xref: /linux/drivers/base/power/main.c (revision f4cdf7ca9a1fdcca413157df19753f388a5a224e)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * drivers/base/power/main.c - Where the driver meets power management.
4  *
5  * Copyright (c) 2003 Patrick Mochel
6  * Copyright (c) 2003 Open Source Development Lab
7  *
8  * The driver model core calls device_pm_add() when a device is registered.
9  * This will initialize the embedded device_pm_info object in the device
10  * and add it to the list of power-controlled devices. sysfs entries for
11  * controlling device power management will also be added.
12  *
13  * A separate list is used for keeping track of power info, because the power
14  * domain dependencies may differ from the ancestral dependencies that the
15  * subsystem list maintains.
16  */
17 
18 #define pr_fmt(fmt) "PM: " fmt
19 #define dev_fmt pr_fmt
20 
21 #include <linux/device.h>
22 #include <linux/export.h>
23 #include <linux/mutex.h>
24 #include <linux/pm.h>
25 #include <linux/pm_runtime.h>
26 #include <linux/pm-trace.h>
27 #include <linux/pm_wakeirq.h>
28 #include <linux/interrupt.h>
29 #include <linux/sched.h>
30 #include <linux/sched/debug.h>
31 #include <linux/sysctl.h>
32 #include <linux/async.h>
33 #include <linux/suspend.h>
34 #include <trace/events/power.h>
35 #include <linux/cpufreq.h>
36 #include <linux/devfreq.h>
37 #include <linux/thermal.h>
38 #include <linux/timer.h>
39 #include <linux/nmi.h>
40 
41 #include "../base.h"
42 #include "power.h"
43 
44 #undef MODULE_PARAM_PREFIX
45 #define MODULE_PARAM_PREFIX "pm."
46 
47 typedef int (*pm_callback_t)(struct device *);
48 
49 /*
50  * The entries in the dpm_list list are in a depth first order, simply
51  * because children are guaranteed to be discovered after parents, and
52  * are inserted at the back of the list on discovery.
53  *
54  * Since device_pm_add() may be called with a device lock held,
55  * we must never try to acquire a device lock while holding
56  * dpm_list_mutex.
57  */
58 
59 LIST_HEAD(dpm_list);
60 static LIST_HEAD(dpm_prepared_list);
61 static LIST_HEAD(dpm_suspended_list);
62 static LIST_HEAD(dpm_late_early_list);
63 static LIST_HEAD(dpm_noirq_list);
64 
65 static DEFINE_MUTEX(dpm_list_mtx);
66 static pm_message_t pm_transition;
67 
68 static DEFINE_MUTEX(async_wip_mtx);
69 static int async_error;
70 
71 /**
72  * pm_hibernate_is_recovering - if recovering from hibernate due to error.
73  *
74  * Used to query if dev_pm_ops.thaw() is called for normal hibernation case or
75  * recovering from some error.
76  *
77  * Return: true for error case, false for normal case.
78  */
79 bool pm_hibernate_is_recovering(void)
80 {
81 	return pm_transition.event == PM_EVENT_RECOVER;
82 }
83 EXPORT_SYMBOL_GPL(pm_hibernate_is_recovering);
84 
85 static const char *pm_verb(int event)
86 {
87 	switch (event) {
88 	case PM_EVENT_SUSPEND:
89 		return "suspend";
90 	case PM_EVENT_RESUME:
91 		return "resume";
92 	case PM_EVENT_FREEZE:
93 		return "freeze";
94 	case PM_EVENT_QUIESCE:
95 		return "quiesce";
96 	case PM_EVENT_HIBERNATE:
97 		return "hibernate";
98 	case PM_EVENT_THAW:
99 		return "thaw";
100 	case PM_EVENT_RESTORE:
101 		return "restore";
102 	case PM_EVENT_RECOVER:
103 		return "recover";
104 	case PM_EVENT_POWEROFF:
105 		return "poweroff";
106 	default:
107 		return "(unknown PM event)";
108 	}
109 }
110 
111 /**
112  * device_pm_sleep_init - Initialize system suspend-related device fields.
113  * @dev: Device object being initialized.
114  */
115 void device_pm_sleep_init(struct device *dev)
116 {
117 	dev->power.is_prepared = false;
118 	dev->power.is_suspended = false;
119 	dev->power.is_noirq_suspended = false;
120 	dev->power.is_late_suspended = false;
121 	init_completion(&dev->power.completion);
122 	complete(&dev->power.completion);
123 	dev->power.wakeup = NULL;
124 	INIT_LIST_HEAD(&dev->power.entry);
125 }
126 
127 /**
128  * device_pm_lock - Lock the list of active devices used by the PM core.
129  */
130 void device_pm_lock(void)
131 {
132 	mutex_lock(&dpm_list_mtx);
133 }
134 
135 /**
136  * device_pm_unlock - Unlock the list of active devices used by the PM core.
137  */
138 void device_pm_unlock(void)
139 {
140 	mutex_unlock(&dpm_list_mtx);
141 }
142 
143 /**
144  * device_pm_add - Add a device to the PM core's list of active devices.
145  * @dev: Device to add to the list.
146  */
147 void device_pm_add(struct device *dev)
148 {
149 	/* Skip PM setup/initialization. */
150 	if (device_pm_not_required(dev))
151 		return;
152 
153 	pr_debug("Adding info for %s:%s\n",
154 		 dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
155 	device_pm_check_callbacks(dev);
156 	mutex_lock(&dpm_list_mtx);
157 	if (dev->parent && dev->parent->power.is_prepared)
158 		dev_warn(dev, "parent %s should not be sleeping\n",
159 			dev_name(dev->parent));
160 	list_add_tail(&dev->power.entry, &dpm_list);
161 	dev->power.in_dpm_list = true;
162 	mutex_unlock(&dpm_list_mtx);
163 }
164 
165 /**
166  * device_pm_remove - Remove a device from the PM core's list of active devices.
167  * @dev: Device to be removed from the list.
168  */
169 void device_pm_remove(struct device *dev)
170 {
171 	if (device_pm_not_required(dev))
172 		return;
173 
174 	pr_debug("Removing info for %s:%s\n",
175 		 dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
176 	complete_all(&dev->power.completion);
177 	mutex_lock(&dpm_list_mtx);
178 	list_del_init(&dev->power.entry);
179 	dev->power.in_dpm_list = false;
180 	mutex_unlock(&dpm_list_mtx);
181 	device_wakeup_disable(dev);
182 	pm_runtime_remove(dev);
183 	device_pm_check_callbacks(dev);
184 }
185 
186 /**
187  * device_pm_move_before - Move device in the PM core's list of active devices.
188  * @deva: Device to move in dpm_list.
189  * @devb: Device @deva should come before.
190  */
191 void device_pm_move_before(struct device *deva, struct device *devb)
192 {
193 	pr_debug("Moving %s:%s before %s:%s\n",
194 		 deva->bus ? deva->bus->name : "No Bus", dev_name(deva),
195 		 devb->bus ? devb->bus->name : "No Bus", dev_name(devb));
196 	/* Delete deva from dpm_list and reinsert before devb. */
197 	list_move_tail(&deva->power.entry, &devb->power.entry);
198 }
199 
200 /**
201  * device_pm_move_after - Move device in the PM core's list of active devices.
202  * @deva: Device to move in dpm_list.
203  * @devb: Device @deva should come after.
204  */
205 void device_pm_move_after(struct device *deva, struct device *devb)
206 {
207 	pr_debug("Moving %s:%s after %s:%s\n",
208 		 deva->bus ? deva->bus->name : "No Bus", dev_name(deva),
209 		 devb->bus ? devb->bus->name : "No Bus", dev_name(devb));
210 	/* Delete deva from dpm_list and reinsert after devb. */
211 	list_move(&deva->power.entry, &devb->power.entry);
212 }
213 
214 /**
215  * device_pm_move_last - Move device to end of the PM core's list of devices.
216  * @dev: Device to move in dpm_list.
217  */
218 void device_pm_move_last(struct device *dev)
219 {
220 	pr_debug("Moving %s:%s to end of list\n",
221 		 dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
222 	list_move_tail(&dev->power.entry, &dpm_list);
223 }
224 
225 static ktime_t initcall_debug_start(struct device *dev, void *cb)
226 {
227 	if (!pm_print_times_enabled)
228 		return 0;
229 
230 	dev_info(dev, "calling %ps @ %i, parent: %s\n", cb,
231 		 task_pid_nr(current),
232 		 dev->parent ? dev_name(dev->parent) : "none");
233 	return ktime_get();
234 }
235 
236 static void initcall_debug_report(struct device *dev, ktime_t calltime,
237 				  void *cb, int error)
238 {
239 	ktime_t rettime;
240 
241 	if (!pm_print_times_enabled)
242 		return;
243 
244 	rettime = ktime_get();
245 	dev_info(dev, "%ps returned %d after %Ld usecs\n", cb, error,
246 		 (unsigned long long)ktime_us_delta(rettime, calltime));
247 }
248 
249 /**
250  * dpm_wait - Wait for a PM operation to complete.
251  * @dev: Device to wait for.
252  * @async: If unset, wait only if the device's power.async_suspend flag is set.
253  */
254 static void dpm_wait(struct device *dev, bool async)
255 {
256 	if (!dev)
257 		return;
258 
259 	/* Devices with no PM support don't use the completion. */
260 	if (dev->power.no_pm)
261 		return;
262 
263 	if (async || (pm_async_enabled && dev->power.async_suspend))
264 		wait_for_completion(&dev->power.completion);
265 }
266 
267 static int dpm_wait_fn(struct device *dev, void *async_ptr)
268 {
269 	dpm_wait(dev, *((bool *)async_ptr));
270 	return 0;
271 }
272 
273 static void dpm_wait_for_children(struct device *dev, bool async)
274 {
275 	device_for_each_child(dev, &async, dpm_wait_fn);
276 }
277 
278 static void dpm_wait_for_suppliers(struct device *dev, bool async)
279 {
280 	struct device_link *link;
281 	int idx;
282 
283 	idx = device_links_read_lock();
284 
285 	/*
286 	 * If the supplier goes away right after we've checked the link to it,
287 	 * we'll wait for its completion to change the state, but that's fine,
288 	 * because the only things that will block as a result are the SRCU
289 	 * callbacks freeing the link objects for the links in the list we're
290 	 * walking.
291 	 */
292 	dev_for_each_link_to_supplier(link, dev)
293 		if (READ_ONCE(link->status) != DL_STATE_DORMANT &&
294 		    !device_link_flag_is_sync_state_only(link->flags))
295 			dpm_wait(link->supplier, async);
296 
297 	device_links_read_unlock(idx);
298 }
299 
300 static bool dpm_wait_for_superior(struct device *dev, bool async)
301 {
302 	struct device *parent;
303 
304 	/*
305 	 * If the device is resumed asynchronously and the parent's callback
306 	 * deletes both the device and the parent itself, the parent object may
307 	 * be freed while this function is running, so avoid that by reference
308 	 * counting the parent once more unless the device has been deleted
309 	 * already (in which case return right away).
