input.c 53.5 KB
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/*
 * The input core
 *
 * Copyright (c) 1999-2002 Vojtech Pavlik
 */

/*
 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 as published by
 * the Free Software Foundation.
 */

#include <linux/init.h>
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#include <linux/types.h>
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#include <linux/input.h>
#include <linux/module.h>
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#include <linux/slab.h>
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#include <linux/random.h>
#include <linux/major.h>
#include <linux/proc_fs.h>
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#include <linux/sched.h>
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#include <linux/seq_file.h>
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#include <linux/poll.h>
#include <linux/device.h>
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#include <linux/mutex.h>
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#include <linux/rcupdate.h>
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#include <linux/smp_lock.h>
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#include "input-compat.h"
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MODULE_AUTHOR("Vojtech Pavlik <vojtech@suse.cz>");
MODULE_DESCRIPTION("Input core");
MODULE_LICENSE("GPL");

#define INPUT_DEVICES	256

static LIST_HEAD(input_dev_list);
static LIST_HEAD(input_handler_list);

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/*
 * input_mutex protects access to both input_dev_list and input_handler_list.
 * This also causes input_[un]register_device and input_[un]register_handler
 * be mutually exclusive which simplifies locking in drivers implementing
 * input handlers.
 */
static DEFINE_MUTEX(input_mutex);

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static struct input_handler *input_table[8];

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static inline int is_event_supported(unsigned int code,
				     unsigned long *bm, unsigned int max)
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{
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	return code <= max && test_bit(code, bm);
}
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static int input_defuzz_abs_event(int value, int old_val, int fuzz)
{
	if (fuzz) {
		if (value > old_val - fuzz / 2 && value < old_val + fuzz / 2)
			return old_val;
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		if (value > old_val - fuzz && value < old_val + fuzz)
			return (old_val * 3 + value) / 4;
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		if (value > old_val - fuzz * 2 && value < old_val + fuzz * 2)
			return (old_val + value) / 2;
	}
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	return value;
}
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/*
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 * Pass event first through all filters and then, if event has not been
 * filtered out, through all open handles. This function is called with
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 * dev->event_lock held and interrupts disabled.
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 */
static void input_pass_event(struct input_dev *dev,
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			     struct input_handler *src_handler,
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			     unsigned int type, unsigned int code, int value)
{
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	struct input_handler *handler;
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	struct input_handle *handle;

	rcu_read_lock();
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	handle = rcu_dereference(dev->grab);
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	if (handle)
		handle->handler->event(handle, type, code, value);
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	else {
		bool filtered = false;

		list_for_each_entry_rcu(handle, &dev->h_list, d_node) {
			if (!handle->open)
				continue;

			handler = handle->handler;
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			/*
			 * If this is the handler that injected this
			 * particular event we want to skip it to avoid
			 * filters firing again and again.
			 */
			if (handler == src_handler)
				continue;

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			if (!handler->filter) {
				if (filtered)
					break;

				handler->event(handle, type, code, value);

			} else if (handler->filter(handle, type, code, value))
				filtered = true;
		}
	}

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	rcu_read_unlock();
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}
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/*
 * Generate software autorepeat event. Note that we take
 * dev->event_lock here to avoid racing with input_event
 * which may cause keys get "stuck".
 */
static void input_repeat_key(unsigned long data)
{
	struct input_dev *dev = (void *) data;
	unsigned long flags;
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	spin_lock_irqsave(&dev->event_lock, flags);
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	if (test_bit(dev->repeat_key, dev->key) &&
	    is_event_supported(dev->repeat_key, dev->keybit, KEY_MAX)) {
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		input_pass_event(dev, NULL, EV_KEY, dev->repeat_key, 2);
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		if (dev->sync) {
			/*
			 * Only send SYN_REPORT if we are not in a middle
			 * of driver parsing a new hardware packet.
			 * Otherwise assume that the driver will send
			 * SYN_REPORT once it's done.
			 */
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			input_pass_event(dev, NULL, EV_SYN, SYN_REPORT, 1);
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		}
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		if (dev->rep[REP_PERIOD])
			mod_timer(&dev->timer, jiffies +
					msecs_to_jiffies(dev->rep[REP_PERIOD]));
	}
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	spin_unlock_irqrestore(&dev->event_lock, flags);
}
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static void input_start_autorepeat(struct input_dev *dev, int code)
{
	if (test_bit(EV_REP, dev->evbit) &&
	    dev->rep[REP_PERIOD] && dev->rep[REP_DELAY] &&
	    dev->timer.data) {
		dev->repeat_key = code;
		mod_timer(&dev->timer,
			  jiffies + msecs_to_jiffies(dev->rep[REP_DELAY]));
	}
}
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static void input_stop_autorepeat(struct input_dev *dev)
{
	del_timer(&dev->timer);
}

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#define INPUT_IGNORE_EVENT	0
#define INPUT_PASS_TO_HANDLERS	1
#define INPUT_PASS_TO_DEVICE	2
#define INPUT_PASS_TO_ALL	(INPUT_PASS_TO_HANDLERS | INPUT_PASS_TO_DEVICE)
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static int input_handle_abs_event(struct input_dev *dev,
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				  struct input_handler *src_handler,
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				  unsigned int code, int *pval)
{
	bool is_mt_event;
	int *pold;

	if (code == ABS_MT_SLOT) {
		/*
		 * "Stage" the event; we'll flush it later, when we
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		 * get actual touch data.
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		 */
		if (*pval >= 0 && *pval < dev->mtsize)
			dev->slot = *pval;

		return INPUT_IGNORE_EVENT;
	}

	is_mt_event = code >= ABS_MT_FIRST && code <= ABS_MT_LAST;

	if (!is_mt_event) {
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		pold = &dev->absinfo[code].value;
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	} else if (dev->mt) {
		struct input_mt_slot *mtslot = &dev->mt[dev->slot];
		pold = &mtslot->abs[code - ABS_MT_FIRST];
	} else {
		/*
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		 * Bypass filtering for multi-touch events when
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		 * not employing slots.
		 */
		pold = NULL;
	}

	if (pold) {
		*pval = input_defuzz_abs_event(*pval, *pold,
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						dev->absinfo[code].fuzz);
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		if (*pold == *pval)
			return INPUT_IGNORE_EVENT;

		*pold = *pval;
	}

	/* Flush pending "slot" event */
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	if (is_mt_event && dev->slot != input_abs_get_val(dev, ABS_MT_SLOT)) {
		input_abs_set_val(dev, ABS_MT_SLOT, dev->slot);
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		input_pass_event(dev, src_handler,
				 EV_ABS, ABS_MT_SLOT, dev->slot);
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	}

	return INPUT_PASS_TO_HANDLERS;
}

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static void input_handle_event(struct input_dev *dev,
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			       struct input_handler *src_handler,
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			       unsigned int type, unsigned int code, int value)
{
	int disposition = INPUT_IGNORE_EVENT;
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	switch (type) {
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	case EV_SYN:
		switch (code) {
		case SYN_CONFIG:
			disposition = INPUT_PASS_TO_ALL;
			break;
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		case SYN_REPORT:
			if (!dev->sync) {
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				dev->sync = true;
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				disposition = INPUT_PASS_TO_HANDLERS;
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			}
			break;
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		case SYN_MT_REPORT:
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			dev->sync = false;
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			disposition = INPUT_PASS_TO_HANDLERS;
			break;
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		}
		break;
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	case EV_KEY:
		if (is_event_supported(code, dev->keybit, KEY_MAX) &&
		    !!test_bit(code, dev->key) != value) {
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			if (value != 2) {
				__change_bit(code, dev->key);
				if (value)
					input_start_autorepeat(dev, code);
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				else
					input_stop_autorepeat(dev);
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			}
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			disposition = INPUT_PASS_TO_HANDLERS;
		}
		break;
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	case EV_SW:
		if (is_event_supported(code, dev->swbit, SW_MAX) &&
		    !!test_bit(code, dev->sw) != value) {
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			__change_bit(code, dev->sw);
			disposition = INPUT_PASS_TO_HANDLERS;
		}
		break;
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	case EV_ABS:
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		if (is_event_supported(code, dev->absbit, ABS_MAX))
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			disposition = input_handle_abs_event(dev, src_handler,
							     code, &value);
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		break;
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	case EV_REL:
		if (is_event_supported(code, dev->relbit, REL_MAX) && value)
			disposition = INPUT_PASS_TO_HANDLERS;
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		break;
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	case EV_MSC:
		if (is_event_supported(code, dev->mscbit, MSC_MAX))
			disposition = INPUT_PASS_TO_ALL;
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		break;
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	case EV_LED:
		if (is_event_supported(code, dev->ledbit, LED_MAX) &&
		    !!test_bit(code, dev->led) != value) {
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			__change_bit(code, dev->led);
			disposition = INPUT_PASS_TO_ALL;
		}
		break;

