main.c 46 KB

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  1. /*
  2. * drivers/base/power/main.c - Where the driver meets power management.
  3. *
  4. * Copyright (c) 2003 Patrick Mochel
  5. * Copyright (c) 2003 Open Source Development Lab
  6. *
  7. * This file is released under the GPLv2
  8. *
  9. *
  10. * The driver model core calls device_pm_add() when a device is registered.
  11. * This will initialize the embedded device_pm_info object in the device
  12. * and add it to the list of power-controlled devices. sysfs entries for
  13. * controlling device power management will also be added.
  14. *
  15. * A separate list is used for keeping track of power info, because the power
  16. * domain dependencies may differ from the ancestral dependencies that the
  17. * subsystem list maintains.
  18. */
  19. #include <linux/device.h>
  20. #include <linux/kallsyms.h>
  21. #include <linux/export.h>
  22. #include <linux/mutex.h>
  23. #include <linux/pm.h>
  24. #include <linux/pm_runtime.h>
  25. #include <linux/pm-trace.h>
  26. #include <linux/pm_wakeirq.h>
  27. #include <linux/interrupt.h>
  28. #include <linux/sched.h>
  29. #include <linux/sched/debug.h>
  30. #include <linux/async.h>
  31. #include <linux/suspend.h>
  32. #include <trace/events/power.h>
  33. #include <linux/cpufreq.h>
  34. #include <linux/cpuidle.h>
  35. #include <linux/timer.h>
  36. #include "../base.h"
  37. #include "power.h"
  38. typedef int (*pm_callback_t)(struct device *);
  39. /*
  40. * The entries in the dpm_list list are in a depth first order, simply
  41. * because children are guaranteed to be discovered after parents, and
  42. * are inserted at the back of the list on discovery.
  43. *
  44. * Since device_pm_add() may be called with a device lock held,
  45. * we must never try to acquire a device lock while holding
  46. * dpm_list_mutex.
  47. */
  48. LIST_HEAD(dpm_list);
  49. static LIST_HEAD(dpm_prepared_list);
  50. static LIST_HEAD(dpm_suspended_list);
  51. static LIST_HEAD(dpm_late_early_list);
  52. static LIST_HEAD(dpm_noirq_list);
  53. struct suspend_stats suspend_stats;
  54. static DEFINE_MUTEX(dpm_list_mtx);
  55. static pm_message_t pm_transition;
  56. static int async_error;
  57. static const char *pm_verb(int event)
  58. {
  59. switch (event) {
  60. case PM_EVENT_SUSPEND:
  61. return "suspend";
  62. case PM_EVENT_RESUME:
  63. return "resume";
  64. case PM_EVENT_FREEZE:
  65. return "freeze";
  66. case PM_EVENT_QUIESCE:
  67. return "quiesce";
  68. case PM_EVENT_HIBERNATE:
  69. return "hibernate";
  70. case PM_EVENT_THAW:
  71. return "thaw";
  72. case PM_EVENT_RESTORE:
  73. return "restore";
  74. case PM_EVENT_RECOVER:
  75. return "recover";
  76. default:
  77. return "(unknown PM event)";
  78. }
  79. }
  80. /**
  81. * device_pm_sleep_init - Initialize system suspend-related device fields.
  82. * @dev: Device object being initialized.
  83. */
  84. void device_pm_sleep_init(struct device *dev)
  85. {
  86. dev->power.is_prepared = false;
  87. dev->power.is_suspended = false;
  88. dev->power.is_noirq_suspended = false;
  89. dev->power.is_late_suspended = false;
  90. init_completion(&dev->power.completion);
  91. complete_all(&dev->power.completion);
  92. dev->power.wakeup = NULL;
  93. INIT_LIST_HEAD(&dev->power.entry);
  94. }
  95. /**
  96. * device_pm_lock - Lock the list of active devices used by the PM core.
  97. */
  98. void device_pm_lock(void)
  99. {
  100. mutex_lock(&dpm_list_mtx);
  101. }
  102. /**
  103. * device_pm_unlock - Unlock the list of active devices used by the PM core.
  104. */
  105. void device_pm_unlock(void)
  106. {
  107. mutex_unlock(&dpm_list_mtx);
  108. }
  109. /**
  110. * device_pm_add - Add a device to the PM core's list of active devices.
  111. * @dev: Device to add to the list.
  112. */
  113. void device_pm_add(struct device *dev)
  114. {
  115. pr_debug("PM: Adding info for %s:%s\n",
  116. dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
  117. device_pm_check_callbacks(dev);
  118. mutex_lock(&dpm_list_mtx);
  119. if (dev->parent && dev->parent->power.is_prepared)
  120. dev_warn(dev, "parent %s should not be sleeping\n",
  121. dev_name(dev->parent));
  122. list_add_tail(&dev->power.entry, &dpm_list);
  123. dev->power.in_dpm_list = true;
  124. mutex_unlock(&dpm_list_mtx);
  125. }
  126. /**
  127. * device_pm_remove - Remove a device from the PM core's list of active devices.
  128. * @dev: Device to be removed from the list.
  129. */
  130. void device_pm_remove(struct device *dev)
  131. {
  132. pr_debug("PM: Removing info for %s:%s\n",
  133. dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
  134. complete_all(&dev->power.completion);
  135. mutex_lock(&dpm_list_mtx);
  136. list_del_init(&dev->power.entry);
  137. dev->power.in_dpm_list = false;
  138. mutex_unlock(&dpm_list_mtx);
  139. device_wakeup_disable(dev);
  140. pm_runtime_remove(dev);
  141. device_pm_check_callbacks(dev);
  142. }
  143. /**
  144. * device_pm_move_before - Move device in the PM core's list of active devices.
  145. * @deva: Device to move in dpm_list.
  146. * @devb: Device @deva should come before.
  147. */
  148. void device_pm_move_before(struct device *deva, struct device *devb)
  149. {
  150. pr_debug("PM: Moving %s:%s before %s:%s\n",
  151. deva->bus ? deva->bus->name : "No Bus", dev_name(deva),
  152. devb->bus ? devb->bus->name : "No Bus", dev_name(devb));
  153. /* Delete deva from dpm_list and reinsert before devb. */
  154. list_move_tail(&deva->power.entry, &devb->power.entry);
  155. }
  156. /**
  157. * device_pm_move_after - Move device in the PM core's list of active devices.
  158. * @deva: Device to move in dpm_list.
  159. * @devb: Device @deva should come after.
  160. */
  161. void device_pm_move_after(struct device *deva, struct device *devb)
  162. {
  163. pr_debug("PM: Moving %s:%s after %s:%s\n",
  164. deva->bus ? deva->bus->name : "No Bus", dev_name(deva),
  165. devb->bus ? devb->bus->name : "No Bus", dev_name(devb));
  166. /* Delete deva from dpm_list and reinsert after devb. */
  167. list_move(&deva->power.entry, &devb->power.entry);
  168. }
  169. /**
  170. * device_pm_move_last - Move device to end of the PM core's list of devices.
  171. * @dev: Device to move in dpm_list.
  172. */
  173. void device_pm_move_last(struct device *dev)
  174. {
  175. pr_debug("PM: Moving %s:%s to end of list\n",
  176. dev->bus ? dev->bus->name : "No Bus", dev_name(dev));
  177. list_move_tail(&dev->power.entry, &dpm_list);
  178. }
  179. static ktime_t initcall_debug_start(struct device *dev)
  180. {
  181. ktime_t calltime = 0;
  182. if (pm_print_times_enabled) {
  183. pr_info("calling %s+ @ %i, parent: %s\n",
  184. dev_name(dev), task_pid_nr(current),
  185. dev->parent ? dev_name(dev->parent) : "none");
  186. calltime = ktime_get();
  187. }
  188. return calltime;
  189. }
  190. static void initcall_debug_report(struct device *dev, ktime_t calltime,
  191. int error, pm_message_t state,
  192. const char *info)
  193. {
  194. ktime_t rettime;
  195. s64 nsecs;
  196. rettime = ktime_get();
  197. nsecs = (s64) ktime_to_ns(ktime_sub(rettime, calltime));
  198. if (pm_print_times_enabled) {
  199. pr_info("call %s+ returned %d after %Ld usecs\n", dev_name(dev),
  200. error, (unsigned long long)nsecs >> 10);
  201. }
  202. }
  203. /**
  204. * dpm_wait - Wait for a PM operation to complete.
