1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * kernel/power/hibernate.c - Hibernation (a.k.a suspend-to-disk) support. 4 * 5 * Copyright (c) 2003 Patrick Mochel 6 * Copyright (c) 2003 Open Source Development Lab 7 * Copyright (c) 2004 Pavel Machek <pavel@ucw.cz> 8 * Copyright (c) 2009 Rafael J. Wysocki, Novell Inc. 9 * Copyright (C) 2012 Bojan Smojver <bojan@rexursive.com> 10 */ 11 12 #define pr_fmt(fmt) "PM: hibernation: " fmt 13 14 #include <linux/blkdev.h> 15 #include <linux/export.h> 16 #include <linux/suspend.h> 17 #include <linux/reboot.h> 18 #include <linux/string.h> 19 #include <linux/device.h> 20 #include <linux/async.h> 21 #include <linux/delay.h> 22 #include <linux/fs.h> 23 #include <linux/mount.h> 24 #include <linux/pm.h> 25 #include <linux/nmi.h> 26 #include <linux/console.h> 27 #include <linux/cpu.h> 28 #include <linux/freezer.h> 29 #include <linux/gfp.h> 30 #include <linux/syscore_ops.h> 31 #include <linux/ctype.h> 32 #include <linux/ktime.h> 33 #include <linux/security.h> 34 #include <linux/secretmem.h> 35 #include <trace/events/power.h> 36 37 #include "power.h" 38 39 40 static int nocompress; 41 static int noresume; 42 static int nohibernate; 43 static int resume_wait; 44 static unsigned int resume_delay; 45 static char resume_file[256] = CONFIG_PM_STD_PARTITION; 46 dev_t swsusp_resume_device; 47 sector_t swsusp_resume_block; 48 __visible int in_suspend __nosavedata; 49 50 static const char *default_compressor = CONFIG_HIBERNATION_DEF_COMP; 51 52 /* 53 * Compression/decompression algorithm to be used while saving/loading 54 * image to/from disk. This would later be used in 'kernel/power/swap.c' 55 * to allocate comp streams. 56 */ 57 char hib_comp_algo[CRYPTO_MAX_ALG_NAME]; 58 59 enum { 60 HIBERNATION_INVALID, 61 HIBERNATION_PLATFORM, 62 HIBERNATION_SHUTDOWN, 63 HIBERNATION_REBOOT, 64 #ifdef CONFIG_SUSPEND 65 HIBERNATION_SUSPEND, 66 #endif 67 HIBERNATION_TEST_RESUME, 68 /* keep last */ 69 __HIBERNATION_AFTER_LAST 70 }; 71 #define HIBERNATION_MAX (__HIBERNATION_AFTER_LAST-1) 72 #define HIBERNATION_FIRST (HIBERNATION_INVALID + 1) 73 74 static int hibernation_mode = HIBERNATION_SHUTDOWN; 75 76 bool freezer_test_done; 77 78 static const struct platform_hibernation_ops *hibernation_ops; 79 80 static atomic_t hibernate_atomic = ATOMIC_INIT(1); 81 82 bool hibernate_acquire(void) 83 { 84 return atomic_add_unless(&hibernate_atomic, -1, 0); 85 } 86 87 void hibernate_release(void) 88 { 89 atomic_inc(&hibernate_atomic); 90 } 91 92 bool hibernation_available(void) 93 { 94 return nohibernate == 0 && 95 !security_locked_down(LOCKDOWN_HIBERNATION) && 96 !secretmem_active() && !cxl_mem_active(); 97 } 98 99 /** 100 * hibernation_set_ops - Set the global hibernate operations. 101 * @ops: Hibernation operations to use in subsequent hibernation transitions. 102 */ 103 void hibernation_set_ops(const struct platform_hibernation_ops *ops) 104 { 105 unsigned int sleep_flags; 106 107 if (ops && !(ops->begin && ops->end && ops->pre_snapshot 108 && ops->prepare && ops->finish && ops->enter && ops->pre_restore 109 && ops->restore_cleanup && ops->leave)) { 110 WARN_ON(1); 111 return; 112 } 113 114 sleep_flags = lock_system_sleep(); 115 116 hibernation_ops = ops; 117 if (ops) 118 hibernation_mode = HIBERNATION_PLATFORM; 119 else if (hibernation_mode == HIBERNATION_PLATFORM) 120 hibernation_mode = HIBERNATION_SHUTDOWN; 121 122 unlock_system_sleep(sleep_flags); 123 } 124 EXPORT_SYMBOL_GPL(hibernation_set_ops); 125 126 static bool entering_platform_hibernation; 127 128 bool system_entering_hibernation(void) 129 { 130 return entering_platform_hibernation; 131 } 132 EXPORT_SYMBOL(system_entering_hibernation); 133 134 #ifdef CONFIG_PM_DEBUG 135 static void hibernation_debug_sleep(void) 136 { 137 pr_info("debug: Waiting for 5 seconds.\n"); 138 mdelay(5000); 139 } 140 141 static int hibernation_test(int level) 142 { 143 if (pm_test_level == level) { 144 hibernation_debug_sleep(); 145 return 1; 146 } 147 return 0; 148 } 149 #else /* !CONFIG_PM_DEBUG */ 150 static int hibernation_test(int level) { return 0; } 151 #endif /* !CONFIG_PM_DEBUG */ 152 153 /** 154 * platform_begin - Call platform to start hibernation. 155 * @platform_mode: Whether or not to use the platform driver. 156 */ 157 static int platform_begin(int platform_mode) 158 { 159 return (platform_mode && hibernation_ops) ? 160 hibernation_ops->begin(PMSG_FREEZE) : 0; 161 } 162 163 /** 164 * platform_end - Call platform to finish transition to the working state. 165 * @platform_mode: Whether or not to use the platform driver. 