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1 /*
2  *	linux/kernel/softirq.c
3  *
4  *	Copyright (C) 1992 Linus Torvalds
5  *
6  *	Distribute under GPLv2.
7  *
8  *	Rewritten. Old one was good in 2.2, but in 2.3 it was immoral. --ANK (990903)
9  */
10 
11 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
12 
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>
29 
30 #define CREATE_TRACE_POINTS
31 #include <trace/events/irq.h>
32 
33 /*
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.
41 
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.
49  */
50 
51 #ifndef __ARCH_IRQ_STAT
52 irq_cpustat_t irq_stat[NR_CPUS] ____cacheline_aligned;
53 EXPORT_SYMBOL(irq_stat);
54 #endif
55 
56 static struct softirq_action softirq_vec[NR_SOFTIRQS] __cacheline_aligned_in_smp;
57 
58 DEFINE_PER_CPU(struct task_struct *, ksoftirqd);
59 
60 const char * const softirq_to_name[NR_SOFTIRQS] = {
61 	"HI", "TIMER", "NET_TX", "NET_RX", "BLOCK", "IRQ_POLL",
62 	"TASKLET", "SCHED", "HRTIMER", "RCU"
63 };
64 
65 /*
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.
70  */
wakeup_softirqd(void)71 static void wakeup_softirqd(void)
72 {
73 	/* Interrupts are disabled: no need to stop preemption */
74 	struct task_struct *tsk = __this_cpu_read(ksoftirqd);
75 
76 	if (tsk && tsk->state != TASK_RUNNING)
77 		wake_up_process(tsk);
78 }
79 
80 /*
81  * If ksoftirqd is scheduled, we do not want to process pending softirqs
82  * right now. Let ksoftirqd handle this at its own rate, to get fairness,
83  * unless we're doing some of the synchronous softirqs.
84  */
85 #define SOFTIRQ_NOW_MASK ((1 << HI_SOFTIRQ) | (1 << TASKLET_SOFTIRQ))
ksoftirqd_running(unsigned long pending)86 static bool ksoftirqd_running(unsigned long pending)
87 {
88 	struct task_struct *tsk = __this_cpu_read(ksoftirqd);
89 
90 	if (pending & SOFTIRQ_NOW_MASK)
91 		return false;
92 	return tsk && (tsk->state == TASK_RUNNING);
93 }
94 
95 /*
96  * preempt_count and SOFTIRQ_OFFSET usage:
97  * - preempt_count is changed by SOFTIRQ_OFFSET on entering or leaving
98  *   softirq processing.
99  * - preempt_count is changed by SOFTIRQ_DISABLE_OFFSET (= 2 * SOFTIRQ_OFFSET)
100  *   on local_bh_disable or local_bh_enable.
101  * This lets us distinguish between whether we are currently processing
102  * softirq and whether we just have bh disabled.
103  */
104 
105 /*
106  * This one is for softirq.c-internal use,
107  * where hardirqs are disabled legitimately:
108  */
109 #ifdef CONFIG_TRACE_IRQFLAGS
__local_bh_disable_ip(unsigned long ip,unsigned int cnt)110 void __local_bh_disable_ip(unsigned long ip, unsigned int cnt)
111 {
112 	unsigned long flags;
113 
114 	WARN_ON_ONCE(in_irq());
115 
116 	raw_local_irq_save(flags);
117 	/*
118 	 * The preempt tracer hooks into preempt_count_add and will break
119 	 * lockdep because it calls back into lockdep after SOFTIRQ_OFFSET
120 	 * is set and before current->softirq_enabled is cleared.
121 	 * We must manually increment preempt_count here and manually
122 	 * call the trace_preempt_off later.
