1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 1992, 1998-2006 Linus Torvalds, Ingo Molnar
4 * Copyright (C) 2005-2006 Thomas Gleixner
5 *
6 * This file contains driver APIs to the irq subsystem.
7 */
8
9 #define pr_fmt(fmt) "genirq: " fmt
10
11 #include <linux/irq.h>
12 #include <linux/kthread.h>
13 #include <linux/module.h>
14 #include <linux/random.h>
15 #include <linux/interrupt.h>
16 #include <linux/irqdomain.h>
17 #include <linux/slab.h>
18 #include <linux/sched.h>
19 #include <linux/sched/rt.h>
20 #include <linux/sched/task.h>
21 #include <linux/sched/isolation.h>
22 #include <uapi/linux/sched/types.h>
23 #include <linux/task_work.h>
24
25 #include "internals.h"
26
27 #if defined(CONFIG_IRQ_FORCED_THREADING) && !defined(CONFIG_PREEMPT_RT)
28 DEFINE_STATIC_KEY_FALSE(force_irqthreads_key);
29
setup_forced_irqthreads(char * arg)30 static int __init setup_forced_irqthreads(char *arg)
31 {
32 static_branch_enable(&force_irqthreads_key);
33 return 0;
34 }
35 early_param("threadirqs", setup_forced_irqthreads);
36 #endif
37
38 #ifdef CONFIG_SMP
synchronize_irqwork(struct irq_desc * desc)39 static inline void synchronize_irqwork(struct irq_desc *desc)
40 {
41 /* Synchronize pending or on the fly redirect work */
42 irq_work_sync(&desc->redirect.work);
43 }
44 #else
synchronize_irqwork(struct irq_desc * desc)45 static inline void synchronize_irqwork(struct irq_desc *desc) { }
46 #endif
47
48 static int __irq_get_irqchip_state(struct irq_data *d, enum irqchip_irq_state which, bool *state);
49
__synchronize_hardirq(struct irq_desc * desc,bool sync_chip)50 static void __synchronize_hardirq(struct irq_desc *desc, bool sync_chip)
51 {
52 struct irq_data *irqd = irq_desc_get_irq_data(desc);
53 bool inprogress;
54
55 do {
56 /*
57 * Wait until we're out of the critical section. This might
58 * give the wrong answer due to the lack of memory barriers.
59 */
60 while (irqd_irq_inprogress(&desc->irq_data))
61 cpu_relax();
62
63 /* Ok, that indicated we're done: double-check carefully. */
64 guard(raw_spinlock_irqsave)(&desc->lock);
65 inprogress = irqd_irq_inprogress(&desc->irq_data);
66
67 /*
68 * If requested and supported, check at the chip whether it
69 * is in flight at the hardware level, i.e. already pending
70 * in a CPU and waiting for service and acknowledge.
71 */
72 if (!inprogress && sync_chip) {
73 /*
74 * Ignore the return code. inprogress is only updated
75 * when the chip supports it.
76 */
77 __irq_get_irqchip_state(irqd, IRQCHIP_STATE_ACTIVE,
78 &inprogress);
79 }
80 /* Oops, that failed? */
81 } while (inprogress);
82 }
83
84 /**
85 * synchronize_hardirq - wait for pending hard IRQ handlers (on other CPUs)
86 * @irq: interrupt number to wait for
87 *
88 * This function waits for any pending hard IRQ handlers for this interrupt
89 * to complete before returning. If you use this function while holding a
90 * resource the IRQ handler may need you will deadlock. It does not take
91 * associated threaded handlers into account.
92 *
93 * Do not use this for shutdown scenarios where you must be sure that all
94 * parts (hardirq and threaded handler) have completed.
95 *
96 * Returns: false if a threaded handler is active.
97 *
98 * This function may be called - with care - from IRQ context.
99 *
100 * It does not check whether there is an interrupt in flight at the
101 * hardware level, but not serviced yet, as this might deadlock when called
102 * with interrupts disabled and the target CPU of the interrupt is the
103 * current CPU.
104 */
synchronize_hardirq(unsigned int irq)105 bool synchronize_hardirq(unsigned int irq)
106 {
107 struct irq_desc *desc = irq_to_desc(irq);
108
109 if (desc) {
110 __synchronize_hardirq(desc, false);
111 return !atomic_read(&desc->threads_active);
112 }
113
114 return true;
115 }
116 EXPORT_SYMBOL(synchronize_hardirq);
117
__synchronize_irq(struct irq_desc * desc)118 static void __synchronize_irq(struct irq_desc *desc)
119 {
120 synchronize_irqwork(desc);
121 __synchronize_hardirq(desc, true);
122
123 /*
124 * We made sure that no hardirq handler is running. Now verify that no
125 * threaded handlers are active.
126 */
127 wait_event(desc->wait_for_threads, !atomic_read(&desc->threads_active));
128 }
129
130 /**
131 * synchronize_irq - wait for pending IRQ handlers (on other CPUs)
132 * @irq: interrupt number to wait for
133 *
134 * This function waits for any pending IRQ handlers for this interrupt to
135 * complete before returning. If you use this function while holding a
136 * resource the IRQ handler may need you will deadlock.
137 *
138 * Can only be called from preemptible code as it might sleep when
139 * an interrupt thread is associated to @irq.
140 *
141 * It optionally makes sure (when the irq chip supports that method)
142 * that the interrupt is not pending in any CPU and waiting for
143 * service.
144 */
synchronize_irq(unsigned int irq)145 void synchronize_irq(unsigned int irq)
146 {
147 struct irq_desc *desc = irq_to_desc(irq);
148
149 if (desc)
150 __synchronize_irq(desc);
151 }
152 EXPORT_SYMBOL(synchronize_irq);
153
154 #ifdef CONFIG_SMP
155 cpumask_var_t irq_default_affinity;
156
__irq_can_set_affinity(struct irq_desc * desc)157 static bool __irq_can_set_affinity(struct irq_desc *desc)
158 {
159 if (!desc || !irqd_can_balance(&desc->irq_data) ||
160 !desc->irq_data.chip || !desc->irq_data.chip->irq_set_affinity)
161 return false;
162 return true;
163 }
164
165 /**
166 * irq_can_set_affinity - Check if the affinity of a given irq can be set
167 * @irq: Interrupt to check
168 *
169 */
irq_can_set_affinity(unsigned int irq)170 int irq_can_set_affinity(unsigned int irq)
171 {
172 return __irq_can_set_affinity(irq_to_desc(irq));
173 }
174
175 /**
176 * irq_can_set_affinity_usr - Check if affinity of a irq can be set from user space
177 * @irq: Interrupt to check
178 *
179 * Like irq_can_set_affinity() above, but additionally checks for the
180 * AFFINITY_MANAGED flag.
181 */
irq_can_set_affinity_usr(unsigned int irq)182 bool irq_can_set_affinity_usr(unsigned int irq)
183 {
184 struct irq_desc *desc = irq_to_desc(irq);
185
186 return __irq_can_set_affinity(desc) &&
187 !irqd_affinity_is_managed(&desc->irq_data);
188 }
189
190 /**
191 * irq_set_thread_affinity - Notify irq threads to adjust affinity
192 * @desc: irq descriptor which has affinity changed
193 *
194 * Just set IRQTF_AFFINITY and delegate the affinity setting to the
195 * interrupt thread itself. We can not call set_cpus_allowed_ptr() here as
196 * we hold desc->lock and this code can be called from hard interrupt
197 * context.
198 */
irq_set_thread_affinity(struct irq_desc * desc)199 static void irq_set_thread_affinity(struct irq_desc *desc)
200 {
201 struct irqaction *action;
202
203 for_each_action_of_desc(desc, action) {
204 if (action->thread) {
205 set_bit(IRQTF_AFFINITY, &action->thread_flags);
206 wake_up_process(action->thread);
207 }
208 if (action->secondary && action->secondary->thread) {
209 set_bit(IRQTF_AFFINITY, &action->secondary->thread_flags);
210 wake_up_process(action->secondary->thread);
211 }
212 }
213 }
214
215 #ifdef CONFIG_GENERIC_IRQ_EFFECTIVE_AFF_MASK
irq_validate_effective_affinity(struct irq_data * data)216 static void irq_validate_effective_affinity(struct irq_data *data)
217 {
218 const struct cpumask *m = irq_data_get_effective_affinity_mask(data);
219 struct irq_chip *chip = irq_data_get_irq_chip(data);
220
221 if (!cpumask_empty(m))
222 return;
223 pr_warn_once("irq_chip %s did not update eff. affinity mask of irq %u\n",
224 chip->name, data->irq);
225 }
226 #else
irq_validate_effective_affinity(struct irq_data * data)227 static inline void irq_validate_effective_affinity(struct irq_data *data) { }
228 #endif
229
230 static DEFINE_PER_CPU(struct cpumask, __tmp_mask);
231
irq_do_set_affinity(struct irq_data * data,const struct cpumask * mask,bool force)232 int irq_do_set_affinity(struct irq_data *data, const struct cpumask *mask, bool force)
233 {
234 struct cpumask *tmp_mask = this_cpu_ptr(&__tmp_mask);
235 struct irq_desc *desc = irq_data_to_desc(data);
236 struct irq_chip *chip = irq_data_get_irq_chip(data);
237 const struct cpumask *prog_mask;
238 int ret;
239
240 if (!chip || !chip->irq_set_affinity)
241 return -EINVAL;
242
243 /*
244 * If this is a managed interrupt and housekeeping is enabled on
245 * it check whether the requested affinity mask intersects with
246 * a housekeeping CPU. If so, then remove the isolated CPUs from
247 * the mask and just keep the housekeeping CPU(s). This prevents
248 * the affinity setter from routing the interrupt to an isolated
249 * CPU to avoid that I/O submitted from a housekeeping CPU causes
250 * interrupts on an isolated one.
251 *
252 * If the masks do not intersect or include online CPU(s) then
253 * keep the requested mask. The isolated target CPUs are only
254 * receiving interrupts when the I/O operation was submitted
255 * directly from them.
256 *
257 * If all housekeeping CPUs in the affinity mask are offline, the
258 * interrupt will be migrated by the CPU hotplug code once a
259 * housekeeping CPU which belongs to the affinity mask comes
260 * online.
261 */
262 if (irqd_affinity_is_managed(data) &&
263 housekeeping_enabled(HK_TYPE_MANAGED_IRQ)) {
264 const struct cpumask *hk_mask;
265
266 hk_mask = housekeeping_cpumask(HK_TYPE_MANAGED_IRQ);
267
268 cpumask_and(tmp_mask, mask, hk_mask);
269 if (!cpumask_intersects(tmp_mask, cpu_online_mask))
270 prog_mask = mask;
271 else
272 prog_mask = tmp_mask;
273 } else {
274 prog_mask = mask;
275 }
276
277 /*
278 * Make sure we only provide online CPUs to the irqchip,
279 * unless we are being asked to force the affinity (in which
280 * case we do as we are told).
281 */
282 cpumask_and(tmp_mask, prog_mask, cpu_online_mask);
283 if (!force && !cpumask_empty(tmp_mask))
284 ret = chip->irq_set_affinity(data, tmp_mask, force);
285 else if (force)
286 ret = chip->irq_set_affinity(data, mask, force);
287 else
288 ret = -EINVAL;
289
290 switch (ret) {
291 case IRQ_SET_MASK_OK:
292 case IRQ_SET_MASK_OK_DONE:
293 cpumask_copy(desc->irq_common_data.affinity, mask);
294 fallthrough;
295 case IRQ_SET_MASK_OK_NOCOPY:
296 irq_validate_effective_affinity(data);
297 irq_set_thread_affinity(desc);
298 ret = 0;
299 }
300
301 return ret;
302 }
303
304 #ifdef CONFIG_GENERIC_PENDING_IRQ
irq_set_affinity_pending(struct irq_data * data,const struct cpumask * dest)305 static inline int irq_set_affinity_pending(struct irq_data *data,
306 const struct cpumask *dest)
307 {
308 struct irq_desc *desc = irq_data_to_desc(data);
309
310 irqd_set_move_pending(data);
311 irq_copy_pending(desc, dest);
312 return 0;
313 }
314 #else
irq_set_affinity_pending(struct irq_data * data,const struct cpumask * dest)315 static inline int irq_set_affinity_pending(struct irq_data *data,
316 const struct cpumask *dest)
317 {
318 return -EBUSY;
319 }
320 #endif
321
irq_try_set_affinity(struct irq_data * data,const struct cpumask * dest,bool force)322 static int irq_try_set_affinity(struct irq_data *data,
323 const struct cpumask *dest, bool force)
324 {
325 int ret = irq_do_set_affinity(data, dest, force);
326
327 /*
328 * In case that the underlying vector management is busy and the
329 * architecture supports the generic pending mechanism then utilize
330 * this to avoid returning an error to user space.
331 */
332 if (ret == -EBUSY && !force)
333 ret = irq_set_affinity_pending(data, dest);
334 return ret;
335 }
336
irq_set_affinity_deactivated(struct irq_data * data,const struct cpumask * mask)337 static bool irq_set_affinity_deactivated(struct irq_data *data,
338 const struct cpumask *mask)
339 {
340 struct irq_desc *desc = irq_data_to_desc(data);
341
342 /*
343 * Handle irq chips which can handle affinity only in activated
344 * state correctly
345 *
346 * If the interrupt is not yet activated, just store the affinity
347 * mask and do not call the chip driver at all. On activation the
348 * driver has to make sure anyway that the interrupt is in a
349 * usable state so startup works.
