1 /* 2 * kernel/power/hibernate.c - Hibernation (a.k.a suspend-to-disk) support. 3 * 4 * Copyright (c) 2003 Patrick Mochel 5 * Copyright (c) 2003 Open Source Development Lab 6 * Copyright (c) 2004 Pavel Machek <pavel@ucw.cz> 7 * Copyright (c) 2009 Rafael J. Wysocki, Novell Inc. 8 * 9 * This file is released under the GPLv2. 10 */ 11 12 #include <linux/suspend.h> 13 #include <linux/syscalls.h> 14 #include <linux/reboot.h> 15 #include <linux/string.h> 16 #include <linux/device.h> 17 #include <linux/kmod.h> 18 #include <linux/delay.h> 19 #include <linux/fs.h> 20 #include <linux/mount.h> 21 #include <linux/pm.h> 22 #include <linux/console.h> 23 #include <linux/cpu.h> 24 #include <linux/freezer.h> 25 #include <linux/gfp.h> 26 #include <scsi/scsi_scan.h> 27 #include <asm/suspend.h> 28 29 #include "power.h" 30 31 32 static int nocompress = 0; 33 static int noresume = 0; 34 static char resume_file[256] = CONFIG_PM_STD_PARTITION; 35 dev_t swsusp_resume_device; 36 sector_t swsusp_resume_block; 37 int in_suspend __nosavedata = 0; 38 39 enum { 40 HIBERNATION_INVALID, 41 HIBERNATION_PLATFORM, 42 HIBERNATION_TEST, 43 HIBERNATION_TESTPROC, 44 HIBERNATION_SHUTDOWN, 45 HIBERNATION_REBOOT, 46 /* keep last */ 47 __HIBERNATION_AFTER_LAST 48 }; 49 #define HIBERNATION_MAX (__HIBERNATION_AFTER_LAST-1) 50 #define HIBERNATION_FIRST (HIBERNATION_INVALID + 1) 51 52 static int hibernation_mode = HIBERNATION_SHUTDOWN; 53 54 static struct platform_hibernation_ops *hibernation_ops; 55 56 /** 57 * hibernation_set_ops - set the global hibernate operations 58 * @ops: the hibernation operations to use in subsequent hibernation transitions 59 */ 60 61 void hibernation_set_ops(struct platform_hibernation_ops *ops) 62 { 63 if (ops && !(ops->begin && ops->end && ops->pre_snapshot 64 && ops->prepare && ops->finish && ops->enter && ops->pre_restore 65 && ops->restore_cleanup)) { 66 WARN_ON(1); 67 return; 68 } 69 mutex_lock(&pm_mutex); 70 hibernation_ops = ops; 71 if (ops) 72 hibernation_mode = HIBERNATION_PLATFORM; 73 else if (hibernation_mode == HIBERNATION_PLATFORM) 74 hibernation_mode = HIBERNATION_SHUTDOWN; 75 76 mutex_unlock(&pm_mutex); 77 } 78 79 static bool entering_platform_hibernation; 80 81 bool system_entering_hibernation(void) 82 { 83 return entering_platform_hibernation; 84 } 85 EXPORT_SYMBOL(system_entering_hibernation); 86 87 #ifdef CONFIG_PM_DEBUG 88 static void hibernation_debug_sleep(void) 89 { 90 printk(KERN_INFO "hibernation debug: Waiting for 5 seconds.\n"); 91 mdelay(5000); 92 } 93 94 static int hibernation_testmode(int mode) 95 { 96 if (hibernation_mode == mode) { 97 hibernation_debug_sleep(); 98 return 1; 99 } 100 return 0; 101 } 102 103 static int hibernation_test(int level) 104 { 105 if (pm_test_level == level) { 106 hibernation_debug_sleep(); 107 return 1; 108 } 109 return 0; 110 } 111 #else /* !CONFIG_PM_DEBUG */ 112 static int hibernation_testmode(int mode) { return 0; } 113 static int hibernation_test(int level) { return 0; } 114 #endif /* !CONFIG_PM_DEBUG */ 115 116 /** 117 * platform_begin - tell the platform driver that we're starting 118 * hibernation 119 */ 120 121 static int platform_begin(int platform_mode) 122 { 123 return (platform_mode && hibernation_ops) ? 