usbutils.c 93 KB

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  1. /*
  2. * Copyright 2012-2013 Andrew Smith
  3. * Copyright 2013 Con Kolivas <kernel@kolivas.org>
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of the GNU General Public License as published by the Free
  7. * Software Foundation; either version 3 of the License, or (at your option)
  8. * any later version. See COPYING for more details.
  9. */
  10. #include "config.h"
  11. #include <ctype.h>
  12. #include <stdint.h>
  13. #include <stdbool.h>
  14. #include "logging.h"
  15. #include "miner.h"
  16. #include "usbutils.h"
  17. #define NODEV(err) ((err) == LIBUSB_ERROR_NO_DEVICE || \
  18. (err) == LIBUSB_ERROR_PIPE || \
  19. (err) == LIBUSB_ERROR_OTHER)
  20. #define NOCONTROLDEV(err) ((err) == LIBUSB_ERROR_NO_DEVICE || \
  21. (err) == LIBUSB_ERROR_OTHER)
  22. /*
  23. * WARNING - these assume DEVLOCK(cgpu, pstate) is called first and
  24. * DEVUNLOCK(cgpu, pstate) in called in the same function with the same pstate
  25. * given to DEVLOCK.
  26. * You must call DEVUNLOCK(cgpu, pstate) before exiting the function or it will leave
  27. * the thread Cancelability unrestored
  28. */
  29. #define DEVLOCK(cgpu, _pth_state) do { \
  30. pthread_setcancelstate(PTHREAD_CANCEL_DISABLE, &_pth_state); \
  31. wr_lock(cgpu->usbinfo.devlock); \
  32. } while (0)
  33. #define DEVUNLOCK(cgpu, _pth_state) do { \
  34. wr_unlock(cgpu->usbinfo.devlock); \
  35. pthread_setcancelstate(_pth_state, NULL); \
  36. } while (0)
  37. #define USB_CONFIG 1
  38. #ifdef WIN32
  39. #define BFLSC_TIMEOUT_MS 999
  40. #define BITFORCE_TIMEOUT_MS 999
  41. #define BITFURY_TIMEOUT_MS 999
  42. #define MODMINER_TIMEOUT_MS 999
  43. #define AVALON_TIMEOUT_MS 999
  44. #define ICARUS_TIMEOUT_MS 999
  45. #else
  46. #define BFLSC_TIMEOUT_MS 300
  47. #define BITFORCE_TIMEOUT_MS 200
  48. #define BITFURY_TIMEOUT_MS 100
  49. #define MODMINER_TIMEOUT_MS 100
  50. #define AVALON_TIMEOUT_MS 200
  51. #define ICARUS_TIMEOUT_MS 200
  52. #endif
  53. #define USB_READ_MINPOLL 40
  54. #define USB_EPS(_intx, _epinfosx) { \
  55. .interface = _intx, \
  56. .ctrl_transfer = _intx, \
  57. .epinfo_count = ARRAY_SIZE(_epinfosx), \
  58. .epinfos = _epinfosx \
  59. }
  60. #define USB_EPS_CTRL(_inty, _ctrlinty, _epinfosy) { \
  61. .interface = _inty, \
  62. .ctrl_transfer = _ctrlinty, \
  63. .epinfo_count = ARRAY_SIZE(_epinfosy), \
  64. .epinfos = _epinfosy \
  65. }
  66. #ifdef USE_BFLSC
  67. // N.B. transfer size is 512 with USB2.0, but only 64 with USB1.1
  68. static struct usb_epinfo bas_epinfos[] = {
  69. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  70. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  71. };
  72. static struct usb_intinfo bas_ints[] = {
  73. USB_EPS(0, bas_epinfos)
  74. };
  75. #endif
  76. #ifdef USE_BITFORCE
  77. // N.B. transfer size is 512 with USB2.0, but only 64 with USB1.1
  78. static struct usb_epinfo bfl_epinfos[] = {
  79. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  80. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  81. };
  82. static struct usb_intinfo bfl_ints[] = {
  83. USB_EPS(0, bfl_epinfos)
  84. };
  85. #endif
  86. #ifdef USE_BITFURY
  87. static struct usb_epinfo bfu0_epinfos[] = {
  88. { LIBUSB_TRANSFER_TYPE_INTERRUPT, 8, EPI(2), 0, 0, 0 }
  89. };
  90. static struct usb_epinfo bfu1_epinfos[] = {
  91. { LIBUSB_TRANSFER_TYPE_BULK, 16, EPI(3), 0, 0, 0 },
  92. { LIBUSB_TRANSFER_TYPE_BULK, 16, EPO(4), 0, 0, 0 }
  93. };
  94. /* Default to interface 1 */
  95. static struct usb_intinfo bfu_ints[] = {
  96. USB_EPS(1, bfu1_epinfos),
  97. USB_EPS(0, bfu0_epinfos)
  98. };
  99. #endif
  100. #ifdef USE_MODMINER
  101. static struct usb_epinfo mmq_epinfos[] = {
  102. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(3), 0, 0, 0 },
  103. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(3), 0, 0, 0 }
  104. };
  105. static struct usb_intinfo mmq_ints[] = {
  106. USB_EPS(1, mmq_epinfos)
  107. };
  108. #endif
  109. #ifdef USE_AVALON
  110. static struct usb_epinfo ava_epinfos[] = {
  111. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  112. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  113. };
  114. static struct usb_intinfo ava_ints[] = {
  115. USB_EPS(0, ava_epinfos)
  116. };
  117. #endif
  118. #ifdef USE_ICARUS
  119. static struct usb_epinfo ica_epinfos[] = {
  120. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(3), 0, 0, 0 },
  121. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  122. };
  123. static struct usb_intinfo ica_ints[] = {
  124. USB_EPS(0, ica_epinfos)
  125. };
  126. static struct usb_epinfo amu_epinfos[] = {
  127. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  128. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(1), 0, 0, 0 }
  129. };
  130. static struct usb_intinfo amu_ints[] = {
  131. USB_EPS(0, amu_epinfos)
  132. };
  133. static struct usb_epinfo llt_epinfos[] = {
  134. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  135. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  136. };
  137. static struct usb_intinfo llt_ints[] = {
  138. USB_EPS(0, llt_epinfos)
  139. };
  140. static struct usb_epinfo cmr1_epinfos[] = {
  141. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  142. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  143. };
  144. static struct usb_intinfo cmr1_ints[] = {
  145. USB_EPS(0, cmr1_epinfos)
  146. };
  147. static struct usb_epinfo cmr2_epinfos0[] = {
  148. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(1), 0, 0, 0 },
  149. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(2), 0, 0, 0 }
  150. };
  151. static struct usb_epinfo cmr2_epinfos1[] = {
  152. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(3), 0, 0, 0 },
  153. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(4), 0, 0, 0 },
  154. };
  155. static struct usb_epinfo cmr2_epinfos2[] = {
  156. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(5), 0, 0, 0 },
  157. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(6), 0, 0, 0 },
  158. };
  159. static struct usb_epinfo cmr2_epinfos3[] = {
  160. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPI(7), 0, 0, 0 },
  161. { LIBUSB_TRANSFER_TYPE_BULK, 64, EPO(8), 0, 0, 0 }
  162. };
  163. static struct usb_intinfo cmr2_ints[] = {
  164. USB_EPS_CTRL(0, 1, cmr2_epinfos0),
  165. USB_EPS_CTRL(1, 2, cmr2_epinfos1),
  166. USB_EPS_CTRL(2, 3, cmr2_epinfos2),
  167. USB_EPS_CTRL(3, 4, cmr2_epinfos3)
  168. };
  169. #endif
  170. #define IDVENDOR_FTDI 0x0403
  171. #define INTINFO(_ints) \
  172. .intinfo_count = ARRAY_SIZE(_ints), \
  173. .intinfos = _ints
  174. #define USBEP(_usbdev, _intinfo, _epinfo) (_usbdev->found->intinfos[_intinfo].epinfos[_epinfo].ep)
  175. #define THISIF(_found, _this) (_found->intinfos[_this].interface)
  176. #define USBIF(_usbdev, _this) THISIF(_usbdev->found, _this)
  177. // TODO: Add support for (at least) Isochronous endpoints
  178. static struct usb_find_devices find_dev[] = {
  179. #ifdef USE_BFLSC
  180. {
  181. .drv = DRIVER_bflsc,
  182. .name = "BAS",
  183. .ident = IDENT_BAS,
  184. .idVendor = IDVENDOR_FTDI,
  185. .idProduct = 0x6014,
  186. //.iManufacturer = "Butterfly Labs",
  187. .iProduct = "BitFORCE SHA256 SC",
  188. .config = 1,
  189. .timeout = BFLSC_TIMEOUT_MS,
  190. .latency = LATENCY_STD,
  191. INTINFO(bas_ints) },
  192. #endif
  193. #ifdef USE_BITFORCE
  194. {
  195. .drv = DRIVER_bitforce,
  196. .name = "BFL",
  197. .ident = IDENT_BFL,
  198. .idVendor = IDVENDOR_FTDI,
  199. .idProduct = 0x6014,
  200. .iManufacturer = "Butterfly Labs Inc.",
  201. .iProduct = "BitFORCE SHA256",
  202. .config = 1,
  203. .timeout = BITFORCE_TIMEOUT_MS,
  204. .latency = LATENCY_STD,
  205. INTINFO(bfl_ints) },
  206. #endif
  207. #ifdef USE_BITFURY
  208. {
  209. .drv = DRIVER_bitfury,
  210. .name = "BF1",
  211. .ident = IDENT_BFU,
  212. .idVendor = 0x03eb,
  213. .idProduct = 0x204b,
  214. .config = 1,
  215. .timeout = BITFURY_TIMEOUT_MS,
  216. .latency = LATENCY_UNUSED,
  217. .iManufacturer = "BPMC",
  218. .iProduct = "Bitfury BF1",
  219. INTINFO(bfu_ints)
  220. },
  221. #endif
  222. #ifdef USE_MODMINER
  223. {
  224. .drv = DRIVER_modminer,
  225. .name = "MMQ",
  226. .ident = IDENT_MMQ,
  227. .idVendor = 0x1fc9,
  228. .idProduct = 0x0003,
  229. .config = 1,
  230. .timeout = MODMINER_TIMEOUT_MS,
  231. .latency = LATENCY_UNUSED,
  232. INTINFO(mmq_ints) },
  233. #endif
  234. #ifdef USE_AVALON
  235. {
  236. .drv = DRIVER_avalon,
  237. .name = "BTB",
  238. .ident = IDENT_BTB,
  239. .idVendor = IDVENDOR_FTDI,
  240. .idProduct = 0x6001,
  241. .iManufacturer = "Burnin Electronics",
  242. .iProduct = "BitBurner",
  243. .config = 1,
  244. .timeout = AVALON_TIMEOUT_MS,
  245. .latency = 10,
  246. INTINFO(ava_ints) },
  247. {
  248. .drv = DRIVER_avalon,
  249. .name = "AVA",
  250. .ident = IDENT_AVA,
  251. .idVendor = IDVENDOR_FTDI,
  252. .idProduct = 0x6001,
  253. .config = 1,
  254. .timeout = AVALON_TIMEOUT_MS,
  255. .latency = 10,
  256. INTINFO(ava_ints) },
  257. #endif
  258. #ifdef USE_ICARUS
  259. {
  260. .drv = DRIVER_icarus,
  261. .name = "ICA",
  262. .ident = IDENT_ICA,
  263. .idVendor = 0x067b,
  264. .idProduct = 0x2303,
  265. .config = 1,
  266. .timeout = ICARUS_TIMEOUT_MS,
  267. .latency = LATENCY_UNUSED,
  268. INTINFO(ica_ints) },
  269. {
  270. .drv = DRIVER_icarus,
  271. .name = "AMU",
  272. .ident = IDENT_AMU,
  273. .idVendor = 0x10c4,
  274. .idProduct = 0xea60,
  275. .config = 1,
  276. .timeout = ICARUS_TIMEOUT_MS,
  277. .latency = LATENCY_UNUSED,
  278. INTINFO(amu_ints) },
  279. {
  280. .drv = DRIVER_icarus,
  281. .name = "BLT",
  282. .ident = IDENT_BLT,
  283. .idVendor = IDVENDOR_FTDI,
  284. .idProduct = 0x6001,
  285. .iProduct = "FT232R USB UART",
  286. .config = 1,
  287. .timeout = ICARUS_TIMEOUT_MS,
  288. .latency = LATENCY_STD,
  289. INTINFO(llt_ints) },
  290. // For any that don't match the above "BLT"
  291. {
  292. .drv = DRIVER_icarus,
  293. .name = "LLT",
  294. .ident = IDENT_LLT,
  295. .idVendor = IDVENDOR_FTDI,
  296. .idProduct = 0x6001,
  297. .config = 1,
  298. .timeout = ICARUS_TIMEOUT_MS,
  299. .latency = LATENCY_STD,
  300. INTINFO(llt_ints) },
  301. {
  302. .drv = DRIVER_icarus,
  303. .name = "CMR",
  304. .ident = IDENT_CMR1,
  305. .idVendor = IDVENDOR_FTDI,
  306. .idProduct = 0x6014,
  307. .iProduct = "Cairnsmore1",
  308. .config = 1,
  309. .timeout = ICARUS_TIMEOUT_MS,
  310. .latency = LATENCY_STD,
  311. INTINFO(cmr1_ints) },
  312. {
  313. .drv = DRIVER_icarus,
  314. .name = "CMR",
  315. .ident = IDENT_CMR2,
  316. .idVendor = IDVENDOR_FTDI,
  317. .idProduct = 0x8350,
  318. .iProduct = "Cairnsmore1",
  319. .config = 1,
  320. .timeout = ICARUS_TIMEOUT_MS,
  321. .latency = LATENCY_STD,
  322. INTINFO(cmr2_ints) },
  323. #endif
  324. #ifdef USE_ZTEX
  325. // This is here so cgminer -n shows them
  326. // the ztex driver (as at 201303) doesn't use usbutils
  327. {
  328. .drv = DRIVER_ztex,
  329. .name = "ZTX",
  330. .ident = IDENT_ZTX,
  331. .idVendor = 0x221a,
  332. .idProduct = 0x0100,
  333. .config = 1,
  334. .timeout = 100,
  335. .latency = LATENCY_UNUSED,
  336. .intinfo_count = 0,
  337. .intinfos = NULL },
  338. #endif
  339. { DRIVER_MAX, NULL, 0, 0, 0, NULL, NULL, 0, 0, 0, 0, NULL }
  340. };
  341. #define STRBUFLEN 256
  342. static const char *BLANK = "";
  343. static const char *space = " ";
  344. static const char *nodatareturned = "no data returned ";
  345. #define IOERR_CHECK(cgpu, err) \
  346. if (err == LIBUSB_ERROR_IO) { \
  347. cgpu->usbinfo.ioerr_count++; \
  348. cgpu->usbinfo.continuous_ioerr_count++; \
  349. } else { \
  350. cgpu->usbinfo.continuous_ioerr_count = 0; \
  351. }
  352. #if 0 // enable USBDEBUG - only during development testing
  353. static const char *debug_true_str = "true";
  354. static const char *debug_false_str = "false";
  355. static const char *nodevstr = "=NODEV";
  356. #define bool_str(boo) ((boo) ? debug_true_str : debug_false_str)
  357. #define isnodev(err) (NODEV(err) ? nodevstr : BLANK)
  358. #define USBDEBUG(fmt, ...) applog(LOG_WARNING, fmt, ##__VA_ARGS__)
  359. #else
  360. #define USBDEBUG(fmt, ...)