	case EV_SND:
		if (is_event_supported(code, dev->sndbit, SND_MAX)) {
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			if (!!test_bit(code, dev->snd) != !!value)
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				__change_bit(code, dev->snd);
			disposition = INPUT_PASS_TO_ALL;
		}
		break;
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	case EV_REP:
		if (code <= REP_MAX && value >= 0 && dev->rep[code] != value) {
			dev->rep[code] = value;
			disposition = INPUT_PASS_TO_ALL;
		}
		break;
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	case EV_FF:
		if (value >= 0)
			disposition = INPUT_PASS_TO_ALL;
		break;
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	case EV_PWR:
		disposition = INPUT_PASS_TO_ALL;
		break;
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	}
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	if (disposition != INPUT_IGNORE_EVENT && type != EV_SYN)
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		dev->sync = false;
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	if ((disposition & INPUT_PASS_TO_DEVICE) && dev->event)
		dev->event(dev, type, code, value);
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	if (disposition & INPUT_PASS_TO_HANDLERS)
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		input_pass_event(dev, src_handler, type, code, value);
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}
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/**
 * input_event() - report new input event
 * @dev: device that generated the event
 * @type: type of the event
 * @code: event code
 * @value: value of the event
 *
 * This function should be used by drivers implementing various input
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 * devices to report input events. See also input_inject_event().
 *
 * NOTE: input_event() may be safely used right after input device was
 * allocated with input_allocate_device(), even before it is registered
 * with input_register_device(), but the event will not reach any of the
 * input handlers. Such early invocation of input_event() may be used
 * to 'seed' initial state of a switch or initial position of absolute
 * axis, etc.
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 */
void input_event(struct input_dev *dev,
		 unsigned int type, unsigned int code, int value)
{
	unsigned long flags;
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	if (is_event_supported(type, dev->evbit, EV_MAX)) {
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		spin_lock_irqsave(&dev->event_lock, flags);
		add_input_randomness(type, code, value);
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		input_handle_event(dev, NULL, type, code, value);
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		spin_unlock_irqrestore(&dev->event_lock, flags);
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	}
}
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EXPORT_SYMBOL(input_event);
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/**
 * input_inject_event() - send input event from input handler
 * @handle: input handle to send event through
 * @type: type of the event
 * @code: event code
 * @value: value of the event
 *
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 * Similar to input_event() but will ignore event if device is
 * "grabbed" and handle injecting event is not the one that owns
 * the device.
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 */
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void input_inject_event(struct input_handle *handle,
			unsigned int type, unsigned int code, int value)
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{
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	struct input_dev *dev = handle->dev;
	struct input_handle *grab;
	unsigned long flags;
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	if (is_event_supported(type, dev->evbit, EV_MAX)) {
		spin_lock_irqsave(&dev->event_lock, flags);
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		rcu_read_lock();
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		grab = rcu_dereference(dev->grab);
		if (!grab || grab == handle)
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			input_handle_event(dev, handle->handler,
					   type, code, value);
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		rcu_read_unlock();
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		spin_unlock_irqrestore(&dev->event_lock, flags);
	}
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}
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EXPORT_SYMBOL(input_inject_event);
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/**
 * input_alloc_absinfo - allocates array of input_absinfo structs
 * @dev: the input device emitting absolute events
 *
 * If the absinfo struct the caller asked for is already allocated, this
 * functions will not do anything.
 */
void input_alloc_absinfo(struct input_dev *dev)
{
	if (!dev->absinfo)
		dev->absinfo = kcalloc(ABS_CNT, sizeof(struct input_absinfo),
					GFP_KERNEL);

	WARN(!dev->absinfo, "%s(): kcalloc() failed?\n", __func__);
}
EXPORT_SYMBOL(input_alloc_absinfo);

void input_set_abs_params(struct input_dev *dev, unsigned int axis,
			  int min, int max, int fuzz, int flat)
{
	struct input_absinfo *absinfo;

	input_alloc_absinfo(dev);
	if (!dev->absinfo)
		return;

	absinfo = &dev->absinfo[axis];
	absinfo->minimum = min;
	absinfo->maximum = max;
	absinfo->fuzz = fuzz;
	absinfo->flat = flat;

	dev->absbit[BIT_WORD(axis)] |= BIT_MASK(axis);
}
EXPORT_SYMBOL(input_set_abs_params);


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/**
 * input_grab_device - grabs device for exclusive use
 * @handle: input handle that wants to own the device
 *
 * When a device is grabbed by an input handle all events generated by
 * the device are delivered only to this handle. Also events injected
 * by other input handles are ignored while device is grabbed.
 */
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int input_grab_device(struct input_handle *handle)
{
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	struct input_dev *dev = handle->dev;
	int retval;
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	retval = mutex_lock_interruptible(&dev->mutex);
	if (retval)
		return retval;

	if (dev->grab) {
		retval = -EBUSY;
		goto out;
	}

	rcu_assign_pointer(dev->grab, handle);
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	synchronize_rcu();
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 out:
	mutex_unlock(&dev->mutex);
	return retval;
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}
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EXPORT_SYMBOL(input_grab_device);
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static void __input_release_device(struct input_handle *handle)
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{
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	struct input_dev *dev = handle->dev;
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	if (dev->grab == handle) {
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		rcu_assign_pointer(dev->grab, NULL);
		/* Make sure input_pass_event() notices that grab is gone */
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		synchronize_rcu();
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		list_for_each_entry(handle, &dev->h_list, d_node)
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			if (handle->open && handle->handler->start)
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				handle->handler->start(handle);
	}
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}
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/**
 * input_release_device - release previously grabbed device
 * @handle: input handle that owns the device
 *
 * Releases previously grabbed device so that other input handles can
 * start receiving input events. Upon release all handlers attached
 * to the device have their start() method called so they have a change
 * to synchronize device state with the rest of the system.
 */
void input_release_device(struct input_handle *handle)
{
	struct input_dev *dev = handle->dev;

	mutex_lock(&dev->mutex);
	__input_release_device(handle);
	mutex_unlock(&dev->mutex);
}
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EXPORT_SYMBOL(input_release_device);
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/**
 * input_open_device - open input device
 * @handle: handle through which device is being accessed
 *
 * This function should be called by input handlers when they
 * want to start receive events from given input device.
 */
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int input_open_device(struct input_handle *handle)
{
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	struct input_dev *dev = handle->dev;
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	int retval;
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	retval = mutex_lock_interruptible(&dev->mutex);
	if (retval)
		return retval;

	if (dev->going_away) {
		retval = -ENODEV;
		goto out;
	}
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	handle->open++;
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	if (!dev->users++ && dev->open)
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		retval = dev->open(dev);

	if (retval) {
		dev->users--;
		if (!--handle->open) {
			/*
			 * Make sure we are not delivering any more events
			 * through this handle
			 */
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			synchronize_rcu();
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		}
	}
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 out:
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	mutex_unlock(&dev->mutex);
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	return retval;
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}
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EXPORT_SYMBOL(input_open_device);
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int input_flush_device(struct input_handle *handle, struct file *file)
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{
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	struct input_dev *dev = handle->dev;
	int retval;
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	retval = mutex_lock_interruptible(&dev->mutex);
	if (retval)
		return retval;

	if (dev->flush)
		retval = dev->flush(dev, file);

	mutex_unlock(&dev->mutex);
	return retval;
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}
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EXPORT_SYMBOL(input_flush_device);
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/**
 * input_close_device - close input device
 * @handle: handle through which device is being accessed
 *
 * This function should be called by input handlers when they
 * want to stop receive events from given input device.
 */
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void input_close_device(struct input_handle *handle)
{
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	struct input_dev *dev = handle->dev;

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	mutex_lock(&dev->mutex);
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	__input_release_device(handle);

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	if (!--dev->users && dev->close)
		dev->close(dev);
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	if (!--handle->open) {
		/*
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		 * synchronize_rcu() makes sure that input_pass_event()
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		 * completed and that no more input events are delivered
		 * through this handle
		 */
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		synchronize_rcu();
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	}
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	mutex_unlock(&dev->mutex);
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}
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EXPORT_SYMBOL(input_close_device);
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/*
 * Simulate keyup events for all keys that are marked as pressed.
 * The function must be called with dev->event_lock held.
 */
static void input_dev_release_keys(struct input_dev *dev)
{
	int code;

	if (is_event_supported(EV_KEY, dev->evbit, EV_MAX)) {
		for (code = 0; code <= KEY_MAX; code++) {
			if (is_event_supported(code, dev->keybit, KEY_MAX) &&
			    __test_and_clear_bit(code, dev->key)) {
613
				input_pass_event(dev, NULL, EV_KEY, code, 0);
614 615
			}
		}
616
		input_pass_event(dev, NULL, EV_SYN, SYN_REPORT, 1);
617 618 619
	}
}

620 621 622 623 624 625 626 627 628 629 630 631 632
/*
 * Prepare device for unregistering
 */
static void input_disconnect_device(struct input_dev *dev)
{
	struct input_handle *handle;

	/*
	 * Mark device as going away. Note that we take dev->mutex here
	 * not to protect access to dev->going_away but rather to ensure
	 * that there are no threads in the middle of input_open_device()
	 */
	mutex_lock(&dev->mutex);
633
	dev->going_away = true;
634 635 636 637 638 639 640 641 642 643
	mutex_unlock(&dev->mutex);

	spin_lock_irq(&dev->event_lock);

