perf_counter: Provide functions for locking and pinning the context for a task
[deliverable/linux.git] / kernel / perf_counter.c
1 /*
2 * Performance counter core code
3 *
4 * Copyright (C) 2008 Thomas Gleixner <tglx@linutronix.de>
5 * Copyright (C) 2008-2009 Red Hat, Inc., Ingo Molnar
6 * Copyright (C) 2008-2009 Red Hat, Inc., Peter Zijlstra <pzijlstr@redhat.com>
7 * Copyright © 2009 Paul Mackerras, IBM Corp. <paulus@au1.ibm.com>
8 *
9 * For licensing details see kernel-base/COPYING
10 */
11
12 #include <linux/fs.h>
13 #include <linux/mm.h>
14 #include <linux/cpu.h>
15 #include <linux/smp.h>
16 #include <linux/file.h>
17 #include <linux/poll.h>
18 #include <linux/sysfs.h>
19 #include <linux/ptrace.h>
20 #include <linux/percpu.h>
21 #include <linux/vmstat.h>
22 #include <linux/hardirq.h>
23 #include <linux/rculist.h>
24 #include <linux/uaccess.h>
25 #include <linux/syscalls.h>
26 #include <linux/anon_inodes.h>
27 #include <linux/kernel_stat.h>
28 #include <linux/perf_counter.h>
29 #include <linux/dcache.h>
30
31 #include <asm/irq_regs.h>
32
33 /*
34 * Each CPU has a list of per CPU counters:
35 */
36 DEFINE_PER_CPU(struct perf_cpu_context, perf_cpu_context);
37
38 int perf_max_counters __read_mostly = 1;
39 static int perf_reserved_percpu __read_mostly;
40 static int perf_overcommit __read_mostly = 1;
41
42 static atomic_t nr_counters __read_mostly;
43 static atomic_t nr_mmap_tracking __read_mostly;
44 static atomic_t nr_munmap_tracking __read_mostly;
45 static atomic_t nr_comm_tracking __read_mostly;
46
47 int sysctl_perf_counter_priv __read_mostly; /* do we need to be privileged */
48 int sysctl_perf_counter_mlock __read_mostly = 512; /* 'free' kb per user */
49 int sysctl_perf_counter_limit __read_mostly = 100000; /* max NMIs per second */
50
51 /*
52 * Lock for (sysadmin-configurable) counter reservations:
53 */
54 static DEFINE_SPINLOCK(perf_resource_lock);
55
56 /*
57 * Architecture provided APIs - weak aliases:
58 */
59 extern __weak const struct pmu *hw_perf_counter_init(struct perf_counter *counter)
60 {
61 return NULL;
62 }
63
64 void __weak hw_perf_disable(void) { barrier(); }
65 void __weak hw_perf_enable(void) { barrier(); }
66
67 void __weak hw_perf_counter_setup(int cpu) { barrier(); }
68 int __weak hw_perf_group_sched_in(struct perf_counter *group_leader,
69 struct perf_cpu_context *cpuctx,
70 struct perf_counter_context *ctx, int cpu)
71 {
72 return 0;
73 }
74
75 void __weak perf_counter_print_debug(void) { }
76
77 static DEFINE_PER_CPU(int, disable_count);
78
79 void __perf_disable(void)
80 {
81 __get_cpu_var(disable_count)++;
82 }
83
84 bool __perf_enable(void)
85 {
86 return !--__get_cpu_var(disable_count);
87 }
88
89 void perf_disable(void)
90 {
91 __perf_disable();
92 hw_perf_disable();
93 }
94
95 void perf_enable(void)
96 {
97 if (__perf_enable())
98 hw_perf_enable();
99 }
100
101 static void get_ctx(struct perf_counter_context *ctx)
102 {
103 atomic_inc(&ctx->refcount);
104 }
105
106 static void free_ctx(struct rcu_head *head)
107 {
108 struct perf_counter_context *ctx;
109
110 ctx = container_of(head, struct perf_counter_context, rcu_head);
111 kfree(ctx);
112 }
113
114 static void put_ctx(struct perf_counter_context *ctx)
115 {
116 if (atomic_dec_and_test(&ctx->refcount)) {
117 if (ctx->parent_ctx)
118 put_ctx(ctx->parent_ctx);
119 if (ctx->task)
120 put_task_struct(ctx->task);
121 call_rcu(&ctx->rcu_head, free_ctx);
122 }
123 }
124
125 /*
126 * Get the perf_counter_context for a task and lock it.
127 * This has to cope with with the fact that until it is locked,
128 * the context could get moved to another task.
129 */
130 static struct perf_counter_context *perf_lock_task_context(
131 struct task_struct *task, unsigned long *flags)
132 {
133 struct perf_counter_context *ctx;
134
135 rcu_read_lock();
136 retry:
137 ctx = rcu_dereference(task->perf_counter_ctxp);
138 if (ctx) {
139 /*
140 * If this context is a clone of another, it might
141 * get swapped for another underneath us by
142 * perf_counter_task_sched_out, though the
143 * rcu_read_lock() protects us from any context
144 * getting freed. Lock the context and check if it
145 * got swapped before we could get the lock, and retry
146 * if so. If we locked the right context, then it
147 * can't get swapped on us any more.
148 */
149 spin_lock_irqsave(&ctx->lock, *flags);
150 if (ctx != rcu_dereference(task->perf_counter_ctxp)) {
151 spin_unlock_irqrestore(&ctx->lock, *flags);
152 goto retry;
153 }
154 }
155 rcu_read_unlock();
156 return ctx;
157 }
158
159 /*
160 * Get the context for a task and increment its pin_count so it
161 * can't get swapped to another task. This also increments its
162 * reference count so that the context can't get freed.
163 */
164 static struct perf_counter_context *perf_pin_task_context(struct task_struct *task)
165 {
166 struct perf_counter_context *ctx;
167 unsigned long flags;
168
169 ctx = perf_lock_task_context(task, &flags);
170 if (ctx) {
171 ++ctx->pin_count;
172 get_ctx(ctx);
173 spin_unlock_irqrestore(&ctx->lock, flags);
174 }
175 return ctx;
176 }
177
178 static void perf_unpin_context(struct perf_counter_context *ctx)
179 {
180 unsigned long flags;
181
182 spin_lock_irqsave(&ctx->lock, flags);
183 --ctx->pin_count;
184 spin_unlock_irqrestore(&ctx->lock, flags);
185 put_ctx(ctx);
186 }
187
188 /*
189 * Add a counter from the lists for its context.
190 * Must be called with ctx->mutex and ctx->lock held.
191 */
192 static void
193 list_add_counter(struct perf_counter *counter, struct perf_counter_context *ctx)
194 {
195 struct perf_counter *group_leader = counter->group_leader;
196
197 /*
198 * Depending on whether it is a standalone or sibling counter,
199 * add it straight to the context's counter list, or to the group
200 * leader's sibling list:
201 */
202 if (group_leader == counter)
203 list_add_tail(&counter->list_entry, &ctx->counter_list);
204 else {
205 list_add_tail(&counter->list_entry, &group_leader->sibling_list);
206 group_leader->nr_siblings++;
207 }
208
209 list_add_rcu(&counter->event_entry, &ctx->event_list);
210 ctx->nr_counters++;
211 }
212
213 /*
214 * Remove a counter from the lists for its context.
215 * Must be called with ctx->mutex and ctx->lock held.
216 */
217 static void
218 list_del_counter(struct perf_counter *counter, struct perf_counter_context *ctx)
219 {
220 struct perf_counter *sibling, *tmp;
221
222 if (list_empty(&counter->list_entry))
223 return;
224 ctx->nr_counters--;
225
226 list_del_init(&counter->list_entry);
227 list_del_rcu(&counter->event_entry);
228
229 if (counter->group_leader != counter)
230 counter->group_leader->nr_siblings--;
231
232 /*
233 * If this was a group counter with sibling counters then
234 * upgrade the siblings to singleton counters by adding them
235 * to the context list directly:
236 */
237 list_for_each_entry_safe(sibling, tmp,
238 &counter->sibling_list, list_entry) {
239
240 list_move_tail(&sibling->list_entry, &ctx->counter_list);
241 sibling->group_leader = sibling;
242 }
243 }
244
245 static void
246 counter_sched_out(struct perf_counter *counter,
247 struct perf_cpu_context *cpuctx,
248 struct perf_counter_context *ctx)
249 {
250 if (counter->state != PERF_COUNTER_STATE_ACTIVE)
251 return;
252
253 counter->state = PERF_COUNTER_STATE_INACTIVE;
254 counter->tstamp_stopped = ctx->time;
255 counter->pmu->disable(counter);
256 counter->oncpu = -1;
257
258 if (!is_software_counter(counter))
259 cpuctx->active_oncpu--;
260 ctx->nr_active--;
261 if (counter->hw_event.exclusive || !cpuctx->active_oncpu)
262 cpuctx->exclusive = 0;
263 }
264
265 static void
266 group_sched_out(struct perf_counter *group_counter,
267 struct perf_cpu_context *cpuctx,
268 struct perf_counter_context *ctx)
269 {
270 struct perf_counter *counter;
271
272 if (group_counter->state != PERF_COUNTER_STATE_ACTIVE)
273 return;
274
275 counter_sched_out(group_counter, cpuctx, ctx);
276
277 /*
278 * Schedule out siblings (if any):
279 */
280 list_for_each_entry(counter, &group_counter->sibling_list, list_entry)
281 counter_sched_out(counter, cpuctx, ctx);
282
283 if (group_counter->hw_event.exclusive)
284 cpuctx->exclusive = 0;
285 }
286
287 /*
288 * Cross CPU call to remove a performance counter
289 *
290 * We disable the counter on the hardware level first. After that we
291 * remove it from the context list.
292 */
293 static void __perf_counter_remove_from_context(void *info)
294 {
295 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
296 struct perf_counter *counter = info;
297 struct perf_counter_context *ctx = counter->ctx;
298
299 /*
300 * If this is a task context, we need to check whether it is
301 * the current task context of this cpu. If not it has been
302 * scheduled out before the smp call arrived.
303 */
304 if (ctx->task && cpuctx->task_ctx != ctx)
305 return;
306
307 spin_lock(&ctx->lock);
308 /*
309 * Protect the list operation against NMI by disabling the
310 * counters on a global level.
311 */
312 perf_disable();
313
314 counter_sched_out(counter, cpuctx, ctx);
315
316 list_del_counter(counter, ctx);
317
318 if (!ctx->task) {
319 /*
320 * Allow more per task counters with respect to the
321 * reservation:
322 */
323 cpuctx->max_pertask =
324 min(perf_max_counters - ctx->nr_counters,
325 perf_max_counters - perf_reserved_percpu);
326 }
327
328 perf_enable();
329 spin_unlock(&ctx->lock);
330 }
331
332
333 /*
334 * Remove the counter from a task's (or a CPU's) list of counters.
335 *
336 * Must be called with ctx->mutex held.
337 *
338 * CPU counters are removed with a smp call. For task counters we only
339 * call when the task is on a CPU.
340 *
341 * If counter->ctx is a cloned context, callers must make sure that
342 * every task struct that counter->ctx->task could possibly point to
343 * remains valid. This is OK when called from perf_release since
344 * that only calls us on the top-level context, which can't be a clone.
345 * When called from perf_counter_exit_task, it's OK because the
346 * context has been detached from its task.
347 */
348 static void perf_counter_remove_from_context(struct perf_counter *counter)
349 {
350 struct perf_counter_context *ctx = counter->ctx;
351 struct task_struct *task = ctx->task;
352
353 if (!task) {
354 /*
355 * Per cpu counters are removed via an smp call and
356 * the removal is always sucessful.
357 */
358 smp_call_function_single(counter->cpu,
359 __perf_counter_remove_from_context,
360 counter, 1);
361 return;
362 }
363
364 retry:
365 task_oncpu_function_call(task, __perf_counter_remove_from_context,
366 counter);
367
368 spin_lock_irq(&ctx->lock);
369 /*
370 * If the context is active we need to retry the smp call.
371 */
372 if (ctx->nr_active && !list_empty(&counter->list_entry)) {
373 spin_unlock_irq(&ctx->lock);
374 goto retry;
375 }
376
377 /*
378 * The lock prevents that this context is scheduled in so we
379 * can remove the counter safely, if the call above did not
380 * succeed.
381 */
382 if (!list_empty(&counter->list_entry)) {
383 list_del_counter(counter, ctx);
384 }
385 spin_unlock_irq(&ctx->lock);
386 }
387
388 static inline u64 perf_clock(void)
389 {
390 return cpu_clock(smp_processor_id());
391 }
392
393 /*
394 * Update the record of the current time in a context.
395 */
396 static void update_context_time(struct perf_counter_context *ctx)
397 {
398 u64 now = perf_clock();
399
400 ctx->time += now - ctx->timestamp;
401 ctx->timestamp = now;
402 }
403
404 /*
405 * Update the total_time_enabled and total_time_running fields for a counter.
406 */
407 static void update_counter_times(struct perf_counter *counter)
408 {
409 struct perf_counter_context *ctx = counter->ctx;
410 u64 run_end;
411
412 if (counter->state < PERF_COUNTER_STATE_INACTIVE)
413 return;
414
415 counter->total_time_enabled = ctx->time - counter->tstamp_enabled;
416
417 if (counter->state == PERF_COUNTER_STATE_INACTIVE)
418 run_end = counter->tstamp_stopped;
419 else
420 run_end = ctx->time;
421
422 counter->total_time_running = run_end - counter->tstamp_running;
423 }
424
425 /*
426 * Update total_time_enabled and total_time_running for all counters in a group.
427 */
428 static void update_group_times(struct perf_counter *leader)
429 {
430 struct perf_counter *counter;
431
432 update_counter_times(leader);
433 list_for_each_entry(counter, &leader->sibling_list, list_entry)
434 update_counter_times(counter);
435 }
436
437 /*
438 * Cross CPU call to disable a performance counter
439 */
440 static void __perf_counter_disable(void *info)
441 {
442 struct perf_counter *counter = info;
443 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
444 struct perf_counter_context *ctx = counter->ctx;
445
446 /*
447 * If this is a per-task counter, need to check whether this
448 * counter's task is the current task on this cpu.
449 */
450 if (ctx->task && cpuctx->task_ctx != ctx)
451 return;
452
453 spin_lock(&ctx->lock);
454
455 /*
456 * If the counter is on, turn it off.
457 * If it is in error state, leave it in error state.
458 */
459 if (counter->state >= PERF_COUNTER_STATE_INACTIVE) {
460 update_context_time(ctx);
461 update_counter_times(counter);
462 if (counter == counter->group_leader)
463 group_sched_out(counter, cpuctx, ctx);
464 else
465 counter_sched_out(counter, cpuctx, ctx);
466 counter->state = PERF_COUNTER_STATE_OFF;
467 }
468
469 spin_unlock(&ctx->lock);
470 }
471
472 /*
473 * Disable a counter.
474 *
475 * If counter->ctx is a cloned context, callers must make sure that
476 * every task struct that counter->ctx->task could possibly point to
477 * remains valid. This condition is satisifed when called through
478 * perf_counter_for_each_child or perf_counter_for_each because they
479 * hold the top-level counter's child_mutex, so any descendant that
480 * goes to exit will block in sync_child_counter.
481 * When called from perf_pending_counter it's OK because counter->ctx
482 * is the current context on this CPU and preemption is disabled,
483 * hence we can't get into perf_counter_task_sched_out for this context.
484 */
485 static void perf_counter_disable(struct perf_counter *counter)
486 {
487 struct perf_counter_context *ctx = counter->ctx;
488 struct task_struct *task = ctx->task;
489
490 if (!task) {
491 /*
492 * Disable the counter on the cpu that it's on
493 */
494 smp_call_function_single(counter->cpu, __perf_counter_disable,
495 counter, 1);
496 return;
497 }
498
499 retry:
500 task_oncpu_function_call(task, __perf_counter_disable, counter);
501
502 spin_lock_irq(&ctx->lock);
503 /*
504 * If the counter is still active, we need to retry the cross-call.
505 */
506 if (counter->state == PERF_COUNTER_STATE_ACTIVE) {
507 spin_unlock_irq(&ctx->lock);
508 goto retry;
509 }
510
511 /*
512 * Since we have the lock this context can't be scheduled
513 * in, so we can change the state safely.
