sh: sh7723 clock framework rewrite V2
[linux-2.6-xlnx.git] / kernel / timer.c
bloba26ed294f938708241c41b19b35fff551506a56a
1 /*
2 * linux/kernel/timer.c
4 * Kernel internal timers, basic process system calls
6 * Copyright (C) 1991, 1992 Linus Torvalds
8 * 1997-01-28 Modified by Finn Arne Gangstad to make timers scale better.
10 * 1997-09-10 Updated NTP code according to technical memorandum Jan '96
11 * "A Kernel Model for Precision Timekeeping" by Dave Mills
12 * 1998-12-24 Fixed a xtime SMP race (we need the xtime_lock rw spinlock to
13 * serialize accesses to xtime/lost_ticks).
14 * Copyright (C) 1998 Andrea Arcangeli
15 * 1999-03-10 Improved NTP compatibility by Ulrich Windl
16 * 2002-05-31 Move sys_sysinfo here and make its locking sane, Robert Love
17 * 2000-10-05 Implemented scalable SMP per-CPU timer handling.
18 * Copyright (C) 2000, 2001, 2002 Ingo Molnar
19 * Designed by David S. Miller, Alexey Kuznetsov and Ingo Molnar
22 #include <linux/kernel_stat.h>
23 #include <linux/module.h>
24 #include <linux/interrupt.h>
25 #include <linux/percpu.h>
26 #include <linux/init.h>
27 #include <linux/mm.h>
28 #include <linux/swap.h>
29 #include <linux/pid_namespace.h>
30 #include <linux/notifier.h>
31 #include <linux/thread_info.h>
32 #include <linux/time.h>
33 #include <linux/jiffies.h>
34 #include <linux/posix-timers.h>
35 #include <linux/cpu.h>
36 #include <linux/syscalls.h>
37 #include <linux/delay.h>
38 #include <linux/tick.h>
39 #include <linux/kallsyms.h>
41 #include <asm/uaccess.h>
42 #include <asm/unistd.h>
43 #include <asm/div64.h>
44 #include <asm/timex.h>
45 #include <asm/io.h>
47 u64 jiffies_64 __cacheline_aligned_in_smp = INITIAL_JIFFIES;
49 EXPORT_SYMBOL(jiffies_64);
52 * per-CPU timer vector definitions:
54 #define TVN_BITS (CONFIG_BASE_SMALL ? 4 : 6)
55 #define TVR_BITS (CONFIG_BASE_SMALL ? 6 : 8)
56 #define TVN_SIZE (1 << TVN_BITS)
57 #define TVR_SIZE (1 << TVR_BITS)
58 #define TVN_MASK (TVN_SIZE - 1)
59 #define TVR_MASK (TVR_SIZE - 1)
61 struct tvec {
62 struct list_head vec[TVN_SIZE];
65 struct tvec_root {
66 struct list_head vec[TVR_SIZE];
69 struct tvec_base {
70 spinlock_t lock;
71 struct timer_list *running_timer;
72 unsigned long timer_jiffies;
73 struct tvec_root tv1;
74 struct tvec tv2;
75 struct tvec tv3;
76 struct tvec tv4;
77 struct tvec tv5;
78 } ____cacheline_aligned;
80 struct tvec_base boot_tvec_bases;
81 EXPORT_SYMBOL(boot_tvec_bases);
82 static DEFINE_PER_CPU(struct tvec_base *, tvec_bases) = &boot_tvec_bases;
85 * Note that all tvec_bases are 2 byte aligned and lower bit of
86 * base in timer_list is guaranteed to be zero. Use the LSB for
87 * the new flag to indicate whether the timer is deferrable
89 #define TBASE_DEFERRABLE_FLAG (0x1)
91 /* Functions below help us manage 'deferrable' flag */
92 static inline unsigned int tbase_get_deferrable(struct tvec_base *base)
94 return ((unsigned int)(unsigned long)base & TBASE_DEFERRABLE_FLAG);
97 static inline struct tvec_base *tbase_get_base(struct tvec_base *base)
99 return ((struct tvec_base *)((unsigned long)base & ~TBASE_DEFERRABLE_FLAG));
102 static inline void timer_set_deferrable(struct timer_list *timer)
104 timer->base = ((struct tvec_base *)((unsigned long)(timer->base) |
105 TBASE_DEFERRABLE_FLAG));
108 static inline void
109 timer_set_base(struct timer_list *timer, struct tvec_base *new_base)
111 timer->base = (struct tvec_base *)((unsigned long)(new_base) |
112 tbase_get_deferrable(timer->base));
115 static unsigned long round_jiffies_common(unsigned long j, int cpu,
116 bool force_up)
118 int rem;
119 unsigned long original = j;
122 * We don't want all cpus firing their timers at once hitting the
123 * same lock or cachelines, so we skew each extra cpu with an extra
124 * 3 jiffies. This 3 jiffies came originally from the mm/ code which
125 * already did this.
126 * The skew is done by adding 3*cpunr, then round, then subtract this
127 * extra offset again.
129 j += cpu * 3;
131 rem = j % HZ;
134 * If the target jiffie is just after a whole second (which can happen
135 * due to delays of the timer irq, long irq off times etc etc) then
136 * we should round down to the whole second, not up. Use 1/4th second
137 * as cutoff for this rounding as an extreme upper bound for this.
138 * But never round down if @force_up is set.
140 if (rem < HZ/4 && !force_up) /* round down */
141 j = j - rem;
142 else /* round up */
143 j = j - rem + HZ;
145 /* now that we have rounded, subtract the extra skew again */
146 j -= cpu * 3;
148 if (j <= jiffies) /* rounding ate our timeout entirely; */
149 return original;
150 return j;
154 * __round_jiffies - function to round jiffies to a full second
155 * @j: the time in (absolute) jiffies that should be rounded
156 * @cpu: the processor number on which the timeout will happen
158 * __round_jiffies() rounds an absolute time in the future (in jiffies)
159 * up or down to (approximately) full seconds. This is useful for timers
160 * for which the exact time they fire does not matter too much, as long as
161 * they fire approximately every X seconds.
163 * By rounding these timers to whole seconds, all such timers will fire
164 * at the same time, rather than at various times spread out. The goal
165 * of this is to have the CPU wake up less, which saves power.
