2 * (C) 2001, 2002, 2003, 2004 Rusty Russell
4 * This code is licenced under the GPL.
6 #include <linux/proc_fs.h>
8 #include <linux/init.h>
9 #include <linux/notifier.h>
10 #include <linux/sched/signal.h>
11 #include <linux/sched/hotplug.h>
12 #include <linux/sched/task.h>
13 #include <linux/unistd.h>
14 #include <linux/cpu.h>
15 #include <linux/oom.h>
16 #include <linux/rcupdate.h>
17 #include <linux/export.h>
18 #include <linux/bug.h>
19 #include <linux/kthread.h>
20 #include <linux/stop_machine.h>
21 #include <linux/mutex.h>
22 #include <linux/gfp.h>
23 #include <linux/suspend.h>
24 #include <linux/lockdep.h>
25 #include <linux/tick.h>
26 #include <linux/irq.h>
27 #include <linux/smpboot.h>
28 #include <linux/relay.h>
29 #include <linux/slab.h>
30 #include <linux/percpu-rwsem.h>
32 #include <trace/events/power.h>
33 #define CREATE_TRACE_POINTS
34 #include <trace/events/cpuhp.h>
39 * cpuhp_cpu_state - Per cpu hotplug state storage
40 * @state: The current cpu state
41 * @target: The target state
42 * @thread: Pointer to the hotplug thread
43 * @should_run: Thread should execute
44 * @rollback: Perform a rollback
45 * @single: Single callback invocation
46 * @bringup: Single callback bringup or teardown selector
47 * @cb_state: The state for a single callback (install/uninstall)
48 * @result: Result of the operation
49 * @done: Signal completion to the issuer of the task
51 struct cpuhp_cpu_state
{
52 enum cpuhp_state state
;
53 enum cpuhp_state target
;
55 struct task_struct
*thread
;
60 struct hlist_node
*node
;
61 enum cpuhp_state cb_state
;
63 struct completion done
;
67 static DEFINE_PER_CPU(struct cpuhp_cpu_state
, cpuhp_state
);
69 #if defined(CONFIG_LOCKDEP) && defined(CONFIG_SMP)
70 static struct lock_class_key cpuhp_state_key
;
71 static struct lockdep_map cpuhp_state_lock_map
=
72 STATIC_LOCKDEP_MAP_INIT("cpuhp_state", &cpuhp_state_key
);
76 * cpuhp_step - Hotplug state machine step
77 * @name: Name of the step
78 * @startup: Startup function of the step
79 * @teardown: Teardown function of the step
80 * @skip_onerr: Do not invoke the functions on error rollback
81 * Will go away once the notifiers are gone
82 * @cant_stop: Bringup/teardown can't be stopped at this step
87 int (*single
)(unsigned int cpu
);
88 int (*multi
)(unsigned int cpu
,
89 struct hlist_node
*node
);
92 int (*single
)(unsigned int cpu
);
93 int (*multi
)(unsigned int cpu
,
94 struct hlist_node
*node
);
96 struct hlist_head list
;
102 static DEFINE_MUTEX(cpuhp_state_mutex
);
103 static struct cpuhp_step cpuhp_bp_states
[];
104 static struct cpuhp_step cpuhp_ap_states
[];
106 static bool cpuhp_is_ap_state(enum cpuhp_state state
)
109 * The extra check for CPUHP_TEARDOWN_CPU is only for documentation
110 * purposes as that state is handled explicitly in cpu_down.
112 return state
> CPUHP_BRINGUP_CPU
&& state
!= CPUHP_TEARDOWN_CPU
;
115 static struct cpuhp_step
*cpuhp_get_step(enum cpuhp_state state
)
117 struct cpuhp_step
*sp
;
119 sp
= cpuhp_is_ap_state(state
) ? cpuhp_ap_states
: cpuhp_bp_states
;
124 * cpuhp_invoke_callback _ Invoke the callbacks for a given state
125 * @cpu: The cpu for which the callback should be invoked
126 * @step: The step in the state machine
127 * @bringup: True if the bringup callback should be invoked
129 * Called from cpu hotplug and from the state register machinery.
131 static int cpuhp_invoke_callback(unsigned int cpu
, enum cpuhp_state state
,
132 bool bringup
, struct hlist_node
*node
)
134 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
135 struct cpuhp_step
*step
= cpuhp_get_step(state
);
136 int (*cbm
)(unsigned int cpu
, struct hlist_node
*node
);
137 int (*cb
)(unsigned int cpu
);
140 if (!step
->multi_instance
) {
141 cb
= bringup
? step
->startup
.single
: step
->teardown
.single
;
144 trace_cpuhp_enter(cpu
, st
->target
, state
, cb
);
146 trace_cpuhp_exit(cpu
, st
->state
, state
, ret
);
149 cbm
= bringup
? step
->startup
.multi
: step
->teardown
.multi
;
153 /* Single invocation for instance add/remove */
155 trace_cpuhp_multi_enter(cpu
, st
->target
, state
, cbm
, node
);
156 ret
= cbm(cpu
, node
);
157 trace_cpuhp_exit(cpu
, st
->state
, state
, ret
);
161 /* State transition. Invoke on all instances */
163 hlist_for_each(node
, &step
->list
) {
164 trace_cpuhp_multi_enter(cpu
, st
->target
, state
, cbm
, node
);
165 ret
= cbm(cpu
, node
);
166 trace_cpuhp_exit(cpu
, st
->state
, state
, ret
);
173 /* Rollback the instances if one failed */
174 cbm
= !bringup
? step
->startup
.multi
: step
->teardown
.multi
;
178 hlist_for_each(node
, &step
->list
) {
187 /* Serializes the updates to cpu_online_mask, cpu_present_mask */
188 static DEFINE_MUTEX(cpu_add_remove_lock
);
189 bool cpuhp_tasks_frozen
;
190 EXPORT_SYMBOL_GPL(cpuhp_tasks_frozen
);
193 * The following two APIs (cpu_maps_update_begin/done) must be used when
194 * attempting to serialize the updates to cpu_online_mask & cpu_present_mask.
196 void cpu_maps_update_begin(void)
198 mutex_lock(&cpu_add_remove_lock
);
201 void cpu_maps_update_done(void)
203 mutex_unlock(&cpu_add_remove_lock
);
207 * If set, cpu_up and cpu_down will return -EBUSY and do nothing.