124 hibernation_ops->begin() : 0; 125 } 126 127 /** 128 * platform_end - tell the platform driver that we've entered the 129 * working state 130 */ 131 132 static void platform_end(int platform_mode) 133 { 134 if (platform_mode && hibernation_ops) 135 hibernation_ops->end(); 136 } 137 138 /** 139 * platform_pre_snapshot - prepare the machine for hibernation using the 140 * platform driver if so configured and return an error code if it fails 141 */ 142 143 static int platform_pre_snapshot(int platform_mode) 144 { 145 return (platform_mode && hibernation_ops) ? 146 hibernation_ops->pre_snapshot() : 0; 147 } 148 149 /** 150 * platform_leave - prepare the machine for switching to the normal mode 151 * of operation using the platform driver (called with interrupts disabled) 152 */ 153 154 static void platform_leave(int platform_mode) 155 { 156 if (platform_mode && hibernation_ops) 157 hibernation_ops->leave(); 158 } 159 160 /** 161 * platform_finish - switch the machine to the normal mode of operation 162 * using the platform driver (must be called after platform_prepare()) 163 */ 164 165 static void platform_finish(int platform_mode) 166 { 167 if (platform_mode && hibernation_ops) 168 hibernation_ops->finish(); 169 } 170 171 /** 172 * platform_pre_restore - prepare the platform for the restoration from a 173 * hibernation image. If the restore fails after this function has been 174 * called, platform_restore_cleanup() must be called. 175 */ 176 177 static int platform_pre_restore(int platform_mode) 178 { 179 return (platform_mode && hibernation_ops) ? 180 hibernation_ops->pre_restore() : 0; 181 } 182 183 /** 184 * platform_restore_cleanup - switch the platform to the normal mode of 185 * operation after a failing restore. If platform_pre_restore() has been 186 * called before the failing restore, this function must be called too, 187 * regardless of the result of platform_pre_restore(). 188 */ 189 190 static void platform_restore_cleanup(int platform_mode) 191 { 192 if (platform_mode && hibernation_ops) 193 hibernation_ops->restore_cleanup(); 194 } 195 196 /** 197 * platform_recover - recover the platform from a failure to suspend 198 * devices. 199 */ 200 201 static void platform_recover(int platform_mode) 202 { 203 if (platform_mode && hibernation_ops && hibernation_ops->recover) 204 hibernation_ops->recover(); 205 } 206 207 /** 208 * swsusp_show_speed - print the time elapsed between two events. 209 * @start: Starting event. 210 * @stop: Final event. 211 * @nr_pages - number of pages processed between @start and @stop 212 * @msg - introductory message to print 213 */ 214 215 void swsusp_show_speed(struct timeval *start, struct timeval *stop, 216 unsigned nr_pages, char *msg) 217 { 218 s64 elapsed_centisecs64; 219 int centisecs; 220 int k; 221 int kps; 222 223 elapsed_centisecs64 = timeval_to_ns(stop) - timeval_to_ns(start); 224 do_div(elapsed_centisecs64, NSEC_PER_SEC / 100); 225 centisecs = elapsed_centisecs64; 226 if (centisecs == 0) 227 centisecs = 1; /* avoid div-by-zero */ 228 k = nr_pages * (PAGE_SIZE / 1024); 229 kps = (k * 100) / centisecs; 230 printk(KERN_INFO "PM: %s %d kbytes in %d.%02d seconds (%d.%02d MB/s)\n", 231 msg, k, 232 centisecs / 100, centisecs % 100, 233 kps / 1000, (kps % 1000) / 10); 234 } 235 236 /** 237 * create_image - freeze devices that need to be frozen with interrupts 238 * off, create the hibernation image and thaw those devices. Control 239 * reappears in this routine after a restore. 