166 */ 167 static void platform_end(int platform_mode) 168 { 169 if (platform_mode && hibernation_ops) 170 hibernation_ops->end(); 171 } 172 173 /** 174 * platform_pre_snapshot - Call platform to prepare the machine for hibernation. 175 * @platform_mode: Whether or not to use the platform driver. 176 * 177 * Use the platform driver to prepare the system for creating a hibernate image, 178 * if so configured, and return an error code if that fails. 179 */ 180 181 static int platform_pre_snapshot(int platform_mode) 182 { 183 return (platform_mode && hibernation_ops) ? 184 hibernation_ops->pre_snapshot() : 0; 185 } 186 187 /** 188 * platform_leave - Call platform to prepare a transition to the working state. 189 * @platform_mode: Whether or not to use the platform driver. 190 * 191 * Use the platform driver prepare to prepare the machine for switching to the 192 * normal mode of operation. 193 * 194 * This routine is called on one CPU with interrupts disabled. 195 */ 196 static void platform_leave(int platform_mode) 197 { 198 if (platform_mode && hibernation_ops) 199 hibernation_ops->leave(); 200 } 201 202 /** 203 * platform_finish - Call platform to switch the system to the working state. 204 * @platform_mode: Whether or not to use the platform driver. 205 * 206 * Use the platform driver to switch the machine to the normal mode of 207 * operation. 208 * 209 * This routine must be called after platform_prepare(). 210 */ 211 static void platform_finish(int platform_mode) 212 { 213 if (platform_mode && hibernation_ops) 214 hibernation_ops->finish(); 215 } 216 217 /** 218 * platform_pre_restore - Prepare for hibernate image restoration. 219 * @platform_mode: Whether or not to use the platform driver. 220 * 221 * Use the platform driver to prepare the system for resume from a hibernation 222 * image. 223 * 224 * If the restore fails after this function has been called, 225 * platform_restore_cleanup() must be called. 226 */ 227 static int platform_pre_restore(int platform_mode) 228 { 229 return (platform_mode && hibernation_ops) ? 230 hibernation_ops->pre_restore() : 0; 231 } 232 233 /** 234 * platform_restore_cleanup - Switch to the working state after failing restore. 235 * @platform_mode: Whether or not to use the platform driver. 236 * 237 * Use the platform driver to switch the system to the normal mode of operation 238 * after a failing restore. 239 * 240 * If platform_pre_restore() has been called before the failing restore, this 241 * function must be called too, regardless of the result of 242 * platform_pre_restore(). 243 */ 244 static void platform_restore_cleanup(int platform_mode) 245 { 246 if (platform_mode && hibernation_ops) 247 hibernation_ops->restore_cleanup(); 248 } 249 250 /** 251 * platform_recover - Recover from a failure to suspend devices. 252 * @platform_mode: Whether or not to use the platform driver. 253 */ 254 static void platform_recover(int platform_mode) 255 { 256 if (platform_mode && hibernation_ops && hibernation_ops->recover) 257 hibernation_ops->recover(); 258 } 259 260 /** 261 * swsusp_show_speed - Print time elapsed between two events during hibernation. 262 * @start: Starting event. 263 * @stop: Final event. 264 * @nr_pages: Number of memory pages processed between @start and @stop. 265 * @msg: Additional diagnostic message to print. 266 */ 267 void swsusp_show_speed(ktime_t start, ktime_t stop, 268 unsigned nr_pages, char *msg) 269 { 270 ktime_t diff; 271 u64 elapsed_centisecs64; 272 unsigned int centisecs; 273 unsigned int k; 274 unsigned int kps; 275 276 diff = ktime_sub(stop, start); 277 elapsed_centisecs64 = ktime_divns(diff, 10*NSEC_PER_MSEC); 278 centisecs = elapsed_centisecs64; 279 if (centisecs == 0) 280 centisecs = 1; /* avoid div-by-zero */ 281 k = nr_pages * (PAGE_SIZE / 1024); 282 kps = (k * 100) / centisecs; 283 pr_info("%s %u kbytes in %u.%02u seconds (%u.%02u MB/s)\n", 284 msg, k, centisecs / 100, centisecs % 100, kps / 1000, 285 (kps % 1000) / 10); 286 } 287 288 __weak int arch_resume_nosmt(void) 289 { 290 return 0; 291 } 292 293 /** 294 * create_image - Create a hibernation image. 295 * @platform_mode: Whether or not to use the platform driver. 296 * 297 * Execute device drivers' "late" and "noirq" freeze callbacks, create a 298 * hibernation image and run the drivers' "noirq" and "early" thaw callbacks. 299 * 300 * Control reappears in this routine after the subsequent restore. 