hid-logitech-dj.c 30 KB

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  1. /*
  2. * HID driver for Logitech Unifying receivers
  3. *
  4. * Copyright (c) 2011 Logitech
  5. */
  6. /*
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License version 2 as
  9. * published by the Free Software Foundation.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, write to the Free Software
  18. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  19. *
  20. */
  21. #include <linux/device.h>
  22. #include <linux/hid.h>
  23. #include <linux/module.h>
  24. #include <linux/usb.h>
  25. #include <asm/unaligned.h>
  26. #include "hid-ids.h"
  27. #include "hid-logitech-dj.h"
  28. /* Keyboard descriptor (1) */
  29. static const char kbd_descriptor[] = {
  30. 0x05, 0x01, /* USAGE_PAGE (generic Desktop) */
  31. 0x09, 0x06, /* USAGE (Keyboard) */
  32. 0xA1, 0x01, /* COLLECTION (Application) */
  33. 0x85, 0x01, /* REPORT_ID (1) */
  34. 0x95, 0x08, /* REPORT_COUNT (8) */
  35. 0x75, 0x01, /* REPORT_SIZE (1) */
  36. 0x15, 0x00, /* LOGICAL_MINIMUM (0) */
  37. 0x25, 0x01, /* LOGICAL_MAXIMUM (1) */
  38. 0x05, 0x07, /* USAGE_PAGE (Keyboard) */
  39. 0x19, 0xE0, /* USAGE_MINIMUM (Left Control) */
  40. 0x29, 0xE7, /* USAGE_MAXIMUM (Right GUI) */
  41. 0x81, 0x02, /* INPUT (Data,Var,Abs) */
  42. 0x95, 0x06, /* REPORT_COUNT (6) */
  43. 0x75, 0x08, /* REPORT_SIZE (8) */
  44. 0x15, 0x00, /* LOGICAL_MINIMUM (0) */
  45. 0x26, 0xFF, 0x00, /* LOGICAL_MAXIMUM (255) */
  46. 0x05, 0x07, /* USAGE_PAGE (Keyboard) */
  47. 0x19, 0x00, /* USAGE_MINIMUM (no event) */
  48. 0x2A, 0xFF, 0x00, /* USAGE_MAXIMUM (reserved) */
  49. 0x81, 0x00, /* INPUT (Data,Ary,Abs) */
  50. 0x85, 0x0e, /* REPORT_ID (14) */
  51. 0x05, 0x08, /* USAGE PAGE (LED page) */
  52. 0x95, 0x05, /* REPORT COUNT (5) */
  53. 0x75, 0x01, /* REPORT SIZE (1) */
  54. 0x15, 0x00, /* LOGICAL_MINIMUM (0) */
  55. 0x25, 0x01, /* LOGICAL_MAXIMUM (1) */
  56. 0x19, 0x01, /* USAGE MINIMUM (1) */
  57. 0x29, 0x05, /* USAGE MAXIMUM (5) */
  58. 0x91, 0x02, /* OUTPUT (Data, Variable, Absolute) */
  59. 0x95, 0x01, /* REPORT COUNT (1) */
  60. 0x75, 0x03, /* REPORT SIZE (3) */
  61. 0x91, 0x01, /* OUTPUT (Constant) */
  62. 0xC0
  63. };
  64. /* Mouse descriptor (2) */
  65. static const char mse_descriptor[] = {
  66. 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */
  67. 0x09, 0x02, /* USAGE (Mouse) */
  68. 0xA1, 0x01, /* COLLECTION (Application) */
  69. 0x85, 0x02, /* REPORT_ID = 2 */
  70. 0x09, 0x01, /* USAGE (pointer) */
  71. 0xA1, 0x00, /* COLLECTION (physical) */
  72. 0x05, 0x09, /* USAGE_PAGE (buttons) */
  73. 0x19, 0x01, /* USAGE_MIN (1) */
  74. 0x29, 0x10, /* USAGE_MAX (16) */
  75. 0x15, 0x00, /* LOGICAL_MIN (0) */
  76. 0x25, 0x01, /* LOGICAL_MAX (1) */
  77. 0x95, 0x10, /* REPORT_COUNT (16) */
  78. 0x75, 0x01, /* REPORT_SIZE (1) */
  79. 0x81, 0x02, /* INPUT (data var abs) */
  80. 0x05, 0x01, /* USAGE_PAGE (generic desktop) */
  81. 0x16, 0x01, 0xF8, /* LOGICAL_MIN (-2047) */
  82. 0x26, 0xFF, 0x07, /* LOGICAL_MAX (2047) */
  83. 0x75, 0x0C, /* REPORT_SIZE (12) */
  84. 0x95, 0x02, /* REPORT_COUNT (2) */
  85. 0x09, 0x30, /* USAGE (X) */
  86. 0x09, 0x31, /* USAGE (Y) */
  87. 0x81, 0x06, /* INPUT */
  88. 0x15, 0x81, /* LOGICAL_MIN (-127) */
  89. 0x25, 0x7F, /* LOGICAL_MAX (127) */
  90. 0x75, 0x08, /* REPORT_SIZE (8) */
  91. 0x95, 0x01, /* REPORT_COUNT (1) */