514 */
515 if (counter->state == PERF_COUNTER_STATE_INACTIVE) {
516 update_counter_times(counter);
517 counter->state = PERF_COUNTER_STATE_OFF;
518 }
519
520 spin_unlock_irq(&ctx->lock);
521 }
522
523 static int
524 counter_sched_in(struct perf_counter *counter,
525 struct perf_cpu_context *cpuctx,
526 struct perf_counter_context *ctx,
527 int cpu)
528 {
529 if (counter->state <= PERF_COUNTER_STATE_OFF)
530 return 0;
531
532 counter->state = PERF_COUNTER_STATE_ACTIVE;
533 counter->oncpu = cpu; /* TODO: put 'cpu' into cpuctx->cpu */
534 /*
535 * The new state must be visible before we turn it on in the hardware:
536 */
537 smp_wmb();
538
539 if (counter->pmu->enable(counter)) {
540 counter->state = PERF_COUNTER_STATE_INACTIVE;
541 counter->oncpu = -1;
542 return -EAGAIN;
543 }
544
545 counter->tstamp_running += ctx->time - counter->tstamp_stopped;
546
547 if (!is_software_counter(counter))
548 cpuctx->active_oncpu++;
549 ctx->nr_active++;
550
551 if (counter->hw_event.exclusive)
552 cpuctx->exclusive = 1;
553
554 return 0;
555 }
556
557 static int
558 group_sched_in(struct perf_counter *group_counter,
559 struct perf_cpu_context *cpuctx,
560 struct perf_counter_context *ctx,
561 int cpu)
562 {
563 struct perf_counter *counter, *partial_group;
564 int ret;
565
566 if (group_counter->state == PERF_COUNTER_STATE_OFF)
567 return 0;
568
569 ret = hw_perf_group_sched_in(group_counter, cpuctx, ctx, cpu);
570 if (ret)
571 return ret < 0 ? ret : 0;
572
573 group_counter->prev_state = group_counter->state;
574 if (counter_sched_in(group_counter, cpuctx, ctx, cpu))
575 return -EAGAIN;
576
577 /*
578 * Schedule in siblings as one group (if any):
579 */
580 list_for_each_entry(counter, &group_counter->sibling_list, list_entry) {
581 counter->prev_state = counter->state;
582 if (counter_sched_in(counter, cpuctx, ctx, cpu)) {
583 partial_group = counter;
584 goto group_error;
585 }
586 }
587
588 return 0;
589
590 group_error:
591 /*
592 * Groups can be scheduled in as one unit only, so undo any
593 * partial group before returning:
594 */
595 list_for_each_entry(counter, &group_counter->sibling_list, list_entry) {
596 if (counter == partial_group)
597 break;
598 counter_sched_out(counter, cpuctx, ctx);
599 }
600 counter_sched_out(group_counter, cpuctx, ctx);
601
602 return -EAGAIN;
603 }
604
605 /*
606 * Return 1 for a group consisting entirely of software counters,
607 * 0 if the group contains any hardware counters.
608 */
609 static int is_software_only_group(struct perf_counter *leader)
610 {
611 struct perf_counter *counter;
612
613 if (!is_software_counter(leader))
614 return 0;
615
616 list_for_each_entry(counter, &leader->sibling_list, list_entry)
617 if (!is_software_counter(counter))
618 return 0;
619
620 return 1;
621 }
622
623 /*
624 * Work out whether we can put this counter group on the CPU now.
625 */
626 static int group_can_go_on(struct perf_counter *counter,
627 struct perf_cpu_context *cpuctx,
628 int can_add_hw)
629 {
630 /*
631 * Groups consisting entirely of software counters can always go on.
632 */
633 if (is_software_only_group(counter))
634 return 1;
635 /*
636 * If an exclusive group is already on, no other hardware
637 * counters can go on.
638 */
639 if (cpuctx->exclusive)
640 return 0;
641 /*
642 * If this group is exclusive and there are already
643 * counters on the CPU, it can't go on.
644 */
645 if (counter->hw_event.exclusive && cpuctx->active_oncpu)
646 return 0;
647 /*
648 * Otherwise, try to add it if all previous groups were able
649 * to go on.
650 */
651 return can_add_hw;
652 }
653
654 static void add_counter_to_ctx(struct perf_counter *counter,
655 struct perf_counter_context *ctx)
656 {
657 list_add_counter(counter, ctx);
658 counter->prev_state = PERF_COUNTER_STATE_OFF;
659 counter->tstamp_enabled = ctx->time;
660 counter->tstamp_running = ctx->time;
661 counter->tstamp_stopped = ctx->time;
662 }
663
664 /*
665 * Cross CPU call to install and enable a performance counter
666 *
667 * Must be called with ctx->mutex held
668 */
669 static void __perf_install_in_context(void *info)
670 {
671 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
672 struct perf_counter *counter = info;
673 struct perf_counter_context *ctx = counter->ctx;
674 struct perf_counter *leader = counter->group_leader;
675 int cpu = smp_processor_id();
676 int err;
677
678 /*
679 * If this is a task context, we need to check whether it is
680 * the current task context of this cpu. If not it has been
681 * scheduled out before the smp call arrived.
682 * Or possibly this is the right context but it isn't
683 * on this cpu because it had no counters.
684 */
685 if (ctx->task && cpuctx->task_ctx != ctx) {
686 if (cpuctx->task_ctx || ctx->task != current)
687 return;
688 cpuctx->task_ctx = ctx;
689 }
690
691 spin_lock(&ctx->lock);
692 ctx->is_active = 1;
693 update_context_time(ctx);
694
695 /*
696 * Protect the list operation against NMI by disabling the
697 * counters on a global level. NOP for non NMI based counters.
698 */
699 perf_disable();
700
701 add_counter_to_ctx(counter, ctx);
702
703 /*
704 * Don't put the counter on if it is disabled or if
705 * it is in a group and the group isn't on.
706 */
707 if (counter->state != PERF_COUNTER_STATE_INACTIVE ||
708 (leader != counter && leader->state != PERF_COUNTER_STATE_ACTIVE))
709 goto unlock;
710
711 /*
712 * An exclusive counter can't go on if there are already active
713 * hardware counters, and no hardware counter can go on if there
714 * is already an exclusive counter on.
715 */
716 if (!group_can_go_on(counter, cpuctx, 1))
717 err = -EEXIST;
718 else
719 err = counter_sched_in(counter, cpuctx, ctx, cpu);
720
721 if (err) {
722 /*
723 * This counter couldn't go on. If it is in a group
724 * then we have to pull the whole group off.
725 * If the counter group is pinned then put it in error state.
726 */
727 if (leader != counter)
728 group_sched_out(leader, cpuctx, ctx);
729 if (leader->hw_event.pinned) {
730 update_group_times(leader);
731 leader->state = PERF_COUNTER_STATE_ERROR;
732 }
733 }
734
735 if (!err && !ctx->task && cpuctx->max_pertask)
736 cpuctx->max_pertask--;
737
738 unlock:
739 perf_enable();
740
741 spin_unlock(&ctx->lock);
742 }
743
744 /*
745 * Attach a performance counter to a context
746 *
747 * First we add the counter to the list with the hardware enable bit
748 * in counter->hw_config cleared.
749 *
750 * If the counter is attached to a task which is on a CPU we use a smp
751 * call to enable it in the task context. The task might have been
752 * scheduled away, but we check this in the smp call again.
753 *
754 * Must be called with ctx->mutex held.
755 */
756 static void
757 perf_install_in_context(struct perf_counter_context *ctx,
758 struct perf_counter *counter,
759 int cpu)
760 {
761 struct task_struct *task = ctx->task;
762
763 if (!task) {
764 /*
765 * Per cpu counters are installed via an smp call and
766 * the install is always sucessful.
767 */
768 smp_call_function_single(cpu, __perf_install_in_context,
769 counter, 1);
770 return;
771 }
772
773 retry:
774 task_oncpu_function_call(task, __perf_install_in_context,
775 counter);
776
777 spin_lock_irq(&ctx->lock);
778 /*
779 * we need to retry the smp call.
780 */
781 if (ctx->is_active && list_empty(&counter->list_entry)) {
782 spin_unlock_irq(&ctx->lock);
783 goto retry;
784 }
785
786 /*
787 * The lock prevents that this context is scheduled in so we
788 * can add the counter safely, if it the call above did not
789 * succeed.
790 */
791 if (list_empty(&counter->list_entry))
792 add_counter_to_ctx(counter, ctx);
793 spin_unlock_irq(&ctx->lock);
794 }
795
796 /*
797 * Cross CPU call to enable a performance counter
798 */
799 static void __perf_counter_enable(void *info)
800 {
801 struct perf_counter *counter = info;
802 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
803 struct perf_counter_context *ctx = counter->ctx;
804 struct perf_counter *leader = counter->group_leader;
805 int err;
806
807 /*
808 * If this is a per-task counter, need to check whether this
809 * counter's task is the current task on this cpu.
810 */
811 if (ctx->task && cpuctx->task_ctx != ctx) {
812 if (cpuctx->task_ctx || ctx->task != current)
813 return;
814 cpuctx->task_ctx = ctx;
815 }
816
817 spin_lock(&ctx->lock);
818 ctx->is_active = 1;
819 update_context_time(ctx);
820
821 counter->prev_state = counter->state;
822 if (counter->state >= PERF_COUNTER_STATE_INACTIVE)
823 goto unlock;
824 counter->state = PERF_COUNTER_STATE_INACTIVE;
825 counter->tstamp_enabled = ctx->time - counter->total_time_enabled;
826
827 /*
828 * If the counter is in a group and isn't the group leader,
829 * then don't put it on unless the group is on.
830 */
831 if (leader != counter && leader->state != PERF_COUNTER_STATE_ACTIVE)
832 goto unlock;
833
834 if (!group_can_go_on(counter, cpuctx, 1)) {
835 err = -EEXIST;
836 } else {
837 perf_disable();
838 if (counter == leader)
839 err = group_sched_in(counter, cpuctx, ctx,
840 smp_processor_id());
841 else
842 err = counter_sched_in(counter, cpuctx, ctx,
843 smp_processor_id());
844 perf_enable();
845 }
846
847 if (err) {
848 /*
849 * If this counter can't go on and it's part of a
850 * group, then the whole group has to come off.
851 */
852 if (leader != counter)
853 group_sched_out(leader, cpuctx, ctx);
854 if (leader->hw_event.pinned) {
855 update_group_times(leader);
856 leader->state = PERF_COUNTER_STATE_ERROR;
857 }
858 }
859
860 unlock:
861 spin_unlock(&ctx->lock);
862 }
863
864 /*
865 * Enable a counter.
866 *
867 * If counter->ctx is a cloned context, callers must make sure that
868 * every task struct that counter->ctx->task could possibly point to
869 * remains valid. This condition is satisfied when called through
870 * perf_counter_for_each_child or perf_counter_for_each as described
871 * for perf_counter_disable.
872 */
873 static void perf_counter_enable(struct perf_counter *counter)
874 {
875 struct perf_counter_context *ctx = counter->ctx;
876 struct task_struct *task = ctx->task;
877
878 if (!task) {
879 /*
880 * Enable the counter on the cpu that it's on
881 */
882 smp_call_function_single(counter->cpu, __perf_counter_enable,
883 counter, 1);
884 return;
885 }
886
887 spin_lock_irq(&ctx->lock);
888 if (counter->state >= PERF_COUNTER_STATE_INACTIVE)
889 goto out;
890
891 /*
892 * If the counter is in error state, clear that first.
893 * That way, if we see the counter in error state below, we
894 * know that it has gone back into error state, as distinct
895 * from the task having been scheduled away before the
896 * cross-call arrived.
897 */
898 if (counter->state == PERF_COUNTER_STATE_ERROR)
899 counter->state = PERF_COUNTER_STATE_OFF;
900
901 retry:
902 spin_unlock_irq(&ctx->lock);
903 task_oncpu_function_call(task, __perf_counter_enable, counter);
904
905 spin_lock_irq(&ctx->lock);
906
907 /*
908 * If the context is active and the counter is still off,
909 * we need to retry the cross-call.
910 */
911 if (ctx->is_active && counter->state == PERF_COUNTER_STATE_OFF)
912 goto retry;
913
914 /*
915 * Since we have the lock this context can't be scheduled
916 * in, so we can change the state safely.
917 */
918 if (counter->state == PERF_COUNTER_STATE_OFF) {
919 counter->state = PERF_COUNTER_STATE_INACTIVE;
920 counter->tstamp_enabled =
921 ctx->time - counter->total_time_enabled;
922 }
923 out:
924 spin_unlock_irq(&ctx->lock);
925 }
926
927 static int perf_counter_refresh(struct perf_counter *counter, int refresh)
928 {
929 /*
930 * not supported on inherited counters
931 */
932 if (counter->hw_event.inherit)
933 return -EINVAL;
934
935 atomic_add(refresh, &counter->event_limit);
936 perf_counter_enable(counter);
937
938 return 0;
939 }
940
941 void __perf_counter_sched_out(struct perf_counter_context *ctx,
942 struct perf_cpu_context *cpuctx)
943 {
944 struct perf_counter *counter;
945
946 spin_lock(&ctx->lock);
947 ctx->is_active = 0;
948 if (likely(!ctx->nr_counters))
949 goto out;
950 update_context_time(ctx);
951
952 perf_disable();
953 if (ctx->nr_active) {
954 list_for_each_entry(counter, &ctx->counter_list, list_entry) {
955 if (counter != counter->group_leader)
956 counter_sched_out(counter, cpuctx, ctx);
957 else
958 group_sched_out(counter, cpuctx, ctx);
959 }
960 }
961 perf_enable();
962 out:
963 spin_unlock(&ctx->lock);
964 }
965
966 /*
967 * Test whether two contexts are equivalent, i.e. whether they
968 * have both been cloned from the same version of the same context
969 * and they both have the same number of enabled counters.
970 * If the number of enabled counters is the same, then the set
971 * of enabled counters should be the same, because these are both
972 * inherited contexts, therefore we can't access individual counters
973 * in them directly with an fd; we can only enable/disable all
974 * counters via prctl, or enable/disable all counters in a family
975 * via ioctl, which will have the same effect on both contexts.
976 */
977 static int context_equiv(struct perf_counter_context *ctx1,
978 struct perf_counter_context *ctx2)
979 {
980 return ctx1->parent_ctx && ctx1->parent_ctx == ctx2->parent_ctx
981 && ctx1->parent_gen == ctx2->parent_gen
982 && !ctx1->pin_count && !ctx2->pin_count;
983 }
984
985 /*
986 * Called from scheduler to remove the counters of the current task,
987 * with interrupts disabled.
988 *
989 * We stop each counter and update the counter value in counter->count.
990 *
991 * This does not protect us against NMI, but disable()
992 * sets the disabled bit in the control field of counter _before_
993 * accessing the counter control register. If a NMI hits, then it will
994 * not restart the counter.
995 */
996 void perf_counter_task_sched_out(struct task_struct *task,
997 struct task_struct *next, int cpu)
998 {
999 struct perf_cpu_context *cpuctx = &per_cpu(perf_cpu_context, cpu);
1000 struct perf_counter_context *ctx = task->perf_counter_ctxp;
1001 struct perf_counter_context *next_ctx;
1002 struct perf_counter_context *parent;
1003 struct pt_regs *regs;
1004 int do_switch = 1;
1005
1006 regs = task_pt_regs(task);
1007 perf_swcounter_event(PERF_COUNT_CONTEXT_SWITCHES, 1, 1, regs, 0);
1008
1009 if (likely(!ctx || !cpuctx->task_ctx))
1010 return;
1011
1012 update_context_time(ctx);
1013
1014 rcu_read_lock();
1015 parent = rcu_dereference(ctx->parent_ctx);
1016 next_ctx = next->perf_counter_ctxp;
1017 if (parent && next_ctx &&
1018 rcu_dereference(next_ctx->parent_ctx) == parent) {
1019 /*
1020 * Looks like the two contexts are clones, so we might be
1021 * able to optimize the context switch. We lock both
1022 * contexts and check that they are clones under the
1023 * lock (including re-checking that neither has been
1024 * uncloned in the meantime). It doesn't matter which
1025 * order we take the locks because no other cpu could
1026 * be trying to lock both of these tasks.
