driver-avalonmm.c 24 KB

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  1. /*
  2. * Copyright 2014 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 <stdbool.h>
  11. #include <stdint.h>
  12. #include <stdlib.h>
  13. #include <string.h>
  14. #include <unistd.h>
  15. #include <utlist.h>
  16. #include "deviceapi.h"
  17. #include "logging.h"
  18. #include "lowlevel.h"
  19. #include "lowl-vcom.h"
  20. #include "miner.h"
  21. #include "util.h"
  22. #include "work2d.h"
  23. #define AVALONMM_MAX_MODULES 4
  24. #define AVALONMM_MAX_COINBASE_SIZE (6 * 1024)
  25. #define AVALONMM_MAX_MERKLES 20
  26. #define AVALONMM_MAX_NONCE_DIFF 0x20
  27. // Must be a power of two
  28. #define AVALONMM_CACHED_JOBS 2
  29. #define AVALONMM_NONCE_OFFSET 0x180
  30. BFG_REGISTER_DRIVER(avalonmm_drv)
  31. static const struct bfg_set_device_definition avalonmm_set_device_funcs[];
  32. #define AVALONMM_PKT_DATA_SIZE 0x20
  33. #define AVALONMM_PKT_SIZE (AVALONMM_PKT_DATA_SIZE + 7)
  34. enum avalonmm_cmd {
  35. AMC_DETECT = 0x0a,
  36. AMC_NEW_JOB = 0x0b,
  37. AMC_JOB_ID = 0x0c,
  38. AMC_COINBASE = 0x0d,
  39. AMC_MERKLES = 0x0e,
  40. AMC_BLKHDR = 0x0f,
  41. AMC_POLL = 0x10,
  42. AMC_TARGET = 0x11,
  43. AMC_START = 0x13,
  44. };
  45. enum avalonmm_reply {
  46. AMR_NONCE = 0x17,
  47. AMR_STATUS = 0x18,
  48. AMR_DETECT_ACK = 0x19,
  49. };
  50. static
  51. bool avalonmm_write_cmd(const int fd, const enum avalonmm_cmd cmd, const void *data, size_t datasz)
  52. {
  53. uint8_t packets = ((datasz + AVALONMM_PKT_DATA_SIZE - 1) / AVALONMM_PKT_DATA_SIZE) ?: 1;
  54. uint8_t pkt[AVALONMM_PKT_SIZE] = {'A', 'V', cmd, 1, packets};
  55. uint16_t crc;
  56. ssize_t r;
  57. while (true)
  58. {
  59. size_t copysz = AVALONMM_PKT_DATA_SIZE;
  60. if (datasz < copysz)
  61. {
  62. copysz = datasz;
  63. memset(&pkt[5 + copysz], '\0', AVALONMM_PKT_DATA_SIZE - copysz);
  64. }
  65. if (copysz)
  66. memcpy(&pkt[5], data, copysz);
  67. crc = crc16xmodem(&pkt[5], AVALONMM_PKT_DATA_SIZE);
  68. pk_u16be(pkt, 5 + AVALONMM_PKT_DATA_SIZE, crc);
  69. r = write(fd, pkt, sizeof(pkt));
  70. if (opt_dev_protocol)
  71. {
  72. char hex[(sizeof(pkt) * 2) + 1];
  73. bin2hex(hex, pkt, sizeof(pkt));
  74. applog(LOG_DEBUG, "DEVPROTO fd=%d SEND: %s => %d", fd, hex, (int)r);
  75. }
  76. if (sizeof(pkt) != r)
  77. return false;
  78. datasz -= copysz;
  79. if (!datasz)
  80. break;
  81. data += copysz;
  82. ++pkt[3];
  83. }
  84. return true;
  85. }
  86. static
  87. ssize_t avalonmm_read(const int fd, const int logprio, enum avalonmm_reply *out_reply, void * const bufp, size_t bufsz)
  88. {
  89. uint8_t *buf = bufp;
  90. uint8_t pkt[AVALONMM_PKT_SIZE];
  91. uint8_t packets = 0, got = 0;
  92. uint16_t good_crc, actual_crc;
  93. ssize_t r;
  94. while (true)
  95. {
  96. r = serial_read(fd, pkt, sizeof(pkt));
  97. if (opt_dev_protocol)
  98. {
  99. if (r >= 0)
  100. {
  101. char hex[(r * 2) + 1];
  102. bin2hex(hex, pkt, r);
  103. applog(LOG_DEBUG, "DEVPROTO fd=%d RECV: %s", fd, hex);
  104. }
  105. else
  106. applog(LOG_DEBUG, "DEVPROTO fd=%d RECV (%d)", fd, (int)r);
  107. }
  108. if (r != sizeof(pkt))
  109. return -1;
  110. if (memcmp(pkt, "AV", 2))
  111. applogr(-1, logprio, "%s: bad header", __func__);
  112. good_crc = crc16xmodem(&pkt[5], AVALONMM_PKT_DATA_SIZE);
  113. actual_crc = upk_u16le(pkt, 5 + AVALONMM_PKT_DATA_SIZE);
