redrat3.c 34 KB

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  1. /*
  2. * USB RedRat3 IR Transceiver rc-core driver
  3. *
  4. * Copyright (c) 2011 by Jarod Wilson <jarod@redhat.com>
  5. * based heavily on the work of Stephen Cox, with additional
  6. * help from RedRat Ltd.
  7. *
  8. * This driver began life based an an old version of the first-generation
  9. * lirc_mceusb driver from the lirc 0.7.2 distribution. It was then
  10. * significantly rewritten by Stephen Cox with the aid of RedRat Ltd's
  11. * Chris Dodge.
  12. *
  13. * The driver was then ported to rc-core and significantly rewritten again,
  14. * by Jarod, using the in-kernel mceusb driver as a guide, after an initial
  15. * port effort was started by Stephen.
  16. *
  17. * TODO LIST:
  18. * - fix lirc not showing repeats properly
  19. * --
  20. *
  21. * The RedRat3 is a USB transceiver with both send & receive,
  22. * with 2 separate sensors available for receive to enable
  23. * both good long range reception for general use, and good
  24. * short range reception when required for learning a signal.
  25. *
  26. * http://www.redrat.co.uk/
  27. *
  28. * It uses its own little protocol to communicate, the required
  29. * parts of which are embedded within this driver.
  30. * --
  31. *
  32. * This program is free software; you can redistribute it and/or modify
  33. * it under the terms of the GNU General Public License as published by
  34. * the Free Software Foundation; either version 2 of the License, or
  35. * (at your option) any later version.
  36. *
  37. * This program is distributed in the hope that it will be useful,
  38. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  39. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  40. * GNU General Public License for more details.
  41. *
  42. * You should have received a copy of the GNU General Public License
  43. * along with this program; if not, write to the Free Software
  44. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  45. *
  46. */
  47. #include <linux/device.h>
  48. #include <linux/module.h>
  49. #include <linux/slab.h>
  50. #include <linux/usb.h>
  51. #include <linux/usb/input.h>
  52. #include <media/rc-core.h>
  53. /* Driver Information */
  54. #define DRIVER_VERSION "0.70"
  55. #define DRIVER_AUTHOR "Jarod Wilson <jarod@redhat.com>"
  56. #define DRIVER_AUTHOR2 "The Dweller, Stephen Cox"
  57. #define DRIVER_DESC "RedRat3 USB IR Transceiver Driver"
  58. #define DRIVER_NAME "redrat3"
  59. /* module parameters */
  60. #ifdef CONFIG_USB_DEBUG
  61. static int debug = 1;
  62. #else
  63. static int debug;
  64. #endif
  65. #define RR3_DEBUG_STANDARD 0x1
  66. #define RR3_DEBUG_FUNCTION_TRACE 0x2
  67. #define rr3_dbg(dev, fmt, ...) \
  68. do { \
  69. if (debug & RR3_DEBUG_STANDARD) \
  70. dev_info(dev, fmt, ## __VA_ARGS__); \
  71. } while (0)
  72. #define rr3_ftr(dev, fmt, ...) \
  73. do { \
  74. if (debug & RR3_DEBUG_FUNCTION_TRACE) \
  75. dev_info(dev, fmt, ## __VA_ARGS__); \
  76. } while (0)
  77. /* bulk data transfer types */
  78. #define RR3_ERROR 0x01
  79. #define RR3_MOD_SIGNAL_IN 0x20
  80. #define RR3_MOD_SIGNAL_OUT 0x21
  81. /* Get the RR firmware version */
  82. #define RR3_FW_VERSION 0xb1
  83. #define RR3_FW_VERSION_LEN 64
  84. /* Send encoded signal bulk-sent earlier*/
  85. #define RR3_TX_SEND_SIGNAL 0xb3
  86. #define RR3_SET_IR_PARAM 0xb7
  87. #define RR3_GET_IR_PARAM 0xb8
  88. /* Blink the red LED on the device */
  89. #define RR3_BLINK_LED 0xb9
  90. /* Read serial number of device */
  91. #define RR3_READ_SER_NO 0xba
  92. #define RR3_SER_NO_LEN 4
  93. /* Start capture with the RC receiver */
  94. #define RR3_RC_DET_ENABLE 0xbb
  95. /* Stop capture with the RC receiver */
  96. #define RR3_RC_DET_DISABLE 0xbc
  97. /* Return the status of RC detector capture */
  98. #define RR3_RC_DET_STATUS 0xbd
  99. /* Reset redrat */
  100. #define RR3_RESET 0xa0
  101. /* Max number of lengths in the signal. */
  102. #define RR3_IR_IO_MAX_LENGTHS 0x01
  103. /* Periods to measure mod. freq. */
  104. #define RR3_IR_IO_PERIODS_MF 0x02
  105. /* Size of memory for main signal data */
  106. #define RR3_IR_IO_SIG_MEM_SIZE 0x03
  107. /* Delta value when measuring lengths */
  108. #define RR3_IR_IO_LENGTH_FUZZ 0x04
  109. /* Timeout for end of signal detection */
  110. #define RR3_IR_IO_SIG_TIMEOUT 0x05
  111. /* Minumum value for pause recognition. */
  112. #define RR3_IR_IO_MIN_PAUSE 0x06
  113. /* Clock freq. of EZ-USB chip */
  114. #define RR3_CLK 24000000
  115. /* Clock periods per timer count */
  116. #define RR3_CLK_PER_COUNT 12
  117. /* (RR3_CLK / RR3_CLK_PER_COUNT) */
  118. #define RR3_CLK_CONV_FACTOR 2000000
  119. /* USB bulk-in IR data endpoint address */
  120. #define RR3_BULK_IN_EP_ADDR 0x82
  121. /* Raw Modulated signal data value offsets */