350 */
351 if (!IS_ENABLED(CONFIG_IRQ_DOMAIN_HIERARCHY) ||
352 irqd_is_activated(data) || !irqd_affinity_on_activate(data))
353 return false;
354
355 cpumask_copy(desc->irq_common_data.affinity, mask);
356 irq_data_update_effective_affinity(data, mask);
357 irqd_set(data, IRQD_AFFINITY_SET);
358 return true;
359 }
360
361 /**
362 * irq_affinity_schedule_notify_work - Schedule work to notify about affinity change
363 * @desc: Interrupt descriptor whose affinity changed
364 */
irq_affinity_schedule_notify_work(struct irq_desc * desc)365 void irq_affinity_schedule_notify_work(struct irq_desc *desc)
366 {
367 lockdep_assert_held(&desc->lock);
368
369 kref_get(&desc->affinity_notify->kref);
370 if (!schedule_work(&desc->affinity_notify->work)) {
371 /* Work was already scheduled, drop our extra ref */
372 kref_put(&desc->affinity_notify->kref, desc->affinity_notify->release);
373 }
374 }
375
irq_set_affinity_locked(struct irq_data * data,const struct cpumask * mask,bool force)376 int irq_set_affinity_locked(struct irq_data *data, const struct cpumask *mask,
377 bool force)
378 {
379 struct irq_chip *chip = irq_data_get_irq_chip(data);
380 struct irq_desc *desc = irq_data_to_desc(data);
381 int ret = 0;
382
383 if (!chip || !chip->irq_set_affinity)
384 return -EINVAL;
385
386 if (irq_set_affinity_deactivated(data, mask))
387 return 0;
388
389 if (irq_can_move_pcntxt(data) && !irqd_is_setaffinity_pending(data)) {
390 ret = irq_try_set_affinity(data, mask, force);
391 } else {
392 irqd_set_move_pending(data);
393 irq_copy_pending(desc, mask);
394 }
395
396 if (desc->affinity_notify)
397 irq_affinity_schedule_notify_work(desc);
398
399 irqd_set(data, IRQD_AFFINITY_SET);
400
401 return ret;
402 }
403
404 /**
405 * irq_update_affinity_desc - Update affinity management for an interrupt
406 * @irq: The interrupt number to update
407 * @affinity: Pointer to the affinity descriptor
408 *
409 * This interface can be used to configure the affinity management of
410 * interrupts which have been allocated already.
411 *
412 * There are certain limitations on when it may be used - attempts to use it
413 * for when the kernel is configured for generic IRQ reservation mode (in
414 * config GENERIC_IRQ_RESERVATION_MODE) will fail, as it may conflict with
415 * managed/non-managed interrupt accounting. In addition, attempts to use it on
416 * an interrupt which is already started or which has already been configured
417 * as managed will also fail, as these mean invalid init state or double init.
418 */
irq_update_affinity_desc(unsigned int irq,struct irq_affinity_desc * affinity)419 int irq_update_affinity_desc(unsigned int irq, struct irq_affinity_desc *affinity)
420 {
421 /*
422 * Supporting this with the reservation scheme used by x86 needs
423 * some more thought. Fail it for now.
424 */
425 if (IS_ENABLED(CONFIG_GENERIC_IRQ_RESERVATION_MODE))
426 return -EOPNOTSUPP;
427
428 scoped_irqdesc_get_and_buslock(irq, 0) {
429 struct irq_desc *desc = scoped_irqdesc;
430 bool activated;
431
432 /* Requires the interrupt to be shut down */
433 if (irqd_is_started(&desc->irq_data))
434 return -EBUSY;
435
436 /* Interrupts which are already managed cannot be modified */
437 if (irqd_affinity_is_managed(&desc->irq_data))
438 return -EBUSY;
439 /*
440 * Deactivate the interrupt. That's required to undo
441 * anything an earlier activation has established.
442 */
443 activated = irqd_is_activated(&desc->irq_data);
444 if (activated)
445 irq_domain_deactivate_irq(&desc->irq_data);
446
447 if (affinity->is_managed) {
448 irqd_set(&desc->irq_data, IRQD_AFFINITY_MANAGED);
449 irqd_set(&desc->irq_data, IRQD_MANAGED_SHUTDOWN);
450 }
451
452 cpumask_copy(desc->irq_common_data.affinity, &affinity->mask);
453
454 /* Restore the activation state */
455 if (activated)
456 irq_domain_activate_irq(&desc->irq_data, false);
457 return 0;
458 }
459 return -EINVAL;
460 }
461
__irq_set_affinity(unsigned int irq,const struct cpumask * mask,bool force)462 static int __irq_set_affinity(unsigned int irq, const struct cpumask *mask,
463 bool force)
464 {
465 struct irq_desc *desc = irq_to_desc(irq);
466
467 if (!desc)
468 return -EINVAL;
469
470 guard(raw_spinlock_irqsave)(&desc->lock);
471 return irq_set_affinity_locked(irq_desc_get_irq_data(desc), mask, force);
472 }
473
474 /**
475 * irq_set_affinity - Set the irq affinity of a given irq
476 * @irq: Interrupt to set affinity
477 * @cpumask: cpumask
478 *
479 * Fails if cpumask does not contain an online CPU
480 */
irq_set_affinity(unsigned int irq,const struct cpumask * cpumask)481 int irq_set_affinity(unsigned int irq, const struct cpumask *cpumask)
482 {
483 return __irq_set_affinity(irq, cpumask, false);
484 }
485 EXPORT_SYMBOL_GPL(irq_set_affinity);
486
487 /**
488 * irq_force_affinity - Force the irq affinity of a given irq
489 * @irq: Interrupt to set affinity
490 * @cpumask: cpumask
491 *
492 * Same as irq_set_affinity, but without checking the mask against
493 * online cpus.
494 *
495 * Solely for low level cpu hotplug code, where we need to make per
496 * cpu interrupts affine before the cpu becomes online.
497 */
irq_force_affinity(unsigned int irq,const struct cpumask * cpumask)498 int irq_force_affinity(unsigned int irq, const struct cpumask *cpumask)
499 {
500 return __irq_set_affinity(irq, cpumask, true);
501 }
502 EXPORT_SYMBOL_GPL(irq_force_affinity);
503
__irq_apply_affinity_hint(unsigned int irq,const struct cpumask * m,bool setaffinity)504 int __irq_apply_affinity_hint(unsigned int irq, const struct cpumask *m, bool setaffinity)
505 {
506 int ret = -EINVAL;
507
508 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_GLOBAL) {
509 scoped_irqdesc->affinity_hint = m;
510 ret = 0;
511 }
512
513 if (!ret && m && setaffinity)
514 __irq_set_affinity(irq, m, false);
515 return ret;
516 }
517 EXPORT_SYMBOL_GPL(__irq_apply_affinity_hint);
518
irq_affinity_notify(struct work_struct * work)519 static void irq_affinity_notify(struct work_struct *work)
520 {
521 struct irq_affinity_notify *notify = container_of(work, struct irq_affinity_notify, work);
522 struct irq_desc *desc = irq_to_desc(notify->irq);
523 cpumask_var_t cpumask;
524
525 if (!desc || !alloc_cpumask_var(&cpumask, GFP_KERNEL))
526 goto out;
527
528 scoped_guard(raw_spinlock_irqsave, &desc->lock) {
529 if (irq_move_pending(&desc->irq_data))
530 irq_get_pending(cpumask, desc);
531 else
532 cpumask_copy(cpumask, desc->irq_common_data.affinity);
533 }
534
535 notify->notify(notify, cpumask);
536
537 free_cpumask_var(cpumask);
538 out:
539 kref_put(¬ify->kref, notify->release);
540 }
541
542 /**
543 * irq_set_affinity_notifier - control notification of IRQ affinity changes
544 * @irq: Interrupt for which to enable/disable notification
545 * @notify: Context for notification, or %NULL to disable
546 * notification. Function pointers must be initialised;
547 * the other fields will be initialised by this function.
548 *
549 * Must be called in process context. Notification may only be enabled
550 * after the IRQ is allocated and must be disabled before the IRQ is freed
551 * using free_irq().
552 */
irq_set_affinity_notifier(unsigned int irq,struct irq_affinity_notify * notify)553 int irq_set_affinity_notifier(unsigned int irq, struct irq_affinity_notify *notify)
554 {
555 struct irq_desc *desc = irq_to_desc(irq);
556 struct irq_affinity_notify *old_notify;
557
558 /* The release function is promised process context */
559 might_sleep();
560
561 if (!desc || irq_is_nmi(desc))
562 return -EINVAL;
563
564 /* Complete initialisation of *notify */
565 if (notify) {
566 notify->irq = irq;
567 kref_init(¬ify->kref);
568 INIT_WORK(¬ify->work, irq_affinity_notify);
569 }
570
571 scoped_guard(raw_spinlock_irq, &desc->lock) {
572 old_notify = desc->affinity_notify;
573 desc->affinity_notify = notify;
574 }
575
576 if (old_notify) {
577 if (cancel_work_sync(&old_notify->work)) {
578 /* Pending work had a ref, put that one too */
579 kref_put(&old_notify->kref, old_notify->release);
580 }
581 kref_put(&old_notify->kref, old_notify->release);
582 }
583
584 return 0;
585 }
586 EXPORT_SYMBOL_GPL(irq_set_affinity_notifier);
587
588 #ifndef CONFIG_AUTO_IRQ_AFFINITY
589 /*
590 * Generic version of the affinity autoselector.
591 */
irq_setup_affinity(struct irq_desc * desc)592 int irq_setup_affinity(struct irq_desc *desc)
593 {
594 struct cpumask *set = irq_default_affinity;
595 int node = irq_desc_get_node(desc);
596
597 static DEFINE_RAW_SPINLOCK(mask_lock);
598 static struct cpumask mask;
599
600 /* Excludes PER_CPU and NO_BALANCE interrupts */
601 if (!__irq_can_set_affinity(desc))
602 return 0;
603
604 guard(raw_spinlock)(&mask_lock);
605 /*
606 * Preserve the managed affinity setting and a userspace affinity
607 * setup, but make sure that one of the targets is online.
608 */
609 if (irqd_affinity_is_managed(&desc->irq_data) ||
610 irqd_has_set(&desc->irq_data, IRQD_AFFINITY_SET)) {
611 if (cpumask_intersects(desc->irq_common_data.affinity,
612 cpu_online_mask))
613 set = desc->irq_common_data.affinity;
614 else
615 irqd_clear(&desc->irq_data, IRQD_AFFINITY_SET);
616 }
617
618 cpumask_and(&mask, cpu_online_mask, set);
619 if (cpumask_empty(&mask))
620 cpumask_copy(&mask, cpu_online_mask);
621
622 if (node != NUMA_NO_NODE) {
623 const struct cpumask *nodemask = cpumask_of_node(node);
624
625 /* make sure at least one of the cpus in nodemask is online */
626 if (cpumask_intersects(&mask, nodemask))
627 cpumask_and(&mask, &mask, nodemask);
628 }
629 return irq_do_set_affinity(&desc->irq_data, &mask, false);
630 }
631 #else
632 /* Wrapper for ALPHA specific affinity selector magic */
irq_setup_affinity(struct irq_desc * desc)633 int irq_setup_affinity(struct irq_desc *desc)
634 {
635 return irq_select_affinity(irq_desc_get_irq(desc));
636 }
637 #endif /* CONFIG_AUTO_IRQ_AFFINITY */
638 #endif /* CONFIG_SMP */
639
640
641 /**
642 * irq_set_vcpu_affinity - Set vcpu affinity for the interrupt
643 * @irq: interrupt number to set affinity
644 * @vcpu_info: vCPU specific data or pointer to a percpu array of vCPU
645 * specific data for percpu_devid interrupts
646 *
647 * This function uses the vCPU specific data to set the vCPU affinity for
648 * an irq. The vCPU specific data is passed from outside, such as KVM. One
649 * example code path is as below: KVM -> IOMMU -> irq_set_vcpu_affinity().
650 */
irq_set_vcpu_affinity(unsigned int irq,void * vcpu_info)651 int irq_set_vcpu_affinity(unsigned int irq, void *vcpu_info)
652 {
653 scoped_irqdesc_get_and_lock(irq, 0) {
654 struct irq_desc *desc = scoped_irqdesc;
655 struct irq_data *data;
656 struct irq_chip *chip;
657
658 data = irq_desc_get_irq_data(desc);
659 do {
660 chip = irq_data_get_irq_chip(data);
661 if (chip && chip->irq_set_vcpu_affinity)
662 break;
663
664 data = irqd_get_parent_data(data);
665 } while (data);
666
667 if (!data)
668 return -ENOSYS;
669 return chip->irq_set_vcpu_affinity(data, vcpu_info);
670 }
671 return -EINVAL;
672 }
673 EXPORT_SYMBOL_GPL(irq_set_vcpu_affinity);
674
__disable_irq(struct irq_desc * desc)675 void __disable_irq(struct irq_desc *desc)
676 {
677 if (!desc->depth++)
678 irq_disable(desc);
679 }
680
__disable_irq_nosync(unsigned int irq)681 static int __disable_irq_nosync(unsigned int irq)
682 {
683 scoped_irqdesc_get_and_buslock(irq, IRQ_GET_DESC_CHECK_GLOBAL) {
684 __disable_irq(scoped_irqdesc);
685 return 0;
686 }
687 return -EINVAL;
688 }
689
690 /**
691 * disable_irq_nosync - disable an irq without waiting
692 * @irq: Interrupt to disable
693 *
694 * Disable the selected interrupt line. Disables and Enables are
695 * nested.
