mceusb.c 36 KB

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  1. /*
  2. * Driver for USB Windows Media Center Ed. eHome Infrared Transceivers
  3. *
  4. * Copyright (c) 2010 by Jarod Wilson <jarod@redhat.com>
  5. *
  6. * Based on the original lirc_mceusb and lirc_mceusb2 drivers, by Dan
  7. * Conti, Martin Blatter and Daniel Melander, the latter of which was
  8. * in turn also based on the lirc_atiusb driver by Paul Miller. The
  9. * two mce drivers were merged into one by Jarod Wilson, with transmit
  10. * support for the 1st-gen device added primarily by Patrick Calhoun,
  11. * with a bit of tweaks by Jarod. Debugging improvements and proper
  12. * support for what appears to be 3rd-gen hardware added by Jarod.
  13. * Initial port from lirc driver to ir-core drivery by Jarod, based
  14. * partially on a port to an earlier proposed IR infrastructure by
  15. * Jon Smirl, which included enhancements and simplifications to the
  16. * incoming IR buffer parsing routines.
  17. *
  18. *
  19. * This program is free software; you can redistribute it and/or modify
  20. * it under the terms of the GNU General Public License as published by
  21. * the Free Software Foundation; either version 2 of the License, or
  22. * (at your option) any later version.
  23. *
  24. * This program is distributed in the hope that it will be useful,
  25. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  26. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  27. * GNU General Public License for more details.
  28. *
  29. * You should have received a copy of the GNU General Public License
  30. * along with this program; if not, write to the Free Software
  31. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  32. *
  33. */
  34. #include <linux/device.h>
  35. #include <linux/module.h>
  36. #include <linux/slab.h>
  37. #include <linux/usb.h>
  38. #include <linux/input.h>
  39. #include <media/ir-core.h>
  40. #include <media/ir-common.h>
  41. #define DRIVER_VERSION "1.91"
  42. #define DRIVER_AUTHOR "Jarod Wilson <jarod@wilsonet.com>"
  43. #define DRIVER_DESC "Windows Media Center Ed. eHome Infrared Transceiver " \
  44. "device driver"
  45. #define DRIVER_NAME "mceusb"
  46. #define USB_BUFLEN 32 /* USB reception buffer length */
  47. #define USB_CTRL_MSG_SZ 2 /* Size of usb ctrl msg on gen1 hw */
  48. #define MCE_G1_INIT_MSGS 40 /* Init messages on gen1 hw to throw out */
  49. /* MCE constants */
  50. #define MCE_CMDBUF_SIZE 384 /* MCE Command buffer length */
  51. #define MCE_TIME_UNIT 50 /* Approx 50us resolution */
  52. #define MCE_CODE_LENGTH 5 /* Normal length of packet (with header) */
  53. #define MCE_PACKET_SIZE 4 /* Normal length of packet (without header) */
  54. #define MCE_IRDATA_HEADER 0x84 /* Actual header format is 0x80 + num_bytes */
  55. #define MCE_IRDATA_TRAILER 0x80 /* End of IR data */
  56. #define MCE_TX_HEADER_LENGTH 3 /* # of bytes in the initializing tx header */
  57. #define MCE_MAX_CHANNELS 2 /* Two transmitters, hardware dependent? */
  58. #define MCE_DEFAULT_TX_MASK 0x03 /* Vals: TX1=0x01, TX2=0x02, ALL=0x03 */
  59. #define MCE_PULSE_BIT 0x80 /* Pulse bit, MSB set == PULSE else SPACE */
  60. #define MCE_PULSE_MASK 0x7f /* Pulse mask */
  61. #define MCE_MAX_PULSE_LENGTH 0x7f /* Longest transmittable pulse symbol */
  62. #define MCE_HW_CMD_HEADER 0xff /* MCE hardware command header */
  63. #define MCE_COMMAND_HEADER 0x9f /* MCE command header */
  64. #define MCE_COMMAND_MASK 0xe0 /* Mask out command bits */
  65. #define MCE_COMMAND_NULL 0x00 /* These show up various places... */
  66. /* if buf[i] & MCE_COMMAND_MASK == 0x80 and buf[i] != MCE_COMMAND_HEADER,
  67. * then we're looking at a raw IR data sample */
  68. #define MCE_COMMAND_IRDATA 0x80
  69. #define MCE_PACKET_LENGTH_MASK 0x1f /* Packet length mask */
  70. /* Sub-commands, which follow MCE_COMMAND_HEADER or MCE_HW_CMD_HEADER */
  71. #define MCE_CMD_SIG_END 0x01 /* End of signal */
  72. #define MCE_CMD_PING 0x03 /* Ping device */
  73. #define MCE_CMD_UNKNOWN 0x04 /* Unknown */
  74. #define MCE_CMD_UNKNOWN2 0x05 /* Unknown */
  75. #define MCE_CMD_S_CARRIER 0x06 /* Set TX carrier frequency */
  76. #define MCE_CMD_G_CARRIER 0x07 /* Get TX carrier frequency */
  77. #define MCE_CMD_S_TXMASK 0x08 /* Set TX port bitmask */
  78. #define MCE_CMD_UNKNOWN3 0x09 /* Unknown */
  79. #define MCE_CMD_UNKNOWN4 0x0a /* Unknown */
  80. #define MCE_CMD_G_REVISION 0x0b /* Get hw/sw revision */
  81. #define MCE_CMD_S_TIMEOUT 0x0c /* Set RX timeout value */
  82. #define MCE_CMD_G_TIMEOUT 0x0d /* Get RX timeout value */
  83. #define MCE_CMD_UNKNOWN5 0x0e /* Unknown */
  84. #define MCE_CMD_UNKNOWN6 0x0f /* Unknown */
  85. #define MCE_CMD_G_RXPORTSTS 0x11 /* Get RX port status */
  86. #define MCE_CMD_G_TXMASK 0x13 /* Set TX port bitmask */
  87. #define MCE_CMD_S_RXSENSOR 0x14 /* Set RX sensor (std/learning) */
  88. #define MCE_CMD_G_RXSENSOR 0x15 /* Get RX sensor (std/learning) */
  89. #define MCE_CMD_TX_PORTS 0x16 /* Get number of TX ports */
  90. #define MCE_CMD_G_WAKESRC 0x17 /* Get wake source */
  91. #define MCE_CMD_UNKNOWN7 0x18 /* Unknown */
  92. #define MCE_CMD_UNKNOWN8 0x19 /* Unknown */
  93. #define MCE_CMD_UNKNOWN9 0x1b /* Unknown */
  94. #define MCE_CMD_DEVICE_RESET 0xaa /* Reset the hardware */
  95. #define MCE_RSP_CMD_INVALID 0xfe /* Invalid command issued */
