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, Russell King
5 *
6 * This file contains the interrupt descriptor management code. Detailed
7 * information is available in Documentation/core-api/genericirq.rst
8 *
9 */
10 #include <linux/irq.h>
11 #include <linux/slab.h>
12 #include <linux/export.h>
13 #include <linux/interrupt.h>
14 #include <linux/kernel_stat.h>
15 #include <linux/radix-tree.h>
16 #include <linux/bitmap.h>
17 #include <linux/irqdomain.h>
18 #include <linux/sysfs.h>
19
20 #include "internals.h"
21
22 /*
23 * lockdep: we want to handle all irq_desc locks as a single lock-class:
24 */
25 static struct lock_class_key irq_desc_lock_class;
26
27 #if defined(CONFIG_SMP)
irq_affinity_setup(char * str)28 static int __init irq_affinity_setup(char *str)
29 {
30 alloc_bootmem_cpumask_var(&irq_default_affinity);
31 cpulist_parse(str, irq_default_affinity);
32 /*
33 * Set at least the boot cpu. We don't want to end up with
34 * bugreports caused by random comandline masks
35 */
36 cpumask_set_cpu(smp_processor_id(), irq_default_affinity);
37 return 1;
38 }
39 __setup("irqaffinity=", irq_affinity_setup);
40
init_irq_default_affinity(void)41 static void __init init_irq_default_affinity(void)
42 {
43 if (!cpumask_available(irq_default_affinity))
44 zalloc_cpumask_var(&irq_default_affinity, GFP_NOWAIT);
45 if (cpumask_empty(irq_default_affinity))
46 cpumask_setall(irq_default_affinity);
47 }
48 #else
init_irq_default_affinity(void)49 static void __init init_irq_default_affinity(void)
50 {
51 }
52 #endif
53
54 #ifdef CONFIG_SMP
alloc_masks(struct irq_desc * desc,int node)55 static int alloc_masks(struct irq_desc *desc, int node)
56 {
57 if (!zalloc_cpumask_var_node(&desc->irq_common_data.affinity,
58 GFP_KERNEL, node))
59 return -ENOMEM;
60
61 #ifdef CONFIG_GENERIC_IRQ_EFFECTIVE_AFF_MASK
62 if (!zalloc_cpumask_var_node(&desc->irq_common_data.effective_affinity,
63 GFP_KERNEL, node)) {
64 free_cpumask_var(desc->irq_common_data.affinity);
65 return -ENOMEM;
66 }
67 #endif
68
69 #ifdef CONFIG_GENERIC_PENDING_IRQ
70 if (!zalloc_cpumask_var_node(&desc->pending_mask, GFP_KERNEL, node)) {
71 #ifdef CONFIG_GENERIC_IRQ_EFFECTIVE_AFF_MASK
72 free_cpumask_var(desc->irq_common_data.effective_affinity);
73 #endif
74 free_cpumask_var(desc->irq_common_data.affinity);
75 return -ENOMEM;
76 }
77 #endif
78 return 0;
79 }
80
desc_smp_init(struct irq_desc * desc,int node,const struct cpumask * affinity)81 static void desc_smp_init(struct irq_desc *desc, int node,
82 const struct cpumask *affinity)
83 {
84 if (!affinity)
85 affinity = irq_default_affinity;
86 cpumask_copy(desc->irq_common_data.affinity, affinity);
87
88 #ifdef CONFIG_GENERIC_PENDING_IRQ
89 cpumask_clear(desc->pending_mask);
90 #endif
91 #ifdef CONFIG_NUMA
92 desc->irq_common_data.node = node;
93 #endif
94 }
95
96 #else
97 static inline int
alloc_masks(struct irq_desc * desc,int node)98 alloc_masks(struct irq_desc *desc, int node) { return 0; }
99 static inline void
desc_smp_init(struct irq_desc * desc,int node,const struct cpumask * affinity)100 desc_smp_init(struct irq_desc *desc, int node, const struct cpumask *affinity) { }
101 #endif
102
desc_set_defaults(unsigned int irq,struct irq_desc * desc,int node,const struct cpumask * affinity,struct module * owner)103 static void desc_set_defaults(unsigned int irq, struct irq_desc *desc, int node,
104 const struct cpumask *affinity, struct module *owner)
105 {
106 int cpu;
107
108 desc->irq_common_data.handler_data = NULL;
109 desc->irq_common_data.msi_desc = NULL;
110
111 desc->irq_data.common = &desc->irq_common_data;
112 desc->irq_data.irq = irq;
113 desc->irq_data.chip = &no_irq_chip;
114 desc->irq_data.chip_data = NULL;
115 irq_settings_clr_and_set(desc, ~0, _IRQ_DEFAULT_INIT_FLAGS);
116 irqd_set(&desc->irq_data, IRQD_IRQ_DISABLED);
117 irqd_set(&desc->irq_data, IRQD_IRQ_MASKED);
118 desc->handle_irq = handle_bad_irq;
119 desc->depth = 1;
120 desc->irq_count = 0;
121 desc->irqs_unhandled = 0;
122 desc->tot_count = 0;
123 desc->name = NULL;
124 desc->owner = owner;
125 for_each_possible_cpu(cpu)
126 *per_cpu_ptr(desc->kstat_irqs, cpu) = 0;
127 desc_smp_init(desc, node, affinity);
128 }
129
130 int nr_irqs = NR_IRQS;
131 EXPORT_SYMBOL_GPL(nr_irqs);
132
133 static DEFINE_MUTEX(sparse_irq_lock);
134 static DECLARE_BITMAP(allocated_irqs, IRQ_BITMAP_BITS);
135
136 #ifdef CONFIG_SPARSE_IRQ
137
138 static void irq_kobj_release(struct kobject *kobj);
139
140 #ifdef CONFIG_SYSFS