301 */ 302 static int create_image(int platform_mode) 303 { 304 int error; 305 306 error = dpm_suspend_end(PMSG_FREEZE); 307 if (error) { 308 pr_err("Some devices failed to power down, aborting\n"); 309 return error; 310 } 311 312 error = platform_pre_snapshot(platform_mode); 313 if (error || hibernation_test(TEST_PLATFORM)) 314 goto Platform_finish; 315 316 error = pm_sleep_disable_secondary_cpus(); 317 if (error || hibernation_test(TEST_CPUS)) 318 goto Enable_cpus; 319 320 local_irq_disable(); 321 322 system_state = SYSTEM_SUSPEND; 323 324 error = syscore_suspend(); 325 if (error) { 326 pr_err("Some system devices failed to power down, aborting\n"); 327 goto Enable_irqs; 328 } 329 330 if (hibernation_test(TEST_CORE) || pm_wakeup_pending()) 331 goto Power_up; 332 333 in_suspend = 1; 334 save_processor_state(); 335 trace_suspend_resume(TPS("machine_suspend"), PM_EVENT_HIBERNATE, true); 336 error = swsusp_arch_suspend(); 337 /* Restore control flow magically appears here */ 338 restore_processor_state(); 339 trace_suspend_resume(TPS("machine_suspend"), PM_EVENT_HIBERNATE, false); 340 if (error) 341 pr_err("Error %d creating image\n", error); 342 343 if (!in_suspend) { 344 events_check_enabled = false; 345 clear_or_poison_free_pages(); 346 } 347 348 platform_leave(platform_mode); 349 350 Power_up: 351 syscore_resume(); 352 353 Enable_irqs: 354 system_state = SYSTEM_RUNNING; 355 local_irq_enable(); 356 357 Enable_cpus: 358 pm_sleep_enable_secondary_cpus(); 359 360 /* Allow architectures to do nosmt-specific post-resume dances */ 361 if (!in_suspend) 362 error = arch_resume_nosmt(); 363 364 Platform_finish: 365 platform_finish(platform_mode); 366 367 dpm_resume_start(in_suspend ? 368 (error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE); 369 370 return error; 371 } 372 373 /** 374 * hibernation_snapshot - Quiesce devices and create a hibernation image. 375 * @platform_mode: If set, use platform driver to prepare for the transition. 376 * 377 * This routine must be called with system_transition_mutex held. 378 */ 379 int hibernation_snapshot(int platform_mode) 380 { 381 pm_message_t msg; 382 int error; 383 384 pm_suspend_clear_flags(); 385 error = platform_begin(platform_mode); 386 if (error) 387 goto Close; 388 389 /* Preallocate image memory before shutting down devices. */ 390 error = hibernate_preallocate_memory(); 391 if (error) 392 goto Close; 393 394 error = freeze_kernel_threads(); 395 if (error) 396 goto Cleanup; 397 398 if (hibernation_test(TEST_FREEZER)) { 399 400 /* 401 * Indicate to the caller that we are returning due to a 402 * successful freezer test. 403 */ 404 freezer_test_done = true; 405 goto Thaw; 406 } 407 408 error = dpm_prepare(PMSG_FREEZE); 409 if (error) { 410 dpm_complete(PMSG_RECOVER); 411 goto Thaw; 412 } 413 414 suspend_console(); 415 pm_restrict_gfp_mask(); 416 417 error = dpm_suspend(PMSG_FREEZE); 418 419 if (error || hibernation_test(TEST_DEVICES)) 420 platform_recover(platform_mode); 421 else 422 error = create_image(platform_mode); 423 424 /* 425 * In the case that we call create_image() above, the control 426 * returns here (1) after the image has been created or the 427 * image creation has failed and (2) after a successful restore. 428 */ 429 430 /* We may need to release the preallocated image pages here. */ 431 if (error || !in_suspend) 432 swsusp_free(); 433 434 msg = in_suspend ? (error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE; 435 dpm_resume(msg); 436 437 if (error || !in_suspend) 438 pm_restore_gfp_mask(); 439 440 resume_console(); 441 dpm_complete(msg); 442 443 Close: 444 platform_end(platform_mode); 445 return error; 446 447 Thaw: 448 thaw_kernel_threads(); 449 Cleanup: 450 swsusp_free(); 451 goto Close; 452 } 453 454 int __weak hibernate_resume_nonboot_cpu_disable(void) 455 { 456 return suspend_disable_secondary_cpus(); 457 } 458 459 /** 460 * resume_target_kernel - Restore system state from a hibernation image. 461 * @platform_mode: Whether or not to use the platform driver. 462 * 463 * Execute device drivers' "noirq" and "late" freeze callbacks, restore the 464 * contents of highmem that have not been restored yet from the image and run 465 * the low-level code that will restore the remaining contents of memory and 466 * switch to the just restored target kernel. 467 */ 468 static int resume_target_kernel(bool platform_mode) 469 { 470 int error; 471 472 error = dpm_suspend_end(PMSG_QUIESCE); 473 if (error) { 474 pr_err("Some devices failed to power down, aborting resume\n"); 475 return error; 476 } 477 478 error = platform_pre_restore(platform_mode); 479 if (error) 480 goto Cleanup; 481 482 cpuidle_pause(); 483 484 error = hibernate_resume_nonboot_cpu_disable(); 485 if (error) 486 goto Enable_cpus; 487 488 local_irq_disable(); 489 system_state = SYSTEM_SUSPEND; 490 491 error = syscore_suspend(); 492 if (error) 493 goto Enable_irqs; 494 495 save_processor_state(); 496 error = restore_highmem(); 497 if (!error) { 498 error = swsusp_arch_resume(); 499 /* 500 * The code below is only ever reached in case of a failure. 