xref: /linux/kernel/power/hibernate.c (revision 5c8d5e2619f7d2985adfe45608dc942ca8151aa3)
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 <crypto/acompress.h>
15 #include <linux/blkdev.h>
16 #include <linux/export.h>
17 #include <linux/suspend.h>
18 #include <linux/reboot.h>
19 #include <linux/string.h>
20 #include <linux/device.h>
21 #include <linux/async.h>
22 #include <linux/delay.h>
23 #include <linux/fs.h>
24 #include <linux/mount.h>
25 #include <linux/pm.h>
26 #include <linux/nmi.h>
27 #include <linux/console.h>
28 #include <linux/cpu.h>
29 #include <linux/freezer.h>
30 #include <linux/gfp.h>
31 #include <linux/syscore_ops.h>
32 #include <linux/ctype.h>
33 #include <linux/ktime.h>
34 #include <linux/security.h>
35 #include <linux/secretmem.h>
36 #include <trace/events/power.h>
37 
38 #include "power.h"
39 
40 
41 static int nocompress;
42 static int noresume;
43 static int nohibernate;
44 static int resume_wait;
45 static unsigned int resume_delay;
46 static char resume_file[256] = CONFIG_PM_STD_PARTITION;
47 dev_t swsusp_resume_device;
48 sector_t swsusp_resume_block;
49 __visible int in_suspend __nosavedata;
50 
51 static char hibernate_compressor[CRYPTO_MAX_ALG_NAME] = CONFIG_HIBERNATION_DEF_COMP;
52 
53 /*
54  * Compression/decompression algorithm to be used while saving/loading
55  * image to/from disk. This would later be used in 'kernel/power/swap.c'
56  * to allocate comp streams.
57  */
58 char hib_comp_algo[CRYPTO_MAX_ALG_NAME];
59 
60 enum {
61 	HIBERNATION_INVALID,
62 	HIBERNATION_PLATFORM,
63 	HIBERNATION_SHUTDOWN,
64 	HIBERNATION_REBOOT,
65 #ifdef CONFIG_SUSPEND
66 	HIBERNATION_SUSPEND,
67 #endif
68 	HIBERNATION_TEST_RESUME,
69 	/* keep last */
70 	__HIBERNATION_AFTER_LAST
71 };
72 #define HIBERNATION_MAX (__HIBERNATION_AFTER_LAST-1)
73 #define HIBERNATION_FIRST (HIBERNATION_INVALID + 1)
74 
75 static int hibernation_mode = HIBERNATION_SHUTDOWN;
76 
77 bool freezer_test_done;
78 
79 static const struct platform_hibernation_ops *hibernation_ops;
80 
81 static atomic_t hibernate_atomic = ATOMIC_INIT(1);
82 
83 bool hibernate_acquire(void)
84 {
85 	return atomic_add_unless(&hibernate_atomic, -1, 0);
86 }
87 
88 void hibernate_release(void)
89 {
90 	atomic_inc(&hibernate_atomic);
91 }
92 
93 bool hibernation_in_progress(void)
94 {
95 	return !atomic_read(&hibernate_atomic);
96 }
97 
98 bool hibernation_available(void)
99 {
100 	return nohibernate == 0 &&
101 		!security_locked_down(LOCKDOWN_HIBERNATION) &&
102 		!secretmem_active() && !cxl_mem_active();
103 }
104 
105 /**
106  * hibernation_set_ops - Set the global hibernate operations.
107  * @ops: Hibernation operations to use in subsequent hibernation transitions.
108  */
109 void hibernation_set_ops(const struct platform_hibernation_ops *ops)
110 {
111 	unsigned int sleep_flags;
112 
113 	if (ops && !(ops->begin && ops->end &&  ops->pre_snapshot
114 	    && ops->prepare && ops->finish && ops->enter && ops->pre_restore
115 	    && ops->restore_cleanup && ops->leave)) {
116 		WARN_ON(1);
117 		return;
118 	}
119 
120 	sleep_flags = lock_system_sleep();
121 
122 	hibernation_ops = ops;
123 	if (ops)
124 		hibernation_mode = HIBERNATION_PLATFORM;
125 	else if (hibernation_mode == HIBERNATION_PLATFORM)
126 		hibernation_mode = HIBERNATION_SHUTDOWN;
127 
128 	unlock_system_sleep(sleep_flags);
129 }
130 EXPORT_SYMBOL_GPL(hibernation_set_ops);
131 
132 static bool entering_platform_hibernation;
133 
134 bool system_entering_hibernation(void)
135 {
136 	return entering_platform_hibernation;
137 }
138 EXPORT_SYMBOL(system_entering_hibernation);
139 
140 #ifdef CONFIG_PM_DEBUG
141 static unsigned int pm_test_delay = 5;
142 module_param(pm_test_delay, uint, 0644);
143 MODULE_PARM_DESC(pm_test_delay,
144 		 "Number of seconds to wait before resuming from hibernation test");
145 static void hibernation_debug_sleep(void)
146 {
147 	pr_info("hibernation debug: Waiting for %d second(s).\n",
148 		pm_test_delay);
149 	mdelay(pm_test_delay * 1000);
150 }
151 
152 static int hibernation_test(int level)
153 {
154 	if (pm_test_level == level) {
155 		hibernation_debug_sleep();
156 		return 1;
157 	}
158 	return 0;
159 }
160 #else /* !CONFIG_PM_DEBUG */
161 static int hibernation_test(int level) { return 0; }
162 #endif /* !CONFIG_PM_DEBUG */
163 
164 /**
165  * platform_begin - Call platform to start hibernation.
166  * @platform_mode: Whether or not to use the platform driver.
167  */
168 static int platform_begin(int platform_mode)
169 {
170 	return (platform_mode && hibernation_ops) ?
171 		hibernation_ops->begin(PMSG_FREEZE) : 0;
172 }
173 
174 /**
175  * platform_end - Call platform to finish transition to the working state.
176  * @platform_mode: Whether or not to use the platform driver.
177  */
178 static void platform_end(int platform_mode)
179 {
180 	if (platform_mode && hibernation_ops)
181 		hibernation_ops->end();
182 }
183 
184 /**
185  * platform_pre_snapshot - Call platform to prepare the machine for hibernation.
186  * @platform_mode: Whether or not to use the platform driver.
187  *
188  * Use the platform driver to prepare the system for creating a hibernate image,
189  * if so configured, and return an error code if that fails.
