xref: /linux/kernel/locking/rtmutex_api.c (revision c8990f3179e5636832fc22e6a262de5d50c797e3)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * rtmutex API
4  */
5 #include <linux/spinlock.h>
6 #include <linux/export.h>
7 
8 #define RT_MUTEX_BUILD_MUTEX
9 #include "rtmutex.c"
10 
11 /*
12  * Max number of times we'll walk the boosting chain:
13  */
14 int max_lock_depth = 1024;
15 
16 static const struct ctl_table rtmutex_sysctl_table[] = {
17 	{
18 		.procname	= "max_lock_depth",
19 		.data		= &max_lock_depth,
20 		.maxlen		= sizeof(int),
21 		.mode		= 0644,
22 		.proc_handler	= proc_dointvec,
23 	},
24 };
25 
init_rtmutex_sysctl(void)26 static int __init init_rtmutex_sysctl(void)
27 {
28 	register_sysctl_init("kernel", rtmutex_sysctl_table);
29 	return 0;
30 }
31 
32 subsys_initcall(init_rtmutex_sysctl);
33 
34 /*
35  * Debug aware fast / slowpath lock,trylock,unlock
36  *
37  * The atomic acquire/release ops are compiled away, when either the
38  * architecture does not support cmpxchg or when debugging is enabled.
39  */
__rt_mutex_lock_common(struct rt_mutex * lock,unsigned int state,struct lockdep_map * nest_lock,unsigned int subclass)40 static __always_inline int __rt_mutex_lock_common(struct rt_mutex *lock,
41 						  unsigned int state,
42 						  struct lockdep_map *nest_lock,
43 						  unsigned int subclass)
44 	__cond_acquires(0, lock)
45 {
46 	int ret;
47 
48 	might_sleep();
49 	mutex_acquire_nest(&lock->dep_map, subclass, 0, nest_lock, _RET_IP_);
50 	ret = __rt_mutex_lock(&lock->rtmutex, state);
51 	if (ret)
52 		mutex_release(&lock->dep_map, _RET_IP_);
53 	return ret;
54 }
55 
rt_mutex_base_init(struct rt_mutex_base * rtb)56 void rt_mutex_base_init(struct rt_mutex_base *rtb)
57 {
58 	__rt_mutex_base_init(rtb);
59 }
60 EXPORT_SYMBOL(rt_mutex_base_init);
61 
62 #ifdef CONFIG_DEBUG_LOCK_ALLOC
63 /**
64  * rt_mutex_lock_nested - lock a rt_mutex
65  *
66  * @lock: the rt_mutex to be locked
67  * @subclass: the lockdep subclass
68  */
rt_mutex_lock_nested(struct rt_mutex * lock,unsigned int subclass)69 void __sched rt_mutex_lock_nested(struct rt_mutex *lock, unsigned int subclass)
70 {
71 	if (__rt_mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, NULL, subclass) == 0)
72 		return;
73 	/*
74 	 * The code below is never reached because __rt_mutex_lock_common() only
75 	 * returns an error code if interrupted by a signal or upon a timeout.
76 	 */
77 	WARN_ON_ONCE(true);
78 	__acquire(lock);
79 }
80 EXPORT_SYMBOL_GPL(rt_mutex_lock_nested);
81 
_rt_mutex_lock_nest_lock(struct rt_mutex * lock,struct lockdep_map * nest_lock)82 void __sched _rt_mutex_lock_nest_lock(struct rt_mutex *lock, struct lockdep_map *nest_lock)
83 {
84 	if (__rt_mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, nest_lock, 0) == 0)
85 		return;
86 	/*
87 	 * The code below is never reached because __rt_mutex_lock_common() only
88 	 * returns an error code if interrupted by a signal or upon a timeout.
89 	 */
90 	WARN_ON_ONCE(true);
91 	__acquire(lock);
92 }
93 EXPORT_SYMBOL_GPL(_rt_mutex_lock_nest_lock);
94 
95 #else /* !CONFIG_DEBUG_LOCK_ALLOC */
96 
97 /**
98  * rt_mutex_lock - lock a rt_mutex
99  *
100  * @lock: the rt_mutex to be locked
101  */
rt_mutex_lock(struct rt_mutex * lock)102 void __sched rt_mutex_lock(struct rt_mutex *lock)
103 {
104 	if (__rt_mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, NULL, 0) == 0)
105 		return;
106 	/*
107 	 * The code below is never reached because __rt_mutex_lock_common() only
108 	 * returns an error code if interrupted by a signal or upon a timeout.