501 * Otherwise, execution continues at the place where 502 * swsusp_arch_suspend() was called. 503 */ 504 BUG_ON(!error); 505 /* 506 * This call to restore_highmem() reverts the changes made by 507 * the previous one. 508 */ 509 restore_highmem(); 510 } 511 /* 512 * The only reason why swsusp_arch_resume() can fail is memory being 513 * very tight, so we have to free it as soon as we can to avoid 514 * subsequent failures. 515 */ 516 swsusp_free(); 517 restore_processor_state(); 518 touch_softlockup_watchdog(); 519 520 syscore_resume(); 521 522 Enable_irqs: 523 system_state = SYSTEM_RUNNING; 524 local_irq_enable(); 525 526 Enable_cpus: 527 pm_sleep_enable_secondary_cpus(); 528 529 Cleanup: 530 platform_restore_cleanup(platform_mode); 531 532 dpm_resume_start(PMSG_RECOVER); 533 534 return error; 535 } 536 537 /** 538 * hibernation_restore - Quiesce devices and restore from a hibernation image. 539 * @platform_mode: If set, use platform driver to prepare for the transition. 540 * 541 * This routine must be called with system_transition_mutex held. If it is 542 * successful, control reappears in the restored target kernel in 543 * hibernation_snapshot(). 544 */ 545 int hibernation_restore(int platform_mode) 546 { 547 int error; 548 549 pm_prepare_console(); 550 suspend_console(); 551 pm_restrict_gfp_mask(); 552 error = dpm_suspend_start(PMSG_QUIESCE); 553 if (!error) { 554 error = resume_target_kernel(platform_mode); 555 /* 556 * The above should either succeed and jump to the new kernel, 557 * or return with an error. Otherwise things are just 558 * undefined, so let's be paranoid. 559 */ 560 BUG_ON(!error); 561 } 562 dpm_resume_end(PMSG_RECOVER); 563 pm_restore_gfp_mask(); 564 resume_console(); 565 pm_restore_console(); 566 return error; 567 } 568 569 /** 570 * hibernation_platform_enter - Power off the system using the platform driver. 571 */ 572 int hibernation_platform_enter(void) 573 { 574 int error; 575 576 if (!hibernation_ops) 577 return -ENOSYS; 578 579 /* 580 * We have cancelled the power transition by running 581 * hibernation_ops->finish() before saving the image, so we should let 582 * the firmware know that we're going to enter the sleep state after all 583 */ 584 error = hibernation_ops->begin(PMSG_HIBERNATE); 585 if (error) 586 goto Close; 587 588 entering_platform_hibernation = true; 589 suspend_console(); 590 error = dpm_suspend_start(PMSG_HIBERNATE); 591 if (error) { 592 if (hibernation_ops->recover) 593 hibernation_ops->recover(); 594 goto Resume_devices; 595 } 596 597 error = dpm_suspend_end(PMSG_HIBERNATE); 598 if (error) 599 goto Resume_devices; 600 601 error = hibernation_ops->prepare(); 602 if (error) 603 goto Platform_finish; 604 605 error = pm_sleep_disable_secondary_cpus(); 606 if (error) 607 goto Enable_cpus; 608 609 local_irq_disable(); 610 system_state = SYSTEM_SUSPEND; 611 syscore_suspend(); 612 if (pm_wakeup_pending()) { 613 error = -EAGAIN; 614 goto Power_up; 615 } 616 617 hibernation_ops->enter(); 618 /* We should never get here */ 619 while (1); 620 621 Power_up: 622 syscore_resume(); 623 system_state = SYSTEM_RUNNING; 624 local_irq_enable(); 625 626 Enable_cpus: 627 pm_sleep_enable_secondary_cpus(); 628 629 Platform_finish: 630 hibernation_ops->finish(); 631 632 dpm_resume_start(PMSG_RESTORE); 633 634 Resume_devices: 635 entering_platform_hibernation = false; 636 dpm_resume_end(PMSG_RESTORE); 637 resume_console(); 638 639 Close: 640 hibernation_ops->end(); 641 642 return error; 643 } 644 645 /** 646 * power_down - Shut the machine down for hibernation. 647 * 648 * Use the platform driver, if configured, to put the system into the sleep 649 * state corresponding to hibernation, or try to power it off or reboot, 650 * depending on the value of hibernation_mode. 651 */ 652 static void power_down(void) 653 { 654 int error; 655 656 #ifdef CONFIG_SUSPEND 657 if (hibernation_mode == HIBERNATION_SUSPEND) { 658 error = suspend_devices_and_enter(mem_sleep_current); 659 if (error) { 660 hibernation_mode = hibernation_ops ? 661 HIBERNATION_PLATFORM : 662 HIBERNATION_SHUTDOWN; 663 } else { 664 /* Restore swap signature. */ 665 error = swsusp_unmark(); 666 if (error) 667 pr_err("Swap will be unusable! Try swapon -a.