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