1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * drivers/acpi/device_pm.c - ACPI device power management routines. 4 * 5 * Copyright (C) 2012, Intel Corp. 6 * Author: Rafael J. Wysocki <rafael.j.wysocki@intel.com> 7 * 8 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 9 * 10 * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~ 11 */ 12 13 #include <linux/acpi.h> 14 #include <linux/export.h> 15 #include <linux/mutex.h> 16 #include <linux/pm_qos.h> 17 #include <linux/pm_domain.h> 18 #include <linux/pm_runtime.h> 19 #include <linux/suspend.h> 20 21 #include "internal.h" 22 23 #define _COMPONENT ACPI_POWER_COMPONENT 24 ACPI_MODULE_NAME("device_pm"); 25 26 /** 27 * acpi_power_state_string - String representation of ACPI device power state. 28 * @state: ACPI device power state to return the string representation of. 29 */ 30 const char *acpi_power_state_string(int state) 31 { 32 switch (state) { 33 case ACPI_STATE_D0: 34 return "D0"; 35 case ACPI_STATE_D1: 36 return "D1"; 37 case ACPI_STATE_D2: 38 return "D2"; 39 case ACPI_STATE_D3_HOT: 40 return "D3hot"; 41 case ACPI_STATE_D3_COLD: 42 return "D3cold"; 43 default: 44 return "(unknown)"; 45 } 46 } 47 48 static int acpi_dev_pm_explicit_get(struct acpi_device *device, int *state) 49 { 50 unsigned long long psc; 51 acpi_status status; 52 53 status = acpi_evaluate_integer(device->handle, "_PSC", NULL, &psc); 54 if (ACPI_FAILURE(status)) 55 return -ENODEV; 56 57 *state = psc; 58 return 0; 59 } 60 61 /** 62 * acpi_device_get_power - Get power state of an ACPI device. 63 * @device: Device to get the power state of. 64 * @state: Place to store the power state of the device. 65 * 66 * This function does not update the device's power.state field, but it may 67 * update its parent's power.state field (when the parent's power state is 68 * unknown and the device's power state turns out to be D0). 69 * 70 * Also, it does not update power resource reference counters to ensure that 71 * the power state returned by it will be persistent and it may return a power 72 * state shallower than previously set by acpi_device_set_power() for @device 73 * (if that power state depends on any power resources). 74 */ 75 int acpi_device_get_power(struct acpi_device *device, int *state) 76 { 77 int result = ACPI_STATE_UNKNOWN; 78 int error; 79 80 if (!device || !state) 81 return -EINVAL; 82 83 if (!device->flags.power_manageable) { 84 /* TBD: Non-recursive algorithm for walking up hierarchy. */ 85 *state = device->parent ? 86 device->parent->power.state : ACPI_STATE_D0; 87 goto out; 88 } 89 90 /* 91 * Get the device's power state from power resources settings and _PSC, 92 * if available. 93 */ 94 if (device->power.flags.power_resources) { 95 error = acpi_power_get_inferred_state(device, &result); 96 if (error) 97 return error; 98 } 99 if (device->power.flags.explicit_get) { 100 int psc; 101 102 error = acpi_dev_pm_explicit_get(device, &psc); 103 if (error) 104 return error; 105 106 /* 107 * The power resources settings may indicate a power state 108 * shallower than the actual power state of the device, because 109 * the same power resources may be referenced by other devices. 110 * 111 * For systems predating ACPI 4.0 we assume that D3hot is the 112 * deepest state that can be supported. 113 */ 114 if (psc > result && psc < ACPI_STATE_D3_COLD) 115 result = psc; 116 else if (result == ACPI_STATE_UNKNOWN) 117 result = psc > ACPI_STATE_D2 ? ACPI_STATE_D3_HOT : psc; 118 } 119 120 /* 121 * If we were unsure about the device parent's power state up to this 122 * point, the fact that the device is in D0 implies that the parent has 123 * to be in D0 too, except if ignore_parent is set. 124 */ 125 if (!device->power.flags.ignore_parent && device->parent 126 && device->parent->power.state == ACPI_STATE_UNKNOWN 127 && result == ACPI_STATE_D0) 128 device->parent->power.state = ACPI_STATE_D0; 129 130 *state = result; 131 132 out: 133 ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Device [%s] power state is %s\n", 134 device->pnp.bus_id, acpi_power_state_string(*state))); 135 136 return 0; 137 } 138 139 static int acpi_dev_pm_explicit_set(struct acpi_device *adev, int state) 140 { 141 if (adev->power.states[state].flags.explicit_set) { 142 char method[5] = { '_', 'P', 'S', '0' + state, '\0' }; 143 acpi_status status; 144 145 status = acpi_evaluate_object(adev->handle, method, NULL, NULL); 146 if (ACPI_FAILURE(status)) 147 return -ENODEV; 148 } 149 return 0; 150 } 151 152 /** 153 * acpi_device_set_power - Set power state of an ACPI device. 154 * @device: Device to set the power state of. 155 * @state: New power state to set. 156 * 157 * Callers must ensure that the device is power manageable before using this 158 * function. 