1 #define pr_fmt(fmt) "irq: " fmt
3 #include <linux/debugfs.h>
4 #include <linux/hardirq.h>
5 #include <linux/interrupt.h>
7 #include <linux/irqdesc.h>
8 #include <linux/irqdomain.h>
9 #include <linux/module.h>
10 #include <linux/mutex.h>
12 #include <linux/of_address.h>
13 #include <linux/of_irq.h>
14 #include <linux/topology.h>
15 #include <linux/seq_file.h>
16 #include <linux/slab.h>
17 #include <linux/smp.h>
20 static LIST_HEAD(irq_domain_list
);
21 static DEFINE_MUTEX(irq_domain_mutex
);
23 static DEFINE_MUTEX(revmap_trees_mutex
);
24 static struct irq_domain
*irq_default_domain
;
26 static int irq_domain_alloc_descs(int virq
, unsigned int nr_irqs
,
27 irq_hw_number_t hwirq
, int node
);
28 static void irq_domain_check_hierarchy(struct irq_domain
*domain
);
31 struct fwnode_handle fwnode
;
37 * irq_domain_alloc_fwnode - Allocate a fwnode_handle suitable for
38 * identifying an irq domain
39 * @data: optional user-provided data
41 * Allocate a struct device_node, and return a poiner to the embedded
42 * fwnode_handle (or NULL on failure).
44 struct fwnode_handle
*irq_domain_alloc_fwnode(void *data
)
46 struct irqchip_fwid
*fwid
;
49 fwid
= kzalloc(sizeof(*fwid
), GFP_KERNEL
);
50 name
= kasprintf(GFP_KERNEL
, "irqchip@%p", data
);
60 fwid
->fwnode
.type
= FWNODE_IRQCHIP
;
65 * irq_domain_free_fwnode - Free a non-OF-backed fwnode_handle
67 * Free a fwnode_handle allocated with irq_domain_alloc_fwnode.
69 void irq_domain_free_fwnode(struct fwnode_handle
*fwnode
)
71 struct irqchip_fwid
*fwid
;
73 if (WARN_ON(fwnode
->type
!= FWNODE_IRQCHIP
))
76 fwid
= container_of(fwnode
, struct irqchip_fwid
, fwnode
);
82 * __irq_domain_add() - Allocate a new irq_domain data structure
83 * @of_node: optional device-tree node of the interrupt controller
84 * @size: Size of linear map; 0 for radix mapping only
85 * @hwirq_max: Maximum number of interrupts supported by controller
86 * @direct_max: Maximum value of direct maps; Use ~0 for no limit; 0 for no
88 * @ops: domain callbacks
89 * @host_data: Controller private data pointer
91 * Allocates and initialize and irq_domain structure.
92 * Returns pointer to IRQ domain, or NULL on failure.
94 struct irq_domain
*__irq_domain_add(struct fwnode_handle
*fwnode
, int size
,
95 irq_hw_number_t hwirq_max
, int direct_max
,
96 const struct irq_domain_ops
*ops
,
99 struct irq_domain
*domain
;
100 struct device_node
*of_node
;
102 of_node
= to_of_node(fwnode
);
104 domain
= kzalloc_node(sizeof(*domain
) + (sizeof(unsigned int) * size
),
105 GFP_KERNEL
, of_node_to_nid(of_node
));
106 if (WARN_ON(!domain
))
109 of_node_get(of_node
);
112 INIT_RADIX_TREE(&domain
->revmap_tree
, GFP_KERNEL
);
114 domain
->host_data
= host_data
;
115 domain
->fwnode
= fwnode
;
116 domain
->hwirq_max
= hwirq_max
;
117 domain
->revmap_size
= size
;
118 domain
->revmap_direct_max_irq
= direct_max
;
119 irq_domain_check_hierarchy(domain
);
121 mutex_lock(&irq_domain_mutex
);
122 list_add(&domain
->link
, &irq_domain_list
);
123 mutex_unlock(&irq_domain_mutex
);
125 pr_debug("Added domain %s\n", domain
->name
);
128 EXPORT_SYMBOL_GPL(__irq_domain_add
);
131 * irq_domain_remove() - Remove an irq domain.