  361. #endif
  362. // For device limits by driver
  363. static struct driver_count {
  364. uint32_t count;
  365. uint32_t limit;
  366. } drv_count[DRIVER_MAX];
  367. // For device limits by list of bus/dev
  368. static struct usb_busdev {
  369. int bus_number;
  370. int device_address;
  371. void *resource1;
  372. void *resource2;
  373. } *busdev;
  374. static int busdev_count = 0;
  375. // Total device limit
  376. static int total_count = 0;
  377. static int total_limit = 999999;
  378. struct usb_in_use_list {
  379. struct usb_busdev in_use;
  380. struct usb_in_use_list *prev;
  381. struct usb_in_use_list *next;
  382. };
  383. // List of in use devices
  384. static struct usb_in_use_list *in_use_head = NULL;
  385. struct resource_work {
  386. bool lock;
  387. const char *dname;
  388. uint8_t bus_number;
  389. uint8_t device_address;
  390. struct resource_work *next;
  391. };
  392. // Pending work for the reslock thread
  393. struct resource_work *res_work_head = NULL;
  394. struct resource_reply {
  395. uint8_t bus_number;
  396. uint8_t device_address;
  397. bool got;
  398. struct resource_reply *next;
  399. };
  400. // Replies to lock requests
  401. struct resource_reply *res_reply_head = NULL;
  402. // Some stats need to always be defined
  403. #define SEQ0 0
  404. #define SEQ1 1
  405. // NONE must be 0 - calloced
  406. #define MODE_NONE 0
  407. #define MODE_CTRL_READ (1 << 0)
  408. #define MODE_CTRL_WRITE (1 << 1)
  409. #define MODE_BULK_READ (1 << 2)
  410. #define MODE_BULK_WRITE (1 << 3)
  411. // Set this to 0 to remove stats processing
  412. #define DO_USB_STATS 1
  413. static bool stats_initialised = false;
  414. #if DO_USB_STATS
  415. #define MODE_SEP_STR "+"
  416. #define MODE_NONE_STR "X"
  417. #define MODE_CTRL_READ_STR "cr"
  418. #define MODE_CTRL_WRITE_STR "cw"
  419. #define MODE_BULK_READ_STR "br"
  420. #define MODE_BULK_WRITE_STR "bw"
  421. // One for each CMD, TIMEOUT, ERROR
  422. struct cg_usb_stats_item {
  423. uint64_t count;
  424. double total_delay;
  425. double min_delay;
  426. double max_delay;
  427. struct timeval first;
  428. struct timeval last;
  429. };
  430. #define CMD_CMD 0
  431. #define CMD_TIMEOUT 1
  432. #define CMD_ERROR 2
  433. // One for each C_CMD
  434. struct cg_usb_stats_details {
  435. int seq;
  436. uint32_t modes;
  437. struct cg_usb_stats_item item[CMD_ERROR+1];
  438. };
  439. // One for each device
  440. struct cg_usb_stats {
  441. char *name;
  442. int device_id;
  443. struct cg_usb_stats_details *details;
  444. };
  445. static struct cg_usb_stats *usb_stats = NULL;
  446. static int next_stat = USB_NOSTAT;
  447. #define SECTOMS(s) ((int)((s) * 1000))
  448. #define USB_STATS(sgpu_, sta_, fin_, err_, mode_, cmd_, seq_, tmo_) \
  449. stats(sgpu_, sta_, fin_, err_, mode_, cmd_, seq_, tmo_)
  450. #define STATS_TIMEVAL(tv_) cgtime(tv_)
  451. #define USB_REJECT(sgpu_, mode_) rejected_inc(sgpu_, mode_)
  452. #else
  453. #define USB_STATS(sgpu_, sta_, fin_, err_, mode_, cmd_, seq_, tmo_)
  454. #define STATS_TIMEVAL(tv_)
  455. #define USB_REJECT(sgpu_, mode_)
  456. #endif // DO_USB_STATS
  457. /* Create usb_commands array from USB_PARSE_COMMANDS macro in usbutils.h */
  458. #define USB_ADD_COMMAND(X, Y) Y,
  459. char *usb_commands[] = {
  460. USB_PARSE_COMMANDS
  461. "Null"
  462. };
  463. #undef USB_ADD_COMMAND
  464. #ifdef EOL
  465. #undef EOL
  466. #endif
  467. #define EOL "\n"
  468. static const char *DESDEV = "Device";
  469. static const char *DESCON = "Config";
  470. static const char *DESSTR = "String";
  471. static const char *DESINT = "Interface";
  472. static const char *DESEP = "Endpoint";
  473. static const char *DESHID = "HID";
  474. static const char *DESRPT = "Report";
  475. static const char *DESPHY = "Physical";
  476. static const char *DESHUB = "Hub";
  477. static const char *EPIN = "In: ";
  478. static const char *EPOUT = "Out: ";
  479. static const char *EPX = "?: ";
  480. static const char *CONTROL = "Control";
  481. static const char *ISOCHRONOUS_X = "Isochronous+?";
  482. static const char *ISOCHRONOUS_N_X = "Isochronous+None+?";
  483. static const char *ISOCHRONOUS_N_D = "Isochronous+None+Data";
  484. static const char *ISOCHRONOUS_N_F = "Isochronous+None+Feedback";
  485. static const char *ISOCHRONOUS_N_I = "Isochronous+None+Implicit";
  486. static const char *ISOCHRONOUS_A_X = "Isochronous+Async+?";
  487. static const char *ISOCHRONOUS_A_D = "Isochronous+Async+Data";
  488. static const char *ISOCHRONOUS_A_F = "Isochronous+Async+Feedback";
  489. static const char *ISOCHRONOUS_A_I = "Isochronous+Async+Implicit";
  490. static const char *ISOCHRONOUS_D_X = "Isochronous+Adaptive+?";
  491. static const char *ISOCHRONOUS_D_D = "Isochronous+Adaptive+Data";
  492. static const char *ISOCHRONOUS_D_F = "Isochronous+Adaptive+Feedback";
  493. static const char *ISOCHRONOUS_D_I = "Isochronous+Adaptive+Implicit";
  494. static const char *ISOCHRONOUS_S_X = "Isochronous+Sync+?";
  495. static const char *ISOCHRONOUS_S_D = "Isochronous+Sync+Data";
  496. static const char *ISOCHRONOUS_S_F = "Isochronous+Sync+Feedback";
  497. static const char *ISOCHRONOUS_S_I = "Isochronous+Sync+Implicit";
  498. static const char *BULK = "Bulk";
  499. static const char *INTERRUPT = "Interrupt";
  500. static const char *UNKNOWN = "Unknown";
  501. static const char *err_io_str = " IO Error";
  502. static const char *err_access_str = " Access Denied-a";
  503. static const char *err_timeout_str = " Reply Timeout";
  504. static const char *err_pipe_str = " Access denied-p";
  505. static const char *err_other_str = " Access denied-o";
  506. static const char *usberrstr(int err)
  507. {
  508. switch (err) {
  509. case LIBUSB_ERROR_IO:
  510. return err_io_str;
  511. case LIBUSB_ERROR_ACCESS:
  512. return err_access_str;
  513. case LIBUSB_ERROR_TIMEOUT:
  514. return err_timeout_str;
  515. case LIBUSB_ERROR_PIPE:
  516. return err_pipe_str;
  517. case LIBUSB_ERROR_OTHER:
  518. return err_other_str;
  519. }
  520. return BLANK;
  521. }
  522. static const char *destype(uint8_t bDescriptorType)
  523. {
  524. switch (bDescriptorType) {
  525. case LIBUSB_DT_DEVICE:
  526. return DESDEV;
  527. case LIBUSB_DT_CONFIG:
  528. return DESCON;
  529. case LIBUSB_DT_STRING:
  530. return DESSTR;
  531. case LIBUSB_DT_INTERFACE:
  532. return DESINT;
  533. case LIBUSB_DT_ENDPOINT:
  534. return DESEP;
  535. case LIBUSB_DT_HID:
  536. return DESHID;
  537. case LIBUSB_DT_REPORT:
  538. return DESRPT;
  539. case LIBUSB_DT_PHYSICAL:
  540. return DESPHY;
  541. case LIBUSB_DT_HUB:
  542. return DESHUB;
  543. }
  544. return UNKNOWN;
  545. }
  546. static const char *epdir(uint8_t bEndpointAddress)
  547. {
  548. switch (bEndpointAddress & LIBUSB_ENDPOINT_DIR_MASK) {
  549. case LIBUSB_ENDPOINT_IN:
  550. return EPIN;
  551. case LIBUSB_ENDPOINT_OUT:
  552. return EPOUT;
  553. }
  554. return EPX;
  555. }
  556. static const char *epatt(uint8_t bmAttributes)
  557. {
  558. switch(bmAttributes & LIBUSB_TRANSFER_TYPE_MASK) {
  559. case LIBUSB_TRANSFER_TYPE_CONTROL:
  560. return CONTROL;
  561. case LIBUSB_TRANSFER_TYPE_BULK:
  562. return BULK;
  563. case LIBUSB_TRANSFER_TYPE_INTERRUPT:
  564. return INTERRUPT;
  565. case LIBUSB_TRANSFER_TYPE_ISOCHRONOUS:
  566. switch(bmAttributes & LIBUSB_ISO_SYNC_TYPE_MASK) {
  567. case LIBUSB_ISO_SYNC_TYPE_NONE:
  568. switch(bmAttributes & LIBUSB_ISO_USAGE_TYPE_MASK) {
  569. case LIBUSB_ISO_USAGE_TYPE_DATA:
  570. return ISOCHRONOUS_N_D;
  571. case LIBUSB_ISO_USAGE_TYPE_FEEDBACK:
  572. return ISOCHRONOUS_N_F;
  573. case LIBUSB_ISO_USAGE_TYPE_IMPLICIT:
  574. return ISOCHRONOUS_N_I;
  575. }
  576. return ISOCHRONOUS_N_X;
  577. case LIBUSB_ISO_SYNC_TYPE_ASYNC:
  578. switch(bmAttributes & LIBUSB_ISO_USAGE_TYPE_MASK) {
  579. case LIBUSB_ISO_USAGE_TYPE_DATA:
  580. return ISOCHRONOUS_A_D;
  581. case LIBUSB_ISO_USAGE_TYPE_FEEDBACK:
  582. return ISOCHRONOUS_A_F;
  583. case LIBUSB_ISO_USAGE_TYPE_IMPLICIT:
  584. return ISOCHRONOUS_A_I;
  585. }
  586. return ISOCHRONOUS_A_X;
  587. case LIBUSB_ISO_SYNC_TYPE_ADAPTIVE:
  588. switch(bmAttributes & LIBUSB_ISO_USAGE_TYPE_MASK) {
  589. case LIBUSB_ISO_USAGE_TYPE_DATA:
  590. return ISOCHRONOUS_D_D;
  591. case LIBUSB_ISO_USAGE_TYPE_FEEDBACK:
  592. return ISOCHRONOUS_D_F;
  593. case LIBUSB_ISO_USAGE_TYPE_IMPLICIT:
  594. return ISOCHRONOUS_D_I;
  595. }
  596. return ISOCHRONOUS_D_X;
  597. case LIBUSB_ISO_SYNC_TYPE_SYNC:
  598. switch(bmAttributes & LIBUSB_ISO_USAGE_TYPE_MASK) {
  599. case LIBUSB_ISO_USAGE_TYPE_DATA:
  600. return ISOCHRONOUS_S_D;
  601. case LIBUSB_ISO_USAGE_TYPE_FEEDBACK:
  602. return ISOCHRONOUS_S_F;
  603. case LIBUSB_ISO_USAGE_TYPE_IMPLICIT:
  604. return ISOCHRONOUS_S_I;
  605. }
  606. return ISOCHRONOUS_S_X;
  607. }
  608. return ISOCHRONOUS_X;
  609. }
  610. return UNKNOWN;
  611. }
  612. static void append(char **buf, char *append, size_t *off, size_t *len)
  613. {
  614. int new = strlen(append);
  615. if ((new + *off) >= *len)
  616. {
  617. *len *= 2;
  618. *buf = realloc(*buf, *len);
  619. if (unlikely(!*buf))
  620. quit(1, "USB failed to realloc append");
  621. }
  622. strcpy(*buf + *off, append);
  623. *off += new;
  624. }
  625. static bool setgetdes(ssize_t count, libusb_device *dev, struct libusb_device_handle *handle, struct libusb_config_descriptor **config, int cd, char **buf, size_t *off, size_t *len)
  626. {
  627. char tmp[512];
  628. int err;
  629. err = libusb_set_configuration(handle, cd);
  630. if (err) {
  631. snprintf(tmp, sizeof(tmp), EOL " ** dev %d: Failed to set config descriptor to %d, err %d",
  632. (int)count, cd, err);
  633. append(buf, tmp, off, len);
  634. return false;
  635. }
  636. err = libusb_get_active_config_descriptor(dev, config);
  637. if (err) {
  638. snprintf(tmp, sizeof(tmp), EOL " ** dev %d: Failed to get active config descriptor set to %d, err %d",
  639. (int)count, cd, err);
  640. append(buf, tmp, off, len);
  641. return false;
  642. }
  643. snprintf(tmp, sizeof(tmp), EOL " ** dev %d: Set & Got active config descriptor to %d, err %d",
  644. (int)count, cd, err);
  645. append(buf, tmp, off, len);
  646. return true;
  647. }
  648. static void usb_full(ssize_t *count, libusb_device *dev, char **buf, size_t *off, size_t *len, int level)
  649. {
  650. struct libusb_device_descriptor desc;
  651. uint8_t bus_number;
  652. uint8_t device_address;
  653. struct libusb_device_handle *handle;
  654. struct libusb_config_descriptor *config;
  655. const struct libusb_interface_descriptor *idesc;
  656. const struct libusb_endpoint_descriptor *epdesc;
  657. unsigned char man[STRBUFLEN+1];
  658. unsigned char prod[STRBUFLEN+1];
  659. unsigned char ser[STRBUFLEN+1];
  660. char tmp[512];
  661. int err, i, j, k;
  662. err = libusb_get_device_descriptor(dev, &desc);
  663. if (opt_usb_list_all && err) {
  664. snprintf(tmp, sizeof(tmp), EOL ".USB dev %d: Failed to get descriptor, err %d",
  665. (int)(++(*count)), err);
  666. append(buf, tmp, off, len);
  667. return;
  668. }
  669. bus_number = libusb_get_bus_number(dev);
  670. device_address = libusb_get_device_address(dev);
  671. if (!opt_usb_list_all) {
  672. bool known = false;
  673. for (i = 0; find_dev[i].drv != DRIVER_MAX; i++)
  674. if ((find_dev[i].idVendor == desc.idVendor) &&
  675. (find_dev[i].idProduct == desc.idProduct)) {
  676. known = true;
  677. break;
  678. }
  679. if (!known)
  680. return;
  681. }
  682. (*count)++;
  683. if (level == 0) {
  684. snprintf(tmp, sizeof(tmp), EOL ".USB dev %d: Bus %d Device %d ID: %04x:%04x",
  685. (int)(*count), (int)bus_number, (int)device_address,
  686. desc.idVendor, desc.idProduct);
  687. } else {
  688. snprintf(tmp, sizeof(tmp), EOL ".USB dev %d: Bus %d Device %d Device Descriptor:" EOL "\tLength: %d" EOL
  689. "\tDescriptor Type: %s" EOL "\tUSB: %04x" EOL "\tDeviceClass: %d" EOL
  690. "\tDeviceSubClass: %d" EOL "\tDeviceProtocol: %d" EOL "\tMaxPacketSize0: %d" EOL
  691. "\tidVendor: %04x" EOL "\tidProduct: %04x" EOL "\tDeviceRelease: %x" EOL
  692. "\tNumConfigurations: %d",
  693. (int)(*count), (int)bus_number, (int)device_address,
  694. (int)(desc.bLength), destype(desc.bDescriptorType),
  695. desc.bcdUSB, (int)(desc.bDeviceClass), (int)(desc.bDeviceSubClass),
  696. (int)(desc.bDeviceProtocol), (int)(desc.bMaxPacketSize0),
  697. desc.idVendor, desc.idProduct, desc.bcdDevice,
  698. (int)(desc.bNumConfigurations));
  699. }
  700. append(buf, tmp, off, len);
  701. err = libusb_open(dev, &handle);
  702. if (err) {
  703. snprintf(tmp, sizeof(tmp), EOL " ** dev %d: Failed to open, err %d", (int)(*count), err);
  704. append(buf, tmp, off, len);
  705. return;
  706. }
  707. err = libusb_get_string_descriptor_ascii(handle, desc.iManufacturer, man, STRBUFLEN);
  708. if (err < 0)
  709. snprintf((char *)man, sizeof(man), "** err(%d)%s", err, usberrstr(err));
  710. err = libusb_get_string_descriptor_ascii(handle, desc.iProduct, prod, STRBUFLEN);
  711. if (err < 0)
  712. snprintf((char *)prod, sizeof(prod), "** err(%d)%s", err, usberrstr(err));
  713. if (level == 0) {
  714. libusb_close(handle);
  715. snprintf(tmp, sizeof(tmp), EOL " Manufacturer: '%s'" EOL " Product: '%s'", man, prod);
  716. append(buf, tmp, off, len);
  717. return;
  718. }
  719. if (libusb_kernel_driver_active(handle, 0) == 1) {
  720. snprintf(tmp, sizeof(tmp), EOL " * dev %d: kernel attached", (int)(*count));