  122. #define RR3_PAUSE_OFFSET 0
  123. #define RR3_FREQ_COUNT_OFFSET 4
  124. #define RR3_NUM_PERIOD_OFFSET 6
  125. #define RR3_MAX_LENGTHS_OFFSET 8
  126. #define RR3_NUM_LENGTHS_OFFSET 9
  127. #define RR3_MAX_SIGS_OFFSET 10
  128. #define RR3_NUM_SIGS_OFFSET 12
  129. #define RR3_REPEATS_OFFSET 14
  130. /* Size of the fixed-length portion of the signal */
  131. #define RR3_HEADER_LENGTH 15
  132. #define RR3_DRIVER_MAXLENS 128
  133. #define RR3_MAX_SIG_SIZE 512
  134. #define RR3_MAX_BUF_SIZE \
  135. ((2 * RR3_HEADER_LENGTH) + RR3_DRIVER_MAXLENS + RR3_MAX_SIG_SIZE)
  136. #define RR3_TIME_UNIT 50
  137. #define RR3_END_OF_SIGNAL 0x7f
  138. #define RR3_TX_HEADER_OFFSET 4
  139. #define RR3_TX_TRAILER_LEN 2
  140. #define RR3_RX_MIN_TIMEOUT 5
  141. #define RR3_RX_MAX_TIMEOUT 2000
  142. /* The 8051's CPUCS Register address */
  143. #define RR3_CPUCS_REG_ADDR 0x7f92
  144. #define USB_RR3USB_VENDOR_ID 0x112a
  145. #define USB_RR3USB_PRODUCT_ID 0x0001
  146. #define USB_RR3IIUSB_PRODUCT_ID 0x0005
  147. /* table of devices that work with this driver */
  148. static struct usb_device_id redrat3_dev_table[] = {
  149. /* Original version of the RedRat3 */
  150. {USB_DEVICE(USB_RR3USB_VENDOR_ID, USB_RR3USB_PRODUCT_ID)},
  151. /* Second Version/release of the RedRat3 - RetRat3-II */
  152. {USB_DEVICE(USB_RR3USB_VENDOR_ID, USB_RR3IIUSB_PRODUCT_ID)},
  153. {} /* Terminating entry */
  154. };
  155. /* Structure to hold all of our device specific stuff */
  156. struct redrat3_dev {
  157. /* core device bits */
  158. struct rc_dev *rc;
  159. struct device *dev;
  160. /* save off the usb device pointer */
  161. struct usb_device *udev;
  162. /* the receive endpoint */
  163. struct usb_endpoint_descriptor *ep_in;
  164. /* the buffer to receive data */
  165. unsigned char *bulk_in_buf;
  166. /* urb used to read ir data */
  167. struct urb *read_urb;
  168. /* the send endpoint */
  169. struct usb_endpoint_descriptor *ep_out;
  170. /* the buffer to send data */
  171. unsigned char *bulk_out_buf;
  172. /* the urb used to send data */
  173. struct urb *write_urb;
  174. /* usb dma */
  175. dma_addr_t dma_in;
  176. dma_addr_t dma_out;
  177. /* rx signal timeout timer */
  178. struct timer_list rx_timeout;
  179. u32 hw_timeout;
  180. /* is the detector enabled*/
  181. bool det_enabled;
  182. /* Is the device currently transmitting?*/
  183. bool transmitting;
  184. /* store for current packet */
  185. char pbuf[RR3_MAX_BUF_SIZE];
  186. u16 pktlen;
  187. u16 pkttype;
  188. u16 bytes_read;
  189. /* indicate whether we are going to reprocess
  190. * the USB callback with a bigger buffer */
  191. int buftoosmall;
  192. char *datap;
  193. u32 carrier;
  194. char name[128];
  195. char phys[64];
  196. };
  197. /* All incoming data buffers adhere to a very specific data format */
  198. struct redrat3_signal_header {
  199. u16 length; /* Length of data being transferred */
  200. u16 transfer_type; /* Type of data transferred */
  201. u32 pause; /* Pause between main and repeat signals */
  202. u16 mod_freq_count; /* Value of timer on mod. freq. measurement */
  203. u16 no_periods; /* No. of periods over which mod. freq. is measured */
  204. u8 max_lengths; /* Max no. of lengths (i.e. size of array) */
  205. u8 no_lengths; /* Actual no. of elements in lengths array */
  206. u16 max_sig_size; /* Max no. of values in signal data array */
  207. u16 sig_size; /* Acuto no. of values in signal data array */
  208. u8 no_repeats; /* No. of repeats of repeat signal section */
  209. /* Here forward is the lengths and signal data */
  210. };
  211. static void redrat3_dump_signal_header(struct redrat3_signal_header *header)
  212. {
  213. pr_info("%s:\n", __func__);
  214. pr_info(" * length: %u, transfer_type: 0x%02x\n",
  215. header->length, header->transfer_type);
  216. pr_info(" * pause: %u, freq_count: %u, no_periods: %u\n",
  217. header->pause, header->mod_freq_count, header->no_periods);
  218. pr_info(" * lengths: %u (max: %u)\n",
  219. header->no_lengths, header->max_lengths);
  220. pr_info(" * sig_size: %u (max: %u)\n",
  221. header->sig_size, header->max_sig_size);
  222. pr_info(" * repeats: %u\n", header->no_repeats);
  223. }
  224. static void redrat3_dump_signal_data(char *buffer, u16 len)
  225. {
  226. int offset, i;
  227. char *data_vals;
  228. pr_info("%s:", __func__);
  229. offset = RR3_TX_HEADER_OFFSET + RR3_HEADER_LENGTH
  230. + (RR3_DRIVER_MAXLENS * sizeof(u16));
  231. /* read RR3_DRIVER_MAXLENS from ctrl msg */
  232. data_vals = buffer + offset;
  233. for (i = 0; i < len; i++) {
  234. if (i % 10 == 0)
  235. pr_cont("\n * ");
  236. pr_cont("%02x ", *data_vals++);
  237. }
  238. pr_cont("\n");
  239. }
  240. /*
  241. * redrat3_issue_async
  242. *
  243. * Issues an async read to the ir data in port..
