fix a kmap leak in virtio_console
[linux/fpc-iii.git] / net / rfkill / core.c
blobed7e0b4e7f90730b7530bbcf20106deaeb3d48bd
1 /*
2 * Copyright (C) 2006 - 2007 Ivo van Doorn
3 * Copyright (C) 2007 Dmitry Torokhov
4 * Copyright 2009 Johannes Berg <johannes@sipsolutions.net>
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, see <http://www.gnu.org/licenses/>.
20 #include <linux/kernel.h>
21 #include <linux/module.h>
22 #include <linux/init.h>
23 #include <linux/workqueue.h>
24 #include <linux/capability.h>
25 #include <linux/list.h>
26 #include <linux/mutex.h>
27 #include <linux/rfkill.h>
28 #include <linux/sched.h>
29 #include <linux/spinlock.h>
30 #include <linux/device.h>
31 #include <linux/miscdevice.h>
32 #include <linux/wait.h>
33 #include <linux/poll.h>
34 #include <linux/fs.h>
35 #include <linux/slab.h>
37 #include "rfkill.h"
39 #define POLL_INTERVAL (5 * HZ)
41 #define RFKILL_BLOCK_HW BIT(0)
42 #define RFKILL_BLOCK_SW BIT(1)
43 #define RFKILL_BLOCK_SW_PREV BIT(2)
44 #define RFKILL_BLOCK_ANY (RFKILL_BLOCK_HW |\
45 RFKILL_BLOCK_SW |\
46 RFKILL_BLOCK_SW_PREV)
47 #define RFKILL_BLOCK_SW_SETCALL BIT(31)
49 struct rfkill {
50 spinlock_t lock;
52 const char *name;
53 enum rfkill_type type;
55 unsigned long state;
57 u32 idx;
59 bool registered;
60 bool persistent;
62 const struct rfkill_ops *ops;
63 void *data;
65 #ifdef CONFIG_RFKILL_LEDS
66 struct led_trigger led_trigger;
67 const char *ledtrigname;
68 #endif
70 struct device dev;
71 struct list_head node;
73 struct delayed_work poll_work;
74 struct work_struct uevent_work;
75 struct work_struct sync_work;
77 #define to_rfkill(d) container_of(d, struct rfkill, dev)
79 struct rfkill_int_event {
80 struct list_head list;
81 struct rfkill_event ev;
84 struct rfkill_data {
85 struct list_head list;
86 struct list_head events;
87 struct mutex mtx;
88 wait_queue_head_t read_wait;
89 bool input_handler;
93 MODULE_AUTHOR("Ivo van Doorn <IvDoorn@gmail.com>");
94 MODULE_AUTHOR("Johannes Berg <johannes@sipsolutions.net>");
95 MODULE_DESCRIPTION("RF switch support");
96 MODULE_LICENSE("GPL");
100 * The locking here should be made much smarter, we currently have
101 * a bit of a stupid situation because drivers might want to register
102 * the rfkill struct under their own lock, and take this lock during
103 * rfkill method calls -- which will cause an AB-BA deadlock situation.
105 * To fix that, we need to rework this code here to be mostly lock-free
106 * and only use the mutex for list manipulations, not to protect the
107 * various other global variables. Then we can avoid holding the mutex
108 * around driver operations, and all is happy.
110 static LIST_HEAD(rfkill_list); /* list of registered rf switches */
111 static DEFINE_MUTEX(rfkill_global_mutex);
112 static LIST_HEAD(rfkill_fds); /* list of open fds of /dev/rfkill */
114 static unsigned int rfkill_default_state = 1;
115 module_param_named(default_state, rfkill_default_state, uint, 0444);
116 MODULE_PARM_DESC(default_state,
117 "Default initial state for all radio types, 0 = radio off");
119 static struct {
120 bool cur, sav;
121 } rfkill_global_states[NUM_RFKILL_TYPES];
123 static bool rfkill_epo_lock_active;
126 #ifdef CONFIG_RFKILL_LEDS
127 static void rfkill_led_trigger_event(struct rfkill *rfkill)
129 struct led_trigger *trigger;
131 if (!rfkill->registered)
132 return;
134 trigger = &rfkill->led_trigger;
136 if (rfkill->state & RFKILL_BLOCK_ANY)
137 led_trigger_event(trigger, LED_OFF);
138 else
139 led_trigger_event(trigger, LED_FULL);
142 static void rfkill_led_trigger_activate(struct led_classdev *led)
144 struct rfkill *rfkill;
146 rfkill = container_of(led->trigger, struct rfkill, led_trigger);
148 rfkill_led_trigger_event(rfkill);
151 const char *rfkill_get_led_trigger_name(struct rfkill *rfkill)
153 return rfkill->led_trigger.name;
155 EXPORT_SYMBOL(rfkill_get_led_trigger_name);