208 * Should always be manipulated under cpu_add_remove_lock
210 static int cpu_hotplug_disabled
;
212 #ifdef CONFIG_HOTPLUG_CPU
214 DEFINE_STATIC_PERCPU_RWSEM(cpu_hotplug_lock
);
216 void cpus_read_lock(void)
218 percpu_down_read(&cpu_hotplug_lock
);
220 EXPORT_SYMBOL_GPL(cpus_read_lock
);
222 void cpus_read_unlock(void)
224 percpu_up_read(&cpu_hotplug_lock
);
226 EXPORT_SYMBOL_GPL(cpus_read_unlock
);
228 void cpus_write_lock(void)
230 percpu_down_write(&cpu_hotplug_lock
);
233 void cpus_write_unlock(void)
235 percpu_up_write(&cpu_hotplug_lock
);
238 void lockdep_assert_cpus_held(void)
240 percpu_rwsem_assert_held(&cpu_hotplug_lock
);
244 * Wait for currently running CPU hotplug operations to complete (if any) and
245 * disable future CPU hotplug (from sysfs). The 'cpu_add_remove_lock' protects
246 * the 'cpu_hotplug_disabled' flag. The same lock is also acquired by the
247 * hotplug path before performing hotplug operations. So acquiring that lock
248 * guarantees mutual exclusion from any currently running hotplug operations.
250 void cpu_hotplug_disable(void)
252 cpu_maps_update_begin();
253 cpu_hotplug_disabled
++;
254 cpu_maps_update_done();
256 EXPORT_SYMBOL_GPL(cpu_hotplug_disable
);
258 static void __cpu_hotplug_enable(void)
260 if (WARN_ONCE(!cpu_hotplug_disabled
, "Unbalanced cpu hotplug enable\n"))
262 cpu_hotplug_disabled
--;
265 void cpu_hotplug_enable(void)
267 cpu_maps_update_begin();
268 __cpu_hotplug_enable();
269 cpu_maps_update_done();
271 EXPORT_SYMBOL_GPL(cpu_hotplug_enable
);
272 #endif /* CONFIG_HOTPLUG_CPU */
274 static void __cpuhp_kick_ap_work(struct cpuhp_cpu_state
*st
);
276 static int bringup_wait_for_ap(unsigned int cpu
)
278 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
280 /* Wait for the CPU to reach CPUHP_AP_ONLINE_IDLE */
281 wait_for_completion(&st
->done
);
282 if (WARN_ON_ONCE((!cpu_online(cpu
))))
285 /* Unpark the stopper thread and the hotplug thread of the target cpu */
286 stop_machine_unpark(cpu
);
287 kthread_unpark(st
->thread
);
289 /* Should we go further up ? */
290 if (st
->target
> CPUHP_AP_ONLINE_IDLE
) {
291 __cpuhp_kick_ap_work(st
);
292 wait_for_completion(&st
->done
);
297 static int bringup_cpu(unsigned int cpu
)
299 struct task_struct
*idle
= idle_thread_get(cpu
);
303 * Some architectures have to walk the irq descriptors to
304 * setup the vector space for the cpu which comes online.
305 * Prevent irq alloc/free across the bringup.
309 /* Arch-specific enabling code. */
310 ret
= __cpu_up(cpu
, idle
);
314 return bringup_wait_for_ap(cpu
);
318 * Hotplug state machine related functions
320 static void undo_cpu_down(unsigned int cpu
, struct cpuhp_cpu_state
*st
)
322 for (st
->state
++; st
->state
< st
->target
; st
->state
++) {
323 struct cpuhp_step
*step
= cpuhp_get_step(st
->state
);
325 if (!step
->skip_onerr
)
326 cpuhp_invoke_callback(cpu
, st
->state
, true, NULL
);
330 static int cpuhp_down_callbacks(unsigned int cpu
, struct cpuhp_cpu_state
*st
,
331 enum cpuhp_state target
)
333 enum cpuhp_state prev_state
= st
->state
;
336 for (; st
->state
> target
; st
->state
--) {
337 ret
= cpuhp_invoke_callback(cpu
, st
->state
, false, NULL
);
339 st
->target
= prev_state
;
340 undo_cpu_down(cpu
, st
);
347 static void undo_cpu_up(unsigned int cpu
, struct cpuhp_cpu_state
*st
)
349 for (st
->state
--; st
->state
> st
->target
; st
->state
--) {
350 struct cpuhp_step
*step
= cpuhp_get_step(st
->state
);
352 if (!step
->skip_onerr
)
353 cpuhp_invoke_callback(cpu
, st
->state
, false, NULL
);
357 static int cpuhp_up_callbacks(unsigned int cpu
, struct cpuhp_cpu_state
*st
,
358 enum cpuhp_state target
)
360 enum cpuhp_state prev_state
= st
->state
;
363 while (st
->state
< target
) {
365 ret
= cpuhp_invoke_callback(cpu
, st
->state
, true, NULL
);
367 st
->target
= prev_state
;
368 undo_cpu_up(cpu
, st
);
376 * The cpu hotplug threads manage the bringup and teardown of the cpus
378 static void cpuhp_create(unsigned int cpu
)
380 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
382 init_completion(&st
->done
);
385 static int cpuhp_should_run(unsigned int cpu
)
387 struct cpuhp_cpu_state
*st
= this_cpu_ptr(&cpuhp_state
);
389 return st
->should_run
;
392 /* Execute the teardown callbacks. Used to be CPU_DOWN_PREPARE */
393 static int cpuhp_ap_offline(unsigned int cpu
, struct cpuhp_cpu_state
*st
)
395 enum cpuhp_state target
= max((int)st
->target
, CPUHP_TEARDOWN_CPU
);
397 return cpuhp_down_callbacks(cpu
, st
, target
);
400 /* Execute the online startup callbacks. Used to be CPU_ONLINE */
401 static int cpuhp_ap_online(unsigned int cpu
, struct cpuhp_cpu_state
*st
)
403 return cpuhp_up_callbacks(cpu
, st
, st
->target
);
407 * Execute teardown/startup callbacks on the plugged cpu. Also used to invoke
408 * callbacks when a state gets [un]installed at runtime.
410 static void cpuhp_thread_fun(unsigned int cpu
)
412 struct cpuhp_cpu_state
*st
= this_cpu_ptr(&cpuhp_state
);
416 * Paired with the mb() in cpuhp_kick_ap_work and
417 * cpuhp_invoke_ap_callback, so the work set is consistent visible.