109 	 */
110 	WARN_ON_ONCE(true);
111 	__acquire(lock);
112 }
113 EXPORT_SYMBOL_GPL(rt_mutex_lock);
114 #endif
115 
116 /**
117  * rt_mutex_lock_interruptible - lock a rt_mutex interruptible
118  *
119  * @lock:		the rt_mutex to be locked
120  *
121  * Returns:
122  *  0		on success
123  * -EINTR	when interrupted by a signal
124  */
rt_mutex_lock_interruptible(struct rt_mutex * lock)125 int __sched rt_mutex_lock_interruptible(struct rt_mutex *lock)
126 {
127 	return __rt_mutex_lock_common(lock, TASK_INTERRUPTIBLE, NULL, 0);
128 }
129 EXPORT_SYMBOL_GPL(rt_mutex_lock_interruptible);
130 
131 /**
132  * rt_mutex_lock_killable - lock a rt_mutex killable
133  *
134  * @lock:		the rt_mutex to be locked
135  *
136  * Returns:
137  *  0		on success
138  * -EINTR	when interrupted by a signal
139  */
rt_mutex_lock_killable(struct rt_mutex * lock)140 int __sched rt_mutex_lock_killable(struct rt_mutex *lock)
141 {
142 	return __rt_mutex_lock_common(lock, TASK_KILLABLE, NULL, 0);
143 }
144 EXPORT_SYMBOL_GPL(rt_mutex_lock_killable);
145 
146 /**
147  * rt_mutex_trylock - try to lock a rt_mutex
148  *
149  * @lock:	the rt_mutex to be locked
150  *
151  * This function can only be called in thread context. It's safe to call it
152  * from atomic regions, but not from hard or soft interrupt context.
153  *
154  * Returns:
155  *  1 on success
156  *  0 on contention
157  */
rt_mutex_trylock(struct rt_mutex * lock)158 int __sched rt_mutex_trylock(struct rt_mutex *lock)
159 {
160 	int ret;
161 
162 	if (IS_ENABLED(CONFIG_DEBUG_RT_MUTEXES) && WARN_ON_ONCE(!in_task()))
163 		return 0;
164 
165 	ret = __rt_mutex_trylock(&lock->rtmutex);
166 	if (ret)
167 		mutex_acquire(&lock->dep_map, 0, 1, _RET_IP_);
168 
169 	return ret;
170 }
171 EXPORT_SYMBOL_GPL(rt_mutex_trylock);
172 
173 /**
174  * rt_mutex_unlock - unlock a rt_mutex
175  *
176  * @lock: the rt_mutex to be unlocked
177  */
rt_mutex_unlock(struct rt_mutex * lock)178 void __sched rt_mutex_unlock(struct rt_mutex *lock)
179 {
180 	mutex_release(&lock->dep_map, _RET_IP_);
181 	__rt_mutex_unlock(&lock->rtmutex);
182 	__release(lock);
183 }
184 EXPORT_SYMBOL_GPL(rt_mutex_unlock);
185 
186 /*
187  * Futex variants, must not use fastpath.
188  */
rt_mutex_futex_trylock(struct rt_mutex_base * lock)189 int __sched rt_mutex_futex_trylock(struct rt_mutex_base *lock)
190 {
191 	return rt_mutex_slowtrylock(lock);
192 }
193 
__rt_mutex_futex_trylock(struct rt_mutex_base * lock)194 int __sched __rt_mutex_futex_trylock(struct rt_mutex_base *lock)
195 {
196 	return __rt_mutex_slowtrylock(lock);
197 }
198 
199 /**
200  * __rt_mutex_futex_unlock - Futex variant, that since futex variants
201  * do not use the fast-path, can be simple and will not need to retry.
202  *
203  * @lock:	The rt_mutex to be unlocked
204  * @wqh:	The wake queue head from which to get the next lock waiter
205  */
__rt_mutex_futex_unlock(struct rt_mutex_base * lock,struct rt_wake_q_head * wqh)206 bool __sched __rt_mutex_futex_unlock(struct rt_mutex_base *lock,
207 				     struct rt_wake_q_head *wqh)
208 	__must_hold(&lock->wait_lock)
209 {
210 	lockdep_assert_held(&lock->wait_lock);
211 
212 	debug_rt_mutex_unlock(lock);
213 
214 	if (!rt_mutex_has_waiters(lock)) {
215 		lock->owner = NULL;
216 		return false; /* done */
217 	}
218 
219 	/*
220 	 * mark_wakeup_next_waiter() deboosts and retains preemption
221 	 * disabled when dropping the wait_lock, to avoid inversion prior
222 	 * to the wakeup.  preempt_disable() therein pairs with the
223 	 * preempt_enable() in rt_mutex_postunlock().
