include/package.mk: Add support for src-checkout/ folder
[openwrt/staging/blogic.git] / device_pm.c
1 /*
2 * drivers/acpi/device_pm.c - ACPI device power management routines.
3 *
4 * Copyright (C) 2012, Intel Corp.
5 * Author: Rafael J. Wysocki <rafael.j.wysocki@intel.com>
6 *
7 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
8 *
9 * This program is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License version 2 as published
11 * by the Free Software Foundation.
12 *
13 * This program is distributed in the hope that it will be useful, but
14 * WITHOUT ANY WARRANTY; without even the implied warranty of
15 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
16 * General Public License for more details.
17 *
18 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
19 */
20
21 #include <linux/acpi.h>
22 #include <linux/export.h>
23 #include <linux/mutex.h>
24 #include <linux/pm_qos.h>
25 #include <linux/pm_domain.h>
26 #include <linux/pm_runtime.h>
27 #include <linux/suspend.h>
28
29 #include "internal.h"
30
31 #define _COMPONENT ACPI_POWER_COMPONENT
32 ACPI_MODULE_NAME("device_pm");
33
34 /**
35 * acpi_power_state_string - String representation of ACPI device power state.
36 * @state: ACPI device power state to return the string representation of.
37 */
38 const char *acpi_power_state_string(int state)
39 {
40 switch (state) {
41 case ACPI_STATE_D0:
42 return "D0";
43 case ACPI_STATE_D1:
44 return "D1";
45 case ACPI_STATE_D2:
46 return "D2";
47 case ACPI_STATE_D3_HOT:
48 return "D3hot";
49 case ACPI_STATE_D3_COLD:
50 return "D3cold";
51 default:
52 return "(unknown)";
53 }
54 }
55
56 /**
57 * acpi_device_get_power - Get power state of an ACPI device.
58 * @device: Device to get the power state of.
59 * @state: Place to store the power state of the device.
60 *
61 * This function does not update the device's power.state field, but it may
62 * update its parent's power.state field (when the parent's power state is
63 * unknown and the device's power state turns out to be D0).
64 */
65 int acpi_device_get_power(struct acpi_device *device, int *state)
66 {
67 int result = ACPI_STATE_UNKNOWN;
68
69 if (!device || !state)
70 return -EINVAL;
71
72 if (!device->flags.power_manageable) {
73 /* TBD: Non-recursive algorithm for walking up hierarchy. */
74 *state = device->parent ?
75 device->parent->power.state : ACPI_STATE_D0;
76 goto out;
77 }
78
79 /*
80 * Get the device's power state from power resources settings and _PSC,
81 * if available.
82 */
83 if (device->power.flags.power_resources) {
84 int error = acpi_power_get_inferred_state(device, &result);
85 if (error)
86 return error;
87 }
88 if (device->power.flags.explicit_get) {
89 acpi_handle handle = device->handle;
90 unsigned long long psc;
91 acpi_status status;
92
93 status = acpi_evaluate_integer(handle, "_PSC", NULL, &psc);
94 if (ACPI_FAILURE(status))
95 return -ENODEV;
96
97 /*
98 * The power resources settings may indicate a power state
99 * shallower than the actual power state of the device, because
100 * the same power resources may be referenced by other devices.
101 *
102 * For systems predating ACPI 4.0 we assume that D3hot is the
103 * deepest state that can be supported.
104 */
105 if (psc > result && psc < ACPI_STATE_D3_COLD)
106 result = psc;
107 else if (result == ACPI_STATE_UNKNOWN)
108 result = psc > ACPI_STATE_D2 ? ACPI_STATE_D3_HOT : psc;
109 }
110
111 /*
112 * If we were unsure about the device parent's power state up to this
113 * point, the fact that the device is in D0 implies that the parent has
114 * to be in D0 too, except if ignore_parent is set.
115 */
116 if (!device->power.flags.ignore_parent && device->parent
117 && device->parent->power.state == ACPI_STATE_UNKNOWN
118 && result == ACPI_STATE_D0)
119 device->parent->power.state = ACPI_STATE_D0;
120
121 *state = result;
122
123 out:
124 ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Device [%s] power state is %s\n",
125 device->pnp.bus_id, acpi_power_state_string(*state)));
126
127 return 0;
128 }
129
130 static int acpi_dev_pm_explicit_set(struct acpi_device *adev, int state)
131 {
132 if (adev->power.states[state].flags.explicit_set) {
133 char method[5] = { '_', 'P', 'S', '0' + state, '\0' };
134 acpi_status status;
135
136 status = acpi_evaluate_object(adev->handle, method, NULL, NULL);
137 if (ACPI_FAILURE(status))
138 return -ENODEV;
139 }
140 return 0;
141 }
142
143 /**
144 * acpi_device_set_power - Set power state of an ACPI device.
145 * @device: Device to set the power state of.
146 * @state: New power state to set.
147 *
148 * Callers must ensure that the device is power manageable before using this
149 * function.
150 */
151 int acpi_device_set_power(struct acpi_device *device, int state)
152 {
153 int target_state = state;
154 int result = 0;
155
156 if (!device || !device->flags.power_manageable
157 || (state < ACPI_STATE_D0) || (state > ACPI_STATE_D3_COLD))
158 return -EINVAL;
159
160 /* Make sure this is a valid target state */
161
162 if (state == device->power.state) {
163 ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Device [%s] already in %s\n",
164 device->pnp.bus_id,
165 acpi_power_state_string(state)));
166 return 0;
167 }
168
169 if (state == ACPI_STATE_D3_COLD) {
170 /*
171 * For transitions to D3cold we need to execute _PS3 and then
172 * possibly drop references to the power resources in use.
