input.c 31 KB

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  1. /*
  2. * The input core
  3. *
  4. * Copyright (c) 1999-2002 Vojtech Pavlik
  5. */
  6. /*
  7. * This program is free software; you can redistribute it and/or modify it
  8. * under the terms of the GNU General Public License version 2 as published by
  9. * the Free Software Foundation.
  10. */
  11. #include <linux/init.h>
  12. #include <linux/input.h>
  13. #include <linux/module.h>
  14. #include <linux/random.h>
  15. #include <linux/major.h>
  16. #include <linux/proc_fs.h>
  17. #include <linux/seq_file.h>
  18. #include <linux/interrupt.h>
  19. #include <linux/poll.h>
  20. #include <linux/device.h>
  21. #include <linux/mutex.h>
  22. MODULE_AUTHOR("Vojtech Pavlik <vojtech@suse.cz>");
  23. MODULE_DESCRIPTION("Input core");
  24. MODULE_LICENSE("GPL");
  25. #define INPUT_DEVICES 256
  26. static LIST_HEAD(input_dev_list);
  27. static LIST_HEAD(input_handler_list);
  28. static struct input_handler *input_table[8];
  29. /**
  30. * input_event() - report new input event
  31. * @dev: device that generated the event
  32. * @type: type of the event
  33. * @code: event code
  34. * @value: value of the event
  35. *
  36. * This function should be used by drivers implementing various input devices
  37. * See also input_inject_event()
  38. */
  39. void input_event(struct input_dev *dev, unsigned int type, unsigned int code, int value)
  40. {
  41. struct input_handle *handle;
  42. if (type > EV_MAX || !test_bit(type, dev->evbit))
  43. return;
  44. add_input_randomness(type, code, value);
  45. switch (type) {
  46. case EV_SYN:
  47. switch (code) {
  48. case SYN_CONFIG:
  49. if (dev->event)
  50. dev->event(dev, type, code, value);
  51. break;
  52. case SYN_REPORT:
  53. if (dev->sync)
  54. return;
  55. dev->sync = 1;
  56. break;
  57. }
  58. break;
  59. case EV_KEY:
  60. if (code > KEY_MAX || !test_bit(code, dev->keybit) || !!test_bit(code, dev->key) == value)
  61. return;
  62. if (value == 2)
  63. break;
  64. change_bit(code, dev->key);
  65. if (test_bit(EV_REP, dev->evbit) && dev->rep[REP_PERIOD] && dev->rep[REP_DELAY] && dev->timer.data && value) {
  66. dev->repeat_key = code;
  67. mod_timer(&dev->timer, jiffies + msecs_to_jiffies(dev->rep[REP_DELAY]));
  68. }
  69. break;
  70. case EV_SW:
  71. if (code > SW_MAX || !test_bit(code, dev->swbit) || !!test_bit(code, dev->sw) == value)
  72. return;
  73. change_bit(code, dev->sw);
  74. break;
  75. case EV_ABS:
  76. if (code > ABS_MAX || !test_bit(code, dev->absbit))
  77. return;
  78. if (dev->absfuzz[code]) {
  79. if ((value > dev->abs[code] - (dev->absfuzz[code] >> 1)) &&
  80. (value < dev->abs[code] + (dev->absfuzz[code] >> 1)))
  81. return;
  82. if ((value > dev->abs[code] - dev->absfuzz[code]) &&
  83. (value < dev->abs[code] + dev->absfuzz[code]))
  84. value = (dev->abs[code] * 3 + value) >> 2;
  85. if ((value > dev->abs[code] - (dev->absfuzz[code] << 1)) &&
  86. (value < dev->abs[code] + (dev->absfuzz[code] << 1)))
  87. value = (dev->abs[code] + value) >> 1;
  88. }
  89. if (dev->abs[code] == value)
  90. return;
  91. dev->abs[code] = value;
  92. break;
  93. case EV_REL:
  94. if (code > REL_MAX || !test_bit(code, dev->relbit) || (value == 0))
  95. return;
  96. break;
  97. case EV_MSC:
  98. if (code > MSC_MAX || !test_bit(code, dev->mscbit))
  99. return;
  100. if (dev->event)
  101. dev->event(dev, type, code, value);
  102. break;
  103. case EV_LED:
  104. if (code > LED_MAX || !test_bit(code, dev->ledbit) || !!test_bit(code, dev->led) == value)
  105. return;
  106. change_bit(code, dev->led);
  107. if (dev->event)
  108. dev->event(dev, type, code, value);
  109. break;
  110. case EV_SND:
  111. if (code > SND_MAX || !test_bit(code, dev->sndbit))
  112. return;
  113. if (!!test_bit(code, dev->snd) != !!value)
  114. change_bit(code, dev->snd);
  115. if (dev->event)
  116. dev->event(dev, type, code, value);
  117. break;
  118. case EV_REP:
  119. if (code > REP_MAX || value < 0 || dev->rep[code] == value)
  120. return;
  121. dev->rep[code] = value;
  122. if (dev->event)
  123. dev->event(dev, type, code, value);
  124. break;
  125. case EV_FF:
  126. if (value < 0)
  127. return;
  128. if (dev->event)
  129. dev->event(dev, type, code, value);
  130. break;
  131. }
  132. if (type != EV_SYN)
  133. dev->sync = 0;
  134. if (dev->grab)
  135. dev->grab->handler->event(dev->grab, type, code, value);
  136. else
  137. list_for_each_entry(handle, &dev->h_list, d_node)
  138. if (handle->open)
  139. handle->handler->event(handle, type, code, value);
  140. }
  141. EXPORT_SYMBOL(input_event);
  142. /**
  143. * input_inject_event() - send input event from input handler
  144. * @handle: input handle to send event through
  145. * @type: type of the event
  146. * @code: event code
  147. * @value: value of the event
  148. *
  149. * Similar to input_event() but will ignore event if device is "grabbed" and handle
  150. * injecting event is not the one that owns the device.