190  */
191 
192 static int platform_pre_snapshot(int platform_mode)
193 {
194 	return (platform_mode && hibernation_ops) ?
195 		hibernation_ops->pre_snapshot() : 0;
196 }
197 
198 /**
199  * platform_leave - Call platform to prepare a transition to the working state.
200  * @platform_mode: Whether or not to use the platform driver.
201  *
202  * Use the platform driver prepare to prepare the machine for switching to the
203  * normal mode of operation.
204  *
205  * This routine is called on one CPU with interrupts disabled.
206  */
207 static void platform_leave(int platform_mode)
208 {
209 	if (platform_mode && hibernation_ops)
210 		hibernation_ops->leave();
211 }
212 
213 /**
214  * platform_finish - Call platform to switch the system to the working state.
215  * @platform_mode: Whether or not to use the platform driver.
216  *
217  * Use the platform driver to switch the machine to the normal mode of
218  * operation.
219  *
220  * This routine must be called after platform_prepare().
221  */
222 static void platform_finish(int platform_mode)
223 {
224 	if (platform_mode && hibernation_ops)
225 		hibernation_ops->finish();
226 }
227 
228 /**
229  * platform_pre_restore - Prepare for hibernate image restoration.
230  * @platform_mode: Whether or not to use the platform driver.
231  *
232  * Use the platform driver to prepare the system for resume from a hibernation
233  * image.
234  *
235  * If the restore fails after this function has been called,
236  * platform_restore_cleanup() must be called.
237  */
238 static int platform_pre_restore(int platform_mode)
239 {
240 	return (platform_mode && hibernation_ops) ?
241 		hibernation_ops->pre_restore() : 0;
242 }
243 
244 /**
245  * platform_restore_cleanup - Switch to the working state after failing restore.
246  * @platform_mode: Whether or not to use the platform driver.
247  *
248  * Use the platform driver to switch the system to the normal mode of operation
249  * after a failing restore.
250  *
251  * If platform_pre_restore() has been called before the failing restore, this
252  * function must be called too, regardless of the result of
253  * platform_pre_restore().
254  */
255 static void platform_restore_cleanup(int platform_mode)
256 {
257 	if (platform_mode && hibernation_ops)
258 		hibernation_ops->restore_cleanup();
259 }
260 
261 /**
262  * platform_recover - Recover from a failure to suspend devices.
263  * @platform_mode: Whether or not to use the platform driver.
264  */
265 static void platform_recover(int platform_mode)
266 {
267 	if (platform_mode && hibernation_ops && hibernation_ops->recover)
268 		hibernation_ops->recover();
269 }
270 
271 /**
272  * swsusp_show_speed - Print time elapsed between two events during hibernation.
273  * @start: Starting event.
274  * @stop: Final event.
275  * @nr_pages: Number of memory pages processed between @start and @stop.
276  * @msg: Additional diagnostic message to print.
277  */
278 void swsusp_show_speed(ktime_t start, ktime_t stop,
279 		      unsigned nr_pages, char *msg)
280 {
281 	ktime_t diff;
282 	u64 elapsed_centisecs64;
283 	unsigned int centisecs;
284 	unsigned int k;
285 	unsigned int kps;
286 
287 	diff = ktime_sub(stop, start);
288 	elapsed_centisecs64 = ktime_divns(diff, 10*NSEC_PER_MSEC);
289 	centisecs = elapsed_centisecs64;
290 	if (centisecs == 0)
291 		centisecs = 1;	/* avoid div-by-zero */
292 	k = nr_pages * (PAGE_SIZE / 1024);
293 	kps = (k * 100) / centisecs;
294 	pr_info("%s %u kbytes in %u.%02u seconds (%u.%02u MB/s)\n",
295 		msg, k, centisecs / 100, centisecs % 100, kps / 1000,
296 		(kps % 1000) / 10);
297 }
298 
299 __weak int arch_resume_nosmt(void)
300 {
301 	return 0;
302 }
303 
304 /**
305  * create_image - Create a hibernation image.
306  * @platform_mode: Whether or not to use the platform driver.
307  *
308  * Execute device drivers' "late" and "noirq" freeze callbacks, create a
309  * hibernation image and run the drivers' "noirq" and "early" thaw callbacks.
310  *
311  * Control reappears in this routine after the subsequent restore.
312  */
313 static int create_image(int platform_mode)
314 {
315 	int error;
316 
317 	error = dpm_suspend_end(PMSG_FREEZE);
318 	if (error) {
319 		pr_err("Some devices failed to power down, aborting\n");
320 		return error;
321 	}
322 
323 	error = platform_pre_snapshot(platform_mode);
324 	if (error || hibernation_test(TEST_PLATFORM))
325 		goto Platform_finish;
326 
327 	error = pm_sleep_disable_secondary_cpus();
328 	if (error || hibernation_test(TEST_CPUS))
329 		goto Enable_cpus;
330 
331 	local_irq_disable();
332 
333 	system_state = SYSTEM_SUSPEND;
334 
335 	error = syscore_suspend();
336 	if (error) {
337 		pr_err("Some system devices failed to power down, aborting\n");
338 		goto Enable_irqs;
339 	}
340 
341 	if (hibernation_test(TEST_CORE) || pm_wakeup_pending())
342 		goto Power_up;
343 
344 	in_suspend = 1;
345 	save_processor_state();
346 	trace_suspend_resume(TPS("machine_suspend"), PM_EVENT_HIBERNATE, true);
347 	error = swsusp_arch_suspend();
348 	/* Restore control flow magically appears here */
349 	restore_processor_state();
350 	trace_suspend_resume(TPS("machine_suspend"), PM_EVENT_HIBERNATE, false);
351 	if (error)
352 		pr_err("Error %d creating image\n", error);
353 
354 	if (!in_suspend) {
355 		events_check_enabled = false;
356 		clear_or_poison_free_pages();
357 	}
358 
359 	platform_leave(platform_mode);
360 
361  Power_up:
362 	syscore_resume();
363 
364  Enable_irqs:
365 	system_state = SYSTEM_RUNNING;
366 	local_irq_enable();
367 
368  Enable_cpus:
369 	pm_sleep_enable_secondary_cpus();
370 
371 	/* Allow architectures to do nosmt-specific post-resume dances */
372 	if (!in_suspend)
373 		error = arch_resume_nosmt();
374 
375  Platform_finish:
376 	platform_finish(platform_mode);
377 
378 	dpm_resume_start(in_suspend ?