310 	 */
311 	mutex_lock(&dpm_list_mtx);
312 
313 	if (!device_pm_initialized(dev)) {
314 		mutex_unlock(&dpm_list_mtx);
315 		return false;
316 	}
317 
318 	parent = get_device(dev->parent);
319 
320 	mutex_unlock(&dpm_list_mtx);
321 
322 	dpm_wait(parent, async);
323 	put_device(parent);
324 
325 	dpm_wait_for_suppliers(dev, async);
326 
327 	/*
328 	 * If the parent's callback has deleted the device, attempting to resume
329 	 * it would be invalid, so avoid doing that then.
330 	 */
331 	return device_pm_initialized(dev);
332 }
333 
334 static void dpm_wait_for_consumers(struct device *dev, bool async)
335 {
336 	struct device_link *link;
337 	int idx;
338 
339 	idx = device_links_read_lock();
340 
341 	/*
342 	 * The status of a device link can only be changed from "dormant" by a
343 	 * probe, but that cannot happen during system suspend/resume.  In
344 	 * theory it can change to "dormant" at that time, but then it is
345 	 * reasonable to wait for the target device anyway (eg. if it goes
346 	 * away, it's better to wait for it to go away completely and then
347 	 * continue instead of trying to continue in parallel with its
348 	 * unregistration).
349 	 */
350 	dev_for_each_link_to_consumer(link, dev)
351 		if (READ_ONCE(link->status) != DL_STATE_DORMANT &&
352 		    !device_link_flag_is_sync_state_only(link->flags))
353 			dpm_wait(link->consumer, async);
354 
355 	device_links_read_unlock(idx);
356 }
357 
358 static void dpm_wait_for_subordinate(struct device *dev, bool async)
359 {
360 	dpm_wait_for_children(dev, async);
361 	dpm_wait_for_consumers(dev, async);
362 }
363 
364 /**
365  * pm_op - Return the PM operation appropriate for given PM event.
366  * @ops: PM operations to choose from.
367  * @state: PM transition of the system being carried out.
368  */
369 static pm_callback_t pm_op(const struct dev_pm_ops *ops, pm_message_t state)
370 {
371 	switch (state.event) {
372 #ifdef CONFIG_SUSPEND
373 	case PM_EVENT_SUSPEND:
374 		return ops->suspend;
375 	case PM_EVENT_RESUME:
376 		return ops->resume;
377 #endif /* CONFIG_SUSPEND */
378 #ifdef CONFIG_HIBERNATE_CALLBACKS
379 	case PM_EVENT_FREEZE:
380 	case PM_EVENT_QUIESCE:
381 		return ops->freeze;
382 	case PM_EVENT_POWEROFF:
383 	case PM_EVENT_HIBERNATE:
384 		return ops->poweroff;
385 	case PM_EVENT_THAW:
386 	case PM_EVENT_RECOVER:
387 		return ops->thaw;
388 	case PM_EVENT_RESTORE:
389 		return ops->restore;
390 #endif /* CONFIG_HIBERNATE_CALLBACKS */
391 	}
392 
393 	return NULL;
394 }
395 
396 /**
397  * pm_late_early_op - Return the PM operation appropriate for given PM event.
398  * @ops: PM operations to choose from.
399  * @state: PM transition of the system being carried out.
400  *
401  * Runtime PM is disabled for @dev while this function is being executed.
402  */
403 static pm_callback_t pm_late_early_op(const struct dev_pm_ops *ops,
404 				      pm_message_t state)
405 {
406 	switch (state.event) {
407 #ifdef CONFIG_SUSPEND
408 	case PM_EVENT_SUSPEND:
409 		return ops->suspend_late;
410 	case PM_EVENT_RESUME:
411 		return ops->resume_early;
412 #endif /* CONFIG_SUSPEND */
413 #ifdef CONFIG_HIBERNATE_CALLBACKS
414 	case PM_EVENT_FREEZE:
415 	case PM_EVENT_QUIESCE:
416 		return ops->freeze_late;
417 	case PM_EVENT_POWEROFF:
418 	case PM_EVENT_HIBERNATE:
419 		return ops->poweroff_late;
420 	case PM_EVENT_THAW:
421 	case PM_EVENT_RECOVER:
422 		return ops->thaw_early;
423 	case PM_EVENT_RESTORE:
424 		return ops->restore_early;
425 #endif /* CONFIG_HIBERNATE_CALLBACKS */
426 	}
427 
428 	return NULL;
429 }
430 
431 /**
432  * pm_noirq_op - Return the PM operation appropriate for given PM event.
433  * @ops: PM operations to choose from.
434  * @state: PM transition of the system being carried out.
435  *
436  * The driver of @dev will not receive interrupts while this function is being
437  * executed.
438  */
439 static pm_callback_t pm_noirq_op(const struct dev_pm_ops *ops, pm_message_t state)
440 {
441 	switch (state.event) {
442 #ifdef CONFIG_SUSPEND
443 	case PM_EVENT_SUSPEND:
444 		return ops->suspend_noirq;
445 	case PM_EVENT_RESUME:
446 		return ops->resume_noirq;
447 #endif /* CONFIG_SUSPEND */
448 #ifdef CONFIG_HIBERNATE_CALLBACKS
449 	case PM_EVENT_FREEZE:
450 	case PM_EVENT_QUIESCE:
451 		return ops->freeze_noirq;
452 	case PM_EVENT_POWEROFF:
453 	case PM_EVENT_HIBERNATE:
454 		return ops->poweroff_noirq;
455 	case PM_EVENT_THAW:
456 	case PM_EVENT_RECOVER:
457 		return ops->thaw_noirq;
458 	case PM_EVENT_RESTORE:
459 		return ops->restore_noirq;
460 #endif /* CONFIG_HIBERNATE_CALLBACKS */
461 	}
462 
463 	return NULL;
464 }
465 
466 static void pm_dev_dbg(struct device *dev, pm_message_t state, const char *info)
467 {
468 	dev_dbg(dev, "%s%s%s driver flags: %x\n", info, pm_verb(state.event),
469 		((state.event & PM_EVENT_SLEEP) && device_may_wakeup(dev)) ?
470 		", may wakeup" : "", dev->power.driver_flags);
471 }
472 
473 static void pm_dev_err(struct device *dev, pm_message_t state, const char *info,
474 			int error)
475 {
476 	dev_err(dev, "failed to %s%s: error %d\n", pm_verb(state.event), info,
477 		error);
478 }
479 
480 static void dpm_show_time(ktime_t starttime, pm_message_t state, int error,
481 			  const char *info)
482 {
483 	ktime_t calltime;
484 	u64 usecs64;
485 	int usecs;
486 
487 	calltime = ktime_get();
488 	usecs64 = ktime_to_ns(ktime_sub(calltime, starttime));
489 	do_div(usecs64, NSEC_PER_USEC);
490 	usecs = usecs64;
491 	if (usecs == 0)
492 		usecs = 1;
493 
494 	pm_pr_dbg("%s%s%s of devices %s after %ld.%03ld msecs\n",
495 		  info ?: "", info ? " " : "", pm_verb(state.event),
496 		  error ? "aborted" : "complete",
497 		  usecs / USEC_PER_MSEC, usecs % USEC_PER_MSEC);
498 }
499 
500 static int dpm_run_callback(pm_callback_t cb, struct device *dev,
501 			    pm_message_t state, const char *info)
502 {
503 	ktime_t calltime;
504 	int error;
505 
506 	if (!cb)
507 		return 0;
508 
509 	calltime = initcall_debug_start(dev, cb);
510 
511 	pm_dev_dbg(dev, state, info);
512 	trace_device_pm_callback_start(dev, info, state.event);
513 	error = cb(dev);
514 	trace_device_pm_callback_end(dev, error);
515 	suspend_report_result(dev, cb, error);
516 
517 	initcall_debug_report(dev, calltime, cb, error);
518 
519 	return error;
520 }
521 
522 #ifdef CONFIG_DPM_WATCHDOG
523 struct dpm_watchdog {
524 	struct device		*dev;
525 	struct task_struct	*tsk;
526 	struct timer_list	timer;
527 	bool			fatal;
528 };
529 
530 #define DECLARE_DPM_WATCHDOG_ON_STACK(wd) \
531 	struct dpm_watchdog wd
532 
533 static bool __read_mostly dpm_watchdog_all_cpu_backtrace;
534 module_param(dpm_watchdog_all_cpu_backtrace, bool, 0644);
535 MODULE_PARM_DESC(dpm_watchdog_all_cpu_backtrace,
536 		 "Backtrace all CPUs on DPM watchdog timeout");
537 
538 static bool __read_mostly dpm_watchdog_enabled =
539 				IS_ENABLED(CONFIG_DPM_WATCHDOG_ENABLED);
540 module_param(dpm_watchdog_enabled, bool, 0644);
541 MODULE_PARM_DESC(dpm_watchdog_enabled, "Enable DPM watchdog");
542 
543 static unsigned int __read_mostly dpm_watchdog_timeout = CONFIG_DPM_WATCHDOG_TIMEOUT;
544 static unsigned int __read_mostly dpm_watchdog_warning_timeout =
545 						CONFIG_DPM_WATCHDOG_WARNING_TIMEOUT;
546 static const unsigned int dpm_watchdog_timeout_max = CONFIG_DPM_WATCHDOG_TIMEOUT;
547 
548 static int proc_dodpm_watchdog_timeout_secs(const struct ctl_table *table,
549 					    int write, void *buffer,
550 					    size_t *lenp, loff_t *ppos)
551 {
552 	struct ctl_table ctl = *table;
553 	unsigned int val = dpm_watchdog_timeout;
554 	int ret;
555 
556 	ctl.data = &val;
557 	ret = proc_douintvec_minmax(&ctl, write, buffer, lenp, ppos);
558 	if (ret || !write)
559 		return ret;
560 
561 	if (val < dpm_watchdog_warning_timeout)
562 		dpm_watchdog_warning_timeout = val;
563 	dpm_watchdog_timeout = val;
564 
565 	return 0;
566 }
567 
568 static const struct ctl_table dpm_watchdog_sysctls[] = {
569 	{
570 		.procname	= "dpm_watchdog_timeout_secs",
571 		.maxlen		= sizeof(unsigned int),
572 		.mode		= 0644,
573 		.proc_handler	= proc_dodpm_watchdog_timeout_secs,
574 		.extra1		= SYSCTL_ONE,
575 		.extra2		= (void *)&dpm_watchdog_timeout_max,
576 	},
577 	{
578 		.procname	= "dpm_watchdog_warning_timeout_secs",
579 		.data		= &dpm_watchdog_warning_timeout,
580 		.maxlen		= sizeof(unsigned int),
581 		.mode		= 0644,
582 		.proc_handler	= proc_douintvec_minmax,
583 		.extra1		= SYSCTL_ONE,
584 		.extra2		= (void *)&dpm_watchdog_timeout,
585 	},
586 };
587 
588 static int __init dpm_watchdog_sysctl_init(void)
589 {
590 	register_sysctl_init("kernel", dpm_watchdog_sysctls);
591 	return 0;
592 }
593 subsys_initcall(dpm_watchdog_sysctl_init);
594 
595 /**
596  * dpm_watchdog_handler - Driver suspend / resume watchdog handler.
