ARM: iop13xx: fix msi support with sparse IRQ
[linux-2.6/btrfs-unstable.git] / kernel / softirq.c
blob92f24f5e8d5281aa03cf51e77d26297b91643769
1 /*
2 * linux/kernel/softirq.c
4 * Copyright (C) 1992 Linus Torvalds
6 * Distribute under GPLv2.
8 * Rewritten. Old one was good in 2.2, but in 2.3 it was immoral. --ANK (990903)
9 */
11 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
13 #include <linux/export.h>
14 #include <linux/kernel_stat.h>
15 #include <linux/interrupt.h>
16 #include <linux/init.h>
17 #include <linux/mm.h>
18 #include <linux/notifier.h>
19 #include <linux/percpu.h>
20 #include <linux/cpu.h>
21 #include <linux/freezer.h>
22 #include <linux/kthread.h>
23 #include <linux/rcupdate.h>
24 #include <linux/ftrace.h>
25 #include <linux/smp.h>
26 #include <linux/smpboot.h>
27 #include <linux/tick.h>
28 #include <linux/irq.h>
30 #define CREATE_TRACE_POINTS
31 #include <trace/events/irq.h>
34 - No shared variables, all the data are CPU local.
35 - If a softirq needs serialization, let it serialize itself
36 by its own spinlocks.
37 - Even if softirq is serialized, only local cpu is marked for
38 execution. Hence, we get something sort of weak cpu binding.
39 Though it is still not clear, will it result in better locality
40 or will not.
42 Examples:
43 - NET RX softirq. It is multithreaded and does not require
44 any global serialization.
45 - NET TX softirq. It kicks software netdevice queues, hence
46 it is logically serialized per device, but this serialization
47 is invisible to common code.
48 - Tasklets: serialized wrt itself.
51 #ifndef __ARCH_IRQ_STAT
52 irq_cpustat_t irq_stat[NR_CPUS] ____cacheline_aligned;
53 EXPORT_SYMBOL(irq_stat);
54 #endif
56 static struct softirq_action softirq_vec[NR_SOFTIRQS] __cacheline_aligned_in_smp;
58 DEFINE_PER_CPU(struct task_struct *, ksoftirqd);
60 const char * const softirq_to_name[NR_SOFTIRQS] = {
61 "HI", "TIMER", "NET_TX", "NET_RX", "BLOCK", "BLOCK_IOPOLL",
62 "TASKLET", "SCHED", "HRTIMER", "RCU"
66 * we cannot loop indefinitely here to avoid userspace starvation,
67 * but we also don't want to introduce a worst case 1/HZ latency
68 * to the pending events, so lets the scheduler to balance
69 * the softirq load for us.
71 static void wakeup_softirqd(void)
73 /* Interrupts are disabled: no need to stop preemption */
74 struct task_struct *tsk = __this_cpu_read(ksoftirqd);
76 if (tsk && tsk->state != TASK_RUNNING)
77 wake_up_process(tsk);
81 * preempt_count and SOFTIRQ_OFFSET usage:
82 * - preempt_count is changed by SOFTIRQ_OFFSET on entering or leaving
83 * softirq processing.
84 * - preempt_count is changed by SOFTIRQ_DISABLE_OFFSET (= 2 * SOFTIRQ_OFFSET)
85 * on local_bh_disable or local_bh_enable.
86 * This lets us distinguish between whether we are currently processing
87 * softirq and whether we just have bh disabled.
91 * This one is for softirq.c-internal use,
92 * where hardirqs are disabled legitimately:
94 #ifdef CONFIG_TRACE_IRQFLAGS
95 void __local_bh_disable_ip(unsigned long ip, unsigned int cnt)
97 unsigned long flags;
99 WARN_ON_ONCE(in_irq());
101 raw_local_irq_save(flags);
103 * The preempt tracer hooks into preempt_count_add and will break
104 * lockdep because it calls back into lockdep after SOFTIRQ_OFFSET
105 * is set and before current->softirq_enabled is cleared.
106 * We must manually increment preempt_count here and manually
107 * call the trace_preempt_off later.