  244. * sets the callback to be redrat3_handle_async
  245. */
  246. static void redrat3_issue_async(struct redrat3_dev *rr3)
  247. {
  248. int res;
  249. rr3_ftr(rr3->dev, "Entering %s\n", __func__);
  250. memset(rr3->bulk_in_buf, 0, rr3->ep_in->wMaxPacketSize);
  251. res = usb_submit_urb(rr3->read_urb, GFP_ATOMIC);
  252. if (res)
  253. rr3_dbg(rr3->dev, "%s: receive request FAILED! "
  254. "(res %d, len %d)\n", __func__, res,
  255. rr3->read_urb->transfer_buffer_length);
  256. }
  257. static void redrat3_dump_fw_error(struct redrat3_dev *rr3, int code)
  258. {
  259. if (!rr3->transmitting && (code != 0x40))
  260. dev_info(rr3->dev, "fw error code 0x%02x: ", code);
  261. switch (code) {
  262. case 0x00:
  263. pr_cont("No Error\n");
  264. break;
  265. /* Codes 0x20 through 0x2f are IR Firmware Errors */
  266. case 0x20:
  267. pr_cont("Initial signal pulse not long enough "
  268. "to measure carrier frequency\n");
  269. break;
  270. case 0x21:
  271. pr_cont("Not enough length values allocated for signal\n");
  272. break;
  273. case 0x22:
  274. pr_cont("Not enough memory allocated for signal data\n");
  275. break;
  276. case 0x23:
  277. pr_cont("Too many signal repeats\n");
  278. break;
  279. case 0x28:
  280. pr_cont("Insufficient memory available for IR signal "
  281. "data memory allocation\n");
  282. break;
  283. case 0x29:
  284. pr_cont("Insufficient memory available "
  285. "for IrDa signal data memory allocation\n");
  286. break;
  287. /* Codes 0x30 through 0x3f are USB Firmware Errors */
  288. case 0x30:
  289. pr_cont("Insufficient memory available for bulk "
  290. "transfer structure\n");
  291. break;
  292. /*
  293. * Other error codes... These are primarily errors that can occur in
  294. * the control messages sent to the redrat
  295. */
  296. case 0x40:
  297. if (!rr3->transmitting)
  298. pr_cont("Signal capture has been terminated\n");
  299. break;
  300. case 0x41:
  301. pr_cont("Attempt to set/get and unknown signal I/O "
  302. "algorithm parameter\n");
  303. break;
  304. case 0x42:
  305. pr_cont("Signal capture already started\n");
  306. break;
  307. default:
  308. pr_cont("Unknown Error\n");
  309. break;
  310. }
  311. }
  312. static u32 redrat3_val_to_mod_freq(struct redrat3_signal_header *ph)
  313. {
  314. u32 mod_freq = 0;
  315. if (ph->mod_freq_count != 0)
  316. mod_freq = (RR3_CLK * ph->no_periods) /
  317. (ph->mod_freq_count * RR3_CLK_PER_COUNT);
  318. return mod_freq;
  319. }
  320. /* this function scales down the figures for the same result... */
  321. static u32 redrat3_len_to_us(u32 length)
  322. {
  323. u32 biglen = length * 1000;
  324. u32 divisor = (RR3_CLK_CONV_FACTOR) / 1000;
  325. u32 result = (u32) (biglen / divisor);
  326. /* don't allow zero lengths to go back, breaks lirc */
  327. return result ? result : 1;
  328. }
  329. /*
  330. * convert us back into redrat3 lengths
  331. *
  332. * length * 1000 length * 1000000
  333. * ------------- = ---------------- = micro
  334. * rr3clk / 1000 rr3clk
  335. * 6 * 2 4 * 3 micro * rr3clk micro * rr3clk / 1000
  336. * ----- = 4 ----- = 6 -------------- = len ---------------------
  337. * 3 2 1000000 1000
  338. */
  339. static u32 redrat3_us_to_len(u32 microsec)
  340. {
  341. u32 result;
  342. u32 divisor;
  343. microsec &= IR_MAX_DURATION;
  344. divisor = (RR3_CLK_CONV_FACTOR / 1000);
  345. result = (u32)(microsec * divisor) / 1000;
  346. /* don't allow zero lengths to go back, breaks lirc */
  347. return result ? result : 1;
  348. }
  349. /* timer callback to send reset event */
  350. static void redrat3_rx_timeout(unsigned long data)
  351. {
  352. struct redrat3_dev *rr3 = (struct redrat3_dev *)data;
  353. rr3_dbg(rr3->dev, "calling ir_raw_event_reset\n");
  354. ir_raw_event_reset(rr3->rc);
  355. }
  356. static void redrat3_process_ir_data(struct redrat3_dev *rr3)
  357. {
  358. DEFINE_IR_RAW_EVENT(rawir);
  359. struct redrat3_signal_header header;
  360. struct device *dev;
  361. int i, trailer = 0;
  362. unsigned long delay;
  363. u32 mod_freq, single_len;
  364. u16 *len_vals;
  365. u8 *data_vals;
  366. u32 tmp32;
  367. u16 tmp16;
  368. char *sig_data;
  369. if (!rr3) {
  370. pr_err("%s called with no context!\n", __func__);
  371. return;
  372. }
  373. rr3_ftr(rr3->dev, "Entered %s\n", __func__);
  374. dev = rr3->dev;
  375. sig_data = rr3->pbuf;
  376. header.length = rr3->pktlen;
  377. header.transfer_type = rr3->pkttype;
  378. /* Sanity check */
  379. if (!(header.length >= RR3_HEADER_LENGTH))
  380. dev_warn(dev, "read returned less than rr3 header len\n");
  381. /* Make sure we reset the IR kfifo after a bit of inactivity */
  382. delay = usecs_to_jiffies(rr3->hw_timeout);
  383. mod_timer(&rr3->rx_timeout, jiffies + delay);
  384. memcpy(&tmp32, sig_data + RR3_PAUSE_OFFSET, sizeof(tmp32));
  385. header.pause = be32_to_cpu(tmp32);
  386. memcpy(&tmp16, sig_data + RR3_FREQ_COUNT_OFFSET, sizeof(tmp16));
  387. header.mod_freq_count = be16_to_cpu(tmp16);
  388. memcpy(&tmp16, sig_data + RR3_NUM_PERIOD_OFFSET, sizeof(tmp16));