167 * The exact rounding is skewed for each processor to avoid all
168 * processors firing at the exact same time, which could lead
169 * to lock contention or spurious cache line bouncing.
171 * The return value is the rounded version of the @j parameter.
173 unsigned long __round_jiffies(unsigned long j, int cpu)
175 return round_jiffies_common(j, cpu, false);
177 EXPORT_SYMBOL_GPL(__round_jiffies);
180 * __round_jiffies_relative - function to round jiffies to a full second
181 * @j: the time in (relative) jiffies that should be rounded
182 * @cpu: the processor number on which the timeout will happen
184 * __round_jiffies_relative() rounds a time delta in the future (in jiffies)
185 * up or down to (approximately) full seconds. This is useful for timers
186 * for which the exact time they fire does not matter too much, as long as
187 * they fire approximately every X seconds.
189 * By rounding these timers to whole seconds, all such timers will fire
190 * at the same time, rather than at various times spread out. The goal
191 * of this is to have the CPU wake up less, which saves power.
193 * The exact rounding is skewed for each processor to avoid all
194 * processors firing at the exact same time, which could lead
195 * to lock contention or spurious cache line bouncing.
197 * The return value is the rounded version of the @j parameter.
199 unsigned long __round_jiffies_relative(unsigned long j, int cpu)
201 unsigned long j0 = jiffies;
203 /* Use j0 because jiffies might change while we run */
204 return round_jiffies_common(j + j0, cpu, false) - j0;
206 EXPORT_SYMBOL_GPL(__round_jiffies_relative);
209 * round_jiffies - function to round jiffies to a full second
210 * @j: the time in (absolute) jiffies that should be rounded
212 * round_jiffies() rounds an absolute time in the future (in jiffies)
213 * up or down to (approximately) full seconds. This is useful for timers
214 * for which the exact time they fire does not matter too much, as long as
215 * they fire approximately every X seconds.
217 * By rounding these timers to whole seconds, all such timers will fire
218 * at the same time, rather than at various times spread out. The goal
219 * of this is to have the CPU wake up less, which saves power.
221 * The return value is the rounded version of the @j parameter.
223 unsigned long round_jiffies(unsigned long j)
225 return round_jiffies_common(j, raw_smp_processor_id(), false);
227 EXPORT_SYMBOL_GPL(round_jiffies);
230 * round_jiffies_relative - function to round jiffies to a full second
231 * @j: the time in (relative) jiffies that should be rounded
233 * round_jiffies_relative() rounds a time delta in the future (in jiffies)
234 * up or down to (approximately) full seconds. This is useful for timers
235 * for which the exact time they fire does not matter too much, as long as
236 * they fire approximately every X seconds.
238 * By rounding these timers to whole seconds, all such timers will fire
239 * at the same time, rather than at various times spread out. The goal
240 * of this is to have the CPU wake up less, which saves power.
242 * The return value is the rounded version of the @j parameter.
244 unsigned long round_jiffies_relative(unsigned long j)
246 return __round_jiffies_relative(j, raw_smp_processor_id());
248 EXPORT_SYMBOL_GPL(round_jiffies_relative);
251 * __round_jiffies_up - function to round jiffies up to a full second
252 * @j: the time in (absolute) jiffies that should be rounded
253 * @cpu: the processor number on which the timeout will happen
255 * This is the same as __round_jiffies() except that it will never
256 * round down. This is useful for timeouts for which the exact time
257 * of firing does not matter too much, as long as they don't fire too
258 * early.
260 unsigned long __round_jiffies_up(unsigned long j, int cpu)
262 return round_jiffies_common(j, cpu, true);
264 EXPORT_SYMBOL_GPL(__round_jiffies_up);
267 * __round_jiffies_up_relative - function to round jiffies up to a full second
268 * @j: the time in (relative) jiffies that should be rounded
269 * @cpu: the processor number on which the timeout will happen
271 * This is the same as __round_jiffies_relative() except that it will never
272 * round down. This is useful for timeouts for which the exact time
273 * of firing does not matter too much, as long as they don't fire too
274 * early.
276 unsigned long __round_jiffies_up_relative(unsigned long j, int cpu)
278 unsigned long j0 = jiffies;
280 /* Use j0 because jiffies might change while we run */
281 return round_jiffies_common(j + j0, cpu, true) - j0;
283 EXPORT_SYMBOL_GPL(__round_jiffies_up_relative);
286 * round_jiffies_up - function to round jiffies up to a full second
287 * @j: the time in (absolute) jiffies that should be rounded
289 * This is the same as round_jiffies() except that it will never
290 * round down. This is useful for timeouts for which the exact time
291 * of firing does not matter too much, as long as they don't fire too
292 * early.
294 unsigned long round_jiffies_up(unsigned long j)
296 return round_jiffies_common(j, raw_smp_processor_id(), true);
298 EXPORT_SYMBOL_GPL(round_jiffies_up);
301 * round_jiffies_up_relative - function to round jiffies up to a full second
302 * @j: the time in (relative) jiffies that should be rounded
304 * This is the same as round_jiffies_relative() except that it will never
305 * round down. This is useful for timeouts for which the exact time
306 * of firing does not matter too much, as long as they don't fire too
307 * early.