  205. * @dev: Device to wait for.
  206. * @async: If unset, wait only if the device's power.async_suspend flag is set.
  207. */
  208. static void dpm_wait(struct device *dev, bool async)
  209. {
  210. if (!dev)
  211. return;
  212. if (async || (pm_async_enabled && dev->power.async_suspend))
  213. wait_for_completion(&dev->power.completion);
  214. }
  215. static int dpm_wait_fn(struct device *dev, void *async_ptr)
  216. {
  217. dpm_wait(dev, *((bool *)async_ptr));
  218. return 0;
  219. }
  220. static void dpm_wait_for_children(struct device *dev, bool async)
  221. {
  222. device_for_each_child(dev, &async, dpm_wait_fn);
  223. }
  224. static void dpm_wait_for_suppliers(struct device *dev, bool async)
  225. {
  226. struct device_link *link;
  227. int idx;
  228. idx = device_links_read_lock();
  229. /*
  230. * If the supplier goes away right after we've checked the link to it,
  231. * we'll wait for its completion to change the state, but that's fine,
  232. * because the only things that will block as a result are the SRCU
  233. * callbacks freeing the link objects for the links in the list we're
  234. * walking.
  235. */
  236. list_for_each_entry_rcu(link, &dev->links.suppliers, c_node)
  237. if (READ_ONCE(link->status) != DL_STATE_DORMANT)
  238. dpm_wait(link->supplier, async);
  239. device_links_read_unlock(idx);
  240. }
  241. static void dpm_wait_for_superior(struct device *dev, bool async)
  242. {
  243. dpm_wait(dev->parent, async);
  244. dpm_wait_for_suppliers(dev, async);
  245. }
  246. static void dpm_wait_for_consumers(struct device *dev, bool async)
  247. {
  248. struct device_link *link;
  249. int idx;
  250. idx = device_links_read_lock();
  251. /*
  252. * The status of a device link can only be changed from "dormant" by a
  253. * probe, but that cannot happen during system suspend/resume. In
  254. * theory it can change to "dormant" at that time, but then it is
  255. * reasonable to wait for the target device anyway (eg. if it goes
  256. * away, it's better to wait for it to go away completely and then
  257. * continue instead of trying to continue in parallel with its
  258. * unregistration).
  259. */
  260. list_for_each_entry_rcu(link, &dev->links.consumers, s_node)
  261. if (READ_ONCE(link->status) != DL_STATE_DORMANT)
  262. dpm_wait(link->consumer, async);
  263. device_links_read_unlock(idx);
  264. }
  265. static void dpm_wait_for_subordinate(struct device *dev, bool async)
  266. {
  267. dpm_wait_for_children(dev, async);
  268. dpm_wait_for_consumers(dev, async);
  269. }
  270. /**
  271. * pm_op - Return the PM operation appropriate for given PM event.
  272. * @ops: PM operations to choose from.
  273. * @state: PM transition of the system being carried out.
  274. */
  275. static pm_callback_t pm_op(const struct dev_pm_ops *ops, pm_message_t state)
  276. {
  277. switch (state.event) {
  278. #ifdef CONFIG_SUSPEND
  279. case PM_EVENT_SUSPEND:
  280. return ops->suspend;
  281. case PM_EVENT_RESUME:
  282. return ops->resume;
  283. #endif /* CONFIG_SUSPEND */
  284. #ifdef CONFIG_HIBERNATE_CALLBACKS
  285. case PM_EVENT_FREEZE:
  286. case PM_EVENT_QUIESCE:
  287. return ops->freeze;
  288. case PM_EVENT_HIBERNATE:
  289. return ops->poweroff;
  290. case PM_EVENT_THAW:
  291. case PM_EVENT_RECOVER:
  292. return ops->thaw;
  293. break;
  294. case PM_EVENT_RESTORE:
  295. return ops->restore;
  296. #endif /* CONFIG_HIBERNATE_CALLBACKS */
  297. }
  298. return NULL;
  299. }
  300. /**
  301. * pm_late_early_op - Return the PM operation appropriate for given PM event.
  302. * @ops: PM operations to choose from.
  303. * @state: PM transition of the system being carried out.
  304. *
  305. * Runtime PM is disabled for @dev while this function is being executed.
  306. */
  307. static pm_callback_t pm_late_early_op(const struct dev_pm_ops *ops,
  308. pm_message_t state)
  309. {
  310. switch (state.event) {
  311. #ifdef CONFIG_SUSPEND
  312. case PM_EVENT_SUSPEND:
  313. return ops->suspend_late;
  314. case PM_EVENT_RESUME:
  315. return ops->resume_early;
  316. #endif /* CONFIG_SUSPEND */
  317. #ifdef CONFIG_HIBERNATE_CALLBACKS
  318. case PM_EVENT_FREEZE:
  319. case PM_EVENT_QUIESCE:
  320. return ops->freeze_late;
  321. case PM_EVENT_HIBERNATE:
  322. return ops->poweroff_late;
  323. case PM_EVENT_THAW:
  324. case PM_EVENT_RECOVER:
  325. return ops->thaw_early;
  326. case PM_EVENT_RESTORE:
  327. return ops->restore_early;
  328. #endif /* CONFIG_HIBERNATE_CALLBACKS */
  329. }
  330. return NULL;
  331. }
  332. /**
  333. * pm_noirq_op - Return the PM operation appropriate for given PM event.
  334. * @ops: PM operations to choose from.
  335. * @state: PM transition of the system being carried out.
  336. *
  337. * The driver of @dev will not receive interrupts while this function is being
  338. * executed.
  339. */
  340. static pm_callback_t pm_noirq_op(const struct dev_pm_ops *ops, pm_message_t state)
  341. {
  342. switch (state.event) {
  343. #ifdef CONFIG_SUSPEND
  344. case PM_EVENT_SUSPEND:
  345. return ops->suspend_noirq;
  346. case PM_EVENT_RESUME:
  347. return ops->resume_noirq;
  348. #endif /* CONFIG_SUSPEND */
  349. #ifdef CONFIG_HIBERNATE_CALLBACKS
  350. case PM_EVENT_FREEZE:
  351. case PM_EVENT_QUIESCE:
  352. return ops->freeze_noirq;
  353. case PM_EVENT_HIBERNATE:
  354. return ops->poweroff_noirq;
  355. case PM_EVENT_THAW:
  356. case PM_EVENT_RECOVER:
  357. return ops->thaw_noirq;
  358. case PM_EVENT_RESTORE:
  359. return ops->restore_noirq;
  360. #endif /* CONFIG_HIBERNATE_CALLBACKS */
  361. }
  362. return NULL;
  363. }
  364. static void pm_dev_dbg(struct device *dev, pm_message_t state, const char *info)
  365. {
  366. dev_dbg(dev, "%s%s%s\n", info, pm_verb(state.event),
  367. ((state.event & PM_EVENT_SLEEP) && device_may_wakeup(dev)) ?