379 		(error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE);
380 
381 	return error;
382 }
383 
384 static void shrink_shmem_memory(void)
385 {
386 	struct sysinfo info;
387 	unsigned long nr_shmem_pages, nr_freed_pages;
388 
389 	si_meminfo(&info);
390 	nr_shmem_pages = info.sharedram; /* current page count used for shmem */
391 	/*
392 	 * The intent is to reclaim all shmem pages. Though shrink_all_memory() can
393 	 * only reclaim about half of them, it's enough for creating the hibernation
394 	 * image.
395 	 */
396 	nr_freed_pages = shrink_all_memory(nr_shmem_pages);
397 	pr_debug("requested to reclaim %lu shmem pages, actually freed %lu pages\n",
398 			nr_shmem_pages, nr_freed_pages);
399 }
400 
401 /**
402  * hibernation_snapshot - Quiesce devices and create a hibernation image.
403  * @platform_mode: If set, use platform driver to prepare for the transition.
404  *
405  * This routine must be called with system_transition_mutex held.
406  */
407 int hibernation_snapshot(int platform_mode)
408 {
409 	pm_message_t msg;
410 	int error;
411 
412 	pm_suspend_clear_flags();
413 	error = platform_begin(platform_mode);
414 	if (error)
415 		goto Close;
416 
417 	/* Preallocate image memory before shutting down devices. */
418 	error = hibernate_preallocate_memory();
419 	if (error)
420 		goto Close;
421 
422 	error = freeze_kernel_threads();
423 	if (error)
424 		goto Cleanup;
425 
426 	if (hibernation_test(TEST_FREEZER)) {
427 
428 		/*
429 		 * Indicate to the caller that we are returning due to a
430 		 * successful freezer test.
431 		 */
432 		freezer_test_done = true;
433 		goto Thaw;
434 	}
435 
436 	error = dpm_prepare(PMSG_FREEZE);
437 	if (error) {
438 		dpm_complete(PMSG_RECOVER);
439 		goto Thaw;
440 	}
441 
442 	/*
443 	 * Device drivers may move lots of data to shmem in dpm_prepare(). The shmem
444 	 * pages will use lots of system memory, causing hibernation image creation
445 	 * fail due to insufficient free memory.
446 	 * This call is to force flush the shmem pages to swap disk and reclaim
447 	 * the system memory so that image creation can succeed.
448 	 */
449 	shrink_shmem_memory();
450 
451 	console_suspend_all();
452 	pm_restrict_gfp_mask();
453 
454 	error = dpm_suspend(PMSG_FREEZE);
455 
456 	if (error || hibernation_test(TEST_DEVICES))
457 		platform_recover(platform_mode);
458 	else
459 		error = create_image(platform_mode);
460 
461 	/*
462 	 * In the case that we call create_image() above, the control
463 	 * returns here (1) after the image has been created or the
464 	 * image creation has failed and (2) after a successful restore.
465 	 */
466 
467 	/* We may need to release the preallocated image pages here. */
468 	if (error || !in_suspend)
469 		swsusp_free();
470 
471 	msg = in_suspend ? (error ? PMSG_RECOVER : PMSG_THAW) : PMSG_RESTORE;
472 	dpm_resume(msg);
473 
474 	if (error || !in_suspend)
475 		pm_restore_gfp_mask();
476 
477 	console_resume_all();
478 	dpm_complete(msg);
479 
480  Close:
481 	platform_end(platform_mode);
482 	return error;
483 
484  Thaw:
485 	thaw_kernel_threads();
486  Cleanup:
487 	swsusp_free();
488 	goto Close;
489 }
490 
491 int __weak hibernate_resume_nonboot_cpu_disable(void)
492 {
493 	return suspend_disable_secondary_cpus();
494 }
495 
496 /**
497  * resume_target_kernel - Restore system state from a hibernation image.
498  * @platform_mode: Whether or not to use the platform driver.
499  *
500  * Execute device drivers' "noirq" and "late" freeze callbacks, restore the
501  * contents of highmem that have not been restored yet from the image and run
502  * the low-level code that will restore the remaining contents of memory and
503  * switch to the just restored target kernel.
504  */
505 static int resume_target_kernel(bool platform_mode)
506 {
507 	int error;
508 
509 	error = dpm_suspend_end(PMSG_QUIESCE);
510 	if (error) {
511 		pr_err("Some devices failed to power down, aborting resume\n");
512 		return error;
513 	}
514 
515 	error = platform_pre_restore(platform_mode);
516 	if (error)
517 		goto Cleanup;
518 
519 	cpuidle_pause();
520 
521 	error = hibernate_resume_nonboot_cpu_disable();
522 	if (error)
523 		goto Enable_cpus;
524 
525 	local_irq_disable();
526 	system_state = SYSTEM_SUSPEND;
527 
528 	error = syscore_suspend();
529 	if (error)
530 		goto Enable_irqs;
531 
532 	save_processor_state();
533 	error = restore_highmem();
534 	if (!error) {
535 		error = swsusp_arch_resume();
536 		/*
537 		 * The code below is only ever reached in case of a failure.
538 		 * Otherwise, execution continues at the place where
539 		 * swsusp_arch_suspend() was called.
540 		 */
541 		BUG_ON(!error);
542 		/*
543 		 * This call to restore_highmem() reverts the changes made by
544 		 * the previous one.
545 		 */
546 		restore_highmem();
547 	}
548 	/*
549 	 * The only reason why swsusp_arch_resume() can fail is memory being
550 	 * very tight, so we have to free it as soon as we can to avoid
551 	 * subsequent failures.
552 	 */
553 	swsusp_free();
554 	restore_processor_state();
555 	touch_softlockup_watchdog();
556 
557 	syscore_resume();
558 
559  Enable_irqs:
560 	system_state = SYSTEM_RUNNING;
561 	local_irq_enable();
562 
563  Enable_cpus:
564 	pm_sleep_enable_secondary_cpus();
565 
566  Cleanup:
567 	platform_restore_cleanup(platform_mode);
568 
569 	dpm_resume_start(PMSG_RECOVER);
570 
571 	return error;
572 }
573 
574 /**
575  * hibernation_restore - Quiesce devices and restore from a hibernation image.
576  * @platform_mode: If set, use platform driver to prepare for the transition.