	/*
	 * Simulate keyup events for all pressed keys so that handlers
	 * are not left with "stuck" keys. The driver may continue
	 * generate events even after we done here but they will not
	 * reach any handlers.
	 */
644
	input_dev_release_keys(dev);
645 646 647 648 649 650 651

	list_for_each_entry(handle, &dev->h_list, d_node)
		handle->open = 0;

	spin_unlock_irq(&dev->event_lock);
}

652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692
/**
 * input_scancode_to_scalar() - converts scancode in &struct input_keymap_entry
 * @ke: keymap entry containing scancode to be converted.
 * @scancode: pointer to the location where converted scancode should
 *	be stored.
 *
 * This function is used to convert scancode stored in &struct keymap_entry
 * into scalar form understood by legacy keymap handling methods. These
 * methods expect scancodes to be represented as 'unsigned int'.
 */
int input_scancode_to_scalar(const struct input_keymap_entry *ke,
			     unsigned int *scancode)
{
	switch (ke->len) {
	case 1:
		*scancode = *((u8 *)ke->scancode);
		break;

	case 2:
		*scancode = *((u16 *)ke->scancode);
		break;

	case 4:
		*scancode = *((u32 *)ke->scancode);
		break;

	default:
		return -EINVAL;
	}

	return 0;
}
EXPORT_SYMBOL(input_scancode_to_scalar);

/*
 * Those routines handle the default case where no [gs]etkeycode() is
 * defined. In this case, an array indexed by the scancode is used.
 */

static unsigned int input_fetch_keycode(struct input_dev *dev,
					unsigned int index)
693 694
{
	switch (dev->keycodesize) {
695 696
	case 1:
		return ((u8 *)dev->keycode)[index];
697

698 699
	case 2:
		return ((u16 *)dev->keycode)[index];
700

701 702
	default:
		return ((u32 *)dev->keycode)[index];
703 704 705 706
	}
}

static int input_default_getkeycode(struct input_dev *dev,
707
				    struct input_keymap_entry *ke)
708
{
709 710 711
	unsigned int index;
	int error;

712 713 714
	if (!dev->keycodesize)
		return -EINVAL;

715 716 717 718 719 720 721 722 723
	if (ke->flags & INPUT_KEYMAP_BY_INDEX)
		index = ke->index;
	else {
		error = input_scancode_to_scalar(ke, &index);
		if (error)
			return error;
	}

	if (index >= dev->keycodemax)
724 725
		return -EINVAL;

726 727 728 729
	ke->keycode = input_fetch_keycode(dev, index);
	ke->index = index;
	ke->len = sizeof(index);
	memcpy(ke->scancode, &index, sizeof(index));
730 731 732 733 734

	return 0;
}

static int input_default_setkeycode(struct input_dev *dev,
735 736
				    const struct input_keymap_entry *ke,
				    unsigned int *old_keycode)
737
{
738 739
	unsigned int index;
	int error;
740 741
	int i;

742
	if (!dev->keycodesize)
743 744
		return -EINVAL;

745 746 747 748 749 750 751 752 753
	if (ke->flags & INPUT_KEYMAP_BY_INDEX) {
		index = ke->index;
	} else {
		error = input_scancode_to_scalar(ke, &index);
		if (error)
			return error;
	}

	if (index >= dev->keycodemax)
754 755
		return -EINVAL;

756 757
	if (dev->keycodesize < sizeof(dev->keycode) &&
			(ke->keycode >> (dev->keycodesize * 8)))
758 759 760 761 762
		return -EINVAL;

	switch (dev->keycodesize) {
		case 1: {
			u8 *k = (u8 *)dev->keycode;
763 764
			*old_keycode = k[index];
			k[index] = ke->keycode;
765 766 767 768
			break;
		}
		case 2: {
			u16 *k = (u16 *)dev->keycode;
769 770
			*old_keycode = k[index];
			k[index] = ke->keycode;
771 772 773 774
			break;
		}
		default: {
			u32 *k = (u32 *)dev->keycode;
775 776
			*old_keycode = k[index];
			k[index] = ke->keycode;
777 778 779 780
			break;
		}
	}

781 782
	__clear_bit(*old_keycode, dev->keybit);
	__set_bit(ke->keycode, dev->keybit);
783 784

	for (i = 0; i < dev->keycodemax; i++) {
785 786
		if (input_fetch_keycode(dev, i) == *old_keycode) {
			__set_bit(*old_keycode, dev->keybit);
787 788 789 790 791 792 793
			break; /* Setting the bit twice is useless, so break */
		}
	}

	return 0;
}

794 795 796
/**
 * input_get_keycode - retrieve keycode currently mapped to a given scancode
 * @dev: input device which keymap is being queried
797
 * @ke: keymap entry
798 799
 *
 * This function should be called by anyone interested in retrieving current
800
 * keymap. Presently evdev handlers use it.
801
 */
802
int input_get_keycode(struct input_dev *dev, struct input_keymap_entry *ke)
803
{
804 805 806 807 808
	unsigned long flags;
	int retval;

	spin_lock_irqsave(&dev->event_lock, flags);

809 810 811 812 813 814 815 816 817 818 819 820 821 822 823
	if (dev->getkeycode) {
		/*
		 * Support for legacy drivers, that don't implement the new
		 * ioctls
		 */
		u32 scancode = ke->index;

		memcpy(ke->scancode, &scancode, sizeof(scancode));
		ke->len = sizeof(scancode);
		retval = dev->getkeycode(dev, scancode, &ke->keycode);
	} else {
		retval = dev->getkeycode_new(dev, ke);
	}

	spin_unlock_irqrestore(&dev->event_lock, flags);
824
	return retval;
825 826 827 828
}
EXPORT_SYMBOL(input_get_keycode);

/**
829
 * input_set_keycode - attribute a keycode to a given scancode
830
 * @dev: input device which keymap is being updated
831
 * @ke: new keymap entry
832 833 834 835
 *
 * This function should be called by anyone needing to update current
 * keymap. Presently keyboard and evdev handlers use it.
 */
836
int input_set_keycode(struct input_dev *dev,
837
		      const struct input_keymap_entry *ke)
838 839
{
	unsigned long flags;
840
	unsigned int old_keycode;
841 842
	int retval;

843
	if (ke->keycode > KEY_MAX)
844 845 846 847
		return -EINVAL;

	spin_lock_irqsave(&dev->event_lock, flags);

848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875
	if (dev->setkeycode) {
		/*
		 * Support for legacy drivers, that don't implement the new
		 * ioctls
		 */
		unsigned int scancode;

		retval = input_scancode_to_scalar(ke, &scancode);
		if (retval)
			goto out;

		/*
		 * We need to know the old scancode, in order to generate a
		 * keyup effect, if the set operation happens successfully
		 */
		if (!dev->getkeycode) {
			retval = -EINVAL;
			goto out;
		}

		retval = dev->getkeycode(dev, scancode, &old_keycode);
		if (retval)
			goto out;

		retval = dev->setkeycode(dev, scancode, ke->keycode);
	} else {
		retval = dev->setkeycode_new(dev, ke, &old_keycode);
	}
876 877 878 879

	if (retval)
		goto out;

880 881 882
	/* Make sure KEY_RESERVED did not get enabled. */
	__clear_bit(KEY_RESERVED, dev->keybit);

883 884 885 886 887 888 889 890
	/*
	 * Simulate keyup event if keycode is not present
	 * in the keymap anymore
	 */
	if (test_bit(EV_KEY, dev->evbit) &&
	    !is_event_supported(old_keycode, dev->keybit, KEY_MAX) &&
	    __test_and_clear_bit(old_keycode, dev->key)) {

891
		input_pass_event(dev, NULL, EV_KEY, old_keycode, 0);
892
		if (dev->sync)
893
			input_pass_event(dev, NULL, EV_SYN, SYN_REPORT, 1);
894 895 896 897 898 899 900 901
	}

 out:
	spin_unlock_irqrestore(&dev->event_lock, flags);

	return retval;
}
EXPORT_SYMBOL(input_set_keycode);
902

L
Linus Torvalds 已提交
903
#define MATCH_BIT(bit, max) \
904
		for (i = 0; i < BITS_TO_LONGS(max); i++) \
L
Linus Torvalds 已提交
905 906
			if ((id->bit[i] & dev->bit[i]) != id->bit[i]) \
				break; \
907
		if (i != BITS_TO_LONGS(max)) \
L
Linus Torvalds 已提交
908 909
			continue;

910
static const struct input_device_id *input_match_device(struct input_handler *handler,
D
Dmitry Torokhov 已提交
911
							struct input_dev *dev)
L
Linus Torvalds 已提交
912
{
913
	const struct input_device_id *id;
L
Linus Torvalds 已提交
914 915
	int i;

916
	for (id = handler->id_table; id->flags || id->driver_info; id++) {
L
Linus Torvalds 已提交
917 918

		if (id->flags & INPUT_DEVICE_ID_MATCH_BUS)
919
			if (id->bustype != dev->id.bustype)
L
Linus Torvalds 已提交
920 921 922
				continue;

		if (id->flags & INPUT_DEVICE_ID_MATCH_VENDOR)
923
			if (id->vendor != dev->id.vendor)
L
Linus Torvalds 已提交
924 925 926
				continue;

		if (id->flags & INPUT_DEVICE_ID_MATCH_PRODUCT)
927
			if (id->product != dev->id.product)
L
Linus Torvalds 已提交
928 929 930
				continue;

		if (id->flags & INPUT_DEVICE_ID_MATCH_VERSION)
931
			if (id->version != dev->id.version)
L
Linus Torvalds 已提交
932 933 934 935 936 937 938 939 940 941
				continue;

