hid-core.c 60 KB

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  1. /*
  2. * USB HID support for Linux
  3. *
  4. * Copyright (c) 1999 Andreas Gal
  5. * Copyright (c) 2000-2005 Vojtech Pavlik <vojtech@suse.cz>
  6. * Copyright (c) 2005 Michael Haboustak <mike-@cinci.rr.com> for Concept2, Inc
  7. */
  8. /*
  9. * This program is free software; you can redistribute it and/or modify it
  10. * under the terms of the GNU General Public License as published by the Free
  11. * Software Foundation; either version 2 of the License, or (at your option)
  12. * any later version.
  13. */
  14. #include <linux/module.h>
  15. #include <linux/slab.h>
  16. #include <linux/init.h>
  17. #include <linux/kernel.h>
  18. #include <linux/sched.h>
  19. #include <linux/list.h>
  20. #include <linux/mm.h>
  21. #include <linux/smp_lock.h>
  22. #include <linux/spinlock.h>
  23. #include <asm/unaligned.h>
  24. #include <asm/byteorder.h>
  25. #include <linux/input.h>
  26. #include <linux/wait.h>
  27. #undef DEBUG
  28. #undef DEBUG_DATA
  29. #include <linux/usb.h>
  30. #include "hid.h"
  31. #include <linux/hiddev.h>
  32. /*
  33. * Version Information
  34. */
  35. #define DRIVER_VERSION "v2.6"
  36. #define DRIVER_AUTHOR "Andreas Gal, Vojtech Pavlik"
  37. #define DRIVER_DESC "USB HID core driver"
  38. #define DRIVER_LICENSE "GPL"
  39. static char *hid_types[] = {"Device", "Pointer", "Mouse", "Device", "Joystick",
  40. "Gamepad", "Keyboard", "Keypad", "Multi-Axis Controller"};
  41. /*
  42. * Module parameters.
  43. */
  44. static unsigned int hid_mousepoll_interval;
  45. module_param_named(mousepoll, hid_mousepoll_interval, uint, 0644);
  46. MODULE_PARM_DESC(mousepoll, "Polling interval of mice");
  47. /*
  48. * Register a new report for a device.
  49. */
  50. static struct hid_report *hid_register_report(struct hid_device *device, unsigned type, unsigned id)
  51. {
  52. struct hid_report_enum *report_enum = device->report_enum + type;
  53. struct hid_report *report;
  54. if (report_enum->report_id_hash[id])
  55. return report_enum->report_id_hash[id];
  56. if (!(report = kzalloc(sizeof(struct hid_report), GFP_KERNEL)))
  57. return NULL;
  58. if (id != 0)
  59. report_enum->numbered = 1;
  60. report->id = id;
  61. report->type = type;
  62. report->size = 0;
  63. report->device = device;
  64. report_enum->report_id_hash[id] = report;
  65. list_add_tail(&report->list, &report_enum->report_list);
  66. return report;
  67. }
  68. /*
  69. * Register a new field for this report.
  70. */
  71. static struct hid_field *hid_register_field(struct hid_report *report, unsigned usages, unsigned values)
  72. {
  73. struct hid_field *field;
  74. if (report->maxfield == HID_MAX_FIELDS) {
  75. dbg("too many fields in report");
  76. return NULL;
  77. }
  78. if (!(field = kzalloc(sizeof(struct hid_field) + usages * sizeof(struct hid_usage)
  79. + values * sizeof(unsigned), GFP_KERNEL))) return NULL;
  80. field->index = report->maxfield++;
  81. report->field[field->index] = field;
  82. field->usage = (struct hid_usage *)(field + 1);
  83. field->value = (unsigned *)(field->usage + usages);
  84. field->report = report;
  85. return field;
  86. }
  87. /*
  88. * Open a collection. The type/usage is pushed on the stack.
  89. */
  90. static int open_collection(struct hid_parser *parser, unsigned type)
  91. {
  92. struct hid_collection *collection;
  93. unsigned usage;
  94. usage = parser->local.usage[0];
  95. if (parser->collection_stack_ptr == HID_COLLECTION_STACK_SIZE) {
  96. dbg("collection stack overflow");
  97. return -1;
  98. }
  99. if (parser->device->maxcollection == parser->device->collection_size) {
  100. collection = kmalloc(sizeof(struct hid_collection) *
  101. parser->device->collection_size * 2, GFP_KERNEL);
  102. if (collection == NULL) {
  103. dbg("failed to reallocate collection array");
  104. return -1;
  105. }
  106. memcpy(collection, parser->device->collection,
  107. sizeof(struct hid_collection) *
  108. parser->device->collection_size);
  109. memset(collection + parser->device->collection_size, 0,
  110. sizeof(struct hid_collection) *
  111. parser->device->collection_size);
  112. kfree(parser->device->collection);
  113. parser->device->collection = collection;
  114. parser->device->collection_size *= 2;
  115. }
  116. parser->collection_stack[parser->collection_stack_ptr++] =
  117. parser->device->maxcollection;
  118. collection = parser->device->collection +
  119. parser->device->maxcollection++;
  120. collection->type = type;
  121. collection->usage = usage;
  122. collection->level = parser->collection_stack_ptr - 1;
  123. if (type == HID_COLLECTION_APPLICATION)
  124. parser->device->maxapplication++;
  125. return 0;
  126. }
  127. /*
  128. * Close a collection.
  129. */
  130. static int close_collection(struct hid_parser *parser)
  131. {
  132. if (!parser->collection_stack_ptr) {
  133. dbg("collection stack underflow");
  134. return -1;
  135. }
  136. parser->collection_stack_ptr--;
  137. return 0;
  138. }
  139. /*
  140. * Climb up the stack, search for the specified collection type
  141. * and return the usage.
  142. */
  143. static unsigned hid_lookup_collection(struct hid_parser *parser, unsigned type)
  144. {
  145. int n;
  146. for (n = parser->collection_stack_ptr - 1; n >= 0; n--)
  147. if (parser->device->collection[parser->collection_stack[n]].type == type)
  148. return parser->device->collection[parser->collection_stack[n]].usage;
  149. return 0; /* we know nothing about this usage type */
  150. }
  151. /*
  152. * Add a usage to the temporary parser table.
  153. */
  154. static int hid_add_usage(struct hid_parser *parser, unsigned usage)
  155. {
  156. if (parser->local.usage_index >= HID_MAX_USAGES) {
  157. dbg("usage index exceeded");
  158. return -1;
  159. }
  160. parser->local.usage[parser->local.usage_index] = usage;
  161. parser->local.collection_index[parser->local.usage_index] =
  162. parser->collection_stack_ptr ?
  163. parser->collection_stack[parser->collection_stack_ptr - 1] : 0;
  164. parser->local.usage_index++;
  165. return 0;
  166. }
  167. /*
  168. * Register a new field for this report.
  169. */
  170. static int hid_add_field(struct hid_parser *parser, unsigned report_type, unsigned flags)
  171. {
  172. struct hid_report *report;
  173. struct hid_field *field;
  174. int usages;
  175. unsigned offset;
  176. int i;
  177. if (!(report = hid_register_report(parser->device, report_type, parser->global.report_id))) {
  178. dbg("hid_register_report failed");
  179. return -1;
  180. }
  181. if (parser->global.logical_maximum < parser->global.logical_minimum) {
  182. dbg("logical range invalid %d %d", parser->global.logical_minimum, parser->global.logical_maximum);
  183. return -1;
  184. }
  185. offset = report->size;
  186. report->size += parser->global.report_size * parser->global.report_count;
  187. if (!parser->local.usage_index) /* Ignore padding fields */
  188. return 0;
  189. usages = max_t(int, parser->local.usage_index, parser->global.report_count);
  190. if ((field = hid_register_field(report, usages, parser->global.report_count)) == NULL)
  191. return 0;
  192. field->physical = hid_lookup_collection(parser, HID_COLLECTION_PHYSICAL);
  193. field->logical = hid_lookup_collection(parser, HID_COLLECTION_LOGICAL);
  194. field->application = hid_lookup_collection(parser, HID_COLLECTION_APPLICATION);
  195. for (i = 0; i < usages; i++) {
  196. int j = i;
  197. /* Duplicate the last usage we parsed if we have excess values */
  198. if (i >= parser->local.usage_index)
  199. j = parser->local.usage_index - 1;
  200. field->usage[i].hid = parser->local.usage[j];
  201. field->usage[i].collection_index =
  202. parser->local.collection_index[j];
  203. }
  204. field->maxusage = usages;
  205. field->flags = flags;
  206. field->report_offset = offset;
  207. field->report_type = report_type;
  208. field->report_size = parser->global.report_size;
  209. field->report_count = parser->global.report_count;
  210. field->logical_minimum = parser->global.logical_minimum;
  211. field->logical_maximum = parser->global.logical_maximum;
  212. field->physical_minimum = parser->global.physical_minimum;
  213. field->physical_maximum = parser->global.physical_maximum;
  214. field->unit_exponent = parser->global.unit_exponent;
  215. field->unit = parser->global.unit;
  216. return 0;
  217. }
  218. /*
  219. * Read data value from item.
  220. */
  221. static __inline__ __u32 item_udata(struct hid_item *item)
  222. {
  223. switch (item->size) {
  224. case 1: return item->data.u8;
  225. case 2: return item->data.u16;
  226. case 4: return item->data.u32;
  227. }
  228. return 0;
  229. }
  230. static __inline__ __s32 item_sdata(struct hid_item *item)
  231. {
  232. switch (item->size) {
  233. case 1: return item->data.s8;
  234. case 2: return item->data.s16;
  235. case 4: return item->data.s32;
  236. }
  237. return 0;
  238. }
  239. /*
  240. * Process a global item.
  241. */
  242. static int hid_parser_global(struct hid_parser *parser, struct hid_item *item)
  243. {
  244. switch (item->tag) {
  245. case HID_GLOBAL_ITEM_TAG_PUSH:
  246. if (parser->global_stack_ptr == HID_GLOBAL_STACK_SIZE) {
  247. dbg("global enviroment stack overflow");
  248. return -1;
  249. }
  250. memcpy(parser->global_stack + parser->global_stack_ptr++,
  251. &parser->global, sizeof(struct hid_global));
  252. return 0;
  253. case HID_GLOBAL_ITEM_TAG_POP:
  254. if (!parser->global_stack_ptr) {
  255. dbg("global enviroment stack underflow");
  256. return -1;
  257. }
  258. memcpy(&parser->global, parser->global_stack + --parser->global_stack_ptr,
  259. sizeof(struct hid_global));
  260. return 0;
  261. case HID_GLOBAL_ITEM_TAG_USAGE_PAGE:
  262. parser->global.usage_page = item_udata(item);
  263. return 0;
  264. case HID_GLOBAL_ITEM_TAG_LOGICAL_MINIMUM:
  265. parser->global.logical_minimum = item_sdata(item);
  266. return 0;
  267. case HID_GLOBAL_ITEM_TAG_LOGICAL_MAXIMUM:
  268. if (parser->global.logical_minimum < 0)
  269. parser->global.logical_maximum = item_sdata(item);
  270. else
  271. parser->global.logical_maximum = item_udata(item);
  272. return 0;
  273. case HID_GLOBAL_ITEM_TAG_PHYSICAL_MINIMUM:
  274. parser->global.physical_minimum = item_sdata(item);
  275. return 0;
  276. case HID_GLOBAL_ITEM_TAG_PHYSICAL_MAXIMUM:
  277. if (parser->global.physical_minimum < 0)
  278. parser->global.physical_maximum = item_sdata(item);
  279. else
  280. parser->global.physical_maximum = item_udata(item);
  281. return 0;
  282. case HID_GLOBAL_ITEM_TAG_UNIT_EXPONENT:
  283. parser->global.unit_exponent = item_sdata(item);
  284. return 0;
  285. case HID_GLOBAL_ITEM_TAG_UNIT:
  286. parser->global.unit = item_udata(item);
  287. return 0;
  288. case HID_GLOBAL_ITEM_TAG_REPORT_SIZE:
  289. if ((parser->global.report_size = item_udata(item)) > 32) {
  290. dbg("invalid report_size %d", parser->global.report_size);
  291. return -1;
  292. }
  293. return 0;
  294. case HID_GLOBAL_ITEM_TAG_REPORT_COUNT:
  295. if ((parser->global.report_count = item_udata(item)) > HID_MAX_USAGES) {
  296. dbg("invalid report_count %d", parser->global.report_count);
  297. return -1;
  298. }
  299. return 0;
  300. case HID_GLOBAL_ITEM_TAG_REPORT_ID:
  301. if ((parser->global.report_id = item_udata(item)) == 0) {
  302. dbg("report_id 0 is invalid");
  303. return -1;
  304. }
  305. return 0;
  306. default:
  307. dbg("unknown global tag 0x%x", item->tag);
  308. return -1;
  309. }
  310. }
  311. /*
  312. * Process a local item.