123 	 */
124 	__preempt_count_add(cnt);
125 	/*
126 	 * Were softirqs turned off above:
127 	 */
128 	if (softirq_count() == (cnt & SOFTIRQ_MASK))
129 		trace_softirqs_off(ip);
130 	raw_local_irq_restore(flags);
131 
132 	if (preempt_count() == cnt) {
133 #ifdef CONFIG_DEBUG_PREEMPT
134 		current->preempt_disable_ip = get_lock_parent_ip();
135 #endif
136 		trace_preempt_off(CALLER_ADDR0, get_lock_parent_ip());
137 	}
138 }
139 EXPORT_SYMBOL(__local_bh_disable_ip);
140 #endif /* CONFIG_TRACE_IRQFLAGS */
141 
__local_bh_enable(unsigned int cnt)142 static void __local_bh_enable(unsigned int cnt)
143 {
144 	WARN_ON_ONCE(!irqs_disabled());
145 
146 	if (softirq_count() == (cnt & SOFTIRQ_MASK))
147 		trace_softirqs_on(_RET_IP_);
148 	preempt_count_sub(cnt);
149 }
150 
151 /*
152  * Special-case - softirqs can safely be enabled in
153  * cond_resched_softirq(), or by __do_softirq(),
154  * without processing still-pending softirqs:
155  */
_local_bh_enable(void)156 void _local_bh_enable(void)
157 {
158 	WARN_ON_ONCE(in_irq());
159 	__local_bh_enable(SOFTIRQ_DISABLE_OFFSET);
160 }
161 EXPORT_SYMBOL(_local_bh_enable);
162 
__local_bh_enable_ip(unsigned long ip,unsigned int cnt)163 void __local_bh_enable_ip(unsigned long ip, unsigned int cnt)
164 {
165 	WARN_ON_ONCE(in_irq() || irqs_disabled());
166 #ifdef CONFIG_TRACE_IRQFLAGS
167 	local_irq_disable();
168 #endif
169 	/*
170 	 * Are softirqs going to be turned on now:
171 	 */
172 	if (softirq_count() == SOFTIRQ_DISABLE_OFFSET)
173 		trace_softirqs_on(ip);
174 	/*
175 	 * Keep preemption disabled until we are done with
176 	 * softirq processing:
177 	 */
178 	preempt_count_sub(cnt - 1);
179 
180 	if (unlikely(!in_interrupt() && local_softirq_pending())) {
181 		/*
182 		 * Run softirq if any pending. And do it in its own stack
183 		 * as we may be calling this deep in a task call stack already.
184 		 */
185 		do_softirq();
186 	}
187 
188 	preempt_count_dec();
189 #ifdef CONFIG_TRACE_IRQFLAGS
190 	local_irq_enable();
191 #endif
192 	preempt_check_resched();
193 }
194 EXPORT_SYMBOL(__local_bh_enable_ip);
195 
196 /*
197  * We restart softirq processing for at most MAX_SOFTIRQ_RESTART times,
198  * but break the loop if need_resched() is set or after 2 ms.
199  * The MAX_SOFTIRQ_TIME provides a nice upper bound in most cases, but in
200  * certain cases, such as stop_machine(), jiffies may cease to
201  * increment and so we need the MAX_SOFTIRQ_RESTART limit as
202  * well to make sure we eventually return from this method.
203  *
204  * These limits have been established via experimentation.
205  * The two things to balance is latency against fairness -
206  * we want to handle softirqs as soon as possible, but they
207  * should not be able to lock up the box.
208  */
209 #define MAX_SOFTIRQ_TIME  msecs_to_jiffies(2)
210 #define MAX_SOFTIRQ_RESTART 10
211 
212 #ifdef CONFIG_TRACE_IRQFLAGS
213 /*
214  * When we run softirqs from irq_exit() and thus on the hardirq stack we need
215  * to keep the lockdep irq context tracking as tight as possible in order to
216  * not miss-qualify lock contexts and miss possible deadlocks.