109 __preempt_count_add(cnt);
111 * Were softirqs turned off above:
113 if (softirq_count() == (cnt & SOFTIRQ_MASK))
114 trace_softirqs_off(ip);
115 raw_local_irq_restore(flags);
117 if (preempt_count() == cnt)
118 trace_preempt_off(CALLER_ADDR0, get_parent_ip(CALLER_ADDR1));
120 EXPORT_SYMBOL(__local_bh_disable_ip);
121 #endif /* CONFIG_TRACE_IRQFLAGS */
123 static void __local_bh_enable(unsigned int cnt)
125 WARN_ON_ONCE(!irqs_disabled());
127 if (softirq_count() == (cnt & SOFTIRQ_MASK))
128 trace_softirqs_on(_RET_IP_);
129 preempt_count_sub(cnt);
133 * Special-case - softirqs can safely be enabled in
134 * cond_resched_softirq(), or by __do_softirq(),
135 * without processing still-pending softirqs:
137 void _local_bh_enable(void)
139 WARN_ON_ONCE(in_irq());
140 __local_bh_enable(SOFTIRQ_DISABLE_OFFSET);
142 EXPORT_SYMBOL(_local_bh_enable);
144 void __local_bh_enable_ip(unsigned long ip, unsigned int cnt)
146 WARN_ON_ONCE(in_irq() || irqs_disabled());
147 #ifdef CONFIG_TRACE_IRQFLAGS
148 local_irq_disable();
149 #endif
151 * Are softirqs going to be turned on now:
153 if (softirq_count() == SOFTIRQ_DISABLE_OFFSET)
154 trace_softirqs_on(ip);
156 * Keep preemption disabled until we are done with
157 * softirq processing:
159 preempt_count_sub(cnt - 1);
161 if (unlikely(!in_interrupt() && local_softirq_pending())) {
163 * Run softirq if any pending. And do it in its own stack
164 * as we may be calling this deep in a task call stack already.
166 do_softirq();
169 preempt_count_dec();
170 #ifdef CONFIG_TRACE_IRQFLAGS
171 local_irq_enable();
172 #endif
173 preempt_check_resched();
175 EXPORT_SYMBOL(__local_bh_enable_ip);
178 * We restart softirq processing for at most MAX_SOFTIRQ_RESTART times,
179 * but break the loop if need_resched() is set or after 2 ms.
180 * The MAX_SOFTIRQ_TIME provides a nice upper bound in most cases, but in
181 * certain cases, such as stop_machine(), jiffies may cease to
182 * increment and so we need the MAX_SOFTIRQ_RESTART limit as
183 * well to make sure we eventually return from this method.
185 * These limits have been established via experimentation.
186 * The two things to balance is latency against fairness -
187 * we want to handle softirqs as soon as possible, but they
188 * should not be able to lock up the box.
190 #define MAX_SOFTIRQ_TIME msecs_to_jiffies(2)
191 #define MAX_SOFTIRQ_RESTART 10
193 #ifdef CONFIG_TRACE_IRQFLAGS
195 * When we run softirqs from irq_exit() and thus on the hardirq stack we need
196 * to keep the lockdep irq context tracking as tight as possible in order to
197 * not miss-qualify lock contexts and miss possible deadlocks.