  313. */
  314. static int hid_parser_local(struct hid_parser *parser, struct hid_item *item)
  315. {
  316. __u32 data;
  317. unsigned n;
  318. if (item->size == 0) {
  319. dbg("item data expected for local item");
  320. return -1;
  321. }
  322. data = item_udata(item);
  323. switch (item->tag) {
  324. case HID_LOCAL_ITEM_TAG_DELIMITER:
  325. if (data) {
  326. /*
  327. * We treat items before the first delimiter
  328. * as global to all usage sets (branch 0).
  329. * In the moment we process only these global
  330. * items and the first delimiter set.
  331. */
  332. if (parser->local.delimiter_depth != 0) {
  333. dbg("nested delimiters");
  334. return -1;
  335. }
  336. parser->local.delimiter_depth++;
  337. parser->local.delimiter_branch++;
  338. } else {
  339. if (parser->local.delimiter_depth < 1) {
  340. dbg("bogus close delimiter");
  341. return -1;
  342. }
  343. parser->local.delimiter_depth--;
  344. }
  345. return 1;
  346. case HID_LOCAL_ITEM_TAG_USAGE:
  347. if (parser->local.delimiter_branch > 1) {
  348. dbg("alternative usage ignored");
  349. return 0;
  350. }
  351. if (item->size <= 2)
  352. data = (parser->global.usage_page << 16) + data;
  353. return hid_add_usage(parser, data);
  354. case HID_LOCAL_ITEM_TAG_USAGE_MINIMUM:
  355. if (parser->local.delimiter_branch > 1) {
  356. dbg("alternative usage ignored");
  357. return 0;
  358. }
  359. if (item->size <= 2)
  360. data = (parser->global.usage_page << 16) + data;
  361. parser->local.usage_minimum = data;
  362. return 0;
  363. case HID_LOCAL_ITEM_TAG_USAGE_MAXIMUM:
  364. if (parser->local.delimiter_branch > 1) {
  365. dbg("alternative usage ignored");
  366. return 0;
  367. }
  368. if (item->size <= 2)
  369. data = (parser->global.usage_page << 16) + data;
  370. for (n = parser->local.usage_minimum; n <= data; n++)
  371. if (hid_add_usage(parser, n)) {
  372. dbg("hid_add_usage failed\n");
  373. return -1;
  374. }
  375. return 0;
  376. default:
  377. dbg("unknown local item tag 0x%x", item->tag);
  378. return 0;
  379. }
  380. return 0;
  381. }
  382. /*
  383. * Process a main item.
  384. */
  385. static int hid_parser_main(struct hid_parser *parser, struct hid_item *item)
  386. {
  387. __u32 data;
  388. int ret;
  389. data = item_udata(item);
  390. switch (item->tag) {
  391. case HID_MAIN_ITEM_TAG_BEGIN_COLLECTION:
  392. ret = open_collection(parser, data & 0xff);
  393. break;
  394. case HID_MAIN_ITEM_TAG_END_COLLECTION:
  395. ret = close_collection(parser);
  396. break;
  397. case HID_MAIN_ITEM_TAG_INPUT:
  398. ret = hid_add_field(parser, HID_INPUT_REPORT, data);
  399. break;
  400. case HID_MAIN_ITEM_TAG_OUTPUT:
  401. ret = hid_add_field(parser, HID_OUTPUT_REPORT, data);
  402. break;
  403. case HID_MAIN_ITEM_TAG_FEATURE:
  404. ret = hid_add_field(parser, HID_FEATURE_REPORT, data);
  405. break;
  406. default:
  407. dbg("unknown main item tag 0x%x", item->tag);
  408. ret = 0;
  409. }
  410. memset(&parser->local, 0, sizeof(parser->local)); /* Reset the local parser environment */
  411. return ret;
  412. }
  413. /*
  414. * Process a reserved item.
  415. */
  416. static int hid_parser_reserved(struct hid_parser *parser, struct hid_item *item)
  417. {
  418. dbg("reserved item type, tag 0x%x", item->tag);
  419. return 0;
  420. }
  421. /*
  422. * Free a report and all registered fields. The field->usage and
  423. * field->value table's are allocated behind the field, so we need
  424. * only to free(field) itself.
  425. */
  426. static void hid_free_report(struct hid_report *report)
  427. {
  428. unsigned n;
  429. for (n = 0; n < report->maxfield; n++)
  430. kfree(report->field[n]);
  431. kfree(report);
  432. }
  433. /*
  434. * Free a device structure, all reports, and all fields.
  435. */
  436. static void hid_free_device(struct hid_device *device)
  437. {
  438. unsigned i,j;
  439. for (i = 0; i < HID_REPORT_TYPES; i++) {
  440. struct hid_report_enum *report_enum = device->report_enum + i;
  441. for (j = 0; j < 256; j++) {
  442. struct hid_report *report = report_enum->report_id_hash[j];
  443. if (report)
  444. hid_free_report(report);
  445. }
  446. }
  447. kfree(device->rdesc);
  448. kfree(device);
  449. }
  450. /*
  451. * Fetch a report description item from the data stream. We support long
  452. * items, though they are not used yet.
  453. */
  454. static u8 *fetch_item(__u8 *start, __u8 *end, struct hid_item *item)
  455. {
  456. u8 b;
  457. if ((end - start) <= 0)
  458. return NULL;
  459. b = *start++;
  460. item->type = (b >> 2) & 3;
  461. item->tag = (b >> 4) & 15;
  462. if (item->tag == HID_ITEM_TAG_LONG) {
  463. item->format = HID_ITEM_FORMAT_LONG;
  464. if ((end - start) < 2)
  465. return NULL;
  466. item->size = *start++;
  467. item->tag = *start++;
  468. if ((end - start) < item->size)
  469. return NULL;
  470. item->data.longdata = start;
  471. start += item->size;
  472. return start;
  473. }
  474. item->format = HID_ITEM_FORMAT_SHORT;
  475. item->size = b & 3;
  476. switch (item->size) {
  477. case 0:
  478. return start;
  479. case 1:
  480. if ((end - start) < 1)
  481. return NULL;
  482. item->data.u8 = *start++;
  483. return start;
  484. case 2:
  485. if ((end - start) < 2)
  486. return NULL;
  487. item->data.u16 = le16_to_cpu(get_unaligned((__le16*)start));
  488. start = (__u8 *)((__le16 *)start + 1);
  489. return start;
  490. case 3:
  491. item->size++;
  492. if ((end - start) < 4)
  493. return NULL;
  494. item->data.u32 = le32_to_cpu(get_unaligned((__le32*)start));
  495. start = (__u8 *)((__le32 *)start + 1);
  496. return start;
  497. }
  498. return NULL;
  499. }
  500. /*
  501. * Parse a report description into a hid_device structure. Reports are
  502. * enumerated, fields are attached to these reports.
  503. */
  504. static struct hid_device *hid_parse_report(__u8 *start, unsigned size)
  505. {
  506. struct hid_device *device;
  507. struct hid_parser *parser;
  508. struct hid_item item;
  509. __u8 *end;
  510. unsigned i;
  511. static int (*dispatch_type[])(struct hid_parser *parser,
  512. struct hid_item *item) = {
  513. hid_parser_main,
  514. hid_parser_global,
  515. hid_parser_local,
  516. hid_parser_reserved
  517. };
  518. if (!(device = kzalloc(sizeof(struct hid_device), GFP_KERNEL)))
  519. return NULL;
  520. if (!(device->collection = kzalloc(sizeof(struct hid_collection) *
  521. HID_DEFAULT_NUM_COLLECTIONS, GFP_KERNEL))) {
  522. kfree(device);
  523. return NULL;
  524. }
  525. device->collection_size = HID_DEFAULT_NUM_COLLECTIONS;
  526. for (i = 0; i < HID_REPORT_TYPES; i++)
  527. INIT_LIST_HEAD(&device->report_enum[i].report_list);
  528. if (!(device->rdesc = (__u8 *)kmalloc(size, GFP_KERNEL))) {
  529. kfree(device->collection);
  530. kfree(device);
  531. return NULL;
  532. }
  533. memcpy(device->rdesc, start, size);
  534. device->rsize = size;
  535. if (!(parser = kzalloc(sizeof(struct hid_parser), GFP_KERNEL))) {
  536. kfree(device->rdesc);
  537. kfree(device->collection);
  538. kfree(device);
  539. return NULL;
  540. }
  541. parser->device = device;
  542. end = start + size;
  543. while ((start = fetch_item(start, end, &item)) != NULL) {
  544. if (item.format != HID_ITEM_FORMAT_SHORT) {
  545. dbg("unexpected long global item");
  546. kfree(device->collection);
  547. hid_free_device(device);
  548. kfree(parser);
  549. return NULL;
  550. }
  551. if (dispatch_type[item.type](parser, &item)) {
  552. dbg("item %u %u %u %u parsing failed\n",
  553. item.format, (unsigned)item.size, (unsigned)item.type, (unsigned)item.tag);
  554. kfree(device->collection);
  555. hid_free_device(device);
  556. kfree(parser);
  557. return NULL;
  558. }
  559. if (start == end) {
  560. if (parser->collection_stack_ptr) {
  561. dbg("unbalanced collection at end of report description");
  562. kfree(device->collection);
  563. hid_free_device(device);
  564. kfree(parser);
  565. return NULL;
  566. }
  567. if (parser->local.delimiter_depth) {
  568. dbg("unbalanced delimiter at end of report description");
  569. kfree(device->collection);
  570. hid_free_device(device);
  571. kfree(parser);
  572. return NULL;
  573. }
  574. kfree(parser);
  575. return device;
  576. }
  577. }
  578. dbg("item fetching failed at offset %d\n", (int)(end - start));
  579. kfree(device->collection);
  580. hid_free_device(device);
  581. kfree(parser);
  582. return NULL;
  583. }
  584. /*
  585. * Convert a signed n-bit integer to signed 32-bit integer. Common
  586. * cases are done through the compiler, the screwed things has to be
  587. * done by hand.
