smpboot: allow excluding cpus from the smpboot threads
[linux-2.6-block.git] / kernel / smpboot.c
CommitLineData
38498a67
TG
1/*
2 * Common SMP CPU bringup/teardown functions
3 */
f97f8f06 4#include <linux/cpu.h>
29d5e047
TG
5#include <linux/err.h>
6#include <linux/smp.h>
8038dad7 7#include <linux/delay.h>
38498a67 8#include <linux/init.h>
f97f8f06
TG
9#include <linux/list.h>
10#include <linux/slab.h>
29d5e047 11#include <linux/sched.h>
f97f8f06 12#include <linux/export.h>
29d5e047 13#include <linux/percpu.h>
f97f8f06
TG
14#include <linux/kthread.h>
15#include <linux/smpboot.h>
38498a67
TG
16
17#include "smpboot.h"
18
3180d89b
PM
19#ifdef CONFIG_SMP
20
29d5e047 21#ifdef CONFIG_GENERIC_SMP_IDLE_THREAD
29d5e047
TG
22/*
23 * For the hotplug case we keep the task structs around and reuse
24 * them.
25 */
26static DEFINE_PER_CPU(struct task_struct *, idle_threads);
27
0db0628d 28struct task_struct *idle_thread_get(unsigned int cpu)
29d5e047
TG
29{
30 struct task_struct *tsk = per_cpu(idle_threads, cpu);
31
32 if (!tsk)
3bb5d2ee 33 return ERR_PTR(-ENOMEM);
29d5e047
TG
34 init_idle(tsk, cpu);
35 return tsk;
36}
37
3bb5d2ee 38void __init idle_thread_set_boot_cpu(void)
29d5e047 39{
3bb5d2ee 40 per_cpu(idle_threads, smp_processor_id()) = current;
29d5e047
TG
41}
42
4a70d2d9
SB
43/**
44 * idle_init - Initialize the idle thread for a cpu
45 * @cpu: The cpu for which the idle thread should be initialized
46 *
47 * Creates the thread if it does not exist.
48 */
3bb5d2ee 49static inline void idle_init(unsigned int cpu)
29d5e047 50{
3bb5d2ee
SS
51 struct task_struct *tsk = per_cpu(idle_threads, cpu);
52
53 if (!tsk) {
54 tsk = fork_idle(cpu);
55 if (IS_ERR(tsk))
56 pr_err("SMP: fork_idle() failed for CPU %u\n", cpu);
57 else
58 per_cpu(idle_threads, cpu) = tsk;
59 }
29d5e047
TG
60}
61
62/**
4a70d2d9 63 * idle_threads_init - Initialize idle threads for all cpus
29d5e047 64 */
3bb5d2ee 65void __init idle_threads_init(void)
29d5e047 66{
ee74d132
SB
67 unsigned int cpu, boot_cpu;
68
69 boot_cpu = smp_processor_id();
29d5e047 70
3bb5d2ee 71 for_each_possible_cpu(cpu) {
ee74d132 72 if (cpu != boot_cpu)
3bb5d2ee 73 idle_init(cpu);
29d5e047 74 }
29d5e047 75}
29d5e047 76#endif
f97f8f06 77
3180d89b
PM
78#endif /* #ifdef CONFIG_SMP */
79
f97f8f06
TG
80static LIST_HEAD(hotplug_threads);
81static DEFINE_MUTEX(smpboot_threads_lock);
82
83struct smpboot_thread_data {
84 unsigned int cpu;
85 unsigned int status;
86 struct smp_hotplug_thread *ht;
87};
88
89enum {
90 HP_THREAD_NONE = 0,
91 HP_THREAD_ACTIVE,
92 HP_THREAD_PARKED,
93};
94
95/**
96 * smpboot_thread_fn - percpu hotplug thread loop function
97 * @data: thread data pointer
98 *
99 * Checks for thread stop and park conditions. Calls the necessary
100 * setup, cleanup, park and unpark functions for the registered
101 * thread.
102 *
103 * Returns 1 when the thread should exit, 0 otherwise.