597  * @t: The timer that PM watchdog depends on.
598  *
599  * Called when a driver has timed out suspending or resuming.
600  * There's not much we can do here to recover so panic() to
601  * capture a crash-dump in pstore.
602  */
603 static void dpm_watchdog_handler(struct timer_list *t)
604 {
605 	struct dpm_watchdog *wd = timer_container_of(wd, t, timer);
606 	struct timer_list *timer = &wd->timer;
607 	unsigned int time_left;
608 
609 	if (wd->fatal) {
610 		unsigned int this_cpu = smp_processor_id();
611 
612 		dev_emerg(wd->dev, "**** DPM device timeout ****\n");
613 		show_stack(wd->tsk, NULL, KERN_EMERG);
614 		if (dpm_watchdog_all_cpu_backtrace)
615 			trigger_allbutcpu_cpu_backtrace(this_cpu);
616 		panic("%s %s: unrecoverable failure\n",
617 			dev_driver_string(wd->dev), dev_name(wd->dev));
618 	}
619 
620 	time_left = dpm_watchdog_timeout - dpm_watchdog_warning_timeout;
621 	dev_warn(wd->dev, "**** DPM device timeout after %u seconds; %u seconds until panic ****\n",
622 		 dpm_watchdog_warning_timeout, time_left);
623 	show_stack(wd->tsk, NULL, KERN_WARNING);
624 
625 	wd->fatal = true;
626 	mod_timer(timer, jiffies + HZ * time_left);
627 }
628 
629 /**
630  * dpm_watchdog_set - Enable pm watchdog for given device.
631  * @wd: Watchdog. Must be allocated on the stack.
632  * @dev: Device to handle.
633  */
634 static void dpm_watchdog_set(struct dpm_watchdog *wd, struct device *dev)
635 {
636 	struct timer_list *timer = &wd->timer;
637 
638 	if (!dpm_watchdog_enabled)
639 		return;
640 
641 	wd->dev = dev;
642 	wd->tsk = current;
643 	wd->fatal = dpm_watchdog_timeout == dpm_watchdog_warning_timeout;
644 
645 	timer_setup_on_stack(timer, dpm_watchdog_handler, 0);
646 	/* use same timeout value for both suspend and resume */
647 	timer->expires = jiffies + HZ * dpm_watchdog_warning_timeout;
648 	add_timer(timer);
649 }
650 
651 /**
652  * dpm_watchdog_clear - Disable suspend/resume watchdog.
653  * @wd: Watchdog to disable.
654  */
655 static void dpm_watchdog_clear(struct dpm_watchdog *wd)
656 {
657 	struct timer_list *timer = &wd->timer;
658 
659 	if (!dpm_watchdog_enabled)
660 		return;
661 
662 	timer_delete_sync(timer);
663 	timer_destroy_on_stack(timer);
664 }
665 #else
666 #define DECLARE_DPM_WATCHDOG_ON_STACK(wd)
667 #define dpm_watchdog_set(x, y)
668 #define dpm_watchdog_clear(x)
669 #endif
670 
671 /*------------------------- Resume routines -------------------------*/
672 
673 /**
674  * dev_pm_skip_resume - System-wide device resume optimization check.
675  * @dev: Target device.
676  *
677  * Return:
678  * - %false if the transition under way is RESTORE.
679  * - Return value of dev_pm_skip_suspend() if the transition under way is THAW.
680  * - The logical negation of %power.must_resume otherwise (that is, when the
681  *   transition under way is RESUME).
682  */
683 bool dev_pm_skip_resume(struct device *dev)
684 {
685 	if (pm_transition.event == PM_EVENT_RESTORE)
686 		return false;
687 
688 	if (pm_transition.event == PM_EVENT_THAW)
689 		return dev_pm_skip_suspend(dev);
690 
691 	return !dev->power.must_resume;
692 }
693 
694 static bool is_async(struct device *dev)
695 {
696 	return dev->power.async_suspend && pm_async_enabled
697 		&& !pm_trace_is_enabled();
698 }
699 
700 static bool __dpm_async(struct device *dev, async_func_t func)
701 {
702 	if (dev->power.work_in_progress)
703 		return true;
704 
705 	if (!is_async(dev))
706 		return false;
707 
708 	dev->power.work_in_progress = true;
709 
710 	get_device(dev);
711 
712 	if (async_schedule_dev_nocall(func, dev))
713 		return true;
714 
715 	put_device(dev);
716 
717 	return false;
718 }
719 
720 static bool dpm_async_fn(struct device *dev, async_func_t func)
721 {
722 	guard(mutex)(&async_wip_mtx);
723 
724 	return __dpm_async(dev, func);
725 }
726 
727 static int dpm_async_with_cleanup(struct device *dev, void *fn)
728 {
729 	guard(mutex)(&async_wip_mtx);
730 
731 	if (!__dpm_async(dev, fn))
732 		dev->power.work_in_progress = false;
733 
734 	return 0;
735 }
736 
737 static void dpm_async_resume_children(struct device *dev, async_func_t func)
738 {
739 	/*
740 	 * Prevent racing with dpm_clear_async_state() during initial list
741 	 * walks in dpm_noirq_resume_devices(), dpm_resume_early(), and
742 	 * dpm_resume().
743 	 */
744 	guard(mutex)(&dpm_list_mtx);
745 
746 	/*
747 	 * Start processing "async" children of the device unless it's been
748 	 * started already for them.
749 	 */
750 	device_for_each_child(dev, func, dpm_async_with_cleanup);
751 }
752 
753 static void dpm_async_resume_subordinate(struct device *dev, async_func_t func)
754 {
755 	struct device_link *link;
756 	int idx;
757 
758 	dpm_async_resume_children(dev, func);
759 
760 	idx = device_links_read_lock();
761 
762 	/* Start processing the device's "async" consumers. */
763 	dev_for_each_link_to_consumer(link, dev)
764 		if (READ_ONCE(link->status) != DL_STATE_DORMANT)
765 			dpm_async_with_cleanup(link->consumer, func);
766 
767 	device_links_read_unlock(idx);
768 }
769 
770 static void dpm_clear_async_state(struct device *dev)
771 {
772 	reinit_completion(&dev->power.completion);
773 	dev->power.work_in_progress = false;
774 }
775 
776 static bool dpm_root_device(struct device *dev)
777 {
778 	lockdep_assert_held(&dpm_list_mtx);
779 
780 	/*
781 	 * Since this function is required to run under dpm_list_mtx, the
782 	 * list_empty() below will only return true if the device's list of
783 	 * consumers is actually empty before calling it.
784 	 */
785 	return !dev->parent && list_empty(&dev->links.suppliers);
786 }
787 
788 static void async_resume_noirq(void *data, async_cookie_t cookie);
789 
790 /**
791  * device_resume_noirq - Execute a "noirq resume" callback for given device.
792  * @dev: Device to handle.
793  * @state: PM transition of the system being carried out.
794  * @async: If true, the device is being resumed asynchronously.
795  *
796  * The driver of @dev will not receive interrupts while this function is being
797  * executed.
798  */
799 static void device_resume_noirq(struct device *dev, pm_message_t state, bool async)
800 {
801 	pm_callback_t callback = NULL;
802 	const char *info = NULL;
803 	bool skip_resume;
804 	int error = 0;
805 
806 	TRACE_DEVICE(dev);
807 	TRACE_RESUME(0);
808 
809 	if (dev->power.syscore || dev->power.direct_complete)
810 		goto Out;
811 
812 	if (!dev->power.is_noirq_suspended) {
813 		/*
814 		 * This means that system suspend has been aborted in the noirq
815 		 * phase before invoking the noirq suspend callback for the
816 		 * device, so if device_suspend_late() has left it in suspend,
817 		 * device_resume_early() should leave it in suspend either in
818 		 * case the early resume of it depends on the noirq resume that
819 		 * has not run.
820 		 */
821 		if (dev_pm_skip_suspend(dev))
822 			dev->power.must_resume = false;
823 
824 		goto Out;
825 	}
826 
827 	if (!dpm_wait_for_superior(dev, async))
828 		goto Out;
829 
830 	skip_resume = dev_pm_skip_resume(dev);
831 	/*
832 	 * If the driver callback is skipped below or by the middle layer
833 	 * callback and device_resume_early() also skips the driver callback for
834 	 * this device later, it needs to appear as "suspended" to PM-runtime,
835 	 * so change its status accordingly.
836 	 *
837 	 * Otherwise, the device is going to be resumed, so set its PM-runtime
838 	 * status to "active" unless its power.smart_suspend flag is clear, in
839 	 * which case it is not necessary to update its PM-runtime status.
840 	 */
841 	if (skip_resume)
842 		pm_runtime_set_suspended(dev);
843 	else if (dev_pm_smart_suspend(dev))
844 		pm_runtime_set_active(dev);
845 
846 	if (dev->pm_domain) {
847 		info = "noirq power domain ";
848 		callback = pm_noirq_op(&dev->pm_domain->ops, state);
849 	} else if (dev->type && dev->type->pm) {
850 		info = "noirq type ";
851 		callback = pm_noirq_op(dev->type->pm, state);
852 	} else if (dev->class && dev->class->pm) {
853 		info = "noirq class ";
854 		callback = pm_noirq_op(dev->class->pm, state);
855 	} else if (dev->bus && dev->bus->pm) {
856 		info = "noirq bus ";
857 		callback = pm_noirq_op(dev->bus->pm, state);
858 	}
859 	if (callback)
860 		goto Run;
861 
862 	if (skip_resume)
863 		goto Skip;
864 
865 	if (dev->driver && dev->driver->pm) {
866 		info = "noirq driver ";
867 		callback = pm_noirq_op(dev->driver->pm, state);
868 	}
869 
870 Run:
871 	error = dpm_run_callback(callback, dev, state, info);
872 
873 Skip:
874 	dev->power.is_noirq_suspended = false;
875 
876 Out:
877 	complete_all(&dev->power.completion);
878 	TRACE_RESUME(error);
879 
880 	if (error) {
881 		WRITE_ONCE(async_error, error);
882 		dpm_save_failed_dev(dev_name(dev));
883 		pm_dev_err(dev, state, async ? " async noirq" : " noirq", error);
884 	}
885 
886 	dpm_async_resume_subordinate(dev, async_resume_noirq);
887 }
888 
889 static void async_resume_noirq(void *data, async_cookie_t cookie)
890 {
891 	struct device *dev = data;
892 
893 	device_resume_noirq(dev, pm_transition, true);
894 	put_device(dev);
895 }
896 
897 static void dpm_noirq_resume_devices(pm_message_t state)
898 {
899 	struct device *dev;
900 	ktime_t starttime = ktime_get();
901 
902 	trace_suspend_resume(TPS("dpm_resume_noirq"), state.event, true);
903 
904 	async_error = 0;
905 	pm_transition = state;
906 
907 	mutex_lock(&dpm_list_mtx);
908 
909 	/*
910 	 * Start processing "async" root devices upfront so they don't wait for
911 	 * the "sync" devices they don't depend on.
