1 /* 2 * sleep.c - ACPI sleep support. 3 * 4 * Copyright (c) 2005 Alexey Starikovskiy <alexey.y.starikovskiy@intel.com> 5 * Copyright (c) 2004 David Shaohua Li <shaohua.li@intel.com> 6 * Copyright (c) 2000-2003 Patrick Mochel 7 * Copyright (c) 2003 Open Source Development Lab 8 * 9 * This file is released under the GPLv2. 10 * 11 */ 12 13 #include <linux/delay.h> 14 #include <linux/irq.h> 15 #include <linux/dmi.h> 16 #include <linux/device.h> 17 #include <linux/suspend.h> 18 #include <linux/reboot.h> 19 #include <linux/acpi.h> 20 21 #include <asm/io.h> 22 23 #include <acpi/acpi_bus.h> 24 #include <acpi/acpi_drivers.h> 25 26 #include "internal.h" 27 #include "sleep.h" 28 29 static u8 sleep_states[ACPI_S_STATE_COUNT]; 30 31 static void acpi_sleep_tts_switch(u32 acpi_state) 32 { 33 union acpi_object in_arg = { ACPI_TYPE_INTEGER }; 34 struct acpi_object_list arg_list = { 1, &in_arg }; 35 acpi_status status = AE_OK; 36 37 in_arg.integer.value = acpi_state; 38 status = acpi_evaluate_object(NULL, "\\_TTS", &arg_list, NULL); 39 if (ACPI_FAILURE(status) && status != AE_NOT_FOUND) { 40 /* 41 * OS can't evaluate the _TTS object correctly. Some warning 42 * message will be printed. But it won't break anything. 43 */ 44 printk(KERN_NOTICE "Failure in evaluating _TTS object\n"); 45 } 46 } 47 48 static int tts_notify_reboot(struct notifier_block *this, 49 unsigned long code, void *x) 50 { 51 acpi_sleep_tts_switch(ACPI_STATE_S5); 52 return NOTIFY_DONE; 53 } 54 55 static struct notifier_block tts_notifier = { 56 .notifier_call = tts_notify_reboot, 57 .next = NULL, 58 .priority = 0, 59 }; 60 61 static int acpi_sleep_prepare(u32 acpi_state) 62 { 63 #ifdef CONFIG_ACPI_SLEEP 64 /* do we have a wakeup address for S2 and S3? */ 65 if (acpi_state == ACPI_STATE_S3) { 66 if (!acpi_wakeup_address) { 67 return -EFAULT; 68 } 69 acpi_set_firmware_waking_vector( 70 (acpi_physical_address)acpi_wakeup_address); 71 72 } 73 ACPI_FLUSH_CPU_CACHE(); 74 #endif 75 printk(KERN_INFO PREFIX "Preparing to enter system sleep state S%d\n", 76 acpi_state); 77 acpi_enable_wakeup_devices(acpi_state); 78 acpi_enter_sleep_state_prep(acpi_state); 79 return 0; 80 } 81 82 #ifdef CONFIG_ACPI_SLEEP 83 static u32 acpi_target_sleep_state = ACPI_STATE_S0; 84 85 /* 86 * The ACPI specification wants us to save NVS memory regions during hibernation 87 * and to restore them during the subsequent resume. Windows does that also for 88 * suspend to RAM. However, it is known that this mechanism does not work on 89 * all machines, so we allow the user to disable it with the help of the 90 * 'acpi_sleep=nonvs' kernel command line option. 91 */ 92 static bool nvs_nosave; 93 94 void __init acpi_nvs_nosave(void) 95 { 96 nvs_nosave = true; 97 } 98 99 /* 100 * ACPI 1.0 wants us to execute _PTS before suspending devices, so we allow the 101 * user to request that behavior by using the 'acpi_old_suspend_ordering' 102 * kernel command line option that causes the following variable to be set. 103 */ 104 static bool old_suspend_ordering; 105 106 void __init acpi_old_suspend_ordering(void) 107 { 108 old_suspend_ordering = true; 109 } 110 111 /** 112 * acpi_pm_freeze - Disable the GPEs and suspend EC transactions. 