423 st
->should_run
= false;
425 lock_map_acquire(&cpuhp_state_lock_map
);
426 /* Single callback invocation for [un]install ? */
428 if (st
->cb_state
< CPUHP_AP_ONLINE
) {
430 ret
= cpuhp_invoke_callback(cpu
, st
->cb_state
,
431 st
->bringup
, st
->node
);
434 ret
= cpuhp_invoke_callback(cpu
, st
->cb_state
,
435 st
->bringup
, st
->node
);
437 } else if (st
->rollback
) {
438 BUG_ON(st
->state
< CPUHP_AP_ONLINE_IDLE
);
440 undo_cpu_down(cpu
, st
);
441 st
->rollback
= false;
443 /* Cannot happen .... */
444 BUG_ON(st
->state
< CPUHP_AP_ONLINE_IDLE
);
446 /* Regular hotplug work */
447 if (st
->state
< st
->target
)
448 ret
= cpuhp_ap_online(cpu
, st
);
449 else if (st
->state
> st
->target
)
450 ret
= cpuhp_ap_offline(cpu
, st
);
452 lock_map_release(&cpuhp_state_lock_map
);
457 /* Invoke a single callback on a remote cpu */
459 cpuhp_invoke_ap_callback(int cpu
, enum cpuhp_state state
, bool bringup
,
460 struct hlist_node
*node
)
462 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
464 if (!cpu_online(cpu
))
467 lock_map_acquire(&cpuhp_state_lock_map
);
468 lock_map_release(&cpuhp_state_lock_map
);
471 * If we are up and running, use the hotplug thread. For early calls
472 * we invoke the thread function directly.
475 return cpuhp_invoke_callback(cpu
, state
, bringup
, node
);
477 st
->cb_state
= state
;
479 st
->bringup
= bringup
;
483 * Make sure the above stores are visible before should_run becomes
484 * true. Paired with the mb() above in cpuhp_thread_fun()
487 st
->should_run
= true;
488 wake_up_process(st
->thread
);
489 wait_for_completion(&st
->done
);
493 /* Regular hotplug invocation of the AP hotplug thread */
494 static void __cpuhp_kick_ap_work(struct cpuhp_cpu_state
*st
)
499 * Make sure the above stores are visible before should_run becomes
500 * true. Paired with the mb() above in cpuhp_thread_fun()
503 st
->should_run
= true;
504 wake_up_process(st
->thread
);
507 static int cpuhp_kick_ap_work(unsigned int cpu
)
509 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
510 enum cpuhp_state state
= st
->state
;
512 trace_cpuhp_enter(cpu
, st
->target
, state
, cpuhp_kick_ap_work
);
513 lock_map_acquire(&cpuhp_state_lock_map
);
514 lock_map_release(&cpuhp_state_lock_map
);
515 __cpuhp_kick_ap_work(st
);
516 wait_for_completion(&st
->done
);
517 trace_cpuhp_exit(cpu
, st
->state
, state
, st
->result
);
521 static struct smp_hotplug_thread cpuhp_threads
= {
522 .store
= &cpuhp_state
.thread
,
523 .create
= &cpuhp_create
,
524 .thread_should_run
= cpuhp_should_run
,
525 .thread_fn
= cpuhp_thread_fun
,
526 .thread_comm
= "cpuhp/%u",
530 void __init
cpuhp_threads_init(void)
532 BUG_ON(smpboot_register_percpu_thread(&cpuhp_threads
));
533 kthread_unpark(this_cpu_read(cpuhp_state
.thread
));
536 #ifdef CONFIG_HOTPLUG_CPU
538 * clear_tasks_mm_cpumask - Safely clear tasks' mm_cpumask for a CPU
541 * This function walks all processes, finds a valid mm struct for each one and
542 * then clears a corresponding bit in mm's cpumask. While this all sounds
543 * trivial, there are various non-obvious corner cases, which this function
544 * tries to solve in a safe manner.
546 * Also note that the function uses a somewhat relaxed locking scheme, so it may
547 * be called only for an already offlined CPU.
549 void clear_tasks_mm_cpumask(int cpu
)
551 struct task_struct
*p
;
554 * This function is called after the cpu is taken down and marked
555 * offline, so its not like new tasks will ever get this cpu set in
556 * their mm mask. -- Peter Zijlstra
557 * Thus, we may use rcu_read_lock() here, instead of grabbing
558 * full-fledged tasklist_lock.
560 WARN_ON(cpu_online(cpu
));
562 for_each_process(p
) {
563 struct task_struct
*t
;
566 * Main thread might exit, but other threads may still have
567 * a valid mm. Find one.
569 t
= find_lock_task_mm(p
);
572 cpumask_clear_cpu(cpu
, mm_cpumask(t
->mm
));
578 /* Take this CPU down. */
579 static int take_cpu_down(void *_param
)
581 struct cpuhp_cpu_state
*st
= this_cpu_ptr(&cpuhp_state
);
582 enum cpuhp_state target
= max((int)st
->target
, CPUHP_AP_OFFLINE
);
583 int err
, cpu
= smp_processor_id();
585 /* Ensure this CPU doesn't handle any more interrupts. */
586 err
= __cpu_disable();
591 * We get here while we are in CPUHP_TEARDOWN_CPU state and we must not
592 * do this step again.
594 WARN_ON(st
->state
!= CPUHP_TEARDOWN_CPU
);
596 /* Invoke the former CPU_DYING callbacks */
597 for (; st
->state
> target
; st
->state
--)
598 cpuhp_invoke_callback(cpu
, st
->state
, false, NULL
);
600 /* Give up timekeeping duties */
601 tick_handover_do_timer();
602 /* Park the stopper thread */
603 stop_machine_park(cpu
);
607 static int takedown_cpu(unsigned int cpu
)
609 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
612 /* Park the smpboot threads */
613 kthread_park(per_cpu_ptr(&cpuhp_state
, cpu
)->thread
);
614 smpboot_park_threads(cpu
);
617 * Prevent irq alloc/free while the dying cpu reorganizes the
618 * interrupt affinities.
623 * So now all preempt/rcu users must observe !cpu_active().
625 err
= stop_machine_cpuslocked(take_cpu_down
, NULL
, cpumask_of(cpu
));
627 /* CPU refused to die */
629 /* Unpark the hotplug thread so we can rollback there */
630 kthread_unpark(per_cpu_ptr(&cpuhp_state
, cpu
)->thread
);
633 BUG_ON(cpu_online(cpu
));
636 * The CPUHP_AP_SCHED_MIGRATE_DYING callback will have removed all
637 * runnable tasks from the cpu, there's only the idle task left now
638 * that the migration thread is done doing the stop_machine thing.
640 * Wait for the stop thread to go away.
