->device_id, fpgaid);
  319. thr->cgpu_data = fpga;
  320. dclk_prepare(&fpga->dclk);
  321. fpga->dclk.freqMaxM = X6500_MAXIMUM_CLOCK / 2;
  322. x6500_change_clock(thr, X6500_DEFAULT_CLOCK / 2);
  323. fpga->dclk.freqMDefault = fpga->dclk.freqM;
  324. applog(LOG_WARNING, "%s %u.%u: Frequency set to %u Mhz (range: %u-%u)",
  325. x6500->api->name, x6500->device_id, fpgaid,
  326. fpga->dclk.freqM * 2,
  327. X6500_MINIMUM_CLOCK,
  328. fpga->dclk.freqMaxM * 2);
  329. mutex_unlock(&x6500->device_mutex);
  330. return true;
  331. }
  332. static
  333. void x6500_get_temperature(struct cgpu_info *x6500)
  334. {
  335. struct x6500_fpga_data *fpga = x6500->thr[0]->cgpu_data;
  336. struct jtag_port *jp = &fpga->jtag;
  337. struct ft232r_device_handle *ftdi = jp->a->ftdi;
  338. int i, code[2];
  339. bool sio[2];
  340. code[0] = 0;
  341. code[1] = 0;
  342. ft232r_flush(ftdi);
  343. if (!(ft232r_set_cbus_bits(ftdi, false, true))) return;
  344. if (!(ft232r_set_cbus_bits(ftdi, true, true))) return;
  345. if (!(ft232r_set_cbus_bits(ftdi, false, true))) return;
  346. if (!(ft232r_set_cbus_bits(ftdi, true, true))) return;
  347. if (!(ft232r_set_cbus_bits(ftdi, false, false))) return;
  348. for (i = 16; i--; ) {
  349. if (ft232r_set_cbus_bits(ftdi, true, false)) {
  350. if (!(ft232r_get_cbus_bits(ftdi, &sio[0], &sio[1]))) {
  351. return;
  352. }
  353. } else {
  354. return;
  355. }
  356. code[0] |= sio[0] << i;
  357. code[1] |= sio[1] << i;
  358. if (!ft232r_set_cbus_bits(ftdi, false, false)) {
  359. return;
  360. }
  361. }
  362. if (!(ft232r_set_cbus_bits(ftdi, false, true))) {
  363. return;
  364. }
  365. if (!(ft232r_set_cbus_bits(ftdi, true, true))) {
  366. return;
  367. }
  368. if (!(ft232r_set_cbus_bits(ftdi, false, true))) {
  369. return;
  370. }
  371. if (!ft232r_set_bitmode(ftdi, 0xee, 4)) {
  372. return;
  373. }
  374. ft232r_purge_buffers(jp->a->ftdi, FTDI_PURGE_BOTH);
  375. jp->a->bufread = 0;
  376. for (i = 0; i < 2; ++i) {
  377. fpga = x6500->thr[i]->cgpu_data;
  378. if (code[i] == 0xffff || !code[i]) {
  379. fpga->temp = 0;
  380. continue;
  381. }
  382. if ((code[i] >> 15) & 1)
  383. code[i] -= 0x10000;
  384. fpga->temp = (float)(code[i] >> 2) * 0.03125f;
  385. applog(LOG_DEBUG,"x6500_get_temperature: fpga[%d]->temp=%.1fC",i,fpga->temp);
  386. }
  387. }
  388. static bool x6500_get_stats(struct cgpu_info *x6500)
  389. {
  390. float hottest = 0;
  391. if (x6500->deven != DEV_ENABLED) {
  392. // Getting temperature more efficiently while enabled
  393. // NOTE: Don't need to mess with mutex here, since the device is disabled
  394. x6500_get_temperature(x6500);
  395. } else {
  396. mutex_lock(&x6500->device_mutex);
  397. x6500_get_temperature(x6500);
  398. mutex_unlock(&x6500->device_mutex);
  399. }
  400. for (int i = x6500->threads; i--; ) {
  401. struct thr_info *thr = x6500->thr[i];
  402. struct x6500_fpga_data *fpga = thr->cgpu_data;
  403. if (!fpga)
  404. continue;
  405. float temp = fpga->temp;
  406. if (temp > hottest)
  407. hottest = temp;
  408. }
  409. x6500->temp = hottest;
  410. return true;
  411. }
  412. static void
  413. get_x6500_statline_before(char *buf, struct cgpu_info *x6500)
  414. {
  415. char info[18] = " | ";
  416. struct x6500_fpga_data *fpga0 = x6500->thr[0]->cgpu_data;
  417. struct x6500_fpga_data *fpga1 = x6500->thr[1]->cgpu_data;
  418. unsigned char pdone = *((unsigned char*)x6500->cgpu_data - 1);
  419. if (pdone != 101) {
  420. sprintf(&info[1], "%3d%%", pdone);
  421. info[5] = ' ';
  422. strcat(buf, info);
  423. return;
  424. }
  425. if (x6500->temp) {
  426. sprintf(&info[1], "%.1fC/%.1fC", fpga0->temp, fpga1->temp);
  427. info[strlen(info)] = ' ';
  428. strcat(buf, info);
  429. return;
  430. }
  431. strcat(buf, " | ");
  432. }
  433. static
  434. bool x6500_start_work(struct thr_info *thr, struct work *work)
  435. {
  436. struct cgpu_info *x6500 = thr->cgpu;