157 void rfkill_set_led_trigger_name(struct rfkill *rfkill, const char *name)
159 BUG_ON(!rfkill);
161 rfkill->ledtrigname = name;
163 EXPORT_SYMBOL(rfkill_set_led_trigger_name);
165 static int rfkill_led_trigger_register(struct rfkill *rfkill)
167 rfkill->led_trigger.name = rfkill->ledtrigname
168 ? : dev_name(&rfkill->dev);
169 rfkill->led_trigger.activate = rfkill_led_trigger_activate;
170 return led_trigger_register(&rfkill->led_trigger);
173 static void rfkill_led_trigger_unregister(struct rfkill *rfkill)
175 led_trigger_unregister(&rfkill->led_trigger);
177 #else
178 static void rfkill_led_trigger_event(struct rfkill *rfkill)
182 static inline int rfkill_led_trigger_register(struct rfkill *rfkill)
184 return 0;
187 static inline void rfkill_led_trigger_unregister(struct rfkill *rfkill)
190 #endif /* CONFIG_RFKILL_LEDS */
192 static void rfkill_fill_event(struct rfkill_event *ev, struct rfkill *rfkill,
193 enum rfkill_operation op)
195 unsigned long flags;
197 ev->idx = rfkill->idx;
198 ev->type = rfkill->type;
199 ev->op = op;
201 spin_lock_irqsave(&rfkill->lock, flags);
202 ev->hard = !!(rfkill->state & RFKILL_BLOCK_HW);
203 ev->soft = !!(rfkill->state & (RFKILL_BLOCK_SW |
204 RFKILL_BLOCK_SW_PREV));
205 spin_unlock_irqrestore(&rfkill->lock, flags);
208 static void rfkill_send_events(struct rfkill *rfkill, enum rfkill_operation op)
210 struct rfkill_data *data;
211 struct rfkill_int_event *ev;
213 list_for_each_entry(data, &rfkill_fds, list) {
214 ev = kzalloc(sizeof(*ev), GFP_KERNEL);
215 if (!ev)
216 continue;
217 rfkill_fill_event(&ev->ev, rfkill, op);
218 mutex_lock(&data->mtx);
219 list_add_tail(&ev->list, &data->events);
220 mutex_unlock(&data->mtx);
221 wake_up_interruptible(&data->read_wait);
225 static void rfkill_event(struct rfkill *rfkill)
227 if (!rfkill->registered)
228 return;
230 kobject_uevent(&rfkill->dev.kobj, KOBJ_CHANGE);
232 /* also send event to /dev/rfkill */
233 rfkill_send_events(rfkill, RFKILL_OP_CHANGE);
236 static bool __rfkill_set_hw_state(struct rfkill *rfkill,
237 bool blocked, bool *change)
239 unsigned long flags;
240 bool prev, any;
242 BUG_ON(!rfkill);
244 spin_lock_irqsave(&rfkill->lock, flags);
245 prev = !!(rfkill->state & RFKILL_BLOCK_HW);
246 if (blocked)
247 rfkill->state |= RFKILL_BLOCK_HW;
248 else
249 rfkill->state &= ~RFKILL_BLOCK_HW;
250 *change = prev != blocked;
251 any = !!(rfkill->state & RFKILL_BLOCK_ANY);
252 spin_unlock_irqrestore(&rfkill->lock, flags);
254 rfkill_led_trigger_event(rfkill);
256 return any;
260 * rfkill_set_block - wrapper for set_block method
262 * @rfkill: the rfkill struct to use
263 * @blocked: the new software state
265 * Calls the set_block method (when applicable) and handles notifications
266 * etc. as well.
268 static void rfkill_set_block(struct rfkill *rfkill, bool blocked)
270 unsigned long flags;
271 bool prev, curr;
272 int err;
274 if (unlikely(rfkill->dev.power.power_state.event & PM_EVENT_SLEEP))
275 return;
278 * Some platforms (...!) generate input events which affect the
279 * _hard_ kill state -- whenever something tries to change the
280 * current software state query the hardware state too.
282 if (rfkill->ops->query)
283 rfkill->ops->query(rfkill, rfkill->data);
285 spin_lock_irqsave(&rfkill->lock, flags);
286 prev = rfkill->state & RFKILL_BLOCK_SW;
288 if (rfkill->state & RFKILL_BLOCK_SW)
289 rfkill->state |= RFKILL_BLOCK_SW_PREV;
290 else
291 rfkill->state &= ~RFKILL_BLOCK_SW_PREV;
293 if (blocked)
294 rfkill->state |= RFKILL_BLOCK_SW;
295 else
296 rfkill->state &= ~RFKILL_BLOCK_SW;
298 rfkill->state |= RFKILL_BLOCK_SW_SETCALL;
299 spin_unlock_irqrestore(&rfkill->lock, flags);
301 err = rfkill->ops->set_block(rfkill->data, blocked);
303 spin_lock_irqsave(&rfkill->lock, flags);
304 if (err) {
306 * Failed -- reset status to _prev, this may be different
307 * from what set set _PREV to earlier in this function
308 * if rfkill_set_sw_state was invoked.