200 static inline bool lockdep_softirq_start(void)
202 bool in_hardirq = false;
204 if (trace_hardirq_context(current)) {
205 in_hardirq = true;
206 trace_hardirq_exit();
209 lockdep_softirq_enter();
211 return in_hardirq;
214 static inline void lockdep_softirq_end(bool in_hardirq)
216 lockdep_softirq_exit();
218 if (in_hardirq)
219 trace_hardirq_enter();
221 #else
222 static inline bool lockdep_softirq_start(void) { return false; }
223 static inline void lockdep_softirq_end(bool in_hardirq) { }
224 #endif
226 asmlinkage __visible void __do_softirq(void)
228 unsigned long end = jiffies + MAX_SOFTIRQ_TIME;
229 unsigned long old_flags = current->flags;
230 int max_restart = MAX_SOFTIRQ_RESTART;
231 struct softirq_action *h;
232 bool in_hardirq;
233 __u32 pending;
234 int softirq_bit;
235 int cpu;
238 * Mask out PF_MEMALLOC s current task context is borrowed for the
239 * softirq. A softirq handled such as network RX might set PF_MEMALLOC
240 * again if the socket is related to swap
242 current->flags &= ~PF_MEMALLOC;
244 pending = local_softirq_pending();
245 account_irq_enter_time(current);
247 __local_bh_disable_ip(_RET_IP_, SOFTIRQ_OFFSET);
248 in_hardirq = lockdep_softirq_start();
250 cpu = smp_processor_id();
251 restart:
252 /* Reset the pending bitmask before enabling irqs */
253 set_softirq_pending(0);
255 local_irq_enable();
257 h = softirq_vec;
259 while ((softirq_bit = ffs(pending))) {
260 unsigned int vec_nr;
261 int prev_count;
263 h += softirq_bit - 1;
265 vec_nr = h - softirq_vec;
266 prev_count = preempt_count();
268 kstat_incr_softirqs_this_cpu(vec_nr);
270 trace_softirq_entry(vec_nr);
271 h->action(h);
272 trace_softirq_exit(vec_nr);
273 if (unlikely(prev_count != preempt_count())) {
274 pr_err("huh, entered softirq %u %s %p with preempt_count %08x, exited with %08x?\n",
275 vec_nr, softirq_to_name[vec_nr], h->action,
276 prev_count, preempt_count());
277 preempt_count_set(prev_count);
279 rcu_bh_qs(cpu);
280 h++;
281 pending >>= softirq_bit;
284 local_irq_disable();
286 pending = local_softirq_pending();
287 if (pending) {
288 if (time_before(jiffies, end) && !need_resched() &&
289 --max_restart)
290 goto restart;
292 wakeup_softirqd();
295 lockdep_softirq_end(in_hardirq);
296 account_irq_exit_time(current);
297 __local_bh_enable(SOFTIRQ_OFFSET);
298 WARN_ON_ONCE(in_interrupt());
299 tsk_restore_flags(current, old_flags, PF_MEMALLOC);
302 asmlinkage __visible void do_softirq(void)
304 __u32 pending;
305 unsigned long flags;
307 if (in_interrupt())
308 return;
310 local_irq_save(flags);
312 pending = local_softirq_pending();
314 if (pending)
315 do_softirq_own_stack();
317 local_irq_restore(flags);
321 * Enter an interrupt context.
323 void irq_enter(void)
325 rcu_irq_enter();
326 if (is_idle_task(current) && !in_interrupt()) {
328 * Prevent raise_softirq from needlessly waking up ksoftirqd
329 * here, as softirq will be serviced on return from interrupt.
331 local_bh_disable();
332 tick_irq_enter();
333 _local_bh_enable();
336 __irq_enter();
339 static inline void invoke_softirq(void)
341 if (!force_irqthreads) {
342 #ifdef CONFIG_HAVE_IRQ_EXIT_ON_IRQ_STACK
344 * We can safely execute softirq on the current stack if
345 * it is the irq stack, because it should be near empty
346 * at this stage.
348 __do_softirq();
349 #else
351 * Otherwise, irq_exit() is called on the task stack that can
352 * be potentially deep already. So call softirq in its own stack
353 * to prevent from any overrun.
355 do_softirq_own_stack();
356 #endif
357 } else {
358 wakeup_softirqd();
362 static inline void tick_irq_exit(void)
364 #ifdef CONFIG_NO_HZ_COMMON
365 int cpu = smp_processor_id();
367 /* Make sure that timer wheel updates are propagated */
368 if ((idle_cpu(cpu) && !need_resched()) || tick_nohz_full_cpu(cpu)) {
369 if (!in_interrupt())
370 tick_nohz_irq_exit();
372 #endif
376 * Exit an interrupt context. Process softirqs if needed and possible:
378 void irq_exit(void)
380 #ifndef __ARCH_IRQ_EXIT_IRQS_DISABLED
381 local_irq_disable();
382 #else
383 WARN_ON_ONCE(!irqs_disabled());
384 #endif
386 account_irq_exit_time(current);
387 preempt_count_sub(HARDIRQ_OFFSET);
388 if (!in_interrupt() && local_softirq_pending())
389 invoke_softirq();
391 tick_irq_exit();
392 rcu_irq_exit();
393 trace_hardirq_exit(); /* must be last! */
397 * This function must run with irqs disabled!