  721. append(buf, tmp, off, len);
  722. }
  723. err = libusb_get_active_config_descriptor(dev, &config);
  724. if (err) {
  725. if (!setgetdes(*count, dev, handle, &config, 1, buf, off, len)
  726. && !setgetdes(*count, dev, handle, &config, 0, buf, off, len)) {
  727. libusb_close(handle);
  728. snprintf(tmp, sizeof(tmp), EOL " ** dev %d: Failed to set config descriptor to %d or %d",
  729. (int)(*count), 1, 0);
  730. append(buf, tmp, off, len);
  731. return;
  732. }
  733. }
  734. snprintf(tmp, sizeof(tmp), EOL " dev %d: Active Config:" EOL "\tDescriptorType: %s" EOL
  735. "\tNumInterfaces: %d" EOL "\tConfigurationValue: %d" EOL
  736. "\tAttributes: %d" EOL "\tMaxPower: %d",
  737. (int)(*count), destype(config->bDescriptorType),
  738. (int)(config->bNumInterfaces), (int)(config->iConfiguration),
  739. (int)(config->bmAttributes), (int)(config->MaxPower));
  740. append(buf, tmp, off, len);
  741. for (i = 0; i < (int)(config->bNumInterfaces); i++) {
  742. for (j = 0; j < config->interface[i].num_altsetting; j++) {
  743. idesc = &(config->interface[i].altsetting[j]);
  744. snprintf(tmp, sizeof(tmp), EOL " _dev %d: Interface Descriptor %d:" EOL
  745. "\tDescriptorType: %s" EOL "\tInterfaceNumber: %d" EOL
  746. "\tNumEndpoints: %d" EOL "\tInterfaceClass: %d" EOL
  747. "\tInterfaceSubClass: %d" EOL "\tInterfaceProtocol: %d",
  748. (int)(*count), j, destype(idesc->bDescriptorType),
  749. (int)(idesc->bInterfaceNumber),
  750. (int)(idesc->bNumEndpoints),
  751. (int)(idesc->bInterfaceClass),
  752. (int)(idesc->bInterfaceSubClass),
  753. (int)(idesc->bInterfaceProtocol));
  754. append(buf, tmp, off, len);
  755. for (k = 0; k < (int)(idesc->bNumEndpoints); k++) {
  756. epdesc = &(idesc->endpoint[k]);
  757. snprintf(tmp, sizeof(tmp), EOL " __dev %d: Interface %d Endpoint %d:" EOL
  758. "\tDescriptorType: %s" EOL
  759. "\tEndpointAddress: %s0x%x" EOL
  760. "\tAttributes: %s" EOL "\tMaxPacketSize: %d" EOL
  761. "\tInterval: %d" EOL "\tRefresh: %d",
  762. (int)(*count), (int)(idesc->bInterfaceNumber), k,
  763. destype(epdesc->bDescriptorType),
  764. epdir(epdesc->bEndpointAddress),
  765. (int)(epdesc->bEndpointAddress),
  766. epatt(epdesc->bmAttributes),
  767. epdesc->wMaxPacketSize,
  768. (int)(epdesc->bInterval),
  769. (int)(epdesc->bRefresh));
  770. append(buf, tmp, off, len);
  771. }
  772. }
  773. }
  774. libusb_free_config_descriptor(config);
  775. config = NULL;
  776. err = libusb_get_string_descriptor_ascii(handle, desc.iSerialNumber, ser, STRBUFLEN);
  777. if (err < 0)
  778. snprintf((char *)ser, sizeof(ser), "** err(%d)%s", err, usberrstr(err));
  779. snprintf(tmp, sizeof(tmp), EOL " dev %d: More Info:" EOL "\tManufacturer: '%s'" EOL
  780. "\tProduct: '%s'" EOL "\tSerial '%s'",
  781. (int)(*count), man, prod, ser);
  782. append(buf, tmp, off, len);
  783. libusb_close(handle);
  784. }
  785. // Function to dump all USB devices
  786. void usb_all(int level)
  787. {
  788. libusb_device **list;
  789. ssize_t count, i, j;
  790. char *buf;
  791. size_t len, off;
  792. count = libusb_get_device_list(NULL, &list);
  793. if (count < 0) {
  794. applog(LOG_ERR, "USB all: failed, err %d%s", (int)count, usberrstr((int)count));
  795. return;
  796. }
  797. if (count == 0)
  798. applog(LOG_WARNING, "USB all: found no devices");
  799. else
  800. {
  801. len = 10000;
  802. buf = malloc(len+1);
  803. if (unlikely(!buf))
  804. quit(1, "USB failed to malloc buf in usb_all");
  805. sprintf(buf, "USB all: found %d devices", (int)count);
  806. off = strlen(buf);
  807. if (!opt_usb_list_all)
  808. append(&buf, " - listing known devices", &off, &len);
  809. j = -1;
  810. for (i = 0; i < count; i++)
  811. usb_full(&j, list[i], &buf, &off, &len, level);
  812. _applog(LOG_WARNING, buf);
  813. free(buf);
  814. if (j == -1)
  815. applog(LOG_WARNING, "No known USB devices");
  816. else
  817. applog(LOG_WARNING, "%d %sUSB devices",
  818. (int)(++j), opt_usb_list_all ? BLANK : "known ");
  819. }
  820. libusb_free_device_list(list, 1);
  821. }
  822. static void cgusb_check_init()
  823. {
  824. mutex_lock(&cgusb_lock);
  825. if (stats_initialised == false) {
  826. // N.B. environment LIBUSB_DEBUG also sets libusb_set_debug()
  827. if (opt_usbdump >= 0) {
  828. libusb_set_debug(NULL, opt_usbdump);
  829. usb_all(opt_usbdump);
  830. }
  831. stats_initialised = true;
  832. }
  833. mutex_unlock(&cgusb_lock);
  834. }
  835. const char *usb_cmdname(enum usb_cmds cmd)
  836. {
  837. cgusb_check_init();
  838. return usb_commands[cmd];
  839. }
  840. void usb_applog(struct cgpu_info *cgpu, enum usb_cmds cmd, char *msg, int amount, int err)
  841. {
  842. if (msg && !*msg)
  843. msg = NULL;
  844. if (!msg && amount == 0 && err == LIBUSB_SUCCESS)
  845. msg = (char *)nodatareturned;
  846. applog(LOG_ERR, "%s%i: %s failed%s%s (err=%d amt=%d)",
  847. cgpu->drv->name, cgpu->device_id,
  848. usb_cmdname(cmd),
  849. msg ? space : BLANK, msg ? msg : BLANK,
  850. err, amount);
  851. }
  852. static void in_use_store_ress(uint8_t bus_number, uint8_t device_address, void *resource1, void *resource2)
  853. {
  854. struct usb_in_use_list *in_use_tmp;
  855. bool found = false, empty = true;
  856. mutex_lock(&cgusb_lock);
  857. in_use_tmp = in_use_head;
  858. while (in_use_tmp) {
  859. if (in_use_tmp->in_use.bus_number == (int)bus_number &&
  860. in_use_tmp->in_use.device_address == (int)device_address) {
  861. found = true;
  862. if (in_use_tmp->in_use.resource1)
  863. empty = false;
  864. in_use_tmp->in_use.resource1 = resource1;
  865. if (in_use_tmp->in_use.resource2)
  866. empty = false;
  867. in_use_tmp->in_use.resource2 = resource2;
  868. break;
  869. }
  870. in_use_tmp = in_use_tmp->next;
  871. }
  872. mutex_unlock(&cgusb_lock);
  873. if (found == false)
  874. applog(LOG_ERR, "FAIL: USB store_ress not found (%d:%d)",
  875. (int)bus_number, (int)device_address);
  876. if (empty == false)
  877. applog(LOG_ERR, "FAIL: USB store_ress not empty (%d:%d)",
  878. (int)bus_number, (int)device_address);
  879. }
  880. static void in_use_get_ress(uint8_t bus_number, uint8_t device_address, void **resource1, void **resource2)
  881. {
  882. struct usb_in_use_list *in_use_tmp;
  883. bool found = false, empty = false;
  884. mutex_lock(&cgusb_lock);
  885. in_use_tmp = in_use_head;
  886. while (in_use_tmp) {
  887. if (in_use_tmp->in_use.bus_number == (int)bus_number &&
  888. in_use_tmp->in_use.device_address == (int)device_address) {
  889. found = true;
  890. if (!in_use_tmp->in_use.resource1)
  891. empty = true;
  892. *resource1 = in_use_tmp->in_use.resource1;
  893. in_use_tmp->in_use.resource1 = NULL;
  894. if (!in_use_tmp->in_use.resource2)
  895. empty = true;
  896. *resource2 = in_use_tmp->in_use.resource2;
  897. in_use_tmp->in_use.resource2 = NULL;
  898. break;
  899. }
  900. in_use_tmp = in_use_tmp->next;
  901. }
  902. mutex_unlock(&cgusb_lock);
  903. if (found == false)
  904. applog(LOG_ERR, "FAIL: USB get_lock not found (%d:%d)",
  905. (int)bus_number, (int)device_address);
  906. if (empty == true)
  907. applog(LOG_ERR, "FAIL: USB get_lock empty (%d:%d)",
  908. (int)bus_number, (int)device_address);
  909. }
  910. static bool __is_in_use(uint8_t bus_number, uint8_t device_address)
  911. {
  912. struct usb_in_use_list *in_use_tmp;
  913. bool ret = false;
  914. in_use_tmp = in_use_head;
  915. while (in_use_tmp) {
  916. if (in_use_tmp->in_use.bus_number == (int)bus_number &&
  917. in_use_tmp->in_use.device_address == (int)device_address) {
  918. ret = true;
  919. break;
  920. }
  921. in_use_tmp = in_use_tmp->next;
  922. }
  923. return ret;
  924. }
  925. static bool is_in_use_bd(uint8_t bus_number, uint8_t device_address)
  926. {
  927. bool ret;
  928. mutex_lock(&cgusb_lock);
  929. ret = __is_in_use(bus_number, device_address);
  930. mutex_unlock(&cgusb_lock);
  931. return ret;
  932. }
  933. static bool is_in_use(libusb_device *dev)
  934. {
  935. return is_in_use_bd(libusb_get_bus_number(dev), libusb_get_device_address(dev));
  936. }
  937. static void add_in_use(uint8_t bus_number, uint8_t device_address)
  938. {
  939. struct usb_in_use_list *in_use_tmp;
  940. bool found = false;
  941. mutex_lock(&cgusb_lock);
  942. if (unlikely(__is_in_use(bus_number, device_address))) {
  943. found = true;
  944. goto nofway;
  945. }
  946. in_use_tmp = calloc(1, sizeof(*in_use_tmp));
  947. if (unlikely(!in_use_tmp))
  948. quit(1, "USB failed to calloc in_use_tmp");
  949. in_use_tmp->in_use.bus_number = (int)bus_number;
  950. in_use_tmp->in_use.device_address = (int)device_address;
  951. in_use_tmp->next = in_use_head;
  952. if (in_use_head)
  953. in_use_head->prev = in_use_tmp;
  954. in_use_head = in_use_tmp;
  955. nofway:
  956. mutex_unlock(&cgusb_lock);
  957. if (found)
  958. applog(LOG_ERR, "FAIL: USB add already in use (%d:%d)",
  959. (int)bus_number, (int)device_address);
  960. }
  961. static void remove_in_use(uint8_t bus_number, uint8_t device_address)
  962. {
  963. struct usb_in_use_list *in_use_tmp;
  964. bool found = false;
  965. mutex_lock(&cgusb_lock);
  966. in_use_tmp = in_use_head;
  967. while (in_use_tmp) {
  968. if (in_use_tmp->in_use.bus_number == (int)bus_number &&
  969. in_use_tmp->in_use.device_address == (int)device_address) {
  970. found = true;
  971. if (in_use_tmp == in_use_head) {
  972. in_use_head = in_use_head->next;
  973. if (in_use_head)
  974. in_use_head->prev = NULL;
  975. } else {
  976. in_use_tmp->prev->next = in_use_tmp->next;
  977. if (in_use_tmp->next)
  978. in_use_tmp->next->prev = in_use_tmp->prev;
  979. }
  980. free(in_use_tmp);
  981. break;
  982. }
  983. in_use_tmp = in_use_tmp->next;
  984. }
  985. mutex_unlock(&cgusb_lock);
  986. if (!found)
  987. applog(LOG_ERR, "FAIL: USB remove not already in use (%d:%d)",
  988. (int)bus_number, (int)device_address);
  989. }
  990. static bool cgminer_usb_lock_bd(struct device_drv *drv, uint8_t bus_number, uint8_t device_address)
  991. {
  992. struct resource_work *res_work;
  993. bool ret;
  994. applog(LOG_DEBUG, "USB lock %s %d-%d", drv->dname, (int)bus_number, (int)device_address);
  995. res_work = calloc(1, sizeof(*res_work));
  996. if (unlikely(!res_work))
  997. quit(1, "USB failed to calloc lock res_work");
  998. res_work->lock = true;
  999. res_work->dname = (const char *)(drv->dname);
  1000. res_work->bus_number = bus_number;
  1001. res_work->device_address = device_address;
  1002. mutex_lock(&cgusbres_lock);
  1003. res_work->next = res_work_head;
  1004. res_work_head = res_work;
  1005. mutex_unlock(&cgusbres_lock);
  1006. cgsem_post(&usb_resource_sem);
  1007. // TODO: add a timeout fail - restart the resource thread?
  1008. while (true) {
  1009. cgsleep_ms(50);
  1010. mutex_lock(&cgusbres_lock);
  1011. if (res_reply_head) {
  1012. struct resource_reply *res_reply_prev = NULL;
  1013. struct resource_reply *res_reply = res_reply_head;
  1014. while (res_reply) {
  1015. if (res_reply->bus_number == bus_number &&
  1016. res_reply->device_address == device_address) {
  1017. if (res_reply_prev)
  1018. res_reply_prev->next = res_reply->next;
  1019. else
  1020. res_reply_head = res_reply->next;
  1021. mutex_unlock(&cgusbres_lock);
  1022. ret = res_reply->got;
  1023. free(res_reply);
  1024. return ret;
  1025. }
  1026. res_reply_prev = res_reply;
  1027. res_reply = res_reply->next;
  1028. }
  1029. }
  1030. mutex_unlock(&cgusbres_lock);
  1031. }
  1032. }
  1033. static bool cgminer_usb_lock(struct device_drv *drv, libusb_device *dev)
  1034. {
  1035. return cgminer_usb_lock_bd(drv, libusb_get_bus_number(dev), libusb_get_device_address(dev));
  1036. }
  1037. static void cgminer_usb_unlock_bd(struct device_drv *drv, uint8_t bus_number, uint8_t device_address)
  1038. {
  1039. struct resource_work *res_work;
  1040. applog(LOG_DEBUG, "USB unlock %s %d-%d", drv->dname, (int)bus_number, (int)device_address);
  1041. res_work = calloc(1, sizeof(*res_work));
  1042. if (unlikely(!res_work))
  1043. quit(1, "USB failed to calloc unlock res_work");
  1044. res_work->lock = false;
  1045. res_work->dname = (const char *)(drv->dname);
  1046. res_work->bus_number = bus_number;
  1047. res_work->device_address = device_address;
  1048. mutex_lock(&cgusbres_lock);
  1049. res_work->next = res_work_head;
  1050. res_work_head = res_work;
  1051. mutex_unlock(&cgusbres_lock);
  1052. cgsem_post(&usb_resource_sem);
  1053. return;
  1054. }
  1055. static void cgminer_usb_unlock(struct device_drv *drv, libusb_device *dev)
  1056. {
  1057. cgminer_usb_unlock_bd(drv, libusb_get_bus_number(dev), libusb_get_device_address(dev));
  1058. }
  1059. static struct cg_usb_device *free_cgusb(struct cg_usb_device *cgusb)
  1060. {
  1061. applog(LOG_DEBUG, "USB free %s", cgusb->found->name);
  1062. if (cgusb->serial_string && cgusb->serial_string != BLANK)
  1063. free(cgusb->serial_string);
  1064. if (cgusb->manuf_string && cgusb->manuf_string != BLANK)
  1065. free(cgusb->manuf_string);
  1066. if (cgusb->prod_string && cgusb->prod_string != BLANK)
  1067. free(cgusb->prod_string);
  1068. if (cgusb->descriptor)
  1069. free(cgusb->descriptor);
  1070. free(cgusb->found);
  1071. if (cgusb->buffer)
  1072. free(cgusb->buffer);
  1073. free(cgusb);
  1074. return NULL;
  1075. }
  1076. static void _usb_uninit(struct cgpu_info *cgpu)
  1077. {
  1078. int ifinfo;