141 static struct kobject *irq_kobj_base;
142
143 #define IRQ_ATTR_RO(_name) \
144 static struct kobj_attribute _name##_attr = __ATTR_RO(_name)
145
per_cpu_count_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)146 static ssize_t per_cpu_count_show(struct kobject *kobj,
147 struct kobj_attribute *attr, char *buf)
148 {
149 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
150 int cpu, irq = desc->irq_data.irq;
151 ssize_t ret = 0;
152 char *p = "";
153
154 for_each_possible_cpu(cpu) {
155 unsigned int c = kstat_irqs_cpu(irq, cpu);
156
157 ret += scnprintf(buf + ret, PAGE_SIZE - ret, "%s%u", p, c);
158 p = ",";
159 }
160
161 ret += scnprintf(buf + ret, PAGE_SIZE - ret, "\n");
162 return ret;
163 }
164 IRQ_ATTR_RO(per_cpu_count);
165
chip_name_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)166 static ssize_t chip_name_show(struct kobject *kobj,
167 struct kobj_attribute *attr, char *buf)
168 {
169 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
170 ssize_t ret = 0;
171
172 raw_spin_lock_irq(&desc->lock);
173 if (desc->irq_data.chip && desc->irq_data.chip->name) {
174 ret = scnprintf(buf, PAGE_SIZE, "%s\n",
175 desc->irq_data.chip->name);
176 }
177 raw_spin_unlock_irq(&desc->lock);
178
179 return ret;
180 }
181 IRQ_ATTR_RO(chip_name);
182
hwirq_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)183 static ssize_t hwirq_show(struct kobject *kobj,
184 struct kobj_attribute *attr, char *buf)
185 {
186 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
187 ssize_t ret = 0;
188
189 raw_spin_lock_irq(&desc->lock);
190 if (desc->irq_data.domain)
191 ret = sprintf(buf, "%d\n", (int)desc->irq_data.hwirq);
192 raw_spin_unlock_irq(&desc->lock);
193
194 return ret;
195 }
196 IRQ_ATTR_RO(hwirq);
197
type_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)198 static ssize_t type_show(struct kobject *kobj,
199 struct kobj_attribute *attr, char *buf)
200 {
201 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
202 ssize_t ret = 0;
203
204 raw_spin_lock_irq(&desc->lock);
205 ret = sprintf(buf, "%s\n",
206 irqd_is_level_type(&desc->irq_data) ? "level" : "edge");
207 raw_spin_unlock_irq(&desc->lock);
208
209 return ret;
210
211 }
212 IRQ_ATTR_RO(type);
213
wakeup_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)214 static ssize_t wakeup_show(struct kobject *kobj,
215 struct kobj_attribute *attr, char *buf)
216 {
217 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
218 ssize_t ret = 0;
219
220 raw_spin_lock_irq(&desc->lock);
221 ret = sprintf(buf, "%s\n",
222 irqd_is_wakeup_set(&desc->irq_data) ? "enabled" : "disabled");
223 raw_spin_unlock_irq(&desc->lock);
224
225 return ret;
226
227 }
228 IRQ_ATTR_RO(wakeup);
229
name_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)230 static ssize_t name_show(struct kobject *kobj,
231 struct kobj_attribute *attr, char *buf)
232 {
233 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
234 ssize_t ret = 0;
235
236 raw_spin_lock_irq(&desc->lock);
237 if (desc->name)
238 ret = scnprintf(buf, PAGE_SIZE, "%s\n", desc->name);
239 raw_spin_unlock_irq(&desc->lock);
240
241 return ret;
242 }
243 IRQ_ATTR_RO(name);
244
actions_show(struct kobject * kobj,struct kobj_attribute * attr,char * buf)245 static ssize_t actions_show(struct kobject *kobj,
246 struct kobj_attribute *attr, char *buf)
247 {
248 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
249 struct irqaction *action;
250 ssize_t ret = 0;
251 char *p = "";
252
253 raw_spin_lock_irq(&desc->lock);
254 for (action = desc->action; action != NULL; action = action->next) {
255 ret += scnprintf(buf + ret, PAGE_SIZE - ret, "%s%s",
256 p, action->name);
257 p = ",";
258 }
259 raw_spin_unlock_irq(&desc->lock);
260
261 if (ret)
262 ret += scnprintf(buf + ret, PAGE_SIZE - ret, "\n");
263
264 return ret;
265 }
266 IRQ_ATTR_RO(actions);
267
268 static struct attribute *irq_attrs[] = {
269 &per_cpu_count_attr.attr,
270 &chip_name_attr.attr,
271 &hwirq_attr.attr,
272 &type_attr.attr,
273 &wakeup_attr.attr,
274 &name_attr.attr,
275 &actions_attr.attr,
276 NULL
277 };
278 ATTRIBUTE_GROUPS(irq);
279
280 static struct kobj_type irq_kobj_type = {
281 .release = irq_kobj_release,
282 .sysfs_ops = &kobj_sysfs_ops,
283 .default_groups = irq_groups,
284 };
285
irq_sysfs_add(int irq,struct irq_desc * desc)286 static void irq_sysfs_add(int irq, struct irq_desc *desc)
287 {
288 if (irq_kobj_base) {
289 /*
290 * Continue even in case of failure as this is nothing
291 * crucial.