310 if (rfkill->state & RFKILL_BLOCK_SW_PREV)
311 rfkill->state |= RFKILL_BLOCK_SW;
312 else
313 rfkill->state &= ~RFKILL_BLOCK_SW;
315 rfkill->state &= ~RFKILL_BLOCK_SW_SETCALL;
316 rfkill->state &= ~RFKILL_BLOCK_SW_PREV;
317 curr = rfkill->state & RFKILL_BLOCK_SW;
318 spin_unlock_irqrestore(&rfkill->lock, flags);
320 rfkill_led_trigger_event(rfkill);
322 if (prev != curr)
323 rfkill_event(rfkill);
326 #ifdef CONFIG_RFKILL_INPUT
327 static atomic_t rfkill_input_disabled = ATOMIC_INIT(0);
330 * __rfkill_switch_all - Toggle state of all switches of given type
331 * @type: type of interfaces to be affected
332 * @state: the new state
334 * This function sets the state of all switches of given type,
335 * unless a specific switch is claimed by userspace (in which case,
336 * that switch is left alone) or suspended.
338 * Caller must have acquired rfkill_global_mutex.
340 static void __rfkill_switch_all(const enum rfkill_type type, bool blocked)
342 struct rfkill *rfkill;
344 rfkill_global_states[type].cur = blocked;
345 list_for_each_entry(rfkill, &rfkill_list, node) {
346 if (rfkill->type != type && type != RFKILL_TYPE_ALL)
347 continue;
349 rfkill_set_block(rfkill, blocked);
354 * rfkill_switch_all - Toggle state of all switches of given type
355 * @type: type of interfaces to be affected
356 * @state: the new state
358 * Acquires rfkill_global_mutex and calls __rfkill_switch_all(@type, @state).
359 * Please refer to __rfkill_switch_all() for details.
361 * Does nothing if the EPO lock is active.
363 void rfkill_switch_all(enum rfkill_type type, bool blocked)
365 if (atomic_read(&rfkill_input_disabled))
366 return;
368 mutex_lock(&rfkill_global_mutex);
370 if (!rfkill_epo_lock_active)
371 __rfkill_switch_all(type, blocked);
373 mutex_unlock(&rfkill_global_mutex);
377 * rfkill_epo - emergency power off all transmitters
379 * This kicks all non-suspended rfkill devices to RFKILL_STATE_SOFT_BLOCKED,
380 * ignoring everything in its path but rfkill_global_mutex and rfkill->mutex.
382 * The global state before the EPO is saved and can be restored later
383 * using rfkill_restore_states().
385 void rfkill_epo(void)
387 struct rfkill *rfkill;
388 int i;
390 if (atomic_read(&rfkill_input_disabled))
391 return;
393 mutex_lock(&rfkill_global_mutex);
395 rfkill_epo_lock_active = true;
396 list_for_each_entry(rfkill, &rfkill_list, node)
397 rfkill_set_block(rfkill, true);
399 for (i = 0; i < NUM_RFKILL_TYPES; i++) {
400 rfkill_global_states[i].sav = rfkill_global_states[i].cur;
401 rfkill_global_states[i].cur = true;
404 mutex_unlock(&rfkill_global_mutex);
408 * rfkill_restore_states - restore global states
410 * Restore (and sync switches to) the global state from the
411 * states in rfkill_default_states. This can undo the effects of
412 * a call to rfkill_epo().
414 void rfkill_restore_states(void)
416 int i;
418 if (atomic_read(&rfkill_input_disabled))
419 return;
421 mutex_lock(&rfkill_global_mutex);
423 rfkill_epo_lock_active = false;
424 for (i = 0; i < NUM_RFKILL_TYPES; i++)
425 __rfkill_switch_all(i, rfkill_global_states[i].sav);
426 mutex_unlock(&rfkill_global_mutex);
430 * rfkill_remove_epo_lock - unlock state changes
432 * Used by rfkill-input manually unlock state changes, when
433 * the EPO switch is deactivated.
435 void rfkill_remove_epo_lock(void)
437 if (atomic_read(&rfkill_input_disabled))
438 return;
440 mutex_lock(&rfkill_global_mutex);
441 rfkill_epo_lock_active = false;
442 mutex_unlock(&rfkill_global_mutex);
446 * rfkill_is_epo_lock_active - returns true EPO is active
448 * Returns 0 (false) if there is NOT an active EPO contidion,
449 * and 1 (true) if there is an active EPO contition, which
450 * locks all radios in one of the BLOCKED states.
452 * Can be called in atomic context.
454 bool rfkill_is_epo_lock_active(void)
456 return rfkill_epo_lock_active;
460 * rfkill_get_global_sw_state - returns global state for a type
461 * @type: the type to get the global state of
463 * Returns the current global state for a given wireless
464 * device type.