  96. /* module parameters */
  97. #ifdef CONFIG_USB_DEBUG
  98. static int debug = 1;
  99. #else
  100. static int debug;
  101. #endif
  102. /* general constants */
  103. #define SEND_FLAG_IN_PROGRESS 1
  104. #define SEND_FLAG_COMPLETE 2
  105. #define RECV_FLAG_IN_PROGRESS 3
  106. #define RECV_FLAG_COMPLETE 4
  107. #define MCEUSB_RX 1
  108. #define MCEUSB_TX 2
  109. #define VENDOR_PHILIPS 0x0471
  110. #define VENDOR_SMK 0x0609
  111. #define VENDOR_TATUNG 0x1460
  112. #define VENDOR_GATEWAY 0x107b
  113. #define VENDOR_SHUTTLE 0x1308
  114. #define VENDOR_SHUTTLE2 0x051c
  115. #define VENDOR_MITSUMI 0x03ee
  116. #define VENDOR_TOPSEED 0x1784
  117. #define VENDOR_RICAVISION 0x179d
  118. #define VENDOR_ITRON 0x195d
  119. #define VENDOR_FIC 0x1509
  120. #define VENDOR_LG 0x043e
  121. #define VENDOR_MICROSOFT 0x045e
  122. #define VENDOR_FORMOSA 0x147a
  123. #define VENDOR_FINTEK 0x1934
  124. #define VENDOR_PINNACLE 0x2304
  125. #define VENDOR_ECS 0x1019
  126. #define VENDOR_WISTRON 0x0fb8
  127. #define VENDOR_COMPRO 0x185b
  128. #define VENDOR_NORTHSTAR 0x04eb
  129. #define VENDOR_REALTEK 0x0bda
  130. #define VENDOR_TIVO 0x105a
  131. #define VENDOR_CONEXANT 0x0572
  132. enum mceusb_model_type {
  133. MCE_GEN2 = 0, /* Most boards */
  134. MCE_GEN1,
  135. MCE_GEN3,
  136. MCE_GEN2_TX_INV,
  137. POLARIS_EVK,
  138. CX_HYBRID_TV,
  139. };
  140. struct mceusb_model {
  141. u32 mce_gen1:1;
  142. u32 mce_gen2:1;
  143. u32 mce_gen3:1;
  144. u32 tx_mask_inverted:1;
  145. u32 is_polaris:1;
  146. u32 no_tx:1;
  147. const char *rc_map; /* Allow specify a per-board map */
  148. const char *name; /* per-board name */
  149. };
  150. static const struct mceusb_model mceusb_model[] = {
  151. [MCE_GEN1] = {
  152. .mce_gen1 = 1,
  153. .tx_mask_inverted = 1,
  154. },
  155. [MCE_GEN2] = {
  156. .mce_gen2 = 1,
  157. },
  158. [MCE_GEN2_TX_INV] = {
  159. .mce_gen2 = 1,
  160. .tx_mask_inverted = 1,
  161. },
  162. [MCE_GEN3] = {
  163. .mce_gen3 = 1,
  164. .tx_mask_inverted = 1,
  165. },
  166. [POLARIS_EVK] = {
  167. .is_polaris = 1,
  168. /*
  169. * In fact, the EVK is shipped without
  170. * remotes, but we should have something handy,
  171. * to allow testing it
  172. */
  173. .rc_map = RC_MAP_RC5_HAUPPAUGE_NEW,
  174. .name = "Conexant Hybrid TV (cx231xx) MCE IR",
  175. },
  176. [CX_HYBRID_TV] = {
  177. .is_polaris = 1,
  178. .no_tx = 1, /* tx isn't wired up at all */
  179. .name = "Conexant Hybrid TV (cx231xx) MCE IR",
  180. },
  181. };
  182. static struct usb_device_id mceusb_dev_table[] = {
  183. /* Original Microsoft MCE IR Transceiver (often HP-branded) */
  184. { USB_DEVICE(VENDOR_MICROSOFT, 0x006d),
  185. .driver_info = MCE_GEN1 },
  186. /* Philips Infrared Transceiver - Sahara branded */
  187. { USB_DEVICE(VENDOR_PHILIPS, 0x0608) },
  188. /* Philips Infrared Transceiver - HP branded */
  189. { USB_DEVICE(VENDOR_PHILIPS, 0x060c),
  190. .driver_info = MCE_GEN2_TX_INV },
  191. /* Philips SRM5100 */
  192. { USB_DEVICE(VENDOR_PHILIPS, 0x060d) },
  193. /* Philips Infrared Transceiver - Omaura */
  194. { USB_DEVICE(VENDOR_PHILIPS, 0x060f) },
  195. /* Philips Infrared Transceiver - Spinel plus */
  196. { USB_DEVICE(VENDOR_PHILIPS, 0x0613) },
  197. /* Philips eHome Infrared Transceiver */
  198. { USB_DEVICE(VENDOR_PHILIPS, 0x0815) },
  199. /* Philips/Spinel plus IR transceiver for ASUS */
  200. { USB_DEVICE(VENDOR_PHILIPS, 0x206c) },
  201. /* Philips/Spinel plus IR transceiver for ASUS */
  202. { USB_DEVICE(VENDOR_PHILIPS, 0x2088) },
  203. /* Realtek MCE IR Receiver */
  204. { USB_DEVICE(VENDOR_REALTEK, 0x0161) },
  205. /* SMK/Toshiba G83C0004D410 */
  206. { USB_DEVICE(VENDOR_SMK, 0x031d),
  207. .driver_info = MCE_GEN2_TX_INV },
  208. /* SMK eHome Infrared Transceiver (Sony VAIO) */
  209. { USB_DEVICE(VENDOR_SMK, 0x0322),
  210. .driver_info = MCE_GEN2_TX_INV },
  211. /* bundled with Hauppauge PVR-150 */
  212. { USB_DEVICE(VENDOR_SMK, 0x0334),
  213. .driver_info = MCE_GEN2_TX_INV },
  214. /* SMK eHome Infrared Transceiver */
  215. { USB_DEVICE(VENDOR_SMK, 0x0338) },
  216. /* Tatung eHome Infrared Transceiver */
  217. { USB_DEVICE(VENDOR_TATUNG, 0x9150) },
  218. /* Shuttle eHome Infrared Transceiver */
  219. { USB_DEVICE(VENDOR_SHUTTLE, 0xc001) },
  220. /* Shuttle eHome Infrared Transceiver */
  221. { USB_DEVICE(VENDOR_SHUTTLE2, 0xc001) },
  222. /* Gateway eHome Infrared Transceiver */
  223. { USB_DEVICE(VENDOR_GATEWAY, 0x3009) },
  224. /* Mitsumi */
  225. { USB_DEVICE(VENDOR_MITSUMI, 0x2501) },
  226. /* Topseed eHome Infrared Transceiver */
  227. { USB_DEVICE(VENDOR_TOPSEED, 0x0001),
  228. .driver_info = MCE_GEN2_TX_INV },
  229. /* Topseed HP eHome Infrared Transceiver */
  230. { USB_DEVICE(VENDOR_TOPSEED, 0x0006),
  231. .driver_info = MCE_GEN2_TX_INV },
  232. /* Topseed eHome Infrared Transceiver */
  233. { USB_DEVICE(VENDOR_TOPSEED, 0x0007),
  234. .driver_info = MCE_GEN2_TX_INV },
  235. /* Topseed eHome Infrared Transceiver */
  236. { USB_DEVICE(VENDOR_TOPSEED, 0x0008),
  237. .driver_info = MCE_GEN3 },
  238. /* Topseed eHome Infrared Transceiver */
  239. { USB_DEVICE(VENDOR_TOPSEED, 0x000a),
  240. .driver_info = MCE_GEN2_TX_INV },
  241. /* Topseed eHome Infrared Transceiver */
  242. { USB_DEVICE(VENDOR_TOPSEED, 0x0011),
  243. .driver_info = MCE_GEN2_TX_INV },
