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1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * kernel/stop_machine.c
4  *
5  * Copyright (C) 2008, 2005	IBM Corporation.
6  * Copyright (C) 2008, 2005	Rusty Russell rusty@rustcorp.com.au
7  * Copyright (C) 2010		SUSE Linux Products GmbH
8  * Copyright (C) 2010		Tejun Heo <tj@kernel.org>
9  */
10 #include <linux/compiler.h>
11 #include <linux/completion.h>
12 #include <linux/cpu.h>
13 #include <linux/init.h>
14 #include <linux/kthread.h>
15 #include <linux/export.h>
16 #include <linux/percpu.h>
17 #include <linux/sched.h>
18 #include <linux/stop_machine.h>
19 #include <linux/interrupt.h>
20 #include <linux/kallsyms.h>
21 #include <linux/smpboot.h>
22 #include <linux/atomic.h>
23 #include <linux/nmi.h>
24 #include <linux/sched/wake_q.h>
25 
26 /*
27  * Structure to determine completion condition and record errors.  May
28  * be shared by works on different cpus.
29  */
30 struct cpu_stop_done {
31 	atomic_t		nr_todo;	/* nr left to execute */
32 	int			ret;		/* collected return value */
33 	struct completion	completion;	/* fired if nr_todo reaches 0 */
34 };
35 
36 /* the actual stopper, one per every possible cpu, enabled on online cpus */
37 struct cpu_stopper {
38 	struct task_struct	*thread;
39 
40 	raw_spinlock_t		lock;
41 	bool			enabled;	/* is this stopper enabled? */
42 	struct list_head	works;		/* list of pending works */
43 
44 	struct cpu_stop_work	stop_work;	/* for stop_cpus */
45 	unsigned long		caller;
46 	cpu_stop_fn_t		fn;
47 };
48 
49 static DEFINE_PER_CPU(struct cpu_stopper, cpu_stopper);
50 static bool stop_machine_initialized = false;
51 
print_stop_info(const char * log_lvl,struct task_struct * task)52 void print_stop_info(const char *log_lvl, struct task_struct *task)
53 {
54 	/*
55 	 * If @task is a stopper task, it cannot migrate and task_cpu() is
56 	 * stable.
57 	 */
58 	struct cpu_stopper *stopper = per_cpu_ptr(&cpu_stopper, task_cpu(task));
59 
60 	if (task != stopper->thread)
61 		return;
62 
63 	printk("%sStopper: %pS <- %pS\n", log_lvl, stopper->fn, (void *)stopper->caller);
64 }
65 
66 /* static data for stop_cpus */
67 static DEFINE_MUTEX(stop_cpus_mutex);
68 static bool stop_cpus_in_progress;
69 
cpu_stop_init_done(struct cpu_stop_done * done,unsigned int nr_todo)70 static void cpu_stop_init_done(struct cpu_stop_done *done, unsigned int nr_todo)
71 {
72 	memset(done, 0, sizeof(*done));
73 	atomic_set(&done->nr_todo, nr_todo);
74 	init_completion(&done->completion);
75 }
76 
77 /* signal completion unless @done is NULL */
cpu_stop_signal_done(struct cpu_stop_done * done)78 static void cpu_stop_signal_done(struct cpu_stop_done *done)
79 {
80 	if (atomic_dec_and_test(&done->nr_todo))
81 		complete(&done->completion);
82 }
83 
__cpu_stop_queue_work(struct cpu_stopper * stopper,struct cpu_stop_work * work)84 static void __cpu_stop_queue_work(struct cpu_stopper *stopper,
85 				  struct cpu_stop_work *work)
86 {
87 	list_add_tail(&work->list, &stopper->works);
88 }
89 
90 /* queue @work to @stopper.  if offline, @work is completed immediately */
cpu_stop_queue_work(unsigned int cpu,struct cpu_stop_work * work)91 static bool cpu_stop_queue_work(unsigned int cpu, struct cpu_stop_work *work)
92 {
93 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
94 	unsigned long flags;
95 	bool enabled;
96 
97 	preempt_disable();
98 	raw_spin_lock_irqsave(&stopper->lock, flags);
99 	enabled = stopper->enabled;
100 	if (enabled)
101 		__cpu_stop_queue_work(stopper, work);
102 	else if (work->done)
103 		cpu_stop_signal_done(work->done);
104 	raw_spin_unlock_irqrestore(&stopper->lock, flags);
105 
106 	if (enabled)
107 		wake_up_process(stopper->thread);
108 	preempt_enable();
109 
110 	return enabled;
111 }
112 
113 /**
114  * stop_one_cpu - stop a cpu
115  * @cpu: cpu to stop
116  * @fn: function to execute
117  * @arg: argument to @fn
118  *
119  * Execute @fn(@arg) on @cpu.  @fn is run in a process context with
120  * the highest priority preempting any task on the cpu and
121  * monopolizing it.  This function returns after the execution is
122  * complete.