  588. */
  589. static __inline__ __s32 snto32(__u32 value, unsigned n)
  590. {
  591. switch (n) {
  592. case 8: return ((__s8)value);
  593. case 16: return ((__s16)value);
  594. case 32: return ((__s32)value);
  595. }
  596. return value & (1 << (n - 1)) ? value | (-1 << n) : value;
  597. }
  598. /*
  599. * Convert a signed 32-bit integer to a signed n-bit integer.
  600. */
  601. static __inline__ __u32 s32ton(__s32 value, unsigned n)
  602. {
  603. __s32 a = value >> (n - 1);
  604. if (a && a != -1)
  605. return value < 0 ? 1 << (n - 1) : (1 << (n - 1)) - 1;
  606. return value & ((1 << n) - 1);
  607. }
  608. /*
  609. * Extract/implement a data field from/to a report.
  610. */
  611. static __inline__ __u32 extract(__u8 *report, unsigned offset, unsigned n)
  612. {
  613. report += (offset >> 5) << 2; offset &= 31;
  614. return (le64_to_cpu(get_unaligned((__le64*)report)) >> offset) & ((1ULL << n) - 1);
  615. }
  616. static __inline__ void implement(__u8 *report, unsigned offset, unsigned n, __u32 value)
  617. {
  618. report += (offset >> 5) << 2; offset &= 31;
  619. put_unaligned((get_unaligned((__le64*)report)
  620. & cpu_to_le64(~((((__u64) 1 << n) - 1) << offset)))
  621. | cpu_to_le64((__u64)value << offset), (__le64*)report);
  622. }
  623. /*
  624. * Search an array for a value.
  625. */
  626. static __inline__ int search(__s32 *array, __s32 value, unsigned n)
  627. {
  628. while (n--) {
  629. if (*array++ == value)
  630. return 0;
  631. }
  632. return -1;
  633. }
  634. static void hid_process_event(struct hid_device *hid, struct hid_field *field, struct hid_usage *usage, __s32 value, int interrupt, struct pt_regs *regs)
  635. {
  636. hid_dump_input(usage, value);
  637. if (hid->claimed & HID_CLAIMED_INPUT)
  638. hidinput_hid_event(hid, field, usage, value, regs);
  639. if (hid->claimed & HID_CLAIMED_HIDDEV && interrupt)
  640. hiddev_hid_event(hid, field, usage, value, regs);
  641. }
  642. /*
  643. * Analyse a received field, and fetch the data from it. The field
  644. * content is stored for next report processing (we do differential
  645. * reporting to the layer).
  646. */
  647. static void hid_input_field(struct hid_device *hid, struct hid_field *field, __u8 *data, int interrupt, struct pt_regs *regs)
  648. {
  649. unsigned n;
  650. unsigned count = field->report_count;
  651. unsigned offset = field->report_offset;
  652. unsigned size = field->report_size;
  653. __s32 min = field->logical_minimum;
  654. __s32 max = field->logical_maximum;
  655. __s32 *value;
  656. if (!(value = kmalloc(sizeof(__s32) * count, GFP_ATOMIC)))
  657. return;
  658. for (n = 0; n < count; n++) {
  659. value[n] = min < 0 ? snto32(extract(data, offset + n * size, size), size) :
  660. extract(data, offset + n * size, size);
  661. if (!(field->flags & HID_MAIN_ITEM_VARIABLE) /* Ignore report if ErrorRollOver */
  662. && value[n] >= min && value[n] <= max
  663. && field->usage[value[n] - min].hid == HID_UP_KEYBOARD + 1)
  664. goto exit;
  665. }
  666. for (n = 0; n < count; n++) {
  667. if (HID_MAIN_ITEM_VARIABLE & field->flags) {
  668. hid_process_event(hid, field, &field->usage[n], value[n], interrupt, regs);
  669. continue;
  670. }
  671. if (field->value[n] >= min && field->value[n] <= max
  672. && field->usage[field->value[n] - min].hid
  673. && search(value, field->value[n], count))
  674. hid_process_event(hid, field, &field->usage[field->value[n] - min], 0, interrupt, regs);
  675. if (value[n] >= min && value[n] <= max
  676. && field->usage[value[n] - min].hid
  677. && search(field->value, value[n], count))
  678. hid_process_event(hid, field, &field->usage[value[n] - min], 1, interrupt, regs);
  679. }
  680. memcpy(field->value, value, count * sizeof(__s32));
  681. exit:
  682. kfree(value);
  683. }
  684. static int hid_input_report(int type, struct urb *urb, int interrupt, struct pt_regs *regs)
  685. {
  686. struct hid_device *hid = urb->context;
  687. struct hid_report_enum *report_enum = hid->report_enum + type;
  688. u8 *data = urb->transfer_buffer;
  689. int len = urb->actual_length;
  690. struct hid_report *report;
  691. int n, size;
  692. if (!len) {
  693. dbg("empty report");
  694. return -1;
  695. }
  696. #ifdef DEBUG_DATA
  697. printk(KERN_DEBUG __FILE__ ": report (size %u) (%snumbered)\n", len, report_enum->numbered ? "" : "un");
  698. #endif
  699. n = 0; /* Normally report number is 0 */
  700. if (report_enum->numbered) { /* Device uses numbered reports, data[0] is report number */
  701. n = *data++;
  702. len--;
  703. }
  704. #ifdef DEBUG_DATA
  705. {
  706. int i;
  707. printk(KERN_DEBUG __FILE__ ": report %d (size %u) = ", n, len);
  708. for (i = 0; i < len; i++)
  709. printk(" %02x", data[i]);
  710. printk("\n");
  711. }
  712. #endif
  713. if (!(report = report_enum->report_id_hash[n])) {
  714. dbg("undefined report_id %d received", n);
  715. return -1;
  716. }
  717. size = ((report->size - 1) >> 3) + 1;
  718. if (len < size) {
  719. dbg("report %d is too short, (%d < %d)", report->id, len, size);
  720. memset(data + len, 0, size - len);
  721. }
  722. if (hid->claimed & HID_CLAIMED_HIDDEV)
  723. hiddev_report_event(hid, report);
  724. for (n = 0; n < report->maxfield; n++)
  725. hid_input_field(hid, report->field[n], data, interrupt, regs);
  726. if (hid->claimed & HID_CLAIMED_INPUT)
  727. hidinput_report_event(hid, report);
  728. return 0;
  729. }
  730. /*
  731. * Input submission and I/O error handler.
  732. */
  733. static void hid_io_error(struct hid_device *hid);
  734. /* Start up the input URB */
  735. static int hid_start_in(struct hid_device *hid)
  736. {
  737. unsigned long flags;
  738. int rc = 0;
  739. spin_lock_irqsave(&hid->inlock, flags);
  740. if (hid->open > 0 && !test_bit(HID_SUSPENDED, &hid->iofl) &&
  741. !test_and_set_bit(HID_IN_RUNNING, &hid->iofl)) {
  742. rc = usb_submit_urb(hid->urbin, GFP_ATOMIC);
  743. if (rc != 0)
  744. clear_bit(HID_IN_RUNNING, &hid->iofl);
  745. }
  746. spin_unlock_irqrestore(&hid->inlock, flags);
  747. return rc;
  748. }
  749. /* I/O retry timer routine */
  750. static void hid_retry_timeout(unsigned long _hid)
  751. {
  752. struct hid_device *hid = (struct hid_device *) _hid;
  753. dev_dbg(&hid->intf->dev, "retrying intr urb\n");
  754. if (hid_start_in(hid))
  755. hid_io_error(hid);
  756. }
  757. /* Workqueue routine to reset the device */
  758. static void hid_reset(void *_hid)
  759. {
  760. struct hid_device *hid = (struct hid_device *) _hid;
  761. int rc_lock, rc;
  762. dev_dbg(&hid->intf->dev, "resetting device\n");
  763. rc = rc_lock = usb_lock_device_for_reset(hid->dev, hid->intf);
  764. if (rc_lock >= 0) {
  765. rc = usb_reset_composite_device(hid->dev, hid->intf);
  766. if (rc_lock)
  767. usb_unlock_device(hid->dev);
  768. }
  769. clear_bit(HID_RESET_PENDING, &hid->iofl);
  770. switch (rc) {
  771. case 0:
  772. if (!test_bit(HID_IN_RUNNING, &hid->iofl))
  773. hid_io_error(hid);
  774. break;
  775. default:
  776. err("can't reset device, %s-%s/input%d, status %d",
  777. hid->dev->bus->bus_name,
  778. hid->dev->devpath,
  779. hid->ifnum, rc);
  780. /* FALLTHROUGH */
  781. case -EHOSTUNREACH:
  782. case -ENODEV:
  783. case -EINTR:
  784. break;
  785. }
  786. }
  787. /* Main I/O error handler */
  788. static void hid_io_error(struct hid_device *hid)
  789. {
  790. unsigned long flags;
  791. spin_lock_irqsave(&hid->inlock, flags);
  792. /* Stop when disconnected */
  793. if (usb_get_intfdata(hid->intf) == NULL)
  794. goto done;
  795. /* When an error occurs, retry at increasing intervals */
  796. if (hid->retry_delay == 0) {
  797. hid->retry_delay = 13; /* Then 26, 52, 104, 104, ... */
  798. hid->stop_retry = jiffies + msecs_to_jiffies(1000);
  799. } else if (hid->retry_delay < 100)
  800. hid->retry_delay *= 2;
  801. if (time_after(jiffies, hid->stop_retry)) {
  802. /* Retries failed, so do a port reset */
  803. if (!test_and_set_bit(HID_RESET_PENDING, &hid->iofl)) {
  804. if (schedule_work(&hid->reset_work))
  805. goto done;
  806. clear_bit(HID_RESET_PENDING, &hid->iofl);
  807. }
  808. }
  809. mod_timer(&hid->io_retry,
  810. jiffies + msecs_to_jiffies(hid->retry_delay));
  811. done:
  812. spin_unlock_irqrestore(&hid->inlock, flags);
  813. }
  814. /*
  815. * Input interrupt completion handler.
  816. */
  817. static void hid_irq_in(struct urb *urb, struct pt_regs *regs)
  818. {
  819. struct hid_device *hid = urb->context;
  820. int status;
  821. switch (urb->status) {
  822. case 0: /* success */
  823. hid->retry_delay = 0;
  824. hid_input_report(HID_INPUT_REPORT, urb, 1, regs);
  825. break;
  826. case -ECONNRESET: /* unlink */
  827. case -ENOENT:
  828. case -ESHUTDOWN: /* unplug */
  829. clear_bit(HID_IN_RUNNING, &hid->iofl);
  830. return;
  831. case -EILSEQ: /* protocol error or unplug */
  832. case -EPROTO: /* protocol error or unplug */
  833. case -ETIMEDOUT: /* NAK */
  834. clear_bit(HID_IN_RUNNING, &hid->iofl);
  835. hid_io_error(hid);
  836. return;
  837. default: /* error */
  838. warn("input irq status %d received", urb->status);
  839. }
  840. status = usb_submit_urb(urb, SLAB_ATOMIC);
  841. if (status) {
  842. clear_bit(HID_IN_RUNNING, &hid->iofl);
  843. if (status != -EPERM) {
  844. err("can't resubmit intr, %s-%s/input%d, status %d",
  845. hid->dev->bus->bus_name,
  846. hid->dev->devpath,
  847. hid->ifnum, status);
  848. hid_io_error(hid);
  849. }
  850. }
  851. }
  852. /*
  853. * Output the field into the report.