642 wait_for_completion(&st
->done
);
643 BUG_ON(st
->state
!= CPUHP_AP_IDLE_DEAD
);
645 /* Interrupts are moved away from the dying cpu, reenable alloc/free */
648 hotplug_cpu__broadcast_tick_pull(cpu
);
649 /* This actually kills the CPU. */
652 tick_cleanup_dead_cpu(cpu
);
653 rcutree_migrate_callbacks(cpu
);
657 static void cpuhp_complete_idle_dead(void *arg
)
659 struct cpuhp_cpu_state
*st
= arg
;
664 void cpuhp_report_idle_dead(void)
666 struct cpuhp_cpu_state
*st
= this_cpu_ptr(&cpuhp_state
);
668 BUG_ON(st
->state
!= CPUHP_AP_OFFLINE
);
669 rcu_report_dead(smp_processor_id());
670 st
->state
= CPUHP_AP_IDLE_DEAD
;
672 * We cannot call complete after rcu_report_dead() so we delegate it
675 smp_call_function_single(cpumask_first(cpu_online_mask
),
676 cpuhp_complete_idle_dead
, st
, 0);
680 #define takedown_cpu NULL
683 #ifdef CONFIG_HOTPLUG_CPU
685 /* Requires cpu_add_remove_lock to be held */
686 static int __ref
_cpu_down(unsigned int cpu
, int tasks_frozen
,
687 enum cpuhp_state target
)
689 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
690 int prev_state
, ret
= 0;
692 if (num_online_cpus() == 1)
695 if (!cpu_present(cpu
))
700 cpuhp_tasks_frozen
= tasks_frozen
;
702 prev_state
= st
->state
;
705 * If the current CPU state is in the range of the AP hotplug thread,
706 * then we need to kick the thread.
708 if (st
->state
> CPUHP_TEARDOWN_CPU
) {
709 ret
= cpuhp_kick_ap_work(cpu
);
711 * The AP side has done the error rollback already. Just
712 * return the error code..
718 * We might have stopped still in the range of the AP hotplug
719 * thread. Nothing to do anymore.
721 if (st
->state
> CPUHP_TEARDOWN_CPU
)
725 * The AP brought itself down to CPUHP_TEARDOWN_CPU. So we need
726 * to do the further cleanups.
728 ret
= cpuhp_down_callbacks(cpu
, st
, target
);
729 if (ret
&& st
->state
> CPUHP_TEARDOWN_CPU
&& st
->state
< prev_state
) {
730 st
->target
= prev_state
;
732 cpuhp_kick_ap_work(cpu
);
740 static int do_cpu_down(unsigned int cpu
, enum cpuhp_state target
)
744 cpu_maps_update_begin();
746 if (cpu_hotplug_disabled
) {
751 err
= _cpu_down(cpu
, 0, target
);
754 cpu_maps_update_done();
757 int cpu_down(unsigned int cpu
)
759 return do_cpu_down(cpu
, CPUHP_OFFLINE
);
761 EXPORT_SYMBOL(cpu_down
);
762 #endif /*CONFIG_HOTPLUG_CPU*/
765 * notify_cpu_starting(cpu) - Invoke the callbacks on the starting CPU
766 * @cpu: cpu that just started
768 * It must be called by the arch code on the new cpu, before the new cpu
769 * enables interrupts and before the "boot" cpu returns from __cpu_up().
771 void notify_cpu_starting(unsigned int cpu
)
773 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
774 enum cpuhp_state target
= min((int)st
->target
, CPUHP_AP_ONLINE
);
776 rcu_cpu_starting(cpu
); /* Enables RCU usage on this CPU. */
777 while (st
->state
< target
) {
779 cpuhp_invoke_callback(cpu
, st
->state
, true, NULL
);
784 * Called from the idle task. Wake up the controlling task which brings the
785 * stopper and the hotplug thread of the upcoming CPU up and then delegates
786 * the rest of the online bringup to the hotplug thread.
788 void cpuhp_online_idle(enum cpuhp_state state
)
790 struct cpuhp_cpu_state
*st
= this_cpu_ptr(&cpuhp_state
);
792 /* Happens for the boot cpu */
793 if (state
!= CPUHP_AP_ONLINE_IDLE
)
796 st
->state
= CPUHP_AP_ONLINE_IDLE
;
800 /* Requires cpu_add_remove_lock to be held */
801 static int _cpu_up(unsigned int cpu
, int tasks_frozen
, enum cpuhp_state target
)
803 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
804 struct task_struct
*idle
;
809 if (!cpu_present(cpu
)) {
815 * The caller of do_cpu_up might have raced with another
816 * caller. Ignore it for now.
818 if (st
->state
>= target
)
821 if (st
->state
== CPUHP_OFFLINE
) {
822 /* Let it fail before we try to bring the cpu up */
823 idle
= idle_thread_get(cpu
);
830 cpuhp_tasks_frozen
= tasks_frozen
;
834 * If the current CPU state is in the range of the AP hotplug thread,
835 * then we need to kick the thread once more.
837 if (st
->state
> CPUHP_BRINGUP_CPU
) {
838 ret
= cpuhp_kick_ap_work(cpu
);
840 * The AP side has done the error rollback already. Just
841 * return the error code..
848 * Try to reach the target state. We max out on the BP at
849 * CPUHP_BRINGUP_CPU. After that the AP hotplug thread is
850 * responsible for bringing it up to the target state.
852 target
= min((int)target
, CPUHP_BRINGUP_CPU
);
853 ret
= cpuhp_up_callbacks(cpu
, st
, target
);
859 static int do_cpu_up(unsigned int cpu
, enum cpuhp_state target
)
863 if (!cpu_possible(cpu
)) {
864 pr_err("can't online cpu %d because it is not configured as may-hotadd at boot time\n",
866 #if defined(CONFIG_IA64)
867 pr_err("please check additional_cpus= boot parameter\n");
872 err
= try_online_node(cpu_to_node(cpu
));
876 cpu_maps_update_begin();
878 if (cpu_hotplug_disabled
) {
883 err
= _cpu_up(cpu
, 0, target
);
885 cpu_maps_update_done();
889 int cpu_up(unsigned int cpu
)
891 return do_cpu_up(cpu
, CPUHP_ONLINE
);
893 EXPORT_SYMBOL_GPL(cpu_up
);
895 #ifdef CONFIG_PM_SLEEP_SMP
896 static cpumask_var_t frozen_cpus
;
898 int freeze_secondary_cpus(int primary
)
902 cpu_maps_update_begin();
903 if (!cpu_online(primary
))
904 primary
= cpumask_first(cpu_online_mask
);
906 * We take down all of the non-boot CPUs in one shot to avoid races
907 * with the userspace trying to use the CPU hotplug at the same time
909 cpumask_clear(frozen_cpus
);
911 pr_info("Disabling non-boot CPUs ...\n");
912 for_each_online_cpu(cpu
) {
915 trace_suspend_resume(TPS("CPU_OFF"), cpu
, true);
916 error
= _cpu_down(cpu
, 1, CPUHP_OFFLINE
);
917 trace_suspend_resume(TPS("CPU_OFF"), cpu
, false);
919 cpumask_set_cpu(cpu
, frozen_cpus
);
921 pr_err("Error taking CPU%d down: %d\n", cpu
, error
);
927 BUG_ON(num_online_cpus() > 1);
929 pr_err("Non-boot CPUs are not disabled\n");
932 * Make sure the CPUs won't be enabled by someone else. We need to do
933 * this even in case of failure as all disable_nonboot_cpus() users are
934 * supposed to do enable_nonboot_cpus() on the failure path.