466 bool rfkill_get_global_sw_state(const enum rfkill_type type)
468 return rfkill_global_states[type].cur;
470 #endif
473 bool rfkill_set_hw_state(struct rfkill *rfkill, bool blocked)
475 bool ret, change;
477 ret = __rfkill_set_hw_state(rfkill, blocked, &change);
479 if (!rfkill->registered)
480 return ret;
482 if (change)
483 schedule_work(&rfkill->uevent_work);
485 return ret;
487 EXPORT_SYMBOL(rfkill_set_hw_state);
489 static void __rfkill_set_sw_state(struct rfkill *rfkill, bool blocked)
491 u32 bit = RFKILL_BLOCK_SW;
493 /* if in a ops->set_block right now, use other bit */
494 if (rfkill->state & RFKILL_BLOCK_SW_SETCALL)
495 bit = RFKILL_BLOCK_SW_PREV;
497 if (blocked)
498 rfkill->state |= bit;
499 else
500 rfkill->state &= ~bit;
503 bool rfkill_set_sw_state(struct rfkill *rfkill, bool blocked)
505 unsigned long flags;
506 bool prev, hwblock;
508 BUG_ON(!rfkill);
510 spin_lock_irqsave(&rfkill->lock, flags);
511 prev = !!(rfkill->state & RFKILL_BLOCK_SW);
512 __rfkill_set_sw_state(rfkill, blocked);
513 hwblock = !!(rfkill->state & RFKILL_BLOCK_HW);
514 blocked = blocked || hwblock;
515 spin_unlock_irqrestore(&rfkill->lock, flags);
517 if (!rfkill->registered)
518 return blocked;
520 if (prev != blocked && !hwblock)
521 schedule_work(&rfkill->uevent_work);
523 rfkill_led_trigger_event(rfkill);
525 return blocked;
527 EXPORT_SYMBOL(rfkill_set_sw_state);
529 void rfkill_init_sw_state(struct rfkill *rfkill, bool blocked)
531 unsigned long flags;
533 BUG_ON(!rfkill);
534 BUG_ON(rfkill->registered);
536 spin_lock_irqsave(&rfkill->lock, flags);
537 __rfkill_set_sw_state(rfkill, blocked);
538 rfkill->persistent = true;
539 spin_unlock_irqrestore(&rfkill->lock, flags);
541 EXPORT_SYMBOL(rfkill_init_sw_state);
543 void rfkill_set_states(struct rfkill *rfkill, bool sw, bool hw)
545 unsigned long flags;
546 bool swprev, hwprev;
548 BUG_ON(!rfkill);
550 spin_lock_irqsave(&rfkill->lock, flags);
553 * No need to care about prev/setblock ... this is for uevent only
554 * and that will get triggered by rfkill_set_block anyway.
556 swprev = !!(rfkill->state & RFKILL_BLOCK_SW);
557 hwprev = !!(rfkill->state & RFKILL_BLOCK_HW);
558 __rfkill_set_sw_state(rfkill, sw);
559 if (hw)
560 rfkill->state |= RFKILL_BLOCK_HW;
561 else
562 rfkill->state &= ~RFKILL_BLOCK_HW;
564 spin_unlock_irqrestore(&rfkill->lock, flags);
566 if (!rfkill->registered) {
567 rfkill->persistent = true;
568 } else {
569 if (swprev != sw || hwprev != hw)
570 schedule_work(&rfkill->uevent_work);
572 rfkill_led_trigger_event(rfkill);
575 EXPORT_SYMBOL(rfkill_set_states);
577 static ssize_t name_show(struct device *dev, struct device_attribute *attr,
578 char *buf)
580 struct rfkill *rfkill = to_rfkill(dev);
582 return sprintf(buf, "%s\n", rfkill->name);
584 static DEVICE_ATTR_RO(name);
586 static const char *rfkill_get_type_str(enum rfkill_type type)
588 BUILD_BUG_ON(NUM_RFKILL_TYPES != RFKILL_TYPE_NFC + 1);
590 switch (type) {
591 case RFKILL_TYPE_WLAN:
592 return "wlan";
593 case RFKILL_TYPE_BLUETOOTH:
594 return "bluetooth";
595 case RFKILL_TYPE_UWB:
596 return "ultrawideband";
597 case RFKILL_TYPE_WIMAX:
598 return "wimax";
599 case RFKILL_TYPE_WWAN:
600 return "wwan";
601 case RFKILL_TYPE_GPS:
602 return "gps";
603 case RFKILL_TYPE_FM:
604 return "fm";
605 case RFKILL_TYPE_NFC:
606 return "nfc";
607 default:
608 BUG();
612 static ssize_t type_show(struct device *dev, struct device_attribute *attr,
613 char *buf)
615 struct rfkill *rfkill = to_rfkill(dev);
617 return sprintf(buf, "%s\n", rfkill_get_type_str(rfkill->type));
619 static DEVICE_ATTR_RO(type);
621 static ssize_t index_show(struct device *dev, struct device_attribute *attr,
622 char *buf)
624 struct rfkill *rfkill = to_rfkill(dev);
626 return sprintf(buf, "%d\n", rfkill->idx);
628 static DEVICE_ATTR_RO(index);
630 static ssize_t persistent_show(struct device *dev,
631 struct device_attribute *attr, char *buf)
633 struct rfkill *rfkill = to_rfkill(dev);