240 */ 241 242 static int create_image(int platform_mode) 243 { 244 int error; 245 246 error = arch_prepare_suspend(); 247 if (error) 248 return error; 249 250 /* At this point, dpm_suspend_start() has been called, but *not* 251 * dpm_suspend_noirq(). We *must* call dpm_suspend_noirq() now. 252 * Otherwise, drivers for some devices (e.g. interrupt controllers) 253 * become desynchronized with the actual state of the hardware 254 * at resume time, and evil weirdness ensues. 255 */ 256 error = dpm_suspend_noirq(PMSG_FREEZE); 257 if (error) { 258 printk(KERN_ERR "PM: Some devices failed to power down, " 259 "aborting hibernation\n"); 260 return error; 261 } 262 263 error = platform_pre_snapshot(platform_mode); 264 if (error || hibernation_test(TEST_PLATFORM)) 265 goto Platform_finish; 266 267 error = disable_nonboot_cpus(); 268 if (error || hibernation_test(TEST_CPUS) 269 || hibernation_testmode(HIBERNATION_TEST)) 270 goto Enable_cpus; 271 272 local_irq_disable(); 273 274 error = sysdev_suspend(PMSG_FREEZE); 275 if (error) { 276 printk(KERN_ERR "PM: Some system devices failed to power down, " 277 "aborting hibernation\n"); 278 goto Enable_irqs; 279 } 280 281 if (hibernation_test(TEST_CORE) || !pm_check_wakeup_events()) 282 goto Power_up; 283 284 in_suspend = 1; 285 save_processor_state(); 286 error = swsusp_arch_suspend(); 287 if (error) 288 printk(KERN_ERR "PM: Error %d creating hibernation image\n", 289 error); 290 /* Restore control flow magically appears here */ 291 restore_processor_state(); 292 if (!in_suspend) { 293 events_check_enabled = false; 294 platform_leave(platform_mode); 295 } 296 297 Power_up: 298 sysdev_resume(); 299 /* NOTE: dpm_resume_noirq() is just a resume() for devices 300 * that suspended with irqs off ... no overall powerup. 301 */ 302 303 Enable_irqs: 304 local_irq_enable(); 305 306 Enable_cpus: 307 enable_nonboot_cpus(); 308 309 Platform_finish: 310 platform_finish(platform_mode); 311 312 dpm_resume_noirq(in_suspend ? 313 (error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE); 314 315 return error; 316 } 317 318 /** 319 * hibernation_snapshot - quiesce devices and create the hibernation 320 * snapshot image. 321 * @platform_mode - if set, use the platform driver, if available, to 322 * prepare the platform firmware for the power transition. 323 * 324 * Must be called with pm_mutex held 325 */ 326 327 int hibernation_snapshot(int platform_mode) 328 { 329 int error; 330 gfp_t saved_mask; 331 332 error = platform_begin(platform_mode); 333 if (error) 334 goto Close; 335 336 /* Preallocate image memory before shutting down devices. */ 337 error = hibernate_preallocate_memory(); 338 if (error) 339 goto Close; 340 341 suspend_console(); 342 saved_mask = clear_gfp_allowed_mask(GFP_IOFS); 343 error = dpm_suspend_start(PMSG_FREEZE); 344 if (error) 345 goto Recover_platform; 346 347 if (hibernation_test(TEST_DEVICES)) 348 goto Recover_platform; 349 350 error = create_image(platform_mode); 351 /* Control returns here after successful restore */ 352 353 Resume_devices: 354 /* We may need to release the preallocated image pages here. */ 355 if (error || !in_suspend) 356 swsusp_free(); 357 358 dpm_resume_end(in_suspend ? 