936 cpu_hotplug_disabled
++;
938 cpu_maps_update_done();
942 void __weak
arch_enable_nonboot_cpus_begin(void)
946 void __weak
arch_enable_nonboot_cpus_end(void)
950 void enable_nonboot_cpus(void)
954 /* Allow everyone to use the CPU hotplug again */
955 cpu_maps_update_begin();
956 __cpu_hotplug_enable();
957 if (cpumask_empty(frozen_cpus
))
960 pr_info("Enabling non-boot CPUs ...\n");
962 arch_enable_nonboot_cpus_begin();
964 for_each_cpu(cpu
, frozen_cpus
) {
965 trace_suspend_resume(TPS("CPU_ON"), cpu
, true);
966 error
= _cpu_up(cpu
, 1, CPUHP_ONLINE
);
967 trace_suspend_resume(TPS("CPU_ON"), cpu
, false);
969 pr_info("CPU%d is up\n", cpu
);
972 pr_warn("Error taking CPU%d up: %d\n", cpu
, error
);
975 arch_enable_nonboot_cpus_end();
977 cpumask_clear(frozen_cpus
);
979 cpu_maps_update_done();
982 static int __init
alloc_frozen_cpus(void)
984 if (!alloc_cpumask_var(&frozen_cpus
, GFP_KERNEL
|__GFP_ZERO
))
988 core_initcall(alloc_frozen_cpus
);
991 * When callbacks for CPU hotplug notifications are being executed, we must
992 * ensure that the state of the system with respect to the tasks being frozen
993 * or not, as reported by the notification, remains unchanged *throughout the
994 * duration* of the execution of the callbacks.
995 * Hence we need to prevent the freezer from racing with regular CPU hotplug.
997 * This synchronization is implemented by mutually excluding regular CPU
998 * hotplug and Suspend/Hibernate call paths by hooking onto the Suspend/
999 * Hibernate notifications.
1002 cpu_hotplug_pm_callback(struct notifier_block
*nb
,
1003 unsigned long action
, void *ptr
)
1007 case PM_SUSPEND_PREPARE
:
1008 case PM_HIBERNATION_PREPARE
:
1009 cpu_hotplug_disable();
1012 case PM_POST_SUSPEND
:
1013 case PM_POST_HIBERNATION
:
1014 cpu_hotplug_enable();
1025 static int __init
cpu_hotplug_pm_sync_init(void)
1028 * cpu_hotplug_pm_callback has higher priority than x86
1029 * bsp_pm_callback which depends on cpu_hotplug_pm_callback
1030 * to disable cpu hotplug to avoid cpu hotplug race.
1032 pm_notifier(cpu_hotplug_pm_callback
, 0);
1035 core_initcall(cpu_hotplug_pm_sync_init
);
1037 #endif /* CONFIG_PM_SLEEP_SMP */
1041 #endif /* CONFIG_SMP */
1043 /* Boot processor state steps */
1044 static struct cpuhp_step cpuhp_bp_states
[] = {
1047 .startup
.single
= NULL
,
1048 .teardown
.single
= NULL
,
1051 [CPUHP_CREATE_THREADS
]= {
1052 .name
= "threads:prepare",
1053 .startup
.single
= smpboot_create_threads
,
1054 .teardown
.single
= NULL
,
1057 [CPUHP_PERF_PREPARE
] = {
1058 .name
= "perf:prepare",
1059 .startup
.single
= perf_event_init_cpu
,
1060 .teardown
.single
= perf_event_exit_cpu
,
1062 [CPUHP_WORKQUEUE_PREP
] = {
1063 .name
= "workqueue:prepare",
1064 .startup
.single
= workqueue_prepare_cpu
,
1065 .teardown
.single
= NULL
,
1067 [CPUHP_HRTIMERS_PREPARE
] = {
1068 .name
= "hrtimers:prepare",
1069 .startup
.single
= hrtimers_prepare_cpu
,
1070 .teardown
.single
= hrtimers_dead_cpu
,
1072 [CPUHP_SMPCFD_PREPARE
] = {
1073 .name
= "smpcfd:prepare",
1074 .startup
.single
= smpcfd_prepare_cpu
,
1075 .teardown
.single
= smpcfd_dead_cpu
,
1077 [CPUHP_RELAY_PREPARE
] = {
1078 .name
= "relay:prepare",
1079 .startup
.single
= relay_prepare_cpu
,
1080 .teardown
.single
= NULL
,
1082 [CPUHP_SLAB_PREPARE
] = {
1083 .name
= "slab:prepare",
1084 .startup
.single
= slab_prepare_cpu
,
1085 .teardown
.single
= slab_dead_cpu
,
1087 [CPUHP_RCUTREE_PREP
] = {
1088 .name
= "RCU/tree:prepare",
1089 .startup
.single
= rcutree_prepare_cpu
,
1090 .teardown
.single
= rcutree_dead_cpu
,
1093 * On the tear-down path, timers_dead_cpu() must be invoked
1094 * before blk_mq_queue_reinit_notify() from notify_dead(),
1095 * otherwise a RCU stall occurs.
1097 [CPUHP_TIMERS_DEAD
] = {
1098 .name
= "timers:dead",
1099 .startup
.single
= NULL
,
1100 .teardown
.single
= timers_dead_cpu
,
1102 /* Kicks the plugged cpu into life */
1103 [CPUHP_BRINGUP_CPU
] = {
1104 .name
= "cpu:bringup",
1105 .startup
.single
= bringup_cpu
,
1106 .teardown
.single
= NULL
,
1109 [CPUHP_AP_SMPCFD_DYING
] = {
1110 .name
= "smpcfd:dying",
1111 .startup
.single
= NULL
,
1112 .teardown
.single
= smpcfd_dying_cpu
,
1115 * Handled on controll processor until the plugged processor manages
1118 [CPUHP_TEARDOWN_CPU
] = {
1119 .name
= "cpu:teardown",
1120 .startup
.single
= NULL
,
1121 .teardown
.single
= takedown_cpu
,
1125 [CPUHP_BRINGUP_CPU
] = { },
1129 /* Application processor state steps */
1130 static struct cpuhp_step cpuhp_ap_states
[] = {
1132 /* Final state before CPU kills itself */
1133 [CPUHP_AP_IDLE_DEAD
] = {
1134 .name
= "idle:dead",
1137 * Last state before CPU enters the idle loop to die. Transient state
1138 * for synchronization.