\n"); 668 669 return; 670 } 671 } 672 #endif 673 674 switch (hibernation_mode) { 675 case HIBERNATION_REBOOT: 676 kernel_restart(NULL); 677 break; 678 case HIBERNATION_PLATFORM: 679 error = hibernation_platform_enter(); 680 if (error == -EAGAIN || error == -EBUSY) { 681 swsusp_unmark(); 682 events_check_enabled = false; 683 pr_info("Wakeup event detected during hibernation, rolling back.\n"); 684 return; 685 } 686 fallthrough; 687 case HIBERNATION_SHUTDOWN: 688 if (kernel_can_power_off()) 689 kernel_power_off(); 690 break; 691 } 692 kernel_halt(); 693 /* 694 * Valid image is on the disk, if we continue we risk serious data 695 * corruption after resume. 696 */ 697 pr_crit("Power down manually\n"); 698 while (1) 699 cpu_relax(); 700 } 701 702 static int load_image_and_restore(void) 703 { 704 int error; 705 unsigned int flags; 706 707 pm_pr_dbg("Loading hibernation image.\n"); 708 709 lock_device_hotplug(); 710 error = create_basic_memory_bitmaps(); 711 if (error) { 712 swsusp_close(); 713 goto Unlock; 714 } 715 716 error = swsusp_read(&flags); 717 swsusp_close(); 718 if (!error) 719 error = hibernation_restore(flags & SF_PLATFORM_MODE); 720 721 pr_err("Failed to load image, recovering.\n"); 722 swsusp_free(); 723 free_basic_memory_bitmaps(); 724 Unlock: 725 unlock_device_hotplug(); 726 727 return error; 728 } 729 730 /** 731 * hibernate - Carry out system hibernation, including saving the image. 732 */ 733 int hibernate(void) 734 { 735 bool snapshot_test = false; 736 unsigned int sleep_flags; 737 int error; 738 739 if (!hibernation_available()) { 740 pm_pr_dbg("Hibernation not available.\n"); 741 return -EPERM; 742 } 743 744 /* 745 * Query for the compression algorithm support if compression is enabled. 746 */ 747 if (!nocompress) { 748 strscpy(hib_comp_algo, default_compressor, sizeof(hib_comp_algo)); 749 if (crypto_has_comp(hib_comp_algo, 0, 0) != 1) { 750 pr_err("%s compression is not available\n", hib_comp_algo); 751 return -EOPNOTSUPP; 752 } 753 } 754 755 sleep_flags = lock_system_sleep(); 756 /* The snapshot device should not be opened while we're running */ 757 if (!hibernate_acquire()) { 758 error = -EBUSY; 759 goto Unlock; 760 } 761 762 pr_info("hibernation entry\n"); 763 pm_prepare_console(); 764 error = pm_notifier_call_chain_robust(PM_HIBERNATION_PREPARE, PM_POST_HIBERNATION); 765 if (error) 766 goto Restore; 767 768 ksys_sync_helper(); 769 770 error = freeze_processes(); 771 if (error) 772 goto Exit; 773 774 lock_device_hotplug(); 775 /* Allocate memory management structures */ 776 error = create_basic_memory_bitmaps(); 777 if (error) 778 goto Thaw; 779 780 error = hibernation_snapshot(hibernation_mode == HIBERNATION_PLATFORM); 781 if (error || freezer_test_done) 782 goto Free_bitmaps; 783 784 if (in_suspend) { 785 unsigned int flags = 0; 786 787 if (hibernation_mode == HIBERNATION_PLATFORM) 788 flags |= SF_PLATFORM_MODE; 789 if (nocompress) 790 flags |= SF_NOCOMPRESS_MODE; 791 else 792 flags |= SF_CRC32_MODE; 793 794 pm_pr_dbg("Writing hibernation image.\n"); 795 error = swsusp_write(flags); 796 swsusp_free(); 797 if (!error) { 798 if (hibernation_mode == HIBERNATION_TEST_RESUME) 799 snapshot_test = true; 800 else 801 power_down(); 802 } 803 in_suspend = 0; 804 pm_restore_gfp_mask(); 805 } else { 806 pm_pr_dbg("Hibernation image restored successfully.\n"); 807 } 808 809 Free_bitmaps: 810 free_basic_memory_bitmaps(); 811 Thaw: 812 unlock_device_hotplug(); 813 if (snapshot_test) { 814 pm_pr_dbg("Checking hibernation image\n"); 815 error = swsusp_check(false); 816 if (!error) 817 error = load_image_and_restore(); 818 } 819 thaw_processes(); 820 821 /* Don't bother checking whether freezer_test_done is true */ 822 freezer_test_done = false; 823 Exit: 824 pm_notifier_call_chain(PM_POST_HIBERNATION); 825 Restore: 826 pm_restore_console(); 827 hibernate_release(); 828 Unlock: 829 unlock_system_sleep(sleep_flags); 830 pr_info("hibernation exit\n"); 831 832 return error; 833 } 834 835 /** 836 * hibernate_quiet_exec - Execute a function with all devices frozen. 837 * @func: Function to execute. 838 * @data: Data pointer to pass to @func. 839 * 840 * Return the @func return value or an error code if it cannot be executed. 