217  */
218 
lockdep_softirq_start(void)219 static inline bool lockdep_softirq_start(void)
220 {
221 	bool in_hardirq = false;
222 
223 	if (trace_hardirq_context(current)) {
224 		in_hardirq = true;
225 		trace_hardirq_exit();
226 	}
227 
228 	lockdep_softirq_enter();
229 
230 	return in_hardirq;
231 }
232 
lockdep_softirq_end(bool in_hardirq)233 static inline void lockdep_softirq_end(bool in_hardirq)
234 {
235 	lockdep_softirq_exit();
236 
237 	if (in_hardirq)
238 		trace_hardirq_enter();
239 }
240 #else
lockdep_softirq_start(void)241 static inline bool lockdep_softirq_start(void) { return false; }
lockdep_softirq_end(bool in_hardirq)242 static inline void lockdep_softirq_end(bool in_hardirq) { }
243 #endif
244 
__do_softirq(void)245 asmlinkage __visible void __softirq_entry __do_softirq(void)
246 {
247 	unsigned long end = jiffies + MAX_SOFTIRQ_TIME;
248 	unsigned long old_flags = current->flags;
249 	int max_restart = MAX_SOFTIRQ_RESTART;
250 	struct softirq_action *h;
251 	bool in_hardirq;
252 	__u32 pending;
253 	int softirq_bit;
254 
255 	/*
256 	 * Mask out PF_MEMALLOC s current task context is borrowed for the
257 	 * softirq. A softirq handled such as network RX might set PF_MEMALLOC
258 	 * again if the socket is related to swap
259 	 */
260 	current->flags &= ~PF_MEMALLOC;
261 
262 	pending = local_softirq_pending();
263 	account_irq_enter_time(current);
264 
265 	__local_bh_disable_ip(_RET_IP_, SOFTIRQ_OFFSET);
266 	in_hardirq = lockdep_softirq_start();
267 
268 restart:
269 	/* Reset the pending bitmask before enabling irqs */
270 	set_softirq_pending(0);
271 
272 	local_irq_enable();
273 
274 	h = softirq_vec;
275 
276 	while ((softirq_bit = ffs(pending))) {
277 		unsigned int vec_nr;
278 		int prev_count;
279 
280 		h += softirq_bit - 1;
281 
282 		vec_nr = h - softirq_vec;
283 		prev_count = preempt_count();
284 
285 		kstat_incr_softirqs_this_cpu(vec_nr);
286 
287 		trace_softirq_entry(vec_nr);
288 		h->action(h);
289 		trace_softirq_exit(vec_nr);
290 		if (unlikely(prev_count != preempt_count())) {
291 			pr_err("huh, entered softirq %u %s %p with preempt_count %08x, exited with %08x?\n",
292 			       vec_nr, softirq_to_name[vec_nr], h->action,
293 			       prev_count, preempt_count());
294 			preempt_count_set(prev_count);
295 		}
296 		h++;
297 		pending >>= softirq_bit;
298 	}
299 
300 	rcu_bh_qs();
301 	local_irq_disable();
302 
303 	pending = local_softirq_pending();
304 	if (pending) {
305 		if (time_before(jiffies, end) && !need_resched() &&
306 		    --max_restart)
307 			goto restart;
308 
309 		wakeup_softirqd();
310 	}
311 
312 	lockdep_softirq_end(in_hardirq);
313 	account_irq_exit_time(current);
314 	__local_bh_enable(SOFTIRQ_OFFSET);
315 	WARN_ON_ONCE(in_interrupt());
316 	current_restore_flags(old_flags, PF_MEMALLOC);
317 }
318 
do_softirq(void)319 asmlinkage __visible void do_softirq(void)
320 {
321 	__u32 pending;
322 	unsigned long flags;
323 
324 	if (in_interrupt())
325 		return;
326 
327 	local_irq_save(flags);
328 
329 	pending = local_softirq_pending();
330 
331 	if (pending && !ksoftirqd_running(pending))
332 		do_softirq_own_stack();
333 
334 	local_irq_restore(flags);
335 }
336 
337 /*
338  * Enter an interrupt context.
339  */
irq_enter(void)340 void irq_enter(void)
341 {
342 	rcu_irq_enter();
343 	if (is_idle_task(current) && !in_interrupt()) {
344 		/*
345 		 * Prevent raise_softirq from needlessly waking up ksoftirqd
346 		 * here, as softirq will be serviced on return from interrupt.
347 		 */
348 		local_bh_disable();
349 		tick_irq_enter();
350 		_local_bh_enable();
351 	}
352 
353 	__irq_enter();
354 }
355 
invoke_softirq(void)356 static inline void invoke_softirq(void)
357 {
358 	if (ksoftirqd_running(local_softirq_pending()))
359 		return;
360 
361 	if (!force_irqthreads) {
362 #ifdef CONFIG_HAVE_IRQ_EXIT_ON_IRQ_STACK
363 		/*
364 		 * We can safely execute softirq on the current stack if
365 		 * it is the irq stack, because it should be near empty
366 		 * at this stage.