224 	 */
225 	mark_wakeup_next_waiter(wqh, lock);
226 
227 	return true; /* call postunlock() */
228 }
229 
rt_mutex_futex_unlock(struct rt_mutex_base * lock)230 void __sched rt_mutex_futex_unlock(struct rt_mutex_base *lock)
231 {
232 	DEFINE_RT_WAKE_Q(wqh);
233 	unsigned long flags;
234 	bool postunlock;
235 
236 	raw_spin_lock_irqsave(&lock->wait_lock, flags);
237 	postunlock = __rt_mutex_futex_unlock(lock, &wqh);
238 	raw_spin_unlock_irqrestore(&lock->wait_lock, flags);
239 
240 	if (postunlock)
241 		rt_mutex_postunlock(&wqh);
242 }
243 
244 /**
245  * __rt_mutex_init - initialize the rt_mutex
246  *
247  * @lock:	The rt_mutex to be initialized
248  * @name:	The lock name used for debugging
249  * @key:	The lock class key used for debugging
250  *
251  * Initialize the rt_mutex to unlocked state.
252  *
253  * Initializing of a locked rt_mutex is not allowed
254  */
__rt_mutex_init(struct rt_mutex * lock,const char * name,struct lock_class_key * key)255 void __sched __rt_mutex_init(struct rt_mutex *lock, const char *name,
256 			     struct lock_class_key *key)
257 {
258 	debug_check_no_locks_freed((void *)lock, sizeof(*lock));
259 	__rt_mutex_base_init(&lock->rtmutex);
260 	lockdep_init_map_wait(&lock->dep_map, name, key, 0, LD_WAIT_SLEEP);
261 }
262 EXPORT_SYMBOL_GPL(__rt_mutex_init);
263 
264 /**
265  * rt_mutex_init_proxy_locked - initialize and lock a rt_mutex on behalf of a
266  *				proxy owner
267  *
268  * @lock:	the rt_mutex to be locked
269  * @proxy_owner:the task to set as owner
270  *
271  * No locking. Caller has to do serializing itself
272  *
273  * Special API call for PI-futex support. This initializes the rtmutex and
274  * assigns it to @proxy_owner. Concurrent operations on the rtmutex are not
275  * possible at this point because the pi_state which contains the rtmutex
276  * is not yet visible to other tasks.
277  */
rt_mutex_init_proxy_locked(struct rt_mutex_base * lock,struct task_struct * proxy_owner)278 void __sched rt_mutex_init_proxy_locked(struct rt_mutex_base *lock,
279 					struct task_struct *proxy_owner)
280 {
281 	static struct lock_class_key pi_futex_key;
282 
283 	__rt_mutex_base_init(lock);
284 	/*
285 	 * On PREEMPT_RT the futex hashbucket spinlock becomes 'sleeping'
286 	 * and rtmutex based. That causes a lockdep false positive, because
287 	 * some of the futex functions invoke spin_unlock(&hb->lock) with
288 	 * the wait_lock of the rtmutex associated to the pi_futex held.
289 	 * spin_unlock() in turn takes wait_lock of the rtmutex on which
290 	 * the spinlock is based, which makes lockdep notice a lock
291 	 * recursion. Give the futex/rtmutex wait_lock a separate key.
292 	 */
293 	lockdep_set_class(&lock->wait_lock, &pi_futex_key);
294 	rt_mutex_set_owner(lock, proxy_owner);
295 }
296 
297 /**
298  * rt_mutex_proxy_unlock - release a lock on behalf of owner
299  *
300  * @lock:	the rt_mutex to be locked
301  *
302  * No locking. Caller has to do serializing itself
303  *
304  * Special API call for PI-futex support. This just cleans up the rtmutex
305  * (debugging) state. Concurrent operations on this rt_mutex are not
306  * possible because it belongs to the pi_state which is about to be freed
307  * and it is not longer visible to other tasks.