399 inline void raise_softirq_irqoff(unsigned int nr)
401 __raise_softirq_irqoff(nr);
404 * If we're in an interrupt or softirq, we're done
405 * (this also catches softirq-disabled code). We will
406 * actually run the softirq once we return from
407 * the irq or softirq.
409 * Otherwise we wake up ksoftirqd to make sure we
410 * schedule the softirq soon.
412 if (!in_interrupt())
413 wakeup_softirqd();
416 void raise_softirq(unsigned int nr)
418 unsigned long flags;
420 local_irq_save(flags);
421 raise_softirq_irqoff(nr);
422 local_irq_restore(flags);
425 void __raise_softirq_irqoff(unsigned int nr)
427 trace_softirq_raise(nr);
428 or_softirq_pending(1UL << nr);
431 void open_softirq(int nr, void (*action)(struct softirq_action *))
433 softirq_vec[nr].action = action;
437 * Tasklets
439 struct tasklet_head {
440 struct tasklet_struct *head;
441 struct tasklet_struct **tail;
444 static DEFINE_PER_CPU(struct tasklet_head, tasklet_vec);
445 static DEFINE_PER_CPU(struct tasklet_head, tasklet_hi_vec);
447 void __tasklet_schedule(struct tasklet_struct *t)
449 unsigned long flags;
451 local_irq_save(flags);
452 t->next = NULL;
453 *__this_cpu_read(tasklet_vec.tail) = t;
454 __this_cpu_write(tasklet_vec.tail, &(t->next));
455 raise_softirq_irqoff(TASKLET_SOFTIRQ);
456 local_irq_restore(flags);
458 EXPORT_SYMBOL(__tasklet_schedule);
460 void __tasklet_hi_schedule(struct tasklet_struct *t)
462 unsigned long flags;
464 local_irq_save(flags);
465 t->next = NULL;
466 *__this_cpu_read(tasklet_hi_vec.tail) = t;
467 __this_cpu_write(tasklet_hi_vec.tail, &(t->next));
468 raise_softirq_irqoff(HI_SOFTIRQ);
469 local_irq_restore(flags);
471 EXPORT_SYMBOL(__tasklet_hi_schedule);
473 void __tasklet_hi_schedule_first(struct tasklet_struct *t)
475 BUG_ON(!irqs_disabled());
477 t->next = __this_cpu_read(tasklet_hi_vec.head);
478 __this_cpu_write(tasklet_hi_vec.head, t);
479 __raise_softirq_irqoff(HI_SOFTIRQ);
481 EXPORT_SYMBOL(__tasklet_hi_schedule_first);
483 static void tasklet_action(struct softirq_action *a)
485 struct tasklet_struct *list;
487 local_irq_disable();
488 list = __this_cpu_read(tasklet_vec.head);
489 __this_cpu_write(tasklet_vec.head, NULL);
490 __this_cpu_write(tasklet_vec.tail, &__get_cpu_var(tasklet_vec).head);
491 local_irq_enable();
493 while (list) {
494 struct tasklet_struct *t = list;
496 list = list->next;
498 if (tasklet_trylock(t)) {
499 if (!atomic_read(&t->count)) {
500 if (!test_and_clear_bit(TASKLET_STATE_SCHED,
501 &t->state))
502 BUG();
503 t->func(t->data);
504 tasklet_unlock(t);
505 continue;
507 tasklet_unlock(t);
510 local_irq_disable();
511 t->next = NULL;
512 *__this_cpu_read(tasklet_vec.tail) = t;
513 __this_cpu_write(tasklet_vec.tail, &(t->next));
514 __raise_softirq_irqoff(TASKLET_SOFTIRQ);
515 local_irq_enable();
519 static void tasklet_hi_action(struct softirq_action *a)
521 struct tasklet_struct *list;
523 local_irq_disable();
524 list = __this_cpu_read(tasklet_hi_vec.head);
525 __this_cpu_write(tasklet_hi_vec.head, NULL);
526 __this_cpu_write(tasklet_hi_vec.tail, &__get_cpu_var(tasklet_hi_vec).head);
527 local_irq_enable();
529 while (list) {
530 struct tasklet_struct *t = list;
532 list = list->next;
534 if (tasklet_trylock(t)) {
535 if (!atomic_read(&t->count)) {