  151. */
  152. void input_inject_event(struct input_handle *handle, unsigned int type, unsigned int code, int value)
  153. {
  154. if (!handle->dev->grab || handle->dev->grab == handle)
  155. input_event(handle->dev, type, code, value);
  156. }
  157. EXPORT_SYMBOL(input_inject_event);
  158. static void input_repeat_key(unsigned long data)
  159. {
  160. struct input_dev *dev = (void *) data;
  161. if (!test_bit(dev->repeat_key, dev->key))
  162. return;
  163. input_event(dev, EV_KEY, dev->repeat_key, 2);
  164. input_sync(dev);
  165. if (dev->rep[REP_PERIOD])
  166. mod_timer(&dev->timer, jiffies + msecs_to_jiffies(dev->rep[REP_PERIOD]));
  167. }
  168. int input_grab_device(struct input_handle *handle)
  169. {
  170. if (handle->dev->grab)
  171. return -EBUSY;
  172. handle->dev->grab = handle;
  173. return 0;
  174. }
  175. EXPORT_SYMBOL(input_grab_device);
  176. void input_release_device(struct input_handle *handle)
  177. {
  178. struct input_dev *dev = handle->dev;
  179. if (dev->grab == handle) {
  180. dev->grab = NULL;
  181. list_for_each_entry(handle, &dev->h_list, d_node)
  182. if (handle->handler->start)
  183. handle->handler->start(handle);
  184. }
  185. }
  186. EXPORT_SYMBOL(input_release_device);
  187. int input_open_device(struct input_handle *handle)
  188. {
  189. struct input_dev *dev = handle->dev;
  190. int err;
  191. err = mutex_lock_interruptible(&dev->mutex);
  192. if (err)
  193. return err;
  194. handle->open++;
  195. if (!dev->users++ && dev->open)
  196. err = dev->open(dev);
  197. if (err)
  198. handle->open--;
  199. mutex_unlock(&dev->mutex);
  200. return err;
  201. }
  202. EXPORT_SYMBOL(input_open_device);
  203. int input_flush_device(struct input_handle* handle, struct file* file)
  204. {
  205. if (handle->dev->flush)
  206. return handle->dev->flush(handle->dev, file);
  207. return 0;
  208. }
  209. EXPORT_SYMBOL(input_flush_device);
  210. void input_close_device(struct input_handle *handle)
  211. {
  212. struct input_dev *dev = handle->dev;
  213. input_release_device(handle);
  214. mutex_lock(&dev->mutex);
  215. if (!--dev->users && dev->close)
  216. dev->close(dev);
  217. handle->open--;
  218. mutex_unlock(&dev->mutex);
  219. }
  220. EXPORT_SYMBOL(input_close_device);
  221. static int input_fetch_keycode(struct input_dev *dev, int scancode)
  222. {
  223. switch (dev->keycodesize) {
  224. case 1:
  225. return ((u8 *)dev->keycode)[scancode];
  226. case 2:
  227. return ((u16 *)dev->keycode)[scancode];
  228. default:
  229. return ((u32 *)dev->keycode)[scancode];
  230. }
  231. }
  232. static int input_default_getkeycode(struct input_dev *dev,
  233. int scancode, int *keycode)
  234. {
  235. if (!dev->keycodesize)
  236. return -EINVAL;
  237. if (scancode < 0 || scancode >= dev->keycodemax)
  238. return -EINVAL;
  239. *keycode = input_fetch_keycode(dev, scancode);
  240. return 0;
  241. }
  242. static int input_default_setkeycode(struct input_dev *dev,
  243. int scancode, int keycode)
  244. {
  245. int old_keycode;
  246. int i;
  247. if (scancode < 0 || scancode >= dev->keycodemax)
  248. return -EINVAL;
  249. if (keycode < 0 || keycode > KEY_MAX)
  250. return -EINVAL;
  251. if (!dev->keycodesize)
  252. return -EINVAL;
  253. if (dev->keycodesize < sizeof(keycode) && (keycode >> (dev->keycodesize * 8)))
  254. return -EINVAL;
  255. switch (dev->keycodesize) {
  256. case 1: {
  257. u8 *k = (u8 *)dev->keycode;
  258. old_keycode = k[scancode];
  259. k[scancode] = keycode;
  260. break;
  261. }
  262. case 2: {
  263. u16 *k = (u16 *)dev->keycode;
  264. old_keycode = k[scancode];
  265. k[scancode] = keycode;
  266. break;
  267. }
  268. default: {
  269. u32 *k = (u32 *)dev->keycode;
  270. old_keycode = k[scancode];
  271. k[scancode] = keycode;
  272. break;
  273. }
  274. }
  275. clear_bit(old_keycode, dev->keybit);
  276. set_bit(keycode, dev->keybit);
  277. for (i = 0; i < dev->keycodemax; i++) {
  278. if (input_fetch_keycode(dev, i) == old_keycode) {
  279. set_bit(old_keycode, dev->keybit);
  280. break; /* Setting the bit twice is useless, so break */
  281. }
  282. }
  283. return 0;
  284. }
  285. #define MATCH_BIT(bit, max) \
  286. for (i = 0; i < NBITS(max); i++) \
  287. if ((id->bit[i] & dev->bit[i]) != id->bit[i]) \
  288. break; \
  289. if (i != NBITS(max)) \
  290. continue;
  291. static const struct input_device_id *input_match_device(const struct input_device_id *id,
  292. struct input_dev *dev)
  293. {
  294. int i;
  295. for (; id->flags || id->driver_info; id++) {
  296. if (id->flags & INPUT_DEVICE_ID_MATCH_BUS)
  297. if (id->bustype != dev->id.bustype)
  298. continue;
  299. if (id->flags & INPUT_DEVICE_ID_MATCH_VENDOR)