  114. if (good_crc != actual_crc)
  115. applogr(-1, logprio, "%s: bad CRC (good=%04x actual=%04x)", __func__, good_crc, actual_crc);
  116. *out_reply = pkt[2];
  117. if (!got)
  118. {
  119. if (pkt[3] != 1)
  120. applogr(-1, logprio, "%s: first packet is not index 1", __func__);
  121. ++got;
  122. packets = pkt[4];
  123. }
  124. else
  125. {
  126. if (pkt[3] != ++got)
  127. applogr(-1, logprio, "%s: packet %d is not index %d", __func__, got, got);
  128. if (pkt[4] != packets)
  129. applogr(-1, logprio, "%s: packet %d total packet count is %d rather than original value of %d", __func__, got, pkt[4], packets);
  130. }
  131. if (bufsz)
  132. {
  133. if (likely(bufsz > AVALONMM_PKT_DATA_SIZE))
  134. {
  135. memcpy(buf, &pkt[5], AVALONMM_PKT_DATA_SIZE);
  136. bufsz -= AVALONMM_PKT_DATA_SIZE;
  137. buf += AVALONMM_PKT_DATA_SIZE;
  138. }
  139. else
  140. {
  141. memcpy(buf, &pkt[5], bufsz);
  142. bufsz = 0;
  143. }
  144. }
  145. if (got == packets)
  146. break;
  147. }
  148. return (((ssize_t)got) * AVALONMM_PKT_DATA_SIZE);
  149. }
  150. static
  151. bool avalonmm_detect_one(const char * const devpath)
  152. {
  153. uint8_t buf[AVALONMM_PKT_DATA_SIZE] = {0};
  154. enum avalonmm_reply reply;
  155. const int fd = serial_open(devpath, 0, 1, true);
  156. struct cgpu_info *prev_cgpu = NULL;
  157. if (fd == -1)
  158. applogr(false, LOG_DEBUG, "%s: Failed to open %s", __func__, devpath);
  159. for (int i = 0; i < AVALONMM_MAX_MODULES; ++i)
  160. {
  161. pk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4, i);
  162. avalonmm_write_cmd(fd, AMC_DETECT, buf, AVALONMM_PKT_DATA_SIZE);
  163. }
  164. while (avalonmm_read(fd, LOG_DEBUG, &reply, NULL, 0) > 0)
  165. {
  166. if (reply != AMR_DETECT_ACK)
  167. continue;
  168. int moduleno = upk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4);
  169. struct cgpu_info * const cgpu = malloc(sizeof(*cgpu));
  170. *cgpu = (struct cgpu_info){
  171. .drv = &avalonmm_drv,
  172. .device_path = prev_cgpu ? prev_cgpu->device_path : strdup(devpath),
  173. .device_data = (void*)(intptr_t)moduleno,
  174. .set_device_funcs = avalonmm_set_device_funcs,
  175. .deven = DEV_ENABLED,
  176. .procs = 1,
  177. .threads = prev_cgpu ? 0 : 1,
  178. };
  179. add_cgpu_slave(cgpu, prev_cgpu);
  180. prev_cgpu = cgpu;
  181. }
  182. serial_close(fd);
  183. return prev_cgpu;
  184. }
  185. static
  186. bool avalonmm_lowl_probe(const struct lowlevel_device_info * const info)
  187. {
  188. return vcom_lowl_probe_wrapper(info, avalonmm_detect_one);
  189. }
  190. struct avalonmm_job {
  191. struct stratum_work swork;
  192. uint32_t jobid;
  193. struct timeval tv_prepared;
  194. double nonce_diff;
  195. };
  196. struct avalonmm_chain_state {
  197. uint32_t xnonce1;
  198. struct avalonmm_job *jobs[AVALONMM_CACHED_JOBS];
  199. uint32_t next_jobid;
  200. uint8_t fan_desired;
  201. uint32_t clock_desired;
  202. uint32_t voltcfg_desired;
  203. };
  204. struct avalonmm_module_state {
  205. uint32_t module_id;
  206. uint16_t temp[2];
  207. uint16_t fan[2];
  208. uint32_t clock_actual;
  209. uint32_t voltcfg_actual;
  210. };
  211. static
  212. uint16_t avalonmm_voltage_config_from_dmvolts(uint32_t dmvolts)
  213. {
  214. return ((uint16_t)bitflip8((0x78 - dmvolts / 125) << 1 | 1)) << 8;
  215. }
  216. // Potentially lossy!