696 * Unlike disable_irq(), this function does not ensure existing
697 * instances of the IRQ handler have completed before returning.
698 *
699 * This function may be called from IRQ context.
700 */
disable_irq_nosync(unsigned int irq)701 void disable_irq_nosync(unsigned int irq)
702 {
703 __disable_irq_nosync(irq);
704 }
705 EXPORT_SYMBOL(disable_irq_nosync);
706
707 /**
708 * disable_irq - disable an irq and wait for completion
709 * @irq: Interrupt to disable
710 *
711 * Disable the selected interrupt line. Enables and Disables are nested.
712 *
713 * This function waits for any pending IRQ handlers for this interrupt to
714 * complete before returning. If you use this function while holding a
715 * resource the IRQ handler may need you will deadlock.
716 *
717 * Can only be called from preemptible code as it might sleep when an
718 * interrupt thread is associated to @irq.
719 *
720 */
disable_irq(unsigned int irq)721 void disable_irq(unsigned int irq)
722 {
723 might_sleep();
724 if (!__disable_irq_nosync(irq))
725 synchronize_irq(irq);
726 }
727 EXPORT_SYMBOL(disable_irq);
728
729 /**
730 * disable_hardirq - disables an irq and waits for hardirq completion
731 * @irq: Interrupt to disable
732 *
733 * Disable the selected interrupt line. Enables and Disables are nested.
734 *
735 * This function waits for any pending hard IRQ handlers for this interrupt
736 * to complete before returning. If you use this function while holding a
737 * resource the hard IRQ handler may need you will deadlock.
738 *
739 * When used to optimistically disable an interrupt from atomic context the
740 * return value must be checked.
741 *
742 * Returns: false if a threaded handler is active.
743 *
744 * This function may be called - with care - from IRQ context.
745 */
disable_hardirq(unsigned int irq)746 bool disable_hardirq(unsigned int irq)
747 {
748 if (!__disable_irq_nosync(irq))
749 return synchronize_hardirq(irq);
750 return false;
751 }
752 EXPORT_SYMBOL_GPL(disable_hardirq);
753
754 /**
755 * disable_nmi_nosync - disable an nmi without waiting
756 * @irq: Interrupt to disable
757 *
758 * Disable the selected interrupt line. Disables and enables are nested.
759 *
760 * The interrupt to disable must have been requested through request_nmi.
761 * Unlike disable_nmi(), this function does not ensure existing
762 * instances of the IRQ handler have completed before returning.
763 */
disable_nmi_nosync(unsigned int irq)764 void disable_nmi_nosync(unsigned int irq)
765 {
766 disable_irq_nosync(irq);
767 }
768
__enable_irq(struct irq_desc * desc)769 void __enable_irq(struct irq_desc *desc)
770 {
771 switch (desc->depth) {
772 case 0:
773 err_out:
774 WARN(1, KERN_WARNING "Unbalanced enable for IRQ %d\n",
775 irq_desc_get_irq(desc));
776 break;
777 case 1: {
778 if (desc->istate & IRQS_SUSPENDED)
779 goto err_out;
780 /* Prevent probing on this irq: */
781 irq_settings_set_noprobe(desc);
782 /*
783 * Call irq_startup() not irq_enable() here because the
784 * interrupt might be marked NOAUTOEN so irq_startup()
785 * needs to be invoked when it gets enabled the first time.
786 * This is also required when __enable_irq() is invoked for
787 * a managed and shutdown interrupt from the S3 resume
788 * path.
789 *
790 * If it was already started up, then irq_startup() will
791 * invoke irq_enable() under the hood.
792 */
793 irq_startup(desc, IRQ_RESEND, IRQ_START_FORCE);
794 break;
795 }
796 default:
797 desc->depth--;
798 }
799 }
800
801 /**
802 * enable_irq - enable handling of an irq
803 * @irq: Interrupt to enable
804 *
805 * Undoes the effect of one call to disable_irq(). If this matches the
806 * last disable, processing of interrupts on this IRQ line is re-enabled.
807 *
808 * This function may be called from IRQ context only when
809 * desc->irq_data.chip->bus_lock and desc->chip->bus_sync_unlock are NULL !
810 */
enable_irq(unsigned int irq)811 void enable_irq(unsigned int irq)
812 {
813 scoped_irqdesc_get_and_buslock(irq, IRQ_GET_DESC_CHECK_GLOBAL) {
814 struct irq_desc *desc = scoped_irqdesc;
815
816 if (WARN(!desc->irq_data.chip, "enable_irq before setup/request_irq: irq %u\n", irq))
817 return;
818 __enable_irq(desc);
819 }
820 }
821 EXPORT_SYMBOL(enable_irq);
822
823 /**
824 * enable_nmi - enable handling of an nmi
825 * @irq: Interrupt to enable
826 *
827 * The interrupt to enable must have been requested through request_nmi.
828 * Undoes the effect of one call to disable_nmi(). If this matches the last
829 * disable, processing of interrupts on this IRQ line is re-enabled.
830 */
enable_nmi(unsigned int irq)831 void enable_nmi(unsigned int irq)
832 {
833 enable_irq(irq);
834 }
835
set_irq_wake_real(unsigned int irq,unsigned int on)836 static int set_irq_wake_real(unsigned int irq, unsigned int on)
837 {
838 struct irq_desc *desc = irq_to_desc(irq);
839 int ret = -ENXIO;
840
841 if (irq_desc_get_chip(desc)->flags & IRQCHIP_SKIP_SET_WAKE)
842 return 0;
843
844 if (desc->irq_data.chip->irq_set_wake)
845 ret = desc->irq_data.chip->irq_set_wake(&desc->irq_data, on);
846
847 return ret;
848 }
849
850 /**
851 * irq_set_irq_wake - control irq power management wakeup
852 * @irq: interrupt to control
853 * @on: enable/disable power management wakeup
854 *
855 * Enable/disable power management wakeup mode, which is disabled by
856 * default. Enables and disables must match, just as they match for
857 * non-wakeup mode support.
858 *
859 * Wakeup mode lets this IRQ wake the system from sleep states like
860 * "suspend to RAM".
861 *
862 * Note: irq enable/disable state is completely orthogonal to the
863 * enable/disable state of irq wake. An irq can be disabled with
864 * disable_irq() and still wake the system as long as the irq has wake
865 * enabled. If this does not hold, then the underlying irq chip and the
866 * related driver need to be investigated.
867 */
irq_set_irq_wake(unsigned int irq,unsigned int on)868 int irq_set_irq_wake(unsigned int irq, unsigned int on)
869 {
870 scoped_irqdesc_get_and_buslock(irq, IRQ_GET_DESC_CHECK_GLOBAL) {
871 struct irq_desc *desc = scoped_irqdesc;
872 int ret = 0;
873
874 /* Don't use NMIs as wake up interrupts please */
875 if (irq_is_nmi(desc))
876 return -EINVAL;
877
878 /*
879 * wakeup-capable irqs can be shared between drivers that
880 * don't need to have the same sleep mode behaviors.
881 */
882 if (on) {
883 if (desc->wake_depth++ == 0) {
884 ret = set_irq_wake_real(irq, on);
885 if (ret)
886 desc->wake_depth = 0;
887 else
888 irqd_set(&desc->irq_data, IRQD_WAKEUP_STATE);
889 }
890 } else {
891 if (desc->wake_depth == 0) {
892 WARN(1, "Unbalanced IRQ %d wake disable\n", irq);
893 } else if (--desc->wake_depth == 0) {
894 ret = set_irq_wake_real(irq, on);
895 if (ret)
896 desc->wake_depth = 1;
897 else
898 irqd_clear(&desc->irq_data, IRQD_WAKEUP_STATE);
899 }
900 }
901 return ret;
902 }
903 return -EINVAL;
904 }
905 EXPORT_SYMBOL(irq_set_irq_wake);
906
907 /*
908 * Internal function that tells the architecture code whether a
909 * particular irq has been exclusively allocated or is available
910 * for driver use.
911 */
can_request_irq(unsigned int irq,unsigned long irqflags)912 bool can_request_irq(unsigned int irq, unsigned long irqflags)
913 {
914 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_GLOBAL) {
915 struct irq_desc *desc = scoped_irqdesc;
916
917 if (irq_settings_can_request(desc)) {
918 if (!desc->action || irqflags & desc->action->flags & IRQF_SHARED)
919 return true;
920 }
921 }
922 return false;
923 }
924
__irq_set_trigger(struct irq_desc * desc,unsigned long flags)925 int __irq_set_trigger(struct irq_desc *desc, unsigned long flags)
926 {
927 struct irq_chip *chip = desc->irq_data.chip;
928 int ret, unmask = 0;
929
930 if (!chip || !chip->irq_set_type) {
931 /*
932 * IRQF_TRIGGER_* but the PIC does not support multiple
933 * flow-types?
934 */
935 pr_debug("No set_type function for IRQ %d (%s)\n",
936 irq_desc_get_irq(desc),
937 chip ? (chip->name ? : "unknown") : "unknown");
938 return 0;
939 }
940
941 if (chip->flags & IRQCHIP_SET_TYPE_MASKED) {
942 if (!irqd_irq_masked(&desc->irq_data))
943 mask_irq(desc);
944 if (!irqd_irq_disabled(&desc->irq_data))
945 unmask = 1;
946 }
947
948 /* Mask all flags except trigger mode */
949 flags &= IRQ_TYPE_SENSE_MASK;
950 ret = chip->irq_set_type(&desc->irq_data, flags);
951
952 switch (ret) {
953 case IRQ_SET_MASK_OK:
954 case IRQ_SET_MASK_OK_DONE:
955 irqd_clear(&desc->irq_data, IRQD_TRIGGER_MASK);
956 irqd_set(&desc->irq_data, flags);
957 fallthrough;
958
959 case IRQ_SET_MASK_OK_NOCOPY:
960 flags = irqd_get_trigger_type(&desc->irq_data);
961 irq_settings_set_trigger_mask(desc, flags);
962 irqd_clear(&desc->irq_data, IRQD_LEVEL);
963 irq_settings_clr_level(desc);
964 if (flags & IRQ_TYPE_LEVEL_MASK) {
965 irq_settings_set_level(desc);
966 irqd_set(&desc->irq_data, IRQD_LEVEL);
967 }
968
969 ret = 0;
970 break;
971 default:
972 pr_err("Setting trigger mode %lu for irq %u failed (%pS)\n",
973 flags, irq_desc_get_irq(desc), chip->irq_set_type);
974 }
975 if (unmask)
976 unmask_irq(desc);
977 return ret;
978 }
979
980 #ifdef CONFIG_HARDIRQS_SW_RESEND
irq_set_parent(int irq,int parent_irq)981 int irq_set_parent(int irq, int parent_irq)
982 {
983 scoped_irqdesc_get_and_lock(irq, 0) {
984 scoped_irqdesc->parent_irq = parent_irq;
985 return 0;
986 }
987 return -EINVAL;
988 }
989 EXPORT_SYMBOL_GPL(irq_set_parent);
990 #endif
991
992 /*
993 * Default primary interrupt handler for threaded interrupts. Is
994 * assigned as primary handler when request_threaded_irq is called
995 * with handler == NULL. Useful for oneshot interrupts.
996 */
irq_default_primary_handler(int irq,void * dev_id)997 static irqreturn_t irq_default_primary_handler(int irq, void *dev_id)
998 {
999 return IRQ_WAKE_THREAD;
1000 }
1001
1002 /*
1003 * Primary handler for nested threaded interrupts. Should never be
1004 * called.
1005 */
irq_nested_primary_handler(int irq,void * dev_id)1006 static irqreturn_t irq_nested_primary_handler(int irq, void *dev_id)
1007 {
1008 WARN(1, "Primary handler called for nested irq %d\n", irq);
1009 return IRQ_NONE;
1010 }
1011
irq_forced_secondary_handler(int irq,void * dev_id)1012 static irqreturn_t irq_forced_secondary_handler(int irq, void *dev_id)
1013 {
1014 WARN(1, "Secondary action handler called for irq %d\n", irq);
1015 return IRQ_NONE;
1016 }
1017
1018 #ifdef CONFIG_SMP
1019 /*
1020 * Check whether we need to change the affinity of the interrupt thread.
1021 */
irq_thread_check_affinity(struct irq_desc * desc,struct irqaction * action)1022 static void irq_thread_check_affinity(struct irq_desc *desc, struct irqaction *action)
1023 {
1024 cpumask_var_t mask;
1025
1026 if (!test_and_clear_bit(IRQTF_AFFINITY, &action->thread_flags))
1027 return;
1028
1029 __set_current_state(TASK_RUNNING);
1030
1031 /*
1032 * In case we are out of memory we set IRQTF_AFFINITY again and
1033 * try again next time
1034 */
1035 if (!alloc_cpumask_var(&mask, GFP_KERNEL)) {
1036 set_bit(IRQTF_AFFINITY, &action->thread_flags);
1037 return;
1038 }
1039
1040 scoped_guard(raw_spinlock_irq, &desc->lock) {
1041 const struct cpumask *m;
1042
1043 m = irq_data_get_effective_affinity_mask(&desc->irq_data);
1044 cpumask_copy(mask, m);
1045 }
1046
1047 set_cpus_allowed_ptr(current, mask);
1048 free_cpumask_var(mask);
1049 }
1050 #else
irq_thread_check_affinity(struct irq_desc * desc,struct irqaction * action)1051 static inline void irq_thread_check_affinity(struct irq_desc *desc, struct irqaction *action) { }
1052 #endif
1053
irq_wait_for_interrupt(struct irq_desc * desc,struct irqaction * action)1054 static int irq_wait_for_interrupt(struct irq_desc *desc,
1055 struct irqaction *action)
1056 {
1057 for (;;) {
1058 set_current_state(TASK_INTERRUPTIBLE);
1059 irq_thread_check_affinity(desc, action);
1060
1061 if (kthread_should_stop()) {
1062 /* may need to run one last time */
1063 if (test_and_clear_bit(IRQTF_RUNTHREAD,
1064 &action->thread_flags)) {
1065 __set_current_state(TASK_RUNNING);
1066 return 0;
1067 }
1068 __set_current_state(TASK_RUNNING);
1069 return -1;
1070 }
1071
1072 if (test_and_clear_bit(IRQTF_RUNTHREAD,
1073 &action->thread_flags)) {
1074 __set_current_state(TASK_RUNNING);
1075 return 0;
1076 }
1077 schedule();
1078 }
1079 }
1080
1081 /*
1082 * Oneshot interrupts keep the irq line masked until the threaded
1083 * handler finished. unmask if the interrupt has not been disabled and
1084 * is marked MASKED.