309 unsigned long round_jiffies_up_relative(unsigned long j)
311 return __round_jiffies_up_relative(j, raw_smp_processor_id());
313 EXPORT_SYMBOL_GPL(round_jiffies_up_relative);
316 static inline void set_running_timer(struct tvec_base *base,
317 struct timer_list *timer)
319 #ifdef CONFIG_SMP
320 base->running_timer = timer;
321 #endif
324 static void internal_add_timer(struct tvec_base *base, struct timer_list *timer)
326 unsigned long expires = timer->expires;
327 unsigned long idx = expires - base->timer_jiffies;
328 struct list_head *vec;
330 if (idx < TVR_SIZE) {
331 int i = expires & TVR_MASK;
332 vec = base->tv1.vec + i;
333 } else if (idx < 1 << (TVR_BITS + TVN_BITS)) {
334 int i = (expires >> TVR_BITS) & TVN_MASK;
335 vec = base->tv2.vec + i;
336 } else if (idx < 1 << (TVR_BITS + 2 * TVN_BITS)) {
337 int i = (expires >> (TVR_BITS + TVN_BITS)) & TVN_MASK;
338 vec = base->tv3.vec + i;
339 } else if (idx < 1 << (TVR_BITS + 3 * TVN_BITS)) {
340 int i = (expires >> (TVR_BITS + 2 * TVN_BITS)) & TVN_MASK;
341 vec = base->tv4.vec + i;
342 } else if ((signed long) idx < 0) {
344 * Can happen if you add a timer with expires == jiffies,
345 * or you set a timer to go off in the past
347 vec = base->tv1.vec + (base->timer_jiffies & TVR_MASK);
348 } else {
349 int i;
350 /* If the timeout is larger than 0xffffffff on 64-bit
351 * architectures then we use the maximum timeout:
353 if (idx > 0xffffffffUL) {
354 idx = 0xffffffffUL;
355 expires = idx + base->timer_jiffies;
357 i = (expires >> (TVR_BITS + 3 * TVN_BITS)) & TVN_MASK;
358 vec = base->tv5.vec + i;
361 * Timers are FIFO:
363 list_add_tail(&timer->entry, vec);
366 #ifdef CONFIG_TIMER_STATS
367 void __timer_stats_timer_set_start_info(struct timer_list *timer, void *addr)
369 if (timer->start_site)
370 return;
372 timer->start_site = addr;
373 memcpy(timer->start_comm, current->comm, TASK_COMM_LEN);
374 timer->start_pid = current->pid;
377 static void timer_stats_account_timer(struct timer_list *timer)
379 unsigned int flag = 0;
381 if (unlikely(tbase_get_deferrable(timer->base)))
382 flag |= TIMER_STATS_FLAG_DEFERRABLE;
384 timer_stats_update_stats(timer, timer->start_pid, timer->start_site,
385 timer->function, timer->start_comm, flag);
388 #else
389 static void timer_stats_account_timer(struct timer_list *timer) {}
390 #endif
392 #ifdef CONFIG_DEBUG_OBJECTS_TIMERS
394 static struct debug_obj_descr timer_debug_descr;
397 * fixup_init is called when:
398 * - an active object is initialized
400 static int timer_fixup_init(void *addr, enum debug_obj_state state)
402 struct timer_list *timer = addr;
404 switch (state) {
405 case ODEBUG_STATE_ACTIVE:
406 del_timer_sync(timer);
407 debug_object_init(timer, &timer_debug_descr);
408 return 1;
409 default:
410 return 0;
415 * fixup_activate is called when:
416 * - an active object is activated
417 * - an unknown object is activated (might be a statically initialized object)
419 static int timer_fixup_activate(void *addr, enum debug_obj_state state)
421 struct timer_list *timer = addr;
423 switch (state) {
425 case ODEBUG_STATE_NOTAVAILABLE:
427 * This is not really a fixup. The timer was
428 * statically initialized. We just make sure that it
429 * is tracked in the object tracker.
431 if (timer->entry.next == NULL &&
432 timer->entry.prev == TIMER_ENTRY_STATIC) {
433 debug_object_init(timer, &timer_debug_descr);
434 debug_object_activate(timer, &timer_debug_descr);
435 return 0;
436 } else {
437 WARN_ON_ONCE(1);
439 return 0;
441 case ODEBUG_STATE_ACTIVE:
442 WARN_ON(1);
444 default:
445 return 0;
450 * fixup_free is called when:
451 * - an active object is freed
453 static int timer_fixup_free(void *addr, enum debug_obj_state state)
455 struct timer_list *timer = addr;
457 switch (state) {
458 case ODEBUG_STATE_ACTIVE:
459 del_timer_sync(timer);
460 debug_object_free(timer, &timer_debug_descr);
461 return 1;
462 default:
463 return 0;
467 static struct debug_obj_descr timer_debug_descr = {
468 .name = "timer_list",
469 .fixup_init = timer_fixup_init,
470 .fixup_activate = timer_fixup_activate,
471 .fixup_free = timer_fixup_free,
474 static inline void debug_timer_init(struct timer_list *timer)
476 debug_object_init(timer, &timer_debug_descr);
479 static inline void debug_timer_activate(struct timer_list *timer)
481 debug_object_activate(timer, &timer_debug_descr);
484 static inline void debug_timer_deactivate(struct timer_list *timer)
486 debug_object_deactivate(timer, &timer_debug_descr);
489 static inline void debug_timer_free(struct timer_list *timer)
491 debug_object_free(timer, &timer_debug_descr);
494 static void __init_timer(struct timer_list *timer,
495 const char *name,
496 struct lock_class_key *key);
498 void init_timer_on_stack_key(struct timer_list *timer,
499 const char *name,
500 struct lock_class_key *key)
502 debug_object_init_on_stack(timer, &timer_debug_descr);
503 __init_timer(timer, name, key);
505 EXPORT_SYMBOL_GPL(init_timer_on_stack_key);
507 void destroy_timer_on_stack(struct timer_list *timer)
509 debug_object_free(timer, &timer_debug_descr);
511 EXPORT_SYMBOL_GPL(destroy_timer_on_stack);
513 #else
514 static inline void debug_timer_init(struct timer_list *timer) { }
515 static inline void debug_timer_activate(struct timer_list *timer) { }
516 static inline void debug_timer_deactivate(struct timer_list *timer) { }
517 #endif
519 static void __init_timer(struct timer_list *timer,
520 const char *name,
521 struct lock_class_key *key)
523 timer->entry.next = NULL;
524 timer->base = __raw_get_cpu_var(tvec_bases);
525 #ifdef CONFIG_TIMER_STATS
526 timer->start_site = NULL;
527 timer->start_pid = -1;
528 memset(timer->start_comm, 0, TASK_COMM_LEN);
529 #endif
530 lockdep_init_map(&timer->lockdep_map, name, key, 0);
534 * init_timer_key - initialize a timer
535 * @timer: the timer to be initialized
536 * @name: name of the timer
537 * @key: lockdep class key of the fake lock used for tracking timer
538 * sync lock dependencies
540 * init_timer_key() must be done to a timer prior calling *any* of the
541 * other timer functions.