635 return sprintf(buf, "%d\n", rfkill->persistent);
637 static DEVICE_ATTR_RO(persistent);
639 static ssize_t hard_show(struct device *dev, struct device_attribute *attr,
640 char *buf)
642 struct rfkill *rfkill = to_rfkill(dev);
644 return sprintf(buf, "%d\n", (rfkill->state & RFKILL_BLOCK_HW) ? 1 : 0 );
646 static DEVICE_ATTR_RO(hard);
648 static ssize_t soft_show(struct device *dev, struct device_attribute *attr,
649 char *buf)
651 struct rfkill *rfkill = to_rfkill(dev);
653 return sprintf(buf, "%d\n", (rfkill->state & RFKILL_BLOCK_SW) ? 1 : 0 );
656 static ssize_t soft_store(struct device *dev, struct device_attribute *attr,
657 const char *buf, size_t count)
659 struct rfkill *rfkill = to_rfkill(dev);
660 unsigned long state;
661 int err;
663 if (!capable(CAP_NET_ADMIN))
664 return -EPERM;
666 err = kstrtoul(buf, 0, &state);
667 if (err)
668 return err;
670 if (state > 1 )
671 return -EINVAL;
673 mutex_lock(&rfkill_global_mutex);
674 rfkill_set_block(rfkill, state);
675 mutex_unlock(&rfkill_global_mutex);
677 return count;
679 static DEVICE_ATTR_RW(soft);
681 static u8 user_state_from_blocked(unsigned long state)
683 if (state & RFKILL_BLOCK_HW)
684 return RFKILL_USER_STATE_HARD_BLOCKED;
685 if (state & RFKILL_BLOCK_SW)
686 return RFKILL_USER_STATE_SOFT_BLOCKED;
688 return RFKILL_USER_STATE_UNBLOCKED;
691 static ssize_t state_show(struct device *dev, struct device_attribute *attr,
692 char *buf)
694 struct rfkill *rfkill = to_rfkill(dev);
696 return sprintf(buf, "%d\n", user_state_from_blocked(rfkill->state));
699 static ssize_t state_store(struct device *dev, struct device_attribute *attr,
700 const char *buf, size_t count)
702 struct rfkill *rfkill = to_rfkill(dev);
703 unsigned long state;
704 int err;
706 if (!capable(CAP_NET_ADMIN))
707 return -EPERM;
709 err = kstrtoul(buf, 0, &state);
710 if (err)
711 return err;
713 if (state != RFKILL_USER_STATE_SOFT_BLOCKED &&
714 state != RFKILL_USER_STATE_UNBLOCKED)
715 return -EINVAL;
717 mutex_lock(&rfkill_global_mutex);
718 rfkill_set_block(rfkill, state == RFKILL_USER_STATE_SOFT_BLOCKED);
719 mutex_unlock(&rfkill_global_mutex);
721 return count;
723 static DEVICE_ATTR_RW(state);
725 static ssize_t claim_show(struct device *dev, struct device_attribute *attr,
726 char *buf)
728 return sprintf(buf, "%d\n", 0);
730 static DEVICE_ATTR_RO(claim);
732 static struct attribute *rfkill_dev_attrs[] = {
733 &dev_attr_name.attr,
734 &dev_attr_type.attr,
735 &dev_attr_index.attr,
736 &dev_attr_persistent.attr,
737 &dev_attr_state.attr,
738 &dev_attr_claim.attr,
739 &dev_attr_soft.attr,
740 &dev_attr_hard.attr,
741 NULL,
743 ATTRIBUTE_GROUPS(rfkill_dev);
745 static void rfkill_release(struct device *dev)
747 struct rfkill *rfkill = to_rfkill(dev);
749 kfree(rfkill);
752 static int rfkill_dev_uevent(struct device *dev, struct kobj_uevent_env *env)
754 struct rfkill *rfkill = to_rfkill(dev);
755 unsigned long flags;
756 u32 state;
757 int error;
759 error = add_uevent_var(env, "RFKILL_NAME=%s", rfkill->name);
760 if (error)
761 return error;
762 error = add_uevent_var(env, "RFKILL_TYPE=%s",
763 rfkill_get_type_str(rfkill->type));
764 if (error)
765 return error;
766 spin_lock_irqsave(&rfkill->lock, flags);
767 state = rfkill->state;
768 spin_unlock_irqrestore(&rfkill->lock, flags);
769 error = add_uevent_var(env, "RFKILL_STATE=%d",
770 user_state_from_blocked(state));
771 return error;
774 void rfkill_pause_polling(struct rfkill *rfkill)
776 BUG_ON(!rfkill);
778 if (!rfkill->ops->poll)
779 return;
781 cancel_delayed_work_sync(&rfkill->poll_work);
783 EXPORT_SYMBOL(rfkill_pause_polling);
785 void rfkill_resume_polling(struct rfkill *rfkill)
787 BUG_ON(!rfkill);
789 if (!rfkill->ops->poll)
790 return;
792 schedule_work(&rfkill->poll_work.work);
794 EXPORT_SYMBOL(rfkill_resume_polling);
796 static int rfkill_suspend(struct device *dev, pm_message_t state)
798 struct rfkill *rfkill = to_rfkill(dev);
800 rfkill_pause_polling(rfkill);
802 return 0;