132 * @domain: domain to remove
134 * This routine is used to remove an irq domain. The caller must ensure
135 * that all mappings within the domain have been disposed of prior to
136 * use, depending on the revmap type.
138 void irq_domain_remove(struct irq_domain
*domain
)
140 mutex_lock(&irq_domain_mutex
);
143 * radix_tree_delete() takes care of destroying the root
144 * node when all entries are removed. Shout if there are
147 WARN_ON(domain
->revmap_tree
.height
);
149 list_del(&domain
->link
);
152 * If the going away domain is the default one, reset it.
154 if (unlikely(irq_default_domain
== domain
))
155 irq_set_default_host(NULL
);
157 mutex_unlock(&irq_domain_mutex
);
159 pr_debug("Removed domain %s\n", domain
->name
);
161 of_node_put(irq_domain_get_of_node(domain
));
164 EXPORT_SYMBOL_GPL(irq_domain_remove
);
167 * irq_domain_add_simple() - Register an irq_domain and optionally map a range of irqs
168 * @of_node: pointer to interrupt controller's device tree node.
169 * @size: total number of irqs in mapping
170 * @first_irq: first number of irq block assigned to the domain,
171 * pass zero to assign irqs on-the-fly. If first_irq is non-zero, then
172 * pre-map all of the irqs in the domain to virqs starting at first_irq.
173 * @ops: domain callbacks
174 * @host_data: Controller private data pointer
176 * Allocates an irq_domain, and optionally if first_irq is positive then also
177 * allocate irq_descs and map all of the hwirqs to virqs starting at first_irq.
179 * This is intended to implement the expected behaviour for most
180 * interrupt controllers. If device tree is used, then first_irq will be 0 and
181 * irqs get mapped dynamically on the fly. However, if the controller requires
182 * static virq assignments (non-DT boot) then it will set that up correctly.
184 struct irq_domain
*irq_domain_add_simple(struct device_node
*of_node
,
186 unsigned int first_irq
,
187 const struct irq_domain_ops
*ops
,
190 struct irq_domain
*domain
;
192 domain
= __irq_domain_add(of_node_to_fwnode(of_node
), size
, size
, 0, ops
, host_data
);
197 if (IS_ENABLED(CONFIG_SPARSE_IRQ
)) {
198 /* attempt to allocated irq_descs */
199 int rc
= irq_alloc_descs(first_irq
, first_irq
, size
,
200 of_node_to_nid(of_node
));
202 pr_info("Cannot allocate irq_descs @ IRQ%d, assuming pre-allocated\n",
205 irq_domain_associate_many(domain
, first_irq
, 0, size
);
210 EXPORT_SYMBOL_GPL(irq_domain_add_simple
);
213 * irq_domain_add_legacy() - Allocate and register a legacy revmap irq_domain.
214 * @of_node: pointer to interrupt controller's device tree node.
215 * @size: total number of irqs in legacy mapping
216 * @first_irq: first number of irq block assigned to the domain
217 * @first_hwirq: first hwirq number to use for the translation. Should normally
218 * be '0', but a positive integer can be used if the effective
219 * hwirqs numbering does not begin at zero.
220 * @ops: map/unmap domain callbacks
221 * @host_data: Controller private data pointer
223 * Note: the map() callback will be called before this function returns
224 * for all legacy interrupts except 0 (which is always the invalid irq for
225 * a legacy controller).