123  *
124  * This function doesn't guarantee @cpu stays online till @fn
125  * completes.  If @cpu goes down in the middle, execution may happen
126  * partially or fully on different cpus.  @fn should either be ready
127  * for that or the caller should ensure that @cpu stays online until
128  * this function completes.
129  *
130  * CONTEXT:
131  * Might sleep.
132  *
133  * RETURNS:
134  * -ENOENT if @fn(@arg) was not executed because @cpu was offline;
135  * otherwise, the return value of @fn.
136  */
stop_one_cpu(unsigned int cpu,cpu_stop_fn_t fn,void * arg)137 int stop_one_cpu(unsigned int cpu, cpu_stop_fn_t fn, void *arg)
138 {
139 	struct cpu_stop_done done;
140 	struct cpu_stop_work work = { .fn = fn, .arg = arg, .done = &done, .caller = _RET_IP_ };
141 
142 	cpu_stop_init_done(&done, 1);
143 	if (!cpu_stop_queue_work(cpu, &work))
144 		return -ENOENT;
145 	/*
146 	 * In case @cpu == smp_proccessor_id() we can avoid a sleep+wakeup
147 	 * cycle by doing a preemption:
148 	 */
149 	cond_resched();
150 	wait_for_completion(&done.completion);
151 	return done.ret;
152 }
153 EXPORT_SYMBOL_GPL(stop_one_cpu);
154 
155 /* This controls the threads on each CPU. */
156 enum multi_stop_state {
157 	/* Dummy starting state for thread. */
158 	MULTI_STOP_NONE,
159 	/* Awaiting everyone to be scheduled. */
160 	MULTI_STOP_PREPARE,
161 	/* Disable interrupts. */
162 	MULTI_STOP_DISABLE_IRQ,
163 	/* Run the function */
164 	MULTI_STOP_RUN,
165 	/* Exit */
166 	MULTI_STOP_EXIT,
167 };
168 
169 struct multi_stop_data {
170 	cpu_stop_fn_t		fn;
171 	void			*data;
172 	/* Like num_online_cpus(), but hotplug cpu uses us, so we need this. */
173 	unsigned int		num_threads;
174 	const struct cpumask	*active_cpus;
175 
176 	enum multi_stop_state	state;
177 	atomic_t		thread_ack;
178 };
179 
set_state(struct multi_stop_data * msdata,enum multi_stop_state newstate)180 static void set_state(struct multi_stop_data *msdata,
181 		      enum multi_stop_state newstate)
182 {
183 	/* Reset ack counter. */
184 	atomic_set(&msdata->thread_ack, msdata->num_threads);
185 	smp_wmb();
186 	WRITE_ONCE(msdata->state, newstate);
187 }
188 
189 /* Last one to ack a state moves to the next state. */
ack_state(struct multi_stop_data * msdata)190 static void ack_state(struct multi_stop_data *msdata)
191 {
192 	if (atomic_dec_and_test(&msdata->thread_ack))
193 		set_state(msdata, msdata->state + 1);
194 }
195 
stop_machine_yield(const struct cpumask * cpumask)196 notrace void __weak stop_machine_yield(const struct cpumask *cpumask)
197 {
198 	cpu_relax();
199 }
200 
201 /* This is the cpu_stop function which stops the CPU. */
multi_cpu_stop(void * data)202 static int multi_cpu_stop(void *data)
203 {
204 	struct multi_stop_data *msdata = data;
205 	enum multi_stop_state newstate, curstate = MULTI_STOP_NONE;
206 	int cpu = smp_processor_id(), err = 0;
207 	const struct cpumask *cpumask;
208 	unsigned long flags;
209 	bool is_active;
210 
211 	/*
212 	 * When called from stop_machine_from_inactive_cpu(), irq might
213 	 * already be disabled.  Save the state and restore it on exit.