159 */ 160 int acpi_device_set_power(struct acpi_device *device, int state) 161 { 162 int target_state = state; 163 int result = 0; 164 165 if (!device || !device->flags.power_manageable 166 || (state < ACPI_STATE_D0) || (state > ACPI_STATE_D3_COLD)) 167 return -EINVAL; 168 169 /* Make sure this is a valid target state */ 170 171 /* There is a special case for D0 addressed below. */ 172 if (state > ACPI_STATE_D0 && state == device->power.state) { 173 ACPI_DEBUG_PRINT((ACPI_DB_INFO, "Device [%s] already in %s\n", 174 device->pnp.bus_id, 175 acpi_power_state_string(state))); 176 return 0; 177 } 178 179 if (state == ACPI_STATE_D3_COLD) { 180 /* 181 * For transitions to D3cold we need to execute _PS3 and then 182 * possibly drop references to the power resources in use. 183 */ 184 state = ACPI_STATE_D3_HOT; 185 /* If _PR3 is not available, use D3hot as the target state. */ 186 if (!device->power.states[ACPI_STATE_D3_COLD].flags.valid) 187 target_state = state; 188 } else if (!device->power.states[state].flags.valid) { 189 dev_warn(&device->dev, "Power state %s not supported\n", 190 acpi_power_state_string(state)); 191 return -ENODEV; 192 } 193 194 if (!device->power.flags.ignore_parent && 195 device->parent && (state < device->parent->power.state)) { 196 dev_warn(&device->dev, 197 "Cannot transition to power state %s for parent in %s\n", 198 acpi_power_state_string(state), 199 acpi_power_state_string(device->parent->power.state)); 200 return -ENODEV; 201 } 202 203 /* 204 * Transition Power 205 * ---------------- 206 * In accordance with ACPI 6, _PSx is executed before manipulating power 207 * resources, unless the target state is D0, in which case _PS0 is 208 * supposed to be executed after turning the power resources on. 209 */ 210 if (state > ACPI_STATE_D0) { 211 /* 212 * According to ACPI 6, devices cannot go from lower-power 213 * (deeper) states to higher-power (shallower) states. 214 */ 215 if (state < device->power.state) { 216 dev_warn(&device->dev, "Cannot transition from %s to %s\n", 217 acpi_power_state_string(device->power.state), 218 acpi_power_state_string(state)); 219 return -ENODEV; 220 } 221 222 /* 223 * If the device goes from D3hot to D3cold, _PS3 has been 224 * evaluated for it already, so skip it in that case. 225 */ 226 if (device->power.state < ACPI_STATE_D3_HOT) { 227 result = acpi_dev_pm_explicit_set(device, state); 228 if (result) 229 goto end; 230 } 231 232 if (device->power.flags.power_resources) 233 result = acpi_power_transition(device, target_state); 234 } else { 235 if (device->power.flags.power_resources) { 236 result = acpi_power_transition(device, ACPI_STATE_D0); 237 if (result) 238 goto end; 239 } 240 241 if (device->power.state == ACPI_STATE_D0) { 242 int psc; 243 244 /* Nothing to do here if _PSC is not present. */ 245 if (!device->power.flags.explicit_get) 246 return 0; 247 248 /* 249 * The power state of the device was set to D0 last 250 * time, but that might have happened before a 251 * system-wide transition involving the platform 252 * firmware, so it may be necessary to evaluate _PS0 253 * for the device here. However, use extra care here 254 * and evaluate _PSC to check the device's current power 255 * state, and only invoke _PS0 if the evaluation of _PSC 256 * is successful and it returns a power state different 257 * from D0. 258 */ 259 result = acpi_dev_pm_explicit_get(device, &psc); 260 if (result || psc == ACPI_STATE_D0) 261 return 0; 262 } 263 264 result = acpi_dev_pm_explicit_set(device, ACPI_STATE_D0); 265 } 266 267 end: 268 if (result) { 269 dev_warn(&device->dev, "Failed to change power state to %s\n", 270 acpi_power_state_string(state)); 271 } else { 272 device->power.state = target_state; 273 ACPI_DEBUG_PRINT((ACPI_DB_INFO, 274 "Device [%s] transitioned to %s\n", 275 device->pnp.bus_id, 276 acpi_power_state_string(state))); 277 } 278 279 return result; 280 } 281 EXPORT_SYMBOL(acpi_device_set_power); 282 283 int acpi_bus_set_power(acpi_handle handle, int state) 284 { 285 struct acpi_device *device; 286 int result; 287 288 result = acpi_bus_get_device(handle, &device); 289 if (result) 290 return result; 291 292 return acpi_device_set_power(device, state); 293 } 294 EXPORT_SYMBOL(acpi_bus_set_power); 295 296 int acpi_bus_init_power(struct acpi_device *device) 297 { 298 int state; 299 int result; 300 301 if (!device) 302 return -EINVAL; 303 304 device->power.state = ACPI_STATE_UNKNOWN; 305 if (!acpi_device_is_present(device)) { 306 device->flags.initialized = false; 307 return -ENXIO; 308 } 309 310 result = acpi_device_get_power(device, &state); 311 if (result) 312 return result; 313 314 if (state < ACPI_STATE_D3_COLD && device->power.flags.power_resources) { 315 /* Reference count the power resources. */ 316 result = acpi_power_on_resources(device, state); 317 if (result) 318 return result; 319 320 if (state == ACPI_STATE_D0) { 321 /* 322 * If _PSC is not present and the state inferred from 323 * power resources appears to be D0, it still may be 324 * necessary to execute _PS0 at this point, because 325 * another device using the same power resources may 326 * have been put into D0 previously and that's why we 327 * see D0 here. 328 */ 329 result = acpi_dev_pm_explicit_set(device, state); 330 if (result) 331 return result; 332 } 333 } else if (state == ACPI_STATE_UNKNOWN) { 334 /* 335 * No power resources and missing _PSC? Cross fingers and make 336 * it D0 in hope that this is what the BIOS put the device into. 337 * [We tried to force D0 here by executing _PS0, but that broke 338 * Toshiba P870-303 in a nasty way.] 339 */ 340 state = ACPI_STATE_D0; 341 } 342 device->power.state = state; 343 return 0; 344 } 345 346 /** 347 * acpi_device_fix_up_power - Force device with missing _PSC into D0. 