  389. header.no_periods = be16_to_cpu(tmp16);
  390. header.max_lengths = sig_data[RR3_MAX_LENGTHS_OFFSET];
  391. header.no_lengths = sig_data[RR3_NUM_LENGTHS_OFFSET];
  392. memcpy(&tmp16, sig_data + RR3_MAX_SIGS_OFFSET, sizeof(tmp16));
  393. header.max_sig_size = be16_to_cpu(tmp16);
  394. memcpy(&tmp16, sig_data + RR3_NUM_SIGS_OFFSET, sizeof(tmp16));
  395. header.sig_size = be16_to_cpu(tmp16);
  396. header.no_repeats= sig_data[RR3_REPEATS_OFFSET];
  397. if (debug) {
  398. redrat3_dump_signal_header(&header);
  399. redrat3_dump_signal_data(sig_data, header.sig_size);
  400. }
  401. mod_freq = redrat3_val_to_mod_freq(&header);
  402. rr3_dbg(dev, "Got mod_freq of %u\n", mod_freq);
  403. /* Here we pull out the 'length' values from the signal */
  404. len_vals = (u16 *)(sig_data + RR3_HEADER_LENGTH);
  405. data_vals = sig_data + RR3_HEADER_LENGTH +
  406. (header.max_lengths * sizeof(u16));
  407. /* process each rr3 encoded byte into an int */
  408. for (i = 0; i < header.sig_size; i++) {
  409. u16 val = len_vals[data_vals[i]];
  410. single_len = redrat3_len_to_us((u32)be16_to_cpu(val));
  411. /* we should always get pulse/space/pulse/space samples */
  412. if (i % 2)
  413. rawir.pulse = false;
  414. else
  415. rawir.pulse = true;
  416. rawir.duration = US_TO_NS(single_len);
  417. /* Save initial pulse length to fudge trailer */
  418. if (i == 0)
  419. trailer = rawir.duration;
  420. /* cap the value to IR_MAX_DURATION */
  421. rawir.duration &= IR_MAX_DURATION;
  422. rr3_dbg(dev, "storing %s with duration %d (i: %d)\n",
  423. rawir.pulse ? "pulse" : "space", rawir.duration, i);
  424. ir_raw_event_store_with_filter(rr3->rc, &rawir);
  425. }
  426. /* add a trailing space, if need be */
  427. if (i % 2) {
  428. rawir.pulse = false;
  429. /* this duration is made up, and may not be ideal... */
  430. if (trailer < US_TO_NS(1000))
  431. rawir.duration = US_TO_NS(2800);
  432. else
  433. rawir.duration = trailer;
  434. rr3_dbg(dev, "storing trailing space with duration %d\n",
  435. rawir.duration);
  436. ir_raw_event_store_with_filter(rr3->rc, &rawir);
  437. }
  438. rr3_dbg(dev, "calling ir_raw_event_handle\n");
  439. ir_raw_event_handle(rr3->rc);
  440. return;
  441. }
  442. /* Util fn to send rr3 cmds */
  443. static u8 redrat3_send_cmd(int cmd, struct redrat3_dev *rr3)
  444. {
  445. struct usb_device *udev;
  446. u8 *data;
  447. int res;
  448. data = kzalloc(sizeof(u8), GFP_KERNEL);
  449. if (!data)
  450. return -ENOMEM;
  451. udev = rr3->udev;
  452. res = usb_control_msg(udev, usb_rcvctrlpipe(udev, 0), cmd,
  453. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  454. 0x0000, 0x0000, data, sizeof(u8), HZ * 10);
  455. if (res < 0) {
  456. dev_err(rr3->dev, "%s: Error sending rr3 cmd res %d, data %d",
  457. __func__, res, *data);
  458. res = -EIO;
  459. } else
  460. res = (u8)data[0];
  461. kfree(data);
  462. return res;
  463. }
  464. /* Enables the long range detector and starts async receive */
  465. static int redrat3_enable_detector(struct redrat3_dev *rr3)
  466. {
  467. struct device *dev = rr3->dev;
  468. u8 ret;
  469. rr3_ftr(dev, "Entering %s\n", __func__);
  470. ret = redrat3_send_cmd(RR3_RC_DET_ENABLE, rr3);
  471. if (ret != 0)
  472. dev_dbg(dev, "%s: unexpected ret of %d\n",
  473. __func__, ret);
  474. ret = redrat3_send_cmd(RR3_RC_DET_STATUS, rr3);
  475. if (ret != 1) {
  476. dev_err(dev, "%s: detector status: %d, should be 1\n",
  477. __func__, ret);
  478. return -EIO;
  479. }
  480. rr3->det_enabled = true;
  481. redrat3_issue_async(rr3);
  482. return 0;
  483. }
  484. /* Disables the rr3 long range detector */
  485. static void redrat3_disable_detector(struct redrat3_dev *rr3)
  486. {
  487. struct device *dev = rr3->dev;
  488. u8 ret;
  489. rr3_ftr(dev, "Entering %s\n", __func__);
  490. ret = redrat3_send_cmd(RR3_RC_DET_DISABLE, rr3);
  491. if (ret != 0)
  492. dev_err(dev, "%s: failure!\n", __func__);
  493. ret = redrat3_send_cmd(RR3_RC_DET_STATUS, rr3);
  494. if (ret != 0)
  495. dev_warn(dev, "%s: detector status: %d, should be 0\n",
  496. __func__, ret);
  497. rr3->det_enabled = false;
  498. }
  499. static inline void redrat3_delete(struct redrat3_dev *rr3,
  500. struct usb_device *udev)
  501. {
  502. rr3_ftr(rr3->dev, "%s cleaning up\n", __func__);
  503. usb_kill_urb(rr3->read_urb);
  504. usb_kill_urb(rr3->write_urb);
  505. usb_free_urb(rr3->read_urb);
  506. usb_free_urb(rr3->write_urb);
  507. usb_free_coherent(udev, rr3->ep_in->wMaxPacketSize,
  508. rr3->bulk_in_buf, rr3->dma_in);
  509. usb_free_coherent(udev, rr3->ep_out->wMaxPacketSize,
  510. rr3->bulk_out_buf, rr3->dma_out);
  511. kfree(rr3);
  512. }
  513. static u32 redrat3_get_timeout(struct redrat3_dev *rr3)
  514. {
  515. u32 *tmp;
  516. u32 timeout = MS_TO_US(150); /* a sane default, if things go haywire */
  517. int len, ret, pipe;
  518. len = sizeof(*tmp);
  519. tmp = kzalloc(len, GFP_KERNEL);
  520. if (!tmp) {
  521. dev_warn(rr3->dev, "Memory allocation faillure\n");
  522. return timeout;