  368. ", may wakeup" : "");
  369. }
  370. static void pm_dev_err(struct device *dev, pm_message_t state, const char *info,
  371. int error)
  372. {
  373. printk(KERN_ERR "PM: Device %s failed to %s%s: error %d\n",
  374. dev_name(dev), pm_verb(state.event), info, error);
  375. }
  376. static void dpm_show_time(ktime_t starttime, pm_message_t state, int error,
  377. const char *info)
  378. {
  379. ktime_t calltime;
  380. u64 usecs64;
  381. int usecs;
  382. calltime = ktime_get();
  383. usecs64 = ktime_to_ns(ktime_sub(calltime, starttime));
  384. do_div(usecs64, NSEC_PER_USEC);
  385. usecs = usecs64;
  386. if (usecs == 0)
  387. usecs = 1;
  388. pm_pr_dbg("%s%s%s of devices %s after %ld.%03ld msecs\n",
  389. info ?: "", info ? " " : "", pm_verb(state.event),
  390. error ? "aborted" : "complete",
  391. usecs / USEC_PER_MSEC, usecs % USEC_PER_MSEC);
  392. }
  393. static int dpm_run_callback(pm_callback_t cb, struct device *dev,
  394. pm_message_t state, const char *info)
  395. {
  396. ktime_t calltime;
  397. int error;
  398. if (!cb)
  399. return 0;
  400. calltime = initcall_debug_start(dev);
  401. pm_dev_dbg(dev, state, info);
  402. trace_device_pm_callback_start(dev, info, state.event);
  403. error = cb(dev);
  404. trace_device_pm_callback_end(dev, error);
  405. suspend_report_result(cb, error);
  406. initcall_debug_report(dev, calltime, error, state, info);
  407. return error;
  408. }
  409. #ifdef CONFIG_DPM_WATCHDOG
  410. struct dpm_watchdog {
  411. struct device *dev;
  412. struct task_struct *tsk;
  413. struct timer_list timer;
  414. };
  415. #define DECLARE_DPM_WATCHDOG_ON_STACK(wd) \
  416. struct dpm_watchdog wd
  417. /**
  418. * dpm_watchdog_handler - Driver suspend / resume watchdog handler.
  419. * @data: Watchdog object address.
  420. *
  421. * Called when a driver has timed out suspending or resuming.
  422. * There's not much we can do here to recover so panic() to
  423. * capture a crash-dump in pstore.
  424. */
  425. static void dpm_watchdog_handler(struct timer_list *t)
  426. {
  427. struct dpm_watchdog *wd = from_timer(wd, t, timer);
  428. dev_emerg(wd->dev, "**** DPM device timeout ****\n");
  429. show_stack(wd->tsk, NULL);
  430. panic("%s %s: unrecoverable failure\n",
  431. dev_driver_string(wd->dev), dev_name(wd->dev));
  432. }
  433. /**
  434. * dpm_watchdog_set - Enable pm watchdog for given device.
  435. * @wd: Watchdog. Must be allocated on the stack.
  436. * @dev: Device to handle.
  437. */
  438. static void dpm_watchdog_set(struct dpm_watchdog *wd, struct device *dev)
  439. {
  440. struct timer_list *timer = &wd->timer;
  441. wd->dev = dev;
  442. wd->tsk = current;
  443. timer_setup_on_stack(timer, dpm_watchdog_handler, 0);
  444. /* use same timeout value for both suspend and resume */
  445. timer->expires = jiffies + HZ * CONFIG_DPM_WATCHDOG_TIMEOUT;
  446. add_timer(timer);
  447. }
  448. /**
  449. * dpm_watchdog_clear - Disable suspend/resume watchdog.
  450. * @wd: Watchdog to disable.
  451. */
  452. static void dpm_watchdog_clear(struct dpm_watchdog *wd)
  453. {
  454. struct timer_list *timer = &wd->timer;
  455. del_timer_sync(timer);
  456. destroy_timer_on_stack(timer);
  457. }
  458. #else
  459. #define DECLARE_DPM_WATCHDOG_ON_STACK(wd)
  460. #define dpm_watchdog_set(x, y)
  461. #define dpm_watchdog_clear(x)
  462. #endif
  463. /*------------------------- Resume routines -------------------------*/
  464. /**
  465. * device_resume_noirq - Execute an "early resume" callback for given device.
  466. * @dev: Device to handle.
  467. * @state: PM transition of the system being carried out.
  468. * @async: If true, the device is being resumed asynchronously.
  469. *
  470. * The driver of @dev will not receive interrupts while this function is being
  471. * executed.
  472. */
  473. static int device_resume_noirq(struct device *dev, pm_message_t state, bool async)
  474. {
  475. pm_callback_t callback = NULL;
  476. const char *info = NULL;
  477. int error = 0;
  478. TRACE_DEVICE(dev);
  479. TRACE_RESUME(0);
  480. if (dev->power.syscore || dev->power.direct_complete)
  481. goto Out;
  482. if (!dev->power.is_noirq_suspended)
  483. goto Out;
  484. dpm_wait_for_superior(dev, async);
  485. if (dev->pm_domain) {
  486. info = "noirq power domain ";
  487. callback = pm_noirq_op(&dev->pm_domain->ops, state);
  488. } else if (dev->type && dev->type->pm) {
  489. info = "noirq type ";
  490. callback = pm_noirq_op(dev->type->pm, state);
  491. } else if (dev->class && dev->class->pm) {
  492. info = "noirq class ";
  493. callback = pm_noirq_op(dev->class->pm, state);
  494. } else if (dev->bus && dev->bus->pm) {
  495. info = "noirq bus ";
  496. callback = pm_noirq_op(dev->bus->pm, state);
  497. }
  498. if (!callback && dev->driver && dev->driver->pm) {
  499. info = "noirq driver ";
  500. callback = pm_noirq_op(dev->driver->pm, state);
  501. }
  502. error = dpm_run_callback(callback, dev, state, info);
  503. dev->power.is_noirq_suspended = false;
  504. Out:
  505. complete_all(&dev->power.completion);
  506. TRACE_RESUME(error);
  507. return error;
  508. }
  509. static bool is_async(struct device *dev)
  510. {
  511. return dev->power.async_suspend && pm_async_enabled
  512. && !pm_trace_is_enabled();
  513. }
  514. static void async_resume_noirq(void *data, async_cookie_t cookie)
  515. {
  516. struct device *dev = (struct device *)data;
  517. int error;
  518. error = device_resume_noirq(dev, pm_transition, true);
  519. if (error)
  520. pm_dev_err(dev, pm_transition, " async", error);
  521. put_device(dev);
  522. }
  523. void dpm_noirq_resume_devices(pm_message_t state)
  524. {
  525. struct device *dev;
  526. ktime_t starttime = ktime_get();
  527. trace_suspend_resume(TPS("dpm_resume_noirq"), state.event, true);
  528. mutex_lock(&dpm_list_mtx);
  529. pm_transition = state;
  530. /*
  531. * Advanced the async threads upfront,
  532. * in case the starting of async threads is
  533. * delayed by non-async resuming devices.
  534. */
  535. list_for_each_entry(dev, &dpm_noirq_list, power.entry) {
  536. reinit_completion(&dev->power.completion);
  537. if (is_async(dev)) {
  538. get_device(dev);
  539. async_schedule(async_resume_noirq, dev);
  540. }
  541. }
  542. while (!list_empty(&dpm_noirq_list)) {
  543. dev = to_device(dpm_noirq_list.next);
  544. get_device(dev);
  545. list_move_tail(&dev->power.entry, &dpm_late_early_list);
  546. mutex_unlock(&dpm_list_mtx);
  547. if (!is_async(dev)) {
  548. int error;
  549. error = device_resume_noirq(dev, state, false);
  550. if (error) {
  551. suspend_stats.failed_resume_noirq++;
  552. dpm_save_failed_step(SUSPEND_RESUME_NOIRQ);
  553. dpm_save_failed_dev(dev_name(dev));
  554. pm_dev_err(dev, state, " noirq", error);
  555. }
  556. }
  557. mutex_lock(&dpm_list_mtx);
  558. put_device(dev);
  559. }
  560. mutex_unlock(&dpm_list_mtx);
  561. async_synchronize_full();
  562. dpm_show_time(starttime, state, 0, "noirq");
  563. trace_suspend_resume(TPS("dpm_resume_noirq"), state.event, false);
  564. }
  565. void dpm_noirq_end(void)
  566. {
  567. resume_device_irqs();
  568. device_wakeup_disarm_wake_irqs();
  569. cpuidle_resume();
  570. }
  571. /**
  572. * dpm_resume_noirq - Execute "noirq resume" callbacks for all devices.
  573. * @state: PM transition of the system being carried out.
  574. *
  575. * Invoke the "noirq" resume callbacks for all devices in dpm_noirq_list and
  576. * allow device drivers' interrupt handlers to be called.
  577. */
  578. void dpm_resume_noirq(pm_message_t state)
  579. {
  580. dpm_noirq_resume_devices(state);
  581. dpm_noirq_end();
  582. }
  583. /**
  584. * device_resume_early - Execute an "early resume" callback for given device.
  585. * @dev: Device to handle.
  586. * @state: PM transition of the system being carried out.