227 struct irq_domain
*irq_domain_add_legacy(struct device_node
*of_node
,
229 unsigned int first_irq
,
230 irq_hw_number_t first_hwirq
,
231 const struct irq_domain_ops
*ops
,
234 struct irq_domain
*domain
;
236 domain
= __irq_domain_add(of_node_to_fwnode(of_node
), first_hwirq
+ size
,
237 first_hwirq
+ size
, 0, ops
, host_data
);
239 irq_domain_associate_many(domain
, first_irq
, first_hwirq
, size
);
243 EXPORT_SYMBOL_GPL(irq_domain_add_legacy
);
246 * irq_find_matching_fwnode() - Locates a domain for a given fwnode
247 * @fwnode: FW descriptor of the interrupt controller
248 * @bus_token: domain-specific data
250 struct irq_domain
*irq_find_matching_fwnode(struct fwnode_handle
*fwnode
,
251 enum irq_domain_bus_token bus_token
)
253 struct irq_domain
*h
, *found
= NULL
;
256 /* We might want to match the legacy controller last since
257 * it might potentially be set to match all interrupts in
258 * the absence of a device node. This isn't a problem so far
261 * bus_token == DOMAIN_BUS_ANY matches any domain, any other
262 * values must generate an exact match for the domain to be
265 mutex_lock(&irq_domain_mutex
);
266 list_for_each_entry(h
, &irq_domain_list
, link
) {
268 rc
= h
->ops
->match(h
, to_of_node(fwnode
), bus_token
);
270 rc
= ((fwnode
!= NULL
) && (h
->fwnode
== fwnode
) &&
271 ((bus_token
== DOMAIN_BUS_ANY
) ||
272 (h
->bus_token
== bus_token
)));
279 mutex_unlock(&irq_domain_mutex
);
282 EXPORT_SYMBOL_GPL(irq_find_matching_fwnode
);
285 * irq_set_default_host() - Set a "default" irq domain
286 * @domain: default domain pointer
288 * For convenience, it's possible to set a "default" domain that will be used
289 * whenever NULL is passed to irq_create_mapping(). It makes life easier for
290 * platforms that want to manipulate a few hard coded interrupt numbers that
291 * aren't properly represented in the device-tree.
293 void irq_set_default_host(struct irq_domain
*domain
)
295 pr_debug("Default domain set to @0x%p\n", domain
);
297 irq_default_domain
= domain
;
299 EXPORT_SYMBOL_GPL(irq_set_default_host
);
301 void irq_domain_disassociate(struct irq_domain
*domain
, unsigned int irq
)
303 struct irq_data
*irq_data
= irq_get_irq_data(irq
);
304 irq_hw_number_t hwirq
;
306 if (WARN(!irq_data
|| irq_data
->domain
!= domain
,
307 "virq%i doesn't exist; cannot disassociate\n", irq
))
310 hwirq
= irq_data
->hwirq
;
311 irq_set_status_flags(irq
, IRQ_NOREQUEST
);
313 /* remove chip and handler */
314 irq_set_chip_and_handler(irq
, NULL
, NULL
);
316 /* Make sure it's completed */
317 synchronize_irq(irq
);
319 /* Tell the PIC about it */
320 if (domain
->ops
->unmap
)
321 domain
->ops
->unmap(domain
, irq
);
324 irq_data
->domain
= NULL
;
327 /* Clear reverse map for this hwirq */
328 if (hwirq
< domain
->revmap_size
) {
329 domain
->linear_revmap
[hwirq
] = 0;
331 mutex_lock(&revmap_trees_mutex
);
332 radix_tree_delete(&domain
->revmap_tree
, hwirq
);
333 mutex_unlock(&revmap_trees_mutex
);
337 int irq_domain_associate(struct irq_domain
*domain
, unsigned int virq
,
338 irq_hw_number_t hwirq
)
340 struct irq_data
*irq_data
= irq_get_irq_data(virq
);
343 if (WARN(hwirq
>= domain
->hwirq_max
,
344 "error: hwirq 0x%x is too large for %s\n", (int)hwirq
, domain
->name
))
346 if (WARN(!irq_data
, "error: virq%i is not allocated", virq
))
348 if (WARN(irq_data
->domain
, "error: virq%i is already associated", virq
))
351 mutex_lock(&irq_domain_mutex
);
352 irq_data
->hwirq
= hwirq
;
353 irq_data
->domain
= domain
;
354 if (domain
->ops
->map
) {
355 ret
= domain
->ops
->map(domain
, virq
, hwirq
);
358 * If map() returns -EPERM, this interrupt is protected
359 * by the firmware or some other service and shall not
360 * be mapped. Don't bother telling the user about it.