1027 */
1028 spin_lock(&ctx->lock);
1029 spin_lock_nested(&next_ctx->lock, SINGLE_DEPTH_NESTING);
1030 if (context_equiv(ctx, next_ctx)) {
1031 /*
1032 * XXX do we need a memory barrier of sorts
1033 * wrt to rcu_dereference() of perf_counter_ctxp
1034 */
1035 task->perf_counter_ctxp = next_ctx;
1036 next->perf_counter_ctxp = ctx;
1037 ctx->task = next;
1038 next_ctx->task = task;
1039 do_switch = 0;
1040 }
1041 spin_unlock(&next_ctx->lock);
1042 spin_unlock(&ctx->lock);
1043 }
1044 rcu_read_unlock();
1045
1046 if (do_switch) {
1047 __perf_counter_sched_out(ctx, cpuctx);
1048 cpuctx->task_ctx = NULL;
1049 }
1050 }
1051
1052 /*
1053 * Called with IRQs disabled
1054 */
1055 static void __perf_counter_task_sched_out(struct perf_counter_context *ctx)
1056 {
1057 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
1058
1059 if (!cpuctx->task_ctx)
1060 return;
1061
1062 if (WARN_ON_ONCE(ctx != cpuctx->task_ctx))
1063 return;
1064
1065 __perf_counter_sched_out(ctx, cpuctx);
1066 cpuctx->task_ctx = NULL;
1067 }
1068
1069 /*
1070 * Called with IRQs disabled
1071 */
1072 static void perf_counter_cpu_sched_out(struct perf_cpu_context *cpuctx)
1073 {
1074 __perf_counter_sched_out(&cpuctx->ctx, cpuctx);
1075 }
1076
1077 static void
1078 __perf_counter_sched_in(struct perf_counter_context *ctx,
1079 struct perf_cpu_context *cpuctx, int cpu)
1080 {
1081 struct perf_counter *counter;
1082 int can_add_hw = 1;
1083
1084 spin_lock(&ctx->lock);
1085 ctx->is_active = 1;
1086 if (likely(!ctx->nr_counters))
1087 goto out;
1088
1089 ctx->timestamp = perf_clock();
1090
1091 perf_disable();
1092
1093 /*
1094 * First go through the list and put on any pinned groups
1095 * in order to give them the best chance of going on.
1096 */
1097 list_for_each_entry(counter, &ctx->counter_list, list_entry) {
1098 if (counter->state <= PERF_COUNTER_STATE_OFF ||
1099 !counter->hw_event.pinned)
1100 continue;
1101 if (counter->cpu != -1 && counter->cpu != cpu)
1102 continue;
1103
1104 if (counter != counter->group_leader)
1105 counter_sched_in(counter, cpuctx, ctx, cpu);
1106 else {
1107 if (group_can_go_on(counter, cpuctx, 1))
1108 group_sched_in(counter, cpuctx, ctx, cpu);
1109 }
1110
1111 /*
1112 * If this pinned group hasn't been scheduled,
1113 * put it in error state.
1114 */
1115 if (counter->state == PERF_COUNTER_STATE_INACTIVE) {
1116 update_group_times(counter);
1117 counter->state = PERF_COUNTER_STATE_ERROR;
1118 }
1119 }
1120
1121 list_for_each_entry(counter, &ctx->counter_list, list_entry) {
1122 /*
1123 * Ignore counters in OFF or ERROR state, and
1124 * ignore pinned counters since we did them already.
1125 */
1126 if (counter->state <= PERF_COUNTER_STATE_OFF ||
1127 counter->hw_event.pinned)
1128 continue;
1129
1130 /*
1131 * Listen to the 'cpu' scheduling filter constraint
1132 * of counters:
1133 */
1134 if (counter->cpu != -1 && counter->cpu != cpu)
1135 continue;
1136
1137 if (counter != counter->group_leader) {
1138 if (counter_sched_in(counter, cpuctx, ctx, cpu))
1139 can_add_hw = 0;
1140 } else {
1141 if (group_can_go_on(counter, cpuctx, can_add_hw)) {
1142 if (group_sched_in(counter, cpuctx, ctx, cpu))
1143 can_add_hw = 0;
1144 }
1145 }
1146 }
1147 perf_enable();
1148 out:
1149 spin_unlock(&ctx->lock);
1150 }
1151
1152 /*
1153 * Called from scheduler to add the counters of the current task
1154 * with interrupts disabled.
1155 *
1156 * We restore the counter value and then enable it.
1157 *
1158 * This does not protect us against NMI, but enable()
1159 * sets the enabled bit in the control field of counter _before_
1160 * accessing the counter control register. If a NMI hits, then it will
1161 * keep the counter running.
1162 */
1163 void perf_counter_task_sched_in(struct task_struct *task, int cpu)
1164 {
1165 struct perf_cpu_context *cpuctx = &per_cpu(perf_cpu_context, cpu);
1166 struct perf_counter_context *ctx = task->perf_counter_ctxp;
1167
1168 if (likely(!ctx))
1169 return;
1170 if (cpuctx->task_ctx == ctx)
1171 return;
1172 __perf_counter_sched_in(ctx, cpuctx, cpu);
1173 cpuctx->task_ctx = ctx;
1174 }
1175
1176 static void perf_counter_cpu_sched_in(struct perf_cpu_context *cpuctx, int cpu)
1177 {
1178 struct perf_counter_context *ctx = &cpuctx->ctx;
1179
1180 __perf_counter_sched_in(ctx, cpuctx, cpu);
1181 }
1182
1183 #define MAX_INTERRUPTS (~0ULL)
1184
1185 static void perf_log_throttle(struct perf_counter *counter, int enable);
1186 static void perf_log_period(struct perf_counter *counter, u64 period);
1187
1188 static void perf_adjust_freq(struct perf_counter_context *ctx)
1189 {
1190 struct perf_counter *counter;
1191 u64 interrupts, irq_period;
1192 u64 events, period;
1193 s64 delta;
1194
1195 spin_lock(&ctx->lock);
1196 list_for_each_entry(counter, &ctx->counter_list, list_entry) {
1197 if (counter->state != PERF_COUNTER_STATE_ACTIVE)
1198 continue;
1199
1200 interrupts = counter->hw.interrupts;
1201 counter->hw.interrupts = 0;
1202
1203 if (interrupts == MAX_INTERRUPTS) {
1204 perf_log_throttle(counter, 1);
1205 counter->pmu->unthrottle(counter);
1206 interrupts = 2*sysctl_perf_counter_limit/HZ;
1207 }
1208
1209 if (!counter->hw_event.freq || !counter->hw_event.irq_freq)
1210 continue;
1211
1212 events = HZ * interrupts * counter->hw.irq_period;
1213 period = div64_u64(events, counter->hw_event.irq_freq);
1214
1215 delta = (s64)(1 + period - counter->hw.irq_period);
1216 delta >>= 1;
1217
1218 irq_period = counter->hw.irq_period + delta;
1219
1220 if (!irq_period)
1221 irq_period = 1;
1222
1223 perf_log_period(counter, irq_period);
1224
1225 counter->hw.irq_period = irq_period;
1226 }
1227 spin_unlock(&ctx->lock);
1228 }
1229
1230 /*
1231 * Round-robin a context's counters:
1232 */
1233 static void rotate_ctx(struct perf_counter_context *ctx)
1234 {
1235 struct perf_counter *counter;
1236
1237 if (!ctx->nr_counters)
1238 return;
1239
1240 spin_lock(&ctx->lock);
1241 /*
1242 * Rotate the first entry last (works just fine for group counters too):
1243 */
1244 perf_disable();
1245 list_for_each_entry(counter, &ctx->counter_list, list_entry) {
1246 list_move_tail(&counter->list_entry, &ctx->counter_list);
1247 break;
1248 }
1249 perf_enable();
1250
1251 spin_unlock(&ctx->lock);
1252 }
1253
1254 void perf_counter_task_tick(struct task_struct *curr, int cpu)
1255 {
1256 struct perf_cpu_context *cpuctx;
1257 struct perf_counter_context *ctx;
1258
1259 if (!atomic_read(&nr_counters))
1260 return;
1261
1262 cpuctx = &per_cpu(perf_cpu_context, cpu);
1263 ctx = curr->perf_counter_ctxp;
1264
1265 perf_adjust_freq(&cpuctx->ctx);
1266 if (ctx)
1267 perf_adjust_freq(ctx);
1268
1269 perf_counter_cpu_sched_out(cpuctx);
1270 if (ctx)
1271 __perf_counter_task_sched_out(ctx);
1272
1273 rotate_ctx(&cpuctx->ctx);
1274 if (ctx)
1275 rotate_ctx(ctx);
1276
1277 perf_counter_cpu_sched_in(cpuctx, cpu);
1278 if (ctx)
1279 perf_counter_task_sched_in(curr, cpu);
1280 }
1281
1282 /*
1283 * Cross CPU call to read the hardware counter
1284 */
1285 static void __read(void *info)
1286 {
1287 struct perf_counter *counter = info;
1288 struct perf_counter_context *ctx = counter->ctx;
1289 unsigned long flags;
1290
1291 local_irq_save(flags);
1292 if (ctx->is_active)
1293 update_context_time(ctx);
1294 counter->pmu->read(counter);
1295 update_counter_times(counter);
1296 local_irq_restore(flags);
1297 }
1298
1299 static u64 perf_counter_read(struct perf_counter *counter)
1300 {
1301 /*
1302 * If counter is enabled and currently active on a CPU, update the
1303 * value in the counter structure:
1304 */
1305 if (counter->state == PERF_COUNTER_STATE_ACTIVE) {
1306 smp_call_function_single(counter->oncpu,
1307 __read, counter, 1);
1308 } else if (counter->state == PERF_COUNTER_STATE_INACTIVE) {
1309 update_counter_times(counter);
1310 }
1311
1312 return atomic64_read(&counter->count);
1313 }
1314
1315 /*
1316 * Initialize the perf_counter context in a task_struct:
1317 */
1318 static void
1319 __perf_counter_init_context(struct perf_counter_context *ctx,
1320 struct task_struct *task)
1321 {
1322 memset(ctx, 0, sizeof(*ctx));
1323 spin_lock_init(&ctx->lock);
1324 mutex_init(&ctx->mutex);
1325 INIT_LIST_HEAD(&ctx->counter_list);
1326 INIT_LIST_HEAD(&ctx->event_list);
1327 atomic_set(&ctx->refcount, 1);
1328 ctx->task = task;
1329 }
1330
1331 static struct perf_counter_context *find_get_context(pid_t pid, int cpu)
1332 {
1333 struct perf_cpu_context *cpuctx;
1334 struct perf_counter_context *ctx;
1335 struct perf_counter_context *parent_ctx;
1336 struct task_struct *task;
1337 unsigned long flags;
1338 int err;
1339
1340 /*
1341 * If cpu is not a wildcard then this is a percpu counter:
1342 */
1343 if (cpu != -1) {
1344 /* Must be root to operate on a CPU counter: */
1345 if (sysctl_perf_counter_priv && !capable(CAP_SYS_ADMIN))
1346 return ERR_PTR(-EACCES);
1347
1348 if (cpu < 0 || cpu > num_possible_cpus())
1349 return ERR_PTR(-EINVAL);
1350
1351 /*
1352 * We could be clever and allow to attach a counter to an
1353 * offline CPU and activate it when the CPU comes up, but
1354 * that's for later.
1355 */
1356 if (!cpu_isset(cpu, cpu_online_map))
1357 return ERR_PTR(-ENODEV);
1358
1359 cpuctx = &per_cpu(perf_cpu_context, cpu);
1360 ctx = &cpuctx->ctx;
1361 get_ctx(ctx);
1362
1363 return ctx;
1364 }
1365
1366 rcu_read_lock();
1367 if (!pid)
1368 task = current;
1369 else
1370 task = find_task_by_vpid(pid);
1371 if (task)
1372 get_task_struct(task);
1373 rcu_read_unlock();
1374
1375 if (!task)
1376 return ERR_PTR(-ESRCH);
1377
1378 /*
1379 * Can't attach counters to a dying task.
1380 */
1381 err = -ESRCH;
1382 if (task->flags & PF_EXITING)
1383 goto errout;
1384
1385 /* Reuse ptrace permission checks for now. */
1386 err = -EACCES;
1387 if (!ptrace_may_access(task, PTRACE_MODE_READ))
1388 goto errout;
1389
1390 retry:
1391 ctx = perf_lock_task_context(task, &flags);
1392 if (ctx) {
1393 parent_ctx = ctx->parent_ctx;
1394 if (parent_ctx) {
1395 put_ctx(parent_ctx);
1396 ctx->parent_ctx = NULL; /* no longer a clone */
1397 }
1398 /*
1399 * Get an extra reference before dropping the lock so that
1400 * this context won't get freed if the task exits.
1401 */
1402 get_ctx(ctx);
1403 spin_unlock_irqrestore(&ctx->lock, flags);
1404 }
1405
1406 if (!ctx) {
1407 ctx = kmalloc(sizeof(struct perf_counter_context), GFP_KERNEL);
1408 err = -ENOMEM;
1409 if (!ctx)
1410 goto errout;
1411 __perf_counter_init_context(ctx, task);
1412 get_ctx(ctx);
1413 if (cmpxchg(&task->perf_counter_ctxp, NULL, ctx)) {
1414 /*
1415 * We raced with some other task; use
1416 * the context they set.
1417 */
1418 kfree(ctx);
1419 goto retry;
1420 }
1421 get_task_struct(task);
1422 }
1423
1424 put_task_struct(task);
1425 return ctx;
1426
1427 errout:
1428 put_task_struct(task);
1429 return ERR_PTR(err);
1430 }
1431
1432 static void free_counter_rcu(struct rcu_head *head)
1433 {
1434 struct perf_counter *counter;
1435
1436 counter = container_of(head, struct perf_counter, rcu_head);
1437 kfree(counter);
1438 }
1439
1440 static void perf_pending_sync(struct perf_counter *counter);
1441
1442 static void free_counter(struct perf_counter *counter)
1443 {
1444 perf_pending_sync(counter);
1445
1446 atomic_dec(&nr_counters);
1447 if (counter->hw_event.mmap)
1448 atomic_dec(&nr_mmap_tracking);
1449 if (counter->hw_event.munmap)
1450 atomic_dec(&nr_munmap_tracking);
1451 if (counter->hw_event.comm)
1452 atomic_dec(&nr_comm_tracking);
1453
1454 if (counter->destroy)
1455 counter->destroy(counter);
1456
1457 put_ctx(counter->ctx);
1458 call_rcu(&counter->rcu_head, free_counter_rcu);
1459 }
1460
1461 /*
1462 * Called when the last reference to the file is gone.
1463 */
1464 static int perf_release(struct inode *inode, struct file *file)
1465 {
1466 struct perf_counter *counter = file->private_data;
1467 struct perf_counter_context *ctx = counter->ctx;
1468
1469 file->private_data = NULL;
1470
1471 WARN_ON_ONCE(ctx->parent_ctx);
1472 mutex_lock(&ctx->mutex);
1473 perf_counter_remove_from_context(counter);
1474 mutex_unlock(&ctx->mutex);
1475
1476 mutex_lock(&counter->owner->perf_counter_mutex);
1477 list_del_init(&counter->owner_entry);
1478 mutex_unlock(&counter->owner->perf_counter_mutex);
1479 put_task_struct(counter->owner);
1480
1481 free_counter(counter);
1482
1483 return 0;
1484 }
1485
1486 /*
1487 * Read the performance counter - simple non blocking version for now
1488 */
1489 static ssize_t
1490 perf_read_hw(struct perf_counter *counter, char __user *buf, size_t count)
1491 {
1492 u64 values[3];
1493 int n;
1494
1495 /*
1496 * Return end-of-file for a read on a counter that is in
1497 * error state (i.e. because it was pinned but it couldn't be
1498 * scheduled on to the CPU at some point).
