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CommitLineData
1da177e4
LT
1/* CPU control.
2 * (C) 2001, 2002, 2003, 2004 Rusty Russell
3 *
4 * This code is licenced under the GPL.
5 */
6#include <linux/proc_fs.h>
7#include <linux/smp.h>
8#include <linux/init.h>
9#include <linux/notifier.h>
3f07c014 10#include <linux/sched/signal.h>
ef8bd77f 11#include <linux/sched/hotplug.h>
29930025 12#include <linux/sched/task.h>
1da177e4
LT
13#include <linux/unistd.h>
14#include <linux/cpu.h>
cb79295e
AV
15#include <linux/oom.h>
16#include <linux/rcupdate.h>
9984de1a 17#include <linux/export.h>
e4cc2f87 18#include <linux/bug.h>
1da177e4
LT
19#include <linux/kthread.h>
20#include <linux/stop_machine.h>
81615b62 21#include <linux/mutex.h>
5a0e3ad6 22#include <linux/gfp.h>
79cfbdfa 23#include <linux/suspend.h>
a19423b9 24#include <linux/lockdep.h>
345527b1 25#include <linux/tick.h>
a8994181 26#include <linux/irq.h>
941154bd 27#include <linux/nmi.h>
4cb28ced 28#include <linux/smpboot.h>
e6d4989a 29#include <linux/relay.h>
6731d4f1 30#include <linux/slab.h>
fc8dffd3 31#include <linux/percpu-rwsem.h>
cff7d378 32
bb3632c6 33#include <trace/events/power.h>
cff7d378
TG
34#define CREATE_TRACE_POINTS
35#include <trace/events/cpuhp.h>
1da177e4 36
38498a67
TG
37#include "smpboot.h"
38
cff7d378
TG
39/**
40 * cpuhp_cpu_state - Per cpu hotplug state storage
41 * @state: The current cpu state
42 * @target: The target state
4cb28ced
TG
43 * @thread: Pointer to the hotplug thread
44 * @should_run: Thread should execute
3b9d6da6 45 * @rollback: Perform a rollback
a724632c
TG
46 * @single: Single callback invocation
47 * @bringup: Single callback bringup or teardown selector
48 * @cb_state: The state for a single callback (install/uninstall)
4cb28ced 49 * @result: Result of the operation
5ebe7742
PZ
50 * @done_up: Signal completion to the issuer of the task for cpu-up
51 * @done_down: Signal completion to the issuer of the task for cpu-down
cff7d378
TG
52 */
53struct cpuhp_cpu_state {
54 enum cpuhp_state state;
55 enum cpuhp_state target;
1db49484 56 enum cpuhp_state fail;
4cb28ced
TG
57#ifdef CONFIG_SMP
58 struct task_struct *thread;
59 bool should_run;
3b9d6da6 60 bool rollback;
a724632c
TG
61 bool single;
62 bool bringup;
0cc3cd21 63 bool booted_once;
cf392d10 64 struct hlist_node *node;
4dddfb5f 65 struct hlist_node *last;
4cb28ced 66 enum cpuhp_state cb_state;
4cb28ced 67 int result;
5ebe7742
PZ
68 struct completion done_up;
69 struct completion done_down;
4cb28ced 70#endif
cff7d378
TG
71};
72
1db49484
PZ
73static DEFINE_PER_CPU(struct cpuhp_cpu_state, cpuhp_state) = {
74 .fail = CPUHP_INVALID,
75};
cff7d378 76
49dfe2a6 77#if defined(CONFIG_LOCKDEP) && defined(CONFIG_SMP)
5f4b55e1
PZ
78static struct lockdep_map cpuhp_state_up_map =
79 STATIC_LOCKDEP_MAP_INIT("cpuhp_state-up", &cpuhp_state_up_map);
80static struct lockdep_map cpuhp_state_down_map =
81 STATIC_LOCKDEP_MAP_INIT("cpuhp_state-down", &cpuhp_state_down_map);
82
83
76dc6c09 84static inline void cpuhp_lock_acquire(bool bringup)
5f4b55e1
PZ
85{
86 lock_map_acquire(bringup ? &cpuhp_state_up_map : &cpuhp_state_down_map);
87}
88
76dc6c09 89static inline void cpuhp_lock_release(bool bringup)
5f4b55e1
PZ
90{
91 lock_map_release(bringup ? &cpuhp_state_up_map : &cpuhp_state_down_map);
92}
93#else
94
76dc6c09
MM
95static inline void cpuhp_lock_acquire(bool bringup) { }
96static inline void cpuhp_lock_release(bool bringup) { }
5f4b55e1 97
49dfe2a6
TG
98#endif
99
cff7d378
TG
100/**
101 * cpuhp_step - Hotplug state machine step
102 * @name: Name of the step
103 * @startup: Startup function of the step
104 * @teardown: Teardown function of the step
757c989b 105 * @cant_stop: Bringup/teardown can't be stopped at this step
cff7d378
TG
106 */
107struct cpuhp_step {
cf392d10
TG
108 const char *name;
109 union {
3c1627e9
TG
110 int (*single)(unsigned int cpu);
111 int (*multi)(unsigned int cpu,
112 struct hlist_node *node);
113 } startup;
cf392d10 114 union {
3c1627e9
TG
115 int (*single)(unsigned int cpu);
116 int (*multi)(unsigned int cpu,
117 struct hlist_node *node);
118 } teardown;
cf392d10 119 struct hlist_head list;
cf392d10
TG
120 bool cant_stop;
121 bool multi_instance;
cff7d378
TG
122};
123
98f8cdce 124static DEFINE_MUTEX(cpuhp_state_mutex);
17a2f1ce 125static struct cpuhp_step cpuhp_hp_states[];
cff7d378 126
a724632c
TG
127static struct cpuhp_step *cpuhp_get_step(enum cpuhp_state state)
128{
17a2f1ce 129 return cpuhp_hp_states + state;
a724632c
TG
130}
131
cff7d378
TG
132/**
133 * cpuhp_invoke_callback _ Invoke the callbacks for a given state
134 * @cpu: The cpu for which the callback should be invoked
96abb968 135 * @state: The state to do callbacks for
a724632c 136 * @bringup: True if the bringup callback should be invoked
96abb968
PZ
137 * @node: For multi-instance, do a single entry callback for install/remove
138 * @lastp: For multi-instance rollback, remember how far we got
cff7d378 139 *
cf392d10 140 * Called from cpu hotplug and from the state register machinery.
cff7d378 141 */
a724632c 142static int cpuhp_invoke_callback(unsigned int cpu, enum cpuhp_state state,
96abb968
PZ
143 bool bringup, struct hlist_node *node,
144 struct hlist_node **lastp)
cff7d378
TG
145{
146 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
a724632c 147 struct cpuhp_step *step = cpuhp_get_step(state);
cf392d10
TG
148 int (*cbm)(unsigned int cpu, struct hlist_node *node);
149 int (*cb)(unsigned int cpu);
150 int ret, cnt;
151
1db49484
PZ
152 if (st->fail == state) {
153 st->fail = CPUHP_INVALID;
154
155 if (!(bringup ? step->startup.single : step->teardown.single))
156 return 0;
157
158 return -EAGAIN;
159 }
160
cf392d10 161 if (!step->multi_instance) {
96abb968 162 WARN_ON_ONCE(lastp && *lastp);
3c1627e9 163 cb = bringup ? step->startup.single : step->teardown.single;
cf392d10
TG
164 if (!cb)
165 return 0;
a724632c 166 trace_cpuhp_enter(cpu, st->target, state, cb);
cff7d378 167 ret = cb(cpu);
a724632c 168 trace_cpuhp_exit(cpu, st->state, state, ret);
cf392d10
TG
169 return ret;
170 }
3c1627e9 171 cbm = bringup ? step->startup.multi : step->teardown.multi;
cf392d10
TG
172 if (!cbm)
173 return 0;
174
175 /* Single invocation for instance add/remove */
176 if (node) {
96abb968 177 WARN_ON_ONCE(lastp && *lastp);
cf392d10
TG
178 trace_cpuhp_multi_enter(cpu, st->target, state, cbm, node);
179 ret = cbm(cpu, node);
180 trace_cpuhp_exit(cpu, st->state, state, ret);
181 return ret;
182 }
183
184 /* State transition. Invoke on all instances */
185 cnt = 0;
186 hlist_for_each(node, &step->list) {
96abb968
PZ
187 if (lastp && node == *lastp)
188 break;
189
cf392d10
TG
190 trace_cpuhp_multi_enter(cpu, st->target, state, cbm, node);
191 ret = cbm(cpu, node);
192 trace_cpuhp_exit(cpu, st->state, state, ret);
96abb968
PZ
193 if (ret) {
194 if (!lastp)
195 goto err;
196
197 *lastp = node;
198 return ret;
199 }
cf392d10
TG
200 cnt++;
201 }
96abb968
PZ
202 if (lastp)
203 *lastp = NULL;
cf392d10
TG
204 return 0;
205err:
206 /* Rollback the instances if one failed */
3c1627e9 207 cbm = !bringup ? step->startup.multi : step->teardown.multi;
cf392d10
TG
208 if (!cbm)
209 return ret;
210
211 hlist_for_each(node, &step->list) {
212 if (!cnt--)
213 break;
724a8688
PZ
214
215 trace_cpuhp_multi_enter(cpu, st->target, state, cbm, node);
216 ret = cbm(cpu, node);
217 trace_cpuhp_exit(cpu, st->state, state, ret);
218 /*
219 * Rollback must not fail,
220 */
221 WARN_ON_ONCE(ret);
cff7d378
TG
222 }
223 return ret;
224}
225
98a79d6a 226#ifdef CONFIG_SMP
fcb3029a
AB
227static bool cpuhp_is_ap_state(enum cpuhp_state state)
228{
229 /*
230 * The extra check for CPUHP_TEARDOWN_CPU is only for documentation
231 * purposes as that state is handled explicitly in cpu_down.
232 */
233 return state > CPUHP_BRINGUP_CPU && state != CPUHP_TEARDOWN_CPU;
234}
235
5ebe7742
PZ
236static inline void wait_for_ap_thread(struct cpuhp_cpu_state *st, bool bringup)
237{
238 struct completion *done = bringup ? &st->done_up : &st->done_down;
239 wait_for_completion(done);
240}
241
242static inline void complete_ap_thread(struct cpuhp_cpu_state *st, bool bringup)
243{
244 struct completion *done = bringup ? &st->done_up : &st->done_down;
245 complete(done);
246}
247
248/*
249 * The former STARTING/DYING states, ran with IRQs disabled and must not fail.
250 */
251static bool cpuhp_is_atomic_state(enum cpuhp_state state)
252{
253 return CPUHP_AP_IDLE_DEAD <= state && state < CPUHP_AP_ONLINE;
254}
255
b3199c02 256/* Serializes the updates to cpu_online_mask, cpu_present_mask */
aa953877 257static DEFINE_MUTEX(cpu_add_remove_lock);
090e77c3
TG
258bool cpuhp_tasks_frozen;
259EXPORT_SYMBOL_GPL(cpuhp_tasks_frozen);
1da177e4 260
79a6cdeb 261/*
93ae4f97
SB
262 * The following two APIs (cpu_maps_update_begin/done) must be used when
263 * attempting to serialize the updates to cpu_online_mask & cpu_present_mask.