577  *
578  * This routine must be called with system_transition_mutex held.  If it is
579  * successful, control reappears in the restored target kernel in
580  * hibernation_snapshot().
581  */
582 int hibernation_restore(int platform_mode)
583 {
584 	int error;
585 
586 	pm_prepare_console();
587 	console_suspend_all();
588 	pm_restrict_gfp_mask();
589 	error = dpm_suspend_start(PMSG_QUIESCE);
590 	if (!error) {
591 		error = resume_target_kernel(platform_mode);
592 		/*
593 		 * The above should either succeed and jump to the new kernel,
594 		 * or return with an error. Otherwise things are just
595 		 * undefined, so let's be paranoid.
596 		 */
597 		BUG_ON(!error);
598 	}
599 	dpm_resume_end(PMSG_RECOVER);
600 	pm_restore_gfp_mask();
601 	console_resume_all();
602 	pm_restore_console();
603 	return error;
604 }
605 
606 /**
607  * hibernation_platform_enter - Power off the system using the platform driver.
608  */
609 int hibernation_platform_enter(void)
610 {
611 	int error;
612 
613 	if (!hibernation_ops)
614 		return -ENOSYS;
615 
616 	/*
617 	 * We have cancelled the power transition by running
618 	 * hibernation_ops->finish() before saving the image, so we should let
619 	 * the firmware know that we're going to enter the sleep state after all
620 	 */
621 	error = hibernation_ops->begin(PMSG_HIBERNATE);
622 	if (error)
623 		goto Close;
624 
625 	entering_platform_hibernation = true;
626 	console_suspend_all();
627 	error = dpm_suspend_start(PMSG_HIBERNATE);
628 	if (error) {
629 		if (hibernation_ops->recover)
630 			hibernation_ops->recover();
631 		goto Resume_devices;
632 	}
633 
634 	error = dpm_suspend_end(PMSG_HIBERNATE);
635 	if (error)
636 		goto Resume_devices;
637 
638 	error = hibernation_ops->prepare();
639 	if (error)
640 		goto Platform_finish;
641 
642 	error = pm_sleep_disable_secondary_cpus();
643 	if (error)
644 		goto Enable_cpus;
645 
646 	local_irq_disable();
647 	system_state = SYSTEM_SUSPEND;
648 
649 	error = syscore_suspend();
650 	if (error)
651 		goto Enable_irqs;
652 
653 	if (pm_wakeup_pending()) {
654 		error = -EAGAIN;
655 		goto Power_up;
656 	}
657 
658 	hibernation_ops->enter();
659 	/* We should never get here */
660 	while (1);
661 
662  Power_up:
663 	syscore_resume();
664  Enable_irqs:
665 	system_state = SYSTEM_RUNNING;
666 	local_irq_enable();
667 
668  Enable_cpus:
669 	pm_sleep_enable_secondary_cpus();
670 
671  Platform_finish:
672 	hibernation_ops->finish();
673 
674 	dpm_resume_start(PMSG_RESTORE);
675 
676  Resume_devices:
677 	entering_platform_hibernation = false;
678 	dpm_resume_end(PMSG_RESTORE);
679 	console_resume_all();
680 
681  Close:
682 	hibernation_ops->end();
683 
684 	return error;
685 }
686 
687 /**
688  * power_down - Shut the machine down for hibernation.
689  *
690  * Use the platform driver, if configured, to put the system into the sleep
691  * state corresponding to hibernation, or try to power it off or reboot,
692  * depending on the value of hibernation_mode.
693  */
694 static void power_down(void)
695 {
696 	int error;
697 
698 #ifdef CONFIG_SUSPEND
699 	if (hibernation_mode == HIBERNATION_SUSPEND) {
700 		error = suspend_devices_and_enter(mem_sleep_current);
701 		if (error) {
702 			hibernation_mode = hibernation_ops ?
703 						HIBERNATION_PLATFORM :
704 						HIBERNATION_SHUTDOWN;
705 		} else {
706 			/* Restore swap signature. */
707 			error = swsusp_unmark();
708 			if (error)
709 				pr_err("Swap will be unusable! Try swapon -a.\n");
710 
711 			return;
712 		}
713 	}
714 #endif
715 
716 	switch (hibernation_mode) {
717 	case HIBERNATION_REBOOT:
718 		kernel_restart(NULL);
719 		break;
720 	case HIBERNATION_PLATFORM:
721 		error = hibernation_platform_enter();
722 		if (error == -EAGAIN || error == -EBUSY) {
723 			swsusp_unmark();
724 			events_check_enabled = false;
725 			pr_info("Wakeup event detected during hibernation, rolling back.\n");
726 			return;
727 		}
728 		fallthrough;
729 	case HIBERNATION_SHUTDOWN:
730 		if (kernel_can_power_off()) {
731 			entering_platform_hibernation = true;
732 			kernel_power_off();
733 			entering_platform_hibernation = false;
734 		}
735 		break;
736 	}
737 	kernel_halt();
738 	/*
739 	 * Valid image is on the disk, if we continue we risk serious data
740 	 * corruption after resume.
741 	 */
742 	pr_crit("Power down manually\n");
743 	while (1)
744 		cpu_relax();
745 }
746 
747 static int load_image_and_restore(void)
748 {
749 	int error;
750 	unsigned int flags;
751 
752 	pm_pr_dbg("Loading hibernation image.\n");
753 
754 	lock_device_hotplug();
755 	error = create_basic_memory_bitmaps();
756 	if (error) {
757 		swsusp_close();
758 		goto Unlock;
759 	}
760 
761 	error = swsusp_read(&flags);
762 	swsusp_close();
763 	if (!error)
764 		error = hibernation_restore(flags & SF_PLATFORM_MODE);
765 
766 	pr_err("Failed to load image, recovering.\n");
767 	swsusp_free();
768 	free_basic_memory_bitmaps();
769  Unlock:
770 	unlock_device_hotplug();
771 
772 	return error;
773 }
774 
775 #define COMPRESSION_ALGO_LZO "lzo"
776 #define COMPRESSION_ALGO_LZ4 "lz4"
777 
778 /**
779  * hibernate - Carry out system hibernation, including saving the image.
780  */
781 int hibernate(void)
782 {
783 	bool snapshot_test = false;
784 	unsigned int sleep_flags;
785 	int error;
786 
787 	if (!hibernation_available()) {
788 		pm_pr_dbg("Hibernation not available.\n");
789 		return -EPERM;
790 	}
791 
792 	/*
793 	 * Query for the compression algorithm support if compression is enabled.