  854. */
  855. static void hid_output_field(struct hid_field *field, __u8 *data)
  856. {
  857. unsigned count = field->report_count;
  858. unsigned offset = field->report_offset;
  859. unsigned size = field->report_size;
  860. unsigned n;
  861. for (n = 0; n < count; n++) {
  862. if (field->logical_minimum < 0) /* signed values */
  863. implement(data, offset + n * size, size, s32ton(field->value[n], size));
  864. else /* unsigned values */
  865. implement(data, offset + n * size, size, field->value[n]);
  866. }
  867. }
  868. /*
  869. * Create a report.
  870. */
  871. static void hid_output_report(struct hid_report *report, __u8 *data)
  872. {
  873. unsigned n;
  874. if (report->id > 0)
  875. *data++ = report->id;
  876. for (n = 0; n < report->maxfield; n++)
  877. hid_output_field(report->field[n], data);
  878. }
  879. /*
  880. * Set a field value. The report this field belongs to has to be
  881. * created and transferred to the device, to set this value in the
  882. * device.
  883. */
  884. int hid_set_field(struct hid_field *field, unsigned offset, __s32 value)
  885. {
  886. unsigned size = field->report_size;
  887. hid_dump_input(field->usage + offset, value);
  888. if (offset >= field->report_count) {
  889. dbg("offset (%d) exceeds report_count (%d)", offset, field->report_count);
  890. hid_dump_field(field, 8);
  891. return -1;
  892. }
  893. if (field->logical_minimum < 0) {
  894. if (value != snto32(s32ton(value, size), size)) {
  895. dbg("value %d is out of range", value);
  896. return -1;
  897. }
  898. }
  899. field->value[offset] = value;
  900. return 0;
  901. }
  902. /*
  903. * Find a report field with a specified HID usage.
  904. */
  905. #if 0
  906. struct hid_field *hid_find_field_by_usage(struct hid_device *hid, __u32 wanted_usage, int type)
  907. {
  908. struct hid_report *report;
  909. int i;
  910. list_for_each_entry(report, &hid->report_enum[type].report_list, list)
  911. for (i = 0; i < report->maxfield; i++)
  912. if (report->field[i]->logical == wanted_usage)
  913. return report->field[i];
  914. return NULL;
  915. }
  916. #endif /* 0 */
  917. static int hid_submit_out(struct hid_device *hid)
  918. {
  919. struct hid_report *report;
  920. report = hid->out[hid->outtail];
  921. hid_output_report(report, hid->outbuf);
  922. hid->urbout->transfer_buffer_length = ((report->size - 1) >> 3) + 1 + (report->id > 0);
  923. hid->urbout->dev = hid->dev;
  924. dbg("submitting out urb");
  925. if (usb_submit_urb(hid->urbout, GFP_ATOMIC)) {
  926. err("usb_submit_urb(out) failed");
  927. return -1;
  928. }
  929. return 0;
  930. }
  931. static int hid_submit_ctrl(struct hid_device *hid)
  932. {
  933. struct hid_report *report;
  934. unsigned char dir;
  935. int len;
  936. report = hid->ctrl[hid->ctrltail].report;
  937. dir = hid->ctrl[hid->ctrltail].dir;
  938. len = ((report->size - 1) >> 3) + 1 + (report->id > 0);
  939. if (dir == USB_DIR_OUT) {
  940. hid_output_report(report, hid->ctrlbuf);
  941. hid->urbctrl->pipe = usb_sndctrlpipe(hid->dev, 0);
  942. hid->urbctrl->transfer_buffer_length = len;
  943. } else {
  944. int maxpacket, padlen;
  945. hid->urbctrl->pipe = usb_rcvctrlpipe(hid->dev, 0);
  946. maxpacket = usb_maxpacket(hid->dev, hid->urbctrl->pipe, 0);
  947. if (maxpacket > 0) {
  948. padlen = (len + maxpacket - 1) / maxpacket;
  949. padlen *= maxpacket;
  950. if (padlen > hid->bufsize)
  951. padlen = hid->bufsize;
  952. } else
  953. padlen = 0;
  954. hid->urbctrl->transfer_buffer_length = padlen;
  955. }
  956. hid->urbctrl->dev = hid->dev;
  957. hid->cr->bRequestType = USB_TYPE_CLASS | USB_RECIP_INTERFACE | dir;
  958. hid->cr->bRequest = (dir == USB_DIR_OUT) ? HID_REQ_SET_REPORT : HID_REQ_GET_REPORT;
  959. hid->cr->wValue = cpu_to_le16(((report->type + 1) << 8) | report->id);
  960. hid->cr->wIndex = cpu_to_le16(hid->ifnum);
  961. hid->cr->wLength = cpu_to_le16(len);
  962. dbg("submitting ctrl urb: %s wValue=0x%04x wIndex=0x%04x wLength=%u",
  963. hid->cr->bRequest == HID_REQ_SET_REPORT ? "Set_Report" : "Get_Report",
  964. hid->cr->wValue, hid->cr->wIndex, hid->cr->wLength);
  965. if (usb_submit_urb(hid->urbctrl, GFP_ATOMIC)) {
  966. err("usb_submit_urb(ctrl) failed");
  967. return -1;
  968. }
  969. return 0;
  970. }
  971. /*
  972. * Output interrupt completion handler.
  973. */
  974. static void hid_irq_out(struct urb *urb, struct pt_regs *regs)
  975. {
  976. struct hid_device *hid = urb->context;
  977. unsigned long flags;
  978. int unplug = 0;
  979. switch (urb->status) {
  980. case 0: /* success */
  981. break;
  982. case -ESHUTDOWN: /* unplug */
  983. unplug = 1;
  984. case -EILSEQ: /* protocol error or unplug */
  985. case -EPROTO: /* protocol error or unplug */
  986. case -ECONNRESET: /* unlink */
  987. case -ENOENT:
  988. break;
  989. default: /* error */
  990. warn("output irq status %d received", urb->status);
  991. }
  992. spin_lock_irqsave(&hid->outlock, flags);
  993. if (unplug)
  994. hid->outtail = hid->outhead;
  995. else
  996. hid->outtail = (hid->outtail + 1) & (HID_OUTPUT_FIFO_SIZE - 1);
  997. if (hid->outhead != hid->outtail) {
  998. if (hid_submit_out(hid)) {
  999. clear_bit(HID_OUT_RUNNING, &hid->iofl);
  1000. wake_up(&hid->wait);
  1001. }
  1002. spin_unlock_irqrestore(&hid->outlock, flags);
  1003. return;
  1004. }
  1005. clear_bit(HID_OUT_RUNNING, &hid->iofl);
  1006. spin_unlock_irqrestore(&hid->outlock, flags);
  1007. wake_up(&hid->wait);
  1008. }
  1009. /*
  1010. * Control pipe completion handler.
  1011. */
  1012. static void hid_ctrl(struct urb *urb, struct pt_regs *regs)
  1013. {
  1014. struct hid_device *hid = urb->context;
  1015. unsigned long flags;
  1016. int unplug = 0;
  1017. spin_lock_irqsave(&hid->ctrllock, flags);
  1018. switch (urb->status) {
  1019. case 0: /* success */
  1020. if (hid->ctrl[hid->ctrltail].dir == USB_DIR_IN)
  1021. hid_input_report(hid->ctrl[hid->ctrltail].report->type, urb, 0, regs);
  1022. break;
  1023. case -ESHUTDOWN: /* unplug */
  1024. unplug = 1;
  1025. case -EILSEQ: /* protocol error or unplug */
  1026. case -EPROTO: /* protocol error or unplug */
  1027. case -ECONNRESET: /* unlink */
  1028. case -ENOENT:
  1029. case -EPIPE: /* report not available */
  1030. break;
  1031. default: /* error */
  1032. warn("ctrl urb status %d received", urb->status);
  1033. }
  1034. if (unplug)
  1035. hid->ctrltail = hid->ctrlhead;
  1036. else
  1037. hid->ctrltail = (hid->ctrltail + 1) & (HID_CONTROL_FIFO_SIZE - 1);
  1038. if (hid->ctrlhead != hid->ctrltail) {
  1039. if (hid_submit_ctrl(hid)) {
  1040. clear_bit(HID_CTRL_RUNNING, &hid->iofl);
  1041. wake_up(&hid->wait);
  1042. }
  1043. spin_unlock_irqrestore(&hid->ctrllock, flags);
  1044. return;
  1045. }
  1046. clear_bit(HID_CTRL_RUNNING, &hid->iofl);
  1047. spin_unlock_irqrestore(&hid->ctrllock, flags);
  1048. wake_up(&hid->wait);
  1049. }
  1050. void hid_submit_report(struct hid_device *hid, struct hid_report *report, unsigned char dir)
  1051. {
  1052. int head;
  1053. unsigned long flags;
  1054. if ((hid->quirks & HID_QUIRK_NOGET) && dir == USB_DIR_IN)
  1055. return;
  1056. if (hid->urbout && dir == USB_DIR_OUT && report->type == HID_OUTPUT_REPORT) {
  1057. spin_lock_irqsave(&hid->outlock, flags);
  1058. if ((head = (hid->outhead + 1) & (HID_OUTPUT_FIFO_SIZE - 1)) == hid->outtail) {
  1059. spin_unlock_irqrestore(&hid->outlock, flags);
  1060. warn("output queue full");
  1061. return;
  1062. }
  1063. hid->out[hid->outhead] = report;
  1064. hid->outhead = head;
  1065. if (!test_and_set_bit(HID_OUT_RUNNING, &hid->iofl))
  1066. if (hid_submit_out(hid))
  1067. clear_bit(HID_OUT_RUNNING, &hid->iofl);
  1068. spin_unlock_irqrestore(&hid->outlock, flags);
  1069. return;
  1070. }
  1071. spin_lock_irqsave(&hid->ctrllock, flags);
  1072. if ((head = (hid->ctrlhead + 1) & (HID_CONTROL_FIFO_SIZE - 1)) == hid->ctrltail) {
  1073. spin_unlock_irqrestore(&hid->ctrllock, flags);
  1074. warn("control queue full");
  1075. return;
  1076. }
  1077. hid->ctrl[hid->ctrlhead].report = report;