1085 */
irq_finalize_oneshot(struct irq_desc * desc,struct irqaction * action)1086 static void irq_finalize_oneshot(struct irq_desc *desc,
1087 struct irqaction *action)
1088 {
1089 if (!(desc->istate & IRQS_ONESHOT) ||
1090 action->handler == irq_forced_secondary_handler)
1091 return;
1092 again:
1093 chip_bus_lock(desc);
1094 raw_spin_lock_irq(&desc->lock);
1095
1096 /*
1097 * Implausible though it may be we need to protect us against
1098 * the following scenario:
1099 *
1100 * The thread is faster done than the hard interrupt handler
1101 * on the other CPU. If we unmask the irq line then the
1102 * interrupt can come in again and masks the line, leaves due
1103 * to IRQS_INPROGRESS and the irq line is masked forever.
1104 *
1105 * This also serializes the state of shared oneshot handlers
1106 * versus "desc->threads_oneshot |= action->thread_mask;" in
1107 * irq_wake_thread(). See the comment there which explains the
1108 * serialization.
1109 */
1110 if (unlikely(irqd_irq_inprogress(&desc->irq_data))) {
1111 raw_spin_unlock_irq(&desc->lock);
1112 chip_bus_sync_unlock(desc);
1113 cpu_relax();
1114 goto again;
1115 }
1116
1117 /*
1118 * Now check again, whether the thread should run. Otherwise
1119 * we would clear the threads_oneshot bit of this thread which
1120 * was just set.
1121 */
1122 if (test_bit(IRQTF_RUNTHREAD, &action->thread_flags))
1123 goto out_unlock;
1124
1125 desc->threads_oneshot &= ~action->thread_mask;
1126
1127 if (!desc->threads_oneshot && !irqd_irq_disabled(&desc->irq_data) &&
1128 irqd_irq_masked(&desc->irq_data))
1129 unmask_threaded_irq(desc);
1130
1131 out_unlock:
1132 raw_spin_unlock_irq(&desc->lock);
1133 chip_bus_sync_unlock(desc);
1134 }
1135
1136 /*
1137 * Interrupts explicitly requested as threaded interrupts want to be
1138 * preemptible - many of them need to sleep and wait for slow busses to
1139 * complete.
1140 */
irq_thread_fn(struct irq_desc * desc,struct irqaction * action)1141 static irqreturn_t irq_thread_fn(struct irq_desc *desc, struct irqaction *action)
1142 {
1143 irqreturn_t ret = action->thread_fn(action->irq, action->dev_id);
1144
1145 if (ret == IRQ_HANDLED)
1146 atomic_inc(&desc->threads_handled);
1147
1148 irq_finalize_oneshot(desc, action);
1149 return ret;
1150 }
1151
1152 /*
1153 * Interrupts which are not explicitly requested as threaded
1154 * interrupts rely on the implicit bh/preempt disable of the hard irq
1155 * context. So we need to disable bh here to avoid deadlocks and other
1156 * side effects.
1157 */
irq_forced_thread_fn(struct irq_desc * desc,struct irqaction * action)1158 static irqreturn_t irq_forced_thread_fn(struct irq_desc *desc, struct irqaction *action)
1159 {
1160 irqreturn_t ret;
1161
1162 local_bh_disable();
1163 if (!IS_ENABLED(CONFIG_PREEMPT_RT))
1164 local_irq_disable();
1165 ret = irq_thread_fn(desc, action);
1166 if (!IS_ENABLED(CONFIG_PREEMPT_RT))
1167 local_irq_enable();
1168 local_bh_enable();
1169 return ret;
1170 }
1171
wake_threads_waitq(struct irq_desc * desc)1172 void wake_threads_waitq(struct irq_desc *desc)
1173 {
1174 if (atomic_dec_and_test(&desc->threads_active))
1175 wake_up(&desc->wait_for_threads);
1176 }
1177
irq_thread_dtor(struct callback_head * unused)1178 static void irq_thread_dtor(struct callback_head *unused)
1179 {
1180 struct task_struct *tsk = current;
1181 struct irq_desc *desc;
1182 struct irqaction *action;
1183
1184 if (WARN_ON_ONCE(!(current->flags & PF_EXITING)))
1185 return;
1186
1187 action = kthread_data(tsk);
1188
1189 pr_err("exiting task \"%s\" (%d) is an active IRQ thread (irq %d)\n",
1190 tsk->comm, tsk->pid, action->irq);
1191
1192
1193 desc = irq_to_desc(action->irq);
1194 /*
1195 * If IRQTF_RUNTHREAD is set, we need to decrement
1196 * desc->threads_active and wake possible waiters.
1197 */
1198 if (test_and_clear_bit(IRQTF_RUNTHREAD, &action->thread_flags))
1199 wake_threads_waitq(desc);
1200
1201 /* Prevent a stale desc->threads_oneshot */
1202 irq_finalize_oneshot(desc, action);
1203 }
1204
irq_wake_secondary(struct irq_desc * desc,struct irqaction * action)1205 static void irq_wake_secondary(struct irq_desc *desc, struct irqaction *action)
1206 {
1207 struct irqaction *secondary = action->secondary;
1208
1209 if (WARN_ON_ONCE(!secondary))
1210 return;
1211
1212 guard(raw_spinlock_irq)(&desc->lock);
1213 __irq_wake_thread(desc, secondary);
1214 }
1215
1216 /*
1217 * Internal function to notify that a interrupt thread is ready.
1218 */
irq_thread_set_ready(struct irq_desc * desc,struct irqaction * action)1219 static void irq_thread_set_ready(struct irq_desc *desc,
1220 struct irqaction *action)
1221 {
1222 set_bit(IRQTF_READY, &action->thread_flags);
1223 wake_up(&desc->wait_for_threads);
1224 }
1225
1226 /*
1227 * Internal function to wake up a interrupt thread and wait until it is
1228 * ready.
1229 */
wake_up_and_wait_for_irq_thread_ready(struct irq_desc * desc,struct irqaction * action)1230 static void wake_up_and_wait_for_irq_thread_ready(struct irq_desc *desc,
1231 struct irqaction *action)
1232 {
1233 if (!action || !action->thread)
1234 return;
1235
1236 wake_up_process(action->thread);
1237 wait_event(desc->wait_for_threads,
1238 test_bit(IRQTF_READY, &action->thread_flags));
1239 }
1240
1241 /*
1242 * Interrupt handler thread
1243 */
irq_thread(void * data)1244 static int irq_thread(void *data)
1245 {
1246 struct callback_head on_exit_work;
1247 struct irqaction *action = data;
1248 struct irq_desc *desc = irq_to_desc(action->irq);
1249 irqreturn_t (*handler_fn)(struct irq_desc *desc,
1250 struct irqaction *action);
1251
1252 irq_thread_set_ready(desc, action);
1253
1254 if (action->handler == irq_forced_secondary_handler)
1255 sched_set_fifo_secondary(current);
1256 else
1257 sched_set_fifo(current);
1258
1259 if (force_irqthreads() && test_bit(IRQTF_FORCED_THREAD,
1260 &action->thread_flags))
1261 handler_fn = irq_forced_thread_fn;
1262 else
1263 handler_fn = irq_thread_fn;
1264
1265 init_task_work(&on_exit_work, irq_thread_dtor);
1266 task_work_add(current, &on_exit_work, TWA_NONE);
1267
1268 while (!irq_wait_for_interrupt(desc, action)) {
1269 irqreturn_t action_ret;
1270
1271 action_ret = handler_fn(desc, action);
1272 if (action_ret == IRQ_WAKE_THREAD)
1273 irq_wake_secondary(desc, action);
1274
1275 wake_threads_waitq(desc);
1276 }
1277
1278 /*
1279 * This is the regular exit path. __free_irq() is stopping the
1280 * thread via kthread_stop() after calling
1281 * synchronize_hardirq(). So neither IRQTF_RUNTHREAD nor the
1282 * oneshot mask bit can be set.
1283 */
1284 task_work_cancel_func(current, irq_thread_dtor);
1285 return 0;
1286 }
1287
1288 /**
1289 * irq_wake_thread - wake the irq thread for the action identified by dev_id
1290 * @irq: Interrupt line
1291 * @dev_id: Device identity for which the thread should be woken
1292 */
irq_wake_thread(unsigned int irq,void * dev_id)1293 void irq_wake_thread(unsigned int irq, void *dev_id)
1294 {
1295 struct irq_desc *desc = irq_to_desc(irq);
1296 struct irqaction *action;
1297
1298 if (!desc || WARN_ON(irq_settings_is_per_cpu_devid(desc)))
1299 return;
1300
1301 guard(raw_spinlock_irqsave)(&desc->lock);
1302 for_each_action_of_desc(desc, action) {
1303 if (action->dev_id == dev_id) {
1304 if (action->thread)
1305 __irq_wake_thread(desc, action);
1306 break;
1307 }
1308 }
1309 }
1310 EXPORT_SYMBOL_GPL(irq_wake_thread);
1311
irq_setup_forced_threading(struct irqaction * new)1312 static int irq_setup_forced_threading(struct irqaction *new)
1313 {
1314 if (!force_irqthreads())
1315 return 0;
1316 if (new->flags & (IRQF_NO_THREAD | IRQF_PERCPU | IRQF_ONESHOT))
1317 return 0;
1318
1319 /*
1320 * No further action required for interrupts which are requested as
1321 * threaded interrupts already
1322 */
1323 if (new->handler == irq_default_primary_handler)
1324 return 0;
1325
1326 new->flags |= IRQF_ONESHOT;
1327
1328 /*
1329 * Handle the case where we have a real primary handler and a
1330 * thread handler. We force thread them as well by creating a
1331 * secondary action.
1332 */
1333 if (new->handler && new->thread_fn) {
1334 /* Allocate the secondary action */
1335 new->secondary = kzalloc_obj(struct irqaction);
1336 if (!new->secondary)
1337 return -ENOMEM;
1338 new->secondary->handler = irq_forced_secondary_handler;
1339 new->secondary->thread_fn = new->thread_fn;
1340 new->secondary->dev_id = new->dev_id;
1341 new->secondary->irq = new->irq;
1342 new->secondary->name = new->name;
1343 }
1344 /* Deal with the primary handler */
1345 set_bit(IRQTF_FORCED_THREAD, &new->thread_flags);
1346 new->thread_fn = new->handler;
1347 new->handler = irq_default_primary_handler;
1348 return 0;
1349 }
1350
irq_request_resources(struct irq_desc * desc)1351 static int irq_request_resources(struct irq_desc *desc)
1352 {
1353 struct irq_data *d = &desc->irq_data;
1354 struct irq_chip *c = d->chip;
1355
1356 return c->irq_request_resources ? c->irq_request_resources(d) : 0;
1357 }
1358
irq_release_resources(struct irq_desc * desc)1359 static void irq_release_resources(struct irq_desc *desc)
1360 {
1361 struct irq_data *d = &desc->irq_data;
1362 struct irq_chip *c = d->chip;
1363
1364 if (c->irq_release_resources)
1365 c->irq_release_resources(d);
1366 }
1367
irq_supports_nmi(struct irq_desc * desc)1368 static bool irq_supports_nmi(struct irq_desc *desc)
1369 {
1370 struct irq_data *d = irq_desc_get_irq_data(desc);
1371
1372 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY
1373 /* Only IRQs directly managed by the root irqchip can be set as NMI */
1374 if (d->parent_data)
1375 return false;
1376 #endif
1377 /* Don't support NMIs for chips behind a slow bus */
1378 if (d->chip->irq_bus_lock || d->chip->irq_bus_sync_unlock)
1379 return false;
1380
1381 return d->chip->flags & IRQCHIP_SUPPORTS_NMI;
1382 }
1383
irq_nmi_setup(struct irq_desc * desc)1384 static int irq_nmi_setup(struct irq_desc *desc)
1385 {
1386 struct irq_data *d = irq_desc_get_irq_data(desc);
1387 struct irq_chip *c = d->chip;
1388
1389 return c->irq_nmi_setup ? c->irq_nmi_setup(d) : -EINVAL;
1390 }
1391
irq_nmi_teardown(struct irq_desc * desc)1392 static void irq_nmi_teardown(struct irq_desc *desc)
1393 {
1394 struct irq_data *d = irq_desc_get_irq_data(desc);
1395 struct irq_chip *c = d->chip;
1396
1397 if (c->irq_nmi_teardown)
1398 c->irq_nmi_teardown(d);
1399 }
1400
1401 static int
setup_irq_thread(struct irqaction * new,unsigned int irq,bool secondary)1402 setup_irq_thread(struct irqaction *new, unsigned int irq, bool secondary)
1403 {
1404 struct task_struct *t;
1405
1406 if (!secondary) {
1407 t = kthread_create(irq_thread, new, "irq/%d-%s", irq,
1408 new->name);
1409 } else {
1410 t = kthread_create(irq_thread, new, "irq/%d-s-%s", irq,
1411 new->name);
1412 }
1413
1414 if (IS_ERR(t))
1415 return PTR_ERR(t);
1416
1417 /*
1418 * We keep the reference to the task struct even if
1419 * the thread dies to avoid that the interrupt code
1420 * references an already freed task_struct.