  92. 0x09, 0x38, /* USAGE (wheel) */
  93. 0x81, 0x06, /* INPUT */
  94. 0x05, 0x0C, /* USAGE_PAGE(consumer) */
  95. 0x0A, 0x38, 0x02, /* USAGE(AC Pan) */
  96. 0x95, 0x01, /* REPORT_COUNT (1) */
  97. 0x81, 0x06, /* INPUT */
  98. 0xC0, /* END_COLLECTION */
  99. 0xC0, /* END_COLLECTION */
  100. };
  101. /* Consumer Control descriptor (3) */
  102. static const char consumer_descriptor[] = {
  103. 0x05, 0x0C, /* USAGE_PAGE (Consumer Devices) */
  104. 0x09, 0x01, /* USAGE (Consumer Control) */
  105. 0xA1, 0x01, /* COLLECTION (Application) */
  106. 0x85, 0x03, /* REPORT_ID = 3 */
  107. 0x75, 0x10, /* REPORT_SIZE (16) */
  108. 0x95, 0x02, /* REPORT_COUNT (2) */
  109. 0x15, 0x01, /* LOGICAL_MIN (1) */
  110. 0x26, 0x8C, 0x02, /* LOGICAL_MAX (652) */
  111. 0x19, 0x01, /* USAGE_MIN (1) */
  112. 0x2A, 0x8C, 0x02, /* USAGE_MAX (652) */
  113. 0x81, 0x00, /* INPUT (Data Ary Abs) */
  114. 0xC0, /* END_COLLECTION */
  115. }; /* */
  116. /* System control descriptor (4) */
  117. static const char syscontrol_descriptor[] = {
  118. 0x05, 0x01, /* USAGE_PAGE (Generic Desktop) */
  119. 0x09, 0x80, /* USAGE (System Control) */
  120. 0xA1, 0x01, /* COLLECTION (Application) */
  121. 0x85, 0x04, /* REPORT_ID = 4 */
  122. 0x75, 0x02, /* REPORT_SIZE (2) */
  123. 0x95, 0x01, /* REPORT_COUNT (1) */
  124. 0x15, 0x01, /* LOGICAL_MIN (1) */
  125. 0x25, 0x03, /* LOGICAL_MAX (3) */
  126. 0x09, 0x82, /* USAGE (System Sleep) */
  127. 0x09, 0x81, /* USAGE (System Power Down) */
  128. 0x09, 0x83, /* USAGE (System Wake Up) */
  129. 0x81, 0x60, /* INPUT (Data Ary Abs NPrf Null) */
  130. 0x75, 0x06, /* REPORT_SIZE (6) */
  131. 0x81, 0x03, /* INPUT (Cnst Var Abs) */
  132. 0xC0, /* END_COLLECTION */
  133. };
  134. /* Media descriptor (8) */
  135. static const char media_descriptor[] = {
  136. 0x06, 0xbc, 0xff, /* Usage Page 0xffbc */
  137. 0x09, 0x88, /* Usage 0x0088 */
  138. 0xa1, 0x01, /* BeginCollection */
  139. 0x85, 0x08, /* Report ID 8 */
  140. 0x19, 0x01, /* Usage Min 0x0001 */
  141. 0x29, 0xff, /* Usage Max 0x00ff */
  142. 0x15, 0x01, /* Logical Min 1 */
  143. 0x26, 0xff, 0x00, /* Logical Max 255 */
  144. 0x75, 0x08, /* Report Size 8 */
  145. 0x95, 0x01, /* Report Count 1 */
  146. 0x81, 0x00, /* Input */
  147. 0xc0, /* EndCollection */
  148. }; /* */
  149. /* Maximum size of all defined hid reports in bytes (including report id) */
  150. #define MAX_REPORT_SIZE 8
  151. /* Make sure all descriptors are present here */
  152. #define MAX_RDESC_SIZE \
  153. (sizeof(kbd_descriptor) + \
  154. sizeof(mse_descriptor) + \
  155. sizeof(consumer_descriptor) + \
  156. sizeof(syscontrol_descriptor) + \
  157. sizeof(media_descriptor))
  158. /* Number of possible hid report types that can be created by this driver.
  159. *
  160. * Right now, RF report types have the same report types (or report id's)
  161. * than the hid report created from those RF reports. In the future
  162. * this doesnt have to be true.
  163. *
  164. * For instance, RF report type 0x01 which has a size of 8 bytes, corresponds
  165. * to hid report id 0x01, this is standard keyboard. Same thing applies to mice
  166. * reports and consumer control, etc. If a new RF report is created, it doesn't
  167. * has to have the same report id as its corresponding hid report, so an
  168. * translation may have to take place for future report types.