  217. static
  218. uint32_t avalonmm_dmvolts_from_voltage_config(uint32_t voltcfg)
  219. {
  220. return (0x78 - (bitflip8(voltcfg >> 8) >> 1)) * 125;
  221. }
  222. static struct cgpu_info *avalonmm_dev_for_module_id(struct cgpu_info *, uint32_t);
  223. static bool avalonmm_poll_once(struct cgpu_info *, int64_t *);
  224. static
  225. bool avalonmm_init(struct thr_info * const master_thr)
  226. {
  227. struct cgpu_info * const master_dev = master_thr->cgpu, *dev = NULL;
  228. const char * const devpath = master_dev->device_path;
  229. const int fd = serial_open(devpath, 115200, 1, true);
  230. uint8_t buf[AVALONMM_PKT_DATA_SIZE] = {0};
  231. int64_t module_id;
  232. master_dev->device_fd = fd;
  233. if (unlikely(fd == -1))
  234. applogr(false, LOG_ERR, "%s: Failed to initialise", master_dev->dev_repr);
  235. struct avalonmm_chain_state * const chain = malloc(sizeof(*chain));
  236. *chain = (struct avalonmm_chain_state){
  237. .fan_desired = 90,
  238. .voltcfg_desired = avalonmm_voltage_config_from_dmvolts(6625),
  239. };
  240. work2d_init();
  241. if (!reserve_work2d_(&chain->xnonce1))
  242. {
  243. applog(LOG_ERR, "%s: Failed to reserve 2D work", master_dev->dev_repr);
  244. free(chain);
  245. serial_close(fd);
  246. return false;
  247. }
  248. for_each_managed_proc(proc, master_dev)
  249. {
  250. if (dev == proc->device)
  251. continue;
  252. dev = proc->device;
  253. struct thr_info * const thr = proc->thr[0];
  254. struct avalonmm_module_state * const module = malloc(sizeof(*module));
  255. *module = (struct avalonmm_module_state){
  256. .module_id = (intptr_t)dev->device_data,
  257. };
  258. proc->device_data = chain;
  259. thr->cgpu_data = module;
  260. }
  261. dev = NULL;
  262. for_each_managed_proc(proc, master_dev)
  263. {
  264. cgpu_set_defaults(proc);
  265. proc->status = LIFE_INIT2;
  266. }
  267. if (!chain->clock_desired)
  268. {
  269. // Get a reasonable default frequency
  270. dev = master_dev;
  271. struct thr_info * const thr = dev->thr[0];
  272. struct avalonmm_module_state * const module = thr->cgpu_data;
  273. resend:
  274. pk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4, module->module_id);
  275. avalonmm_write_cmd(fd, AMC_POLL, buf, AVALONMM_PKT_DATA_SIZE);
  276. while (avalonmm_poll_once(master_dev, &module_id))
  277. {
  278. if (module_id != module->module_id)
  279. continue;
  280. if (module->clock_actual)
  281. {
  282. chain->clock_desired = module->clock_actual;
  283. break;
  284. }
  285. else
  286. goto resend;
  287. }
  288. }
  289. if (likely(chain->clock_desired))
  290. applog(LOG_DEBUG, "%s: Frequency is initialised with %d MHz", master_dev->dev_repr, chain->clock_desired);
  291. else
  292. applogr(false, LOG_ERR, "%s: No frequency detected, please use --set %s@%s:clock=MHZ", master_dev->dev_repr, master_dev->drv->dname, devpath);
  293. return true;
  294. }
  295. static
  296. bool avalonmm_send_swork(const int fd, struct avalonmm_chain_state * const chain, const struct stratum_work * const swork, uint32_t jobid, double *out_nonce_diff)
  297. {
  298. uint8_t buf[AVALONMM_PKT_DATA_SIZE];
  299. bytes_t coinbase = BYTES_INIT;
  300. int coinbase_len = bytes_len(&swork->coinbase);
  301. if (coinbase_len > AVALONMM_MAX_COINBASE_SIZE)
  302. return false;
  303. if (swork->merkles > AVALONMM_MAX_MERKLES)
  304. return false;
  305. pk_u32be(buf, 0, coinbase_len);
  306. const size_t xnonce2_offset = swork->nonce2_offset + work2d_pad_xnonce_size(swork) + work2d_xnonce1sz;