367 		 */
368 		__do_softirq();
369 #else
370 		/*
371 		 * Otherwise, irq_exit() is called on the task stack that can
372 		 * be potentially deep already. So call softirq in its own stack
373 		 * to prevent from any overrun.
374 		 */
375 		do_softirq_own_stack();
376 #endif
377 	} else {
378 		wakeup_softirqd();
379 	}
380 }
381 
tick_irq_exit(void)382 static inline void tick_irq_exit(void)
383 {
384 #ifdef CONFIG_NO_HZ_COMMON
385 	int cpu = smp_processor_id();
386 
387 	/* Make sure that timer wheel updates are propagated */
388 	if ((idle_cpu(cpu) && !need_resched()) || tick_nohz_full_cpu(cpu)) {
389 		if (!in_irq())
390 			tick_nohz_irq_exit();
391 	}
392 #endif
393 }
394 
395 /*
396  * Exit an interrupt context. Process softirqs if needed and possible:
397  */
irq_exit(void)398 void irq_exit(void)
399 {
400 #ifndef __ARCH_IRQ_EXIT_IRQS_DISABLED
401 	local_irq_disable();
402 #else
403 	WARN_ON_ONCE(!irqs_disabled());
404 #endif
405 
406 	account_irq_exit_time(current);
407 	preempt_count_sub(HARDIRQ_OFFSET);
408 	if (!in_interrupt() && local_softirq_pending())
409 		invoke_softirq();
410 
411 	tick_irq_exit();
412 	rcu_irq_exit();
413 	trace_hardirq_exit(); /* must be last! */
414 }
415 
416 /*
417  * This function must run with irqs disabled!
418  */
raise_softirq_irqoff(unsigned int nr)419 inline void raise_softirq_irqoff(unsigned int nr)
420 {
421 	__raise_softirq_irqoff(nr);
422 
423 	/*
424 	 * If we're in an interrupt or softirq, we're done
425 	 * (this also catches softirq-disabled code). We will
426 	 * actually run the softirq once we return from
427 	 * the irq or softirq.
428 	 *
429 	 * Otherwise we wake up ksoftirqd to make sure we
430 	 * schedule the softirq soon.
431 	 */
432 	if (!in_interrupt())
433 		wakeup_softirqd();
434 }
435 
raise_softirq(unsigned int nr)436 void raise_softirq(unsigned int nr)
437 {
438 	unsigned long flags;
439 
440 	local_irq_save(flags);
441 	raise_softirq_irqoff(nr);
442 	local_irq_restore(flags);
443 }
444 
__raise_softirq_irqoff(unsigned int nr)445 void __raise_softirq_irqoff(unsigned int nr)
446 {
447 	trace_softirq_raise(nr);
448 	or_softirq_pending(1UL << nr);
449 }
450 
open_softirq(int nr,void (* action)(struct softirq_action *))451 void open_softirq(int nr, void (*action)(struct softirq_action *))
452 {
453 	softirq_vec[nr].action = action;
454 }
455 
456 /*
457  * Tasklets
458  */
459 struct tasklet_head {
460 	struct tasklet_struct *head;
461 	struct tasklet_struct **tail;
462 };
463 
464 static DEFINE_PER_CPU(struct tasklet_head, tasklet_vec);
465 static DEFINE_PER_CPU(struct tasklet_head, tasklet_hi_vec);
466 
__tasklet_schedule(struct tasklet_struct * t)467 void __tasklet_schedule(struct tasklet_struct *t)
468 {
469 	unsigned long flags;
470 
471 	local_irq_save(flags);
472 	t->next = NULL;
473 	*__this_cpu_read(tasklet_vec.tail) = t;
474 	__this_cpu_write(tasklet_vec.tail, &(t->next));
475 	raise_softirq_irqoff(TASKLET_SOFTIRQ);
476 	local_irq_restore(flags);
477 }
478 EXPORT_SYMBOL(__tasklet_schedule);
479 
__tasklet_hi_schedule(struct tasklet_struct * t)480 void __tasklet_hi_schedule(struct tasklet_struct *t)
481 {
482 	unsigned long flags;
483 
484 	local_irq_save(flags);
485 	t->next = NULL;
486 	*__this_cpu_read(tasklet_hi_vec.tail) = t;