79a6cdeb
LJ
264 */
265void cpu_maps_update_begin(void)
266{
267 mutex_lock(&cpu_add_remove_lock);
268}
269
270void cpu_maps_update_done(void)
271{
272 mutex_unlock(&cpu_add_remove_lock);
273}
1da177e4 274
fc8dffd3
TG
275/*
276 * If set, cpu_up and cpu_down will return -EBUSY and do nothing.
e3920fb4
RW
277 * Should always be manipulated under cpu_add_remove_lock
278 */
279static int cpu_hotplug_disabled;
280
79a6cdeb
LJ
281#ifdef CONFIG_HOTPLUG_CPU
282
fc8dffd3 283DEFINE_STATIC_PERCPU_RWSEM(cpu_hotplug_lock);
a19423b9 284
8f553c49 285void cpus_read_lock(void)
a9d9baa1 286{
fc8dffd3 287 percpu_down_read(&cpu_hotplug_lock);
a9d9baa1 288}
8f553c49 289EXPORT_SYMBOL_GPL(cpus_read_lock);
90d45d17 290
6f4ceee9
WL
291int cpus_read_trylock(void)
292{
293 return percpu_down_read_trylock(&cpu_hotplug_lock);
294}
295EXPORT_SYMBOL_GPL(cpus_read_trylock);
296
8f553c49 297void cpus_read_unlock(void)
a9d9baa1 298{
fc8dffd3 299 percpu_up_read(&cpu_hotplug_lock);
a9d9baa1 300}
8f553c49 301EXPORT_SYMBOL_GPL(cpus_read_unlock);
a9d9baa1 302
8f553c49 303void cpus_write_lock(void)
d221938c 304{
fc8dffd3 305 percpu_down_write(&cpu_hotplug_lock);
d221938c 306}
87af9e7f 307
8f553c49 308void cpus_write_unlock(void)
d221938c 309{
fc8dffd3 310 percpu_up_write(&cpu_hotplug_lock);
d221938c
GS
311}
312
fc8dffd3 313void lockdep_assert_cpus_held(void)
d221938c 314{
fc8dffd3 315 percpu_rwsem_assert_held(&cpu_hotplug_lock);
d221938c 316}
79a6cdeb 317
16e53dbf
SB
318/*
319 * Wait for currently running CPU hotplug operations to complete (if any) and
320 * disable future CPU hotplug (from sysfs). The 'cpu_add_remove_lock' protects
321 * the 'cpu_hotplug_disabled' flag. The same lock is also acquired by the
322 * hotplug path before performing hotplug operations. So acquiring that lock
323 * guarantees mutual exclusion from any currently running hotplug operations.
324 */
325void cpu_hotplug_disable(void)
326{
327 cpu_maps_update_begin();
89af7ba5 328 cpu_hotplug_disabled++;
16e53dbf
SB
329 cpu_maps_update_done();
330}
32145c46 331EXPORT_SYMBOL_GPL(cpu_hotplug_disable);
16e53dbf 332
01b41159
LW
333static void __cpu_hotplug_enable(void)
334{
335 if (WARN_ONCE(!cpu_hotplug_disabled, "Unbalanced cpu hotplug enable\n"))
336 return;
337 cpu_hotplug_disabled--;
338}
339
16e53dbf
SB
340void cpu_hotplug_enable(void)
341{
342 cpu_maps_update_begin();
01b41159 343 __cpu_hotplug_enable();
16e53dbf
SB
344 cpu_maps_update_done();
345}
32145c46 346EXPORT_SYMBOL_GPL(cpu_hotplug_enable);
b9d10be7 347#endif /* CONFIG_HOTPLUG_CPU */
79a6cdeb 348
0cc3cd21
TG
349#ifdef CONFIG_HOTPLUG_SMT
350enum cpuhp_smt_control cpu_smt_control __read_mostly = CPU_SMT_ENABLED;
26acfb66 351EXPORT_SYMBOL_GPL(cpu_smt_control);
0cc3cd21 352
bc2d8d26
TG
353static bool cpu_smt_available __read_mostly;
354
8e1b706b 355void __init cpu_smt_disable(bool force)
0cc3cd21 356{
8e1b706b
JK
357 if (cpu_smt_control == CPU_SMT_FORCE_DISABLED ||
358 cpu_smt_control == CPU_SMT_NOT_SUPPORTED)
359 return;
360
361 if (force) {
0cc3cd21
TG
362 pr_info("SMT: Force disabled\n");
363 cpu_smt_control = CPU_SMT_FORCE_DISABLED;
8e1b706b
JK
364 } else {
365 cpu_smt_control = CPU_SMT_DISABLED;
0cc3cd21 366 }
8e1b706b
JK
367}
368
fee0aede
TG
369/*
370 * The decision whether SMT is supported can only be done after the full
bc2d8d26
TG
371 * CPU identification. Called from architecture code before non boot CPUs
372 * are brought up.
fee0aede 373 */
bc2d8d26 374void __init cpu_smt_check_topology_early(void)
fee0aede
TG
375{
376 if (!topology_smt_supported())
377 cpu_smt_control = CPU_SMT_NOT_SUPPORTED;
378}
379
bc2d8d26
TG
380/*
381 * If SMT was disabled by BIOS, detect it here, after the CPUs have been
382 * brought online. This ensures the smt/l1tf sysfs entries are consistent
383 * with reality. cpu_smt_available is set to true during the bringup of non
384 * boot CPUs when a SMT sibling is detected. Note, this may overwrite
385 * cpu_smt_control's previous setting.
386 */
387void __init cpu_smt_check_topology(void)
388{
389 if (!cpu_smt_available)
390 cpu_smt_control = CPU_SMT_NOT_SUPPORTED;
391}
392
8e1b706b
JK
393static int __init smt_cmdline_disable(char *str)
394{
395 cpu_smt_disable(str && !strcmp(str, "force"));
0cc3cd21
TG
396 return 0;
397}
398early_param("nosmt", smt_cmdline_disable);
399
400static inline bool cpu_smt_allowed(unsigned int cpu)
401{
bc2d8d26 402 if (topology_is_primary_thread(cpu))
0cc3cd21
TG
403 return true;
404
bc2d8d26
TG
405 /*
406 * If the CPU is not a 'primary' thread and the booted_once bit is
407 * set then the processor has SMT support. Store this information
408 * for the late check of SMT support in cpu_smt_check_topology().
409 */
410 if (per_cpu(cpuhp_state, cpu).booted_once)
411 cpu_smt_available = true;
412
413 if (cpu_smt_control == CPU_SMT_ENABLED)
0cc3cd21
TG
414 return true;
415
416 /*
417 * On x86 it's required to boot all logical CPUs at least once so
418 * that the init code can get a chance to set CR4.MCE on each
419 * CPU. Otherwise, a broadacasted MCE observing CR4.MCE=0b on any
420 * core will shutdown the machine.
421 */
422 return !per_cpu(cpuhp_state, cpu).booted_once;
423}
424#else
425static inline bool cpu_smt_allowed(unsigned int cpu) { return true; }
426#endif
427
4dddfb5f
PZ
428static inline enum cpuhp_state
429cpuhp_set_state(struct cpuhp_cpu_state *st, enum cpuhp_state target)
430{
431 enum cpuhp_state prev_state = st->state;
432
433 st->rollback = false;
434 st->last = NULL;
435
436 st->target = target;
437 st->single = false;
438 st->bringup = st->state < target;
439
440 return prev_state;
441}
442
443static inline void
444cpuhp_reset_state(struct cpuhp_cpu_state *st, enum cpuhp_state prev_state)
445{
446 st->rollback = true;
447
448 /*
449 * If we have st->last we need to undo partial multi_instance of this
450 * state first. Otherwise start undo at the previous state.
451 */
452 if (!st->last) {
453 if (st->bringup)
454 st->state--;
455 else
456 st->state++;
457 }
458
459 st->target = prev_state;
460 st->bringup = !st->bringup;
461}
462
463/* Regular hotplug invocation of the AP hotplug thread */
464static void __cpuhp_kick_ap(struct cpuhp_cpu_state *st)
465{
466 if (!st->single && st->state == st->target)
467 return;
468
469 st->result = 0;
470 /*
471 * Make sure the above stores are visible before should_run becomes
472 * true. Paired with the mb() above in cpuhp_thread_fun()
473 */
474 smp_mb();
475 st->should_run = true;
476 wake_up_process(st->thread);
5ebe7742 477 wait_for_ap_thread(st, st->bringup);
4dddfb5f
PZ
478}
479
480static int cpuhp_kick_ap(struct cpuhp_cpu_state *st, enum cpuhp_state target)
481{
482 enum cpuhp_state prev_state;
483 int ret;
484
485 prev_state = cpuhp_set_state(st, target);
486 __cpuhp_kick_ap(st);
487 if ((ret = st->result)) {
488 cpuhp_reset_state(st, prev_state);
489 __cpuhp_kick_ap(st);
490 }
491
492 return ret;
493}
9cd4f1a4 494
8df3e07e
TG
495static int bringup_wait_for_ap(unsigned int cpu)
496{
497 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
498
9cd4f1a4 499 /* Wait for the CPU to reach CPUHP_AP_ONLINE_IDLE */
5ebe7742 500 wait_for_ap_thread(st, true);
dea1d0f5
TG
501 if (WARN_ON_ONCE((!cpu_online(cpu))))
502 return -ECANCELED;
9cd4f1a4
TG
503
504 /* Unpark the stopper thread and the hotplug thread of the target cpu */
505 stop_machine_unpark(cpu);
506 kthread_unpark(st->thread);
507
0cc3cd21
TG
508 /*
509 * SMT soft disabling on X86 requires to bring the CPU out of the
510 * BIOS 'wait for SIPI' state in order to set the CR4.MCE bit. The
511 * CPU marked itself as booted_once in cpu_notify_starting() so the
512 * cpu_smt_allowed() check will now return false if this is not the
513 * primary sibling.
514 */
515 if (!cpu_smt_allowed(cpu))
516 return -ECANCELED;
517
4dddfb5f
PZ
518 if (st->target <= CPUHP_AP_ONLINE_IDLE)
519 return 0;
520
521 return cpuhp_kick_ap(st, st->target);
8df3e07e
TG
522}
523
ba997462
TG
524static int bringup_cpu(unsigned int cpu)
525{
526 struct task_struct *idle = idle_thread_get(cpu);
527 int ret;
528
aa877175
BO
529 /*
530 * Some architectures have to walk the irq descriptors to
531 * setup the vector space for the cpu which comes online.
532 * Prevent irq alloc/free across the bringup.
533 */
534 irq_lock_sparse();
535
ba997462
TG
536 /* Arch-specific enabling code. */
537 ret = __cpu_up(cpu, idle);
aa877175 538 irq_unlock_sparse();
530e9b76 539 if (ret)
ba997462 540 return ret;
9cd4f1a4 541 return bringup_wait_for_ap(cpu);
ba997462
TG
542}
543
2e1a3483
TG
544/*
545 * Hotplug state machine related functions
546 */
2e1a3483 547
a724632c 548static void undo_cpu_up(unsigned int cpu, struct cpuhp_cpu_state *st)
2e1a3483 549{
6fb86d97
MO
550 for (st->state--; st->state > st->target; st->state--)
551 cpuhp_invoke_callback(cpu, st->state, false, NULL, NULL);
2e1a3483
TG
552}
553
554static int cpuhp_up_callbacks(unsigned int cpu, struct cpuhp_cpu_state *st,
a724632c 555 enum cpuhp_state target)
2e1a3483
TG
556{
557 enum cpuhp_state prev_state = st->state;
558 int ret = 0;
559
560 while (st->state < target) {
2e1a3483 561 st->state++;
96abb968 562 ret = cpuhp_invoke_callback(cpu, st->state, true, NULL, NULL);
2e1a3483
TG
563 if (ret) {
564 st->target = prev_state;
a724632c 565 undo_cpu_up(cpu, st);
2e1a3483
TG
566 break;
567 }
568 }
569 return ret;
570}
571
4cb28ced
TG
572/*
573 * The cpu hotplug threads manage the bringup and teardown of the cpus
574 */
575static void cpuhp_create(unsigned int cpu)
576{
577 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
578
5ebe7742
PZ
579 init_completion(&st->done_up);
580 init_completion(&st->done_down);
4cb28ced
TG
581}
582
583static int cpuhp_should_run(unsigned int cpu)
584{
585 struct cpuhp_cpu_state *st = this_cpu_ptr(&cpuhp_state);
586
587 return st->should_run;
588}
589
4cb28ced
TG
590/*
591 * Execute teardown/startup callbacks on the plugged cpu. Also used to invoke
592 * callbacks when a state gets [un]installed at runtime.