359 (error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE); 360 set_gfp_allowed_mask(saved_mask); 361 resume_console(); 362 Close: 363 platform_end(platform_mode); 364 return error; 365 366 Recover_platform: 367 platform_recover(platform_mode); 368 goto Resume_devices; 369 } 370 371 /** 372 * resume_target_kernel - prepare devices that need to be suspended with 373 * interrupts off, restore the contents of highmem that have not been 374 * restored yet from the image and run the low level code that will restore 375 * the remaining contents of memory and switch to the just restored target 376 * kernel. 377 */ 378 379 static int resume_target_kernel(bool platform_mode) 380 { 381 int error; 382 383 error = dpm_suspend_noirq(PMSG_QUIESCE); 384 if (error) { 385 printk(KERN_ERR "PM: Some devices failed to power down, " 386 "aborting resume\n"); 387 return error; 388 } 389 390 error = platform_pre_restore(platform_mode); 391 if (error) 392 goto Cleanup; 393 394 error = disable_nonboot_cpus(); 395 if (error) 396 goto Enable_cpus; 397 398 local_irq_disable(); 399 400 error = sysdev_suspend(PMSG_QUIESCE); 401 if (error) 402 goto Enable_irqs; 403 404 /* We'll ignore saved state, but this gets preempt count (etc) right */ 405 save_processor_state(); 406 error = restore_highmem(); 407 if (!error) { 408 error = swsusp_arch_resume(); 409 /* 410 * The code below is only ever reached in case of a failure. 411 * Otherwise execution continues at place where 412 * swsusp_arch_suspend() was called 413 */ 414 BUG_ON(!error); 415 /* This call to restore_highmem() undos the previous one */ 416 restore_highmem(); 417 } 418 /* 419 * The only reason why swsusp_arch_resume() can fail is memory being 420 * very tight, so we have to free it as soon as we can to avoid 421 * subsequent failures 422 */ 423 swsusp_free(); 424 restore_processor_state(); 425 touch_softlockup_watchdog(); 426 427 sysdev_resume(); 428 429 Enable_irqs: 430 local_irq_enable(); 431 432 Enable_cpus: 433 enable_nonboot_cpus(); 434 435 Cleanup: 436 platform_restore_cleanup(platform_mode); 437 438 dpm_resume_noirq(PMSG_RECOVER); 439 440 return error; 441 } 442 443 /** 444 * hibernation_restore - quiesce devices and restore the hibernation 445 * snapshot image. If successful, control returns in hibernation_snaphot() 446 * @platform_mode - if set, use the platform driver, if available, to 447 * prepare the platform firmware for the transition. 448 * 449 * Must be called with pm_mutex held 450 */ 451 452 int hibernation_restore(int platform_mode) 453 { 454 int error; 455 gfp_t saved_mask; 456 457 pm_prepare_console(); 458 suspend_console(); 459 saved_mask = clear_gfp_allowed_mask(GFP_IOFS); 460 error = dpm_suspend_start(PMSG_QUIESCE); 461 if (!error) { 462 error = resume_target_kernel(platform_mode); 463 dpm_resume_end(PMSG_RECOVER); 464 } 465 set_gfp_allowed_mask(saved_mask); 466 resume_console(); 467 pm_restore_console(); 468 return error; 469 } 470 471 /** 472 * hibernation_platform_enter - enter the hibernation state using the 473 * platform driver (if available) 474 */ 475 476 int hibernation_platform_enter(void) 477 { 478 int error; 479 gfp_t saved_mask; 480 481 if (!hibernation_ops) 482 return -ENOSYS; 483 484 /* 485 * We have cancelled the power transition by running 486 * hibernation_ops->finish() before saving the image, so we should let 487 * the firmware know that we're going to enter the sleep state after