  169. */
  170. #define NUMBER_OF_HID_REPORTS 32
  171. static const u8 hid_reportid_size_map[NUMBER_OF_HID_REPORTS] = {
  172. [1] = 8, /* Standard keyboard */
  173. [2] = 8, /* Standard mouse */
  174. [3] = 5, /* Consumer control */
  175. [4] = 2, /* System control */
  176. [8] = 2, /* Media Center */
  177. };
  178. #define LOGITECH_DJ_INTERFACE_NUMBER 0x02
  179. static struct hid_ll_driver logi_dj_ll_driver;
  180. static int logi_dj_recv_query_paired_devices(struct dj_receiver_dev *djrcv_dev);
  181. static void logi_dj_recv_destroy_djhid_device(struct dj_receiver_dev *djrcv_dev,
  182. struct dj_report *dj_report)
  183. {
  184. /* Called in delayed work context */
  185. struct dj_device *dj_dev;
  186. unsigned long flags;
  187. spin_lock_irqsave(&djrcv_dev->lock, flags);
  188. dj_dev = djrcv_dev->paired_dj_devices[dj_report->device_index];
  189. djrcv_dev->paired_dj_devices[dj_report->device_index] = NULL;
  190. spin_unlock_irqrestore(&djrcv_dev->lock, flags);
  191. if (dj_dev != NULL) {
  192. hid_destroy_device(dj_dev->hdev);
  193. kfree(dj_dev);
  194. } else {
  195. dev_err(&djrcv_dev->hdev->dev, "%s: can't destroy a NULL device\n",
  196. __func__);
  197. }
  198. }
  199. static void logi_dj_recv_add_djhid_device(struct dj_receiver_dev *djrcv_dev,
  200. struct dj_report *dj_report)
  201. {
  202. /* Called in delayed work context */
  203. struct hid_device *djrcv_hdev = djrcv_dev->hdev;
  204. struct usb_interface *intf = to_usb_interface(djrcv_hdev->dev.parent);
  205. struct usb_device *usbdev = interface_to_usbdev(intf);
  206. struct hid_device *dj_hiddev;
  207. struct dj_device *dj_dev;
  208. /* Device index goes from 1 to 6, we need 3 bytes to store the
  209. * semicolon, the index, and a null terminator
  210. */
  211. unsigned char tmpstr[3];
  212. if (dj_report->report_params[DEVICE_PAIRED_PARAM_SPFUNCTION] &
  213. SPFUNCTION_DEVICE_LIST_EMPTY) {
  214. dbg_hid("%s: device list is empty\n", __func__);
  215. djrcv_dev->querying_devices = false;
  216. return;
  217. }
  218. if ((dj_report->device_index < DJ_DEVICE_INDEX_MIN) ||
  219. (dj_report->device_index > DJ_DEVICE_INDEX_MAX)) {
  220. dev_err(&djrcv_hdev->dev, "%s: invalid device index:%d\n",
  221. __func__, dj_report->device_index);
  222. return;
  223. }
  224. if (djrcv_dev->paired_dj_devices[dj_report->device_index]) {
  225. /* The device is already known. No need to reallocate it. */
  226. dbg_hid("%s: device is already known\n", __func__);
  227. return;
  228. }
  229. dj_hiddev = hid_allocate_device();
  230. if (IS_ERR(dj_hiddev)) {
  231. dev_err(&djrcv_hdev->dev, "%s: hid_allocate_device failed\n",
  232. __func__);
  233. return;
  234. }
  235. dj_hiddev->ll_driver = &logi_dj_ll_driver;
  236. dj_hiddev->dev.parent = &djrcv_hdev->dev;
  237. dj_hiddev->bus = BUS_USB;
  238. dj_hiddev->vendor = le16_to_cpu(usbdev->descriptor.idVendor);
  239. dj_hiddev->product = le16_to_cpu(usbdev->descriptor.idProduct);
  240. snprintf(dj_hiddev->name, sizeof(dj_hiddev->name),
  241. "Logitech Unifying Device. Wireless PID:%02x%02x",
  242. dj_report->report_params[DEVICE_PAIRED_PARAM_EQUAD_ID_MSB],
  243. dj_report->report_params[DEVICE_PAIRED_PARAM_EQUAD_ID_LSB]);
  244. usb_make_path(usbdev, dj_hiddev->phys, sizeof(dj_hiddev->phys));
  245. snprintf(tmpstr, sizeof(tmpstr), ":%d", dj_report->device_index);
  246. strlcat(dj_hiddev->phys, tmpstr, sizeof(dj_hiddev->phys));
  247. dj_dev = kzalloc(sizeof(struct dj_device), GFP_KERNEL);
  248. if (!dj_dev) {
  249. dev_err(&djrcv_hdev->dev, "%s: failed allocating dj_device\n",
  250. __func__);
  251. goto dj_device_allocate_fail;
  252. }
  253. dj_dev->reports_supported = get_unaligned_le32(
  254. dj_report->report_params + DEVICE_PAIRED_RF_REPORT_TYPE);
  255. dj_dev->hdev = dj_hiddev;
  256. dj_dev->dj_receiver_dev = djrcv_dev;
  257. dj_dev->device_index = dj_report->device_index;
  258. dj_hiddev->driver_data = dj_dev;