  523. }
  524. pipe = usb_rcvctrlpipe(rr3->udev, 0);
  525. ret = usb_control_msg(rr3->udev, pipe, RR3_GET_IR_PARAM,
  526. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  527. RR3_IR_IO_SIG_TIMEOUT, 0, tmp, len, HZ * 5);
  528. if (ret != len) {
  529. dev_warn(rr3->dev, "Failed to read timeout from hardware\n");
  530. return timeout;
  531. }
  532. timeout = redrat3_len_to_us(be32_to_cpu(*tmp));
  533. rr3_dbg(rr3->dev, "Got timeout of %d ms\n", timeout / 1000);
  534. return timeout;
  535. }
  536. static void redrat3_reset(struct redrat3_dev *rr3)
  537. {
  538. struct usb_device *udev = rr3->udev;
  539. struct device *dev = rr3->dev;
  540. int rc, rxpipe, txpipe;
  541. u8 *val;
  542. int len = sizeof(u8);
  543. rr3_ftr(dev, "Entering %s\n", __func__);
  544. rxpipe = usb_rcvctrlpipe(udev, 0);
  545. txpipe = usb_sndctrlpipe(udev, 0);
  546. val = kzalloc(len, GFP_KERNEL);
  547. if (!val) {
  548. dev_err(dev, "Memory allocation failure\n");
  549. return;
  550. }
  551. *val = 0x01;
  552. rc = usb_control_msg(udev, rxpipe, RR3_RESET,
  553. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  554. RR3_CPUCS_REG_ADDR, 0, val, len, HZ * 25);
  555. rr3_dbg(dev, "reset returned 0x%02x\n", rc);
  556. *val = 5;
  557. rc = usb_control_msg(udev, txpipe, RR3_SET_IR_PARAM,
  558. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_OUT,
  559. RR3_IR_IO_LENGTH_FUZZ, 0, val, len, HZ * 25);
  560. rr3_dbg(dev, "set ir parm len fuzz %d rc 0x%02x\n", *val, rc);
  561. *val = RR3_DRIVER_MAXLENS;
  562. rc = usb_control_msg(udev, txpipe, RR3_SET_IR_PARAM,
  563. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_OUT,
  564. RR3_IR_IO_MAX_LENGTHS, 0, val, len, HZ * 25);
  565. rr3_dbg(dev, "set ir parm max lens %d rc 0x%02x\n", *val, rc);
  566. kfree(val);
  567. }
  568. static void redrat3_get_firmware_rev(struct redrat3_dev *rr3)
  569. {
  570. int rc = 0;
  571. char *buffer;
  572. rr3_ftr(rr3->dev, "Entering %s\n", __func__);
  573. buffer = kzalloc(sizeof(char) * (RR3_FW_VERSION_LEN + 1), GFP_KERNEL);
  574. if (!buffer) {
  575. dev_err(rr3->dev, "Memory allocation failure\n");
  576. return;
  577. }
  578. rc = usb_control_msg(rr3->udev, usb_rcvctrlpipe(rr3->udev, 0),
  579. RR3_FW_VERSION,
  580. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  581. 0, 0, buffer, RR3_FW_VERSION_LEN, HZ * 5);
  582. if (rc >= 0)
  583. dev_info(rr3->dev, "Firmware rev: %s", buffer);
  584. else
  585. dev_err(rr3->dev, "Problem fetching firmware ID\n");
  586. kfree(buffer);
  587. rr3_ftr(rr3->dev, "Exiting %s\n", __func__);
  588. }
  589. static void redrat3_read_packet_start(struct redrat3_dev *rr3, int len)
  590. {
  591. u16 tx_error;
  592. u16 hdrlen;
  593. rr3_ftr(rr3->dev, "Entering %s\n", __func__);
  594. /* grab the Length and type of transfer */
  595. memcpy(&(rr3->pktlen), (unsigned char *) rr3->bulk_in_buf,
  596. sizeof(rr3->pktlen));
  597. memcpy(&(rr3->pkttype), ((unsigned char *) rr3->bulk_in_buf +
  598. sizeof(rr3->pktlen)),
  599. sizeof(rr3->pkttype));
  600. /*data needs conversion to know what its real values are*/
  601. rr3->pktlen = be16_to_cpu(rr3->pktlen);
  602. rr3->pkttype = be16_to_cpu(rr3->pkttype);
  603. switch (rr3->pkttype) {
  604. case RR3_ERROR:
  605. memcpy(&tx_error, ((unsigned char *)rr3->bulk_in_buf
  606. + (sizeof(rr3->pktlen) + sizeof(rr3->pkttype))),
  607. sizeof(tx_error));
  608. tx_error = be16_to_cpu(tx_error);
  609. redrat3_dump_fw_error(rr3, tx_error);
  610. break;
  611. case RR3_MOD_SIGNAL_IN:
  612. hdrlen = sizeof(rr3->pktlen) + sizeof(rr3->pkttype);
  613. rr3->bytes_read = len;
  614. rr3->bytes_read -= hdrlen;
  615. rr3->datap = &(rr3->pbuf[0]);
  616. memcpy(rr3->datap, ((unsigned char *)rr3->bulk_in_buf + hdrlen),
  617. rr3->bytes_read);
  618. rr3->datap += rr3->bytes_read;
  619. rr3_dbg(rr3->dev, "bytes_read %d, pktlen %d\n",
  620. rr3->bytes_read, rr3->pktlen);
  621. break;
  622. default:
  623. rr3_dbg(rr3->dev, "ignoring packet with type 0x%02x, "
  624. "len of %d, 0x%02x\n", rr3->pkttype, len, rr3->pktlen);
  625. break;
  626. }
  627. }
  628. static void redrat3_read_packet_continue(struct redrat3_dev *rr3, int len)
  629. {
  630. rr3_ftr(rr3->dev, "Entering %s\n", __func__);
  631. memcpy(rr3->datap, (unsigned char *)rr3->bulk_in_buf, len);
  632. rr3->datap += len;
  633. rr3->bytes_read += len;
  634. rr3_dbg(rr3->dev, "bytes_read %d, pktlen %d\n",
  635. rr3->bytes_read, rr3->pktlen);
  636. }
  637. /* gather IR data from incoming urb, process it when we have enough */
  638. static int redrat3_get_ir_data(struct redrat3_dev *rr3, int len)
  639. {
  640. struct device *dev = rr3->dev;
  641. int ret = 0;
  642. rr3_ftr(dev, "Entering %s\n", __func__);
  643. if (rr3->pktlen > RR3_MAX_BUF_SIZE) {
  644. dev_err(rr3->dev, "error: packet larger than buffer\n");
  645. ret = -EINVAL;
  646. goto out;
  647. }
  648. if ((rr3->bytes_read == 0) &&
  649. (len >= (sizeof(rr3->pkttype) + sizeof(rr3->pktlen)))) {
  650. redrat3_read_packet_start(rr3, len);
  651. } else if (rr3->bytes_read != 0) {