113 */ 114 static int acpi_pm_freeze(void) 115 { 116 acpi_disable_all_gpes(); 117 acpi_os_wait_events_complete(NULL); 118 acpi_ec_block_transactions(); 119 return 0; 120 } 121 122 /** 123 * acpi_pre_suspend - Enable wakeup devices, "freeze" EC and save NVS. 124 */ 125 static int acpi_pm_pre_suspend(void) 126 { 127 acpi_pm_freeze(); 128 return suspend_nvs_save(); 129 } 130 131 /** 132 * __acpi_pm_prepare - Prepare the platform to enter the target state. 133 * 134 * If necessary, set the firmware waking vector and do arch-specific 135 * nastiness to get the wakeup code to the waking vector. 136 */ 137 static int __acpi_pm_prepare(void) 138 { 139 int error = acpi_sleep_prepare(acpi_target_sleep_state); 140 if (error) 141 acpi_target_sleep_state = ACPI_STATE_S0; 142 143 return error; 144 } 145 146 /** 147 * acpi_pm_prepare - Prepare the platform to enter the target sleep 148 * state and disable the GPEs. 149 */ 150 static int acpi_pm_prepare(void) 151 { 152 int error = __acpi_pm_prepare(); 153 if (!error) 154 error = acpi_pm_pre_suspend(); 155 156 return error; 157 } 158 159 /** 160 * acpi_pm_finish - Instruct the platform to leave a sleep state. 161 * 162 * This is called after we wake back up (or if entering the sleep state 163 * failed). 164 */ 165 static void acpi_pm_finish(void) 166 { 167 u32 acpi_state = acpi_target_sleep_state; 168 169 acpi_ec_unblock_transactions(); 170 suspend_nvs_free(); 171 172 if (acpi_state == ACPI_STATE_S0) 173 return; 174 175 printk(KERN_INFO PREFIX "Waking up from system sleep state S%d\n", 176 acpi_state); 177 acpi_disable_wakeup_devices(acpi_state); 178 acpi_leave_sleep_state(acpi_state); 179 180 /* reset firmware waking vector */ 181 acpi_set_firmware_waking_vector((acpi_physical_address) 0); 182 183 acpi_target_sleep_state = ACPI_STATE_S0; 184 } 185 186 /** 187 * acpi_pm_end - Finish up suspend sequence. 188 */ 189 static void acpi_pm_end(void) 190 { 191 /* 192 * This is necessary in case acpi_pm_finish() is not called during a 193 * failing transition to a sleep state. 194 */ 195 acpi_target_sleep_state = ACPI_STATE_S0; 196 acpi_sleep_tts_switch(acpi_target_sleep_state); 197 } 198 #else /* !CONFIG_ACPI_SLEEP */ 199 #define acpi_target_sleep_state ACPI_STATE_S0 200 #endif /* CONFIG_ACPI_SLEEP */ 201 202 #ifdef CONFIG_SUSPEND 203 extern void do_suspend_lowlevel(void); 204 205 static u32 acpi_suspend_states[] = { 206 [PM_SUSPEND_ON] = ACPI_STATE_S0, 207 [PM_SUSPEND_STANDBY] = ACPI_STATE_S1, 208 [PM_SUSPEND_MEM] = ACPI_STATE_S3, 209 [PM_SUSPEND_MAX] = ACPI_STATE_S5 210 }; 211 212 /** 213 * acpi_suspend_begin - Set the target system sleep state to the state 214 * associated with given @pm_state, if supported. 215 */ 216 static int acpi_suspend_begin(suspend_state_t pm_state) 217 { 218 u32 acpi_state = acpi_suspend_states[pm_state]; 219 int error = 0; 220 221 error = nvs_nosave ? 0 : suspend_nvs_alloc(); 222 if (error) 223 return error; 224 225 if (sleep_states[acpi_state]) { 226 acpi_target_sleep_state = acpi_state; 227 acpi_sleep_tts_switch(acpi_target_sleep_state); 228 } else { 229 printk(KERN_ERR "ACPI does not support this state: %d\n", 230 pm_state); 231 error = -ENOSYS; 232 } 233 return error; 234 } 235 236 /** 237 * acpi_suspend_enter - Actually enter a sleep state. 238 * @pm_state: ignored 239 * 240 * Flush caches and go to sleep. For STR we have to call arch-specific 241 * assembly, which in turn call acpi_enter_sleep_state(). 242 * It's unfortunate, but it works. Please fix if you're feeling frisky. 