		MATCH_BIT(evbit,  EV_MAX);
		MATCH_BIT(keybit, KEY_MAX);
		MATCH_BIT(relbit, REL_MAX);
		MATCH_BIT(absbit, ABS_MAX);
		MATCH_BIT(mscbit, MSC_MAX);
		MATCH_BIT(ledbit, LED_MAX);
		MATCH_BIT(sndbit, SND_MAX);
		MATCH_BIT(ffbit,  FF_MAX);
942
		MATCH_BIT(swbit,  SW_MAX);
L
Linus Torvalds 已提交
943

944 945
		if (!handler->match || handler->match(handler, dev))
			return id;
L
Linus Torvalds 已提交
946 947 948 949 950
	}

	return NULL;
}

951 952 953 954 955
static int input_attach_handler(struct input_dev *dev, struct input_handler *handler)
{
	const struct input_device_id *id;
	int error;

956
	id = input_match_device(handler, dev);
957 958 959 960 961 962 963 964
	if (!id)
		return -ENODEV;

	error = handler->connect(handler, dev, id);
	if (error && error != -ENODEV)
		printk(KERN_ERR
			"input: failed to attach handler %s to device %s, "
			"error: %d\n",
965
			handler->name, kobject_name(&dev->dev.kobj), error);
966 967 968 969

	return error;
}

970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003
#ifdef CONFIG_COMPAT

static int input_bits_to_string(char *buf, int buf_size,
				unsigned long bits, bool skip_empty)
{
	int len = 0;

	if (INPUT_COMPAT_TEST) {
		u32 dword = bits >> 32;
		if (dword || !skip_empty)
			len += snprintf(buf, buf_size, "%x ", dword);

		dword = bits & 0xffffffffUL;
		if (dword || !skip_empty || len)
			len += snprintf(buf + len, max(buf_size - len, 0),
					"%x", dword);
	} else {
		if (bits || !skip_empty)
			len += snprintf(buf, buf_size, "%lx", bits);
	}

	return len;
}

#else /* !CONFIG_COMPAT */

static int input_bits_to_string(char *buf, int buf_size,
				unsigned long bits, bool skip_empty)
{
	return bits || !skip_empty ?
		snprintf(buf, buf_size, "%lx", bits) : 0;
}

#endif
1004

1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016
#ifdef CONFIG_PROC_FS

static struct proc_dir_entry *proc_bus_input_dir;
static DECLARE_WAIT_QUEUE_HEAD(input_devices_poll_wait);
static int input_devices_state;

static inline void input_wakeup_procfs_readers(void)
{
	input_devices_state++;
	wake_up(&input_devices_poll_wait);
}

1017
static unsigned int input_proc_devices_poll(struct file *file, poll_table *wait)
1018 1019
{
	poll_wait(file, &input_devices_poll_wait, wait);
1020 1021
	if (file->f_version != input_devices_state) {
		file->f_version = input_devices_state;
1022
		return POLLIN | POLLRDNORM;
1023
	}
1024

1025 1026 1027
	return 0;
}

1028 1029 1030 1031 1032 1033 1034 1035
union input_seq_state {
	struct {
		unsigned short pos;
		bool mutex_acquired;
	};
	void *p;
};

1036 1037
static void *input_devices_seq_start(struct seq_file *seq, loff_t *pos)
{
1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050
	union input_seq_state *state = (union input_seq_state *)&seq->private;
	int error;

	/* We need to fit into seq->private pointer */
	BUILD_BUG_ON(sizeof(union input_seq_state) != sizeof(seq->private));

	error = mutex_lock_interruptible(&input_mutex);
	if (error) {
		state->mutex_acquired = false;
		return ERR_PTR(error);
	}

	state->mutex_acquired = true;
1051

1052
	return seq_list_start(&input_dev_list, *pos);
1053
}
1054

1055 1056
static void *input_devices_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
1057
	return seq_list_next(v, &input_dev_list, pos);
1058
}
1059

1060
static void input_seq_stop(struct seq_file *seq, void *v)
1061
{
1062 1063 1064 1065
	union input_seq_state *state = (union input_seq_state *)&seq->private;

	if (state->mutex_acquired)
		mutex_unlock(&input_mutex);
1066
}
1067

1068 1069 1070 1071
static void input_seq_print_bitmap(struct seq_file *seq, const char *name,
				   unsigned long *bitmap, int max)
{
	int i;
1072 1073
	bool skip_empty = true;
	char buf[18];
1074

1075
	seq_printf(seq, "B: %s=", name);
1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090

	for (i = BITS_TO_LONGS(max) - 1; i >= 0; i--) {
		if (input_bits_to_string(buf, sizeof(buf),
					 bitmap[i], skip_empty)) {
			skip_empty = false;
			seq_printf(seq, "%s%s", buf, i > 0 ? " " : "");
		}
	}

	/*
	 * If no output was produced print a single 0.
	 */
	if (skip_empty)
		seq_puts(seq, "0");

1091 1092
	seq_putc(seq, '\n');
}
1093

1094 1095 1096
static int input_devices_seq_show(struct seq_file *seq, void *v)
{
	struct input_dev *dev = container_of(v, struct input_dev, node);
1097
	const char *path = kobject_get_path(&dev->dev.kobj, GFP_KERNEL);
1098 1099 1100 1101 1102 1103 1104 1105
	struct input_handle *handle;

	seq_printf(seq, "I: Bus=%04x Vendor=%04x Product=%04x Version=%04x\n",
		   dev->id.bustype, dev->id.vendor, dev->id.product, dev->id.version);

	seq_printf(seq, "N: Name=\"%s\"\n", dev->name ? dev->name : "");
	seq_printf(seq, "P: Phys=%s\n", dev->phys ? dev->phys : "");
	seq_printf(seq, "S: Sysfs=%s\n", path ? path : "");
1106
	seq_printf(seq, "U: Uniq=%s\n", dev->uniq ? dev->uniq : "");
1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134
	seq_printf(seq, "H: Handlers=");

	list_for_each_entry(handle, &dev->h_list, d_node)
		seq_printf(seq, "%s ", handle->name);
	seq_putc(seq, '\n');

	input_seq_print_bitmap(seq, "EV", dev->evbit, EV_MAX);
	if (test_bit(EV_KEY, dev->evbit))
		input_seq_print_bitmap(seq, "KEY", dev->keybit, KEY_MAX);
	if (test_bit(EV_REL, dev->evbit))
		input_seq_print_bitmap(seq, "REL", dev->relbit, REL_MAX);
	if (test_bit(EV_ABS, dev->evbit))
		input_seq_print_bitmap(seq, "ABS", dev->absbit, ABS_MAX);
	if (test_bit(EV_MSC, dev->evbit))
		input_seq_print_bitmap(seq, "MSC", dev->mscbit, MSC_MAX);
	if (test_bit(EV_LED, dev->evbit))
		input_seq_print_bitmap(seq, "LED", dev->ledbit, LED_MAX);
	if (test_bit(EV_SND, dev->evbit))
		input_seq_print_bitmap(seq, "SND", dev->sndbit, SND_MAX);
	if (test_bit(EV_FF, dev->evbit))
		input_seq_print_bitmap(seq, "FF", dev->ffbit, FF_MAX);
	if (test_bit(EV_SW, dev->evbit))
		input_seq_print_bitmap(seq, "SW", dev->swbit, SW_MAX);

	seq_putc(seq, '\n');

	kfree(path);
	return 0;
1135 1136
}

1137
static const struct seq_operations input_devices_seq_ops = {
1138 1139
	.start	= input_devices_seq_start,
	.next	= input_devices_seq_next,
1140
	.stop	= input_seq_stop,
1141 1142 1143 1144
	.show	= input_devices_seq_show,
};

static int input_proc_devices_open(struct inode *inode, struct file *file)
1145
{
1146 1147 1148
	return seq_open(file, &input_devices_seq_ops);
}

1149
static const struct file_operations input_devices_fileops = {
1150 1151 1152 1153 1154 1155 1156 1157 1158 1159
	.owner		= THIS_MODULE,
	.open		= input_proc_devices_open,
	.poll		= input_proc_devices_poll,
	.read		= seq_read,
	.llseek		= seq_lseek,
	.release	= seq_release,
};

static void *input_handlers_seq_start(struct seq_file *seq, loff_t *pos)
{
1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173
	union input_seq_state *state = (union input_seq_state *)&seq->private;
	int error;

	/* We need to fit into seq->private pointer */
	BUILD_BUG_ON(sizeof(union input_seq_state) != sizeof(seq->private));

	error = mutex_lock_interruptible(&input_mutex);
	if (error) {
		state->mutex_acquired = false;
		return ERR_PTR(error);
	}

	state->mutex_acquired = true;
	state->pos = *pos;
1174

1175
	return seq_list_start(&input_handler_list, *pos);
1176
}
1177

1178 1179
static void *input_handlers_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
1180
	union input_seq_state *state = (union input_seq_state *)&seq->private;
1181

1182 1183
	state->pos = *pos + 1;
	return seq_list_next(v, &input_handler_list, pos);
1184 1185 1186 1187 1188
}

static int input_handlers_seq_show(struct seq_file *seq, void *v)
{
	struct input_handler *handler = container_of(v, struct input_handler, node);
1189
	union input_seq_state *state = (union input_seq_state *)&seq->private;
1190