805 static int rfkill_resume(struct device *dev)
807 struct rfkill *rfkill = to_rfkill(dev);
808 bool cur;
810 if (!rfkill->persistent) {
811 cur = !!(rfkill->state & RFKILL_BLOCK_SW);
812 rfkill_set_block(rfkill, cur);
815 rfkill_resume_polling(rfkill);
817 return 0;
820 static struct class rfkill_class = {
821 .name = "rfkill",
822 .dev_release = rfkill_release,
823 .dev_groups = rfkill_dev_groups,
824 .dev_uevent = rfkill_dev_uevent,
825 .suspend = rfkill_suspend,
826 .resume = rfkill_resume,
829 bool rfkill_blocked(struct rfkill *rfkill)
831 unsigned long flags;
832 u32 state;
834 spin_lock_irqsave(&rfkill->lock, flags);
835 state = rfkill->state;
836 spin_unlock_irqrestore(&rfkill->lock, flags);
838 return !!(state & RFKILL_BLOCK_ANY);
840 EXPORT_SYMBOL(rfkill_blocked);
843 struct rfkill * __must_check rfkill_alloc(const char *name,
844 struct device *parent,
845 const enum rfkill_type type,
846 const struct rfkill_ops *ops,
847 void *ops_data)
849 struct rfkill *rfkill;
850 struct device *dev;
852 if (WARN_ON(!ops))
853 return NULL;
855 if (WARN_ON(!ops->set_block))
856 return NULL;
858 if (WARN_ON(!name))
859 return NULL;
861 if (WARN_ON(type == RFKILL_TYPE_ALL || type >= NUM_RFKILL_TYPES))
862 return NULL;
864 rfkill = kzalloc(sizeof(*rfkill), GFP_KERNEL);
865 if (!rfkill)
866 return NULL;
868 spin_lock_init(&rfkill->lock);
869 INIT_LIST_HEAD(&rfkill->node);
870 rfkill->type = type;
871 rfkill->name = name;
872 rfkill->ops = ops;
873 rfkill->data = ops_data;
875 dev = &rfkill->dev;
876 dev->class = &rfkill_class;
877 dev->parent = parent;
878 device_initialize(dev);
880 return rfkill;
882 EXPORT_SYMBOL(rfkill_alloc);
884 static void rfkill_poll(struct work_struct *work)
886 struct rfkill *rfkill;
888 rfkill = container_of(work, struct rfkill, poll_work.work);
891 * Poll hardware state -- driver will use one of the
892 * rfkill_set{,_hw,_sw}_state functions and use its
893 * return value to update the current status.
895 rfkill->ops->poll(rfkill, rfkill->data);
897 schedule_delayed_work(&rfkill->poll_work,
898 round_jiffies_relative(POLL_INTERVAL));
901 static void rfkill_uevent_work(struct work_struct *work)
903 struct rfkill *rfkill;
905 rfkill = container_of(work, struct rfkill, uevent_work);
907 mutex_lock(&rfkill_global_mutex);
908 rfkill_event(rfkill);
909 mutex_unlock(&rfkill_global_mutex);
912 static void rfkill_sync_work(struct work_struct *work)
914 struct rfkill *rfkill;
915 bool cur;
917 rfkill = container_of(work, struct rfkill, sync_work);
919 mutex_lock(&rfkill_global_mutex);
920 cur = rfkill_global_states[rfkill->type].cur;
921 rfkill_set_block(rfkill, cur);
922 mutex_unlock(&rfkill_global_mutex);
925 int __must_check rfkill_register(struct rfkill *rfkill)
927 static unsigned long rfkill_no;
928 struct device *dev = &rfkill->dev;
929 int error;
931 BUG_ON(!rfkill);
933 mutex_lock(&rfkill_global_mutex);
935 if (rfkill->registered) {
936 error = -EALREADY;
937 goto unlock;
940 rfkill->idx = rfkill_no;
941 dev_set_name(dev, "rfkill%lu", rfkill_no);
942 rfkill_no++;
944 list_add_tail(&rfkill->node, &rfkill_list);
946 error = device_add(dev);
947 if (error)
948 goto remove;
950 error = rfkill_led_trigger_register(rfkill);
951 if (error)
952 goto devdel;
954 rfkill->registered = true;
956 INIT_DELAYED_WORK(&rfkill->poll_work, rfkill_poll);
957 INIT_WORK(&rfkill->uevent_work, rfkill_uevent_work);
958 INIT_WORK(&rfkill->sync_work, rfkill_sync_work);
960 if (rfkill->ops->poll)
961 schedule_delayed_work(&rfkill->poll_work,
962 round_jiffies_relative(POLL_INTERVAL));
964 if (!rfkill->persistent || rfkill_epo_lock_active) {
965 schedule_work(&rfkill->sync_work);
966 } else {
967 #ifdef CONFIG_RFKILL_INPUT
968 bool soft_blocked = !!(rfkill->state & RFKILL_BLOCK_SW);
970 if (!atomic_read(&rfkill_input_disabled))
971 __rfkill_switch_all(rfkill->type, soft_blocked);
972 #endif
975 rfkill_send_events(rfkill, RFKILL_OP_ADD);
977 mutex_unlock(&rfkill_global_mutex);
