1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * linux/kernel/reboot.c
4 *
5 * Copyright (C) 2013 Linus Torvalds
6 */
7
8 #define pr_fmt(fmt) "reboot: " fmt
9
10 #include <linux/atomic.h>
11 #include <linux/ctype.h>
12 #include <linux/export.h>
13 #include <linux/kexec.h>
14 #include <linux/kmod.h>
15 #include <linux/kmsg_dump.h>
16 #include <linux/reboot.h>
17 #include <linux/suspend.h>
18 #include <linux/syscalls.h>
19 #include <linux/syscore_ops.h>
20 #include <linux/uaccess.h>
21
22 /*
23 * this indicates whether you can reboot with ctrl-alt-del: the default is yes
24 */
25
26 static int C_A_D = 1;
27 struct pid *cad_pid;
28 EXPORT_SYMBOL(cad_pid);
29
30 #if defined(CONFIG_ARM)
31 #define DEFAULT_REBOOT_MODE = REBOOT_HARD
32 #else
33 #define DEFAULT_REBOOT_MODE
34 #endif
35 enum reboot_mode reboot_mode DEFAULT_REBOOT_MODE;
36 EXPORT_SYMBOL_GPL(reboot_mode);
37 enum reboot_mode panic_reboot_mode = REBOOT_UNDEFINED;
38
39 /*
40 * This variable is used privately to keep track of whether or not
41 * reboot_type is still set to its default value (i.e., reboot= hasn't
42 * been set on the command line). This is needed so that we can
43 * suppress DMI scanning for reboot quirks. Without it, it's
44 * impossible to override a faulty reboot quirk without recompiling.
45 */
46 int reboot_default = 1;
47 int reboot_cpu;
48 enum reboot_type reboot_type = BOOT_ACPI;
49 int reboot_force;
50
51 struct sys_off_handler {
52 struct notifier_block nb;
53 int (*sys_off_cb)(struct sys_off_data *data);
54 void *cb_data;
55 enum sys_off_mode mode;
56 bool blocking;
57 void *list;
58 struct device *dev;
59 };
60
61 /*
62 * This variable is used to indicate if a halt was initiated instead of a
63 * reboot when the reboot call was invoked with LINUX_REBOOT_CMD_POWER_OFF, but
64 * the system cannot be powered off. This allowes kernel_halt() to notify users
65 * of that.
66 */
67 static bool poweroff_fallback_to_halt;
68
69 /*
70 * Temporary stub that prevents linkage failure while we're in process
71 * of removing all uses of legacy pm_power_off() around the kernel.
72 */
73 void __weak (*pm_power_off)(void);
74
75 /*
76 * Notifier list for kernel code which wants to be called
77 * at shutdown. This is used to stop any idling DMA operations
78 * and the like.
79 */
80 static BLOCKING_NOTIFIER_HEAD(reboot_notifier_list);
81
82 /**
83 * emergency_restart - reboot the system
84 *
85 * Without shutting down any hardware or taking any locks
86 * reboot the system. This is called when we know we are in
87 * trouble so this is our best effort to reboot. This is
88 * safe to call in interrupt context.
89 */
emergency_restart(void)90 void emergency_restart(void)
91 {
92 kmsg_dump(KMSG_DUMP_EMERG);
93 system_state = SYSTEM_RESTART;
94 machine_emergency_restart();
95 }
96 EXPORT_SYMBOL_GPL(emergency_restart);
97
kernel_restart_prepare(char * cmd)98 void kernel_restart_prepare(char *cmd)
99 {
100 blocking_notifier_call_chain(&reboot_notifier_list, SYS_RESTART, cmd);
101 system_state = SYSTEM_RESTART;
102 usermodehelper_disable();
103 device_shutdown();
104 }
105
106 /**
107 * register_reboot_notifier - Register function to be called at reboot time
108 * @nb: Info about notifier function to be called
109 *
110 * Registers a function with the list of functions
111 * to be called at reboot time.
112 *
113 * Currently always returns zero, as blocking_notifier_chain_register()
114 * always returns zero.
115 */
register_reboot_notifier(struct notifier_block * nb)116 int register_reboot_notifier(struct notifier_block *nb)
117 {
118 return blocking_notifier_chain_register(&reboot_notifier_list, nb);
119 }
120 EXPORT_SYMBOL(register_reboot_notifier);
121
122 /**
123 * unregister_reboot_notifier - Unregister previously registered reboot notifier
124 * @nb: Hook to be unregistered
125 *
126 * Unregisters a previously registered reboot
127 * notifier function.
128 *
129 * Returns zero on success, or %-ENOENT on failure.
130 */
unregister_reboot_notifier(struct notifier_block * nb)131 int unregister_reboot_notifier(struct notifier_block *nb)
132 {
133 return blocking_notifier_chain_unregister(&reboot_notifier_list, nb);
134 }
135 EXPORT_SYMBOL(unregister_reboot_notifier);
136
devm_unregister_reboot_notifier(struct device * dev,void * res)137 static void devm_unregister_reboot_notifier(struct device *dev, void *res)
138 {
139 WARN_ON(unregister_reboot_notifier(*(struct notifier_block **)res));
140 }
141
devm_register_reboot_notifier(struct device * dev,struct notifier_block * nb)142 int devm_register_reboot_notifier(struct device *dev, struct notifier_block *nb)
143 {
144 struct notifier_block **rcnb;
145 int ret;
146
147 rcnb = devres_alloc(devm_unregister_reboot_notifier,
148 sizeof(*rcnb), GFP_KERNEL);
149 if (!rcnb)
150 return -ENOMEM;
151
152 ret = register_reboot_notifier(nb);
153 if (!ret) {
154 *rcnb = nb;
155 devres_add(dev, rcnb);
156 } else {
157 devres_free(rcnb);
158 }
159
160 return ret;
161 }
162 EXPORT_SYMBOL(devm_register_reboot_notifier);
163
164 /*
165 * Notifier list for kernel code which wants to be called
166 * to restart the system.
167 */
168 static ATOMIC_NOTIFIER_HEAD(restart_handler_list);
169
170 /**
171 * register_restart_handler - Register function to be called to reset
172 * the system
173 * @nb: Info about handler function to be called
174 * @nb->priority: Handler priority. Handlers should follow the
175 * following guidelines for setting priorities.