1499 */
1500 if (counter->state == PERF_COUNTER_STATE_ERROR)
1501 return 0;
1502
1503 WARN_ON_ONCE(counter->ctx->parent_ctx);
1504 mutex_lock(&counter->child_mutex);
1505 values[0] = perf_counter_read(counter);
1506 n = 1;
1507 if (counter->hw_event.read_format & PERF_FORMAT_TOTAL_TIME_ENABLED)
1508 values[n++] = counter->total_time_enabled +
1509 atomic64_read(&counter->child_total_time_enabled);
1510 if (counter->hw_event.read_format & PERF_FORMAT_TOTAL_TIME_RUNNING)
1511 values[n++] = counter->total_time_running +
1512 atomic64_read(&counter->child_total_time_running);
1513 mutex_unlock(&counter->child_mutex);
1514
1515 if (count < n * sizeof(u64))
1516 return -EINVAL;
1517 count = n * sizeof(u64);
1518
1519 if (copy_to_user(buf, values, count))
1520 return -EFAULT;
1521
1522 return count;
1523 }
1524
1525 static ssize_t
1526 perf_read(struct file *file, char __user *buf, size_t count, loff_t *ppos)
1527 {
1528 struct perf_counter *counter = file->private_data;
1529
1530 return perf_read_hw(counter, buf, count);
1531 }
1532
1533 static unsigned int perf_poll(struct file *file, poll_table *wait)
1534 {
1535 struct perf_counter *counter = file->private_data;
1536 struct perf_mmap_data *data;
1537 unsigned int events = POLL_HUP;
1538
1539 rcu_read_lock();
1540 data = rcu_dereference(counter->data);
1541 if (data)
1542 events = atomic_xchg(&data->poll, 0);
1543 rcu_read_unlock();
1544
1545 poll_wait(file, &counter->waitq, wait);
1546
1547 return events;
1548 }
1549
1550 static void perf_counter_reset(struct perf_counter *counter)
1551 {
1552 (void)perf_counter_read(counter);
1553 atomic64_set(&counter->count, 0);
1554 perf_counter_update_userpage(counter);
1555 }
1556
1557 static void perf_counter_for_each_sibling(struct perf_counter *counter,
1558 void (*func)(struct perf_counter *))
1559 {
1560 struct perf_counter_context *ctx = counter->ctx;
1561 struct perf_counter *sibling;
1562
1563 WARN_ON_ONCE(ctx->parent_ctx);
1564 mutex_lock(&ctx->mutex);
1565 counter = counter->group_leader;
1566
1567 func(counter);
1568 list_for_each_entry(sibling, &counter->sibling_list, list_entry)
1569 func(sibling);
1570 mutex_unlock(&ctx->mutex);
1571 }
1572
1573 /*
1574 * Holding the top-level counter's child_mutex means that any
1575 * descendant process that has inherited this counter will block
1576 * in sync_child_counter if it goes to exit, thus satisfying the
1577 * task existence requirements of perf_counter_enable/disable.
1578 */
1579 static void perf_counter_for_each_child(struct perf_counter *counter,
1580 void (*func)(struct perf_counter *))
1581 {
1582 struct perf_counter *child;
1583
1584 WARN_ON_ONCE(counter->ctx->parent_ctx);
1585 mutex_lock(&counter->child_mutex);
1586 func(counter);
1587 list_for_each_entry(child, &counter->child_list, child_list)
1588 func(child);
1589 mutex_unlock(&counter->child_mutex);
1590 }
1591
1592 static void perf_counter_for_each(struct perf_counter *counter,
1593 void (*func)(struct perf_counter *))
1594 {
1595 struct perf_counter *child;
1596
1597 WARN_ON_ONCE(counter->ctx->parent_ctx);
1598 mutex_lock(&counter->child_mutex);
1599 perf_counter_for_each_sibling(counter, func);
1600 list_for_each_entry(child, &counter->child_list, child_list)
1601 perf_counter_for_each_sibling(child, func);
1602 mutex_unlock(&counter->child_mutex);
1603 }
1604
1605 static long perf_ioctl(struct file *file, unsigned int cmd, unsigned long arg)
1606 {
1607 struct perf_counter *counter = file->private_data;
1608 void (*func)(struct perf_counter *);
1609 u32 flags = arg;
1610
1611 switch (cmd) {
1612 case PERF_COUNTER_IOC_ENABLE:
1613 func = perf_counter_enable;
1614 break;
1615 case PERF_COUNTER_IOC_DISABLE:
1616 func = perf_counter_disable;
1617 break;
1618 case PERF_COUNTER_IOC_RESET:
1619 func = perf_counter_reset;
1620 break;
1621
1622 case PERF_COUNTER_IOC_REFRESH:
1623 return perf_counter_refresh(counter, arg);
1624 default:
1625 return -ENOTTY;
1626 }
1627
1628 if (flags & PERF_IOC_FLAG_GROUP)
1629 perf_counter_for_each(counter, func);
1630 else
1631 perf_counter_for_each_child(counter, func);
1632
1633 return 0;
1634 }
1635
1636 int perf_counter_task_enable(void)
1637 {
1638 struct perf_counter *counter;
1639
1640 mutex_lock(&current->perf_counter_mutex);
1641 list_for_each_entry(counter, &current->perf_counter_list, owner_entry)
1642 perf_counter_for_each_child(counter, perf_counter_enable);
1643 mutex_unlock(&current->perf_counter_mutex);
1644
1645 return 0;
1646 }
1647
1648 int perf_counter_task_disable(void)
1649 {
1650 struct perf_counter *counter;
1651
1652 mutex_lock(&current->perf_counter_mutex);
1653 list_for_each_entry(counter, &current->perf_counter_list, owner_entry)
1654 perf_counter_for_each_child(counter, perf_counter_disable);
1655 mutex_unlock(&current->perf_counter_mutex);
1656
1657 return 0;
1658 }
1659
1660 /*
1661 * Callers need to ensure there can be no nesting of this function, otherwise
1662 * the seqlock logic goes bad. We can not serialize this because the arch
1663 * code calls this from NMI context.
1664 */
1665 void perf_counter_update_userpage(struct perf_counter *counter)
1666 {
1667 struct perf_mmap_data *data;
1668 struct perf_counter_mmap_page *userpg;
1669
1670 rcu_read_lock();
1671 data = rcu_dereference(counter->data);
1672 if (!data)
1673 goto unlock;
1674
1675 userpg = data->user_page;
1676
1677 /*
1678 * Disable preemption so as to not let the corresponding user-space
1679 * spin too long if we get preempted.
1680 */
1681 preempt_disable();
1682 ++userpg->lock;
1683 barrier();
1684 userpg->index = counter->hw.idx;
1685 userpg->offset = atomic64_read(&counter->count);
1686 if (counter->state == PERF_COUNTER_STATE_ACTIVE)
1687 userpg->offset -= atomic64_read(&counter->hw.prev_count);
1688
1689 barrier();
1690 ++userpg->lock;
1691 preempt_enable();
1692 unlock:
1693 rcu_read_unlock();
1694 }
1695
1696 static int perf_mmap_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
1697 {
1698 struct perf_counter *counter = vma->vm_file->private_data;
1699 struct perf_mmap_data *data;
1700 int ret = VM_FAULT_SIGBUS;
1701
1702 rcu_read_lock();
1703 data = rcu_dereference(counter->data);
1704 if (!data)
1705 goto unlock;
1706
1707 if (vmf->pgoff == 0) {
1708 vmf->page = virt_to_page(data->user_page);
1709 } else {
1710 int nr = vmf->pgoff - 1;
1711
1712 if ((unsigned)nr > data->nr_pages)
1713 goto unlock;
1714
1715 vmf->page = virt_to_page(data->data_pages[nr]);
1716 }
1717 get_page(vmf->page);
1718 ret = 0;
1719 unlock:
1720 rcu_read_unlock();
1721
1722 return ret;
1723 }
1724
1725 static int perf_mmap_data_alloc(struct perf_counter *counter, int nr_pages)
1726 {
1727 struct perf_mmap_data *data;
1728 unsigned long size;
1729 int i;
1730
1731 WARN_ON(atomic_read(&counter->mmap_count));
1732
1733 size = sizeof(struct perf_mmap_data);
1734 size += nr_pages * sizeof(void *);
1735
1736 data = kzalloc(size, GFP_KERNEL);
1737 if (!data)
1738 goto fail;
1739
1740 data->user_page = (void *)get_zeroed_page(GFP_KERNEL);
1741 if (!data->user_page)
1742 goto fail_user_page;
1743
1744 for (i = 0; i < nr_pages; i++) {
1745 data->data_pages[i] = (void *)get_zeroed_page(GFP_KERNEL);
1746 if (!data->data_pages[i])
1747 goto fail_data_pages;
1748 }
1749
1750 data->nr_pages = nr_pages;
1751 atomic_set(&data->lock, -1);
1752
1753 rcu_assign_pointer(counter->data, data);
1754
1755 return 0;
1756
1757 fail_data_pages:
1758 for (i--; i >= 0; i--)
1759 free_page((unsigned long)data->data_pages[i]);
1760
1761 free_page((unsigned long)data->user_page);
1762
1763 fail_user_page:
1764 kfree(data);
1765
1766 fail:
1767 return -ENOMEM;
1768 }
1769
1770 static void __perf_mmap_data_free(struct rcu_head *rcu_head)
1771 {
1772 struct perf_mmap_data *data = container_of(rcu_head,
1773 struct perf_mmap_data, rcu_head);
1774 int i;
1775
1776 free_page((unsigned long)data->user_page);
1777 for (i = 0; i < data->nr_pages; i++)
1778 free_page((unsigned long)data->data_pages[i]);
1779 kfree(data);
1780 }
1781
1782 static void perf_mmap_data_free(struct perf_counter *counter)
1783 {
1784 struct perf_mmap_data *data = counter->data;
1785
1786 WARN_ON(atomic_read(&counter->mmap_count));
1787
1788 rcu_assign_pointer(counter->data, NULL);
1789 call_rcu(&data->rcu_head, __perf_mmap_data_free);
1790 }
1791
1792 static void perf_mmap_open(struct vm_area_struct *vma)
1793 {
1794 struct perf_counter *counter = vma->vm_file->private_data;
1795
1796 atomic_inc(&counter->mmap_count);
1797 }
1798
1799 static void perf_mmap_close(struct vm_area_struct *vma)
1800 {
1801 struct perf_counter *counter = vma->vm_file->private_data;
1802
1803 WARN_ON_ONCE(counter->ctx->parent_ctx);
1804 if (atomic_dec_and_mutex_lock(&counter->mmap_count,
1805 &counter->mmap_mutex)) {
1806 struct user_struct *user = current_user();
1807
1808 atomic_long_sub(counter->data->nr_pages + 1, &user->locked_vm);
1809 vma->vm_mm->locked_vm -= counter->data->nr_locked;
1810 perf_mmap_data_free(counter);
1811 mutex_unlock(&counter->mmap_mutex);
1812 }
1813 }
1814
1815 static struct vm_operations_struct perf_mmap_vmops = {
1816 .open = perf_mmap_open,
1817 .close = perf_mmap_close,
1818 .fault = perf_mmap_fault,
1819 };
1820
1821 static int perf_mmap(struct file *file, struct vm_area_struct *vma)
1822 {
1823 struct perf_counter *counter = file->private_data;
1824 struct user_struct *user = current_user();
1825 unsigned long vma_size;
1826 unsigned long nr_pages;
1827 unsigned long user_locked, user_lock_limit;
1828 unsigned long locked, lock_limit;
1829 long user_extra, extra;
1830 int ret = 0;
1831
1832 if (!(vma->vm_flags & VM_SHARED) || (vma->vm_flags & VM_WRITE))
1833 return -EINVAL;
1834
1835 vma_size = vma->vm_end - vma->vm_start;
1836 nr_pages = (vma_size / PAGE_SIZE) - 1;
1837
1838 /*
1839 * If we have data pages ensure they're a power-of-two number, so we
1840 * can do bitmasks instead of modulo.
1841 */
1842 if (nr_pages != 0 && !is_power_of_2(nr_pages))
1843 return -EINVAL;
1844
1845 if (vma_size != PAGE_SIZE * (1 + nr_pages))
1846 return -EINVAL;
1847
1848 if (vma->vm_pgoff != 0)
1849 return -EINVAL;
1850
1851 WARN_ON_ONCE(counter->ctx->parent_ctx);
1852 mutex_lock(&counter->mmap_mutex);
1853 if (atomic_inc_not_zero(&counter->mmap_count)) {
1854 if (nr_pages != counter->data->nr_pages)
1855 ret = -EINVAL;
1856 goto unlock;
1857 }
1858
1859 user_extra = nr_pages + 1;
1860 user_lock_limit = sysctl_perf_counter_mlock >> (PAGE_SHIFT - 10);
1861
1862 /*
1863 * Increase the limit linearly with more CPUs:
1864 */
1865 user_lock_limit *= num_online_cpus();
1866
1867 user_locked = atomic_long_read(&user->locked_vm) + user_extra;
1868
1869 extra = 0;
1870 if (user_locked > user_lock_limit)
1871 extra = user_locked - user_lock_limit;
1872
1873 lock_limit = current->signal->rlim[RLIMIT_MEMLOCK].rlim_cur;
1874 lock_limit >>= PAGE_SHIFT;
1875 locked = vma->vm_mm->locked_vm + extra;
1876
1877 if ((locked > lock_limit) && !capable(CAP_IPC_LOCK)) {
1878 ret = -EPERM;
1879 goto unlock;
1880 }
1881
1882 WARN_ON(counter->data);
1883 ret = perf_mmap_data_alloc(counter, nr_pages);
1884 if (ret)
1885 goto unlock;
1886
1887 atomic_set(&counter->mmap_count, 1);
1888 atomic_long_add(user_extra, &user->locked_vm);
1889 vma->vm_mm->locked_vm += extra;
1890 counter->data->nr_locked = extra;
1891 unlock:
1892 mutex_unlock(&counter->mmap_mutex);
1893
1894 vma->vm_flags &= ~VM_MAYWRITE;
1895 vma->vm_flags |= VM_RESERVED;
1896 vma->vm_ops = &perf_mmap_vmops;
1897
1898 return ret;
1899 }
1900
1901 static int perf_fasync(int fd, struct file *filp, int on)
1902 {
1903 struct perf_counter *counter = filp->private_data;
1904 struct inode *inode = filp->f_path.dentry->d_inode;
1905 int retval;
1906
1907 mutex_lock(&inode->i_mutex);
1908 retval = fasync_helper(fd, filp, on, &counter->fasync);
1909 mutex_unlock(&inode->i_mutex);
1910
1911 if (retval < 0)
1912 return retval;
1913
1914 return 0;
1915 }
1916
1917 static const struct file_operations perf_fops = {
1918 .release = perf_release,
1919 .read = perf_read,
1920 .poll = perf_poll,
1921 .unlocked_ioctl = perf_ioctl,
1922 .compat_ioctl = perf_ioctl,
1923 .mmap = perf_mmap,
1924 .fasync = perf_fasync,
1925 };
1926
1927 /*
1928 * Perf counter wakeup
1929 *
1930 * If there's data, ensure we set the poll() state and publish everything
1931 * to user-space before waking everybody up.
1932 */
1933
1934 void perf_counter_wakeup(struct perf_counter *counter)
1935 {
1936 wake_up_all(&counter->waitq);
1937
1938 if (counter->pending_kill) {
1939 kill_fasync(&counter->fasync, SIGIO, counter->pending_kill);
1940 counter->pending_kill = 0;
1941 }
1942 }
1943
1944 /*
1945 * Pending wakeups
1946 *
1947 * Handle the case where we need to wakeup up from NMI (or rq->lock) context.
1948 *
1949 * The NMI bit means we cannot possibly take locks. Therefore, maintain a
1950 * single linked list and use cmpxchg() to add entries lockless.
1951 */
1952
1953 static void perf_pending_counter(struct perf_pending_entry *entry)
1954 {
1955 struct perf_counter *counter = container_of(entry,
1956 struct perf_counter, pending);
1957
1958 if (counter->pending_disable) {
1959 counter->pending_disable = 0;
1960 perf_counter_disable(counter);
1961 }
1962
1963 if (counter->pending_wakeup) {
1964 counter->pending_wakeup = 0;
1965 perf_counter_wakeup(counter);
1966 }
1967 }
1968
1969 #define PENDING_TAIL ((struct perf_pending_entry *)-1UL)
1970
1971 static DEFINE_PER_CPU(struct perf_pending_entry *, perf_pending_head) = {
1972 PENDING_TAIL,
1973 };
1974
1975 static void perf_pending_queue(struct perf_pending_entry *entry,
1976 void (*func)(struct perf_pending_entry *))
1977 {
1978 struct perf_pending_entry **head;
1979
1980 if (cmpxchg(&entry->next, NULL, PENDING_TAIL) != NULL)
1981 return;
1982
1983 entry->func = func;
1984
1985 head = &get_cpu_var(perf_pending_head);
1986
1987 do {
1988 entry->next = *head;
1989 } while (cmpxchg(head, entry->next, entry) != entry->next);
1990
1991 set_perf_counter_pending();
1992
1993 put_cpu_var(perf_pending_head);
1994 }
1995
1996 static int __perf_pending_run(void)
1997 {
1998 struct perf_pending_entry *list;
1999 int nr = 0;
2000
2001 list = xchg(&__get_cpu_var(perf_pending_head), PENDING_TAIL);
2002 while (list != PENDING_TAIL) {
2003 void (*func)(struct perf_pending_entry *);
2004 struct perf_pending_entry *entry = list;
2005
2006 list = list->next;
2007
2008 func = entry->func;
2009 entry->next = NULL;
2010 /*
2011 * Ensure we observe the unqueue before we issue the wakeup,
2012 * so that we won't be waiting forever.