104 */
105static int smpboot_thread_fn(void *data)
106{
107 struct smpboot_thread_data *td = data;
108 struct smp_hotplug_thread *ht = td->ht;
109
110 while (1) {
111 set_current_state(TASK_INTERRUPTIBLE);
112 preempt_disable();
113 if (kthread_should_stop()) {
7d4d2696 114 __set_current_state(TASK_RUNNING);
f97f8f06
TG
115 preempt_enable();
116 if (ht->cleanup)
117 ht->cleanup(td->cpu, cpu_online(td->cpu));
118 kfree(td);
119 return 0;
120 }
121
122 if (kthread_should_park()) {
123 __set_current_state(TASK_RUNNING);
124 preempt_enable();
125 if (ht->park && td->status == HP_THREAD_ACTIVE) {
126 BUG_ON(td->cpu != smp_processor_id());
127 ht->park(td->cpu);
128 td->status = HP_THREAD_PARKED;
129 }
130 kthread_parkme();
131 /* We might have been woken for stop */
132 continue;
133 }
134
dc893e19 135 BUG_ON(td->cpu != smp_processor_id());
f97f8f06
TG
136
137 /* Check for state change setup */
138 switch (td->status) {
139 case HP_THREAD_NONE:
7d4d2696 140 __set_current_state(TASK_RUNNING);
f97f8f06
TG
141 preempt_enable();
142 if (ht->setup)
143 ht->setup(td->cpu);
144 td->status = HP_THREAD_ACTIVE;
7d4d2696
PZ
145 continue;
146
f97f8f06 147 case HP_THREAD_PARKED:
7d4d2696 148 __set_current_state(TASK_RUNNING);
f97f8f06
TG
149 preempt_enable();
150 if (ht->unpark)
151 ht->unpark(td->cpu);
152 td->status = HP_THREAD_ACTIVE;
7d4d2696 153 continue;
f97f8f06
TG
154 }
155
156 if (!ht->thread_should_run(td->cpu)) {
7d4d2696 157 preempt_enable_no_resched();
f97f8f06
TG
158 schedule();
159 } else {
7d4d2696 160 __set_current_state(TASK_RUNNING);
f97f8f06
TG
161 preempt_enable();
162 ht->thread_fn(td->cpu);
163 }
164 }
165}
166
167static int
168__smpboot_create_thread(struct smp_hotplug_thread *ht, unsigned int cpu)
169{
170 struct task_struct *tsk = *per_cpu_ptr(ht->store, cpu);
171 struct smpboot_thread_data *td;
172
173 if (tsk)
174 return 0;
175
176 td = kzalloc_node(sizeof(*td), GFP_KERNEL, cpu_to_node(cpu));
177 if (!td)
178 return -ENOMEM;
179 td->cpu = cpu;
180 td->ht = ht;
181
182 tsk = kthread_create_on_cpu(smpboot_thread_fn, td, cpu,
183 ht->thread_comm);
184 if (IS_ERR(tsk)) {
185 kfree(td);
186 return PTR_ERR(tsk);
187 }
f97f8f06
TG
188 get_task_struct(tsk);
189 *per_cpu_ptr(ht->store, cpu) = tsk;
f2530dc7
TG
190 if (ht->create) {
191 /*
192 * Make sure that the task has actually scheduled out
193 * into park position, before calling the create
194 * callback. At least the migration thread callback
195 * requires that the task is off the runqueue.