348 * @device: Device object whose power state is to be fixed up. 349 * 350 * Devices without power resources and _PSC, but having _PS0 and _PS3 defined, 351 * are assumed to be put into D0 by the BIOS. However, in some cases that may 352 * not be the case and this function should be used then. 353 */ 354 int acpi_device_fix_up_power(struct acpi_device *device) 355 { 356 int ret = 0; 357 358 if (!device->power.flags.power_resources 359 && !device->power.flags.explicit_get 360 && device->power.state == ACPI_STATE_D0) 361 ret = acpi_dev_pm_explicit_set(device, ACPI_STATE_D0); 362 363 return ret; 364 } 365 EXPORT_SYMBOL_GPL(acpi_device_fix_up_power); 366 367 int acpi_device_update_power(struct acpi_device *device, int *state_p) 368 { 369 int state; 370 int result; 371 372 if (device->power.state == ACPI_STATE_UNKNOWN) { 373 result = acpi_bus_init_power(device); 374 if (!result && state_p) 375 *state_p = device->power.state; 376 377 return result; 378 } 379 380 result = acpi_device_get_power(device, &state); 381 if (result) 382 return result; 383 384 if (state == ACPI_STATE_UNKNOWN) { 385 state = ACPI_STATE_D0; 386 result = acpi_device_set_power(device, state); 387 if (result) 388 return result; 389 } else { 390 if (device->power.flags.power_resources) { 391 /* 392 * We don't need to really switch the state, bu we need 393 * to update the power resources' reference counters. 394 */ 395 result = acpi_power_transition(device, state); 396 if (result) 397 return result; 398 } 399 device->power.state = state; 400 } 401 if (state_p) 402 *state_p = state; 403 404 return 0; 405 } 406 EXPORT_SYMBOL_GPL(acpi_device_update_power); 407 408 int acpi_bus_update_power(acpi_handle handle, int *state_p) 409 { 410 struct acpi_device *device; 411 int result; 412 413 result = acpi_bus_get_device(handle, &device); 414 return result ? result : acpi_device_update_power(device, state_p); 415 } 416 EXPORT_SYMBOL_GPL(acpi_bus_update_power); 417 418 bool acpi_bus_power_manageable(acpi_handle handle) 419 { 420 struct acpi_device *device; 421 int result; 422 423 result = acpi_bus_get_device(handle, &device); 424 return result ? false : device->flags.power_manageable; 425 } 426 EXPORT_SYMBOL(acpi_bus_power_manageable); 427 428 #ifdef CONFIG_PM 429 static DEFINE_MUTEX(acpi_pm_notifier_lock); 430 static DEFINE_MUTEX(acpi_pm_notifier_install_lock); 431 432 void acpi_pm_wakeup_event(struct device *dev) 433 { 434 pm_wakeup_dev_event(dev, 0, acpi_s2idle_wakeup()); 435 } 436 EXPORT_SYMBOL_GPL(acpi_pm_wakeup_event); 437 438 static void acpi_pm_notify_handler(acpi_handle handle, u32 val, void *not_used) 439 { 440 struct acpi_device *adev; 441 442 if (val != ACPI_NOTIFY_DEVICE_WAKE) 443 return; 444 445 acpi_handle_debug(handle, "Wake notify\n"); 446 447 adev = acpi_bus_get_acpi_device(handle); 448 if (!adev) 449 return; 450 451 mutex_lock(&acpi_pm_notifier_lock); 452 453 if (adev->wakeup.flags.notifier_present) { 454 pm_wakeup_ws_event(adev->wakeup.ws, 0, acpi_s2idle_wakeup()); 455 if (adev->wakeup.context.func) { 456 acpi_handle_debug(handle, "Running %pS for %s\n", 457 adev->wakeup.context.func, 458 dev_name(adev->wakeup.context.dev)); 459 adev->wakeup.context.func(&adev->wakeup.context); 460 } 461 } 462 463 mutex_unlock(&acpi_pm_notifier_lock); 464 465 acpi_bus_put_acpi_device(adev); 466 } 467 468 /** 469 * acpi_add_pm_notifier - Register PM notify handler for given ACPI device. 470 * @adev: ACPI device to add the notify handler for. 471 * @dev: Device to generate a wakeup event for while handling the notification. 472 * @func: Work function to execute when handling the notification. 473 * 474 * NOTE: @adev need not be a run-wake or wakeup device to be a valid source of 475 * PM wakeup events. For example, wakeup events may be generated for bridges 476 * if one of the devices below the bridge is signaling wakeup, even if the 477 * bridge itself doesn't have a wakeup GPE associated with it. 478 */ 479 acpi_status acpi_add_pm_notifier(struct acpi_device *adev, struct device *dev, 480 void (*func)(struct acpi_device_wakeup_context *context)) 481 { 482 acpi_status status = AE_ALREADY_EXISTS; 483 484 if (!dev && !func) 485 return AE_BAD_PARAMETER; 486 487 mutex_lock(&acpi_pm_notifier_install_lock); 488 489 if (adev->wakeup.flags.notifier_present) 490 goto out; 491 492 status = acpi_install_notify_handler(adev->handle, ACPI_SYSTEM_NOTIFY, 493 acpi_pm_notify_handler, NULL); 494 if (ACPI_FAILURE(status)) 495 goto out; 496 497 mutex_lock(&acpi_pm_notifier_lock); 498 adev->wakeup.ws = wakeup_source_register(dev_name(&adev->dev)); 499 adev->wakeup.context.dev = dev; 500 adev->wakeup.context.func = func; 501 adev->wakeup.flags.notifier_present = true; 502 mutex_unlock(&acpi_pm_notifier_lock); 503 504 out: 505 mutex_unlock(&acpi_pm_notifier_install_lock); 506 return status; 507 } 508 509 /** 510 * acpi_remove_pm_notifier - Unregister PM notifier from given ACPI device. 