243 */ 244 static int acpi_suspend_enter(suspend_state_t pm_state) 245 { 246 acpi_status status = AE_OK; 247 unsigned long flags = 0; 248 u32 acpi_state = acpi_target_sleep_state; 249 250 ACPI_FLUSH_CPU_CACHE(); 251 252 /* Do arch specific saving of state. */ 253 if (acpi_state == ACPI_STATE_S3) { 254 int error = acpi_save_state_mem(); 255 256 if (error) 257 return error; 258 } 259 260 local_irq_save(flags); 261 switch (acpi_state) { 262 case ACPI_STATE_S1: 263 barrier(); 264 status = acpi_enter_sleep_state(acpi_state); 265 break; 266 267 case ACPI_STATE_S3: 268 do_suspend_lowlevel(); 269 break; 270 } 271 272 /* This violates the spec but is required for bug compatibility. */ 273 acpi_write_bit_register(ACPI_BITREG_SCI_ENABLE, 1); 274 275 /* Reprogram control registers and execute _BFS */ 276 acpi_leave_sleep_state_prep(acpi_state); 277 278 /* ACPI 3.0 specs (P62) says that it's the responsibility 279 * of the OSPM to clear the status bit [ implying that the 280 * POWER_BUTTON event should not reach userspace ] 281 */ 282 if (ACPI_SUCCESS(status) && (acpi_state == ACPI_STATE_S3)) 283 acpi_clear_event(ACPI_EVENT_POWER_BUTTON); 284 285 /* 286 * Disable and clear GPE status before interrupt is enabled. Some GPEs 287 * (like wakeup GPE) haven't handler, this can avoid such GPE misfire. 288 * acpi_leave_sleep_state will reenable specific GPEs later 289 */ 290 acpi_disable_all_gpes(); 291 /* Allow EC transactions to happen. */ 292 acpi_ec_unblock_transactions_early(); 293 294 local_irq_restore(flags); 295 printk(KERN_DEBUG "Back to C!\n"); 296 297 /* restore processor state */ 298 if (acpi_state == ACPI_STATE_S3) 299 acpi_restore_state_mem(); 300 301 suspend_nvs_restore(); 302 303 return ACPI_SUCCESS(status) ? 0 : -EFAULT; 304 } 305 306 static int acpi_suspend_state_valid(suspend_state_t pm_state) 307 { 308 u32 acpi_state; 309 310 switch (pm_state) { 311 case PM_SUSPEND_ON: 312 case PM_SUSPEND_STANDBY: 313 case PM_SUSPEND_MEM: 314 acpi_state = acpi_suspend_states[pm_state]; 315 316 return sleep_states[acpi_state]; 317 default: 318 return 0; 319 } 320 } 321 322 static const struct platform_suspend_ops acpi_suspend_ops = { 323 .valid = acpi_suspend_state_valid, 324 .begin = acpi_suspend_begin, 325 .prepare_late = acpi_pm_prepare, 326 .enter = acpi_suspend_enter, 327 .wake = acpi_pm_finish, 328 .end = acpi_pm_end, 329 }; 330 331 /** 332 * acpi_suspend_begin_old - Set the target system sleep state to the 333 * state associated with given @pm_state, if supported, and 334 * execute the _PTS control method. This function is used if the 335 * pre-ACPI 2.0 suspend ordering has been requested. 336 */ 337 static int acpi_suspend_begin_old(suspend_state_t pm_state) 338 { 339 int error = acpi_suspend_begin(pm_state); 340 if (!error) 341 error = __acpi_pm_prepare(); 342 343 return error; 344 } 345 346 /* 347 * The following callbacks are used if the pre-ACPI 2.0 suspend ordering has 348 * been requested. 