196 */
197 if (!wait_task_inactive(tsk, TASK_PARKED))
198 WARN_ON(1);
199 else
200 ht->create(cpu);
201 }
f97f8f06
TG
202 return 0;
203}
204
205int smpboot_create_threads(unsigned int cpu)
206{
207 struct smp_hotplug_thread *cur;
208 int ret = 0;
209
210 mutex_lock(&smpboot_threads_lock);
211 list_for_each_entry(cur, &hotplug_threads, list) {
212 ret = __smpboot_create_thread(cur, cpu);
213 if (ret)
214 break;
215 }
216 mutex_unlock(&smpboot_threads_lock);
217 return ret;
218}
219
220static void smpboot_unpark_thread(struct smp_hotplug_thread *ht, unsigned int cpu)
221{
222 struct task_struct *tsk = *per_cpu_ptr(ht->store, cpu);
223
46c498c2
TG
224 if (ht->pre_unpark)
225 ht->pre_unpark(cpu);
f97f8f06
TG
226 kthread_unpark(tsk);
227}
228
229void smpboot_unpark_threads(unsigned int cpu)
230{
231 struct smp_hotplug_thread *cur;
232
233 mutex_lock(&smpboot_threads_lock);
234 list_for_each_entry(cur, &hotplug_threads, list)
b5242e98
CM
235 if (cpumask_test_cpu(cpu, cur->cpumask))
236 smpboot_unpark_thread(cur, cpu);
f97f8f06
TG
237 mutex_unlock(&smpboot_threads_lock);
238}
239
240static void smpboot_park_thread(struct smp_hotplug_thread *ht, unsigned int cpu)
241{
242 struct task_struct *tsk = *per_cpu_ptr(ht->store, cpu);
243
7d7e499f 244 if (tsk && !ht->selfparking)
f97f8f06
TG
245 kthread_park(tsk);
246}
247
248void smpboot_park_threads(unsigned int cpu)
249{
250 struct smp_hotplug_thread *cur;
251
252 mutex_lock(&smpboot_threads_lock);
253 list_for_each_entry_reverse(cur, &hotplug_threads, list)
254 smpboot_park_thread(cur, cpu);
255 mutex_unlock(&smpboot_threads_lock);
256}
257
258static void smpboot_destroy_threads(struct smp_hotplug_thread *ht)
259{
260 unsigned int cpu;
261
b5242e98
CM
262 /* Unpark any threads that were voluntarily parked. */
263 for_each_cpu_not(cpu, ht->cpumask) {
264 if (cpu_online(cpu)) {
265 struct task_struct *tsk = *per_cpu_ptr(ht->store, cpu);
266 if (tsk)
267 kthread_unpark(tsk);
268 }
269 }
270
f97f8f06
TG
271 /* We need to destroy also the parked threads of offline cpus */
272 for_each_possible_cpu(cpu) {
273 struct task_struct *tsk = *per_cpu_ptr(ht->store, cpu);
274
275 if (tsk) {
276 kthread_stop(tsk);
277 put_task_struct(tsk);
278 *per_cpu_ptr(ht->store, cpu) = NULL;
279 }
280 }
281}
282
283/**
284 * smpboot_register_percpu_thread - Register a per_cpu thread related to hotplug
285 * @plug_thread: Hotplug thread descriptor
286 *
287 * Creates and starts the threads on all online cpus.
288 */
289int smpboot_register_percpu_thread(struct smp_hotplug_thread *plug_thread)
290{
291 unsigned int cpu;
292 int ret = 0;
293
b5242e98
CM
294 if (!alloc_cpumask_var(&plug_thread->cpumask, GFP_KERNEL))
295 return -ENOMEM;
296 cpumask_copy(plug_thread->cpumask, cpu_possible_mask);
297
4bee9686 298 get_online_cpus();
f97f8f06
TG
299 mutex_lock(&smpboot_threads_lock);
300 for_each_online_cpu(cpu) {
301 ret = __smpboot_create_thread(plug_thread, cpu);
302 if (ret) {
303 smpboot_destroy_threads(plug_thread);
304 goto out;
305 }
306 smpboot_unpark_thread(plug_thread, cpu);
307 }
308 list_add(&plug_thread->list, &hotplug_threads);
309out:
310 mutex_unlock(&smpboot_threads_lock);
4bee9686 311 put_online_cpus();
f97f8f06
TG
312 return ret;
313}
314EXPORT_SYMBOL_GPL(smpboot_register_percpu_thread);
315
316/**
317 * smpboot_unregister_percpu_thread - Unregister a per_cpu thread related to hotplug
318 * @plug_thread: Hotplug thread descriptor
319 *
320 * Stops all threads on all possible cpus.