  587. * @async: If true, the device is being resumed asynchronously.
  588. *
  589. * Runtime PM is disabled for @dev while this function is being executed.
  590. */
  591. static int device_resume_early(struct device *dev, pm_message_t state, bool async)
  592. {
  593. pm_callback_t callback = NULL;
  594. const char *info = NULL;
  595. int error = 0;
  596. TRACE_DEVICE(dev);
  597. TRACE_RESUME(0);
  598. if (dev->power.syscore || dev->power.direct_complete)
  599. goto Out;
  600. if (!dev->power.is_late_suspended)
  601. goto Out;
  602. dpm_wait_for_superior(dev, async);
  603. if (dev->pm_domain) {
  604. info = "early power domain ";
  605. callback = pm_late_early_op(&dev->pm_domain->ops, state);
  606. } else if (dev->type && dev->type->pm) {
  607. info = "early type ";
  608. callback = pm_late_early_op(dev->type->pm, state);
  609. } else if (dev->class && dev->class->pm) {
  610. info = "early class ";
  611. callback = pm_late_early_op(dev->class->pm, state);
  612. } else if (dev->bus && dev->bus->pm) {
  613. info = "early bus ";
  614. callback = pm_late_early_op(dev->bus->pm, state);
  615. }
  616. if (!callback && dev->driver && dev->driver->pm) {
  617. info = "early driver ";
  618. callback = pm_late_early_op(dev->driver->pm, state);
  619. }
  620. error = dpm_run_callback(callback, dev, state, info);
  621. dev->power.is_late_suspended = false;
  622. Out:
  623. TRACE_RESUME(error);
  624. pm_runtime_enable(dev);
  625. complete_all(&dev->power.completion);
  626. return error;
  627. }
  628. static void async_resume_early(void *data, async_cookie_t cookie)
  629. {
  630. struct device *dev = (struct device *)data;
  631. int error;
  632. error = device_resume_early(dev, pm_transition, true);
  633. if (error)
  634. pm_dev_err(dev, pm_transition, " async", error);
  635. put_device(dev);
  636. }
  637. /**
  638. * dpm_resume_early - Execute "early resume" callbacks for all devices.
  639. * @state: PM transition of the system being carried out.
  640. */
  641. void dpm_resume_early(pm_message_t state)
  642. {
  643. struct device *dev;
  644. ktime_t starttime = ktime_get();
  645. trace_suspend_resume(TPS("dpm_resume_early"), state.event, true);
  646. mutex_lock(&dpm_list_mtx);
  647. pm_transition = state;
  648. /*
  649. * Advanced the async threads upfront,
  650. * in case the starting of async threads is
  651. * delayed by non-async resuming devices.
  652. */
  653. list_for_each_entry(dev, &dpm_late_early_list, power.entry) {
  654. reinit_completion(&dev->power.completion);
  655. if (is_async(dev)) {
  656. get_device(dev);
  657. async_schedule(async_resume_early, dev);
  658. }
  659. }
  660. while (!list_empty(&dpm_late_early_list)) {
  661. dev = to_device(dpm_late_early_list.next);
  662. get_device(dev);
  663. list_move_tail(&dev->power.entry, &dpm_suspended_list);
  664. mutex_unlock(&dpm_list_mtx);
  665. if (!is_async(dev)) {
  666. int error;
  667. error = device_resume_early(dev, state, false);
  668. if (error) {
  669. suspend_stats.failed_resume_early++;
  670. dpm_save_failed_step(SUSPEND_RESUME_EARLY);
  671. dpm_save_failed_dev(dev_name(dev));
  672. pm_dev_err(dev, state, " early", error);
  673. }
  674. }
  675. mutex_lock(&dpm_list_mtx);
  676. put_device(dev);
  677. }
  678. mutex_unlock(&dpm_list_mtx);
  679. async_synchronize_full();
  680. dpm_show_time(starttime, state, 0, "early");
  681. trace_suspend_resume(TPS("dpm_resume_early"), state.event, false);
  682. }
  683. /**
  684. * dpm_resume_start - Execute "noirq" and "early" device callbacks.
  685. * @state: PM transition of the system being carried out.
  686. */
  687. void dpm_resume_start(pm_message_t state)
  688. {
  689. dpm_resume_noirq(state);
  690. dpm_resume_early(state);
  691. }
  692. EXPORT_SYMBOL_GPL(dpm_resume_start);
  693. /**
  694. * device_resume - Execute "resume" callbacks for given device.
  695. * @dev: Device to handle.
  696. * @state: PM transition of the system being carried out.
  697. * @async: If true, the device is being resumed asynchronously.
  698. */
  699. static int device_resume(struct device *dev, pm_message_t state, bool async)
  700. {
  701. pm_callback_t callback = NULL;
  702. const char *info = NULL;
  703. int error = 0;
  704. DECLARE_DPM_WATCHDOG_ON_STACK(wd);
  705. TRACE_DEVICE(dev);
  706. TRACE_RESUME(0);
  707. if (dev->power.syscore)
  708. goto Complete;
  709. if (dev->power.direct_complete) {
  710. /* Match the pm_runtime_disable() in __device_suspend(). */
  711. pm_runtime_enable(dev);
  712. goto Complete;
  713. }
  714. dpm_wait_for_superior(dev, async);
  715. dpm_watchdog_set(&wd, dev);
  716. device_lock(dev);
  717. /*
  718. * This is a fib. But we'll allow new children to be added below
  719. * a resumed device, even if the device hasn't been completed yet.
  720. */
  721. dev->power.is_prepared = false;
  722. if (!dev->power.is_suspended)
  723. goto Unlock;
  724. if (dev->pm_domain) {
  725. info = "power domain ";
  726. callback = pm_op(&dev->pm_domain->ops, state);
  727. goto Driver;
  728. }
  729. if (dev->type && dev->type->pm) {
  730. info = "type ";
  731. callback = pm_op(dev->type->pm, state);
  732. goto Driver;
  733. }
  734. if (dev->class) {
  735. if (dev->class->pm) {
  736. info = "class ";
  737. callback = pm_op(dev->class->pm, state);
  738. goto Driver;
  739. } else if (dev->class->resume) {
  740. info = "legacy class ";
  741. callback = dev->class->resume;
  742. goto End;
  743. }
  744. }
  745. if (dev->bus) {
  746. if (dev->bus->pm) {
  747. info = "bus ";
  748. callback = pm_op(dev->bus->pm, state);
  749. } else if (dev->bus->resume) {
  750. info = "legacy bus ";
  751. callback = dev->bus->resume;
  752. goto End;
  753. }
  754. }
  755. Driver:
  756. if (!callback && dev->driver && dev->driver->pm) {
  757. info = "driver ";
  758. callback = pm_op(dev->driver->pm, state);
  759. }
  760. End:
  761. error = dpm_run_callback(callback, dev, state, info);
  762. dev->power.is_suspended = false;
  763. Unlock:
  764. device_unlock(dev);
  765. dpm_watchdog_clear(&wd);
  766. Complete:
  767. complete_all(&dev->power.completion);
  768. TRACE_RESUME(error);
  769. return error;
  770. }
  771. static void async_resume(void *data, async_cookie_t cookie)
  772. {
  773. struct device *dev = (struct device *)data;
  774. int error;
  775. error = device_resume(dev, pm_transition, true);
  776. if (error)
  777. pm_dev_err(dev, pm_transition, " async", error);
  778. put_device(dev);
  779. }
  780. /**
  781. * dpm_resume - Execute "resume" callbacks for non-sysdev devices.
  782. * @state: PM transition of the system being carried out.
  783. *
  784. * Execute the appropriate "resume" callback for all devices whose status
  785. * indicates that they are suspended.