349 */ 350 static const struct platform_suspend_ops acpi_suspend_ops_old = { 351 .valid = acpi_suspend_state_valid, 352 .begin = acpi_suspend_begin_old, 353 .prepare_late = acpi_pm_pre_suspend, 354 .enter = acpi_suspend_enter, 355 .wake = acpi_pm_finish, 356 .end = acpi_pm_end, 357 .recover = acpi_pm_finish, 358 }; 359 360 static int __init init_old_suspend_ordering(const struct dmi_system_id *d) 361 { 362 old_suspend_ordering = true; 363 return 0; 364 } 365 366 static int __init init_nvs_nosave(const struct dmi_system_id *d) 367 { 368 acpi_nvs_nosave(); 369 return 0; 370 } 371 372 static struct dmi_system_id __initdata acpisleep_dmi_table[] = { 373 { 374 .callback = init_old_suspend_ordering, 375 .ident = "Abit KN9 (nForce4 variant)", 376 .matches = { 377 DMI_MATCH(DMI_BOARD_VENDOR, "http://www.abit.com.tw/"), 378 DMI_MATCH(DMI_BOARD_NAME, "KN9 Series(NF-CK804)"), 379 }, 380 }, 381 { 382 .callback = init_old_suspend_ordering, 383 .ident = "HP xw4600 Workstation", 384 .matches = { 385 DMI_MATCH(DMI_SYS_VENDOR, "Hewlett-Packard"), 386 DMI_MATCH(DMI_PRODUCT_NAME, "HP xw4600 Workstation"), 387 }, 388 }, 389 { 390 .callback = init_old_suspend_ordering, 391 .ident = "Asus Pundit P1-AH2 (M2N8L motherboard)", 392 .matches = { 393 DMI_MATCH(DMI_BOARD_VENDOR, "ASUSTek Computer INC."), 394 DMI_MATCH(DMI_BOARD_NAME, "M2N8L"), 395 }, 396 }, 397 { 398 .callback = init_old_suspend_ordering, 399 .ident = "Panasonic CF51-2L", 400 .matches = { 401 DMI_MATCH(DMI_BOARD_VENDOR, 402 "Matsushita Electric Industrial Co.,Ltd."), 403 DMI_MATCH(DMI_BOARD_NAME, "CF51-2L"), 404 }, 405 }, 406 { 407 .callback = init_nvs_nosave, 408 .ident = "Sony Vaio VGN-SR11M", 409 .matches = { 410 DMI_MATCH(DMI_SYS_VENDOR, "Sony Corporation"), 411 DMI_MATCH(DMI_PRODUCT_NAME, "VGN-SR11M"), 412 }, 413 }, 414 { 415 .callback = init_nvs_nosave, 416 .ident = "Everex StepNote Series", 417 .matches = { 418 DMI_MATCH(DMI_SYS_VENDOR, "Everex Systems, Inc."), 419 DMI_MATCH(DMI_PRODUCT_NAME, "Everex StepNote Series"), 420 }, 421 }, 422 { 423 .callback = init_nvs_nosave, 424 .ident = "Sony Vaio VPCEB1Z1E", 425 .matches = { 426 DMI_MATCH(DMI_SYS_VENDOR, "Sony Corporation"), 427 DMI_MATCH(DMI_PRODUCT_NAME, "VPCEB1Z1E"), 428 }, 429 }, 430 { 431 .callback = init_nvs_nosave, 432 .ident = "Sony Vaio VGN-NW130D", 433 .matches = { 434 DMI_MATCH(DMI_SYS_VENDOR, "Sony Corporation"), 435 DMI_MATCH(DMI_PRODUCT_NAME, "VGN-NW130D"), 436 }, 437 }, 438 { 439 .callback = init_nvs_nosave, 440 .ident = "Averatec AV1020-ED2", 441 .matches = { 442 DMI_MATCH(DMI_SYS_VENDOR, "AVERATEC"), 443 DMI_MATCH(DMI_PRODUCT_NAME, "1000 Series"), 444 }, 445 }, 446 {}, 447 }; 448 #endif /* CONFIG_SUSPEND */ 449 450 #ifdef CONFIG_HIBERNATION 451 static unsigned long s4_hardware_signature; 452 static struct acpi_table_facs *facs; 453 static bool nosigcheck; 454 455 void __init acpi_no_s4_hw_signature(void) 456 { 457 nosigcheck = true; 458 } 459 460 static int acpi_hibernation_begin(void) 461 { 462 int error; 463 464 error = nvs_nosave ? 0 : suspend_nvs_alloc(); 465 if (!error) { 466 acpi_target_sleep_state = ACPI_STATE_S4; 467 acpi_sleep_tts_switch(acpi_target_sleep_state); 468 } 469 470 return error; 471 } 472 473 static int acpi_hibernation_enter(void) 474 { 475 acpi_status status = AE_OK; 476 unsigned long flags = 0; 477 478 ACPI_FLUSH_CPU_CACHE(); 479 480 local_irq_save(flags); 481 /* This shouldn't return. If it returns, we have a problem */ 482 status = acpi_enter_sleep_state(ACPI_STATE_S4); 483 /* Reprogram control registers and execute _BFS */ 484 acpi_leave_sleep_state_prep(ACPI_STATE_S4); 485 local_irq_restore(flags); 486 487 return ACPI_SUCCESS(status) ? 