  1078. hid->ctrl[hid->ctrlhead].dir = dir;
  1079. hid->ctrlhead = head;
  1080. if (!test_and_set_bit(HID_CTRL_RUNNING, &hid->iofl))
  1081. if (hid_submit_ctrl(hid))
  1082. clear_bit(HID_CTRL_RUNNING, &hid->iofl);
  1083. spin_unlock_irqrestore(&hid->ctrllock, flags);
  1084. }
  1085. int hid_wait_io(struct hid_device *hid)
  1086. {
  1087. if (!wait_event_timeout(hid->wait, (!test_bit(HID_CTRL_RUNNING, &hid->iofl) &&
  1088. !test_bit(HID_OUT_RUNNING, &hid->iofl)),
  1089. 10*HZ)) {
  1090. dbg("timeout waiting for ctrl or out queue to clear");
  1091. return -1;
  1092. }
  1093. return 0;
  1094. }
  1095. static int hid_set_idle(struct usb_device *dev, int ifnum, int report, int idle)
  1096. {
  1097. return usb_control_msg(dev, usb_sndctrlpipe(dev, 0),
  1098. HID_REQ_SET_IDLE, USB_TYPE_CLASS | USB_RECIP_INTERFACE, (idle << 8) | report,
  1099. ifnum, NULL, 0, USB_CTRL_SET_TIMEOUT);
  1100. }
  1101. static int hid_get_class_descriptor(struct usb_device *dev, int ifnum,
  1102. unsigned char type, void *buf, int size)
  1103. {
  1104. int result, retries = 4;
  1105. memset(buf,0,size); // Make sure we parse really received data
  1106. do {
  1107. result = usb_control_msg(dev, usb_rcvctrlpipe(dev, 0),
  1108. USB_REQ_GET_DESCRIPTOR, USB_RECIP_INTERFACE | USB_DIR_IN,
  1109. (type << 8), ifnum, buf, size, USB_CTRL_GET_TIMEOUT);
  1110. retries--;
  1111. } while (result < size && retries);
  1112. return result;
  1113. }
  1114. int hid_open(struct hid_device *hid)
  1115. {
  1116. ++hid->open;
  1117. if (hid_start_in(hid))
  1118. hid_io_error(hid);
  1119. return 0;
  1120. }
  1121. void hid_close(struct hid_device *hid)
  1122. {
  1123. if (!--hid->open)
  1124. usb_kill_urb(hid->urbin);
  1125. }
  1126. #define USB_VENDOR_ID_PANJIT 0x134c
  1127. /*
  1128. * Initialize all reports
  1129. */
  1130. void hid_init_reports(struct hid_device *hid)
  1131. {
  1132. struct hid_report *report;
  1133. int err, ret;
  1134. list_for_each_entry(report, &hid->report_enum[HID_INPUT_REPORT].report_list, list)
  1135. hid_submit_report(hid, report, USB_DIR_IN);
  1136. list_for_each_entry(report, &hid->report_enum[HID_FEATURE_REPORT].report_list, list)
  1137. hid_submit_report(hid, report, USB_DIR_IN);
  1138. err = 0;
  1139. ret = hid_wait_io(hid);
  1140. while (ret) {
  1141. err |= ret;
  1142. if (test_bit(HID_CTRL_RUNNING, &hid->iofl))
  1143. usb_kill_urb(hid->urbctrl);
  1144. if (test_bit(HID_OUT_RUNNING, &hid->iofl))
  1145. usb_kill_urb(hid->urbout);
  1146. ret = hid_wait_io(hid);
  1147. }
  1148. if (err)
  1149. warn("timeout initializing reports");
  1150. }
  1151. #define USB_VENDOR_ID_WACOM 0x056a
  1152. #define USB_DEVICE_ID_WACOM_PENPARTNER 0x0000
  1153. #define USB_DEVICE_ID_WACOM_GRAPHIRE 0x0010
  1154. #define USB_DEVICE_ID_WACOM_INTUOS 0x0020
  1155. #define USB_DEVICE_ID_WACOM_PL 0x0030
  1156. #define USB_DEVICE_ID_WACOM_INTUOS2 0x0040
  1157. #define USB_DEVICE_ID_WACOM_VOLITO 0x0060
  1158. #define USB_DEVICE_ID_WACOM_PTU 0x0003
  1159. #define USB_DEVICE_ID_WACOM_INTUOS3 0x00B0
  1160. #define USB_DEVICE_ID_WACOM_CINTIQ 0x003F
  1161. #define USB_DEVICE_ID_WACOM_DTF 0x00C0
  1162. #define USB_VENDOR_ID_ACECAD 0x0460
  1163. #define USB_DEVICE_ID_ACECAD_FLAIR 0x0004
  1164. #define USB_DEVICE_ID_ACECAD_302 0x0008
  1165. #define USB_VENDOR_ID_KBGEAR 0x084e
  1166. #define USB_DEVICE_ID_KBGEAR_JAMSTUDIO 0x1001
  1167. #define USB_VENDOR_ID_AIPTEK 0x08ca
  1168. #define USB_DEVICE_ID_AIPTEK_01 0x0001
  1169. #define USB_DEVICE_ID_AIPTEK_10 0x0010
  1170. #define USB_DEVICE_ID_AIPTEK_20 0x0020
  1171. #define USB_DEVICE_ID_AIPTEK_21 0x0021
  1172. #define USB_DEVICE_ID_AIPTEK_22 0x0022
  1173. #define USB_DEVICE_ID_AIPTEK_23 0x0023
  1174. #define USB_DEVICE_ID_AIPTEK_24 0x0024
  1175. #define USB_VENDOR_ID_GRIFFIN 0x077d
  1176. #define USB_DEVICE_ID_POWERMATE 0x0410
  1177. #define USB_DEVICE_ID_SOUNDKNOB 0x04AA
  1178. #define USB_VENDOR_ID_ATEN 0x0557
  1179. #define USB_DEVICE_ID_ATEN_UC100KM 0x2004
  1180. #define USB_DEVICE_ID_ATEN_CS124U 0x2202
  1181. #define USB_DEVICE_ID_ATEN_2PORTKVM 0x2204
  1182. #define USB_DEVICE_ID_ATEN_4PORTKVM 0x2205
  1183. #define USB_DEVICE_ID_ATEN_4PORTKVMC 0x2208
  1184. #define USB_VENDOR_ID_TOPMAX 0x0663
  1185. #define USB_DEVICE_ID_TOPMAX_COBRAPAD 0x0103
  1186. #define USB_VENDOR_ID_HAPP 0x078b
  1187. #define USB_DEVICE_ID_UGCI_DRIVING 0x0010
  1188. #define USB_DEVICE_ID_UGCI_FLYING 0x0020
  1189. #define USB_DEVICE_ID_UGCI_FIGHTING 0x0030
  1190. #define USB_VENDOR_ID_MGE 0x0463
  1191. #define USB_DEVICE_ID_MGE_UPS 0xffff
  1192. #define USB_DEVICE_ID_MGE_UPS1 0x0001
  1193. #define USB_VENDOR_ID_ONTRAK 0x0a07
  1194. #define USB_DEVICE_ID_ONTRAK_ADU100 0x0064
  1195. #define USB_VENDOR_ID_ESSENTIAL_REALITY 0x0d7f
  1196. #define USB_DEVICE_ID_ESSENTIAL_REALITY_P5 0x0100
  1197. #define USB_VENDOR_ID_A4TECH 0x09da
  1198. #define USB_DEVICE_ID_A4TECH_WCP32PU 0x0006
  1199. #define USB_VENDOR_ID_AASHIMA 0x06d6
  1200. #define USB_DEVICE_ID_AASHIMA_GAMEPAD 0x0025
  1201. #define USB_DEVICE_ID_AASHIMA_PREDATOR 0x0026
  1202. #define USB_VENDOR_ID_CYPRESS 0x04b4
  1203. #define USB_DEVICE_ID_CYPRESS_MOUSE 0x0001
  1204. #define USB_DEVICE_ID_CYPRESS_HIDCOM 0x5500
  1205. #define USB_DEVICE_ID_CYPRESS_ULTRAMOUSE 0x7417
  1206. #define USB_VENDOR_ID_BERKSHIRE 0x0c98
  1207. #define USB_DEVICE_ID_BERKSHIRE_PCWD 0x1140
  1208. #define USB_VENDOR_ID_ALPS 0x0433
  1209. #define USB_DEVICE_ID_IBM_GAMEPAD 0x1101
  1210. #define USB_VENDOR_ID_SAITEK 0x06a3
  1211. #define USB_DEVICE_ID_SAITEK_RUMBLEPAD 0xff17
  1212. #define USB_VENDOR_ID_NEC 0x073e
  1213. #define USB_DEVICE_ID_NEC_USB_GAME_PAD 0x0301
  1214. #define USB_VENDOR_ID_CHIC 0x05fe
  1215. #define USB_DEVICE_ID_CHIC_GAMEPAD 0x0014
  1216. #define USB_VENDOR_ID_GLAB 0x06c2
  1217. #define USB_DEVICE_ID_4_PHIDGETSERVO_30 0x0038
  1218. #define USB_DEVICE_ID_1_PHIDGETSERVO_30 0x0039
  1219. #define USB_DEVICE_ID_8_8_8_IF_KIT 0x0045
  1220. #define USB_DEVICE_ID_0_0_4_IF_KIT 0x0040
  1221. #define USB_DEVICE_ID_0_8_8_IF_KIT 0x0053
  1222. #define USB_VENDOR_ID_WISEGROUP 0x0925
  1223. #define USB_DEVICE_ID_1_PHIDGETSERVO_20 0x8101
  1224. #define USB_DEVICE_ID_4_PHIDGETSERVO_20 0x8104
  1225. #define USB_DEVICE_ID_DUAL_USB_JOYPAD 0x8866
  1226. #define USB_VENDOR_ID_CODEMERCS 0x07c0
  1227. #define USB_DEVICE_ID_CODEMERCS_IOW40 0x1500
  1228. #define USB_DEVICE_ID_CODEMERCS_IOW24 0x1501
  1229. #define USB_DEVICE_ID_CODEMERCS_IOW48 0x1502
  1230. #define USB_DEVICE_ID_CODEMERCS_IOW28 0x1503
  1231. #define USB_VENDOR_ID_DELORME 0x1163
  1232. #define USB_DEVICE_ID_DELORME_EARTHMATE 0x0100
  1233. #define USB_DEVICE_ID_DELORME_EM_LT20 0x0200
  1234. #define USB_VENDOR_ID_MCC 0x09db
  1235. #define USB_DEVICE_ID_MCC_PMD1024LS 0x0076
  1236. #define USB_DEVICE_ID_MCC_PMD1208LS 0x007a
  1237. #define USB_VENDOR_ID_VERNIER 0x08f7
  1238. #define USB_DEVICE_ID_VERNIER_LABPRO 0x0001
  1239. #define USB_DEVICE_ID_VERNIER_GOTEMP 0x0002
  1240. #define USB_DEVICE_ID_VERNIER_SKIP 0x0003
  1241. #define USB_DEVICE_ID_VERNIER_CYCLOPS 0x0004
  1242. #define USB_VENDOR_ID_LD 0x0f11
  1243. #define USB_DEVICE_ID_LD_CASSY 0x1000
  1244. #define USB_DEVICE_ID_LD_POCKETCASSY 0x1010
  1245. #define USB_DEVICE_ID_LD_MOBILECASSY 0x1020
  1246. #define USB_DEVICE_ID_LD_JWM 0x1080
  1247. #define USB_DEVICE_ID_LD_DMMP 0x1081
  1248. #define USB_DEVICE_ID_LD_UMIP 0x1090
  1249. #define USB_DEVICE_ID_LD_XRAY1 0x1100
  1250. #define USB_DEVICE_ID_LD_XRAY2 0x1101
  1251. #define USB_DEVICE_ID_LD_VIDEOCOM 0x1200
  1252. #define USB_DEVICE_ID_LD_COM3LAB 0x2000
  1253. #define USB_DEVICE_ID_LD_TELEPORT 0x2010
  1254. #define USB_DEVICE_ID_LD_NETWORKANALYSER 0x2020
  1255. #define USB_DEVICE_ID_LD_POWERCONTROL 0x2030
  1256. #define USB_DEVICE_ID_LD_MACHINETEST 0x2040
  1257. #define USB_VENDOR_ID_APPLE 0x05ac
  1258. #define USB_DEVICE_ID_APPLE_MIGHTYMOUSE 0x0304
  1259. #define USB_VENDOR_ID_CHERRY 0x046a
  1260. #define USB_DEVICE_ID_CHERRY_CYMOTION 0x0023
  1261. #define USB_VENDOR_ID_YEALINK 0x6993
  1262. #define USB_DEVICE_ID_YEALINK_P1K_P4K_B2K 0xb001
  1263. /*
  1264. * Alphabetically sorted blacklist by quirk type.