321 */
322void smpboot_unregister_percpu_thread(struct smp_hotplug_thread *plug_thread)
323{
324 get_online_cpus();
325 mutex_lock(&smpboot_threads_lock);
326 list_del(&plug_thread->list);
327 smpboot_destroy_threads(plug_thread);
328 mutex_unlock(&smpboot_threads_lock);
329 put_online_cpus();
b5242e98 330 free_cpumask_var(plug_thread->cpumask);
f97f8f06
TG
331}
332EXPORT_SYMBOL_GPL(smpboot_unregister_percpu_thread);
8038dad7 333
b5242e98
CM
334/**
335 * smpboot_update_cpumask_percpu_thread - Adjust which per_cpu hotplug threads stay parked
336 * @plug_thread: Hotplug thread descriptor
337 * @new: Revised mask to use
338 *
339 * The cpumask field in the smp_hotplug_thread must not be updated directly
340 * by the client, but only by calling this function.
341 */
342int smpboot_update_cpumask_percpu_thread(struct smp_hotplug_thread *plug_thread,
343 const struct cpumask *new)
344{
345 struct cpumask *old = plug_thread->cpumask;
346 cpumask_var_t tmp;
347 unsigned int cpu;
348
349 if (!alloc_cpumask_var(&tmp, GFP_KERNEL))
350 return -ENOMEM;
351
352 get_online_cpus();
353 mutex_lock(&smpboot_threads_lock);
354
355 /* Park threads that were exclusively enabled on the old mask. */
356 cpumask_andnot(tmp, old, new);
357 for_each_cpu_and(cpu, tmp, cpu_online_mask)
358 smpboot_park_thread(plug_thread, cpu);
359
360 /* Unpark threads that are exclusively enabled on the new mask. */
361 cpumask_andnot(tmp, new, old);
362 for_each_cpu_and(cpu, tmp, cpu_online_mask)
363 smpboot_unpark_thread(plug_thread, cpu);
364
365 cpumask_copy(old, new);
366
367 mutex_unlock(&smpboot_threads_lock);
368 put_online_cpus();
369
370 free_cpumask_var(tmp);
371
372 return 0;
373}
374EXPORT_SYMBOL_GPL(smpboot_update_cpumask_percpu_thread);
375
8038dad7
PM
376static DEFINE_PER_CPU(atomic_t, cpu_hotplug_state) = ATOMIC_INIT(CPU_POST_DEAD);
377
378/*
379 * Called to poll specified CPU's state, for example, when waiting for
380 * a CPU to come online.
381 */
382int cpu_report_state(int cpu)
383{
384 return atomic_read(&per_cpu(cpu_hotplug_state, cpu));
385}
386
387/*
388 * If CPU has died properly, set its state to CPU_UP_PREPARE and
389 * return success. Otherwise, return -EBUSY if the CPU died after
390 * cpu_wait_death() timed out. And yet otherwise again, return -EAGAIN
391 * if cpu_wait_death() timed out and the CPU still hasn't gotten around
392 * to dying. In the latter two cases, the CPU might not be set up
393 * properly, but it is up to the arch-specific code to decide.
394 * Finally, -EIO indicates an unanticipated problem.
395 *
396 * Note that it is permissible to omit this call entirely, as is
397 * done in architectures that do no CPU-hotplug error checking.
398 */
399int cpu_check_up_prepare(int cpu)
400{
401 if (!IS_ENABLED(CONFIG_HOTPLUG_CPU)) {
402 atomic_set(&per_cpu(cpu_hotplug_state, cpu), CPU_UP_PREPARE);
403 return 0;
404 }
405
406 switch (atomic_read(&per_cpu(cpu_hotplug_state, cpu))) {
407
408 case CPU_POST_DEAD:
409
410 /* The CPU died properly, so just start it up again. */
411 atomic_set(&per_cpu(cpu_hotplug_state, cpu), CPU_UP_PREPARE);
412 return 0;
413
414 case CPU_DEAD_FROZEN:
415
416 /*
417 * Timeout during CPU death, so let caller know.
418 * The outgoing CPU completed its processing, but after
419 * cpu_wait_death() timed out and reported the error. The
420 * caller is free to proceed, in which case the state
421 * will be reset properly by cpu_set_state_online().