292 */
293 if (kobject_add(&desc->kobj, irq_kobj_base, "%d", irq))
294 pr_warn("Failed to add kobject for irq %d\n", irq);
295 }
296 }
297
irq_sysfs_del(struct irq_desc * desc)298 static void irq_sysfs_del(struct irq_desc *desc)
299 {
300 /*
301 * If irq_sysfs_init() has not yet been invoked (early boot), then
302 * irq_kobj_base is NULL and the descriptor was never added.
303 * kobject_del() complains about a object with no parent, so make
304 * it conditional.
305 */
306 if (irq_kobj_base)
307 kobject_del(&desc->kobj);
308 }
309
irq_sysfs_init(void)310 static int __init irq_sysfs_init(void)
311 {
312 struct irq_desc *desc;
313 int irq;
314
315 /* Prevent concurrent irq alloc/free */
316 irq_lock_sparse();
317
318 irq_kobj_base = kobject_create_and_add("irq", kernel_kobj);
319 if (!irq_kobj_base) {
320 irq_unlock_sparse();
321 return -ENOMEM;
322 }
323
324 /* Add the already allocated interrupts */
325 for_each_irq_desc(irq, desc)
326 irq_sysfs_add(irq, desc);
327 irq_unlock_sparse();
328
329 return 0;
330 }
331 postcore_initcall(irq_sysfs_init);
332
333 #else /* !CONFIG_SYSFS */
334
335 static struct kobj_type irq_kobj_type = {
336 .release = irq_kobj_release,
337 };
338
irq_sysfs_add(int irq,struct irq_desc * desc)339 static void irq_sysfs_add(int irq, struct irq_desc *desc) {}
irq_sysfs_del(struct irq_desc * desc)340 static void irq_sysfs_del(struct irq_desc *desc) {}
341
342 #endif /* CONFIG_SYSFS */
343
344 static RADIX_TREE(irq_desc_tree, GFP_KERNEL);
345
irq_insert_desc(unsigned int irq,struct irq_desc * desc)346 static void irq_insert_desc(unsigned int irq, struct irq_desc *desc)
347 {
348 radix_tree_insert(&irq_desc_tree, irq, desc);
349 }
350
irq_to_desc(unsigned int irq)351 struct irq_desc *irq_to_desc(unsigned int irq)
352 {
353 return radix_tree_lookup(&irq_desc_tree, irq);
354 }
355 EXPORT_SYMBOL(irq_to_desc);
356
delete_irq_desc(unsigned int irq)357 static void delete_irq_desc(unsigned int irq)
358 {
359 radix_tree_delete(&irq_desc_tree, irq);
360 }
361
362 #ifdef CONFIG_SMP
free_masks(struct irq_desc * desc)363 static void free_masks(struct irq_desc *desc)
364 {
365 #ifdef CONFIG_GENERIC_PENDING_IRQ
366 free_cpumask_var(desc->pending_mask);
367 #endif
368 free_cpumask_var(desc->irq_common_data.affinity);
369 #ifdef CONFIG_GENERIC_IRQ_EFFECTIVE_AFF_MASK
370 free_cpumask_var(desc->irq_common_data.effective_affinity);
371 #endif
372 }
373 #else
free_masks(struct irq_desc * desc)374 static inline void free_masks(struct irq_desc *desc) { }
375 #endif
376
irq_lock_sparse(void)377 void irq_lock_sparse(void)
378 {
379 mutex_lock(&sparse_irq_lock);
380 }
381
irq_unlock_sparse(void)382 void irq_unlock_sparse(void)
383 {
384 mutex_unlock(&sparse_irq_lock);
385 }
386
alloc_desc(int irq,int node,unsigned int flags,const struct cpumask * affinity,struct module * owner)387 static struct irq_desc *alloc_desc(int irq, int node, unsigned int flags,
388 const struct cpumask *affinity,
389 struct module *owner)
390 {
391 struct irq_desc *desc;
392
393 desc = kzalloc_node(sizeof(*desc), GFP_KERNEL, node);
394 if (!desc)
395 return NULL;
396 /* allocate based on nr_cpu_ids */
397 desc->kstat_irqs = alloc_percpu(unsigned int);
398 if (!desc->kstat_irqs)
399 goto err_desc;
400
401 if (alloc_masks(desc, node))
402 goto err_kstat;
403
404 raw_spin_lock_init(&desc->lock);
405 lockdep_set_class(&desc->lock, &irq_desc_lock_class);
406 mutex_init(&desc->request_mutex);