214 	 */
215 	local_save_flags(flags);
216 
217 	if (!msdata->active_cpus) {
218 		cpumask = cpu_online_mask;
219 		is_active = cpu == cpumask_first(cpumask);
220 	} else {
221 		cpumask = msdata->active_cpus;
222 		is_active = cpumask_test_cpu(cpu, cpumask);
223 	}
224 
225 	/* Simple state machine */
226 	do {
227 		/* Chill out and ensure we re-read multi_stop_state. */
228 		stop_machine_yield(cpumask);
229 		newstate = READ_ONCE(msdata->state);
230 		if (newstate != curstate) {
231 			curstate = newstate;
232 			switch (curstate) {
233 			case MULTI_STOP_DISABLE_IRQ:
234 				local_irq_disable();
235 				hard_irq_disable();
236 				break;
237 			case MULTI_STOP_RUN:
238 				if (is_active)
239 					err = msdata->fn(msdata->data);
240 				break;
241 			default:
242 				break;
243 			}
244 			ack_state(msdata);
245 		} else if (curstate > MULTI_STOP_PREPARE) {
246 			/*
247 			 * At this stage all other CPUs we depend on must spin
248 			 * in the same loop. Any reason for hard-lockup should
249 			 * be detected and reported on their side.
250 			 */
251 			touch_nmi_watchdog();
252 		}
253 		rcu_momentary_eqs();
254 	} while (curstate != MULTI_STOP_EXIT);
255 
256 	local_irq_restore(flags);
257 	return err;
258 }
259 
cpu_stop_queue_two_works(int cpu1,struct cpu_stop_work * work1,int cpu2,struct cpu_stop_work * work2)260 static int cpu_stop_queue_two_works(int cpu1, struct cpu_stop_work *work1,
261 				    int cpu2, struct cpu_stop_work *work2)
262 {
263 	struct cpu_stopper *stopper1 = per_cpu_ptr(&cpu_stopper, cpu1);
264 	struct cpu_stopper *stopper2 = per_cpu_ptr(&cpu_stopper, cpu2);
265 	int err;
266 
267 retry:
268 	/*
269 	 * The waking up of stopper threads has to happen in the same
270 	 * scheduling context as the queueing.  Otherwise, there is a
271 	 * possibility of one of the above stoppers being woken up by another
272 	 * CPU, and preempting us. This will cause us to not wake up the other
273 	 * stopper forever.
274 	 */
275 	preempt_disable();
276 	raw_spin_lock_irq(&stopper1->lock);
277 	raw_spin_lock_nested(&stopper2->lock, SINGLE_DEPTH_NESTING);
278 
279 	if (!stopper1->enabled || !stopper2->enabled) {
280 		err = -ENOENT;
281 		goto unlock;
282 	}
283 
284 	/*
285 	 * Ensure that if we race with __stop_cpus() the stoppers won't get
286 	 * queued up in reverse order leading to system deadlock.
287 	 *
288 	 * We can't miss stop_cpus_in_progress if queue_stop_cpus_work() has
289 	 * queued a work on cpu1 but not on cpu2, we hold both locks.
290 	 *
291 	 * It can be falsely true but it is safe to spin until it is cleared,
292 	 * queue_stop_cpus_work() does everything under preempt_disable().