  244. /* Ricavision internal Infrared Transceiver */
  245. { USB_DEVICE(VENDOR_RICAVISION, 0x0010) },
  246. /* Itron ione Libra Q-11 */
  247. { USB_DEVICE(VENDOR_ITRON, 0x7002) },
  248. /* FIC eHome Infrared Transceiver */
  249. { USB_DEVICE(VENDOR_FIC, 0x9242) },
  250. /* LG eHome Infrared Transceiver */
  251. { USB_DEVICE(VENDOR_LG, 0x9803) },
  252. /* Microsoft MCE Infrared Transceiver */
  253. { USB_DEVICE(VENDOR_MICROSOFT, 0x00a0) },
  254. /* Formosa eHome Infrared Transceiver */
  255. { USB_DEVICE(VENDOR_FORMOSA, 0xe015) },
  256. /* Formosa21 / eHome Infrared Receiver */
  257. { USB_DEVICE(VENDOR_FORMOSA, 0xe016) },
  258. /* Formosa aim / Trust MCE Infrared Receiver */
  259. { USB_DEVICE(VENDOR_FORMOSA, 0xe017) },
  260. /* Formosa Industrial Computing / Beanbag Emulation Device */
  261. { USB_DEVICE(VENDOR_FORMOSA, 0xe018) },
  262. /* Formosa21 / eHome Infrared Receiver */
  263. { USB_DEVICE(VENDOR_FORMOSA, 0xe03a) },
  264. /* Formosa Industrial Computing AIM IR605/A */
  265. { USB_DEVICE(VENDOR_FORMOSA, 0xe03c) },
  266. /* Formosa Industrial Computing */
  267. { USB_DEVICE(VENDOR_FORMOSA, 0xe03e) },
  268. /* Fintek eHome Infrared Transceiver */
  269. { USB_DEVICE(VENDOR_FINTEK, 0x0602) },
  270. /* Fintek eHome Infrared Transceiver (in the AOpen MP45) */
  271. { USB_DEVICE(VENDOR_FINTEK, 0x0702) },
  272. /* Pinnacle Remote Kit */
  273. { USB_DEVICE(VENDOR_PINNACLE, 0x0225),
  274. .driver_info = MCE_GEN3 },
  275. /* Elitegroup Computer Systems IR */
  276. { USB_DEVICE(VENDOR_ECS, 0x0f38) },
  277. /* Wistron Corp. eHome Infrared Receiver */
  278. { USB_DEVICE(VENDOR_WISTRON, 0x0002) },
  279. /* Compro K100 */
  280. { USB_DEVICE(VENDOR_COMPRO, 0x3020) },
  281. /* Compro K100 v2 */
  282. { USB_DEVICE(VENDOR_COMPRO, 0x3082) },
  283. /* Northstar Systems, Inc. eHome Infrared Transceiver */
  284. { USB_DEVICE(VENDOR_NORTHSTAR, 0xe004) },
  285. /* TiVo PC IR Receiver */
  286. { USB_DEVICE(VENDOR_TIVO, 0x2000) },
  287. /* Conexant Hybrid TV "Shelby" Polaris SDK */
  288. { USB_DEVICE(VENDOR_CONEXANT, 0x58a1),
  289. .driver_info = POLARIS_EVK },
  290. /* Conexant Hybrid TV RDU253S Polaris */
  291. { USB_DEVICE(VENDOR_CONEXANT, 0x58a5),
  292. .driver_info = CX_HYBRID_TV },
  293. /* Terminating entry */
  294. { }
  295. };
  296. /* data structure for each usb transceiver */
  297. struct mceusb_dev {
  298. /* ir-core bits */
  299. struct ir_dev_props *props;
  300. struct ir_raw_event rawir;
  301. /* core device bits */
  302. struct device *dev;
  303. struct input_dev *idev;
  304. /* usb */
  305. struct usb_device *usbdev;
  306. struct urb *urb_in;
  307. struct usb_endpoint_descriptor *usb_ep_in;
  308. struct usb_endpoint_descriptor *usb_ep_out;
  309. /* buffers and dma */
  310. unsigned char *buf_in;
  311. unsigned int len_in;
  312. enum {
  313. CMD_HEADER = 0,
  314. SUBCMD,
  315. CMD_DATA,
  316. PARSE_IRDATA,
  317. } parser_state;
  318. u8 cmd, rem; /* Remaining IR data bytes in packet */
  319. dma_addr_t dma_in;
  320. dma_addr_t dma_out;
  321. struct {
  322. u32 connected:1;
  323. u32 tx_mask_inverted:1;
  324. u32 microsoft_gen1:1;
  325. u32 no_tx:1;
  326. } flags;
  327. /* transmit support */
  328. int send_flags;
  329. u32 carrier;
  330. unsigned char tx_mask;
  331. char name[128];
  332. char phys[64];
  333. enum mceusb_model_type model;
  334. };
  335. /*
  336. * MCE Device Command Strings
  337. * Device command responses vary from device to device...
  338. * - DEVICE_RESET resets the hardware to its default state
  339. * - GET_REVISION fetches the hardware/software revision, common
  340. * replies are ff 0b 45 ff 1b 08 and ff 0b 50 ff 1b 42
  341. * - GET_CARRIER_FREQ gets the carrier mode and frequency of the
  342. * device, with replies in the form of 9f 06 MM FF, where MM is 0-3,
  343. * meaning clk of 10000000, 2500000, 625000 or 156250, and FF is
  344. * ((clk / frequency) - 1)
  345. * - GET_RX_TIMEOUT fetches the receiver timeout in units of 50us,
  346. * response in the form of 9f 0c msb lsb
  347. * - GET_TX_BITMASK fetches the transmitter bitmask, replies in
  348. * the form of 9f 08 bm, where bm is the bitmask
  349. * - GET_RX_SENSOR fetches the RX sensor setting -- long-range
  350. * general use one or short-range learning one, in the form of
  351. * 9f 14 ss, where ss is either 01 for long-range or 02 for short
  352. * - SET_CARRIER_FREQ sets a new carrier mode and frequency
  353. * - SET_TX_BITMASK sets the transmitter bitmask
  354. * - SET_RX_TIMEOUT sets the receiver timeout
  355. * - SET_RX_SENSOR sets which receiver sensor to use
  356. */
  357. static char DEVICE_RESET[] = {MCE_COMMAND_NULL, MCE_HW_CMD_HEADER,
  358. MCE_CMD_DEVICE_RESET};
  359. static char GET_REVISION[] = {MCE_HW_CMD_HEADER, MCE_CMD_G_REVISION};
  360. static char GET_UNKNOWN[] = {MCE_HW_CMD_HEADER, MCE_CMD_UNKNOWN7};
  361. static char GET_UNKNOWN2[] = {MCE_COMMAND_HEADER, MCE_CMD_UNKNOWN2};
  362. static char GET_CARRIER_FREQ[] = {MCE_COMMAND_HEADER, MCE_CMD_G_CARRIER};
  363. static char GET_RX_TIMEOUT[] = {MCE_COMMAND_HEADER, MCE_CMD_G_TIMEOUT};
  364. static char GET_TX_BITMASK[] = {MCE_COMMAND_HEADER, MCE_CMD_G_TXMASK};
  365. static char GET_RX_SENSOR[] = {MCE_COMMAND_HEADER, MCE_CMD_G_RXSENSOR};
  366. /* sub in desired values in lower byte or bytes for full command */
  367. /* FIXME: make use of these for transmit.