176 * 0: Restart handler of last resort,
177 * with limited restart capabilities
178 * 128: Default restart handler; use if no other
179 * restart handler is expected to be available,
180 * and/or if restart functionality is
181 * sufficient to restart the entire system
182 * 255: Highest priority restart handler, will
183 * preempt all other restart handlers
184 *
185 * Registers a function with code to be called to restart the
186 * system.
187 *
188 * Registered functions will be called from machine_restart as last
189 * step of the restart sequence (if the architecture specific
190 * machine_restart function calls do_kernel_restart - see below
191 * for details).
192 * Registered functions are expected to restart the system immediately.
193 * If more than one function is registered, the restart handler priority
194 * selects which function will be called first.
195 *
196 * Restart handlers are expected to be registered from non-architecture
197 * code, typically from drivers. A typical use case would be a system
198 * where restart functionality is provided through a watchdog. Multiple
199 * restart handlers may exist; for example, one restart handler might
200 * restart the entire system, while another only restarts the CPU.
201 * In such cases, the restart handler which only restarts part of the
202 * hardware is expected to register with low priority to ensure that
203 * it only runs if no other means to restart the system is available.
204 *
205 * Currently always returns zero, as atomic_notifier_chain_register()
206 * always returns zero.
207 */
register_restart_handler(struct notifier_block * nb)208 int register_restart_handler(struct notifier_block *nb)
209 {
210 return atomic_notifier_chain_register(&restart_handler_list, nb);
211 }
212 EXPORT_SYMBOL(register_restart_handler);
213
214 /**
215 * unregister_restart_handler - Unregister previously registered
216 * restart handler
217 * @nb: Hook to be unregistered
218 *
219 * Unregisters a previously registered restart handler function.
220 *
221 * Returns zero on success, or %-ENOENT on failure.
222 */
unregister_restart_handler(struct notifier_block * nb)223 int unregister_restart_handler(struct notifier_block *nb)
224 {
225 return atomic_notifier_chain_unregister(&restart_handler_list, nb);
226 }
227 EXPORT_SYMBOL(unregister_restart_handler);
228
229 /**
230 * do_kernel_restart - Execute kernel restart handler call chain
231 *
232 * Calls functions registered with register_restart_handler.
233 *
234 * Expected to be called from machine_restart as last step of the restart
235 * sequence.
236 *
237 * Restarts the system immediately if a restart handler function has been
238 * registered. Otherwise does nothing.
239 */
do_kernel_restart(char * cmd)240 void do_kernel_restart(char *cmd)
241 {
242 atomic_notifier_call_chain(&restart_handler_list, reboot_mode, cmd);
243 }
244
migrate_to_reboot_cpu(void)245 void migrate_to_reboot_cpu(void)
246 {
247 /* The boot cpu is always logical cpu 0 */
248 int cpu = reboot_cpu;
249
250 cpu_hotplug_disable();
251
252 /* Make certain the cpu I'm about to reboot on is online */
253 if (!cpu_online(cpu))
254 cpu = cpumask_first(cpu_online_mask);
255
256 /* Prevent races with other tasks migrating this task */
257 current->flags |= PF_NO_SETAFFINITY;
258
259 /* Make certain I only run on the appropriate processor */
260 set_cpus_allowed_ptr(current, cpumask_of(cpu));
261 }
262
263 /*
264 * Notifier list for kernel code which wants to be called
265 * to prepare system for restart.
266 */
267 static BLOCKING_NOTIFIER_HEAD(restart_prep_handler_list);
268
do_kernel_restart_prepare(void)269 static void do_kernel_restart_prepare(void)
270 {
271 blocking_notifier_call_chain(&restart_prep_handler_list, 0, NULL);
272 }
273
274 /**
275 * kernel_restart - reboot the system
276 * @cmd: pointer to buffer containing command to execute for restart
277 * or %NULL
278 *
279 * Shutdown everything and perform a clean reboot.
280 * This is not safe to call in interrupt context.
281 */
kernel_restart(char * cmd)282 void kernel_restart(char *cmd)
283 {
284 kernel_restart_prepare(cmd);
285 do_kernel_restart_prepare();
286 migrate_to_reboot_cpu();
287 syscore_shutdown();
288 if (!cmd)
289 pr_emerg("Restarting system\n");
290 else
291 pr_emerg("Restarting system with command '%s'\n", cmd);
292 kmsg_dump(KMSG_DUMP_SHUTDOWN);
293 machine_restart(cmd);
294 }
295 EXPORT_SYMBOL_GPL(kernel_restart);
296
kernel_shutdown_prepare(enum system_states state)297 static void kernel_shutdown_prepare(enum system_states state)
298 {
299 blocking_notifier_call_chain(&reboot_notifier_list,
300 (state == SYSTEM_HALT) ? SYS_HALT : SYS_POWER_OFF, NULL);
301 system_state = state;
302 usermodehelper_disable();
303 device_shutdown();
304 }
305 /**
306 * kernel_halt - halt the system
307 *
308 * Shutdown everything and perform a clean system halt.
309 */
kernel_halt(void)310 void kernel_halt(void)
311 {
312 kernel_shutdown_prepare(SYSTEM_HALT);
313 migrate_to_reboot_cpu();
314 syscore_shutdown();
315 if (poweroff_fallback_to_halt)
316 pr_emerg("Power off not available: System halted instead\n");
317 else
318 pr_emerg("System halted\n");
319 kmsg_dump(KMSG_DUMP_SHUTDOWN);
320 machine_halt();
321 }
322 EXPORT_SYMBOL_GPL(kernel_halt);
323
324 /*
325 * Notifier list for kernel code which wants to be called
326 * to prepare system for power off.
327 */
328 static BLOCKING_NOTIFIER_HEAD(power_off_prep_handler_list);
329
330 /*
331 * Notifier list for kernel code which wants to be called
332 * to power off system.