1191
	seq_printf(seq, "N: Number=%u Name=%s", state->pos, handler->name);
D
Dmitry Torokhov 已提交
1192 1193
	if (handler->filter)
		seq_puts(seq, " (filter)");
1194 1195 1196 1197 1198 1199
	if (handler->fops)
		seq_printf(seq, " Minor=%d", handler->minor);
	seq_putc(seq, '\n');

	return 0;
}
1200

1201
static const struct seq_operations input_handlers_seq_ops = {
1202 1203
	.start	= input_handlers_seq_start,
	.next	= input_handlers_seq_next,
1204
	.stop	= input_seq_stop,
1205 1206 1207 1208 1209 1210 1211 1212
	.show	= input_handlers_seq_show,
};

static int input_proc_handlers_open(struct inode *inode, struct file *file)
{
	return seq_open(file, &input_handlers_seq_ops);
}

1213
static const struct file_operations input_handlers_fileops = {
1214 1215 1216 1217 1218 1219
	.owner		= THIS_MODULE,
	.open		= input_proc_handlers_open,
	.read		= seq_read,
	.llseek		= seq_lseek,
	.release	= seq_release,
};
1220 1221 1222 1223 1224

static int __init input_proc_init(void)
{
	struct proc_dir_entry *entry;

A
Alexey Dobriyan 已提交
1225
	proc_bus_input_dir = proc_mkdir("bus/input", NULL);
1226 1227 1228
	if (!proc_bus_input_dir)
		return -ENOMEM;

1229 1230
	entry = proc_create("devices", 0, proc_bus_input_dir,
			    &input_devices_fileops);
1231 1232 1233
	if (!entry)
		goto fail1;

1234 1235
	entry = proc_create("handlers", 0, proc_bus_input_dir,
			    &input_handlers_fileops);
1236 1237 1238 1239 1240 1241
	if (!entry)
		goto fail2;

	return 0;

 fail2:	remove_proc_entry("devices", proc_bus_input_dir);
A
Alexey Dobriyan 已提交
1242
 fail1: remove_proc_entry("bus/input", NULL);
1243 1244 1245
	return -ENOMEM;
}

1246
static void input_proc_exit(void)
1247 1248 1249
{
	remove_proc_entry("devices", proc_bus_input_dir);
	remove_proc_entry("handlers", proc_bus_input_dir);
A
Alexey Dobriyan 已提交
1250
	remove_proc_entry("bus/input", NULL);
1251 1252 1253 1254 1255 1256 1257 1258
}

#else /* !CONFIG_PROC_FS */
static inline void input_wakeup_procfs_readers(void) { }
static inline int input_proc_init(void) { return 0; }
static inline void input_proc_exit(void) { }
#endif

1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269
#define INPUT_DEV_STRING_ATTR_SHOW(name)				\
static ssize_t input_dev_show_##name(struct device *dev,		\
				     struct device_attribute *attr,	\
				     char *buf)				\
{									\
	struct input_dev *input_dev = to_input_dev(dev);		\
									\
	return scnprintf(buf, PAGE_SIZE, "%s\n",			\
			 input_dev->name ? input_dev->name : "");	\
}									\
static DEVICE_ATTR(name, S_IRUGO, input_dev_show_##name, NULL)
1270 1271 1272 1273 1274

INPUT_DEV_STRING_ATTR_SHOW(name);
INPUT_DEV_STRING_ATTR_SHOW(phys);
INPUT_DEV_STRING_ATTR_SHOW(uniq);

1275 1276 1277
static int input_print_modalias_bits(char *buf, int size,
				     char name, unsigned long *bm,
				     unsigned int min_bit, unsigned int max_bit)
1278
{
1279
	int len = 0, i;
1280

1281 1282
	len += snprintf(buf, max(size, 0), "%c", name);
	for (i = min_bit; i < max_bit; i++)
1283
		if (bm[BIT_WORD(i)] & BIT_MASK(i))
1284
			len += snprintf(buf + len, max(size - len, 0), "%X,", i);
1285 1286 1287
	return len;
}

1288 1289
static int input_print_modalias(char *buf, int size, struct input_dev *id,
				int add_cr)
1290
{
1291
	int len;
1292

1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315
	len = snprintf(buf, max(size, 0),
		       "input:b%04Xv%04Xp%04Xe%04X-",
		       id->id.bustype, id->id.vendor,
		       id->id.product, id->id.version);

	len += input_print_modalias_bits(buf + len, size - len,
				'e', id->evbit, 0, EV_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'k', id->keybit, KEY_MIN_INTERESTING, KEY_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'r', id->relbit, 0, REL_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'a', id->absbit, 0, ABS_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'm', id->mscbit, 0, MSC_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'l', id->ledbit, 0, LED_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				's', id->sndbit, 0, SND_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'f', id->ffbit, 0, FF_MAX);
	len += input_print_modalias_bits(buf + len, size - len,
				'w', id->swbit, 0, SW_MAX);
1316 1317

	if (add_cr)
1318
		len += snprintf(buf + len, max(size - len, 0), "\n");
1319

1320 1321 1322
	return len;
}

1323 1324 1325
static ssize_t input_dev_show_modalias(struct device *dev,
				       struct device_attribute *attr,
				       char *buf)
1326 1327 1328 1329
{
	struct input_dev *id = to_input_dev(dev);
	ssize_t len;

1330 1331
	len = input_print_modalias(buf, PAGE_SIZE, id, 1);

1332
	return min_t(int, len, PAGE_SIZE);
1333
}
1334
static DEVICE_ATTR(modalias, S_IRUGO, input_dev_show_modalias, NULL);
1335

1336
static struct attribute *input_dev_attrs[] = {
1337 1338 1339 1340
	&dev_attr_name.attr,
	&dev_attr_phys.attr,
	&dev_attr_uniq.attr,
	&dev_attr_modalias.attr,
1341 1342 1343
	NULL
};

1344
static struct attribute_group input_dev_attr_group = {
1345
	.attrs	= input_dev_attrs,
1346 1347
};

1348 1349 1350 1351 1352 1353 1354 1355 1356
#define INPUT_DEV_ID_ATTR(name)						\
static ssize_t input_dev_show_id_##name(struct device *dev,		\
					struct device_attribute *attr,	\
					char *buf)			\
{									\
	struct input_dev *input_dev = to_input_dev(dev);		\
	return scnprintf(buf, PAGE_SIZE, "%04x\n", input_dev->id.name);	\
}									\
static DEVICE_ATTR(name, S_IRUGO, input_dev_show_id_##name, NULL)
1357 1358 1359 1360 1361 1362 1363

INPUT_DEV_ID_ATTR(bustype);
INPUT_DEV_ID_ATTR(vendor);
INPUT_DEV_ID_ATTR(product);
INPUT_DEV_ID_ATTR(version);

static struct attribute *input_dev_id_attrs[] = {
1364 1365 1366 1367
	&dev_attr_bustype.attr,
	&dev_attr_vendor.attr,
	&dev_attr_product.attr,
	&dev_attr_version.attr,
1368 1369 1370 1371 1372 1373 1374 1375
	NULL
};

static struct attribute_group input_dev_id_attr_group = {
	.name	= "id",
	.attrs	= input_dev_id_attrs,
};

1376 1377 1378 1379 1380
static int input_print_bitmap(char *buf, int buf_size, unsigned long *bitmap,
			      int max, int add_cr)
{
	int i;
	int len = 0;
1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391
	bool skip_empty = true;

	for (i = BITS_TO_LONGS(max) - 1; i >= 0; i--) {
		len += input_bits_to_string(buf + len, max(buf_size - len, 0),
					    bitmap[i], skip_empty);
		if (len) {
			skip_empty = false;
			if (i > 0)
				len += snprintf(buf + len, max(buf_size - len, 0), " ");
		}
	}
1392

1393 1394 1395 1396 1397
	/*
	 * If no output was produced print a single 0.
	 */
	if (len == 0)
		len = snprintf(buf, buf_size, "%d", 0);
1398 1399 1400 1401 1402 1403 1404

	if (add_cr)
		len += snprintf(buf + len, max(buf_size - len, 0), "\n");

	return len;
}

1405 1406 1407 1408 1409 1410 1411
#define INPUT_DEV_CAP_ATTR(ev, bm)					\
static ssize_t input_dev_show_cap_##bm(struct device *dev,		\
				       struct device_attribute *attr,	\
				       char *buf)			\
{									\
	struct input_dev *input_dev = to_input_dev(dev);		\
	int len = input_print_bitmap(buf, PAGE_SIZE,			\
1412 1413
				     input_dev->bm##bit, ev##_MAX,	\
				     true);				\
1414 1415 1416
	return min_t(int, len, PAGE_SIZE);				\
}									\
static DEVICE_ATTR(bm, S_IRUGO, input_dev_show_cap_##bm, NULL)
1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428