  1079. applog(LOG_DEBUG, "USB uninit %s%i",
  1080. cgpu->drv->name, cgpu->device_id);
  1081. // May have happened already during a failed initialisation
  1082. // if release_cgpu() was called due to a USB NODEV(err)
  1083. if (!cgpu->usbdev)
  1084. return;
  1085. if (cgpu->usbdev->handle) {
  1086. for (ifinfo = cgpu->usbdev->found->intinfo_count - 1; ifinfo >= 0; ifinfo--) {
  1087. libusb_release_interface(cgpu->usbdev->handle,
  1088. THISIF(cgpu->usbdev->found, ifinfo));
  1089. }
  1090. #ifdef LINUX
  1091. libusb_attach_kernel_driver(cgpu->usbdev->handle, THISIF(cgpu->usbdev->found, ifinfo));
  1092. #endif
  1093. cg_wlock(&cgusb_fd_lock);
  1094. libusb_close(cgpu->usbdev->handle);
  1095. cgpu->usbdev->handle = NULL;
  1096. cg_wunlock(&cgusb_fd_lock);
  1097. }
  1098. cgpu->usbdev = free_cgusb(cgpu->usbdev);
  1099. }
  1100. void usb_uninit(struct cgpu_info *cgpu)
  1101. {
  1102. int pstate;
  1103. DEVLOCK(cgpu, pstate);
  1104. _usb_uninit(cgpu);
  1105. DEVUNLOCK(cgpu, pstate);
  1106. }
  1107. /*
  1108. * N.B. this is always called inside
  1109. * DEVLOCK(cgpu, pstate);
  1110. */
  1111. static void release_cgpu(struct cgpu_info *cgpu)
  1112. {
  1113. struct cg_usb_device *cgusb = cgpu->usbdev;
  1114. struct cgpu_info *lookcgpu;
  1115. int i;
  1116. applog(LOG_DEBUG, "USB release %s%i",
  1117. cgpu->drv->name, cgpu->device_id);
  1118. // It has already been done
  1119. if (cgpu->usbinfo.nodev)
  1120. return;
  1121. zombie_devs++;
  1122. total_count--;
  1123. drv_count[cgpu->drv->drv_id].count--;
  1124. cgpu->usbinfo.nodev = true;
  1125. cgpu->usbinfo.nodev_count++;
  1126. cgtime(&cgpu->usbinfo.last_nodev);
  1127. // Any devices sharing the same USB device should be marked also
  1128. for (i = 0; i < total_devices; i++) {
  1129. lookcgpu = get_devices(i);
  1130. if (lookcgpu != cgpu && lookcgpu->usbdev == cgusb) {
  1131. total_count--;
  1132. drv_count[lookcgpu->drv->drv_id].count--;
  1133. lookcgpu->usbinfo.nodev = true;
  1134. lookcgpu->usbinfo.nodev_count++;
  1135. memcpy(&(lookcgpu->usbinfo.last_nodev),
  1136. &(cgpu->usbinfo.last_nodev), sizeof(struct timeval));
  1137. lookcgpu->usbdev = NULL;
  1138. }
  1139. }
  1140. _usb_uninit(cgpu);
  1141. cgminer_usb_unlock_bd(cgpu->drv, cgpu->usbinfo.bus_number, cgpu->usbinfo.device_address);
  1142. }
  1143. /*
  1144. * Use the same usbdev thus locking is across all related devices
  1145. */
  1146. struct cgpu_info *usb_copy_cgpu(struct cgpu_info *orig)
  1147. {
  1148. struct cgpu_info *copy;
  1149. int pstate;
  1150. DEVLOCK(orig, pstate);
  1151. copy = calloc(1, sizeof(*copy));
  1152. if (unlikely(!copy))
  1153. quit(1, "Failed to calloc cgpu for %s in usb_copy_cgpu", orig->drv->dname);
  1154. copy->name = orig->name;
  1155. copy->drv = copy_drv(orig->drv);
  1156. copy->deven = orig->deven;
  1157. copy->threads = orig->threads;
  1158. copy->usbdev = orig->usbdev;
  1159. memcpy(&(copy->usbinfo), &(orig->usbinfo), sizeof(copy->usbinfo));
  1160. copy->usbinfo.nodev = (copy->usbdev == NULL);
  1161. DEVUNLOCK(orig, pstate);
  1162. return copy;
  1163. }
  1164. struct cgpu_info *usb_alloc_cgpu(struct device_drv *drv, int threads)
  1165. {
  1166. struct cgpu_info *cgpu = calloc(1, sizeof(*cgpu));
  1167. if (unlikely(!cgpu))
  1168. quit(1, "Failed to calloc cgpu for %s in usb_alloc_cgpu", drv->dname);
  1169. cgpu->drv = drv;
  1170. cgpu->deven = DEV_ENABLED;
  1171. cgpu->threads = threads;
  1172. cgpu->usbinfo.nodev = true;
  1173. cgpu->usbinfo.devlock = calloc(1, sizeof(*(cgpu->usbinfo.devlock)));
  1174. if (unlikely(!cgpu->usbinfo.devlock))
  1175. quit(1, "Failed to calloc devlock for %s in usb_alloc_cgpu", drv->dname);
  1176. rwlock_init(cgpu->usbinfo.devlock);
  1177. return cgpu;
  1178. }
  1179. struct cgpu_info *usb_free_cgpu_devlock(struct cgpu_info *cgpu, bool free_devlock)
  1180. {
  1181. if (cgpu->drv->copy)
  1182. free(cgpu->drv);
  1183. free(cgpu->device_path);
  1184. if (free_devlock)
  1185. free(cgpu->usbinfo.devlock);
  1186. free(cgpu);
  1187. return NULL;
  1188. }
  1189. #define USB_INIT_FAIL 0
  1190. #define USB_INIT_OK 1
  1191. #define USB_INIT_IGNORE 2
  1192. static int _usb_init(struct cgpu_info *cgpu, struct libusb_device *dev, struct usb_find_devices *found)
  1193. {
  1194. struct cg_usb_device *cgusb = NULL;
  1195. struct libusb_config_descriptor *config = NULL;
  1196. const struct libusb_interface_descriptor *idesc;
  1197. const struct libusb_endpoint_descriptor *epdesc;
  1198. unsigned char strbuf[STRBUFLEN+1];
  1199. char devpath[32];
  1200. char devstr[STRBUFLEN+1];
  1201. int err, ifinfo, epinfo, alt, epnum, pstate;
  1202. int bad = USB_INIT_FAIL;
  1203. int cfg, claimed = 0;
  1204. DEVLOCK(cgpu, pstate);
  1205. cgpu->usbinfo.bus_number = libusb_get_bus_number(dev);
  1206. cgpu->usbinfo.device_address = libusb_get_device_address(dev);
  1207. if (found->intinfo_count > 1) {
  1208. snprintf(devpath, sizeof(devpath), "%d:%d-i%d",
  1209. (int)(cgpu->usbinfo.bus_number),
  1210. (int)(cgpu->usbinfo.device_address),
  1211. THISIF(found, 0));
  1212. } else {
  1213. snprintf(devpath, sizeof(devpath), "%d:%d",
  1214. (int)(cgpu->usbinfo.bus_number),
  1215. (int)(cgpu->usbinfo.device_address));
  1216. }
  1217. cgpu->device_path = strdup(devpath);
  1218. snprintf(devstr, sizeof(devstr), "- %s device %s", found->name, devpath);
  1219. cgusb = calloc(1, sizeof(*cgusb));
  1220. if (unlikely(!cgusb))
  1221. quit(1, "USB failed to calloc _usb_init cgusb");
  1222. cgusb->found = found;
  1223. if (found->idVendor == IDVENDOR_FTDI)
  1224. cgusb->usb_type = USB_TYPE_FTDI;
  1225. cgusb->ident = found->ident;
  1226. cgusb->descriptor = calloc(1, sizeof(*(cgusb->descriptor)));
  1227. if (unlikely(!cgusb->descriptor))
  1228. quit(1, "USB failed to calloc _usb_init cgusb descriptor");
  1229. err = libusb_get_device_descriptor(dev, cgusb->descriptor);
  1230. if (err) {
  1231. applog(LOG_DEBUG,
  1232. "USB init failed to get descriptor, err %d %s",
  1233. err, devstr);
  1234. goto dame;
  1235. }
  1236. cg_wlock(&cgusb_fd_lock);
  1237. err = libusb_open(dev, &(cgusb->handle));
  1238. cg_wunlock(&cgusb_fd_lock);
  1239. if (err) {
  1240. switch (err) {
  1241. case LIBUSB_ERROR_ACCESS:
  1242. applog(LOG_ERR,
  1243. "USB init, open device failed, err %d, "
  1244. "you don't have privilege to access %s",
  1245. err, devstr);
  1246. break;
  1247. #ifdef WIN32
  1248. // Windows specific message
  1249. case LIBUSB_ERROR_NOT_SUPPORTED:
  1250. applog(LOG_ERR,
  1251. "USB init, open device failed, err %d, "
  1252. "you need to install a WinUSB driver for %s",
  1253. err, devstr);
  1254. break;
  1255. #endif
  1256. default:
  1257. applog(LOG_DEBUG,
  1258. "USB init, open failed, err %d %s",
  1259. err, devstr);
  1260. }
  1261. goto dame;
  1262. }
  1263. #ifdef LINUX
  1264. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++) {
  1265. if (libusb_kernel_driver_active(cgusb->handle, THISIF(found, ifinfo)) == 1) {
  1266. applog(LOG_DEBUG, "USB init, kernel attached ... %s", devstr);
  1267. err = libusb_detach_kernel_driver(cgusb->handle, THISIF(found, ifinfo));
  1268. if (err == 0) {
  1269. applog(LOG_DEBUG,
  1270. "USB init, kernel detached ifinfo %d interface %d"
  1271. " successfully %s",
  1272. ifinfo, THISIF(found, ifinfo), devstr);
  1273. } else {
  1274. applog(LOG_WARNING,
  1275. "USB init, kernel detach ifinfo %d interface %d failed,"
  1276. " err %d in use? %s",
  1277. ifinfo, THISIF(found, ifinfo), err, devstr);
  1278. goto nokernel;
  1279. }
  1280. }
  1281. }
  1282. #endif
  1283. if (found->iManufacturer) {
  1284. unsigned char man[STRBUFLEN+1];
  1285. err = libusb_get_string_descriptor_ascii(cgusb->handle,
  1286. cgusb->descriptor->iManufacturer,
  1287. man, STRBUFLEN);
  1288. if (err < 0) {
  1289. applog(LOG_DEBUG,
  1290. "USB init, failed to get iManufacturer, err %d %s",
  1291. err, devstr);
  1292. goto cldame;
  1293. }
  1294. if (strcmp((char *)man, found->iManufacturer)) {
  1295. applog(LOG_DEBUG, "USB init, iManufacturer mismatch %s",
  1296. devstr);
  1297. bad = USB_INIT_IGNORE;
  1298. goto cldame;
  1299. }
  1300. }
  1301. if (found->iProduct) {
  1302. unsigned char prod[STRBUFLEN+1];
  1303. err = libusb_get_string_descriptor_ascii(cgusb->handle,
  1304. cgusb->descriptor->iProduct,
  1305. prod, STRBUFLEN);
  1306. if (err < 0) {
  1307. applog(LOG_DEBUG,
  1308. "USB init, failed to get iProduct, err %d %s",
  1309. err, devstr);
  1310. goto cldame;
  1311. }
  1312. if (strcmp((char *)prod, found->iProduct)) {
  1313. applog(LOG_DEBUG, "USB init, iProduct mismatch %s",
  1314. devstr);
  1315. bad = USB_INIT_IGNORE;
  1316. goto cldame;
  1317. }
  1318. }
  1319. cfg = -1;
  1320. err = libusb_get_configuration(cgusb->handle, &cfg);
  1321. if (err)
  1322. cfg = -1;
  1323. // Try to set it if we can't read it or it's different
  1324. if (cfg != found->config) {
  1325. err = libusb_set_configuration(cgusb->handle, found->config);
  1326. if (err) {
  1327. switch(err) {
  1328. case LIBUSB_ERROR_BUSY:
  1329. applog(LOG_WARNING,
  1330. "USB init, set config %d in use %s",
  1331. found->config, devstr);
  1332. break;
  1333. default:
  1334. applog(LOG_DEBUG,
  1335. "USB init, failed to set config to %d, err %d %s",
  1336. found->config, err, devstr);
  1337. }
  1338. goto cldame;
  1339. }
  1340. }
  1341. err = libusb_get_active_config_descriptor(dev, &config);
  1342. if (err) {
  1343. applog(LOG_DEBUG,
  1344. "USB init, failed to get config descriptor, err %d %s",
  1345. err, devstr);
  1346. goto cldame;
  1347. }
  1348. int imax = -1;
  1349. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++)
  1350. if (found->intinfos[ifinfo].interface > imax)
  1351. imax = found->intinfos[ifinfo].interface;
  1352. if ((int)(config->bNumInterfaces) <= imax) {
  1353. applog(LOG_DEBUG, "USB init bNumInterfaces %d <= interface max %d for %s",
  1354. (int)(config->bNumInterfaces), imax, devstr);
  1355. goto cldame;
  1356. }
  1357. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++)
  1358. for (epinfo = 0; epinfo < found->intinfos[ifinfo].epinfo_count; epinfo++)
  1359. found->intinfos[ifinfo].epinfos[epinfo].found = false;
  1360. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++) {
  1361. int interface = found->intinfos[ifinfo].interface;
  1362. for (alt = 0; alt < config->interface[interface].num_altsetting; alt++) {
  1363. idesc = &(config->interface[interface].altsetting[alt]);
  1364. for (epnum = 0; epnum < (int)(idesc->bNumEndpoints); epnum++) {
  1365. struct usb_epinfo *epinfos = found->intinfos[ifinfo].epinfos;
  1366. epdesc = &(idesc->endpoint[epnum]);
  1367. for (epinfo = 0; epinfo < found->intinfos[ifinfo].epinfo_count; epinfo++) {
  1368. if (!epinfos[epinfo].found) {
  1369. if (epdesc->bmAttributes == epinfos[epinfo].att
  1370. && epdesc->wMaxPacketSize >= epinfos[epinfo].size
  1371. && epdesc->bEndpointAddress == epinfos[epinfo].ep) {
  1372. epinfos[epinfo].found = true;
  1373. epinfos[epinfo].wMaxPacketSize = epdesc->wMaxPacketSize;
  1374. break;
  1375. }
  1376. }
  1377. }
  1378. }
  1379. }
  1380. }
  1381. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++)
  1382. for (epinfo = 0; epinfo < found->intinfos[ifinfo].epinfo_count; epinfo++)
  1383. if (found->intinfos[ifinfo].epinfos[epinfo].found == false) {
  1384. applog(LOG_DEBUG, "USB init found (%d,%d) == false %s",
  1385. ifinfo, epinfo, devstr);
  1386. goto cldame;
  1387. }
  1388. claimed = 0;
  1389. for (ifinfo = 0; ifinfo < found->intinfo_count; ifinfo++) {
  1390. err = libusb_claim_interface(cgusb->handle, THISIF(found, ifinfo));
  1391. if (err == 0)
  1392. claimed++;
  1393. else {
  1394. switch(err) {
  1395. case LIBUSB_ERROR_BUSY:
  1396. applog(LOG_WARNING,
  1397. "USB init, claim ifinfo %d interface %d in use %s",
  1398. ifinfo, THISIF(found, ifinfo), devstr);
  1399. break;
  1400. default:
  1401. applog(LOG_DEBUG,
  1402. "USB init, claim ifinfo %d interface %d failed,"
  1403. " err %d %s",
  1404. ifinfo, THISIF(found, ifinfo), err, devstr);
  1405. }
  1406. goto reldame;
  1407. }
  1408. }
  1409. cfg = -1;
  1410. err = libusb_get_configuration(cgusb->handle, &cfg);
  1411. if (err)
  1412. cfg = -1;
  1413. if (cfg != found->config) {
  1414. applog(LOG_WARNING,
  1415. "USB init, incorrect config (%d!=%d) after claim of %s",
  1416. cfg, found->config, devstr);
  1417. goto reldame;
  1418. }
  1419. cgusb->usbver = cgusb->descriptor->bcdUSB;
  1420. // TODO: allow this with the right version of the libusb include and running library
  1421. // cgusb->speed = libusb_get_device_speed(dev);
  1422. err = libusb_get_string_descriptor_ascii(cgusb->handle,
  1423. cgusb->descriptor->iProduct, strbuf, STRBUFLEN);
  1424. if (err > 0)
  1425. cgusb->prod_string = strdup((char *)strbuf);
  1426. else
  1427. cgusb->prod_string = (char *)BLANK;
  1428. err = libusb_get_string_descriptor_ascii(cgusb->handle,
  1429. cgusb->descriptor->iManufacturer, strbuf, STRBUFLEN);
  1430. if (err > 0)
  1431. cgusb->manuf_string = strdup((char *)strbuf);
  1432. else
  1433. cgusb->manuf_string = (char *)BLANK;
  1434. err = libusb_get_string_descriptor_ascii(cgusb->handle,
  1435. cgusb->descriptor->iSerialNumber, strbuf, STRBUFLEN);
  1436. if (err > 0)
  1437. cgusb->serial_string = strdup((char *)strbuf);
  1438. else
  1439. cgusb->serial_string = (char *)BLANK;
  1440. // TODO: ?