407 init_rcu_head(&desc->rcu);
408 init_waitqueue_head(&desc->wait_for_threads);
409
410 desc_set_defaults(irq, desc, node, affinity, owner);
411 irqd_set(&desc->irq_data, flags);
412 kobject_init(&desc->kobj, &irq_kobj_type);
413
414 return desc;
415
416 err_kstat:
417 free_percpu(desc->kstat_irqs);
418 err_desc:
419 kfree(desc);
420 return NULL;
421 }
422
irq_kobj_release(struct kobject * kobj)423 static void irq_kobj_release(struct kobject *kobj)
424 {
425 struct irq_desc *desc = container_of(kobj, struct irq_desc, kobj);
426
427 free_masks(desc);
428 free_percpu(desc->kstat_irqs);
429 kfree(desc);
430 }
431
delayed_free_desc(struct rcu_head * rhp)432 static void delayed_free_desc(struct rcu_head *rhp)
433 {
434 struct irq_desc *desc = container_of(rhp, struct irq_desc, rcu);
435
436 kobject_put(&desc->kobj);
437 }
438
free_desc(unsigned int irq)439 static void free_desc(unsigned int irq)
440 {
441 struct irq_desc *desc = irq_to_desc(irq);
442
443 irq_remove_debugfs_entry(desc);
444 unregister_irq_proc(irq, desc);
445
446 /*
447 * sparse_irq_lock protects also show_interrupts() and
448 * kstat_irq_usr(). Once we deleted the descriptor from the
449 * sparse tree we can free it. Access in proc will fail to
450 * lookup the descriptor.
451 *
452 * The sysfs entry must be serialized against a concurrent
453 * irq_sysfs_init() as well.
454 */
455 irq_sysfs_del(desc);
456 delete_irq_desc(irq);
457
458 /*
459 * We free the descriptor, masks and stat fields via RCU. That
460 * allows demultiplex interrupts to do rcu based management of
461 * the child interrupts.
462 * This also allows us to use rcu in kstat_irqs_usr().
463 */
464 call_rcu(&desc->rcu, delayed_free_desc);
465 }
466
alloc_descs(unsigned int start,unsigned int cnt,int node,const struct irq_affinity_desc * affinity,struct module * owner)467 static int alloc_descs(unsigned int start, unsigned int cnt, int node,
468 const struct irq_affinity_desc *affinity,
469 struct module *owner)
470 {
471 struct irq_desc *desc;
472 int i;
473
474 /* Validate affinity mask(s) */
475 if (affinity) {
476 for (i = 0; i < cnt; i++) {
477 if (cpumask_empty(&affinity[i].mask))
478 return -EINVAL;
479 }
480 }
481
482 for (i = 0; i < cnt; i++) {
483 const struct cpumask *mask = NULL;
484 unsigned int flags = 0;
485
486 if (affinity) {
487 if (affinity->is_managed) {
488 flags = IRQD_AFFINITY_MANAGED |
489 IRQD_MANAGED_SHUTDOWN;
490 }
491 mask = &affinity->mask;
492 node = cpu_to_node(cpumask_first(mask));
493 affinity++;
494 }
495
496 desc = alloc_desc(start + i, node, flags, mask, owner);
497 if (!desc)
498 goto err;
499 irq_insert_desc(start + i, desc);
500 irq_sysfs_add(start + i, desc);
501 irq_add_debugfs_entry(start + i, desc);
502 }
503 bitmap_set(allocated_irqs, start, cnt);
504 return start;
505
506 err:
507 for (i--; i >= 0; i--)
508 free_desc(start + i);
509 return -ENOMEM;
510 }
511
irq_expand_nr_irqs(unsigned int nr)512 static int irq_expand_nr_irqs(unsigned int nr)
513 {
514 if (nr > IRQ_BITMAP_BITS)
515 return -ENOMEM;
516 nr_irqs = nr;
517 return 0;
518 }
519
early_irq_init(void)520 int __init early_irq_init(void)
521 {
522 int i, initcnt, node = first_online_node;
523 struct irq_desc *desc;
524
525 init_irq_default_affinity();
526
527 /* Let arch update nr_irqs and return the nr of preallocated irqs */
528 initcnt = arch_probe_nr_irqs();
529 printk(KERN_INFO "NR_IRQS: %d, nr_irqs: %d, preallocated irqs: %d\n",
530 NR_IRQS, nr_irqs, initcnt);