  300. if (id->vendor != dev->id.vendor)
  301. continue;
  302. if (id->flags & INPUT_DEVICE_ID_MATCH_PRODUCT)
  303. if (id->product != dev->id.product)
  304. continue;
  305. if (id->flags & INPUT_DEVICE_ID_MATCH_VERSION)
  306. if (id->version != dev->id.version)
  307. continue;
  308. MATCH_BIT(evbit, EV_MAX);
  309. MATCH_BIT(keybit, KEY_MAX);
  310. MATCH_BIT(relbit, REL_MAX);
  311. MATCH_BIT(absbit, ABS_MAX);
  312. MATCH_BIT(mscbit, MSC_MAX);
  313. MATCH_BIT(ledbit, LED_MAX);
  314. MATCH_BIT(sndbit, SND_MAX);
  315. MATCH_BIT(ffbit, FF_MAX);
  316. MATCH_BIT(swbit, SW_MAX);
  317. return id;
  318. }
  319. return NULL;
  320. }
  321. static int input_attach_handler(struct input_dev *dev, struct input_handler *handler)
  322. {
  323. const struct input_device_id *id;
  324. int error;
  325. if (handler->blacklist && input_match_device(handler->blacklist, dev))
  326. return -ENODEV;
  327. id = input_match_device(handler->id_table, dev);
  328. if (!id)
  329. return -ENODEV;
  330. error = handler->connect(handler, dev, id);
  331. if (error && error != -ENODEV)
  332. printk(KERN_ERR
  333. "input: failed to attach handler %s to device %s, "
  334. "error: %d\n",
  335. handler->name, kobject_name(&dev->dev.kobj), error);
  336. return error;
  337. }
  338. #ifdef CONFIG_PROC_FS
  339. static struct proc_dir_entry *proc_bus_input_dir;
  340. static DECLARE_WAIT_QUEUE_HEAD(input_devices_poll_wait);
  341. static int input_devices_state;
  342. static inline void input_wakeup_procfs_readers(void)
  343. {
  344. input_devices_state++;
  345. wake_up(&input_devices_poll_wait);
  346. }
  347. static unsigned int input_proc_devices_poll(struct file *file, poll_table *wait)
  348. {
  349. int state = input_devices_state;
  350. poll_wait(file, &input_devices_poll_wait, wait);
  351. if (state != input_devices_state)
  352. return POLLIN | POLLRDNORM;
  353. return 0;
  354. }
  355. static void *input_devices_seq_start(struct seq_file *seq, loff_t *pos)
  356. {
  357. /* acquire lock here ... Yes, we do need locking, I knowi, I know... */
  358. return seq_list_start(&input_dev_list, *pos);
  359. }
  360. static void *input_devices_seq_next(struct seq_file *seq, void *v, loff_t *pos)
  361. {
  362. return seq_list_next(v, &input_dev_list, pos);
  363. }
  364. static void input_devices_seq_stop(struct seq_file *seq, void *v)
  365. {
  366. /* release lock here */
  367. }
  368. static void input_seq_print_bitmap(struct seq_file *seq, const char *name,
  369. unsigned long *bitmap, int max)
  370. {
  371. int i;
  372. for (i = NBITS(max) - 1; i > 0; i--)
  373. if (bitmap[i])
  374. break;
  375. seq_printf(seq, "B: %s=", name);
  376. for (; i >= 0; i--)
  377. seq_printf(seq, "%lx%s", bitmap[i], i > 0 ? " " : "");
  378. seq_putc(seq, '\n');
  379. }
  380. static int input_devices_seq_show(struct seq_file *seq, void *v)
  381. {
  382. struct input_dev *dev = container_of(v, struct input_dev, node);
  383. const char *path = kobject_get_path(&dev->dev.kobj, GFP_KERNEL);
  384. struct input_handle *handle;
  385. seq_printf(seq, "I: Bus=%04x Vendor=%04x Product=%04x Version=%04x\n",
  386. dev->id.bustype, dev->id.vendor, dev->id.product, dev->id.version);
  387. seq_printf(seq, "N: Name=\"%s\"\n", dev->name ? dev->name : "");
  388. seq_printf(seq, "P: Phys=%s\n", dev->phys ? dev->phys : "");
  389. seq_printf(seq, "S: Sysfs=%s\n", path ? path : "");
  390. seq_printf(seq, "U: Uniq=%s\n", dev->uniq ? dev->uniq : "");
  391. seq_printf(seq, "H: Handlers=");
  392. list_for_each_entry(handle, &dev->h_list, d_node)
  393. seq_printf(seq, "%s ", handle->name);
  394. seq_putc(seq, '\n');
  395. input_seq_print_bitmap(seq, "EV", dev->evbit, EV_MAX);
  396. if (test_bit(EV_KEY, dev->evbit))
  397. input_seq_print_bitmap(seq, "KEY", dev->keybit, KEY_MAX);
  398. if (test_bit(EV_REL, dev->evbit))
  399. input_seq_print_bitmap(seq, "REL", dev->relbit, REL_MAX);
  400. if (test_bit(EV_ABS, dev->evbit))
  401. input_seq_print_bitmap(seq, "ABS", dev->absbit, ABS_MAX);
  402. if (test_bit(EV_MSC, dev->evbit))
  403. input_seq_print_bitmap(seq, "MSC", dev->mscbit, MSC_MAX);
  404. if (test_bit(EV_LED, dev->evbit))
  405. input_seq_print_bitmap(seq, "LED", dev->ledbit, LED_MAX);
  406. if (test_bit(EV_SND, dev->evbit))
  407. input_seq_print_bitmap(seq, "SND", dev->sndbit, SND_MAX);
  408. if (test_bit(EV_FF, dev->evbit))
  409. input_seq_print_bitmap(seq, "FF", dev->ffbit, FF_MAX);
  410. if (test_bit(EV_SW, dev->evbit))
  411. input_seq_print_bitmap(seq, "SW", dev->swbit, SW_MAX);
  412. seq_putc(seq, '\n');
  413. kfree(path);
  414. return 0;
  415. }
  416. static struct seq_operations input_devices_seq_ops = {
  417. .start = input_devices_seq_start,