4dddfb5f
PZ
593 *
594 * Each invocation of this function by the smpboot thread does a single AP
595 * state callback.
596 *
597 * It has 3 modes of operation:
598 * - single: runs st->cb_state
599 * - up: runs ++st->state, while st->state < st->target
600 * - down: runs st->state--, while st->state > st->target
601 *
602 * When complete or on error, should_run is cleared and the completion is fired.
4cb28ced
TG
603 */
604static void cpuhp_thread_fun(unsigned int cpu)
605{
606 struct cpuhp_cpu_state *st = this_cpu_ptr(&cpuhp_state);
4dddfb5f
PZ
607 bool bringup = st->bringup;
608 enum cpuhp_state state;
4cb28ced
TG
609
610 /*
4dddfb5f
PZ
611 * ACQUIRE for the cpuhp_should_run() load of ->should_run. Ensures
612 * that if we see ->should_run we also see the rest of the state.
4cb28ced
TG
613 */
614 smp_mb();
4cb28ced 615
4dddfb5f
PZ
616 if (WARN_ON_ONCE(!st->should_run))
617 return;
4cb28ced 618
5f4b55e1 619 cpuhp_lock_acquire(bringup);
4dddfb5f 620
a724632c 621 if (st->single) {
4dddfb5f
PZ
622 state = st->cb_state;
623 st->should_run = false;
624 } else {
625 if (bringup) {
626 st->state++;
627 state = st->state;
628 st->should_run = (st->state < st->target);
629 WARN_ON_ONCE(st->state > st->target);
4cb28ced 630 } else {
4dddfb5f
PZ
631 state = st->state;
632 st->state--;
633 st->should_run = (st->state > st->target);
634 WARN_ON_ONCE(st->state < st->target);
4cb28ced 635 }
4dddfb5f
PZ
636 }
637
638 WARN_ON_ONCE(!cpuhp_is_ap_state(state));
639
4dddfb5f
PZ
640 if (cpuhp_is_atomic_state(state)) {
641 local_irq_disable();
642 st->result = cpuhp_invoke_callback(cpu, state, bringup, st->node, &st->last);
643 local_irq_enable();
3b9d6da6 644
4dddfb5f
PZ
645 /*
646 * STARTING/DYING must not fail!
647 */
648 WARN_ON_ONCE(st->result);
4cb28ced 649 } else {
4dddfb5f
PZ
650 st->result = cpuhp_invoke_callback(cpu, state, bringup, st->node, &st->last);
651 }
652
653 if (st->result) {
654 /*
655 * If we fail on a rollback, we're up a creek without no
656 * paddle, no way forward, no way back. We loose, thanks for
657 * playing.
658 */
659 WARN_ON_ONCE(st->rollback);
660 st->should_run = false;
4cb28ced 661 }
4dddfb5f 662
5f4b55e1 663 cpuhp_lock_release(bringup);
4dddfb5f
PZ
664
665 if (!st->should_run)
5ebe7742 666 complete_ap_thread(st, bringup);
4cb28ced
TG
667}
668
669/* Invoke a single callback on a remote cpu */
a724632c 670static int
cf392d10
TG
671cpuhp_invoke_ap_callback(int cpu, enum cpuhp_state state, bool bringup,
672 struct hlist_node *node)
4cb28ced
TG
673{
674 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
4dddfb5f 675 int ret;
4cb28ced
TG
676
677 if (!cpu_online(cpu))
678 return 0;
679
5f4b55e1
PZ
680 cpuhp_lock_acquire(false);
681 cpuhp_lock_release(false);
682
683 cpuhp_lock_acquire(true);
684 cpuhp_lock_release(true);
49dfe2a6 685
6a4e2451
TG
686 /*
687 * If we are up and running, use the hotplug thread. For early calls
688 * we invoke the thread function directly.
689 */
690 if (!st->thread)
96abb968 691 return cpuhp_invoke_callback(cpu, state, bringup, node, NULL);
6a4e2451 692
4dddfb5f
PZ
693 st->rollback = false;
694 st->last = NULL;
695
696 st->node = node;
697 st->bringup = bringup;
4cb28ced 698 st->cb_state = state;
a724632c 699 st->single = true;
a724632c 700
4dddfb5f 701 __cpuhp_kick_ap(st);
4cb28ced 702
4cb28ced 703 /*
4dddfb5f 704 * If we failed and did a partial, do a rollback.
4cb28ced 705 */
4dddfb5f
PZ
706 if ((ret = st->result) && st->last) {
707 st->rollback = true;
708 st->bringup = !bringup;
709
710 __cpuhp_kick_ap(st);
711 }
712
1f7c70d6
TG
713 /*
714 * Clean up the leftovers so the next hotplug operation wont use stale
715 * data.
716 */
717 st->node = st->last = NULL;
4dddfb5f 718 return ret;
1cf4f629
TG
719}
720
721static int cpuhp_kick_ap_work(unsigned int cpu)
722{
723 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
4dddfb5f
PZ
724 enum cpuhp_state prev_state = st->state;
725 int ret;
1cf4f629 726
5f4b55e1
PZ
727 cpuhp_lock_acquire(false);
728 cpuhp_lock_release(false);
729
730 cpuhp_lock_acquire(true);
731 cpuhp_lock_release(true);
4dddfb5f
PZ
732
733 trace_cpuhp_enter(cpu, st->target, prev_state, cpuhp_kick_ap_work);
734 ret = cpuhp_kick_ap(st, st->target);
735 trace_cpuhp_exit(cpu, st->state, prev_state, ret);
736
737 return ret;
4cb28ced
TG
738}
739
740static struct smp_hotplug_thread cpuhp_threads = {
741 .store = &cpuhp_state.thread,
742 .create = &cpuhp_create,
743 .thread_should_run = cpuhp_should_run,
744 .thread_fn = cpuhp_thread_fun,
745 .thread_comm = "cpuhp/%u",
746 .selfparking = true,
747};
748
749void __init cpuhp_threads_init(void)
750{
751 BUG_ON(smpboot_register_percpu_thread(&cpuhp_threads));
752 kthread_unpark(this_cpu_read(cpuhp_state.thread));
753}
754
777c6e0d 755#ifdef CONFIG_HOTPLUG_CPU
e4cc2f87
AV
756/**
757 * clear_tasks_mm_cpumask - Safely clear tasks' mm_cpumask for a CPU
758 * @cpu: a CPU id
759 *
760 * This function walks all processes, finds a valid mm struct for each one and
761 * then clears a corresponding bit in mm's cpumask. While this all sounds
762 * trivial, there are various non-obvious corner cases, which this function
763 * tries to solve in a safe manner.
764 *
765 * Also note that the function uses a somewhat relaxed locking scheme, so it may
766 * be called only for an already offlined CPU.
767 */
cb79295e
AV
768void clear_tasks_mm_cpumask(int cpu)
769{
770 struct task_struct *p;
771
772 /*
773 * This function is called after the cpu is taken down and marked
774 * offline, so its not like new tasks will ever get this cpu set in
775 * their mm mask. -- Peter Zijlstra
776 * Thus, we may use rcu_read_lock() here, instead of grabbing
777 * full-fledged tasklist_lock.
778 */
e4cc2f87 779 WARN_ON(cpu_online(cpu));
cb79295e
AV
780 rcu_read_lock();
781 for_each_process(p) {
782 struct task_struct *t;
783
e4cc2f87
AV
784 /*
785 * Main thread might exit, but other threads may still have
786 * a valid mm. Find one.
787 */
cb79295e
AV
788 t = find_lock_task_mm(p);
789 if (!t)
790 continue;
791 cpumask_clear_cpu(cpu, mm_cpumask(t->mm));
792 task_unlock(t);
793 }
794 rcu_read_unlock();
795}
796
1da177e4 797/* Take this CPU down. */
71cf5aee 798static int take_cpu_down(void *_param)
1da177e4 799{
4baa0afc
TG
800 struct cpuhp_cpu_state *st = this_cpu_ptr(&cpuhp_state);
801 enum cpuhp_state target = max((int)st->target, CPUHP_AP_OFFLINE);
090e77c3 802 int err, cpu = smp_processor_id();
724a8688 803 int ret;
1da177e4 804
1da177e4
LT
805 /* Ensure this CPU doesn't handle any more interrupts. */
806 err = __cpu_disable();
807 if (err < 0)
f3705136 808 return err;
1da177e4 809
a724632c
TG
810 /*
811 * We get here while we are in CPUHP_TEARDOWN_CPU state and we must not
812 * do this step again.
813 */
814 WARN_ON(st->state != CPUHP_TEARDOWN_CPU);
815 st->state--;
4baa0afc 816 /* Invoke the former CPU_DYING callbacks */
724a8688
PZ
817 for (; st->state > target; st->state--) {
818 ret = cpuhp_invoke_callback(cpu, st->state, false, NULL, NULL);
819 /*
820 * DYING must not fail!
821 */
822 WARN_ON_ONCE(ret);
823 }
4baa0afc 824
52c063d1
TG
825 /* Give up timekeeping duties */
826 tick_handover_do_timer();
14e568e7 827 /* Park the stopper thread */
090e77c3 828 stop_machine_park(cpu);
f3705136 829 return 0;
1da177e4
LT
830}
831
98458172 832static int takedown_cpu(unsigned int cpu)
1da177e4 833{
e69aab13 834 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
98458172 835 int err;
1da177e4 836
2a58c527 837 /* Park the smpboot threads */
1cf4f629
TG
838 kthread_park(per_cpu_ptr(&cpuhp_state, cpu)->thread);
839
6acce3ef 840 /*
a8994181
TG
841 * Prevent irq alloc/free while the dying cpu reorganizes the
842 * interrupt affinities.
6acce3ef 843 */
a8994181 844 irq_lock_sparse();
6acce3ef 845
a8994181
TG
846 /*
847 * So now all preempt/rcu users must observe !cpu_active().
848 */
210e2133 849 err = stop_machine_cpuslocked(take_cpu_down, NULL, cpumask_of(cpu));
04321587 850 if (err) {
3b9d6da6 851 /* CPU refused to die */
a8994181 852 irq_unlock_sparse();
3b9d6da6
SAS
853 /* Unpark the hotplug thread so we can rollback there */
854 kthread_unpark(per_cpu_ptr(&cpuhp_state, cpu)->thread);
98458172 855 return err;
8fa1d7d3 856 }
04321587 857 BUG_ON(cpu_online(cpu));
1da177e4 858
48c5ccae 859 /*
5b1ead68
BJ
860 * The teardown callback for CPUHP_AP_SCHED_STARTING will have removed
861 * all runnable tasks from the CPU, there's only the idle task left now
48c5ccae 862 * that the migration thread is done doing the stop_machine thing.
51a96c77
PZ
863 *
864 * Wait for the stop thread to go away.