531
532 if (WARN_ON(nr_irqs > IRQ_BITMAP_BITS))
533 nr_irqs = IRQ_BITMAP_BITS;
534
535 if (WARN_ON(initcnt > IRQ_BITMAP_BITS))
536 initcnt = IRQ_BITMAP_BITS;
537
538 if (initcnt > nr_irqs)
539 nr_irqs = initcnt;
540
541 for (i = 0; i < initcnt; i++) {
542 desc = alloc_desc(i, node, 0, NULL, NULL);
543 set_bit(i, allocated_irqs);
544 irq_insert_desc(i, desc);
545 }
546 return arch_early_irq_init();
547 }
548
549 #else /* !CONFIG_SPARSE_IRQ */
550
551 struct irq_desc irq_desc[NR_IRQS] __cacheline_aligned_in_smp = {
552 [0 ... NR_IRQS-1] = {
553 .handle_irq = handle_bad_irq,
554 .depth = 1,
555 .lock = __RAW_SPIN_LOCK_UNLOCKED(irq_desc->lock),
556 }
557 };
558
early_irq_init(void)559 int __init early_irq_init(void)
560 {
561 int count, i, node = first_online_node;
562 struct irq_desc *desc;
563
564 init_irq_default_affinity();
565
566 printk(KERN_INFO "NR_IRQS: %d\n", NR_IRQS);
567
568 desc = irq_desc;
569 count = ARRAY_SIZE(irq_desc);
570
571 for (i = 0; i < count; i++) {
572 desc[i].kstat_irqs = alloc_percpu(unsigned int);
573 alloc_masks(&desc[i], node);
574 raw_spin_lock_init(&desc[i].lock);
575 lockdep_set_class(&desc[i].lock, &irq_desc_lock_class);
576 mutex_init(&desc[i].request_mutex);
577 init_waitqueue_head(&desc[i].wait_for_threads);
578 desc_set_defaults(i, &desc[i], node, NULL, NULL);
579 }
580 return arch_early_irq_init();
581 }
582
irq_to_desc(unsigned int irq)583 struct irq_desc *irq_to_desc(unsigned int irq)
584 {
585 return (irq < NR_IRQS) ? irq_desc + irq : NULL;
586 }
587 EXPORT_SYMBOL(irq_to_desc);
588
free_desc(unsigned int irq)589 static void free_desc(unsigned int irq)
590 {
591 struct irq_desc *desc = irq_to_desc(irq);
592 unsigned long flags;
593
594 raw_spin_lock_irqsave(&desc->lock, flags);
595 desc_set_defaults(irq, desc, irq_desc_get_node(desc), NULL, NULL);
596 raw_spin_unlock_irqrestore(&desc->lock, flags);
597 }
598
alloc_descs(unsigned int start,unsigned int cnt,int node,const struct irq_affinity_desc * affinity,struct module * owner)599 static inline int alloc_descs(unsigned int start, unsigned int cnt, int node,
600 const struct irq_affinity_desc *affinity,
601 struct module *owner)
602 {
603 u32 i;
604
605 for (i = 0; i < cnt; i++) {
606 struct irq_desc *desc = irq_to_desc(start + i);
607
608 desc->owner = owner;
609 }
610 bitmap_set(allocated_irqs, start, cnt);
611 return start;
612 }
613
irq_expand_nr_irqs(unsigned int nr)614 static int irq_expand_nr_irqs(unsigned int nr)
615 {
616 return -ENOMEM;
617 }
618
irq_mark_irq(unsigned int irq)619 void irq_mark_irq(unsigned int irq)
620 {
621 mutex_lock(&sparse_irq_lock);
622 bitmap_set(allocated_irqs, irq, 1);
623 mutex_unlock(&sparse_irq_lock);
624 }
625
626 #ifdef CONFIG_GENERIC_IRQ_LEGACY
irq_init_desc(unsigned int irq)627 void irq_init_desc(unsigned int irq)
628 {
629 free_desc(irq);
630 }
631 #endif
632
633 #endif /* !CONFIG_SPARSE_IRQ */
634
635 /**
636 * generic_handle_irq - Invoke the handler for a particular irq
637 * @irq: The irq number to handle
638 *
639 */
generic_handle_irq(unsigned int irq)640 int generic_handle_irq(unsigned int irq)
641 {
642 struct irq_desc *desc = irq_to_desc(irq);
643 struct irq_data *data;
644
645 if (!desc)
646 return -EINVAL;
647
648 data = irq_desc_get_irq_data(desc);
649 if (WARN_ON_ONCE(!in_irq() && handle_enforce_irqctx(data)))
650 return -EPERM;
651
652 generic_handle_irq_desc(desc);
653 return 0;
654 }
655 EXPORT_SYMBOL_GPL(generic_handle_irq);