  368. static char SET_CARRIER_FREQ[] = {MCE_COMMAND_HEADER,
  369. MCE_CMD_S_CARRIER, 0x00, 0x00};
  370. static char SET_TX_BITMASK[] = {MCE_COMMAND_HEADER, MCE_CMD_S_TXMASK, 0x00};
  371. static char SET_RX_TIMEOUT[] = {MCE_COMMAND_HEADER,
  372. MCE_CMD_S_TIMEOUT, 0x00, 0x00};
  373. static char SET_RX_SENSOR[] = {MCE_COMMAND_HEADER,
  374. MCE_CMD_S_RXSENSOR, 0x00};
  375. */
  376. static int mceusb_cmdsize(u8 cmd, u8 subcmd)
  377. {
  378. int datasize = 0;
  379. switch (cmd) {
  380. case MCE_COMMAND_NULL:
  381. if (subcmd == MCE_HW_CMD_HEADER)
  382. datasize = 1;
  383. break;
  384. case MCE_HW_CMD_HEADER:
  385. switch (subcmd) {
  386. case MCE_CMD_G_REVISION:
  387. datasize = 2;
  388. break;
  389. }
  390. case MCE_COMMAND_HEADER:
  391. switch (subcmd) {
  392. case MCE_CMD_UNKNOWN:
  393. case MCE_CMD_S_CARRIER:
  394. case MCE_CMD_S_TIMEOUT:
  395. case MCE_CMD_G_RXSENSOR:
  396. datasize = 2;
  397. break;
  398. case MCE_CMD_SIG_END:
  399. case MCE_CMD_S_TXMASK:
  400. case MCE_CMD_S_RXSENSOR:
  401. datasize = 1;
  402. break;
  403. }
  404. }
  405. return datasize;
  406. }
  407. static void mceusb_dev_printdata(struct mceusb_dev *ir, char *buf,
  408. int offset, int len, bool out)
  409. {
  410. char codes[USB_BUFLEN * 3 + 1];
  411. char inout[9];
  412. u8 cmd, subcmd, data1, data2;
  413. struct device *dev = ir->dev;
  414. int i, start, skip = 0;
  415. if (!debug)
  416. return;
  417. /* skip meaningless 0xb1 0x60 header bytes on orig receiver */
  418. if (ir->flags.microsoft_gen1 && !out && !offset)
  419. skip = 2;
  420. if (len <= skip)
  421. return;
  422. for (i = 0; i < len && i < USB_BUFLEN; i++)
  423. snprintf(codes + i * 3, 4, "%02x ", buf[i + offset] & 0xff);
  424. dev_info(dev, "%sx data: %s(length=%d)\n",
  425. (out ? "t" : "r"), codes, len);
  426. if (out)
  427. strcpy(inout, "Request\0");
  428. else
  429. strcpy(inout, "Got\0");
  430. start = offset + skip;
  431. cmd = buf[start] & 0xff;
  432. subcmd = buf[start + 1] & 0xff;
  433. data1 = buf[start + 2] & 0xff;
  434. data2 = buf[start + 3] & 0xff;
  435. switch (cmd) {
  436. case MCE_COMMAND_NULL:
  437. if ((subcmd == MCE_HW_CMD_HEADER) &&
  438. (data1 == MCE_CMD_DEVICE_RESET))
  439. dev_info(dev, "Device reset requested\n");
  440. else
  441. dev_info(dev, "Unknown command 0x%02x 0x%02x\n",
  442. cmd, subcmd);
  443. break;
  444. case MCE_HW_CMD_HEADER:
  445. switch (subcmd) {
  446. case MCE_CMD_G_REVISION:
  447. if (len == 2)
  448. dev_info(dev, "Get hw/sw rev?\n");
  449. else
  450. dev_info(dev, "hw/sw rev 0x%02x 0x%02x "
  451. "0x%02x 0x%02x\n", data1, data2,
  452. buf[start + 4], buf[start + 5]);
  453. break;
  454. case MCE_CMD_DEVICE_RESET:
  455. dev_info(dev, "Device reset requested\n");
  456. break;
  457. case MCE_RSP_CMD_INVALID:
  458. dev_info(dev, "Previous command not supported\n");
  459. break;
  460. case MCE_CMD_UNKNOWN7:
  461. case MCE_CMD_UNKNOWN9:
  462. default:
  463. dev_info(dev, "Unknown command 0x%02x 0x%02x\n",
  464. cmd, subcmd);
  465. break;
  466. }
  467. break;
  468. case MCE_COMMAND_HEADER:
  469. switch (subcmd) {
  470. case MCE_CMD_SIG_END:
  471. dev_info(dev, "End of signal\n");
  472. break;
  473. case MCE_CMD_PING:
  474. dev_info(dev, "Ping\n");
  475. break;
  476. case MCE_CMD_UNKNOWN:
  477. dev_info(dev, "Resp to 9f 05 of 0x%02x 0x%02x\n",
  478. data1, data2);
  479. break;
  480. case MCE_CMD_S_CARRIER:
  481. dev_info(dev, "%s carrier mode and freq of "
  482. "0x%02x 0x%02x\n", inout, data1, data2);
  483. break;
  484. case MCE_CMD_G_CARRIER:
  485. dev_info(dev, "Get carrier mode and freq\n");
  486. break;
  487. case MCE_CMD_S_TXMASK:
  488. dev_info(dev, "%s transmit blaster mask of 0x%02x\n",
  489. inout, data1);
  490. break;
  491. case MCE_CMD_S_TIMEOUT:
  492. /* value is in units of 50us, so x*50/100 or x/2 ms */
  493. dev_info(dev, "%s receive timeout of %d ms\n",
  494. inout, ((data1 << 8) | data2) / 2);
  495. break;
  496. case MCE_CMD_G_TIMEOUT:
  497. dev_info(dev, "Get receive timeout\n");
  498. break;
  499. case MCE_CMD_G_TXMASK:
  500. dev_info(dev, "Get transmit blaster mask\n");
  501. break;
  502. case MCE_CMD_S_RXSENSOR:
  503. dev_info(dev, "%s %s-range receive sensor in use\n",
  504. inout, data1 == 0x02 ? "short" : "long");
  505. break;
  506. case MCE_CMD_G_RXSENSOR:
  507. if (len == 2)
  508. dev_info(dev, "Get receive sensor\n");
  509. else
  510. dev_info(dev, "Remaining pulse count is %d\n",
  511. ((data1 << 8) | data2));
  512. break;
  513. case MCE_RSP_CMD_INVALID:
  514. dev_info(dev, "Error! Hardware is likely wedged...\n");
  515. break;
  516. case MCE_CMD_UNKNOWN2:
  517. case MCE_CMD_UNKNOWN3:
  518. case MCE_CMD_UNKNOWN5:
  519. default:
  520. dev_info(dev, "Unknown command 0x%02x 0x%02x\n",
  521. cmd, subcmd);
  522. break;
  523. }
  524. break;
  525. default:
  526. break;
  527. }
  528. if (cmd == MCE_IRDATA_TRAILER)
  529. dev_info(dev, "End of raw IR data\n");
  530. else if ((cmd != MCE_COMMAND_HEADER) &&
  531. ((cmd & MCE_COMMAND_MASK) == MCE_COMMAND_IRDATA))
  532. dev_info(dev, "Raw IR data, %d pulse/space samples\n", ir->rem);
  533. }
  534. static void mce_async_callback(struct urb *urb, struct pt_regs *regs)
  535. {
  536. struct mceusb_dev *ir;