  418. .next = input_devices_seq_next,
  419. .stop = input_devices_seq_stop,
  420. .show = input_devices_seq_show,
  421. };
  422. static int input_proc_devices_open(struct inode *inode, struct file *file)
  423. {
  424. return seq_open(file, &input_devices_seq_ops);
  425. }
  426. static const struct file_operations input_devices_fileops = {
  427. .owner = THIS_MODULE,
  428. .open = input_proc_devices_open,
  429. .poll = input_proc_devices_poll,
  430. .read = seq_read,
  431. .llseek = seq_lseek,
  432. .release = seq_release,
  433. };
  434. static void *input_handlers_seq_start(struct seq_file *seq, loff_t *pos)
  435. {
  436. /* acquire lock here ... Yes, we do need locking, I knowi, I know... */
  437. seq->private = (void *)(unsigned long)*pos;
  438. return seq_list_start(&input_handler_list, *pos);
  439. }
  440. static void *input_handlers_seq_next(struct seq_file *seq, void *v, loff_t *pos)
  441. {
  442. seq->private = (void *)(unsigned long)(*pos + 1);
  443. return seq_list_next(v, &input_handler_list, pos);
  444. }
  445. static void input_handlers_seq_stop(struct seq_file *seq, void *v)
  446. {
  447. /* release lock here */
  448. }
  449. static int input_handlers_seq_show(struct seq_file *seq, void *v)
  450. {
  451. struct input_handler *handler = container_of(v, struct input_handler, node);
  452. seq_printf(seq, "N: Number=%ld Name=%s",
  453. (unsigned long)seq->private, handler->name);
  454. if (handler->fops)
  455. seq_printf(seq, " Minor=%d", handler->minor);
  456. seq_putc(seq, '\n');
  457. return 0;
  458. }
  459. static struct seq_operations input_handlers_seq_ops = {
  460. .start = input_handlers_seq_start,
  461. .next = input_handlers_seq_next,
  462. .stop = input_handlers_seq_stop,
  463. .show = input_handlers_seq_show,
  464. };
  465. static int input_proc_handlers_open(struct inode *inode, struct file *file)
  466. {
  467. return seq_open(file, &input_handlers_seq_ops);
  468. }
  469. static const struct file_operations input_handlers_fileops = {
  470. .owner = THIS_MODULE,
  471. .open = input_proc_handlers_open,
  472. .read = seq_read,
  473. .llseek = seq_lseek,
  474. .release = seq_release,
  475. };
  476. static int __init input_proc_init(void)
  477. {
  478. struct proc_dir_entry *entry;
  479. proc_bus_input_dir = proc_mkdir("input", proc_bus);
  480. if (!proc_bus_input_dir)
  481. return -ENOMEM;
  482. proc_bus_input_dir->owner = THIS_MODULE;
  483. entry = create_proc_entry("devices", 0, proc_bus_input_dir);
  484. if (!entry)
  485. goto fail1;
  486. entry->owner = THIS_MODULE;
  487. entry->proc_fops = &input_devices_fileops;
  488. entry = create_proc_entry("handlers", 0, proc_bus_input_dir);
  489. if (!entry)
  490. goto fail2;
  491. entry->owner = THIS_MODULE;
  492. entry->proc_fops = &input_handlers_fileops;
  493. return 0;
  494. fail2: remove_proc_entry("devices", proc_bus_input_dir);
  495. fail1: remove_proc_entry("input", proc_bus);
  496. return -ENOMEM;
  497. }
  498. static void input_proc_exit(void)
  499. {
  500. remove_proc_entry("devices", proc_bus_input_dir);
  501. remove_proc_entry("handlers", proc_bus_input_dir);
  502. remove_proc_entry("input", proc_bus);
  503. }
  504. #else /* !CONFIG_PROC_FS */
  505. static inline void input_wakeup_procfs_readers(void) { }
  506. static inline int input_proc_init(void) { return 0; }
  507. static inline void input_proc_exit(void) { }
  508. #endif
  509. #define INPUT_DEV_STRING_ATTR_SHOW(name) \
  510. static ssize_t input_dev_show_##name(struct device *dev, \
  511. struct device_attribute *attr, \
  512. char *buf) \
  513. { \
  514. struct input_dev *input_dev = to_input_dev(dev); \
  515. \
  516. return scnprintf(buf, PAGE_SIZE, "%s\n", \
  517. input_dev->name ? input_dev->name : ""); \
  518. } \
  519. static DEVICE_ATTR(name, S_IRUGO, input_dev_show_##name, NULL)
  520. INPUT_DEV_STRING_ATTR_SHOW(name);
  521. INPUT_DEV_STRING_ATTR_SHOW(phys);
  522. INPUT_DEV_STRING_ATTR_SHOW(uniq);
  523. static int input_print_modalias_bits(char *buf, int size,
  524. char name, unsigned long *bm,
  525. unsigned int min_bit, unsigned int max_bit)
  526. {
  527. int len = 0, i;
  528. len += snprintf(buf, max(size, 0), "%c", name);
  529. for (i = min_bit; i < max_bit; i++)
  530. if (bm[LONG(i)] & BIT(i))
  531. len += snprintf(buf + len, max(size - len, 0), "%X,", i);
  532. return len;
  533. }
  534. static int input_print_modalias(char *buf, int size, struct input_dev *id,
  535. int add_cr)
  536. {
  537. int len;
  538. len = snprintf(buf, max(size, 0),
  539. "input:b%04Xv%04Xp%04Xe%04X-",
  540. id->id.bustype, id->id.vendor,
  541. id->id.product, id->id.version);
  542. len += input_print_modalias_bits(buf + len, size - len,