511 * @adev: ACPI device to remove the notifier from. 512 */ 513 acpi_status acpi_remove_pm_notifier(struct acpi_device *adev) 514 { 515 acpi_status status = AE_BAD_PARAMETER; 516 517 mutex_lock(&acpi_pm_notifier_install_lock); 518 519 if (!adev->wakeup.flags.notifier_present) 520 goto out; 521 522 status = acpi_remove_notify_handler(adev->handle, 523 ACPI_SYSTEM_NOTIFY, 524 acpi_pm_notify_handler); 525 if (ACPI_FAILURE(status)) 526 goto out; 527 528 mutex_lock(&acpi_pm_notifier_lock); 529 adev->wakeup.context.func = NULL; 530 adev->wakeup.context.dev = NULL; 531 wakeup_source_unregister(adev->wakeup.ws); 532 adev->wakeup.flags.notifier_present = false; 533 mutex_unlock(&acpi_pm_notifier_lock); 534 535 out: 536 mutex_unlock(&acpi_pm_notifier_install_lock); 537 return status; 538 } 539 540 bool acpi_bus_can_wakeup(acpi_handle handle) 541 { 542 struct acpi_device *device; 543 int result; 544 545 result = acpi_bus_get_device(handle, &device); 546 return result ? false : device->wakeup.flags.valid; 547 } 548 EXPORT_SYMBOL(acpi_bus_can_wakeup); 549 550 bool acpi_pm_device_can_wakeup(struct device *dev) 551 { 552 struct acpi_device *adev = ACPI_COMPANION(dev); 553 554 return adev ? acpi_device_can_wakeup(adev) : false; 555 } 556 557 /** 558 * acpi_dev_pm_get_state - Get preferred power state of ACPI device. 559 * @dev: Device whose preferred target power state to return. 560 * @adev: ACPI device node corresponding to @dev. 561 * @target_state: System state to match the resultant device state. 562 * @d_min_p: Location to store the highest power state available to the device. 563 * @d_max_p: Location to store the lowest power state available to the device. 564 * 565 * Find the lowest power (highest number) and highest power (lowest number) ACPI 566 * device power states that the device can be in while the system is in the 567 * state represented by @target_state. Store the integer numbers representing 568 * those stats in the memory locations pointed to by @d_max_p and @d_min_p, 569 * respectively. 570 * 571 * Callers must ensure that @dev and @adev are valid pointers and that @adev 572 * actually corresponds to @dev before using this function. 573 * 574 * Returns 0 on success or -ENODATA when one of the ACPI methods fails or 575 * returns a value that doesn't make sense. The memory locations pointed to by 576 * @d_max_p and @d_min_p are only modified on success. 577 */ 578 static int acpi_dev_pm_get_state(struct device *dev, struct acpi_device *adev, 579 u32 target_state, int *d_min_p, int *d_max_p) 580 { 581 char method[] = { '_', 'S', '0' + target_state, 'D', '\0' }; 582 acpi_handle handle = adev->handle; 583 unsigned long long ret; 584 int d_min, d_max; 585 bool wakeup = false; 586 bool has_sxd = false; 587 acpi_status status; 588 589 /* 590 * If the system state is S0, the lowest power state the device can be 591 * in is D3cold, unless the device has _S0W and is supposed to signal 592 * wakeup, in which case the return value of _S0W has to be used as the 593 * lowest power state available to the device. 594 */ 595 d_min = ACPI_STATE_D0; 596 d_max = ACPI_STATE_D3_COLD; 597 598 /* 599 * If present, _SxD methods return the minimum D-state (highest power 600 * state) we can use for the corresponding S-states. Otherwise, the 601 * minimum D-state is D0 (ACPI 3.x). 602 */ 603 if (target_state > ACPI_STATE_S0) { 604 /* 605 * We rely on acpi_evaluate_integer() not clobbering the integer 606 * provided if AE_NOT_FOUND is returned. 607 */ 608 ret = d_min; 609 status = acpi_evaluate_integer(handle, method, NULL, &ret); 610 if ((ACPI_FAILURE(status) && status != AE_NOT_FOUND) 611 || ret > ACPI_STATE_D3_COLD) 612 return -ENODATA; 613 614 /* 615 * We need to handle legacy systems where D3hot and D3cold are 616 * the same and 3 is returned in both cases, so fall back to 617 * D3cold if D3hot is not a valid state. 618 */ 619 if (!adev->power.states[ret].flags.valid) { 620 if (ret == ACPI_STATE_D3_HOT) 621 ret = ACPI_STATE_D3_COLD; 622 else 623 return -ENODATA; 624 } 625 626 if (status == AE_OK) 627 has_sxd = true; 628 629 d_min = ret; 630 wakeup = device_may_wakeup(dev) && adev->wakeup.flags.valid 631 && adev->wakeup.sleep_state >= target_state; 632 } else { 633 wakeup = adev->wakeup.flags.valid; 634 } 635 636 /* 637 * If _PRW says we can wake up the system from the target sleep state, 638 * the D-state returned by _SxD is sufficient for that (we assume a 639 * wakeup-aware driver if wake is set). Still, if _SxW exists 640 * (ACPI 3.x), it should return the maximum (lowest power) D-state that 641 * can wake the system. _S0W may be valid, too. 642 */ 643 if (wakeup) { 644 method[3] = 'W'; 645 status = acpi_evaluate_integer(handle, method, NULL, &ret); 646 if (status == AE_NOT_FOUND) { 647 /* No _SxW. In this case, the ACPI spec says that we 648 * must not go into any power state deeper than the 649 * value returned from _SxD. 650 */ 651 if (has_sxd && target_state > ACPI_STATE_S0) 652 d_max = d_min; 653 } else if (ACPI_SUCCESS(status) && ret <= ACPI_STATE_D3_COLD) { 654 /* Fall back to D3cold if ret is not a valid state. */ 655 if (!adev->power.states[ret].flags.valid) 656 ret = ACPI_STATE_D3_COLD; 657 658 d_max = ret > d_min ? ret : d_min; 659 } else { 660 return -ENODATA; 661 } 662 } 663 664 if (d_min_p) 665 *d_min_p = d_min; 666 667 if (d_max_p) 668 *d_max_p = d_max; 669 670 return 0; 671 } 672 673 /** 674 * acpi_pm_device_sleep_state - Get preferred power state of ACPI device. 