all 488 */ 489 error = hibernation_ops->begin(); 490 if (error) 491 goto Close; 492 493 entering_platform_hibernation = true; 494 suspend_console(); 495 saved_mask = clear_gfp_allowed_mask(GFP_IOFS); 496 error = dpm_suspend_start(PMSG_HIBERNATE); 497 if (error) { 498 if (hibernation_ops->recover) 499 hibernation_ops->recover(); 500 goto Resume_devices; 501 } 502 503 error = dpm_suspend_noirq(PMSG_HIBERNATE); 504 if (error) 505 goto Resume_devices; 506 507 error = hibernation_ops->prepare(); 508 if (error) 509 goto Platform_finish; 510 511 error = disable_nonboot_cpus(); 512 if (error) 513 goto Platform_finish; 514 515 local_irq_disable(); 516 sysdev_suspend(PMSG_HIBERNATE); 517 if (!pm_check_wakeup_events()) { 518 error = -EAGAIN; 519 goto Power_up; 520 } 521 522 hibernation_ops->enter(); 523 /* We should never get here */ 524 while (1); 525 526 Power_up: 527 sysdev_resume(); 528 local_irq_enable(); 529 enable_nonboot_cpus(); 530 531 Platform_finish: 532 hibernation_ops->finish(); 533 534 dpm_resume_noirq(PMSG_RESTORE); 535 536 Resume_devices: 537 entering_platform_hibernation = false; 538 dpm_resume_end(PMSG_RESTORE); 539 set_gfp_allowed_mask(saved_mask); 540 resume_console(); 541 542 Close: 543 hibernation_ops->end(); 544 545 return error; 546 } 547 548 /** 549 * power_down - Shut the machine down for hibernation. 550 * 551 * Use the platform driver, if configured so; otherwise try 552 * to power off or reboot. 553 */ 554 555 static void power_down(void) 556 { 557 switch (hibernation_mode) { 558 case HIBERNATION_TEST: 559 case HIBERNATION_TESTPROC: 560 break; 561 case HIBERNATION_REBOOT: 562 kernel_restart(NULL); 563 break; 564 case HIBERNATION_PLATFORM: 565 hibernation_platform_enter(); 566 case HIBERNATION_SHUTDOWN: 567 kernel_power_off(); 568 break; 569 } 570 kernel_halt(); 571 /* 572 * Valid image is on the disk, if we continue we risk serious data 573 * corruption after resume. 574 */ 575 printk(KERN_CRIT "PM: Please power down manually\n"); 576 while(1); 577 } 578 579 static int prepare_processes(void) 580 { 581 int error = 0; 582 583 if (freeze_processes()) { 584 error = -EBUSY; 585 thaw_processes(); 586 } 587 return error; 588 } 589 590 /** 591 * hibernate - The granpappy of the built-in hibernation management 592 */ 593 594 int hibernate(void) 595 { 596 int error; 597 598 mutex_lock(&pm_mutex); 599 /* The snapshot device should not be opened while we're running */ 600 if (!atomic_add_unless(&snapshot_device_available, -1, 0)) { 601 error = -EBUSY; 602 goto Unlock; 603 } 604 605 pm_prepare_console(); 606 error = pm_notifier_call_chain(PM_HIBERNATION_PREPARE); 607 if (error) 608 goto Exit; 609 610 error = usermodehelper_disable(); 611 if (error) 612 goto Exit; 613 614 /* Allocate memory management structures */ 615 error = create_basic_memory_bitmaps(); 616 if (error) 617 goto Exit; 618 619 printk(KERN_INFO "PM: Syncing filesystems ... "); 620 sys_sync(); 621 printk("done.\n"); 622 623 error = prepare_processes(); 624 if (error) 625 goto Finish; 626 627 if (hibernation_test(TEST_FREEZER)) 628 goto Thaw; 629 630 if (hibernation_testmode(HIBERNATION_TESTPROC)) 631 goto Thaw; 632 633 error = hibernation_snapshot(hibernation_mode == HIBERNATION_PLATFORM); 634 if (error) 635 goto Thaw; 636 637 if (in_suspend) { 638 unsigned int flags = 0; 639 640 if (hibernation_mode == HIBERNATION_PLATFORM) 641 flags |= SF_PLATFORM_MODE; 642 if (nocompress) 643 flags |= SF_NOCOMPRESS_MODE; 644 pr_debug("PM: writing image.