  1441. // cgusb->fwVersion <- for temp1/temp2 decision? or serial? (driver-modminer.c)
  1442. // cgusb->interfaceVersion
  1443. applog(LOG_DEBUG,
  1444. "USB init %s usbver=%04x prod='%s' manuf='%s' serial='%s'",
  1445. devstr, cgusb->usbver, cgusb->prod_string,
  1446. cgusb->manuf_string, cgusb->serial_string);
  1447. cgpu->usbdev = cgusb;
  1448. cgpu->usbinfo.nodev = false;
  1449. libusb_free_config_descriptor(config);
  1450. // Allow a name change based on the idVendor+idProduct
  1451. // N.B. must be done before calling add_cgpu()
  1452. if (strcmp(cgpu->drv->name, found->name)) {
  1453. if (!cgpu->drv->copy)
  1454. cgpu->drv = copy_drv(cgpu->drv);
  1455. cgpu->drv->name = (char *)(found->name);
  1456. }
  1457. bad = USB_INIT_OK;
  1458. goto out_unlock;
  1459. reldame:
  1460. ifinfo = claimed;
  1461. while (ifinfo-- > 0)
  1462. libusb_release_interface(cgusb->handle, THISIF(found, ifinfo));
  1463. cldame:
  1464. #ifdef LINUX
  1465. libusb_attach_kernel_driver(cgusb->handle, THISIF(found, ifinfo));
  1466. nokernel:
  1467. #endif
  1468. cg_wlock(&cgusb_fd_lock);
  1469. libusb_close(cgusb->handle);
  1470. cgusb->handle = NULL;
  1471. cg_wunlock(&cgusb_fd_lock);
  1472. dame:
  1473. if (config)
  1474. libusb_free_config_descriptor(config);
  1475. cgusb = free_cgusb(cgusb);
  1476. out_unlock:
  1477. DEVUNLOCK(cgpu, pstate);
  1478. return bad;
  1479. }
  1480. bool usb_init(struct cgpu_info *cgpu, struct libusb_device *dev, struct usb_find_devices *found_match)
  1481. {
  1482. struct usb_find_devices *found_use = NULL;
  1483. int uninitialised_var(ret);
  1484. int i;
  1485. for (i = 0; find_dev[i].drv != DRIVER_MAX; i++) {
  1486. if (find_dev[i].drv == found_match->drv &&
  1487. find_dev[i].idVendor == found_match->idVendor &&
  1488. find_dev[i].idProduct == found_match->idProduct) {
  1489. found_use = malloc(sizeof(*found_use));
  1490. if (unlikely(!found_use))
  1491. quit(1, "USB failed to malloc found_use");
  1492. memcpy(found_use, &(find_dev[i]), sizeof(*found_use));
  1493. ret = _usb_init(cgpu, dev, found_use);
  1494. if (ret != USB_INIT_IGNORE)
  1495. break;
  1496. }
  1497. }
  1498. if (ret == USB_INIT_FAIL)
  1499. applog(LOG_ERR, "%s detect (%d:%d) failed to initialise (incorrect device?)",
  1500. cgpu->drv->dname,
  1501. (int)(cgpu->usbinfo.bus_number),
  1502. (int)(cgpu->usbinfo.device_address));
  1503. return (ret == USB_INIT_OK);
  1504. }
  1505. static bool usb_check_device(struct device_drv *drv, struct libusb_device *dev, struct usb_find_devices *look)
  1506. {
  1507. struct libusb_device_descriptor desc;
  1508. int bus_number, device_address;
  1509. int err, i;
  1510. bool ok;
  1511. err = libusb_get_device_descriptor(dev, &desc);
  1512. if (err) {
  1513. applog(LOG_DEBUG, "USB check device: Failed to get descriptor, err %d", err);
  1514. return false;
  1515. }
  1516. if (desc.idVendor != look->idVendor || desc.idProduct != look->idProduct) {
  1517. applog(LOG_DEBUG, "%s looking for %s %04x:%04x but found %04x:%04x instead",
  1518. drv->name, look->name, look->idVendor, look->idProduct, desc.idVendor, desc.idProduct);
  1519. return false;
  1520. }
  1521. if (busdev_count > 0) {
  1522. bus_number = (int)libusb_get_bus_number(dev);
  1523. device_address = (int)libusb_get_device_address(dev);
  1524. ok = false;
  1525. for (i = 0; i < busdev_count; i++) {
  1526. if (bus_number == busdev[i].bus_number) {
  1527. if (busdev[i].device_address == -1 ||
  1528. device_address == busdev[i].device_address) {
  1529. ok = true;
  1530. break;
  1531. }
  1532. }
  1533. }
  1534. if (!ok) {
  1535. applog(LOG_DEBUG, "%s rejected %s %04x:%04x with bus:dev (%d:%d)",
  1536. drv->name, look->name, look->idVendor, look->idProduct,
  1537. bus_number, device_address);
  1538. return false;
  1539. }
  1540. }
  1541. applog(LOG_DEBUG, "%s looking for and found %s %04x:%04x",
  1542. drv->name, look->name, look->idVendor, look->idProduct);
  1543. return true;
  1544. }
  1545. static struct usb_find_devices *usb_check_each(int drvnum, struct device_drv *drv, struct libusb_device *dev)
  1546. {
  1547. struct usb_find_devices *found;
  1548. int i;
  1549. for (i = 0; find_dev[i].drv != DRIVER_MAX; i++)
  1550. if (find_dev[i].drv == drvnum) {
  1551. if (usb_check_device(drv, dev, &(find_dev[i]))) {
  1552. found = malloc(sizeof(*found));
  1553. if (unlikely(!found))
  1554. quit(1, "USB failed to malloc found");
  1555. memcpy(found, &(find_dev[i]), sizeof(*found));
  1556. return found;
  1557. }
  1558. }
  1559. return NULL;
  1560. }
  1561. static struct usb_find_devices *usb_check(__maybe_unused struct device_drv *drv, __maybe_unused struct libusb_device *dev)
  1562. {
  1563. if (drv_count[drv->drv_id].count >= drv_count[drv->drv_id].limit) {
  1564. applog(LOG_DEBUG,
  1565. "USB scan devices3: %s limit %d reached",
  1566. drv->dname, drv_count[drv->drv_id].limit);
  1567. return NULL;
  1568. }
  1569. #define DRIVER_ADD_COMMAND(X) \
  1570. if (drv->drv_id == DRIVER_##X) \
  1571. return usb_check_each(DRIVER_##X, drv, dev);
  1572. DRIVER_PARSE_COMMANDS
  1573. #undef DRIVER_ADD_COMMAND
  1574. return NULL;
  1575. }
  1576. void usb_detect(struct device_drv *drv, bool (*device_detect)(struct libusb_device *, struct usb_find_devices *))
  1577. {
  1578. libusb_device **list;
  1579. ssize_t count, i;
  1580. struct usb_find_devices *found;
  1581. applog(LOG_DEBUG, "USB scan devices: checking for %s devices", drv->name);
  1582. if (total_count >= total_limit) {
  1583. applog(LOG_DEBUG, "USB scan devices: total limit %d reached", total_limit);
  1584. return;
  1585. }
  1586. if (drv_count[drv->drv_id].count >= drv_count[drv->drv_id].limit) {
  1587. applog(LOG_DEBUG,
  1588. "USB scan devices: %s limit %d reached",
  1589. drv->dname, drv_count[drv->drv_id].limit);
  1590. return;
  1591. }
  1592. count = libusb_get_device_list(NULL, &list);
  1593. if (count < 0) {
  1594. applog(LOG_DEBUG, "USB scan devices: failed, err %d", (int)count);
  1595. return;
  1596. }
  1597. if (count == 0)
  1598. applog(LOG_DEBUG, "USB scan devices: found no devices");
  1599. else
  1600. cgsleep_ms(166);
  1601. for (i = 0; i < count; i++) {
  1602. if (total_count >= total_limit) {
  1603. applog(LOG_DEBUG, "USB scan devices2: total limit %d reached", total_limit);
  1604. break;
  1605. }
  1606. if (drv_count[drv->drv_id].count >= drv_count[drv->drv_id].limit) {
  1607. applog(LOG_DEBUG,
  1608. "USB scan devices2: %s limit %d reached",
  1609. drv->dname, drv_count[drv->drv_id].limit);
  1610. break;
  1611. }
  1612. found = usb_check(drv, list[i]);
  1613. if (found != NULL) {
  1614. if (is_in_use(list[i]) || cgminer_usb_lock(drv, list[i]) == false)
  1615. free(found);
  1616. else {
  1617. if (!device_detect(list[i], found))
  1618. cgminer_usb_unlock(drv, list[i]);
  1619. else {
  1620. total_count++;
  1621. drv_count[drv->drv_id].count++;
  1622. }
  1623. free(found);
  1624. }
  1625. }
  1626. }
  1627. libusb_free_device_list(list, 1);
  1628. }
  1629. #if DO_USB_STATS
  1630. static void modes_str(char *buf, uint32_t modes)
  1631. {
  1632. bool first;
  1633. *buf = '\0';
  1634. if (modes == MODE_NONE)
  1635. strcpy(buf, MODE_NONE_STR);
  1636. else {
  1637. first = true;
  1638. if (modes & MODE_CTRL_READ) {
  1639. strcpy(buf, MODE_CTRL_READ_STR);
  1640. first = false;
  1641. }
  1642. if (modes & MODE_CTRL_WRITE) {
  1643. if (!first)
  1644. strcat(buf, MODE_SEP_STR);
  1645. strcat(buf, MODE_CTRL_WRITE_STR);
  1646. first = false;
  1647. }
  1648. if (modes & MODE_BULK_READ) {
  1649. if (!first)
  1650. strcat(buf, MODE_SEP_STR);
  1651. strcat(buf, MODE_BULK_READ_STR);
  1652. first = false;
  1653. }
  1654. if (modes & MODE_BULK_WRITE) {
  1655. if (!first)
  1656. strcat(buf, MODE_SEP_STR);
  1657. strcat(buf, MODE_BULK_WRITE_STR);
  1658. first = false;
  1659. }
  1660. }
  1661. }
  1662. #endif
  1663. // The stat data can be spurious due to not locking it before copying it -
  1664. // however that would require the stat() function to also lock and release
  1665. // a mutex every time a usb read or write is called which would slow
  1666. // things down more
  1667. struct api_data *api_usb_stats(__maybe_unused int *count)
  1668. {
  1669. #if DO_USB_STATS
  1670. struct cg_usb_stats_details *details;
  1671. struct cg_usb_stats *sta;
  1672. struct api_data *root = NULL;
  1673. int device;
  1674. int cmdseq;
  1675. char modes_s[32];
  1676. if (next_stat == USB_NOSTAT)
  1677. return NULL;
  1678. while (*count < next_stat * C_MAX * 2) {
  1679. device = *count / (C_MAX * 2);
  1680. cmdseq = *count % (C_MAX * 2);
  1681. (*count)++;
  1682. sta = &(usb_stats[device]);
  1683. details = &(sta->details[cmdseq]);
  1684. // Only show stats that have results
  1685. if (details->item[CMD_CMD].count == 0 &&
  1686. details->item[CMD_TIMEOUT].count == 0 &&
  1687. details->item[CMD_ERROR].count == 0)
  1688. continue;
  1689. root = api_add_string(root, "Name", sta->name, false);
  1690. root = api_add_int(root, "ID", &(sta->device_id), false);
  1691. root = api_add_const(root, "Stat", usb_commands[cmdseq/2], false);
  1692. root = api_add_int(root, "Seq", &(details->seq), true);
  1693. modes_str(modes_s, details->modes);
  1694. root = api_add_string(root, "Modes", modes_s, true);
  1695. root = api_add_uint64(root, "Count",
  1696. &(details->item[CMD_CMD].count), true);
  1697. root = api_add_double(root, "Total Delay",
  1698. &(details->item[CMD_CMD].total_delay), true);
  1699. root = api_add_double(root, "Min Delay",
  1700. &(details->item[CMD_CMD].min_delay), true);
  1701. root = api_add_double(root, "Max Delay",
  1702. &(details->item[CMD_CMD].max_delay), true);
  1703. root = api_add_uint64(root, "Timeout Count",
  1704. &(details->item[CMD_TIMEOUT].count), true);
  1705. root = api_add_double(root, "Timeout Total Delay",
  1706. &(details->item[CMD_TIMEOUT].total_delay), true);
  1707. root = api_add_double(root, "Timeout Min Delay",
  1708. &(details->item[CMD_TIMEOUT].min_delay), true);
  1709. root = api_add_double(root, "Timeout Max Delay",
  1710. &(details->item[CMD_TIMEOUT].max_delay), true);
  1711. root = api_add_uint64(root, "Error Count",
  1712. &(details->item[CMD_ERROR].count), true);
  1713. root = api_add_double(root, "Error Total Delay",
  1714. &(details->item[CMD_ERROR].total_delay), true);
  1715. root = api_add_double(root, "Error Min Delay",
  1716. &(details->item[CMD_ERROR].min_delay), true);
  1717. root = api_add_double(root, "Error Max Delay",
  1718. &(details->item[CMD_ERROR].max_delay), true);
  1719. root = api_add_timeval(root, "First Command",
  1720. &(details->item[CMD_CMD].first), true);
  1721. root = api_add_timeval(root, "Last Command",
  1722. &(details->item[CMD_CMD].last), true);
  1723. root = api_add_timeval(root, "First Timeout",
  1724. &(details->item[CMD_TIMEOUT].first), true);
  1725. root = api_add_timeval(root, "Last Timeout",
  1726. &(details->item[CMD_TIMEOUT].last), true);
  1727. root = api_add_timeval(root, "First Error",
  1728. &(details->item[CMD_ERROR].first), true);
  1729. root = api_add_timeval(root, "Last Error",
  1730. &(details->item[CMD_ERROR].last), true);
  1731. return root;
  1732. }
  1733. #endif
  1734. return NULL;
  1735. }
  1736. #if DO_USB_STATS
  1737. static void newstats(struct cgpu_info *cgpu)
  1738. {
  1739. int i;
  1740. mutex_lock(&cgusb_lock);
  1741. cgpu->usbinfo.usbstat = next_stat + 1;
  1742. usb_stats = realloc(usb_stats, sizeof(*usb_stats) * (next_stat+1));
  1743. if (unlikely(!usb_stats))
  1744. quit(1, "USB failed to realloc usb_stats %d", next_stat+1);
  1745. usb_stats[next_stat].name = cgpu->drv->name;
  1746. usb_stats[next_stat].device_id = -1;
  1747. usb_stats[next_stat].details = calloc(1, sizeof(struct cg_usb_stats_details) * C_MAX * 2);
  1748. if (unlikely(!usb_stats[next_stat].details))
  1749. quit(1, "USB failed to calloc details for %d", next_stat+1);
  1750. for (i = 1; i < C_MAX * 2; i += 2)
  1751. usb_stats[next_stat].details[i].seq = 1;
  1752. next_stat++;
  1753. mutex_unlock(&cgusb_lock);
  1754. }
  1755. #endif
  1756. void update_usb_stats(__maybe_unused struct cgpu_info *cgpu)
  1757. {
  1758. #if DO_USB_STATS
  1759. if (cgpu->usbinfo.usbstat < 1)
  1760. newstats(cgpu);
  1761. // we don't know the device_id until after add_cgpu()
  1762. usb_stats[cgpu->usbinfo.usbstat - 1].device_id = cgpu->device_id;
  1763. #endif
  1764. }
  1765. #if DO_USB_STATS
  1766. static void stats(struct cgpu_info *cgpu, struct timeval *tv_start, struct timeval *tv_finish, int err, int mode, enum usb_cmds cmd, int seq, int timeout)
  1767. {
  1768. struct cg_usb_stats_details *details;
  1769. double diff;
  1770. int item, extrams;
  1771. if (cgpu->usbinfo.usbstat < 1)
  1772. newstats(cgpu);
  1773. cgpu->usbinfo.tmo_count++;
  1774. // timeout checks are only done when stats are enabled
  1775. extrams = SECTOMS(tdiff(tv_finish, tv_start)) - timeout;
  1776. if (extrams >= USB_TMO_0) {
  1777. uint32_t totms = (uint32_t)(timeout + extrams);
  1778. int offset = 0;
  1779. if (extrams >= USB_TMO_2) {
  1780. applog(LOG_ERR, "%s%i: TIMEOUT %s took %dms but was %dms",
  1781. cgpu->drv->name, cgpu->device_id,
  1782. usb_cmdname(cmd), totms, timeout) ;
  1783. offset = 2;
  1784. } else if (extrams >= USB_TMO_1)
  1785. offset = 1;
  1786. cgpu->usbinfo.usb_tmo[offset].count++;
  1787. cgpu->usbinfo.usb_tmo[offset].total_over += extrams;
  1788. cgpu->usbinfo.usb_tmo[offset].total_tmo += timeout;
  1789. if (cgpu->usbinfo.usb_tmo[offset].min_tmo == 0) {
  1790. cgpu->usbinfo.usb_tmo[offset].min_tmo = totms;
  1791. cgpu->usbinfo.usb_tmo[offset].max_tmo = totms;
  1792. } else {
  1793. if (cgpu->usbinfo.usb_tmo[offset].min_tmo > totms)
  1794. cgpu->usbinfo.usb_tmo[offset].min_tmo = totms;
  1795. if (cgpu->usbinfo.usb_tmo[offset].max_tmo < totms)
  1796. cgpu->usbinfo.usb_tmo[offset].max_tmo = totms;
  1797. }
  1798. }
  1799. details = &(usb_stats[cgpu->usbinfo.usbstat - 1].details[cmd * 2 + seq]);
  1800. details->modes |= mode;
  1801. diff = tdiff(tv_finish, tv_start);
  1802. switch (err) {
  1803. case LIBUSB_SUCCESS:
  1804. item = CMD_CMD;
  1805. break;
  1806. case LIBUSB_ERROR_TIMEOUT:
  1807. item = CMD_TIMEOUT;
  1808. break;
  1809. default:
  1810. item = CMD_ERROR;
  1811. break;
  1812. }
  1813. if (details->item[item].count == 0) {
  1814. details->item[item].min_delay = diff;
  1815. memcpy(&(details->item[item].first), tv_start, sizeof(*tv_start));
  1816. } else if (diff < details->item[item].min_delay)
  1817. details->item[item].min_delay = diff;
  1818. if (diff > details->item[item].max_delay)
  1819. details->item[item].max_delay = diff;
  1820. details->item[item].total_delay += diff;
  1821. memcpy(&(details->item[item].last), tv_start, sizeof(*tv_start));
  1822. details->item[item].count++;
  1823. }
  1824. static void rejected_inc(struct cgpu_info *cgpu, uint32_t mode)
  1825. {
  1826. struct cg_usb_stats_details *details;
  1827. int item = CMD_ERROR;
  1828. if (cgpu->usbinfo.usbstat < 1)
  1829. newstats(cgpu);
  1830. details = &(usb_stats[cgpu->usbinfo.usbstat - 1].details[C_REJECTED * 2 + 0]);
  1831. details->modes |= mode;
  1832. details->item[item].count++;
  1833. }
  1834. #endif
  1835. static char *find_end(unsigned char *buf, unsigned char *ptr, int ptrlen, int tot, char *end, int endlen, bool first)
  1836. {
  1837. unsigned char *search;
  1838. if (endlen > tot)
  1839. return NULL;
  1840. // If end is only 1 char - do a faster search
  1841. if (endlen == 1) {
  1842. if (first)
  1843. search = buf;
  1844. else
  1845. search = ptr;
  1846. return strchr((char *)search, *end);
  1847. } else {
  1848. if (first)
  1849. search = buf;
  1850. else {
  1851. // must allow end to have been chopped in 2
  1852. if ((tot - ptrlen) >= (endlen - 1))
  1853. search = ptr - (endlen - 1);
  1854. else
  1855. search = ptr - (tot - ptrlen);
  1856. }
  1857. return strstr((char *)search, end);
  1858. }
  1859. }
  1860. #define USB_MAX_READ 8192
  1861. #define USB_RETRY_MAX 5
  1862. static int
  1863. usb_bulk_transfer(struct libusb_device_handle *dev_handle, int intinfo,
  1864. int epinfo, unsigned char *data, int length,
  1865. int *transferred, unsigned int timeout,
  1866. struct cgpu_info *cgpu, __maybe_unused int mode,
  1867. enum usb_cmds cmd, __maybe_unused int seq)
  1868. {
  1869. struct usb_epinfo *usb_epinfo;
  1870. unsigned char endpoint;
  1871. uint16_t MaxPacketSize;
  1872. int err, errn, tries = 0;
  1873. #if DO_USB_STATS
  1874. struct timeval tv_start, tv_finish;
  1875. #endif
  1876. unsigned char *buf;
  1877. usb_epinfo = &(cgpu->usbdev->found->intinfos[intinfo].epinfos[epinfo]);
  1878. endpoint = usb_epinfo->ep;
  1879. /* Limit length of transfer to the largest this descriptor supports
  1880. * and leave the higher level functions to transfer more if needed. */
  1881. if (usb_epinfo->PrefPacketSize)
  1882. MaxPacketSize = usb_epinfo->PrefPacketSize;
  1883. else
  1884. MaxPacketSize = usb_epinfo->wMaxPacketSize;
  1885. if (length > MaxPacketSize)
  1886. length = MaxPacketSize;
  1887. buf = alloca(MaxPacketSize);
  1888. if ((endpoint & LIBUSB_ENDPOINT_DIR_MASK) == LIBUSB_ENDPOINT_OUT)
  1889. memcpy(buf, data, length);
  1890. USBDEBUG("USB debug: @usb_bulk_transfer(%s (nodev=%s),intinfo=%d,epinfo=%d,data=%p,length=%d,timeout=%u,mode=%d,cmd=%s,seq=%d) endpoint=%d", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), intinfo, epinfo, data, length, timeout, mode, usb_cmdname(cmd), seq, (int)endpoint);
  1891. STATS_TIMEVAL(&tv_start);
  1892. cg_rlock(&cgusb_fd_lock);
  1893. err = libusb_bulk_transfer(dev_handle, endpoint, buf, length,
  1894. transferred, timeout);
  1895. errn = errno;
  1896. cg_runlock(&cgusb_fd_lock);
  1897. STATS_TIMEVAL(&tv_finish);
  1898. USB_STATS(cgpu, &tv_start, &tv_finish, err, mode, cmd, seq, timeout);
  1899. if (err < 0)
  1900. applog(LOG_DEBUG, "%s%i: %s (amt=%d err=%d ern=%d)",
  1901. cgpu->drv->name, cgpu->device_id,
  1902. usb_cmdname(cmd), *transferred, err, errn);
  1903. if (err == LIBUSB_ERROR_PIPE) {
  1904. cgpu->usbinfo.last_pipe = time(NULL);
  1905. cgpu->usbinfo.pipe_count++;
  1906. applog(LOG_INFO, "%s%i: libusb pipe error, trying to clear",
  1907. cgpu->drv->name, cgpu->device_id);
  1908. do {
  1909. err = libusb_clear_halt(dev_handle, endpoint);
  1910. if (unlikely(err == LIBUSB_ERROR_NOT_FOUND ||
  1911. err == LIBUSB_ERROR_NO_DEVICE)) {
  1912. cgpu->usbinfo.clear_err_count++;
  1913. break;
  1914. }
  1915. STATS_TIMEVAL(&tv_start);
  1916. cg_rlock(&cgusb_fd_lock);
  1917. err = libusb_bulk_transfer(dev_handle, endpoint, buf,
  1918. length, transferred, timeout);
  1919. errn = errno;
  1920. cg_runlock(&cgusb_fd_lock);
  1921. STATS_TIMEVAL(&tv_finish);
  1922. USB_STATS(cgpu, &tv_start, &tv_finish, err, mode, cmd, seq, timeout);
  1923. if (err < 0)
  1924. applog(LOG_DEBUG, "%s%i: %s (amt=%d err=%d ern=%d)",
  1925. cgpu->drv->name, cgpu->device_id,
  1926. usb_cmdname(cmd), *transferred, err, errn);
  1927. if (err)
  1928. cgpu->usbinfo.retry_err_count++;
  1929. } while (err == LIBUSB_ERROR_PIPE && tries++ < USB_RETRY_MAX);
  1930. applog(LOG_DEBUG, "%s%i: libusb pipe error%scleared",
  1931. cgpu->drv->name, cgpu->device_id, err ? " not " : " ");
  1932. if (err)
  1933. cgpu->usbinfo.clear_fail_count++;
  1934. }
  1935. if ((endpoint & LIBUSB_ENDPOINT_DIR_MASK) == LIBUSB_ENDPOINT_IN)
  1936. memcpy(data, buf, length);
  1937. return err;
  1938. }
  1939. int _usb_read(struct cgpu_info *cgpu, int intinfo, int epinfo, char *buf, size_t bufsiz, int *processed, unsigned int timeout, const char *end, enum usb_cmds cmd, bool readonce)
  1940. {
  1941. struct cg_usb_device *usbdev;
  1942. bool ftdi;
  1943. struct timeval read_start, tv_finish;
  1944. unsigned int initial_timeout;
  1945. double max, done;
  1946. int bufleft, err, got, tot, pstate;
  1947. bool first = true;
  1948. char *search;
  1949. int endlen;
  1950. unsigned char *ptr, *usbbuf = cgpu->usbinfo.bulkbuf;
  1951. size_t usbbufread;
  1952. DEVLOCK(cgpu, pstate);
  1953. if (cgpu->usbinfo.nodev) {
  1954. *buf = '\0';
  1955. *processed = 0;
  1956. USB_REJECT(cgpu, MODE_BULK_READ);
  1957. err = LIBUSB_ERROR_NO_DEVICE;
  1958. goto out_unlock;
  1959. }
  1960. usbdev = cgpu->usbdev;
  1961. ftdi = (usbdev->usb_type == USB_TYPE_FTDI);
  1962. USBDEBUG("USB debug: _usb_read(%s (nodev=%s),intinfo=%d,epinfo=%d,buf=%p,bufsiz=%d,proc=%p,timeout=%u,end=%s,cmd=%s,ftdi=%s,readonce=%s)", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), intinfo, epinfo, buf, (int)bufsiz, processed, timeout, end ? (char *)str_text((char *)end) : "NULL", usb_cmdname(cmd), bool_str(ftdi), bool_str(readonce));
  1963. if (bufsiz > USB_MAX_READ)
  1964. quit(1, "%s USB read request %d too large (max=%d)", cgpu->drv->name, (int)bufsiz, USB_MAX_READ);
  1965. if (timeout == DEVTIMEOUT)
  1966. timeout = usbdev->found->timeout;
  1967. if (end == NULL) {
  1968. if (usbdev->buffer && usbdev->bufamt) {
  1969. tot = usbdev->bufamt;
  1970. bufleft = bufsiz - tot;
  1971. memcpy(usbbuf, usbdev->buffer, tot);
  1972. ptr = usbbuf + tot;
  1973. usbdev->bufamt = 0;
  1974. } else {
  1975. tot = 0;
  1976. bufleft = bufsiz;
  1977. ptr = usbbuf;
  1978. }
  1979. err = LIBUSB_SUCCESS;
  1980. initial_timeout = timeout;
  1981. max = ((double)timeout) / 1000.0;
  1982. cgtime(&read_start);
  1983. while (bufleft > 0) {
  1984. // TODO: use (USB_MAX_READ - tot) always?