978 return 0;
980 devdel:
981 device_del(&rfkill->dev);
982 remove:
983 list_del_init(&rfkill->node);
984 unlock:
985 mutex_unlock(&rfkill_global_mutex);
986 return error;
988 EXPORT_SYMBOL(rfkill_register);
990 void rfkill_unregister(struct rfkill *rfkill)
992 BUG_ON(!rfkill);
994 if (rfkill->ops->poll)
995 cancel_delayed_work_sync(&rfkill->poll_work);
997 cancel_work_sync(&rfkill->uevent_work);
998 cancel_work_sync(&rfkill->sync_work);
1000 rfkill->registered = false;
1002 device_del(&rfkill->dev);
1004 mutex_lock(&rfkill_global_mutex);
1005 rfkill_send_events(rfkill, RFKILL_OP_DEL);
1006 list_del_init(&rfkill->node);
1007 mutex_unlock(&rfkill_global_mutex);
1009 rfkill_led_trigger_unregister(rfkill);
1011 EXPORT_SYMBOL(rfkill_unregister);
1013 void rfkill_destroy(struct rfkill *rfkill)
1015 if (rfkill)
1016 put_device(&rfkill->dev);
1018 EXPORT_SYMBOL(rfkill_destroy);
1020 static int rfkill_fop_open(struct inode *inode, struct file *file)
1022 struct rfkill_data *data;
1023 struct rfkill *rfkill;
1024 struct rfkill_int_event *ev, *tmp;
1026 data = kzalloc(sizeof(*data), GFP_KERNEL);
1027 if (!data)
1028 return -ENOMEM;
1030 INIT_LIST_HEAD(&data->events);
1031 mutex_init(&data->mtx);
1032 init_waitqueue_head(&data->read_wait);
1034 mutex_lock(&rfkill_global_mutex);
1035 mutex_lock(&data->mtx);
1037 * start getting events from elsewhere but hold mtx to get
1038 * startup events added first
1041 list_for_each_entry(rfkill, &rfkill_list, node) {
1042 ev = kzalloc(sizeof(*ev), GFP_KERNEL);
1043 if (!ev)
1044 goto free;
1045 rfkill_fill_event(&ev->ev, rfkill, RFKILL_OP_ADD);
1046 list_add_tail(&ev->list, &data->events);
1048 list_add(&data->list, &rfkill_fds);
1049 mutex_unlock(&data->mtx);
1050 mutex_unlock(&rfkill_global_mutex);
1052 file->private_data = data;
1054 return nonseekable_open(inode, file);
1056 free:
1057 mutex_unlock(&data->mtx);
1058 mutex_unlock(&rfkill_global_mutex);
1059 mutex_destroy(&data->mtx);
1060 list_for_each_entry_safe(ev, tmp, &data->events, list)
1061 kfree(ev);
1062 kfree(data);
1063 return -ENOMEM;
1066 static unsigned int rfkill_fop_poll(struct file *file, poll_table *wait)
1068 struct rfkill_data *data = file->private_data;
1069 unsigned int res = POLLOUT | POLLWRNORM;
1071 poll_wait(file, &data->read_wait, wait);
1073 mutex_lock(&data->mtx);
1074 if (!list_empty(&data->events))
1075 res = POLLIN | POLLRDNORM;
1076 mutex_unlock(&data->mtx);
1078 return res;
1081 static bool rfkill_readable(struct rfkill_data *data)
1083 bool r;
1085 mutex_lock(&data->mtx);
1086 r = !list_empty(&data->events);
1087 mutex_unlock(&data->mtx);
1089 return r;
1092 static ssize_t rfkill_fop_read(struct file *file, char __user *buf,
1093 size_t count, loff_t *pos)
1095 struct rfkill_data *data = file->private_data;
1096 struct rfkill_int_event *ev;
1097 unsigned long sz;
1098 int ret;
1100 mutex_lock(&data->mtx);
1102 while (list_empty(&data->events)) {
1103 if (file->f_flags & O_NONBLOCK) {
1104 ret = -EAGAIN;
1105 goto out;
1107 mutex_unlock(&data->mtx);
1108 ret = wait_event_interruptible(data->read_wait,
1109 rfkill_readable(data));
1110 mutex_lock(&data->mtx);
1112 if (ret)
1113 goto out;
1116 ev = list_first_entry(&data->events, struct rfkill_int_event,
1117 list);
1119 sz = min_t(unsigned long, sizeof(ev->ev), count);
1120 ret = sz;
1121 if (copy_to_user(buf, &ev->ev, sz))
1122 ret = -EFAULT;
1124 list_del(&ev->list);
1125 kfree(ev);
1126 out:
1127 mutex_unlock(&data->mtx);
1128 return ret;
1131 static ssize_t rfkill_fop_write(struct file *file, const char __user *buf,
1132 size_t count, loff_t *pos)
1134 struct rfkill *rfkill;
1135 struct rfkill_event ev;
1137 /* we don't need the 'hard' variable but accept it */
1138 if (count < RFKILL_EVENT_SIZE_V1 - 1)
1139 return -EINVAL;
1142 * Copy as much data as we can accept into our 'ev' buffer,
1143 * but tell userspace how much we've copied so it can determine
1144 * our API version even in a write() call, if it cares.