173 */
174 state = ACPI_STATE_D3_HOT;
175 /* If _PR3 is not available, use D3hot as the target state. */
176 if (!device->power.states[ACPI_STATE_D3_COLD].flags.valid)
177 target_state = state;
178 } else if (!device->power.states[state].flags.valid) {
179 dev_warn(&device->dev, "Power state %s not supported\n",
180 acpi_power_state_string(state));
181 return -ENODEV;
182 }
183
184 if (!device->power.flags.ignore_parent &&
185 device->parent && (state < device->parent->power.state)) {
186 dev_warn(&device->dev,
187 "Cannot transition to power state %s for parent in %s\n",
188 acpi_power_state_string(state),
189 acpi_power_state_string(device->parent->power.state));
190 return -ENODEV;
191 }
192
193 /*
194 * Transition Power
195 * ----------------
196 * In accordance with ACPI 6, _PSx is executed before manipulating power
197 * resources, unless the target state is D0, in which case _PS0 is
198 * supposed to be executed after turning the power resources on.
199 */
200 if (state > ACPI_STATE_D0) {
201 /*
202 * According to ACPI 6, devices cannot go from lower-power
203 * (deeper) states to higher-power (shallower) states.
204 */
205 if (state < device->power.state) {
206 dev_warn(&device->dev, "Cannot transition from %s to %s\n",
207 acpi_power_state_string(device->power.state),
208 acpi_power_state_string(state));
209 return -ENODEV;
210 }
211
212 result = acpi_dev_pm_explicit_set(device, state);
213 if (result)
214 goto end;
215
216 if (device->power.flags.power_resources)
217 result = acpi_power_transition(device, target_state);
218 } else {
219 if (device->power.flags.power_resources) {
220 result = acpi_power_transition(device, ACPI_STATE_D0);
221 if (result)
222 goto end;
223 }
224 result = acpi_dev_pm_explicit_set(device, ACPI_STATE_D0);
225 }
226
227 end:
228 if (result) {
229 dev_warn(&device->dev, "Failed to change power state to %s\n",
230 acpi_power_state_string(state));
231 } else {
232 device->power.state = target_state;
233 ACPI_DEBUG_PRINT((ACPI_DB_INFO,
234 "Device [%s] transitioned to %s\n",
235 device->pnp.bus_id,
236 acpi_power_state_string(state)));
237 }
238
239 return result;
240 }
241 EXPORT_SYMBOL(acpi_device_set_power);
242
243 int acpi_bus_set_power(acpi_handle handle, int state)
244 {
245 struct acpi_device *device;
246 int result;
247
248 result = acpi_bus_get_device(handle, &device);
249 if (result)
250 return result;
251
252 return acpi_device_set_power(device, state);
253 }
254 EXPORT_SYMBOL(acpi_bus_set_power);
255
256 int acpi_bus_init_power(struct acpi_device *device)
257 {
258 int state;
259 int result;
260
261 if (!device)
262 return -EINVAL;
263
264 device->power.state = ACPI_STATE_UNKNOWN;
265 if (!acpi_device_is_present(device)) {
266 device->flags.initialized = false;
267 return -ENXIO;
268 }
269
270 result = acpi_device_get_power(device, &state);
271 if (result)
272 return result;
273
274 if (state < ACPI_STATE_D3_COLD && device->power.flags.power_resources) {
275 /* Reference count the power resources. */
276 result = acpi_power_on_resources(device, state);
277 if (result)
278 return result;
279
280 if (state == ACPI_STATE_D0) {
281 /*
282 * If _PSC is not present and the state inferred from
283 * power resources appears to be D0, it still may be
284 * necessary to execute _PS0 at this point, because
285 * another device using the same power resources may
286 * have been put into D0 previously and that's why we
287 * see D0 here.
288 */
289 result = acpi_dev_pm_explicit_set(device, state);
290 if (result)
291 return result;
292 }
293 } else if (state == ACPI_STATE_UNKNOWN) {
294 /*
295 * No power resources and missing _PSC? Cross fingers and make
296 * it D0 in hope that this is what the BIOS put the device into.
297 * [We tried to force D0 here by executing _PS0, but that broke
298 * Toshiba P870-303 in a nasty way.]
299 */
300 state = ACPI_STATE_D0;
301 }
302 device->power.state = state;
303 return 0;
304 }
305
306 /**
307 * acpi_device_fix_up_power - Force device with missing _PSC into D0.
308 * @device: Device object whose power state is to be fixed up.
309 *
310 * Devices without power resources and _PSC, but having _PS0 and _PS3 defined,
311 * are assumed to be put into D0 by the BIOS. However, in some cases that may
312 * not be the case and this function should be used then.
313 */
314 int acpi_device_fix_up_power(struct acpi_device *device)
315 {
316 int ret = 0;
317
318 if (!device->power.flags.power_resources
319 && !device->power.flags.explicit_get
320 && device->power.state == ACPI_STATE_D0)
321 ret = acpi_dev_pm_explicit_set(device, ACPI_STATE_D0);
322
323 return ret;
324 }
325 EXPORT_SYMBOL_GPL(acpi_device_fix_up_power);
326
327 int acpi_device_update_power(struct acpi_device *device, int *state_p)
328 {
329 int state;
330 int result;
331
332 if (device->power.state == ACPI_STATE_UNKNOWN) {
333 result = acpi_bus_init_power(device);
334 if (!result && state_p)
335 *state_p = device->power.state;
336
337 return result;
338 }
339
340 result = acpi_device_get_power(device, &state);
341 if (result)
342 return result;
343
344 if (state == ACPI_STATE_UNKNOWN) {
345 state = ACPI_STATE_D0;
346 result = acpi_device_set_power(device, state);
347 if (result)
348 return result;
349 } else {
350 if (device->power.flags.power_resources) {
351 /*
352 * We don't need to really switch the state, bu we need
353 * to update the power resources' reference counters.