333 */
334 static ATOMIC_NOTIFIER_HEAD(power_off_handler_list);
335
sys_off_notify(struct notifier_block * nb,unsigned long mode,void * cmd)336 static int sys_off_notify(struct notifier_block *nb,
337 unsigned long mode, void *cmd)
338 {
339 struct sys_off_handler *handler;
340 struct sys_off_data data = {};
341
342 handler = container_of(nb, struct sys_off_handler, nb);
343 data.cb_data = handler->cb_data;
344 data.mode = mode;
345 data.cmd = cmd;
346 data.dev = handler->dev;
347
348 return handler->sys_off_cb(&data);
349 }
350
351 static struct sys_off_handler platform_sys_off_handler;
352
alloc_sys_off_handler(int priority)353 static struct sys_off_handler *alloc_sys_off_handler(int priority)
354 {
355 struct sys_off_handler *handler;
356 gfp_t flags;
357
358 /*
359 * Platforms like m68k can't allocate sys_off handler dynamically
360 * at the early boot time because memory allocator isn't available yet.
361 */
362 if (priority == SYS_OFF_PRIO_PLATFORM) {
363 handler = &platform_sys_off_handler;
364 if (handler->cb_data)
365 return ERR_PTR(-EBUSY);
366 } else {
367 if (system_state > SYSTEM_RUNNING)
368 flags = GFP_ATOMIC;
369 else
370 flags = GFP_KERNEL;
371
372 handler = kzalloc(sizeof(*handler), flags);
373 if (!handler)
374 return ERR_PTR(-ENOMEM);
375 }
376
377 return handler;
378 }
379
free_sys_off_handler(struct sys_off_handler * handler)380 static void free_sys_off_handler(struct sys_off_handler *handler)
381 {
382 if (handler == &platform_sys_off_handler)
383 memset(handler, 0, sizeof(*handler));
384 else
385 kfree(handler);
386 }
387
388 /**
389 * register_sys_off_handler - Register sys-off handler
390 * @mode: Sys-off mode
391 * @priority: Handler priority
392 * @callback: Callback function
393 * @cb_data: Callback argument
394 *
395 * Registers system power-off or restart handler that will be invoked
396 * at the step corresponding to the given sys-off mode. Handler's callback
397 * should return NOTIFY_DONE to permit execution of the next handler in
398 * the call chain or NOTIFY_STOP to break the chain (in error case for
399 * example).
400 *
401 * Multiple handlers can be registered at the default priority level.
402 *
403 * Only one handler can be registered at the non-default priority level,
404 * otherwise ERR_PTR(-EBUSY) is returned.
405 *
406 * Returns a new instance of struct sys_off_handler on success, or
407 * an ERR_PTR()-encoded error code otherwise.
408 */
409 struct sys_off_handler *
register_sys_off_handler(enum sys_off_mode mode,int priority,int (* callback)(struct sys_off_data * data),void * cb_data)410 register_sys_off_handler(enum sys_off_mode mode,
411 int priority,
412 int (*callback)(struct sys_off_data *data),
413 void *cb_data)
414 {
415 struct sys_off_handler *handler;
416 int err;
417
418 handler = alloc_sys_off_handler(priority);
419 if (IS_ERR(handler))
420 return handler;
421
422 switch (mode) {
423 case SYS_OFF_MODE_POWER_OFF_PREPARE:
424 handler->list = &power_off_prep_handler_list;
425 handler->blocking = true;
426 break;
427
428 case SYS_OFF_MODE_POWER_OFF:
429 handler->list = &power_off_handler_list;
430 break;
431
432 case SYS_OFF_MODE_RESTART_PREPARE:
433 handler->list = &restart_prep_handler_list;
434 handler->blocking = true;
435 break;
436
437 case SYS_OFF_MODE_RESTART:
438 handler->list = &restart_handler_list;
439 break;
440
441 default:
442 free_sys_off_handler(handler);
443 return ERR_PTR(-EINVAL);
444 }
445
446 handler->nb.notifier_call = sys_off_notify;
447 handler->nb.priority = priority;
448 handler->sys_off_cb = callback;
449 handler->cb_data = cb_data;
450 handler->mode = mode;
451
452 if (handler->blocking) {
453 if (priority == SYS_OFF_PRIO_DEFAULT)
454 err = blocking_notifier_chain_register(handler->list,
455 &handler->nb);
456 else
457 err = blocking_notifier_chain_register_unique_prio(handler->list,
458 &handler->nb);
459 } else {
460 if (priority == SYS_OFF_PRIO_DEFAULT)
461 err = atomic_notifier_chain_register(handler->list,
462 &handler->nb);
463 else
464 err = atomic_notifier_chain_register_unique_prio(handler->list,
465 &handler->nb);
466 }
467
468 if (err) {
469 free_sys_off_handler(handler);
470 return ERR_PTR(err);
471 }
472
473 return handler;
474 }
475 EXPORT_SYMBOL_GPL(register_sys_off_handler);
476
477 /**
478 * unregister_sys_off_handler - Unregister sys-off handler
479 * @handler: Sys-off handler
480 *
481 * Unregisters given sys-off handler.
482 */
unregister_sys_off_handler(struct sys_off_handler * handler)483 void unregister_sys_off_handler(struct sys_off_handler *handler)
484 {
485 int err;
486
487 if (IS_ERR_OR_NULL(handler))
488 return;
489
490 if (handler->blocking)
491 err = blocking_notifier_chain_unregister(handler->list,
492 &handler->nb);
493 else
494 err = atomic_notifier_chain_unregister(handler->list,
495 &handler->nb);
496
497 /* sanity check, shall never happen */
498 WARN_ON(err);
499
500 free_sys_off_handler(handler);
501 }
502 EXPORT_SYMBOL_GPL(unregister_sys_off_handler);
503
devm_unregister_sys_off_handler(void * data)504 static void devm_unregister_sys_off_handler(void *data)
505 {
506 struct sys_off_handler *handler = data;
507
508 unregister_sys_off_handler(handler);
509 }
510
511 /**
512 * devm_register_sys_off_handler - Register sys-off handler
513 * @dev: Device that registers handler
514 * @mode: Sys-off mode
515 * @priority: Handler priority
516 * @callback: Callback function
517 * @cb_data: Callback argument
518 *
519 * Registers resource-managed sys-off handler.
520 *
521 * Returns zero on success, or error code on failure.