363 pr_info("%s didn't like hwirq-0x%lx to VIRQ%i mapping (rc=%d)\n",
364 domain
->name
, hwirq
, virq
, ret
);
366 irq_data
->domain
= NULL
;
368 mutex_unlock(&irq_domain_mutex
);
372 /* If not already assigned, give the domain the chip's name */
373 if (!domain
->name
&& irq_data
->chip
)
374 domain
->name
= irq_data
->chip
->name
;
377 if (hwirq
< domain
->revmap_size
) {
378 domain
->linear_revmap
[hwirq
] = virq
;
380 mutex_lock(&revmap_trees_mutex
);
381 radix_tree_insert(&domain
->revmap_tree
, hwirq
, irq_data
);
382 mutex_unlock(&revmap_trees_mutex
);
384 mutex_unlock(&irq_domain_mutex
);
386 irq_clear_status_flags(virq
, IRQ_NOREQUEST
);
390 EXPORT_SYMBOL_GPL(irq_domain_associate
);
392 void irq_domain_associate_many(struct irq_domain
*domain
, unsigned int irq_base
,
393 irq_hw_number_t hwirq_base
, int count
)
395 struct device_node
*of_node
;
398 of_node
= irq_domain_get_of_node(domain
);
399 pr_debug("%s(%s, irqbase=%i, hwbase=%i, count=%i)\n", __func__
,
400 of_node_full_name(of_node
), irq_base
, (int)hwirq_base
, count
);
402 for (i
= 0; i
< count
; i
++) {
403 irq_domain_associate(domain
, irq_base
+ i
, hwirq_base
+ i
);
406 EXPORT_SYMBOL_GPL(irq_domain_associate_many
);
409 * irq_create_direct_mapping() - Allocate an irq for direct mapping
410 * @domain: domain to allocate the irq for or NULL for default domain
412 * This routine is used for irq controllers which can choose the hardware
413 * interrupt numbers they generate. In such a case it's simplest to use
414 * the linux irq as the hardware interrupt number. It still uses the linear
415 * or radix tree to store the mapping, but the irq controller can optimize
416 * the revmap path by using the hwirq directly.
418 unsigned int irq_create_direct_mapping(struct irq_domain
*domain
)
420 struct device_node
*of_node
;
424 domain
= irq_default_domain
;
426 of_node
= irq_domain_get_of_node(domain
);
427 virq
= irq_alloc_desc_from(1, of_node_to_nid(of_node
));
429 pr_debug("create_direct virq allocation failed\n");
432 if (virq
>= domain
->revmap_direct_max_irq
) {
433 pr_err("ERROR: no free irqs available below %i maximum\n",
434 domain
->revmap_direct_max_irq
);
438 pr_debug("create_direct obtained virq %d\n", virq
);
440 if (irq_domain_associate(domain
, virq
, virq
)) {
447 EXPORT_SYMBOL_GPL(irq_create_direct_mapping
);
450 * irq_create_mapping() - Map a hardware interrupt into linux irq space
451 * @domain: domain owning this hardware interrupt or NULL for default domain
452 * @hwirq: hardware irq number in that domain space
454 * Only one mapping per hardware interrupt is permitted. Returns a linux
456 * If the sense/trigger is to be specified, set_irq_type() should be called
457 * on the number returned from that call.