487 	__this_cpu_write(tasklet_hi_vec.tail,  &(t->next));
488 	raise_softirq_irqoff(HI_SOFTIRQ);
489 	local_irq_restore(flags);
490 }
491 EXPORT_SYMBOL(__tasklet_hi_schedule);
492 
tasklet_action(struct softirq_action * a)493 static __latent_entropy void tasklet_action(struct softirq_action *a)
494 {
495 	struct tasklet_struct *list;
496 
497 	local_irq_disable();
498 	list = __this_cpu_read(tasklet_vec.head);
499 	__this_cpu_write(tasklet_vec.head, NULL);
500 	__this_cpu_write(tasklet_vec.tail, this_cpu_ptr(&tasklet_vec.head));
501 	local_irq_enable();
502 
503 	while (list) {
504 		struct tasklet_struct *t = list;
505 
506 		list = list->next;
507 
508 		if (tasklet_trylock(t)) {
509 			if (!atomic_read(&t->count)) {
510 				if (!test_and_clear_bit(TASKLET_STATE_SCHED,
511 							&t->state))
512 					BUG();
513 				t->func(t->data);
514 				tasklet_unlock(t);
515 				continue;
516 			}
517 			tasklet_unlock(t);
518 		}
519 
520 		local_irq_disable();
521 		t->next = NULL;
522 		*__this_cpu_read(tasklet_vec.tail) = t;
523 		__this_cpu_write(tasklet_vec.tail, &(t->next));
524 		__raise_softirq_irqoff(TASKLET_SOFTIRQ);
525 		local_irq_enable();
526 	}
527 }
528 
tasklet_hi_action(struct softirq_action * a)529 static __latent_entropy void tasklet_hi_action(struct softirq_action *a)
530 {
531 	struct tasklet_struct *list;
532 
533 	local_irq_disable();
534 	list = __this_cpu_read(tasklet_hi_vec.head);
535 	__this_cpu_write(tasklet_hi_vec.head, NULL);
536 	__this_cpu_write(tasklet_hi_vec.tail, this_cpu_ptr(&tasklet_hi_vec.head));
537 	local_irq_enable();
538 
539 	while (list) {
540 		struct tasklet_struct *t = list;
541 
542 		list = list->next;
543 
544 		if (tasklet_trylock(t)) {
545 			if (!atomic_read(&t->count)) {
546 				if (!test_and_clear_bit(TASKLET_STATE_SCHED,
547 							&t->state))
548 					BUG();
549 				t->func(t->data);
550 				tasklet_unlock(t);
551 				continue;
552 			}
553 			tasklet_unlock(t);
554 		}
555 
556 		local_irq_disable();
557 		t->next = NULL;
558 		*__this_cpu_read(tasklet_hi_vec.tail) = t;
559 		__this_cpu_write(tasklet_hi_vec.tail, &(t->next));
560 		__raise_softirq_irqoff(HI_SOFTIRQ);
561 		local_irq_enable();
562 	}
563 }
564 
tasklet_init(struct tasklet_struct * t,void (* func)(unsigned long),unsigned long data)565 void tasklet_init(struct tasklet_struct *t,
566 		  void (*func)(unsigned long), unsigned long data)
567 {
568 	t->next = NULL;
569 	t->state = 0;
570 	atomic_set(&t->count, 0);
571 	t->func = func;
572 	t->data = data;
573 }
574 EXPORT_SYMBOL(tasklet_init);
575 
tasklet_kill(struct tasklet_struct * t)576 void tasklet_kill(struct tasklet_struct *t)
577 {
578 	if (in_interrupt())
579 		pr_notice("Attempt to kill tasklet from interrupt\n");
580 
581 	while (test_and_set_bit(TASKLET_STATE_SCHED, &t->state)) {
582 		do {
583 			yield();
584 		} while (test_bit(TASKLET_STATE_SCHED, &t->state));
585 	}
586 	tasklet_unlock_wait(t);
587 	clear_bit(TASKLET_STATE_SCHED, &t->state);
588 }
589 EXPORT_SYMBOL(tasklet_kill);
590 
591 /*
592  * tasklet_hrtimer
593  */
594 
595 /*
596  * The trampoline is called when the hrtimer expires. It schedules a tasklet
597  * to run __tasklet_hrtimer_trampoline() which in turn will call the intended
598  * hrtimer callback, but from softirq context.