543 void init_timer_key(struct timer_list *timer,
544 const char *name,
545 struct lock_class_key *key)
547 debug_timer_init(timer);
548 __init_timer(timer, name, key);
550 EXPORT_SYMBOL(init_timer_key);
552 void init_timer_deferrable_key(struct timer_list *timer,
553 const char *name,
554 struct lock_class_key *key)
556 init_timer_key(timer, name, key);
557 timer_set_deferrable(timer);
559 EXPORT_SYMBOL(init_timer_deferrable_key);
561 static inline void detach_timer(struct timer_list *timer,
562 int clear_pending)
564 struct list_head *entry = &timer->entry;
566 debug_timer_deactivate(timer);
568 __list_del(entry->prev, entry->next);
569 if (clear_pending)
570 entry->next = NULL;
571 entry->prev = LIST_POISON2;
575 * We are using hashed locking: holding per_cpu(tvec_bases).lock
576 * means that all timers which are tied to this base via timer->base are
577 * locked, and the base itself is locked too.
579 * So __run_timers/migrate_timers can safely modify all timers which could
580 * be found on ->tvX lists.
582 * When the timer's base is locked, and the timer removed from list, it is
583 * possible to set timer->base = NULL and drop the lock: the timer remains
584 * locked.
586 static struct tvec_base *lock_timer_base(struct timer_list *timer,
587 unsigned long *flags)
588 __acquires(timer->base->lock)
590 struct tvec_base *base;
592 for (;;) {
593 struct tvec_base *prelock_base = timer->base;
594 base = tbase_get_base(prelock_base);
595 if (likely(base != NULL)) {
596 spin_lock_irqsave(&base->lock, *flags);
597 if (likely(prelock_base == timer->base))
598 return base;
599 /* The timer has migrated to another CPU */
600 spin_unlock_irqrestore(&base->lock, *flags);
602 cpu_relax();
606 static inline int
607 __mod_timer(struct timer_list *timer, unsigned long expires, bool pending_only)
609 struct tvec_base *base, *new_base;
610 unsigned long flags;
611 int ret;
613 ret = 0;
615 timer_stats_timer_set_start_info(timer);
616 BUG_ON(!timer->function);
618 base = lock_timer_base(timer, &flags);
620 if (timer_pending(timer)) {
621 detach_timer(timer, 0);
622 ret = 1;
623 } else {
624 if (pending_only)
625 goto out_unlock;
628 debug_timer_activate(timer);
630 new_base = __get_cpu_var(tvec_bases);
632 if (base != new_base) {
634 * We are trying to schedule the timer on the local CPU.
635 * However we can't change timer's base while it is running,
636 * otherwise del_timer_sync() can't detect that the timer's
637 * handler yet has not finished. This also guarantees that
638 * the timer is serialized wrt itself.
640 if (likely(base->running_timer != timer)) {
641 /* See the comment in lock_timer_base() */
642 timer_set_base(timer, NULL);
643 spin_unlock(&base->lock);
644 base = new_base;
645 spin_lock(&base->lock);
646 timer_set_base(timer, base);
650 timer->expires = expires;
651 internal_add_timer(base, timer);
653 out_unlock:
654 spin_unlock_irqrestore(&base->lock, flags);
656 return ret;
660 * mod_timer_pending - modify a pending timer's timeout
661 * @timer: the pending timer to be modified
662 * @expires: new timeout in jiffies
664 * mod_timer_pending() is the same for pending timers as mod_timer(),
665 * but will not re-activate and modify already deleted timers.
667 * It is useful for unserialized use of timers.
669 int mod_timer_pending(struct timer_list *timer, unsigned long expires)
671 return __mod_timer(timer, expires, true);
673 EXPORT_SYMBOL(mod_timer_pending);
676 * mod_timer - modify a timer's timeout
677 * @timer: the timer to be modified
678 * @expires: new timeout in jiffies
680 * mod_timer() is a more efficient way to update the expire field of an
681 * active timer (if the timer is inactive it will be activated)
683 * mod_timer(timer, expires) is equivalent to:
685 * del_timer(timer); timer->expires = expires; add_timer(timer);
687 * Note that if there are multiple unserialized concurrent users of the
688 * same timer, then mod_timer() is the only safe way to modify the timeout,
689 * since add_timer() cannot modify an already running timer.
691 * The function returns whether it has modified a pending timer or not.
692 * (ie. mod_timer() of an inactive timer returns 0, mod_timer() of an
693 * active timer returns 1.)
695 int mod_timer(struct timer_list *timer, unsigned long expires)
698 * This is a common optimization triggered by the
699 * networking code - if the timer is re-modified
700 * to be the same thing then just return:
702 if (timer->expires == expires && timer_pending(timer))
703 return 1;
705 return __mod_timer(timer, expires, false);
707 EXPORT_SYMBOL(mod_timer);
710 * add_timer - start a timer
711 * @timer: the timer to be added
713 * The kernel will do a ->function(->data) callback from the
714 * timer interrupt at the ->expires point in the future. The
715 * current time is 'jiffies'.
717 * The timer's ->expires, ->function (and if the handler uses it, ->data)
718 * fields must be set prior calling this function.
720 * Timers with an ->expires field in the past will be executed in the next
721 * timer tick.
723 void add_timer(struct timer_list *timer)
725 BUG_ON(timer_pending(timer));
726 mod_timer(timer, timer->expires);
728 EXPORT_SYMBOL(add_timer);
731 * add_timer_on - start a timer on a particular CPU
732 * @timer: the timer to be added
733 * @cpu: the CPU to start it on
735 * This is not very scalable on SMP. Double adds are not possible.
737 void add_timer_on(struct timer_list *timer, int cpu)
739 struct tvec_base *base = per_cpu(tvec_bases, cpu);
740 unsigned long flags;
742 timer_stats_timer_set_start_info(timer);
743 BUG_ON(timer_pending(timer) || !timer->function);
744 spin_lock_irqsave(&base->lock, flags);
745 timer_set_base(timer, base);
746 debug_timer_activate(timer);
747 internal_add_timer(base, timer);
749 * Check whether the other CPU is idle and needs to be
750 * triggered to reevaluate the timer wheel when nohz is
751 * active. We are protected against the other CPU fiddling
752 * with the timer by holding the timer base lock. This also
753 * makes sure that a CPU on the way to idle can not evaluate
754 * the timer wheel.
756 wake_up_idle_cpu(cpu);
757 spin_unlock_irqrestore(&base->lock, flags);
761 * del_timer - deactive a timer.
762 * @timer: the timer to be deactivated
764 * del_timer() deactivates a timer - this works on both active and inactive
765 * timers.