308  */
rt_mutex_proxy_unlock(struct rt_mutex_base * lock)309 void __sched rt_mutex_proxy_unlock(struct rt_mutex_base *lock)
310 {
311 	debug_rt_mutex_proxy_unlock(lock);
312 	rt_mutex_clear_owner(lock);
313 }
314 
315 /**
316  * __rt_mutex_start_proxy_lock() - Start lock acquisition for another task
317  * @lock:		the rt_mutex to take
318  * @waiter:		the pre-initialized rt_mutex_waiter
319  * @task:		the task to prepare
320  * @wake_q:		the wake_q to wake tasks after we release the wait_lock
321  *
322  * Starts the rt_mutex acquire; it enqueues the @waiter and does deadlock
323  * detection. It does not wait, see rt_mutex_wait_proxy_lock() for that.
324  *
325  * NOTE: does _NOT_ remove the @waiter on failure; must either call
326  * rt_mutex_wait_proxy_lock() or rt_mutex_cleanup_proxy_lock() after this.
327  *
328  * Returns:
329  *  0 - task blocked on lock
330  *  1 - acquired the lock for task, caller should wake it up
331  * <0 - error
332  *
333  * Special API call for PI-futex support.
334  */
__rt_mutex_start_proxy_lock(struct rt_mutex_base * lock,struct rt_mutex_waiter * waiter,struct task_struct * task,struct wake_q_head * wake_q)335 int __sched __rt_mutex_start_proxy_lock(struct rt_mutex_base *lock,
336 					struct rt_mutex_waiter *waiter,
337 					struct task_struct *task,
338 					struct wake_q_head *wake_q)
339 	__must_hold(&lock->wait_lock)
340 {
341 	int ret;
342 
343 	lockdep_assert_held(&lock->wait_lock);
344 
345 	if (try_to_take_rt_mutex(lock, task, NULL))
346 		return 1;
347 
348 	/* We enforce deadlock detection for futexes */
349 	ret = task_blocks_on_rt_mutex(lock, waiter, task, NULL,
350 				      RT_MUTEX_FULL_CHAINWALK, wake_q);
351 
352 	if (ret && !rt_mutex_owner(lock)) {
353 		/*
354 		 * Reset the return value. We might have
355 		 * returned with -EDEADLK and the owner
356 		 * released the lock while we were walking the
357 		 * pi chain.  Let the waiter sort it out.
358 		 */
359 		ret = 0;
360 	}
361 
362 	return ret;
363 }
364 
365 /**
366  * rt_mutex_start_proxy_lock() - Start lock acquisition for another task
367  * @lock:		the rt_mutex to take
368  * @waiter:		the pre-initialized rt_mutex_waiter
369  * @task:		the task to prepare
370  *
371  * Starts the rt_mutex acquire; it enqueues the @waiter and does deadlock
372  * detection. It does not wait, see rt_mutex_wait_proxy_lock() for that.
373  *
374  * NOTE: unlike __rt_mutex_start_proxy_lock this _DOES_ remove the @waiter
375  * on failure.
376  *
377  * Returns:
378  *  0 - task blocked on lock
379  *  1 - acquired the lock for task, caller should wake it up
380  * <0 - error
381  *
382  * Special API call for PI-futex support.
383  */
rt_mutex_start_proxy_lock(struct rt_mutex_base * lock,struct rt_mutex_waiter * waiter,struct task_struct * task)384 int __sched rt_mutex_start_proxy_lock(struct rt_mutex_base *lock,
385 				      struct rt_mutex_waiter *waiter,
386 				      struct task_struct *task)
387 {
388 	int ret;
389 	DEFINE_WAKE_Q(wake_q);
390 
391 	raw_spin_lock_irq(&lock->wait_lock);
392 	ret = __rt_mutex_start_proxy_lock(lock, waiter, task, &wake_q);
393 	if (unlikely(ret < 0))
394 		remove_waiter(lock, waiter);
395 	preempt_disable();
396 	raw_spin_unlock_irq(&lock->wait_lock);
397 	wake_up_q(&wake_q);
398 	preempt_enable();
399 
400 	return ret;
401 }
402 
403 /**
404  * rt_mutex_wait_proxy_lock() - Wait for lock acquisition
405  * @lock:		the rt_mutex we were woken on
406  * @to:			the timeout, null if none. hrtimer should already have
407  *			been started.
408  * @waiter:		the pre-initialized rt_mutex_waiter
409  *
410  * Wait for the lock acquisition started on our behalf by
411  * rt_mutex_start_proxy_lock(). Upon failure, the caller must call
412  * rt_mutex_cleanup_proxy_lock().