\n"); 645 error = swsusp_write(flags); 646 swsusp_free(); 647 if (!error) 648 power_down(); 649 } else { 650 pr_debug("PM: Image restored successfully.\n"); 651 } 652 653 Thaw: 654 thaw_processes(); 655 Finish: 656 free_basic_memory_bitmaps(); 657 usermodehelper_enable(); 658 Exit: 659 pm_notifier_call_chain(PM_POST_HIBERNATION); 660 pm_restore_console(); 661 atomic_inc(&snapshot_device_available); 662 Unlock: 663 mutex_unlock(&pm_mutex); 664 return error; 665 } 666 667 668 /** 669 * software_resume - Resume from a saved image. 670 * 671 * Called as a late_initcall (so all devices are discovered and 672 * initialized), we call swsusp to see if we have a saved image or not. 673 * If so, we quiesce devices, the restore the saved image. We will 674 * return above (in hibernate() ) if everything goes well. 675 * Otherwise, we fail gracefully and return to the normally 676 * scheduled program. 677 * 678 */ 679 680 static int software_resume(void) 681 { 682 int error; 683 unsigned int flags; 684 685 /* 686 * If the user said "noresume".. bail out early. 687 */ 688 if (noresume) 689 return 0; 690 691 /* 692 * name_to_dev_t() below takes a sysfs buffer mutex when sysfs 693 * is configured into the kernel. Since the regular hibernate 694 * trigger path is via sysfs which takes a buffer mutex before 695 * calling hibernate functions (which take pm_mutex) this can 696 * cause lockdep to complain about a possible ABBA deadlock 697 * which cannot happen since we're in the boot code here and 698 * sysfs can't be invoked yet. Therefore, we use a subclass 699 * here to avoid lockdep complaining. 700 */ 701 mutex_lock_nested(&pm_mutex, SINGLE_DEPTH_NESTING); 702 703 if (swsusp_resume_device) 704 goto Check_image; 705 706 if (!strlen(resume_file)) { 707 error = -ENOENT; 708 goto Unlock; 709 } 710 711 pr_debug("PM: Checking hibernation image partition %s\n", resume_file); 712 713 /* Check if the device is there */ 714 swsusp_resume_device = name_to_dev_t(resume_file); 715 if (!swsusp_resume_device) { 716 /* 717 * Some device discovery might still be in progress; we need 718 * to wait for this to finish. 719 */ 720 wait_for_device_probe(); 721 /* 722 * We can't depend on SCSI devices being available after loading 723 * one of their modules until scsi_complete_async_scans() is 724 * called and the resume device usually is a SCSI one. 725 */ 726 scsi_complete_async_scans(); 727 728 swsusp_resume_device = name_to_dev_t(resume_file); 729 if (!swsusp_resume_device) { 730 error = -ENODEV; 731 goto Unlock; 732 } 733 } 734 735 Check_image: 736 pr_debug("PM: Hibernation image partition %d:%d present\n", 737 MAJOR(swsusp_resume_device), MINOR(swsusp_resume_device)); 738 739 pr_debug("PM: Looking for hibernation image.\n"); 740 error = swsusp_check(); 741 if (error) 742 goto Unlock; 743 744 /* The snapshot device should not be opened while we're running */ 745 if (!atomic_add_unless(&snapshot_device_available, -1, 0)) { 746 error = -EBUSY; 747 swsusp_close(FMODE_READ); 748 goto Unlock; 749 } 750 751 pm_prepare_console(); 752 error = pm_notifier_call_chain(PM_RESTORE_PREPARE); 753 if (error) 754 goto close_finish; 755 756 error = usermodehelper_disable(); 757 if (error) 758 goto close_finish; 759 760 error = create_basic_memory_bitmaps(); 761 if (error) 762 goto close_finish; 763 764 pr_debug("PM: Preparing processes for restore.