  259. djrcv_dev->paired_dj_devices[dj_report->device_index] = dj_dev;
  260. if (hid_add_device(dj_hiddev)) {
  261. dev_err(&djrcv_hdev->dev, "%s: failed adding dj_device\n",
  262. __func__);
  263. goto hid_add_device_fail;
  264. }
  265. return;
  266. hid_add_device_fail:
  267. djrcv_dev->paired_dj_devices[dj_report->device_index] = NULL;
  268. kfree(dj_dev);
  269. dj_device_allocate_fail:
  270. hid_destroy_device(dj_hiddev);
  271. }
  272. static void delayedwork_callback(struct work_struct *work)
  273. {
  274. struct dj_receiver_dev *djrcv_dev =
  275. container_of(work, struct dj_receiver_dev, work);
  276. struct dj_report dj_report;
  277. unsigned long flags;
  278. int count;
  279. int retval;
  280. dbg_hid("%s\n", __func__);
  281. spin_lock_irqsave(&djrcv_dev->lock, flags);
  282. count = kfifo_out(&djrcv_dev->notif_fifo, &dj_report,
  283. sizeof(struct dj_report));
  284. if (count != sizeof(struct dj_report)) {
  285. dev_err(&djrcv_dev->hdev->dev, "%s: workitem triggered without "
  286. "notifications available\n", __func__);
  287. spin_unlock_irqrestore(&djrcv_dev->lock, flags);
  288. return;
  289. }
  290. if (!kfifo_is_empty(&djrcv_dev->notif_fifo)) {
  291. if (schedule_work(&djrcv_dev->work) == 0) {
  292. dbg_hid("%s: did not schedule the work item, was "
  293. "already queued\n", __func__);
  294. }
  295. }
  296. spin_unlock_irqrestore(&djrcv_dev->lock, flags);
  297. switch (dj_report.report_type) {
  298. case REPORT_TYPE_NOTIF_DEVICE_PAIRED:
  299. logi_dj_recv_add_djhid_device(djrcv_dev, &dj_report);
  300. break;
  301. case REPORT_TYPE_NOTIF_DEVICE_UNPAIRED:
  302. logi_dj_recv_destroy_djhid_device(djrcv_dev, &dj_report);
  303. break;
  304. default:
  305. /* A normal report (i. e. not belonging to a pair/unpair notification)
  306. * arriving here, means that the report arrived but we did not have a
  307. * paired dj_device associated to the report's device_index, this
  308. * means that the original "device paired" notification corresponding
  309. * to this dj_device never arrived to this driver. The reason is that
  310. * hid-core discards all packets coming from a device while probe() is
  311. * executing. */
  312. if (!djrcv_dev->paired_dj_devices[dj_report.device_index]) {
  313. /* ok, we don't know the device, just re-ask the
  314. * receiver for the list of connected devices. */
  315. retval = logi_dj_recv_query_paired_devices(djrcv_dev);
  316. if (!retval) {
  317. /* everything went fine, so just leave */
  318. break;
  319. }
  320. dev_err(&djrcv_dev->hdev->dev,
  321. "%s:logi_dj_recv_query_paired_devices "
  322. "error:%d\n", __func__, retval);
  323. }
  324. dbg_hid("%s: unexpected report type\n", __func__);
  325. }
  326. }
  327. static void logi_dj_recv_queue_notification(struct dj_receiver_dev *djrcv_dev,
  328. struct dj_report *dj_report)
  329. {
  330. /* We are called from atomic context (tasklet && djrcv->lock held) */
  331. kfifo_in(&djrcv_dev->notif_fifo, dj_report, sizeof(struct dj_report));
  332. if (schedule_work(&djrcv_dev->work) == 0) {
  333. dbg_hid("%s: did not schedule the work item, was already "
  334. "queued\n", __func__);
  335. }
  336. }
  337. static void logi_dj_recv_forward_null_report(struct dj_receiver_dev *djrcv_dev,
  338. struct dj_report *dj_report)
  339. {
  340. /* We are called from atomic context (tasklet && djrcv->lock held) */
  341. unsigned int i;
  342. u8 reportbuffer[MAX_REPORT_SIZE];
  343. struct dj_device *djdev;
  344. djdev = djrcv_dev->paired_dj_devices[dj_report->device_index];
  345. if (!djdev) {
  346. dbg_hid("djrcv_dev->paired_dj_devices[dj_report->device_index]"
  347. " is NULL, index %d\n", dj_report->device_index);
  348. kfifo_in(&djrcv_dev->notif_fifo, dj_report, sizeof(struct dj_report));
  349. if (schedule_work(&djrcv_dev->work) == 0) {
  350. dbg_hid("%s: did not schedule the work item, was already "
  351. "queued\n", __func__);
  352. }
  353. return;