  786. */
  787. void dpm_resume(pm_message_t state)
  788. {
  789. struct device *dev;
  790. ktime_t starttime = ktime_get();
  791. trace_suspend_resume(TPS("dpm_resume"), state.event, true);
  792. might_sleep();
  793. mutex_lock(&dpm_list_mtx);
  794. pm_transition = state;
  795. async_error = 0;
  796. list_for_each_entry(dev, &dpm_suspended_list, power.entry) {
  797. reinit_completion(&dev->power.completion);
  798. if (is_async(dev)) {
  799. get_device(dev);
  800. async_schedule(async_resume, dev);
  801. }
  802. }
  803. while (!list_empty(&dpm_suspended_list)) {
  804. dev = to_device(dpm_suspended_list.next);
  805. get_device(dev);
  806. if (!is_async(dev)) {
  807. int error;
  808. mutex_unlock(&dpm_list_mtx);
  809. error = device_resume(dev, state, false);
  810. if (error) {
  811. suspend_stats.failed_resume++;
  812. dpm_save_failed_step(SUSPEND_RESUME);
  813. dpm_save_failed_dev(dev_name(dev));
  814. pm_dev_err(dev, state, "", error);
  815. }
  816. mutex_lock(&dpm_list_mtx);
  817. }
  818. if (!list_empty(&dev->power.entry))
  819. list_move_tail(&dev->power.entry, &dpm_prepared_list);
  820. put_device(dev);
  821. }
  822. mutex_unlock(&dpm_list_mtx);
  823. async_synchronize_full();
  824. dpm_show_time(starttime, state, 0, NULL);
  825. cpufreq_resume();
  826. trace_suspend_resume(TPS("dpm_resume"), state.event, false);
  827. }
  828. /**
  829. * device_complete - Complete a PM transition for given device.
  830. * @dev: Device to handle.
  831. * @state: PM transition of the system being carried out.
  832. */
  833. static void device_complete(struct device *dev, pm_message_t state)
  834. {
  835. void (*callback)(struct device *) = NULL;
  836. const char *info = NULL;
  837. if (dev->power.syscore)
  838. return;
  839. device_lock(dev);
  840. if (dev->pm_domain) {
  841. info = "completing power domain ";
  842. callback = dev->pm_domain->ops.complete;
  843. } else if (dev->type && dev->type->pm) {
  844. info = "completing type ";
  845. callback = dev->type->pm->complete;
  846. } else if (dev->class && dev->class->pm) {
  847. info = "completing class ";
  848. callback = dev->class->pm->complete;
  849. } else if (dev->bus && dev->bus->pm) {
  850. info = "completing bus ";
  851. callback = dev->bus->pm->complete;
  852. }
  853. if (!callback && dev->driver && dev->driver->pm) {
  854. info = "completing driver ";
  855. callback = dev->driver->pm->complete;
  856. }
  857. if (callback) {
  858. pm_dev_dbg(dev, state, info);
  859. callback(dev);
  860. }
  861. device_unlock(dev);
  862. pm_runtime_put(dev);
  863. }
  864. /**
  865. * dpm_complete - Complete a PM transition for all non-sysdev devices.
  866. * @state: PM transition of the system being carried out.
  867. *
  868. * Execute the ->complete() callbacks for all devices whose PM status is not
  869. * DPM_ON (this allows new devices to be registered).
  870. */
  871. void dpm_complete(pm_message_t state)
  872. {
  873. struct list_head list;
  874. trace_suspend_resume(TPS("dpm_complete"), state.event, true);
  875. might_sleep();
  876. INIT_LIST_HEAD(&list);
  877. mutex_lock(&dpm_list_mtx);
  878. while (!list_empty(&dpm_prepared_list)) {
  879. struct device *dev = to_device(dpm_prepared_list.prev);
  880. get_device(dev);
  881. dev->power.is_prepared = false;
  882. list_move(&dev->power.entry, &list);
  883. mutex_unlock(&dpm_list_mtx);
  884. trace_device_pm_callback_start(dev, "", state.event);
  885. device_complete(dev, state);
  886. trace_device_pm_callback_end(dev, 0);
  887. mutex_lock(&dpm_list_mtx);
  888. put_device(dev);
  889. }
  890. list_splice(&list, &dpm_list);
  891. mutex_unlock(&dpm_list_mtx);
  892. /* Allow device probing and trigger re-probing of deferred devices */
  893. device_unblock_probing();
  894. trace_suspend_resume(TPS("dpm_complete"), state.event, false);
  895. }
  896. /**
  897. * dpm_resume_end - Execute "resume" callbacks and complete system transition.
  898. * @state: PM transition of the system being carried out.
  899. *
  900. * Execute "resume" callbacks for all devices and complete the PM transition of
  901. * the system.
  902. */
  903. void dpm_resume_end(pm_message_t state)
  904. {
  905. dpm_resume(state);
  906. dpm_complete(state);
  907. }
  908. EXPORT_SYMBOL_GPL(dpm_resume_end);
  909. /*------------------------- Suspend routines -------------------------*/
  910. /**
  911. * resume_event - Return a "resume" message for given "suspend" sleep state.
  912. * @sleep_state: PM message representing a sleep state.
  913. *
  914. * Return a PM message representing the resume event corresponding to given
  915. * sleep state.
  916. */
  917. static pm_message_t resume_event(pm_message_t sleep_state)
  918. {
  919. switch (sleep_state.event) {
  920. case PM_EVENT_SUSPEND:
  921. return PMSG_RESUME;
  922. case PM_EVENT_FREEZE:
  923. case PM_EVENT_QUIESCE:
  924. return PMSG_RECOVER;
  925. case PM_EVENT_HIBERNATE:
  926. return PMSG_RESTORE;
  927. }
  928. return PMSG_ON;
  929. }
  930. /**
  931. * device_suspend_noirq - Execute a "late suspend" callback for given device.
  932. * @dev: Device to handle.
  933. * @state: PM transition of the system being carried out.
  934. * @async: If true, the device is being suspended asynchronously.
  935. *
  936. * The driver of @dev will not receive interrupts while this function is being
  937. * executed.
  938. */
  939. static int __device_suspend_noirq(struct device *dev, pm_message_t state, bool async)
  940. {
  941. pm_callback_t callback = NULL;
  942. const char *info = NULL;
  943. int error = 0;
  944. TRACE_DEVICE(dev);
  945. TRACE_SUSPEND(0);
  946. dpm_wait_for_subordinate(dev, async);
  947. if (async_error)
  948. goto Complete;
  949. if (pm_wakeup_pending()) {
  950. async_error = -EBUSY;
  951. goto Complete;
  952. }
  953. if (dev->power.syscore || dev->power.direct_complete)
  954. goto Complete;
  955. if (dev->pm_domain) {
  956. info = "noirq power domain ";
  957. callback = pm_noirq_op(&dev->pm_domain->ops, state);
  958. } else if (dev->type && dev->type->pm) {
  959. info = "noirq type ";
  960. callback = pm_noirq_op(dev->type->pm, state);
  961. } else if (dev->class && dev->class->pm) {
  962. info = "noirq class ";
  963. callback = pm_noirq_op(dev->class->pm, state);
  964. } else if (dev->bus && dev->bus->pm) {
  965. info = "noirq bus ";
  966. callback = pm_noirq_op(dev->bus->pm, state);
  967. }
  968. if (!callback && dev->driver && dev->driver->pm) {
  969. info = "noirq driver ";
  970. callback = pm_noirq_op(dev->driver->pm, state);
  971. }
  972. error = dpm_run_callback(callback, dev, state, info);
  973. if (!error)
  974. dev->power.is_noirq_suspended = true;
  975. else
  976. async_error = error;
  977. Complete:
  978. complete_all(&dev->power.completion);
  979. TRACE_SUSPEND(error);
  980. return error;
  981. }
  982. static void async_suspend_noirq(void *data, async_cookie_t cookie)
  983. {
  984. struct device *dev = (struct device *)data;
  985. int error;
  986. error = __device_suspend_noirq(dev, pm_transition, true);
  987. if (error) {
  988. dpm_save_failed_dev(dev_name(dev));
  989. pm_dev_err(dev, pm_transition, " async", error);
  990. }
  991. put_device(dev);
  992. }
  993. static int device_suspend_noirq(struct device *dev)
  994. {
  995. reinit_completion(&dev->power.completion);
  996. if (is_async(dev)) {
  997. get_device(dev);
  998. async_schedule(async_suspend_noirq, dev);
  999. return 0;
  1000. }
  1001. return __device_suspend_noirq(dev, pm_transition, false);
  1002. }
  1003. void dpm_noirq_begin(void)
  1004. {
  1005. cpuidle_pause();
  1006. device_wakeup_arm_wake_irqs();
  1007. suspend_device_irqs();
  1008. }
  1009. int dpm_noirq_suspend_devices(pm_message_t state)
  1010. {
  1011. ktime_t starttime = ktime_get();
  1012. int error = 0;
  1013. trace_suspend_resume(TPS("dpm_suspend_noirq"), state.event, true);
  1014. mutex_lock(&dpm_list_mtx);
  1015. pm_transition = state;
  1016. async_error = 0;
  1017. while (!list_empty(&dpm_late_early_list)) {
  1018. struct device *dev = to_device(dpm_late_early_list.prev);
  1019. get_device(dev);
  1020. mutex_unlock(&dpm_list_mtx);
  1021. error = device_suspend_noirq(dev);
  1022. mutex_lock(&dpm_list_mtx);
  1023. if (error) {
  1024. pm_dev_err(dev, state, " noirq", error);
  1025. dpm_save_failed_dev(dev_name(dev));
  1026. put_device(dev);
  1027. break;
  1028. }
  1029. if (!list_empty(&dev->power.entry))
  1030. list_move(&dev->power.entry, &dpm_noirq_list);
  1031. put_device(dev);
  1032. if (async_error)
  1033. break;
  1034. }
  1035. mutex_unlock(&dpm_list_mtx);
  1036. async_synchronize_full();
  1037. if (!error)
  1038. error = async_error;
  1039. if (error) {
  1040. suspend_stats.failed_suspend_noirq++;
  1041. dpm_save_failed_step(SUSPEND_SUSPEND_NOIRQ);
  1042. }
  1043. dpm_show_time(starttime, state, error, "noirq");
  1044. trace_suspend_resume(TPS("dpm_suspend_noirq"), state.event, false);
  1045. return error;
  1046. }
  1047. /**
  1048. * dpm_suspend_noirq - Execute "noirq suspend" callbacks for all devices.