  543. 'e', id->evbit, 0, EV_MAX);
  544. len += input_print_modalias_bits(buf + len, size - len,
  545. 'k', id->keybit, KEY_MIN_INTERESTING, KEY_MAX);
  546. len += input_print_modalias_bits(buf + len, size - len,
  547. 'r', id->relbit, 0, REL_MAX);
  548. len += input_print_modalias_bits(buf + len, size - len,
  549. 'a', id->absbit, 0, ABS_MAX);
  550. len += input_print_modalias_bits(buf + len, size - len,
  551. 'm', id->mscbit, 0, MSC_MAX);
  552. len += input_print_modalias_bits(buf + len, size - len,
  553. 'l', id->ledbit, 0, LED_MAX);
  554. len += input_print_modalias_bits(buf + len, size - len,
  555. 's', id->sndbit, 0, SND_MAX);
  556. len += input_print_modalias_bits(buf + len, size - len,
  557. 'f', id->ffbit, 0, FF_MAX);
  558. len += input_print_modalias_bits(buf + len, size - len,
  559. 'w', id->swbit, 0, SW_MAX);
  560. if (add_cr)
  561. len += snprintf(buf + len, max(size - len, 0), "\n");
  562. return len;
  563. }
  564. static ssize_t input_dev_show_modalias(struct device *dev,
  565. struct device_attribute *attr,
  566. char *buf)
  567. {
  568. struct input_dev *id = to_input_dev(dev);
  569. ssize_t len;
  570. len = input_print_modalias(buf, PAGE_SIZE, id, 1);
  571. return min_t(int, len, PAGE_SIZE);
  572. }
  573. static DEVICE_ATTR(modalias, S_IRUGO, input_dev_show_modalias, NULL);
  574. static struct attribute *input_dev_attrs[] = {
  575. &dev_attr_name.attr,
  576. &dev_attr_phys.attr,
  577. &dev_attr_uniq.attr,
  578. &dev_attr_modalias.attr,
  579. NULL
  580. };
  581. static struct attribute_group input_dev_attr_group = {
  582. .attrs = input_dev_attrs,
  583. };
  584. #define INPUT_DEV_ID_ATTR(name) \
  585. static ssize_t input_dev_show_id_##name(struct device *dev, \
  586. struct device_attribute *attr, \
  587. char *buf) \
  588. { \
  589. struct input_dev *input_dev = to_input_dev(dev); \
  590. return scnprintf(buf, PAGE_SIZE, "%04x\n", input_dev->id.name); \
  591. } \
  592. static DEVICE_ATTR(name, S_IRUGO, input_dev_show_id_##name, NULL)
  593. INPUT_DEV_ID_ATTR(bustype);
  594. INPUT_DEV_ID_ATTR(vendor);
  595. INPUT_DEV_ID_ATTR(product);
  596. INPUT_DEV_ID_ATTR(version);
  597. static struct attribute *input_dev_id_attrs[] = {
  598. &dev_attr_bustype.attr,
  599. &dev_attr_vendor.attr,
  600. &dev_attr_product.attr,
  601. &dev_attr_version.attr,
  602. NULL
  603. };
  604. static struct attribute_group input_dev_id_attr_group = {
  605. .name = "id",
  606. .attrs = input_dev_id_attrs,
  607. };
  608. static int input_print_bitmap(char *buf, int buf_size, unsigned long *bitmap,
  609. int max, int add_cr)
  610. {
  611. int i;
  612. int len = 0;
  613. for (i = NBITS(max) - 1; i > 0; i--)
  614. if (bitmap[i])
  615. break;
  616. for (; i >= 0; i--)
  617. len += snprintf(buf + len, max(buf_size - len, 0),
  618. "%lx%s", bitmap[i], i > 0 ? " " : "");
  619. if (add_cr)
  620. len += snprintf(buf + len, max(buf_size - len, 0), "\n");
  621. return len;
  622. }
  623. #define INPUT_DEV_CAP_ATTR(ev, bm) \
  624. static ssize_t input_dev_show_cap_##bm(struct device *dev, \
  625. struct device_attribute *attr, \
  626. char *buf) \
  627. { \
  628. struct input_dev *input_dev = to_input_dev(dev); \
  629. int len = input_print_bitmap(buf, PAGE_SIZE, \
  630. input_dev->bm##bit, ev##_MAX, 1); \
  631. return min_t(int, len, PAGE_SIZE); \
  632. } \
  633. static DEVICE_ATTR(bm, S_IRUGO, input_dev_show_cap_##bm, NULL)
  634. INPUT_DEV_CAP_ATTR(EV, ev);
  635. INPUT_DEV_CAP_ATTR(KEY, key);
  636. INPUT_DEV_CAP_ATTR(REL, rel);
  637. INPUT_DEV_CAP_ATTR(ABS, abs);
  638. INPUT_DEV_CAP_ATTR(MSC, msc);
  639. INPUT_DEV_CAP_ATTR(LED, led);
  640. INPUT_DEV_CAP_ATTR(SND, snd);
  641. INPUT_DEV_CAP_ATTR(FF, ff);
  642. INPUT_DEV_CAP_ATTR(SW, sw);
  643. static struct attribute *input_dev_caps_attrs[] = {
  644. &dev_attr_ev.attr,
  645. &dev_attr_key.attr,
  646. &dev_attr_rel.attr,
  647. &dev_attr_abs.attr,
  648. &dev_attr_msc.attr,
  649. &dev_attr_led.attr,
  650. &dev_attr_snd.attr,
  651. &dev_attr_ff.attr,
  652. &dev_attr_sw.attr,
  653. NULL
  654. };
  655. static struct attribute_group input_dev_caps_attr_group = {
  656. .name = "capabilities",
  657. .attrs = input_dev_caps_attrs,
  658. };
  659. static struct attribute_group *input_dev_attr_groups[] = {
  660. &input_dev_attr_group,
  661. &input_dev_id_attr_group,
  662. &input_dev_caps_attr_group,
  663. NULL
  664. };
  665. static void input_dev_release(struct device *device)
  666. {
  667. struct input_dev *dev = to_input_dev(device);
  668. input_ff_destroy(dev);
  669. kfree(dev);
  670. module_put(THIS_MODULE);
  671. }
  672. /*
  673. * Input uevent interface - loading event handlers based on
  674. * device bitfields.