354 */
355 result = acpi_power_transition(device, state);
356 if (result)
357 return result;
358 }
359 device->power.state = state;
360 }
361 if (state_p)
362 *state_p = state;
363
364 return 0;
365 }
366 EXPORT_SYMBOL_GPL(acpi_device_update_power);
367
368 int acpi_bus_update_power(acpi_handle handle, int *state_p)
369 {
370 struct acpi_device *device;
371 int result;
372
373 result = acpi_bus_get_device(handle, &device);
374 return result ? result : acpi_device_update_power(device, state_p);
375 }
376 EXPORT_SYMBOL_GPL(acpi_bus_update_power);
377
378 bool acpi_bus_power_manageable(acpi_handle handle)
379 {
380 struct acpi_device *device;
381 int result;
382
383 result = acpi_bus_get_device(handle, &device);
384 return result ? false : device->flags.power_manageable;
385 }
386 EXPORT_SYMBOL(acpi_bus_power_manageable);
387
388 #ifdef CONFIG_PM
389 static DEFINE_MUTEX(acpi_pm_notifier_lock);
390 static DEFINE_MUTEX(acpi_pm_notifier_install_lock);
391
392 void acpi_pm_wakeup_event(struct device *dev)
393 {
394 pm_wakeup_dev_event(dev, 0, acpi_s2idle_wakeup());
395 }
396 EXPORT_SYMBOL_GPL(acpi_pm_wakeup_event);
397
398 static void acpi_pm_notify_handler(acpi_handle handle, u32 val, void *not_used)
399 {
400 struct acpi_device *adev;
401
402 if (val != ACPI_NOTIFY_DEVICE_WAKE)
403 return;
404
405 acpi_handle_debug(handle, "Wake notify\n");
406
407 adev = acpi_bus_get_acpi_device(handle);
408 if (!adev)
409 return;
410
411 mutex_lock(&acpi_pm_notifier_lock);
412
413 if (adev->wakeup.flags.notifier_present) {
414 pm_wakeup_ws_event(adev->wakeup.ws, 0, acpi_s2idle_wakeup());
415 if (adev->wakeup.context.func) {
416 acpi_handle_debug(handle, "Running %pF for %s\n",
417 adev->wakeup.context.func,
418 dev_name(adev->wakeup.context.dev));
419 adev->wakeup.context.func(&adev->wakeup.context);
420 }
421 }
422
423 mutex_unlock(&acpi_pm_notifier_lock);
424
425 acpi_bus_put_acpi_device(adev);
426 }
427
428 /**
429 * acpi_add_pm_notifier - Register PM notify handler for given ACPI device.
430 * @adev: ACPI device to add the notify handler for.
431 * @dev: Device to generate a wakeup event for while handling the notification.
432 * @func: Work function to execute when handling the notification.
433 *
434 * NOTE: @adev need not be a run-wake or wakeup device to be a valid source of
435 * PM wakeup events. For example, wakeup events may be generated for bridges
436 * if one of the devices below the bridge is signaling wakeup, even if the
437 * bridge itself doesn't have a wakeup GPE associated with it.
438 */
439 acpi_status acpi_add_pm_notifier(struct acpi_device *adev, struct device *dev,
440 void (*func)(struct acpi_device_wakeup_context *context))
441 {
442 acpi_status status = AE_ALREADY_EXISTS;
443
444 if (!dev && !func)
445 return AE_BAD_PARAMETER;
446
447 mutex_lock(&acpi_pm_notifier_install_lock);
448
449 if (adev->wakeup.flags.notifier_present)
450 goto out;
451
452 status = acpi_install_notify_handler(adev->handle, ACPI_SYSTEM_NOTIFY,
453 acpi_pm_notify_handler, NULL);
454 if (ACPI_FAILURE(status))
455 goto out;
456
457 mutex_lock(&acpi_pm_notifier_lock);
458 adev->wakeup.ws = wakeup_source_register(dev_name(&adev->dev));
459 adev->wakeup.context.dev = dev;
460 adev->wakeup.context.func = func;
461 adev->wakeup.flags.notifier_present = true;
462 mutex_unlock(&acpi_pm_notifier_lock);
463
464 out:
465 mutex_unlock(&acpi_pm_notifier_install_lock);
466 return status;
467 }
468
469 /**
470 * acpi_remove_pm_notifier - Unregister PM notifier from given ACPI device.
471 * @adev: ACPI device to remove the notifier from.
472 */
473 acpi_status acpi_remove_pm_notifier(struct acpi_device *adev)
474 {
475 acpi_status status = AE_BAD_PARAMETER;
476
477 mutex_lock(&acpi_pm_notifier_install_lock);
478
479 if (!adev->wakeup.flags.notifier_present)
480 goto out;
481
482 status = acpi_remove_notify_handler(adev->handle,
483 ACPI_SYSTEM_NOTIFY,
484 acpi_pm_notify_handler);
485 if (ACPI_FAILURE(status))
486 goto out;
487
488 mutex_lock(&acpi_pm_notifier_lock);
489 adev->wakeup.context.func = NULL;
490 adev->wakeup.context.dev = NULL;
491 wakeup_source_unregister(adev->wakeup.ws);
492 adev->wakeup.flags.notifier_present = false;
493 mutex_unlock(&acpi_pm_notifier_lock);
494
495 out:
496 mutex_unlock(&acpi_pm_notifier_install_lock);
497 return status;
498 }
499
500 bool acpi_bus_can_wakeup(acpi_handle handle)
501 {
502 struct acpi_device *device;
503 int result;
504
505 result = acpi_bus_get_device(handle, &device);
506 return result ? false : device->wakeup.flags.valid;
507 }
508 EXPORT_SYMBOL(acpi_bus_can_wakeup);
509
510 bool acpi_pm_device_can_wakeup(struct device *dev)
511 {
512 struct acpi_device *adev = ACPI_COMPANION(dev);
513
514 return adev ? acpi_device_can_wakeup(adev) : false;
515 }
516
517 /**
518 * acpi_dev_pm_get_state - Get preferred power state of ACPI device.