48c5ccae 865 */
5ebe7742 866 wait_for_ap_thread(st, false);
e69aab13 867 BUG_ON(st->state != CPUHP_AP_IDLE_DEAD);
1da177e4 868
a8994181
TG
869 /* Interrupts are moved away from the dying cpu, reenable alloc/free */
870 irq_unlock_sparse();
871
345527b1 872 hotplug_cpu__broadcast_tick_pull(cpu);
1da177e4
LT
873 /* This actually kills the CPU. */
874 __cpu_die(cpu);
875
a49b116d 876 tick_cleanup_dead_cpu(cpu);
a58163d8 877 rcutree_migrate_callbacks(cpu);
98458172
TG
878 return 0;
879}
1da177e4 880
71f87b2f
TG
881static void cpuhp_complete_idle_dead(void *arg)
882{
883 struct cpuhp_cpu_state *st = arg;
884
5ebe7742 885 complete_ap_thread(st, false);
71f87b2f
TG
886}
887
e69aab13
TG
888void cpuhp_report_idle_dead(void)
889{
890 struct cpuhp_cpu_state *st = this_cpu_ptr(&cpuhp_state);
891
892 BUG_ON(st->state != CPUHP_AP_OFFLINE);
27d50c7e 893 rcu_report_dead(smp_processor_id());
71f87b2f
TG
894 st->state = CPUHP_AP_IDLE_DEAD;
895 /*
896 * We cannot call complete after rcu_report_dead() so we delegate it
897 * to an online cpu.
898 */
899 smp_call_function_single(cpumask_first(cpu_online_mask),
900 cpuhp_complete_idle_dead, st, 0);
e69aab13
TG
901}
902
4dddfb5f
PZ
903static void undo_cpu_down(unsigned int cpu, struct cpuhp_cpu_state *st)
904{
6fb86d97
MO
905 for (st->state++; st->state < st->target; st->state++)
906 cpuhp_invoke_callback(cpu, st->state, true, NULL, NULL);
4dddfb5f
PZ
907}
908
909static int cpuhp_down_callbacks(unsigned int cpu, struct cpuhp_cpu_state *st,
910 enum cpuhp_state target)
911{
912 enum cpuhp_state prev_state = st->state;
913 int ret = 0;
914
915 for (; st->state > target; st->state--) {
916 ret = cpuhp_invoke_callback(cpu, st->state, false, NULL, NULL);
917 if (ret) {
918 st->target = prev_state;
919 undo_cpu_down(cpu, st);
920 break;
921 }
922 }
923 return ret;
924}
cff7d378 925
98458172 926/* Requires cpu_add_remove_lock to be held */
af1f4045
TG
927static int __ref _cpu_down(unsigned int cpu, int tasks_frozen,
928 enum cpuhp_state target)
98458172 929{
cff7d378
TG
930 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
931 int prev_state, ret = 0;
98458172
TG
932
933 if (num_online_cpus() == 1)
934 return -EBUSY;
935
757c989b 936 if (!cpu_present(cpu))
98458172
TG
937 return -EINVAL;
938
8f553c49 939 cpus_write_lock();
98458172
TG
940
941 cpuhp_tasks_frozen = tasks_frozen;
942
4dddfb5f 943 prev_state = cpuhp_set_state(st, target);
1cf4f629
TG
944 /*
945 * If the current CPU state is in the range of the AP hotplug thread,
946 * then we need to kick the thread.
947 */
8df3e07e 948 if (st->state > CPUHP_TEARDOWN_CPU) {
4dddfb5f 949 st->target = max((int)target, CPUHP_TEARDOWN_CPU);
1cf4f629
TG
950 ret = cpuhp_kick_ap_work(cpu);
951 /*
952 * The AP side has done the error rollback already. Just
953 * return the error code..
954 */
955 if (ret)
956 goto out;
957
958 /*
959 * We might have stopped still in the range of the AP hotplug
960 * thread. Nothing to do anymore.
961 */
8df3e07e 962 if (st->state > CPUHP_TEARDOWN_CPU)
1cf4f629 963 goto out;
4dddfb5f
PZ
964
965 st->target = target;
1cf4f629
TG
966 }
967 /*
8df3e07e 968 * The AP brought itself down to CPUHP_TEARDOWN_CPU. So we need
1cf4f629
TG
969 * to do the further cleanups.
970 */
a724632c 971 ret = cpuhp_down_callbacks(cpu, st, target);
3b9d6da6 972 if (ret && st->state > CPUHP_TEARDOWN_CPU && st->state < prev_state) {
4dddfb5f
PZ
973 cpuhp_reset_state(st, prev_state);
974 __cpuhp_kick_ap(st);
3b9d6da6 975 }
98458172 976
1cf4f629 977out:
8f553c49 978 cpus_write_unlock();
941154bd
TG
979 /*
980 * Do post unplug cleanup. This is still protected against
981 * concurrent CPU hotplug via cpu_add_remove_lock.
982 */
983 lockup_detector_cleanup();
cff7d378 984 return ret;
e3920fb4
RW
985}
986
cc1fe215
TG
987static int cpu_down_maps_locked(unsigned int cpu, enum cpuhp_state target)
988{
989 if (cpu_hotplug_disabled)
990 return -EBUSY;
991 return _cpu_down(cpu, 0, target);
992}
993
af1f4045 994static int do_cpu_down(unsigned int cpu, enum cpuhp_state target)
e3920fb4 995{
9ea09af3 996 int err;
e3920fb4 997
d221938c 998 cpu_maps_update_begin();
cc1fe215 999 err = cpu_down_maps_locked(cpu, target);
d221938c 1000 cpu_maps_update_done();
1da177e4
LT
1001 return err;
1002}
4dddfb5f 1003
af1f4045
TG
1004int cpu_down(unsigned int cpu)
1005{
1006 return do_cpu_down(cpu, CPUHP_OFFLINE);
1007}
b62b8ef9 1008EXPORT_SYMBOL(cpu_down);
4dddfb5f
PZ
1009
1010#else
1011#define takedown_cpu NULL
1da177e4
LT
1012#endif /*CONFIG_HOTPLUG_CPU*/
1013
4baa0afc 1014/**
ee1e714b 1015 * notify_cpu_starting(cpu) - Invoke the callbacks on the starting CPU
4baa0afc
TG
1016 * @cpu: cpu that just started
1017 *
4baa0afc
TG
1018 * It must be called by the arch code on the new cpu, before the new cpu
1019 * enables interrupts and before the "boot" cpu returns from __cpu_up().
1020 */
1021void notify_cpu_starting(unsigned int cpu)
1022{
1023 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1024 enum cpuhp_state target = min((int)st->target, CPUHP_AP_ONLINE);
724a8688 1025 int ret;
4baa0afc 1026
0c6d4576 1027 rcu_cpu_starting(cpu); /* Enables RCU usage on this CPU. */
0cc3cd21 1028 st->booted_once = true;
4baa0afc 1029 while (st->state < target) {
4baa0afc 1030 st->state++;
724a8688
PZ
1031 ret = cpuhp_invoke_callback(cpu, st->state, true, NULL, NULL);
1032 /*
1033 * STARTING must not fail!
1034 */
1035 WARN_ON_ONCE(ret);
4baa0afc
TG
1036 }
1037}
1038
949338e3 1039/*
9cd4f1a4
TG
1040 * Called from the idle task. Wake up the controlling task which brings the
1041 * stopper and the hotplug thread of the upcoming CPU up and then delegates
1042 * the rest of the online bringup to the hotplug thread.
949338e3 1043 */
8df3e07e 1044void cpuhp_online_idle(enum cpuhp_state state)
949338e3 1045{
8df3e07e 1046 struct cpuhp_cpu_state *st = this_cpu_ptr(&cpuhp_state);
8df3e07e
TG
1047
1048 /* Happens for the boot cpu */
1049 if (state != CPUHP_AP_ONLINE_IDLE)
1050 return;
1051
1052 st->state = CPUHP_AP_ONLINE_IDLE;
5ebe7742 1053 complete_ap_thread(st, true);
949338e3
TG
1054}
1055
e3920fb4 1056/* Requires cpu_add_remove_lock to be held */
af1f4045 1057static int _cpu_up(unsigned int cpu, int tasks_frozen, enum cpuhp_state target)
1da177e4 1058{
cff7d378 1059 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
3bb5d2ee 1060 struct task_struct *idle;
2e1a3483 1061 int ret = 0;
1da177e4 1062
8f553c49 1063 cpus_write_lock();
38498a67 1064
757c989b 1065 if (!cpu_present(cpu)) {
5e5041f3
YI
1066 ret = -EINVAL;
1067 goto out;
1068 }
1069
757c989b
TG
1070 /*
1071 * The caller of do_cpu_up might have raced with another
1072 * caller. Ignore it for now.
1073 */
1074 if (st->state >= target)
38498a67 1075 goto out;
757c989b
TG
1076
1077 if (st->state == CPUHP_OFFLINE) {
1078 /* Let it fail before we try to bring the cpu up */
1079 idle = idle_thread_get(cpu);
1080 if (IS_ERR(idle)) {
1081 ret = PTR_ERR(idle);
1082 goto out;
1083 }
3bb5d2ee 1084 }
38498a67 1085
ba997462
TG
1086 cpuhp_tasks_frozen = tasks_frozen;
1087
4dddfb5f 1088 cpuhp_set_state(st, target);
1cf4f629
TG
1089 /*
1090 * If the current CPU state is in the range of the AP hotplug thread,
1091 * then we need to kick the thread once more.
1092 */
8df3e07e 1093 if (st->state > CPUHP_BRINGUP_CPU) {
1cf4f629
TG
1094 ret = cpuhp_kick_ap_work(cpu);
1095 /*
1096 * The AP side has done the error rollback already. Just
1097 * return the error code..
1098 */
1099 if (ret)
1100 goto out;
1101 }
1102
1103 /*
1104 * Try to reach the target state. We max out on the BP at
8df3e07e 1105 * CPUHP_BRINGUP_CPU. After that the AP hotplug thread is
1cf4f629
TG
1106 * responsible for bringing it up to the target state.
1107 */
8df3e07e 1108 target = min((int)target, CPUHP_BRINGUP_CPU);
a724632c 1109 ret = cpuhp_up_callbacks(cpu, st, target);
38498a67 1110out:
8f553c49 1111 cpus_write_unlock();
e3920fb4
RW
1112 return ret;
1113}
1114
af1f4045 1115static int do_cpu_up(unsigned int cpu, enum cpuhp_state target)
e3920fb4
RW
1116{
1117 int err = 0;
cf23422b 1118
e0b582ec 1119 if (!cpu_possible(cpu)) {
84117da5
FF
1120 pr_err("can't online cpu %d because it is not configured as may-hotadd at boot time\n",
1121 cpu);
87d5e023 1122#if defined(CONFIG_IA64)
84117da5 1123 pr_err("please check additional_cpus= boot parameter\n");
73e753a5
KH
1124#endif
1125 return -EINVAL;
1126 }
e3920fb4 1127
01b0f197
TK
1128 err = try_online_node(cpu_to_node(cpu));
1129 if (err)
1130 return err;
cf23422b 1131
d221938c 1132 cpu_maps_update_begin();
e761b772
MK
1133
1134 if (cpu_hotplug_disabled) {
e3920fb4 1135 err = -EBUSY;
e761b772
MK
1136 goto out;
1137 }
05736e4a
TG
1138 if (!cpu_smt_allowed(cpu)) {
1139 err = -EPERM;
1140 goto out;
1141 }
e761b772 1142
af1f4045 1143 err = _cpu_up(cpu, 0, target);
e761b772 1144out:
d221938c 1145 cpu_maps_update_done();
e3920fb4
RW
1146 return err;
1147}
af1f4045
TG
1148
1149int cpu_up(unsigned int cpu)
1150{
1151 return do_cpu_up(cpu, CPUHP_ONLINE);
1152}
a513f6ba 1153EXPORT_SYMBOL_GPL(cpu_up);
e3920fb4 1154
f3de4be9 1155#ifdef CONFIG_PM_SLEEP_SMP
e0b582ec 1156static cpumask_var_t frozen_cpus;
e3920fb4 1157
d391e552 1158int freeze_secondary_cpus(int primary)
e3920fb4 1159{
d391e552 1160 int cpu, error = 0;
e3920fb4 1161
d221938c 1162 cpu_maps_update_begin();
d391e552
JM
1163 if (!cpu_online(primary))
1164 primary = cpumask_first(cpu_online_mask);
9ee349ad
XF
1165 /*
1166 * We take down all of the non-boot CPUs in one shot to avoid races
e3920fb4
RW
1167 * with the userspace trying to use the CPU hotplug at the same time
1168 */
e0b582ec 1169 cpumask_clear(frozen_cpus);
6ad4c188 1170
84117da5 1171 pr_info("Disabling non-boot CPUs ...\n");
e3920fb4 1172 for_each_online_cpu(cpu) {
d391e552 1173 if (cpu == primary)
e3920fb4 1174 continue;
bb3632c6 1175 trace_suspend_resume(TPS("CPU_OFF"), cpu, true);
af1f4045 1176 error = _cpu_down(cpu, 1, CPUHP_OFFLINE);
bb3632c6 1177 trace_suspend_resume(TPS("CPU_OFF"), cpu, false);
feae3203 1178 if (!error)
e0b582ec 1179 cpumask_set_cpu(cpu, frozen_cpus);
feae3203 1180 else {
84117da5 1181 pr_err("Error taking CPU%d down: %d\n", cpu, error);
e3920fb4
RW
1182 break;
1183 }
1184 }
86886e55 1185
89af7ba5 1186 if (!error)
e3920fb4 1187 BUG_ON(num_online_cpus() > 1);
89af7ba5 1188 else
84117da5 1189 pr_err("Non-boot CPUs are not disabled\n");
89af7ba5
VK
1190
1191 /*
1192 * Make sure the CPUs won't be enabled by someone else. We need to do
1193 * this even in case of failure as all disable_nonboot_cpus() users are
1194 * supposed to do enable_nonboot_cpus() on the failure path.