293 	 */
294 	if (unlikely(stop_cpus_in_progress)) {
295 		err = -EDEADLK;
296 		goto unlock;
297 	}
298 
299 	err = 0;
300 	__cpu_stop_queue_work(stopper1, work1);
301 	__cpu_stop_queue_work(stopper2, work2);
302 
303 unlock:
304 	raw_spin_unlock(&stopper2->lock);
305 	raw_spin_unlock_irq(&stopper1->lock);
306 
307 	if (unlikely(err == -EDEADLK)) {
308 		preempt_enable();
309 
310 		while (stop_cpus_in_progress)
311 			cpu_relax();
312 
313 		goto retry;
314 	}
315 
316 	if (!err) {
317 		wake_up_process(stopper1->thread);
318 		wake_up_process(stopper2->thread);
319 	}
320 	preempt_enable();
321 
322 	return err;
323 }
324 /**
325  * stop_two_cpus - stops two cpus
326  * @cpu1: the cpu to stop
327  * @cpu2: the other cpu to stop
328  * @fn: function to execute
329  * @arg: argument to @fn
330  *
331  * Stops both the current and specified CPU and runs @fn on one of them.
332  *
333  * returns when both are completed.
334  */
stop_two_cpus(unsigned int cpu1,unsigned int cpu2,cpu_stop_fn_t fn,void * arg)335 int stop_two_cpus(unsigned int cpu1, unsigned int cpu2, cpu_stop_fn_t fn, void *arg)
336 {
337 	struct cpu_stop_done done;
338 	struct cpu_stop_work work1, work2;
339 	struct multi_stop_data msdata;
340 
341 	msdata = (struct multi_stop_data){
342 		.fn = fn,
343 		.data = arg,
344 		.num_threads = 2,
345 		.active_cpus = cpumask_of(cpu1),
346 	};
347 
348 	work1 = work2 = (struct cpu_stop_work){
349 		.fn = multi_cpu_stop,
350 		.arg = &msdata,
351 		.done = &done,
352 		.caller = _RET_IP_,
353 	};
354 
355 	cpu_stop_init_done(&done, 2);
356 	set_state(&msdata, MULTI_STOP_PREPARE);
357 
358 	if (cpu1 > cpu2)
359 		swap(cpu1, cpu2);
360 	if (cpu_stop_queue_two_works(cpu1, &work1, cpu2, &work2))
361 		return -ENOENT;
362 
363 	wait_for_completion(&done.completion);
364 	return done.ret;
365 }
366 
367 /**
368  * stop_one_cpu_nowait - stop a cpu but don't wait for completion
369  * @cpu: cpu to stop
370  * @fn: function to execute
371  * @arg: argument to @fn
372  * @work_buf: pointer to cpu_stop_work structure
373  *
374  * Similar to stop_one_cpu() but doesn't wait for completion.  The
375  * caller is responsible for ensuring @work_buf is currently unused
376  * and will remain untouched until stopper starts executing @fn.
377  *
378  * CONTEXT:
379  * Don't care.
380  *
381  * RETURNS:
382  * true if cpu_stop_work was queued successfully and @fn will be called,
383  * false otherwise.
384  */
stop_one_cpu_nowait(unsigned int cpu,cpu_stop_fn_t fn,void * arg,struct cpu_stop_work * work_buf)385 bool stop_one_cpu_nowait(unsigned int cpu, cpu_stop_fn_t fn, void *arg,
386 			struct cpu_stop_work *work_buf)
387 {
388 	*work_buf = (struct cpu_stop_work){ .fn = fn, .arg = arg, .caller = _RET_IP_, };
389 	return cpu_stop_queue_work(cpu, work_buf);
390 }
391 EXPORT_SYMBOL_GPL(stop_one_cpu_nowait);
392 
queue_stop_cpus_work(const struct cpumask * cpumask,cpu_stop_fn_t fn,void * arg,struct cpu_stop_done * done)393 static bool queue_stop_cpus_work(const struct cpumask *cpumask,
394 				 cpu_stop_fn_t fn, void *arg,
395 				 struct cpu_stop_done *done)
396 {
397 	struct cpu_stop_work *work;
398 	unsigned int cpu;
399 	bool queued = false;
400 
401 	/*
402 	 * Disable preemption while queueing to avoid getting
403 	 * preempted by a stopper which might wait for other stoppers
404 	 * to enter @fn which can lead to deadlock.