  354. }
  355. memset(reportbuffer, 0, sizeof(reportbuffer));
  356. for (i = 0; i < NUMBER_OF_HID_REPORTS; i++) {
  357. if (djdev->reports_supported & (1 << i)) {
  358. reportbuffer[0] = i;
  359. if (hid_input_report(djdev->hdev,
  360. HID_INPUT_REPORT,
  361. reportbuffer,
  362. hid_reportid_size_map[i], 1)) {
  363. dbg_hid("hid_input_report error sending null "
  364. "report\n");
  365. }
  366. }
  367. }
  368. }
  369. static void logi_dj_recv_forward_report(struct dj_receiver_dev *djrcv_dev,
  370. struct dj_report *dj_report)
  371. {
  372. /* We are called from atomic context (tasklet && djrcv->lock held) */
  373. struct dj_device *dj_device;
  374. dj_device = djrcv_dev->paired_dj_devices[dj_report->device_index];
  375. if (dj_device == NULL) {
  376. dbg_hid("djrcv_dev->paired_dj_devices[dj_report->device_index]"
  377. " is NULL, index %d\n", dj_report->device_index);
  378. kfifo_in(&djrcv_dev->notif_fifo, dj_report, sizeof(struct dj_report));
  379. if (schedule_work(&djrcv_dev->work) == 0) {
  380. dbg_hid("%s: did not schedule the work item, was already "
  381. "queued\n", __func__);
  382. }
  383. return;
  384. }
  385. if ((dj_report->report_type > ARRAY_SIZE(hid_reportid_size_map) - 1) ||
  386. (hid_reportid_size_map[dj_report->report_type] == 0)) {
  387. dbg_hid("invalid report type:%x\n", dj_report->report_type);
  388. return;
  389. }
  390. if (hid_input_report(dj_device->hdev,
  391. HID_INPUT_REPORT, &dj_report->report_type,
  392. hid_reportid_size_map[dj_report->report_type], 1)) {
  393. dbg_hid("hid_input_report error\n");
  394. }
  395. }
  396. static int logi_dj_recv_send_report(struct dj_receiver_dev *djrcv_dev,
  397. struct dj_report *dj_report)
  398. {
  399. struct hid_device *hdev = djrcv_dev->hdev;
  400. struct hid_report *report;
  401. struct hid_report_enum *output_report_enum;
  402. u8 *data = (u8 *)(&dj_report->device_index);
  403. unsigned int i;
  404. output_report_enum = &hdev->report_enum[HID_OUTPUT_REPORT];
  405. report = output_report_enum->report_id_hash[REPORT_ID_DJ_SHORT];
  406. if (!report) {
  407. dev_err(&hdev->dev, "%s: unable to find dj report\n", __func__);
  408. return -ENODEV;
  409. }
  410. for (i = 0; i < DJREPORT_SHORT_LENGTH - 1; i++)
  411. report->field[0]->value[i] = data[i];
  412. hid_hw_request(hdev, report, HID_REQ_SET_REPORT);
  413. return 0;
  414. }
  415. static int logi_dj_recv_query_paired_devices(struct dj_receiver_dev *djrcv_dev)
  416. {
  417. struct dj_report *dj_report;
  418. int retval;
  419. /* no need to protect djrcv_dev->querying_devices */
  420. if (djrcv_dev->querying_devices)
  421. return 0;
  422. dj_report = kzalloc(sizeof(struct dj_report), GFP_KERNEL);
  423. if (!dj_report)
  424. return -ENOMEM;
  425. dj_report->report_id = REPORT_ID_DJ_SHORT;
  426. dj_report->device_index = 0xFF;
  427. dj_report->report_type = REPORT_TYPE_CMD_GET_PAIRED_DEVICES;
  428. retval = logi_dj_recv_send_report(djrcv_dev, dj_report);
  429. kfree(dj_report);
  430. return retval;
  431. }
  432. static int logi_dj_recv_switch_to_dj_mode(struct dj_receiver_dev *djrcv_dev,
  433. unsigned timeout)
  434. {
  435. struct dj_report *dj_report;
  436. int retval;
  437. dj_report = kzalloc(sizeof(struct dj_report), GFP_KERNEL);
  438. if (!dj_report)
  439. return -ENOMEM;
  440. dj_report->report_id = REPORT_ID_DJ_SHORT;
  441. dj_report->device_index = 0xFF;
  442. dj_report->report_type = REPORT_TYPE_CMD_SWITCH;
  443. dj_report->report_params[CMD_SWITCH_PARAM_DEVBITFIELD] = 0x3F;
  444. dj_report->report_params[CMD_SWITCH_PARAM_TIMEOUT_SECONDS] = (u8)timeout;
  445. retval = logi_dj_recv_send_report(djrcv_dev, dj_report);
  446. kfree(dj_report);
  447. /*
  448. * Ugly sleep to work around a USB 3.0 bug when the receiver is still
  449. * processing the "switch-to-dj" command while we send an other command.
  450. * 50 msec should gives enough time to the receiver to be ready.