519 * @dev: Device whose preferred target power state to return.
520 * @adev: ACPI device node corresponding to @dev.
521 * @target_state: System state to match the resultant device state.
522 * @d_min_p: Location to store the highest power state available to the device.
523 * @d_max_p: Location to store the lowest power state available to the device.
524 *
525 * Find the lowest power (highest number) and highest power (lowest number) ACPI
526 * device power states that the device can be in while the system is in the
527 * state represented by @target_state. Store the integer numbers representing
528 * those stats in the memory locations pointed to by @d_max_p and @d_min_p,
529 * respectively.
530 *
531 * Callers must ensure that @dev and @adev are valid pointers and that @adev
532 * actually corresponds to @dev before using this function.
533 *
534 * Returns 0 on success or -ENODATA when one of the ACPI methods fails or
535 * returns a value that doesn't make sense. The memory locations pointed to by
536 * @d_max_p and @d_min_p are only modified on success.
537 */
538 static int acpi_dev_pm_get_state(struct device *dev, struct acpi_device *adev,
539 u32 target_state, int *d_min_p, int *d_max_p)
540 {
541 char method[] = { '_', 'S', '0' + target_state, 'D', '\0' };
542 acpi_handle handle = adev->handle;
543 unsigned long long ret;
544 int d_min, d_max;
545 bool wakeup = false;
546 acpi_status status;
547
548 /*
549 * If the system state is S0, the lowest power state the device can be
550 * in is D3cold, unless the device has _S0W and is supposed to signal
551 * wakeup, in which case the return value of _S0W has to be used as the
552 * lowest power state available to the device.
553 */
554 d_min = ACPI_STATE_D0;
555 d_max = ACPI_STATE_D3_COLD;
556
557 /*
558 * If present, _SxD methods return the minimum D-state (highest power
559 * state) we can use for the corresponding S-states. Otherwise, the
560 * minimum D-state is D0 (ACPI 3.x).
561 */
562 if (target_state > ACPI_STATE_S0) {
563 /*
564 * We rely on acpi_evaluate_integer() not clobbering the integer
565 * provided if AE_NOT_FOUND is returned.
566 */
567 ret = d_min;
568 status = acpi_evaluate_integer(handle, method, NULL, &ret);
569 if ((ACPI_FAILURE(status) && status != AE_NOT_FOUND)
570 || ret > ACPI_STATE_D3_COLD)
571 return -ENODATA;
572
573 /*
574 * We need to handle legacy systems where D3hot and D3cold are
575 * the same and 3 is returned in both cases, so fall back to
576 * D3cold if D3hot is not a valid state.
577 */
578 if (!adev->power.states[ret].flags.valid) {
579 if (ret == ACPI_STATE_D3_HOT)
580 ret = ACPI_STATE_D3_COLD;
581 else
582 return -ENODATA;
583 }
584 d_min = ret;
585 wakeup = device_may_wakeup(dev) && adev->wakeup.flags.valid
586 && adev->wakeup.sleep_state >= target_state;
587 } else {
588 wakeup = adev->wakeup.flags.valid;
589 }
590
591 /*
592 * If _PRW says we can wake up the system from the target sleep state,
593 * the D-state returned by _SxD is sufficient for that (we assume a
594 * wakeup-aware driver if wake is set). Still, if _SxW exists
595 * (ACPI 3.x), it should return the maximum (lowest power) D-state that
596 * can wake the system. _S0W may be valid, too.
597 */
598 if (wakeup) {
599 method[3] = 'W';
600 status = acpi_evaluate_integer(handle, method, NULL, &ret);
601 if (status == AE_NOT_FOUND) {
602 if (target_state > ACPI_STATE_S0)
603 d_max = d_min;
604 } else if (ACPI_SUCCESS(status) && ret <= ACPI_STATE_D3_COLD) {
605 /* Fall back to D3cold if ret is not a valid state. */
606 if (!adev->power.states[ret].flags.valid)
607 ret = ACPI_STATE_D3_COLD;
608
609 d_max = ret > d_min ? ret : d_min;
610 } else {
611 return -ENODATA;
612 }
613 }
614
615 if (d_min_p)
616 *d_min_p = d_min;
617
618 if (d_max_p)
619 *d_max_p = d_max;
620
621 return 0;
622 }
623
624 /**
625 * acpi_pm_device_sleep_state - Get preferred power state of ACPI device.
626 * @dev: Device whose preferred target power state to return.
627 * @d_min_p: Location to store the upper limit of the allowed states range.
628 * @d_max_in: Deepest low-power state to take into consideration.
629 * Return value: Preferred power state of the device on success, -ENODEV
630 * if there's no 'struct acpi_device' for @dev, -EINVAL if @d_max_in is
631 * incorrect, or -ENODATA on ACPI method failure.
632 *
633 * The caller must ensure that @dev is valid before using this function.