1195 */
1196 cpu_hotplug_disabled++;
1197
d221938c 1198 cpu_maps_update_done();
e3920fb4
RW
1199 return error;
1200}
1201
d0af9eed
SS
1202void __weak arch_enable_nonboot_cpus_begin(void)
1203{
1204}
1205
1206void __weak arch_enable_nonboot_cpus_end(void)
1207{
1208}
1209
71cf5aee 1210void enable_nonboot_cpus(void)
e3920fb4
RW
1211{
1212 int cpu, error;
1213
1214 /* Allow everyone to use the CPU hotplug again */
d221938c 1215 cpu_maps_update_begin();
01b41159 1216 __cpu_hotplug_enable();
e0b582ec 1217 if (cpumask_empty(frozen_cpus))
1d64b9cb 1218 goto out;
e3920fb4 1219
84117da5 1220 pr_info("Enabling non-boot CPUs ...\n");
d0af9eed
SS
1221
1222 arch_enable_nonboot_cpus_begin();
1223
e0b582ec 1224 for_each_cpu(cpu, frozen_cpus) {
bb3632c6 1225 trace_suspend_resume(TPS("CPU_ON"), cpu, true);
af1f4045 1226 error = _cpu_up(cpu, 1, CPUHP_ONLINE);
bb3632c6 1227 trace_suspend_resume(TPS("CPU_ON"), cpu, false);
e3920fb4 1228 if (!error) {
84117da5 1229 pr_info("CPU%d is up\n", cpu);
e3920fb4
RW
1230 continue;
1231 }
84117da5 1232 pr_warn("Error taking CPU%d up: %d\n", cpu, error);
e3920fb4 1233 }
d0af9eed
SS
1234
1235 arch_enable_nonboot_cpus_end();
1236
e0b582ec 1237 cpumask_clear(frozen_cpus);
1d64b9cb 1238out:
d221938c 1239 cpu_maps_update_done();
1da177e4 1240}
e0b582ec 1241
d7268a31 1242static int __init alloc_frozen_cpus(void)
e0b582ec
RR
1243{
1244 if (!alloc_cpumask_var(&frozen_cpus, GFP_KERNEL|__GFP_ZERO))
1245 return -ENOMEM;
1246 return 0;
1247}
1248core_initcall(alloc_frozen_cpus);
79cfbdfa 1249
79cfbdfa
SB
1250/*
1251 * When callbacks for CPU hotplug notifications are being executed, we must
1252 * ensure that the state of the system with respect to the tasks being frozen
1253 * or not, as reported by the notification, remains unchanged *throughout the
1254 * duration* of the execution of the callbacks.
1255 * Hence we need to prevent the freezer from racing with regular CPU hotplug.
1256 *
1257 * This synchronization is implemented by mutually excluding regular CPU
1258 * hotplug and Suspend/Hibernate call paths by hooking onto the Suspend/
1259 * Hibernate notifications.
1260 */
1261static int
1262cpu_hotplug_pm_callback(struct notifier_block *nb,
1263 unsigned long action, void *ptr)
1264{
1265 switch (action) {
1266
1267 case PM_SUSPEND_PREPARE:
1268 case PM_HIBERNATION_PREPARE:
16e53dbf 1269 cpu_hotplug_disable();
79cfbdfa
SB
1270 break;
1271
1272 case PM_POST_SUSPEND:
1273 case PM_POST_HIBERNATION:
16e53dbf 1274 cpu_hotplug_enable();
79cfbdfa
SB
1275 break;
1276
1277 default:
1278 return NOTIFY_DONE;
1279 }
1280
1281 return NOTIFY_OK;
1282}
1283
1284
d7268a31 1285static int __init cpu_hotplug_pm_sync_init(void)
79cfbdfa 1286{
6e32d479
FY
1287 /*
1288 * cpu_hotplug_pm_callback has higher priority than x86
1289 * bsp_pm_callback which depends on cpu_hotplug_pm_callback
1290 * to disable cpu hotplug to avoid cpu hotplug race.
1291 */
79cfbdfa
SB
1292 pm_notifier(cpu_hotplug_pm_callback, 0);
1293 return 0;
1294}
1295core_initcall(cpu_hotplug_pm_sync_init);
1296
f3de4be9 1297#endif /* CONFIG_PM_SLEEP_SMP */
68f4f1ec 1298
8ce371f9
PZ
1299int __boot_cpu_id;
1300
68f4f1ec 1301#endif /* CONFIG_SMP */
b8d317d1 1302
cff7d378 1303/* Boot processor state steps */
17a2f1ce 1304static struct cpuhp_step cpuhp_hp_states[] = {
cff7d378
TG
1305 [CPUHP_OFFLINE] = {
1306 .name = "offline",
3c1627e9
TG
1307 .startup.single = NULL,
1308 .teardown.single = NULL,
cff7d378
TG
1309 },
1310#ifdef CONFIG_SMP
1311 [CPUHP_CREATE_THREADS]= {
677f6646 1312 .name = "threads:prepare",
3c1627e9
TG
1313 .startup.single = smpboot_create_threads,
1314 .teardown.single = NULL,
757c989b 1315 .cant_stop = true,
cff7d378 1316 },
00e16c3d 1317 [CPUHP_PERF_PREPARE] = {
3c1627e9
TG
1318 .name = "perf:prepare",
1319 .startup.single = perf_event_init_cpu,
1320 .teardown.single = perf_event_exit_cpu,
00e16c3d 1321 },
7ee681b2 1322 [CPUHP_WORKQUEUE_PREP] = {
3c1627e9
TG
1323 .name = "workqueue:prepare",
1324 .startup.single = workqueue_prepare_cpu,
1325 .teardown.single = NULL,
7ee681b2 1326 },
27590dc1 1327 [CPUHP_HRTIMERS_PREPARE] = {
3c1627e9
TG
1328 .name = "hrtimers:prepare",
1329 .startup.single = hrtimers_prepare_cpu,
1330 .teardown.single = hrtimers_dead_cpu,
27590dc1 1331 },
31487f83 1332 [CPUHP_SMPCFD_PREPARE] = {
677f6646 1333 .name = "smpcfd:prepare",
3c1627e9
TG
1334 .startup.single = smpcfd_prepare_cpu,
1335 .teardown.single = smpcfd_dead_cpu,
31487f83 1336 },
e6d4989a
RW
1337 [CPUHP_RELAY_PREPARE] = {
1338 .name = "relay:prepare",
1339 .startup.single = relay_prepare_cpu,
1340 .teardown.single = NULL,
1341 },
6731d4f1
SAS
1342 [CPUHP_SLAB_PREPARE] = {
1343 .name = "slab:prepare",
1344 .startup.single = slab_prepare_cpu,
1345 .teardown.single = slab_dead_cpu,
31487f83 1346 },
4df83742 1347 [CPUHP_RCUTREE_PREP] = {
677f6646 1348 .name = "RCU/tree:prepare",
3c1627e9
TG
1349 .startup.single = rcutree_prepare_cpu,
1350 .teardown.single = rcutree_dead_cpu,
4df83742 1351 },
4fae16df
RC
1352 /*
1353 * On the tear-down path, timers_dead_cpu() must be invoked
1354 * before blk_mq_queue_reinit_notify() from notify_dead(),
1355 * otherwise a RCU stall occurs.
1356 */
26456f87 1357 [CPUHP_TIMERS_PREPARE] = {
d018031f 1358 .name = "timers:prepare",
26456f87 1359 .startup.single = timers_prepare_cpu,
3c1627e9 1360 .teardown.single = timers_dead_cpu,
4fae16df 1361 },
d10ef6f9 1362 /* Kicks the plugged cpu into life */
cff7d378
TG
1363 [CPUHP_BRINGUP_CPU] = {
1364 .name = "cpu:bringup",
3c1627e9
TG
1365 .startup.single = bringup_cpu,
1366 .teardown.single = NULL,
757c989b 1367 .cant_stop = true,
4baa0afc 1368 },
d10ef6f9
TG
1369 /* Final state before CPU kills itself */
1370 [CPUHP_AP_IDLE_DEAD] = {
1371 .name = "idle:dead",
1372 },
1373 /*
1374 * Last state before CPU enters the idle loop to die. Transient state
1375 * for synchronization.
1376 */
1377 [CPUHP_AP_OFFLINE] = {
1378 .name = "ap:offline",
1379 .cant_stop = true,
1380 },
9cf7243d
TG
1381 /* First state is scheduler control. Interrupts are disabled */
1382 [CPUHP_AP_SCHED_STARTING] = {
1383 .name = "sched:starting",
3c1627e9
TG
1384 .startup.single = sched_cpu_starting,
1385 .teardown.single = sched_cpu_dying,
9cf7243d 1386 },
4df83742 1387 [CPUHP_AP_RCUTREE_DYING] = {
677f6646 1388 .name = "RCU/tree:dying",
3c1627e9
TG
1389 .startup.single = NULL,
1390 .teardown.single = rcutree_dying_cpu,
4baa0afc 1391 },
46febd37
LJ
1392 [CPUHP_AP_SMPCFD_DYING] = {
1393 .name = "smpcfd:dying",
1394 .startup.single = NULL,
1395 .teardown.single = smpcfd_dying_cpu,
1396 },
d10ef6f9
TG
1397 /* Entry state on starting. Interrupts enabled from here on. Transient
1398 * state for synchronsization */
1399 [CPUHP_AP_ONLINE] = {
1400 .name = "ap:online",
1401 },
17a2f1ce
LJ
1402 /*
1403 * Handled on controll processor until the plugged processor manages
1404 * this itself.