912 	 */
913 	list_for_each_entry(dev, &dpm_noirq_list, power.entry) {
914 		dpm_clear_async_state(dev);
915 		if (dpm_root_device(dev))
916 			dpm_async_with_cleanup(dev, async_resume_noirq);
917 	}
918 
919 	while (!list_empty(&dpm_noirq_list)) {
920 		dev = to_device(dpm_noirq_list.next);
921 		list_move_tail(&dev->power.entry, &dpm_late_early_list);
922 
923 		if (!dpm_async_fn(dev, async_resume_noirq)) {
924 			get_device(dev);
925 
926 			mutex_unlock(&dpm_list_mtx);
927 
928 			device_resume_noirq(dev, state, false);
929 
930 			put_device(dev);
931 
932 			mutex_lock(&dpm_list_mtx);
933 		}
934 	}
935 	mutex_unlock(&dpm_list_mtx);
936 	async_synchronize_full();
937 	dpm_show_time(starttime, state, 0, "noirq");
938 	if (READ_ONCE(async_error))
939 		dpm_save_failed_step(SUSPEND_RESUME_NOIRQ);
940 
941 	trace_suspend_resume(TPS("dpm_resume_noirq"), state.event, false);
942 }
943 
944 /**
945  * dpm_resume_noirq - Execute "noirq resume" callbacks for all devices.
946  * @state: PM transition of the system being carried out.
947  *
948  * Invoke the "noirq" resume callbacks for all devices in dpm_noirq_list and
949  * allow device drivers' interrupt handlers to be called.
950  */
951 void dpm_resume_noirq(pm_message_t state)
952 {
953 	dpm_noirq_resume_devices(state);
954 
955 	resume_device_irqs();
956 	device_wakeup_disarm_wake_irqs();
957 }
958 
959 static void async_resume_early(void *data, async_cookie_t cookie);
960 
961 /**
962  * device_resume_early - Execute an "early resume" callback for given device.
963  * @dev: Device to handle.
964  * @state: PM transition of the system being carried out.
965  * @async: If true, the device is being resumed asynchronously.
966  *
967  * Runtime PM is disabled for @dev while this function is being executed.
968  */
969 static void device_resume_early(struct device *dev, pm_message_t state, bool async)
970 {
971 	pm_callback_t callback = NULL;
972 	const char *info = NULL;
973 	int error = 0;
974 
975 	TRACE_DEVICE(dev);
976 	TRACE_RESUME(0);
977 
978 	if (dev->power.direct_complete)
979 		goto Out;
980 
981 	if (!dev->power.is_late_suspended)
982 		goto Out;
983 
984 	if (dev->power.syscore)
985 		goto Skip;
986 
987 	if (!dpm_wait_for_superior(dev, async))
988 		goto Out;
989 
990 	if (dev->pm_domain) {
991 		info = "early power domain ";
992 		callback = pm_late_early_op(&dev->pm_domain->ops, state);
993 	} else if (dev->type && dev->type->pm) {
994 		info = "early type ";
995 		callback = pm_late_early_op(dev->type->pm, state);
996 	} else if (dev->class && dev->class->pm) {
997 		info = "early class ";
998 		callback = pm_late_early_op(dev->class->pm, state);
999 	} else if (dev->bus && dev->bus->pm) {
1000 		info = "early bus ";
1001 		callback = pm_late_early_op(dev->bus->pm, state);
1002 	}
1003 	if (callback)
1004 		goto Run;
1005 
1006 	if (dev_pm_skip_resume(dev))
1007 		goto Skip;
1008 
1009 	if (dev->driver && dev->driver->pm) {
1010 		info = "early driver ";
1011 		callback = pm_late_early_op(dev->driver->pm, state);
1012 	}
1013 
1014 Run:
1015 	error = dpm_run_callback(callback, dev, state, info);
1016 
1017 Skip:
1018 	dev->power.is_late_suspended = false;
1019 	pm_runtime_enable(dev);
1020 
1021 Out:
1022 	TRACE_RESUME(error);
1023 
1024 	complete_all(&dev->power.completion);
1025 
1026 	if (error) {
1027 		WRITE_ONCE(async_error, error);
1028 		dpm_save_failed_dev(dev_name(dev));
1029 		pm_dev_err(dev, state, async ? " async early" : " early", error);
1030 	}
1031 
1032 	dpm_async_resume_subordinate(dev, async_resume_early);
1033 }
1034 
1035 static void async_resume_early(void *data, async_cookie_t cookie)
1036 {
1037 	struct device *dev = data;
1038 
1039 	device_resume_early(dev, pm_transition, true);
1040 	put_device(dev);
1041 }
1042 
1043 /**
1044  * dpm_resume_early - Execute "early resume" callbacks for all devices.
1045  * @state: PM transition of the system being carried out.
1046  */
1047 void dpm_resume_early(pm_message_t state)
1048 {
1049 	struct device *dev;
1050 	ktime_t starttime = ktime_get();
1051 
1052 	trace_suspend_resume(TPS("dpm_resume_early"), state.event, true);
1053 
1054 	async_error = 0;
1055 	pm_transition = state;
1056 
1057 	mutex_lock(&dpm_list_mtx);
1058 
1059 	/*
1060 	 * Start processing "async" root devices upfront so they don't wait for
1061 	 * the "sync" devices they don't depend on.
1062 	 */
1063 	list_for_each_entry(dev, &dpm_late_early_list, power.entry) {
1064 		dpm_clear_async_state(dev);
1065 		if (dpm_root_device(dev))
1066 			dpm_async_with_cleanup(dev, async_resume_early);
1067 	}
1068 
1069 	while (!list_empty(&dpm_late_early_list)) {
1070 		dev = to_device(dpm_late_early_list.next);
1071 		list_move_tail(&dev->power.entry, &dpm_suspended_list);
1072 
1073 		if (!dpm_async_fn(dev, async_resume_early)) {
1074 			get_device(dev);
1075 
1076 			mutex_unlock(&dpm_list_mtx);
1077 
1078 			device_resume_early(dev, state, false);
1079 
1080 			put_device(dev);
1081 
1082 			mutex_lock(&dpm_list_mtx);
1083 		}
1084 	}
1085 	mutex_unlock(&dpm_list_mtx);
1086 	async_synchronize_full();
1087 	dpm_show_time(starttime, state, 0, "early");
1088 	if (READ_ONCE(async_error))
1089 		dpm_save_failed_step(SUSPEND_RESUME_EARLY);
1090 
1091 	trace_suspend_resume(TPS("dpm_resume_early"), state.event, false);
1092 }
1093 
1094 /**
1095  * dpm_resume_start - Execute "noirq" and "early" device callbacks.
1096  * @state: PM transition of the system being carried out.
1097  */
1098 void dpm_resume_start(pm_message_t state)
1099 {
1100 	dpm_resume_noirq(state);
1101 	dpm_resume_early(state);
1102 }
1103 EXPORT_SYMBOL_GPL(dpm_resume_start);
1104 
1105 static void async_resume(void *data, async_cookie_t cookie);
1106 
1107 /**
1108  * device_resume - Execute "resume" callbacks for given device.
1109  * @dev: Device to handle.
1110  * @state: PM transition of the system being carried out.
1111  * @async: If true, the device is being resumed asynchronously.
1112  */
1113 static void device_resume(struct device *dev, pm_message_t state, bool async)
1114 {
1115 	pm_callback_t callback = NULL;
1116 	const char *info = NULL;
1117 	int error = 0;
1118 	DECLARE_DPM_WATCHDOG_ON_STACK(wd);
1119 
1120 	TRACE_DEVICE(dev);
1121 	TRACE_RESUME(0);
1122 
1123 	if (dev->power.syscore)
1124 		goto Complete;
1125 
1126 	if (!dev->power.is_suspended)
1127 		goto Complete;
1128 
1129 	dev->power.is_suspended = false;
1130 
1131 	if (dev->power.direct_complete) {
1132 		/*
1133 		 * Allow new children to be added under the device after this
1134 		 * point if it has no PM callbacks.
1135 		 */
1136 		if (dev->power.no_pm_callbacks)
1137 			dev->power.is_prepared = false;
1138 
1139 		/* Match the pm_runtime_disable() in device_suspend(). */
1140 		pm_runtime_enable(dev);
1141 		goto Complete;
1142 	}
1143 
1144 	if (!dpm_wait_for_superior(dev, async))
1145 		goto Complete;
1146 
1147 	dpm_watchdog_set(&wd, dev);
1148 	device_lock(dev);
1149 
1150 	/*
1151 	 * This is a fib.  But we'll allow new children to be added below
1152 	 * a resumed device, even if the device hasn't been completed yet.
1153 	 */
1154 	dev->power.is_prepared = false;
1155 
1156 	if (dev->pm_domain) {
1157 		info = "power domain ";
1158 		callback = pm_op(&dev->pm_domain->ops, state);
1159 		goto Driver;
1160 	}
1161 
1162 	if (dev->type && dev->type->pm) {
1163 		info = "type ";
1164 		callback = pm_op(dev->type->pm, state);
1165 		goto Driver;
1166 	}
1167 
1168 	if (dev->class && dev->class->pm) {
1169 		info = "class ";
1170 		callback = pm_op(dev->class->pm, state);
1171 		goto Driver;
1172 	}
1173 
1174 	if (dev->bus) {
1175 		if (dev->bus->pm) {
1176 			info = "bus ";
1177 			callback = pm_op(dev->bus->pm, state);
1178 		} else if (dev->bus->resume) {
1179 			info = "legacy bus ";
1180 			callback = dev->bus->resume;
1181 			goto End;
1182 		}
1183 	}
1184 
1185  Driver:
1186 	if (!callback && dev->driver && dev->driver->pm) {
1187 		info = "driver ";
1188 		callback = pm_op(dev->driver->pm, state);
1189 	}
1190 
1191  End:
1192 	error = dpm_run_callback(callback, dev, state, info);
1193 
1194 	device_unlock(dev);
1195 	dpm_watchdog_clear(&wd);
1196 
1197  Complete:
1198 	complete_all(&dev->power.completion);
1199 
1200 	TRACE_RESUME(error);
1201 
1202 	if (error) {
1203 		WRITE_ONCE(async_error, error);
1204 		dpm_save_failed_dev(dev_name(dev));
1205 		pm_dev_err(dev, state, async ? " async" : "", error);
1206 	}
1207 
1208 	dpm_async_resume_subordinate(dev, async_resume);
1209 }
1210 
1211 static void async_resume(void *data, async_cookie_t cookie)
1212 {
1213 	struct device *dev = data;
1214 
1215 	device_resume(dev, pm_transition, true);
1216 	put_device(dev);
1217 }
1218 
1219 /**
1220  * dpm_resume - Execute "resume" callbacks for non-sysdev devices.
1221  * @state: PM transition of the system being carried out.
1222  *
1223  * Execute the appropriate "resume" callback for all devices whose status
1224  * indicates that they are suspended.