634 */
635 int acpi_pm_device_sleep_state(struct device *dev, int *d_min_p, int d_max_in)
636 {
637 struct acpi_device *adev;
638 int ret, d_min, d_max;
639
640 if (d_max_in < ACPI_STATE_D0 || d_max_in > ACPI_STATE_D3_COLD)
641 return -EINVAL;
642
643 if (d_max_in > ACPI_STATE_D2) {
644 enum pm_qos_flags_status stat;
645
646 stat = dev_pm_qos_flags(dev, PM_QOS_FLAG_NO_POWER_OFF);
647 if (stat == PM_QOS_FLAGS_ALL)
648 d_max_in = ACPI_STATE_D2;
649 }
650
651 adev = ACPI_COMPANION(dev);
652 if (!adev) {
653 dev_dbg(dev, "ACPI companion missing in %s!\n", __func__);
654 return -ENODEV;
655 }
656
657 ret = acpi_dev_pm_get_state(dev, adev, acpi_target_system_state(),
658 &d_min, &d_max);
659 if (ret)
660 return ret;
661
662 if (d_max_in < d_min)
663 return -EINVAL;
664
665 if (d_max > d_max_in) {
666 for (d_max = d_max_in; d_max > d_min; d_max--) {
667 if (adev->power.states[d_max].flags.valid)
668 break;
669 }
670 }
671
672 if (d_min_p)
673 *d_min_p = d_min;
674
675 return d_max;
676 }
677 EXPORT_SYMBOL(acpi_pm_device_sleep_state);
678
679 /**
680 * acpi_pm_notify_work_func - ACPI devices wakeup notification work function.
681 * @context: Device wakeup context.
682 */
683 static void acpi_pm_notify_work_func(struct acpi_device_wakeup_context *context)
684 {
685 struct device *dev = context->dev;
686
687 if (dev) {
688 pm_wakeup_event(dev, 0);
689 pm_request_resume(dev);
690 }
691 }
692
693 static DEFINE_MUTEX(acpi_wakeup_lock);
694
695 static int __acpi_device_wakeup_enable(struct acpi_device *adev,
696 u32 target_state, int max_count)
697 {
698 struct acpi_device_wakeup *wakeup = &adev->wakeup;
699 acpi_status status;
700 int error = 0;
701
702 mutex_lock(&acpi_wakeup_lock);
703
704 if (wakeup->enable_count >= max_count)
705 goto out;
706
707 if (wakeup->enable_count > 0)
708 goto inc;
709
710 error = acpi_enable_wakeup_device_power(adev, target_state);
711 if (error)
712 goto out;
713
714 status = acpi_enable_gpe(wakeup->gpe_device, wakeup->gpe_number);
715 if (ACPI_FAILURE(status)) {
716 acpi_disable_wakeup_device_power(adev);
717 error = -EIO;
718 goto out;
719 }
720
721 inc:
722 wakeup->enable_count++;
723
724 out:
725 mutex_unlock(&acpi_wakeup_lock);
726 return error;
727 }
728
729 /**
730 * acpi_device_wakeup_enable - Enable wakeup functionality for device.
731 * @adev: ACPI device to enable wakeup functionality for.
732 * @target_state: State the system is transitioning into.
733 *
734 * Enable the GPE associated with @adev so that it can generate wakeup signals
735 * for the device in response to external (remote) events and enable wakeup
736 * power for it.
737 *
738 * Callers must ensure that @adev is a valid ACPI device node before executing
739 * this function.
740 */
741 static int acpi_device_wakeup_enable(struct acpi_device *adev, u32 target_state)
742 {
743 return __acpi_device_wakeup_enable(adev, target_state, 1);
744 }
745
746 /**
747 * acpi_device_wakeup_disable - Disable wakeup functionality for device.
748 * @adev: ACPI device to disable wakeup functionality for.
749 *
750 * Disable the GPE associated with @adev and disable wakeup power for it.
751 *
752 * Callers must ensure that @adev is a valid ACPI device node before executing
753 * this function.
754 */
755 static void acpi_device_wakeup_disable(struct acpi_device *adev)
756 {
757 struct acpi_device_wakeup *wakeup = &adev->wakeup;
758
759 mutex_lock(&acpi_wakeup_lock);
760
761 if (!wakeup->enable_count)
762 goto out;
763
764 acpi_disable_gpe(wakeup->gpe_device, wakeup->gpe_number);
765 acpi_disable_wakeup_device_power(adev);
766
767 wakeup->enable_count--;
768
769 out:
770 mutex_unlock(&acpi_wakeup_lock);
771 }
772
773 static int __acpi_pm_set_device_wakeup(struct device *dev, bool enable,
774 int max_count)
775 {
776 struct acpi_device *adev;
777 int error;
778
779 adev = ACPI_COMPANION(dev);
780 if (!adev) {
781 dev_dbg(dev, "ACPI companion missing in %s!\n", __func__);
782 return -ENODEV;
783 }
784
785 if (!acpi_device_can_wakeup(adev))
786 return -EINVAL;
787
788 if (!enable) {
789 acpi_device_wakeup_disable(adev);
790 dev_dbg(dev, "Wakeup disabled by ACPI\n");
791 return 0;
792 }
793
794 error = __acpi_device_wakeup_enable(adev, acpi_target_system_state(),
795 max_count);
796 if (!error)
797 dev_dbg(dev, "Wakeup enabled by ACPI\n");
798
799 return error;
800 }
801
802 /**
803 * acpi_pm_set_device_wakeup - Enable/disable remote wakeup for given device.
804 * @dev: Device to enable/disable to generate wakeup events.
805 * @enable: Whether to enable or disable the wakeup functionality.
806 */
807 int acpi_pm_set_device_wakeup(struct device *dev, bool enable)
808 {
809 return __acpi_pm_set_device_wakeup(dev, enable, 1);
810 }
811 EXPORT_SYMBOL_GPL(acpi_pm_set_device_wakeup);
812
813 /**
814 * acpi_pm_set_bridge_wakeup - Enable/disable remote wakeup for given bridge.