  1049. * @state: PM transition of the system being carried out.
  1050. *
  1051. * Prevent device drivers' interrupt handlers from being called and invoke
  1052. * "noirq" suspend callbacks for all non-sysdev devices.
  1053. */
  1054. int dpm_suspend_noirq(pm_message_t state)
  1055. {
  1056. int ret;
  1057. dpm_noirq_begin();
  1058. ret = dpm_noirq_suspend_devices(state);
  1059. if (ret)
  1060. dpm_resume_noirq(resume_event(state));
  1061. return ret;
  1062. }
  1063. /**
  1064. * device_suspend_late - Execute a "late suspend" callback for given device.
  1065. * @dev: Device to handle.
  1066. * @state: PM transition of the system being carried out.
  1067. * @async: If true, the device is being suspended asynchronously.
  1068. *
  1069. * Runtime PM is disabled for @dev while this function is being executed.
  1070. */
  1071. static int __device_suspend_late(struct device *dev, pm_message_t state, bool async)
  1072. {
  1073. pm_callback_t callback = NULL;
  1074. const char *info = NULL;
  1075. int error = 0;
  1076. TRACE_DEVICE(dev);
  1077. TRACE_SUSPEND(0);
  1078. __pm_runtime_disable(dev, false);
  1079. dpm_wait_for_subordinate(dev, async);
  1080. if (async_error)
  1081. goto Complete;
  1082. if (pm_wakeup_pending()) {
  1083. async_error = -EBUSY;
  1084. goto Complete;
  1085. }
  1086. if (dev->power.syscore || dev->power.direct_complete)
  1087. goto Complete;
  1088. if (dev->pm_domain) {
  1089. info = "late power domain ";
  1090. callback = pm_late_early_op(&dev->pm_domain->ops, state);
  1091. } else if (dev->type && dev->type->pm) {
  1092. info = "late type ";
  1093. callback = pm_late_early_op(dev->type->pm, state);
  1094. } else if (dev->class && dev->class->pm) {
  1095. info = "late class ";
  1096. callback = pm_late_early_op(dev->class->pm, state);
  1097. } else if (dev->bus && dev->bus->pm) {
  1098. info = "late bus ";
  1099. callback = pm_late_early_op(dev->bus->pm, state);
  1100. }
  1101. if (!callback && dev->driver && dev->driver->pm) {
  1102. info = "late driver ";
  1103. callback = pm_late_early_op(dev->driver->pm, state);
  1104. }
  1105. error = dpm_run_callback(callback, dev, state, info);
  1106. if (!error)
  1107. dev->power.is_late_suspended = true;
  1108. else
  1109. async_error = error;
  1110. Complete:
  1111. TRACE_SUSPEND(error);
  1112. complete_all(&dev->power.completion);
  1113. return error;
  1114. }
  1115. static void async_suspend_late(void *data, async_cookie_t cookie)
  1116. {
  1117. struct device *dev = (struct device *)data;
  1118. int error;
  1119. error = __device_suspend_late(dev, pm_transition, true);
  1120. if (error) {
  1121. dpm_save_failed_dev(dev_name(dev));
  1122. pm_dev_err(dev, pm_transition, " async", error);
  1123. }
  1124. put_device(dev);
  1125. }
  1126. static int device_suspend_late(struct device *dev)
  1127. {
  1128. reinit_completion(&dev->power.completion);
  1129. if (is_async(dev)) {
  1130. get_device(dev);
  1131. async_schedule(async_suspend_late, dev);
  1132. return 0;
  1133. }
  1134. return __device_suspend_late(dev, pm_transition, false);
  1135. }
  1136. /**
  1137. * dpm_suspend_late - Execute "late suspend" callbacks for all devices.
  1138. * @state: PM transition of the system being carried out.
  1139. */
  1140. int dpm_suspend_late(pm_message_t state)
  1141. {
  1142. ktime_t starttime = ktime_get();
  1143. int error = 0;
  1144. trace_suspend_resume(TPS("dpm_suspend_late"), state.event, true);
  1145. mutex_lock(&dpm_list_mtx);
  1146. pm_transition = state;
  1147. async_error = 0;
  1148. while (!list_empty(&dpm_suspended_list)) {
  1149. struct device *dev = to_device(dpm_suspended_list.prev);
  1150. get_device(dev);
  1151. mutex_unlock(&dpm_list_mtx);
  1152. error = device_suspend_late(dev);
  1153. mutex_lock(&dpm_list_mtx);
  1154. if (!list_empty(&dev->power.entry))
  1155. list_move(&dev->power.entry, &dpm_late_early_list);
  1156. if (error) {
  1157. pm_dev_err(dev, state, " late", error);
  1158. dpm_save_failed_dev(dev_name(dev));
  1159. put_device(dev);
  1160. break;
  1161. }
  1162. put_device(dev);
  1163. if (async_error)
  1164. break;
  1165. }
  1166. mutex_unlock(&dpm_list_mtx);
  1167. async_synchronize_full();
  1168. if (!error)
  1169. error = async_error;
  1170. if (error) {
  1171. suspend_stats.failed_suspend_late++;
  1172. dpm_save_failed_step(SUSPEND_SUSPEND_LATE);
  1173. dpm_resume_early(resume_event(state));
  1174. }
  1175. dpm_show_time(starttime, state, error, "late");
  1176. trace_suspend_resume(TPS("dpm_suspend_late"), state.event, false);
  1177. return error;
  1178. }
  1179. /**
  1180. * dpm_suspend_end - Execute "late" and "noirq" device suspend callbacks.
  1181. * @state: PM transition of the system being carried out.
  1182. */
  1183. int dpm_suspend_end(pm_message_t state)
  1184. {
  1185. int error = dpm_suspend_late(state);
  1186. if (error)
  1187. return error;
  1188. error = dpm_suspend_noirq(state);
  1189. if (error) {
  1190. dpm_resume_early(resume_event(state));
  1191. return error;
  1192. }
  1193. return 0;
  1194. }
  1195. EXPORT_SYMBOL_GPL(dpm_suspend_end);
  1196. /**
  1197. * legacy_suspend - Execute a legacy (bus or class) suspend callback for device.
  1198. * @dev: Device to suspend.
  1199. * @state: PM transition of the system being carried out.
  1200. * @cb: Suspend callback to execute.
  1201. * @info: string description of caller.