675 * @dev: Device whose preferred target power state to return. 676 * @d_min_p: Location to store the upper limit of the allowed states range. 677 * @d_max_in: Deepest low-power state to take into consideration. 678 * Return value: Preferred power state of the device on success, -ENODEV 679 * if there's no 'struct acpi_device' for @dev, -EINVAL if @d_max_in is 680 * incorrect, or -ENODATA on ACPI method failure. 681 * 682 * The caller must ensure that @dev is valid before using this function. 683 */ 684 int acpi_pm_device_sleep_state(struct device *dev, int *d_min_p, int d_max_in) 685 { 686 struct acpi_device *adev; 687 int ret, d_min, d_max; 688 689 if (d_max_in < ACPI_STATE_D0 || d_max_in > ACPI_STATE_D3_COLD) 690 return -EINVAL; 691 692 if (d_max_in > ACPI_STATE_D2) { 693 enum pm_qos_flags_status stat; 694 695 stat = dev_pm_qos_flags(dev, PM_QOS_FLAG_NO_POWER_OFF); 696 if (stat == PM_QOS_FLAGS_ALL) 697 d_max_in = ACPI_STATE_D2; 698 } 699 700 adev = ACPI_COMPANION(dev); 701 if (!adev) { 702 dev_dbg(dev, "ACPI companion missing in %s!\n", __func__); 703 return -ENODEV; 704 } 705 706 ret = acpi_dev_pm_get_state(dev, adev, acpi_target_system_state(), 707 &d_min, &d_max); 708 if (ret) 709 return ret; 710 711 if (d_max_in < d_min) 712 return -EINVAL; 713 714 if (d_max > d_max_in) { 715 for (d_max = d_max_in; d_max > d_min; d_max--) { 716 if (adev->power.states[d_max].flags.valid) 717 break; 718 } 719 } 720 721 if (d_min_p) 722 *d_min_p = d_min; 723 724 return d_max; 725 } 726 EXPORT_SYMBOL(acpi_pm_device_sleep_state); 727 728 /** 729 * acpi_pm_notify_work_func - ACPI devices wakeup notification work function. 730 * @context: Device wakeup context. 731 */ 732 static void acpi_pm_notify_work_func(struct acpi_device_wakeup_context *context) 733 { 734 struct device *dev = context->dev; 735 736 if (dev) { 737 pm_wakeup_event(dev, 0); 738 pm_request_resume(dev); 739 } 740 } 741 742 static DEFINE_MUTEX(acpi_wakeup_lock); 743 744 static int __acpi_device_wakeup_enable(struct acpi_device *adev, 745 u32 target_state, int max_count) 746 { 747 struct acpi_device_wakeup *wakeup = &adev->wakeup; 748 acpi_status status; 749 int error = 0; 750 751 mutex_lock(&acpi_wakeup_lock); 752 753 if (wakeup->enable_count >= max_count) 754 goto out; 755 756 if (wakeup->enable_count > 0) 757 goto inc; 758 759 error = acpi_enable_wakeup_device_power(adev, target_state); 760 if (error) 761 goto out; 762 763 status = acpi_enable_gpe(wakeup->gpe_device, wakeup->gpe_number); 764 if (ACPI_FAILURE(status)) { 765 acpi_disable_wakeup_device_power(adev); 766 error = -EIO; 767 goto out; 768 } 769 770 acpi_handle_debug(adev->handle, "GPE%2X enabled for wakeup\n", 771 (unsigned int)wakeup->gpe_number); 772 773 inc: 774 wakeup->enable_count++; 775 776 out: 777 mutex_unlock(&acpi_wakeup_lock); 778 return error; 779 } 780 781 /** 782 * acpi_device_wakeup_enable - Enable wakeup functionality for device. 783 * @adev: ACPI device to enable wakeup functionality for. 784 * @target_state: State the system is transitioning into. 785 * 786 * Enable the GPE associated with @adev so that it can generate wakeup signals 787 * for the device in response to external (remote) events and enable wakeup 788 * power for it. 789 * 790 * Callers must ensure that @adev is a valid ACPI device node before executing 791 * this function. 792 */ 793 static int acpi_device_wakeup_enable(struct acpi_device *adev, u32 target_state) 794 { 795 return __acpi_device_wakeup_enable(adev, target_state, 1); 796 } 797 798 /** 799 * acpi_device_wakeup_disable - Disable wakeup functionality for device. 800 * @adev: ACPI device to disable wakeup functionality for. 801 * 802 * Disable the GPE associated with @adev and disable wakeup power for it. 803 * 804 * Callers must ensure that @adev is a valid ACPI device node before executing 805 * this function. 806 */ 807 static void acpi_device_wakeup_disable(struct acpi_device *adev) 808 { 809 struct acpi_device_wakeup *wakeup = &adev->wakeup; 810 811 mutex_lock(&acpi_wakeup_lock); 812 813 if (!wakeup->enable_count) 814 goto out; 815 816 acpi_disable_gpe(wakeup->gpe_device, wakeup->gpe_number); 817 acpi_disable_wakeup_device_power(adev); 818 819 wakeup->enable_count--; 820 821 out: 822 mutex_unlock(&acpi_wakeup_lock); 823 } 824 825 static int __acpi_pm_set_device_wakeup(struct device *dev, bool enable, 826 int max_count) 827 { 828 struct acpi_device *adev; 829 int error; 830 831 adev = ACPI_COMPANION(dev); 832 if (!adev) { 833 dev_dbg(dev, "ACPI companion missing in %s!\n", __func__); 834 return -ENODEV; 835 } 836 837 if (!acpi_device_can_wakeup(adev)) 838 return -EINVAL; 839 840 if (!enable) { 841 acpi_device_wakeup_disable(adev); 842 dev_dbg(dev, "Wakeup disabled by ACPI\n"); 843 return 0; 844 } 845 846 error = __acpi_device_wakeup_enable(adev, acpi_target_system_state(), 847 max_count); 848 if (!error) 849 dev_dbg(dev, "Wakeup enabled by ACPI\n"); 850 851 return error; 852 } 853 854 /** 855 * acpi_pm_set_device_wakeup - Enable/disable remote wakeup for given device. 856 * @dev: Device to enable/disable to generate wakeup events. 857 * @enable: Whether to enable or disable the wakeup functionality. 