405 	 */
406 	preempt_disable();
407 	stop_cpus_in_progress = true;
408 	barrier();
409 	for_each_cpu(cpu, cpumask) {
410 		work = &per_cpu(cpu_stopper.stop_work, cpu);
411 		work->fn = fn;
412 		work->arg = arg;
413 		work->done = done;
414 		work->caller = _RET_IP_;
415 		if (cpu_stop_queue_work(cpu, work))
416 			queued = true;
417 	}
418 	barrier();
419 	stop_cpus_in_progress = false;
420 	preempt_enable();
421 
422 	return queued;
423 }
424 
__stop_cpus(const struct cpumask * cpumask,cpu_stop_fn_t fn,void * arg)425 static int __stop_cpus(const struct cpumask *cpumask,
426 		       cpu_stop_fn_t fn, void *arg)
427 {
428 	struct cpu_stop_done done;
429 
430 	cpu_stop_init_done(&done, cpumask_weight(cpumask));
431 	if (!queue_stop_cpus_work(cpumask, fn, arg, &done))
432 		return -ENOENT;
433 	wait_for_completion(&done.completion);
434 	return done.ret;
435 }
436 
437 /**
438  * stop_cpus - stop multiple cpus
439  * @cpumask: cpus to stop
440  * @fn: function to execute
441  * @arg: argument to @fn
442  *
443  * Execute @fn(@arg) on online cpus in @cpumask.  On each target cpu,
444  * @fn is run in a process context with the highest priority
445  * preempting any task on the cpu and monopolizing it.  This function
446  * returns after all executions are complete.
447  *
448  * This function doesn't guarantee the cpus in @cpumask stay online
449  * till @fn completes.  If some cpus go down in the middle, execution
450  * on the cpu may happen partially or fully on different cpus.  @fn
451  * should either be ready for that or the caller should ensure that
452  * the cpus stay online until this function completes.
453  *
454  * All stop_cpus() calls are serialized making it safe for @fn to wait
455  * for all cpus to start executing it.
456  *
457  * CONTEXT:
458  * Might sleep.
459  *
460  * RETURNS:
461  * -ENOENT if @fn(@arg) was not executed at all because all cpus in
462  * @cpumask were offline; otherwise, 0 if all executions of @fn
463  * returned 0, any non zero return value if any returned non zero.
464  */
stop_cpus(const struct cpumask * cpumask,cpu_stop_fn_t fn,void * arg)465 static int stop_cpus(const struct cpumask *cpumask, cpu_stop_fn_t fn, void *arg)
466 {
467 	int ret;
468 
469 	/* static works are used, process one request at a time */
470 	mutex_lock(&stop_cpus_mutex);
471 	ret = __stop_cpus(cpumask, fn, arg);
472 	mutex_unlock(&stop_cpus_mutex);
473 	return ret;
474 }
475 
cpu_stop_should_run(unsigned int cpu)476 static int cpu_stop_should_run(unsigned int cpu)
477 {
478 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
479 	unsigned long flags;
480 	int run;
481 
482 	raw_spin_lock_irqsave(&stopper->lock, flags);
483 	run = !list_empty(&stopper->works);
484 	raw_spin_unlock_irqrestore(&stopper->lock, flags);
485 	return run;
486 }
487 
cpu_stopper_thread(unsigned int cpu)488 static void cpu_stopper_thread(unsigned int cpu)
489 {
490 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
491 	struct cpu_stop_work *work;
492 
493 repeat:
494 	work = NULL;
495 	raw_spin_lock_irq(&stopper->lock);
496 	if (!list_empty(&stopper->works)) {
497 		work = list_first_entry(&stopper->works,
498 					struct cpu_stop_work, list);
499 		list_del_init(&work->list);
500 	}
501 	raw_spin_unlock_irq(&stopper->lock);
502 
503 	if (work) {
504 		cpu_stop_fn_t fn = work->fn;
505 		void *arg = work->arg;
506 		struct cpu_stop_done *done = work->done;
507 		int ret;
508 
509 		/* cpu stop callbacks must not sleep, make in_atomic() == T */
510 		stopper->caller = work->caller;
511 		stopper->fn = fn;
512 		preempt_count_inc();
513 		ret = fn(arg);
514 		if (done) {
515 			if (ret)
516 				done->ret = ret;
517 			cpu_stop_signal_done(done);
518 		}
519 		preempt_count_dec();
520 		stopper->fn = NULL;
521 		stopper->caller = 0;
522 		WARN_ONCE(preempt_count(),
523 			  "cpu_stop: %ps(%p) leaked preempt count\n", fn, arg);
524 		goto repeat;
525 	}
526 }
527 
stop_machine_park(int cpu)528 void stop_machine_park(int cpu)
529 {
530 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
531 	/*
532 	 * Lockless. cpu_stopper_thread() will take stopper->lock and flush
533 	 * the pending works before it parks, until then it is fine to queue
534 	 * the new works.