767 * The function returns whether it has deactivated a pending timer or not.
768 * (ie. del_timer() of an inactive timer returns 0, del_timer() of an
769 * active timer returns 1.)
771 int del_timer(struct timer_list *timer)
773 struct tvec_base *base;
774 unsigned long flags;
775 int ret = 0;
777 timer_stats_timer_clear_start_info(timer);
778 if (timer_pending(timer)) {
779 base = lock_timer_base(timer, &flags);
780 if (timer_pending(timer)) {
781 detach_timer(timer, 1);
782 ret = 1;
784 spin_unlock_irqrestore(&base->lock, flags);
787 return ret;
789 EXPORT_SYMBOL(del_timer);
791 #ifdef CONFIG_SMP
793 * try_to_del_timer_sync - Try to deactivate a timer
794 * @timer: timer do del
796 * This function tries to deactivate a timer. Upon successful (ret >= 0)
797 * exit the timer is not queued and the handler is not running on any CPU.
799 * It must not be called from interrupt contexts.
801 int try_to_del_timer_sync(struct timer_list *timer)
803 struct tvec_base *base;
804 unsigned long flags;
805 int ret = -1;
807 base = lock_timer_base(timer, &flags);
809 if (base->running_timer == timer)
810 goto out;
812 ret = 0;
813 if (timer_pending(timer)) {
814 detach_timer(timer, 1);
815 ret = 1;
817 out:
818 spin_unlock_irqrestore(&base->lock, flags);
820 return ret;
822 EXPORT_SYMBOL(try_to_del_timer_sync);
825 * del_timer_sync - deactivate a timer and wait for the handler to finish.
826 * @timer: the timer to be deactivated
828 * This function only differs from del_timer() on SMP: besides deactivating
829 * the timer it also makes sure the handler has finished executing on other
830 * CPUs.
832 * Synchronization rules: Callers must prevent restarting of the timer,
833 * otherwise this function is meaningless. It must not be called from
834 * interrupt contexts. The caller must not hold locks which would prevent
835 * completion of the timer's handler. The timer's handler must not call
836 * add_timer_on(). Upon exit the timer is not queued and the handler is
837 * not running on any CPU.
839 * The function returns whether it has deactivated a pending timer or not.
841 int del_timer_sync(struct timer_list *timer)
843 #ifdef CONFIG_LOCKDEP
844 unsigned long flags;
846 local_irq_save(flags);
847 lock_map_acquire(&timer->lockdep_map);
848 lock_map_release(&timer->lockdep_map);
849 local_irq_restore(flags);
850 #endif
852 for (;;) {
853 int ret = try_to_del_timer_sync(timer);
854 if (ret >= 0)
855 return ret;
856 cpu_relax();
859 EXPORT_SYMBOL(del_timer_sync);
860 #endif
862 static int cascade(struct tvec_base *base, struct tvec *tv, int index)
864 /* cascade all the timers from tv up one level */
865 struct timer_list *timer, *tmp;
866 struct list_head tv_list;
868 list_replace_init(tv->vec + index, &tv_list);
871 * We are removing _all_ timers from the list, so we
872 * don't have to detach them individually.
874 list_for_each_entry_safe(timer, tmp, &tv_list, entry) {
875 BUG_ON(tbase_get_base(timer->base) != base);
876 internal_add_timer(base, timer);
879 return index;
882 #define INDEX(N) ((base->timer_jiffies >> (TVR_BITS + (N) * TVN_BITS)) & TVN_MASK)
885 * __run_timers - run all expired timers (if any) on this CPU.
886 * @base: the timer vector to be processed.
888 * This function cascades all vectors and executes all expired timer
889 * vectors.
891 static inline void __run_timers(struct tvec_base *base)
893 struct timer_list *timer;
895 spin_lock_irq(&base->lock);
896 while (time_after_eq(jiffies, base->timer_jiffies)) {
897 struct list_head work_list;
898 struct list_head *head = &work_list;
899 int index = base->timer_jiffies & TVR_MASK;
902 * Cascade timers:
904 if (!index &&
905 (!cascade(base, &base->tv2, INDEX(0))) &&
906 (!cascade(base, &base->tv3, INDEX(1))) &&
907 !cascade(base, &base->tv4, INDEX(2)))
908 cascade(base, &base->tv5, INDEX(3));
909 ++base->timer_jiffies;
910 list_replace_init(base->tv1.vec + index, &work_list);
911 while (!list_empty(head)) {
912 void (*fn)(unsigned long);
913 unsigned long data;
915 timer = list_first_entry(head, struct timer_list,entry);
916 fn = timer->function;
917 data = timer->data;
919 timer_stats_account_timer(timer);
921 set_running_timer(base, timer);
922 detach_timer(timer, 1);
924 spin_unlock_irq(&base->lock);
926 int preempt_count = preempt_count();
928 #ifdef CONFIG_LOCKDEP
930 * It is permissible to free the timer from
931 * inside the function that is called from
932 * it, this we need to take into account for
933 * lockdep too. To avoid bogus "held lock
934 * freed" warnings as well as problems when
935 * looking into timer->lockdep_map, make a
936 * copy and use that here.
938 struct lockdep_map lockdep_map =
939 timer->lockdep_map;
940 #endif
942 * Couple the lock chain with the lock chain at
943 * del_timer_sync() by acquiring the lock_map
944 * around the fn() call here and in
945 * del_timer_sync().
947 lock_map_acquire(&lockdep_map);
949 fn(data);
951 lock_map_release(&lockdep_map);
953 if (preempt_count != preempt_count()) {
954 printk(KERN_ERR "huh, entered %p "
955 "with preempt_count %08x, exited"
956 " with %08x?\n",
957 fn, preempt_count,
958 preempt_count());
959 BUG();
962 spin_lock_irq(&base->lock);
965 set_running_timer(base, NULL);
966 spin_unlock_irq(&base->lock);
969 #ifdef CONFIG_NO_HZ
971 * Find out when the next timer event is due to happen. This
972 * is used on S/390 to stop all activity when a cpus is idle.
973 * This functions needs to be called disabled.