  537. int len;
  538. if (!urb)
  539. return;
  540. ir = urb->context;
  541. if (ir) {
  542. len = urb->actual_length;
  543. dev_dbg(ir->dev, "callback called (status=%d len=%d)\n",
  544. urb->status, len);
  545. mceusb_dev_printdata(ir, urb->transfer_buffer, 0, len, true);
  546. }
  547. }
  548. /* request incoming or send outgoing usb packet - used to initialize remote */
  549. static void mce_request_packet(struct mceusb_dev *ir,
  550. struct usb_endpoint_descriptor *ep,
  551. unsigned char *data, int size, int urb_type)
  552. {
  553. int res;
  554. struct urb *async_urb;
  555. struct device *dev = ir->dev;
  556. unsigned char *async_buf;
  557. if (urb_type == MCEUSB_TX) {
  558. async_urb = usb_alloc_urb(0, GFP_KERNEL);
  559. if (unlikely(!async_urb)) {
  560. dev_err(dev, "Error, couldn't allocate urb!\n");
  561. return;
  562. }
  563. async_buf = kzalloc(size, GFP_KERNEL);
  564. if (!async_buf) {
  565. dev_err(dev, "Error, couldn't allocate buf!\n");
  566. usb_free_urb(async_urb);
  567. return;
  568. }
  569. /* outbound data */
  570. usb_fill_int_urb(async_urb, ir->usbdev,
  571. usb_sndintpipe(ir->usbdev, ep->bEndpointAddress),
  572. async_buf, size, (usb_complete_t)mce_async_callback,
  573. ir, ep->bInterval);
  574. memcpy(async_buf, data, size);
  575. } else if (urb_type == MCEUSB_RX) {
  576. /* standard request */
  577. async_urb = ir->urb_in;
  578. ir->send_flags = RECV_FLAG_IN_PROGRESS;
  579. } else {
  580. dev_err(dev, "Error! Unknown urb type %d\n", urb_type);
  581. return;
  582. }
  583. dev_dbg(dev, "receive request called (size=%#x)\n", size);
  584. async_urb->transfer_buffer_length = size;
  585. async_urb->dev = ir->usbdev;
  586. res = usb_submit_urb(async_urb, GFP_ATOMIC);
  587. if (res) {
  588. dev_dbg(dev, "receive request FAILED! (res=%d)\n", res);
  589. return;
  590. }
  591. dev_dbg(dev, "receive request complete (res=%d)\n", res);
  592. }
  593. static void mce_async_out(struct mceusb_dev *ir, unsigned char *data, int size)
  594. {
  595. mce_request_packet(ir, ir->usb_ep_out, data, size, MCEUSB_TX);
  596. }
  597. static void mce_sync_in(struct mceusb_dev *ir, unsigned char *data, int size)
  598. {
  599. mce_request_packet(ir, ir->usb_ep_in, data, size, MCEUSB_RX);
  600. }
  601. /* Send data out the IR blaster port(s) */
  602. static int mceusb_tx_ir(void *priv, int *txbuf, u32 n)
  603. {
  604. struct mceusb_dev *ir = priv;
  605. int i, ret = 0;
  606. int count, cmdcount = 0;
  607. unsigned char *cmdbuf; /* MCE command buffer */
  608. long signal_duration = 0; /* Singnal length in us */
  609. struct timeval start_time, end_time;
  610. do_gettimeofday(&start_time);
  611. count = n / sizeof(int);
  612. cmdbuf = kzalloc(sizeof(int) * MCE_CMDBUF_SIZE, GFP_KERNEL);
  613. if (!cmdbuf)
  614. return -ENOMEM;
  615. /* MCE tx init header */
  616. cmdbuf[cmdcount++] = MCE_COMMAND_HEADER;
  617. cmdbuf[cmdcount++] = MCE_CMD_S_TXMASK;
  618. cmdbuf[cmdcount++] = ir->tx_mask;
  619. /* Generate mce packet data */
  620. for (i = 0; (i < count) && (cmdcount < MCE_CMDBUF_SIZE); i++) {
  621. signal_duration += txbuf[i];
  622. txbuf[i] = txbuf[i] / MCE_TIME_UNIT;
  623. do { /* loop to support long pulses/spaces > 127*50us=6.35ms */
  624. /* Insert mce packet header every 4th entry */
  625. if ((cmdcount < MCE_CMDBUF_SIZE) &&
  626. (cmdcount - MCE_TX_HEADER_LENGTH) %
  627. MCE_CODE_LENGTH == 0)
  628. cmdbuf[cmdcount++] = MCE_IRDATA_HEADER;
  629. /* Insert mce packet data */
  630. if (cmdcount < MCE_CMDBUF_SIZE)
  631. cmdbuf[cmdcount++] =
  632. (txbuf[i] < MCE_PULSE_BIT ?
  633. txbuf[i] : MCE_MAX_PULSE_LENGTH) |
  634. (i & 1 ? 0x00 : MCE_PULSE_BIT);
  635. else {
  636. ret = -EINVAL;
  637. goto out;
  638. }
  639. } while ((txbuf[i] > MCE_MAX_PULSE_LENGTH) &&
  640. (txbuf[i] -= MCE_MAX_PULSE_LENGTH));
  641. }
  642. /* Fix packet length in last header */
  643. cmdbuf[cmdcount - (cmdcount - MCE_TX_HEADER_LENGTH) % MCE_CODE_LENGTH] =
  644. MCE_COMMAND_IRDATA + (cmdcount - MCE_TX_HEADER_LENGTH) %
  645. MCE_CODE_LENGTH - 1;
  646. /* Check if we have room for the empty packet at the end */
  647. if (cmdcount >= MCE_CMDBUF_SIZE) {
  648. ret = -EINVAL;
  649. goto out;
  650. }
  651. /* All mce commands end with an empty packet (0x80) */
  652. cmdbuf[cmdcount++] = MCE_IRDATA_TRAILER;
  653. /* Transmit the command to the mce device */
  654. mce_async_out(ir, cmdbuf, cmdcount);
  655. /*
  656. * The lircd gap calculation expects the write function to
  657. * wait the time it takes for the ircommand to be sent before
  658. * it returns.
  659. */
  660. do_gettimeofday(&end_time);
  661. signal_duration -= (end_time.tv_usec - start_time.tv_usec) +
  662. (end_time.tv_sec - start_time.tv_sec) * 1000000;
  663. /* delay with the closest number of ticks */
  664. set_current_state(TASK_INTERRUPTIBLE);
  665. schedule_timeout(usecs_to_jiffies(signal_duration));
  666. out:
  667. kfree(cmdbuf);
  668. return ret ? ret : n;
  669. }
  670. /* Sets active IR outputs -- mce devices typically have two */
  671. static int mceusb_set_tx_mask(void *priv, u32 mask)
  672. {
  673. struct mceusb_dev *ir = priv;
  674. if (ir->flags.tx_mask_inverted)
  675. ir->tx_mask = (mask != MCE_DEFAULT_TX_MASK ?
