ft232r.c 9.7 KB

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  1. /*
  2. * Copyright 2012-2013 Luke Dashjr
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License as published by the Free
  6. * Software Foundation; either version 3 of the License, or (at your option)
  7. * any later version. See COPYING for more details.
  8. */
  9. #include "config.h"
  10. #include <errno.h>
  11. #include <stdbool.h>
  12. #include <stdint.h>
  13. #include <string.h>
  14. #include <libusb.h>
  15. #include "compat.h"
  16. #include "ft232r.h"
  17. #include "logging.h"
  18. #include "lowlevel.h"
  19. #include "miner.h"
  20. #define FT232R_IDVENDOR 0x0403
  21. #define FT232R_IDPRODUCT 0x6001
  22. #define FT232H_IDPRODUCT 0x6014
  23. static
  24. void ft232r_devinfo_free(struct lowlevel_device_info * const info)
  25. {
  26. libusb_device * const dev = info->lowl_data;
  27. if (dev)
  28. libusb_unref_device(dev);
  29. }
  30. static
  31. bool _ft232r_devinfo_scan_cb(struct lowlevel_device_info * const usbinfo, void * const userp)
  32. {
  33. struct lowlevel_device_info **devinfo_list_p = userp, *info;
  34. info = malloc(sizeof(*info));
  35. *info = (struct lowlevel_device_info){
  36. .lowl = &lowl_ft232r,
  37. .lowl_data = libusb_ref_device(usbinfo->lowl_data),
  38. };
  39. lowlevel_devinfo_semicpy(info, usbinfo);
  40. LL_PREPEND(*devinfo_list_p, info);
  41. // Never *consume* the lowl_usb entry - especially since this is during the scan!
  42. return false;
  43. }
  44. static
  45. struct lowlevel_device_info *ft232r_devinfo_scan()
  46. {
  47. struct lowlevel_device_info *devinfo_list = NULL;
  48. lowlevel_detect_id(_ft232r_devinfo_scan_cb, &devinfo_list, &lowl_usb, FT232R_IDVENDOR, FT232H_IDPRODUCT);
  49. lowlevel_detect_id(_ft232r_devinfo_scan_cb, &devinfo_list, &lowl_usb, FT232R_IDVENDOR, FT232R_IDPRODUCT);
  50. return devinfo_list;
  51. }
  52. #define FTDI_REQTYPE (LIBUSB_REQUEST_TYPE_VENDOR | LIBUSB_RECIPIENT_DEVICE)
  53. #define FTDI_REQTYPE_IN (FTDI_REQTYPE | LIBUSB_ENDPOINT_IN)
  54. #define FTDI_REQTYPE_OUT (FTDI_REQTYPE | LIBUSB_ENDPOINT_OUT)
  55. #define FTDI_REQUEST_RESET 0
  56. #define FTDI_REQUEST_SET_BAUDRATE 3
  57. #define FTDI_REQUEST_SET_BITMODE 0x0b
  58. #define FTDI_REQUEST_GET_PINS 0x0c
  59. #define FTDI_REQUEST_GET_BITMODE 0x0c
  60. #define FTDI_BAUDRATE_3M 0,0
  61. #define FTDI_INDEX 1
  62. #define FTDI_TIMEOUT 1000
  63. struct ft232r_device_handle {
  64. libusb_device_handle *h;
  65. uint8_t i;
  66. uint8_t o;
  67. int iPktSz;
  68. unsigned char ibuf[0x400];
  69. int ibufLen;
  70. uint16_t osz;
  71. unsigned char *obuf;
  72. uint16_t obufsz;
  73. };
  74. static
  75. struct ft232r_device_handle *ftdi_common_open(const struct lowlevel_device_info * const info)
  76. {
  77. libusb_device * const dev = info->lowl_data;
  78. // FIXME: Cleanup on errors
  79. libusb_device_handle *devh;
  80. struct ft232r_device_handle *ftdi;
  81. if (libusb_open(dev, &devh)) {
  82. applog(LOG_ERR, "ft232r_open: Error opening device");
  83. return NULL;
  84. }
  85. libusb_reset_device(devh);
  86. libusb_detach_kernel_driver(devh, 0);
  87. if (libusb_set_configuration(devh, 1)) {
  88. applog(LOG_ERR, "ft232r_open: Error setting configuration");
  89. return NULL;
  90. }
  91. if (libusb_claim_interface(devh, 0)) {
  92. applog(LOG_ERR, "ft232r_open: Error claiming interface");
  93. return NULL;
  94. }
  95. struct libusb_config_descriptor *cfg;
  96. if (libusb_get_config_descriptor(dev, 0, &cfg)) {
  97. applog(LOG_ERR, "ft232r_open: Error getting config descriptor");
  98. return NULL;
  99. }
  100. const struct libusb_interface_descriptor *altcfg = &cfg->interface[0].altsetting[0];
  101. if (altcfg->bNumEndpoints < 2) {
  102. applog(LOG_ERR, "ft232r_open: Too few endpoints");
  103. return NULL;