536 if (!test_and_clear_bit(TASKLET_STATE_SCHED,
537 &t->state))
538 BUG();
539 t->func(t->data);
540 tasklet_unlock(t);
541 continue;
543 tasklet_unlock(t);
546 local_irq_disable();
547 t->next = NULL;
548 *__this_cpu_read(tasklet_hi_vec.tail) = t;
549 __this_cpu_write(tasklet_hi_vec.tail, &(t->next));
550 __raise_softirq_irqoff(HI_SOFTIRQ);
551 local_irq_enable();
555 void tasklet_init(struct tasklet_struct *t,
556 void (*func)(unsigned long), unsigned long data)
558 t->next = NULL;
559 t->state = 0;
560 atomic_set(&t->count, 0);
561 t->func = func;
562 t->data = data;
564 EXPORT_SYMBOL(tasklet_init);
566 void tasklet_kill(struct tasklet_struct *t)
568 if (in_interrupt())
569 pr_notice("Attempt to kill tasklet from interrupt\n");
571 while (test_and_set_bit(TASKLET_STATE_SCHED, &t->state)) {
572 do {
573 yield();
574 } while (test_bit(TASKLET_STATE_SCHED, &t->state));
576 tasklet_unlock_wait(t);
577 clear_bit(TASKLET_STATE_SCHED, &t->state);
579 EXPORT_SYMBOL(tasklet_kill);
582 * tasklet_hrtimer
586 * The trampoline is called when the hrtimer expires. It schedules a tasklet
587 * to run __tasklet_hrtimer_trampoline() which in turn will call the intended
588 * hrtimer callback, but from softirq context.
590 static enum hrtimer_restart __hrtimer_tasklet_trampoline(struct hrtimer *timer)
592 struct tasklet_hrtimer *ttimer =
593 container_of(timer, struct tasklet_hrtimer, timer);
595 tasklet_hi_schedule(&ttimer->tasklet);
596 return HRTIMER_NORESTART;
600 * Helper function which calls the hrtimer callback from
601 * tasklet/softirq context
603 static void __tasklet_hrtimer_trampoline(unsigned long data)
605 struct tasklet_hrtimer *ttimer = (void *)data;
606 enum hrtimer_restart restart;
608 restart = ttimer->function(&ttimer->timer);
609 if (restart != HRTIMER_NORESTART)
610 hrtimer_restart(&ttimer->timer);
614 * tasklet_hrtimer_init - Init a tasklet/hrtimer combo for softirq callbacks
615 * @ttimer: tasklet_hrtimer which is initialized
616 * @function: hrtimer callback function which gets called from softirq context
617 * @which_clock: clock id (CLOCK_MONOTONIC/CLOCK_REALTIME)
618 * @mode: hrtimer mode (HRTIMER_MODE_ABS/HRTIMER_MODE_REL)
620 void tasklet_hrtimer_init(struct tasklet_hrtimer *ttimer,
621 enum hrtimer_restart (*function)(struct hrtimer *),
622 clockid_t which_clock, enum hrtimer_mode mode)
624 hrtimer_init(&ttimer->timer, which_clock, mode);
625 ttimer->timer.function = __hrtimer_tasklet_trampoline;
626 tasklet_init(&ttimer->tasklet, __tasklet_hrtimer_trampoline,
627 (unsigned long)ttimer);
628 ttimer->function = function;
630 EXPORT_SYMBOL_GPL(tasklet_hrtimer_init);
632 void __init softirq_init(void)
634 int cpu;
636 for_each_possible_cpu(cpu) {
637 per_cpu(tasklet_vec, cpu).tail =
638 &per_cpu(tasklet_vec, cpu).head;
639 per_cpu(tasklet_hi_vec, cpu).tail =
640 &per_cpu(tasklet_hi_vec, cpu).head;
643 open_softirq(TASKLET_SOFTIRQ, tasklet_action);
644 open_softirq(HI_SOFTIRQ, tasklet_hi_action);
647 static int ksoftirqd_should_run(unsigned int cpu)
649 return local_softirq_pending();
652 static void run_ksoftirqd(unsigned int cpu)
654 local_irq_disable();
655 if (local_softirq_pending()) {
657 * We can safely run softirq on inline stack, as we are not deep
658 * in the task stack here.