  307. pk_u32be(buf, 4, xnonce2_offset);
  308. pk_u32be(buf, 8, 4); // extranonce2 size, but only 4 is supported - smaller sizes are handled by limiting the range
  309. pk_u32be(buf, 0x0c, 0x24); // merkle_offset, always 0x24 for Bitcoin
  310. pk_u32be(buf, 0x10, swork->merkles);
  311. pk_u32be(buf, 0x14, 1); // diff? poorly defined
  312. pk_u32be(buf, 0x18, 0); // pool number - none of its business
  313. if (!avalonmm_write_cmd(fd, AMC_NEW_JOB, buf, 0x1c))
  314. return false;
  315. double nonce_diff = target_diff(swork->target);
  316. if (nonce_diff >= AVALONMM_MAX_NONCE_DIFF)
  317. set_target_to_pdiff(buf, nonce_diff = AVALONMM_MAX_NONCE_DIFF);
  318. else
  319. memcpy(buf, swork->target, 0x20);
  320. *out_nonce_diff = nonce_diff;
  321. if (!avalonmm_write_cmd(fd, AMC_TARGET, buf, 0x20))
  322. return false;
  323. pk_u32be(buf, 0, jobid);
  324. if (!avalonmm_write_cmd(fd, AMC_JOB_ID, buf, 4))
  325. return false;
  326. // Need to add extranonce padding and extranonce2
  327. bytes_cpy(&coinbase, &swork->coinbase);
  328. uint8_t *cbp = bytes_buf(&coinbase);
  329. cbp += swork->nonce2_offset;
  330. work2d_pad_xnonce(cbp, swork, false);
  331. cbp += work2d_pad_xnonce_size(swork);
  332. memcpy(cbp, &chain->xnonce1, work2d_xnonce1sz);
  333. cbp += work2d_xnonce1sz;
  334. if (!avalonmm_write_cmd(fd, AMC_COINBASE, bytes_buf(&coinbase), bytes_len(&coinbase)))
  335. return false;
  336. if (!avalonmm_write_cmd(fd, AMC_MERKLES, bytes_buf(&swork->merkle_bin), bytes_len(&swork->merkle_bin)))
  337. return false;
  338. uint8_t header_bin[0x80];
  339. memcpy(&header_bin[ 0], swork->header1, 0x24);
  340. memset(&header_bin[0x24], '\0', 0x20); // merkle root
  341. pk_u32be(header_bin, 0x44, swork->ntime);
  342. memcpy(&header_bin[0x48], swork->diffbits, 4);
  343. memset(&header_bin[0x4c], '\0', 4); // nonce
  344. memcpy(&header_bin[0x50], bfg_workpadding_bin, 0x30);
  345. if (!avalonmm_write_cmd(fd, AMC_BLKHDR, header_bin, sizeof(header_bin)))
  346. return false;
  347. // Avalon MM cannot handle xnonce2_size other than 4, and works in big endian, so we use a range to ensure the following bytes match
  348. const int fixed_mm_xnonce2_bytes = (work2d_xnonce2sz >= 4) ? 0 : (4 - work2d_xnonce2sz);
  349. uint8_t mm_xnonce2_start[4];
  350. uint32_t xnonce2_range;
  351. memset(mm_xnonce2_start, '\0', 4);
  352. cbp += work2d_xnonce2sz;
  353. for (int i = 1; i <= fixed_mm_xnonce2_bytes; ++i)
  354. mm_xnonce2_start[fixed_mm_xnonce2_bytes - i] = cbp++[0];
  355. if (fixed_mm_xnonce2_bytes > 0)
  356. xnonce2_range = (1 << (8 * work2d_xnonce2sz)) - 1;
  357. else
  358. xnonce2_range = 0xffffffff;
  359. pk_u32be(buf, 0, chain->fan_desired);
  360. pk_u32be(buf, 4, chain->voltcfg_desired);
  361. pk_u32be(buf, 8, chain->clock_desired);
  362. memcpy(&buf[0xc], mm_xnonce2_start, 4);
  363. pk_u32be(buf, 0x10, xnonce2_range);
  364. if (!avalonmm_write_cmd(fd, AMC_START, buf, 0x14))
  365. return false;
  366. return true;
  367. }
  368. static
  369. void avalonmm_free_job(struct avalonmm_job * const mmjob)
  370. {
  371. stratum_work_clean(&mmjob->swork);
  372. free(mmjob);
  373. }
  374. static
  375. bool avalonmm_update_swork_from_pool(struct cgpu_info * const master_dev, struct pool * const pool)
  376. {
  377. struct avalonmm_chain_state * const chain = master_dev->device_data;
  378. const int fd = master_dev->device_fd;
  379. struct avalonmm_job *mmjob = malloc(sizeof(*mmjob));
  380. *mmjob = (struct avalonmm_job){
  381. .jobid = chain->next_jobid,
  382. };
  383. cg_rlock(&pool->data_lock);