  1202. */
  1203. static int legacy_suspend(struct device *dev, pm_message_t state,
  1204. int (*cb)(struct device *dev, pm_message_t state),
  1205. const char *info)
  1206. {
  1207. int error;
  1208. ktime_t calltime;
  1209. calltime = initcall_debug_start(dev);
  1210. trace_device_pm_callback_start(dev, info, state.event);
  1211. error = cb(dev, state);
  1212. trace_device_pm_callback_end(dev, error);
  1213. suspend_report_result(cb, error);
  1214. initcall_debug_report(dev, calltime, error, state, info);
  1215. return error;
  1216. }
  1217. static void dpm_clear_suppliers_direct_complete(struct device *dev)
  1218. {
  1219. struct device_link *link;
  1220. int idx;
  1221. idx = device_links_read_lock();
  1222. list_for_each_entry_rcu(link, &dev->links.suppliers, c_node) {
  1223. spin_lock_irq(&link->supplier->power.lock);
  1224. link->supplier->power.direct_complete = false;
  1225. spin_unlock_irq(&link->supplier->power.lock);
  1226. }
  1227. device_links_read_unlock(idx);
  1228. }
  1229. /**
  1230. * device_suspend - Execute "suspend" callbacks for given device.
  1231. * @dev: Device to handle.
  1232. * @state: PM transition of the system being carried out.
  1233. * @async: If true, the device is being suspended asynchronously.
  1234. */
  1235. static int __device_suspend(struct device *dev, pm_message_t state, bool async)
  1236. {
  1237. pm_callback_t callback = NULL;
  1238. const char *info = NULL;
  1239. int error = 0;
  1240. DECLARE_DPM_WATCHDOG_ON_STACK(wd);
  1241. TRACE_DEVICE(dev);
  1242. TRACE_SUSPEND(0);
  1243. dpm_wait_for_subordinate(dev, async);
  1244. if (async_error)
  1245. goto Complete;
  1246. /*
  1247. * If a device configured to wake up the system from sleep states
  1248. * has been suspended at run time and there's a resume request pending
  1249. * for it, this is equivalent to the device signaling wakeup, so the
  1250. * system suspend operation should be aborted.
  1251. */
  1252. if (pm_runtime_barrier(dev) && device_may_wakeup(dev))
  1253. pm_wakeup_event(dev, 0);
  1254. if (pm_wakeup_pending()) {
  1255. async_error = -EBUSY;
  1256. goto Complete;
  1257. }
  1258. if (dev->power.syscore)
  1259. goto Complete;
  1260. if (dev->power.direct_complete) {
  1261. if (pm_runtime_status_suspended(dev)) {
  1262. pm_runtime_disable(dev);
  1263. if (pm_runtime_status_suspended(dev))
  1264. goto Complete;
  1265. pm_runtime_enable(dev);
  1266. }
  1267. dev->power.direct_complete = false;
  1268. }
  1269. dpm_watchdog_set(&wd, dev);
  1270. device_lock(dev);
  1271. if (dev->pm_domain) {
  1272. info = "power domain ";
  1273. callback = pm_op(&dev->pm_domain->ops, state);
  1274. goto Run;
  1275. }
  1276. if (dev->type && dev->type->pm) {
  1277. info = "type ";
  1278. callback = pm_op(dev->type->pm, state);
  1279. goto Run;
  1280. }
  1281. if (dev->class) {
  1282. if (dev->class->pm) {
  1283. info = "class ";
  1284. callback = pm_op(dev->class->pm, state);
  1285. goto Run;
  1286. } else if (dev->class->suspend) {
  1287. pm_dev_dbg(dev, state, "legacy class ");
  1288. error = legacy_suspend(dev, state, dev->class->suspend,
  1289. "legacy class ");
  1290. goto End;
  1291. }
  1292. }
  1293. if (dev->bus) {
  1294. if (dev->bus->pm) {
  1295. info = "bus ";
  1296. callback = pm_op(dev->bus->pm, state);
  1297. } else if (dev->bus->suspend) {
  1298. pm_dev_dbg(dev, state, "legacy bus ");
  1299. error = legacy_suspend(dev, state, dev->bus->suspend,
  1300. "legacy bus ");
  1301. goto End;
  1302. }
  1303. }
  1304. Run:
  1305. if (!callback && dev->driver && dev->driver->pm) {
  1306. info = "driver ";
  1307. callback = pm_op(dev->driver->pm, state);
  1308. }
  1309. error = dpm_run_callback(callback, dev, state, info);
  1310. End:
  1311. if (!error) {
  1312. struct device *parent = dev->parent;
  1313. dev->power.is_suspended = true;
  1314. if (parent) {
  1315. spin_lock_irq(&parent->power.lock);
  1316. dev->parent->power.direct_complete = false;
  1317. if (dev->power.wakeup_path
  1318. && !dev->parent->power.ignore_children)
  1319. dev->parent->power.wakeup_path = true;
  1320. spin_unlock_irq(&parent->power.lock);
  1321. }
  1322. dpm_clear_suppliers_direct_complete(dev);
  1323. }
  1324. device_unlock(dev);
  1325. dpm_watchdog_clear(&wd);
  1326. Complete:
  1327. if (error)
  1328. async_error = error;
  1329. complete_all(&dev->power.completion);
  1330. TRACE_SUSPEND(error);
  1331. return error;
  1332. }
  1333. static void async_suspend(void *data, async_cookie_t cookie)
  1334. {
  1335. struct device *dev = (struct device *)data;
  1336. int error;
  1337. error = __device_suspend(dev, pm_transition, true);
  1338. if (error) {
  1339. dpm_save_failed_dev(dev_name(dev));
  1340. pm_dev_err(dev, pm_transition, " async", error);
  1341. }
  1342. put_device(dev);
  1343. }
  1344. static int device_suspend(struct device *dev)
  1345. {
  1346. reinit_completion(&dev->power.completion);
  1347. if (is_async(dev)) {
  1348. get_device(dev);
  1349. async_schedule(async_suspend, dev);
  1350. return 0;
  1351. }
  1352. return __device_suspend(dev, pm_transition, false);
  1353. }
  1354. /**
  1355. * dpm_suspend - Execute "suspend" callbacks for all non-sysdev devices.
  1356. * @state: PM transition of the system being carried out.
  1357. */
  1358. int dpm_suspend(pm_message_t state)
  1359. {
  1360. ktime_t starttime = ktime_get();
  1361. int error = 0;
  1362. trace_suspend_resume(TPS("dpm_suspend"), state.event, true);
  1363. might_sleep();
  1364. cpufreq_suspend();
  1365. mutex_lock(&dpm_list_mtx);
  1366. pm_transition = state;
  1367. async_error = 0;
  1368. while (!list_empty(&dpm_prepared_list)) {
  1369. struct device *dev = to_device(dpm_prepared_list.prev);
  1370. get_device(dev);
  1371. mutex_unlock(&dpm_list_mtx);
  1372. error = device_suspend(dev);
  1373. mutex_lock(&dpm_list_mtx);
  1374. if (error) {
  1375. pm_dev_err(dev, state, "", error);
  1376. dpm_save_failed_dev(dev_name(dev));
  1377. put_device(dev);
  1378. break;
  1379. }
  1380. if (!list_empty(&dev->power.entry))
  1381. list_move(&dev->power.entry, &dpm_suspended_list);
  1382. put_device(dev);
  1383. if (async_error)
  1384. break;
  1385. }
  1386. mutex_unlock(&dpm_list_mtx);
  1387. async_synchronize_full();
  1388. if (!error)
  1389. error = async_error;
  1390. if (error) {
  1391. suspend_stats.failed_suspend++;
  1392. dpm_save_failed_step(SUSPEND_SUSPEND);
  1393. }
  1394. dpm_show_time(starttime, state, error, NULL);
  1395. trace_suspend_resume(TPS("dpm_suspend"), state.event, false);
  1396. return error;
  1397. }
  1398. /**
  1399. * device_prepare - Prepare a device for system power transition.
  1400. * @dev: Device to handle.
  1401. * @state: PM transition of the system being carried out.
  1402. *
  1403. * Execute the ->prepare() callback(s) for given device. No new children of the
  1404. * device may be registered after this function has returned.