1140 [CPUHP_AP_OFFLINE
] = {
1141 .name
= "ap:offline",
1144 /* First state is scheduler control. Interrupts are disabled */
1145 [CPUHP_AP_SCHED_STARTING
] = {
1146 .name
= "sched:starting",
1147 .startup
.single
= sched_cpu_starting
,
1148 .teardown
.single
= sched_cpu_dying
,
1150 [CPUHP_AP_RCUTREE_DYING
] = {
1151 .name
= "RCU/tree:dying",
1152 .startup
.single
= NULL
,
1153 .teardown
.single
= rcutree_dying_cpu
,
1155 /* Entry state on starting. Interrupts enabled from here on. Transient
1156 * state for synchronsization */
1157 [CPUHP_AP_ONLINE
] = {
1158 .name
= "ap:online",
1160 /* Handle smpboot threads park/unpark */
1161 [CPUHP_AP_SMPBOOT_THREADS
] = {
1162 .name
= "smpboot/threads:online",
1163 .startup
.single
= smpboot_unpark_threads
,
1164 .teardown
.single
= NULL
,
1166 [CPUHP_AP_IRQ_AFFINITY_ONLINE
] = {
1167 .name
= "irq/affinity:online",
1168 .startup
.single
= irq_affinity_online_cpu
,
1169 .teardown
.single
= NULL
,
1171 [CPUHP_AP_PERF_ONLINE
] = {
1172 .name
= "perf:online",
1173 .startup
.single
= perf_event_init_cpu
,
1174 .teardown
.single
= perf_event_exit_cpu
,
1176 [CPUHP_AP_WORKQUEUE_ONLINE
] = {
1177 .name
= "workqueue:online",
1178 .startup
.single
= workqueue_online_cpu
,
1179 .teardown
.single
= workqueue_offline_cpu
,
1181 [CPUHP_AP_RCUTREE_ONLINE
] = {
1182 .name
= "RCU/tree:online",
1183 .startup
.single
= rcutree_online_cpu
,
1184 .teardown
.single
= rcutree_offline_cpu
,
1188 * The dynamically registered state space is here
1192 /* Last state is scheduler control setting the cpu active */
1193 [CPUHP_AP_ACTIVE
] = {
1194 .name
= "sched:active",
1195 .startup
.single
= sched_cpu_activate
,
1196 .teardown
.single
= sched_cpu_deactivate
,
1200 /* CPU is fully up and running. */
1203 .startup
.single
= NULL
,
1204 .teardown
.single
= NULL
,
1208 /* Sanity check for callbacks */
1209 static int cpuhp_cb_check(enum cpuhp_state state
)
1211 if (state
<= CPUHP_OFFLINE
|| state
>= CPUHP_ONLINE
)
1217 * Returns a free for dynamic slot assignment of the Online state. The states
1218 * are protected by the cpuhp_slot_states mutex and an empty slot is identified
1219 * by having no name assigned.
1221 static int cpuhp_reserve_state(enum cpuhp_state state
)
1223 enum cpuhp_state i
, end
;
1224 struct cpuhp_step
*step
;
1227 case CPUHP_AP_ONLINE_DYN
:
1228 step
= cpuhp_ap_states
+ CPUHP_AP_ONLINE_DYN
;
1229 end
= CPUHP_AP_ONLINE_DYN_END
;
1231 case CPUHP_BP_PREPARE_DYN
:
1232 step
= cpuhp_bp_states
+ CPUHP_BP_PREPARE_DYN
;
1233 end
= CPUHP_BP_PREPARE_DYN_END
;
1239 for (i
= state
; i
<= end
; i
++, step
++) {
1243 WARN(1, "No more dynamic states available for CPU hotplug\n");
1247 static int cpuhp_store_callbacks(enum cpuhp_state state
, const char *name
,
1248 int (*startup
)(unsigned int cpu
),
1249 int (*teardown
)(unsigned int cpu
),
1250 bool multi_instance
)
1252 /* (Un)Install the callbacks for further cpu hotplug operations */
1253 struct cpuhp_step
*sp
;
1257 * If name is NULL, then the state gets removed.
1259 * CPUHP_AP_ONLINE_DYN and CPUHP_BP_PREPARE_DYN are handed out on
1260 * the first allocation from these dynamic ranges, so the removal
1261 * would trigger a new allocation and clear the wrong (already
1262 * empty) state, leaving the callbacks of the to be cleared state
1263 * dangling, which causes wreckage on the next hotplug operation.
1265 if (name
&& (state
== CPUHP_AP_ONLINE_DYN
||
1266 state
== CPUHP_BP_PREPARE_DYN
)) {
1267 ret
= cpuhp_reserve_state(state
);
1272 sp
= cpuhp_get_step(state
);
1273 if (name
&& sp
->name
)
1276 sp
->startup
.single
= startup
;
1277 sp
->teardown
.single
= teardown
;
1279 sp
->multi_instance
= multi_instance
;
1280 INIT_HLIST_HEAD(&sp
->list
);
1284 static void *cpuhp_get_teardown_cb(enum cpuhp_state state
)
1286 return cpuhp_get_step(state
)->teardown
.single
;
1290 * Call the startup/teardown function for a step either on the AP or
1291 * on the current CPU.
1293 static int cpuhp_issue_call(int cpu
, enum cpuhp_state state
, bool bringup
,
1294 struct hlist_node
*node
)
1296 struct cpuhp_step
*sp
= cpuhp_get_step(state
);
1299 if ((bringup
&& !sp
->startup
.single
) ||
1300 (!bringup
&& !sp
->teardown
.single
))
1303 * The non AP bound callbacks can fail on bringup. On teardown
1304 * e.g. module removal we crash for now.
1307 if (cpuhp_is_ap_state(state
))
1308 ret
= cpuhp_invoke_ap_callback(cpu
, state
, bringup
, node
);
1310 ret
= cpuhp_invoke_callback(cpu
, state
, bringup
, node
);
1312 ret
= cpuhp_invoke_callback(cpu
, state
, bringup
, node
);
1314 BUG_ON(ret
&& !bringup
);
1319 * Called from __cpuhp_setup_state on a recoverable failure.
1321 * Note: The teardown callbacks for rollback are not allowed to fail!
1323 static void cpuhp_rollback_install(int failedcpu
, enum cpuhp_state state
,
1324 struct hlist_node
*node
)
1328 /* Roll back the already executed steps on the other cpus */
1329 for_each_present_cpu(cpu
) {
1330 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
1331 int cpustate
= st
->state
;
1333 if (cpu
>= failedcpu
)
1336 /* Did we invoke the startup call on that cpu ? */
1337 if (cpustate
>= state
)
1338 cpuhp_issue_call(cpu
, state
, false, node
);
1342 int __cpuhp_state_add_instance_cpuslocked(enum cpuhp_state state
,
1343 struct hlist_node
*node
,
1346 struct cpuhp_step
*sp
;
1350 lockdep_assert_cpus_held();
1352 sp
= cpuhp_get_step(state
);
1353 if (sp
->multi_instance
== false)
1356 mutex_lock(&cpuhp_state_mutex
);
1358 if (!invoke
|| !sp
->startup
.multi
)
1362 * Try to call the startup callback for each present cpu
1363 * depending on the hotplug state of the cpu.