1405 */
1406 [CPUHP_TEARDOWN_CPU] = {
1407 .name = "cpu:teardown",
1408 .startup.single = NULL,
1409 .teardown.single = takedown_cpu,
1410 .cant_stop = true,
1411 },
d10ef6f9 1412 /* Handle smpboot threads park/unpark */
1cf4f629 1413 [CPUHP_AP_SMPBOOT_THREADS] = {
677f6646 1414 .name = "smpboot/threads:online",
3c1627e9 1415 .startup.single = smpboot_unpark_threads,
c4de6569 1416 .teardown.single = smpboot_park_threads,
1cf4f629 1417 },
c5cb83bb
TG
1418 [CPUHP_AP_IRQ_AFFINITY_ONLINE] = {
1419 .name = "irq/affinity:online",
1420 .startup.single = irq_affinity_online_cpu,
1421 .teardown.single = NULL,
1422 },
00e16c3d 1423 [CPUHP_AP_PERF_ONLINE] = {
3c1627e9
TG
1424 .name = "perf:online",
1425 .startup.single = perf_event_init_cpu,
1426 .teardown.single = perf_event_exit_cpu,
00e16c3d 1427 },
9cf57731
PZ
1428 [CPUHP_AP_WATCHDOG_ONLINE] = {
1429 .name = "lockup_detector:online",
1430 .startup.single = lockup_detector_online_cpu,
1431 .teardown.single = lockup_detector_offline_cpu,
1432 },
7ee681b2 1433 [CPUHP_AP_WORKQUEUE_ONLINE] = {
3c1627e9
TG
1434 .name = "workqueue:online",
1435 .startup.single = workqueue_online_cpu,
1436 .teardown.single = workqueue_offline_cpu,
7ee681b2 1437 },
4df83742 1438 [CPUHP_AP_RCUTREE_ONLINE] = {
677f6646 1439 .name = "RCU/tree:online",
3c1627e9
TG
1440 .startup.single = rcutree_online_cpu,
1441 .teardown.single = rcutree_offline_cpu,
4df83742 1442 },
4baa0afc 1443#endif
d10ef6f9
TG
1444 /*
1445 * The dynamically registered state space is here
1446 */
1447
aaddd7d1
TG
1448#ifdef CONFIG_SMP
1449 /* Last state is scheduler control setting the cpu active */
1450 [CPUHP_AP_ACTIVE] = {
1451 .name = "sched:active",
3c1627e9
TG
1452 .startup.single = sched_cpu_activate,
1453 .teardown.single = sched_cpu_deactivate,
aaddd7d1
TG
1454 },
1455#endif
1456
d10ef6f9 1457 /* CPU is fully up and running. */
4baa0afc
TG
1458 [CPUHP_ONLINE] = {
1459 .name = "online",
3c1627e9
TG
1460 .startup.single = NULL,
1461 .teardown.single = NULL,
4baa0afc
TG
1462 },
1463};
1464
5b7aa87e
TG
1465/* Sanity check for callbacks */
1466static int cpuhp_cb_check(enum cpuhp_state state)
1467{
1468 if (state <= CPUHP_OFFLINE || state >= CPUHP_ONLINE)
1469 return -EINVAL;
1470 return 0;
1471}
1472
dc280d93
TG
1473/*
1474 * Returns a free for dynamic slot assignment of the Online state. The states
1475 * are protected by the cpuhp_slot_states mutex and an empty slot is identified
1476 * by having no name assigned.
1477 */
1478static int cpuhp_reserve_state(enum cpuhp_state state)
1479{
4205e478
TG
1480 enum cpuhp_state i, end;
1481 struct cpuhp_step *step;
dc280d93 1482
4205e478
TG
1483 switch (state) {
1484 case CPUHP_AP_ONLINE_DYN:
17a2f1ce 1485 step = cpuhp_hp_states + CPUHP_AP_ONLINE_DYN;
4205e478
TG
1486 end = CPUHP_AP_ONLINE_DYN_END;
1487 break;
1488 case CPUHP_BP_PREPARE_DYN:
17a2f1ce 1489 step = cpuhp_hp_states + CPUHP_BP_PREPARE_DYN;
4205e478
TG
1490 end = CPUHP_BP_PREPARE_DYN_END;
1491 break;
1492 default:
1493 return -EINVAL;
1494 }
1495
1496 for (i = state; i <= end; i++, step++) {
1497 if (!step->name)
dc280d93
TG
1498 return i;
1499 }
1500 WARN(1, "No more dynamic states available for CPU hotplug\n");
1501 return -ENOSPC;
1502}
1503
1504static int cpuhp_store_callbacks(enum cpuhp_state state, const char *name,
1505 int (*startup)(unsigned int cpu),
1506 int (*teardown)(unsigned int cpu),
1507 bool multi_instance)
5b7aa87e
TG
1508{
1509 /* (Un)Install the callbacks for further cpu hotplug operations */
1510 struct cpuhp_step *sp;
dc280d93 1511 int ret = 0;
5b7aa87e 1512
0c96b273
EB
1513 /*
1514 * If name is NULL, then the state gets removed.
1515 *
1516 * CPUHP_AP_ONLINE_DYN and CPUHP_BP_PREPARE_DYN are handed out on
1517 * the first allocation from these dynamic ranges, so the removal
1518 * would trigger a new allocation and clear the wrong (already
1519 * empty) state, leaving the callbacks of the to be cleared state
1520 * dangling, which causes wreckage on the next hotplug operation.
1521 */
1522 if (name && (state == CPUHP_AP_ONLINE_DYN ||
1523 state == CPUHP_BP_PREPARE_DYN)) {
dc280d93
TG
1524 ret = cpuhp_reserve_state(state);
1525 if (ret < 0)
dc434e05 1526 return ret;
dc280d93
TG
1527 state = ret;
1528 }
5b7aa87e 1529 sp = cpuhp_get_step(state);
dc434e05
SAS
1530 if (name && sp->name)
1531 return -EBUSY;
1532
3c1627e9
TG
1533 sp->startup.single = startup;
1534 sp->teardown.single = teardown;
5b7aa87e 1535 sp->name = name;
cf392d10
TG
1536 sp->multi_instance = multi_instance;
1537 INIT_HLIST_HEAD(&sp->list);
dc280d93 1538 return ret;
5b7aa87e
TG
1539}
1540
1541static void *cpuhp_get_teardown_cb(enum cpuhp_state state)
1542{
3c1627e9 1543 return cpuhp_get_step(state)->teardown.single;
5b7aa87e
TG
1544}
1545
5b7aa87e
TG
1546/*
1547 * Call the startup/teardown function for a step either on the AP or
1548 * on the current CPU.
1549 */
cf392d10
TG
1550static int cpuhp_issue_call(int cpu, enum cpuhp_state state, bool bringup,
1551 struct hlist_node *node)
5b7aa87e 1552{
a724632c 1553 struct cpuhp_step *sp = cpuhp_get_step(state);
5b7aa87e
TG
1554 int ret;
1555
4dddfb5f
PZ
1556 /*
1557 * If there's nothing to do, we done.
1558 * Relies on the union for multi_instance.
1559 */
3c1627e9
TG
1560 if ((bringup && !sp->startup.single) ||
1561 (!bringup && !sp->teardown.single))
5b7aa87e 1562 return 0;
5b7aa87e
TG
1563 /*
1564 * The non AP bound callbacks can fail on bringup. On teardown
1565 * e.g. module removal we crash for now.
1566 */
1cf4f629
TG
1567#ifdef CONFIG_SMP
1568 if (cpuhp_is_ap_state(state))
cf392d10 1569 ret = cpuhp_invoke_ap_callback(cpu, state, bringup, node);
1cf4f629 1570 else
96abb968 1571 ret = cpuhp_invoke_callback(cpu, state, bringup, node, NULL);
1cf4f629 1572#else
96abb968 1573 ret = cpuhp_invoke_callback(cpu, state, bringup, node, NULL);
1cf4f629 1574#endif
5b7aa87e
TG
1575 BUG_ON(ret && !bringup);
1576 return ret;
1577}
1578
1579/*
1580 * Called from __cpuhp_setup_state on a recoverable failure.
1581 *
1582 * Note: The teardown callbacks for rollback are not allowed to fail!
1583 */
1584static void cpuhp_rollback_install(int failedcpu, enum cpuhp_state state,
cf392d10 1585 struct hlist_node *node)
5b7aa87e
TG
1586{
1587 int cpu;
1588
5b7aa87e
TG
1589 /* Roll back the already executed steps on the other cpus */
1590 for_each_present_cpu(cpu) {
1591 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1592 int cpustate = st->state;
1593
1594 if (cpu >= failedcpu)
1595 break;
1596
1597 /* Did we invoke the startup call on that cpu ? */
1598 if (cpustate >= state)
cf392d10 1599 cpuhp_issue_call(cpu, state, false, node);
5b7aa87e
TG
1600 }
1601}
1602
9805c673
TG
1603int __cpuhp_state_add_instance_cpuslocked(enum cpuhp_state state,
1604 struct hlist_node *node,
1605 bool invoke)
cf392d10
TG
1606{
1607 struct cpuhp_step *sp;
1608 int cpu;
1609 int ret;
1610
9805c673
TG
1611 lockdep_assert_cpus_held();
1612
cf392d10
TG
1613 sp = cpuhp_get_step(state);
1614 if (sp->multi_instance == false)
1615 return -EINVAL;
1616
dc434e05 1617 mutex_lock(&cpuhp_state_mutex);
cf392d10 1618
3c1627e9 1619 if (!invoke || !sp->startup.multi)
cf392d10
TG
1620 goto add_node;
1621
1622 /*
1623 * Try to call the startup callback for each present cpu
1624 * depending on the hotplug state of the cpu.
1625 */
1626 for_each_present_cpu(cpu) {
1627 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1628 int cpustate = st->state;
1629
1630 if (cpustate < state)
1631 continue;
1632
1633 ret = cpuhp_issue_call(cpu, state, true, node);
1634 if (ret) {
3c1627e9 1635 if (sp->teardown.multi)
cf392d10 1636 cpuhp_rollback_install(cpu, state, node);
dc434e05 1637 goto unlock;
cf392d10
TG
1638 }
1639 }
1640add_node:
1641 ret = 0;
cf392d10 1642 hlist_add_head(node, &sp->list);
dc434e05 1643unlock:
cf392d10 1644 mutex_unlock(&cpuhp_state_mutex);
9805c673
TG
1645 return ret;
1646}
1647
1648int __cpuhp_state_add_instance(enum cpuhp_state state, struct hlist_node *node,
1649 bool invoke)
1650{
1651 int ret;
1652
1653 cpus_read_lock();
1654 ret = __cpuhp_state_add_instance_cpuslocked(state, node, invoke);
8f553c49 1655 cpus_read_unlock();
cf392d10
TG
1656 return ret;
1657}
1658EXPORT_SYMBOL_GPL(__cpuhp_state_add_instance);
1659
5b7aa87e 1660/**
71def423 1661 * __cpuhp_setup_state_cpuslocked - Setup the callbacks for an hotplug machine state
dc280d93
TG
1662 * @state: The state to setup
1663 * @invoke: If true, the startup function is invoked for cpus where
1664 * cpu state >= @state
1665 * @startup: startup callback function
1666 * @teardown: teardown callback function
1667 * @multi_instance: State is set up for multiple instances which get
1668 * added afterwards.
5b7aa87e 1669 *
71def423 1670 * The caller needs to hold cpus read locked while calling this function.