459 unsigned int irq_create_mapping(struct irq_domain
*domain
,
460 irq_hw_number_t hwirq
)
462 struct device_node
*of_node
;
465 pr_debug("irq_create_mapping(0x%p, 0x%lx)\n", domain
, hwirq
);
467 /* Look for default domain if nececssary */
469 domain
= irq_default_domain
;
470 if (domain
== NULL
) {
471 WARN(1, "%s(, %lx) called with NULL domain\n", __func__
, hwirq
);
474 pr_debug("-> using domain @%p\n", domain
);
476 of_node
= irq_domain_get_of_node(domain
);
478 /* Check if mapping already exists */
479 virq
= irq_find_mapping(domain
, hwirq
);
481 pr_debug("-> existing mapping on virq %d\n", virq
);
485 /* Allocate a virtual interrupt number */
486 virq
= irq_domain_alloc_descs(-1, 1, hwirq
, of_node_to_nid(of_node
));
488 pr_debug("-> virq allocation failed\n");
492 if (irq_domain_associate(domain
, virq
, hwirq
)) {
497 pr_debug("irq %lu on domain %s mapped to virtual irq %u\n",
498 hwirq
, of_node_full_name(of_node
), virq
);
502 EXPORT_SYMBOL_GPL(irq_create_mapping
);
505 * irq_create_strict_mappings() - Map a range of hw irqs to fixed linux irqs
506 * @domain: domain owning the interrupt range
507 * @irq_base: beginning of linux IRQ range
508 * @hwirq_base: beginning of hardware IRQ range
509 * @count: Number of interrupts to map
511 * This routine is used for allocating and mapping a range of hardware
512 * irqs to linux irqs where the linux irq numbers are at pre-defined
513 * locations. For use by controllers that already have static mappings
514 * to insert in to the domain.
516 * Non-linear users can use irq_create_identity_mapping() for IRQ-at-a-time
519 * 0 is returned upon success, while any failure to establish a static
520 * mapping is treated as an error.
522 int irq_create_strict_mappings(struct irq_domain
*domain
, unsigned int irq_base
,
523 irq_hw_number_t hwirq_base
, int count
)
525 struct device_node
*of_node
;
528 of_node
= irq_domain_get_of_node(domain
);
529 ret
= irq_alloc_descs(irq_base
, irq_base
, count
,
530 of_node_to_nid(of_node
));
531 if (unlikely(ret
< 0))
534 irq_domain_associate_many(domain
, irq_base
, hwirq_base
, count
);
537 EXPORT_SYMBOL_GPL(irq_create_strict_mappings
);
539 static int irq_domain_translate(struct irq_domain
*d
,
540 struct irq_fwspec
*fwspec
,
541 irq_hw_number_t
*hwirq
, unsigned int *type
)
543 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY
544 if (d
->ops
->translate
)
545 return d
->ops
->translate(d
, fwspec
, hwirq
, type
);
548 return d
->ops
->xlate(d
, to_of_node(fwspec
->fwnode
),
549 fwspec
->param
, fwspec
->param_count
,
552 /* If domain has no translation, then we assume interrupt line */
553 *hwirq
= fwspec
->param
[0];
557 static void of_phandle_args_to_fwspec(struct of_phandle_args
*irq_data
,
558 struct irq_fwspec
*fwspec
)
562 fwspec
->fwnode
= irq_data
->np
? &irq_data
->np
->fwnode
: NULL
;
563 fwspec
->param_count
= irq_data
->args_count
;
565 for (i
= 0; i
< irq_data
->args_count
; i
++)
566 fwspec
->param
[i
] = irq_data
->args
[i
];
569 unsigned int irq_create_fwspec_mapping(struct irq_fwspec
*fwspec
)
571 struct irq_domain
*domain
;
572 irq_hw_number_t hwirq
;
573 unsigned int type
= IRQ_TYPE_NONE
;
577 domain
= irq_find_matching_fwnode(fwspec
->fwnode
, DOMAIN_BUS_ANY
);
579 domain
= irq_default_domain
;
582 pr_warn("no irq domain found for %s !\n",
583 of_node_full_name(to_of_node(fwspec
->fwnode
)));
587 if (irq_domain_translate(domain
, fwspec
, &hwirq
, &type
))
590 if (irq_domain_is_hierarchy(domain
)) {
592 * If we've already configured this interrupt,
593 * don't do it again, or hell will break loose.