1421 */
1422 new->thread = get_task_struct(t);
1423
1424 /*
1425 * The affinity can not be established yet, but it will be once the
1426 * interrupt is enabled. Delay and defer the actual setting to the
1427 * thread itself once it is ready to run. In the meantime, prevent
1428 * it from ever being re-affined directly by cpuset or
1429 * housekeeping. The proper way to do it is to re-affine the whole
1430 * vector.
1431 */
1432 kthread_bind_mask(t, cpu_possible_mask);
1433
1434 /*
1435 * Ensure the thread adjusts the affinity once it reaches the
1436 * thread function.
1437 */
1438 set_bit(IRQTF_AFFINITY, &new->thread_flags);
1439
1440 return 0;
1441 }
1442
valid_percpu_irqaction(struct irqaction * old,struct irqaction * new)1443 static bool valid_percpu_irqaction(struct irqaction *old, struct irqaction *new)
1444 {
1445 do {
1446 if (cpumask_intersects(old->affinity, new->affinity) ||
1447 old->percpu_dev_id == new->percpu_dev_id)
1448 return false;
1449
1450 old = old->next;
1451 } while (old);
1452
1453 return true;
1454 }
1455
1456 /*
1457 * Internal function to register an irqaction - typically used to
1458 * allocate special interrupts that are part of the architecture.
1459 *
1460 * Locking rules:
1461 *
1462 * desc->request_mutex Provides serialization against a concurrent free_irq()
1463 * chip_bus_lock Provides serialization for slow bus operations
1464 * desc->lock Provides serialization against hard interrupts
1465 *
1466 * chip_bus_lock and desc->lock are sufficient for all other management and
1467 * interrupt related functions. desc->request_mutex solely serializes
1468 * request/free_irq().
1469 */
1470 static int
__setup_irq(unsigned int irq,struct irq_desc * desc,struct irqaction * new)1471 __setup_irq(unsigned int irq, struct irq_desc *desc, struct irqaction *new)
1472 {
1473 struct irqaction *old, **old_ptr;
1474 unsigned long flags, thread_mask = 0;
1475 int ret, nested, shared = 0;
1476 bool per_cpu_devid;
1477
1478 if (!desc)
1479 return -EINVAL;
1480
1481 if (desc->irq_data.chip == &no_irq_chip)
1482 return -ENOSYS;
1483 if (!try_module_get(desc->owner))
1484 return -ENODEV;
1485
1486 per_cpu_devid = irq_settings_is_per_cpu_devid(desc);
1487
1488 new->irq = irq;
1489
1490 /*
1491 * If the trigger type is not specified by the caller,
1492 * then use the default for this interrupt.
1493 */
1494 if (!(new->flags & IRQF_TRIGGER_MASK))
1495 new->flags |= irqd_get_trigger_type(&desc->irq_data);
1496
1497 /*
1498 * IRQF_ONESHOT means the interrupt source in the IRQ chip will be
1499 * masked until the threaded handled is done. If there is no thread
1500 * handler then it makes no sense to have IRQF_ONESHOT.
1501 */
1502 WARN_ON_ONCE(new->flags & IRQF_ONESHOT && !new->thread_fn);
1503
1504 /*
1505 * Check whether the interrupt nests into another interrupt
1506 * thread.
1507 */
1508 nested = irq_settings_is_nested_thread(desc);
1509 if (nested) {
1510 if (!new->thread_fn) {
1511 ret = -EINVAL;
1512 goto out_mput;
1513 }
1514 /*
1515 * Replace the primary handler which was provided from
1516 * the driver for non nested interrupt handling by the
1517 * dummy function which warns when called.
1518 */
1519 new->handler = irq_nested_primary_handler;
1520 } else {
1521 if (irq_settings_can_thread(desc)) {
1522 ret = irq_setup_forced_threading(new);
1523 if (ret)
1524 goto out_mput;
1525 }
1526 }
1527
1528 /*
1529 * Create a handler thread when a thread function is supplied
1530 * and the interrupt does not nest into another interrupt
1531 * thread.
1532 */
1533 if (new->thread_fn && !nested) {
1534 ret = setup_irq_thread(new, irq, false);
1535 if (ret)
1536 goto out_mput;
1537 if (new->secondary) {
1538 ret = setup_irq_thread(new->secondary, irq, true);
1539 if (ret)
1540 goto out_thread;
1541 }
1542 }
1543
1544 /*
1545 * Drivers are often written to work w/o knowledge about the
1546 * underlying irq chip implementation, so a request for a
1547 * threaded irq without a primary hard irq context handler
1548 * requires the ONESHOT flag to be set. Some irq chips like
1549 * MSI based interrupts are per se one shot safe. Check the
1550 * chip flags, so we can avoid the unmask dance at the end of
1551 * the threaded handler for those.
1552 */
1553 if (desc->irq_data.chip->flags & IRQCHIP_ONESHOT_SAFE)
1554 new->flags &= ~IRQF_ONESHOT;
1555
1556 /*
1557 * Protects against a concurrent __free_irq() call which might wait
1558 * for synchronize_hardirq() to complete without holding the optional
1559 * chip bus lock and desc->lock. Also protects against handing out
1560 * a recycled oneshot thread_mask bit while it's still in use by
1561 * its previous owner.
1562 */
1563 mutex_lock(&desc->request_mutex);
1564
1565 /*
1566 * Acquire bus lock as the irq_request_resources() callback below
1567 * might rely on the serialization or the magic power management
1568 * functions which are abusing the irq_bus_lock() callback,
1569 */
1570 chip_bus_lock(desc);
1571
1572 /* First installed action requests resources. */
1573 if (!desc->action) {
1574 ret = irq_request_resources(desc);
1575 if (ret) {
1576 pr_err("Failed to request resources for %s (irq %d) on irqchip %s\n",
1577 new->name, irq, desc->irq_data.chip->name);
1578 goto out_bus_unlock;
1579 }
1580 }
1581
1582 /*
1583 * The following block of code has to be executed atomically
1584 * protected against a concurrent interrupt and any of the other
1585 * management calls which are not serialized via
1586 * desc->request_mutex or the optional bus lock.
1587 */
1588 raw_spin_lock_irqsave(&desc->lock, flags);
1589 old_ptr = &desc->action;
1590 old = *old_ptr;
1591 if (old) {
1592 /*
1593 * Can't share interrupts unless both agree to and are
1594 * the same type (level, edge, polarity). So both flag
1595 * fields must have IRQF_SHARED set and the bits which
1596 * set the trigger type must match. Also all must
1597 * agree on ONESHOT.
1598 * Interrupt lines used for NMIs cannot be shared.
1599 */
1600 unsigned int oldtype;
1601
1602 if (irq_is_nmi(desc) && !per_cpu_devid) {
1603 pr_err("Invalid attempt to share NMI for %s (irq %d) on irqchip %s.\n",
1604 new->name, irq, desc->irq_data.chip->name);
1605 ret = -EINVAL;
1606 goto out_unlock;
1607 }
1608
1609 if (per_cpu_devid && !valid_percpu_irqaction(old, new)) {
1610 pr_err("Overlapping affinities for %s (irq %d) on irqchip %s.\n",
1611 new->name, irq, desc->irq_data.chip->name);
1612 ret = -EINVAL;
1613 goto out_unlock;
1614 }
1615
1616 /*
1617 * If nobody did set the configuration before, inherit
1618 * the one provided by the requester.
1619 */
1620 if (irqd_trigger_type_was_set(&desc->irq_data)) {
1621 oldtype = irqd_get_trigger_type(&desc->irq_data);
1622 } else {
1623 oldtype = new->flags & IRQF_TRIGGER_MASK;
1624 irqd_set_trigger_type(&desc->irq_data, oldtype);
1625 }
1626
1627 if (!((old->flags & new->flags) & IRQF_SHARED) ||
1628 (oldtype != (new->flags & IRQF_TRIGGER_MASK)))
1629 goto mismatch;
1630
1631 if ((old->flags & IRQF_ONESHOT) &&
1632 (new->flags & IRQF_COND_ONESHOT))
1633 new->flags |= IRQF_ONESHOT;
1634 else if ((old->flags ^ new->flags) & IRQF_ONESHOT)
1635 goto mismatch;
1636
1637 /* All handlers must agree on per-cpuness */
1638 if ((old->flags & IRQF_PERCPU) !=
1639 (new->flags & IRQF_PERCPU))
1640 goto mismatch;
1641
1642 /* add new interrupt at end of irq queue */
1643 do {
1644 /*
1645 * Or all existing action->thread_mask bits,
1646 * so we can find the next zero bit for this
1647 * new action.
1648 */
1649 thread_mask |= old->thread_mask;
1650 old_ptr = &old->next;
1651 old = *old_ptr;
1652 } while (old);
1653 shared = 1;
1654 }
1655
1656 /*
1657 * Setup the thread mask for this irqaction for ONESHOT. For
1658 * !ONESHOT irqs the thread mask is 0 so we can avoid a
1659 * conditional in irq_wake_thread().
1660 */
1661 if (new->flags & IRQF_ONESHOT) {
1662 /*
1663 * Unlikely to have 32 resp 64 irqs sharing one line,
1664 * but who knows.
1665 */
1666 if (thread_mask == ~0UL) {
1667 ret = -EBUSY;
1668 goto out_unlock;
1669 }
1670 /*
1671 * The thread_mask for the action is or'ed to
1672 * desc->thread_active to indicate that the
1673 * IRQF_ONESHOT thread handler has been woken, but not
1674 * yet finished. The bit is cleared when a thread
1675 * completes. When all threads of a shared interrupt
1676 * line have completed desc->threads_active becomes
1677 * zero and the interrupt line is unmasked. See
1678 * handle.c:irq_wake_thread() for further information.
1679 *
1680 * If no thread is woken by primary (hard irq context)
1681 * interrupt handlers, then desc->threads_active is
1682 * also checked for zero to unmask the irq line in the
1683 * affected hard irq flow handlers
1684 * (handle_[fasteoi|level]_irq).
1685 *
1686 * The new action gets the first zero bit of
1687 * thread_mask assigned. See the loop above which or's
1688 * all existing action->thread_mask bits.
1689 */
1690 new->thread_mask = 1UL << ffz(thread_mask);
1691
1692 } else if (new->handler == irq_default_primary_handler &&
1693 !(desc->irq_data.chip->flags & IRQCHIP_ONESHOT_SAFE)) {
1694 /*
1695 * The interrupt was requested with handler = NULL, so
1696 * we use the default primary handler for it. But it
1697 * does not have the oneshot flag set. In combination
1698 * with level interrupts this is deadly, because the
1699 * default primary handler just wakes the thread, then
1700 * the irq lines is reenabled, but the device still
1701 * has the level irq asserted. Rinse and repeat....
1702 *
1703 * While this works for edge type interrupts, we play
1704 * it safe and reject unconditionally because we can't
1705 * say for sure which type this interrupt really
1706 * has. The type flags are unreliable as the
1707 * underlying chip implementation can override them.
1708 */
1709 pr_err("Threaded irq requested with handler=NULL and !ONESHOT for %s (irq %d)\n",
1710 new->name, irq);
1711 ret = -EINVAL;
1712 goto out_unlock;
1713 }
1714
1715 if (!shared) {
1716 /* Setup the type (level, edge polarity) if configured: */
1717 if (new->flags & IRQF_TRIGGER_MASK) {
1718 ret = __irq_set_trigger(desc,
1719 new->flags & IRQF_TRIGGER_MASK);
1720
1721 if (ret)
1722 goto out_unlock;
1723 }
1724
1725 /*
1726 * Activate the interrupt. That activation must happen
1727 * independently of IRQ_NOAUTOEN. request_irq() can fail
1728 * and the callers are supposed to handle
1729 * that. enable_irq() of an interrupt requested with
1730 * IRQ_NOAUTOEN is not supposed to fail. The activation
1731 * keeps it in shutdown mode, it merily associates
1732 * resources if necessary and if that's not possible it
1733 * fails. Interrupts which are in managed shutdown mode
1734 * will simply ignore that activation request.
1735 */
1736 ret = irq_activate(desc);
1737 if (ret)
1738 goto out_unlock;
1739
1740 desc->istate &= ~(IRQS_AUTODETECT | IRQS_SPURIOUS_DISABLED | \
1741 IRQS_ONESHOT | IRQS_WAITING);
1742 irqd_clear(&desc->irq_data, IRQD_IRQ_INPROGRESS);
1743
1744 if (new->flags & IRQF_PERCPU) {
1745 irqd_set(&desc->irq_data, IRQD_PER_CPU);
1746 irq_settings_set_per_cpu(desc);
1747 if (new->flags & IRQF_NO_DEBUG)
1748 irq_settings_set_no_debug(desc);
1749 }
1750
1751 if (noirqdebug)
1752 irq_settings_set_no_debug(desc);
1753
1754 if (new->flags & IRQF_ONESHOT)
1755 desc->istate |= IRQS_ONESHOT;
1756
1757 /* Exclude IRQ from balancing if requested */
1758 if (new->flags & IRQF_NOBALANCING) {
1759 irq_settings_set_no_balancing(desc);
1760 irqd_set(&desc->irq_data, IRQD_NO_BALANCING);
1761 }
1762
1763 if (!(new->flags & IRQF_NO_AUTOEN) &&
1764 irq_settings_can_autoenable(desc)) {
1765 irq_startup(desc, IRQ_RESEND, IRQ_START_COND);
1766 } else if (!per_cpu_devid) {
1767 /*
1768 * Shared interrupts do not go well with disabling
1769 * auto enable. The sharing interrupt might request
1770 * it while it's still disabled and then wait for
1771 * interrupts forever.