858 */ 859 int acpi_pm_set_device_wakeup(struct device *dev, bool enable) 860 { 861 return __acpi_pm_set_device_wakeup(dev, enable, 1); 862 } 863 EXPORT_SYMBOL_GPL(acpi_pm_set_device_wakeup); 864 865 /** 866 * acpi_pm_set_bridge_wakeup - Enable/disable remote wakeup for given bridge. 867 * @dev: Bridge device to enable/disable to generate wakeup events. 868 * @enable: Whether to enable or disable the wakeup functionality. 869 */ 870 int acpi_pm_set_bridge_wakeup(struct device *dev, bool enable) 871 { 872 return __acpi_pm_set_device_wakeup(dev, enable, INT_MAX); 873 } 874 EXPORT_SYMBOL_GPL(acpi_pm_set_bridge_wakeup); 875 876 /** 877 * acpi_dev_pm_low_power - Put ACPI device into a low-power state. 878 * @dev: Device to put into a low-power state. 879 * @adev: ACPI device node corresponding to @dev. 880 * @system_state: System state to choose the device state for. 881 */ 882 static int acpi_dev_pm_low_power(struct device *dev, struct acpi_device *adev, 883 u32 system_state) 884 { 885 int ret, state; 886 887 if (!acpi_device_power_manageable(adev)) 888 return 0; 889 890 ret = acpi_dev_pm_get_state(dev, adev, system_state, NULL, &state); 891 return ret ? ret : acpi_device_set_power(adev, state); 892 } 893 894 /** 895 * acpi_dev_pm_full_power - Put ACPI device into the full-power state. 896 * @adev: ACPI device node to put into the full-power state. 897 */ 898 static int acpi_dev_pm_full_power(struct acpi_device *adev) 899 { 900 return acpi_device_power_manageable(adev) ? 901 acpi_device_set_power(adev, ACPI_STATE_D0) : 0; 902 } 903 904 /** 905 * acpi_dev_suspend - Put device into a low-power state using ACPI. 906 * @dev: Device to put into a low-power state. 907 * @wakeup: Whether or not to enable wakeup for the device. 908 * 909 * Put the given device into a low-power state using the standard ACPI 910 * mechanism. Set up remote wakeup if desired, choose the state to put the 911 * device into (this checks if remote wakeup is expected to work too), and set 912 * the power state of the device. 913 */ 914 int acpi_dev_suspend(struct device *dev, bool wakeup) 915 { 916 struct acpi_device *adev = ACPI_COMPANION(dev); 917 u32 target_state = acpi_target_system_state(); 918 int error; 919 920 if (!adev) 921 return 0; 922 923 if (wakeup && acpi_device_can_wakeup(adev)) { 924 error = acpi_device_wakeup_enable(adev, target_state); 925 if (error) 926 return -EAGAIN; 927 } else { 928 wakeup = false; 929 } 930 931 error = acpi_dev_pm_low_power(dev, adev, target_state); 932 if (error && wakeup) 933 acpi_device_wakeup_disable(adev); 934 935 return error; 936 } 937 EXPORT_SYMBOL_GPL(acpi_dev_suspend); 938 939 /** 940 * acpi_dev_resume - Put device into the full-power state using ACPI. 941 * @dev: Device to put into the full-power state. 942 * 943 * Put the given device into the full-power state using the standard ACPI 944 * mechanism. Set the power state of the device to ACPI D0 and disable wakeup. 945 */ 946 int acpi_dev_resume(struct device *dev) 947 { 948 struct acpi_device *adev = ACPI_COMPANION(dev); 949 int error; 950 951 if (!adev) 952 return 0; 953 954 error = acpi_dev_pm_full_power(adev); 955 acpi_device_wakeup_disable(adev); 956 return error; 957 } 958 EXPORT_SYMBOL_GPL(acpi_dev_resume); 959 960 /** 961 * acpi_subsys_runtime_suspend - Suspend device using ACPI. 962 * @dev: Device to suspend. 963 * 964 * Carry out the generic runtime suspend procedure for @dev and use ACPI to put 965 * it into a runtime low-power state. 966 */ 967 int acpi_subsys_runtime_suspend(struct device *dev) 968 { 969 int ret = pm_generic_runtime_suspend(dev); 970 return ret ? ret : acpi_dev_suspend(dev, true); 971 } 972 EXPORT_SYMBOL_GPL(acpi_subsys_runtime_suspend); 973 974 /** 975 * acpi_subsys_runtime_resume - Resume device using ACPI. 976 * @dev: Device to Resume. 977 * 978 * Use ACPI to put the given device into the full-power state and carry out the 979 * generic runtime resume procedure for it. 980 */ 981 int acpi_subsys_runtime_resume(struct device *dev) 982 { 983 int ret = acpi_dev_resume(dev); 984 return ret ? ret : pm_generic_runtime_resume(dev); 985 } 986 EXPORT_SYMBOL_GPL(acpi_subsys_runtime_resume); 987 988 #ifdef CONFIG_PM_SLEEP 989 static bool acpi_dev_needs_resume(struct device *dev, struct acpi_device *adev) 990 { 991 u32 sys_target = acpi_target_system_state(); 992 int ret, state; 993 994 if (!pm_runtime_suspended(dev) || !adev || (adev->wakeup.flags.valid && 995 device_may_wakeup(dev) != !!adev->wakeup.prepare_count)) 996 return true; 997 998 if (sys_target == ACPI_STATE_S0) 999 return false; 1000 1001 if (adev->power.flags.dsw_present) 1002 return true; 1003 1004 ret = acpi_dev_pm_get_state(dev, adev, sys_target, NULL, &state); 1005 if (ret) 1006 return true; 1007 1008 return state != adev->power.state; 1009 } 1010 1011 /** 1012 * acpi_subsys_prepare - Prepare device for system transition to a sleep state. 1013 * @dev: Device to prepare. 