522 */
devm_register_sys_off_handler(struct device * dev,enum sys_off_mode mode,int priority,int (* callback)(struct sys_off_data * data),void * cb_data)523 int devm_register_sys_off_handler(struct device *dev,
524 enum sys_off_mode mode,
525 int priority,
526 int (*callback)(struct sys_off_data *data),
527 void *cb_data)
528 {
529 struct sys_off_handler *handler;
530
531 handler = register_sys_off_handler(mode, priority, callback, cb_data);
532 if (IS_ERR(handler))
533 return PTR_ERR(handler);
534 handler->dev = dev;
535
536 return devm_add_action_or_reset(dev, devm_unregister_sys_off_handler,
537 handler);
538 }
539 EXPORT_SYMBOL_GPL(devm_register_sys_off_handler);
540
541 /**
542 * devm_register_power_off_handler - Register power-off handler
543 * @dev: Device that registers callback
544 * @callback: Callback function
545 * @cb_data: Callback's argument
546 *
547 * Registers resource-managed sys-off handler with a default priority
548 * and using power-off mode.
549 *
550 * Returns zero on success, or error code on failure.
551 */
devm_register_power_off_handler(struct device * dev,int (* callback)(struct sys_off_data * data),void * cb_data)552 int devm_register_power_off_handler(struct device *dev,
553 int (*callback)(struct sys_off_data *data),
554 void *cb_data)
555 {
556 return devm_register_sys_off_handler(dev,
557 SYS_OFF_MODE_POWER_OFF,
558 SYS_OFF_PRIO_DEFAULT,
559 callback, cb_data);
560 }
561 EXPORT_SYMBOL_GPL(devm_register_power_off_handler);
562
563 /**
564 * devm_register_restart_handler - Register restart handler
565 * @dev: Device that registers callback
566 * @callback: Callback function
567 * @cb_data: Callback's argument
568 *
569 * Registers resource-managed sys-off handler with a default priority
570 * and using restart mode.
571 *
572 * Returns zero on success, or error code on failure.
573 */
devm_register_restart_handler(struct device * dev,int (* callback)(struct sys_off_data * data),void * cb_data)574 int devm_register_restart_handler(struct device *dev,
575 int (*callback)(struct sys_off_data *data),
576 void *cb_data)
577 {
578 return devm_register_sys_off_handler(dev,
579 SYS_OFF_MODE_RESTART,
580 SYS_OFF_PRIO_DEFAULT,
581 callback, cb_data);
582 }
583 EXPORT_SYMBOL_GPL(devm_register_restart_handler);
584
585 static struct sys_off_handler *platform_power_off_handler;
586
platform_power_off_notify(struct sys_off_data * data)587 static int platform_power_off_notify(struct sys_off_data *data)
588 {
589 void (*platform_power_power_off_cb)(void) = data->cb_data;
590
591 platform_power_power_off_cb();
592
593 return NOTIFY_DONE;
594 }
595
596 /**
597 * register_platform_power_off - Register platform-level power-off callback
598 * @power_off: Power-off callback
599 *
600 * Registers power-off callback that will be called as last step
601 * of the power-off sequence. This callback is expected to be invoked
602 * for the last resort. Only one platform power-off callback is allowed
603 * to be registered at a time.
604 *
605 * Returns zero on success, or error code on failure.
606 */
register_platform_power_off(void (* power_off)(void))607 int register_platform_power_off(void (*power_off)(void))
608 {
609 struct sys_off_handler *handler;
610
611 handler = register_sys_off_handler(SYS_OFF_MODE_POWER_OFF,
612 SYS_OFF_PRIO_PLATFORM,
613 platform_power_off_notify,
614 power_off);
615 if (IS_ERR(handler))
616 return PTR_ERR(handler);
617
618 platform_power_off_handler = handler;
619
620 return 0;
621 }
622 EXPORT_SYMBOL_GPL(register_platform_power_off);
623
624 /**
625 * unregister_platform_power_off - Unregister platform-level power-off callback
626 * @power_off: Power-off callback
627 *
628 * Unregisters previously registered platform power-off callback.
629 */
unregister_platform_power_off(void (* power_off)(void))630 void unregister_platform_power_off(void (*power_off)(void))
631 {
632 if (platform_power_off_handler &&
633 platform_power_off_handler->cb_data == power_off) {
634 unregister_sys_off_handler(platform_power_off_handler);
635 platform_power_off_handler = NULL;
636 }
637 }
638 EXPORT_SYMBOL_GPL(unregister_platform_power_off);
639
legacy_pm_power_off(struct sys_off_data * data)640 static int legacy_pm_power_off(struct sys_off_data *data)
641 {
642 if (pm_power_off)
643 pm_power_off();
644
645 return NOTIFY_DONE;
646 }
647
do_kernel_power_off_prepare(void)648 static void do_kernel_power_off_prepare(void)
649 {
650 blocking_notifier_call_chain(&power_off_prep_handler_list, 0, NULL);
651 }
652
653 /**
654 * do_kernel_power_off - Execute kernel power-off handler call chain
655 *
656 * Expected to be called as last step of the power-off sequence.
657 *
658 * Powers off the system immediately if a power-off handler function has
659 * been registered. Otherwise does nothing.
660 */
do_kernel_power_off(void)661 void do_kernel_power_off(void)
662 {
663 struct sys_off_handler *sys_off = NULL;
664
665 /*
666 * Register sys-off handlers for legacy PM callback. This allows
667 * legacy PM callbacks temporary co-exist with the new sys-off API.
668 *
669 * TODO: Remove legacy handlers once all legacy PM users will be
670 * switched to the sys-off based APIs.
671 */
672 if (pm_power_off)
673 sys_off = register_sys_off_handler(SYS_OFF_MODE_POWER_OFF,
674 SYS_OFF_PRIO_DEFAULT,
675 legacy_pm_power_off, NULL);
676
677 atomic_notifier_call_chain(&power_off_handler_list, 0, NULL);
678
679 unregister_sys_off_handler(sys_off);
680 }
681
682 /**
683 * kernel_can_power_off - check whether system can be powered off
684 *
685 * Returns true if power-off handler is registered and system can be
686 * powered off, false otherwise.