1225  */
1226 void dpm_resume(pm_message_t state)
1227 {
1228 	struct device *dev;
1229 	ktime_t starttime = ktime_get();
1230 
1231 	trace_suspend_resume(TPS("dpm_resume"), state.event, true);
1232 
1233 	pm_transition = state;
1234 	async_error = 0;
1235 
1236 	mutex_lock(&dpm_list_mtx);
1237 
1238 	/*
1239 	 * Start processing "async" root devices upfront so they don't wait for
1240 	 * the "sync" devices they don't depend on.
1241 	 */
1242 	list_for_each_entry(dev, &dpm_suspended_list, power.entry) {
1243 		dpm_clear_async_state(dev);
1244 		if (dpm_root_device(dev))
1245 			dpm_async_with_cleanup(dev, async_resume);
1246 	}
1247 
1248 	while (!list_empty(&dpm_suspended_list)) {
1249 		dev = to_device(dpm_suspended_list.next);
1250 		list_move_tail(&dev->power.entry, &dpm_prepared_list);
1251 
1252 		if (!dpm_async_fn(dev, async_resume)) {
1253 			get_device(dev);
1254 
1255 			mutex_unlock(&dpm_list_mtx);
1256 
1257 			device_resume(dev, state, false);
1258 
1259 			put_device(dev);
1260 
1261 			mutex_lock(&dpm_list_mtx);
1262 		}
1263 	}
1264 	mutex_unlock(&dpm_list_mtx);
1265 	async_synchronize_full();
1266 	dpm_show_time(starttime, state, 0, NULL);
1267 	if (READ_ONCE(async_error))
1268 		dpm_save_failed_step(SUSPEND_RESUME);
1269 
1270 	cpufreq_resume();
1271 	devfreq_resume();
1272 	trace_suspend_resume(TPS("dpm_resume"), state.event, false);
1273 }
1274 
1275 /**
1276  * device_complete - Complete a PM transition for given device.
1277  * @dev: Device to handle.
1278  * @state: PM transition of the system being carried out.
1279  */
1280 static void device_complete(struct device *dev, pm_message_t state)
1281 {
1282 	void (*callback)(struct device *) = NULL;
1283 	const char *info = NULL;
1284 
1285 	if (dev->power.syscore)
1286 		goto out;
1287 
1288 	device_lock(dev);
1289 
1290 	if (dev->pm_domain) {
1291 		info = "completing power domain ";
1292 		callback = dev->pm_domain->ops.complete;
1293 	} else if (dev->type && dev->type->pm) {
1294 		info = "completing type ";
1295 		callback = dev->type->pm->complete;
1296 	} else if (dev->class && dev->class->pm) {
1297 		info = "completing class ";
1298 		callback = dev->class->pm->complete;
1299 	} else if (dev->bus && dev->bus->pm) {
1300 		info = "completing bus ";
1301 		callback = dev->bus->pm->complete;
1302 	}
1303 
1304 	if (!callback && dev->driver && dev->driver->pm) {
1305 		info = "completing driver ";
1306 		callback = dev->driver->pm->complete;
1307 	}
1308 
1309 	if (callback) {
1310 		pm_dev_dbg(dev, state, info);
1311 		callback(dev);
1312 	}
1313 
1314 	device_unlock(dev);
1315 
1316 out:
1317 	/* If enabling runtime PM for the device is blocked, unblock it. */
1318 	pm_runtime_unblock(dev);
1319 	pm_runtime_put(dev);
1320 }
1321 
1322 /**
1323  * dpm_complete - Complete a PM transition for all non-sysdev devices.
1324  * @state: PM transition of the system being carried out.
1325  *
1326  * Execute the ->complete() callbacks for all devices whose PM status is not
1327  * DPM_ON (this allows new devices to be registered).
1328  */
1329 void dpm_complete(pm_message_t state)
1330 {
1331 	struct list_head list;
1332 
1333 	trace_suspend_resume(TPS("dpm_complete"), state.event, true);
1334 
1335 	INIT_LIST_HEAD(&list);
1336 	mutex_lock(&dpm_list_mtx);
1337 	while (!list_empty(&dpm_prepared_list)) {
1338 		struct device *dev = to_device(dpm_prepared_list.prev);
1339 
1340 		get_device(dev);
1341 		dev->power.is_prepared = false;
1342 		list_move(&dev->power.entry, &list);
1343 
1344 		mutex_unlock(&dpm_list_mtx);
1345 
1346 		trace_device_pm_callback_start(dev, "", state.event);
1347 		device_complete(dev, state);
1348 		trace_device_pm_callback_end(dev, 0);
1349 
1350 		put_device(dev);
1351 
1352 		mutex_lock(&dpm_list_mtx);
1353 	}
1354 	list_splice(&list, &dpm_list);
1355 	mutex_unlock(&dpm_list_mtx);
1356 
1357 	/* Start resuming thermal control */
1358 	thermal_pm_complete();
1359 	/* Allow device probing and trigger re-probing of deferred devices */
1360 	device_unblock_probing();
1361 	trace_suspend_resume(TPS("dpm_complete"), state.event, false);
1362 }
1363 
1364 /**
1365  * dpm_resume_end - Execute "resume" callbacks and complete system transition.
1366  * @state: PM transition of the system being carried out.
1367  *
1368  * Execute "resume" callbacks for all devices and complete the PM transition of
1369  * the system.
1370  */
1371 void dpm_resume_end(pm_message_t state)
1372 {
1373 	dpm_resume(state);
1374 	pm_restore_gfp_mask();
1375 	dpm_complete(state);
1376 }
1377 EXPORT_SYMBOL_GPL(dpm_resume_end);
1378 
1379 
1380 /*------------------------- Suspend routines -------------------------*/
1381 
1382 static bool dpm_leaf_device(struct device *dev)
1383 {
1384 	struct device *child;
1385 
1386 	lockdep_assert_held(&dpm_list_mtx);
1387 
1388 	child = device_find_any_child(dev);
1389 	if (child) {
1390 		put_device(child);
1391 
1392 		return false;
1393 	}
1394 
1395 	/*
1396 	 * Since this function is required to run under dpm_list_mtx, the
1397 	 * list_empty() below will only return true if the device's list of
1398 	 * consumers is actually empty before calling it.
1399 	 */
1400 	return list_empty(&dev->links.consumers);
1401 }
1402 
1403 static bool dpm_async_suspend_parent(struct device *dev, async_func_t func)
1404 {
1405 	guard(mutex)(&dpm_list_mtx);
1406 
1407 	/*
1408 	 * If the device is suspended asynchronously and the parent's callback
1409 	 * deletes both the device and the parent itself, the parent object may
1410 	 * be freed while this function is running, so avoid that by checking
1411 	 * if the device has been deleted already as the parent cannot be
1412 	 * deleted before it.
1413 	 */
1414 	if (!device_pm_initialized(dev))
1415 		return false;
1416 
1417 	/* Start processing the device's parent if it is "async". */
1418 	if (dev->parent)
1419 		dpm_async_with_cleanup(dev->parent, func);
1420 
1421 	return true;
1422 }
1423 
1424 static void dpm_async_suspend_superior(struct device *dev, async_func_t func)
1425 {
1426 	struct device_link *link;
1427 	int idx;
1428 
1429 	if (!dpm_async_suspend_parent(dev, func))
1430 		return;
1431 
1432 	idx = device_links_read_lock();
1433 
1434 	/* Start processing the device's "async" suppliers. */
1435 	dev_for_each_link_to_supplier(link, dev)
1436 		if (READ_ONCE(link->status) != DL_STATE_DORMANT)
1437 			dpm_async_with_cleanup(link->supplier, func);
1438 
1439 	device_links_read_unlock(idx);
1440 }
1441 
1442 static void dpm_async_suspend_complete_all(struct list_head *device_list)
1443 {
1444 	struct device *dev;
1445 
1446 	guard(mutex)(&async_wip_mtx);
1447 
1448 	list_for_each_entry_reverse(dev, device_list, power.entry) {
1449 		/*
1450 		 * In case the device is being waited for and async processing
1451 		 * has not started for it yet, let the waiters make progress.
1452 		 */
1453 		if (!dev->power.work_in_progress)
1454 			complete_all(&dev->power.completion);
1455 	}
1456 }
1457 
1458 /**
1459  * resume_event - Return a "resume" message for given "suspend" sleep state.
1460  * @sleep_state: PM message representing a sleep state.
1461  *
1462  * Return a PM message representing the resume event corresponding to given
1463  * sleep state.
1464  */
1465 static pm_message_t resume_event(pm_message_t sleep_state)
1466 {
1467 	switch (sleep_state.event) {
1468 	case PM_EVENT_SUSPEND:
1469 		return PMSG_RESUME;
1470 	case PM_EVENT_FREEZE:
1471 	case PM_EVENT_QUIESCE:
1472 		return PMSG_RECOVER;
1473 	case PM_EVENT_HIBERNATE:
1474 		return PMSG_RESTORE;
1475 	}
1476 	return PMSG_ON;
1477 }
1478 
1479 static void dpm_superior_set_must_resume(struct device *dev)
1480 {
1481 	struct device_link *link;
1482 	int idx;
1483 
1484 	if (dev->parent)
1485 		dev->parent->power.must_resume = true;
1486 
1487 	idx = device_links_read_lock();
1488 
1489 	dev_for_each_link_to_supplier(link, dev)
1490 		link->supplier->power.must_resume = true;
1491 
1492 	device_links_read_unlock(idx);
1493 }
1494 
1495 static void async_suspend_noirq(void *data, async_cookie_t cookie);
1496 
1497 /**
1498  * device_suspend_noirq - Execute a "noirq suspend" callback for given device.
1499  * @dev: Device to handle.
1500  * @state: PM transition of the system being carried out.
1501  * @async: If true, the device is being suspended asynchronously.
1502  *
1503  * The driver of @dev will not receive interrupts while this function is being
1504  * executed.
1505  */
1506 static void device_suspend_noirq(struct device *dev, pm_message_t state, bool async)
1507 {
1508 	pm_callback_t callback = NULL;
1509 	const char *info = NULL;
1510 	int error = 0;
1511 
1512 	TRACE_DEVICE(dev);
1513 	TRACE_SUSPEND(0);
1514 
1515 	dpm_wait_for_subordinate(dev, async);
1516 
1517 	if (READ_ONCE(async_error))
1518 		goto Complete;
1519 
1520 	if (dev->power.syscore || dev->power.direct_complete)
1521 		goto Complete;
1522 
1523 	if (dev->pm_domain) {
1524 		info = "noirq power domain ";
1525 		callback = pm_noirq_op(&dev->pm_domain->ops, state);
1526 	} else if (dev->type && dev->type->pm) {
1527 		info = "noirq type ";
1528 		callback = pm_noirq_op(dev->type->pm, state);
1529 	} else if (dev->class && dev->class->pm) {
1530 		info = "noirq class ";
1531 		callback = pm_noirq_op(dev->class->pm, state);
1532 	} else if (dev->bus && dev->bus->pm) {
1533 		info = "noirq bus ";
1534 		callback = pm_noirq_op(dev->bus->pm, state);
1535 	}
1536 	if (callback)
1537 		goto Run;
1538 
1539 	if (dev_pm_skip_suspend(dev))
1540 		goto Skip;
1541 
1542 	if (dev->driver && dev->driver->pm) {
1543 		info = "noirq driver ";
1544 		callback = pm_noirq_op(dev->driver->pm, state);
1545 	}
1546 
1547 Run:
1548 	error = dpm_run_callback(callback, dev, state, info);
1549 	if (error) {
1550 		WRITE_ONCE(async_error, error);
1551 		dpm_save_failed_dev(dev_name(dev));
1552 		pm_dev_err(dev, state, async ? " async noirq" : " noirq", error);
1553 		goto Complete;
1554 	}
1555 
1556 Skip:
1557 	dev->power.is_noirq_suspended = true;
1558 
1559 	/*
1560 	 * Devices must be resumed unless they are explicitly allowed to be left
1561 	 * in suspend, but even in that case skipping the resume of devices that
1562 	 * were in use right before the system suspend (as indicated by their
1563 	 * runtime PM usage counters and child counters) would be suboptimal.