599  */
__hrtimer_tasklet_trampoline(struct hrtimer * timer)600 static enum hrtimer_restart __hrtimer_tasklet_trampoline(struct hrtimer *timer)
601 {
602 	struct tasklet_hrtimer *ttimer =
603 		container_of(timer, struct tasklet_hrtimer, timer);
604 
605 	tasklet_hi_schedule(&ttimer->tasklet);
606 	return HRTIMER_NORESTART;
607 }
608 
609 /*
610  * Helper function which calls the hrtimer callback from
611  * tasklet/softirq context
612  */
__tasklet_hrtimer_trampoline(unsigned long data)613 static void __tasklet_hrtimer_trampoline(unsigned long data)
614 {
615 	struct tasklet_hrtimer *ttimer = (void *)data;
616 	enum hrtimer_restart restart;
617 
618 	restart = ttimer->function(&ttimer->timer);
619 	if (restart != HRTIMER_NORESTART)
620 		hrtimer_restart(&ttimer->timer);
621 }
622 
623 /**
624  * tasklet_hrtimer_init - Init a tasklet/hrtimer combo for softirq callbacks
625  * @ttimer:	 tasklet_hrtimer which is initialized
626  * @function:	 hrtimer callback function which gets called from softirq context
627  * @which_clock: clock id (CLOCK_MONOTONIC/CLOCK_REALTIME)
628  * @mode:	 hrtimer mode (HRTIMER_MODE_ABS/HRTIMER_MODE_REL)
629  */
tasklet_hrtimer_init(struct tasklet_hrtimer * ttimer,enum hrtimer_restart (* function)(struct hrtimer *),clockid_t which_clock,enum hrtimer_mode mode)630 void tasklet_hrtimer_init(struct tasklet_hrtimer *ttimer,
631 			  enum hrtimer_restart (*function)(struct hrtimer *),
632 			  clockid_t which_clock, enum hrtimer_mode mode)
633 {
634 	hrtimer_init(&ttimer->timer, which_clock, mode);
635 	ttimer->timer.function = __hrtimer_tasklet_trampoline;
636 	tasklet_init(&ttimer->tasklet, __tasklet_hrtimer_trampoline,
637 		     (unsigned long)ttimer);
638 	ttimer->function = function;
639 }
640 EXPORT_SYMBOL_GPL(tasklet_hrtimer_init);
641 
softirq_init(void)642 void __init softirq_init(void)
643 {
644 	int cpu;
645 
646 	for_each_possible_cpu(cpu) {
647 		per_cpu(tasklet_vec, cpu).tail =
648 			&per_cpu(tasklet_vec, cpu).head;
649 		per_cpu(tasklet_hi_vec, cpu).tail =
650 			&per_cpu(tasklet_hi_vec, cpu).head;
651 	}
652 
653 	open_softirq(TASKLET_SOFTIRQ, tasklet_action);
654 	open_softirq(HI_SOFTIRQ, tasklet_hi_action);
655 }
656 
ksoftirqd_should_run(unsigned int cpu)657 static int ksoftirqd_should_run(unsigned int cpu)
658 {
659 	return local_softirq_pending();
660 }
661 
run_ksoftirqd(unsigned int cpu)662 static void run_ksoftirqd(unsigned int cpu)
663 {
664 	local_irq_disable();
665 	if (local_softirq_pending()) {
666 		/*
667 		 * We can safely run softirq on inline stack, as we are not deep
668 		 * in the task stack here.
669 		 */
670 		__do_softirq();
671 		local_irq_enable();
672 		cond_resched_rcu_qs();
673 		return;
674 	}
675 	local_irq_enable();
676 }
677 
678 #ifdef CONFIG_HOTPLUG_CPU
679 /*
680  * tasklet_kill_immediate is called to remove a tasklet which can already be
681  * scheduled for execution on @cpu.
682  *
683  * Unlike tasklet_kill, this function removes the tasklet
684  * _immediately_, even if the tasklet is in TASKLET_STATE_SCHED state.
685  *
686  * When this function is called, @cpu must be in the CPU_DEAD state.