  652. redrat3_read_packet_continue(rr3, len);
  653. } else if (rr3->bytes_read == 0) {
  654. dev_err(dev, "error: no packet data read\n");
  655. ret = -ENODATA;
  656. goto out;
  657. }
  658. if (rr3->bytes_read > rr3->pktlen) {
  659. dev_err(dev, "bytes_read (%d) greater than pktlen (%d)\n",
  660. rr3->bytes_read, rr3->pktlen);
  661. ret = -EINVAL;
  662. goto out;
  663. } else if (rr3->bytes_read < rr3->pktlen)
  664. /* we're still accumulating data */
  665. return 0;
  666. /* if we get here, we've got IR data to decode */
  667. if (rr3->pkttype == RR3_MOD_SIGNAL_IN)
  668. redrat3_process_ir_data(rr3);
  669. else
  670. rr3_dbg(dev, "discarding non-signal data packet "
  671. "(type 0x%02x)\n", rr3->pkttype);
  672. out:
  673. rr3->bytes_read = 0;
  674. rr3->pktlen = 0;
  675. rr3->pkttype = 0;
  676. return ret;
  677. }
  678. /* callback function from USB when async USB request has completed */
  679. static void redrat3_handle_async(struct urb *urb, struct pt_regs *regs)
  680. {
  681. struct redrat3_dev *rr3;
  682. int ret;
  683. if (!urb)
  684. return;
  685. rr3 = urb->context;
  686. if (!rr3) {
  687. pr_err("%s called with invalid context!\n", __func__);
  688. usb_unlink_urb(urb);
  689. return;
  690. }
  691. rr3_ftr(rr3->dev, "Entering %s\n", __func__);
  692. switch (urb->status) {
  693. case 0:
  694. ret = redrat3_get_ir_data(rr3, urb->actual_length);
  695. if (!ret) {
  696. /* no error, prepare to read more */
  697. redrat3_issue_async(rr3);
  698. }
  699. break;
  700. case -ECONNRESET:
  701. case -ENOENT:
  702. case -ESHUTDOWN:
  703. usb_unlink_urb(urb);
  704. return;
  705. case -EPIPE:
  706. default:
  707. dev_warn(rr3->dev, "Error: urb status = %d\n", urb->status);
  708. rr3->bytes_read = 0;
  709. rr3->pktlen = 0;
  710. rr3->pkttype = 0;
  711. break;
  712. }
  713. }
  714. static void redrat3_write_bulk_callback(struct urb *urb, struct pt_regs *regs)
  715. {
  716. struct redrat3_dev *rr3;
  717. int len;
  718. if (!urb)
  719. return;
  720. rr3 = urb->context;
  721. if (rr3) {
  722. len = urb->actual_length;
  723. rr3_ftr(rr3->dev, "%s: called (status=%d len=%d)\n",
  724. __func__, urb->status, len);
  725. }
  726. }
  727. static u16 mod_freq_to_val(unsigned int mod_freq)
  728. {
  729. int mult = 6000000;
  730. /* Clk used in mod. freq. generation is CLK24/4. */
  731. return (u16)(65536 - (mult / mod_freq));
  732. }
  733. static int redrat3_set_tx_carrier(struct rc_dev *rcdev, u32 carrier)
  734. {
  735. struct redrat3_dev *rr3 = rcdev->priv;
  736. struct device *dev = rr3->dev;
  737. rr3_dbg(dev, "Setting modulation frequency to %u", carrier);
  738. if (carrier == 0)
  739. return -EINVAL;
  740. rr3->carrier = carrier;
  741. return carrier;
  742. }
  743. static int redrat3_transmit_ir(struct rc_dev *rcdev, unsigned *txbuf,
  744. unsigned count)
  745. {
  746. struct redrat3_dev *rr3 = rcdev->priv;
  747. struct device *dev = rr3->dev;
  748. struct redrat3_signal_header header;
  749. int i, j, ret, ret_len, offset;
  750. int lencheck, cur_sample_len, pipe;
  751. char *buffer = NULL, *sigdata = NULL;
  752. int *sample_lens = NULL;
  753. u32 tmpi;
  754. u16 tmps;
  755. u8 *datap;
  756. u8 curlencheck = 0;
  757. u16 *lengths_ptr;
  758. int sendbuf_len;
  759. rr3_ftr(dev, "Entering %s\n", __func__);
  760. if (rr3->transmitting) {
  761. dev_warn(dev, "%s: transmitter already in use\n", __func__);
  762. return -EAGAIN;
  763. }
  764. count = min_t(unsigned, count, RR3_MAX_SIG_SIZE - RR3_TX_TRAILER_LEN);
  765. /* rr3 will disable rc detector on transmit */
  766. rr3->det_enabled = false;
  767. rr3->transmitting = true;
  768. sample_lens = kzalloc(sizeof(int) * RR3_DRIVER_MAXLENS, GFP_KERNEL);
  769. if (!sample_lens) {
  770. ret = -ENOMEM;
  771. goto out;
  772. }
  773. for (i = 0; i < count; i++) {
  774. cur_sample_len = redrat3_us_to_len(txbuf[i]);
  775. for (lencheck = 0; lencheck < curlencheck; lencheck++) {
  776. if (sample_lens[lencheck] == cur_sample_len)
  777. break;
  778. }
  779. if (lencheck == curlencheck) {
  780. rr3_dbg(dev, "txbuf[%d]=%u, pos %d, enc %u\n",
  781. i, txbuf[i], curlencheck, cur_sample_len);
  782. if (curlencheck < RR3_DRIVER_MAXLENS) {
  783. /* now convert the value to a proper
  784. * rr3 value.. */
  785. sample_lens[curlencheck] = cur_sample_len;
  786. curlencheck++;
  787. } else {
  788. count = i - 1;
  789. break;
  790. }
  791. }
  792. }
  793. sigdata = kzalloc((count + RR3_TX_TRAILER_LEN), GFP_KERNEL);
  794. if (!sigdata) {
  795. ret = -ENOMEM;
  796. goto out;
  797. }
  798. sigdata[count] = RR3_END_OF_SIGNAL;
  799. sigdata[count + 1] = RR3_END_OF_SIGNAL;
  800. for (i = 0; i < count; i++) {
  801. for (j = 0; j < curlencheck; j++) {
  802. if (sample_lens[j] == redrat3_us_to_len(txbuf[i]))
  803. sigdata[i] = j;
  804. }
  805. }
  806. offset = RR3_TX_HEADER_OFFSET;
  807. sendbuf_len = RR3_HEADER_LENGTH + (sizeof(u16) * RR3_DRIVER_MAXLENS)
  808. + count + RR3_TX_TRAILER_LEN + offset;
  809. buffer = kzalloc(sendbuf_len, GFP_KERNEL);
  810. if (!buffer) {