1365 for_each_present_cpu(cpu
) {
1366 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
1367 int cpustate
= st
->state
;
1369 if (cpustate
< state
)
1372 ret
= cpuhp_issue_call(cpu
, state
, true, node
);
1374 if (sp
->teardown
.multi
)
1375 cpuhp_rollback_install(cpu
, state
, node
);
1381 hlist_add_head(node
, &sp
->list
);
1383 mutex_unlock(&cpuhp_state_mutex
);
1387 int __cpuhp_state_add_instance(enum cpuhp_state state
, struct hlist_node
*node
,
1393 ret
= __cpuhp_state_add_instance_cpuslocked(state
, node
, invoke
);
1397 EXPORT_SYMBOL_GPL(__cpuhp_state_add_instance
);
1400 * __cpuhp_setup_state_cpuslocked - Setup the callbacks for an hotplug machine state
1401 * @state: The state to setup
1402 * @invoke: If true, the startup function is invoked for cpus where
1403 * cpu state >= @state
1404 * @startup: startup callback function
1405 * @teardown: teardown callback function
1406 * @multi_instance: State is set up for multiple instances which get
1409 * The caller needs to hold cpus read locked while calling this function.
1412 * Positive state number if @state is CPUHP_AP_ONLINE_DYN
1413 * 0 for all other states
1414 * On failure: proper (negative) error code
1416 int __cpuhp_setup_state_cpuslocked(enum cpuhp_state state
,
1417 const char *name
, bool invoke
,
1418 int (*startup
)(unsigned int cpu
),
1419 int (*teardown
)(unsigned int cpu
),
1420 bool multi_instance
)
1425 lockdep_assert_cpus_held();
1427 if (cpuhp_cb_check(state
) || !name
)
1430 mutex_lock(&cpuhp_state_mutex
);
1432 ret
= cpuhp_store_callbacks(state
, name
, startup
, teardown
,
1435 dynstate
= state
== CPUHP_AP_ONLINE_DYN
;
1436 if (ret
> 0 && dynstate
) {
1441 if (ret
|| !invoke
|| !startup
)
1445 * Try to call the startup callback for each present cpu
1446 * depending on the hotplug state of the cpu.
1448 for_each_present_cpu(cpu
) {
1449 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
1450 int cpustate
= st
->state
;
1452 if (cpustate
< state
)
1455 ret
= cpuhp_issue_call(cpu
, state
, true, NULL
);
1458 cpuhp_rollback_install(cpu
, state
, NULL
);
1459 cpuhp_store_callbacks(state
, NULL
, NULL
, NULL
, false);
1464 mutex_unlock(&cpuhp_state_mutex
);
1466 * If the requested state is CPUHP_AP_ONLINE_DYN, return the
1467 * dynamically allocated state in case of success.
1469 if (!ret
&& dynstate
)
1473 EXPORT_SYMBOL(__cpuhp_setup_state_cpuslocked
);
1475 int __cpuhp_setup_state(enum cpuhp_state state
,
1476 const char *name
, bool invoke
,
1477 int (*startup
)(unsigned int cpu
),
1478 int (*teardown
)(unsigned int cpu
),
1479 bool multi_instance
)
1484 ret
= __cpuhp_setup_state_cpuslocked(state
, name
, invoke
, startup
,
1485 teardown
, multi_instance
);
1489 EXPORT_SYMBOL(__cpuhp_setup_state
);
1491 int __cpuhp_state_remove_instance(enum cpuhp_state state
,
1492 struct hlist_node
*node
, bool invoke
)
1494 struct cpuhp_step
*sp
= cpuhp_get_step(state
);
1497 BUG_ON(cpuhp_cb_check(state
));
1499 if (!sp
->multi_instance
)
1503 mutex_lock(&cpuhp_state_mutex
);
1505 if (!invoke
|| !cpuhp_get_teardown_cb(state
))
1508 * Call the teardown callback for each present cpu depending
1509 * on the hotplug state of the cpu. This function is not
1510 * allowed to fail currently!
1512 for_each_present_cpu(cpu
) {
1513 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
1514 int cpustate
= st
->state
;
1516 if (cpustate
>= state
)
1517 cpuhp_issue_call(cpu
, state
, false, node
);
1522 mutex_unlock(&cpuhp_state_mutex
);
1527 EXPORT_SYMBOL_GPL(__cpuhp_state_remove_instance
);
1530 * __cpuhp_remove_state_cpuslocked - Remove the callbacks for an hotplug machine state
1531 * @state: The state to remove
1532 * @invoke: If true, the teardown function is invoked for cpus where
1533 * cpu state >= @state
1535 * The caller needs to hold cpus read locked while calling this function.
1536 * The teardown callback is currently not allowed to fail. Think
1537 * about module removal!
1539 void __cpuhp_remove_state_cpuslocked(enum cpuhp_state state
, bool invoke
)
1541 struct cpuhp_step
*sp
= cpuhp_get_step(state
);
1544 BUG_ON(cpuhp_cb_check(state
));
1546 lockdep_assert_cpus_held();
1548 mutex_lock(&cpuhp_state_mutex
);
1549 if (sp
->multi_instance
) {
1550 WARN(!hlist_empty(&sp
->list
),
1551 "Error: Removing state %d which has instances left.\n",
1556 if (!invoke
|| !cpuhp_get_teardown_cb(state
))
1560 * Call the teardown callback for each present cpu depending
1561 * on the hotplug state of the cpu. This function is not
1562 * allowed to fail currently!