  1265. */
  1266. static const struct hid_blacklist {
  1267. __u16 idVendor;
  1268. __u16 idProduct;
  1269. unsigned quirks;
  1270. } hid_blacklist[] = {
  1271. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_01, HID_QUIRK_IGNORE },
  1272. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_10, HID_QUIRK_IGNORE },
  1273. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_20, HID_QUIRK_IGNORE },
  1274. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_21, HID_QUIRK_IGNORE },
  1275. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_22, HID_QUIRK_IGNORE },
  1276. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_23, HID_QUIRK_IGNORE },
  1277. { USB_VENDOR_ID_AIPTEK, USB_DEVICE_ID_AIPTEK_24, HID_QUIRK_IGNORE },
  1278. { USB_VENDOR_ID_BERKSHIRE, USB_DEVICE_ID_BERKSHIRE_PCWD, HID_QUIRK_IGNORE },
  1279. { USB_VENDOR_ID_CODEMERCS, USB_DEVICE_ID_CODEMERCS_IOW40, HID_QUIRK_IGNORE },
  1280. { USB_VENDOR_ID_CODEMERCS, USB_DEVICE_ID_CODEMERCS_IOW24, HID_QUIRK_IGNORE },
  1281. { USB_VENDOR_ID_CODEMERCS, USB_DEVICE_ID_CODEMERCS_IOW48, HID_QUIRK_IGNORE },
  1282. { USB_VENDOR_ID_CODEMERCS, USB_DEVICE_ID_CODEMERCS_IOW28, HID_QUIRK_IGNORE },
  1283. { USB_VENDOR_ID_CYPRESS, USB_DEVICE_ID_CYPRESS_HIDCOM, HID_QUIRK_IGNORE },
  1284. { USB_VENDOR_ID_CYPRESS, USB_DEVICE_ID_CYPRESS_ULTRAMOUSE, HID_QUIRK_IGNORE },
  1285. { USB_VENDOR_ID_DELORME, USB_DEVICE_ID_DELORME_EARTHMATE, HID_QUIRK_IGNORE },
  1286. { USB_VENDOR_ID_DELORME, USB_DEVICE_ID_DELORME_EM_LT20, HID_QUIRK_IGNORE },
  1287. { USB_VENDOR_ID_ESSENTIAL_REALITY, USB_DEVICE_ID_ESSENTIAL_REALITY_P5, HID_QUIRK_IGNORE },
  1288. { USB_VENDOR_ID_GLAB, USB_DEVICE_ID_4_PHIDGETSERVO_30, HID_QUIRK_IGNORE },
  1289. { USB_VENDOR_ID_GLAB, USB_DEVICE_ID_1_PHIDGETSERVO_30, HID_QUIRK_IGNORE },
  1290. { USB_VENDOR_ID_GLAB, USB_DEVICE_ID_8_8_8_IF_KIT, HID_QUIRK_IGNORE },
  1291. { USB_VENDOR_ID_GLAB, USB_DEVICE_ID_0_0_4_IF_KIT, HID_QUIRK_IGNORE },
  1292. { USB_VENDOR_ID_GLAB, USB_DEVICE_ID_0_8_8_IF_KIT, HID_QUIRK_IGNORE },
  1293. { USB_VENDOR_ID_GRIFFIN, USB_DEVICE_ID_POWERMATE, HID_QUIRK_IGNORE },
  1294. { USB_VENDOR_ID_GRIFFIN, USB_DEVICE_ID_SOUNDKNOB, HID_QUIRK_IGNORE },
  1295. { USB_VENDOR_ID_KBGEAR, USB_DEVICE_ID_KBGEAR_JAMSTUDIO, HID_QUIRK_IGNORE },
  1296. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_CASSY, HID_QUIRK_IGNORE },
  1297. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_POCKETCASSY, HID_QUIRK_IGNORE },
  1298. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_MOBILECASSY, HID_QUIRK_IGNORE },
  1299. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_JWM, HID_QUIRK_IGNORE },
  1300. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_DMMP, HID_QUIRK_IGNORE },
  1301. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_UMIP, HID_QUIRK_IGNORE },
  1302. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_XRAY1, HID_QUIRK_IGNORE },
  1303. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_XRAY2, HID_QUIRK_IGNORE },
  1304. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_VIDEOCOM, HID_QUIRK_IGNORE },
  1305. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_COM3LAB, HID_QUIRK_IGNORE },
  1306. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_TELEPORT, HID_QUIRK_IGNORE },
  1307. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_NETWORKANALYSER, HID_QUIRK_IGNORE },
  1308. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_POWERCONTROL, HID_QUIRK_IGNORE },
  1309. { USB_VENDOR_ID_LD, USB_DEVICE_ID_LD_MACHINETEST, HID_QUIRK_IGNORE },
  1310. { USB_VENDOR_ID_MCC, USB_DEVICE_ID_MCC_PMD1024LS, HID_QUIRK_IGNORE },
  1311. { USB_VENDOR_ID_MCC, USB_DEVICE_ID_MCC_PMD1208LS, HID_QUIRK_IGNORE },
  1312. { USB_VENDOR_ID_MGE, USB_DEVICE_ID_MGE_UPS, HID_QUIRK_IGNORE },
  1313. { USB_VENDOR_ID_MGE, USB_DEVICE_ID_MGE_UPS1, HID_QUIRK_IGNORE },
  1314. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100, HID_QUIRK_IGNORE },
  1315. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100 + 100, HID_QUIRK_IGNORE },
  1316. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100 + 200, HID_QUIRK_IGNORE },
  1317. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100 + 300, HID_QUIRK_IGNORE },
  1318. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100 + 400, HID_QUIRK_IGNORE },
  1319. { USB_VENDOR_ID_ONTRAK, USB_DEVICE_ID_ONTRAK_ADU100 + 500, HID_QUIRK_IGNORE },
  1320. { USB_VENDOR_ID_VERNIER, USB_DEVICE_ID_VERNIER_LABPRO, HID_QUIRK_IGNORE },
  1321. { USB_VENDOR_ID_VERNIER, USB_DEVICE_ID_VERNIER_GOTEMP, HID_QUIRK_IGNORE },
  1322. { USB_VENDOR_ID_VERNIER, USB_DEVICE_ID_VERNIER_SKIP, HID_QUIRK_IGNORE },
  1323. { USB_VENDOR_ID_VERNIER, USB_DEVICE_ID_VERNIER_CYCLOPS, HID_QUIRK_IGNORE },
  1324. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PENPARTNER, HID_QUIRK_IGNORE },
  1325. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE, HID_QUIRK_IGNORE },
  1326. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 1, HID_QUIRK_IGNORE },
  1327. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 2, HID_QUIRK_IGNORE },
  1328. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 3, HID_QUIRK_IGNORE },
  1329. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 4, HID_QUIRK_IGNORE },
  1330. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS, HID_QUIRK_IGNORE },
  1331. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS + 1, HID_QUIRK_IGNORE },
  1332. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS + 2, HID_QUIRK_IGNORE },
  1333. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS + 3, HID_QUIRK_IGNORE },
  1334. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS + 4, HID_QUIRK_IGNORE },
  1335. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL, HID_QUIRK_IGNORE },
  1336. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 1, HID_QUIRK_IGNORE },
  1337. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 2, HID_QUIRK_IGNORE },
  1338. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 3, HID_QUIRK_IGNORE },
  1339. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 4, HID_QUIRK_IGNORE },
  1340. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 5, HID_QUIRK_IGNORE },
  1341. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 7, HID_QUIRK_IGNORE },
  1342. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 8, HID_QUIRK_IGNORE },
  1343. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PL + 9, HID_QUIRK_IGNORE },
  1344. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 1, HID_QUIRK_IGNORE },
  1345. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 2, HID_QUIRK_IGNORE },
  1346. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 3, HID_QUIRK_IGNORE },
  1347. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 4, HID_QUIRK_IGNORE },
  1348. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 5, HID_QUIRK_IGNORE },
  1349. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS2 + 7, HID_QUIRK_IGNORE },
  1350. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_VOLITO, HID_QUIRK_IGNORE },
  1351. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_VOLITO + 1, HID_QUIRK_IGNORE },
  1352. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_VOLITO + 2, HID_QUIRK_IGNORE },
  1353. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_VOLITO + 3, HID_QUIRK_IGNORE },
  1354. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_VOLITO + 4, HID_QUIRK_IGNORE },
  1355. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 5, HID_QUIRK_IGNORE },
  1356. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_GRAPHIRE + 6, HID_QUIRK_IGNORE },
  1357. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_PTU, HID_QUIRK_IGNORE },
  1358. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3, HID_QUIRK_IGNORE },
  1359. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3 + 1, HID_QUIRK_IGNORE },
  1360. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3 + 2, HID_QUIRK_IGNORE },
  1361. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3 + 3, HID_QUIRK_IGNORE },
  1362. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3 + 4, HID_QUIRK_IGNORE },
  1363. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_INTUOS3 + 5, HID_QUIRK_IGNORE },
  1364. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_CINTIQ, HID_QUIRK_IGNORE },
  1365. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_DTF, HID_QUIRK_IGNORE },
  1366. { USB_VENDOR_ID_WACOM, USB_DEVICE_ID_WACOM_DTF + 3, HID_QUIRK_IGNORE },
  1367. { USB_VENDOR_ID_WISEGROUP, USB_DEVICE_ID_4_PHIDGETSERVO_20, HID_QUIRK_IGNORE },
  1368. { USB_VENDOR_ID_WISEGROUP, USB_DEVICE_ID_1_PHIDGETSERVO_20, HID_QUIRK_IGNORE },