1014 */ 1015 int acpi_subsys_prepare(struct device *dev) 1016 { 1017 struct acpi_device *adev = ACPI_COMPANION(dev); 1018 1019 if (dev->driver && dev->driver->pm && dev->driver->pm->prepare) { 1020 int ret = dev->driver->pm->prepare(dev); 1021 1022 if (ret < 0) 1023 return ret; 1024 1025 if (!ret && dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_PREPARE)) 1026 return 0; 1027 } 1028 1029 return !acpi_dev_needs_resume(dev, adev); 1030 } 1031 EXPORT_SYMBOL_GPL(acpi_subsys_prepare); 1032 1033 /** 1034 * acpi_subsys_complete - Finalize device's resume during system resume. 1035 * @dev: Device to handle. 1036 */ 1037 void acpi_subsys_complete(struct device *dev) 1038 { 1039 pm_generic_complete(dev); 1040 /* 1041 * If the device had been runtime-suspended before the system went into 1042 * the sleep state it is going out of and it has never been resumed till 1043 * now, resume it in case the firmware powered it up. 1044 */ 1045 if (pm_runtime_suspended(dev) && pm_resume_via_firmware()) 1046 pm_request_resume(dev); 1047 } 1048 EXPORT_SYMBOL_GPL(acpi_subsys_complete); 1049 1050 /** 1051 * acpi_subsys_suspend - Run the device driver's suspend callback. 1052 * @dev: Device to handle. 1053 * 1054 * Follow PCI and resume devices from runtime suspend before running their 1055 * system suspend callbacks, unless the driver can cope with runtime-suspended 1056 * devices during system suspend and there are no ACPI-specific reasons for 1057 * resuming them. 1058 */ 1059 int acpi_subsys_suspend(struct device *dev) 1060 { 1061 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND) || 1062 acpi_dev_needs_resume(dev, ACPI_COMPANION(dev))) 1063 pm_runtime_resume(dev); 1064 1065 return pm_generic_suspend(dev); 1066 } 1067 EXPORT_SYMBOL_GPL(acpi_subsys_suspend); 1068 1069 /** 1070 * acpi_subsys_suspend_late - Suspend device using ACPI. 1071 * @dev: Device to suspend. 1072 * 1073 * Carry out the generic late suspend procedure for @dev and use ACPI to put 1074 * it into a low-power state during system transition into a sleep state. 1075 */ 1076 int acpi_subsys_suspend_late(struct device *dev) 1077 { 1078 int ret; 1079 1080 if (dev_pm_smart_suspend_and_suspended(dev)) 1081 return 0; 1082 1083 ret = pm_generic_suspend_late(dev); 1084 return ret ? ret : acpi_dev_suspend(dev, device_may_wakeup(dev)); 1085 } 1086 EXPORT_SYMBOL_GPL(acpi_subsys_suspend_late); 1087 1088 /** 1089 * acpi_subsys_suspend_noirq - Run the device driver's "noirq" suspend callback. 1090 * @dev: Device to suspend. 1091 */ 1092 int acpi_subsys_suspend_noirq(struct device *dev) 1093 { 1094 int ret; 1095 1096 if (dev_pm_smart_suspend_and_suspended(dev)) { 1097 dev->power.may_skip_resume = true; 1098 return 0; 1099 } 1100 1101 ret = pm_generic_suspend_noirq(dev); 1102 if (ret) 1103 return ret; 1104 1105 /* 1106 * If the target system sleep state is suspend-to-idle, it is sufficient 1107 * to check whether or not the device's wakeup settings are good for 1108 * runtime PM. Otherwise, the pm_resume_via_firmware() check will cause 1109 * acpi_subsys_complete() to take care of fixing up the device's state 1110 * anyway, if need be. 1111 */ 1112 dev->power.may_skip_resume = device_may_wakeup(dev) || 1113 !device_can_wakeup(dev); 1114 1115 return 0; 1116 } 1117 EXPORT_SYMBOL_GPL(acpi_subsys_suspend_noirq); 1118 1119 /** 1120 * acpi_subsys_resume_noirq - Run the device driver's "noirq" resume callback. 1121 * @dev: Device to handle. 1122 */ 1123 static int acpi_subsys_resume_noirq(struct device *dev) 1124 { 1125 if (dev_pm_may_skip_resume(dev)) 1126 return 0; 1127 1128 /* 1129 * Devices with DPM_FLAG_SMART_SUSPEND may be left in runtime suspend 1130 * during system suspend, so update their runtime PM status to "active" 1131 * as they will be put into D0 going forward. 1132 */ 1133 if (dev_pm_smart_suspend_and_suspended(dev)) 1134 pm_runtime_set_active(dev); 1135 1136 return pm_generic_resume_noirq(dev); 1137 } 1138 1139 /** 1140 * acpi_subsys_resume_early - Resume device using ACPI. 1141 * @dev: Device to Resume. 1142 * 1143 * Use ACPI to put the given device into the full-power state and carry out the 1144 * generic early resume procedure for it during system transition into the 1145 * working state. 1146 */ 1147 static int acpi_subsys_resume_early(struct device *dev) 1148 { 1149 int ret = acpi_dev_resume(dev); 1150 return ret ? ret : pm_generic_resume_early(dev); 1151 } 1152 1153 /** 1154 * acpi_subsys_freeze - Run the device driver's freeze callback. 1155 * @dev: Device to handle. 1156 */ 1157 int acpi_subsys_freeze(struct device *dev) 1158 { 1159 /* 1160 * Resume all runtime-suspended devices before creating a snapshot 1161 * image of system memory, because the restore kernel generally cannot 1162 * be expected to always handle them consistently and they need to be 1163 * put into the runtime-active metastate during system resume anyway, 1164 * so it is better to ensure that the state saved in the image will be 1165 * always consistent with that. 1166 */ 1167 pm_runtime_resume(dev); 1168 1169 return pm_generic_freeze(dev); 1170 } 1171 EXPORT_SYMBOL_GPL(acpi_subsys_freeze); 1172 1173 /** 1174 * acpi_subsys_restore_early - Restore device using ACPI. 1175 * @dev: Device to restore. 1176 */ 1177 int acpi_subsys_restore_early(struct device *dev) 1178 { 1179 int ret = acpi_dev_resume(dev); 1180 return ret ? ret : pm_generic_restore_early(dev); 1181 } 1182 EXPORT_SYMBOL_GPL(acpi_subsys_restore_early); 1183 1184 /** 1185 * acpi_subsys_poweroff - Run the device driver's poweroff callback. 