INPUT_DEV_CAP_ATTR(EV, ev);
INPUT_DEV_CAP_ATTR(KEY, key);
INPUT_DEV_CAP_ATTR(REL, rel);
INPUT_DEV_CAP_ATTR(ABS, abs);
INPUT_DEV_CAP_ATTR(MSC, msc);
INPUT_DEV_CAP_ATTR(LED, led);
INPUT_DEV_CAP_ATTR(SND, snd);
INPUT_DEV_CAP_ATTR(FF, ff);
INPUT_DEV_CAP_ATTR(SW, sw);

static struct attribute *input_dev_caps_attrs[] = {
1429 1430 1431 1432 1433 1434 1435 1436 1437
	&dev_attr_ev.attr,
	&dev_attr_key.attr,
	&dev_attr_rel.attr,
	&dev_attr_abs.attr,
	&dev_attr_msc.attr,
	&dev_attr_led.attr,
	&dev_attr_snd.attr,
	&dev_attr_ff.attr,
	&dev_attr_sw.attr,
1438 1439 1440 1441 1442 1443 1444 1445
	NULL
};

static struct attribute_group input_dev_caps_attr_group = {
	.name	= "capabilities",
	.attrs	= input_dev_caps_attrs,
};

1446
static const struct attribute_group *input_dev_attr_groups[] = {
1447 1448 1449 1450 1451 1452
	&input_dev_attr_group,
	&input_dev_id_attr_group,
	&input_dev_caps_attr_group,
	NULL
};

1453
static void input_dev_release(struct device *device)
1454
{
1455
	struct input_dev *dev = to_input_dev(device);
1456

1457
	input_ff_destroy(dev);
H
Henrik Rydberg 已提交
1458
	input_mt_destroy_slots(dev);
1459
	kfree(dev->absinfo);
1460
	kfree(dev);
1461

1462 1463 1464
	module_put(THIS_MODULE);
}

1465
/*
1466
 * Input uevent interface - loading event handlers based on
1467 1468
 * device bitfields.
 */
1469
static int input_add_uevent_bm_var(struct kobj_uevent_env *env,
1470
				   const char *name, unsigned long *bitmap, int max)
1471
{
1472
	int len;
1473

1474
	if (add_uevent_var(env, "%s=", name))
1475 1476
		return -ENOMEM;

1477 1478
	len = input_print_bitmap(&env->buf[env->buflen - 1],
				 sizeof(env->buf) - env->buflen,
1479
				 bitmap, max, false);
1480
	if (len >= (sizeof(env->buf) - env->buflen))
1481 1482
		return -ENOMEM;

1483
	env->buflen += len;
1484 1485 1486
	return 0;
}

1487
static int input_add_uevent_modalias_var(struct kobj_uevent_env *env,
1488 1489
					 struct input_dev *dev)
{
1490
	int len;
1491

1492
	if (add_uevent_var(env, "MODALIAS="))
1493 1494
		return -ENOMEM;

1495 1496 1497 1498
	len = input_print_modalias(&env->buf[env->buflen - 1],
				   sizeof(env->buf) - env->buflen,
				   dev, 0);
	if (len >= (sizeof(env->buf) - env->buflen))
1499 1500
		return -ENOMEM;

1501
	env->buflen += len;
1502 1503 1504
	return 0;
}

1505 1506
#define INPUT_ADD_HOTPLUG_VAR(fmt, val...)				\
	do {								\
1507
		int err = add_uevent_var(env, fmt, val);		\
1508 1509 1510 1511 1512 1513
		if (err)						\
			return err;					\
	} while (0)

#define INPUT_ADD_HOTPLUG_BM_VAR(name, bm, max)				\
	do {								\
1514
		int err = input_add_uevent_bm_var(env, name, bm, max);	\
1515 1516 1517 1518
		if (err)						\
			return err;					\
	} while (0)

1519 1520
#define INPUT_ADD_HOTPLUG_MODALIAS_VAR(dev)				\
	do {								\
1521
		int err = input_add_uevent_modalias_var(env, dev);	\
1522 1523 1524 1525
		if (err)						\
			return err;					\
	} while (0)

1526
static int input_dev_uevent(struct device *device, struct kobj_uevent_env *env)
1527
{
1528
	struct input_dev *dev = to_input_dev(device);
1529 1530 1531 1532 1533 1534 1535 1536

	INPUT_ADD_HOTPLUG_VAR("PRODUCT=%x/%x/%x/%x",
				dev->id.bustype, dev->id.vendor,
				dev->id.product, dev->id.version);
	if (dev->name)
		INPUT_ADD_HOTPLUG_VAR("NAME=\"%s\"", dev->name);
	if (dev->phys)
		INPUT_ADD_HOTPLUG_VAR("PHYS=\"%s\"", dev->phys);
1537
	if (dev->uniq)
1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557
		INPUT_ADD_HOTPLUG_VAR("UNIQ=\"%s\"", dev->uniq);

	INPUT_ADD_HOTPLUG_BM_VAR("EV=", dev->evbit, EV_MAX);
	if (test_bit(EV_KEY, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("KEY=", dev->keybit, KEY_MAX);
	if (test_bit(EV_REL, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("REL=", dev->relbit, REL_MAX);
	if (test_bit(EV_ABS, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("ABS=", dev->absbit, ABS_MAX);
	if (test_bit(EV_MSC, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("MSC=", dev->mscbit, MSC_MAX);
	if (test_bit(EV_LED, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("LED=", dev->ledbit, LED_MAX);
	if (test_bit(EV_SND, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("SND=", dev->sndbit, SND_MAX);
	if (test_bit(EV_FF, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("FF=", dev->ffbit, FF_MAX);
	if (test_bit(EV_SW, dev->evbit))
		INPUT_ADD_HOTPLUG_BM_VAR("SW=", dev->swbit, SW_MAX);

1558
	INPUT_ADD_HOTPLUG_MODALIAS_VAR(dev);
1559 1560 1561 1562

	return 0;
}

D
Dmitry Torokhov 已提交
1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580
#define INPUT_DO_TOGGLE(dev, type, bits, on)				\
	do {								\
		int i;							\
		bool active;						\
									\
		if (!test_bit(EV_##type, dev->evbit))			\
			break;						\
									\
		for (i = 0; i < type##_MAX; i++) {			\
			if (!test_bit(i, dev->bits##bit))		\
				continue;				\
									\
			active = test_bit(i, dev->bits);		\
			if (!active && !on)				\
				continue;				\
									\
			dev->event(dev, EV_##type, i, on ? active : 0);	\
		}							\
1581 1582
	} while (0)

1583
static void input_dev_toggle(struct input_dev *dev, bool activate)
1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596
{
	if (!dev->event)
		return;

	INPUT_DO_TOGGLE(dev, LED, led, activate);
	INPUT_DO_TOGGLE(dev, SND, snd, activate);

	if (activate && test_bit(EV_REP, dev->evbit)) {
		dev->event(dev, EV_REP, REP_PERIOD, dev->rep[REP_PERIOD]);
		dev->event(dev, EV_REP, REP_DELAY, dev->rep[REP_DELAY]);
	}
}

1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625
/**
 * input_reset_device() - reset/restore the state of input device
 * @dev: input device whose state needs to be reset
 *
 * This function tries to reset the state of an opened input device and
 * bring internal state and state if the hardware in sync with each other.
 * We mark all keys as released, restore LED state, repeat rate, etc.
 */
void input_reset_device(struct input_dev *dev)
{
	mutex_lock(&dev->mutex);

	if (dev->users) {
		input_dev_toggle(dev, true);

		/*
		 * Keys that have been pressed at suspend time are unlikely
		 * to be still pressed when we resume.
		 */
		spin_lock_irq(&dev->event_lock);
		input_dev_release_keys(dev);
		spin_unlock_irq(&dev->event_lock);
	}

	mutex_unlock(&dev->mutex);
}
EXPORT_SYMBOL(input_reset_device);

#ifdef CONFIG_PM
1626 1627 1628 1629 1630
static int input_dev_suspend(struct device *dev)
{
	struct input_dev *input_dev = to_input_dev(dev);

	mutex_lock(&input_dev->mutex);
1631 1632 1633 1634

	if (input_dev->users)
		input_dev_toggle(input_dev, false);

1635 1636 1637 1638 1639 1640 1641 1642 1643
	mutex_unlock(&input_dev->mutex);

	return 0;
}

static int input_dev_resume(struct device *dev)
{
	struct input_dev *input_dev = to_input_dev(dev);

1644
	input_reset_device(input_dev);
1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656

	return 0;
}

static const struct dev_pm_ops input_dev_pm_ops = {
	.suspend	= input_dev_suspend,
	.resume		= input_dev_resume,
	.poweroff	= input_dev_suspend,
	.restore	= input_dev_resume,
};
#endif /* CONFIG_PM */

1657 1658 1659 1660
static struct device_type input_dev_type = {
	.groups		= input_dev_attr_groups,
	.release	= input_dev_release,
	.uevent		= input_dev_uevent,
1661 1662 1663
#ifdef CONFIG_PM
	.pm		= &input_dev_pm_ops,
#endif
1664 1665
};

1666
static char *input_devnode(struct device *dev, mode_t *mode)
1667 1668 1669 1670
{
	return kasprintf(GFP_KERNEL, "input/%s", dev_name(dev));
}

1671
struct class input_class = {
1672
	.name		= "input",
1673
	.devnode	= input_devnode,
1674
};
D
Dmitry Torokhov 已提交
1675
EXPORT_SYMBOL_GPL(input_class);
1676