1146 count = min(count, sizeof(ev));
1147 if (copy_from_user(&ev, buf, count))
1148 return -EFAULT;
1150 if (ev.op != RFKILL_OP_CHANGE && ev.op != RFKILL_OP_CHANGE_ALL)
1151 return -EINVAL;
1153 if (ev.type >= NUM_RFKILL_TYPES)
1154 return -EINVAL;
1156 mutex_lock(&rfkill_global_mutex);
1158 if (ev.op == RFKILL_OP_CHANGE_ALL) {
1159 if (ev.type == RFKILL_TYPE_ALL) {
1160 enum rfkill_type i;
1161 for (i = 0; i < NUM_RFKILL_TYPES; i++)
1162 rfkill_global_states[i].cur = ev.soft;
1163 } else {
1164 rfkill_global_states[ev.type].cur = ev.soft;
1168 list_for_each_entry(rfkill, &rfkill_list, node) {
1169 if (rfkill->idx != ev.idx && ev.op != RFKILL_OP_CHANGE_ALL)
1170 continue;
1172 if (rfkill->type != ev.type && ev.type != RFKILL_TYPE_ALL)
1173 continue;
1175 rfkill_set_block(rfkill, ev.soft);
1177 mutex_unlock(&rfkill_global_mutex);
1179 return count;
1182 static int rfkill_fop_release(struct inode *inode, struct file *file)
1184 struct rfkill_data *data = file->private_data;
1185 struct rfkill_int_event *ev, *tmp;
1187 mutex_lock(&rfkill_global_mutex);
1188 list_del(&data->list);
1189 mutex_unlock(&rfkill_global_mutex);
1191 mutex_destroy(&data->mtx);
1192 list_for_each_entry_safe(ev, tmp, &data->events, list)
1193 kfree(ev);
1195 #ifdef CONFIG_RFKILL_INPUT
1196 if (data->input_handler)
1197 if (atomic_dec_return(&rfkill_input_disabled) == 0)
1198 printk(KERN_DEBUG "rfkill: input handler enabled\n");
1199 #endif
1201 kfree(data);
1203 return 0;
1206 #ifdef CONFIG_RFKILL_INPUT
1207 static long rfkill_fop_ioctl(struct file *file, unsigned int cmd,
1208 unsigned long arg)
1210 struct rfkill_data *data = file->private_data;
1212 if (_IOC_TYPE(cmd) != RFKILL_IOC_MAGIC)
1213 return -ENOSYS;
1215 if (_IOC_NR(cmd) != RFKILL_IOC_NOINPUT)
1216 return -ENOSYS;
1218 mutex_lock(&data->mtx);
1220 if (!data->input_handler) {
1221 if (atomic_inc_return(&rfkill_input_disabled) == 1)
1222 printk(KERN_DEBUG "rfkill: input handler disabled\n");
1223 data->input_handler = true;
1226 mutex_unlock(&data->mtx);
1228 return 0;
1230 #endif
1232 static const struct file_operations rfkill_fops = {
1233 .owner = THIS_MODULE,
1234 .open = rfkill_fop_open,
1235 .read = rfkill_fop_read,
1236 .write = rfkill_fop_write,
1237 .poll = rfkill_fop_poll,
1238 .release = rfkill_fop_release,
1239 #ifdef CONFIG_RFKILL_INPUT
1240 .unlocked_ioctl = rfkill_fop_ioctl,
1241 .compat_ioctl = rfkill_fop_ioctl,
1242 #endif
1243 .llseek = no_llseek,
1246 static struct miscdevice rfkill_miscdev = {
1247 .name = "rfkill",
1248 .fops = &rfkill_fops,
1249 .minor = MISC_DYNAMIC_MINOR,
1252 static int __init rfkill_init(void)
1254 int error;
1255 int i;
1257 for (i = 0; i < NUM_RFKILL_TYPES; i++)
1258 rfkill_global_states[i].cur = !rfkill_default_state;
1260 error = class_register(&rfkill_class);
1261 if (error)
1262 goto out;
1264 error = misc_register(&rfkill_miscdev);
1265 if (error) {
1266 class_unregister(&rfkill_class);
1267 goto out;
1270 #ifdef CONFIG_RFKILL_INPUT
1271 error = rfkill_handler_init();
1272 if (error) {
1273 misc_deregister(&rfkill_miscdev);
1274 class_unregister(&rfkill_class);
1275 goto out;
1277 #endif
1279 out:
1280 return error;
1282 subsys_initcall(rfkill_init);
1284 static void __exit rfkill_exit(void)
1286 #ifdef CONFIG_RFKILL_INPUT
1287 rfkill_handler_exit();
1288 #endif
1289 misc_deregister(&rfkill_miscdev);
1290 class_unregister(&rfkill_class);
1292 module_exit(rfkill_exit);