1772 */
1773 WARN_ON_ONCE(new->flags & IRQF_SHARED);
1774 /* Undo nested disables: */
1775 desc->depth = 1;
1776 }
1777
1778 } else if (new->flags & IRQF_TRIGGER_MASK) {
1779 unsigned int nmsk = new->flags & IRQF_TRIGGER_MASK;
1780 unsigned int omsk = irqd_get_trigger_type(&desc->irq_data);
1781
1782 if (nmsk != omsk)
1783 /* hope the handler works with current trigger mode */
1784 pr_warn("irq %d uses trigger mode %u; requested %u\n",
1785 irq, omsk, nmsk);
1786 }
1787
1788 *old_ptr = new;
1789
1790 irq_pm_install_action(desc, new);
1791
1792 /* Reset broken irq detection when installing new handler */
1793 desc->irq_count = 0;
1794 desc->irqs_unhandled = 0;
1795
1796 /*
1797 * Check whether we disabled the irq via the spurious handler
1798 * before. Reenable it and give it another chance.
1799 */
1800 if (shared && (desc->istate & IRQS_SPURIOUS_DISABLED)) {
1801 desc->istate &= ~IRQS_SPURIOUS_DISABLED;
1802 __enable_irq(desc);
1803 }
1804
1805 raw_spin_unlock_irqrestore(&desc->lock, flags);
1806 chip_bus_sync_unlock(desc);
1807 mutex_unlock(&desc->request_mutex);
1808
1809 wake_up_and_wait_for_irq_thread_ready(desc, new);
1810 wake_up_and_wait_for_irq_thread_ready(desc, new->secondary);
1811
1812 register_irq_proc(irq, desc);
1813 new->dir = NULL;
1814 register_handler_proc(irq, new);
1815 return 0;
1816
1817 mismatch:
1818 if (!(new->flags & IRQF_PROBE_SHARED)) {
1819 pr_err("Flags mismatch irq %d. %08x (%s) vs. %08x (%s)\n",
1820 irq, new->flags, new->name, old->flags, old->name);
1821 #ifdef CONFIG_DEBUG_SHIRQ
1822 dump_stack();
1823 #endif
1824 }
1825 ret = -EBUSY;
1826
1827 out_unlock:
1828 raw_spin_unlock_irqrestore(&desc->lock, flags);
1829
1830 if (!desc->action)
1831 irq_release_resources(desc);
1832 out_bus_unlock:
1833 chip_bus_sync_unlock(desc);
1834 mutex_unlock(&desc->request_mutex);
1835
1836 out_thread:
1837 if (new->thread) {
1838 struct task_struct *t = new->thread;
1839
1840 new->thread = NULL;
1841 kthread_stop_put(t);
1842 }
1843 if (new->secondary && new->secondary->thread) {
1844 struct task_struct *t = new->secondary->thread;
1845
1846 new->secondary->thread = NULL;
1847 kthread_stop_put(t);
1848 }
1849 out_mput:
1850 module_put(desc->owner);
1851 return ret;
1852 }
1853
1854 /*
1855 * Internal function to unregister an irqaction - used to free
1856 * regular and special interrupts that are part of the architecture.
1857 */
__free_irq(struct irq_desc * desc,void * dev_id)1858 static struct irqaction *__free_irq(struct irq_desc *desc, void *dev_id)
1859 {
1860 unsigned irq = desc->irq_data.irq;
1861 struct irqaction *action, **action_ptr;
1862 unsigned long flags;
1863
1864 WARN(in_interrupt(), "Trying to free IRQ %d from IRQ context!\n", irq);
1865
1866 mutex_lock(&desc->request_mutex);
1867 chip_bus_lock(desc);
1868 raw_spin_lock_irqsave(&desc->lock, flags);
1869
1870 /*
1871 * There can be multiple actions per IRQ descriptor, find the right
1872 * one based on the dev_id:
1873 */
1874 action_ptr = &desc->action;
1875 for (;;) {
1876 action = *action_ptr;
1877
1878 if (!action) {
1879 WARN(1, "Trying to free already-free IRQ %d\n", irq);
1880 raw_spin_unlock_irqrestore(&desc->lock, flags);
1881 chip_bus_sync_unlock(desc);
1882 mutex_unlock(&desc->request_mutex);
1883 return NULL;
1884 }
1885
1886 if (action->dev_id == dev_id)
1887 break;
1888 action_ptr = &action->next;
1889 }
1890
1891 /* Found it - now remove it from the list of entries: */
1892 *action_ptr = action->next;
1893
1894 irq_pm_remove_action(desc, action);
1895
1896 /* If this was the last handler, shut down the IRQ line: */
1897 if (!desc->action) {
1898 irq_settings_clr_disable_unlazy(desc);
1899 /* Only shutdown. Deactivate after synchronize_hardirq() */
1900 irq_shutdown(desc);
1901 }
1902
1903 #ifdef CONFIG_SMP
1904 /* make sure affinity_hint is cleaned up */
1905 if (WARN_ON_ONCE(desc->affinity_hint))
1906 desc->affinity_hint = NULL;
1907 #endif
1908
1909 raw_spin_unlock_irqrestore(&desc->lock, flags);
1910 /*
1911 * Drop bus_lock here so the changes which were done in the chip
1912 * callbacks above are synced out to the irq chips which hang
1913 * behind a slow bus (I2C, SPI) before calling synchronize_hardirq().
1914 *
1915 * Aside of that the bus_lock can also be taken from the threaded
1916 * handler in irq_finalize_oneshot() which results in a deadlock
1917 * because kthread_stop() would wait forever for the thread to
1918 * complete, which is blocked on the bus lock.
1919 *
1920 * The still held desc->request_mutex() protects against a
1921 * concurrent request_irq() of this irq so the release of resources
1922 * and timing data is properly serialized.
1923 */
1924 chip_bus_sync_unlock(desc);
1925
1926 unregister_handler_proc(irq, action);
1927
1928 /*
1929 * Make sure it's not being used on another CPU and if the chip
1930 * supports it also make sure that there is no (not yet serviced)
1931 * interrupt in flight at the hardware level.
1932 */
1933 __synchronize_irq(desc);
1934
1935 #ifdef CONFIG_DEBUG_SHIRQ
1936 /*
1937 * It's a shared IRQ -- the driver ought to be prepared for an IRQ
1938 * event to happen even now it's being freed, so let's make sure that
1939 * is so by doing an extra call to the handler ....
1940 *
1941 * ( We do this after actually deregistering it, to make sure that a
1942 * 'real' IRQ doesn't run in parallel with our fake. )
1943 */
1944 if (action->flags & IRQF_SHARED) {
1945 local_irq_save(flags);
1946 action->handler(irq, dev_id);
1947 local_irq_restore(flags);
1948 }
1949 #endif
1950
1951 /*
1952 * The action has already been removed above, but the thread writes
1953 * its oneshot mask bit when it completes. Though request_mutex is
1954 * held across this which prevents __setup_irq() from handing out
1955 * the same bit to a newly requested action.
1956 */
1957 if (action->thread) {
1958 kthread_stop_put(action->thread);
1959 if (action->secondary && action->secondary->thread)
1960 kthread_stop_put(action->secondary->thread);
1961 }
1962
1963 /* Last action releases resources */
1964 if (!desc->action) {
1965 /*
1966 * Reacquire bus lock as irq_release_resources() might
1967 * require it to deallocate resources over the slow bus.
1968 */
1969 chip_bus_lock(desc);
1970 /*
1971 * There is no interrupt on the fly anymore. Deactivate it
1972 * completely.
1973 */
1974 scoped_guard(raw_spinlock_irqsave, &desc->lock)
1975 irq_domain_deactivate_irq(&desc->irq_data);
1976
1977 irq_release_resources(desc);
1978 chip_bus_sync_unlock(desc);
1979 }
1980
1981 mutex_unlock(&desc->request_mutex);
1982
1983 irq_chip_pm_put(&desc->irq_data);
1984 module_put(desc->owner);
1985 kfree(action->secondary);
1986 return action;
1987 }
1988
1989 /**
1990 * free_irq - free an interrupt allocated with request_irq
1991 * @irq: Interrupt line to free
1992 * @dev_id: Device identity to free
1993 *
1994 * Remove an interrupt handler. The handler is removed and if the interrupt
1995 * line is no longer in use by any driver it is disabled. On a shared IRQ
1996 * the caller must ensure the interrupt is disabled on the card it drives
1997 * before calling this function. The function does not return until any
1998 * executing interrupts for this IRQ have completed.
1999 *
2000 * This function must not be called from interrupt context.
2001 *
2002 * Returns the devname argument passed to request_irq.
2003 */
free_irq(unsigned int irq,void * dev_id)2004 const void *free_irq(unsigned int irq, void *dev_id)
2005 {
2006 struct irq_desc *desc = irq_to_desc(irq);
2007 struct irqaction *action;
2008 const char *devname;
2009
2010 if (!desc || WARN_ON(irq_settings_is_per_cpu_devid(desc)))
2011 return NULL;
2012
2013 #ifdef CONFIG_SMP
2014 if (WARN_ON(desc->affinity_notify))
2015 desc->affinity_notify = NULL;
2016 #endif
2017
2018 action = __free_irq(desc, dev_id);
2019
2020 if (!action)
2021 return NULL;
2022
2023 devname = action->name;
2024 kfree(action);
2025 return devname;
2026 }
2027 EXPORT_SYMBOL(free_irq);
2028
2029 /* This function must be called with desc->lock held */
__cleanup_nmi(unsigned int irq,struct irq_desc * desc)2030 static const void *__cleanup_nmi(unsigned int irq, struct irq_desc *desc)
2031 {
2032 const char *devname = NULL;
2033
2034 desc->istate &= ~IRQS_NMI;
2035
2036 if (!WARN_ON(desc->action == NULL)) {
2037 irq_pm_remove_action(desc, desc->action);
2038 devname = desc->action->name;
2039 unregister_handler_proc(irq, desc->action);
2040
2041 kfree(desc->action);
2042 desc->action = NULL;
2043 }
2044
2045 irq_settings_clr_disable_unlazy(desc);
2046 irq_shutdown_and_deactivate(desc);
2047
2048 irq_release_resources(desc);
2049
2050 irq_chip_pm_put(&desc->irq_data);
2051 module_put(desc->owner);
2052
2053 return devname;
2054 }
2055
free_nmi(unsigned int irq,void * dev_id)2056 const void *free_nmi(unsigned int irq, void *dev_id)
2057 {
2058 struct irq_desc *desc = irq_to_desc(irq);
2059
2060 if (!desc || WARN_ON(!irq_is_nmi(desc)))
2061 return NULL;
2062
2063 if (WARN_ON(irq_settings_is_per_cpu_devid(desc)))
2064 return NULL;
2065
2066 /* NMI still enabled */
2067 if (WARN_ON(desc->depth == 0))
2068 disable_nmi_nosync(irq);
2069
2070 guard(raw_spinlock_irqsave)(&desc->lock);
2071 irq_nmi_teardown(desc);
2072 return __cleanup_nmi(irq, desc);
2073 }
2074
2075 /**
2076 * request_threaded_irq - allocate an interrupt line
2077 * @irq: Interrupt line to allocate
2078 * @handler: Function to be called when the IRQ occurs.
2079 * Primary handler for threaded interrupts.
2080 * If handler is NULL and thread_fn != NULL
2081 * the default primary handler is installed.
2082 * @thread_fn: Function called from the irq handler thread
2083 * If NULL, no irq thread is created
2084 * @irqflags: Interrupt type flags
2085 * @devname: An ascii name for the claiming device
2086 * @dev_id: A cookie passed back to the handler function
2087 *
2088 * This call allocates interrupt resources and enables the interrupt line
2089 * and IRQ handling. From the point this call is made your handler function
2090 * may be invoked. Since your handler function must clear any interrupt the
2091 * board raises, you must take care both to initialise your hardware and to
2092 * set up the interrupt handler in the right order.
2093 *
2094 * If you want to set up a threaded irq handler for your device then you
2095 * need to supply @handler and @thread_fn. @handler is still called in hard
2096 * interrupt context and has to check whether the interrupt originates from
2097 * the device. If yes it needs to disable the interrupt on the device and
2098 * return IRQ_WAKE_THREAD which will wake up the handler thread and run
2099 * @thread_fn. This split handler design is necessary to support shared
2100 * interrupts.
2101 *
2102 * @dev_id must be globally unique. Normally the address of the device data
2103 * structure is used as the cookie. Since the handler receives this value
2104 * it makes sense to use it.
2105 *
2106 * If your interrupt is shared you must pass a non NULL dev_id as this is
2107 * required when freeing the interrupt.