2013 * -- see perf_not_pending().
2014 */
2015 smp_wmb();
2016
2017 func(entry);
2018 nr++;
2019 }
2020
2021 return nr;
2022 }
2023
2024 static inline int perf_not_pending(struct perf_counter *counter)
2025 {
2026 /*
2027 * If we flush on whatever cpu we run, there is a chance we don't
2028 * need to wait.
2029 */
2030 get_cpu();
2031 __perf_pending_run();
2032 put_cpu();
2033
2034 /*
2035 * Ensure we see the proper queue state before going to sleep
2036 * so that we do not miss the wakeup. -- see perf_pending_handle()
2037 */
2038 smp_rmb();
2039 return counter->pending.next == NULL;
2040 }
2041
2042 static void perf_pending_sync(struct perf_counter *counter)
2043 {
2044 wait_event(counter->waitq, perf_not_pending(counter));
2045 }
2046
2047 void perf_counter_do_pending(void)
2048 {
2049 __perf_pending_run();
2050 }
2051
2052 /*
2053 * Callchain support -- arch specific
2054 */
2055
2056 __weak struct perf_callchain_entry *perf_callchain(struct pt_regs *regs)
2057 {
2058 return NULL;
2059 }
2060
2061 /*
2062 * Output
2063 */
2064
2065 struct perf_output_handle {
2066 struct perf_counter *counter;
2067 struct perf_mmap_data *data;
2068 unsigned int offset;
2069 unsigned int head;
2070 int nmi;
2071 int overflow;
2072 int locked;
2073 unsigned long flags;
2074 };
2075
2076 static void perf_output_wakeup(struct perf_output_handle *handle)
2077 {
2078 atomic_set(&handle->data->poll, POLL_IN);
2079
2080 if (handle->nmi) {
2081 handle->counter->pending_wakeup = 1;
2082 perf_pending_queue(&handle->counter->pending,
2083 perf_pending_counter);
2084 } else
2085 perf_counter_wakeup(handle->counter);
2086 }
2087
2088 /*
2089 * Curious locking construct.
2090 *
2091 * We need to ensure a later event doesn't publish a head when a former
2092 * event isn't done writing. However since we need to deal with NMIs we
2093 * cannot fully serialize things.
2094 *
2095 * What we do is serialize between CPUs so we only have to deal with NMI
2096 * nesting on a single CPU.
2097 *
2098 * We only publish the head (and generate a wakeup) when the outer-most
2099 * event completes.
2100 */
2101 static void perf_output_lock(struct perf_output_handle *handle)
2102 {
2103 struct perf_mmap_data *data = handle->data;
2104 int cpu;
2105
2106 handle->locked = 0;
2107
2108 local_irq_save(handle->flags);
2109 cpu = smp_processor_id();
2110
2111 if (in_nmi() && atomic_read(&data->lock) == cpu)
2112 return;
2113
2114 while (atomic_cmpxchg(&data->lock, -1, cpu) != -1)
2115 cpu_relax();
2116
2117 handle->locked = 1;
2118 }
2119
2120 static void perf_output_unlock(struct perf_output_handle *handle)
2121 {
2122 struct perf_mmap_data *data = handle->data;
2123 int head, cpu;
2124
2125 data->done_head = data->head;
2126
2127 if (!handle->locked)
2128 goto out;
2129
2130 again:
2131 /*
2132 * The xchg implies a full barrier that ensures all writes are done
2133 * before we publish the new head, matched by a rmb() in userspace when
2134 * reading this position.
2135 */
2136 while ((head = atomic_xchg(&data->done_head, 0)))
2137 data->user_page->data_head = head;
2138
2139 /*
2140 * NMI can happen here, which means we can miss a done_head update.
2141 */
2142
2143 cpu = atomic_xchg(&data->lock, -1);
2144 WARN_ON_ONCE(cpu != smp_processor_id());
2145
2146 /*
2147 * Therefore we have to validate we did not indeed do so.
2148 */
2149 if (unlikely(atomic_read(&data->done_head))) {
2150 /*
2151 * Since we had it locked, we can lock it again.
2152 */
2153 while (atomic_cmpxchg(&data->lock, -1, cpu) != -1)
2154 cpu_relax();
2155
2156 goto again;
2157 }
2158
2159 if (atomic_xchg(&data->wakeup, 0))
2160 perf_output_wakeup(handle);
2161 out:
2162 local_irq_restore(handle->flags);
2163 }
2164
2165 static int perf_output_begin(struct perf_output_handle *handle,
2166 struct perf_counter *counter, unsigned int size,
2167 int nmi, int overflow)
2168 {
2169 struct perf_mmap_data *data;
2170 unsigned int offset, head;
2171
2172 /*
2173 * For inherited counters we send all the output towards the parent.
2174 */
2175 if (counter->parent)
2176 counter = counter->parent;
2177
2178 rcu_read_lock();
2179 data = rcu_dereference(counter->data);
2180 if (!data)
2181 goto out;
2182
2183 handle->data = data;
2184 handle->counter = counter;
2185 handle->nmi = nmi;
2186 handle->overflow = overflow;
2187
2188 if (!data->nr_pages)
2189 goto fail;
2190
2191 perf_output_lock(handle);
2192
2193 do {
2194 offset = head = atomic_read(&data->head);
2195 head += size;
2196 } while (atomic_cmpxchg(&data->head, offset, head) != offset);
2197
2198 handle->offset = offset;
2199 handle->head = head;
2200
2201 if ((offset >> PAGE_SHIFT) != (head >> PAGE_SHIFT))
2202 atomic_set(&data->wakeup, 1);
2203
2204 return 0;
2205
2206 fail:
2207 perf_output_wakeup(handle);
2208 out:
2209 rcu_read_unlock();
2210
2211 return -ENOSPC;
2212 }
2213
2214 static void perf_output_copy(struct perf_output_handle *handle,
2215 void *buf, unsigned int len)
2216 {
2217 unsigned int pages_mask;
2218 unsigned int offset;
2219 unsigned int size;
2220 void **pages;
2221
2222 offset = handle->offset;
2223 pages_mask = handle->data->nr_pages - 1;
2224 pages = handle->data->data_pages;
2225
2226 do {
2227 unsigned int page_offset;
2228 int nr;
2229
2230 nr = (offset >> PAGE_SHIFT) & pages_mask;
2231 page_offset = offset & (PAGE_SIZE - 1);
2232 size = min_t(unsigned int, PAGE_SIZE - page_offset, len);
2233
2234 memcpy(pages[nr] + page_offset, buf, size);
2235
2236 len -= size;
2237 buf += size;
2238 offset += size;
2239 } while (len);
2240
2241 handle->offset = offset;
2242
2243 /*
2244 * Check we didn't copy past our reservation window, taking the
2245 * possible unsigned int wrap into account.
2246 */
2247 WARN_ON_ONCE(((int)(handle->head - handle->offset)) < 0);
2248 }
2249
2250 #define perf_output_put(handle, x) \
2251 perf_output_copy((handle), &(x), sizeof(x))
2252
2253 static void perf_output_end(struct perf_output_handle *handle)
2254 {
2255 struct perf_counter *counter = handle->counter;
2256 struct perf_mmap_data *data = handle->data;
2257
2258 int wakeup_events = counter->hw_event.wakeup_events;
2259
2260 if (handle->overflow && wakeup_events) {
2261 int events = atomic_inc_return(&data->events);
2262 if (events >= wakeup_events) {
2263 atomic_sub(wakeup_events, &data->events);
2264 atomic_set(&data->wakeup, 1);
2265 }
2266 }
2267
2268 perf_output_unlock(handle);
2269 rcu_read_unlock();
2270 }
2271
2272 static void perf_counter_output(struct perf_counter *counter,
2273 int nmi, struct pt_regs *regs, u64 addr)
2274 {
2275 int ret;
2276 u64 record_type = counter->hw_event.record_type;
2277 struct perf_output_handle handle;
2278 struct perf_event_header header;
2279 u64 ip;
2280 struct {
2281 u32 pid, tid;
2282 } tid_entry;
2283 struct {
2284 u64 event;
2285 u64 counter;
2286 } group_entry;
2287 struct perf_callchain_entry *callchain = NULL;
2288 int callchain_size = 0;
2289 u64 time;
2290 struct {
2291 u32 cpu, reserved;
2292 } cpu_entry;
2293
2294 header.type = 0;
2295 header.size = sizeof(header);
2296
2297 header.misc = PERF_EVENT_MISC_OVERFLOW;
2298 header.misc |= perf_misc_flags(regs);
2299
2300 if (record_type & PERF_RECORD_IP) {
2301 ip = perf_instruction_pointer(regs);
2302 header.type |= PERF_RECORD_IP;
2303 header.size += sizeof(ip);
2304 }
2305
2306 if (record_type & PERF_RECORD_TID) {
2307 /* namespace issues */
2308 tid_entry.pid = current->group_leader->pid;
2309 tid_entry.tid = current->pid;
2310
2311 header.type |= PERF_RECORD_TID;
2312 header.size += sizeof(tid_entry);
2313 }
2314
2315 if (record_type & PERF_RECORD_TIME) {
2316 /*
2317 * Maybe do better on x86 and provide cpu_clock_nmi()
2318 */
2319 time = sched_clock();
2320
2321 header.type |= PERF_RECORD_TIME;
2322 header.size += sizeof(u64);
2323 }
2324
2325 if (record_type & PERF_RECORD_ADDR) {
2326 header.type |= PERF_RECORD_ADDR;
2327 header.size += sizeof(u64);
2328 }
2329
2330 if (record_type & PERF_RECORD_CONFIG) {
2331 header.type |= PERF_RECORD_CONFIG;
2332 header.size += sizeof(u64);
2333 }
2334
2335 if (record_type & PERF_RECORD_CPU) {
2336 header.type |= PERF_RECORD_CPU;
2337 header.size += sizeof(cpu_entry);
2338
2339 cpu_entry.cpu = raw_smp_processor_id();
2340 }
2341
2342 if (record_type & PERF_RECORD_GROUP) {
2343 header.type |= PERF_RECORD_GROUP;
2344 header.size += sizeof(u64) +
2345 counter->nr_siblings * sizeof(group_entry);
2346 }
2347
2348 if (record_type & PERF_RECORD_CALLCHAIN) {
2349 callchain = perf_callchain(regs);
2350
2351 if (callchain) {
2352 callchain_size = (1 + callchain->nr) * sizeof(u64);
2353
2354 header.type |= PERF_RECORD_CALLCHAIN;
2355 header.size += callchain_size;
2356 }
2357 }
2358
2359 ret = perf_output_begin(&handle, counter, header.size, nmi, 1);
2360 if (ret)
2361 return;
2362
2363 perf_output_put(&handle, header);
2364
2365 if (record_type & PERF_RECORD_IP)
2366 perf_output_put(&handle, ip);
2367
2368 if (record_type & PERF_RECORD_TID)
2369 perf_output_put(&handle, tid_entry);
2370
2371 if (record_type & PERF_RECORD_TIME)
2372 perf_output_put(&handle, time);
2373
2374 if (record_type & PERF_RECORD_ADDR)
2375 perf_output_put(&handle, addr);
2376
2377 if (record_type & PERF_RECORD_CONFIG)
2378 perf_output_put(&handle, counter->hw_event.config);
2379
2380 if (record_type & PERF_RECORD_CPU)
2381 perf_output_put(&handle, cpu_entry);
2382
2383 /*
2384 * XXX PERF_RECORD_GROUP vs inherited counters seems difficult.
2385 */
2386 if (record_type & PERF_RECORD_GROUP) {
2387 struct perf_counter *leader, *sub;
2388 u64 nr = counter->nr_siblings;
2389
2390 perf_output_put(&handle, nr);
2391
2392 leader = counter->group_leader;
2393 list_for_each_entry(sub, &leader->sibling_list, list_entry) {
2394 if (sub != counter)
2395 sub->pmu->read(sub);
2396
2397 group_entry.event = sub->hw_event.config;
2398 group_entry.counter = atomic64_read(&sub->count);
2399
2400 perf_output_put(&handle, group_entry);
2401 }
2402 }
2403
2404 if (callchain)
2405 perf_output_copy(&handle, callchain, callchain_size);
2406
2407 perf_output_end(&handle);
2408 }
2409
2410 /*
2411 * comm tracking
2412 */
2413
2414 struct perf_comm_event {
2415 struct task_struct *task;
2416 char *comm;
2417 int comm_size;
2418
2419 struct {
2420 struct perf_event_header header;
2421
2422 u32 pid;
2423 u32 tid;
2424 } event;
2425 };
2426
2427 static void perf_counter_comm_output(struct perf_counter *counter,
2428 struct perf_comm_event *comm_event)
2429 {
2430 struct perf_output_handle handle;
2431 int size = comm_event->event.header.size;
2432 int ret = perf_output_begin(&handle, counter, size, 0, 0);
2433
2434 if (ret)
2435 return;
2436
2437 perf_output_put(&handle, comm_event->event);
2438 perf_output_copy(&handle, comm_event->comm,
2439 comm_event->comm_size);
2440 perf_output_end(&handle);
2441 }
2442
2443 static int perf_counter_comm_match(struct perf_counter *counter,
2444 struct perf_comm_event *comm_event)
2445 {
2446 if (counter->hw_event.comm &&
2447 comm_event->event.header.type == PERF_EVENT_COMM)
2448 return 1;
2449
2450 return 0;
2451 }
2452
2453 static void perf_counter_comm_ctx(struct perf_counter_context *ctx,
2454 struct perf_comm_event *comm_event)
2455 {
2456 struct perf_counter *counter;
2457
2458 if (system_state != SYSTEM_RUNNING || list_empty(&ctx->event_list))
2459 return;
2460
2461 rcu_read_lock();
2462 list_for_each_entry_rcu(counter, &ctx->event_list, event_entry) {
2463 if (perf_counter_comm_match(counter, comm_event))
2464 perf_counter_comm_output(counter, comm_event);
2465 }
2466 rcu_read_unlock();
2467 }
2468
2469 static void perf_counter_comm_event(struct perf_comm_event *comm_event)
2470 {
2471 struct perf_cpu_context *cpuctx;
2472 struct perf_counter_context *ctx;
2473 unsigned int size;
2474 char *comm = comm_event->task->comm;
2475
2476 size = ALIGN(strlen(comm)+1, sizeof(u64));
2477
2478 comm_event->comm = comm;
2479 comm_event->comm_size = size;
2480
2481 comm_event->event.header.size = sizeof(comm_event->event) + size;
2482
2483 cpuctx = &get_cpu_var(perf_cpu_context);
2484 perf_counter_comm_ctx(&cpuctx->ctx, comm_event);
2485 put_cpu_var(perf_cpu_context);
2486
2487 rcu_read_lock();
2488 /*
2489 * doesn't really matter which of the child contexts the
2490 * events ends up in.