1564 	 */
1565 	if (!(dev_pm_test_driver_flags(dev, DPM_FLAG_MAY_SKIP_RESUME) &&
1566 	      dev->power.may_skip_resume) || !pm_runtime_need_not_resume(dev))
1567 		dev->power.must_resume = true;
1568 
1569 	if (dev->power.must_resume)
1570 		dpm_superior_set_must_resume(dev);
1571 
1572 Complete:
1573 	complete_all(&dev->power.completion);
1574 	TRACE_SUSPEND(error);
1575 
1576 	if (error || READ_ONCE(async_error))
1577 		return;
1578 
1579 	dpm_async_suspend_superior(dev, async_suspend_noirq);
1580 }
1581 
1582 static void async_suspend_noirq(void *data, async_cookie_t cookie)
1583 {
1584 	struct device *dev = data;
1585 
1586 	device_suspend_noirq(dev, pm_transition, true);
1587 	put_device(dev);
1588 }
1589 
1590 static int dpm_noirq_suspend_devices(pm_message_t state)
1591 {
1592 	ktime_t starttime = ktime_get();
1593 	struct device *dev;
1594 	int error;
1595 
1596 	trace_suspend_resume(TPS("dpm_suspend_noirq"), state.event, true);
1597 
1598 	pm_transition = state;
1599 	async_error = 0;
1600 
1601 	mutex_lock(&dpm_list_mtx);
1602 
1603 	/*
1604 	 * Start processing "async" leaf devices upfront so they don't need to
1605 	 * wait for the "sync" devices they don't depend on.
1606 	 */
1607 	list_for_each_entry_reverse(dev, &dpm_late_early_list, power.entry) {
1608 		dpm_clear_async_state(dev);
1609 		if (dpm_leaf_device(dev))
1610 			dpm_async_with_cleanup(dev, async_suspend_noirq);
1611 	}
1612 
1613 	while (!list_empty(&dpm_late_early_list)) {
1614 		dev = to_device(dpm_late_early_list.prev);
1615 
1616 		list_move(&dev->power.entry, &dpm_noirq_list);
1617 
1618 		if (dpm_async_fn(dev, async_suspend_noirq))
1619 			continue;
1620 
1621 		get_device(dev);
1622 
1623 		mutex_unlock(&dpm_list_mtx);
1624 
1625 		device_suspend_noirq(dev, state, false);
1626 
1627 		put_device(dev);
1628 
1629 		mutex_lock(&dpm_list_mtx);
1630 
1631 		if (READ_ONCE(async_error)) {
1632 			dpm_async_suspend_complete_all(&dpm_late_early_list);
1633 			/*
1634 			 * Move all devices to the target list to resume them
1635 			 * properly.
1636 			 */
1637 			list_splice_init(&dpm_late_early_list, &dpm_noirq_list);
1638 			break;
1639 		}
1640 	}
1641 
1642 	mutex_unlock(&dpm_list_mtx);
1643 
1644 	async_synchronize_full();
1645 
1646 	error = READ_ONCE(async_error);
1647 	if (error)
1648 		dpm_save_failed_step(SUSPEND_SUSPEND_NOIRQ);
1649 
1650 	dpm_show_time(starttime, state, error, "noirq");
1651 	trace_suspend_resume(TPS("dpm_suspend_noirq"), state.event, false);
1652 	return error;
1653 }
1654 
1655 /**
1656  * dpm_suspend_noirq - Execute "noirq suspend" callbacks for all devices.
1657  * @state: PM transition of the system being carried out.
1658  *
1659  * Prevent device drivers' interrupt handlers from being called and invoke
1660  * "noirq" suspend callbacks for all non-sysdev devices.
1661  */
1662 int dpm_suspend_noirq(pm_message_t state)
1663 {
1664 	int ret;
1665 
1666 	device_wakeup_arm_wake_irqs();
1667 	suspend_device_irqs();
1668 
1669 	ret = dpm_noirq_suspend_devices(state);
1670 	if (ret)
1671 		dpm_resume_noirq(resume_event(state));
1672 
1673 	return ret;
1674 }
1675 
1676 static void dpm_propagate_wakeup_to_parent(struct device *dev)
1677 {
1678 	struct device *parent = dev->parent;
1679 
1680 	if (!parent)
1681 		return;
1682 
1683 	spin_lock_irq(&parent->power.lock);
1684 
1685 	if (device_wakeup_path(dev) && !parent->power.ignore_children)
1686 		parent->power.wakeup_path = true;
1687 
1688 	spin_unlock_irq(&parent->power.lock);
1689 }
1690 
1691 static void async_suspend_late(void *data, async_cookie_t cookie);
1692 
1693 /**
1694  * device_suspend_late - Execute a "late suspend" callback for given device.
1695  * @dev: Device to handle.
1696  * @state: PM transition of the system being carried out.
1697  * @async: If true, the device is being suspended asynchronously.
1698  *
1699  * Runtime PM is disabled for @dev while this function is being executed.
1700  */
1701 static void device_suspend_late(struct device *dev, pm_message_t state, bool async)
1702 {
1703 	pm_callback_t callback = NULL;
1704 	const char *info = NULL;
1705 	int error = 0;
1706 
1707 	TRACE_DEVICE(dev);
1708 	TRACE_SUSPEND(0);
1709 
1710 	dpm_wait_for_subordinate(dev, async);
1711 
1712 	if (READ_ONCE(async_error))
1713 		goto Complete;
1714 
1715 	if (pm_wakeup_pending()) {
1716 		WRITE_ONCE(async_error, -EBUSY);
1717 		goto Complete;
1718 	}
1719 
1720 	if (dev->power.direct_complete)
1721 		goto Complete;
1722 
1723 	/*
1724 	 * After this point, any runtime PM operations targeting the device
1725 	 * will fail until the corresponding pm_runtime_enable() call in
1726 	 * device_resume_early().
1727 	 */
1728 	pm_runtime_disable(dev);
1729 
1730 	if (dev->power.syscore)
1731 		goto Skip;
1732 
1733 	if (dev->pm_domain) {
1734 		info = "late power domain ";
1735 		callback = pm_late_early_op(&dev->pm_domain->ops, state);
1736 	} else if (dev->type && dev->type->pm) {
1737 		info = "late type ";
1738 		callback = pm_late_early_op(dev->type->pm, state);
1739 	} else if (dev->class && dev->class->pm) {
1740 		info = "late class ";
1741 		callback = pm_late_early_op(dev->class->pm, state);
1742 	} else if (dev->bus && dev->bus->pm) {
1743 		info = "late bus ";
1744 		callback = pm_late_early_op(dev->bus->pm, state);
1745 	}
1746 	if (callback)
1747 		goto Run;
1748 
1749 	if (dev_pm_skip_suspend(dev))
1750 		goto Skip;
1751 
1752 	if (dev->driver && dev->driver->pm) {
1753 		info = "late driver ";
1754 		callback = pm_late_early_op(dev->driver->pm, state);
1755 	}
1756 
1757 Run:
1758 	error = dpm_run_callback(callback, dev, state, info);
1759 	if (error) {
1760 		WRITE_ONCE(async_error, error);
1761 		dpm_save_failed_dev(dev_name(dev));
1762 		pm_dev_err(dev, state, async ? " async late" : " late", error);
1763 		pm_runtime_enable(dev);
1764 		goto Complete;
1765 	}
1766 	dpm_propagate_wakeup_to_parent(dev);
1767 
1768 Skip:
1769 	dev->power.is_late_suspended = true;
1770 
1771 Complete:
1772 	TRACE_SUSPEND(error);
1773 	complete_all(&dev->power.completion);
1774 
1775 	if (error || READ_ONCE(async_error))
1776 		return;
1777 
1778 	dpm_async_suspend_superior(dev, async_suspend_late);
1779 }
1780 
1781 static void async_suspend_late(void *data, async_cookie_t cookie)
1782 {
1783 	struct device *dev = data;
1784 
1785 	device_suspend_late(dev, pm_transition, true);
1786 	put_device(dev);
1787 }
1788 
1789 /**
1790  * dpm_suspend_late - Execute "late suspend" callbacks for all devices.
1791  * @state: PM transition of the system being carried out.
1792  */
1793 int dpm_suspend_late(pm_message_t state)
1794 {
1795 	ktime_t starttime = ktime_get();
1796 	struct device *dev;
1797 	int error;
1798 
1799 	trace_suspend_resume(TPS("dpm_suspend_late"), state.event, true);
1800 
1801 	pm_transition = state;
1802 	async_error = 0;
1803 
1804 	wake_up_all_idle_cpus();
1805 
1806 	mutex_lock(&dpm_list_mtx);
1807 
1808 	/*
1809 	 * Start processing "async" leaf devices upfront so they don't need to
1810 	 * wait for the "sync" devices they don't depend on.
1811 	 */
1812 	list_for_each_entry_reverse(dev, &dpm_suspended_list, power.entry) {
1813 		dpm_clear_async_state(dev);
1814 		if (dpm_leaf_device(dev))
1815 			dpm_async_with_cleanup(dev, async_suspend_late);
1816 	}
1817 
1818 	while (!list_empty(&dpm_suspended_list)) {
1819 		dev = to_device(dpm_suspended_list.prev);
1820 
1821 		list_move(&dev->power.entry, &dpm_late_early_list);
1822 
1823 		if (dpm_async_fn(dev, async_suspend_late))
1824 			continue;
1825 
1826 		get_device(dev);
1827 
1828 		mutex_unlock(&dpm_list_mtx);
1829 
1830 		device_suspend_late(dev, state, false);
1831 
1832 		put_device(dev);
1833 
1834 		mutex_lock(&dpm_list_mtx);
1835 
1836 		if (READ_ONCE(async_error)) {
1837 			dpm_async_suspend_complete_all(&dpm_suspended_list);
1838 			/*
1839 			 * Move all devices to the target list to resume them
1840 			 * properly.