0 : -EFAULT; 488 } 489 490 static void acpi_hibernation_leave(void) 491 { 492 /* 493 * If ACPI is not enabled by the BIOS and the boot kernel, we need to 494 * enable it here. 495 */ 496 acpi_enable(); 497 /* Reprogram control registers and execute _BFS */ 498 acpi_leave_sleep_state_prep(ACPI_STATE_S4); 499 /* Check the hardware signature */ 500 if (facs && s4_hardware_signature != facs->hardware_signature) { 501 printk(KERN_EMERG "ACPI: Hardware changed while hibernated, " 502 "cannot resume!\n"); 503 panic("ACPI S4 hardware signature mismatch"); 504 } 505 /* Restore the NVS memory area */ 506 suspend_nvs_restore(); 507 /* Allow EC transactions to happen. */ 508 acpi_ec_unblock_transactions_early(); 509 } 510 511 static void acpi_pm_thaw(void) 512 { 513 acpi_ec_unblock_transactions(); 514 acpi_enable_all_runtime_gpes(); 515 } 516 517 static const struct platform_hibernation_ops acpi_hibernation_ops = { 518 .begin = acpi_hibernation_begin, 519 .end = acpi_pm_end, 520 .pre_snapshot = acpi_pm_prepare, 521 .finish = acpi_pm_finish, 522 .prepare = acpi_pm_prepare, 523 .enter = acpi_hibernation_enter, 524 .leave = acpi_hibernation_leave, 525 .pre_restore = acpi_pm_freeze, 526 .restore_cleanup = acpi_pm_thaw, 527 }; 528 529 /** 530 * acpi_hibernation_begin_old - Set the target system sleep state to 531 * ACPI_STATE_S4 and execute the _PTS control method. This 532 * function is used if the pre-ACPI 2.0 suspend ordering has been 533 * requested. 534 */ 535 static int acpi_hibernation_begin_old(void) 536 { 537 int error; 538 /* 539 * The _TTS object should always be evaluated before the _PTS object. 540 * When the old_suspended_ordering is true, the _PTS object is 541 * evaluated in the acpi_sleep_prepare. 542 */ 543 acpi_sleep_tts_switch(ACPI_STATE_S4); 544 545 error = acpi_sleep_prepare(ACPI_STATE_S4); 546 547 if (!error) { 548 if (!nvs_nosave) 549 error = suspend_nvs_alloc(); 550 if (!error) 551 acpi_target_sleep_state = ACPI_STATE_S4; 552 } 553 return error; 554 } 555 556 /* 557 * The following callbacks are used if the pre-ACPI 2.0 suspend ordering has 558 * been requested. 559 */ 560 static const struct platform_hibernation_ops acpi_hibernation_ops_old = { 561 .begin = acpi_hibernation_begin_old, 562 .end = acpi_pm_end, 563 .pre_snapshot = acpi_pm_pre_suspend, 564 .prepare = acpi_pm_freeze, 565 .finish = acpi_pm_finish, 566 .enter = acpi_hibernation_enter, 567 .leave = acpi_hibernation_leave, 568 .pre_restore = acpi_pm_freeze, 569 .restore_cleanup = acpi_pm_thaw, 570 .recover = acpi_pm_finish, 571 }; 572 #endif /* CONFIG_HIBERNATION */ 573 574 int acpi_suspend(u32 acpi_state) 575 { 576 suspend_state_t states[] = { 577 [1] = PM_SUSPEND_STANDBY, 578 [3] = PM_SUSPEND_MEM, 579 [5] = PM_SUSPEND_MAX 580 }; 581 582 if (acpi_state < 6 && states[acpi_state]) 583 return pm_suspend(states[acpi_state]); 584 if (acpi_state == 4) 585 return hibernate(); 586 return -EINVAL; 587 } 588 589 #ifdef CONFIG_PM 590 /** 591 * acpi_pm_device_sleep_state - return preferred power state of ACPI device 592 * in the system sleep state given by %acpi_target_sleep_state 593 * @dev: device to examine; its driver model wakeup flags control 594 * whether it should be able to wake up the system 595 * @d_min_p: used to store the upper limit of allowed states range 596 * Return value: preferred power state of the device on success, -ENODEV on 597 * failure (ie. if there's no 'struct acpi_device' for @dev) 598 * 599 * Find the lowest power (highest number) ACPI device power state that 600 * device @dev can be in while the system is in the sleep state represented 601 * by %acpi_target_sleep_state. If @wake is nonzero, the device should be 602 * able to wake up the system from this sleep state. If @d_min_p is set, 603 * the highest power (lowest number) device power state of @dev allowed 604 * in this system sleep state is stored at the location pointed to by it. 605 * 606 * The caller must ensure that @dev is valid before using this function. 