413  *
414  * Returns:
415  *  0 - success
416  * <0 - error, one of -EINTR, -ETIMEDOUT
417  *
418  * Special API call for PI-futex support
419  */
rt_mutex_wait_proxy_lock(struct rt_mutex_base * lock,struct hrtimer_sleeper * to,struct rt_mutex_waiter * waiter)420 int __sched rt_mutex_wait_proxy_lock(struct rt_mutex_base *lock,
421 				     struct hrtimer_sleeper *to,
422 				     struct rt_mutex_waiter *waiter)
423 {
424 	int ret;
425 
426 	rt_mutex_futex_pre_schedule();
427 	raw_spin_lock_irq(&lock->wait_lock);
428 	/* sleep on the mutex */
429 	set_current_state(TASK_INTERRUPTIBLE);
430 	ret = rt_mutex_slowlock_block(lock, NULL, TASK_INTERRUPTIBLE, to, waiter, NULL);
431 	/*
432 	 * try_to_take_rt_mutex() sets the waiter bit unconditionally. We might
433 	 * have to fix that up.
434 	 */
435 	fixup_rt_mutex_waiters(lock, true);
436 	raw_spin_unlock_irq(&lock->wait_lock);
437 	rt_mutex_futex_post_schedule();
438 
439 	return ret;
440 }
441 
442 /**
443  * rt_mutex_cleanup_proxy_lock() - Cleanup failed lock acquisition
444  * @lock:		the rt_mutex we were woken on
445  * @waiter:		the pre-initialized rt_mutex_waiter
446  *
447  * Attempt to clean up after a failed __rt_mutex_start_proxy_lock() or
448  * rt_mutex_wait_proxy_lock().
449  *
450  * Unless we acquired the lock; we're still enqueued on the wait-list and can
451  * in fact still be granted ownership until we're removed. Therefore we can
452  * find we are in fact the owner and must disregard the
453  * rt_mutex_wait_proxy_lock() failure.
454  *
455  * Returns:
456  *  true  - did the cleanup, we done.
457  *  false - we acquired the lock after rt_mutex_wait_proxy_lock() returned,
458  *          caller should disregards its return value.
459  *
460  * Special API call for PI-futex support
461  */
rt_mutex_cleanup_proxy_lock(struct rt_mutex_base * lock,struct rt_mutex_waiter * waiter)462 bool __sched rt_mutex_cleanup_proxy_lock(struct rt_mutex_base *lock,
463 					 struct rt_mutex_waiter *waiter)
464 {
465 	bool cleanup = false;
466 
467 	raw_spin_lock_irq(&lock->wait_lock);
468 	/*
469 	 * Do an unconditional try-lock, this deals with the lock stealing
470 	 * state where __rt_mutex_futex_unlock() -> mark_wakeup_next_waiter()
471 	 * sets a NULL owner.
472 	 *
473 	 * We're not interested in the return value, because the subsequent
474 	 * test on rt_mutex_owner() will infer that. If the trylock succeeded,
475 	 * we will own the lock and it will have removed the waiter. If we
476 	 * failed the trylock, we're still not owner and we need to remove
477 	 * ourselves.
478 	 */
479 	try_to_take_rt_mutex(lock, current, waiter);
480 	/*
481 	 * Unless we're the owner; we're still enqueued on the wait_list.
482 	 * So check if we became owner, if not, take us off the wait_list.
483 	 */
484 	if (rt_mutex_owner(lock) != current) {
485 		remove_waiter(lock, waiter);
486 		cleanup = true;
487 	}
488 	/*
489 	 * try_to_take_rt_mutex() sets the waiter bit unconditionally. We might
490 	 * have to fix that up.