975 static unsigned long __next_timer_interrupt(struct tvec_base *base)
977 unsigned long timer_jiffies = base->timer_jiffies;
978 unsigned long expires = timer_jiffies + NEXT_TIMER_MAX_DELTA;
979 int index, slot, array, found = 0;
980 struct timer_list *nte;
981 struct tvec *varray[4];
983 /* Look for timer events in tv1. */
984 index = slot = timer_jiffies & TVR_MASK;
985 do {
986 list_for_each_entry(nte, base->tv1.vec + slot, entry) {
987 if (tbase_get_deferrable(nte->base))
988 continue;
990 found = 1;
991 expires = nte->expires;
992 /* Look at the cascade bucket(s)? */
993 if (!index || slot < index)
994 goto cascade;
995 return expires;
997 slot = (slot + 1) & TVR_MASK;
998 } while (slot != index);
1000 cascade:
1001 /* Calculate the next cascade event */
1002 if (index)
1003 timer_jiffies += TVR_SIZE - index;
1004 timer_jiffies >>= TVR_BITS;
1006 /* Check tv2-tv5. */
1007 varray[0] = &base->tv2;
1008 varray[1] = &base->tv3;
1009 varray[2] = &base->tv4;
1010 varray[3] = &base->tv5;
1012 for (array = 0; array < 4; array++) {
1013 struct tvec *varp = varray[array];
1015 index = slot = timer_jiffies & TVN_MASK;
1016 do {
1017 list_for_each_entry(nte, varp->vec + slot, entry) {
1018 found = 1;
1019 if (time_before(nte->expires, expires))
1020 expires = nte->expires;
1023 * Do we still search for the first timer or are
1024 * we looking up the cascade buckets ?
1026 if (found) {
1027 /* Look at the cascade bucket(s)? */
1028 if (!index || slot < index)
1029 break;
1030 return expires;
1032 slot = (slot + 1) & TVN_MASK;
1033 } while (slot != index);
1035 if (index)
1036 timer_jiffies += TVN_SIZE - index;
1037 timer_jiffies >>= TVN_BITS;
1039 return expires;
1043 * Check, if the next hrtimer event is before the next timer wheel
1044 * event:
1046 static unsigned long cmp_next_hrtimer_event(unsigned long now,
1047 unsigned long expires)
1049 ktime_t hr_delta = hrtimer_get_next_event();
1050 struct timespec tsdelta;
1051 unsigned long delta;
1053 if (hr_delta.tv64 == KTIME_MAX)
1054 return expires;
1057 * Expired timer available, let it expire in the next tick
1059 if (hr_delta.tv64 <= 0)
1060 return now + 1;
1062 tsdelta = ktime_to_timespec(hr_delta);
1063 delta = timespec_to_jiffies(&tsdelta);
1066 * Limit the delta to the max value, which is checked in
1067 * tick_nohz_stop_sched_tick():
1069 if (delta > NEXT_TIMER_MAX_DELTA)
1070 delta = NEXT_TIMER_MAX_DELTA;
1073 * Take rounding errors in to account and make sure, that it
1074 * expires in the next tick. Otherwise we go into an endless
1075 * ping pong due to tick_nohz_stop_sched_tick() retriggering
1076 * the timer softirq
1078 if (delta < 1)
1079 delta = 1;
1080 now += delta;
1081 if (time_before(now, expires))
1082 return now;
1083 return expires;
1087 * get_next_timer_interrupt - return the jiffy of the next pending timer
1088 * @now: current time (in jiffies)
1090 unsigned long get_next_timer_interrupt(unsigned long now)
1092 struct tvec_base *base = __get_cpu_var(tvec_bases);
1093 unsigned long expires;
1095 spin_lock(&base->lock);
1096 expires = __next_timer_interrupt(base);
1097 spin_unlock(&base->lock);
1099 if (time_before_eq(expires, now))
1100 return now;
1102 return cmp_next_hrtimer_event(now, expires);
1104 #endif
1107 * Called from the timer interrupt handler to charge one tick to the current
1108 * process. user_tick is 1 if the tick is user time, 0 for system.
1110 void update_process_times(int user_tick)
1112 struct task_struct *p = current;
1113 int cpu = smp_processor_id();
1115 /* Note: this timer irq context must be accounted for as well. */
1116 account_process_tick(p, user_tick);
1117 run_local_timers();
1118 if (rcu_pending(cpu))
1119 rcu_check_callbacks(cpu, user_tick);
1120 printk_tick();
1121 scheduler_tick();
1122 run_posix_cpu_timers(p);
1126 * This function runs timers and the timer-tq in bottom half context.
1128 static void run_timer_softirq(struct softirq_action *h)
1130 struct tvec_base *base = __get_cpu_var(tvec_bases);
1132 hrtimer_run_pending();
1134 if (time_after_eq(jiffies, base->timer_jiffies))
1135 __run_timers(base);
1139 * Called by the local, per-CPU timer interrupt on SMP.
1141 void run_local_timers(void)
1143 hrtimer_run_queues();
1144 raise_softirq(TIMER_SOFTIRQ);
1145 softlockup_tick();
1149 * The 64-bit jiffies value is not atomic - you MUST NOT read it
1150 * without sampling the sequence number in xtime_lock.
1151 * jiffies is defined in the linker script...
1154 void do_timer(unsigned long ticks)
1156 jiffies_64 += ticks;
1157 update_wall_time();
1158 calc_global_load();
1161 #ifdef __ARCH_WANT_SYS_ALARM
1164 * For backwards compatibility? This can be done in libc so Alpha
1165 * and all newer ports shouldn't need it.
1167 SYSCALL_DEFINE1(alarm, unsigned int, seconds)
1169 return alarm_setitimer(seconds);
1172 #endif
1174 #ifndef __alpha__
1177 * The Alpha uses getxpid, getxuid, and getxgid instead. Maybe this
1178 * should be moved into arch/i386 instead?
1182 * sys_getpid - return the thread group id of the current process
1184 * Note, despite the name, this returns the tgid not the pid. The tgid and
1185 * the pid are identical unless CLONE_THREAD was specified on clone() in
1186 * which case the tgid is the same in all threads of the same group.
1188 * This is SMP safe as current->tgid does not change.
1190 SYSCALL_DEFINE0(getpid)
1192 return task_tgid_vnr(current);
1196 * Accessing ->real_parent is not SMP-safe, it could
1197 * change from under us. However, we can use a stale
1198 * value of ->real_parent under rcu_read_lock(), see
1199 * release_task()->call_rcu(delayed_put_task_struct).