  676. mask ^ MCE_DEFAULT_TX_MASK : mask) << 1;
  677. else
  678. ir->tx_mask = mask;
  679. return 0;
  680. }
  681. /* Sets the send carrier frequency and mode */
  682. static int mceusb_set_tx_carrier(void *priv, u32 carrier)
  683. {
  684. struct mceusb_dev *ir = priv;
  685. int clk = 10000000;
  686. int prescaler = 0, divisor = 0;
  687. unsigned char cmdbuf[4] = { MCE_COMMAND_HEADER,
  688. MCE_CMD_S_CARRIER, 0x00, 0x00 };
  689. /* Carrier has changed */
  690. if (ir->carrier != carrier) {
  691. if (carrier == 0) {
  692. ir->carrier = carrier;
  693. cmdbuf[2] = MCE_CMD_SIG_END;
  694. cmdbuf[3] = MCE_IRDATA_TRAILER;
  695. dev_dbg(ir->dev, "%s: disabling carrier "
  696. "modulation\n", __func__);
  697. mce_async_out(ir, cmdbuf, sizeof(cmdbuf));
  698. return carrier;
  699. }
  700. for (prescaler = 0; prescaler < 4; ++prescaler) {
  701. divisor = (clk >> (2 * prescaler)) / carrier;
  702. if (divisor <= 0xff) {
  703. ir->carrier = carrier;
  704. cmdbuf[2] = prescaler;
  705. cmdbuf[3] = divisor;
  706. dev_dbg(ir->dev, "%s: requesting %u HZ "
  707. "carrier\n", __func__, carrier);
  708. /* Transmit new carrier to mce device */
  709. mce_async_out(ir, cmdbuf, sizeof(cmdbuf));
  710. return carrier;
  711. }
  712. }
  713. return -EINVAL;
  714. }
  715. return carrier;
  716. }
  717. static void mceusb_process_ir_data(struct mceusb_dev *ir, int buf_len)
  718. {
  719. DEFINE_IR_RAW_EVENT(rawir);
  720. int i = 0;
  721. /* skip meaningless 0xb1 0x60 header bytes on orig receiver */
  722. if (ir->flags.microsoft_gen1)
  723. i = 2;
  724. /* if there's no data, just return now */
  725. if (buf_len <= i)
  726. return;
  727. for (; i < buf_len; i++) {
  728. switch (ir->parser_state) {
  729. case SUBCMD:
  730. ir->rem = mceusb_cmdsize(ir->cmd, ir->buf_in[i]);
  731. mceusb_dev_printdata(ir, ir->buf_in, i - 1,
  732. ir->rem + 2, false);
  733. ir->parser_state = CMD_DATA;
  734. break;
  735. case PARSE_IRDATA:
  736. ir->rem--;
  737. rawir.pulse = ((ir->buf_in[i] & MCE_PULSE_BIT) != 0);
  738. rawir.duration = (ir->buf_in[i] & MCE_PULSE_MASK)
  739. * MCE_TIME_UNIT * 1000;
  740. dev_dbg(ir->dev, "Storing %s with duration %d\n",
  741. rawir.pulse ? "pulse" : "space",
  742. rawir.duration);
  743. ir_raw_event_store_with_filter(ir->idev, &rawir);
  744. break;
  745. case CMD_DATA:
  746. ir->rem--;
  747. break;
  748. case CMD_HEADER:
  749. /* decode mce packets of the form (84),AA,BB,CC,DD */
  750. /* IR data packets can span USB messages - rem */
  751. ir->cmd = ir->buf_in[i];
  752. if ((ir->cmd == MCE_COMMAND_HEADER) ||
  753. ((ir->cmd & MCE_COMMAND_MASK) !=
  754. MCE_COMMAND_IRDATA)) {
  755. ir->parser_state = SUBCMD;
  756. continue;
  757. }
  758. ir->rem = (ir->cmd & MCE_PACKET_LENGTH_MASK);
  759. mceusb_dev_printdata(ir, ir->buf_in, i, ir->rem + 1, false);
  760. if (ir->rem)
  761. ir->parser_state = PARSE_IRDATA;
  762. break;
  763. }
  764. if (ir->parser_state != CMD_HEADER && !ir->rem)
  765. ir->parser_state = CMD_HEADER;
  766. }
  767. dev_dbg(ir->dev, "processed IR data, calling ir_raw_event_handle\n");
  768. ir_raw_event_handle(ir->idev);
  769. }
  770. static void mceusb_dev_recv(struct urb *urb, struct pt_regs *regs)
  771. {
  772. struct mceusb_dev *ir;
  773. int buf_len;
  774. if (!urb)
  775. return;
  776. ir = urb->context;
  777. if (!ir) {
  778. usb_unlink_urb(urb);
  779. return;
  780. }
  781. buf_len = urb->actual_length;
  782. if (ir->send_flags == RECV_FLAG_IN_PROGRESS) {
  783. ir->send_flags = SEND_FLAG_COMPLETE;
  784. dev_dbg(ir->dev, "setup answer received %d bytes\n",
  785. buf_len);
  786. }
  787. switch (urb->status) {
  788. /* success */
  789. case 0:
  790. mceusb_process_ir_data(ir, buf_len);
  791. break;
  792. case -ECONNRESET:
  793. case -ENOENT:
  794. case -ESHUTDOWN:
  795. usb_unlink_urb(urb);
  796. return;
  797. case -EPIPE:
  798. default:
  799. dev_dbg(ir->dev, "Error: urb status = %d\n", urb->status);
  800. break;
  801. }
  802. usb_submit_urb(urb, GFP_ATOMIC);
  803. }
  804. static void mceusb_gen1_init(struct mceusb_dev *ir)
  805. {
  806. int ret;
  807. int maxp = ir->len_in;
  808. struct device *dev = ir->dev;
  809. char *data;
  810. data = kzalloc(USB_CTRL_MSG_SZ, GFP_KERNEL);
  811. if (!data) {
  812. dev_err(dev, "%s: memory allocation failed!\n", __func__);
  813. return;
  814. }
  815. /*
  816. * This is a strange one. Windows issues a set address to the device
  817. * on the receive control pipe and expect a certain value pair back
  818. */
  819. ret = usb_control_msg(ir->usbdev, usb_rcvctrlpipe(ir->usbdev, 0),
  820. USB_REQ_SET_ADDRESS, USB_TYPE_VENDOR, 0, 0,
  821. data, USB_CTRL_MSG_SZ, HZ * 3);
  822. dev_dbg(dev, "%s - ret = %d\n", __func__, ret);
  823. dev_dbg(dev, "%s - data[0] = %d, data[1] = %d\n",
  824. __func__, data[0], data[1]);
  825. /* set feature: bit rate 38400 bps */
  826. ret = usb_control_msg(ir->usbdev, usb_sndctrlpipe(ir->usbdev, 0),
  827. USB_REQ_SET_FEATURE, USB_TYPE_VENDOR,
  828. 0xc04e, 0x0000, NULL, 0, HZ * 3);
  829. dev_dbg(dev, "%s - ret = %d\n", __func__, ret);
  830. /* bRequest 4: set char length to 8 bits */
  831. ret = usb_control_msg(ir->usbdev, usb_sndctrlpipe(ir->usbdev, 0),
  832. 4, USB_TYPE_VENDOR,
  833. 0x0808, 0x0000, NULL, 0, HZ * 3);
  834. dev_dbg(dev, "%s - retB = %d\n", __func__, ret);