794 	 */
795 	if (!nocompress) {
796 		strscpy(hib_comp_algo, hibernate_compressor);
797 		if (!crypto_has_acomp(hib_comp_algo, 0, CRYPTO_ALG_ASYNC)) {
798 			pr_err("%s compression is not available\n", hib_comp_algo);
799 			return -EOPNOTSUPP;
800 		}
801 	}
802 
803 	sleep_flags = lock_system_sleep();
804 	/* The snapshot device should not be opened while we're running */
805 	if (!hibernate_acquire()) {
806 		error = -EBUSY;
807 		goto Unlock;
808 	}
809 
810 	pr_info("hibernation entry\n");
811 	pm_prepare_console();
812 	error = pm_notifier_call_chain_robust(PM_HIBERNATION_PREPARE, PM_POST_HIBERNATION);
813 	if (error)
814 		goto Restore;
815 
816 	ksys_sync_helper();
817 	if (filesystem_freeze_enabled)
818 		filesystems_freeze();
819 
820 	error = freeze_processes();
821 	if (error)
822 		goto Exit;
823 
824 	lock_device_hotplug();
825 	/* Allocate memory management structures */
826 	error = create_basic_memory_bitmaps();
827 	if (error)
828 		goto Thaw;
829 
830 	error = hibernation_snapshot(hibernation_mode == HIBERNATION_PLATFORM);
831 	if (error || freezer_test_done)
832 		goto Free_bitmaps;
833 
834 	if (in_suspend) {
835 		unsigned int flags = 0;
836 
837 		if (hibernation_mode == HIBERNATION_PLATFORM)
838 			flags |= SF_PLATFORM_MODE;
839 		if (nocompress) {
840 			flags |= SF_NOCOMPRESS_MODE;
841 		} else {
842 		        flags |= SF_CRC32_MODE;
843 
844 			/*
845 			 * By default, LZO compression is enabled. Use SF_COMPRESSION_ALG_LZ4
846 			 * to override this behaviour and use LZ4.
847 			 *
848 			 * Refer kernel/power/power.h for more details
849 			 */
850 
851 			if (!strcmp(hib_comp_algo, COMPRESSION_ALGO_LZ4))
852 				flags |= SF_COMPRESSION_ALG_LZ4;
853 			else
854 				flags |= SF_COMPRESSION_ALG_LZO;
855 		}
856 
857 		pm_pr_dbg("Writing hibernation image.\n");
858 		error = swsusp_write(flags);
859 		swsusp_free();
860 		if (!error) {
861 			if (hibernation_mode == HIBERNATION_TEST_RESUME)
862 				snapshot_test = true;
863 			else
864 				power_down();
865 		}
866 		in_suspend = 0;
867 		pm_restore_gfp_mask();
868 	} else {
869 		pm_pr_dbg("Hibernation image restored successfully.\n");
870 	}
871 
872  Free_bitmaps:
873 	free_basic_memory_bitmaps();
874  Thaw:
875 	unlock_device_hotplug();
876 	if (snapshot_test) {
877 		pm_pr_dbg("Checking hibernation image\n");
878 		error = swsusp_check(false);
879 		if (!error)
880 			error = load_image_and_restore();
881 	}
882 	thaw_processes();
883 
884 	/* Don't bother checking whether freezer_test_done is true */
885 	freezer_test_done = false;
886  Exit:
887 	filesystems_thaw();
888 	pm_notifier_call_chain(PM_POST_HIBERNATION);
889  Restore:
890 	pm_restore_console();
891 	hibernate_release();
892  Unlock:
893 	unlock_system_sleep(sleep_flags);
894 	pr_info("hibernation exit\n");
895 
896 	return error;
897 }
898 
899 /**
900  * hibernate_quiet_exec - Execute a function with all devices frozen.
901  * @func: Function to execute.
902  * @data: Data pointer to pass to @func.
903  *
904  * Return the @func return value or an error code if it cannot be executed.
905  */
906 int hibernate_quiet_exec(int (*func)(void *data), void *data)
907 {
908 	unsigned int sleep_flags;
909 	int error;
910 
911 	sleep_flags = lock_system_sleep();
912 
913 	if (!hibernate_acquire()) {
914 		error = -EBUSY;
915 		goto unlock;
916 	}
917 
918 	pm_prepare_console();
919 
920 	error = pm_notifier_call_chain_robust(PM_HIBERNATION_PREPARE, PM_POST_HIBERNATION);
921 	if (error)
922 		goto restore;
923 
924 	if (filesystem_freeze_enabled)
925 		filesystems_freeze();
926 
927 	error = freeze_processes();
928 	if (error)
929 		goto exit;
930 
931 	lock_device_hotplug();
932 
933 	pm_suspend_clear_flags();
934 
935 	error = platform_begin(true);
936 	if (error)
937 		goto thaw;
938 
939 	error = freeze_kernel_threads();
940 	if (error)
941 		goto thaw;
942 
943 	error = dpm_prepare(PMSG_FREEZE);
944 	if (error)
945 		goto dpm_complete;
946 
947 	console_suspend_all();
948 
949 	error = dpm_suspend(PMSG_FREEZE);
950 	if (error)
951 		goto dpm_resume;
952 
953 	error = dpm_suspend_end(PMSG_FREEZE);
954 	if (error)
955 		goto dpm_resume;
956 
957 	error = platform_pre_snapshot(true);
958 	if (error)
959 		goto skip;
960 
961 	error = func(data);
962 
963 skip:
964 	platform_finish(true);
965 
966 	dpm_resume_start(PMSG_THAW);
967 
968 dpm_resume:
969 	dpm_resume(PMSG_THAW);
970 
971 	console_resume_all();
972 
973 dpm_complete:
974 	dpm_complete(PMSG_THAW);
975 
976 	thaw_kernel_threads();
977 
978 thaw:
979 	platform_end(true);
980 
981 	unlock_device_hotplug();
982 
983 	thaw_processes();
984 
985 exit:
986 	filesystems_thaw();
987 	pm_notifier_call_chain(PM_POST_HIBERNATION);
988 
989 restore:
990 	pm_restore_console();
991 
992 	hibernate_release();
993 
994 unlock:
995 	unlock_system_sleep(sleep_flags);
996 
997 	return error;
998 }
999 EXPORT_SYMBOL_GPL(hibernate_quiet_exec);
1000 
1001 static int __init find_resume_device(void)
1002 {
1003 	if (!strlen(resume_file))
1004 		return -ENOENT;
1005 
1006 	pm_pr_dbg("Checking hibernation image partition %s\n", resume_file);
1007 
1008 	if (resume_delay) {
1009 		pr_info("Waiting %dsec before reading resume device ...\n",
1010 			resume_delay);
1011 		ssleep(resume_delay);
1012 	}
1013 
1014 	/* Check if the device is there */
1015 	if (!early_lookup_bdev(resume_file, &swsusp_resume_device))
1016 		return 0;
1017 
1018 	/*
1019 	 * Some device discovery might still be in progress; we need to wait for
1020 	 * this to finish.