\n"); 765 error = prepare_processes(); 766 if (error) { 767 swsusp_close(FMODE_READ); 768 goto Done; 769 } 770 771 pr_debug("PM: Loading hibernation image.\n"); 772 773 error = swsusp_read(&flags); 774 swsusp_close(FMODE_READ); 775 if (!error) 776 hibernation_restore(flags & SF_PLATFORM_MODE); 777 778 printk(KERN_ERR "PM: Failed to load hibernation image, recovering.\n"); 779 swsusp_free(); 780 thaw_processes(); 781 Done: 782 free_basic_memory_bitmaps(); 783 usermodehelper_enable(); 784 Finish: 785 pm_notifier_call_chain(PM_POST_RESTORE); 786 pm_restore_console(); 787 atomic_inc(&snapshot_device_available); 788 /* For success case, the suspend path will release the lock */ 789 Unlock: 790 mutex_unlock(&pm_mutex); 791 pr_debug("PM: Hibernation image not present or could not be loaded.\n"); 792 return error; 793 close_finish: 794 swsusp_close(FMODE_READ); 795 goto Finish; 796 } 797 798 late_initcall(software_resume); 799 800 801 static const char * const hibernation_modes[] = { 802 [HIBERNATION_PLATFORM] = "platform", 803 [HIBERNATION_SHUTDOWN] = "shutdown", 804 [HIBERNATION_REBOOT] = "reboot", 805 [HIBERNATION_TEST] = "test", 806 [HIBERNATION_TESTPROC] = "testproc", 807 }; 808 809 /** 810 * disk - Control hibernation mode 811 * 812 * Suspend-to-disk can be handled in several ways. We have a few options 813 * for putting the system to sleep - using the platform driver (e.g. ACPI 814 * or other hibernation_ops), powering off the system or rebooting the 815 * system (for testing) as well as the two test modes. 816 * 817 * The system can support 'platform', and that is known a priori (and 818 * encoded by the presence of hibernation_ops). However, the user may 819 * choose 'shutdown' or 'reboot' as alternatives, as well as one fo the 820 * test modes, 'test' or 'testproc'. 821 * 822 * show() will display what the mode is currently set to. 823 * store() will accept one of 824 * 825 * 'platform' 826 * 'shutdown' 827 * 'reboot' 828 * 'test' 829 * 'testproc' 830 * 831 * It will only change to 'platform' if the system 832 * supports it (as determined by having hibernation_ops). 833 */ 834 835 static ssize_t disk_show(struct kobject *kobj, struct kobj_attribute *attr, 836 char *buf) 837 { 838 int i; 839 char *start = buf; 840 841 for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) { 842 if (!hibernation_modes[i]) 843 continue; 844 switch (i) { 845 case HIBERNATION_SHUTDOWN: 846 case HIBERNATION_REBOOT: 847 case HIBERNATION_TEST: 848 case HIBERNATION_TESTPROC: 849 break; 850 case HIBERNATION_PLATFORM: 851 if (hibernation_ops) 852 break; 853 /* not a valid mode, continue with loop */ 854 continue; 855 } 856 if (i == hibernation_mode) 857 buf += sprintf(buf, "[%s] ", hibernation_modes[i]); 858 else 859 buf += sprintf(buf, "%s ", hibernation_modes[i]); 860 } 861 buf += sprintf(buf, "\n"); 862 return buf-start; 863 } 864 865 866 static ssize_t disk_store(struct kobject *kobj, struct kobj_attribute *attr, 867 const char *buf, size_t n) 868 { 869 int error = 0; 870 int i; 871 int len; 872 char *p; 873 int mode = HIBERNATION_INVALID; 874 875 p = memchr(buf, '\n', n); 876 len = p ? p - buf : n; 877 878 