2491 */
2492 ctx = rcu_dereference(current->perf_counter_ctxp);
2493 if (ctx)
2494 perf_counter_comm_ctx(ctx, comm_event);
2495 rcu_read_unlock();
2496 }
2497
2498 void perf_counter_comm(struct task_struct *task)
2499 {
2500 struct perf_comm_event comm_event;
2501
2502 if (!atomic_read(&nr_comm_tracking))
2503 return;
2504
2505 comm_event = (struct perf_comm_event){
2506 .task = task,
2507 .event = {
2508 .header = { .type = PERF_EVENT_COMM, },
2509 .pid = task->group_leader->pid,
2510 .tid = task->pid,
2511 },
2512 };
2513
2514 perf_counter_comm_event(&comm_event);
2515 }
2516
2517 /*
2518 * mmap tracking
2519 */
2520
2521 struct perf_mmap_event {
2522 struct file *file;
2523 char *file_name;
2524 int file_size;
2525
2526 struct {
2527 struct perf_event_header header;
2528
2529 u32 pid;
2530 u32 tid;
2531 u64 start;
2532 u64 len;
2533 u64 pgoff;
2534 } event;
2535 };
2536
2537 static void perf_counter_mmap_output(struct perf_counter *counter,
2538 struct perf_mmap_event *mmap_event)
2539 {
2540 struct perf_output_handle handle;
2541 int size = mmap_event->event.header.size;
2542 int ret = perf_output_begin(&handle, counter, size, 0, 0);
2543
2544 if (ret)
2545 return;
2546
2547 perf_output_put(&handle, mmap_event->event);
2548 perf_output_copy(&handle, mmap_event->file_name,
2549 mmap_event->file_size);
2550 perf_output_end(&handle);
2551 }
2552
2553 static int perf_counter_mmap_match(struct perf_counter *counter,
2554 struct perf_mmap_event *mmap_event)
2555 {
2556 if (counter->hw_event.mmap &&
2557 mmap_event->event.header.type == PERF_EVENT_MMAP)
2558 return 1;
2559
2560 if (counter->hw_event.munmap &&
2561 mmap_event->event.header.type == PERF_EVENT_MUNMAP)
2562 return 1;
2563
2564 return 0;
2565 }
2566
2567 static void perf_counter_mmap_ctx(struct perf_counter_context *ctx,
2568 struct perf_mmap_event *mmap_event)
2569 {
2570 struct perf_counter *counter;
2571
2572 if (system_state != SYSTEM_RUNNING || list_empty(&ctx->event_list))
2573 return;
2574
2575 rcu_read_lock();
2576 list_for_each_entry_rcu(counter, &ctx->event_list, event_entry) {
2577 if (perf_counter_mmap_match(counter, mmap_event))
2578 perf_counter_mmap_output(counter, mmap_event);
2579 }
2580 rcu_read_unlock();
2581 }
2582
2583 static void perf_counter_mmap_event(struct perf_mmap_event *mmap_event)
2584 {
2585 struct perf_cpu_context *cpuctx;
2586 struct perf_counter_context *ctx;
2587 struct file *file = mmap_event->file;
2588 unsigned int size;
2589 char tmp[16];
2590 char *buf = NULL;
2591 char *name;
2592
2593 if (file) {
2594 buf = kzalloc(PATH_MAX, GFP_KERNEL);
2595 if (!buf) {
2596 name = strncpy(tmp, "//enomem", sizeof(tmp));
2597 goto got_name;
2598 }
2599 name = d_path(&file->f_path, buf, PATH_MAX);
2600 if (IS_ERR(name)) {
2601 name = strncpy(tmp, "//toolong", sizeof(tmp));
2602 goto got_name;
2603 }
2604 } else {
2605 name = strncpy(tmp, "//anon", sizeof(tmp));
2606 goto got_name;
2607 }
2608
2609 got_name:
2610 size = ALIGN(strlen(name)+1, sizeof(u64));
2611
2612 mmap_event->file_name = name;
2613 mmap_event->file_size = size;
2614
2615 mmap_event->event.header.size = sizeof(mmap_event->event) + size;
2616
2617 cpuctx = &get_cpu_var(perf_cpu_context);
2618 perf_counter_mmap_ctx(&cpuctx->ctx, mmap_event);
2619 put_cpu_var(perf_cpu_context);
2620
2621 rcu_read_lock();
2622 /*
2623 * doesn't really matter which of the child contexts the
2624 * events ends up in.
2625 */
2626 ctx = rcu_dereference(current->perf_counter_ctxp);
2627 if (ctx)
2628 perf_counter_mmap_ctx(ctx, mmap_event);
2629 rcu_read_unlock();
2630
2631 kfree(buf);
2632 }
2633
2634 void perf_counter_mmap(unsigned long addr, unsigned long len,
2635 unsigned long pgoff, struct file *file)
2636 {
2637 struct perf_mmap_event mmap_event;
2638
2639 if (!atomic_read(&nr_mmap_tracking))
2640 return;
2641
2642 mmap_event = (struct perf_mmap_event){
2643 .file = file,
2644 .event = {
2645 .header = { .type = PERF_EVENT_MMAP, },
2646 .pid = current->group_leader->pid,
2647 .tid = current->pid,
2648 .start = addr,
2649 .len = len,
2650 .pgoff = pgoff,
2651 },
2652 };
2653
2654 perf_counter_mmap_event(&mmap_event);
2655 }
2656
2657 void perf_counter_munmap(unsigned long addr, unsigned long len,
2658 unsigned long pgoff, struct file *file)
2659 {
2660 struct perf_mmap_event mmap_event;
2661
2662 if (!atomic_read(&nr_munmap_tracking))
2663 return;
2664
2665 mmap_event = (struct perf_mmap_event){
2666 .file = file,
2667 .event = {
2668 .header = { .type = PERF_EVENT_MUNMAP, },
2669 .pid = current->group_leader->pid,
2670 .tid = current->pid,
2671 .start = addr,
2672 .len = len,
2673 .pgoff = pgoff,
2674 },
2675 };
2676
2677 perf_counter_mmap_event(&mmap_event);
2678 }
2679
2680 /*
2681 * Log irq_period changes so that analyzing tools can re-normalize the
2682 * event flow.
2683 */
2684
2685 static void perf_log_period(struct perf_counter *counter, u64 period)
2686 {
2687 struct perf_output_handle handle;
2688 int ret;
2689
2690 struct {
2691 struct perf_event_header header;
2692 u64 time;
2693 u64 period;
2694 } freq_event = {
2695 .header = {
2696 .type = PERF_EVENT_PERIOD,
2697 .misc = 0,
2698 .size = sizeof(freq_event),
2699 },
2700 .time = sched_clock(),
2701 .period = period,
2702 };
2703
2704 if (counter->hw.irq_period == period)
2705 return;
2706
2707 ret = perf_output_begin(&handle, counter, sizeof(freq_event), 0, 0);
2708 if (ret)
2709 return;
2710
2711 perf_output_put(&handle, freq_event);
2712 perf_output_end(&handle);
2713 }
2714
2715 /*
2716 * IRQ throttle logging
2717 */
2718
2719 static void perf_log_throttle(struct perf_counter *counter, int enable)
2720 {
2721 struct perf_output_handle handle;
2722 int ret;
2723
2724 struct {
2725 struct perf_event_header header;
2726 u64 time;
2727 } throttle_event = {
2728 .header = {
2729 .type = PERF_EVENT_THROTTLE + 1,
2730 .misc = 0,
2731 .size = sizeof(throttle_event),
2732 },
2733 .time = sched_clock(),
2734 };
2735
2736 ret = perf_output_begin(&handle, counter, sizeof(throttle_event), 1, 0);
2737 if (ret)
2738 return;
2739
2740 perf_output_put(&handle, throttle_event);
2741 perf_output_end(&handle);
2742 }
2743
2744 /*
2745 * Generic counter overflow handling.
2746 */
2747
2748 int perf_counter_overflow(struct perf_counter *counter,
2749 int nmi, struct pt_regs *regs, u64 addr)
2750 {
2751 int events = atomic_read(&counter->event_limit);
2752 int throttle = counter->pmu->unthrottle != NULL;
2753 int ret = 0;
2754
2755 if (!throttle) {
2756 counter->hw.interrupts++;
2757 } else if (counter->hw.interrupts != MAX_INTERRUPTS) {
2758 counter->hw.interrupts++;
2759 if (HZ*counter->hw.interrupts > (u64)sysctl_perf_counter_limit) {
2760 counter->hw.interrupts = MAX_INTERRUPTS;
2761 perf_log_throttle(counter, 0);
2762 ret = 1;
2763 }
2764 }
2765
2766 /*
2767 * XXX event_limit might not quite work as expected on inherited
2768 * counters
2769 */
2770
2771 counter->pending_kill = POLL_IN;
2772 if (events && atomic_dec_and_test(&counter->event_limit)) {
2773 ret = 1;
2774 counter->pending_kill = POLL_HUP;
2775 if (nmi) {
2776 counter->pending_disable = 1;
2777 perf_pending_queue(&counter->pending,
2778 perf_pending_counter);
2779 } else
2780 perf_counter_disable(counter);
2781 }
2782
2783 perf_counter_output(counter, nmi, regs, addr);
2784 return ret;
2785 }
2786
2787 /*
2788 * Generic software counter infrastructure
2789 */
2790
2791 static void perf_swcounter_update(struct perf_counter *counter)
2792 {
2793 struct hw_perf_counter *hwc = &counter->hw;
2794 u64 prev, now;
2795 s64 delta;
2796
2797 again:
2798 prev = atomic64_read(&hwc->prev_count);
2799 now = atomic64_read(&hwc->count);
2800 if (atomic64_cmpxchg(&hwc->prev_count, prev, now) != prev)
2801 goto again;
2802
2803 delta = now - prev;
2804
2805 atomic64_add(delta, &counter->count);
2806 atomic64_sub(delta, &hwc->period_left);
2807 }
2808
2809 static void perf_swcounter_set_period(struct perf_counter *counter)
2810 {
2811 struct hw_perf_counter *hwc = &counter->hw;
2812 s64 left = atomic64_read(&hwc->period_left);
2813 s64 period = hwc->irq_period;
2814
2815 if (unlikely(left <= -period)) {
2816 left = period;
2817 atomic64_set(&hwc->period_left, left);
2818 }
2819
2820 if (unlikely(left <= 0)) {
2821 left += period;
2822 atomic64_add(period, &hwc->period_left);
2823 }
2824
2825 atomic64_set(&hwc->prev_count, -left);
2826 atomic64_set(&hwc->count, -left);
2827 }
2828
2829 static enum hrtimer_restart perf_swcounter_hrtimer(struct hrtimer *hrtimer)
2830 {
2831 enum hrtimer_restart ret = HRTIMER_RESTART;
2832 struct perf_counter *counter;
2833 struct pt_regs *regs;
2834 u64 period;
2835
2836 counter = container_of(hrtimer, struct perf_counter, hw.hrtimer);
2837 counter->pmu->read(counter);
2838
2839 regs = get_irq_regs();
2840 /*
2841 * In case we exclude kernel IPs or are somehow not in interrupt
2842 * context, provide the next best thing, the user IP.
2843 */
2844 if ((counter->hw_event.exclude_kernel || !regs) &&
2845 !counter->hw_event.exclude_user)
2846 regs = task_pt_regs(current);
2847
2848 if (regs) {
2849 if (perf_counter_overflow(counter, 0, regs, 0))
2850 ret = HRTIMER_NORESTART;
2851 }
2852
2853 period = max_t(u64, 10000, counter->hw.irq_period);
2854 hrtimer_forward_now(hrtimer, ns_to_ktime(period));
2855
2856 return ret;
2857 }
2858
2859 static void perf_swcounter_overflow(struct perf_counter *counter,
2860 int nmi, struct pt_regs *regs, u64 addr)
2861 {
2862 perf_swcounter_update(counter);
2863 perf_swcounter_set_period(counter);
2864 if (perf_counter_overflow(counter, nmi, regs, addr))
2865 /* soft-disable the counter */
2866 ;
2867
2868 }
2869
2870 static int perf_swcounter_match(struct perf_counter *counter,
2871 enum perf_event_types type,
2872 u32 event, struct pt_regs *regs)
2873 {
2874 if (counter->state != PERF_COUNTER_STATE_ACTIVE)
2875 return 0;
2876
2877 if (perf_event_raw(&counter->hw_event))
2878 return 0;
2879
2880 if (perf_event_type(&counter->hw_event) != type)
2881 return 0;
2882
2883 if (perf_event_id(&counter->hw_event) != event)
2884 return 0;
2885
2886 if (counter->hw_event.exclude_user && user_mode(regs))
2887 return 0;
2888
2889 if (counter->hw_event.exclude_kernel && !user_mode(regs))
2890 return 0;
2891
2892 return 1;
2893 }
2894
2895 static void perf_swcounter_add(struct perf_counter *counter, u64 nr,
2896 int nmi, struct pt_regs *regs, u64 addr)
2897 {
2898 int neg = atomic64_add_negative(nr, &counter->hw.count);
2899 if (counter->hw.irq_period && !neg)
2900 perf_swcounter_overflow(counter, nmi, regs, addr);
2901 }
2902
2903 static void perf_swcounter_ctx_event(struct perf_counter_context *ctx,
2904 enum perf_event_types type, u32 event,
2905 u64 nr, int nmi, struct pt_regs *regs,
2906 u64 addr)
2907 {
2908 struct perf_counter *counter;
2909
2910 if (system_state != SYSTEM_RUNNING || list_empty(&ctx->event_list))
2911 return;
2912
2913 rcu_read_lock();
2914 list_for_each_entry_rcu(counter, &ctx->event_list, event_entry) {
2915 if (perf_swcounter_match(counter, type, event, regs))
2916 perf_swcounter_add(counter, nr, nmi, regs, addr);
2917 }
2918 rcu_read_unlock();
2919 }
2920
2921 static int *perf_swcounter_recursion_context(struct perf_cpu_context *cpuctx)
2922 {
2923 if (in_nmi())
2924 return &cpuctx->recursion[3];
2925
2926 if (in_irq())
2927 return &cpuctx->recursion[2];
2928
2929 if (in_softirq())
2930 return &cpuctx->recursion[1];
2931
2932 return &cpuctx->recursion[0];
2933 }
2934
2935 static void __perf_swcounter_event(enum perf_event_types type, u32 event,
2936 u64 nr, int nmi, struct pt_regs *regs,
2937 u64 addr)
2938 {
2939 struct perf_cpu_context *cpuctx = &get_cpu_var(perf_cpu_context);
2940 int *recursion = perf_swcounter_recursion_context(cpuctx);
2941 struct perf_counter_context *ctx;
2942
2943 if (*recursion)
2944 goto out;
2945
2946 (*recursion)++;
2947 barrier();
2948
2949 perf_swcounter_ctx_event(&cpuctx->ctx, type, event,
2950 nr, nmi, regs, addr);
2951 rcu_read_lock();
2952 /*
2953 * doesn't really matter which of the child contexts the
2954 * events ends up in.