815 * @dev: Bridge device to enable/disable to generate wakeup events.
816 * @enable: Whether to enable or disable the wakeup functionality.
817 */
818 int acpi_pm_set_bridge_wakeup(struct device *dev, bool enable)
819 {
820 return __acpi_pm_set_device_wakeup(dev, enable, INT_MAX);
821 }
822 EXPORT_SYMBOL_GPL(acpi_pm_set_bridge_wakeup);
823
824 /**
825 * acpi_dev_pm_low_power - Put ACPI device into a low-power state.
826 * @dev: Device to put into a low-power state.
827 * @adev: ACPI device node corresponding to @dev.
828 * @system_state: System state to choose the device state for.
829 */
830 static int acpi_dev_pm_low_power(struct device *dev, struct acpi_device *adev,
831 u32 system_state)
832 {
833 int ret, state;
834
835 if (!acpi_device_power_manageable(adev))
836 return 0;
837
838 ret = acpi_dev_pm_get_state(dev, adev, system_state, NULL, &state);
839 return ret ? ret : acpi_device_set_power(adev, state);
840 }
841
842 /**
843 * acpi_dev_pm_full_power - Put ACPI device into the full-power state.
844 * @adev: ACPI device node to put into the full-power state.
845 */
846 static int acpi_dev_pm_full_power(struct acpi_device *adev)
847 {
848 return acpi_device_power_manageable(adev) ?
849 acpi_device_set_power(adev, ACPI_STATE_D0) : 0;
850 }
851
852 /**
853 * acpi_dev_suspend - Put device into a low-power state using ACPI.
854 * @dev: Device to put into a low-power state.
855 * @wakeup: Whether or not to enable wakeup for the device.
856 *
857 * Put the given device into a low-power state using the standard ACPI
858 * mechanism. Set up remote wakeup if desired, choose the state to put the
859 * device into (this checks if remote wakeup is expected to work too), and set
860 * the power state of the device.
861 */
862 int acpi_dev_suspend(struct device *dev, bool wakeup)
863 {
864 struct acpi_device *adev = ACPI_COMPANION(dev);
865 u32 target_state = acpi_target_system_state();
866 int error;
867
868 if (!adev)
869 return 0;
870
871 if (wakeup && acpi_device_can_wakeup(adev)) {
872 error = acpi_device_wakeup_enable(adev, target_state);
873 if (error)
874 return -EAGAIN;
875 } else {
876 wakeup = false;
877 }
878
879 error = acpi_dev_pm_low_power(dev, adev, target_state);
880 if (error && wakeup)
881 acpi_device_wakeup_disable(adev);
882
883 return error;
884 }
885 EXPORT_SYMBOL_GPL(acpi_dev_suspend);
886
887 /**
888 * acpi_dev_resume - Put device into the full-power state using ACPI.
889 * @dev: Device to put into the full-power state.
890 *
891 * Put the given device into the full-power state using the standard ACPI
892 * mechanism. Set the power state of the device to ACPI D0 and disable wakeup.
893 */
894 int acpi_dev_resume(struct device *dev)
895 {
896 struct acpi_device *adev = ACPI_COMPANION(dev);
897 int error;
898
899 if (!adev)
900 return 0;
901
902 error = acpi_dev_pm_full_power(adev);
903 acpi_device_wakeup_disable(adev);
904 return error;
905 }
906 EXPORT_SYMBOL_GPL(acpi_dev_resume);
907
908 /**
909 * acpi_subsys_runtime_suspend - Suspend device using ACPI.
910 * @dev: Device to suspend.
911 *
912 * Carry out the generic runtime suspend procedure for @dev and use ACPI to put
913 * it into a runtime low-power state.
914 */
915 int acpi_subsys_runtime_suspend(struct device *dev)
916 {
917 int ret = pm_generic_runtime_suspend(dev);
918 return ret ? ret : acpi_dev_suspend(dev, true);
919 }
920 EXPORT_SYMBOL_GPL(acpi_subsys_runtime_suspend);
921
922 /**
923 * acpi_subsys_runtime_resume - Resume device using ACPI.
924 * @dev: Device to Resume.
925 *
926 * Use ACPI to put the given device into the full-power state and carry out the
927 * generic runtime resume procedure for it.
928 */
929 int acpi_subsys_runtime_resume(struct device *dev)
930 {
931 int ret = acpi_dev_resume(dev);
932 return ret ? ret : pm_generic_runtime_resume(dev);
933 }
934 EXPORT_SYMBOL_GPL(acpi_subsys_runtime_resume);
935
936 #ifdef CONFIG_PM_SLEEP
937 static bool acpi_dev_needs_resume(struct device *dev, struct acpi_device *adev)
938 {
939 u32 sys_target = acpi_target_system_state();
940 int ret, state;
941
942 if (!pm_runtime_suspended(dev) || !adev ||
943 device_may_wakeup(dev) != !!adev->wakeup.prepare_count)
944 return true;
945
946 if (sys_target == ACPI_STATE_S0)
947 return false;
948
949 if (adev->power.flags.dsw_present)
950 return true;
951
952 ret = acpi_dev_pm_get_state(dev, adev, sys_target, NULL, &state);
953 if (ret)
954 return true;
955
956 return state != adev->power.state;
957 }
958
959 /**
960 * acpi_subsys_prepare - Prepare device for system transition to a sleep state.
961 * @dev: Device to prepare.