1186 * @dev: Device to handle. 1187 * 1188 * Follow PCI and resume devices from runtime suspend before running their 1189 * system poweroff callbacks, unless the driver can cope with runtime-suspended 1190 * devices during system suspend and there are no ACPI-specific reasons for 1191 * resuming them. 1192 */ 1193 int acpi_subsys_poweroff(struct device *dev) 1194 { 1195 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND) || 1196 acpi_dev_needs_resume(dev, ACPI_COMPANION(dev))) 1197 pm_runtime_resume(dev); 1198 1199 return pm_generic_poweroff(dev); 1200 } 1201 EXPORT_SYMBOL_GPL(acpi_subsys_poweroff); 1202 1203 /** 1204 * acpi_subsys_poweroff_late - Run the device driver's poweroff callback. 1205 * @dev: Device to handle. 1206 * 1207 * Carry out the generic late poweroff procedure for @dev and use ACPI to put 1208 * it into a low-power state during system transition into a sleep state. 1209 */ 1210 static int acpi_subsys_poweroff_late(struct device *dev) 1211 { 1212 int ret; 1213 1214 if (dev_pm_smart_suspend_and_suspended(dev)) 1215 return 0; 1216 1217 ret = pm_generic_poweroff_late(dev); 1218 if (ret) 1219 return ret; 1220 1221 return acpi_dev_suspend(dev, device_may_wakeup(dev)); 1222 } 1223 1224 /** 1225 * acpi_subsys_poweroff_noirq - Run the driver's "noirq" poweroff callback. 1226 * @dev: Device to suspend. 1227 */ 1228 static int acpi_subsys_poweroff_noirq(struct device *dev) 1229 { 1230 if (dev_pm_smart_suspend_and_suspended(dev)) 1231 return 0; 1232 1233 return pm_generic_poweroff_noirq(dev); 1234 } 1235 #endif /* CONFIG_PM_SLEEP */ 1236 1237 static struct dev_pm_domain acpi_general_pm_domain = { 1238 .ops = { 1239 .runtime_suspend = acpi_subsys_runtime_suspend, 1240 .runtime_resume = acpi_subsys_runtime_resume, 1241 #ifdef CONFIG_PM_SLEEP 1242 .prepare = acpi_subsys_prepare, 1243 .complete = acpi_subsys_complete, 1244 .suspend = acpi_subsys_suspend, 1245 .suspend_late = acpi_subsys_suspend_late, 1246 .suspend_noirq = acpi_subsys_suspend_noirq, 1247 .resume_noirq = acpi_subsys_resume_noirq, 1248 .resume_early = acpi_subsys_resume_early, 1249 .freeze = acpi_subsys_freeze, 1250 .poweroff = acpi_subsys_poweroff, 1251 .poweroff_late = acpi_subsys_poweroff_late, 1252 .poweroff_noirq = acpi_subsys_poweroff_noirq, 1253 .restore_early = acpi_subsys_restore_early, 1254 #endif 1255 }, 1256 }; 1257 1258 /** 1259 * acpi_dev_pm_detach - Remove ACPI power management from the device. 1260 * @dev: Device to take care of. 1261 * @power_off: Whether or not to try to remove power from the device. 1262 * 1263 * Remove the device from the general ACPI PM domain and remove its wakeup 1264 * notifier. If @power_off is set, additionally remove power from the device if 1265 * possible. 1266 * 1267 * Callers must ensure proper synchronization of this function with power 1268 * management callbacks. 1269 */ 1270 static void acpi_dev_pm_detach(struct device *dev, bool power_off) 1271 { 1272 struct acpi_device *adev = ACPI_COMPANION(dev); 1273 1274 if (adev && dev->pm_domain == &acpi_general_pm_domain) { 1275 dev_pm_domain_set(dev, NULL); 1276 acpi_remove_pm_notifier(adev); 1277 if (power_off) { 1278 /* 1279 * If the device's PM QoS resume latency limit or flags 1280 * have been exposed to user space, they have to be 1281 * hidden at this point, so that they don't affect the 1282 * choice of the low-power state to put the device into. 1283 */ 1284 dev_pm_qos_hide_latency_limit(dev); 1285 dev_pm_qos_hide_flags(dev); 1286 acpi_device_wakeup_disable(adev); 1287 acpi_dev_pm_low_power(dev, adev, ACPI_STATE_S0); 1288 } 1289 } 1290 } 1291 1292 /** 1293 * acpi_dev_pm_attach - Prepare device for ACPI power management. 1294 * @dev: Device to prepare. 1295 * @power_on: Whether or not to power on the device. 1296 * 1297 * If @dev has a valid ACPI handle that has a valid struct acpi_device object 1298 * attached to it, install a wakeup notification handler for the device and 1299 * add it to the general ACPI PM domain. If @power_on is set, the device will 1300 * be put into the ACPI D0 state before the function returns. 1301 * 1302 * This assumes that the @dev's bus type uses generic power management callbacks 1303 * (or doesn't use any power management callbacks at all). 1304 * 1305 * Callers must ensure proper synchronization of this function with power 1306 * management callbacks. 1307 */ 1308 int acpi_dev_pm_attach(struct device *dev, bool power_on) 1309 { 1310 struct acpi_device *adev = ACPI_COMPANION(dev); 1311 1312 if (!adev) 1313 return 0; 1314 1315 /* 1316 * Only attach the power domain to the first device if the 1317 * companion is shared by multiple. This is to prevent doing power 1318 * management twice. 1319 */ 1320 if (!acpi_device_is_first_physical_node(adev, dev)) 1321 return 0; 1322 1323 acpi_add_pm_notifier(adev, dev, acpi_pm_notify_work_func); 1324 dev_pm_domain_set(dev, &acpi_general_pm_domain); 1325 if (power_on) { 1326 acpi_dev_pm_full_power(adev); 1327 acpi_device_wakeup_disable(adev); 1328 } 1329 1330 dev->pm_domain->detach = acpi_dev_pm_detach; 1331 return 1; 1332 } 1333 EXPORT_SYMBOL_GPL(acpi_dev_pm_attach); 1334 #endif /* CONFIG_PM */ 1335