  1405. */
  1406. static int device_prepare(struct device *dev, pm_message_t state)
  1407. {
  1408. int (*callback)(struct device *) = NULL;
  1409. int ret = 0;
  1410. if (dev->power.syscore)
  1411. return 0;
  1412. /*
  1413. * If a device's parent goes into runtime suspend at the wrong time,
  1414. * it won't be possible to resume the device. To prevent this we
  1415. * block runtime suspend here, during the prepare phase, and allow
  1416. * it again during the complete phase.
  1417. */
  1418. pm_runtime_get_noresume(dev);
  1419. device_lock(dev);
  1420. dev->power.wakeup_path = device_may_wakeup(dev);
  1421. if (dev->power.no_pm_callbacks) {
  1422. ret = 1; /* Let device go direct_complete */
  1423. goto unlock;
  1424. }
  1425. if (dev->pm_domain)
  1426. callback = dev->pm_domain->ops.prepare;
  1427. else if (dev->type && dev->type->pm)
  1428. callback = dev->type->pm->prepare;
  1429. else if (dev->class && dev->class->pm)
  1430. callback = dev->class->pm->prepare;
  1431. else if (dev->bus && dev->bus->pm)
  1432. callback = dev->bus->pm->prepare;
  1433. if (!callback && dev->driver && dev->driver->pm)
  1434. callback = dev->driver->pm->prepare;
  1435. if (callback)
  1436. ret = callback(dev);
  1437. unlock:
  1438. device_unlock(dev);
  1439. if (ret < 0) {
  1440. suspend_report_result(callback, ret);
  1441. pm_runtime_put(dev);
  1442. return ret;
  1443. }
  1444. /*
  1445. * A positive return value from ->prepare() means "this device appears
  1446. * to be runtime-suspended and its state is fine, so if it really is
  1447. * runtime-suspended, you can leave it in that state provided that you
  1448. * will do the same thing with all of its descendants". This only
  1449. * applies to suspend transitions, however.
  1450. */
  1451. spin_lock_irq(&dev->power.lock);
  1452. dev->power.direct_complete = ret > 0 && state.event == PM_EVENT_SUSPEND;
  1453. spin_unlock_irq(&dev->power.lock);
  1454. return 0;
  1455. }
  1456. /**
  1457. * dpm_prepare - Prepare all non-sysdev devices for a system PM transition.
  1458. * @state: PM transition of the system being carried out.
  1459. *
  1460. * Execute the ->prepare() callback(s) for all devices.
  1461. */
  1462. int dpm_prepare(pm_message_t state)
  1463. {
  1464. int error = 0;
  1465. trace_suspend_resume(TPS("dpm_prepare"), state.event, true);
  1466. might_sleep();
  1467. /*
  1468. * Give a chance for the known devices to complete their probes, before
  1469. * disable probing of devices. This sync point is important at least
  1470. * at boot time + hibernation restore.
  1471. */
  1472. wait_for_device_probe();
  1473. /*
  1474. * It is unsafe if probing of devices will happen during suspend or
  1475. * hibernation and system behavior will be unpredictable in this case.
  1476. * So, let's prohibit device's probing here and defer their probes
  1477. * instead. The normal behavior will be restored in dpm_complete().
  1478. */
  1479. device_block_probing();
  1480. mutex_lock(&dpm_list_mtx);
  1481. while (!list_empty(&dpm_list)) {
  1482. struct device *dev = to_device(dpm_list.next);
  1483. get_device(dev);
  1484. mutex_unlock(&dpm_list_mtx);
  1485. trace_device_pm_callback_start(dev, "", state.event);
  1486. error = device_prepare(dev, state);
  1487. trace_device_pm_callback_end(dev, error);
  1488. mutex_lock(&dpm_list_mtx);
  1489. if (error) {
  1490. if (error == -EAGAIN) {
  1491. put_device(dev);
  1492. error = 0;
  1493. continue;
  1494. }
  1495. printk(KERN_INFO "PM: Device %s not prepared "
  1496. "for power transition: code %d\n",
  1497. dev_name(dev), error);
  1498. put_device(dev);
  1499. break;
  1500. }
  1501. dev->power.is_prepared = true;
  1502. if (!list_empty(&dev->power.entry))
  1503. list_move_tail(&dev->power.entry, &dpm_prepared_list);
  1504. put_device(dev);
  1505. }
  1506. mutex_unlock(&dpm_list_mtx);
  1507. trace_suspend_resume(TPS("dpm_prepare"), state.event, false);
  1508. return error;
  1509. }
  1510. /**
  1511. * dpm_suspend_start - Prepare devices for PM transition and suspend them.
  1512. * @state: PM transition of the system being carried out.
  1513. *
  1514. * Prepare all non-sysdev devices for system PM transition and execute "suspend"
  1515. * callbacks for them.
  1516. */
  1517. int dpm_suspend_start(pm_message_t state)
  1518. {
  1519. int error;
  1520. error = dpm_prepare(state);
  1521. if (error) {
  1522. suspend_stats.failed_prepare++;
  1523. dpm_save_failed_step(SUSPEND_PREPARE);
  1524. } else
  1525. error = dpm_suspend(state);
  1526. return error;
  1527. }
  1528. EXPORT_SYMBOL_GPL(dpm_suspend_start);
  1529. void __suspend_report_result(const char *function, void *fn, int ret)
  1530. {
  1531. if (ret)
  1532. printk(KERN_ERR "%s(): %pF returns %d\n", function, fn, ret);
  1533. }
  1534. EXPORT_SYMBOL_GPL(__suspend_report_result);
  1535. /**
  1536. * device_pm_wait_for_dev - Wait for suspend/resume of a device to complete.
  1537. * @dev: Device to wait for.
  1538. * @subordinate: Device that needs to wait for @dev.
  1539. */
  1540. int device_pm_wait_for_dev(struct device *subordinate, struct device *dev)
  1541. {
  1542. dpm_wait(dev, subordinate->power.async_suspend);
  1543. return async_error;
  1544. }
  1545. EXPORT_SYMBOL_GPL(device_pm_wait_for_dev);
  1546. /**
  1547. * dpm_for_each_dev - device iterator.
  1548. * @data: data for the callback.
  1549. * @fn: function to be called for each device.
  1550. *
  1551. * Iterate over devices in dpm_list, and call @fn for each device,
  1552. * passing it @data.
  1553. */
  1554. void dpm_for_each_dev(void *data, void (*fn)(struct device *, void *))
  1555. {
  1556. struct device *dev;
  1557. if (!fn)
  1558. return;
  1559. device_pm_lock();
  1560. list_for_each_entry(dev, &dpm_list, power.entry)
  1561. fn(dev, data);
  1562. device_pm_unlock();
  1563. }
  1564. EXPORT_SYMBOL_GPL(dpm_for_each_dev);
  1565. static bool pm_ops_is_empty(const struct dev_pm_ops *ops)
  1566. {
  1567. if (!ops)
  1568. return true;
  1569. return !ops->prepare &&
  1570. !ops->suspend &&
  1571. !ops->suspend_late &&
  1572. !ops->suspend_noirq &&
  1573. !ops->resume_noirq &&
  1574. !ops->resume_early &&
  1575. !ops->resume &&
  1576. !ops->complete;
  1577. }
  1578. void device_pm_check_callbacks(struct device *dev)
  1579. {
  1580. spin_lock_irq(&dev->power.lock);
  1581. dev->power.no_pm_callbacks =
  1582. (!dev->bus || (pm_ops_is_empty(dev->bus->pm) &&
  1583. !dev->bus->suspend && !dev->bus->resume)) &&
  1584. (!dev->class || (pm_ops_is_empty(dev->class->pm) &&
  1585. !dev->class->suspend && !dev->class->resume)) &&
  1586. (!dev->type || pm_ops_is_empty(dev->type->pm)) &&
  1587. (!dev->pm_domain || pm_ops_is_empty(&dev->pm_domain->ops)) &&
  1588. (!dev->driver || (pm_ops_is_empty(dev->driver->pm) &&
  1589. !dev->driver->suspend && !dev->driver->resume));
  1590. spin_unlock_irq(&dev->power.lock);
  1591. }