422 * Proceeding despite this -EBUSY return makes sense
423 * for systems where the outgoing CPUs take themselves
424 * offline, with no post-death manipulation required from
425 * a surviving CPU.
426 */
427 return -EBUSY;
428
429 case CPU_BROKEN:
430
431 /*
432 * The most likely reason we got here is that there was
433 * a timeout during CPU death, and the outgoing CPU never
434 * did complete its processing. This could happen on
435 * a virtualized system if the outgoing VCPU gets preempted
436 * for more than five seconds, and the user attempts to
437 * immediately online that same CPU. Trying again later
438 * might return -EBUSY above, hence -EAGAIN.
439 */
440 return -EAGAIN;
441
442 default:
443
444 /* Should not happen. Famous last words. */
445 return -EIO;
446 }
447}
448
449/*
450 * Mark the specified CPU online.
451 *
452 * Note that it is permissible to omit this call entirely, as is
453 * done in architectures that do no CPU-hotplug error checking.
454 */
455void cpu_set_state_online(int cpu)
456{
457 (void)atomic_xchg(&per_cpu(cpu_hotplug_state, cpu), CPU_ONLINE);
458}
459
460#ifdef CONFIG_HOTPLUG_CPU
461
462/*
463 * Wait for the specified CPU to exit the idle loop and die.
464 */
465bool cpu_wait_death(unsigned int cpu, int seconds)
466{
467 int jf_left = seconds * HZ;
468 int oldstate;
469 bool ret = true;
470 int sleep_jf = 1;
471
472 might_sleep();
473
474 /* The outgoing CPU will normally get done quite quickly. */
475 if (atomic_read(&per_cpu(cpu_hotplug_state, cpu)) == CPU_DEAD)
476 goto update_state;
477 udelay(5);
478
479 /* But if the outgoing CPU dawdles, wait increasingly long times. */
480 while (atomic_read(&per_cpu(cpu_hotplug_state, cpu)) != CPU_DEAD) {
481 schedule_timeout_uninterruptible(sleep_jf);
482 jf_left -= sleep_jf;
483 if (jf_left <= 0)
484 break;
485 sleep_jf = DIV_ROUND_UP(sleep_jf * 11, 10);
486 }
487update_state:
488 oldstate = atomic_read(&per_cpu(cpu_hotplug_state, cpu));
489 if (oldstate == CPU_DEAD) {
490 /* Outgoing CPU died normally, update state. */
491 smp_mb(); /* atomic_read() before update. */
492 atomic_set(&per_cpu(cpu_hotplug_state, cpu), CPU_POST_DEAD);
493 } else {
494 /* Outgoing CPU still hasn't died, set state accordingly. */
495 if (atomic_cmpxchg(&per_cpu(cpu_hotplug_state, cpu),
496 oldstate, CPU_BROKEN) != oldstate)
497 goto update_state;
498 ret = false;
499 }
500 return ret;
501}
502
503/*
504 * Called by the outgoing CPU to report its successful death. Return
505 * false if this report follows the surviving CPU's timing out.
506 *
507 * A separate "CPU_DEAD_FROZEN" is used when the surviving CPU
508 * timed out. This approach allows architectures to omit calls to
509 * cpu_check_up_prepare() and cpu_set_state_online() without defeating
510 * the next cpu_wait_death()'s polling loop.
511 */
512bool cpu_report_death(void)
513{
514 int oldstate;
515 int newstate;
516 int cpu = smp_processor_id();
517
518 do {
519 oldstate = atomic_read(&per_cpu(cpu_hotplug_state, cpu));
520 if (oldstate != CPU_BROKEN)
521 newstate = CPU_DEAD;
522 else
523 newstate = CPU_DEAD_FROZEN;
524 } while (atomic_cmpxchg(&per_cpu(cpu_hotplug_state, cpu),
525 oldstate, newstate) != oldstate);
526 return newstate == CPU_DEAD;
527}
528
529#endif /* #ifdef CONFIG_HOTPLUG_CPU */