1841 			 */
1842 			list_splice_init(&dpm_suspended_list, &dpm_late_early_list);
1843 			break;
1844 		}
1845 	}
1846 
1847 	mutex_unlock(&dpm_list_mtx);
1848 
1849 	async_synchronize_full();
1850 
1851 	error = READ_ONCE(async_error);
1852 	if (error) {
1853 		dpm_save_failed_step(SUSPEND_SUSPEND_LATE);
1854 		dpm_resume_early(resume_event(state));
1855 	}
1856 	dpm_show_time(starttime, state, error, "late");
1857 	trace_suspend_resume(TPS("dpm_suspend_late"), state.event, false);
1858 	return error;
1859 }
1860 
1861 /**
1862  * dpm_suspend_end - Execute "late" and "noirq" device suspend callbacks.
1863  * @state: PM transition of the system being carried out.
1864  */
1865 int dpm_suspend_end(pm_message_t state)
1866 {
1867 	ktime_t starttime = ktime_get();
1868 	int error;
1869 
1870 	error = dpm_suspend_late(state);
1871 	if (error)
1872 		goto out;
1873 
1874 	error = dpm_suspend_noirq(state);
1875 	if (error)
1876 		dpm_resume_early(resume_event(state));
1877 
1878 out:
1879 	dpm_show_time(starttime, state, error, "end");
1880 	return error;
1881 }
1882 EXPORT_SYMBOL_GPL(dpm_suspend_end);
1883 
1884 /**
1885  * legacy_suspend - Execute a legacy (bus or class) suspend callback for device.
1886  * @dev: Device to suspend.
1887  * @state: PM transition of the system being carried out.
1888  * @cb: Suspend callback to execute.
1889  * @info: string description of caller.
1890  */
1891 static int legacy_suspend(struct device *dev, pm_message_t state,
1892 			  int (*cb)(struct device *dev, pm_message_t state),
1893 			  const char *info)
1894 {
1895 	int error;
1896 	ktime_t calltime;
1897 
1898 	calltime = initcall_debug_start(dev, cb);
1899 
1900 	trace_device_pm_callback_start(dev, info, state.event);
1901 	error = cb(dev, state);
1902 	trace_device_pm_callback_end(dev, error);
1903 	suspend_report_result(dev, cb, error);
1904 
1905 	initcall_debug_report(dev, calltime, cb, error);
1906 
1907 	return error;
1908 }
1909 
1910 static void dpm_clear_superiors_direct_complete(struct device *dev)
1911 {
1912 	struct device_link *link;
1913 	int idx;
1914 
1915 	if (dev->parent) {
1916 		spin_lock_irq(&dev->parent->power.lock);
1917 		dev->parent->power.direct_complete = false;
1918 		spin_unlock_irq(&dev->parent->power.lock);
1919 	}
1920 
1921 	idx = device_links_read_lock();
1922 
1923 	dev_for_each_link_to_supplier(link, dev) {
1924 		spin_lock_irq(&link->supplier->power.lock);
1925 		link->supplier->power.direct_complete = false;
1926 		spin_unlock_irq(&link->supplier->power.lock);
1927 	}
1928 
1929 	device_links_read_unlock(idx);
1930 }
1931 
1932 static void async_suspend(void *data, async_cookie_t cookie);
1933 
1934 /**
1935  * device_suspend - Execute "suspend" callbacks for given device.
1936  * @dev: Device to handle.
1937  * @state: PM transition of the system being carried out.
1938  * @async: If true, the device is being suspended asynchronously.
1939  */
1940 static void device_suspend(struct device *dev, pm_message_t state, bool async)
1941 {
1942 	pm_callback_t callback = NULL;
1943 	const char *info = NULL;
1944 	int error = 0;
1945 	DECLARE_DPM_WATCHDOG_ON_STACK(wd);
1946 
1947 	TRACE_DEVICE(dev);
1948 	TRACE_SUSPEND(0);
1949 
1950 	dpm_wait_for_subordinate(dev, async);
1951 
1952 	if (READ_ONCE(async_error)) {
1953 		dev->power.direct_complete = false;
1954 		goto Complete;
1955 	}
1956 
1957 	/*
1958 	 * Wait for possible runtime PM transitions of the device in progress
1959 	 * to complete and if there's a runtime resume request pending for it,
1960 	 * resume it before proceeding with invoking the system-wide suspend
1961 	 * callbacks for it.
1962 	 *
1963 	 * If the system-wide suspend callbacks below change the configuration
1964 	 * of the device, they must disable runtime PM for it or otherwise
1965 	 * ensure that its runtime-resume callbacks will not be confused by that
1966 	 * change in case they are invoked going forward.
1967 	 */
1968 	pm_runtime_barrier(dev);
1969 
1970 	if (pm_wakeup_pending()) {
1971 		dev->power.direct_complete = false;
1972 		WRITE_ONCE(async_error, -EBUSY);
1973 		goto Complete;
1974 	}
1975 
1976 	if (dev->power.syscore)
1977 		goto Complete;
1978 
1979 	/* Avoid direct_complete to let wakeup_path propagate. */
1980 	if (device_may_wakeup(dev) || device_wakeup_path(dev))
1981 		dev->power.direct_complete = false;
1982 
1983 	if (dev->power.direct_complete) {
1984 		if (pm_runtime_status_suspended(dev)) {
1985 			pm_runtime_disable(dev);
1986 			if (pm_runtime_status_suspended(dev)) {
1987 				pm_dev_dbg(dev, state, "direct-complete ");
1988 				dev->power.is_suspended = true;
1989 				goto Complete;
1990 			}
1991 
1992 			pm_runtime_enable(dev);
1993 		}
1994 		dev->power.direct_complete = false;
1995 	}
1996 
1997 	dev->power.may_skip_resume = true;
1998 	dev->power.must_resume = !dev_pm_test_driver_flags(dev, DPM_FLAG_MAY_SKIP_RESUME);
1999 
2000 	dpm_watchdog_set(&wd, dev);
2001 	device_lock(dev);
2002 
2003 	if (dev->pm_domain) {
2004 		info = "power domain ";
2005 		callback = pm_op(&dev->pm_domain->ops, state);
2006 		goto Run;
2007 	}
2008 
2009 	if (dev->type && dev->type->pm) {
2010 		info = "type ";
2011 		callback = pm_op(dev->type->pm, state);
2012 		goto Run;
2013 	}
2014 
2015 	if (dev->class && dev->class->pm) {
2016 		info = "class ";
2017 		callback = pm_op(dev->class->pm, state);
2018 		goto Run;
2019 	}
2020 
2021 	if (dev->bus) {
2022 		if (dev->bus->pm) {
2023 			info = "bus ";
2024 			callback = pm_op(dev->bus->pm, state);
2025 		} else if (dev->bus->suspend) {
2026 			pm_dev_dbg(dev, state, "legacy bus ");
2027 			error = legacy_suspend(dev, state, dev->bus->suspend,
2028 						"legacy bus ");
2029 			goto End;
2030 		}
2031 	}
2032 
2033  Run:
2034 	if (!callback && dev->driver && dev->driver->pm) {
2035 		info = "driver ";
2036 		callback = pm_op(dev->driver->pm, state);
2037 	}
2038 
2039 	error = dpm_run_callback(callback, dev, state, info);
2040 
2041  End:
2042 	if (!error) {
2043 		dev->power.is_suspended = true;
2044 		if (device_may_wakeup(dev))
2045 			dev->power.wakeup_path = true;
2046 
2047 		dpm_propagate_wakeup_to_parent(dev);
2048 		dpm_clear_superiors_direct_complete(dev);
2049 	}
2050 
2051 	device_unlock(dev);
2052 	dpm_watchdog_clear(&wd);
2053 
2054  Complete:
2055 	if (error) {
2056 		WRITE_ONCE(async_error, error);
2057 		dpm_save_failed_dev(dev_name(dev));
2058 		pm_dev_err(dev, state, async ? " async" : "", error);
2059 	}
2060 
2061 	complete_all(&dev->power.completion);
2062 	TRACE_SUSPEND(error);
2063 
2064 	if (error || READ_ONCE(async_error))
2065 		return;
2066 
2067 	dpm_async_suspend_superior(dev, async_suspend);
2068 }
2069 
2070 static void async_suspend(void *data, async_cookie_t cookie)
2071 {
2072 	struct device *dev = data;
2073 
2074 	device_suspend(dev, pm_transition, true);
2075 	put_device(dev);
2076 }
2077 
2078 /**
2079  * dpm_suspend - Execute "suspend" callbacks for all non-sysdev devices.
2080  * @state: PM transition of the system being carried out.
2081  */
2082 int dpm_suspend(pm_message_t state)
2083 {
2084 	ktime_t starttime = ktime_get();
2085 	struct device *dev;
2086 	int error;
2087 
2088 	trace_suspend_resume(TPS("dpm_suspend"), state.event, true);
2089 	might_sleep();
2090 
2091 	devfreq_suspend();
2092 	cpufreq_suspend();
2093 
2094 	pm_transition = state;
2095 	async_error = 0;
2096 
2097 	mutex_lock(&dpm_list_mtx);
2098 
2099 	/*
2100 	 * Start processing "async" leaf devices upfront so they don't need to
2101 	 * wait for the "sync" devices they don't depend on.
2102 	 */
2103 	list_for_each_entry_reverse(dev, &dpm_prepared_list, power.entry) {
2104 		dpm_clear_async_state(dev);
2105 		if (dpm_leaf_device(dev))
2106 			dpm_async_with_cleanup(dev, async_suspend);
2107 	}
2108 
2109 	while (!list_empty(&dpm_prepared_list)) {
2110 		dev = to_device(dpm_prepared_list.prev);
2111 
2112 		list_move(&dev->power.entry, &dpm_suspended_list);
2113 
2114 		if (dpm_async_fn(dev, async_suspend))
2115 			continue;
2116 
2117 		get_device(dev);
2118 
2119 		mutex_unlock(&dpm_list_mtx);
2120 
2121 		device_suspend(dev, state, false);
2122 
2123 		put_device(dev);
2124 
2125 		mutex_lock(&dpm_list_mtx);
2126 
2127 		if (READ_ONCE(async_error)) {
2128 			dpm_async_suspend_complete_all(&dpm_prepared_list);
2129 			/*
2130 			 * Move all devices to the target list to resume them
2131 			 * properly.
2132 			 */
2133 			list_splice_init(&dpm_prepared_list, &dpm_suspended_list);
2134 			break;
2135 		}
2136 	}
2137 
2138 	mutex_unlock(&dpm_list_mtx);
2139 
2140 	async_synchronize_full();
2141 
2142 	error = READ_ONCE(async_error);
2143 	if (error)
2144 		dpm_save_failed_step(SUSPEND_SUSPEND);
2145 
2146 	dpm_show_time(starttime, state, error, NULL);
2147 	trace_suspend_resume(TPS("dpm_suspend"), state.event, false);
2148 	return error;
2149 }
2150 
2151 static bool device_prepare_smart_suspend(struct device *dev)
2152 {
2153 	struct device_link *link;
2154 	bool ret = true;
2155 	int idx;
2156 
2157 	/*
2158 	 * The "smart suspend" feature is enabled for devices whose drivers ask
2159 	 * for it and for devices without PM callbacks.