595 virq
= irq_find_mapping(domain
, hwirq
);
599 virq
= irq_domain_alloc_irqs(domain
, 1, NUMA_NO_NODE
, fwspec
);
604 virq
= irq_create_mapping(domain
, hwirq
);
609 /* Set type if specified and different than the current one */
610 if (type
!= IRQ_TYPE_NONE
&&
611 type
!= irq_get_trigger_type(virq
))
612 irq_set_irq_type(virq
, type
);
615 EXPORT_SYMBOL_GPL(irq_create_fwspec_mapping
);
617 unsigned int irq_create_of_mapping(struct of_phandle_args
*irq_data
)
619 struct irq_fwspec fwspec
;
621 of_phandle_args_to_fwspec(irq_data
, &fwspec
);
622 return irq_create_fwspec_mapping(&fwspec
);
624 EXPORT_SYMBOL_GPL(irq_create_of_mapping
);
627 * irq_dispose_mapping() - Unmap an interrupt
628 * @virq: linux irq number of the interrupt to unmap
630 void irq_dispose_mapping(unsigned int virq
)
632 struct irq_data
*irq_data
= irq_get_irq_data(virq
);
633 struct irq_domain
*domain
;
635 if (!virq
|| !irq_data
)
638 domain
= irq_data
->domain
;
639 if (WARN_ON(domain
== NULL
))
642 irq_domain_disassociate(domain
, virq
);
645 EXPORT_SYMBOL_GPL(irq_dispose_mapping
);
648 * irq_find_mapping() - Find a linux irq from an hw irq number.
649 * @domain: domain owning this hardware interrupt
650 * @hwirq: hardware irq number in that domain space
652 unsigned int irq_find_mapping(struct irq_domain
*domain
,
653 irq_hw_number_t hwirq
)
655 struct irq_data
*data
;
657 /* Look for default domain if nececssary */
659 domain
= irq_default_domain
;
663 if (hwirq
< domain
->revmap_direct_max_irq
) {
664 data
= irq_domain_get_irq_data(domain
, hwirq
);
665 if (data
&& data
->hwirq
== hwirq
)
669 /* Check if the hwirq is in the linear revmap. */
670 if (hwirq
< domain
->revmap_size
)
671 return domain
->linear_revmap
[hwirq
];
674 data
= radix_tree_lookup(&domain
->revmap_tree
, hwirq
);
676 return data
? data
->irq
: 0;
678 EXPORT_SYMBOL_GPL(irq_find_mapping
);
680 #ifdef CONFIG_IRQ_DOMAIN_DEBUG
681 static int virq_debug_show(struct seq_file
*m
, void *private)
684 struct irq_desc
*desc
;
685 struct irq_domain
*domain
;
686 struct radix_tree_iter iter
;
690 seq_printf(m
, " %-16s %-6s %-10s %-10s %s\n",
691 "name", "mapped", "linear-max", "direct-max", "devtree-node");
692 mutex_lock(&irq_domain_mutex
);
693 list_for_each_entry(domain
, &irq_domain_list
, link
) {
694 struct device_node
*of_node
;
696 of_node
= irq_domain_get_of_node(domain
);
697 radix_tree_for_each_slot(slot
, &domain
->revmap_tree
, &iter
, 0)
699 seq_printf(m
, "%c%-16s %6u %10u %10u %s\n",
700 domain
== irq_default_domain
? '*' : ' ', domain
->name
,
701 domain
->revmap_size
+ count
, domain
->revmap_size
,
702 domain
->revmap_direct_max_irq
,
703 of_node
? of_node_full_name(of_node
) : "");
705 mutex_unlock(&irq_domain_mutex
);
707 seq_printf(m
, "%-5s %-7s %-15s %-*s %6s %-14s %s\n", "irq", "hwirq",
708 "chip name", (int)(2 * sizeof(void *) + 2), "chip data",
709 "active", "type", "domain");
711 for (i
= 1; i
< nr_irqs
; i
++) {
712 desc
= irq_to_desc(i
);