656
657 #ifdef CONFIG_HANDLE_DOMAIN_IRQ
658 /**
659 * __handle_domain_irq - Invoke the handler for a HW irq belonging to a domain
660 * @domain: The domain where to perform the lookup
661 * @hwirq: The HW irq number to convert to a logical one
662 * @lookup: Whether to perform the domain lookup or not
663 * @regs: Register file coming from the low-level handling code
664 *
665 * Returns: 0 on success, or -EINVAL if conversion has failed
666 */
__handle_domain_irq(struct irq_domain * domain,unsigned int hwirq,bool lookup,struct pt_regs * regs)667 int __handle_domain_irq(struct irq_domain *domain, unsigned int hwirq,
668 bool lookup, struct pt_regs *regs)
669 {
670 struct pt_regs *old_regs = set_irq_regs(regs);
671 unsigned int irq = hwirq;
672 struct irq_desc *desc;
673 int ret = 0;
674
675 #ifdef CONFIG_IRQ_DOMAIN
676 if (lookup)
677 irq = irq_find_mapping(domain, hwirq);
678 #endif
679
680 /*
681 * Some hardware gives randomly wrong interrupts. Rather
682 * than crashing, do something sensible.
683 */
684 if (unlikely(!irq || irq >= nr_irqs || !(desc = irq_to_desc(irq)))) {
685 ack_bad_irq(irq);
686 ret = -EINVAL;
687 goto out;
688 }
689
690 if (IS_ENABLED(CONFIG_ARCH_WANTS_IRQ_RAW) &&
691 unlikely(irq_settings_is_raw(desc))) {
692 generic_handle_irq_desc(desc);
693 } else {
694 irq_enter();
695 generic_handle_irq_desc(desc);
696 irq_exit();
697 }
698
699 out:
700 set_irq_regs(old_regs);
701 return ret;
702 }
703
704 #ifdef CONFIG_IRQ_DOMAIN
705 /**
706 * handle_domain_nmi - Invoke the handler for a HW irq belonging to a domain
707 * @domain: The domain where to perform the lookup
708 * @hwirq: The HW irq number to convert to a logical one
709 * @regs: Register file coming from the low-level handling code
710 *
711 * This function must be called from an NMI context.
712 *
713 * Returns: 0 on success, or -EINVAL if conversion has failed
714 */
handle_domain_nmi(struct irq_domain * domain,unsigned int hwirq,struct pt_regs * regs)715 int handle_domain_nmi(struct irq_domain *domain, unsigned int hwirq,
716 struct pt_regs *regs)
717 {
718 struct pt_regs *old_regs = set_irq_regs(regs);
719 unsigned int irq;
720 int ret = 0;
721
722 /*
723 * NMI context needs to be setup earlier in order to deal with tracing.
724 */
725 WARN_ON(!in_nmi());
726
727 irq = irq_find_mapping(domain, hwirq);
728
729 /*
730 * ack_bad_irq is not NMI-safe, just report
731 * an invalid interrupt.
732 */
733 if (likely(irq))
734 generic_handle_irq(irq);
735 else
736 ret = -EINVAL;
737
738 set_irq_regs(old_regs);
739 return ret;
740 }
741 #endif
742 #endif
743
744 /* Dynamic interrupt handling */
745
746 /**
747 * irq_free_descs - free irq descriptors
748 * @from: Start of descriptor range
749 * @cnt: Number of consecutive irqs to free
750 */
irq_free_descs(unsigned int from,unsigned int cnt)751 void irq_free_descs(unsigned int from, unsigned int cnt)
752 {
753 int i;
754
755 if (from >= nr_irqs || (from + cnt) > nr_irqs)
756 return;
757
758 mutex_lock(&sparse_irq_lock);
759 for (i = 0; i < cnt; i++)
760 free_desc(from + i);
761
762 bitmap_clear(allocated_irqs, from, cnt);
763 mutex_unlock(&sparse_irq_lock);
764 }
765 EXPORT_SYMBOL_GPL(irq_free_descs);
766
767 /**
768 * __irq_alloc_descs - allocate and initialize a range of irq descriptors
769 * @irq: Allocate for specific irq number if irq >= 0
770 * @from: Start the search from this irq number
771 * @cnt: Number of consecutive irqs to allocate.