687  */
tasklet_kill_immediate(struct tasklet_struct * t,unsigned int cpu)688 void tasklet_kill_immediate(struct tasklet_struct *t, unsigned int cpu)
689 {
690 	struct tasklet_struct **i;
691 
692 	BUG_ON(cpu_online(cpu));
693 	BUG_ON(test_bit(TASKLET_STATE_RUN, &t->state));
694 
695 	if (!test_bit(TASKLET_STATE_SCHED, &t->state))
696 		return;
697 
698 	/* CPU is dead, so no lock needed. */
699 	for (i = &per_cpu(tasklet_vec, cpu).head; *i; i = &(*i)->next) {
700 		if (*i == t) {
701 			*i = t->next;
702 			/* If this was the tail element, move the tail ptr */
703 			if (*i == NULL)
704 				per_cpu(tasklet_vec, cpu).tail = i;
705 			return;
706 		}
707 	}
708 	BUG();
709 }
710 
takeover_tasklets(unsigned int cpu)711 static int takeover_tasklets(unsigned int cpu)
712 {
713 	/* CPU is dead, so no lock needed. */
714 	local_irq_disable();
715 
716 	/* Find end, append list for that CPU. */
717 	if (&per_cpu(tasklet_vec, cpu).head != per_cpu(tasklet_vec, cpu).tail) {
718 		*__this_cpu_read(tasklet_vec.tail) = per_cpu(tasklet_vec, cpu).head;
719 		this_cpu_write(tasklet_vec.tail, per_cpu(tasklet_vec, cpu).tail);
720 		per_cpu(tasklet_vec, cpu).head = NULL;
721 		per_cpu(tasklet_vec, cpu).tail = &per_cpu(tasklet_vec, cpu).head;
722 	}
723 	raise_softirq_irqoff(TASKLET_SOFTIRQ);
724 
725 	if (&per_cpu(tasklet_hi_vec, cpu).head != per_cpu(tasklet_hi_vec, cpu).tail) {
726 		*__this_cpu_read(tasklet_hi_vec.tail) = per_cpu(tasklet_hi_vec, cpu).head;
727 		__this_cpu_write(tasklet_hi_vec.tail, per_cpu(tasklet_hi_vec, cpu).tail);
728 		per_cpu(tasklet_hi_vec, cpu).head = NULL;
729 		per_cpu(tasklet_hi_vec, cpu).tail = &per_cpu(tasklet_hi_vec, cpu).head;
730 	}
731 	raise_softirq_irqoff(HI_SOFTIRQ);
732 
733 	local_irq_enable();
734 	return 0;
735 }
736 #else
737 #define takeover_tasklets	NULL
738 #endif /* CONFIG_HOTPLUG_CPU */
739 
740 static struct smp_hotplug_thread softirq_threads = {
741 	.store			= &ksoftirqd,
742 	.thread_should_run	= ksoftirqd_should_run,
743 	.thread_fn		= run_ksoftirqd,
744 	.thread_comm		= "ksoftirqd/%u",
745 };
746 
spawn_ksoftirqd(void)747 static __init int spawn_ksoftirqd(void)
748 {
749 	cpuhp_setup_state_nocalls(CPUHP_SOFTIRQ_DEAD, "softirq:dead", NULL,
750 				  takeover_tasklets);
751 	BUG_ON(smpboot_register_percpu_thread(&softirq_threads));
752 
753 	return 0;
754 }
755 early_initcall(spawn_ksoftirqd);
756 
757 /*
758  * [ These __weak aliases are kept in a separate compilation unit, so that
759  *   GCC does not inline them incorrectly. ]
760  */
761 
early_irq_init(void)762 int __init __weak early_irq_init(void)
763 {
764 	return 0;
765 }
766 
arch_probe_nr_irqs(void)767 int __init __weak arch_probe_nr_irqs(void)
768 {
769 	return NR_IRQS_LEGACY;
770 }
771 
arch_early_irq_init(void)772 int __init __weak arch_early_irq_init(void)
773 {
774 	return 0;
775 }
776 
arch_dynirq_lower_bound(unsigned int from)777 unsigned int __weak arch_dynirq_lower_bound(unsigned int from)
778 {
779 	return from;
780 }
781