1201 SYSCALL_DEFINE0(getppid)
1203 int pid;
1205 rcu_read_lock();
1206 pid = task_tgid_vnr(current->real_parent);
1207 rcu_read_unlock();
1209 return pid;
1212 SYSCALL_DEFINE0(getuid)
1214 /* Only we change this so SMP safe */
1215 return current_uid();
1218 SYSCALL_DEFINE0(geteuid)
1220 /* Only we change this so SMP safe */
1221 return current_euid();
1224 SYSCALL_DEFINE0(getgid)
1226 /* Only we change this so SMP safe */
1227 return current_gid();
1230 SYSCALL_DEFINE0(getegid)
1232 /* Only we change this so SMP safe */
1233 return current_egid();
1236 #endif
1238 static void process_timeout(unsigned long __data)
1240 wake_up_process((struct task_struct *)__data);
1244 * schedule_timeout - sleep until timeout
1245 * @timeout: timeout value in jiffies
1247 * Make the current task sleep until @timeout jiffies have
1248 * elapsed. The routine will return immediately unless
1249 * the current task state has been set (see set_current_state()).
1251 * You can set the task state as follows -
1253 * %TASK_UNINTERRUPTIBLE - at least @timeout jiffies are guaranteed to
1254 * pass before the routine returns. The routine will return 0
1256 * %TASK_INTERRUPTIBLE - the routine may return early if a signal is
1257 * delivered to the current task. In this case the remaining time
1258 * in jiffies will be returned, or 0 if the timer expired in time
1260 * The current task state is guaranteed to be TASK_RUNNING when this
1261 * routine returns.
1263 * Specifying a @timeout value of %MAX_SCHEDULE_TIMEOUT will schedule
1264 * the CPU away without a bound on the timeout. In this case the return
1265 * value will be %MAX_SCHEDULE_TIMEOUT.
1267 * In all cases the return value is guaranteed to be non-negative.
1269 signed long __sched schedule_timeout(signed long timeout)
1271 struct timer_list timer;
1272 unsigned long expire;
1274 switch (timeout)
1276 case MAX_SCHEDULE_TIMEOUT:
1278 * These two special cases are useful to be comfortable
1279 * in the caller. Nothing more. We could take
1280 * MAX_SCHEDULE_TIMEOUT from one of the negative value
1281 * but I' d like to return a valid offset (>=0) to allow
1282 * the caller to do everything it want with the retval.
1284 schedule();
1285 goto out;
1286 default:
1288 * Another bit of PARANOID. Note that the retval will be
1289 * 0 since no piece of kernel is supposed to do a check
1290 * for a negative retval of schedule_timeout() (since it
1291 * should never happens anyway). You just have the printk()
1292 * that will tell you if something is gone wrong and where.
1294 if (timeout < 0) {
1295 printk(KERN_ERR "schedule_timeout: wrong timeout "
1296 "value %lx\n", timeout);
1297 dump_stack();
1298 current->state = TASK_RUNNING;
1299 goto out;
1303 expire = timeout + jiffies;
1305 setup_timer_on_stack(&timer, process_timeout, (unsigned long)current);
1306 __mod_timer(&timer, expire, false);
1307 schedule();
1308 del_singleshot_timer_sync(&timer);
1310 /* Remove the timer from the object tracker */
1311 destroy_timer_on_stack(&timer);
1313 timeout = expire - jiffies;
1315 out:
1316 return timeout < 0 ? 0 : timeout;
1318 EXPORT_SYMBOL(schedule_timeout);
1321 * We can use __set_current_state() here because schedule_timeout() calls
1322 * schedule() unconditionally.
1324 signed long __sched schedule_timeout_interruptible(signed long timeout)
1326 __set_current_state(TASK_INTERRUPTIBLE);
1327 return schedule_timeout(timeout);
1329 EXPORT_SYMBOL(schedule_timeout_interruptible);
1331 signed long __sched schedule_timeout_killable(signed long timeout)
1333 __set_current_state(TASK_KILLABLE);
1334 return schedule_timeout(timeout);
1336 EXPORT_SYMBOL(schedule_timeout_killable);
1338 signed long __sched schedule_timeout_uninterruptible(signed long timeout)
1340 __set_current_state(TASK_UNINTERRUPTIBLE);
1341 return schedule_timeout(timeout);
1343 EXPORT_SYMBOL(schedule_timeout_uninterruptible);
1345 /* Thread ID - the internal kernel "pid" */
1346 SYSCALL_DEFINE0(gettid)
1348 return task_pid_vnr(current);
1352 * do_sysinfo - fill in sysinfo struct
1353 * @info: pointer to buffer to fill
1355 int do_sysinfo(struct sysinfo *info)
1357 unsigned long mem_total, sav_total;
1358 unsigned int mem_unit, bitcount;
1359 struct timespec tp;
1361 memset(info, 0, sizeof(struct sysinfo));
1363 ktime_get_ts(&tp);
1364 monotonic_to_bootbased(&tp);
1365 info->uptime = tp.tv_sec + (tp.tv_nsec ? 1 : 0);
1367 get_avenrun(info->loads, 0, SI_LOAD_SHIFT - FSHIFT);
1369 info->procs = nr_threads;
1371 si_meminfo(info);
1372 si_swapinfo(info);
1375 * If the sum of all the available memory (i.e. ram + swap)
1376 * is less than can be stored in a 32 bit unsigned long then
1377 * we can be binary compatible with 2.2.x kernels. If not,
1378 * well, in that case 2.2.x was broken anyways...
1380 * -Erik Andersen <andersee@debian.org>
1383 mem_total = info->totalram + info->totalswap;
1384 if (mem_total < info->totalram || mem_total < info->totalswap)
1385 goto out;
1386 bitcount = 0;
1387 mem_unit = info->mem_unit;
1388 while (mem_unit > 1) {
1389 bitcount++;
1390 mem_unit >>= 1;
1391 sav_total = mem_total;
1392 mem_total <<= 1;
1393 if (mem_total < sav_total)
1394 goto out;
1398 * If mem_total did not overflow, multiply all memory values by
1399 * info->mem_unit and set it to 1. This leaves things compatible
1400 * with 2.2.x, and also retains compatibility with earlier 2.4.x
1401 * kernels...