1677 1678 1679 1680 1681 1682 1683 1684 1685
/**
 * input_allocate_device - allocate memory for new input device
 *
 * Returns prepared struct input_dev or NULL.
 *
 * NOTE: Use input_free_device() to free devices that have not been
 * registered; input_unregister_device() should be used for already
 * registered devices.
 */
1686 1687 1688 1689 1690 1691
struct input_dev *input_allocate_device(void)
{
	struct input_dev *dev;

	dev = kzalloc(sizeof(struct input_dev), GFP_KERNEL);
	if (dev) {
1692 1693 1694
		dev->dev.type = &input_dev_type;
		dev->dev.class = &input_class;
		device_initialize(&dev->dev);
1695
		mutex_init(&dev->mutex);
1696
		spin_lock_init(&dev->event_lock);
1697 1698
		INIT_LIST_HEAD(&dev->h_list);
		INIT_LIST_HEAD(&dev->node);
1699 1700

		__module_get(THIS_MODULE);
1701 1702 1703 1704
	}

	return dev;
}
D
Dmitry Torokhov 已提交
1705
EXPORT_SYMBOL(input_allocate_device);
1706

1707 1708 1709 1710 1711 1712 1713
/**
 * input_free_device - free memory occupied by input_dev structure
 * @dev: input device to free
 *
 * This function should only be used if input_register_device()
 * was not called yet or if it failed. Once device was registered
 * use input_unregister_device() and memory will be freed once last
1714
 * reference to the device is dropped.
1715 1716 1717 1718 1719 1720
 *
 * Device should be allocated by input_allocate_device().
 *
 * NOTE: If there are references to the input device then memory
 * will not be freed until last reference is dropped.
 */
1721 1722
void input_free_device(struct input_dev *dev)
{
1723
	if (dev)
1724 1725
		input_put_device(dev);
}
D
Dmitry Torokhov 已提交
1726
EXPORT_SYMBOL(input_free_device);
1727

H
Henrik Rydberg 已提交
1728 1729 1730 1731 1732
/**
 * input_mt_create_slots() - create MT input slots
 * @dev: input device supporting MT events and finger tracking
 * @num_slots: number of slots used by the device
 *
1733 1734
 * This function allocates all necessary memory for MT slot handling in the
 * input device, and adds ABS_MT_SLOT to the device capabilities. All slots
D
Dmitry Torokhov 已提交
1735
 * are initially marked as unused by setting ABS_MT_TRACKING_ID to -1.
H
Henrik Rydberg 已提交
1736 1737 1738
 */
int input_mt_create_slots(struct input_dev *dev, unsigned int num_slots)
{
1739 1740
	int i;

H
Henrik Rydberg 已提交
1741 1742 1743 1744 1745 1746 1747 1748 1749 1750
	if (!num_slots)
		return 0;

	dev->mt = kcalloc(num_slots, sizeof(struct input_mt_slot), GFP_KERNEL);
	if (!dev->mt)
		return -ENOMEM;

	dev->mtsize = num_slots;
	input_set_abs_params(dev, ABS_MT_SLOT, 0, num_slots - 1, 0, 0);

1751 1752 1753 1754
	/* Mark slots as 'unused' */
	for (i = 0; i < num_slots; i++)
		dev->mt[i].abs[ABS_MT_TRACKING_ID - ABS_MT_FIRST] = -1;

H
Henrik Rydberg 已提交
1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773
	return 0;
}
EXPORT_SYMBOL(input_mt_create_slots);

/**
 * input_mt_destroy_slots() - frees the MT slots of the input device
 * @dev: input device with allocated MT slots
 *
 * This function is only needed in error path as the input core will
 * automatically free the MT slots when the device is destroyed.
 */
void input_mt_destroy_slots(struct input_dev *dev)
{
	kfree(dev->mt);
	dev->mt = NULL;
	dev->mtsize = 0;
}
EXPORT_SYMBOL(input_mt_destroy_slots);

1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817
/**
 * input_set_capability - mark device as capable of a certain event
 * @dev: device that is capable of emitting or accepting event
 * @type: type of the event (EV_KEY, EV_REL, etc...)
 * @code: event code
 *
 * In addition to setting up corresponding bit in appropriate capability
 * bitmap the function also adjusts dev->evbit.
 */
void input_set_capability(struct input_dev *dev, unsigned int type, unsigned int code)
{
	switch (type) {
	case EV_KEY:
		__set_bit(code, dev->keybit);
		break;

	case EV_REL:
		__set_bit(code, dev->relbit);
		break;

	case EV_ABS:
		__set_bit(code, dev->absbit);
		break;

	case EV_MSC:
		__set_bit(code, dev->mscbit);
		break;

	case EV_SW:
		__set_bit(code, dev->swbit);
		break;

	case EV_LED:
		__set_bit(code, dev->ledbit);
		break;

	case EV_SND:
		__set_bit(code, dev->sndbit);
		break;

	case EV_FF:
		__set_bit(code, dev->ffbit);
		break;

1818 1819 1820 1821
	case EV_PWR:
		/* do nothing */
		break;

1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833
	default:
		printk(KERN_ERR
			"input_set_capability: unknown type %u (code %u)\n",
			type, code);
		dump_stack();
		return;
	}

	__set_bit(type, dev->evbit);
}
EXPORT_SYMBOL(input_set_capability);

1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852
#define INPUT_CLEANSE_BITMASK(dev, type, bits)				\
	do {								\
		if (!test_bit(EV_##type, dev->evbit))			\
			memset(dev->bits##bit, 0,			\
				sizeof(dev->bits##bit));		\
	} while (0)

static void input_cleanse_bitmasks(struct input_dev *dev)
{
	INPUT_CLEANSE_BITMASK(dev, KEY, key);
	INPUT_CLEANSE_BITMASK(dev, REL, rel);
	INPUT_CLEANSE_BITMASK(dev, ABS, abs);
	INPUT_CLEANSE_BITMASK(dev, MSC, msc);
	INPUT_CLEANSE_BITMASK(dev, LED, led);
	INPUT_CLEANSE_BITMASK(dev, SND, snd);
	INPUT_CLEANSE_BITMASK(dev, FF, ff);
	INPUT_CLEANSE_BITMASK(dev, SW, sw);
}

1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864
/**
 * input_register_device - register device with input core
 * @dev: device to be registered
 *
 * This function registers device with input core. The device must be
 * allocated with input_allocate_device() and all it's capabilities
 * set up before registering.
 * If function fails the device must be freed with input_free_device().
 * Once device has been successfully registered it can be unregistered
 * with input_unregister_device(); input_free_device() should not be
 * called in this case.
 */
1865
int input_register_device(struct input_dev *dev)
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1866
{
1867
	static atomic_t input_no = ATOMIC_INIT(0);
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1868
	struct input_handler *handler;
1869 1870
	const char *path;
	int error;
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1871

1872
	/* Every input device generates EV_SYN/SYN_REPORT events. */
1873
	__set_bit(EV_SYN, dev->evbit);
1874

1875 1876 1877
	/* KEY_RESERVED is not supposed to be transmitted to userspace. */
	__clear_bit(KEY_RESERVED, dev->keybit);

1878 1879 1880
	/* Make sure that bitmasks not mentioned in dev->evbit are clean. */
	input_cleanse_bitmasks(dev);

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1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892
	/*
	 * If delay and period are pre-set by the driver, then autorepeating
	 * is handled by the driver itself and we don't do it in input.c.
	 */
	init_timer(&dev->timer);
	if (!dev->rep[REP_DELAY] && !dev->rep[REP_PERIOD]) {
		dev->timer.data = (long) dev;
		dev->timer.function = input_repeat_key;
		dev->rep[REP_DELAY] = 250;
		dev->rep[REP_PERIOD] = 33;
	}

1893 1894
	if (!dev->getkeycode && !dev->getkeycode_new)
		dev->getkeycode_new = input_default_getkeycode;
1895

1896 1897
	if (!dev->setkeycode && !dev->setkeycode_new)
		dev->setkeycode_new = input_default_setkeycode;
1898

1899 1900
	dev_set_name(&dev->dev, "input%ld",
		     (unsigned long) atomic_inc_return(&input_no) - 1);
1901

1902
	error = device_add(&dev->dev);
1903 1904 1905
	if (error)
		return error;

1906
	path = kobject_get_path(&dev->dev.kobj, GFP_KERNEL);
1907 1908 1909
	printk(KERN_INFO "input: %s as %s\n",
		dev->name ? dev->name : "Unspecified device", path ? path : "N/A");
	kfree(path);
1910

1911 1912 1913 1914 1915 1916 1917 1918
	error = mutex_lock_interruptible(&input_mutex);
	if (error) {
		device_del(&dev->dev);
		return error;
	}

	list_add_tail(&dev->node, &input_dev_list);

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1919
	list_for_each_entry(handler, &input_handler_list, node)
1920
		input_attach_handler(dev, handler);
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1921

1922
	input_wakeup_procfs_readers();
1923

1924 1925
	mutex_unlock(&input_mutex);

1926
	return 0;
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1927
}
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1928
EXPORT_SYMBOL(input_register_device);
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1929

1930 1931 1932 1933 1934 1935 1936
/**
 * input_unregister_device - unregister previously registered device
 * @dev: device to be unregistered
 *
 * This function unregisters an input device. Once device is unregistered
 * the caller should not try to access it as it may get freed at any moment.
 */
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1937 1938
void input_unregister_device(struct input_dev *dev)
{
1939
	struct input_handle *handle, *next;
L
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1940