  104. }
  105. ftdi = calloc(1, sizeof(*ftdi));
  106. ftdi->h = devh;
  107. ftdi->i = altcfg->endpoint[0].bEndpointAddress;
  108. ftdi->iPktSz = altcfg->endpoint[0].wMaxPacketSize;
  109. ftdi->o = altcfg->endpoint[1].bEndpointAddress;
  110. ftdi->osz = 0x1000;
  111. ftdi->obuf = malloc(ftdi->osz);
  112. libusb_free_config_descriptor(cfg);
  113. return ftdi;
  114. }
  115. struct ft232r_device_handle *ft232r_open(const struct lowlevel_device_info * const info)
  116. {
  117. struct ft232r_device_handle * const ftdi = ftdi_common_open(info);
  118. if (!ftdi)
  119. return NULL;
  120. if (libusb_control_transfer(ftdi->h, FTDI_REQTYPE_OUT, FTDI_REQUEST_SET_BAUDRATE, FTDI_BAUDRATE_3M, NULL, 0, FTDI_TIMEOUT) < 0) {
  121. applog(LOG_ERR, "ft232r_open: Error performing control transfer");
  122. ft232r_close(ftdi);
  123. return NULL;
  124. }
  125. return ftdi;
  126. }
  127. void ft232r_close(struct ft232r_device_handle *dev)
  128. {
  129. libusb_release_interface(dev->h, 0);
  130. libusb_reset_device(dev->h);
  131. libusb_close(dev->h);
  132. }
  133. bool ft232r_purge_buffers(struct ft232r_device_handle *dev, enum ft232r_reset_purge purge)
  134. {
  135. if (ft232r_flush(dev) < 0)
  136. return false;
  137. if (purge & FTDI_PURGE_RX) {
  138. if (libusb_control_transfer(dev->h, FTDI_REQTYPE_OUT, FTDI_REQUEST_RESET, FTDI_PURGE_RX, FTDI_INDEX, NULL, 0, FTDI_TIMEOUT))
  139. return false;
  140. dev->ibufLen = 0;
  141. }
  142. if (purge & FTDI_PURGE_TX)
  143. if (libusb_control_transfer(dev->h, FTDI_REQTYPE_OUT, FTDI_REQUEST_RESET, FTDI_PURGE_TX, FTDI_INDEX, NULL, 0, FTDI_TIMEOUT))
  144. return false;
  145. return true;
  146. }
  147. bool ft232r_set_bitmode(struct ft232r_device_handle *dev, uint8_t mask, uint8_t mode)
  148. {
  149. if (ft232r_flush(dev) < 0)
  150. return false;
  151. if (libusb_control_transfer(dev->h, FTDI_REQTYPE_OUT, FTDI_REQUEST_SET_BITMODE, mask, FTDI_INDEX, NULL, 0, FTDI_TIMEOUT))
  152. return false;
  153. return !libusb_control_transfer(dev->h, FTDI_REQTYPE_OUT, FTDI_REQUEST_SET_BITMODE, (mode << 8) | mask, FTDI_INDEX, NULL, 0, FTDI_TIMEOUT);
  154. }
  155. static ssize_t ft232r_readwrite(struct ft232r_device_handle *dev, unsigned char endpoint, void *data, size_t count)
  156. {
  157. int transferred;
  158. switch (libusb_bulk_transfer(dev->h, endpoint, data, count, &transferred, FTDI_TIMEOUT)) {
  159. case LIBUSB_ERROR_TIMEOUT:
  160. if (!transferred) {
  161. errno = ETIMEDOUT;
  162. return -1;
  163. }
  164. // fallthru
  165. case 0:
  166. if (opt_dev_protocol)
  167. {
  168. char x[(transferred * 2) + 1];
  169. bin2hex(x, data, transferred);
  170. applog(LOG_DEBUG, "ft232r %p: %s: %s",
  171. dev,
  172. (endpoint & LIBUSB_ENDPOINT_IN) ? "RECV" : "SEND",
  173. x);
  174. }
  175. return transferred;
  176. default:
  177. errno = EIO;
  178. return -1;
  179. }
  180. }
  181. ssize_t ft232r_flush(struct ft232r_device_handle *dev)
  182. {
  183. if (!dev->obufsz)
  184. return 0;
  185. ssize_t r = ft232r_readwrite(dev, dev->o, dev->obuf, dev->obufsz);
  186. if (r == dev->obufsz) {
  187. dev->obufsz = 0;
  188. } else if (r > 0) {
  189. dev->obufsz -= r;
  190. memmove(dev->obuf, &dev->obuf[r], dev->obufsz);
  191. }
  192. return r;
  193. }
  194. ssize_t ft232r_write(struct ft232r_device_handle * const dev, const void * const data, const size_t count)
  195. {
  196. uint16_t bufleft;
  197. ssize_t r;
  198. bufleft = dev->osz - dev->obufsz;
  199. if (count < bufleft) {
  200. // Just add to output buffer
  201. memcpy(&dev->obuf[dev->obufsz], data, count);
  202. dev->obufsz += count;
  203. return count;
  204. }
  205. // Fill up buffer and flush
  206. memcpy(&dev->obuf[dev->obufsz], data, bufleft);
  207. dev->obufsz += bufleft;
  208. r = ft232r_flush(dev);
  209. if (unlikely(r <= 0)) {