1021 	 */
1022 	wait_for_device_probe();
1023 	if (resume_wait) {
1024 		while (early_lookup_bdev(resume_file, &swsusp_resume_device))
1025 			msleep(10);
1026 		async_synchronize_full();
1027 	}
1028 
1029 	return early_lookup_bdev(resume_file, &swsusp_resume_device);
1030 }
1031 
1032 static int software_resume(void)
1033 {
1034 	int error;
1035 
1036 	pm_pr_dbg("Hibernation image partition %d:%d present\n",
1037 		MAJOR(swsusp_resume_device), MINOR(swsusp_resume_device));
1038 
1039 	pm_pr_dbg("Looking for hibernation image.\n");
1040 
1041 	mutex_lock(&system_transition_mutex);
1042 	error = swsusp_check(true);
1043 	if (error)
1044 		goto Unlock;
1045 
1046 	/*
1047 	 * Check if the hibernation image is compressed. If so, query for
1048 	 * the algorithm support.
1049 	 */
1050 	if (!(swsusp_header_flags & SF_NOCOMPRESS_MODE)) {
1051 		if (swsusp_header_flags & SF_COMPRESSION_ALG_LZ4)
1052 			strscpy(hib_comp_algo, COMPRESSION_ALGO_LZ4);
1053 		else
1054 			strscpy(hib_comp_algo, COMPRESSION_ALGO_LZO);
1055 		if (!crypto_has_acomp(hib_comp_algo, 0, CRYPTO_ALG_ASYNC)) {
1056 			pr_err("%s compression is not available\n", hib_comp_algo);
1057 			error = -EOPNOTSUPP;
1058 			goto Unlock;
1059 		}
1060 	}
1061 
1062 	/* The snapshot device should not be opened while we're running */
1063 	if (!hibernate_acquire()) {
1064 		error = -EBUSY;
1065 		swsusp_close();
1066 		goto Unlock;
1067 	}
1068 
1069 	pr_info("resume from hibernation\n");
1070 	pm_prepare_console();
1071 	error = pm_notifier_call_chain_robust(PM_RESTORE_PREPARE, PM_POST_RESTORE);
1072 	if (error)
1073 		goto Restore;
1074 
1075 	if (filesystem_freeze_enabled)
1076 		filesystems_freeze();
1077 
1078 	pm_pr_dbg("Preparing processes for hibernation restore.\n");
1079 	error = freeze_processes();
1080 	if (error) {
1081 		filesystems_thaw();
1082 		goto Close_Finish;
1083 	}
1084 
1085 	error = freeze_kernel_threads();
1086 	if (error) {
1087 		thaw_processes();
1088 		filesystems_thaw();
1089 		goto Close_Finish;
1090 	}
1091 
1092 	error = load_image_and_restore();
1093 	thaw_processes();
1094 	filesystems_thaw();
1095  Finish:
1096 	pm_notifier_call_chain(PM_POST_RESTORE);
1097  Restore:
1098 	pm_restore_console();
1099 	pr_info("resume failed (%d)\n", error);
1100 	hibernate_release();
1101 	/* For success case, the suspend path will release the lock */
1102  Unlock:
1103 	mutex_unlock(&system_transition_mutex);
1104 	pm_pr_dbg("Hibernation image not present or could not be loaded.\n");
1105 	return error;
1106  Close_Finish:
1107 	swsusp_close();
1108 	goto Finish;
1109 }
1110 
1111 /**
1112  * software_resume_initcall - Resume from a saved hibernation image.
1113  *
1114  * This routine is called as a late initcall, when all devices have been
1115  * discovered and initialized already.
1116  *
1117  * The image reading code is called to see if there is a hibernation image
1118  * available for reading.  If that is the case, devices are quiesced and the
1119  * contents of memory is restored from the saved image.
1120  *
1121  * If this is successful, control reappears in the restored target kernel in
1122  * hibernation_snapshot() which returns to hibernate().  Otherwise, the routine
1123  * attempts to recover gracefully and make the kernel return to the normal mode
1124  * of operation.
1125  */
1126 static int __init software_resume_initcall(void)
1127 {
1128 	/*
1129 	 * If the user said "noresume".. bail out early.
1130 	 */
1131 	if (noresume || !hibernation_available())
1132 		return 0;
1133 
1134 	if (!swsusp_resume_device) {
1135 		int error = find_resume_device();
1136 
1137 		if (error)
1138 			return error;
1139 	}
1140 
1141 	return software_resume();
1142 }
1143 late_initcall_sync(software_resume_initcall);
1144 
1145 
1146 static const char * const hibernation_modes[] = {
1147 	[HIBERNATION_PLATFORM]	= "platform",
1148 	[HIBERNATION_SHUTDOWN]	= "shutdown",
1149 	[HIBERNATION_REBOOT]	= "reboot",
1150 #ifdef CONFIG_SUSPEND
1151 	[HIBERNATION_SUSPEND]	= "suspend",
1152 #endif
1153 	[HIBERNATION_TEST_RESUME]	= "test_resume",
1154 };
1155 
1156 /*
1157  * /sys/power/disk - Control hibernation mode.
1158  *
1159  * Hibernation can be handled in several ways.  There are a few different ways
1160  * to put the system into the sleep state: using the platform driver (e.g. ACPI
1161  * or other hibernation_ops), powering it off or rebooting it (for testing
1162  * mostly).
1163  *
1164  * The sysfs file /sys/power/disk provides an interface for selecting the
1165  * hibernation mode to use.  Reading from this file causes the available modes
1166  * to be printed.  There are 3 modes that can be supported:
1167  *
1168  *	'platform'
1169  *	'shutdown'
1170  *	'reboot'
1171  *
1172  * If a platform hibernation driver is in use, 'platform' will be supported
1173  * and will be used by default.  Otherwise, 'shutdown' will be used by default.