  384. stratum_work_cpy(&mmjob->swork, &pool->swork);
  385. cg_runlock(&pool->data_lock);
  386. timer_set_now(&mmjob->tv_prepared);
  387. mmjob->swork.data_lock_p = NULL;
  388. if (!avalonmm_send_swork(fd, chain, &mmjob->swork, mmjob->jobid, &mmjob->nonce_diff))
  389. {
  390. avalonmm_free_job(mmjob);
  391. return false;
  392. }
  393. applog(LOG_DEBUG, "%s: Upload of job id %08lx complete", master_dev->dev_repr, (unsigned long)mmjob->jobid);
  394. ++chain->next_jobid;
  395. struct avalonmm_job **jobentry = &chain->jobs[mmjob->jobid % AVALONMM_CACHED_JOBS];
  396. if (*jobentry)
  397. avalonmm_free_job(*jobentry);
  398. *jobentry = mmjob;
  399. return true;
  400. }
  401. static
  402. struct cgpu_info *avalonmm_dev_for_module_id(struct cgpu_info * const master_dev, const uint32_t module_id)
  403. {
  404. struct cgpu_info *dev = NULL;
  405. for_each_managed_proc(proc, master_dev)
  406. {
  407. if (dev == proc->device)
  408. continue;
  409. dev = proc->device;
  410. struct thr_info * const thr = dev->thr[0];
  411. struct avalonmm_module_state * const module = thr->cgpu_data;
  412. if (module->module_id == module_id)
  413. return dev;
  414. }
  415. return NULL;
  416. }
  417. static
  418. bool avalonmm_poll_once(struct cgpu_info * const master_dev, int64_t *out_module_id)
  419. {
  420. struct avalonmm_chain_state * const chain = master_dev->device_data;
  421. const int fd = master_dev->device_fd;
  422. uint8_t buf[AVALONMM_PKT_DATA_SIZE];
  423. enum avalonmm_reply reply;
  424. *out_module_id = -1;
  425. if (avalonmm_read(fd, LOG_ERR, &reply, buf, sizeof(buf)) < 0)
  426. return false;
  427. switch (reply)
  428. {
  429. case AMR_STATUS:
  430. {
  431. const uint32_t module_id = upk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4);
  432. struct cgpu_info * const dev = avalonmm_dev_for_module_id(master_dev, module_id);
  433. if (unlikely(!dev))
  434. {
  435. struct thr_info * const master_thr = master_dev->thr[0];
  436. applog(LOG_ERR, "%s: %s for unknown module id %lu", master_dev->dev_repr, "Status", (unsigned long)module_id);
  437. inc_hw_errors_only(master_thr);
  438. break;
  439. }
  440. *out_module_id = module_id;
  441. struct thr_info * const thr = dev->thr[0];
  442. struct avalonmm_module_state * const module = thr->cgpu_data;
  443. module->temp[0] = upk_u16be(buf, 0);
  444. module->temp[1] = upk_u16be(buf, 2);
  445. module->fan [0] = upk_u16be(buf, 4);
  446. module->fan [1] = upk_u16be(buf, 6);
  447. module->clock_actual = upk_u32be(buf, 8);
  448. module->voltcfg_actual = upk_u32be(buf, 0x0c);
  449. dev->temp = max(module->temp[0], module->temp[1]);
  450. break;
  451. }
  452. case AMR_NONCE:
  453. {
  454. const int fixed_mm_xnonce2_bytes = (work2d_xnonce2sz >= 4) ? 0 : (4 - work2d_xnonce2sz);
  455. const uint8_t * const backward_xnonce2 = &buf[8 + fixed_mm_xnonce2_bytes];
  456. const uint32_t nonce = upk_u32be(buf, 0x10) - AVALONMM_NONCE_OFFSET;
  457. const uint32_t jobid = upk_u32be(buf, 0x14);
  458. const uint32_t module_id = upk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4);
  459. struct cgpu_info * const dev = avalonmm_dev_for_module_id(master_dev, module_id);
  460. if (unlikely(!dev))
  461. {
  462. struct thr_info * const master_thr = master_dev->thr[0];
  463. applog(LOG_ERR, "%s: %s for unknown module id %lu", master_dev->dev_repr, "Nonce", (unsigned long)module_id);
  464. inc_hw_errors_only(master_thr);
  465. break;
  466. }
  467. *out_module_id = module_id;
  468. struct thr_info * const thr = dev->thr[0];