2955 */
2956 ctx = rcu_dereference(current->perf_counter_ctxp);
2957 if (ctx)
2958 perf_swcounter_ctx_event(ctx, type, event, nr, nmi, regs, addr);
2959 rcu_read_unlock();
2960
2961 barrier();
2962 (*recursion)--;
2963
2964 out:
2965 put_cpu_var(perf_cpu_context);
2966 }
2967
2968 void
2969 perf_swcounter_event(u32 event, u64 nr, int nmi, struct pt_regs *regs, u64 addr)
2970 {
2971 __perf_swcounter_event(PERF_TYPE_SOFTWARE, event, nr, nmi, regs, addr);
2972 }
2973
2974 static void perf_swcounter_read(struct perf_counter *counter)
2975 {
2976 perf_swcounter_update(counter);
2977 }
2978
2979 static int perf_swcounter_enable(struct perf_counter *counter)
2980 {
2981 perf_swcounter_set_period(counter);
2982 return 0;
2983 }
2984
2985 static void perf_swcounter_disable(struct perf_counter *counter)
2986 {
2987 perf_swcounter_update(counter);
2988 }
2989
2990 static const struct pmu perf_ops_generic = {
2991 .enable = perf_swcounter_enable,
2992 .disable = perf_swcounter_disable,
2993 .read = perf_swcounter_read,
2994 };
2995
2996 /*
2997 * Software counter: cpu wall time clock
2998 */
2999
3000 static void cpu_clock_perf_counter_update(struct perf_counter *counter)
3001 {
3002 int cpu = raw_smp_processor_id();
3003 s64 prev;
3004 u64 now;
3005
3006 now = cpu_clock(cpu);
3007 prev = atomic64_read(&counter->hw.prev_count);
3008 atomic64_set(&counter->hw.prev_count, now);
3009 atomic64_add(now - prev, &counter->count);
3010 }
3011
3012 static int cpu_clock_perf_counter_enable(struct perf_counter *counter)
3013 {
3014 struct hw_perf_counter *hwc = &counter->hw;
3015 int cpu = raw_smp_processor_id();
3016
3017 atomic64_set(&hwc->prev_count, cpu_clock(cpu));
3018 hrtimer_init(&hwc->hrtimer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
3019 hwc->hrtimer.function = perf_swcounter_hrtimer;
3020 if (hwc->irq_period) {
3021 u64 period = max_t(u64, 10000, hwc->irq_period);
3022 __hrtimer_start_range_ns(&hwc->hrtimer,
3023 ns_to_ktime(period), 0,
3024 HRTIMER_MODE_REL, 0);
3025 }
3026
3027 return 0;
3028 }
3029
3030 static void cpu_clock_perf_counter_disable(struct perf_counter *counter)
3031 {
3032 if (counter->hw.irq_period)
3033 hrtimer_cancel(&counter->hw.hrtimer);
3034 cpu_clock_perf_counter_update(counter);
3035 }
3036
3037 static void cpu_clock_perf_counter_read(struct perf_counter *counter)
3038 {
3039 cpu_clock_perf_counter_update(counter);
3040 }
3041
3042 static const struct pmu perf_ops_cpu_clock = {
3043 .enable = cpu_clock_perf_counter_enable,
3044 .disable = cpu_clock_perf_counter_disable,
3045 .read = cpu_clock_perf_counter_read,
3046 };
3047
3048 /*
3049 * Software counter: task time clock
3050 */
3051
3052 static void task_clock_perf_counter_update(struct perf_counter *counter, u64 now)
3053 {
3054 u64 prev;
3055 s64 delta;
3056
3057 prev = atomic64_xchg(&counter->hw.prev_count, now);
3058 delta = now - prev;
3059 atomic64_add(delta, &counter->count);
3060 }
3061
3062 static int task_clock_perf_counter_enable(struct perf_counter *counter)
3063 {
3064 struct hw_perf_counter *hwc = &counter->hw;
3065 u64 now;
3066
3067 now = counter->ctx->time;
3068
3069 atomic64_set(&hwc->prev_count, now);
3070 hrtimer_init(&hwc->hrtimer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
3071 hwc->hrtimer.function = perf_swcounter_hrtimer;
3072 if (hwc->irq_period) {
3073 u64 period = max_t(u64, 10000, hwc->irq_period);
3074 __hrtimer_start_range_ns(&hwc->hrtimer,
3075 ns_to_ktime(period), 0,
3076 HRTIMER_MODE_REL, 0);
3077 }
3078
3079 return 0;
3080 }
3081
3082 static void task_clock_perf_counter_disable(struct perf_counter *counter)
3083 {
3084 if (counter->hw.irq_period)
3085 hrtimer_cancel(&counter->hw.hrtimer);
3086 task_clock_perf_counter_update(counter, counter->ctx->time);
3087
3088 }
3089
3090 static void task_clock_perf_counter_read(struct perf_counter *counter)
3091 {
3092 u64 time;
3093
3094 if (!in_nmi()) {
3095 update_context_time(counter->ctx);
3096 time = counter->ctx->time;
3097 } else {
3098 u64 now = perf_clock();
3099 u64 delta = now - counter->ctx->timestamp;
3100 time = counter->ctx->time + delta;
3101 }
3102
3103 task_clock_perf_counter_update(counter, time);
3104 }
3105
3106 static const struct pmu perf_ops_task_clock = {
3107 .enable = task_clock_perf_counter_enable,
3108 .disable = task_clock_perf_counter_disable,
3109 .read = task_clock_perf_counter_read,
3110 };
3111
3112 /*
3113 * Software counter: cpu migrations
3114 */
3115
3116 static inline u64 get_cpu_migrations(struct perf_counter *counter)
3117 {
3118 struct task_struct *curr = counter->ctx->task;
3119
3120 if (curr)
3121 return curr->se.nr_migrations;
3122 return cpu_nr_migrations(smp_processor_id());
3123 }
3124
3125 static void cpu_migrations_perf_counter_update(struct perf_counter *counter)
3126 {
3127 u64 prev, now;
3128 s64 delta;
3129
3130 prev = atomic64_read(&counter->hw.prev_count);
3131 now = get_cpu_migrations(counter);
3132
3133 atomic64_set(&counter->hw.prev_count, now);
3134
3135 delta = now - prev;
3136
3137 atomic64_add(delta, &counter->count);
3138 }
3139
3140 static void cpu_migrations_perf_counter_read(struct perf_counter *counter)
3141 {
3142 cpu_migrations_perf_counter_update(counter);
3143 }
3144
3145 static int cpu_migrations_perf_counter_enable(struct perf_counter *counter)
3146 {
3147 if (counter->prev_state <= PERF_COUNTER_STATE_OFF)
3148 atomic64_set(&counter->hw.prev_count,
3149 get_cpu_migrations(counter));
3150 return 0;
3151 }
3152
3153 static void cpu_migrations_perf_counter_disable(struct perf_counter *counter)
3154 {
3155 cpu_migrations_perf_counter_update(counter);
3156 }
3157
3158 static const struct pmu perf_ops_cpu_migrations = {
3159 .enable = cpu_migrations_perf_counter_enable,
3160 .disable = cpu_migrations_perf_counter_disable,
3161 .read = cpu_migrations_perf_counter_read,
3162 };
3163
3164 #ifdef CONFIG_EVENT_PROFILE
3165 void perf_tpcounter_event(int event_id)
3166 {
3167 struct pt_regs *regs = get_irq_regs();
3168
3169 if (!regs)
3170 regs = task_pt_regs(current);
3171
3172 __perf_swcounter_event(PERF_TYPE_TRACEPOINT, event_id, 1, 1, regs, 0);
3173 }
3174 EXPORT_SYMBOL_GPL(perf_tpcounter_event);
3175
3176 extern int ftrace_profile_enable(int);
3177 extern void ftrace_profile_disable(int);
3178
3179 static void tp_perf_counter_destroy(struct perf_counter *counter)
3180 {
3181 ftrace_profile_disable(perf_event_id(&counter->hw_event));
3182 }
3183
3184 static const struct pmu *tp_perf_counter_init(struct perf_counter *counter)
3185 {
3186 int event_id = perf_event_id(&counter->hw_event);
3187 int ret;
3188
3189 ret = ftrace_profile_enable(event_id);
3190 if (ret)
3191 return NULL;
3192
3193 counter->destroy = tp_perf_counter_destroy;
3194 counter->hw.irq_period = counter->hw_event.irq_period;
3195
3196 return &perf_ops_generic;
3197 }
3198 #else
3199 static const struct pmu *tp_perf_counter_init(struct perf_counter *counter)
3200 {
3201 return NULL;
3202 }
3203 #endif
3204
3205 static const struct pmu *sw_perf_counter_init(struct perf_counter *counter)
3206 {
3207 const struct pmu *pmu = NULL;
3208
3209 /*
3210 * Software counters (currently) can't in general distinguish
3211 * between user, kernel and hypervisor events.
3212 * However, context switches and cpu migrations are considered
3213 * to be kernel events, and page faults are never hypervisor
3214 * events.
3215 */
3216 switch (perf_event_id(&counter->hw_event)) {
3217 case PERF_COUNT_CPU_CLOCK:
3218 pmu = &perf_ops_cpu_clock;
3219
3220 break;
3221 case PERF_COUNT_TASK_CLOCK:
3222 /*
3223 * If the user instantiates this as a per-cpu counter,
3224 * use the cpu_clock counter instead.
3225 */
3226 if (counter->ctx->task)
3227 pmu = &perf_ops_task_clock;
3228 else
3229 pmu = &perf_ops_cpu_clock;
3230
3231 break;
3232 case PERF_COUNT_PAGE_FAULTS:
3233 case PERF_COUNT_PAGE_FAULTS_MIN:
3234 case PERF_COUNT_PAGE_FAULTS_MAJ:
3235 case PERF_COUNT_CONTEXT_SWITCHES:
3236 pmu = &perf_ops_generic;
3237 break;
3238 case PERF_COUNT_CPU_MIGRATIONS:
3239 if (!counter->hw_event.exclude_kernel)
3240 pmu = &perf_ops_cpu_migrations;
3241 break;
3242 }
3243
3244 return pmu;
3245 }
3246
3247 /*
3248 * Allocate and initialize a counter structure
3249 */
3250 static struct perf_counter *
3251 perf_counter_alloc(struct perf_counter_hw_event *hw_event,
3252 int cpu,
3253 struct perf_counter_context *ctx,
3254 struct perf_counter *group_leader,
3255 gfp_t gfpflags)
3256 {
3257 const struct pmu *pmu;
3258 struct perf_counter *counter;
3259 struct hw_perf_counter *hwc;
3260 long err;
3261
3262 counter = kzalloc(sizeof(*counter), gfpflags);
3263 if (!counter)
3264 return ERR_PTR(-ENOMEM);
3265
3266 /*
3267 * Single counters are their own group leaders, with an
3268 * empty sibling list:
3269 */
3270 if (!group_leader)
3271 group_leader = counter;
3272
3273 mutex_init(&counter->child_mutex);
3274 INIT_LIST_HEAD(&counter->child_list);
3275
3276 INIT_LIST_HEAD(&counter->list_entry);
3277 INIT_LIST_HEAD(&counter->event_entry);
3278 INIT_LIST_HEAD(&counter->sibling_list);
3279 init_waitqueue_head(&counter->waitq);
3280
3281 mutex_init(&counter->mmap_mutex);
3282
3283 counter->cpu = cpu;
3284 counter->hw_event = *hw_event;
3285 counter->group_leader = group_leader;
3286 counter->pmu = NULL;
3287 counter->ctx = ctx;
3288 counter->oncpu = -1;
3289
3290 counter->state = PERF_COUNTER_STATE_INACTIVE;
3291 if (hw_event->disabled)
3292 counter->state = PERF_COUNTER_STATE_OFF;
3293
3294 pmu = NULL;
3295
3296 hwc = &counter->hw;
3297 if (hw_event->freq && hw_event->irq_freq)
3298 hwc->irq_period = div64_u64(TICK_NSEC, hw_event->irq_freq);
3299 else
3300 hwc->irq_period = hw_event->irq_period;
3301
3302 /*
3303 * we currently do not support PERF_RECORD_GROUP on inherited counters
3304 */
3305 if (hw_event->inherit && (hw_event->record_type & PERF_RECORD_GROUP))
3306 goto done;
3307
3308 if (perf_event_raw(hw_event)) {
3309 pmu = hw_perf_counter_init(counter);
3310 goto done;
3311 }
3312
3313 switch (perf_event_type(hw_event)) {
3314 case PERF_TYPE_HARDWARE:
3315 pmu = hw_perf_counter_init(counter);
3316 break;
3317
3318 case PERF_TYPE_SOFTWARE:
3319 pmu = sw_perf_counter_init(counter);
3320 break;
3321
3322 case PERF_TYPE_TRACEPOINT:
3323 pmu = tp_perf_counter_init(counter);
3324 break;
3325 }
3326 done:
3327 err = 0;
3328 if (!pmu)
3329 err = -EINVAL;
3330 else if (IS_ERR(pmu))
3331 err = PTR_ERR(pmu);
3332
3333 if (err) {
3334 kfree(counter);
3335 return ERR_PTR(err);
3336 }
3337
3338 counter->pmu = pmu;
3339
3340 atomic_inc(&nr_counters);
3341 if (counter->hw_event.mmap)
3342 atomic_inc(&nr_mmap_tracking);
3343 if (counter->hw_event.munmap)
3344 atomic_inc(&nr_munmap_tracking);
3345 if (counter->hw_event.comm)
3346 atomic_inc(&nr_comm_tracking);
3347
3348 return counter;
3349 }
3350
3351 /**
3352 * sys_perf_counter_open - open a performance counter, associate it to a task/cpu
3353 *
3354 * @hw_event_uptr: event type attributes for monitoring/sampling
3355 * @pid: target pid
3356 * @cpu: target cpu
3357 * @group_fd: group leader counter fd
3358 */
3359 SYSCALL_DEFINE5(perf_counter_open,
3360 const struct perf_counter_hw_event __user *, hw_event_uptr,
3361 pid_t, pid, int, cpu, int, group_fd, unsigned long, flags)
3362 {
3363 struct perf_counter *counter, *group_leader;
3364 struct perf_counter_hw_event hw_event;
3365 struct perf_counter_context *ctx;
3366 struct file *counter_file = NULL;
3367 struct file *group_file = NULL;
3368 int fput_needed = 0;
3369 int fput_needed2 = 0;
3370 int ret;
3371
3372 /* for future expandability... */
3373 if (flags)
3374 return -EINVAL;
3375
3376 if (copy_from_user(&hw_event, hw_event_uptr, sizeof(hw_event)) != 0)
3377 return -EFAULT;
3378
3379 /*
3380 * Get the target context (task or percpu):
3381 */
3382 ctx = find_get_context(pid, cpu);
3383 if (IS_ERR(ctx))
3384 return PTR_ERR(ctx);
3385
3386 /*
3387 * Look up the group leader (we will attach this counter to it):
3388 */
3389 group_leader = NULL;
3390 if (group_fd != -1) {
3391 ret = -EINVAL;
3392 group_file = fget_light(group_fd, &fput_needed);
3393 if (!group_file)
3394 goto err_put_context;
3395 if (group_file->f_op != &perf_fops)
3396 goto err_put_context;
3397
3398 group_leader = group_file->private_data;
3399 /*
3400 * Do not allow a recursive hierarchy (this new sibling
3401 * becoming part of another group-sibling):
3402 */
3403 if (group_leader->group_leader != group_leader)
3404 goto err_put_context;
3405 /*
3406 * Do not allow to attach to a group in a different
3407 * task or CPU context:
3408 */
3409 if (group_leader->ctx != ctx)
3410 goto err_put_context;
3411 /*
3412 * Only a group leader can be exclusive or pinned
3413 */
3414 if (hw_event.exclusive || hw_event.pinned)
3415 goto err_put_context;
3416 }
3417
3418 counter = perf_counter_alloc(&hw_event, cpu, ctx, group_leader,
3419 GFP_KERNEL);
3420 ret = PTR_ERR(counter);
3421 if (IS_ERR(counter))
3422 goto err_put_context;
3423
3424 ret = anon_inode_getfd("[perf_counter]", &perf_fops, counter, 0);
3425 if (ret < 0)
3426 goto err_free_put_context;
3427
3428 counter_file = fget_light(ret, &fput_needed2);
3429 if (!counter_file)
3430 goto err_free_put_context;
3431
3432 counter->filp = counter_file;
3433 WARN_ON_ONCE(ctx->parent_ctx);
3434 mutex_lock(&ctx->mutex);
3435 perf_install_in_context(ctx, counter, cpu);
3436 ++ctx->generation;
3437 mutex_unlock(&ctx->mutex);
3438
3439 counter->owner = current;
3440 get_task_struct(current);
3441 mutex_lock(&current->perf_counter_mutex);
3442 list_add_tail(&counter->owner_entry, &current->perf_counter_list);
3443 mutex_unlock(&current->perf_counter_mutex);
3444
3445 fput_light(counter_file, fput_needed2);
3446
3447 out_fput:
3448 fput_light(group_file, fput_needed);
3449
3450 return ret;
3451
3452 err_free_put_context:
3453 kfree(counter);
3454
3455 err_put_context:
3456 put_ctx(ctx);
3457
3458 goto out_fput;
3459 }
3460
3461 /*
3462 * inherit a counter from parent task to child task:
3463 */
3464 static struct perf_counter *
3465 inherit_counter(struct perf_counter *parent_counter,
3466 struct task_struct *parent,
3467 struct perf_counter_context *parent_ctx,
3468 struct task_struct *child,
3469 struct perf_counter *group_leader,
3470 struct perf_counter_context *child_ctx)
3471 {
3472 struct perf_counter *child_counter;
3473
3474 /*
3475 * Instead of creating recursive hierarchies of counters,
3476 * we link inherited counters back to the original parent,
3477 * which has a filp for sure, which we use as the reference
3478 * count:
3479 */
3480 if (parent_counter->parent)
3481 parent_counter = parent_counter->parent;
3482
3483 child_counter = perf_counter_alloc(&parent_counter->hw_event,
3484 parent_counter->cpu, child_ctx,
3485 group_leader, GFP_KERNEL);
3486 if (IS_ERR(child_counter))
3487 return child_counter;
3488 get_ctx(child_ctx);
3489
3490 /*
3491 * Make the child state follow the state of the parent counter,
3492 * not its hw_event.disabled bit. We hold the parent's mutex,
3493 * so we won't race with perf_counter_{en,dis}able_family.