687 */
kernel_can_power_off(void)688 bool kernel_can_power_off(void)
689 {
690 return !atomic_notifier_call_chain_is_empty(&power_off_handler_list) ||
691 pm_power_off;
692 }
693 EXPORT_SYMBOL_GPL(kernel_can_power_off);
694
695 /**
696 * kernel_power_off - power_off the system
697 *
698 * Shutdown everything and perform a clean system power_off.
699 */
kernel_power_off(void)700 void kernel_power_off(void)
701 {
702 kernel_shutdown_prepare(SYSTEM_POWER_OFF);
703 do_kernel_power_off_prepare();
704 migrate_to_reboot_cpu();
705 syscore_shutdown();
706 pr_emerg("Power down\n");
707 pr_flush(1000, true);
708 kmsg_dump(KMSG_DUMP_SHUTDOWN);
709 machine_power_off();
710 }
711 EXPORT_SYMBOL_GPL(kernel_power_off);
712
713 DEFINE_MUTEX(system_transition_mutex);
714
715 /*
716 * Reboot system call: for obvious reasons only root may call it,
717 * and even root needs to set up some magic numbers in the registers
718 * so that some mistake won't make this reboot the whole machine.
719 * You can also set the meaning of the ctrl-alt-del-key here.
720 *
721 * reboot doesn't sync: do that yourself before calling this.
722 */
SYSCALL_DEFINE4(reboot,int,magic1,int,magic2,unsigned int,cmd,void __user *,arg)723 SYSCALL_DEFINE4(reboot, int, magic1, int, magic2, unsigned int, cmd,
724 void __user *, arg)
725 {
726 struct pid_namespace *pid_ns = task_active_pid_ns(current);
727 char buffer[256];
728 int ret = 0;
729
730 /* We only trust the superuser with rebooting the system. */
731 if (!ns_capable(pid_ns->user_ns, CAP_SYS_BOOT))
732 return -EPERM;
733
734 /* For safety, we require "magic" arguments. */
735 if (magic1 != LINUX_REBOOT_MAGIC1 ||
736 (magic2 != LINUX_REBOOT_MAGIC2 &&
737 magic2 != LINUX_REBOOT_MAGIC2A &&
738 magic2 != LINUX_REBOOT_MAGIC2B &&
739 magic2 != LINUX_REBOOT_MAGIC2C))
740 return -EINVAL;
741
742 /*
743 * If pid namespaces are enabled and the current task is in a child
744 * pid_namespace, the command is handled by reboot_pid_ns() which will
745 * call do_exit().
746 */
747 ret = reboot_pid_ns(pid_ns, cmd);
748 if (ret)
749 return ret;
750
751 /* Instead of trying to make the power_off code look like
752 * halt when pm_power_off is not set do it the easy way.
753 */
754 if ((cmd == LINUX_REBOOT_CMD_POWER_OFF) && !kernel_can_power_off()) {
755 poweroff_fallback_to_halt = true;
756 cmd = LINUX_REBOOT_CMD_HALT;
757 }
758
759 mutex_lock(&system_transition_mutex);
760 switch (cmd) {
761 case LINUX_REBOOT_CMD_RESTART:
762 kernel_restart(NULL);
763 break;
764
765 case LINUX_REBOOT_CMD_CAD_ON:
766 C_A_D = 1;
767 break;
768
769 case LINUX_REBOOT_CMD_CAD_OFF:
770 C_A_D = 0;
771 break;
772
773 case LINUX_REBOOT_CMD_HALT:
774 kernel_halt();
775 do_exit(0);
776
777 case LINUX_REBOOT_CMD_POWER_OFF:
778 kernel_power_off();
779 do_exit(0);
780 break;
781
782 case LINUX_REBOOT_CMD_RESTART2:
783 ret = strncpy_from_user(&buffer[0], arg, sizeof(buffer) - 1);
784 if (ret < 0) {
785 ret = -EFAULT;
786 break;
787 }
788 buffer[sizeof(buffer) - 1] = '\0';
789
790 kernel_restart(buffer);
791 break;
792
793 #ifdef CONFIG_KEXEC_CORE
794 case LINUX_REBOOT_CMD_KEXEC:
795 ret = kernel_kexec();
796 break;
797 #endif
798
799 #ifdef CONFIG_HIBERNATION
800 case LINUX_REBOOT_CMD_SW_SUSPEND:
801 ret = hibernate();
802 break;
803 #endif
804
805 default:
806 ret = -EINVAL;
807 break;
808 }
809 mutex_unlock(&system_transition_mutex);
810 return ret;
811 }
812
deferred_cad(struct work_struct * dummy)813 static void deferred_cad(struct work_struct *dummy)
814 {
815 kernel_restart(NULL);
816 }
817
818 /*
819 * This function gets called by ctrl-alt-del - ie the keyboard interrupt.
820 * As it's called within an interrupt, it may NOT sync: the only choice
821 * is whether to reboot at once, or just ignore the ctrl-alt-del.
822 */
ctrl_alt_del(void)823 void ctrl_alt_del(void)
824 {
825 static DECLARE_WORK(cad_work, deferred_cad);
826
827 if (C_A_D)
828 schedule_work(&cad_work);
829 else
830 kill_cad_pid(SIGINT, 1);
831 }
832
833 #define POWEROFF_CMD_PATH_LEN 256
834 static char poweroff_cmd[POWEROFF_CMD_PATH_LEN] = "/sbin/poweroff";
835 static const char reboot_cmd[] = "/sbin/reboot";
836
run_cmd(const char * cmd)837 static int run_cmd(const char *cmd)
838 {
839 char **argv;
840 static char *envp[] = {
841 "HOME=/",
842 "PATH=/sbin:/bin:/usr/sbin:/usr/bin",
843 NULL
844 };
845 int ret;
846 argv = argv_split(GFP_KERNEL, cmd, NULL);
847 if (argv) {
848 ret = call_usermodehelper(argv[0], argv, envp, UMH_WAIT_EXEC);
849 argv_free(argv);
850 } else {
851 ret = -ENOMEM;
852 }
853
854 return ret;
855 }
856
__orderly_reboot(void)857 static int __orderly_reboot(void)
858 {
859 int ret;
860
861 ret = run_cmd(reboot_cmd);
862
863 if (ret) {
864 pr_warn("Failed to start orderly reboot: forcing the issue\n");
865 emergency_sync();
866 kernel_restart(NULL);
867 }
868
869 return ret;
870 }
871
__orderly_poweroff(bool force)872 static int __orderly_poweroff(bool force)
873 {
874 int ret;
875
876 ret = run_cmd(poweroff_cmd);
877
878 if (ret && force) {
879 pr_warn("Failed to start orderly shutdown: forcing the issue\n");
880
881 /*
882 * I guess this should try to kick off some daemon to sync and
883 * poweroff asap. Or not even bother syncing if we're doing an
884 * emergency shutdown?