mutex_lock(&pm_mutex); 879 for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) { 880 if (len == strlen(hibernation_modes[i]) 881 && !strncmp(buf, hibernation_modes[i], len)) { 882 mode = i; 883 break; 884 } 885 } 886 if (mode != HIBERNATION_INVALID) { 887 switch (mode) { 888 case HIBERNATION_SHUTDOWN: 889 case HIBERNATION_REBOOT: 890 case HIBERNATION_TEST: 891 case HIBERNATION_TESTPROC: 892 hibernation_mode = mode; 893 break; 894 case HIBERNATION_PLATFORM: 895 if (hibernation_ops) 896 hibernation_mode = mode; 897 else 898 error = -EINVAL; 899 } 900 } else 901 error = -EINVAL; 902 903 if (!error) 904 pr_debug("PM: Hibernation mode set to '%s'\n", 905 hibernation_modes[mode]); 906 mutex_unlock(&pm_mutex); 907 return error ? error : n; 908 } 909 910 power_attr(disk); 911 912 static ssize_t resume_show(struct kobject *kobj, struct kobj_attribute *attr, 913 char *buf) 914 { 915 return sprintf(buf,"%d:%d\n", MAJOR(swsusp_resume_device), 916 MINOR(swsusp_resume_device)); 917 } 918 919 static ssize_t resume_store(struct kobject *kobj, struct kobj_attribute *attr, 920 const char *buf, size_t n) 921 { 922 unsigned int maj, min; 923 dev_t res; 924 int ret = -EINVAL; 925 926 if (sscanf(buf, "%u:%u", &maj, &min) != 2) 927 goto out; 928 929 res = MKDEV(maj,min); 930 if (maj != MAJOR(res) || min != MINOR(res)) 931 goto out; 932 933 mutex_lock(&pm_mutex); 934 swsusp_resume_device = res; 935 mutex_unlock(&pm_mutex); 936 printk(KERN_INFO "PM: Starting manual resume from disk\n"); 937 noresume = 0; 938 software_resume(); 939 ret = n; 940 out: 941 return ret; 942 } 943 944 power_attr(resume); 945 946 static ssize_t image_size_show(struct kobject *kobj, struct kobj_attribute *attr, 947 char *buf) 948 { 949 return sprintf(buf, "%lu\n", image_size); 950 } 951 952 static ssize_t image_size_store(struct kobject *kobj, struct kobj_attribute *attr, 953 const char *buf, size_t n) 954 { 955 unsigned long size; 956 957 if (sscanf(buf, "%lu", &size) == 1) { 958 image_size = size; 959 return n; 960 } 961 962 return -EINVAL; 963 } 964 965 power_attr(image_size); 966 967 static struct attribute * g[] = { 968 &disk_attr.attr, 969 &resume_attr.attr, 970 &image_size_attr.attr, 971 NULL, 972 }; 973 974 975 static struct attribute_group attr_group = { 976 .attrs = g, 977 }; 978 979 980 static int __init pm_disk_init(void) 981 { 982 return sysfs_create_group(power_kobj, &attr_group); 983 } 984 985 core_initcall(pm_disk_init); 986 987 988 static int __init resume_setup(char *str) 989 { 990 if (noresume) 991 return 1; 992 993 strncpy( resume_file, str, 255 ); 994 return 1; 995 } 996 997 static int __init resume_offset_setup(char *str) 998 { 999 unsigned long long offset; 1000 1001 if (noresume) 1002 return 1; 1003 1004 if (sscanf(str, "%llu", &offset) == 1) 1005 swsusp_resume_block = offset; 1006 1007 return 1; 1008 } 1009 1010 static int __init hibernate_setup(char *str) 1011 { 1012 if (!strncmp(str, "noresume", 8)) 1013 noresume = 1; 1014 else if (!strncmp(str, "nocompress", 10)) 1015 nocompress = 1; 1016 return 1; 1017 } 1018 1019 static int __init noresume_setup(char *str) 1020 { 1021 noresume = 1; 1022 return 1; 1023 } 1024 1025 __setup("noresume", noresume_setup); 1026 __setup("resume_offset=", resume_offset_setup); 1027 __setup("resume=", resume_setup); 1028 __setup("hibernate=", hibernate_setup); 1029