  1369. { USB_VENDOR_ID_YEALINK, USB_DEVICE_ID_YEALINK_P1K_P4K_B2K, HID_QUIRK_IGNORE },
  1370. { USB_VENDOR_ID_ACECAD, USB_DEVICE_ID_ACECAD_FLAIR, HID_QUIRK_IGNORE },
  1371. { USB_VENDOR_ID_ACECAD, USB_DEVICE_ID_ACECAD_302, HID_QUIRK_IGNORE },
  1372. { USB_VENDOR_ID_ATEN, USB_DEVICE_ID_ATEN_UC100KM, HID_QUIRK_NOGET },
  1373. { USB_VENDOR_ID_ATEN, USB_DEVICE_ID_ATEN_CS124U, HID_QUIRK_NOGET },
  1374. { USB_VENDOR_ID_ATEN, USB_DEVICE_ID_ATEN_2PORTKVM, HID_QUIRK_NOGET },
  1375. { USB_VENDOR_ID_ATEN, USB_DEVICE_ID_ATEN_4PORTKVM, HID_QUIRK_NOGET },
  1376. { USB_VENDOR_ID_ATEN, USB_DEVICE_ID_ATEN_4PORTKVMC, HID_QUIRK_NOGET },
  1377. { USB_VENDOR_ID_WISEGROUP, USB_DEVICE_ID_DUAL_USB_JOYPAD, HID_QUIRK_NOGET | HID_QUIRK_MULTI_INPUT },
  1378. { USB_VENDOR_ID_APPLE, USB_DEVICE_ID_APPLE_MIGHTYMOUSE, HID_QUIRK_MIGHTYMOUSE | HID_QUIRK_INVERT_HWHEEL },
  1379. { USB_VENDOR_ID_A4TECH, USB_DEVICE_ID_A4TECH_WCP32PU, HID_QUIRK_2WHEEL_MOUSE_HACK_7 },
  1380. { USB_VENDOR_ID_CYPRESS, USB_DEVICE_ID_CYPRESS_MOUSE, HID_QUIRK_2WHEEL_MOUSE_HACK_5 },
  1381. { USB_VENDOR_ID_AASHIMA, USB_DEVICE_ID_AASHIMA_GAMEPAD, HID_QUIRK_BADPAD },
  1382. { USB_VENDOR_ID_AASHIMA, USB_DEVICE_ID_AASHIMA_PREDATOR, HID_QUIRK_BADPAD },
  1383. { USB_VENDOR_ID_ALPS, USB_DEVICE_ID_IBM_GAMEPAD, HID_QUIRK_BADPAD },
  1384. { USB_VENDOR_ID_CHIC, USB_DEVICE_ID_CHIC_GAMEPAD, HID_QUIRK_BADPAD },
  1385. { USB_VENDOR_ID_HAPP, USB_DEVICE_ID_UGCI_DRIVING, HID_QUIRK_BADPAD | HID_QUIRK_MULTI_INPUT },
  1386. { USB_VENDOR_ID_HAPP, USB_DEVICE_ID_UGCI_FLYING, HID_QUIRK_BADPAD | HID_QUIRK_MULTI_INPUT },
  1387. { USB_VENDOR_ID_HAPP, USB_DEVICE_ID_UGCI_FIGHTING, HID_QUIRK_BADPAD | HID_QUIRK_MULTI_INPUT },
  1388. { USB_VENDOR_ID_NEC, USB_DEVICE_ID_NEC_USB_GAME_PAD, HID_QUIRK_BADPAD },
  1389. { USB_VENDOR_ID_SAITEK, USB_DEVICE_ID_SAITEK_RUMBLEPAD, HID_QUIRK_BADPAD },
  1390. { USB_VENDOR_ID_TOPMAX, USB_DEVICE_ID_TOPMAX_COBRAPAD, HID_QUIRK_BADPAD },
  1391. { USB_VENDOR_ID_CHERRY, USB_DEVICE_ID_CHERRY_CYMOTION, HID_QUIRK_CYMOTION },
  1392. { USB_VENDOR_ID_APPLE, 0x020E, HID_QUIRK_POWERBOOK_HAS_FN },
  1393. { USB_VENDOR_ID_APPLE, 0x020F, HID_QUIRK_POWERBOOK_HAS_FN },
  1394. { USB_VENDOR_ID_APPLE, 0x0214, HID_QUIRK_POWERBOOK_HAS_FN },
  1395. { USB_VENDOR_ID_APPLE, 0x0215, HID_QUIRK_POWERBOOK_HAS_FN },
  1396. { USB_VENDOR_ID_APPLE, 0x0216, HID_QUIRK_POWERBOOK_HAS_FN },
  1397. { USB_VENDOR_ID_APPLE, 0x0217, HID_QUIRK_POWERBOOK_HAS_FN },
  1398. { USB_VENDOR_ID_APPLE, 0x0218, HID_QUIRK_POWERBOOK_HAS_FN },
  1399. { USB_VENDOR_ID_APPLE, 0x0219, HID_QUIRK_POWERBOOK_HAS_FN },
  1400. { USB_VENDOR_ID_APPLE, 0x030A, HID_QUIRK_POWERBOOK_HAS_FN },
  1401. { USB_VENDOR_ID_APPLE, 0x030B, HID_QUIRK_POWERBOOK_HAS_FN },
  1402. { USB_VENDOR_ID_PANJIT, 0x0001, HID_QUIRK_IGNORE },
  1403. { USB_VENDOR_ID_PANJIT, 0x0002, HID_QUIRK_IGNORE },
  1404. { USB_VENDOR_ID_PANJIT, 0x0003, HID_QUIRK_IGNORE },
  1405. { USB_VENDOR_ID_PANJIT, 0x0004, HID_QUIRK_IGNORE },
  1406. { 0, 0 }
  1407. };
  1408. /*
  1409. * Traverse the supplied list of reports and find the longest
  1410. */
  1411. static void hid_find_max_report(struct hid_device *hid, unsigned int type, int *max)
  1412. {
  1413. struct hid_report *report;
  1414. int size;
  1415. list_for_each_entry(report, &hid->report_enum[type].report_list, list) {
  1416. size = ((report->size - 1) >> 3) + 1;
  1417. if (type == HID_INPUT_REPORT && hid->report_enum[type].numbered)
  1418. size++;
  1419. if (*max < size)
  1420. *max = size;
  1421. }
  1422. }
  1423. static int hid_alloc_buffers(struct usb_device *dev, struct hid_device *hid)
  1424. {
  1425. if (!(hid->inbuf = usb_buffer_alloc(dev, hid->bufsize, SLAB_ATOMIC, &hid->inbuf_dma)))
  1426. return -1;
  1427. if (!(hid->outbuf = usb_buffer_alloc(dev, hid->bufsize, SLAB_ATOMIC, &hid->outbuf_dma)))
  1428. return -1;
  1429. if (!(hid->cr = usb_buffer_alloc(dev, sizeof(*(hid->cr)), SLAB_ATOMIC, &hid->cr_dma)))
  1430. return -1;
  1431. if (!(hid->ctrlbuf = usb_buffer_alloc(dev, hid->bufsize, SLAB_ATOMIC, &hid->ctrlbuf_dma)))
  1432. return -1;
  1433. return 0;
  1434. }
  1435. static void hid_free_buffers(struct usb_device *dev, struct hid_device *hid)
  1436. {
  1437. if (hid->inbuf)
  1438. usb_buffer_free(dev, hid->bufsize, hid->inbuf, hid->inbuf_dma);
  1439. if (hid->outbuf)
  1440. usb_buffer_free(dev, hid->bufsize, hid->outbuf, hid->outbuf_dma);
  1441. if (hid->cr)
  1442. usb_buffer_free(dev, sizeof(*(hid->cr)), hid->cr, hid->cr_dma);
  1443. if (hid->ctrlbuf)
  1444. usb_buffer_free(dev, hid->bufsize, hid->ctrlbuf, hid->ctrlbuf_dma);
  1445. }
  1446. /*
  1447. * Cherry Cymotion keyboard have an invalid HID report descriptor,
  1448. * that needs fixing before we can parse it.
  1449. */
  1450. static void hid_fixup_cymotion_descriptor(char *rdesc, int rsize)
  1451. {
  1452. if (rsize >= 17 && rdesc[11] == 0x3c && rdesc[12] == 0x02) {
  1453. info("Fixing up Cherry Cymotion report descriptor");
  1454. rdesc[11] = rdesc[16] = 0xff;
  1455. rdesc[12] = rdesc[17] = 0x03;
  1456. }
  1457. }
  1458. static struct hid_device *usb_hid_configure(struct usb_interface *intf)
  1459. {
  1460. struct usb_host_interface *interface = intf->cur_altsetting;
  1461. struct usb_device *dev = interface_to_usbdev (intf);
  1462. struct hid_descriptor *hdesc;
  1463. struct hid_device *hid;
  1464. unsigned quirks = 0, rsize = 0;
  1465. char *rdesc;
  1466. int n, len, insize = 0;
  1467. for (n = 0; hid_blacklist[n].idVendor; n++)
  1468. if ((hid_blacklist[n].idVendor == le16_to_cpu(dev->descriptor.idVendor)) &&
  1469. (hid_blacklist[n].idProduct == le16_to_cpu(dev->descriptor.idProduct)))
  1470. quirks = hid_blacklist[n].quirks;
  1471. /* Many keyboards and mice don't like to be polled for reports,
  1472. * so we will always set the HID_QUIRK_NOGET flag for them. */
  1473. if (interface->desc.bInterfaceSubClass == USB_INTERFACE_SUBCLASS_BOOT) {
  1474. if (interface->desc.bInterfaceProtocol == USB_INTERFACE_PROTOCOL_KEYBOARD ||
  1475. interface->desc.bInterfaceProtocol == USB_INTERFACE_PROTOCOL_MOUSE)
  1476. quirks |= HID_QUIRK_NOGET;
  1477. }
  1478. if (quirks & HID_QUIRK_IGNORE)
  1479. return NULL;
  1480. if (usb_get_extra_descriptor(interface, HID_DT_HID, &hdesc) &&
  1481. (!interface->desc.bNumEndpoints ||
  1482. usb_get_extra_descriptor(&interface->endpoint[0], HID_DT_HID, &hdesc))) {
  1483. dbg("class descriptor not present\n");
  1484. return NULL;
  1485. }
  1486. for (n = 0; n < hdesc->bNumDescriptors; n++)
  1487. if (hdesc->desc[n].bDescriptorType == HID_DT_REPORT)
  1488. rsize = le16_to_cpu(hdesc->desc[n].wDescriptorLength);
  1489. if (!rsize || rsize > HID_MAX_DESCRIPTOR_SIZE) {
  1490. dbg("weird size of report descriptor (%u)", rsize);
  1491. return NULL;
  1492. }
  1493. if (!(rdesc = kmalloc(rsize, GFP_KERNEL))) {
  1494. dbg("couldn't allocate rdesc memory");
  1495. return NULL;
  1496. }
  1497. hid_set_idle(dev, interface->desc.bInterfaceNumber, 0, 0);
  1498. if ((n = hid_get_class_descriptor(dev, interface->desc.bInterfaceNumber, HID_DT_REPORT, rdesc, rsize)) < 0) {
  1499. dbg("reading report descriptor failed");
  1500. kfree(rdesc);
  1501. return NULL;
  1502. }
  1503. if ((quirks & HID_QUIRK_CYMOTION))
  1504. hid_fixup_cymotion_descriptor(rdesc, rsize);
  1505. #ifdef DEBUG_DATA
  1506. printk(KERN_DEBUG __FILE__ ": report descriptor (size %u, read %d) = ", rsize, n);
  1507. for (n = 0; n < rsize; n++)
  1508. printk(" %02x", (unsigned char) rdesc[n]);
  1509. printk("\n");
  1510. #endif
  1511. if (!(hid = hid_parse_report(rdesc, n))) {
  1512. dbg("parsing report descriptor failed");
  1513. kfree(rdesc);
  1514. return NULL;
  1515. }
  1516. kfree(rdesc);
  1517. hid->quirks = quirks;
  1518. hid->bufsize = HID_MIN_BUFFER_SIZE;
  1519. hid_find_max_report(hid, HID_INPUT_REPORT, &hid->bufsize);
  1520. hid_find_max_report(hid, HID_OUTPUT_REPORT, &hid->bufsize);
  1521. hid_find_max_report(hid, HID_FEATURE_REPORT, &hid->bufsize);
  1522. if (hid->bufsize > HID_MAX_BUFFER_SIZE)
  1523. hid->bufsize = HID_MAX_BUFFER_SIZE;
  1524. hid_find_max_report(hid, HID_INPUT_REPORT, &insize);
  1525. if (insize > HID_MAX_BUFFER_SIZE)
  1526. insize = HID_MAX_BUFFER_SIZE;
  1527. if (hid_alloc_buffers(dev, hid)) {
  1528. hid_free_buffers(dev, hid);
  1529. goto fail;
  1530. }
  1531. for (n = 0; n < interface->desc.bNumEndpoints; n++) {
  1532. struct usb_endpoint_descriptor *endpoint;
  1533. int pipe;
  1534. int interval;
  1535. endpoint = &interface->endpoint[n].desc;