  451. */
  452. msleep(50);
  453. return retval;
  454. }
  455. static int logi_dj_ll_open(struct hid_device *hid)
  456. {
  457. dbg_hid("%s:%s\n", __func__, hid->phys);
  458. return 0;
  459. }
  460. static void logi_dj_ll_close(struct hid_device *hid)
  461. {
  462. dbg_hid("%s:%s\n", __func__, hid->phys);
  463. }
  464. static int logi_dj_ll_raw_request(struct hid_device *hid,
  465. unsigned char reportnum, __u8 *buf,
  466. size_t count, unsigned char report_type,
  467. int reqtype)
  468. {
  469. struct dj_device *djdev = hid->driver_data;
  470. struct dj_receiver_dev *djrcv_dev = djdev->dj_receiver_dev;
  471. u8 *out_buf;
  472. int ret;
  473. if (buf[0] != REPORT_TYPE_LEDS)
  474. return -EINVAL;
  475. out_buf = kzalloc(DJREPORT_SHORT_LENGTH, GFP_ATOMIC);
  476. if (!out_buf)
  477. return -ENOMEM;
  478. if (count < DJREPORT_SHORT_LENGTH - 2)
  479. count = DJREPORT_SHORT_LENGTH - 2;
  480. out_buf[0] = REPORT_ID_DJ_SHORT;
  481. out_buf[1] = djdev->device_index;
  482. memcpy(out_buf + 2, buf, count);
  483. ret = hid_hw_raw_request(djrcv_dev->hdev, out_buf[0], out_buf,
  484. DJREPORT_SHORT_LENGTH, report_type, reqtype);
  485. kfree(out_buf);
  486. return ret;
  487. }
  488. static void rdcat(char *rdesc, unsigned int *rsize, const char *data, unsigned int size)
  489. {
  490. memcpy(rdesc + *rsize, data, size);
  491. *rsize += size;
  492. }
  493. static int logi_dj_ll_parse(struct hid_device *hid)
  494. {
  495. struct dj_device *djdev = hid->driver_data;
  496. unsigned int rsize = 0;
  497. char *rdesc;
  498. int retval;
  499. dbg_hid("%s\n", __func__);
  500. djdev->hdev->version = 0x0111;
  501. djdev->hdev->country = 0x00;
  502. rdesc = kmalloc(MAX_RDESC_SIZE, GFP_KERNEL);
  503. if (!rdesc)
  504. return -ENOMEM;
  505. if (djdev->reports_supported & STD_KEYBOARD) {
  506. dbg_hid("%s: sending a kbd descriptor, reports_supported: %x\n",
  507. __func__, djdev->reports_supported);
  508. rdcat(rdesc, &rsize, kbd_descriptor, sizeof(kbd_descriptor));
  509. }
  510. if (djdev->reports_supported & STD_MOUSE) {
  511. dbg_hid("%s: sending a mouse descriptor, reports_supported: "
  512. "%x\n", __func__, djdev->reports_supported);
  513. rdcat(rdesc, &rsize, mse_descriptor, sizeof(mse_descriptor));
  514. }
  515. if (djdev->reports_supported & MULTIMEDIA) {
  516. dbg_hid("%s: sending a multimedia report descriptor: %x\n",
  517. __func__, djdev->reports_supported);
  518. rdcat(rdesc, &rsize, consumer_descriptor, sizeof(consumer_descriptor));
  519. }
  520. if (djdev->reports_supported & POWER_KEYS) {
  521. dbg_hid("%s: sending a power keys report descriptor: %x\n",
  522. __func__, djdev->reports_supported);
  523. rdcat(rdesc, &rsize, syscontrol_descriptor, sizeof(syscontrol_descriptor));
  524. }
  525. if (djdev->reports_supported & MEDIA_CENTER) {
  526. dbg_hid("%s: sending a media center report descriptor: %x\n",
  527. __func__, djdev->reports_supported);
  528. rdcat(rdesc, &rsize, media_descriptor, sizeof(media_descriptor));
  529. }
  530. if (djdev->reports_supported & KBD_LEDS) {
  531. dbg_hid("%s: need to send kbd leds report descriptor: %x\n",
  532. __func__, djdev->reports_supported);
  533. }
  534. retval = hid_parse_report(hid, rdesc, rsize);
  535. kfree(rdesc);
  536. return retval;
  537. }
  538. static int logi_dj_ll_start(struct hid_device *hid)
  539. {
  540. dbg_hid("%s\n", __func__);
  541. return 0;
  542. }
  543. static void logi_dj_ll_stop(struct hid_device *hid)
  544. {
  545. dbg_hid("%s\n", __func__);
  546. }
  547. static struct hid_ll_driver logi_dj_ll_driver = {
  548. .parse = logi_dj_ll_parse,
  549. .start = logi_dj_ll_start,
  550. .stop = logi_dj_ll_stop,
  551. .open = logi_dj_ll_open,
  552. .close = logi_dj_ll_close,
  553. .raw_request = logi_dj_ll_raw_request,
  554. };
  555. static int logi_dj_raw_event(struct hid_device *hdev,
  556. struct hid_report *report, u8 *data,
  557. int size)
  558. {
  559. struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev);
  560. struct dj_report *dj_report = (struct dj_report *) data;
  561. unsigned long flags;
  562. bool report_processed = false;
  563. dbg_hid("%s, size:%d\n", __func__, size);
  564. /* Here we receive all data coming from iface 2, there are 4 cases:
  565. *
  566. * 1) Data should continue its normal processing i.e. data does not
  567. * come from the DJ collection, in which case we do nothing and
  568. * return 0, so hid-core can continue normal processing (will forward
  569. * to associated hidraw device)
  570. *
  571. * 2) Data is from DJ collection, and is intended for this driver i. e.
  572. * data contains arrival, departure, etc notifications, in which case
  573. * we queue them for delayed processing by the work queue. We return 1
  574. * to hid-core as no further processing is required from it.
  575. *
  576. * 3) Data is from DJ collection, and informs a connection change,
  577. * if the change means rf link loss, then we must send a null report
  578. * to the upper layer to discard potentially pressed keys that may be
  579. * repeated forever by the input layer. Return 1 to hid-core as no
  580. * further processing is required.
  581. *
  582. * 4) Data is from DJ collection and is an actual input event from
  583. * a paired DJ device in which case we forward it to the correct hid
  584. * device (via hid_input_report() ) and return 1 so hid-core does not do
  585. * anything else with it.