885 */
886 emergency_sync();
887 kernel_power_off();
888 }
889
890 return ret;
891 }
892
893 static bool poweroff_force;
894
poweroff_work_func(struct work_struct * work)895 static void poweroff_work_func(struct work_struct *work)
896 {
897 __orderly_poweroff(poweroff_force);
898 }
899
900 static DECLARE_WORK(poweroff_work, poweroff_work_func);
901
902 /**
903 * orderly_poweroff - Trigger an orderly system poweroff
904 * @force: force poweroff if command execution fails
905 *
906 * This may be called from any context to trigger a system shutdown.
907 * If the orderly shutdown fails, it will force an immediate shutdown.
908 */
orderly_poweroff(bool force)909 void orderly_poweroff(bool force)
910 {
911 if (force) /* do not override the pending "true" */
912 poweroff_force = true;
913 schedule_work(&poweroff_work);
914 }
915 EXPORT_SYMBOL_GPL(orderly_poweroff);
916
reboot_work_func(struct work_struct * work)917 static void reboot_work_func(struct work_struct *work)
918 {
919 __orderly_reboot();
920 }
921
922 static DECLARE_WORK(reboot_work, reboot_work_func);
923
924 /**
925 * orderly_reboot - Trigger an orderly system reboot
926 *
927 * This may be called from any context to trigger a system reboot.
928 * If the orderly reboot fails, it will force an immediate reboot.
929 */
orderly_reboot(void)930 void orderly_reboot(void)
931 {
932 schedule_work(&reboot_work);
933 }
934 EXPORT_SYMBOL_GPL(orderly_reboot);
935
hw_protection_action_str(enum hw_protection_action action)936 static const char *hw_protection_action_str(enum hw_protection_action action)
937 {
938 switch (action) {
939 case HWPROT_ACT_SHUTDOWN:
940 return "shutdown";
941 case HWPROT_ACT_REBOOT:
942 return "reboot";
943 default:
944 return "undefined";
945 }
946 }
947
948 static enum hw_protection_action hw_failure_emergency_action;
949
950 /**
951 * hw_failure_emergency_action_func - emergency action work after a known delay
952 * @work: work_struct associated with the emergency action function
953 *
954 * This function is called in very critical situations to force
955 * a kernel poweroff or reboot after a configurable timeout value.
956 */
hw_failure_emergency_action_func(struct work_struct * work)957 static void hw_failure_emergency_action_func(struct work_struct *work)
958 {
959 const char *action_str = hw_protection_action_str(hw_failure_emergency_action);
960
961 pr_emerg("Hardware protection timed-out. Trying forced %s\n",
962 action_str);
963
964 /*
965 * We have reached here after the emergency action waiting period has
966 * expired. This means orderly_poweroff/reboot has not been able to
967 * shut off the system for some reason.
968 *
969 * Try to shut off the system immediately if possible
970 */
971
972 if (hw_failure_emergency_action == HWPROT_ACT_REBOOT)
973 kernel_restart(NULL);
974 else
975 kernel_power_off();
976
977 /*
978 * Worst of the worst case trigger emergency restart
979 */
980 pr_emerg("Hardware protection %s failed. Trying emergency restart\n",
981 action_str);
982 emergency_restart();
983 }
984
985 static DECLARE_DELAYED_WORK(hw_failure_emergency_action_work,
986 hw_failure_emergency_action_func);
987
988 /**
989 * hw_failure_emergency_schedule - Schedule an emergency system shutdown or reboot
990 *
991 * @action: The hardware protection action to be taken
992 * @action_delay_ms: Time in milliseconds to elapse before triggering action
993 *
994 * This may be called from any critical situation to trigger a system shutdown
995 * or reboot after a given period of time.
996 * If time is negative this is not scheduled.
997 */
hw_failure_emergency_schedule(enum hw_protection_action action,int action_delay_ms)998 static void hw_failure_emergency_schedule(enum hw_protection_action action,
999 int action_delay_ms)
1000 {
1001 if (action_delay_ms <= 0)
1002 return;
1003 hw_failure_emergency_action = action;
1004 schedule_delayed_work(&hw_failure_emergency_action_work,
1005 msecs_to_jiffies(action_delay_ms));
1006 }
1007
1008 /**
1009 * __hw_protection_shutdown - Trigger an emergency system shutdown or reboot
1010 *
1011 * @reason: Reason of emergency shutdown or reboot to be printed.
1012 * @ms_until_forced: Time to wait for orderly shutdown or reboot before
1013 * triggering it. Negative value disables the forced
1014 * shutdown or reboot.
1015 * @action: The hardware protection action to be taken.
1016 *
1017 * Initiate an emergency system shutdown or reboot in order to protect
1018 * hardware from further damage. Usage examples include a thermal protection.
1019 * NOTE: The request is ignored if protection shutdown or reboot is already
1020 * pending even if the previous request has given a large timeout for forced
1021 * shutdown/reboot.