491 	 */
492 	fixup_rt_mutex_waiters(lock, false);
493 
494 	raw_spin_unlock_irq(&lock->wait_lock);
495 
496 	return cleanup;
497 }
498 
499 /*
500  * Recheck the pi chain, in case we got a priority setting
501  *
502  * Called from sched_setscheduler
503  */
rt_mutex_adjust_pi(struct task_struct * task)504 void __sched rt_mutex_adjust_pi(struct task_struct *task)
505 {
506 	struct rt_mutex_waiter *waiter;
507 	struct rt_mutex_base *next_lock;
508 	unsigned long flags;
509 
510 	raw_spin_lock_irqsave(&task->pi_lock, flags);
511 
512 	waiter = task->pi_blocked_on;
513 	if (!waiter || rt_waiter_node_equal(&waiter->tree, task_to_waiter_node(task))) {
514 		raw_spin_unlock_irqrestore(&task->pi_lock, flags);
515 		return;
516 	}
517 	next_lock = waiter->lock;
518 	raw_spin_unlock_irqrestore(&task->pi_lock, flags);
519 
520 	/* gets dropped in rt_mutex_adjust_prio_chain()! */
521 	get_task_struct(task);
522 
523 	rt_mutex_adjust_prio_chain(task, RT_MUTEX_MIN_CHAINWALK, NULL,
524 				   next_lock, NULL, task);
525 }
526 
527 /*
528  * Performs the wakeup of the top-waiter and re-enables preemption.
529  */
rt_mutex_postunlock(struct rt_wake_q_head * wqh)530 void __sched rt_mutex_postunlock(struct rt_wake_q_head *wqh)
531 {
532 	rt_mutex_wake_up_q(wqh);
533 }
534 
535 #ifdef CONFIG_DEBUG_RT_MUTEXES
rt_mutex_debug_task_free(struct task_struct * task)536 void rt_mutex_debug_task_free(struct task_struct *task)
537 {
538 	DEBUG_LOCKS_WARN_ON(!RB_EMPTY_ROOT(&task->pi_waiters.rb_root));
539 	DEBUG_LOCKS_WARN_ON(task->pi_blocked_on);
540 }
541 #endif
542 
543 #ifdef CONFIG_PREEMPT_RT
544 /* Mutexes */
__mutex_rt_init_generic(struct mutex * mutex)545 static void __mutex_rt_init_generic(struct mutex *mutex)
546 {
547 	rt_mutex_base_init(&mutex->rtmutex);
548 	debug_check_no_locks_freed((void *)mutex, sizeof(*mutex));
549 }
550 
__mutex_lock_common(struct mutex * lock,unsigned int state,unsigned int subclass,struct lockdep_map * nest_lock,unsigned long ip)551 static __always_inline int __mutex_lock_common(struct mutex *lock,
552 					       unsigned int state,
553 					       unsigned int subclass,
554 					       struct lockdep_map *nest_lock,
555 					       unsigned long ip)
556 	__acquires(lock) __no_context_analysis
557 {
558 	int ret;
559 
560 	might_sleep();
561 	mutex_acquire_nest(&lock->dep_map, subclass, 0, nest_lock, ip);
562 	ret = __rt_mutex_lock(&lock->rtmutex, state);
563 	if (ret)
564 		mutex_release(&lock->dep_map, ip);
565 	else
566 		lock_acquired(&lock->dep_map, ip);
567 	return ret;
568 }
569 
570 #ifdef CONFIG_DEBUG_LOCK_ALLOC
mutex_rt_init_lockdep(struct mutex * mutex,const char * name,struct lock_class_key * key)571 void mutex_rt_init_lockdep(struct mutex *mutex, const char *name, struct lock_class_key *key)
572 {
573 	__mutex_rt_init_generic(mutex);
574 	lockdep_init_map_wait(&mutex->dep_map, name, key, 0, LD_WAIT_SLEEP);
575 }
576 EXPORT_SYMBOL(mutex_rt_init_lockdep);
577 
mutex_lock_nested(struct mutex * lock,unsigned int subclass)578 void __sched mutex_lock_nested(struct mutex *lock, unsigned int subclass)
579 {
580 	__mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, subclass, NULL, _RET_IP_);
581 }
582 EXPORT_SYMBOL_GPL(mutex_lock_nested);
583 
_mutex_lock_nest_lock(struct mutex * lock,struct lockdep_map * nest_lock)584 void __sched _mutex_lock_nest_lock(struct mutex *lock,
585 				   struct lockdep_map *nest_lock)
586 {
587 	__mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, 0, nest_lock, _RET_IP_);
588 }