962 */
963 int acpi_subsys_prepare(struct device *dev)
964 {
965 struct acpi_device *adev = ACPI_COMPANION(dev);
966
967 if (dev->driver && dev->driver->pm && dev->driver->pm->prepare) {
968 int ret = dev->driver->pm->prepare(dev);
969
970 if (ret < 0)
971 return ret;
972
973 if (!ret && dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_PREPARE))
974 return 0;
975 }
976
977 return !acpi_dev_needs_resume(dev, adev);
978 }
979 EXPORT_SYMBOL_GPL(acpi_subsys_prepare);
980
981 /**
982 * acpi_subsys_complete - Finalize device's resume during system resume.
983 * @dev: Device to handle.
984 */
985 void acpi_subsys_complete(struct device *dev)
986 {
987 pm_generic_complete(dev);
988 /*
989 * If the device had been runtime-suspended before the system went into
990 * the sleep state it is going out of and it has never been resumed till
991 * now, resume it in case the firmware powered it up.
992 */
993 if (dev->power.direct_complete && pm_resume_via_firmware())
994 pm_request_resume(dev);
995 }
996 EXPORT_SYMBOL_GPL(acpi_subsys_complete);
997
998 /**
999 * acpi_subsys_suspend - Run the device driver's suspend callback.
1000 * @dev: Device to handle.
1001 *
1002 * Follow PCI and resume devices from runtime suspend before running their
1003 * system suspend callbacks, unless the driver can cope with runtime-suspended
1004 * devices during system suspend and there are no ACPI-specific reasons for
1005 * resuming them.
1006 */
1007 int acpi_subsys_suspend(struct device *dev)
1008 {
1009 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND) ||
1010 acpi_dev_needs_resume(dev, ACPI_COMPANION(dev)))
1011 pm_runtime_resume(dev);
1012
1013 return pm_generic_suspend(dev);
1014 }
1015 EXPORT_SYMBOL_GPL(acpi_subsys_suspend);
1016
1017 /**
1018 * acpi_subsys_suspend_late - Suspend device using ACPI.
1019 * @dev: Device to suspend.
1020 *
1021 * Carry out the generic late suspend procedure for @dev and use ACPI to put
1022 * it into a low-power state during system transition into a sleep state.
1023 */
1024 int acpi_subsys_suspend_late(struct device *dev)
1025 {
1026 int ret;
1027
1028 if (dev_pm_smart_suspend_and_suspended(dev))
1029 return 0;
1030
1031 ret = pm_generic_suspend_late(dev);
1032 return ret ? ret : acpi_dev_suspend(dev, device_may_wakeup(dev));
1033 }
1034 EXPORT_SYMBOL_GPL(acpi_subsys_suspend_late);
1035
1036 /**
1037 * acpi_subsys_suspend_noirq - Run the device driver's "noirq" suspend callback.
1038 * @dev: Device to suspend.
1039 */
1040 int acpi_subsys_suspend_noirq(struct device *dev)
1041 {
1042 if (dev_pm_smart_suspend_and_suspended(dev))
1043 return 0;
1044
1045 return pm_generic_suspend_noirq(dev);
1046 }
1047 EXPORT_SYMBOL_GPL(acpi_subsys_suspend_noirq);
1048
1049 /**
1050 * acpi_subsys_resume_noirq - Run the device driver's "noirq" resume callback.
1051 * @dev: Device to handle.
1052 */
1053 int acpi_subsys_resume_noirq(struct device *dev)
1054 {
1055 /*
1056 * Devices with DPM_FLAG_SMART_SUSPEND may be left in runtime suspend
1057 * during system suspend, so update their runtime PM status to "active"
1058 * as they will be put into D0 going forward.
1059 */
1060 if (dev_pm_smart_suspend_and_suspended(dev))
1061 pm_runtime_set_active(dev);
1062
1063 return pm_generic_resume_noirq(dev);
1064 }
1065 EXPORT_SYMBOL_GPL(acpi_subsys_resume_noirq);
1066
1067 /**
1068 * acpi_subsys_resume_early - Resume device using ACPI.
1069 * @dev: Device to Resume.
1070 *
1071 * Use ACPI to put the given device into the full-power state and carry out the
1072 * generic early resume procedure for it during system transition into the
1073 * working state.
1074 */
1075 int acpi_subsys_resume_early(struct device *dev)
1076 {
1077 int ret = acpi_dev_resume(dev);
1078 return ret ? ret : pm_generic_resume_early(dev);
1079 }
1080 EXPORT_SYMBOL_GPL(acpi_subsys_resume_early);
1081
1082 /**
1083 * acpi_subsys_freeze - Run the device driver's freeze callback.
1084 * @dev: Device to handle.
1085 */
1086 int acpi_subsys_freeze(struct device *dev)
1087 {
1088 /*
1089 * This used to be done in acpi_subsys_prepare() for all devices and
1090 * some drivers may depend on it, so do it here. Ideally, however,
1091 * runtime-suspended devices should not be touched during freeze/thaw
1092 * transitions.
1093 */
1094 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND))
1095 pm_runtime_resume(dev);
1096
1097 return pm_generic_freeze(dev);
1098 }
1099 EXPORT_SYMBOL_GPL(acpi_subsys_freeze);
1100
1101 /**
1102 * acpi_subsys_freeze_late - Run the device driver's "late" freeze callback.
1103 * @dev: Device to handle.
1104 */
1105 int acpi_subsys_freeze_late(struct device *dev)
1106 {
1107
1108 if (dev_pm_smart_suspend_and_suspended(dev))
1109 return 0;
1110
1111 return pm_generic_freeze_late(dev);
1112 }
1113 EXPORT_SYMBOL_GPL(acpi_subsys_freeze_late);
1114
1115 /**
1116 * acpi_subsys_freeze_noirq - Run the device driver's "noirq" freeze callback.
1117 * @dev: Device to handle.