2108 *
2109 * Flags:
2110 *
2111 * IRQF_SHARED Interrupt is shared
2112 * IRQF_TRIGGER_* Specify active edge(s) or level
2113 * IRQF_ONESHOT Run thread_fn with interrupt line masked
2114 */
request_threaded_irq(unsigned int irq,irq_handler_t handler,irq_handler_t thread_fn,unsigned long irqflags,const char * devname,void * dev_id)2115 int request_threaded_irq(unsigned int irq, irq_handler_t handler,
2116 irq_handler_t thread_fn, unsigned long irqflags,
2117 const char *devname, void *dev_id)
2118 {
2119 struct irqaction *action;
2120 struct irq_desc *desc;
2121 int retval;
2122
2123 if (irq == IRQ_NOTCONNECTED)
2124 return -ENOTCONN;
2125
2126 /*
2127 * Sanity-check: shared interrupts must pass in a real dev-ID,
2128 * otherwise we'll have trouble later trying to figure out
2129 * which interrupt is which (messes up the interrupt freeing
2130 * logic etc).
2131 *
2132 * Also shared interrupts do not go well with disabling auto enable.
2133 * The sharing interrupt might request it while it's still disabled
2134 * and then wait for interrupts forever.
2135 *
2136 * Also IRQF_COND_SUSPEND only makes sense for shared interrupts and
2137 * it cannot be set along with IRQF_NO_SUSPEND.
2138 */
2139 if (((irqflags & IRQF_SHARED) && !dev_id) ||
2140 ((irqflags & IRQF_SHARED) && (irqflags & IRQF_NO_AUTOEN)) ||
2141 (!(irqflags & IRQF_SHARED) && (irqflags & IRQF_COND_SUSPEND)) ||
2142 ((irqflags & IRQF_NO_SUSPEND) && (irqflags & IRQF_COND_SUSPEND)))
2143 return -EINVAL;
2144
2145 desc = irq_to_desc(irq);
2146 if (!desc)
2147 return -EINVAL;
2148
2149 if (!irq_settings_can_request(desc) ||
2150 WARN_ON(irq_settings_is_per_cpu_devid(desc)))
2151 return -EINVAL;
2152
2153 if (!handler) {
2154 if (!thread_fn)
2155 return -EINVAL;
2156 handler = irq_default_primary_handler;
2157 }
2158
2159 action = kzalloc_obj(struct irqaction);
2160 if (!action)
2161 return -ENOMEM;
2162
2163 action->handler = handler;
2164 action->thread_fn = thread_fn;
2165 action->flags = irqflags;
2166 action->name = devname;
2167 action->dev_id = dev_id;
2168
2169 retval = irq_chip_pm_get(&desc->irq_data);
2170 if (retval < 0) {
2171 kfree(action);
2172 return retval;
2173 }
2174
2175 retval = __setup_irq(irq, desc, action);
2176
2177 if (retval) {
2178 irq_chip_pm_put(&desc->irq_data);
2179 kfree(action->secondary);
2180 kfree(action);
2181 }
2182
2183 #ifdef CONFIG_DEBUG_SHIRQ_FIXME
2184 if (!retval && (irqflags & IRQF_SHARED)) {
2185 /*
2186 * It's a shared IRQ -- the driver ought to be prepared for it
2187 * to happen immediately, so let's make sure....
2188 * We disable the irq to make sure that a 'real' IRQ doesn't
2189 * run in parallel with our fake.
2190 */
2191 unsigned long flags;
2192
2193 disable_irq(irq);
2194 local_irq_save(flags);
2195
2196 handler(irq, dev_id);
2197
2198 local_irq_restore(flags);
2199 enable_irq(irq);
2200 }
2201 #endif
2202 return retval;
2203 }
2204 EXPORT_SYMBOL(request_threaded_irq);
2205
2206 /**
2207 * request_any_context_irq - allocate an interrupt line
2208 * @irq: Interrupt line to allocate
2209 * @handler: Function to be called when the IRQ occurs.
2210 * Threaded handler for threaded interrupts.
2211 * @flags: Interrupt type flags
2212 * @name: An ascii name for the claiming device
2213 * @dev_id: A cookie passed back to the handler function
2214 *
2215 * This call allocates interrupt resources and enables the interrupt line
2216 * and IRQ handling. It selects either a hardirq or threaded handling
2217 * method depending on the context.
2218 *
2219 * Returns: On failure, it returns a negative value. On success, it returns either
2220 * IRQC_IS_HARDIRQ or IRQC_IS_NESTED.
2221 */
request_any_context_irq(unsigned int irq,irq_handler_t handler,unsigned long flags,const char * name,void * dev_id)2222 int request_any_context_irq(unsigned int irq, irq_handler_t handler,
2223 unsigned long flags, const char *name, void *dev_id)
2224 {
2225 struct irq_desc *desc;
2226 int ret;
2227
2228 if (irq == IRQ_NOTCONNECTED)
2229 return -ENOTCONN;
2230
2231 desc = irq_to_desc(irq);
2232 if (!desc)
2233 return -EINVAL;
2234
2235 if (irq_settings_is_nested_thread(desc)) {
2236 ret = request_threaded_irq(irq, NULL, handler,
2237 flags, name, dev_id);
2238 return !ret ? IRQC_IS_NESTED : ret;
2239 }
2240
2241 ret = request_irq(irq, handler, flags, name, dev_id);
2242 return !ret ? IRQC_IS_HARDIRQ : ret;
2243 }
2244 EXPORT_SYMBOL_GPL(request_any_context_irq);
2245
2246 /**
2247 * request_nmi - allocate an interrupt line for NMI delivery
2248 * @irq: Interrupt line to allocate
2249 * @handler: Function to be called when the IRQ occurs.
2250 * Threaded handler for threaded interrupts.
2251 * @irqflags: Interrupt type flags
2252 * @name: An ascii name for the claiming device
2253 * @dev_id: A cookie passed back to the handler function
2254 *
2255 * This call allocates interrupt resources and enables the interrupt line
2256 * and IRQ handling. It sets up the IRQ line to be handled as an NMI.
2257 *
2258 * An interrupt line delivering NMIs cannot be shared and IRQ handling
2259 * cannot be threaded.
2260 *
2261 * Interrupt lines requested for NMI delivering must produce per cpu
2262 * interrupts and have auto enabling setting disabled.
2263 *
2264 * @dev_id must be globally unique. Normally the address of the device data
2265 * structure is used as the cookie. Since the handler receives this value
2266 * it makes sense to use it.
2267 *
2268 * If the interrupt line cannot be used to deliver NMIs, function will fail
2269 * and return a negative value.
2270 */
request_nmi(unsigned int irq,irq_handler_t handler,unsigned long irqflags,const char * name,void * dev_id)2271 int request_nmi(unsigned int irq, irq_handler_t handler,
2272 unsigned long irqflags, const char *name, void *dev_id)
2273 {
2274 struct irqaction *action;
2275 struct irq_desc *desc;
2276 int retval;
2277
2278 if (irq == IRQ_NOTCONNECTED)
2279 return -ENOTCONN;
2280
2281 /* NMI cannot be shared, used for Polling */
2282 if (irqflags & (IRQF_SHARED | IRQF_COND_SUSPEND | IRQF_IRQPOLL))
2283 return -EINVAL;
2284
2285 if (!(irqflags & IRQF_PERCPU))
2286 return -EINVAL;
2287
2288 if (!handler)
2289 return -EINVAL;
2290
2291 desc = irq_to_desc(irq);
2292
2293 if (!desc || (irq_settings_can_autoenable(desc) &&
2294 !(irqflags & IRQF_NO_AUTOEN)) ||
2295 !irq_settings_can_request(desc) ||
2296 WARN_ON(irq_settings_is_per_cpu_devid(desc)) ||
2297 !irq_supports_nmi(desc))
2298 return -EINVAL;
2299
2300 action = kzalloc(sizeof(struct irqaction), GFP_KERNEL);
2301 if (!action)
2302 return -ENOMEM;
2303
2304 action->handler = handler;
2305 action->flags = irqflags | IRQF_NO_THREAD | IRQF_NOBALANCING;
2306 action->name = name;
2307 action->dev_id = dev_id;
2308
2309 retval = irq_chip_pm_get(&desc->irq_data);
2310 if (retval < 0)
2311 goto err_out;
2312
2313 retval = __setup_irq(irq, desc, action);
2314 if (retval)
2315 goto err_irq_setup;
2316
2317 scoped_guard(raw_spinlock_irqsave, &desc->lock) {
2318 /* Setup NMI state */
2319 desc->istate |= IRQS_NMI;
2320 retval = irq_nmi_setup(desc);
2321 if (retval) {
2322 __cleanup_nmi(irq, desc);
2323 return -EINVAL;
2324 }
2325 return 0;
2326 }
2327
2328 err_irq_setup:
2329 irq_chip_pm_put(&desc->irq_data);
2330 err_out:
2331 kfree(action);
2332
2333 return retval;
2334 }
2335
enable_percpu_irq(unsigned int irq,unsigned int type)2336 void enable_percpu_irq(unsigned int irq, unsigned int type)
2337 {
2338 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_PERCPU) {
2339 struct irq_desc *desc = scoped_irqdesc;
2340
2341 /*
2342 * If the trigger type is not specified by the caller, then
2343 * use the default for this interrupt.
2344 */
2345 type &= IRQ_TYPE_SENSE_MASK;
2346 if (type == IRQ_TYPE_NONE)
2347 type = irqd_get_trigger_type(&desc->irq_data);
2348
2349 if (type != IRQ_TYPE_NONE) {
2350 if (__irq_set_trigger(desc, type)) {
2351 WARN(1, "failed to set type for IRQ%d\n", irq);
2352 return;
2353 }
2354 }
2355 irq_percpu_enable(desc, smp_processor_id());
2356 }
2357 }
2358 EXPORT_SYMBOL_GPL(enable_percpu_irq);
2359
enable_percpu_nmi(unsigned int irq,unsigned int type)2360 void enable_percpu_nmi(unsigned int irq, unsigned int type)
2361 {
2362 enable_percpu_irq(irq, type);
2363 }
2364
2365 /**
2366 * irq_percpu_is_enabled - Check whether the per cpu irq is enabled
2367 * @irq: Linux irq number to check for
2368 *
2369 * Must be called from a non migratable context. Returns the enable
2370 * state of a per cpu interrupt on the current cpu.
2371 */
irq_percpu_is_enabled(unsigned int irq)2372 bool irq_percpu_is_enabled(unsigned int irq)
2373 {
2374 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_PERCPU)
2375 return cpumask_test_cpu(smp_processor_id(), scoped_irqdesc->percpu_enabled);
2376 return false;
2377 }
2378 EXPORT_SYMBOL_GPL(irq_percpu_is_enabled);
2379
disable_percpu_irq(unsigned int irq)2380 void disable_percpu_irq(unsigned int irq)
2381 {
2382 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_PERCPU)
2383 irq_percpu_disable(scoped_irqdesc, smp_processor_id());
2384 }
2385 EXPORT_SYMBOL_GPL(disable_percpu_irq);
2386
disable_percpu_nmi(unsigned int irq)2387 void disable_percpu_nmi(unsigned int irq)
2388 {
2389 disable_percpu_irq(irq);
2390 }
2391
2392 /*
2393 * Internal function to unregister a percpu irqaction.
2394 */
__free_percpu_irq(unsigned int irq,void __percpu * dev_id)2395 static struct irqaction *__free_percpu_irq(unsigned int irq, void __percpu *dev_id)
2396 {
2397 struct irq_desc *desc = irq_to_desc(irq);
2398 struct irqaction *action, **action_ptr;
2399
2400 WARN(in_interrupt(), "Trying to free IRQ %d from IRQ context!\n", irq);
2401
2402 if (!desc)
2403 return NULL;
2404
2405 scoped_guard(raw_spinlock_irqsave, &desc->lock) {
2406 action_ptr = &desc->action;
2407 for (;;) {
2408 action = *action_ptr;
2409
2410 if (!action) {
2411 WARN(1, "Trying to free already-free IRQ %d\n", irq);
2412 return NULL;
2413 }
2414
2415 if (action->percpu_dev_id == dev_id)
2416 break;
2417
2418 action_ptr = &action->next;
2419 }
2420
2421 if (cpumask_intersects(desc->percpu_enabled, action->affinity)) {
2422 WARN(1, "percpu IRQ %d still enabled on CPU%d!\n", irq,
2423 cpumask_first_and(desc->percpu_enabled, action->affinity));
2424 return NULL;
2425 }
2426
2427 /* Found it - now remove it from the list of entries: */
2428 *action_ptr = action->next;
2429
2430 /* Demote from NMI if we killed the last action */
2431 if (!desc->action)
2432 desc->istate &= ~IRQS_NMI;
2433 }
2434
2435 unregister_handler_proc(irq, action);
2436 irq_chip_pm_put(&desc->irq_data);
2437 module_put(desc->owner);
2438 return action;
2439 }
2440
2441 /**
2442 * free_percpu_irq - free an interrupt allocated with request_percpu_irq
2443 * @irq: Interrupt line to free
2444 * @dev_id: Device identity to free
2445 *
2446 * Remove a percpu interrupt handler. The handler is removed, but the
2447 * interrupt line is not disabled. This must be done on each CPU before
2448 * calling this function. The function does not return until any executing
2449 * interrupts for this IRQ have completed.
2450 *
2451 * This function must not be called from interrupt context.