841 */ 842 int hibernate_quiet_exec(int (*func)(void *data), void *data) 843 { 844 unsigned int sleep_flags; 845 int error; 846 847 sleep_flags = lock_system_sleep(); 848 849 if (!hibernate_acquire()) { 850 error = -EBUSY; 851 goto unlock; 852 } 853 854 pm_prepare_console(); 855 856 error = pm_notifier_call_chain_robust(PM_HIBERNATION_PREPARE, PM_POST_HIBERNATION); 857 if (error) 858 goto restore; 859 860 error = freeze_processes(); 861 if (error) 862 goto exit; 863 864 lock_device_hotplug(); 865 866 pm_suspend_clear_flags(); 867 868 error = platform_begin(true); 869 if (error) 870 goto thaw; 871 872 error = freeze_kernel_threads(); 873 if (error) 874 goto thaw; 875 876 error = dpm_prepare(PMSG_FREEZE); 877 if (error) 878 goto dpm_complete; 879 880 suspend_console(); 881 882 error = dpm_suspend(PMSG_FREEZE); 883 if (error) 884 goto dpm_resume; 885 886 error = dpm_suspend_end(PMSG_FREEZE); 887 if (error) 888 goto dpm_resume; 889 890 error = platform_pre_snapshot(true); 891 if (error) 892 goto skip; 893 894 error = func(data); 895 896 skip: 897 platform_finish(true); 898 899 dpm_resume_start(PMSG_THAW); 900 901 dpm_resume: 902 dpm_resume(PMSG_THAW); 903 904 resume_console(); 905 906 dpm_complete: 907 dpm_complete(PMSG_THAW); 908 909 thaw_kernel_threads(); 910 911 thaw: 912 platform_end(true); 913 914 unlock_device_hotplug(); 915 916 thaw_processes(); 917 918 exit: 919 pm_notifier_call_chain(PM_POST_HIBERNATION); 920 921 restore: 922 pm_restore_console(); 923 924 hibernate_release(); 925 926 unlock: 927 unlock_system_sleep(sleep_flags); 928 929 return error; 930 } 931 EXPORT_SYMBOL_GPL(hibernate_quiet_exec); 932 933 static int __init find_resume_device(void) 934 { 935 if (!strlen(resume_file)) 936 return -ENOENT; 937 938 pm_pr_dbg("Checking hibernation image partition %s\n", resume_file); 939 940 if (resume_delay) { 941 pr_info("Waiting %dsec before reading resume device ...\n", 942 resume_delay); 943 ssleep(resume_delay); 944 } 945 946 /* Check if the device is there */ 947 if (!early_lookup_bdev(resume_file, &swsusp_resume_device)) 948 return 0; 949 950 /* 951 * Some device discovery might still be in progress; we need to wait for 952 * this to finish. 953 */ 954 wait_for_device_probe(); 955 if (resume_wait) { 956 while (early_lookup_bdev(resume_file, &swsusp_resume_device)) 957 msleep(10); 958 async_synchronize_full(); 959 } 960 961 return early_lookup_bdev(resume_file, &swsusp_resume_device); 962 } 963 964 static int software_resume(void) 965 { 966 int error; 967 968 pm_pr_dbg("Hibernation image partition %d:%d present\n", 969 MAJOR(swsusp_resume_device), MINOR(swsusp_resume_device)); 970 971 pm_pr_dbg("Looking for hibernation image.\n"); 972 973 mutex_lock(&system_transition_mutex); 974 error = swsusp_check(true); 975 if (error) 976 goto Unlock; 977 978 /* 979 * Check if the hibernation image is compressed. If so, query for 980 * the algorithm support. 981 */ 982 if (!(swsusp_header_flags & SF_NOCOMPRESS_MODE)) { 983 strscpy(hib_comp_algo, default_compressor, sizeof(hib_comp_algo)); 984 if (crypto_has_comp(hib_comp_algo, 0, 0) != 1) { 985 pr_err("%s compression is not available\n", hib_comp_algo); 986 error = -EOPNOTSUPP; 987 goto Unlock; 988 } 989 } 990 991 /* The snapshot device should not be opened while we're running */ 992 if (!hibernate_acquire()) { 993 error = -EBUSY; 994 swsusp_close(); 995 goto Unlock; 996 } 997 998 pr_info("resume from hibernation\n"); 999 pm_prepare_console(); 1000 error = pm_notifier_call_chain_robust(PM_RESTORE_PREPARE, PM_POST_RESTORE); 1001 if (error) 1002 goto Restore; 1003 1004 pm_pr_dbg("Preparing processes for hibernation restore.\n"); 1005 error = freeze_processes(); 1006 if (error) 1007 goto Close_Finish; 1008 1009 error = freeze_kernel_threads(); 1010 if (error) { 1011 thaw_processes(); 1012 goto Close_Finish; 1013 } 1014 1015 error = load_image_and_restore(); 1016 thaw_processes(); 1017 Finish: 1018 pm_notifier_call_chain(PM_POST_RESTORE); 1019 Restore: 1020 pm_restore_console(); 1021 pr_info("resume failed (%d)\n", error); 1022 hibernate_release(); 1023 /* For success case, the suspend path will release the lock */ 1024 Unlock: 1025 mutex_unlock(&system_transition_mutex); 1026 pm_pr_dbg("Hibernation image not present or could not be loaded.\n"); 1027 return error; 1028 Close_Finish: 1029 swsusp_close(); 1030 goto Finish; 1031 } 1032 1033 /** 1034 * software_resume_initcall - Resume from a saved hibernation image. 1035 * 1036 * This routine is called as a late initcall, when all devices have been 1037 * discovered and initialized already. 1038 * 1039 * The image reading code is called to see if there is a hibernation image 1040 * available for reading. If that is the case, devices are quiesced and the 1041 * contents of memory is restored from the saved image. 1042 * 1043 * If this is successful, control reappears in the restored target kernel in 1044 * hibernation_snapshot() which returns to hibernate(). Otherwise, the routine 1045 * attempts to recover gracefully and make the kernel return to the normal mode 1046 * of operation. 1047 */ 1048 static int __init software_resume_initcall(void) 1049 { 1050 /* 1051 * If the user said "noresume".. bail out early. 