660 __do_softirq();
661 rcu_note_context_switch(cpu);
662 local_irq_enable();
663 cond_resched();
664 return;
666 local_irq_enable();
669 #ifdef CONFIG_HOTPLUG_CPU
671 * tasklet_kill_immediate is called to remove a tasklet which can already be
672 * scheduled for execution on @cpu.
674 * Unlike tasklet_kill, this function removes the tasklet
675 * _immediately_, even if the tasklet is in TASKLET_STATE_SCHED state.
677 * When this function is called, @cpu must be in the CPU_DEAD state.
679 void tasklet_kill_immediate(struct tasklet_struct *t, unsigned int cpu)
681 struct tasklet_struct **i;
683 BUG_ON(cpu_online(cpu));
684 BUG_ON(test_bit(TASKLET_STATE_RUN, &t->state));
686 if (!test_bit(TASKLET_STATE_SCHED, &t->state))
687 return;
689 /* CPU is dead, so no lock needed. */
690 for (i = &per_cpu(tasklet_vec, cpu).head; *i; i = &(*i)->next) {
691 if (*i == t) {
692 *i = t->next;
693 /* If this was the tail element, move the tail ptr */
694 if (*i == NULL)
695 per_cpu(tasklet_vec, cpu).tail = i;
696 return;
699 BUG();
702 static void takeover_tasklets(unsigned int cpu)
704 /* CPU is dead, so no lock needed. */
705 local_irq_disable();
707 /* Find end, append list for that CPU. */
708 if (&per_cpu(tasklet_vec, cpu).head != per_cpu(tasklet_vec, cpu).tail) {
709 *__this_cpu_read(tasklet_vec.tail) = per_cpu(tasklet_vec, cpu).head;
710 this_cpu_write(tasklet_vec.tail, per_cpu(tasklet_vec, cpu).tail);
711 per_cpu(tasklet_vec, cpu).head = NULL;
712 per_cpu(tasklet_vec, cpu).tail = &per_cpu(tasklet_vec, cpu).head;
714 raise_softirq_irqoff(TASKLET_SOFTIRQ);
716 if (&per_cpu(tasklet_hi_vec, cpu).head != per_cpu(tasklet_hi_vec, cpu).tail) {
717 *__this_cpu_read(tasklet_hi_vec.tail) = per_cpu(tasklet_hi_vec, cpu).head;
718 __this_cpu_write(tasklet_hi_vec.tail, per_cpu(tasklet_hi_vec, cpu).tail);
719 per_cpu(tasklet_hi_vec, cpu).head = NULL;
720 per_cpu(tasklet_hi_vec, cpu).tail = &per_cpu(tasklet_hi_vec, cpu).head;
722 raise_softirq_irqoff(HI_SOFTIRQ);
724 local_irq_enable();
726 #endif /* CONFIG_HOTPLUG_CPU */
728 static int cpu_callback(struct notifier_block *nfb, unsigned long action,
729 void *hcpu)
731 switch (action) {
732 #ifdef CONFIG_HOTPLUG_CPU
733 case CPU_DEAD:
734 case CPU_DEAD_FROZEN:
735 takeover_tasklets((unsigned long)hcpu);
736 break;
737 #endif /* CONFIG_HOTPLUG_CPU */
739 return NOTIFY_OK;
742 static struct notifier_block cpu_nfb = {
743 .notifier_call = cpu_callback
746 static struct smp_hotplug_thread softirq_threads = {
747 .store = &ksoftirqd,
748 .thread_should_run = ksoftirqd_should_run,
749 .thread_fn = run_ksoftirqd,
750 .thread_comm = "ksoftirqd/%u",
753 static __init int spawn_ksoftirqd(void)
755 register_cpu_notifier(&cpu_nfb);
757 BUG_ON(smpboot_register_percpu_thread(&softirq_threads));
759 return 0;
761 early_initcall(spawn_ksoftirqd);
764 * [ These __weak aliases are kept in a separate compilation unit, so that
765 * GCC does not inline them incorrectly. ]
768 int __init __weak early_irq_init(void)
770 return 0;
773 int __init __weak arch_probe_nr_irqs(void)
775 return NR_IRQS_LEGACY;
778 int __init __weak arch_early_irq_init(void)
780 return 0;
783 unsigned int __weak arch_dynirq_lower_bound(unsigned int from)
785 return from;