1118 */
1119 int acpi_subsys_freeze_noirq(struct device *dev)
1120 {
1121
1122 if (dev_pm_smart_suspend_and_suspended(dev))
1123 return 0;
1124
1125 return pm_generic_freeze_noirq(dev);
1126 }
1127 EXPORT_SYMBOL_GPL(acpi_subsys_freeze_noirq);
1128
1129 /**
1130 * acpi_subsys_thaw_noirq - Run the device driver's "noirq" thaw callback.
1131 * @dev: Device to handle.
1132 */
1133 int acpi_subsys_thaw_noirq(struct device *dev)
1134 {
1135 /*
1136 * If the device is in runtime suspend, the "thaw" code may not work
1137 * correctly with it, so skip the driver callback and make the PM core
1138 * skip all of the subsequent "thaw" callbacks for the device.
1139 */
1140 if (dev_pm_smart_suspend_and_suspended(dev)) {
1141 dev_pm_skip_next_resume_phases(dev);
1142 return 0;
1143 }
1144
1145 return pm_generic_thaw_noirq(dev);
1146 }
1147 EXPORT_SYMBOL_GPL(acpi_subsys_thaw_noirq);
1148 #endif /* CONFIG_PM_SLEEP */
1149
1150 static struct dev_pm_domain acpi_general_pm_domain = {
1151 .ops = {
1152 .runtime_suspend = acpi_subsys_runtime_suspend,
1153 .runtime_resume = acpi_subsys_runtime_resume,
1154 #ifdef CONFIG_PM_SLEEP
1155 .prepare = acpi_subsys_prepare,
1156 .complete = acpi_subsys_complete,
1157 .suspend = acpi_subsys_suspend,
1158 .suspend_late = acpi_subsys_suspend_late,
1159 .suspend_noirq = acpi_subsys_suspend_noirq,
1160 .resume_noirq = acpi_subsys_resume_noirq,
1161 .resume_early = acpi_subsys_resume_early,
1162 .freeze = acpi_subsys_freeze,
1163 .freeze_late = acpi_subsys_freeze_late,
1164 .freeze_noirq = acpi_subsys_freeze_noirq,
1165 .thaw_noirq = acpi_subsys_thaw_noirq,
1166 .poweroff = acpi_subsys_suspend,
1167 .poweroff_late = acpi_subsys_suspend_late,
1168 .poweroff_noirq = acpi_subsys_suspend_noirq,
1169 .restore_noirq = acpi_subsys_resume_noirq,
1170 .restore_early = acpi_subsys_resume_early,
1171 #endif
1172 },
1173 };
1174
1175 /**
1176 * acpi_dev_pm_detach - Remove ACPI power management from the device.
1177 * @dev: Device to take care of.
1178 * @power_off: Whether or not to try to remove power from the device.
1179 *
1180 * Remove the device from the general ACPI PM domain and remove its wakeup
1181 * notifier. If @power_off is set, additionally remove power from the device if
1182 * possible.
1183 *
1184 * Callers must ensure proper synchronization of this function with power
1185 * management callbacks.
1186 */
1187 static void acpi_dev_pm_detach(struct device *dev, bool power_off)
1188 {
1189 struct acpi_device *adev = ACPI_COMPANION(dev);
1190
1191 if (adev && dev->pm_domain == &acpi_general_pm_domain) {
1192 dev_pm_domain_set(dev, NULL);
1193 acpi_remove_pm_notifier(adev);
1194 if (power_off) {
1195 /*
1196 * If the device's PM QoS resume latency limit or flags
1197 * have been exposed to user space, they have to be
1198 * hidden at this point, so that they don't affect the
1199 * choice of the low-power state to put the device into.
1200 */
1201 dev_pm_qos_hide_latency_limit(dev);
1202 dev_pm_qos_hide_flags(dev);
1203 acpi_device_wakeup_disable(adev);
1204 acpi_dev_pm_low_power(dev, adev, ACPI_STATE_S0);
1205 }
1206 }
1207 }
1208
1209 /**
1210 * acpi_dev_pm_attach - Prepare device for ACPI power management.
1211 * @dev: Device to prepare.
1212 * @power_on: Whether or not to power on the device.
1213 *
1214 * If @dev has a valid ACPI handle that has a valid struct acpi_device object
1215 * attached to it, install a wakeup notification handler for the device and
1216 * add it to the general ACPI PM domain. If @power_on is set, the device will
1217 * be put into the ACPI D0 state before the function returns.
1218 *
1219 * This assumes that the @dev's bus type uses generic power management callbacks
1220 * (or doesn't use any power management callbacks at all).
1221 *
1222 * Callers must ensure proper synchronization of this function with power
1223 * management callbacks.
1224 */
1225 int acpi_dev_pm_attach(struct device *dev, bool power_on)
1226 {
1227 struct acpi_device *adev = ACPI_COMPANION(dev);
1228
1229 if (!adev)
1230 return -ENODEV;
1231
1232 if (dev->pm_domain)
1233 return -EEXIST;
1234
1235 /*
1236 * Only attach the power domain to the first device if the
1237 * companion is shared by multiple. This is to prevent doing power
1238 * management twice.
1239 */
1240 if (!acpi_device_is_first_physical_node(adev, dev))
1241 return -EBUSY;
1242
1243 acpi_add_pm_notifier(adev, dev, acpi_pm_notify_work_func);
1244 dev_pm_domain_set(dev, &acpi_general_pm_domain);
1245 if (power_on) {
1246 acpi_dev_pm_full_power(adev);
1247 acpi_device_wakeup_disable(adev);
1248 }
1249
1250 dev->pm_domain->detach = acpi_dev_pm_detach;
1251 return 0;
1252 }
1253 EXPORT_SYMBOL_GPL(acpi_dev_pm_attach);
1254 #endif /* CONFIG_PM */