1174  * The selected option (i.e. the one corresponding to the current value of
1175  * hibernation_mode) is enclosed by a square bracket.
1176  *
1177  * To select a given hibernation mode it is necessary to write the mode's
1178  * string representation (as returned by reading from /sys/power/disk) back
1179  * into /sys/power/disk.
1180  */
1181 
1182 static ssize_t disk_show(struct kobject *kobj, struct kobj_attribute *attr,
1183 			 char *buf)
1184 {
1185 	ssize_t count = 0;
1186 	int i;
1187 
1188 	if (!hibernation_available())
1189 		return sysfs_emit(buf, "[disabled]\n");
1190 
1191 	for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) {
1192 		if (!hibernation_modes[i])
1193 			continue;
1194 		switch (i) {
1195 		case HIBERNATION_SHUTDOWN:
1196 		case HIBERNATION_REBOOT:
1197 #ifdef CONFIG_SUSPEND
1198 		case HIBERNATION_SUSPEND:
1199 #endif
1200 		case HIBERNATION_TEST_RESUME:
1201 			break;
1202 		case HIBERNATION_PLATFORM:
1203 			if (hibernation_ops)
1204 				break;
1205 			/* not a valid mode, continue with loop */
1206 			continue;
1207 		}
1208 		if (i == hibernation_mode)
1209 			count += sysfs_emit_at(buf, count, "[%s] ", hibernation_modes[i]);
1210 		else
1211 			count += sysfs_emit_at(buf, count, "%s ", hibernation_modes[i]);
1212 	}
1213 
1214 	/* Convert the last space to a newline if needed. */
1215 	if (count > 0)
1216 		buf[count - 1] = '\n';
1217 
1218 	return count;
1219 }
1220 
1221 static ssize_t disk_store(struct kobject *kobj, struct kobj_attribute *attr,
1222 			  const char *buf, size_t n)
1223 {
1224 	int mode = HIBERNATION_INVALID;
1225 	unsigned int sleep_flags;
1226 	int error = 0;
1227 	int len;
1228 	char *p;
1229 	int i;
1230 
1231 	if (!hibernation_available())
1232 		return -EPERM;
1233 
1234 	p = memchr(buf, '\n', n);
1235 	len = p ? p - buf : n;
1236 
1237 	sleep_flags = lock_system_sleep();
1238 	for (i = HIBERNATION_FIRST; i <= HIBERNATION_MAX; i++) {
1239 		if (len == strlen(hibernation_modes[i])
1240 		    && !strncmp(buf, hibernation_modes[i], len)) {
1241 			mode = i;
1242 			break;
1243 		}
1244 	}
1245 	if (mode != HIBERNATION_INVALID) {
1246 		switch (mode) {
1247 		case HIBERNATION_SHUTDOWN:
1248 		case HIBERNATION_REBOOT:
1249 #ifdef CONFIG_SUSPEND
1250 		case HIBERNATION_SUSPEND:
1251 #endif
1252 		case HIBERNATION_TEST_RESUME:
1253 			hibernation_mode = mode;
1254 			break;
1255 		case HIBERNATION_PLATFORM:
1256 			if (hibernation_ops)
1257 				hibernation_mode = mode;
1258 			else
1259 				error = -EINVAL;
1260 		}
1261 	} else
1262 		error = -EINVAL;
1263 
1264 	if (!error)
1265 		pm_pr_dbg("Hibernation mode set to '%s'\n",
1266 			       hibernation_modes[mode]);
1267 	unlock_system_sleep(sleep_flags);
1268 	return error ? error : n;
1269 }
1270 
1271 power_attr(disk);
1272 
1273 static ssize_t resume_show(struct kobject *kobj, struct kobj_attribute *attr,
1274 			   char *buf)
1275 {
1276 	return sysfs_emit(buf, "%d:%d\n", MAJOR(swsusp_resume_device),
1277 			  MINOR(swsusp_resume_device));
1278 }
1279 
1280 static ssize_t resume_store(struct kobject *kobj, struct kobj_attribute *attr,
1281 			    const char *buf, size_t n)
1282 {
1283 	unsigned int sleep_flags;
1284 	int len = n;
1285 	char *name;
1286 	dev_t dev;
1287 	int error;
1288 
1289 	if (!hibernation_available())
1290 		return n;
1291 
1292 	if (len && buf[len-1] == '\n')
1293 		len--;
1294 	name = kstrndup(buf, len, GFP_KERNEL);
1295 	if (!name)
1296 		return -ENOMEM;
1297 
1298 	error = lookup_bdev(name, &dev);
1299 	if (error) {
1300 		unsigned maj, min, offset;
1301 		char *p, dummy;
1302 
1303 		error = 0;
1304 		if (sscanf(name, "%u:%u%c", &maj, &min, &dummy) == 2 ||
1305 		    sscanf(name, "%u:%u:%u:%c", &maj, &min, &offset,
1306 				&dummy) == 3) {
1307 			dev = MKDEV(maj, min);
1308 			if (maj != MAJOR(dev) || min != MINOR(dev))
1309 				error = -EINVAL;
1310 		} else {
1311 			dev = new_decode_dev(simple_strtoul(name, &p, 16));
1312 			if (*p)
1313 				error = -EINVAL;
1314 		}
1315 	}
1316 	kfree(name);
1317 	if (error)
1318 		return error;
1319 
1320 	sleep_flags = lock_system_sleep();
1321 	swsusp_resume_device = dev;
1322 	unlock_system_sleep(sleep_flags);
1323 
1324 	pm_pr_dbg("Configured hibernation resume from disk to %u\n",
1325 		  swsusp_resume_device);
1326 	noresume = 0;
1327 	software_resume();
1328 	return n;
1329 }
1330 
1331 power_attr(resume);
1332 
1333 static ssize_t resume_offset_show(struct kobject *kobj,
1334 				  struct kobj_attribute *attr, char *buf)
1335 {
1336 	return sysfs_emit(buf, "%llu\n", (unsigned long long)swsusp_resume_block);
1337 }
1338 
1339 static ssize_t resume_offset_store(struct kobject *kobj,
1340 				   struct kobj_attribute *attr, const char *buf,
1341 				   size_t n)
1342 {
1343 	unsigned long long offset;
1344 	int rc;
1345 
1346 	rc = kstrtoull(buf, 0, &offset);
1347 	if (rc)
1348 		return rc;