716 raw_spin_lock_irqsave(&desc
->lock
, flags
);
717 domain
= desc
->irq_data
.domain
;
720 struct irq_chip
*chip
;
721 int hwirq
= desc
->irq_data
.hwirq
;
724 seq_printf(m
, "%5d ", i
);
725 seq_printf(m
, "0x%05x ", hwirq
);
727 chip
= irq_desc_get_chip(desc
);
728 seq_printf(m
, "%-15s ", (chip
&& chip
->name
) ? chip
->name
: "none");
730 data
= irq_desc_get_chip_data(desc
);
731 seq_printf(m
, data
? "0x%p " : " %p ", data
);
733 seq_printf(m
, " %c ", (desc
->action
&& desc
->action
->handler
) ? '*' : ' ');
734 direct
= (i
== hwirq
) && (i
< domain
->revmap_direct_max_irq
);
735 seq_printf(m
, "%6s%-8s ",
736 (hwirq
< domain
->revmap_size
) ? "LINEAR" : "RADIX",
737 direct
? "(DIRECT)" : "");
738 seq_printf(m
, "%s\n", desc
->irq_data
.domain
->name
);
741 raw_spin_unlock_irqrestore(&desc
->lock
, flags
);
747 static int virq_debug_open(struct inode
*inode
, struct file
*file
)
749 return single_open(file
, virq_debug_show
, inode
->i_private
);
752 static const struct file_operations virq_debug_fops
= {
753 .open
= virq_debug_open
,
756 .release
= single_release
,
759 static int __init
irq_debugfs_init(void)
761 if (debugfs_create_file("irq_domain_mapping", S_IRUGO
, NULL
,
762 NULL
, &virq_debug_fops
) == NULL
)
767 __initcall(irq_debugfs_init
);
768 #endif /* CONFIG_IRQ_DOMAIN_DEBUG */
771 * irq_domain_xlate_onecell() - Generic xlate for direct one cell bindings
773 * Device Tree IRQ specifier translation function which works with one cell
774 * bindings where the cell value maps directly to the hwirq number.
776 int irq_domain_xlate_onecell(struct irq_domain
*d
, struct device_node
*ctrlr
,
777 const u32
*intspec
, unsigned int intsize
,
778 unsigned long *out_hwirq
, unsigned int *out_type
)
780 if (WARN_ON(intsize
< 1))
782 *out_hwirq
= intspec
[0];
783 *out_type
= IRQ_TYPE_NONE
;
786 EXPORT_SYMBOL_GPL(irq_domain_xlate_onecell
);
789 * irq_domain_xlate_twocell() - Generic xlate for direct two cell bindings
791 * Device Tree IRQ specifier translation function which works with two cell
792 * bindings where the cell values map directly to the hwirq number
793 * and linux irq flags.
795 int irq_domain_xlate_twocell(struct irq_domain
*d
, struct device_node
*ctrlr
,
796 const u32
*intspec
, unsigned int intsize
,
797 irq_hw_number_t
*out_hwirq
, unsigned int *out_type
)
799 if (WARN_ON(intsize
< 2))
801 *out_hwirq
= intspec
[0];
802 *out_type
= intspec
[1] & IRQ_TYPE_SENSE_MASK
;
805 EXPORT_SYMBOL_GPL(irq_domain_xlate_twocell
);
808 * irq_domain_xlate_onetwocell() - Generic xlate for one or two cell bindings
810 * Device Tree IRQ specifier translation function which works with either one
811 * or two cell bindings where the cell values map directly to the hwirq number
812 * and linux irq flags.
814 * Note: don't use this function unless your interrupt controller explicitly
815 * supports both one and two cell bindings. For the majority of controllers
816 * the _onecell() or _twocell() variants above should be used.