1404 info->mem_unit = 1;
1405 info->totalram <<= bitcount;
1406 info->freeram <<= bitcount;
1407 info->sharedram <<= bitcount;
1408 info->bufferram <<= bitcount;
1409 info->totalswap <<= bitcount;
1410 info->freeswap <<= bitcount;
1411 info->totalhigh <<= bitcount;
1412 info->freehigh <<= bitcount;
1414 out:
1415 return 0;
1418 SYSCALL_DEFINE1(sysinfo, struct sysinfo __user *, info)
1420 struct sysinfo val;
1422 do_sysinfo(&val);
1424 if (copy_to_user(info, &val, sizeof(struct sysinfo)))
1425 return -EFAULT;
1427 return 0;
1430 static int __cpuinit init_timers_cpu(int cpu)
1432 int j;
1433 struct tvec_base *base;
1434 static char __cpuinitdata tvec_base_done[NR_CPUS];
1436 if (!tvec_base_done[cpu]) {
1437 static char boot_done;
1439 if (boot_done) {
1441 * The APs use this path later in boot
1443 base = kmalloc_node(sizeof(*base),
1444 GFP_KERNEL | __GFP_ZERO,
1445 cpu_to_node(cpu));
1446 if (!base)
1447 return -ENOMEM;
1449 /* Make sure that tvec_base is 2 byte aligned */
1450 if (tbase_get_deferrable(base)) {
1451 WARN_ON(1);
1452 kfree(base);
1453 return -ENOMEM;
1455 per_cpu(tvec_bases, cpu) = base;
1456 } else {
1458 * This is for the boot CPU - we use compile-time
1459 * static initialisation because per-cpu memory isn't
1460 * ready yet and because the memory allocators are not
1461 * initialised either.
1463 boot_done = 1;
1464 base = &boot_tvec_bases;
1466 tvec_base_done[cpu] = 1;
1467 } else {
1468 base = per_cpu(tvec_bases, cpu);
1471 spin_lock_init(&base->lock);
1473 for (j = 0; j < TVN_SIZE; j++) {
1474 INIT_LIST_HEAD(base->tv5.vec + j);
1475 INIT_LIST_HEAD(base->tv4.vec + j);
1476 INIT_LIST_HEAD(base->tv3.vec + j);
1477 INIT_LIST_HEAD(base->tv2.vec + j);
1479 for (j = 0; j < TVR_SIZE; j++)
1480 INIT_LIST_HEAD(base->tv1.vec + j);
1482 base->timer_jiffies = jiffies;
1483 return 0;
1486 #ifdef CONFIG_HOTPLUG_CPU
1487 static void migrate_timer_list(struct tvec_base *new_base, struct list_head *head)
1489 struct timer_list *timer;
1491 while (!list_empty(head)) {
1492 timer = list_first_entry(head, struct timer_list, entry);
1493 detach_timer(timer, 0);
1494 timer_set_base(timer, new_base);
1495 internal_add_timer(new_base, timer);
1499 static void __cpuinit migrate_timers(int cpu)
1501 struct tvec_base *old_base;
1502 struct tvec_base *new_base;
1503 int i;
1505 BUG_ON(cpu_online(cpu));
1506 old_base = per_cpu(tvec_bases, cpu);
1507 new_base = get_cpu_var(tvec_bases);
1509 * The caller is globally serialized and nobody else
1510 * takes two locks at once, deadlock is not possible.
1512 spin_lock_irq(&new_base->lock);
1513 spin_lock_nested(&old_base->lock, SINGLE_DEPTH_NESTING);
1515 BUG_ON(old_base->running_timer);
1517 for (i = 0; i < TVR_SIZE; i++)
1518 migrate_timer_list(new_base, old_base->tv1.vec + i);
1519 for (i = 0; i < TVN_SIZE; i++) {
1520 migrate_timer_list(new_base, old_base->tv2.vec + i);
1521 migrate_timer_list(new_base, old_base->tv3.vec + i);
1522 migrate_timer_list(new_base, old_base->tv4.vec + i);
1523 migrate_timer_list(new_base, old_base->tv5.vec + i);
1526 spin_unlock(&old_base->lock);
1527 spin_unlock_irq(&new_base->lock);
1528 put_cpu_var(tvec_bases);
1530 #endif /* CONFIG_HOTPLUG_CPU */
1532 static int __cpuinit timer_cpu_notify(struct notifier_block *self,
1533 unsigned long action, void *hcpu)
1535 long cpu = (long)hcpu;
1536 switch(action) {
1537 case CPU_UP_PREPARE:
1538 case CPU_UP_PREPARE_FROZEN:
1539 if (init_timers_cpu(cpu) < 0)
1540 return NOTIFY_BAD;
1541 break;
1542 #ifdef CONFIG_HOTPLUG_CPU
1543 case CPU_DEAD:
1544 case CPU_DEAD_FROZEN:
1545 migrate_timers(cpu);
1546 break;
1547 #endif
1548 default:
1549 break;
1551 return NOTIFY_OK;
1554 static struct notifier_block __cpuinitdata timers_nb = {
1555 .notifier_call = timer_cpu_notify,
1559 void __init init_timers(void)
1561 int err = timer_cpu_notify(&timers_nb, (unsigned long)CPU_UP_PREPARE,
1562 (void *)(long)smp_processor_id());
1564 init_timer_stats();
1566 BUG_ON(err == NOTIFY_BAD);
1567 register_cpu_notifier(&timers_nb);
1568 open_softirq(TIMER_SOFTIRQ, run_timer_softirq);
1572 * msleep - sleep safely even with waitqueue interruptions
1573 * @msecs: Time in milliseconds to sleep for
1575 void msleep(unsigned int msecs)
1577 unsigned long timeout = msecs_to_jiffies(msecs) + 1;
1579 while (timeout)
1580 timeout = schedule_timeout_uninterruptible(timeout);
1583 EXPORT_SYMBOL(msleep);
1586 * msleep_interruptible - sleep waiting for signals
1587 * @msecs: Time in milliseconds to sleep for
1589 unsigned long msleep_interruptible(unsigned int msecs)
1591 unsigned long timeout = msecs_to_jiffies(msecs) + 1;
1593 while (timeout && !signal_pending(current))
1594 timeout = schedule_timeout_interruptible(timeout);
1595 return jiffies_to_msecs(timeout);
1598 EXPORT_SYMBOL(msleep_interruptible);