  675. */
  676. static int input_add_uevent_bm_var(char **envp, int num_envp, int *cur_index,
  677. char *buffer, int buffer_size, int *cur_len,
  678. const char *name, unsigned long *bitmap, int max)
  679. {
  680. if (*cur_index >= num_envp - 1)
  681. return -ENOMEM;
  682. envp[*cur_index] = buffer + *cur_len;
  683. *cur_len += snprintf(buffer + *cur_len, max(buffer_size - *cur_len, 0), name);
  684. if (*cur_len >= buffer_size)
  685. return -ENOMEM;
  686. *cur_len += input_print_bitmap(buffer + *cur_len,
  687. max(buffer_size - *cur_len, 0),
  688. bitmap, max, 0) + 1;
  689. if (*cur_len > buffer_size)
  690. return -ENOMEM;
  691. (*cur_index)++;
  692. return 0;
  693. }
  694. static int input_add_uevent_modalias_var(char **envp, int num_envp, int *cur_index,
  695. char *buffer, int buffer_size, int *cur_len,
  696. struct input_dev *dev)
  697. {
  698. if (*cur_index >= num_envp - 1)
  699. return -ENOMEM;
  700. envp[*cur_index] = buffer + *cur_len;
  701. *cur_len += snprintf(buffer + *cur_len, max(buffer_size - *cur_len, 0),
  702. "MODALIAS=");
  703. if (*cur_len >= buffer_size)
  704. return -ENOMEM;
  705. *cur_len += input_print_modalias(buffer + *cur_len,
  706. max(buffer_size - *cur_len, 0),
  707. dev, 0) + 1;
  708. if (*cur_len > buffer_size)
  709. return -ENOMEM;
  710. (*cur_index)++;
  711. return 0;
  712. }
  713. #define INPUT_ADD_HOTPLUG_VAR(fmt, val...) \
  714. do { \
  715. int err = add_uevent_var(envp, num_envp, &i, \
  716. buffer, buffer_size, &len, \
  717. fmt, val); \
  718. if (err) \
  719. return err; \
  720. } while (0)
  721. #define INPUT_ADD_HOTPLUG_BM_VAR(name, bm, max) \
  722. do { \
  723. int err = input_add_uevent_bm_var(envp, num_envp, &i, \
  724. buffer, buffer_size, &len, \
  725. name, bm, max); \
  726. if (err) \
  727. return err; \
  728. } while (0)
  729. #define INPUT_ADD_HOTPLUG_MODALIAS_VAR(dev) \
  730. do { \
  731. int err = input_add_uevent_modalias_var(envp, \
  732. num_envp, &i, \
  733. buffer, buffer_size, &len, \
  734. dev); \
  735. if (err) \
  736. return err; \
  737. } while (0)
  738. static int input_dev_uevent(struct device *device, char **envp,
  739. int num_envp, char *buffer, int buffer_size)
  740. {
  741. struct input_dev *dev = to_input_dev(device);
  742. int i = 0;
  743. int len = 0;
  744. INPUT_ADD_HOTPLUG_VAR("PRODUCT=%x/%x/%x/%x",
  745. dev->id.bustype, dev->id.vendor,
  746. dev->id.product, dev->id.version);
  747. if (dev->name)
  748. INPUT_ADD_HOTPLUG_VAR("NAME=\"%s\"", dev->name);
  749. if (dev->phys)
  750. INPUT_ADD_HOTPLUG_VAR("PHYS=\"%s\"", dev->phys);
  751. if (dev->uniq)
  752. INPUT_ADD_HOTPLUG_VAR("UNIQ=\"%s\"", dev->uniq);
  753. INPUT_ADD_HOTPLUG_BM_VAR("EV=", dev->evbit, EV_MAX);
  754. if (test_bit(EV_KEY, dev->evbit))
  755. INPUT_ADD_HOTPLUG_BM_VAR("KEY=", dev->keybit, KEY_MAX);
  756. if (test_bit(EV_REL, dev->evbit))
  757. INPUT_ADD_HOTPLUG_BM_VAR("REL=", dev->relbit, REL_MAX);
  758. if (test_bit(EV_ABS, dev->evbit))
  759. INPUT_ADD_HOTPLUG_BM_VAR("ABS=", dev->absbit, ABS_MAX);
  760. if (test_bit(EV_MSC, dev->evbit))
  761. INPUT_ADD_HOTPLUG_BM_VAR("MSC=", dev->mscbit, MSC_MAX);
  762. if (test_bit(EV_LED, dev->evbit))
  763. INPUT_ADD_HOTPLUG_BM_VAR("LED=", dev->ledbit, LED_MAX);
  764. if (test_bit(EV_SND, dev->evbit))
  765. INPUT_ADD_HOTPLUG_BM_VAR("SND=", dev->sndbit, SND_MAX);
  766. if (test_bit(EV_FF, dev->evbit))
  767. INPUT_ADD_HOTPLUG_BM_VAR("FF=", dev->ffbit, FF_MAX);
  768. if (test_bit(EV_SW, dev->evbit))
  769. INPUT_ADD_HOTPLUG_BM_VAR("SW=", dev->swbit, SW_MAX);
  770. INPUT_ADD_HOTPLUG_MODALIAS_VAR(dev);
  771. envp[i] = NULL;
  772. return 0;
  773. }
  774. static struct device_type input_dev_type = {
  775. .groups = input_dev_attr_groups,
  776. .release = input_dev_release,
  777. .uevent = input_dev_uevent,
  778. };
  779. struct class input_class = {
  780. .name = "input",
  781. };
  782. EXPORT_SYMBOL_GPL(input_class);
  783. /**
  784. * input_allocate_device - allocate memory for new input device
  785. *
  786. * Returns prepared struct input_dev or NULL.