  469. bool invalid_jobid = false;
  470. if (unlikely((uint32_t)(chain->next_jobid - AVALONMM_CACHED_JOBS) > chain->next_jobid))
  471. // Jobs wrap around
  472. invalid_jobid = (jobid < chain->next_jobid - AVALONMM_CACHED_JOBS && jobid >= chain->next_jobid);
  473. else
  474. invalid_jobid = (jobid < chain->next_jobid - AVALONMM_CACHED_JOBS || jobid >= chain->next_jobid);
  475. if (unlikely(invalid_jobid))
  476. {
  477. applog(LOG_ERR, "%s: Bad job id %08lx", dev->dev_repr, (unsigned long)jobid);
  478. inc_hw_errors_only(thr);
  479. break;
  480. }
  481. struct avalonmm_job * const mmjob = chain->jobs[jobid % AVALONMM_CACHED_JOBS];
  482. uint8_t xnonce2[work2d_xnonce2sz];
  483. for (int i = 0; i < work2d_xnonce2sz; ++i)
  484. xnonce2[i] = backward_xnonce2[(work2d_xnonce2sz - 1) - i];
  485. work2d_submit_nonce(thr, &mmjob->swork, &mmjob->tv_prepared, xnonce2, chain->xnonce1, nonce, mmjob->swork.ntime, NULL, mmjob->nonce_diff);
  486. hashes_done2(thr, mmjob->nonce_diff * 0x100000000, NULL);
  487. break;
  488. }
  489. }
  490. return true;
  491. }
  492. static
  493. void avalonmm_poll(struct cgpu_info * const master_dev, int n)
  494. {
  495. int64_t dummy;
  496. while (n > 0)
  497. {
  498. if (avalonmm_poll_once(master_dev, &dummy))
  499. --n;
  500. }
  501. }
  502. static
  503. struct thr_info *avalonmm_should_disable(struct cgpu_info * const master_dev)
  504. {
  505. for_each_managed_proc(proc, master_dev)
  506. {
  507. struct thr_info * const thr = proc->thr[0];
  508. if (thr->pause || proc->deven != DEV_ENABLED)
  509. return thr;
  510. }
  511. return NULL;
  512. }
  513. static
  514. void avalonmm_minerloop(struct thr_info * const master_thr)
  515. {
  516. struct cgpu_info * const master_dev = master_thr->cgpu;
  517. const int fd = master_dev->device_fd;
  518. struct pool *nextpool = current_pool(), *pool = NULL;
  519. uint8_t buf[AVALONMM_PKT_DATA_SIZE] = {0};
  520. while (likely(!master_dev->shutdown))
  521. {
  522. if (avalonmm_should_disable(master_dev))
  523. {
  524. struct thr_info *thr;
  525. while ( (thr = avalonmm_should_disable(master_dev)) )
  526. {
  527. if (!thr->_mt_disable_called)
  528. if (avalonmm_write_cmd(fd, AMC_NEW_JOB, NULL, 0))
  529. {
  530. for_each_managed_proc(proc, master_dev)
  531. {
  532. struct thr_info * const thr = proc->thr[0];
  533. mt_disable_start(thr);
  534. }
  535. }
  536. notifier_read(thr->notifier);
  537. }
  538. for_each_managed_proc(proc, master_dev)
  539. {
  540. struct thr_info * const thr = proc->thr[0];
  541. mt_disable_finish(thr);
  542. }
  543. }
  544. master_thr->work_restart = false;
  545. if (!pool_has_usable_swork(nextpool))
  546. ; // FIXME
  547. else
  548. if (avalonmm_update_swork_from_pool(master_dev, nextpool))
  549. pool = nextpool;
  550. while (likely(!(master_thr->work_restart || ((nextpool = current_pool()) != pool && pool_has_usable_swork(nextpool)) || avalonmm_should_disable(master_dev))))
  551. {
  552. cgsleep_ms(10);
  553. struct cgpu_info *dev = NULL;
  554. int n = 0;
  555. for_each_managed_proc(proc, master_dev)
  556. {
  557. if (dev == proc->device)
  558. continue;
  559. dev = proc->device;
  560. struct thr_info * const thr = dev->thr[0];
  561. struct avalonmm_module_state * const module = thr->cgpu_data;
  562. pk_u32be(buf, AVALONMM_PKT_DATA_SIZE - 4, module->module_id);
  563. avalonmm_write_cmd(fd, AMC_POLL, buf, AVALONMM_PKT_DATA_SIZE);
  564. ++n;
  565. }
  566. avalonmm_poll(master_dev, n);
  567. }
  568. }
  569. }
  570. static