  835. /* bRequest 2: set handshaking to use DTR/DSR */
  836. ret = usb_control_msg(ir->usbdev, usb_sndctrlpipe(ir->usbdev, 0),
  837. 2, USB_TYPE_VENDOR,
  838. 0x0000, 0x0100, NULL, 0, HZ * 3);
  839. dev_dbg(dev, "%s - retC = %d\n", __func__, ret);
  840. /* device reset */
  841. mce_async_out(ir, DEVICE_RESET, sizeof(DEVICE_RESET));
  842. mce_sync_in(ir, NULL, maxp);
  843. /* get hw/sw revision? */
  844. mce_async_out(ir, GET_REVISION, sizeof(GET_REVISION));
  845. mce_sync_in(ir, NULL, maxp);
  846. kfree(data);
  847. };
  848. static void mceusb_gen2_init(struct mceusb_dev *ir)
  849. {
  850. int maxp = ir->len_in;
  851. /* device reset */
  852. mce_async_out(ir, DEVICE_RESET, sizeof(DEVICE_RESET));
  853. mce_sync_in(ir, NULL, maxp);
  854. /* get hw/sw revision? */
  855. mce_async_out(ir, GET_REVISION, sizeof(GET_REVISION));
  856. mce_sync_in(ir, NULL, maxp);
  857. /* unknown what the next two actually return... */
  858. mce_async_out(ir, GET_UNKNOWN, sizeof(GET_UNKNOWN));
  859. mce_sync_in(ir, NULL, maxp);
  860. mce_async_out(ir, GET_UNKNOWN2, sizeof(GET_UNKNOWN2));
  861. mce_sync_in(ir, NULL, maxp);
  862. }
  863. static void mceusb_get_parameters(struct mceusb_dev *ir)
  864. {
  865. int maxp = ir->len_in;
  866. /* get the carrier and frequency */
  867. mce_async_out(ir, GET_CARRIER_FREQ, sizeof(GET_CARRIER_FREQ));
  868. mce_sync_in(ir, NULL, maxp);
  869. if (!ir->flags.no_tx) {
  870. /* get the transmitter bitmask */
  871. mce_async_out(ir, GET_TX_BITMASK, sizeof(GET_TX_BITMASK));
  872. mce_sync_in(ir, NULL, maxp);
  873. }
  874. /* get receiver timeout value */
  875. mce_async_out(ir, GET_RX_TIMEOUT, sizeof(GET_RX_TIMEOUT));
  876. mce_sync_in(ir, NULL, maxp);
  877. /* get receiver sensor setting */
  878. mce_async_out(ir, GET_RX_SENSOR, sizeof(GET_RX_SENSOR));
  879. mce_sync_in(ir, NULL, maxp);
  880. }
  881. static struct input_dev *mceusb_init_input_dev(struct mceusb_dev *ir)
  882. {
  883. struct input_dev *idev;
  884. struct ir_dev_props *props;
  885. struct device *dev = ir->dev;
  886. const char *rc_map = RC_MAP_RC6_MCE;
  887. const char *name = "Media Center Ed. eHome Infrared Remote Transceiver";
  888. int ret = -ENODEV;
  889. idev = input_allocate_device();
  890. if (!idev) {
  891. dev_err(dev, "remote input dev allocation failed\n");
  892. goto idev_alloc_failed;
  893. }
  894. ret = -ENOMEM;
  895. props = kzalloc(sizeof(struct ir_dev_props), GFP_KERNEL);
  896. if (!props) {
  897. dev_err(dev, "remote ir dev props allocation failed\n");
  898. goto props_alloc_failed;
  899. }
  900. if (mceusb_model[ir->model].name)
  901. name = mceusb_model[ir->model].name;
  902. snprintf(ir->name, sizeof(ir->name), "%s (%04x:%04x)",
  903. name,
  904. le16_to_cpu(ir->usbdev->descriptor.idVendor),
  905. le16_to_cpu(ir->usbdev->descriptor.idProduct));
  906. idev->name = ir->name;
  907. usb_make_path(ir->usbdev, ir->phys, sizeof(ir->phys));
  908. strlcat(ir->phys, "/input0", sizeof(ir->phys));
  909. idev->phys = ir->phys;
  910. props->priv = ir;
  911. props->driver_type = RC_DRIVER_IR_RAW;
  912. props->allowed_protos = IR_TYPE_ALL;
  913. if (!ir->flags.no_tx) {
  914. props->s_tx_mask = mceusb_set_tx_mask;
  915. props->s_tx_carrier = mceusb_set_tx_carrier;
  916. props->tx_ir = mceusb_tx_ir;
  917. }
  918. ir->props = props;
  919. if (mceusb_model[ir->model].rc_map)
  920. rc_map = mceusb_model[ir->model].rc_map;
  921. ret = ir_input_register(idev, rc_map, props, DRIVER_NAME);
  922. if (ret < 0) {
  923. dev_err(dev, "remote input device register failed\n");
  924. goto irdev_failed;
  925. }
  926. return idev;
  927. irdev_failed:
  928. kfree(props);
  929. props_alloc_failed:
  930. input_free_device(idev);
  931. idev_alloc_failed:
  932. return NULL;
  933. }
  934. static int __devinit mceusb_dev_probe(struct usb_interface *intf,
  935. const struct usb_device_id *id)
  936. {
  937. struct usb_device *dev = interface_to_usbdev(intf);
  938. struct usb_host_interface *idesc;
  939. struct usb_endpoint_descriptor *ep = NULL;
  940. struct usb_endpoint_descriptor *ep_in = NULL;
  941. struct usb_endpoint_descriptor *ep_out = NULL;
  942. struct mceusb_dev *ir = NULL;
  943. int pipe, maxp, i;
  944. char buf[63], name[128] = "";
  945. enum mceusb_model_type model = id->driver_info;
  946. bool is_gen3;
  947. bool is_microsoft_gen1;
  948. bool tx_mask_inverted;
  949. bool is_polaris;
  950. dev_dbg(&intf->dev, "%s called\n", __func__);
  951. idesc = intf->cur_altsetting;
  952. is_gen3 = mceusb_model[model].mce_gen3;
  953. is_microsoft_gen1 = mceusb_model[model].mce_gen1;
  954. tx_mask_inverted = mceusb_model[model].tx_mask_inverted;
  955. is_polaris = mceusb_model[model].is_polaris;
  956. if (is_polaris) {
  957. /* Interface 0 is IR */
  958. if (idesc->desc.bInterfaceNumber)
  959. return -ENODEV;
  960. }
  961. /* step through the endpoints to find first bulk in and out endpoint */
  962. for (i = 0; i < idesc->desc.bNumEndpoints; ++i) {
  963. ep = &idesc->endpoint[i].desc;
  964. if ((ep_in == NULL)
  965. && ((ep->bEndpointAddress & USB_ENDPOINT_DIR_MASK)
  966. == USB_DIR_IN)
  967. && (((ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  968. == USB_ENDPOINT_XFER_BULK)
  969. || ((ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  970. == USB_ENDPOINT_XFER_INT))) {
  971. ep_in = ep;
  972. ep_in->bmAttributes = USB_ENDPOINT_XFER_INT;