512f0980
BO
1671 * Returns:
1672 * On success:
1673 * Positive state number if @state is CPUHP_AP_ONLINE_DYN
1674 * 0 for all other states
1675 * On failure: proper (negative) error code
5b7aa87e 1676 */
71def423
SAS
1677int __cpuhp_setup_state_cpuslocked(enum cpuhp_state state,
1678 const char *name, bool invoke,
1679 int (*startup)(unsigned int cpu),
1680 int (*teardown)(unsigned int cpu),
1681 bool multi_instance)
5b7aa87e
TG
1682{
1683 int cpu, ret = 0;
b9d9d691 1684 bool dynstate;
5b7aa87e 1685
71def423
SAS
1686 lockdep_assert_cpus_held();
1687
5b7aa87e
TG
1688 if (cpuhp_cb_check(state) || !name)
1689 return -EINVAL;
1690
dc434e05 1691 mutex_lock(&cpuhp_state_mutex);
5b7aa87e 1692
dc280d93
TG
1693 ret = cpuhp_store_callbacks(state, name, startup, teardown,
1694 multi_instance);
5b7aa87e 1695
b9d9d691
TG
1696 dynstate = state == CPUHP_AP_ONLINE_DYN;
1697 if (ret > 0 && dynstate) {
1698 state = ret;
1699 ret = 0;
1700 }
1701
dc280d93 1702 if (ret || !invoke || !startup)
5b7aa87e
TG
1703 goto out;
1704
1705 /*
1706 * Try to call the startup callback for each present cpu
1707 * depending on the hotplug state of the cpu.
1708 */
1709 for_each_present_cpu(cpu) {
1710 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1711 int cpustate = st->state;
1712
1713 if (cpustate < state)
1714 continue;
1715
cf392d10 1716 ret = cpuhp_issue_call(cpu, state, true, NULL);
5b7aa87e 1717 if (ret) {
a724632c 1718 if (teardown)
cf392d10
TG
1719 cpuhp_rollback_install(cpu, state, NULL);
1720 cpuhp_store_callbacks(state, NULL, NULL, NULL, false);
5b7aa87e
TG
1721 goto out;
1722 }
1723 }
1724out:
dc434e05 1725 mutex_unlock(&cpuhp_state_mutex);
dc280d93
TG
1726 /*
1727 * If the requested state is CPUHP_AP_ONLINE_DYN, return the
1728 * dynamically allocated state in case of success.
1729 */
b9d9d691 1730 if (!ret && dynstate)
5b7aa87e
TG
1731 return state;
1732 return ret;
1733}
71def423
SAS
1734EXPORT_SYMBOL(__cpuhp_setup_state_cpuslocked);
1735
1736int __cpuhp_setup_state(enum cpuhp_state state,
1737 const char *name, bool invoke,
1738 int (*startup)(unsigned int cpu),
1739 int (*teardown)(unsigned int cpu),
1740 bool multi_instance)
1741{
1742 int ret;
1743
1744 cpus_read_lock();
1745 ret = __cpuhp_setup_state_cpuslocked(state, name, invoke, startup,
1746 teardown, multi_instance);
1747 cpus_read_unlock();
1748 return ret;
1749}
5b7aa87e
TG
1750EXPORT_SYMBOL(__cpuhp_setup_state);
1751
cf392d10
TG
1752int __cpuhp_state_remove_instance(enum cpuhp_state state,
1753 struct hlist_node *node, bool invoke)
1754{
1755 struct cpuhp_step *sp = cpuhp_get_step(state);
1756 int cpu;
1757
1758 BUG_ON(cpuhp_cb_check(state));
1759
1760 if (!sp->multi_instance)
1761 return -EINVAL;
1762
8f553c49 1763 cpus_read_lock();
dc434e05
SAS
1764 mutex_lock(&cpuhp_state_mutex);
1765
cf392d10
TG
1766 if (!invoke || !cpuhp_get_teardown_cb(state))
1767 goto remove;
1768 /*
1769 * Call the teardown callback for each present cpu depending
1770 * on the hotplug state of the cpu. This function is not
1771 * allowed to fail currently!
1772 */
1773 for_each_present_cpu(cpu) {
1774 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1775 int cpustate = st->state;
1776
1777 if (cpustate >= state)
1778 cpuhp_issue_call(cpu, state, false, node);
1779 }
1780
1781remove:
cf392d10
TG
1782 hlist_del(node);
1783 mutex_unlock(&cpuhp_state_mutex);
8f553c49 1784 cpus_read_unlock();
cf392d10
TG
1785
1786 return 0;
1787}
1788EXPORT_SYMBOL_GPL(__cpuhp_state_remove_instance);
dc434e05 1789
5b7aa87e 1790/**
71def423 1791 * __cpuhp_remove_state_cpuslocked - Remove the callbacks for an hotplug machine state
5b7aa87e
TG
1792 * @state: The state to remove
1793 * @invoke: If true, the teardown function is invoked for cpus where
1794 * cpu state >= @state
1795 *
71def423 1796 * The caller needs to hold cpus read locked while calling this function.
5b7aa87e
TG
1797 * The teardown callback is currently not allowed to fail. Think
1798 * about module removal!
1799 */
71def423 1800void __cpuhp_remove_state_cpuslocked(enum cpuhp_state state, bool invoke)
5b7aa87e 1801{
cf392d10 1802 struct cpuhp_step *sp = cpuhp_get_step(state);
5b7aa87e
TG
1803 int cpu;
1804
1805 BUG_ON(cpuhp_cb_check(state));
1806
71def423 1807 lockdep_assert_cpus_held();
5b7aa87e 1808
dc434e05 1809 mutex_lock(&cpuhp_state_mutex);
cf392d10
TG
1810 if (sp->multi_instance) {
1811 WARN(!hlist_empty(&sp->list),
1812 "Error: Removing state %d which has instances left.\n",
1813 state);
1814 goto remove;
1815 }
1816
a724632c 1817 if (!invoke || !cpuhp_get_teardown_cb(state))
5b7aa87e
TG
1818 goto remove;
1819
1820 /*
1821 * Call the teardown callback for each present cpu depending
1822 * on the hotplug state of the cpu. This function is not
1823 * allowed to fail currently!
1824 */
1825 for_each_present_cpu(cpu) {
1826 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, cpu);
1827 int cpustate = st->state;
1828
1829 if (cpustate >= state)
cf392d10 1830 cpuhp_issue_call(cpu, state, false, NULL);
5b7aa87e
TG
1831 }
1832remove:
cf392d10 1833 cpuhp_store_callbacks(state, NULL, NULL, NULL, false);
dc434e05 1834 mutex_unlock(&cpuhp_state_mutex);
71def423
SAS
1835}
1836EXPORT_SYMBOL(__cpuhp_remove_state_cpuslocked);
1837
1838void __cpuhp_remove_state(enum cpuhp_state state, bool invoke)
1839{
1840 cpus_read_lock();
1841 __cpuhp_remove_state_cpuslocked(state, invoke);
8f553c49 1842 cpus_read_unlock();
5b7aa87e
TG
1843}
1844EXPORT_SYMBOL(__cpuhp_remove_state);
1845
98f8cdce
TG
1846#if defined(CONFIG_SYSFS) && defined(CONFIG_HOTPLUG_CPU)
1847static ssize_t show_cpuhp_state(struct device *dev,
1848 struct device_attribute *attr, char *buf)
1849{
1850 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, dev->id);
1851
1852 return sprintf(buf, "%d\n", st->state);
1853}
1854static DEVICE_ATTR(state, 0444, show_cpuhp_state, NULL);
1855
757c989b
TG
1856static ssize_t write_cpuhp_target(struct device *dev,
1857 struct device_attribute *attr,
1858 const char *buf, size_t count)
1859{
1860 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, dev->id);
1861 struct cpuhp_step *sp;
1862 int target, ret;
1863
1864 ret = kstrtoint(buf, 10, &target);
1865 if (ret)
1866 return ret;
1867
1868#ifdef CONFIG_CPU_HOTPLUG_STATE_CONTROL
1869 if (target < CPUHP_OFFLINE || target > CPUHP_ONLINE)
1870 return -EINVAL;
1871#else
1872 if (target != CPUHP_OFFLINE && target != CPUHP_ONLINE)
1873 return -EINVAL;
1874#endif
1875
1876 ret = lock_device_hotplug_sysfs();
1877 if (ret)
1878 return ret;
1879
1880 mutex_lock(&cpuhp_state_mutex);
1881 sp = cpuhp_get_step(target);
1882 ret = !sp->name || sp->cant_stop ? -EINVAL : 0;
1883 mutex_unlock(&cpuhp_state_mutex);
1884 if (ret)
40da1b11 1885 goto out;
757c989b
TG
1886
1887 if (st->state < target)
1888 ret = do_cpu_up(dev->id, target);
1889 else
1890 ret = do_cpu_down(dev->id, target);
40da1b11 1891out:
757c989b
TG
1892 unlock_device_hotplug();
1893 return ret ? ret : count;
1894}
1895
98f8cdce
TG
1896static ssize_t show_cpuhp_target(struct device *dev,
1897 struct device_attribute *attr, char *buf)
1898{
1899 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, dev->id);
1900
1901 return sprintf(buf, "%d\n", st->target);
1902}
757c989b 1903static DEVICE_ATTR(target, 0644, show_cpuhp_target, write_cpuhp_target);
98f8cdce 1904
1db49484
PZ
1905
1906static ssize_t write_cpuhp_fail(struct device *dev,
1907 struct device_attribute *attr,
1908 const char *buf, size_t count)
1909{
1910 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, dev->id);
1911 struct cpuhp_step *sp;
1912 int fail, ret;
1913
1914 ret = kstrtoint(buf, 10, &fail);
1915 if (ret)
1916 return ret;
1917
1918 /*
1919 * Cannot fail STARTING/DYING callbacks.
1920 */
1921 if (cpuhp_is_atomic_state(fail))
1922 return -EINVAL;
1923
1924 /*
1925 * Cannot fail anything that doesn't have callbacks.