  1985. if (usbdev->buffer)
  1986. usbbufread = USB_MAX_READ - tot;
  1987. else {
  1988. if (ftdi)
  1989. usbbufread = bufleft + 2;
  1990. else
  1991. usbbufread = bufleft;
  1992. }
  1993. got = 0;
  1994. if (first && usbdev->usecps && usbdev->last_write_siz) {
  1995. cgtimer_t now, already_done;
  1996. double sleep_estimate;
  1997. double write_time = (double)(usbdev->last_write_siz) /
  1998. (double)(usbdev->cps);
  1999. cgtimer_time(&now);
  2000. cgtimer_sub(&now, &usbdev->cgt_last_write, &already_done);
  2001. sleep_estimate = write_time - cgtimer_to_ms(&already_done);
  2002. if (sleep_estimate > 0.0) {
  2003. cgsleep_ms_r(&usbdev->cgt_last_write, write_time * 1000.0);
  2004. cgpu->usbinfo.read_delay_count++;
  2005. cgpu->usbinfo.total_read_delay += sleep_estimate;
  2006. }
  2007. }
  2008. err = usb_bulk_transfer(usbdev->handle, intinfo, epinfo,
  2009. ptr, usbbufread, &got, timeout,
  2010. cgpu, MODE_BULK_READ, cmd, first ? SEQ0 : SEQ1);
  2011. cgtime(&tv_finish);
  2012. ptr[got] = '\0';
  2013. USBDEBUG("USB debug: @_usb_read(%s (nodev=%s)) first=%s err=%d%s got=%d ptr='%s' usbbufread=%d", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), bool_str(first), err, isnodev(err), got, (char *)str_text((char *)ptr), (int)usbbufread);
  2014. IOERR_CHECK(cgpu, err);
  2015. if (ftdi) {
  2016. // first 2 bytes returned are an FTDI status
  2017. if (got > 2) {
  2018. got -= 2;
  2019. memmove(ptr, ptr+2, got+1);
  2020. } else {
  2021. got = 0;
  2022. *ptr = '\0';
  2023. }
  2024. }
  2025. tot += got;
  2026. if (err || readonce)
  2027. break;
  2028. ptr += got;
  2029. bufleft -= got;
  2030. first = false;
  2031. done = tdiff(&tv_finish, &read_start);
  2032. // N.B. this is: return LIBUSB_SUCCESS with whatever size has already been read
  2033. if (unlikely(done >= max))
  2034. break;
  2035. timeout = initial_timeout - (done * 1000);
  2036. if (!timeout)
  2037. break;
  2038. }
  2039. // N.B. usbdev->buffer was emptied before the while() loop
  2040. if (usbdev->buffer && tot > (int)bufsiz) {
  2041. usbdev->bufamt = tot - bufsiz;
  2042. memcpy(usbdev->buffer, usbbuf + bufsiz, usbdev->bufamt);
  2043. tot -= usbdev->bufamt;
  2044. usbbuf[tot] = '\0';
  2045. applog(LOG_INFO, "USB: %s%i read1 buffering %d extra bytes",
  2046. cgpu->drv->name, cgpu->device_id, usbdev->bufamt);
  2047. }
  2048. *processed = tot;
  2049. memcpy((char *)buf, (const char *)usbbuf, (tot < (int)bufsiz) ? tot + 1 : (int)bufsiz);
  2050. if (NODEV(err))
  2051. release_cgpu(cgpu);
  2052. goto out_unlock;
  2053. }
  2054. if (usbdev->buffer && usbdev->bufamt) {
  2055. tot = usbdev->bufamt;
  2056. bufleft = bufsiz - tot;
  2057. memcpy(usbbuf, usbdev->buffer, tot);
  2058. ptr = usbbuf + tot;
  2059. usbdev->bufamt = 0;
  2060. } else {
  2061. tot = 0;
  2062. bufleft = bufsiz;
  2063. ptr = usbbuf;
  2064. }
  2065. endlen = strlen(end);
  2066. err = LIBUSB_SUCCESS;
  2067. initial_timeout = timeout;
  2068. max = ((double)timeout) / 1000.0;
  2069. cgtime(&read_start);
  2070. while (bufleft > 0) {
  2071. // TODO: use (USB_MAX_READ - tot) always?
  2072. if (usbdev->buffer)
  2073. usbbufread = USB_MAX_READ - tot;
  2074. else {
  2075. if (ftdi)
  2076. usbbufread = bufleft + 2;
  2077. else
  2078. usbbufread = bufleft;
  2079. }
  2080. got = 0;
  2081. if (first && usbdev->usecps && usbdev->last_write_siz) {
  2082. cgtimer_t now, already_done;
  2083. double sleep_estimate;
  2084. double write_time = (double)(usbdev->last_write_siz) /
  2085. (double)(usbdev->cps);
  2086. cgtimer_time(&now);
  2087. cgtimer_sub(&now, &usbdev->cgt_last_write, &already_done);
  2088. sleep_estimate = write_time - cgtimer_to_ms(&already_done);
  2089. if (sleep_estimate > 0.0) {
  2090. cgsleep_ms_r(&usbdev->cgt_last_write, write_time * 1000.0);
  2091. cgpu->usbinfo.read_delay_count++;
  2092. cgpu->usbinfo.total_read_delay += sleep_estimate;
  2093. }
  2094. }
  2095. err = usb_bulk_transfer(usbdev->handle, intinfo, epinfo,
  2096. ptr, usbbufread, &got, timeout,
  2097. cgpu, MODE_BULK_READ, cmd, first ? SEQ0 : SEQ1);
  2098. cgtime(&tv_finish);
  2099. ptr[got] = '\0';
  2100. USBDEBUG("USB debug: @_usb_read(%s (nodev=%s)) first=%s err=%d%s got=%d ptr='%s' usbbufread=%d", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), bool_str(first), err, isnodev(err), got, (char *)str_text((char *)ptr), (int)usbbufread);
  2101. IOERR_CHECK(cgpu, err);
  2102. if (ftdi) {
  2103. // first 2 bytes returned are an FTDI status
  2104. if (got > 2) {
  2105. got -= 2;
  2106. memmove(ptr, ptr+2, got+1);
  2107. } else {
  2108. got = 0;
  2109. *ptr = '\0';
  2110. }
  2111. }
  2112. tot += got;
  2113. if (err || readonce)
  2114. break;
  2115. if (find_end(usbbuf, ptr, got, tot, (char *)end, endlen, first))
  2116. break;
  2117. ptr += got;
  2118. bufleft -= got;
  2119. first = false;
  2120. done = tdiff(&tv_finish, &read_start);
  2121. // N.B. this is: return LIBUSB_SUCCESS with whatever size has already been read
  2122. if (unlikely(done >= max))
  2123. break;
  2124. timeout = initial_timeout - (done * 1000);
  2125. if (!timeout)
  2126. break;
  2127. }
  2128. if (usbdev->buffer) {
  2129. bool dobuffer = false;
  2130. if ((search = find_end(usbbuf, usbbuf, tot, tot, (char *)end, endlen, true))) {
  2131. // end finishes after bufsiz
  2132. if ((search + endlen - (char *)usbbuf) > (int)bufsiz) {
  2133. usbdev->bufamt = tot - bufsiz;
  2134. dobuffer = true;
  2135. } else {
  2136. // extra data after end
  2137. if (*(search + endlen)) {
  2138. usbdev->bufamt = tot - (search + endlen - (char *)usbbuf);
  2139. dobuffer = true;
  2140. }
  2141. }
  2142. } else {
  2143. // no end, but still bigger than bufsiz
  2144. if (tot > (int)bufsiz) {
  2145. usbdev->bufamt = tot - bufsiz;
  2146. dobuffer = true;
  2147. }
  2148. }
  2149. if (dobuffer) {
  2150. tot -= usbdev->bufamt;
  2151. memcpy(usbdev->buffer, usbbuf + tot, usbdev->bufamt);
  2152. usbbuf[tot] = '\0';
  2153. applog(LOG_ERR, "USB: %s%i read2 buffering %d extra bytes",
  2154. cgpu->drv->name, cgpu->device_id, usbdev->bufamt);
  2155. }
  2156. }
  2157. *processed = tot;
  2158. memcpy((char *)buf, (const char *)usbbuf, (tot < (int)bufsiz) ? tot + 1 : (int)bufsiz);
  2159. if (NODEV(err))
  2160. release_cgpu(cgpu);
  2161. out_unlock:
  2162. DEVUNLOCK(cgpu, pstate);
  2163. return err;
  2164. }
  2165. int _usb_write(struct cgpu_info *cgpu, int intinfo, int epinfo, char *buf, size_t bufsiz, int *processed, unsigned int timeout, enum usb_cmds cmd)
  2166. {
  2167. struct cg_usb_device *usbdev;
  2168. struct timeval read_start, tv_finish;
  2169. unsigned int initial_timeout;
  2170. double max, done;
  2171. __maybe_unused bool first = true;
  2172. int err, sent, tot, pstate;
  2173. DEVLOCK(cgpu, pstate);
  2174. USBDEBUG("USB debug: _usb_write(%s (nodev=%s),intinfo=%d,epinfo=%d,buf='%s',bufsiz=%d,proc=%p,timeout=%u,cmd=%s)", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), intinfo, epinfo, (char *)str_text(buf), (int)bufsiz, processed, timeout, usb_cmdname(cmd));
  2175. *processed = 0;
  2176. if (cgpu->usbinfo.nodev) {
  2177. USB_REJECT(cgpu, MODE_BULK_WRITE);
  2178. err = LIBUSB_ERROR_NO_DEVICE;
  2179. goto out_unlock;
  2180. }
  2181. usbdev = cgpu->usbdev;
  2182. if (timeout == DEVTIMEOUT)
  2183. timeout = usbdev->found->timeout;
  2184. tot = 0;
  2185. err = LIBUSB_SUCCESS;
  2186. initial_timeout = timeout;
  2187. max = ((double)timeout) / 1000.0;
  2188. cgtime(&read_start);
  2189. while (bufsiz > 0) {
  2190. sent = 0;
  2191. if (usbdev->usecps) {
  2192. if (usbdev->last_write_siz) {
  2193. cgtimer_t now, already_done;
  2194. double sleep_estimate;
  2195. double write_time = (double)(usbdev->last_write_siz) /
  2196. (double)(usbdev->cps);
  2197. cgtimer_time(&now);
  2198. cgtimer_sub(&now, &usbdev->cgt_last_write, &already_done);
  2199. sleep_estimate = write_time - cgtimer_to_ms(&already_done);
  2200. if (sleep_estimate > 0.0) {
  2201. cgsleep_ms_r(&usbdev->cgt_last_write, write_time * 1000.0);
  2202. cgpu->usbinfo.write_delay_count++;
  2203. cgpu->usbinfo.total_write_delay += sleep_estimate;
  2204. }
  2205. }
  2206. cgsleep_prepare_r(&usbdev->cgt_last_write);
  2207. usbdev->last_write_siz = bufsiz;
  2208. }
  2209. err = usb_bulk_transfer(usbdev->handle, intinfo, epinfo,
  2210. (unsigned char *)buf, bufsiz, &sent, timeout,
  2211. cgpu, MODE_BULK_WRITE, cmd, first ? SEQ0 : SEQ1);
  2212. cgtime(&tv_finish);
  2213. USBDEBUG("USB debug: @_usb_write(%s (nodev=%s)) err=%d%s sent=%d", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), err, isnodev(err), sent);
  2214. IOERR_CHECK(cgpu, err);
  2215. tot += sent;
  2216. if (err)
  2217. break;
  2218. buf += sent;
  2219. bufsiz -= sent;
  2220. first = false;
  2221. done = tdiff(&tv_finish, &read_start);
  2222. // N.B. this is: return LIBUSB_SUCCESS with whatever size was written
  2223. if (unlikely(done >= max))
  2224. break;
  2225. timeout = initial_timeout - (done * 1000);
  2226. if (!timeout)
  2227. break;
  2228. }
  2229. *processed = tot;
  2230. if (NODEV(err))
  2231. release_cgpu(cgpu);
  2232. out_unlock:
  2233. DEVUNLOCK(cgpu, pstate);
  2234. return err;
  2235. }
  2236. int __usb_transfer(struct cgpu_info *cgpu, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, uint32_t *data, int siz, unsigned int timeout, __maybe_unused enum usb_cmds cmd)
  2237. {
  2238. struct cg_usb_device *usbdev;
  2239. #if DO_USB_STATS
  2240. struct timeval tv_start, tv_finish;
  2241. #endif
  2242. unsigned char buf[64];
  2243. uint32_t *buf32 = (uint32_t *)buf;
  2244. int err, i, bufsiz;
  2245. USBDEBUG("USB debug: _usb_transfer(%s (nodev=%s),type=%"PRIu8",req=%"PRIu8",value=%"PRIu16",index=%"PRIu16",siz=%d,timeout=%u,cmd=%s)", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), request_type, bRequest, wValue, wIndex, siz, timeout, usb_cmdname(cmd));
  2246. if (cgpu->usbinfo.nodev) {
  2247. USB_REJECT(cgpu, MODE_CTRL_WRITE);
  2248. err = LIBUSB_ERROR_NO_DEVICE;
  2249. goto out_;
  2250. }
  2251. usbdev = cgpu->usbdev;
  2252. if (timeout == DEVTIMEOUT)
  2253. timeout = usbdev->found->timeout;
  2254. USBDEBUG("USB debug: @_usb_transfer() data=%s", bin2hex((unsigned char *)data, (size_t)siz));
  2255. if (siz > 0) {
  2256. bufsiz = siz - 1;
  2257. bufsiz >>= 2;
  2258. bufsiz++;
  2259. for (i = 0; i < bufsiz; i++)
  2260. buf32[i] = htole32(data[i]);
  2261. }
  2262. USBDEBUG("USB debug: @_usb_transfer() buf=%s", bin2hex(buf, (size_t)siz));
  2263. if (usbdev->usecps) {
  2264. if (usbdev->last_write_siz) {
  2265. cgtimer_t now, already_done;
  2266. double sleep_estimate;
  2267. double write_time = (double)(usbdev->last_write_siz) /
  2268. (double)(usbdev->cps);
  2269. cgtimer_time(&now);
  2270. cgtimer_sub(&now, &usbdev->cgt_last_write, &already_done);
  2271. sleep_estimate = write_time - cgtimer_to_ms(&already_done);
  2272. if (sleep_estimate > 0.0) {
  2273. cgsleep_ms_r(&usbdev->cgt_last_write, write_time * 1000.0);
  2274. cgpu->usbinfo.write_delay_count++;
  2275. cgpu->usbinfo.total_write_delay += sleep_estimate;
  2276. }
  2277. }
  2278. cgsleep_prepare_r(&usbdev->cgt_last_write);
  2279. usbdev->last_write_siz = siz;
  2280. }
  2281. STATS_TIMEVAL(&tv_start);
  2282. cg_rlock(&cgusb_fd_lock);
  2283. err = libusb_control_transfer(usbdev->handle, request_type,
  2284. bRequest, wValue, wIndex, buf, (uint16_t)siz, timeout);
  2285. cg_runlock(&cgusb_fd_lock);
  2286. STATS_TIMEVAL(&tv_finish);
  2287. USB_STATS(cgpu, &tv_start, &tv_finish, err, MODE_CTRL_WRITE, cmd, SEQ0, timeout);
  2288. USBDEBUG("USB debug: @_usb_transfer(%s (nodev=%s)) err=%d%s", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), err, isnodev(err));
  2289. IOERR_CHECK(cgpu, err);
  2290. if (NOCONTROLDEV(err))
  2291. release_cgpu(cgpu);
  2292. out_:
  2293. return err;
  2294. }
  2295. int _usb_transfer(struct cgpu_info *cgpu, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, uint32_t *data, int siz, unsigned int timeout, enum usb_cmds cmd)
  2296. {
  2297. int pstate, err;
  2298. DEVLOCK(cgpu, pstate);
  2299. err = __usb_transfer(cgpu, request_type, bRequest, wValue, wIndex, data, siz, timeout, cmd);
  2300. DEVUNLOCK(cgpu, pstate);
  2301. return err;
  2302. }
  2303. int _usb_transfer_read(struct cgpu_info *cgpu, uint8_t request_type, uint8_t bRequest, uint16_t wValue, uint16_t wIndex, char *buf, int bufsiz, int *amount, unsigned int timeout, __maybe_unused enum usb_cmds cmd)
  2304. {