1564 for_each_present_cpu(cpu
) {
1565 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, cpu
);
1566 int cpustate
= st
->state
;
1568 if (cpustate
>= state
)
1569 cpuhp_issue_call(cpu
, state
, false, NULL
);
1572 cpuhp_store_callbacks(state
, NULL
, NULL
, NULL
, false);
1573 mutex_unlock(&cpuhp_state_mutex
);
1575 EXPORT_SYMBOL(__cpuhp_remove_state_cpuslocked
);
1577 void __cpuhp_remove_state(enum cpuhp_state state
, bool invoke
)
1580 __cpuhp_remove_state_cpuslocked(state
, invoke
);
1583 EXPORT_SYMBOL(__cpuhp_remove_state
);
1585 #if defined(CONFIG_SYSFS) && defined(CONFIG_HOTPLUG_CPU)
1586 static ssize_t
show_cpuhp_state(struct device
*dev
,
1587 struct device_attribute
*attr
, char *buf
)
1589 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, dev
->id
);
1591 return sprintf(buf
, "%d\n", st
->state
);
1593 static DEVICE_ATTR(state
, 0444, show_cpuhp_state
, NULL
);
1595 static ssize_t
write_cpuhp_target(struct device
*dev
,
1596 struct device_attribute
*attr
,
1597 const char *buf
, size_t count
)
1599 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, dev
->id
);
1600 struct cpuhp_step
*sp
;
1603 ret
= kstrtoint(buf
, 10, &target
);
1607 #ifdef CONFIG_CPU_HOTPLUG_STATE_CONTROL
1608 if (target
< CPUHP_OFFLINE
|| target
> CPUHP_ONLINE
)
1611 if (target
!= CPUHP_OFFLINE
&& target
!= CPUHP_ONLINE
)
1615 ret
= lock_device_hotplug_sysfs();
1619 mutex_lock(&cpuhp_state_mutex
);
1620 sp
= cpuhp_get_step(target
);
1621 ret
= !sp
->name
|| sp
->cant_stop
? -EINVAL
: 0;
1622 mutex_unlock(&cpuhp_state_mutex
);
1626 if (st
->state
< target
)
1627 ret
= do_cpu_up(dev
->id
, target
);
1629 ret
= do_cpu_down(dev
->id
, target
);
1631 unlock_device_hotplug();
1632 return ret
? ret
: count
;
1635 static ssize_t
show_cpuhp_target(struct device
*dev
,
1636 struct device_attribute
*attr
, char *buf
)
1638 struct cpuhp_cpu_state
*st
= per_cpu_ptr(&cpuhp_state
, dev
->id
);
1640 return sprintf(buf
, "%d\n", st
->target
);
1642 static DEVICE_ATTR(target
, 0644, show_cpuhp_target
, write_cpuhp_target
);
1644 static struct attribute
*cpuhp_cpu_attrs
[] = {
1645 &dev_attr_state
.attr
,
1646 &dev_attr_target
.attr
,
1650 static const struct attribute_group cpuhp_cpu_attr_group
= {
1651 .attrs
= cpuhp_cpu_attrs
,
1656 static ssize_t
show_cpuhp_states(struct device
*dev
,
1657 struct device_attribute
*attr
, char *buf
)
1659 ssize_t cur
, res
= 0;
1662 mutex_lock(&cpuhp_state_mutex
);
1663 for (i
= CPUHP_OFFLINE
; i
<= CPUHP_ONLINE
; i
++) {
1664 struct cpuhp_step
*sp
= cpuhp_get_step(i
);
1667 cur
= sprintf(buf
, "%3d: %s\n", i
, sp
->name
);
1672 mutex_unlock(&cpuhp_state_mutex
);
1675 static DEVICE_ATTR(states
, 0444, show_cpuhp_states
, NULL
);
1677 static struct attribute
*cpuhp_cpu_root_attrs
[] = {
1678 &dev_attr_states
.attr
,
1682 static const struct attribute_group cpuhp_cpu_root_attr_group
= {
1683 .attrs
= cpuhp_cpu_root_attrs
,
1688 static int __init
cpuhp_sysfs_init(void)
1692 ret
= sysfs_create_group(&cpu_subsys
.dev_root
->kobj
,
1693 &cpuhp_cpu_root_attr_group
);
1697 for_each_possible_cpu(cpu
) {
1698 struct device
*dev
= get_cpu_device(cpu
);
1702 ret
= sysfs_create_group(&dev
->kobj
, &cpuhp_cpu_attr_group
);
1708 device_initcall(cpuhp_sysfs_init
);
1712 * cpu_bit_bitmap[] is a special, "compressed" data structure that
1713 * represents all NR_CPUS bits binary values of 1<<nr.
1715 * It is used by cpumask_of() to get a constant address to a CPU
1716 * mask value that has a single bit set only.
1719 /* cpu_bit_bitmap[0] is empty - so we can back into it */
1720 #define MASK_DECLARE_1(x) [x+1][0] = (1UL << (x))
1721 #define MASK_DECLARE_2(x) MASK_DECLARE_1(x), MASK_DECLARE_1(x+1)
1722 #define MASK_DECLARE_4(x) MASK_DECLARE_2(x), MASK_DECLARE_2(x+2)
1723 #define MASK_DECLARE_8(x) MASK_DECLARE_4(x), MASK_DECLARE_4(x+4)
1725 const unsigned long cpu_bit_bitmap
[BITS_PER_LONG
+1][BITS_TO_LONGS(NR_CPUS
)] = {
1727 MASK_DECLARE_8(0), MASK_DECLARE_8(8),
1728 MASK_DECLARE_8(16), MASK_DECLARE_8(24),
1729 #if BITS_PER_LONG > 32
1730 MASK_DECLARE_8(32), MASK_DECLARE_8(40),
1731 MASK_DECLARE_8(48), MASK_DECLARE_8(56),
1734 EXPORT_SYMBOL_GPL(cpu_bit_bitmap
);
1736 const DECLARE_BITMAP(cpu_all_bits
, NR_CPUS
) = CPU_BITS_ALL
;
1737 EXPORT_SYMBOL(cpu_all_bits
);
1739 #ifdef CONFIG_INIT_ALL_POSSIBLE
1740 struct cpumask __cpu_possible_mask __read_mostly
1743 struct cpumask __cpu_possible_mask __read_mostly
;
1745 EXPORT_SYMBOL(__cpu_possible_mask
);
1747 struct cpumask __cpu_online_mask __read_mostly
;
1748 EXPORT_SYMBOL(__cpu_online_mask
);
1750 struct cpumask __cpu_present_mask __read_mostly
;
1751 EXPORT_SYMBOL(__cpu_present_mask
);
1753 struct cpumask __cpu_active_mask __read_mostly
;
1754 EXPORT_SYMBOL(__cpu_active_mask
);
1756 void init_cpu_present(const struct cpumask
*src
)
1758 cpumask_copy(&__cpu_present_mask
, src
);
1761 void init_cpu_possible(const struct cpumask
*src
)
1763 cpumask_copy(&__cpu_possible_mask
, src
);
1766 void init_cpu_online(const struct cpumask
*src
)
1768 cpumask_copy(&__cpu_online_mask
, src
);
1772 * Activate the first processor.
1774 void __init
boot_cpu_init(void)
1776 int cpu
= smp_processor_id();
1778 /* Mark the boot cpu "present", "online" etc for SMP and UP case */
1779 set_cpu_online(cpu
, true);
1780 set_cpu_active(cpu
, true);
1781 set_cpu_present(cpu
, true);
1782 set_cpu_possible(cpu
, true);
1785 __boot_cpu_id
= cpu
;
1790 * Must be called _AFTER_ setting up the per_cpu areas
1792 void __init
boot_cpu_state_init(void)
1794 per_cpu_ptr(&cpuhp_state
, smp_processor_id())->state
= CPUHP_ONLINE
;