  811. ret = -ENOMEM;
  812. goto out;
  813. }
  814. /* fill in our packet header */
  815. header.length = sendbuf_len - offset;
  816. header.transfer_type = RR3_MOD_SIGNAL_OUT;
  817. header.pause = redrat3_len_to_us(100);
  818. header.mod_freq_count = mod_freq_to_val(rr3->carrier);
  819. header.no_periods = 0; /* n/a to transmit */
  820. header.max_lengths = RR3_DRIVER_MAXLENS;
  821. header.no_lengths = curlencheck;
  822. header.max_sig_size = RR3_MAX_SIG_SIZE;
  823. header.sig_size = count + RR3_TX_TRAILER_LEN;
  824. /* we currently rely on repeat handling in the IR encoding source */
  825. header.no_repeats = 0;
  826. tmps = cpu_to_be16(header.length);
  827. memcpy(buffer, &tmps, 2);
  828. tmps = cpu_to_be16(header.transfer_type);
  829. memcpy(buffer + 2, &tmps, 2);
  830. tmpi = cpu_to_be32(header.pause);
  831. memcpy(buffer + offset, &tmpi, sizeof(tmpi));
  832. tmps = cpu_to_be16(header.mod_freq_count);
  833. memcpy(buffer + offset + RR3_FREQ_COUNT_OFFSET, &tmps, 2);
  834. buffer[offset + RR3_NUM_LENGTHS_OFFSET] = header.no_lengths;
  835. tmps = cpu_to_be16(header.sig_size);
  836. memcpy(buffer + offset + RR3_NUM_SIGS_OFFSET, &tmps, 2);
  837. buffer[offset + RR3_REPEATS_OFFSET] = header.no_repeats;
  838. lengths_ptr = (u16 *)(buffer + offset + RR3_HEADER_LENGTH);
  839. for (i = 0; i < curlencheck; ++i)
  840. lengths_ptr[i] = cpu_to_be16(sample_lens[i]);
  841. datap = (u8 *)(buffer + offset + RR3_HEADER_LENGTH +
  842. (sizeof(u16) * RR3_DRIVER_MAXLENS));
  843. memcpy(datap, sigdata, (count + RR3_TX_TRAILER_LEN));
  844. if (debug) {
  845. redrat3_dump_signal_header(&header);
  846. redrat3_dump_signal_data(buffer, header.sig_size);
  847. }
  848. pipe = usb_sndbulkpipe(rr3->udev, rr3->ep_out->bEndpointAddress);
  849. tmps = usb_bulk_msg(rr3->udev, pipe, buffer,
  850. sendbuf_len, &ret_len, 10 * HZ);
  851. rr3_dbg(dev, "sent %d bytes, (ret %d)\n", ret_len, tmps);
  852. /* now tell the hardware to transmit what we sent it */
  853. pipe = usb_rcvctrlpipe(rr3->udev, 0);
  854. ret = usb_control_msg(rr3->udev, pipe, RR3_TX_SEND_SIGNAL,
  855. USB_TYPE_VENDOR | USB_RECIP_DEVICE | USB_DIR_IN,
  856. 0, 0, buffer, 2, HZ * 10);
  857. if (ret < 0)
  858. dev_err(dev, "Error: control msg send failed, rc %d\n", ret);
  859. else
  860. ret = count;
  861. out:
  862. kfree(sample_lens);
  863. kfree(buffer);
  864. kfree(sigdata);
  865. rr3->transmitting = false;
  866. /* rr3 re-enables rc detector because it was enabled before */
  867. rr3->det_enabled = true;
  868. return ret;
  869. }
  870. static struct rc_dev *redrat3_init_rc_dev(struct redrat3_dev *rr3)
  871. {
  872. struct device *dev = rr3->dev;
  873. struct rc_dev *rc;
  874. int ret = -ENODEV;
  875. u16 prod = le16_to_cpu(rr3->udev->descriptor.idProduct);
  876. rc = rc_allocate_device();
  877. if (!rc) {
  878. dev_err(dev, "remote input dev allocation failed\n");
  879. goto out;
  880. }
  881. snprintf(rr3->name, sizeof(rr3->name), "RedRat3%s "
  882. "Infrared Remote Transceiver (%04x:%04x)",
  883. prod == USB_RR3IIUSB_PRODUCT_ID ? "-II" : "",
  884. le16_to_cpu(rr3->udev->descriptor.idVendor), prod);
  885. usb_make_path(rr3->udev, rr3->phys, sizeof(rr3->phys));
  886. rc->input_name = rr3->name;
  887. rc->input_phys = rr3->phys;
  888. usb_to_input_id(rr3->udev, &rc->input_id);
  889. rc->dev.parent = dev;
  890. rc->priv = rr3;
  891. rc->driver_type = RC_DRIVER_IR_RAW;
  892. rc->allowed_protos = RC_BIT_ALL;
  893. rc->timeout = US_TO_NS(2750);
  894. rc->tx_ir = redrat3_transmit_ir;
  895. rc->s_tx_carrier = redrat3_set_tx_carrier;
  896. rc->driver_name = DRIVER_NAME;
  897. rc->rx_resolution = US_TO_NS(2);
  898. rc->map_name = RC_MAP_HAUPPAUGE;
  899. ret = rc_register_device(rc);
  900. if (ret < 0) {
  901. dev_err(dev, "remote dev registration failed\n");
  902. goto out;
  903. }
  904. return rc;
  905. out:
  906. rc_free_device(rc);
  907. return NULL;
  908. }
  909. static int redrat3_dev_probe(struct usb_interface *intf,
  910. const struct usb_device_id *id)
  911. {
  912. struct usb_device *udev = interface_to_usbdev(intf);
  913. struct device *dev = &intf->dev;
  914. struct usb_host_interface *uhi;
  915. struct redrat3_dev *rr3;
  916. struct usb_endpoint_descriptor *ep;
  917. struct usb_endpoint_descriptor *ep_in = NULL;
  918. struct usb_endpoint_descriptor *ep_out = NULL;
  919. u8 addr, attrs;
  920. int pipe, i;
  921. int retval = -ENOMEM;
  922. rr3_ftr(dev, "%s called\n", __func__);
  923. uhi = intf->cur_altsetting;
  924. /* find our bulk-in and bulk-out endpoints */
  925. for (i = 0; i < uhi->desc.bNumEndpoints; ++i) {
  926. ep = &uhi->endpoint[i].desc;
  927. addr = ep->bEndpointAddress;
  928. attrs = ep->bmAttributes;
  929. if ((ep_in == NULL) &&
  930. ((addr & USB_ENDPOINT_DIR_MASK) == USB_DIR_IN) &&
  931. ((attrs & USB_ENDPOINT_XFERTYPE_MASK) ==
  932. USB_ENDPOINT_XFER_BULK)) {
  933. rr3_dbg(dev, "found bulk-in endpoint at 0x%02x\n",
  934. ep->bEndpointAddress);
  935. /* data comes in on 0x82, 0x81 is for other data... */