  973. ep_in->bInterval = 1;
  974. dev_dbg(&intf->dev, "acceptable inbound endpoint "
  975. "found\n");
  976. }
  977. if ((ep_out == NULL)
  978. && ((ep->bEndpointAddress & USB_ENDPOINT_DIR_MASK)
  979. == USB_DIR_OUT)
  980. && (((ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  981. == USB_ENDPOINT_XFER_BULK)
  982. || ((ep->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK)
  983. == USB_ENDPOINT_XFER_INT))) {
  984. ep_out = ep;
  985. ep_out->bmAttributes = USB_ENDPOINT_XFER_INT;
  986. ep_out->bInterval = 1;
  987. dev_dbg(&intf->dev, "acceptable outbound endpoint "
  988. "found\n");
  989. }
  990. }
  991. if (ep_in == NULL) {
  992. dev_dbg(&intf->dev, "inbound and/or endpoint not found\n");
  993. return -ENODEV;
  994. }
  995. pipe = usb_rcvintpipe(dev, ep_in->bEndpointAddress);
  996. maxp = usb_maxpacket(dev, pipe, usb_pipeout(pipe));
  997. ir = kzalloc(sizeof(struct mceusb_dev), GFP_KERNEL);
  998. if (!ir)
  999. goto mem_alloc_fail;
  1000. ir->buf_in = usb_alloc_coherent(dev, maxp, GFP_ATOMIC, &ir->dma_in);
  1001. if (!ir->buf_in)
  1002. goto buf_in_alloc_fail;
  1003. ir->urb_in = usb_alloc_urb(0, GFP_KERNEL);
  1004. if (!ir->urb_in)
  1005. goto urb_in_alloc_fail;
  1006. ir->usbdev = dev;
  1007. ir->dev = &intf->dev;
  1008. ir->len_in = maxp;
  1009. ir->flags.microsoft_gen1 = is_microsoft_gen1;
  1010. ir->flags.tx_mask_inverted = tx_mask_inverted;
  1011. ir->flags.no_tx = mceusb_model[model].no_tx;
  1012. ir->model = model;
  1013. /* Saving usb interface data for use by the transmitter routine */
  1014. ir->usb_ep_in = ep_in;
  1015. ir->usb_ep_out = ep_out;
  1016. if (dev->descriptor.iManufacturer
  1017. && usb_string(dev, dev->descriptor.iManufacturer,
  1018. buf, sizeof(buf)) > 0)
  1019. strlcpy(name, buf, sizeof(name));
  1020. if (dev->descriptor.iProduct
  1021. && usb_string(dev, dev->descriptor.iProduct,
  1022. buf, sizeof(buf)) > 0)
  1023. snprintf(name + strlen(name), sizeof(name) - strlen(name),
  1024. " %s", buf);
  1025. ir->idev = mceusb_init_input_dev(ir);
  1026. if (!ir->idev)
  1027. goto input_dev_fail;
  1028. /* flush buffers on the device */
  1029. mce_sync_in(ir, NULL, maxp);
  1030. mce_sync_in(ir, NULL, maxp);
  1031. /* wire up inbound data handler */
  1032. usb_fill_int_urb(ir->urb_in, dev, pipe, ir->buf_in,
  1033. maxp, (usb_complete_t) mceusb_dev_recv, ir, ep_in->bInterval);
  1034. ir->urb_in->transfer_dma = ir->dma_in;
  1035. ir->urb_in->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  1036. /* initialize device */
  1037. if (ir->flags.microsoft_gen1)
  1038. mceusb_gen1_init(ir);
  1039. else if (!is_gen3)
  1040. mceusb_gen2_init(ir);
  1041. mceusb_get_parameters(ir);
  1042. if (!ir->flags.no_tx)
  1043. mceusb_set_tx_mask(ir, MCE_DEFAULT_TX_MASK);
  1044. usb_set_intfdata(intf, ir);
  1045. dev_info(&intf->dev, "Registered %s on usb%d:%d\n", name,
  1046. dev->bus->busnum, dev->devnum);
  1047. return 0;
  1048. /* Error-handling path */
  1049. input_dev_fail:
  1050. usb_free_urb(ir->urb_in);
  1051. urb_in_alloc_fail:
  1052. usb_free_coherent(dev, maxp, ir->buf_in, ir->dma_in);
  1053. buf_in_alloc_fail:
  1054. kfree(ir);
  1055. mem_alloc_fail:
  1056. dev_err(&intf->dev, "%s: device setup failed!\n", __func__);
  1057. return -ENOMEM;
  1058. }
  1059. static void __devexit mceusb_dev_disconnect(struct usb_interface *intf)
  1060. {
  1061. struct usb_device *dev = interface_to_usbdev(intf);
  1062. struct mceusb_dev *ir = usb_get_intfdata(intf);
  1063. usb_set_intfdata(intf, NULL);
  1064. if (!ir)
  1065. return;
  1066. ir->usbdev = NULL;
  1067. ir_input_unregister(ir->idev);
  1068. usb_kill_urb(ir->urb_in);
  1069. usb_free_urb(ir->urb_in);
  1070. usb_free_coherent(dev, ir->len_in, ir->buf_in, ir->dma_in);
  1071. kfree(ir);
  1072. }
  1073. static int mceusb_dev_suspend(struct usb_interface *intf, pm_message_t message)
  1074. {
  1075. struct mceusb_dev *ir = usb_get_intfdata(intf);
  1076. dev_info(ir->dev, "suspend\n");
  1077. usb_kill_urb(ir->urb_in);
  1078. return 0;
  1079. }
  1080. static int mceusb_dev_resume(struct usb_interface *intf)
  1081. {
  1082. struct mceusb_dev *ir = usb_get_intfdata(intf);
  1083. dev_info(ir->dev, "resume\n");
  1084. if (usb_submit_urb(ir->urb_in, GFP_ATOMIC))
  1085. return -EIO;
  1086. return 0;
  1087. }
  1088. static struct usb_driver mceusb_dev_driver = {
  1089. .name = DRIVER_NAME,
  1090. .probe = mceusb_dev_probe,
  1091. .disconnect = mceusb_dev_disconnect,
  1092. .suspend = mceusb_dev_suspend,
  1093. .resume = mceusb_dev_resume,
  1094. .reset_resume = mceusb_dev_resume,
  1095. .id_table = mceusb_dev_table
  1096. };
  1097. static int __init mceusb_dev_init(void)
  1098. {
  1099. int ret;
  1100. ret = usb_register(&mceusb_dev_driver);
  1101. if (ret < 0)
  1102. printk(KERN_ERR DRIVER_NAME
  1103. ": usb register failed, result = %d\n", ret);
  1104. return ret;
  1105. }
  1106. static void __exit mceusb_dev_exit(void)
  1107. {
  1108. usb_deregister(&mceusb_dev_driver);
  1109. }
  1110. module_init(mceusb_dev_init);
  1111. module_exit(mceusb_dev_exit);
  1112. MODULE_DESCRIPTION(DRIVER_DESC);
  1113. MODULE_AUTHOR(DRIVER_AUTHOR);
  1114. MODULE_LICENSE("GPL");
  1115. MODULE_DEVICE_TABLE(usb, mceusb_dev_table);
  1116. module_param(debug, bool, S_IRUGO | S_IWUSR);
  1117. MODULE_PARM_DESC(debug, "Debug enabled or not");