2452 */
free_percpu_irq(unsigned int irq,void __percpu * dev_id)2453 void free_percpu_irq(unsigned int irq, void __percpu *dev_id)
2454 {
2455 struct irq_desc *desc = irq_to_desc(irq);
2456
2457 if (!desc || !irq_settings_is_per_cpu_devid(desc))
2458 return;
2459
2460 chip_bus_lock(desc);
2461 kfree(__free_percpu_irq(irq, dev_id));
2462 chip_bus_sync_unlock(desc);
2463 }
2464 EXPORT_SYMBOL_GPL(free_percpu_irq);
2465
free_percpu_nmi(unsigned int irq,void __percpu * dev_id)2466 void free_percpu_nmi(unsigned int irq, void __percpu *dev_id)
2467 {
2468 struct irq_desc *desc = irq_to_desc(irq);
2469
2470 if (!desc || !irq_settings_is_per_cpu_devid(desc))
2471 return;
2472
2473 if (WARN_ON(!irq_is_nmi(desc)))
2474 return;
2475
2476 kfree(__free_percpu_irq(irq, dev_id));
2477 }
2478
2479 static
create_percpu_irqaction(irq_handler_t handler,unsigned long flags,const char * devname,const cpumask_t * affinity,void __percpu * dev_id)2480 struct irqaction *create_percpu_irqaction(irq_handler_t handler, unsigned long flags,
2481 const char *devname, const cpumask_t *affinity,
2482 void __percpu *dev_id)
2483 {
2484 struct irqaction *action;
2485
2486 if (!affinity)
2487 affinity = cpu_possible_mask;
2488
2489 action = kzalloc_obj(struct irqaction);
2490 if (!action)
2491 return NULL;
2492
2493 action->handler = handler;
2494 action->flags = flags | IRQF_PERCPU | IRQF_NO_SUSPEND;
2495 action->name = devname;
2496 action->percpu_dev_id = dev_id;
2497 action->affinity = affinity;
2498
2499 /*
2500 * We allow some form of sharing for non-overlapping affinity
2501 * masks. Obviously, covering all CPUs prevents any sharing in
2502 * the first place.
2503 */
2504 if (!cpumask_equal(affinity, cpu_possible_mask))
2505 action->flags |= IRQF_SHARED;
2506
2507 return action;
2508 }
2509
2510 /**
2511 * request_percpu_irq_affinity - allocate a percpu interrupt line
2512 * @irq: Interrupt line to allocate
2513 * @handler: Function to be called when the IRQ occurs.
2514 * @devname: An ascii name for the claiming device
2515 * @affinity: A cpumask describing the target CPUs for this interrupt
2516 * @dev_id: A percpu cookie passed back to the handler function
2517 *
2518 * This call allocates interrupt resources, but doesn't enable the interrupt
2519 * on any CPU, as all percpu-devid interrupts are flagged with IRQ_NOAUTOEN.
2520 * It has to be done on each CPU using enable_percpu_irq().
2521 *
2522 * @dev_id must be globally unique. It is a per-cpu variable, and
2523 * the handler gets called with the interrupted CPU's instance of
2524 * that variable.
2525 */
request_percpu_irq_affinity(unsigned int irq,irq_handler_t handler,const char * devname,const cpumask_t * affinity,void __percpu * dev_id)2526 int request_percpu_irq_affinity(unsigned int irq, irq_handler_t handler, const char *devname,
2527 const cpumask_t *affinity, void __percpu *dev_id)
2528 {
2529 struct irqaction *action;
2530 struct irq_desc *desc;
2531 int retval;
2532
2533 if (!dev_id)
2534 return -EINVAL;
2535
2536 desc = irq_to_desc(irq);
2537 if (!desc || !irq_settings_can_request(desc) ||
2538 !irq_settings_is_per_cpu_devid(desc))
2539 return -EINVAL;
2540
2541 action = create_percpu_irqaction(handler, 0, devname, affinity, dev_id);
2542 if (!action)
2543 return -ENOMEM;
2544
2545 retval = irq_chip_pm_get(&desc->irq_data);
2546 if (retval < 0) {
2547 kfree(action);
2548 return retval;
2549 }
2550
2551 retval = __setup_irq(irq, desc, action);
2552
2553 if (retval) {
2554 irq_chip_pm_put(&desc->irq_data);
2555 kfree(action);
2556 }
2557
2558 return retval;
2559 }
2560 EXPORT_SYMBOL_GPL(request_percpu_irq_affinity);
2561
2562 /**
2563 * request_percpu_nmi - allocate a percpu interrupt line for NMI delivery
2564 * @irq: Interrupt line to allocate
2565 * @handler: Function to be called when the IRQ occurs.
2566 * @name: An ascii name for the claiming device
2567 * @affinity: A cpumask describing the target CPUs for this interrupt
2568 * @dev_id: A percpu cookie passed back to the handler function
2569 *
2570 * This call allocates interrupt resources for a per CPU NMI. Per CPU NMIs
2571 * have to be setup on each CPU by calling prepare_percpu_nmi() before
2572 * being enabled on the same CPU by using enable_percpu_nmi().
2573 *
2574 * @dev_id must be globally unique. It is a per-cpu variable, and the
2575 * handler gets called with the interrupted CPU's instance of that
2576 * variable.
2577 *
2578 * Interrupt lines requested for NMI delivering should have auto enabling
2579 * setting disabled.
2580 *
2581 * If the interrupt line cannot be used to deliver NMIs, function
2582 * will fail returning a negative value.
2583 */
request_percpu_nmi(unsigned int irq,irq_handler_t handler,const char * name,const struct cpumask * affinity,void __percpu * dev_id)2584 int request_percpu_nmi(unsigned int irq, irq_handler_t handler, const char *name,
2585 const struct cpumask *affinity, void __percpu *dev_id)
2586 {
2587 struct irqaction *action;
2588 struct irq_desc *desc;
2589 int retval;
2590
2591 if (!handler)
2592 return -EINVAL;
2593
2594 desc = irq_to_desc(irq);
2595
2596 if (!desc || !irq_settings_can_request(desc) ||
2597 !irq_settings_is_per_cpu_devid(desc) ||
2598 irq_settings_can_autoenable(desc) ||
2599 !irq_supports_nmi(desc))
2600 return -EINVAL;
2601
2602 /* The line cannot be NMI already if the new request covers all CPUs */
2603 if (irq_is_nmi(desc) &&
2604 (!affinity || cpumask_equal(affinity, cpu_possible_mask)))
2605 return -EINVAL;
2606
2607 action = create_percpu_irqaction(handler, IRQF_NO_THREAD | IRQF_NOBALANCING,
2608 name, affinity, dev_id);
2609 if (!action)
2610 return -ENOMEM;
2611
2612 retval = irq_chip_pm_get(&desc->irq_data);
2613 if (retval < 0)
2614 goto err_out;
2615
2616 retval = __setup_irq(irq, desc, action);
2617 if (retval)
2618 goto err_irq_setup;
2619
2620 scoped_guard(raw_spinlock_irqsave, &desc->lock)
2621 desc->istate |= IRQS_NMI;
2622 return 0;
2623
2624 err_irq_setup:
2625 irq_chip_pm_put(&desc->irq_data);
2626 err_out:
2627 kfree(action);
2628
2629 return retval;
2630 }
2631
2632 /**
2633 * prepare_percpu_nmi - performs CPU local setup for NMI delivery
2634 * @irq: Interrupt line to prepare for NMI delivery
2635 *
2636 * This call prepares an interrupt line to deliver NMI on the current CPU,
2637 * before that interrupt line gets enabled with enable_percpu_nmi().
2638 *
2639 * As a CPU local operation, this should be called from non-preemptible
2640 * context.
2641 *
2642 * If the interrupt line cannot be used to deliver NMIs, function will fail
2643 * returning a negative value.
2644 */
prepare_percpu_nmi(unsigned int irq)2645 int prepare_percpu_nmi(unsigned int irq)
2646 {
2647 int ret = -EINVAL;
2648
2649 WARN_ON(preemptible());
2650
2651 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_PERCPU) {
2652 if (WARN(!irq_is_nmi(scoped_irqdesc),
2653 "prepare_percpu_nmi called for a non-NMI interrupt: irq %u\n", irq))
2654 return -EINVAL;
2655
2656 ret = irq_nmi_setup(scoped_irqdesc);
2657 if (ret)
2658 pr_err("Failed to setup NMI delivery: irq %u\n", irq);
2659 }
2660 return ret;
2661 }
2662
2663 /**
2664 * teardown_percpu_nmi - undoes NMI setup of IRQ line
2665 * @irq: Interrupt line from which CPU local NMI configuration should be removed
2666 *
2667 * This call undoes the setup done by prepare_percpu_nmi().
2668 *
2669 * IRQ line should not be enabled for the current CPU.
2670 * As a CPU local operation, this should be called from non-preemptible
2671 * context.
2672 */
teardown_percpu_nmi(unsigned int irq)2673 void teardown_percpu_nmi(unsigned int irq)
2674 {
2675 WARN_ON(preemptible());
2676
2677 scoped_irqdesc_get_and_lock(irq, IRQ_GET_DESC_CHECK_PERCPU) {
2678 if (WARN_ON(!irq_is_nmi(scoped_irqdesc)))
2679 return;
2680 irq_nmi_teardown(scoped_irqdesc);
2681 }
2682 }
2683
__irq_get_irqchip_state(struct irq_data * data,enum irqchip_irq_state which,bool * state)2684 static int __irq_get_irqchip_state(struct irq_data *data, enum irqchip_irq_state which, bool *state)
2685 {
2686 struct irq_chip *chip;
2687 int err = -EINVAL;
2688
2689 do {
2690 chip = irq_data_get_irq_chip(data);
2691 if (WARN_ON_ONCE(!chip))
2692 return -ENODEV;
2693 if (chip->irq_get_irqchip_state)
2694 break;
2695 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY
2696 data = data->parent_data;
2697 #else
2698 data = NULL;
2699 #endif
2700 } while (data);
2701
2702 if (data)
2703 err = chip->irq_get_irqchip_state(data, which, state);
2704 return err;
2705 }
2706
2707 /**
2708 * irq_get_irqchip_state - returns the irqchip state of a interrupt.
2709 * @irq: Interrupt line that is forwarded to a VM
2710 * @which: One of IRQCHIP_STATE_* the caller wants to know about
2711 * @state: a pointer to a boolean where the state is to be stored
2712 *
2713 * This call snapshots the internal irqchip state of an interrupt,
2714 * returning into @state the bit corresponding to stage @which
2715 *
2716 * This function should be called with preemption disabled if the interrupt
2717 * controller has per-cpu registers.
2718 */
irq_get_irqchip_state(unsigned int irq,enum irqchip_irq_state which,bool * state)2719 int irq_get_irqchip_state(unsigned int irq, enum irqchip_irq_state which, bool *state)
2720 {
2721 scoped_irqdesc_get_and_buslock(irq, 0) {
2722 struct irq_data *data = irq_desc_get_irq_data(scoped_irqdesc);
2723
2724 return __irq_get_irqchip_state(data, which, state);
2725 }
2726 return -EINVAL;
2727 }
2728 EXPORT_SYMBOL_GPL(irq_get_irqchip_state);
2729
2730 /**
2731 * irq_set_irqchip_state - set the state of a forwarded interrupt.
2732 * @irq: Interrupt line that is forwarded to a VM
2733 * @which: State to be restored (one of IRQCHIP_STATE_*)
2734 * @val: Value corresponding to @which
2735 *
2736 * This call sets the internal irqchip state of an interrupt, depending on
2737 * the value of @which.
2738 *
2739 * This function should be called with migration disabled if the interrupt
2740 * controller has per-cpu registers.
2741 */
irq_set_irqchip_state(unsigned int irq,enum irqchip_irq_state which,bool val)2742 int irq_set_irqchip_state(unsigned int irq, enum irqchip_irq_state which, bool val)
2743 {
2744 scoped_irqdesc_get_and_buslock(irq, 0) {
2745 struct irq_data *data = irq_desc_get_irq_data(scoped_irqdesc);
2746 struct irq_chip *chip;
2747
2748 do {
2749 chip = irq_data_get_irq_chip(data);
2750
2751 if (WARN_ON_ONCE(!chip))
2752 return -ENODEV;
2753
2754 if (chip->irq_set_irqchip_state)
2755 break;
2756
2757 data = irqd_get_parent_data(data);
2758 } while (data);
2759
2760 if (data)
2761 return chip->irq_set_irqchip_state(data, which, val);
2762 }
2763 return -EINVAL;
2764 }
2765 EXPORT_SYMBOL_GPL(irq_set_irqchip_state);
2766
2767 /**
2768 * irq_has_action - Check whether an interrupt is requested
2769 * @irq: The linux irq number
2770 *
2771 * Returns: A snapshot of the current state
2772 */
irq_has_action(unsigned int irq)2773 bool irq_has_action(unsigned int irq)
2774 {
2775 bool res;
2776
2777 rcu_read_lock();
2778 res = irq_desc_has_action(irq_to_desc(irq));
2779 rcu_read_unlock();
2780 return res;
2781 }
2782 EXPORT_SYMBOL_GPL(irq_has_action);
2783
2784 /**
2785 * irq_check_status_bit - Check whether bits in the irq descriptor status are set
2786 * @irq: The linux irq number
2787 * @bitmask: The bitmask to evaluate
2788 *
2789 * Returns: True if one of the bits in @bitmask is set
2790 */
irq_check_status_bit(unsigned int irq,unsigned int bitmask)2791 bool irq_check_status_bit(unsigned int irq, unsigned int bitmask)
2792 {
2793 struct irq_desc *desc;
2794 bool res = false;
2795
2796 rcu_read_lock();
2797 desc = irq_to_desc(irq);
2798 if (desc)
2799 res = !!(desc->status_use_accessors & bitmask);
2800 rcu_read_unlock();
2801 return res;
2802 }
2803 EXPORT_SYMBOL_GPL(irq_check_status_bit);
2804