  936. if (ep->bEndpointAddress == RR3_BULK_IN_EP_ADDR)
  937. ep_in = ep;
  938. }
  939. if ((ep_out == NULL) &&
  940. ((addr & USB_ENDPOINT_DIR_MASK) == USB_DIR_OUT) &&
  941. ((attrs & USB_ENDPOINT_XFERTYPE_MASK) ==
  942. USB_ENDPOINT_XFER_BULK)) {
  943. rr3_dbg(dev, "found bulk-out endpoint at 0x%02x\n",
  944. ep->bEndpointAddress);
  945. ep_out = ep;
  946. }
  947. }
  948. if (!ep_in || !ep_out) {
  949. dev_err(dev, "Couldn't find both in and out endpoints\n");
  950. retval = -ENODEV;
  951. goto no_endpoints;
  952. }
  953. /* allocate memory for our device state and initialize it */
  954. rr3 = kzalloc(sizeof(*rr3), GFP_KERNEL);
  955. if (rr3 == NULL) {
  956. dev_err(dev, "Memory allocation failure\n");
  957. goto no_endpoints;
  958. }
  959. rr3->dev = &intf->dev;
  960. /* set up bulk-in endpoint */
  961. rr3->read_urb = usb_alloc_urb(0, GFP_KERNEL);
  962. if (!rr3->read_urb) {
  963. dev_err(dev, "Read urb allocation failure\n");
  964. goto error;
  965. }
  966. rr3->ep_in = ep_in;
  967. rr3->bulk_in_buf = usb_alloc_coherent(udev, ep_in->wMaxPacketSize,
  968. GFP_ATOMIC, &rr3->dma_in);
  969. if (!rr3->bulk_in_buf) {
  970. dev_err(dev, "Read buffer allocation failure\n");
  971. goto error;
  972. }
  973. pipe = usb_rcvbulkpipe(udev, ep_in->bEndpointAddress);
  974. usb_fill_bulk_urb(rr3->read_urb, udev, pipe,
  975. rr3->bulk_in_buf, ep_in->wMaxPacketSize,
  976. (usb_complete_t)redrat3_handle_async, rr3);
  977. /* set up bulk-out endpoint*/
  978. rr3->write_urb = usb_alloc_urb(0, GFP_KERNEL);
  979. if (!rr3->write_urb) {
  980. dev_err(dev, "Write urb allocation failure\n");
  981. goto error;
  982. }
  983. rr3->ep_out = ep_out;
  984. rr3->bulk_out_buf = usb_alloc_coherent(udev, ep_out->wMaxPacketSize,
  985. GFP_ATOMIC, &rr3->dma_out);
  986. if (!rr3->bulk_out_buf) {
  987. dev_err(dev, "Write buffer allocation failure\n");
  988. goto error;
  989. }
  990. pipe = usb_sndbulkpipe(udev, ep_out->bEndpointAddress);
  991. usb_fill_bulk_urb(rr3->write_urb, udev, pipe,
  992. rr3->bulk_out_buf, ep_out->wMaxPacketSize,
  993. (usb_complete_t)redrat3_write_bulk_callback, rr3);
  994. rr3->udev = udev;
  995. redrat3_reset(rr3);
  996. redrat3_get_firmware_rev(rr3);
  997. /* might be all we need to do? */
  998. retval = redrat3_enable_detector(rr3);
  999. if (retval < 0)
  1000. goto error;
  1001. /* store current hardware timeout, in us, will use for kfifo resets */
  1002. rr3->hw_timeout = redrat3_get_timeout(rr3);
  1003. /* default.. will get overridden by any sends with a freq defined */
  1004. rr3->carrier = 38000;
  1005. rr3->rc = redrat3_init_rc_dev(rr3);
  1006. if (!rr3->rc) {
  1007. retval = -ENOMEM;
  1008. goto error;
  1009. }
  1010. setup_timer(&rr3->rx_timeout, redrat3_rx_timeout, (unsigned long)rr3);
  1011. /* we can register the device now, as it is ready */
  1012. usb_set_intfdata(intf, rr3);
  1013. rr3_ftr(dev, "Exiting %s\n", __func__);
  1014. return 0;
  1015. error:
  1016. redrat3_delete(rr3, rr3->udev);
  1017. no_endpoints:
  1018. dev_err(dev, "%s: retval = %x", __func__, retval);
  1019. return retval;
  1020. }
  1021. static void redrat3_dev_disconnect(struct usb_interface *intf)
  1022. {
  1023. struct usb_device *udev = interface_to_usbdev(intf);
  1024. struct redrat3_dev *rr3 = usb_get_intfdata(intf);
  1025. rr3_ftr(&intf->dev, "Entering %s\n", __func__);
  1026. if (!rr3)
  1027. return;
  1028. redrat3_disable_detector(rr3);
  1029. usb_set_intfdata(intf, NULL);
  1030. rc_unregister_device(rr3->rc);
  1031. del_timer_sync(&rr3->rx_timeout);
  1032. redrat3_delete(rr3, udev);
  1033. rr3_ftr(&intf->dev, "RedRat3 IR Transceiver now disconnected\n");
  1034. }
  1035. static int redrat3_dev_suspend(struct usb_interface *intf, pm_message_t message)
  1036. {
  1037. struct redrat3_dev *rr3 = usb_get_intfdata(intf);
  1038. rr3_ftr(rr3->dev, "suspend\n");
  1039. usb_kill_urb(rr3->read_urb);
  1040. return 0;
  1041. }
  1042. static int redrat3_dev_resume(struct usb_interface *intf)
  1043. {
  1044. struct redrat3_dev *rr3 = usb_get_intfdata(intf);
  1045. rr3_ftr(rr3->dev, "resume\n");
  1046. if (usb_submit_urb(rr3->read_urb, GFP_ATOMIC))
  1047. return -EIO;
  1048. return 0;
  1049. }
  1050. static struct usb_driver redrat3_dev_driver = {
  1051. .name = DRIVER_NAME,
  1052. .probe = redrat3_dev_probe,
  1053. .disconnect = redrat3_dev_disconnect,
  1054. .suspend = redrat3_dev_suspend,
  1055. .resume = redrat3_dev_resume,
  1056. .reset_resume = redrat3_dev_resume,
  1057. .id_table = redrat3_dev_table
  1058. };
  1059. module_usb_driver(redrat3_dev_driver);
  1060. MODULE_DESCRIPTION(DRIVER_DESC);
  1061. MODULE_AUTHOR(DRIVER_AUTHOR);
  1062. MODULE_AUTHOR(DRIVER_AUTHOR2);
  1063. MODULE_LICENSE("GPL");
  1064. MODULE_DEVICE_TABLE(usb, redrat3_dev_table);
  1065. module_param(debug, int, S_IRUGO | S_IWUSR);
  1066. MODULE_PARM_DESC(debug, "Enable module debug spew. 0 = no debugging (default) "
  1067. "0x1 = standard debug messages, 0x2 = function tracing debug. "
  1068. "Flag bits are addative (i.e., 0x3 for both debug types).");