  2305. struct cg_usb_device *usbdev;
  2306. #if DO_USB_STATS
  2307. struct timeval tv_start, tv_finish;
  2308. #endif
  2309. unsigned char tbuf[64];
  2310. int err, pstate;
  2311. DEVLOCK(cgpu, pstate);
  2312. USBDEBUG("USB debug: _usb_transfer_read(%s (nodev=%s),type=%"PRIu8",req=%"PRIu8",value=%"PRIu16",index=%"PRIu16",bufsiz=%d,timeout=%u,cmd=%s)", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), request_type, bRequest, wValue, wIndex, bufsiz, timeout, usb_cmdname(cmd));
  2313. if (cgpu->usbinfo.nodev) {
  2314. USB_REJECT(cgpu, MODE_CTRL_READ);
  2315. err = LIBUSB_ERROR_NO_DEVICE;
  2316. goto out_unlock;
  2317. }
  2318. usbdev = cgpu->usbdev;
  2319. if (timeout == DEVTIMEOUT)
  2320. timeout = usbdev->found->timeout;
  2321. *amount = 0;
  2322. if (usbdev->usecps && usbdev->last_write_siz) {
  2323. cgtimer_t now, already_done;
  2324. double sleep_estimate;
  2325. double write_time = (double)(usbdev->last_write_siz) /
  2326. (double)(usbdev->cps);
  2327. cgtimer_time(&now);
  2328. cgtimer_sub(&now, &usbdev->cgt_last_write, &already_done);
  2329. sleep_estimate = write_time - cgtimer_to_ms(&already_done);
  2330. if (sleep_estimate > 0.0) {
  2331. cgsleep_ms_r(&usbdev->cgt_last_write, write_time * 1000.0);
  2332. cgpu->usbinfo.read_delay_count++;
  2333. cgpu->usbinfo.total_read_delay += sleep_estimate;
  2334. }
  2335. }
  2336. memset(tbuf, 0, 64);
  2337. STATS_TIMEVAL(&tv_start);
  2338. cg_rlock(&cgusb_fd_lock);
  2339. err = libusb_control_transfer(usbdev->handle, request_type,
  2340. bRequest, wValue, wIndex,
  2341. tbuf, (uint16_t)bufsiz, timeout);
  2342. cg_runlock(&cgusb_fd_lock);
  2343. STATS_TIMEVAL(&tv_finish);
  2344. USB_STATS(cgpu, &tv_start, &tv_finish, err, MODE_CTRL_READ, cmd, SEQ0, timeout);
  2345. memcpy(buf, tbuf, bufsiz);
  2346. USBDEBUG("USB debug: @_usb_transfer_read(%s (nodev=%s)) amt/err=%d%s%s%s", cgpu->drv->name, bool_str(cgpu->usbinfo.nodev), err, isnodev(err), err > 0 ? " = " : BLANK, err > 0 ? bin2hex((unsigned char *)buf, (size_t)err) : BLANK);
  2347. IOERR_CHECK(cgpu, err);
  2348. if (err > 0) {
  2349. *amount = err;
  2350. err = 0;
  2351. } else if (NOCONTROLDEV(err))
  2352. release_cgpu(cgpu);
  2353. out_unlock:
  2354. DEVUNLOCK(cgpu, pstate);
  2355. return err;
  2356. }
  2357. #define FTDI_STATUS_B0_MASK (FTDI_RS0_CTS | FTDI_RS0_DSR | FTDI_RS0_RI | FTDI_RS0_RLSD)
  2358. #define FTDI_RS0_CTS (1 << 4)
  2359. #define FTDI_RS0_DSR (1 << 5)
  2360. #define FTDI_RS0_RI (1 << 6)
  2361. #define FTDI_RS0_RLSD (1 << 7)
  2362. /* Clear to send for FTDI */
  2363. int usb_ftdi_cts(struct cgpu_info *cgpu)
  2364. {
  2365. char buf[2], ret;
  2366. int err, amount;
  2367. err = _usb_transfer_read(cgpu, (uint8_t)FTDI_TYPE_IN, (uint8_t)5,
  2368. (uint16_t)0, (uint16_t)0, buf, 2,
  2369. &amount, DEVTIMEOUT, C_FTDI_STATUS);
  2370. /* We return true in case drivers are waiting indefinitely to try and
  2371. * write to something that's not there. */
  2372. if (err)
  2373. return true;
  2374. ret = buf[0] & FTDI_STATUS_B0_MASK;
  2375. return (ret & FTDI_RS0_CTS);
  2376. }
  2377. int _usb_ftdi_set_latency(struct cgpu_info *cgpu, int intinfo)
  2378. {
  2379. int err = 0;
  2380. int pstate;
  2381. DEVLOCK(cgpu, pstate);
  2382. if (cgpu->usbdev) {
  2383. if (cgpu->usbdev->usb_type != USB_TYPE_FTDI) {
  2384. applog(LOG_ERR, "%s: cgid %d latency request on non-FTDI device",
  2385. cgpu->drv->name, cgpu->cgminer_id);
  2386. err = LIBUSB_ERROR_NOT_SUPPORTED;
  2387. } else if (cgpu->usbdev->found->latency == LATENCY_UNUSED) {
  2388. applog(LOG_ERR, "%s: cgid %d invalid latency (UNUSED)",
  2389. cgpu->drv->name, cgpu->cgminer_id);
  2390. err = LIBUSB_ERROR_NOT_SUPPORTED;
  2391. }
  2392. if (!err)
  2393. err = __usb_transfer(cgpu, FTDI_TYPE_OUT, FTDI_REQUEST_LATENCY,
  2394. cgpu->usbdev->found->latency,
  2395. USBIF(cgpu->usbdev, intinfo),
  2396. NULL, 0, DEVTIMEOUT, C_LATENCY);
  2397. }
  2398. DEVUNLOCK(cgpu, pstate);
  2399. applog(LOG_DEBUG, "%s: cgid %d %s got err %d",
  2400. cgpu->drv->name, cgpu->cgminer_id,
  2401. usb_cmdname(C_LATENCY), err);
  2402. return err;
  2403. }
  2404. void usb_buffer_enable(struct cgpu_info *cgpu)
  2405. {
  2406. struct cg_usb_device *cgusb;
  2407. int pstate;
  2408. DEVLOCK(cgpu, pstate);
  2409. cgusb = cgpu->usbdev;
  2410. if (cgusb && !cgusb->buffer) {
  2411. cgusb->bufamt = 0;
  2412. cgusb->buffer = malloc(USB_MAX_READ+1);
  2413. if (!cgusb->buffer)
  2414. quit(1, "Failed to malloc buffer for USB %s%i",
  2415. cgpu->drv->name, cgpu->device_id);
  2416. cgusb->bufsiz = USB_MAX_READ;
  2417. }
  2418. DEVUNLOCK(cgpu, pstate);
  2419. }
  2420. void usb_buffer_disable(struct cgpu_info *cgpu)
  2421. {
  2422. struct cg_usb_device *cgusb;
  2423. int pstate;
  2424. DEVLOCK(cgpu, pstate);
  2425. cgusb = cgpu->usbdev;
  2426. if (cgusb && cgusb->buffer) {
  2427. cgusb->bufamt = 0;
  2428. cgusb->bufsiz = 0;
  2429. free(cgusb->buffer);
  2430. cgusb->buffer = NULL;
  2431. }
  2432. DEVUNLOCK(cgpu, pstate);
  2433. }
  2434. void usb_buffer_clear(struct cgpu_info *cgpu)
  2435. {
  2436. int pstate;
  2437. DEVLOCK(cgpu, pstate);
  2438. if (cgpu->usbdev)
  2439. cgpu->usbdev->bufamt = 0;
  2440. DEVUNLOCK(cgpu, pstate);
  2441. }
  2442. uint32_t usb_buffer_size(struct cgpu_info *cgpu)
  2443. {
  2444. uint32_t ret = 0;
  2445. int pstate;
  2446. DEVLOCK(cgpu, pstate);
  2447. if (cgpu->usbdev)
  2448. ret = cgpu->usbdev->bufamt;
  2449. DEVUNLOCK(cgpu, pstate);
  2450. return ret;
  2451. }
  2452. void usb_set_cps(struct cgpu_info *cgpu, int cps)
  2453. {
  2454. int pstate;
  2455. DEVLOCK(cgpu, pstate);
  2456. if (cgpu->usbdev)
  2457. cgpu->usbdev->cps = cps;
  2458. DEVUNLOCK(cgpu, pstate);
  2459. }
  2460. void usb_enable_cps(struct cgpu_info *cgpu)
  2461. {
  2462. int pstate;
  2463. DEVLOCK(cgpu, pstate);
  2464. if (cgpu->usbdev)
  2465. cgpu->usbdev->usecps = true;
  2466. DEVUNLOCK(cgpu, pstate);
  2467. }
  2468. void usb_disable_cps(struct cgpu_info *cgpu)
  2469. {
  2470. int pstate;
  2471. DEVLOCK(cgpu, pstate);
  2472. if (cgpu->usbdev)
  2473. cgpu->usbdev->usecps = false;
  2474. DEVUNLOCK(cgpu, pstate);
  2475. }
  2476. /*
  2477. * The value returned (0) when usbdev is NULL
  2478. * doesn't matter since it also means the next call to
  2479. * any usbutils function will fail with a nodev
  2480. * N.B. this is to get the interface number to use in a control_transfer
  2481. * which for some devices isn't actually the interface number
  2482. */
  2483. int _usb_interface(struct cgpu_info *cgpu, int intinfo)
  2484. {
  2485. int interface = 0;
  2486. int pstate;
  2487. DEVLOCK(cgpu, pstate);
  2488. if (cgpu->usbdev)
  2489. interface = cgpu->usbdev->found->intinfos[intinfo].ctrl_transfer;
  2490. DEVUNLOCK(cgpu, pstate);
  2491. return interface;
  2492. }
  2493. enum sub_ident usb_ident(struct cgpu_info *cgpu)
  2494. {
  2495. enum sub_ident ident = IDENT_UNK;
  2496. int pstate;
  2497. DEVLOCK(cgpu, pstate);
  2498. if (cgpu->usbdev)
  2499. ident = cgpu->usbdev->ident;
  2500. DEVUNLOCK(cgpu, pstate);
  2501. return ident;
  2502. }
  2503. /*
  2504. * If you pass both intinfo and epinfo as <0 then it will set all
  2505. * endpoints to PrefPacketSize
  2506. * If intinfo >=0 but epinfo <0 then it will set all endpoints
  2507. * for the given one intinfo to PrefPacketSize
  2508. * If both are >=0 then it will set only the specified single
  2509. * endpoint (intinfo,epinfo) to PrefPacketSize
  2510. */
  2511. void _usb_set_pps(struct cgpu_info *cgpu, int intinfo, int epinfo, uint16_t PrefPacketSize)
  2512. {
  2513. struct usb_find_devices *found;
  2514. int pstate;
  2515. DEVLOCK(cgpu, pstate);
  2516. if (cgpu->usbdev) {
  2517. found = cgpu->usbdev->found;
  2518. if (intinfo >= 0 && epinfo >= 0)
  2519. found->intinfos[intinfo].epinfos[epinfo].PrefPacketSize = PrefPacketSize;
  2520. else {
  2521. if (intinfo >= 0) {
  2522. for (epinfo = 0; epinfo < found->intinfos[intinfo].epinfo_count; epinfo++)
  2523. found->intinfos[intinfo].epinfos[epinfo].PrefPacketSize = PrefPacketSize;
  2524. } else {
  2525. for (intinfo = 0; intinfo < found->intinfo_count ; intinfo++)
  2526. for (epinfo = 0; epinfo < found->intinfos[intinfo].epinfo_count; epinfo++)
  2527. found->intinfos[intinfo].epinfos[epinfo].PrefPacketSize = PrefPacketSize;
  2528. }
  2529. }
  2530. }
  2531. DEVUNLOCK(cgpu, pstate);
  2532. }
  2533. // Need to set all devices with matching usbdev
  2534. void usb_set_dev_start(struct cgpu_info *cgpu)
  2535. {
  2536. struct cg_usb_device *cgusb;
  2537. struct cgpu_info *cgpu2;
  2538. struct timeval now;
  2539. int pstate;
  2540. DEVLOCK(cgpu, pstate);
  2541. cgusb = cgpu->usbdev;
  2542. // If the device wasn't dropped
  2543. if (cgusb != NULL) {
  2544. int i;
  2545. cgtime(&now);
  2546. for (i = 0; i < total_devices; i++) {
  2547. cgpu2 = get_devices(i);
  2548. if (cgpu2->usbdev == cgusb)
  2549. copy_time(&(cgpu2->dev_start_tv), &now);
  2550. }
  2551. }
  2552. DEVUNLOCK(cgpu, pstate);
  2553. }
  2554. void usb_cleanup()
  2555. {
  2556. struct cgpu_info *cgpu;
  2557. int count;
  2558. int i;
  2559. hotplug_time = 0;
  2560. cgsleep_ms(10);
  2561. count = 0;
  2562. for (i = 0; i < total_devices; i++) {
  2563. cgpu = devices[i];
  2564. switch (cgpu->drv->drv_id) {
  2565. case DRIVER_bflsc:
  2566. case DRIVER_bitforce:
  2567. case DRIVER_bitfury:
  2568. case DRIVER_modminer:
  2569. case DRIVER_icarus:
  2570. case DRIVER_avalon:
  2571. wr_lock(cgpu->usbinfo.devlock);
  2572. release_cgpu(cgpu);
  2573. wr_unlock(cgpu->usbinfo.devlock);
  2574. count++;
  2575. break;
  2576. default:
  2577. break;
  2578. }
  2579. }
  2580. /*
  2581. * Must attempt to wait for the resource thread to release coz
  2582. * during a restart it won't automatically release them in linux
  2583. */
  2584. if (count) {
  2585. struct timeval start, now;
  2586. cgtime(&start);
  2587. while (42) {
  2588. cgsleep_ms(50);
  2589. mutex_lock(&cgusbres_lock);
  2590. if (!res_work_head)
  2591. break;
  2592. cgtime(&now);
  2593. if (tdiff(&now, &start) > 0.366) {
  2594. applog(LOG_WARNING,
  2595. "usb_cleanup gave up waiting for resource thread");
  2596. break;
  2597. }
  2598. mutex_unlock(&cgusbres_lock);
  2599. }
  2600. mutex_unlock(&cgusbres_lock);
  2601. }
  2602. cgsem_destroy(&usb_resource_sem);
  2603. }
  2604. void usb_initialise()
  2605. {
  2606. char *fre, *ptr, *comma, *colon;
  2607. int bus, dev, lim, i;
  2608. bool found;
  2609. for (i = 0; i < DRIVER_MAX; i++) {
  2610. drv_count[i].count = 0;
  2611. drv_count[i].limit = 999999;
  2612. }
  2613. cgusb_check_init();
  2614. if (opt_usb_select && *opt_usb_select) {
  2615. // Absolute device limit
  2616. if (*opt_usb_select == ':') {
  2617. total_limit = atoi(opt_usb_select+1);
  2618. if (total_limit < 0)
  2619. quit(1, "Invalid --usb total limit");
  2620. // Comma list of bus:dev devices to match
  2621. } else if (isdigit(*opt_usb_select)) {
  2622. fre = ptr = strdup(opt_usb_select);
  2623. do {
  2624. comma = strchr(ptr, ',');
  2625. if (comma)
  2626. *(comma++) = '\0';
  2627. colon = strchr(ptr, ':');
  2628. if (!colon)
  2629. quit(1, "Invalid --usb bus:dev missing ':'");
  2630. *(colon++) = '\0';
  2631. if (!isdigit(*ptr))
  2632. quit(1, "Invalid --usb bus:dev - bus must be a number");
  2633. if (!isdigit(*colon) && *colon != '*')
  2634. quit(1, "Invalid --usb bus:dev - dev must be a number or '*'");
  2635. bus = atoi(ptr);
  2636. if (bus <= 0)
  2637. quit(1, "Invalid --usb bus:dev - bus must be > 0");
  2638. if (*colon == '*')
  2639. dev = -1;
  2640. else {
  2641. dev = atoi(colon);
  2642. if (dev <= 0)
  2643. quit(1, "Invalid --usb bus:dev - dev must be > 0 or '*'");
  2644. }
  2645. busdev = realloc(busdev, sizeof(*busdev) * (++busdev_count));
  2646. if (unlikely(!busdev))
  2647. quit(1, "USB failed to realloc busdev");
  2648. busdev[busdev_count-1].bus_number = bus;
  2649. busdev[busdev_count-1].device_address = dev;
  2650. ptr = comma;
  2651. } while (ptr);
  2652. free(fre);
  2653. // Comma list of DRV:limit
  2654. } else {
  2655. fre = ptr = strdup(opt_usb_select);
  2656. do {
  2657. comma = strchr(ptr, ',');
  2658. if (comma)
  2659. *(comma++) = '\0';
  2660. colon = strchr(ptr, ':');
  2661. if (!colon)
  2662. quit(1, "Invalid --usb DRV:limit missing ':'");
  2663. *(colon++) = '\0';
  2664. if (!isdigit(*colon))
  2665. quit(1, "Invalid --usb DRV:limit - limit must be a number");