607 * The caller is also responsible for figuring out if the device is 608 * supposed to be able to wake up the system and passing this information 609 * via @wake. 610 */ 611 612 int acpi_pm_device_sleep_state(struct device *dev, int *d_min_p) 613 { 614 acpi_handle handle = DEVICE_ACPI_HANDLE(dev); 615 struct acpi_device *adev; 616 char acpi_method[] = "_SxD"; 617 unsigned long long d_min, d_max; 618 619 if (!handle || ACPI_FAILURE(acpi_bus_get_device(handle, &adev))) { 620 printk(KERN_DEBUG "ACPI handle has no context!\n"); 621 return -ENODEV; 622 } 623 624 acpi_method[2] = '0' + acpi_target_sleep_state; 625 /* 626 * If the sleep state is S0, we will return D3, but if the device has 627 * _S0W, we will use the value from _S0W 628 */ 629 d_min = ACPI_STATE_D0; 630 d_max = ACPI_STATE_D3; 631 632 /* 633 * If present, _SxD methods return the minimum D-state (highest power 634 * state) we can use for the corresponding S-states. Otherwise, the 635 * minimum D-state is D0 (ACPI 3.x). 636 * 637 * NOTE: We rely on acpi_evaluate_integer() not clobbering the integer 638 * provided -- that's our fault recovery, we ignore retval. 639 */ 640 if (acpi_target_sleep_state > ACPI_STATE_S0) 641 acpi_evaluate_integer(handle, acpi_method, NULL, &d_min); 642 643 /* 644 * If _PRW says we can wake up the system from the target sleep state, 645 * the D-state returned by _SxD is sufficient for that (we assume a 646 * wakeup-aware driver if wake is set). Still, if _SxW exists 647 * (ACPI 3.x), it should return the maximum (lowest power) D-state that 648 * can wake the system. _S0W may be valid, too. 649 */ 650 if (acpi_target_sleep_state == ACPI_STATE_S0 || 651 (device_may_wakeup(dev) && 652 adev->wakeup.sleep_state <= acpi_target_sleep_state)) { 653 acpi_status status; 654 655 acpi_method[3] = 'W'; 656 status = acpi_evaluate_integer(handle, acpi_method, NULL, 657 &d_max); 658 if (ACPI_FAILURE(status)) { 659 if (acpi_target_sleep_state != ACPI_STATE_S0 || 660 status != AE_NOT_FOUND) 661 d_max = d_min; 662 } else if (d_max < d_min) { 663 /* Warn the user of the broken DSDT */ 664 printk(KERN_WARNING "ACPI: Wrong value from %s\n", 665 acpi_method); 666 /* Sanitize it */ 667 d_min = d_max; 668 } 669 } 670 671 if (d_min_p) 672 *d_min_p = d_min; 673 return d_max; 674 } 675 #endif /* CONFIG_PM */ 676 677 #ifdef CONFIG_PM_SLEEP 678 /** 679 * acpi_pm_device_sleep_wake - enable or disable the system wake-up 680 * capability of given device 681 * @dev: device to handle 682 * @enable: 'true' - enable, 'false' - disable the wake-up capability 683 */ 684 int acpi_pm_device_sleep_wake(struct device *dev, bool enable) 685 { 686 acpi_handle handle; 687 struct acpi_device *adev; 688 int error; 689 690 if (!device_can_wakeup(dev)) 691 return -EINVAL; 692 693 handle = DEVICE_ACPI_HANDLE(dev); 694 if (!handle || ACPI_FAILURE(acpi_bus_get_device(handle, &adev))) { 695 dev_dbg(dev, "ACPI handle has no context in %s!