  571. const char *avalonmm_set_clock(struct cgpu_info * const proc, const char * const optname, const char * const newvalue, char * const replybuf, enum bfg_set_device_replytype * const out_success)
  572. {
  573. struct cgpu_info * const dev = proc->device;
  574. struct avalonmm_chain_state * const chain = dev->device_data;
  575. const int nv = atoi(newvalue);
  576. if (nv < 0)
  577. return "Invalid clock";
  578. chain->clock_desired = nv;
  579. return NULL;
  580. }
  581. static
  582. const char *avalonmm_set_fan(struct cgpu_info * const proc, const char * const optname, const char * const newvalue, char * const replybuf, enum bfg_set_device_replytype * const out_success)
  583. {
  584. struct cgpu_info * const dev = proc->device;
  585. struct avalonmm_chain_state * const chain = dev->device_data;
  586. const int nv = atoi(newvalue);
  587. if (nv < 0 || nv > 100)
  588. return "Invalid fan speed";
  589. chain->fan_desired = nv;
  590. return NULL;
  591. }
  592. static
  593. const char *avalonmm_set_voltage(struct cgpu_info * const proc, const char * const optname, const char * const newvalue, char * const replybuf, enum bfg_set_device_replytype * const success)
  594. {
  595. struct cgpu_info * const dev = proc->device;
  596. struct avalonmm_chain_state * const chain = dev->device_data;
  597. const long val = atof(newvalue) * 10000;
  598. if (val < 0 || val > 15000)
  599. return "Invalid voltage value";
  600. chain->voltcfg_desired = avalonmm_voltage_config_from_dmvolts(val);
  601. return NULL;
  602. }
  603. static const struct bfg_set_device_definition avalonmm_set_device_funcs[] = {
  604. {"clock", avalonmm_set_clock, "clock frequency"},
  605. {"fan", avalonmm_set_fan, "fan speed (0-100 percent)"},
  606. {"voltage", avalonmm_set_voltage, "voltage (0 to 1.5 volts)"},
  607. {NULL},
  608. };
  609. static
  610. struct api_data *avalonmm_api_extra_device_detail(struct cgpu_info * const proc)
  611. {
  612. struct cgpu_info * const dev = proc->device;
  613. struct avalonmm_chain_state * const chain = dev->device_data;
  614. struct thr_info * const thr = dev->thr[0];
  615. struct avalonmm_module_state * const module = thr->cgpu_data;
  616. struct api_data *root = NULL;
  617. root = api_add_uint32(root, "Module Id", &module->module_id, false);
  618. root = api_add_uint32(root, "ExtraNonce1", &chain->xnonce1, false);
  619. return root;
  620. }
  621. static
  622. struct api_data *avalonmm_api_extra_device_status(struct cgpu_info * const proc)
  623. {
  624. struct cgpu_info * const dev = proc->device;
  625. struct thr_info * const thr = dev->thr[0];
  626. struct avalonmm_module_state * const module = thr->cgpu_data;
  627. struct api_data *root = NULL;
  628. char buf[0x10];
  629. strcpy(buf, "Temperature");
  630. for (int i = 0; i < 2; ++i)
  631. {
  632. if (module->temp[i])
  633. {
  634. float temp = module->temp[i];
  635. buf[0xb] = '0' + i;
  636. root = api_add_temp(root, buf, &temp, true);
  637. }
  638. }
  639. strcpy(buf, "Fan RPM ");
  640. for (int i = 0; i < 2; ++i)
  641. {
  642. if (module->fan[i])
  643. {
  644. buf[8] = '0' + i;
  645. root = api_add_uint16(root, buf, &module->fan[i], false);
  646. }
  647. }
  648. if (module->clock_actual)
  649. {
  650. double freq = module->clock_actual;
  651. root = api_add_freq(root, "Frequency", &freq, true);
  652. }
  653. if (module->voltcfg_actual)
  654. {
  655. float volts = avalonmm_dmvolts_from_voltage_config(module->voltcfg_actual);
  656. volts /= 10000;
  657. root = api_add_volts(root, "Voltage", &volts, true);