535 	 */
536 	stopper->enabled = false;
537 	kthread_park(stopper->thread);
538 }
539 
cpu_stop_create(unsigned int cpu)540 static void cpu_stop_create(unsigned int cpu)
541 {
542 	sched_set_stop_task(cpu, per_cpu(cpu_stopper.thread, cpu));
543 }
544 
cpu_stop_park(unsigned int cpu)545 static void cpu_stop_park(unsigned int cpu)
546 {
547 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
548 
549 	WARN_ON(!list_empty(&stopper->works));
550 }
551 
stop_machine_unpark(int cpu)552 void stop_machine_unpark(int cpu)
553 {
554 	struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
555 
556 	stopper->enabled = true;
557 	kthread_unpark(stopper->thread);
558 }
559 
560 static struct smp_hotplug_thread cpu_stop_threads = {
561 	.store			= &cpu_stopper.thread,
562 	.thread_should_run	= cpu_stop_should_run,
563 	.thread_fn		= cpu_stopper_thread,
564 	.thread_comm		= "migration/%u",
565 	.create			= cpu_stop_create,
566 	.park			= cpu_stop_park,
567 	.selfparking		= true,
568 };
569 
cpu_stop_init(void)570 static int __init cpu_stop_init(void)
571 {
572 	unsigned int cpu;
573 
574 	for_each_possible_cpu(cpu) {
575 		struct cpu_stopper *stopper = &per_cpu(cpu_stopper, cpu);
576 
577 		raw_spin_lock_init(&stopper->lock);
578 		INIT_LIST_HEAD(&stopper->works);
579 	}
580 
581 	BUG_ON(smpboot_register_percpu_thread(&cpu_stop_threads));
582 	stop_machine_unpark(raw_smp_processor_id());
583 	stop_machine_initialized = true;
584 	return 0;
585 }
586 early_initcall(cpu_stop_init);
587 
stop_machine_cpuslocked(cpu_stop_fn_t fn,void * data,const struct cpumask * cpus)588 int stop_machine_cpuslocked(cpu_stop_fn_t fn, void *data,
589 			    const struct cpumask *cpus)
590 {
591 	struct multi_stop_data msdata = {
592 		.fn = fn,
593 		.data = data,
594 		.num_threads = num_online_cpus(),
595 		.active_cpus = cpus,
596 	};
597 
598 	lockdep_assert_cpus_held();
599 
600 	if (!stop_machine_initialized) {
601 		/*
602 		 * Handle the case where stop_machine() is called
603 		 * early in boot before stop_machine() has been
604 		 * initialized.