\n", __func__); 696 return -ENODEV; 697 } 698 699 error = enable ? 700 acpi_enable_wakeup_device_power(adev, acpi_target_sleep_state) : 701 acpi_disable_wakeup_device_power(adev); 702 if (!error) 703 dev_info(dev, "wake-up capability %s by ACPI\n", 704 enable ? "enabled" : "disabled"); 705 706 return error; 707 } 708 #endif /* CONFIG_PM_SLEEP */ 709 710 static void acpi_power_off_prepare(void) 711 { 712 /* Prepare to power off the system */ 713 acpi_sleep_prepare(ACPI_STATE_S5); 714 acpi_disable_all_gpes(); 715 } 716 717 static void acpi_power_off(void) 718 { 719 /* acpi_sleep_prepare(ACPI_STATE_S5) should have already been called */ 720 printk(KERN_DEBUG "%s called\n", __func__); 721 local_irq_disable(); 722 acpi_enter_sleep_state(ACPI_STATE_S5); 723 } 724 725 /* 726 * ACPI 2.0 created the optional _GTS and _BFS, 727 * but industry adoption has been neither rapid nor broad. 728 * 729 * Linux gets into trouble when it executes poorly validated 730 * paths through the BIOS, so disable _GTS and _BFS by default, 731 * but do speak up and offer the option to enable them. 732 */ 733 static void __init acpi_gts_bfs_check(void) 734 { 735 acpi_handle dummy; 736 737 if (ACPI_SUCCESS(acpi_get_handle(ACPI_ROOT_OBJECT, METHOD_NAME__GTS, &dummy))) 738 { 739 printk(KERN_NOTICE PREFIX "BIOS offers _GTS\n"); 740 printk(KERN_NOTICE PREFIX "If \"acpi.gts=1\" improves suspend, " 741 "please notify linux-acpi@vger.kernel.org\n"); 742 } 743 if (ACPI_SUCCESS(acpi_get_handle(ACPI_ROOT_OBJECT, METHOD_NAME__BFS, &dummy))) 744 { 745 printk(KERN_NOTICE PREFIX "BIOS offers _BFS\n"); 746 printk(KERN_NOTICE PREFIX "If \"acpi.bfs=1\" improves resume, " 747 "please notify linux-acpi@vger.kernel.org\n"); 748 } 749 } 750 751 int __init acpi_sleep_init(void) 752 { 753 acpi_status status; 754 u8 type_a, type_b; 755 #ifdef CONFIG_SUSPEND 756 int i = 0; 757 758 dmi_check_system(acpisleep_dmi_table); 759 #endif 760 761 if (acpi_disabled) 762 return 0; 763 764 sleep_states[ACPI_STATE_S0] = 1; 765 printk(KERN_INFO PREFIX "(supports S0"); 766 767 #ifdef CONFIG_SUSPEND 768 for (i = ACPI_STATE_S1; i < ACPI_STATE_S4; i++) { 769 status = acpi_get_sleep_type_data(i, &type_a, &type_b); 770 if (ACPI_SUCCESS(status)) { 771 sleep_states[i] = 1; 772 printk(" S%d", i); 773 } 774 } 775 776 suspend_set_ops(old_suspend_ordering ? 777 &acpi_suspend_ops_old : &acpi_suspend_ops); 778 #endif 779 780 #ifdef CONFIG_HIBERNATION 781 status = acpi_get_sleep_type_data(ACPI_STATE_S4, &type_a, &type_b); 782 if (ACPI_SUCCESS(status)) { 783 hibernation_set_ops(old_suspend_ordering ? 784 &acpi_hibernation_ops_old : &acpi_hibernation_ops); 785 sleep_states[ACPI_STATE_S4] = 1; 786 printk(" S4"); 787 if (!nosigcheck) { 788 acpi_get_table(ACPI_SIG_FACS, 1, 789 (struct acpi_table_header **)&facs); 790 if (facs) 791 s4_hardware_signature = 792 facs->hardware_signature; 793 } 794 } 795 #endif 796 status = acpi_get_sleep_type_data(ACPI_STATE_S5, &type_a, &type_b); 797 if (ACPI_SUCCESS(status)) { 798 sleep_states[ACPI_STATE_S5] = 1; 799 printk(" S5"); 800 pm_power_off_prepare = acpi_power_off_prepare; 801 pm_power_off = acpi_power_off; 802 } 803 printk(")\n"); 804 /* 805 * Register the tts_notifier to reboot notifier list so that the _TTS 806 * object can also be evaluated when the system enters S5. 807 */ 808 register_reboot_notifier(&tts_notifier); 809 acpi_gts_bfs_check(); 810 return 0; 811 } 812