1926 */
1927 mutex_lock(&cpuhp_state_mutex);
1928 sp = cpuhp_get_step(fail);
1929 if (!sp->startup.single && !sp->teardown.single)
1930 ret = -EINVAL;
1931 mutex_unlock(&cpuhp_state_mutex);
1932 if (ret)
1933 return ret;
1934
1935 st->fail = fail;
1936
1937 return count;
1938}
1939
1940static ssize_t show_cpuhp_fail(struct device *dev,
1941 struct device_attribute *attr, char *buf)
1942{
1943 struct cpuhp_cpu_state *st = per_cpu_ptr(&cpuhp_state, dev->id);
1944
1945 return sprintf(buf, "%d\n", st->fail);
1946}
1947
1948static DEVICE_ATTR(fail, 0644, show_cpuhp_fail, write_cpuhp_fail);
1949
98f8cdce
TG
1950static struct attribute *cpuhp_cpu_attrs[] = {
1951 &dev_attr_state.attr,
1952 &dev_attr_target.attr,
1db49484 1953 &dev_attr_fail.attr,
98f8cdce
TG
1954 NULL
1955};
1956
993647a2 1957static const struct attribute_group cpuhp_cpu_attr_group = {
98f8cdce
TG
1958 .attrs = cpuhp_cpu_attrs,
1959 .name = "hotplug",
1960 NULL
1961};
1962
1963static ssize_t show_cpuhp_states(struct device *dev,
1964 struct device_attribute *attr, char *buf)
1965{
1966 ssize_t cur, res = 0;
1967 int i;
1968
1969 mutex_lock(&cpuhp_state_mutex);
757c989b 1970 for (i = CPUHP_OFFLINE; i <= CPUHP_ONLINE; i++) {
98f8cdce
TG
1971 struct cpuhp_step *sp = cpuhp_get_step(i);
1972
1973 if (sp->name) {
1974 cur = sprintf(buf, "%3d: %s\n", i, sp->name);
1975 buf += cur;
1976 res += cur;
1977 }
1978 }
1979 mutex_unlock(&cpuhp_state_mutex);
1980 return res;
1981}
1982static DEVICE_ATTR(states, 0444, show_cpuhp_states, NULL);
1983
1984static struct attribute *cpuhp_cpu_root_attrs[] = {
1985 &dev_attr_states.attr,
1986 NULL
1987};
1988
993647a2 1989static const struct attribute_group cpuhp_cpu_root_attr_group = {
98f8cdce
TG
1990 .attrs = cpuhp_cpu_root_attrs,
1991 .name = "hotplug",
1992 NULL
1993};
1994
05736e4a
TG
1995#ifdef CONFIG_HOTPLUG_SMT
1996
1997static const char *smt_states[] = {
1998 [CPU_SMT_ENABLED] = "on",
1999 [CPU_SMT_DISABLED] = "off",
2000 [CPU_SMT_FORCE_DISABLED] = "forceoff",
2001 [CPU_SMT_NOT_SUPPORTED] = "notsupported",
2002};
2003
2004static ssize_t
2005show_smt_control(struct device *dev, struct device_attribute *attr, char *buf)
2006{
2007 return snprintf(buf, PAGE_SIZE - 2, "%s\n", smt_states[cpu_smt_control]);
2008}
2009
2010static void cpuhp_offline_cpu_device(unsigned int cpu)
2011{
2012 struct device *dev = get_cpu_device(cpu);
2013
2014 dev->offline = true;
2015 /* Tell user space about the state change */
2016 kobject_uevent(&dev->kobj, KOBJ_OFFLINE);
2017}
2018
215af549
TG
2019static void cpuhp_online_cpu_device(unsigned int cpu)
2020{
2021 struct device *dev = get_cpu_device(cpu);
2022
2023 dev->offline = false;
2024 /* Tell user space about the state change */
2025 kobject_uevent(&dev->kobj, KOBJ_ONLINE);
2026}
2027
05736e4a
TG
2028static int cpuhp_smt_disable(enum cpuhp_smt_control ctrlval)
2029{
2030 int cpu, ret = 0;
2031
2032 cpu_maps_update_begin();
2033 for_each_online_cpu(cpu) {
2034 if (topology_is_primary_thread(cpu))
2035 continue;
2036 ret = cpu_down_maps_locked(cpu, CPUHP_OFFLINE);
2037 if (ret)
2038 break;
2039 /*
2040 * As this needs to hold the cpu maps lock it's impossible
2041 * to call device_offline() because that ends up calling
2042 * cpu_down() which takes cpu maps lock. cpu maps lock
2043 * needs to be held as this might race against in kernel
2044 * abusers of the hotplug machinery (thermal management).
2045 *
2046 * So nothing would update device:offline state. That would
2047 * leave the sysfs entry stale and prevent onlining after
2048 * smt control has been changed to 'off' again. This is
2049 * called under the sysfs hotplug lock, so it is properly
2050 * serialized against the regular offline usage.
2051 */
2052 cpuhp_offline_cpu_device(cpu);
2053 }
2054 if (!ret)
2055 cpu_smt_control = ctrlval;
2056 cpu_maps_update_done();
2057 return ret;
2058}
2059
215af549 2060static int cpuhp_smt_enable(void)
05736e4a 2061{
215af549
TG
2062 int cpu, ret = 0;
2063
05736e4a
TG
2064 cpu_maps_update_begin();
2065 cpu_smt_control = CPU_SMT_ENABLED;
215af549
TG
2066 for_each_present_cpu(cpu) {
2067 /* Skip online CPUs and CPUs on offline nodes */
2068 if (cpu_online(cpu) || !node_online(cpu_to_node(cpu)))
2069 continue;
2070 ret = _cpu_up(cpu, 0, CPUHP_ONLINE);
2071 if (ret)
2072 break;
2073 /* See comment in cpuhp_smt_disable() */
2074 cpuhp_online_cpu_device(cpu);
2075 }
05736e4a 2076 cpu_maps_update_done();
215af549 2077 return ret;
05736e4a
TG
2078}
2079
2080static ssize_t
2081store_smt_control(struct device *dev, struct device_attribute *attr,
2082 const char *buf, size_t count)
2083{
2084 int ctrlval, ret;
2085
2086 if (sysfs_streq(buf, "on"))
2087 ctrlval = CPU_SMT_ENABLED;
2088 else if (sysfs_streq(buf, "off"))
2089 ctrlval = CPU_SMT_DISABLED;
2090 else if (sysfs_streq(buf, "forceoff"))
2091 ctrlval = CPU_SMT_FORCE_DISABLED;
2092 else
2093 return -EINVAL;
2094
2095 if (cpu_smt_control == CPU_SMT_FORCE_DISABLED)
2096 return -EPERM;
2097
2098 if (cpu_smt_control == CPU_SMT_NOT_SUPPORTED)
2099 return -ENODEV;
2100
2101 ret = lock_device_hotplug_sysfs();
2102 if (ret)
2103 return ret;
2104
2105 if (ctrlval != cpu_smt_control) {
2106 switch (ctrlval) {
2107 case CPU_SMT_ENABLED:
215af549 2108 ret = cpuhp_smt_enable();
05736e4a
TG
2109 break;
2110 case CPU_SMT_DISABLED:
2111 case CPU_SMT_FORCE_DISABLED:
2112 ret = cpuhp_smt_disable(ctrlval);
2113 break;
2114 }
2115 }
2116
2117 unlock_device_hotplug();
2118 return ret ? ret : count;
2119}
2120static DEVICE_ATTR(control, 0644, show_smt_control, store_smt_control);
2121
2122static ssize_t
2123show_smt_active(struct device *dev, struct device_attribute *attr, char *buf)
2124{
2125 bool active = topology_max_smt_threads() > 1;
2126
2127 return snprintf(buf, PAGE_SIZE - 2, "%d\n", active);
2128}
2129static DEVICE_ATTR(active, 0444, show_smt_active, NULL);
2130
2131static struct attribute *cpuhp_smt_attrs[] = {
2132 &dev_attr_control.attr,
2133 &dev_attr_active.attr,
2134 NULL
2135};
2136
2137static const struct attribute_group cpuhp_smt_attr_group = {
2138 .attrs = cpuhp_smt_attrs,
2139 .name = "smt",
2140 NULL
2141};
2142
2143static int __init cpu_smt_state_init(void)
2144{
05736e4a
TG
2145 return sysfs_create_group(&cpu_subsys.dev_root->kobj,
2146 &cpuhp_smt_attr_group);
2147}
2148
2149#else
2150static inline int cpu_smt_state_init(void) { return 0; }
2151#endif
2152
98f8cdce
TG
2153static int __init cpuhp_sysfs_init(void)
2154{
2155 int cpu, ret;
2156
05736e4a
TG
2157 ret = cpu_smt_state_init();
2158 if (ret)
2159 return ret;
2160
98f8cdce
TG
2161 ret = sysfs_create_group(&cpu_subsys.dev_root->kobj,
2162 &cpuhp_cpu_root_attr_group);
2163 if (ret)
2164 return ret;
2165
2166 for_each_possible_cpu(cpu) {
2167 struct device *dev = get_cpu_device(cpu);
2168
2169 if (!dev)
2170 continue;
2171 ret = sysfs_create_group(&dev->kobj, &cpuhp_cpu_attr_group);
2172 if (ret)
2173 return ret;
2174 }
2175 return 0;
2176}
2177device_initcall(cpuhp_sysfs_init);
2178#endif
2179
e56b3bc7
LT
2180/*
2181 * cpu_bit_bitmap[] is a special, "compressed" data structure that
2182 * represents all NR_CPUS bits binary values of 1<<nr.
2183 *
e0b582ec 2184 * It is used by cpumask_of() to get a constant address to a CPU
e56b3bc7
LT
2185 * mask value that has a single bit set only.
2186 */
b8d317d1 2187
e56b3bc7 2188/* cpu_bit_bitmap[0] is empty - so we can back into it */
4d51985e 2189#define MASK_DECLARE_1(x) [x+1][0] = (1UL << (x))
e56b3bc7
LT
2190#define MASK_DECLARE_2(x) MASK_DECLARE_1(x), MASK_DECLARE_1(x+1)
2191#define MASK_DECLARE_4(x) MASK_DECLARE_2(x), MASK_DECLARE_2(x+2)
2192#define MASK_DECLARE_8(x) MASK_DECLARE_4(x), MASK_DECLARE_4(x+4)
b8d317d1 2193
e56b3bc7
LT
2194const unsigned long cpu_bit_bitmap[BITS_PER_LONG+1][BITS_TO_LONGS(NR_CPUS)] = {
2195
2196 MASK_DECLARE_8(0), MASK_DECLARE_8(8),
2197 MASK_DECLARE_8(16), MASK_DECLARE_8(24),
2198#if BITS_PER_LONG > 32
2199 MASK_DECLARE_8(32), MASK_DECLARE_8(40),
2200 MASK_DECLARE_8(48), MASK_DECLARE_8(56),
b8d317d1
MT
2201#endif
2202};
e56b3bc7 2203EXPORT_SYMBOL_GPL(cpu_bit_bitmap);
2d3854a3
RR
2204
2205const DECLARE_BITMAP(cpu_all_bits, NR_CPUS) = CPU_BITS_ALL;
2206EXPORT_SYMBOL(cpu_all_bits);
b3199c02
RR
2207
2208#ifdef CONFIG_INIT_ALL_POSSIBLE
4b804c85 2209struct cpumask __cpu_possible_mask __read_mostly
c4c54dd1 2210 = {CPU_BITS_ALL};
b3199c02 2211#else
4b804c85 2212struct cpumask __cpu_possible_mask __read_mostly;
b3199c02 2213#endif
4b804c85 2214EXPORT_SYMBOL(__cpu_possible_mask);
b3199c02 2215
4b804c85
RV
2216struct cpumask __cpu_online_mask __read_mostly;
2217EXPORT_SYMBOL(__cpu_online_mask);
b3199c02 2218
4b804c85
RV
2219struct cpumask __cpu_present_mask __read_mostly;
2220EXPORT_SYMBOL(__cpu_present_mask);
b3199c02 2221
4b804c85
RV
2222struct cpumask __cpu_active_mask __read_mostly;
2223EXPORT_SYMBOL(__cpu_active_mask);
3fa41520 2224
3fa41520
RR
2225void init_cpu_present(const struct cpumask *src)
2226{
c4c54dd1 2227 cpumask_copy(&__cpu_present_mask, src);
3fa41520
RR
2228}
2229
2230void init_cpu_possible(const struct cpumask *src)
2231{
c4c54dd1 2232 cpumask_copy(&__cpu_possible_mask, src);
3fa41520
RR
2233}
2234
2235void init_cpu_online(const struct cpumask *src)
2236{
c4c54dd1 2237 cpumask_copy(&__cpu_online_mask, src);
3fa41520 2238}
cff7d378
TG
2239
2240/*
2241 * Activate the first processor.
2242 */
2243void __init boot_cpu_init(void)
2244{
2245 int cpu = smp_processor_id();
2246
2247 /* Mark the boot cpu "present", "online" etc for SMP and UP case */
2248 set_cpu_online(cpu, true);
2249 set_cpu_active(cpu, true);
2250 set_cpu_present(cpu, true);
2251 set_cpu_possible(cpu, true);
8ce371f9
PZ
2252
2253#ifdef CONFIG_SMP
2254 __boot_cpu_id = cpu;
2255#endif
cff7d378
TG
2256}
2257
2258/*
2259 * Must be called _AFTER_ setting up the per_cpu areas
2260 */
b5b1404d 2261void __init boot_cpu_hotplug_init(void)
cff7d378 2262{
269777aa 2263#ifdef CONFIG_SMP
0cc3cd21 2264 this_cpu_write(cpuhp_state.booted_once, true);
269777aa 2265#endif
0cc3cd21 2266 this_cpu_write(cpuhp_state.state, CPUHP_ONLINE);
cff7d378 2267}