  437. struct x6500_fpga_data *fpga = thr->cgpu_data;
  438. struct jtag_port *jp = &fpga->jtag;
  439. char fpgaid = thr->device_thread;
  440. mutex_lock(&x6500->device_mutex);
  441. for (int i = 1, j = 0; i < 9; ++i, j += 4)
  442. x6500_set_register(jp, i, fromlebytes(work->midstate, j));
  443. for (int i = 9, j = 64; i < 12; ++i, j += 4)
  444. x6500_set_register(jp, i, fromlebytes(work->data, j));
  445. ft232r_flush(jp->a->ftdi);
  446. gettimeofday(&fpga->tv_workstart, NULL);
  447. //x6500_get_temperature(x6500);
  448. mutex_unlock(&x6500->device_mutex);
  449. if (opt_debug) {
  450. char *xdata = bin2hex(work->data, 80);
  451. applog(LOG_DEBUG, "%s %u.%u: Started work: %s",
  452. x6500->api->name, x6500->device_id, fpgaid, xdata);
  453. free(xdata);
  454. }
  455. return true;
  456. }
  457. static
  458. int64_t calc_hashes(struct x6500_fpga_data *fpga, struct timeval *tv_now)
  459. {
  460. struct timeval tv_delta;
  461. int64_t hashes;
  462. timersub(tv_now, &fpga->tv_workstart, &tv_delta);
  463. hashes = (((int64_t)tv_delta.tv_sec * 1000000) + tv_delta.tv_usec) * fpga->dclk.freqM * 2;
  464. if (unlikely(hashes > 0x100000000))
  465. hashes = 0x100000000;
  466. return hashes;
  467. }
  468. static
  469. int64_t x6500_process_results(struct thr_info *thr, struct work *work)
  470. {
  471. struct cgpu_info *x6500 = thr->cgpu;
  472. struct x6500_fpga_data *fpga = thr->cgpu_data;
  473. struct jtag_port *jtag = &fpga->jtag;
  474. char fpgaid = thr->device_thread;
  475. struct timeval tv_now;
  476. int64_t hashes;
  477. uint32_t nonce;
  478. bool bad;
  479. int imm_bad_nonces = 0, imm_nonces = 0;
  480. while (1) {
  481. mutex_lock(&x6500->device_mutex);
  482. gettimeofday(&tv_now, NULL);
  483. nonce = x6500_get_register(jtag, 0xE);
  484. mutex_unlock(&x6500->device_mutex);
  485. if (nonce != 0xffffffff) {
  486. ++imm_nonces;
  487. bad = !test_nonce(work, nonce, false);
  488. if (!bad) {
  489. submit_nonce(thr, work, nonce);
  490. applog(LOG_DEBUG, "%s %u.%u: Nonce for current work: %08lx",
  491. x6500->api->name, x6500->device_id, fpgaid,
  492. (unsigned long)nonce);
  493. } else if (test_nonce(&fpga->prevwork, nonce, false)) {
  494. submit_nonce(thr, &fpga->prevwork, nonce);
  495. applog(LOG_DEBUG, "%s %u.%u: Nonce for PREVIOUS work: %08lx",
  496. x6500->api->name, x6500->device_id, fpgaid,
  497. (unsigned long)nonce);
  498. } else {
  499. applog(LOG_DEBUG, "%s %u.%u: Nonce with H not zero : %08lx",
  500. x6500->api->name, x6500->device_id, fpgaid,
  501. (unsigned long)nonce);
  502. ++hw_errors;
  503. ++x6500->hw_errors;
  504. ++imm_bad_nonces;
  505. }
  506. }
  507. hashes = calc_hashes(fpga, &tv_now);
  508. if (thr->work_restart || hashes >= 0xf0000000)
  509. break;
  510. usleep(10000);
  511. hashes = calc_hashes(fpga, &tv_now);
  512. if (thr->work_restart || hashes >= 0xf0000000)
  513. break;
  514. }
  515. dclk_gotNonces(&fpga->dclk);
  516. if (imm_bad_nonces)
  517. dclk_errorCount(&fpga->dclk, ((double)imm_bad_nonces) / (double)imm_nonces);
  518. dclk_preUpdate(&fpga->dclk);
  519. dclk_updateFreq(&fpga->dclk, x6500_dclk_change_clock, thr);
  520. clear_work(&fpga->prevwork);
  521. workcpy(&fpga->prevwork, work);
  522. return hashes;
  523. }
  524. static int64_t
  525. x6500_scanhash(struct thr_info *thr, struct work *work, int64_t __maybe_unused max_nonce)
  526. {
  527. if (!x6500_start_work(thr, work))
  528. return -1;
  529. int64_t hashes = x6500_process_results(thr, work);
  530. if (hashes > 0)
  531. work->blk.nonce += hashes;
  532. return hashes;
  533. }
  534. struct device_api x6500_api = {
  535. .dname = "x6500",
  536. .name = "XBS",
  537. .api_detect = x6500_detect,
  538. .thread_prepare = x6500_prepare,
  539. .thread_init = x6500_fpga_init,
  540. .get_stats = x6500_get_stats,
  541. .get_statline_before = get_x6500_statline_before,
  542. .scanhash = x6500_scanhash,
  543. // .thread_shutdown = x6500_fpga_shutdown,
  544. };