1052 */ 1053 if (noresume || !hibernation_available()) 1054 return 0; 1055 1056 if (!swsusp_resume_device) { 1057 int error = find_resume_device(); 1058 1059 if (error) 1060 return error; 1061 } 1062 1063 return software_resume(); 1064 } 1065 late_initcall_sync(software_resume_initcall); 1066 1067 1068 static const char * const hibernation_modes[] = { 1069 [HIBERNATION_PLATFORM] = "platform", 1070 [HIBERNATION_SHUTDOWN] = "shutdown", 1071 [HIBERNATION_REBOOT] = "reboot", 1072 #ifdef CONFIG_SUSPEND 1073 [HIBERNATION_SUSPEND] = "suspend", 1074 #endif 1075 [HIBERNATION_TEST_RESUME] = "test_resume", 1076 }; 1077 1078 /* 1079 * /sys/power/disk - Control hibernation mode. 1080 * 1081 * Hibernation can be handled in several ways. There are a few different ways 1082 * to put the system into the sleep state: using the platform driver (e.g. ACPI 1083 * or other hibernation_ops), powering it off or rebooting it (for testing 1084 * mostly). 1085 * 1086 * The sysfs file /sys/power/disk provides an interface for selecting the 1087 * hibernation mode to use. Reading from this file causes the available modes 1088 * to be printed. There are 3 modes that can be supported: 1089 * 1090 * 'platform' 1091 * 'shutdown' 1092 * 'reboot' 1093 * 1094 * If a platform hibernation driver is in use, 'platform' will be supported 1095 * and will be used by default. Otherwise, 'shutdown' will be used by default. 1096 * The selected option (i.e. the one corresponding to the current value of 1097 * hibernation_mode) is enclosed by a square bracket. 1098 * 1099 * To select a given hibernation mode it is necessary to write the mode's 1100 * string representation (as returned by reading from /sys/power/disk) back 1101 * into /sys/power/disk. 1102 */ 1103 1104 static ssize_t disk_show(struct kobject *kobj, struct kobj_attribute *attr, 1105 char *buf) 1106 { 1107 int i; 1108 char *start = buf; 1109 1110 if (!hibernation_available()) 1111 return sprintf(buf, "[disabled]\n"); 1112 1113 for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) { 1114 if (!hibernation_modes[i]) 1115 continue; 1116 switch (i) { 1117 case HIBERNATION_SHUTDOWN: 1118 case HIBERNATION_REBOOT: 1119 #ifdef CONFIG_SUSPEND 1120 case HIBERNATION_SUSPEND: 1121 #endif 1122 case HIBERNATION_TEST_RESUME: 1123 break; 1124 case HIBERNATION_PLATFORM: 1125 if (hibernation_ops) 1126 break; 1127 /* not a valid mode, continue with loop */ 1128 continue; 1129 } 1130 if (i == hibernation_mode) 1131 buf += sprintf(buf, "[%s] ", hibernation_modes[i]); 1132 else 1133 buf += sprintf(buf, "%s ", hibernation_modes[i]); 1134 } 1135 buf += sprintf(buf, "\n"); 1136 return buf-start; 1137 } 1138 1139 static ssize_t disk_store(struct kobject *kobj, struct kobj_attribute *attr, 1140 const char *buf, size_t n) 1141 { 1142 int mode = HIBERNATION_INVALID; 1143 unsigned int sleep_flags; 1144 int error = 0; 1145 int len; 1146 char *p; 1147 int i; 1148 1149 if (!hibernation_available()) 1150 return -EPERM; 1151 1152 p = memchr(buf, '\n', n); 1153 len = p ? p - buf : n; 1154 1155 sleep_flags = lock_system_sleep(); 1156 for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) { 1157 if (len == strlen(hibernation_modes[i]) 1158 && !strncmp(buf, hibernation_modes[i], len)) { 1159 mode = i; 1160 break; 1161 } 1162 } 1163 if (mode != HIBERNATION_INVALID) { 1164 switch (mode) { 1165 case HIBERNATION_SHUTDOWN: 1166 case HIBERNATION_REBOOT: 1167 #ifdef CONFIG_SUSPEND 1168 case HIBERNATION_SUSPEND: 1169 #endif 1170 case HIBERNATION_TEST_RESUME: 1171 hibernation_mode = mode; 1172 break; 1173 case HIBERNATION_PLATFORM: 1174 if (hibernation_ops) 1175 hibernation_mode = mode; 1176 else 1177 error = -EINVAL; 1178 } 1179 } else 1180 error = -EINVAL; 1181 1182 if (!error) 1183 pm_pr_dbg("Hibernation mode set to '%s'\n", 1184 hibernation_modes[mode]); 1185 unlock_system_sleep(sleep_flags); 1186 return error ? error : n; 1187 } 1188 1189 power_attr(disk); 1190 1191 static ssize_t resume_show(struct kobject *kobj, struct kobj_attribute *attr, 1192 char *buf) 1193 { 1194 return sprintf(buf, "%d:%d\n", MAJOR(swsusp_resume_device), 1195 MINOR(swsusp_resume_device)); 1196 } 1197 1198 static ssize_t resume_store(struct kobject *kobj, struct kobj_attribute *attr, 1199 const char *buf, size_t n) 1200 { 1201 unsigned int sleep_flags; 1202 int len = n; 1203 char *name; 1204 dev_t dev; 1205 int error; 1206 1207 if (!hibernation_available()) 1208 return n; 1209 1210 if (len && buf[len-1] == '\n') 1211 len--; 1212 name = kstrndup(buf, len, GFP_KERNEL); 1213 if (!name) 1214 return -ENOMEM; 1215 1216 error = lookup_bdev(name, &dev); 1217 if (error) { 1218 unsigned maj, min, offset; 1219 char *p, dummy; 1220 1221 error = 0; 1222 if (sscanf(name, "%u:%u%c", &maj, &min, &dummy) == 2 || 1223 sscanf(name, "%u:%u:%u:%c", &maj, &min, &offset, 1224 &dummy) == 3) { 1225 dev = MKDEV(maj, min); 1226 if (maj != MAJOR(dev) || min != MINOR(dev)) 1227 error = -EINVAL; 1228 } else { 1229 dev = new_decode_dev(simple_strtoul(name, &p, 16)); 1230 if (*p) 1231 error = -EINVAL; 1232 } 1233 } 1234 kfree(name); 1235 if (error) 1236 return error; 1237 1238 sleep_flags = lock_system_sleep(); 1239 swsusp_resume_device = dev; 1240 unlock_system_sleep(sleep_flags); 1241 1242 pm_pr_dbg("Configured hibernation resume from disk to %u\n", 1243 swsusp_resume_device); 1244 noresume = 0; 1245 software_resume(); 1246 return n; 1247 } 1248 1249 power_attr(resume); 1250 1251 static ssize_t resume_offset_show(struct kobject *kobj, 1252 struct kobj_attribute *attr, char *buf) 1253 { 1254 return sprintf(buf, "%llu\n", (unsigned long long)swsusp_resume_block); 1255 } 1256 1257 static ssize_t resume_offset_store(struct kobject *kobj, 1258 struct kobj_attribute *attr, const char *buf, 1259 size_t n) 1260 { 1261 unsigned long long offset; 1262 int rc; 1263 1264 rc = kstrtoull(buf, 0, &offset); 1265 if (rc) 1266 return rc; 1267 swsusp_resume_block = offset; 1268 1269 return n; 1270 } 1271 1272 power_attr(resume_offset); 1273 1274 static ssize_t image_size_show(struct kobject *kobj, struct kobj_attribute *attr, 1275 char *buf) 1276 { 1277 return sprintf(buf, "%lu\n", image_size); 1278 } 1279 1280 static ssize_t image_size_store(struct kobject *kobj, struct kobj_attribute *attr, 1281 const char *buf, size_t n) 1282 { 1283 unsigned long size; 1284 1285 if (sscanf(buf, "%lu", &size) == 1) { 1286 image_size = size; 1287 return n; 1288 } 1289 1290 return -EINVAL; 1291 } 1292 1293 power_attr(image_size); 1294 1295 static ssize_t reserved_size_show(struct kobject *kobj, 1296 struct kobj_attribute *attr, char *buf) 1297 { 1298 return sprintf(buf, "%lu\n", reserved_size); 1299 } 1300 1301 static ssize_t reserved_size_store(struct kobject *kobj, 1302 struct kobj_attribute *attr, 1303 const char *buf, size_t n) 1304 { 1305 unsigned long size; 1306 1307 if (sscanf(buf, "%lu", &size) == 1) { 1308 reserved_size = size; 1309 return n; 1310 } 1311 1312 return -EINVAL; 1313 } 1314 1315 power_attr(reserved_size); 1316 1317 static struct attribute *g[] = { 1318 &disk_attr.attr, 1319 &resume_offset_attr.attr, 1320 &resume_attr.attr, 1321 &image_size_attr.attr, 1322 &reserved_size_attr.attr, 1323 NULL, 1324 }; 1325 1326 1327 static const struct attribute_group attr_group = { 1328 .attrs = g, 1329 }; 1330 1331 1332 static int __init pm_disk_init(void) 1333 { 1334 return sysfs_create_group(power_kobj, &attr_group); 1335 } 1336 1337 core_initcall(pm_disk_init); 1338 1339 1340 static int __init resume_setup(char *str) 1341 { 1342 if (noresume) 1343 return 1; 1344 1345 strncpy(resume_file, str, 255); 1346 return 1; 1347 } 1348 1349 static int __init resume_offset_setup(char *str) 1350 { 1351 unsigned long long offset; 1352 1353 if (noresume) 1354 return 1; 1355 1356 if (sscanf(str, "%llu", &offset) == 1) 1357 swsusp_resume_block = offset; 1358 1359 return 1; 1360 } 1361 1362 static int __init hibernate_setup(char *str) 1363 { 1364 if (!strncmp(str, "noresume", 8)) { 1365 noresume = 1; 1366 } else if (!strncmp(str, "nocompress", 10)) { 1367 nocompress = 1; 1368 } else if (!strncmp(str, "no", 2)) { 1369 noresume = 1; 1370 nohibernate = 1; 1371 } else if (IS_ENABLED(CONFIG_STRICT_KERNEL_RWX) 1372 && !strncmp(str, "protect_image", 13)) { 1373 enable_restore_image_protection(); 1374 } 1375 return 1; 1376 } 1377 1378 static int __init noresume_setup(char *str) 1379 { 1380 noresume = 1; 1381 return 1; 1382 } 1383 1384 static int __init resumewait_setup(char *str) 1385 { 1386 resume_wait = 1; 1387 return 1; 1388 } 1389 1390 static int __init resumedelay_setup(char *str) 1391 { 1392 int rc = kstrtouint(str, 0, &resume_delay); 1393 1394 if (rc) 1395 pr_warn("resumedelay: bad option string '%s'\n", str); 1396 return 1; 1397 } 1398 1399 static int __init nohibernate_setup(char *str) 1400 { 1401 noresume = 1; 1402 nohibernate = 1; 1403 return 1; 1404 } 1405 1406 __setup("noresume", noresume_setup); 1407 __setup("resume_offset=", resume_offset_setup); 1408 __setup("resume=", resume_setup); 1409 __setup("hibernate=", hibernate_setup); 1410 __setup("resumewait", resumewait_setup); 1411 __setup("resumedelay=", resumedelay_setup); 1412 __setup("nohibernate", nohibernate_setup); 1413