3494 */
3495 if (parent_counter->state >= PERF_COUNTER_STATE_INACTIVE)
3496 child_counter->state = PERF_COUNTER_STATE_INACTIVE;
3497 else
3498 child_counter->state = PERF_COUNTER_STATE_OFF;
3499
3500 /*
3501 * Link it up in the child's context:
3502 */
3503 add_counter_to_ctx(child_counter, child_ctx);
3504
3505 child_counter->parent = parent_counter;
3506 /*
3507 * inherit into child's child as well:
3508 */
3509 child_counter->hw_event.inherit = 1;
3510
3511 /*
3512 * Get a reference to the parent filp - we will fput it
3513 * when the child counter exits. This is safe to do because
3514 * we are in the parent and we know that the filp still
3515 * exists and has a nonzero count:
3516 */
3517 atomic_long_inc(&parent_counter->filp->f_count);
3518
3519 /*
3520 * Link this into the parent counter's child list
3521 */
3522 WARN_ON_ONCE(parent_counter->ctx->parent_ctx);
3523 mutex_lock(&parent_counter->child_mutex);
3524 list_add_tail(&child_counter->child_list, &parent_counter->child_list);
3525 mutex_unlock(&parent_counter->child_mutex);
3526
3527 return child_counter;
3528 }
3529
3530 static int inherit_group(struct perf_counter *parent_counter,
3531 struct task_struct *parent,
3532 struct perf_counter_context *parent_ctx,
3533 struct task_struct *child,
3534 struct perf_counter_context *child_ctx)
3535 {
3536 struct perf_counter *leader;
3537 struct perf_counter *sub;
3538 struct perf_counter *child_ctr;
3539
3540 leader = inherit_counter(parent_counter, parent, parent_ctx,
3541 child, NULL, child_ctx);
3542 if (IS_ERR(leader))
3543 return PTR_ERR(leader);
3544 list_for_each_entry(sub, &parent_counter->sibling_list, list_entry) {
3545 child_ctr = inherit_counter(sub, parent, parent_ctx,
3546 child, leader, child_ctx);
3547 if (IS_ERR(child_ctr))
3548 return PTR_ERR(child_ctr);
3549 }
3550 return 0;
3551 }
3552
3553 static void sync_child_counter(struct perf_counter *child_counter,
3554 struct perf_counter *parent_counter)
3555 {
3556 u64 child_val;
3557
3558 child_val = atomic64_read(&child_counter->count);
3559
3560 /*
3561 * Add back the child's count to the parent's count:
3562 */
3563 atomic64_add(child_val, &parent_counter->count);
3564 atomic64_add(child_counter->total_time_enabled,
3565 &parent_counter->child_total_time_enabled);
3566 atomic64_add(child_counter->total_time_running,
3567 &parent_counter->child_total_time_running);
3568
3569 /*
3570 * Remove this counter from the parent's list
3571 */
3572 WARN_ON_ONCE(parent_counter->ctx->parent_ctx);
3573 mutex_lock(&parent_counter->child_mutex);
3574 list_del_init(&child_counter->child_list);
3575 mutex_unlock(&parent_counter->child_mutex);
3576
3577 /*
3578 * Release the parent counter, if this was the last
3579 * reference to it.
3580 */
3581 fput(parent_counter->filp);
3582 }
3583
3584 static void
3585 __perf_counter_exit_task(struct perf_counter *child_counter,
3586 struct perf_counter_context *child_ctx)
3587 {
3588 struct perf_counter *parent_counter;
3589
3590 update_counter_times(child_counter);
3591 perf_counter_remove_from_context(child_counter);
3592
3593 parent_counter = child_counter->parent;
3594 /*
3595 * It can happen that parent exits first, and has counters
3596 * that are still around due to the child reference. These
3597 * counters need to be zapped - but otherwise linger.
3598 */
3599 if (parent_counter) {
3600 sync_child_counter(child_counter, parent_counter);
3601 free_counter(child_counter);
3602 }
3603 }
3604
3605 /*
3606 * When a child task exits, feed back counter values to parent counters.
3607 */
3608 void perf_counter_exit_task(struct task_struct *child)
3609 {
3610 struct perf_counter *child_counter, *tmp;
3611 struct perf_counter_context *child_ctx;
3612 unsigned long flags;
3613
3614 if (likely(!child->perf_counter_ctxp))
3615 return;
3616
3617 local_irq_save(flags);
3618 /*
3619 * We can't reschedule here because interrupts are disabled,
3620 * and either child is current or it is a task that can't be
3621 * scheduled, so we are now safe from rescheduling changing
3622 * our context.
3623 */
3624 child_ctx = child->perf_counter_ctxp;
3625 __perf_counter_task_sched_out(child_ctx);
3626
3627 /*
3628 * Take the context lock here so that if find_get_context is
3629 * reading child->perf_counter_ctxp, we wait until it has
3630 * incremented the context's refcount before we do put_ctx below.
3631 */
3632 spin_lock(&child_ctx->lock);
3633 child->perf_counter_ctxp = NULL;
3634 if (child_ctx->parent_ctx) {
3635 /*
3636 * This context is a clone; unclone it so it can't get
3637 * swapped to another process while we're removing all
3638 * the counters from it.
3639 */
3640 put_ctx(child_ctx->parent_ctx);
3641 child_ctx->parent_ctx = NULL;
3642 }
3643 spin_unlock(&child_ctx->lock);
3644 local_irq_restore(flags);
3645
3646 mutex_lock(&child_ctx->mutex);
3647
3648 again:
3649 list_for_each_entry_safe(child_counter, tmp, &child_ctx->counter_list,
3650 list_entry)
3651 __perf_counter_exit_task(child_counter, child_ctx);
3652
3653 /*
3654 * If the last counter was a group counter, it will have appended all
3655 * its siblings to the list, but we obtained 'tmp' before that which
3656 * will still point to the list head terminating the iteration.
3657 */
3658 if (!list_empty(&child_ctx->counter_list))
3659 goto again;
3660
3661 mutex_unlock(&child_ctx->mutex);
3662
3663 put_ctx(child_ctx);
3664 }
3665
3666 /*
3667 * free an unexposed, unused context as created by inheritance by
3668 * init_task below, used by fork() in case of fail.
3669 */
3670 void perf_counter_free_task(struct task_struct *task)
3671 {
3672 struct perf_counter_context *ctx = task->perf_counter_ctxp;
3673 struct perf_counter *counter, *tmp;
3674
3675 if (!ctx)
3676 return;
3677
3678 mutex_lock(&ctx->mutex);
3679 again:
3680 list_for_each_entry_safe(counter, tmp, &ctx->counter_list, list_entry) {
3681 struct perf_counter *parent = counter->parent;
3682
3683 if (WARN_ON_ONCE(!parent))
3684 continue;
3685
3686 mutex_lock(&parent->child_mutex);
3687 list_del_init(&counter->child_list);
3688 mutex_unlock(&parent->child_mutex);
3689
3690 fput(parent->filp);
3691
3692 list_del_counter(counter, ctx);
3693 free_counter(counter);
3694 }
3695
3696 if (!list_empty(&ctx->counter_list))
3697 goto again;
3698
3699 mutex_unlock(&ctx->mutex);
3700
3701 put_ctx(ctx);
3702 }
3703
3704 /*
3705 * Initialize the perf_counter context in task_struct
3706 */
3707 int perf_counter_init_task(struct task_struct *child)
3708 {
3709 struct perf_counter_context *child_ctx, *parent_ctx;
3710 struct perf_counter_context *cloned_ctx;
3711 struct perf_counter *counter;
3712 struct task_struct *parent = current;
3713 int inherited_all = 1;
3714 int ret = 0;
3715
3716 child->perf_counter_ctxp = NULL;
3717
3718 mutex_init(&child->perf_counter_mutex);
3719 INIT_LIST_HEAD(&child->perf_counter_list);
3720
3721 if (likely(!parent->perf_counter_ctxp))
3722 return 0;
3723
3724 /*
3725 * This is executed from the parent task context, so inherit
3726 * counters that have been marked for cloning.
3727 * First allocate and initialize a context for the child.
3728 */
3729
3730 child_ctx = kmalloc(sizeof(struct perf_counter_context), GFP_KERNEL);
3731 if (!child_ctx)
3732 return -ENOMEM;
3733
3734 __perf_counter_init_context(child_ctx, child);
3735 child->perf_counter_ctxp = child_ctx;
3736 get_task_struct(child);
3737
3738 /*
3739 * If the parent's context is a clone, pin it so it won't get
3740 * swapped under us.
3741 */
3742 parent_ctx = perf_pin_task_context(parent);
3743
3744 /*
3745 * No need to check if parent_ctx != NULL here; since we saw
3746 * it non-NULL earlier, the only reason for it to become NULL
3747 * is if we exit, and since we're currently in the middle of
3748 * a fork we can't be exiting at the same time.
3749 */
3750
3751 /*
3752 * Lock the parent list. No need to lock the child - not PID
3753 * hashed yet and not running, so nobody can access it.
3754 */
3755 mutex_lock(&parent_ctx->mutex);
3756
3757 /*
3758 * We dont have to disable NMIs - we are only looking at
3759 * the list, not manipulating it:
3760 */
3761 list_for_each_entry_rcu(counter, &parent_ctx->event_list, event_entry) {
3762 if (counter != counter->group_leader)
3763 continue;
3764
3765 if (!counter->hw_event.inherit) {
3766 inherited_all = 0;
3767 continue;
3768 }
3769
3770 ret = inherit_group(counter, parent, parent_ctx,
3771 child, child_ctx);
3772 if (ret) {
3773 inherited_all = 0;
3774 break;
3775 }
3776 }
3777
3778 if (inherited_all) {
3779 /*
3780 * Mark the child context as a clone of the parent
3781 * context, or of whatever the parent is a clone of.
3782 * Note that if the parent is a clone, it could get
3783 * uncloned at any point, but that doesn't matter
3784 * because the list of counters and the generation
3785 * count can't have changed since we took the mutex.
3786 */
3787 cloned_ctx = rcu_dereference(parent_ctx->parent_ctx);
3788 if (cloned_ctx) {
3789 child_ctx->parent_ctx = cloned_ctx;
3790 child_ctx->parent_gen = parent_ctx->parent_gen;
3791 } else {
3792 child_ctx->parent_ctx = parent_ctx;
3793 child_ctx->parent_gen = parent_ctx->generation;
3794 }
3795 get_ctx(child_ctx->parent_ctx);
3796 }
3797
3798 mutex_unlock(&parent_ctx->mutex);
3799
3800 perf_unpin_context(parent_ctx);
3801
3802 return ret;
3803 }
3804
3805 static void __cpuinit perf_counter_init_cpu(int cpu)
3806 {
3807 struct perf_cpu_context *cpuctx;
3808
3809 cpuctx = &per_cpu(perf_cpu_context, cpu);
3810 __perf_counter_init_context(&cpuctx->ctx, NULL);
3811
3812 spin_lock(&perf_resource_lock);
3813 cpuctx->max_pertask = perf_max_counters - perf_reserved_percpu;
3814 spin_unlock(&perf_resource_lock);
3815
3816 hw_perf_counter_setup(cpu);
3817 }
3818
3819 #ifdef CONFIG_HOTPLUG_CPU
3820 static void __perf_counter_exit_cpu(void *info)
3821 {
3822 struct perf_cpu_context *cpuctx = &__get_cpu_var(perf_cpu_context);
3823 struct perf_counter_context *ctx = &cpuctx->ctx;
3824 struct perf_counter *counter, *tmp;
3825
3826 list_for_each_entry_safe(counter, tmp, &ctx->counter_list, list_entry)
3827 __perf_counter_remove_from_context(counter);
3828 }
3829 static void perf_counter_exit_cpu(int cpu)
3830 {
3831 struct perf_cpu_context *cpuctx = &per_cpu(perf_cpu_context, cpu);
3832 struct perf_counter_context *ctx = &cpuctx->ctx;
3833
3834 mutex_lock(&ctx->mutex);
3835 smp_call_function_single(cpu, __perf_counter_exit_cpu, NULL, 1);
3836 mutex_unlock(&ctx->mutex);
3837 }
3838 #else
3839 static inline void perf_counter_exit_cpu(int cpu) { }
3840 #endif
3841
3842 static int __cpuinit
3843 perf_cpu_notify(struct notifier_block *self, unsigned long action, void *hcpu)
3844 {
3845 unsigned int cpu = (long)hcpu;
3846
3847 switch (action) {
3848
3849 case CPU_UP_PREPARE:
3850 case CPU_UP_PREPARE_FROZEN:
3851 perf_counter_init_cpu(cpu);
3852 break;
3853
3854 case CPU_DOWN_PREPARE:
3855 case CPU_DOWN_PREPARE_FROZEN:
3856 perf_counter_exit_cpu(cpu);
3857 break;
3858
3859 default:
3860 break;
3861 }
3862
3863 return NOTIFY_OK;
3864 }
3865
3866 static struct notifier_block __cpuinitdata perf_cpu_nb = {
3867 .notifier_call = perf_cpu_notify,
3868 };
3869
3870 void __init perf_counter_init(void)
3871 {
3872 perf_cpu_notify(&perf_cpu_nb, (unsigned long)CPU_UP_PREPARE,
3873 (void *)(long)smp_processor_id());
3874 register_cpu_notifier(&perf_cpu_nb);
3875 }
3876
3877 static ssize_t perf_show_reserve_percpu(struct sysdev_class *class, char *buf)
3878 {
3879 return sprintf(buf, "%d\n", perf_reserved_percpu);
3880 }
3881
3882 static ssize_t
3883 perf_set_reserve_percpu(struct sysdev_class *class,
3884 const char *buf,
3885 size_t count)
3886 {
3887 struct perf_cpu_context *cpuctx;
3888 unsigned long val;
3889 int err, cpu, mpt;
3890
3891 err = strict_strtoul(buf, 10, &val);
3892 if (err)
3893 return err;
3894 if (val > perf_max_counters)
3895 return -EINVAL;
3896
3897 spin_lock(&perf_resource_lock);
3898 perf_reserved_percpu = val;
3899 for_each_online_cpu(cpu) {
3900 cpuctx = &per_cpu(perf_cpu_context, cpu);
3901 spin_lock_irq(&cpuctx->ctx.lock);
3902 mpt = min(perf_max_counters - cpuctx->ctx.nr_counters,
3903 perf_max_counters - perf_reserved_percpu);
3904 cpuctx->max_pertask = mpt;
3905 spin_unlock_irq(&cpuctx->ctx.lock);
3906 }
3907 spin_unlock(&perf_resource_lock);
3908
3909 return count;
3910 }
3911
3912 static ssize_t perf_show_overcommit(struct sysdev_class *class, char *buf)
3913 {
3914 return sprintf(buf, "%d\n", perf_overcommit);
3915 }
3916
3917 static ssize_t
3918 perf_set_overcommit(struct sysdev_class *class, const char *buf, size_t count)
3919 {
3920 unsigned long val;
3921 int err;
3922
3923 err = strict_strtoul(buf, 10, &val);
3924 if (err)
3925 return err;
3926 if (val > 1)
3927 return -EINVAL;
3928
3929 spin_lock(&perf_resource_lock);
3930 perf_overcommit = val;
3931 spin_unlock(&perf_resource_lock);
3932
3933 return count;
3934 }
3935
3936 static SYSDEV_CLASS_ATTR(
3937 reserve_percpu,
3938 0644,
3939 perf_show_reserve_percpu,
3940 perf_set_reserve_percpu
3941 );
3942
3943 static SYSDEV_CLASS_ATTR(
3944 overcommit,
3945 0644,
3946 perf_show_overcommit,
3947 perf_set_overcommit
3948 );
3949
3950 static struct attribute *perfclass_attrs[] = {
3951 &attr_reserve_percpu.attr,
3952 &attr_overcommit.attr,
3953 NULL
3954 };
3955
3956 static struct attribute_group perfclass_attr_group = {
3957 .attrs = perfclass_attrs,
3958 .name = "perf_counters",
3959 };
3960
3961 static int __init perf_counter_sysfs_init(void)
3962 {
3963 return sysfs_create_group(&cpu_sysdev_class.kset.kobj,
3964 &perfclass_attr_group);
3965 }
3966 device_initcall(perf_counter_sysfs_init);
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