  1536. if ((endpoint->bmAttributes & 3) != 3) /* Not an interrupt endpoint */
  1537. continue;
  1538. interval = endpoint->bInterval;
  1539. /* Change the polling interval of mice. */
  1540. if (hid->collection->usage == HID_GD_MOUSE && hid_mousepoll_interval > 0)
  1541. interval = hid_mousepoll_interval;
  1542. if (endpoint->bEndpointAddress & USB_DIR_IN) {
  1543. if (hid->urbin)
  1544. continue;
  1545. if (!(hid->urbin = usb_alloc_urb(0, GFP_KERNEL)))
  1546. goto fail;
  1547. pipe = usb_rcvintpipe(dev, endpoint->bEndpointAddress);
  1548. usb_fill_int_urb(hid->urbin, dev, pipe, hid->inbuf, insize,
  1549. hid_irq_in, hid, interval);
  1550. hid->urbin->transfer_dma = hid->inbuf_dma;
  1551. hid->urbin->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  1552. } else {
  1553. if (hid->urbout)
  1554. continue;
  1555. if (!(hid->urbout = usb_alloc_urb(0, GFP_KERNEL)))
  1556. goto fail;
  1557. pipe = usb_sndintpipe(dev, endpoint->bEndpointAddress);
  1558. usb_fill_int_urb(hid->urbout, dev, pipe, hid->outbuf, 0,
  1559. hid_irq_out, hid, interval);
  1560. hid->urbout->transfer_dma = hid->outbuf_dma;
  1561. hid->urbout->transfer_flags |= URB_NO_TRANSFER_DMA_MAP;
  1562. }
  1563. }
  1564. if (!hid->urbin) {
  1565. err("couldn't find an input interrupt endpoint");
  1566. goto fail;
  1567. }
  1568. init_waitqueue_head(&hid->wait);
  1569. INIT_WORK(&hid->reset_work, hid_reset, hid);
  1570. setup_timer(&hid->io_retry, hid_retry_timeout, (unsigned long) hid);
  1571. spin_lock_init(&hid->inlock);
  1572. spin_lock_init(&hid->outlock);
  1573. spin_lock_init(&hid->ctrllock);
  1574. hid->version = le16_to_cpu(hdesc->bcdHID);
  1575. hid->country = hdesc->bCountryCode;
  1576. hid->dev = dev;
  1577. hid->intf = intf;
  1578. hid->ifnum = interface->desc.bInterfaceNumber;
  1579. hid->name[0] = 0;
  1580. if (dev->manufacturer)
  1581. strlcpy(hid->name, dev->manufacturer, sizeof(hid->name));
  1582. if (dev->product) {
  1583. if (dev->manufacturer)
  1584. strlcat(hid->name, " ", sizeof(hid->name));
  1585. strlcat(hid->name, dev->product, sizeof(hid->name));
  1586. }
  1587. if (!strlen(hid->name))
  1588. snprintf(hid->name, sizeof(hid->name), "HID %04x:%04x",
  1589. le16_to_cpu(dev->descriptor.idVendor),
  1590. le16_to_cpu(dev->descriptor.idProduct));
  1591. usb_make_path(dev, hid->phys, sizeof(hid->phys));
  1592. strlcat(hid->phys, "/input", sizeof(hid->phys));
  1593. len = strlen(hid->phys);
  1594. if (len < sizeof(hid->phys) - 1)
  1595. snprintf(hid->phys + len, sizeof(hid->phys) - len,
  1596. "%d", intf->altsetting[0].desc.bInterfaceNumber);
  1597. if (usb_string(dev, dev->descriptor.iSerialNumber, hid->uniq, 64) <= 0)
  1598. hid->uniq[0] = 0;
  1599. hid->urbctrl = usb_alloc_urb(0, GFP_KERNEL);
  1600. if (!hid->urbctrl)
  1601. goto fail;
  1602. usb_fill_control_urb(hid->urbctrl, dev, 0, (void *) hid->cr,
  1603. hid->ctrlbuf, 1, hid_ctrl, hid);
  1604. hid->urbctrl->setup_dma = hid->cr_dma;
  1605. hid->urbctrl->transfer_dma = hid->ctrlbuf_dma;
  1606. hid->urbctrl->transfer_flags |= (URB_NO_TRANSFER_DMA_MAP | URB_NO_SETUP_DMA_MAP);
  1607. return hid;
  1608. fail:
  1609. if (hid->urbin)
  1610. usb_free_urb(hid->urbin);
  1611. if (hid->urbout)
  1612. usb_free_urb(hid->urbout);
  1613. if (hid->urbctrl)
  1614. usb_free_urb(hid->urbctrl);
  1615. hid_free_buffers(dev, hid);
  1616. hid_free_device(hid);
  1617. return NULL;
  1618. }
  1619. static void hid_disconnect(struct usb_interface *intf)
  1620. {
  1621. struct hid_device *hid = usb_get_intfdata (intf);
  1622. if (!hid)
  1623. return;
  1624. spin_lock_irq(&hid->inlock); /* Sync with error handler */
  1625. usb_set_intfdata(intf, NULL);
  1626. spin_unlock_irq(&hid->inlock);
  1627. usb_kill_urb(hid->urbin);
  1628. usb_kill_urb(hid->urbout);
  1629. usb_kill_urb(hid->urbctrl);
  1630. del_timer_sync(&hid->io_retry);
  1631. flush_scheduled_work();
  1632. if (hid->claimed & HID_CLAIMED_INPUT)
  1633. hidinput_disconnect(hid);
  1634. if (hid->claimed & HID_CLAIMED_HIDDEV)
  1635. hiddev_disconnect(hid);
  1636. usb_free_urb(hid->urbin);
  1637. usb_free_urb(hid->urbctrl);
  1638. if (hid->urbout)
  1639. usb_free_urb(hid->urbout);
  1640. hid_free_buffers(hid->dev, hid);
  1641. hid_free_device(hid);
  1642. }
  1643. static int hid_probe(struct usb_interface *intf, const struct usb_device_id *id)
  1644. {
  1645. struct hid_device *hid;
  1646. char path[64];
  1647. int i;
  1648. char *c;
  1649. dbg("HID probe called for ifnum %d",
  1650. intf->altsetting->desc.bInterfaceNumber);
  1651. if (!(hid = usb_hid_configure(intf)))
  1652. return -ENODEV;
  1653. hid_init_reports(hid);
  1654. hid_dump_device(hid);
  1655. if (!hidinput_connect(hid))
  1656. hid->claimed |= HID_CLAIMED_INPUT;
  1657. if (!hiddev_connect(hid))
  1658. hid->claimed |= HID_CLAIMED_HIDDEV;
  1659. usb_set_intfdata(intf, hid);
  1660. if (!hid->claimed) {
  1661. printk ("HID device not claimed by input or hiddev\n");
  1662. hid_disconnect(intf);
  1663. return -ENODEV;
  1664. }
  1665. printk(KERN_INFO);
  1666. if (hid->claimed & HID_CLAIMED_INPUT)
  1667. printk("input");
  1668. if (hid->claimed == (HID_CLAIMED_INPUT | HID_CLAIMED_HIDDEV))
  1669. printk(",");
  1670. if (hid->claimed & HID_CLAIMED_HIDDEV)
  1671. printk("hiddev%d", hid->minor);
  1672. c = "Device";
  1673. for (i = 0; i < hid->maxcollection; i++) {
  1674. if (hid->collection[i].type == HID_COLLECTION_APPLICATION &&
  1675. (hid->collection[i].usage & HID_USAGE_PAGE) == HID_UP_GENDESK &&
  1676. (hid->collection[i].usage & 0xffff) < ARRAY_SIZE(hid_types)) {
  1677. c = hid_types[hid->collection[i].usage & 0xffff];
  1678. break;
  1679. }
  1680. }
  1681. usb_make_path(interface_to_usbdev(intf), path, 63);
  1682. printk(": USB HID v%x.%02x %s [%s] on %s\n",
  1683. hid->version >> 8, hid->version & 0xff, c, hid->name, path);
  1684. return 0;
  1685. }
  1686. static int hid_suspend(struct usb_interface *intf, pm_message_t message)
  1687. {
  1688. struct hid_device *hid = usb_get_intfdata (intf);
  1689. spin_lock_irq(&hid->inlock); /* Sync with error handler */
  1690. set_bit(HID_SUSPENDED, &hid->iofl);
  1691. spin_unlock_irq(&hid->inlock);
  1692. del_timer(&hid->io_retry);
  1693. usb_kill_urb(hid->urbin);
  1694. dev_dbg(&intf->dev, "suspend\n");
  1695. return 0;
  1696. }
  1697. static int hid_resume(struct usb_interface *intf)
  1698. {
  1699. struct hid_device *hid = usb_get_intfdata (intf);
  1700. int status;
  1701. clear_bit(HID_SUSPENDED, &hid->iofl);
  1702. hid->retry_delay = 0;
  1703. status = hid_start_in(hid);
  1704. dev_dbg(&intf->dev, "resume status %d\n", status);
  1705. return status;
  1706. }
  1707. /* Treat USB reset pretty much the same as suspend/resume */
  1708. static void hid_pre_reset(struct usb_interface *intf)
  1709. {
  1710. /* FIXME: What if the interface is already suspended? */
  1711. hid_suspend(intf, PMSG_ON);
  1712. }
  1713. static void hid_post_reset(struct usb_interface *intf)
  1714. {
  1715. struct usb_device *dev = interface_to_usbdev (intf);
  1716. hid_set_idle(dev, intf->cur_altsetting->desc.bInterfaceNumber, 0, 0);
  1717. /* FIXME: Any more reinitialization needed? */
  1718. hid_resume(intf);
  1719. }
  1720. static struct usb_device_id hid_usb_ids [] = {
  1721. { .match_flags = USB_DEVICE_ID_MATCH_INT_CLASS,
  1722. .bInterfaceClass = USB_INTERFACE_CLASS_HID },
  1723. { } /* Terminating entry */
  1724. };
  1725. MODULE_DEVICE_TABLE (usb, hid_usb_ids);
  1726. static struct usb_driver hid_driver = {
  1727. .name = "usbhid",
  1728. .probe = hid_probe,
  1729. .disconnect = hid_disconnect,
  1730. .suspend = hid_suspend,
  1731. .resume = hid_resume,
  1732. .pre_reset = hid_pre_reset,
  1733. .post_reset = hid_post_reset,
  1734. .id_table = hid_usb_ids,
  1735. };
  1736. static int __init hid_init(void)
  1737. {
  1738. int retval;
  1739. retval = hiddev_init();
  1740. if (retval)
  1741. goto hiddev_init_fail;
  1742. retval = usb_register(&hid_driver);
  1743. if (retval)
  1744. goto usb_register_fail;
  1745. info(DRIVER_VERSION ":" DRIVER_DESC);
  1746. return 0;
  1747. usb_register_fail:
  1748. hiddev_exit();
  1749. hiddev_init_fail:
  1750. return retval;
  1751. }
  1752. static void __exit hid_exit(void)
  1753. {
  1754. usb_deregister(&hid_driver);
  1755. hiddev_exit();
  1756. }
  1757. module_init(hid_init);
  1758. module_exit(hid_exit);
  1759. MODULE_AUTHOR(DRIVER_AUTHOR);
  1760. MODULE_DESCRIPTION(DRIVER_DESC);
  1761. MODULE_LICENSE(DRIVER_LICENSE);