589 EXPORT_SYMBOL_GPL(_mutex_lock_nest_lock);
590 
mutex_lock_interruptible_nested(struct mutex * lock,unsigned int subclass)591 int __sched mutex_lock_interruptible_nested(struct mutex *lock,
592 					    unsigned int subclass)
593 {
594 	return __mutex_lock_common(lock, TASK_INTERRUPTIBLE, subclass, NULL, _RET_IP_);
595 }
596 EXPORT_SYMBOL_GPL(mutex_lock_interruptible_nested);
597 
_mutex_lock_killable(struct mutex * lock,unsigned int subclass,struct lockdep_map * nest_lock)598 int __sched _mutex_lock_killable(struct mutex *lock, unsigned int subclass,
599 				 struct lockdep_map *nest_lock)
600 {
601 	return __mutex_lock_common(lock, TASK_KILLABLE, subclass, nest_lock, _RET_IP_);
602 }
603 EXPORT_SYMBOL_GPL(_mutex_lock_killable);
604 
mutex_lock_io_nested(struct mutex * lock,unsigned int subclass)605 void __sched mutex_lock_io_nested(struct mutex *lock, unsigned int subclass)
606 {
607 	int token;
608 
609 	might_sleep();
610 
611 	token = io_schedule_prepare();
612 	__mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, subclass, NULL, _RET_IP_);
613 	io_schedule_finish(token);
614 }
615 EXPORT_SYMBOL_GPL(mutex_lock_io_nested);
616 
_mutex_trylock_nest_lock(struct mutex * lock,struct lockdep_map * nest_lock)617 int __sched _mutex_trylock_nest_lock(struct mutex *lock,
618 				     struct lockdep_map *nest_lock)
619 {
620 	int ret;
621 
622 	if (IS_ENABLED(CONFIG_DEBUG_RT_MUTEXES) && WARN_ON_ONCE(!in_task()))
623 		return 0;
624 
625 	ret = __rt_mutex_trylock(&lock->rtmutex);
626 	if (ret)
627 		mutex_acquire_nest(&lock->dep_map, 0, 1, nest_lock, _RET_IP_);
628 
629 	return ret;
630 }
631 EXPORT_SYMBOL_GPL(_mutex_trylock_nest_lock);
632 #else /* CONFIG_DEBUG_LOCK_ALLOC */
633 
mutex_rt_init_generic(struct mutex * mutex)634 void mutex_rt_init_generic(struct mutex *mutex)
635 {
636 	__mutex_rt_init_generic(mutex);
637 }
638 EXPORT_SYMBOL(mutex_rt_init_generic);
639 
mutex_lock(struct mutex * lock)640 void __sched mutex_lock(struct mutex *lock)
641 {
642 	__mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, 0, NULL, _RET_IP_);
643 }
644 EXPORT_SYMBOL(mutex_lock);
645 
mutex_lock_interruptible(struct mutex * lock)646 int __sched mutex_lock_interruptible(struct mutex *lock)
647 {
648 	return __mutex_lock_common(lock, TASK_INTERRUPTIBLE, 0, NULL, _RET_IP_);
649 }
650 EXPORT_SYMBOL(mutex_lock_interruptible);
651 
mutex_lock_killable(struct mutex * lock)652 int __sched mutex_lock_killable(struct mutex *lock)
653 {
654 	return __mutex_lock_common(lock, TASK_KILLABLE, 0, NULL, _RET_IP_);
655 }
656 EXPORT_SYMBOL(mutex_lock_killable);
657 
mutex_lock_io(struct mutex * lock)658 void __sched mutex_lock_io(struct mutex *lock)
659 {
660 	int token = io_schedule_prepare();
661 
662 	__mutex_lock_common(lock, TASK_UNINTERRUPTIBLE, 0, NULL, _RET_IP_);
663 	io_schedule_finish(token);
664 }
665 EXPORT_SYMBOL(mutex_lock_io);
666 
mutex_trylock(struct mutex * lock)667 int __sched mutex_trylock(struct mutex *lock)
668 {
669 	if (IS_ENABLED(CONFIG_DEBUG_RT_MUTEXES) && WARN_ON_ONCE(!in_task()))
670 		return 0;
671 
672 	return __rt_mutex_trylock(&lock->rtmutex);
673 }
674 EXPORT_SYMBOL(mutex_trylock);
675 #endif /* !CONFIG_DEBUG_LOCK_ALLOC */
676 
mutex_unlock(struct mutex * lock)677 void __sched mutex_unlock(struct mutex *lock)
678 	__releases(lock) __no_context_analysis
679 {
680 	mutex_release(&lock->dep_map, _RET_IP_);
681 	__rt_mutex_unlock(&lock->rtmutex);
682 }
683 EXPORT_SYMBOL(mutex_unlock);
684 
685 #endif /* CONFIG_PREEMPT_RT */
686