1022 */
__hw_protection_shutdown(const char * reason,int ms_until_forced,enum hw_protection_action action)1023 void __hw_protection_shutdown(const char *reason, int ms_until_forced,
1024 enum hw_protection_action action)
1025 {
1026 static atomic_t allow_proceed = ATOMIC_INIT(1);
1027
1028 pr_emerg("HARDWARE PROTECTION shutdown (%s)\n", reason);
1029
1030 /* Shutdown should be initiated only once. */
1031 if (!atomic_dec_and_test(&allow_proceed))
1032 return;
1033
1034 /*
1035 * Queue a backup emergency shutdown in the event of
1036 * orderly_poweroff failure
1037 */
1038 hw_failure_emergency_schedule(action, ms_until_forced);
1039 if (action == HWPROT_ACT_REBOOT)
1040 orderly_reboot();
1041 else
1042 orderly_poweroff(true);
1043 }
1044 EXPORT_SYMBOL_GPL(__hw_protection_shutdown);
1045
reboot_setup(char * str)1046 static int __init reboot_setup(char *str)
1047 {
1048 for (;;) {
1049 enum reboot_mode *mode;
1050
1051 /*
1052 * Having anything passed on the command line via
1053 * reboot= will cause us to disable DMI checking
1054 * below.
1055 */
1056 reboot_default = 0;
1057
1058 if (!strncmp(str, "panic_", 6)) {
1059 mode = &panic_reboot_mode;
1060 str += 6;
1061 } else {
1062 mode = &reboot_mode;
1063 }
1064
1065 switch (*str) {
1066 case 'w':
1067 *mode = REBOOT_WARM;
1068 break;
1069
1070 case 'c':
1071 *mode = REBOOT_COLD;
1072 break;
1073
1074 case 'h':
1075 *mode = REBOOT_HARD;
1076 break;
1077
1078 case 's':
1079 /*
1080 * reboot_cpu is s[mp]#### with #### being the processor
1081 * to be used for rebooting. Skip 's' or 'smp' prefix.
1082 */
1083 str += str[1] == 'm' && str[2] == 'p' ? 3 : 1;
1084
1085 if (isdigit(str[0])) {
1086 int cpu = simple_strtoul(str, NULL, 0);
1087
1088 if (cpu >= num_possible_cpus()) {
1089 pr_err("Ignoring the CPU number in reboot= option. "
1090 "CPU %d exceeds possible cpu number %d\n",
1091 cpu, num_possible_cpus());
1092 break;
1093 }
1094 reboot_cpu = cpu;
1095 } else
1096 *mode = REBOOT_SOFT;
1097 break;
1098
1099 case 'g':
1100 *mode = REBOOT_GPIO;
1101 break;
1102
1103 case 'b':
1104 case 'a':
1105 case 'k':
1106 case 't':
1107 case 'e':
1108 case 'p':
1109 reboot_type = *str;
1110 break;
1111
1112 case 'f':
1113 reboot_force = 1;
1114 break;
1115 }
1116
1117 str = strchr(str, ',');
1118 if (str)
1119 str++;
1120 else
1121 break;
1122 }
1123 return 1;
1124 }
1125 __setup("reboot=", reboot_setup);
1126
1127 #ifdef CONFIG_SYSFS
1128
1129 #define REBOOT_COLD_STR "cold"
1130 #define REBOOT_WARM_STR "warm"
1131 #define REBOOT_HARD_STR "hard"
1132 #define REBOOT_SOFT_STR "soft"
1133 #define REBOOT_GPIO_STR "gpio"
1134 #define REBOOT_UNDEFINED_STR "undefined"
1135
1136 #define BOOT_TRIPLE_STR "triple"
1137 #define BOOT_KBD_STR "kbd"
1138 #define BOOT_BIOS_STR "bios"
1139 #define BOOT_ACPI_STR "acpi"
1140 #define BOOT_EFI_STR "efi"
1141 #define BOOT_PCI_STR "pci"
1142
mode_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)1143 static ssize_t mode_show(struct kobject *kobj, struct kobj_attribute *attr, char *buf)
1144 {
1145 const char *val;
1146
1147 switch (reboot_mode) {
1148 case REBOOT_COLD:
1149 val = REBOOT_COLD_STR;
1150 break;
1151 case REBOOT_WARM:
1152 val = REBOOT_WARM_STR;
1153 break;
1154 case REBOOT_HARD:
1155 val = REBOOT_HARD_STR;
1156 break;
1157 case REBOOT_SOFT:
1158 val = REBOOT_SOFT_STR;
1159 break;
1160 case REBOOT_GPIO:
1161 val = REBOOT_GPIO_STR;
1162 break;
1163 default:
1164 val = REBOOT_UNDEFINED_STR;
1165 }
1166
1167 return sysfs_emit(buf, "%s\n", val);
1168 }
mode_store(struct kobject * kobj,struct kobj_attribute * attr,const char * buf,size_t count)1169 static ssize_t mode_store(struct kobject *kobj, struct kobj_attribute *attr,
1170 const char *buf, size_t count)
1171 {
1172 if (!capable(CAP_SYS_BOOT))
1173 return -EPERM;
1174
1175 if (!strncmp(buf, REBOOT_COLD_STR, strlen(REBOOT_COLD_STR)))
1176 reboot_mode = REBOOT_COLD;
1177 else if (!strncmp(buf, REBOOT_WARM_STR, strlen(REBOOT_WARM_STR)))
1178 reboot_mode = REBOOT_WARM;
1179 else if (!strncmp(buf, REBOOT_HARD_STR, strlen(REBOOT_HARD_STR)))
1180 reboot_mode = REBOOT_HARD;
1181 else if (!strncmp(buf, REBOOT_SOFT_STR, strlen(REBOOT_SOFT_STR)))
1182 reboot_mode = REBOOT_SOFT;
1183 else if (!strncmp(buf, REBOOT_GPIO_STR, strlen(REBOOT_GPIO_STR)))
1184 reboot_mode = REBOOT_GPIO;
1185 else
1186 return -EINVAL;
1187
1188 reboot_default = 0;
1189
1190 return count;
1191 }
1192 static struct kobj_attribute reboot_mode_attr = __ATTR_RW(mode);
1193
1194 #ifdef CONFIG_X86
force_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)1195 static ssize_t force_show(struct kobject *kobj, struct kobj_attribute *attr, char *buf)
1196 {
1197 return sysfs_emit(buf, "%d\n", reboot_force);