2160 	 *
2161 	 * However, if "smart suspend" is not enabled for the device's parent
2162 	 * or any of its suppliers that take runtime PM into account, it cannot
2163 	 * be enabled for the device either.
2164 	 */
2165 	if (!dev->power.no_pm_callbacks &&
2166 	    !dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND))
2167 		return false;
2168 
2169 	if (dev->parent && !dev_pm_smart_suspend(dev->parent) &&
2170 	    !dev->parent->power.ignore_children && !pm_runtime_blocked(dev->parent))
2171 		return false;
2172 
2173 	idx = device_links_read_lock();
2174 
2175 	dev_for_each_link_to_supplier(link, dev) {
2176 		if (!device_link_test(link, DL_FLAG_PM_RUNTIME))
2177 			continue;
2178 
2179 		if (!dev_pm_smart_suspend(link->supplier) &&
2180 		    !pm_runtime_blocked(link->supplier)) {
2181 			ret = false;
2182 			break;
2183 		}
2184 	}
2185 
2186 	device_links_read_unlock(idx);
2187 
2188 	return ret;
2189 }
2190 
2191 /**
2192  * device_prepare - Prepare a device for system power transition.
2193  * @dev: Device to handle.
2194  * @state: PM transition of the system being carried out.
2195  *
2196  * Execute the ->prepare() callback(s) for given device.  No new children of the
2197  * device may be registered after this function has returned.
2198  */
2199 static int device_prepare(struct device *dev, pm_message_t state)
2200 {
2201 	int (*callback)(struct device *) = NULL;
2202 	bool smart_suspend;
2203 	int ret = 0;
2204 
2205 	/*
2206 	 * If a device's parent goes into runtime suspend at the wrong time,
2207 	 * it won't be possible to resume the device.  To prevent this we
2208 	 * block runtime suspend here, during the prepare phase, and allow
2209 	 * it again during the complete phase.
2210 	 */
2211 	pm_runtime_get_noresume(dev);
2212 	/*
2213 	 * If runtime PM is disabled for the device at this point and it has
2214 	 * never been enabled so far, it should not be enabled until this system
2215 	 * suspend-resume cycle is complete, so prepare to trigger a warning on
2216 	 * subsequent attempts to enable it.
2217 	 */
2218 	smart_suspend = !pm_runtime_block_if_disabled(dev);
2219 
2220 	if (dev->power.syscore)
2221 		return 0;
2222 
2223 	device_lock(dev);
2224 
2225 	dev->power.wakeup_path = false;
2226 	dev->power.out_band_wakeup = false;
2227 
2228 	if (dev->power.no_pm_callbacks)
2229 		goto unlock;
2230 
2231 	if (dev->pm_domain)
2232 		callback = dev->pm_domain->ops.prepare;
2233 	else if (dev->type && dev->type->pm)
2234 		callback = dev->type->pm->prepare;
2235 	else if (dev->class && dev->class->pm)
2236 		callback = dev->class->pm->prepare;
2237 	else if (dev->bus && dev->bus->pm)
2238 		callback = dev->bus->pm->prepare;
2239 
2240 	if (!callback && dev->driver && dev->driver->pm)
2241 		callback = dev->driver->pm->prepare;
2242 
2243 	if (callback)
2244 		ret = callback(dev);
2245 
2246 unlock:
2247 	device_unlock(dev);
2248 
2249 	if (ret < 0) {
2250 		suspend_report_result(dev, callback, ret);
2251 		pm_runtime_put(dev);
2252 		return ret;
2253 	}
2254 	/* Do not enable "smart suspend" for devices with disabled runtime PM. */
2255 	if (smart_suspend)
2256 		smart_suspend = device_prepare_smart_suspend(dev);
2257 
2258 	spin_lock_irq(&dev->power.lock);
2259 
2260 	dev->power.smart_suspend = smart_suspend;
2261 	/*
2262 	 * A positive return value from ->prepare() means "this device appears
2263 	 * to be runtime-suspended and its state is fine, so if it really is
2264 	 * runtime-suspended, you can leave it in that state provided that you
2265 	 * will do the same thing with all of its descendants".  This only
2266 	 * applies to suspend transitions, however.
2267 	 */
2268 	dev->power.direct_complete = state.event == PM_EVENT_SUSPEND &&
2269 		(ret > 0 || dev->power.no_pm_callbacks) &&
2270 		!dev_pm_test_driver_flags(dev, DPM_FLAG_NO_DIRECT_COMPLETE);
2271 
2272 	spin_unlock_irq(&dev->power.lock);
2273 
2274 	return 0;
2275 }
2276 
2277 /**
2278  * dpm_prepare - Prepare all non-sysdev devices for a system PM transition.
2279  * @state: PM transition of the system being carried out.
2280  *
2281  * Execute the ->prepare() callback(s) for all devices.
2282  */
2283 int dpm_prepare(pm_message_t state)
2284 {
2285 	int error = 0;
2286 
2287 	trace_suspend_resume(TPS("dpm_prepare"), state.event, true);
2288 
2289 	/*
2290 	 * Give a chance for the known devices to complete their probes, before
2291 	 * disable probing of devices. This sync point is important at least
2292 	 * at boot time + hibernation restore.
2293 	 */
2294 	wait_for_device_probe();
2295 	/*
2296 	 * It is unsafe if probing of devices will happen during suspend or
2297 	 * hibernation and system behavior will be unpredictable in this case.
2298 	 * So, let's prohibit device's probing here and defer their probes
2299 	 * instead. The normal behavior will be restored in dpm_complete().
2300 	 */
2301 	device_block_probing();
2302 	/* Suspend thermal control. */
2303 	thermal_pm_prepare();
2304 
2305 	mutex_lock(&dpm_list_mtx);
2306 	while (!list_empty(&dpm_list) && !error) {
2307 		struct device *dev = to_device(dpm_list.next);
2308 
2309 		get_device(dev);
2310 
2311 		mutex_unlock(&dpm_list_mtx);
2312 
2313 		trace_device_pm_callback_start(dev, "", state.event);
2314 		error = device_prepare(dev, state);
2315 		trace_device_pm_callback_end(dev, error);
2316 
2317 		mutex_lock(&dpm_list_mtx);
2318 
2319 		if (!error) {
2320 			dev->power.is_prepared = true;
2321 			if (!list_empty(&dev->power.entry))
2322 				list_move_tail(&dev->power.entry, &dpm_prepared_list);
2323 		} else if (error == -EAGAIN) {
2324 			error = 0;
2325 		} else {
2326 			dev_info(dev, "not prepared for power transition: code %d\n",
2327 				 error);
2328 		}
2329 
2330 		mutex_unlock(&dpm_list_mtx);
2331 
2332 		put_device(dev);
2333 
2334 		mutex_lock(&dpm_list_mtx);
2335 	}
2336 	mutex_unlock(&dpm_list_mtx);
2337 	trace_suspend_resume(TPS("dpm_prepare"), state.event, false);
2338 	return error;
2339 }
2340 
2341 /**
2342  * dpm_suspend_start - Prepare devices for PM transition and suspend them.
2343  * @state: PM transition of the system being carried out.
2344  *
2345  * Prepare all non-sysdev devices for system PM transition and execute "suspend"
2346  * callbacks for them.
2347  */
2348 int dpm_suspend_start(pm_message_t state)
2349 {
2350 	ktime_t starttime = ktime_get();
2351 	int error;
2352 
2353 	error = dpm_prepare(state);
2354 	if (error)
2355 		dpm_save_failed_step(SUSPEND_PREPARE);
2356 	else {
2357 		pm_restrict_gfp_mask();
2358 		error = dpm_suspend(state);
2359 	}
2360 
2361 	dpm_show_time(starttime, state, error, "start");
2362 	return error;
2363 }
2364 EXPORT_SYMBOL_GPL(dpm_suspend_start);
2365 
2366 void __suspend_report_result(const char *function, struct device *dev, void *fn, int ret)
2367 {
2368 	if (ret)
2369 		dev_err(dev, "%s(): %ps returns %d\n", function, fn, ret);
2370 }
2371 EXPORT_SYMBOL_GPL(__suspend_report_result);
2372 
2373 /**
2374  * device_pm_wait_for_dev - Wait for suspend/resume of a device to complete.
2375  * @subordinate: Device that needs to wait for @dev.
2376  * @dev: Device to wait for.
2377  */
2378 int device_pm_wait_for_dev(struct device *subordinate, struct device *dev)
2379 {
2380 	dpm_wait(dev, subordinate->power.async_suspend);
2381 	return async_error;
2382 }
2383 EXPORT_SYMBOL_GPL(device_pm_wait_for_dev);
2384 
2385 /**
2386  * dpm_for_each_dev - device iterator.
2387  * @data: data for the callback.
2388  * @fn: function to be called for each device.
2389  *
2390  * Iterate over devices in dpm_list, and call @fn for each device,
2391  * passing it @data.
2392  */
2393 void dpm_for_each_dev(void *data, void (*fn)(struct device *, void *))
2394 {
2395 	struct device *dev;
2396 
2397 	if (!fn)
2398 		return;
2399 
2400 	device_pm_lock();
2401 	list_for_each_entry(dev, &dpm_list, power.entry)
2402 		fn(dev, data);
2403 	device_pm_unlock();
2404 }
2405 EXPORT_SYMBOL_GPL(dpm_for_each_dev);
2406 
2407 static bool pm_ops_is_empty(const struct dev_pm_ops *ops)
2408 {
2409 	if (!ops)
2410 		return true;
2411 
2412 	return !ops->prepare &&
2413 	       !ops->suspend &&
2414 	       !ops->suspend_late &&
2415 	       !ops->suspend_noirq &&
2416 	       !ops->resume_noirq &&
2417 	       !ops->resume_early &&
2418 	       !ops->resume &&
2419 	       !ops->complete;
2420 }
2421 
2422 void device_pm_check_callbacks(struct device *dev)
2423 {
2424 	unsigned long flags;
2425 
2426 	spin_lock_irqsave(&dev->power.lock, flags);
2427 	dev->power.no_pm_callbacks =
2428 		(!dev->bus || (pm_ops_is_empty(dev->bus->pm) &&
2429 		 !dev->bus->suspend && !dev->bus->resume)) &&
2430 		(!dev->class || pm_ops_is_empty(dev->class->pm)) &&
2431 		(!dev->type || pm_ops_is_empty(dev->type->pm)) &&
2432 		(!dev->pm_domain || pm_ops_is_empty(&dev->pm_domain->ops)) &&
2433 		(!dev->driver || (pm_ops_is_empty(dev->driver->pm) &&
2434 		 !dev->driver->suspend && !dev->driver->resume));
2435 	spin_unlock_irqrestore(&dev->power.lock, flags);
2436 }
2437 
2438 bool dev_pm_skip_suspend(struct device *dev)
2439 {
2440 	return dev_pm_smart_suspend(dev) && pm_runtime_status_suspended(dev);
2441 }
2442