605 		 */
606 		unsigned long flags;
607 		int ret;
608 
609 		WARN_ON_ONCE(msdata.num_threads != 1);
610 
611 		local_irq_save(flags);
612 		hard_irq_disable();
613 		ret = (*fn)(data);
614 		local_irq_restore(flags);
615 
616 		return ret;
617 	}
618 
619 	/* Set the initial state and stop all online cpus. */
620 	set_state(&msdata, MULTI_STOP_PREPARE);
621 	return stop_cpus(cpu_online_mask, multi_cpu_stop, &msdata);
622 }
623 
stop_machine(cpu_stop_fn_t fn,void * data,const struct cpumask * cpus)624 int stop_machine(cpu_stop_fn_t fn, void *data, const struct cpumask *cpus)
625 {
626 	int ret;
627 
628 	/* No CPUs can come up or down during this. */
629 	cpus_read_lock();
630 	ret = stop_machine_cpuslocked(fn, data, cpus);
631 	cpus_read_unlock();
632 	return ret;
633 }
634 EXPORT_SYMBOL_GPL(stop_machine);
635 
636 #ifdef CONFIG_SCHED_SMT
stop_core_cpuslocked(unsigned int cpu,cpu_stop_fn_t fn,void * data)637 int stop_core_cpuslocked(unsigned int cpu, cpu_stop_fn_t fn, void *data)
638 {
639 	const struct cpumask *smt_mask = cpu_smt_mask(cpu);
640 
641 	struct multi_stop_data msdata = {
642 		.fn = fn,
643 		.data = data,
644 		.num_threads = cpumask_weight(smt_mask),
645 		.active_cpus = smt_mask,
646 	};
647 
648 	lockdep_assert_cpus_held();
649 
650 	/* Set the initial state and stop all online cpus. */
651 	set_state(&msdata, MULTI_STOP_PREPARE);
652 	return stop_cpus(smt_mask, multi_cpu_stop, &msdata);
653 }
654 EXPORT_SYMBOL_GPL(stop_core_cpuslocked);
655 #endif
656 
657 /**
658  * stop_machine_from_inactive_cpu - stop_machine() from inactive CPU
659  * @fn: the function to run
660  * @data: the data ptr for the @fn()
661  * @cpus: the cpus to run the @fn() on (NULL = any online cpu)
662  *
663  * This is identical to stop_machine() but can be called from a CPU which
664  * is not active.  The local CPU is in the process of hotplug (so no other
665  * CPU hotplug can start) and not marked active and doesn't have enough
666  * context to sleep.
667  *
668  * This function provides stop_machine() functionality for such state by
669  * using busy-wait for synchronization and executing @fn directly for local
670  * CPU.
671  *
672  * CONTEXT:
673  * Local CPU is inactive.  Temporarily stops all active CPUs.
674  *
675  * RETURNS:
676  * 0 if all executions of @fn returned 0, any non zero return value if any
677  * returned non zero.
678  */
stop_machine_from_inactive_cpu(cpu_stop_fn_t fn,void * data,const struct cpumask * cpus)679 int stop_machine_from_inactive_cpu(cpu_stop_fn_t fn, void *data,
680 				  const struct cpumask *cpus)
681 {
682 	struct multi_stop_data msdata = { .fn = fn, .data = data,
683 					    .active_cpus = cpus };
684 	struct cpu_stop_done done;
685 	int ret;
686 
687 	/* Local CPU must be inactive and CPU hotplug in progress. */
688 	BUG_ON(cpu_active(raw_smp_processor_id()));
689 	msdata.num_threads = num_active_cpus() + 1;	/* +1 for local */
690 
691 	/* No proper task established and can't sleep - busy wait for lock. */
692 	while (!mutex_trylock(&stop_cpus_mutex))
693 		cpu_relax();
694 
695 	/* Schedule work on other CPUs and execute directly for local CPU */
696 	set_state(&msdata, MULTI_STOP_PREPARE);
697 	cpu_stop_init_done(&done, num_active_cpus());
698 	queue_stop_cpus_work(cpu_active_mask, multi_cpu_stop, &msdata,
699 			     &done);
700 	ret = multi_cpu_stop(&msdata);
701 
702 	/* Busy wait for completion. */
703 	while (!completion_done(&done.completion))
704 		cpu_relax();
705 
706 	mutex_unlock(&stop_cpus_mutex);
707 	return ret ?: done.ret;
708 }
709