772 * @node: Preferred node on which the irq descriptor should be allocated
773 * @owner: Owning module (can be NULL)
774 * @affinity: Optional pointer to an affinity mask array of size @cnt which
775 * hints where the irq descriptors should be allocated and which
776 * default affinities to use
777 *
778 * Returns the first irq number or error code
779 */
780 int __ref
__irq_alloc_descs(int irq,unsigned int from,unsigned int cnt,int node,struct module * owner,const struct irq_affinity_desc * affinity)781 __irq_alloc_descs(int irq, unsigned int from, unsigned int cnt, int node,
782 struct module *owner, const struct irq_affinity_desc *affinity)
783 {
784 int start, ret;
785
786 if (!cnt)
787 return -EINVAL;
788
789 if (irq >= 0) {
790 if (from > irq)
791 return -EINVAL;
792 from = irq;
793 } else {
794 /*
795 * For interrupts which are freely allocated the
796 * architecture can force a lower bound to the @from
797 * argument. x86 uses this to exclude the GSI space.
798 */
799 from = arch_dynirq_lower_bound(from);
800 }
801
802 mutex_lock(&sparse_irq_lock);
803
804 start = bitmap_find_next_zero_area(allocated_irqs, IRQ_BITMAP_BITS,
805 from, cnt, 0);
806 ret = -EEXIST;
807 if (irq >=0 && start != irq)
808 goto unlock;
809
810 if (start + cnt > nr_irqs) {
811 ret = irq_expand_nr_irqs(start + cnt);
812 if (ret)
813 goto unlock;
814 }
815 ret = alloc_descs(start, cnt, node, affinity, owner);
816 unlock:
817 mutex_unlock(&sparse_irq_lock);
818 return ret;
819 }
820 EXPORT_SYMBOL_GPL(__irq_alloc_descs);
821
822 #ifdef CONFIG_GENERIC_IRQ_LEGACY_ALLOC_HWIRQ
823 /**
824 * irq_alloc_hwirqs - Allocate an irq descriptor and initialize the hardware
825 * @cnt: number of interrupts to allocate
826 * @node: node on which to allocate
827 *
828 * Returns an interrupt number > 0 or 0, if the allocation fails.
829 */
irq_alloc_hwirqs(int cnt,int node)830 unsigned int irq_alloc_hwirqs(int cnt, int node)
831 {
832 int i, irq = __irq_alloc_descs(-1, 0, cnt, node, NULL, NULL);
833
834 if (irq < 0)
835 return 0;
836
837 for (i = irq; cnt > 0; i++, cnt--) {
838 if (arch_setup_hwirq(i, node))
839 goto err;
840 irq_clear_status_flags(i, _IRQ_NOREQUEST);
841 }
842 return irq;
843
844 err:
845 for (i--; i >= irq; i--) {
846 irq_set_status_flags(i, _IRQ_NOREQUEST | _IRQ_NOPROBE);
847 arch_teardown_hwirq(i);
848 }
849 irq_free_descs(irq, cnt);
850 return 0;
851 }
852 EXPORT_SYMBOL_GPL(irq_alloc_hwirqs);
853
854 /**
855 * irq_free_hwirqs - Free irq descriptor and cleanup the hardware
856 * @from: Free from irq number
857 * @cnt: number of interrupts to free
858 *
859 */
irq_free_hwirqs(unsigned int from,int cnt)860 void irq_free_hwirqs(unsigned int from, int cnt)
861 {
862 int i, j;
863
864 for (i = from, j = cnt; j > 0; i++, j--) {
865 irq_set_status_flags(i, _IRQ_NOREQUEST | _IRQ_NOPROBE);
866 arch_teardown_hwirq(i);
867 }
868 irq_free_descs(from, cnt);
869 }
870 EXPORT_SYMBOL_GPL(irq_free_hwirqs);
871 #endif
872
873 /**
874 * irq_get_next_irq - get next allocated irq number
875 * @offset: where to start the search
876 *
877 * Returns next irq number after offset or nr_irqs if none is found.