  787. *
  788. * NOTE: Use input_free_device() to free devices that have not been
  789. * registered; input_unregister_device() should be used for already
  790. * registered devices.
  791. */
  792. struct input_dev *input_allocate_device(void)
  793. {
  794. struct input_dev *dev;
  795. dev = kzalloc(sizeof(struct input_dev), GFP_KERNEL);
  796. if (dev) {
  797. dev->dev.type = &input_dev_type;
  798. dev->dev.class = &input_class;
  799. device_initialize(&dev->dev);
  800. mutex_init(&dev->mutex);
  801. INIT_LIST_HEAD(&dev->h_list);
  802. INIT_LIST_HEAD(&dev->node);
  803. __module_get(THIS_MODULE);
  804. }
  805. return dev;
  806. }
  807. EXPORT_SYMBOL(input_allocate_device);
  808. /**
  809. * input_free_device - free memory occupied by input_dev structure
  810. * @dev: input device to free
  811. *
  812. * This function should only be used if input_register_device()
  813. * was not called yet or if it failed. Once device was registered
  814. * use input_unregister_device() and memory will be freed once last
  815. * refrence to the device is dropped.
  816. *
  817. * Device should be allocated by input_allocate_device().
  818. *
  819. * NOTE: If there are references to the input device then memory
  820. * will not be freed until last reference is dropped.
  821. */
  822. void input_free_device(struct input_dev *dev)
  823. {
  824. if (dev)
  825. input_put_device(dev);
  826. }
  827. EXPORT_SYMBOL(input_free_device);
  828. /**
  829. * input_set_capability - mark device as capable of a certain event
  830. * @dev: device that is capable of emitting or accepting event
  831. * @type: type of the event (EV_KEY, EV_REL, etc...)
  832. * @code: event code
  833. *
  834. * In addition to setting up corresponding bit in appropriate capability
  835. * bitmap the function also adjusts dev->evbit.
  836. */
  837. void input_set_capability(struct input_dev *dev, unsigned int type, unsigned int code)
  838. {
  839. switch (type) {
  840. case EV_KEY:
  841. __set_bit(code, dev->keybit);
  842. break;
  843. case EV_REL:
  844. __set_bit(code, dev->relbit);
  845. break;
  846. case EV_ABS:
  847. __set_bit(code, dev->absbit);
  848. break;
  849. case EV_MSC:
  850. __set_bit(code, dev->mscbit);
  851. break;
  852. case EV_SW:
  853. __set_bit(code, dev->swbit);
  854. break;
  855. case EV_LED:
  856. __set_bit(code, dev->ledbit);
  857. break;
  858. case EV_SND:
  859. __set_bit(code, dev->sndbit);
  860. break;
  861. case EV_FF:
  862. __set_bit(code, dev->ffbit);
  863. break;
  864. default:
  865. printk(KERN_ERR
  866. "input_set_capability: unknown type %u (code %u)\n",
  867. type, code);
  868. dump_stack();
  869. return;
  870. }
  871. __set_bit(type, dev->evbit);
  872. }
  873. EXPORT_SYMBOL(input_set_capability);
  874. int input_register_device(struct input_dev *dev)
  875. {
  876. static atomic_t input_no = ATOMIC_INIT(0);
  877. struct input_handler *handler;
  878. const char *path;
  879. int error;
  880. set_bit(EV_SYN, dev->evbit);
  881. /*
  882. * If delay and period are pre-set by the driver, then autorepeating
  883. * is handled by the driver itself and we don't do it in input.c.