  658. }
  659. return root;
  660. }
  661. #ifdef HAVE_CURSES
  662. static
  663. void avalonmm_wlogprint_status(struct cgpu_info * const proc)
  664. {
  665. struct cgpu_info * const dev = proc->device;
  666. struct avalonmm_chain_state * const chain = dev->device_data;
  667. struct thr_info * const thr = dev->thr[0];
  668. struct avalonmm_module_state * const module = thr->cgpu_data;
  669. bool flag;
  670. wlogprint("ExtraNonce1:%0*lx ModuleId:%lu\n", work2d_xnonce1sz * 2, (unsigned long)chain->xnonce1, (unsigned long)module->module_id);
  671. flag = false;
  672. if (module->temp[0] && module->temp[1])
  673. {
  674. flag = true;
  675. wlogprint("Temperatures: %uC %uC", (unsigned)module->temp[0], (unsigned)module->temp[1]);
  676. if (module->fan[0] || module->fan[1])
  677. wlogprint(" ");
  678. }
  679. if (module->fan[0])
  680. {
  681. flag = true;
  682. if (module->fan[1])
  683. wlogprint("Fans: %u RPM %u RPM", (unsigned)module->fan[0], (unsigned)module->fan[1]);
  684. else
  685. wlogprint("Fan: %u RPM", (unsigned)module->fan[0]);
  686. }
  687. else
  688. if (module->fan[1])
  689. {
  690. flag = true;
  691. wlogprint("Fan: %u RPM", (unsigned)module->fan[1]);
  692. }
  693. if (flag)
  694. wlogprint("\n");
  695. if (module->clock_actual)
  696. wlogprint("Clock speed: %lu\n", (unsigned long)module->clock_actual);
  697. if (module->voltcfg_actual)
  698. {
  699. const uint32_t dmvolts = avalonmm_dmvolts_from_voltage_config(module->voltcfg_actual);
  700. wlogprint("Voltage: %u.%04u V\n", (unsigned)(dmvolts / 10000), (unsigned)(dmvolts % 10000));
  701. }
  702. }
  703. static
  704. void avalonmm_tui_wlogprint_choices(struct cgpu_info * const proc)
  705. {
  706. wlogprint("[C]lock speed ");
  707. wlogprint("[F]an speed ");
  708. wlogprint("[V]oltage ");
  709. }
  710. static
  711. const char *avalonmm_tui_wrapper(struct cgpu_info * const proc, bfg_set_device_func_t func, const char * const prompt)
  712. {
  713. static char replybuf[0x20];
  714. char * const cvar = curses_input(prompt);
  715. if (!cvar)
  716. return "Cancelled\n";
  717. const char *reply = func(proc, NULL, cvar, NULL, NULL);
  718. free(cvar);
  719. if (reply)
  720. {
  721. snprintf(replybuf, sizeof(replybuf), "%s\n", reply);
  722. return replybuf;
  723. }
  724. return "Successful\n";
  725. }
  726. static
  727. const char *avalonmm_tui_handle_choice(struct cgpu_info * const proc, const int input)
  728. {
  729. switch (input)
  730. {
  731. case 'c': case 'C':
  732. return avalonmm_tui_wrapper(proc, avalonmm_set_clock , "Set clock speed (Avalon2: 1500; Avalon3: 450)");
  733. case 'f': case 'F':
  734. return avalonmm_tui_wrapper(proc, avalonmm_set_fan , "Set fan speed (0-100 percent)");
  735. case 'v': case 'V':
  736. return avalonmm_tui_wrapper(proc, avalonmm_set_voltage, "Set voltage (Avalon2: 1.0; Avalon3: 0.6625)");
  737. }
  738. return NULL;
  739. }
  740. #endif
  741. struct device_drv avalonmm_drv = {
  742. .dname = "avalonmm",
  743. .name = "AVM",
  744. .lowl_probe = avalonmm_lowl_probe,
  745. .thread_init = avalonmm_init,
  746. .minerloop = avalonmm_minerloop,
  747. .get_api_extra_device_detail = avalonmm_api_extra_device_detail,
  748. .get_api_extra_device_status = avalonmm_api_extra_device_status,
  749. #ifdef HAVE_CURSES
  750. .proc_wlogprint_status = avalonmm_wlogprint_status,
  751. .proc_tui_wlogprint_choices = avalonmm_tui_wlogprint_choices,
  752. .proc_tui_handle_choice = avalonmm_tui_handle_choice,
  753. #endif
  754. };