  586. */
  587. spin_lock_irqsave(&djrcv_dev->lock, flags);
  588. if (dj_report->report_id == REPORT_ID_DJ_SHORT) {
  589. switch (dj_report->report_type) {
  590. case REPORT_TYPE_NOTIF_DEVICE_PAIRED:
  591. case REPORT_TYPE_NOTIF_DEVICE_UNPAIRED:
  592. logi_dj_recv_queue_notification(djrcv_dev, dj_report);
  593. break;
  594. case REPORT_TYPE_NOTIF_CONNECTION_STATUS:
  595. if (dj_report->report_params[CONNECTION_STATUS_PARAM_STATUS] ==
  596. STATUS_LINKLOSS) {
  597. logi_dj_recv_forward_null_report(djrcv_dev, dj_report);
  598. }
  599. break;
  600. default:
  601. logi_dj_recv_forward_report(djrcv_dev, dj_report);
  602. }
  603. report_processed = true;
  604. }
  605. spin_unlock_irqrestore(&djrcv_dev->lock, flags);
  606. return report_processed;
  607. }
  608. static int logi_dj_probe(struct hid_device *hdev,
  609. const struct hid_device_id *id)
  610. {
  611. struct usb_interface *intf = to_usb_interface(hdev->dev.parent);
  612. struct dj_receiver_dev *djrcv_dev;
  613. int retval;
  614. if (is_dj_device((struct dj_device *)hdev->driver_data))
  615. return -ENODEV;
  616. dbg_hid("%s called for ifnum %d\n", __func__,
  617. intf->cur_altsetting->desc.bInterfaceNumber);
  618. /* Ignore interfaces 0 and 1, they will not carry any data, dont create
  619. * any hid_device for them */
  620. if (intf->cur_altsetting->desc.bInterfaceNumber !=
  621. LOGITECH_DJ_INTERFACE_NUMBER) {
  622. dbg_hid("%s: ignoring ifnum %d\n", __func__,
  623. intf->cur_altsetting->desc.bInterfaceNumber);
  624. return -ENODEV;
  625. }
  626. /* Treat interface 2 */
  627. djrcv_dev = kzalloc(sizeof(struct dj_receiver_dev), GFP_KERNEL);
  628. if (!djrcv_dev) {
  629. dev_err(&hdev->dev,
  630. "%s:failed allocating dj_receiver_dev\n", __func__);
  631. return -ENOMEM;
  632. }
  633. djrcv_dev->hdev = hdev;
  634. INIT_WORK(&djrcv_dev->work, delayedwork_callback);
  635. spin_lock_init(&djrcv_dev->lock);
  636. if (kfifo_alloc(&djrcv_dev->notif_fifo,
  637. DJ_MAX_NUMBER_NOTIFICATIONS * sizeof(struct dj_report),
  638. GFP_KERNEL)) {
  639. dev_err(&hdev->dev,
  640. "%s:failed allocating notif_fifo\n", __func__);
  641. kfree(djrcv_dev);
  642. return -ENOMEM;
  643. }
  644. hid_set_drvdata(hdev, djrcv_dev);
  645. /* Call to usbhid to fetch the HID descriptors of interface 2 and
  646. * subsequently call to the hid/hid-core to parse the fetched
  647. * descriptors, this will in turn create the hidraw and hiddev nodes
  648. * for interface 2 of the receiver */
  649. retval = hid_parse(hdev);
  650. if (retval) {
  651. dev_err(&hdev->dev,
  652. "%s:parse of interface 2 failed\n", __func__);
  653. goto hid_parse_fail;
  654. }
  655. if (!hid_validate_values(hdev, HID_OUTPUT_REPORT, REPORT_ID_DJ_SHORT,
  656. 0, DJREPORT_SHORT_LENGTH - 1)) {
  657. retval = -ENODEV;
  658. goto hid_parse_fail;
  659. }
  660. /* Starts the usb device and connects to upper interfaces hiddev and
  661. * hidraw */
  662. retval = hid_hw_start(hdev, HID_CONNECT_DEFAULT);
  663. if (retval) {
  664. dev_err(&hdev->dev,
  665. "%s:hid_hw_start returned error\n", __func__);
  666. goto hid_hw_start_fail;
  667. }
  668. retval = logi_dj_recv_switch_to_dj_mode(djrcv_dev, 0);
  669. if (retval < 0) {
  670. dev_err(&hdev->dev,
  671. "%s:logi_dj_recv_switch_to_dj_mode returned error:%d\n",
  672. __func__, retval);
  673. goto switch_to_dj_mode_fail;
  674. }
  675. /* This is enabling the polling urb on the IN endpoint */
  676. retval = hid_hw_open(hdev);
  677. if (retval < 0) {
  678. dev_err(&hdev->dev, "%s:hid_hw_open returned error:%d\n",
  679. __func__, retval);
  680. goto llopen_failed;
  681. }
  682. /* Allow incoming packets to arrive: */
  683. hid_device_io_start(hdev);
  684. retval = logi_dj_recv_query_paired_devices(djrcv_dev);
  685. if (retval < 0) {
  686. dev_err(&hdev->dev, "%s:logi_dj_recv_query_paired_devices "
  687. "error:%d\n", __func__, retval);
  688. goto logi_dj_recv_query_paired_devices_failed;
  689. }
  690. return retval;
  691. logi_dj_recv_query_paired_devices_failed:
  692. hid_hw_close(hdev);
  693. llopen_failed:
  694. switch_to_dj_mode_fail:
  695. hid_hw_stop(hdev);
  696. hid_hw_start_fail:
  697. hid_parse_fail:
  698. kfifo_free(&djrcv_dev->notif_fifo);
  699. kfree(djrcv_dev);
  700. hid_set_drvdata(hdev, NULL);
  701. return retval;
  702. }
  703. #ifdef CONFIG_PM
  704. static int logi_dj_reset_resume(struct hid_device *hdev)
  705. {
  706. int retval;
  707. struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev);
  708. retval = logi_dj_recv_switch_to_dj_mode(djrcv_dev, 0);
  709. if (retval < 0) {
  710. dev_err(&hdev->dev,
  711. "%s:logi_dj_recv_switch_to_dj_mode returned error:%d\n",
  712. __func__, retval);
  713. }
  714. return 0;
  715. }
  716. #endif
  717. static void logi_dj_remove(struct hid_device *hdev)
  718. {
  719. struct dj_receiver_dev *djrcv_dev = hid_get_drvdata(hdev);
  720. struct dj_device *dj_dev;
  721. int i;
  722. dbg_hid("%s\n", __func__);
  723. cancel_work_sync(&djrcv_dev->work);
  724. hid_hw_close(hdev);
  725. hid_hw_stop(hdev);
  726. /* I suppose that at this point the only context that can access
  727. * the djrecv_data is this thread as the work item is guaranteed to
  728. * have finished and no more raw_event callbacks should arrive after
  729. * the remove callback was triggered so no locks are put around the
  730. * code below */
  731. for (i = 0; i < (DJ_MAX_PAIRED_DEVICES + DJ_DEVICE_INDEX_MIN); i++) {
  732. dj_dev = djrcv_dev->paired_dj_devices[i];
  733. if (dj_dev != NULL) {
  734. hid_destroy_device(dj_dev->hdev);
  735. kfree(dj_dev);
  736. djrcv_dev->paired_dj_devices[i] = NULL;
  737. }
  738. }
  739. kfifo_free(&djrcv_dev->notif_fifo);
  740. kfree(djrcv_dev);
  741. hid_set_drvdata(hdev, NULL);
  742. }
  743. static int logi_djdevice_probe(struct hid_device *hdev,
  744. const struct hid_device_id *id)
  745. {
  746. int ret;
  747. struct dj_device *dj_dev = hdev->driver_data;
  748. if (!is_dj_device(dj_dev))
  749. return -ENODEV;
  750. ret = hid_parse(hdev);
  751. if (!ret)
  752. ret = hid_hw_start(hdev, HID_CONNECT_DEFAULT);
  753. return ret;
  754. }
  755. static const struct hid_device_id logi_dj_receivers[] = {
  756. {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH,
  757. USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER)},
  758. {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH,
  759. USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER_2)},
  760. {}
  761. };
  762. MODULE_DEVICE_TABLE(hid, logi_dj_receivers);
  763. static struct hid_driver logi_djreceiver_driver = {
  764. .name = "logitech-djreceiver",
  765. .id_table = logi_dj_receivers,
  766. .probe = logi_dj_probe,
  767. .remove = logi_dj_remove,
  768. .raw_event = logi_dj_raw_event,
  769. #ifdef CONFIG_PM
  770. .reset_resume = logi_dj_reset_resume,
  771. #endif
  772. };
  773. static const struct hid_device_id logi_dj_devices[] = {
  774. {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH,
  775. USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER)},
  776. {HID_USB_DEVICE(USB_VENDOR_ID_LOGITECH,
  777. USB_DEVICE_ID_LOGITECH_UNIFYING_RECEIVER_2)},
  778. {}
  779. };
  780. static struct hid_driver logi_djdevice_driver = {
  781. .name = "logitech-djdevice",
  782. .id_table = logi_dj_devices,
  783. .probe = logi_djdevice_probe,
  784. };
  785. static int __init logi_dj_init(void)
  786. {
  787. int retval;
  788. dbg_hid("Logitech-DJ:%s\n", __func__);
  789. retval = hid_register_driver(&logi_djreceiver_driver);
  790. if (retval)
  791. return retval;
  792. retval = hid_register_driver(&logi_djdevice_driver);
  793. if (retval)
  794. hid_unregister_driver(&logi_djreceiver_driver);
  795. return retval;
  796. }
  797. static void __exit logi_dj_exit(void)
  798. {
  799. dbg_hid("Logitech-DJ:%s\n", __func__);
  800. hid_unregister_driver(&logi_djdevice_driver);
  801. hid_unregister_driver(&logi_djreceiver_driver);
  802. }
  803. module_init(logi_dj_init);
  804. module_exit(logi_dj_exit);
  805. MODULE_LICENSE("GPL");
  806. MODULE_AUTHOR("Logitech");
  807. MODULE_AUTHOR("Nestor Lopez Casado");
  808. MODULE_AUTHOR("nlopezcasad@logitech.com");