1198 }
force_store(struct kobject * kobj,struct kobj_attribute * attr,const char * buf,size_t count)1199 static ssize_t force_store(struct kobject *kobj, struct kobj_attribute *attr,
1200 const char *buf, size_t count)
1201 {
1202 bool res;
1203
1204 if (!capable(CAP_SYS_BOOT))
1205 return -EPERM;
1206
1207 if (kstrtobool(buf, &res))
1208 return -EINVAL;
1209
1210 reboot_default = 0;
1211 reboot_force = res;
1212
1213 return count;
1214 }
1215 static struct kobj_attribute reboot_force_attr = __ATTR_RW(force);
1216
type_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)1217 static ssize_t type_show(struct kobject *kobj, struct kobj_attribute *attr, char *buf)
1218 {
1219 const char *val;
1220
1221 switch (reboot_type) {
1222 case BOOT_TRIPLE:
1223 val = BOOT_TRIPLE_STR;
1224 break;
1225 case BOOT_KBD:
1226 val = BOOT_KBD_STR;
1227 break;
1228 case BOOT_BIOS:
1229 val = BOOT_BIOS_STR;
1230 break;
1231 case BOOT_ACPI:
1232 val = BOOT_ACPI_STR;
1233 break;
1234 case BOOT_EFI:
1235 val = BOOT_EFI_STR;
1236 break;
1237 case BOOT_CF9_FORCE:
1238 val = BOOT_PCI_STR;
1239 break;
1240 default:
1241 val = REBOOT_UNDEFINED_STR;
1242 }
1243
1244 return sysfs_emit(buf, "%s\n", val);
1245 }
type_store(struct kobject * kobj,struct kobj_attribute * attr,const char * buf,size_t count)1246 static ssize_t type_store(struct kobject *kobj, struct kobj_attribute *attr,
1247 const char *buf, size_t count)
1248 {
1249 if (!capable(CAP_SYS_BOOT))
1250 return -EPERM;
1251
1252 if (!strncmp(buf, BOOT_TRIPLE_STR, strlen(BOOT_TRIPLE_STR)))
1253 reboot_type = BOOT_TRIPLE;
1254 else if (!strncmp(buf, BOOT_KBD_STR, strlen(BOOT_KBD_STR)))
1255 reboot_type = BOOT_KBD;
1256 else if (!strncmp(buf, BOOT_BIOS_STR, strlen(BOOT_BIOS_STR)))
1257 reboot_type = BOOT_BIOS;
1258 else if (!strncmp(buf, BOOT_ACPI_STR, strlen(BOOT_ACPI_STR)))
1259 reboot_type = BOOT_ACPI;
1260 else if (!strncmp(buf, BOOT_EFI_STR, strlen(BOOT_EFI_STR)))
1261 reboot_type = BOOT_EFI;
1262 else if (!strncmp(buf, BOOT_PCI_STR, strlen(BOOT_PCI_STR)))
1263 reboot_type = BOOT_CF9_FORCE;
1264 else
1265 return -EINVAL;
1266
1267 reboot_default = 0;
1268
1269 return count;
1270 }
1271 static struct kobj_attribute reboot_type_attr = __ATTR_RW(type);
1272 #endif
1273
1274 #ifdef CONFIG_SMP
cpu_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)1275 static ssize_t cpu_show(struct kobject *kobj, struct kobj_attribute *attr, char *buf)
1276 {
1277 return sysfs_emit(buf, "%d\n", reboot_cpu);
1278 }
cpu_store(struct kobject * kobj,struct kobj_attribute * attr,const char * buf,size_t count)1279 static ssize_t cpu_store(struct kobject *kobj, struct kobj_attribute *attr,
1280 const char *buf, size_t count)
1281 {
1282 unsigned int cpunum;
1283 int rc;
1284
1285 if (!capable(CAP_SYS_BOOT))
1286 return -EPERM;
1287
1288 rc = kstrtouint(buf, 0, &cpunum);
1289
1290 if (rc)
1291 return rc;
1292
1293 if (cpunum >= num_possible_cpus())
1294 return -ERANGE;
1295
1296 reboot_default = 0;
1297 reboot_cpu = cpunum;
1298
1299 return count;
1300 }
1301 static struct kobj_attribute reboot_cpu_attr = __ATTR_RW(cpu);
1302 #endif
1303
1304 static struct attribute *reboot_attrs[] = {
1305 &reboot_mode_attr.attr,
1306 #ifdef CONFIG_X86
1307 &reboot_force_attr.attr,
1308 &reboot_type_attr.attr,
1309 #endif
1310 #ifdef CONFIG_SMP
1311 &reboot_cpu_attr.attr,
1312 #endif
1313 NULL,
1314 };
1315
1316 #ifdef CONFIG_SYSCTL
1317 static const struct ctl_table kern_reboot_table[] = {
1318 {
1319 .procname = "poweroff_cmd",
1320 .data = &poweroff_cmd,
1321 .maxlen = POWEROFF_CMD_PATH_LEN,
1322 .mode = 0644,
1323 .proc_handler = proc_dostring,
1324 },
1325 {
1326 .procname = "ctrl-alt-del",
1327 .data = &C_A_D,
1328 .maxlen = sizeof(int),
1329 .mode = 0644,
1330 .proc_handler = proc_dointvec,
1331 },
1332 };
1333
kernel_reboot_sysctls_init(void)1334 static void __init kernel_reboot_sysctls_init(void)
1335 {
1336 register_sysctl_init("kernel", kern_reboot_table);
1337 }
1338 #else
1339 #define kernel_reboot_sysctls_init() do { } while (0)
1340 #endif /* CONFIG_SYSCTL */
1341
1342 static const struct attribute_group reboot_attr_group = {
1343 .attrs = reboot_attrs,
1344 };
1345
reboot_ksysfs_init(void)1346 static int __init reboot_ksysfs_init(void)
1347 {
1348 struct kobject *reboot_kobj;
1349 int ret;
1350
1351 reboot_kobj = kobject_create_and_add("reboot", kernel_kobj);
1352 if (!reboot_kobj)
1353 return -ENOMEM;
1354
1355 ret = sysfs_create_group(reboot_kobj, &reboot_attr_group);
1356 if (ret) {
1357 kobject_put(reboot_kobj);
1358 return ret;
1359 }
1360
1361 kernel_reboot_sysctls_init();
1362
1363 return 0;
1364 }
1365 late_initcall(reboot_ksysfs_init);
1366
1367 #endif
1368