1941
	input_disconnect_device(dev);
L
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1942

1943
	mutex_lock(&input_mutex);
L
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1944

1945
	list_for_each_entry_safe(handle, next, &dev->h_list, d_node)
L
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1946
		handle->handler->disconnect(handle);
1947
	WARN_ON(!list_empty(&dev->h_list));
L
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1948

1949
	del_timer_sync(&dev->timer);
L
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1950 1951
	list_del_init(&dev->node);

1952
	input_wakeup_procfs_readers();
1953 1954 1955 1956

	mutex_unlock(&input_mutex);

	device_unregister(&dev->dev);
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1957
}
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1958
EXPORT_SYMBOL(input_unregister_device);
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1959

1960 1961 1962 1963 1964 1965 1966 1967
/**
 * input_register_handler - register a new input handler
 * @handler: handler to be registered
 *
 * This function registers a new input handler (interface) for input
 * devices in the system and attaches it to all input devices that
 * are compatible with the handler.
 */
1968
int input_register_handler(struct input_handler *handler)
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1969 1970
{
	struct input_dev *dev;
1971 1972 1973 1974 1975
	int retval;

	retval = mutex_lock_interruptible(&input_mutex);
	if (retval)
		return retval;
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1976 1977 1978

	INIT_LIST_HEAD(&handler->h_list);

1979
	if (handler->fops != NULL) {
1980 1981 1982 1983
		if (input_table[handler->minor >> 5]) {
			retval = -EBUSY;
			goto out;
		}
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1984
		input_table[handler->minor >> 5] = handler;
1985
	}
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1986 1987 1988 1989

	list_add_tail(&handler->node, &input_handler_list);

	list_for_each_entry(dev, &input_dev_list, node)
1990
		input_attach_handler(dev, handler);
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1991

1992
	input_wakeup_procfs_readers();
1993 1994 1995 1996

 out:
	mutex_unlock(&input_mutex);
	return retval;
L
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1997
}
D
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1998
EXPORT_SYMBOL(input_register_handler);
L
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1999

2000 2001 2002 2003 2004 2005 2006
/**
 * input_unregister_handler - unregisters an input handler
 * @handler: handler to be unregistered
 *
 * This function disconnects a handler from its input devices and
 * removes it from lists of known handlers.
 */
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2007 2008
void input_unregister_handler(struct input_handler *handler)
{
2009
	struct input_handle *handle, *next;
L
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2010

2011 2012
	mutex_lock(&input_mutex);

2013
	list_for_each_entry_safe(handle, next, &handler->h_list, h_node)
L
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2014
		handler->disconnect(handle);
2015
	WARN_ON(!list_empty(&handler->h_list));
L
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2016 2017 2018 2019 2020 2021

	list_del_init(&handler->node);

	if (handler->fops != NULL)
		input_table[handler->minor >> 5] = NULL;

2022
	input_wakeup_procfs_readers();
2023 2024

	mutex_unlock(&input_mutex);
L
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2025
}
D
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2026
EXPORT_SYMBOL(input_unregister_handler);
L
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2027

2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059
/**
 * input_handler_for_each_handle - handle iterator
 * @handler: input handler to iterate
 * @data: data for the callback
 * @fn: function to be called for each handle
 *
 * Iterate over @bus's list of devices, and call @fn for each, passing
 * it @data and stop when @fn returns a non-zero value. The function is
 * using RCU to traverse the list and therefore may be usind in atonic
 * contexts. The @fn callback is invoked from RCU critical section and
 * thus must not sleep.
 */
int input_handler_for_each_handle(struct input_handler *handler, void *data,
				  int (*fn)(struct input_handle *, void *))
{
	struct input_handle *handle;
	int retval = 0;

	rcu_read_lock();

	list_for_each_entry_rcu(handle, &handler->h_list, h_node) {
		retval = fn(handle, data);
		if (retval)
			break;
	}

	rcu_read_unlock();

	return retval;
}
EXPORT_SYMBOL(input_handler_for_each_handle);

2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070
/**
 * input_register_handle - register a new input handle
 * @handle: handle to register
 *
 * This function puts a new input handle onto device's
 * and handler's lists so that events can flow through
 * it once it is opened using input_open_device().
 *
 * This function is supposed to be called from handler's
 * connect() method.
 */
2071 2072 2073
int input_register_handle(struct input_handle *handle)
{
	struct input_handler *handler = handle->handler;
2074 2075 2076 2077 2078 2079 2080 2081 2082 2083
	struct input_dev *dev = handle->dev;
	int error;

	/*
	 * We take dev->mutex here to prevent race with
	 * input_release_device().
	 */
	error = mutex_lock_interruptible(&dev->mutex);
	if (error)
		return error;
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Dmitry Torokhov 已提交
2084 2085 2086 2087 2088 2089 2090 2091 2092 2093

	/*
	 * Filters go to the head of the list, normal handlers
	 * to the tail.
	 */
	if (handler->filter)
		list_add_rcu(&handle->d_node, &dev->h_list);
	else
		list_add_tail_rcu(&handle->d_node, &dev->h_list);

2094
	mutex_unlock(&dev->mutex);
2095

2096 2097 2098 2099 2100 2101
	/*
	 * Since we are supposed to be called from ->connect()
	 * which is mutually exclusive with ->disconnect()
	 * we can't be racing with input_unregister_handle()
	 * and so separate lock is not needed here.
	 */
2102
	list_add_tail_rcu(&handle->h_node, &handler->h_list);
2103 2104 2105 2106 2107 2108 2109 2110

	if (handler->start)
		handler->start(handle);

	return 0;
}
EXPORT_SYMBOL(input_register_handle);

2111 2112 2113 2114 2115 2116 2117 2118 2119 2120
/**
 * input_unregister_handle - unregister an input handle
 * @handle: handle to unregister
 *
 * This function removes input handle from device's
 * and handler's lists.
 *
 * This function is supposed to be called from handler's
 * disconnect() method.
 */
2121 2122
void input_unregister_handle(struct input_handle *handle)
{
2123 2124
	struct input_dev *dev = handle->dev;

2125
	list_del_rcu(&handle->h_node);
2126 2127 2128 2129 2130 2131 2132

	/*
	 * Take dev->mutex to prevent race with input_release_device().
	 */
	mutex_lock(&dev->mutex);
	list_del_rcu(&handle->d_node);
	mutex_unlock(&dev->mutex);
2133

D
Dmitry Torokhov 已提交
2134
	synchronize_rcu();
2135 2136 2137
}
EXPORT_SYMBOL(input_unregister_handle);

L
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2138 2139
static int input_open_file(struct inode *inode, struct file *file)
{
2140
	struct input_handler *handler;
2141
	const struct file_operations *old_fops, *new_fops = NULL;
L
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2142 2143
	int err;

2144 2145 2146 2147
	err = mutex_lock_interruptible(&input_mutex);
	if (err)
		return err;

L
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2148
	/* No load-on-demand here? */
2149
	handler = input_table[iminor(inode) >> 5];
2150 2151 2152 2153
	if (handler)
		new_fops = fops_get(handler->fops);

	mutex_unlock(&input_mutex);
L
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2154 2155 2156 2157 2158

	/*
	 * That's _really_ odd. Usually NULL ->open means "nothing special",
	 * not "no device". Oh, well...
	 */
2159
	if (!new_fops || !new_fops->open) {
L
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2160
		fops_put(new_fops);
2161 2162
		err = -ENODEV;
		goto out;
L
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2163
	}
2164

L
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2165 2166 2167 2168 2169 2170 2171 2172 2173
	old_fops = file->f_op;
	file->f_op = new_fops;

	err = new_fops->open(inode, file);
	if (err) {
		fops_put(file->f_op);
		file->f_op = fops_get(old_fops);
	}
	fops_put(old_fops);
2174
out:
L
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2175 2176 2177
	return err;
}

2178
static const struct file_operations input_fops = {
L
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2179 2180
	.owner = THIS_MODULE,
	.open = input_open_file,
2181
	.llseek = noop_llseek,
L
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2182 2183
};

2184
static int __init input_init(void)
L
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2185
{
2186
	int err;
L
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2187

2188
	err = class_register(&input_class);
2189 2190 2191 2192 2193
	if (err) {
		printk(KERN_ERR "input: unable to register input_dev class\n");
		return err;
	}

2194 2195
	err = input_proc_init();
	if (err)
2196
		goto fail1;
L
Linus Torvalds 已提交
2197

2198 2199 2200
	err = register_chrdev(INPUT_MAJOR, "input", &input_fops);
	if (err) {
		printk(KERN_ERR "input: unable to register char major %d", INPUT_MAJOR);
2201
		goto fail2;
L
Linus Torvalds 已提交
2202
	}
2203

L
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2204 2205
	return 0;

2206
 fail2:	input_proc_exit();
2207
 fail1:	class_unregister(&input_class);
2208
	return err;
L
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2209 2210 2211 2212
}

static void __exit input_exit(void)
{
2213
	input_proc_exit();
L
Linus Torvalds 已提交
2214
	unregister_chrdev(INPUT_MAJOR, "input");
2215
	class_unregister(&input_class);
L
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2216 2217 2218 2219
}

subsys_initcall(input_init);
module_exit(input_exit);