  210. // In this case, no bytes were written supposedly, so remove this data from buffer
  211. dev->obufsz -= bufleft;
  212. return r;
  213. }
  214. // Even if not all <bufleft> bytes from this write got out, the remaining are still buffered
  215. return bufleft;
  216. }
  217. typedef ssize_t (*ft232r_rwfunc_t)(struct ft232r_device_handle *, void*, size_t);
  218. static
  219. ssize_t ft232r_rw_all(const void * const rwfunc_p, struct ft232r_device_handle * const dev, void * const data, size_t count)
  220. {
  221. ft232r_rwfunc_t rwfunc = rwfunc_p;
  222. char *p = data;
  223. ssize_t writ = 0, total = 0;
  224. while (count && (writ = rwfunc(dev, p, count)) > 0) {
  225. p += writ;
  226. count -= writ;
  227. total += writ;
  228. }
  229. return total ?: writ;
  230. }
  231. ssize_t ft232r_write_all(struct ft232r_device_handle * const dev, const void * const data, size_t count)
  232. {
  233. return ft232r_rw_all(ft232r_write, dev, (void*)data, count);
  234. }
  235. ssize_t ft232r_read(struct ft232r_device_handle *dev, void *data, size_t count)
  236. {
  237. ssize_t r;
  238. int adj;
  239. // Flush any pending output before reading
  240. r = ft232r_flush(dev);
  241. if (r < 0)
  242. return r;
  243. // First 2 bytes of every packet are FTDI status or something
  244. while (dev->ibufLen <= 2) {
  245. // TODO: Implement a timeout for status byte repeating
  246. int transferred = ft232r_readwrite(dev, dev->i, dev->ibuf, sizeof(dev->ibuf));
  247. if (transferred <= 0)
  248. return transferred;
  249. dev->ibufLen = transferred;
  250. for (adj = dev->iPktSz; dev->ibufLen > adj; adj += dev->iPktSz - 2) {
  251. dev->ibufLen -= 2;
  252. memmove(&dev->ibuf[adj], &dev->ibuf[adj+2], dev->ibufLen - adj);
  253. }
  254. }
  255. unsigned char *ibufs = &dev->ibuf[2];
  256. size_t ibufsLen = dev->ibufLen - 2;
  257. if (count > ibufsLen)
  258. count = ibufsLen;
  259. memcpy(data, ibufs, count);
  260. dev->ibufLen -= count;
  261. ibufsLen -= count;
  262. if (ibufsLen) {
  263. memmove(ibufs, &ibufs[count], ibufsLen);
  264. applog(LOG_DEBUG, "ft232r_read: %"PRIu64" bytes extra", (uint64_t)ibufsLen);
  265. }
  266. return count;
  267. }
  268. ssize_t ft232r_read_all(struct ft232r_device_handle *dev, void *data, size_t count)
  269. {
  270. return ft232r_rw_all(ft232r_read, dev, data, count);
  271. }
  272. bool ft232r_get_pins(struct ft232r_device_handle *dev, uint8_t *pins)
  273. {
  274. return libusb_control_transfer(dev->h, FTDI_REQTYPE_IN, FTDI_REQUEST_GET_PINS, 0, FTDI_INDEX, pins, 1, FTDI_TIMEOUT) == 1;
  275. }
  276. bool ft232r_get_bitmode(struct ft232r_device_handle *dev, uint8_t *out_mode)
  277. {
  278. return libusb_control_transfer(dev->h, FTDI_REQTYPE_IN, FTDI_REQUEST_GET_BITMODE, 0, FTDI_INDEX, out_mode, 1, FTDI_TIMEOUT) == 1;
  279. }
  280. bool ft232r_set_cbus_bits(struct ft232r_device_handle *dev, bool sc, bool cs)
  281. {
  282. uint8_t pin_state = (cs ? (1<<2) : 0)
  283. | (sc ? (1<<3) : 0);
  284. return ft232r_set_bitmode(dev, 0xc0 | pin_state, 0x20);
  285. }
  286. bool ft232r_get_cbus_bits(struct ft232r_device_handle *dev, bool *out_sio0, bool *out_sio1)
  287. {
  288. uint8_t data;
  289. if (!ft232r_get_bitmode(dev, &data))
  290. return false;
  291. *out_sio0 = data & 1;
  292. *out_sio1 = data & 2;
  293. return true;
  294. }
  295. struct lowlevel_driver lowl_ft232r = {
  296. .dname = "ft232r",
  297. .devinfo_scan = ft232r_devinfo_scan,
  298. .devinfo_free = ft232r_devinfo_free,
  299. };
  300. #if 0
  301. int main() {
  302. libusb_init(NULL);
  303. ft232r_scan();
  304. ft232r_scan_free();
  305. libusb_exit(NULL);
  306. }
  307. void applog(int prio, const char *fmt, ...)
  308. {
  309. va_list ap;
  310. va_start(ap, fmt);
  311. vprintf(fmt, ap);
  312. puts("");
  313. va_end(ap);
  314. }
  315. #endif