878 */
irq_get_next_irq(unsigned int offset)879 unsigned int irq_get_next_irq(unsigned int offset)
880 {
881 return find_next_bit(allocated_irqs, nr_irqs, offset);
882 }
883
884 struct irq_desc *
__irq_get_desc_lock(unsigned int irq,unsigned long * flags,bool bus,unsigned int check)885 __irq_get_desc_lock(unsigned int irq, unsigned long *flags, bool bus,
886 unsigned int check)
887 {
888 struct irq_desc *desc = irq_to_desc(irq);
889
890 if (desc) {
891 if (check & _IRQ_DESC_CHECK) {
892 if ((check & _IRQ_DESC_PERCPU) &&
893 !irq_settings_is_per_cpu_devid(desc))
894 return NULL;
895
896 if (!(check & _IRQ_DESC_PERCPU) &&
897 irq_settings_is_per_cpu_devid(desc))
898 return NULL;
899 }
900
901 if (bus)
902 chip_bus_lock(desc);
903 raw_spin_lock_irqsave(&desc->lock, *flags);
904 }
905 return desc;
906 }
907
__irq_put_desc_unlock(struct irq_desc * desc,unsigned long flags,bool bus)908 void __irq_put_desc_unlock(struct irq_desc *desc, unsigned long flags, bool bus)
909 __releases(&desc->lock)
910 {
911 raw_spin_unlock_irqrestore(&desc->lock, flags);
912 if (bus)
913 chip_bus_sync_unlock(desc);
914 }
915
irq_set_percpu_devid_partition(unsigned int irq,const struct cpumask * affinity)916 int irq_set_percpu_devid_partition(unsigned int irq,
917 const struct cpumask *affinity)
918 {
919 struct irq_desc *desc = irq_to_desc(irq);
920
921 if (!desc)
922 return -EINVAL;
923
924 if (desc->percpu_enabled)
925 return -EINVAL;
926
927 desc->percpu_enabled = kzalloc(sizeof(*desc->percpu_enabled), GFP_KERNEL);
928
929 if (!desc->percpu_enabled)
930 return -ENOMEM;
931
932 if (affinity)
933 desc->percpu_affinity = affinity;
934 else
935 desc->percpu_affinity = cpu_possible_mask;
936
937 irq_set_percpu_devid_flags(irq);
938 return 0;
939 }
940
irq_set_percpu_devid(unsigned int irq)941 int irq_set_percpu_devid(unsigned int irq)
942 {
943 return irq_set_percpu_devid_partition(irq, NULL);
944 }
945
irq_get_percpu_devid_partition(unsigned int irq,struct cpumask * affinity)946 int irq_get_percpu_devid_partition(unsigned int irq, struct cpumask *affinity)
947 {
948 struct irq_desc *desc = irq_to_desc(irq);
949
950 if (!desc || !desc->percpu_enabled)
951 return -EINVAL;
952
953 if (affinity)
954 cpumask_copy(affinity, desc->percpu_affinity);
955
956 return 0;
957 }
958 EXPORT_SYMBOL_GPL(irq_get_percpu_devid_partition);
959
kstat_incr_irq_this_cpu(unsigned int irq)960 void kstat_incr_irq_this_cpu(unsigned int irq)
961 {
962 kstat_incr_irqs_this_cpu(irq_to_desc(irq));
963 }
964
965 /**
966 * kstat_irqs_cpu - Get the statistics for an interrupt on a cpu
967 * @irq: The interrupt number
968 * @cpu: The cpu number
969 *
970 * Returns the sum of interrupt counts on @cpu since boot for
971 * @irq. The caller must ensure that the interrupt is not removed
972 * concurrently.
973 */
kstat_irqs_cpu(unsigned int irq,int cpu)974 unsigned int kstat_irqs_cpu(unsigned int irq, int cpu)
975 {
976 struct irq_desc *desc = irq_to_desc(irq);
977
978 return desc && desc->kstat_irqs ?
979 *per_cpu_ptr(desc->kstat_irqs, cpu) : 0;
980 }
981 EXPORT_SYMBOL_GPL(kstat_irqs_cpu);
982
irq_is_nmi(struct irq_desc * desc)983 static bool irq_is_nmi(struct irq_desc *desc)
984 {
985 return desc->istate & IRQS_NMI;
986 }
987
988 /**
989 * kstat_irqs - Get the statistics for an interrupt
990 * @irq: The interrupt number
991 *
992 * Returns the sum of interrupt counts on all cpus since boot for
993 * @irq. The caller must ensure that the interrupt is not removed
994 * concurrently.
995 */
kstat_irqs(unsigned int irq)996 unsigned int kstat_irqs(unsigned int irq)
997 {
998 struct irq_desc *desc = irq_to_desc(irq);
999 unsigned int sum = 0;
1000 int cpu;
1001
1002 if (!desc || !desc->kstat_irqs)
1003 return 0;
1004 if (!irq_settings_is_per_cpu_devid(desc) &&
1005 !irq_settings_is_per_cpu(desc) &&
1006 !irq_is_nmi(desc))
1007 return desc->tot_count;
1008
1009 for_each_possible_cpu(cpu)
1010 sum += *per_cpu_ptr(desc->kstat_irqs, cpu);
1011 return sum;
1012 }
1013
1014 /**
1015 * kstat_irqs_usr - Get the statistics for an interrupt
1016 * @irq: The interrupt number
1017 *
1018 * Returns the sum of interrupt counts on all cpus since boot for @irq.
1019 * Contrary to kstat_irqs() this can be called from any context.
1020 * It uses rcu since a concurrent removal of an interrupt descriptor is
1021 * observing an rcu grace period before delayed_free_desc()/irq_kobj_release().
1022 */
kstat_irqs_usr(unsigned int irq)1023 unsigned int kstat_irqs_usr(unsigned int irq)
1024 {
1025 unsigned int sum;
1026
1027 rcu_read_lock();
1028 sum = kstat_irqs(irq);
1029 rcu_read_unlock();
1030 return sum;
1031 }
1032 EXPORT_SYMBOL_GPL(kstat_irqs_usr);
1033