1349 	swsusp_resume_block = offset;
1350 
1351 	return n;
1352 }
1353 
1354 power_attr(resume_offset);
1355 
1356 static ssize_t image_size_show(struct kobject *kobj, struct kobj_attribute *attr,
1357 			       char *buf)
1358 {
1359 	return sysfs_emit(buf, "%lu\n", image_size);
1360 }
1361 
1362 static ssize_t image_size_store(struct kobject *kobj, struct kobj_attribute *attr,
1363 				const char *buf, size_t n)
1364 {
1365 	unsigned long size;
1366 
1367 	if (sscanf(buf, "%lu", &size) == 1) {
1368 		image_size = size;
1369 		return n;
1370 	}
1371 
1372 	return -EINVAL;
1373 }
1374 
1375 power_attr(image_size);
1376 
1377 static ssize_t reserved_size_show(struct kobject *kobj,
1378 				  struct kobj_attribute *attr, char *buf)
1379 {
1380 	return sysfs_emit(buf, "%lu\n", reserved_size);
1381 }
1382 
1383 static ssize_t reserved_size_store(struct kobject *kobj,
1384 				   struct kobj_attribute *attr,
1385 				   const char *buf, size_t n)
1386 {
1387 	unsigned long size;
1388 
1389 	if (sscanf(buf, "%lu", &size) == 1) {
1390 		reserved_size = size;
1391 		return n;
1392 	}
1393 
1394 	return -EINVAL;
1395 }
1396 
1397 power_attr(reserved_size);
1398 
1399 static struct attribute *g[] = {
1400 	&disk_attr.attr,
1401 	&resume_offset_attr.attr,
1402 	&resume_attr.attr,
1403 	&image_size_attr.attr,
1404 	&reserved_size_attr.attr,
1405 	NULL,
1406 };
1407 
1408 
1409 static const struct attribute_group attr_group = {
1410 	.attrs = g,
1411 };
1412 
1413 
1414 static int __init pm_disk_init(void)
1415 {
1416 	return sysfs_create_group(power_kobj, &attr_group);
1417 }
1418 
1419 core_initcall(pm_disk_init);
1420 
1421 
1422 static int __init resume_setup(char *str)
1423 {
1424 	if (noresume)
1425 		return 1;
1426 
1427 	strscpy(resume_file, str);
1428 	return 1;
1429 }
1430 
1431 static int __init resume_offset_setup(char *str)
1432 {
1433 	unsigned long long offset;
1434 
1435 	if (noresume)
1436 		return 1;
1437 
1438 	if (sscanf(str, "%llu", &offset) == 1)
1439 		swsusp_resume_block = offset;
1440 
1441 	return 1;
1442 }
1443 
1444 static int __init hibernate_setup(char *str)
1445 {
1446 	if (!strncmp(str, "noresume", 8)) {
1447 		noresume = 1;
1448 	} else if (!strncmp(str, "nocompress", 10)) {
1449 		nocompress = 1;
1450 	} else if (!strncmp(str, "no", 2)) {
1451 		noresume = 1;
1452 		nohibernate = 1;
1453 	} else if (IS_ENABLED(CONFIG_STRICT_KERNEL_RWX)
1454 		   && !strncmp(str, "protect_image", 13)) {
1455 		enable_restore_image_protection();
1456 	}
1457 	return 1;
1458 }
1459 
1460 static int __init noresume_setup(char *str)
1461 {
1462 	noresume = 1;
1463 	return 1;
1464 }
1465 
1466 static int __init resumewait_setup(char *str)
1467 {
1468 	resume_wait = 1;
1469 	return 1;
1470 }
1471 
1472 static int __init resumedelay_setup(char *str)
1473 {
1474 	int rc = kstrtouint(str, 0, &resume_delay);
1475 
1476 	if (rc)
1477 		pr_warn("resumedelay: bad option string '%s'\n", str);
1478 	return 1;
1479 }
1480 
1481 static int __init nohibernate_setup(char *str)
1482 {
1483 	noresume = 1;
1484 	nohibernate = 1;
1485 	return 1;
1486 }
1487 
1488 static const char * const comp_alg_enabled[] = {
1489 #if IS_ENABLED(CONFIG_CRYPTO_LZO)
1490 	COMPRESSION_ALGO_LZO,
1491 #endif
1492 #if IS_ENABLED(CONFIG_CRYPTO_LZ4)
1493 	COMPRESSION_ALGO_LZ4,
1494 #endif
1495 };
1496 
1497 static int hibernate_compressor_param_set(const char *compressor,
1498 		const struct kernel_param *kp)
1499 {
1500 	int index, ret;
1501 
1502 	if (!mutex_trylock(&system_transition_mutex))
1503 		return -EBUSY;
1504 
1505 	index = sysfs_match_string(comp_alg_enabled, compressor);
1506 	if (index >= 0) {
1507 		ret = param_set_copystring(comp_alg_enabled[index], kp);
1508 		if (!ret)
1509 			strscpy(hib_comp_algo, comp_alg_enabled[index]);
1510 	} else {
1511 		ret = index;
1512 	}
1513 
1514 	mutex_unlock(&system_transition_mutex);
1515 
1516 	if (ret)
1517 		pr_debug("Cannot set specified compressor %s\n",
1518 			 compressor);
1519 
1520 	return ret;
1521 }
1522 
1523 static const struct kernel_param_ops hibernate_compressor_param_ops = {
1524 	.set    = hibernate_compressor_param_set,
1525 	.get    = param_get_string,
1526 };
1527 
1528 static struct kparam_string hibernate_compressor_param_string = {
1529 	.maxlen = sizeof(hibernate_compressor),
1530 	.string = hibernate_compressor,
1531 };
1532 
1533 module_param_cb(compressor, &hibernate_compressor_param_ops,
1534 		&hibernate_compressor_param_string, 0644);
1535 MODULE_PARM_DESC(compressor,
1536 		 "Compression algorithm to be used with hibernation");
1537 
1538 __setup("noresume", noresume_setup);
1539 __setup("resume_offset=", resume_offset_setup);
1540 __setup("resume=", resume_setup);
1541 __setup("hibernate=", hibernate_setup);
1542 __setup("resumewait", resumewait_setup);
1543 __setup("resumedelay=", resumedelay_setup);
1544 __setup("nohibernate", nohibernate_setup);
1545