  884. */
  885. init_timer(&dev->timer);
  886. if (!dev->rep[REP_DELAY] && !dev->rep[REP_PERIOD]) {
  887. dev->timer.data = (long) dev;
  888. dev->timer.function = input_repeat_key;
  889. dev->rep[REP_DELAY] = 250;
  890. dev->rep[REP_PERIOD] = 33;
  891. }
  892. if (!dev->getkeycode)
  893. dev->getkeycode = input_default_getkeycode;
  894. if (!dev->setkeycode)
  895. dev->setkeycode = input_default_setkeycode;
  896. list_add_tail(&dev->node, &input_dev_list);
  897. snprintf(dev->dev.bus_id, sizeof(dev->dev.bus_id),
  898. "input%ld", (unsigned long) atomic_inc_return(&input_no) - 1);
  899. if (dev->cdev.dev)
  900. dev->dev.parent = dev->cdev.dev;
  901. error = device_add(&dev->dev);
  902. if (error)
  903. return error;
  904. path = kobject_get_path(&dev->dev.kobj, GFP_KERNEL);
  905. printk(KERN_INFO "input: %s as %s\n",
  906. dev->name ? dev->name : "Unspecified device", path ? path : "N/A");
  907. kfree(path);
  908. list_for_each_entry(handler, &input_handler_list, node)
  909. input_attach_handler(dev, handler);
  910. input_wakeup_procfs_readers();
  911. return 0;
  912. }
  913. EXPORT_SYMBOL(input_register_device);
  914. void input_unregister_device(struct input_dev *dev)
  915. {
  916. struct input_handle *handle, *next;
  917. int code;
  918. for (code = 0; code <= KEY_MAX; code++)
  919. if (test_bit(code, dev->key))
  920. input_report_key(dev, code, 0);
  921. input_sync(dev);
  922. del_timer_sync(&dev->timer);
  923. list_for_each_entry_safe(handle, next, &dev->h_list, d_node)
  924. handle->handler->disconnect(handle);
  925. WARN_ON(!list_empty(&dev->h_list));
  926. list_del_init(&dev->node);
  927. device_unregister(&dev->dev);
  928. input_wakeup_procfs_readers();
  929. }
  930. EXPORT_SYMBOL(input_unregister_device);
  931. int input_register_handler(struct input_handler *handler)
  932. {
  933. struct input_dev *dev;
  934. INIT_LIST_HEAD(&handler->h_list);
  935. if (handler->fops != NULL) {
  936. if (input_table[handler->minor >> 5])
  937. return -EBUSY;
  938. input_table[handler->minor >> 5] = handler;
  939. }
  940. list_add_tail(&handler->node, &input_handler_list);
  941. list_for_each_entry(dev, &input_dev_list, node)
  942. input_attach_handler(dev, handler);
  943. input_wakeup_procfs_readers();
  944. return 0;
  945. }
  946. EXPORT_SYMBOL(input_register_handler);
  947. void input_unregister_handler(struct input_handler *handler)
  948. {
  949. struct input_handle *handle, *next;
  950. list_for_each_entry_safe(handle, next, &handler->h_list, h_node)
  951. handler->disconnect(handle);
  952. WARN_ON(!list_empty(&handler->h_list));
  953. list_del_init(&handler->node);
  954. if (handler->fops != NULL)
  955. input_table[handler->minor >> 5] = NULL;
  956. input_wakeup_procfs_readers();
  957. }
  958. EXPORT_SYMBOL(input_unregister_handler);
  959. int input_register_handle(struct input_handle *handle)
  960. {
  961. struct input_handler *handler = handle->handler;
  962. list_add_tail(&handle->d_node, &handle->dev->h_list);
  963. list_add_tail(&handle->h_node, &handler->h_list);
  964. if (handler->start)
  965. handler->start(handle);
  966. return 0;
  967. }
  968. EXPORT_SYMBOL(input_register_handle);
  969. void input_unregister_handle(struct input_handle *handle)
  970. {
  971. list_del_init(&handle->h_node);
  972. list_del_init(&handle->d_node);
  973. }
  974. EXPORT_SYMBOL(input_unregister_handle);
  975. static int input_open_file(struct inode *inode, struct file *file)
  976. {
  977. struct input_handler *handler = input_table[iminor(inode) >> 5];
  978. const struct file_operations *old_fops, *new_fops = NULL;
  979. int err;
  980. /* No load-on-demand here? */
  981. if (!handler || !(new_fops = fops_get(handler->fops)))
  982. return -ENODEV;
  983. /*
  984. * That's _really_ odd. Usually NULL ->open means "nothing special",
  985. * not "no device". Oh, well...
  986. */
  987. if (!new_fops->open) {
  988. fops_put(new_fops);
  989. return -ENODEV;
  990. }
  991. old_fops = file->f_op;
  992. file->f_op = new_fops;
  993. err = new_fops->open(inode, file);
  994. if (err) {
  995. fops_put(file->f_op);
  996. file->f_op = fops_get(old_fops);
  997. }
  998. fops_put(old_fops);
  999. return err;
  1000. }
  1001. static const struct file_operations input_fops = {
  1002. .owner = THIS_MODULE,
  1003. .open = input_open_file,
  1004. };
  1005. static int __init input_init(void)
  1006. {
  1007. int err;
  1008. err = class_register(&input_class);
  1009. if (err) {
  1010. printk(KERN_ERR "input: unable to register input_dev class\n");
  1011. return err;
  1012. }
  1013. err = input_proc_init();
  1014. if (err)
  1015. goto fail1;
  1016. err = register_chrdev(INPUT_MAJOR, "input", &input_fops);
  1017. if (err) {
  1018. printk(KERN_ERR "input: unable to register char major %d", INPUT_MAJOR);
  1019. goto fail2;
  1020. }
  1021. return 0;
  1022. fail2: input_proc_exit();
  1023. fail1: class_unregister(&input_class);
  1024. return err;
  1025. }
  1026. static void __exit input_exit(void)
  1027. {
  1028. input_proc_exit();
  1029. unregister_chrdev(INPUT_MAJOR, "input");
  1030. class_unregister(&input_class);
  1031. }
  1032. subsys_initcall(input_init);
  1033. module_exit(input_exit);