  2666. lim = atoi(colon);
  2667. if (lim < 0)
  2668. quit(1, "Invalid --usb DRV:limit - limit must be >= 0");
  2669. found = false;
  2670. /* Use the DRIVER_PARSE_COMMANDS macro to iterate
  2671. * over all the drivers. */
  2672. #define DRIVER_ADD_COMMAND(X) if (strcasecmp(ptr, X##_drv.name) == 0) { \
  2673. drv_count[X##_drv.drv_id].limit = lim; \
  2674. found = true; \
  2675. }
  2676. DRIVER_PARSE_COMMANDS
  2677. #undef DRIVER_ADD_COMMAND
  2678. if (!found)
  2679. quit(1, "Invalid --usb DRV:limit - unknown DRV='%s'", ptr);
  2680. ptr = comma;
  2681. } while (ptr);
  2682. free(fre);
  2683. }
  2684. }
  2685. }
  2686. #ifndef WIN32
  2687. #include <errno.h>
  2688. #include <unistd.h>
  2689. #include <sys/types.h>
  2690. #include <sys/ipc.h>
  2691. #include <sys/sem.h>
  2692. #include <sys/stat.h>
  2693. #include <fcntl.h>
  2694. #ifndef __APPLE__
  2695. union semun {
  2696. int val;
  2697. struct semid_ds *buf;
  2698. unsigned short *array;
  2699. struct seminfo *__buf;
  2700. };
  2701. #endif
  2702. #else
  2703. static LPSECURITY_ATTRIBUTES unsec(LPSECURITY_ATTRIBUTES sec)
  2704. {
  2705. FreeSid(((PSECURITY_DESCRIPTOR)(sec->lpSecurityDescriptor))->Group);
  2706. free(sec->lpSecurityDescriptor);
  2707. free(sec);
  2708. return NULL;
  2709. }
  2710. static LPSECURITY_ATTRIBUTES mksec(const char *dname, uint8_t bus_number, uint8_t device_address)
  2711. {
  2712. SID_IDENTIFIER_AUTHORITY SIDAuthWorld = {SECURITY_WORLD_SID_AUTHORITY};
  2713. PSID gsid = NULL;
  2714. LPSECURITY_ATTRIBUTES sec_att = NULL;
  2715. PSECURITY_DESCRIPTOR sec_des = NULL;
  2716. sec_des = malloc(sizeof(*sec_des));
  2717. if (unlikely(!sec_des))
  2718. quit(1, "MTX: Failed to malloc LPSECURITY_DESCRIPTOR");
  2719. if (!InitializeSecurityDescriptor(sec_des, SECURITY_DESCRIPTOR_REVISION)) {
  2720. applog(LOG_ERR,
  2721. "MTX: %s (%d:%d) USB failed to init secdes err (%d)",
  2722. dname, (int)bus_number, (int)device_address,
  2723. (int)GetLastError());
  2724. free(sec_des);
  2725. return NULL;
  2726. }
  2727. if (!SetSecurityDescriptorDacl(sec_des, TRUE, NULL, FALSE)) {
  2728. applog(LOG_ERR,
  2729. "MTX: %s (%d:%d) USB failed to secdes dacl err (%d)",
  2730. dname, (int)bus_number, (int)device_address,
  2731. (int)GetLastError());
  2732. free(sec_des);
  2733. return NULL;
  2734. }
  2735. if(!AllocateAndInitializeSid(&SIDAuthWorld, 1, SECURITY_WORLD_RID, 0, 0, 0, 0, 0, 0, 0, &gsid)) {
  2736. applog(LOG_ERR,
  2737. "MTX: %s (%d:%d) USB failed to create gsid err (%d)",
  2738. dname, (int)bus_number, (int)device_address,
  2739. (int)GetLastError());
  2740. free(sec_des);
  2741. return NULL;
  2742. }
  2743. if (!SetSecurityDescriptorGroup(sec_des, gsid, FALSE)) {
  2744. applog(LOG_ERR,
  2745. "MTX: %s (%d:%d) USB failed to secdes grp err (%d)",
  2746. dname, (int)bus_number, (int)device_address,
  2747. (int)GetLastError());
  2748. FreeSid(gsid);
  2749. free(sec_des);
  2750. return NULL;
  2751. }
  2752. sec_att = malloc(sizeof(*sec_att));
  2753. if (unlikely(!sec_att))
  2754. quit(1, "MTX: Failed to malloc LPSECURITY_ATTRIBUTES");
  2755. sec_att->nLength = sizeof(*sec_att);
  2756. sec_att->lpSecurityDescriptor = sec_des;
  2757. sec_att->bInheritHandle = FALSE;
  2758. return sec_att;
  2759. }
  2760. #endif
  2761. // Any errors should always be printed since they will rarely if ever occur
  2762. // and thus it is best to always display them
  2763. static bool resource_lock(const char *dname, uint8_t bus_number, uint8_t device_address)
  2764. {
  2765. applog(LOG_DEBUG, "USB res lock %s %d-%d", dname, (int)bus_number, (int)device_address);
  2766. #ifdef WIN32
  2767. struct cgpu_info *cgpu;
  2768. LPSECURITY_ATTRIBUTES sec;
  2769. HANDLE usbMutex;
  2770. char name[64];
  2771. DWORD res;
  2772. int i;
  2773. if (is_in_use_bd(bus_number, device_address))
  2774. return false;
  2775. snprintf(name, sizeof(name), "cg-usb-%d-%d", (int)bus_number, (int)device_address);
  2776. sec = mksec(dname, bus_number, device_address);
  2777. if (!sec)
  2778. return false;
  2779. usbMutex = CreateMutex(sec, FALSE, name);
  2780. if (usbMutex == NULL) {
  2781. applog(LOG_ERR,
  2782. "MTX: %s USB failed to get '%s' err (%d)",
  2783. dname, name, (int)GetLastError());
  2784. sec = unsec(sec);
  2785. return false;
  2786. }
  2787. res = WaitForSingleObject(usbMutex, 0);
  2788. switch(res) {
  2789. case WAIT_OBJECT_0:
  2790. case WAIT_ABANDONED:
  2791. // Am I using it already?
  2792. for (i = 0; i < total_devices; i++) {
  2793. cgpu = get_devices(i);
  2794. if (cgpu->usbinfo.bus_number == bus_number &&
  2795. cgpu->usbinfo.device_address == device_address &&
  2796. cgpu->usbinfo.nodev == false) {
  2797. if (ReleaseMutex(usbMutex)) {
  2798. applog(LOG_WARNING,
  2799. "MTX: %s USB can't get '%s' - device in use",
  2800. dname, name);
  2801. goto fail;
  2802. }
  2803. applog(LOG_ERR,
  2804. "MTX: %s USB can't get '%s' - device in use - failure (%d)",
  2805. dname, name, (int)GetLastError());
  2806. goto fail;
  2807. }
  2808. }
  2809. break;
  2810. case WAIT_TIMEOUT:
  2811. if (!hotplug_mode)
  2812. applog(LOG_WARNING,
  2813. "MTX: %s USB failed to get '%s' - device in use",
  2814. dname, name);
  2815. goto fail;
  2816. case WAIT_FAILED:
  2817. applog(LOG_ERR,
  2818. "MTX: %s USB failed to get '%s' err (%d)",
  2819. dname, name, (int)GetLastError());
  2820. goto fail;
  2821. default:
  2822. applog(LOG_ERR,
  2823. "MTX: %s USB failed to get '%s' unknown reply (%d)",
  2824. dname, name, (int)res);
  2825. goto fail;
  2826. }
  2827. add_in_use(bus_number, device_address);
  2828. in_use_store_ress(bus_number, device_address, (void *)usbMutex, (void *)sec);
  2829. return true;
  2830. fail:
  2831. CloseHandle(usbMutex);
  2832. sec = unsec(sec);
  2833. return false;
  2834. #else
  2835. struct semid_ds seminfo;
  2836. union semun opt;
  2837. char name[64];
  2838. key_t *key;
  2839. int *sem;
  2840. int fd, count;
  2841. if (is_in_use_bd(bus_number, device_address))
  2842. return false;
  2843. snprintf(name, sizeof(name), "/tmp/cgminer-usb-%d-%d", (int)bus_number, (int)device_address);
  2844. fd = open(name, O_CREAT|O_RDONLY, S_IRUSR|S_IWUSR|S_IRGRP|S_IROTH);
  2845. if (fd == -1) {
  2846. applog(LOG_ERR,
  2847. "SEM: %s USB open failed '%s' err (%d) %s",
  2848. dname, name, errno, strerror(errno));
  2849. goto _out;
  2850. }
  2851. close(fd);
  2852. key = malloc(sizeof(*key));
  2853. if (unlikely(!key))
  2854. quit(1, "SEM: Failed to malloc key");
  2855. sem = malloc(sizeof(*sem));
  2856. if (unlikely(!sem))
  2857. quit(1, "SEM: Failed to malloc sem");
  2858. *key = ftok(name, 'K');
  2859. *sem = semget(*key, 1, IPC_CREAT | IPC_EXCL | 438);
  2860. if (*sem < 0) {
  2861. if (errno != EEXIST) {
  2862. applog(LOG_ERR,
  2863. "SEM: %s USB failed to get '%s' err (%d) %s",
  2864. dname, name, errno, strerror(errno));
  2865. goto free_out;
  2866. }
  2867. *sem = semget(*key, 1, 0);
  2868. if (*sem < 0) {
  2869. applog(LOG_ERR,
  2870. "SEM: %s USB failed to access '%s' err (%d) %s",
  2871. dname, name, errno, strerror(errno));
  2872. goto free_out;
  2873. }
  2874. opt.buf = &seminfo;
  2875. count = 0;
  2876. while (++count) {
  2877. // Should NEVER take 100ms
  2878. if (count > 99) {
  2879. applog(LOG_ERR,
  2880. "SEM: %s USB timeout waiting for (%d) '%s'",
  2881. dname, *sem, name);
  2882. goto free_out;
  2883. }
  2884. if (semctl(*sem, 0, IPC_STAT, opt) == -1) {
  2885. applog(LOG_ERR,
  2886. "SEM: %s USB failed to wait for (%d) '%s' count %d err (%d) %s",
  2887. dname, *sem, name, count, errno, strerror(errno));
  2888. goto free_out;
  2889. }
  2890. if (opt.buf->sem_otime != 0)
  2891. break;
  2892. cgsleep_ms(1);
  2893. }
  2894. }
  2895. struct sembuf sops[] = {
  2896. { 0, 0, IPC_NOWAIT | SEM_UNDO },
  2897. { 0, 1, IPC_NOWAIT | SEM_UNDO }
  2898. };
  2899. if (semop(*sem, sops, 2)) {
  2900. if (errno == EAGAIN) {
  2901. if (!hotplug_mode)
  2902. applog(LOG_WARNING,
  2903. "SEM: %s USB failed to get (%d) '%s' - device in use",
  2904. dname, *sem, name);
  2905. } else {
  2906. applog(LOG_DEBUG,
  2907. "SEM: %s USB failed to get (%d) '%s' err (%d) %s",
  2908. dname, *sem, name, errno, strerror(errno));
  2909. }
  2910. goto free_out;
  2911. }
  2912. add_in_use(bus_number, device_address);
  2913. in_use_store_ress(bus_number, device_address, (void *)key, (void *)sem);
  2914. return true;
  2915. free_out:
  2916. free(sem);
  2917. free(key);
  2918. _out:
  2919. return false;
  2920. #endif
  2921. }
  2922. // Any errors should always be printed since they will rarely if ever occur
  2923. // and thus it is best to always display them
  2924. static void resource_unlock(const char *dname, uint8_t bus_number, uint8_t device_address)
  2925. {
  2926. applog(LOG_DEBUG, "USB res unlock %s %d-%d", dname, (int)bus_number, (int)device_address);
  2927. #ifdef WIN32
  2928. LPSECURITY_ATTRIBUTES sec = NULL;
  2929. HANDLE usbMutex = NULL;
  2930. char name[64];
  2931. snprintf(name, sizeof(name), "cg-usb-%d-%d", (int)bus_number, (int)device_address);
  2932. in_use_get_ress(bus_number, device_address, (void **)(&usbMutex), (void **)(&sec));
  2933. if (!usbMutex || !sec)
  2934. goto fila;
  2935. if (!ReleaseMutex(usbMutex))
  2936. applog(LOG_ERR,
  2937. "MTX: %s USB failed to release '%s' err (%d)",
  2938. dname, name, (int)GetLastError());
  2939. fila:
  2940. if (usbMutex)
  2941. CloseHandle(usbMutex);
  2942. if (sec)
  2943. unsec(sec);
  2944. remove_in_use(bus_number, device_address);
  2945. return;
  2946. #else
  2947. char name[64];
  2948. key_t *key = NULL;
  2949. int *sem = NULL;
  2950. snprintf(name, sizeof(name), "/tmp/cgminer-usb-%d-%d", (int)bus_number, (int)device_address);
  2951. in_use_get_ress(bus_number, device_address, (void **)(&key), (void **)(&sem));
  2952. if (!key || !sem)
  2953. goto fila;
  2954. struct sembuf sops[] = {
  2955. { 0, -1, SEM_UNDO }
  2956. };
  2957. // Allow a 10ms timeout
  2958. // exceeding this timeout means it would probably never succeed anyway
  2959. struct timespec timeout = { 0, 10000000 };
  2960. if (semtimedop(*sem, sops, 1, &timeout)) {
  2961. applog(LOG_ERR,
  2962. "SEM: %s USB failed to release '%s' err (%d) %s",
  2963. dname, name, errno, strerror(errno));
  2964. }
  2965. if (semctl(*sem, 0, IPC_RMID)) {
  2966. applog(LOG_WARNING,
  2967. "SEM: %s USB failed to remove SEM '%s' err (%d) %s",
  2968. dname, name, errno, strerror(errno));
  2969. }
  2970. fila:
  2971. free(sem);
  2972. free(key);
  2973. remove_in_use(bus_number, device_address);
  2974. return;
  2975. #endif
  2976. }
  2977. static void resource_process()
  2978. {
  2979. struct resource_work *res_work = NULL;
  2980. struct resource_reply *res_reply = NULL;
  2981. bool ok;
  2982. applog(LOG_DEBUG, "RES: %s (%d:%d) lock=%d",
  2983. res_work_head->dname,
  2984. (int)res_work_head->bus_number,
  2985. (int)res_work_head->device_address,
  2986. res_work_head->lock);
  2987. if (res_work_head->lock) {
  2988. ok = resource_lock(res_work_head->dname,
  2989. res_work_head->bus_number,
  2990. res_work_head->device_address);
  2991. applog(LOG_DEBUG, "RES: %s (%d:%d) lock ok=%d",
  2992. res_work_head->dname,
  2993. (int)res_work_head->bus_number,
  2994. (int)res_work_head->device_address,
  2995. ok);
  2996. res_reply = calloc(1, sizeof(*res_reply));
  2997. if (unlikely(!res_reply))
  2998. quit(1, "USB failed to calloc res_reply");
  2999. res_reply->bus_number = res_work_head->bus_number;
  3000. res_reply->device_address = res_work_head->device_address;
  3001. res_reply->got = ok;
  3002. res_reply->next = res_reply_head;
  3003. res_reply_head = res_reply;
  3004. }
  3005. else
  3006. resource_unlock(res_work_head->dname,
  3007. res_work_head->bus_number,
  3008. res_work_head->device_address);
  3009. res_work = res_work_head;
  3010. res_work_head = res_work_head->next;
  3011. free(res_work);
  3012. }
  3013. void *usb_resource_thread(void __maybe_unused *userdata)
  3014. {
  3015. pthread_setcanceltype(PTHREAD_CANCEL_ASYNCHRONOUS, NULL);
  3016. RenameThread("usbresource");
  3017. applog(LOG_DEBUG, "RES: thread starting");
  3018. while (42) {
  3019. /* Wait to be told we have work to do */
  3020. cgsem_wait(&usb_resource_sem);
  3021. mutex_lock(&cgusbres_lock);
  3022. while (res_work_head)
  3023. resource_process();
  3024. mutex_unlock(&cgusbres_lock);
  3025. }
  3026. return NULL;
  3027. }