818 int irq_domain_xlate_onetwocell(struct irq_domain
*d
,
819 struct device_node
*ctrlr
,
820 const u32
*intspec
, unsigned int intsize
,
821 unsigned long *out_hwirq
, unsigned int *out_type
)
823 if (WARN_ON(intsize
< 1))
825 *out_hwirq
= intspec
[0];
826 *out_type
= (intsize
> 1) ? intspec
[1] : IRQ_TYPE_NONE
;
829 EXPORT_SYMBOL_GPL(irq_domain_xlate_onetwocell
);
831 const struct irq_domain_ops irq_domain_simple_ops
= {
832 .xlate
= irq_domain_xlate_onetwocell
,
834 EXPORT_SYMBOL_GPL(irq_domain_simple_ops
);
836 static int irq_domain_alloc_descs(int virq
, unsigned int cnt
,
837 irq_hw_number_t hwirq
, int node
)
842 virq
= irq_alloc_descs(virq
, virq
, cnt
, node
);
844 hint
= hwirq
% nr_irqs
;
847 virq
= irq_alloc_descs_from(hint
, cnt
, node
);
848 if (virq
<= 0 && hint
> 1)
849 virq
= irq_alloc_descs_from(1, cnt
, node
);
855 #ifdef CONFIG_IRQ_DOMAIN_HIERARCHY
857 * irq_domain_create_hierarchy - Add a irqdomain into the hierarchy
858 * @parent: Parent irq domain to associate with the new domain
859 * @flags: Irq domain flags associated to the domain
860 * @size: Size of the domain. See below
861 * @fwnode: Optional fwnode of the interrupt controller
862 * @ops: Pointer to the interrupt domain callbacks
863 * @host_data: Controller private data pointer
865 * If @size is 0 a tree domain is created, otherwise a linear domain.
867 * If successful the parent is associated to the new domain and the
868 * domain flags are set.
869 * Returns pointer to IRQ domain, or NULL on failure.
871 struct irq_domain
*irq_domain_create_hierarchy(struct irq_domain
*parent
,
874 struct fwnode_handle
*fwnode
,
875 const struct irq_domain_ops
*ops
,
878 struct irq_domain
*domain
;
881 domain
= irq_domain_create_linear(fwnode
, size
, ops
, host_data
);
883 domain
= irq_domain_create_tree(fwnode
, ops
, host_data
);
885 domain
->parent
= parent
;
886 domain
->flags
|= flags
;
892 static void irq_domain_insert_irq(int virq
)
894 struct irq_data
*data
;
896 for (data
= irq_get_irq_data(virq
); data
; data
= data
->parent_data
) {
897 struct irq_domain
*domain
= data
->domain
;
898 irq_hw_number_t hwirq
= data
->hwirq
;
900 if (hwirq
< domain
->revmap_size
) {
901 domain
->linear_revmap
[hwirq
] = virq
;
903 mutex_lock(&revmap_trees_mutex
);
904 radix_tree_insert(&domain
->revmap_tree
, hwirq
, data
);
905 mutex_unlock(&revmap_trees_mutex
);
908 /* If not already assigned, give the domain the chip's name */
909 if (!domain
->name
&& data
->chip
)
910 domain
->name
= data
->chip
->name
;
913 irq_clear_status_flags(virq
, IRQ_NOREQUEST
);
916 static void irq_domain_remove_irq(int virq
)
918 struct irq_data
*data
;
920 irq_set_status_flags(virq
, IRQ_NOREQUEST
);
921 irq_set_chip_and_handler(virq
, NULL
, NULL
);
922 synchronize_irq(virq
);
925 for (data
= irq_get_irq_data(virq
); data
; data
= data
->parent_data
) {
926 struct irq_domain
*domain
= data
->domain
;
927 irq_hw_number_t hwirq
= data
->hwirq
;
929 if (hwirq
< domain
->revmap_size
) {
930 domain
->linear_revmap
[hwirq
] = 0;
932 mutex_lock(&revmap_trees_mutex
);
933 radix_tree_delete(&domain
->revmap_tree
, hwirq
);
934 mutex_unlock(&revmap_trees_mutex
);
939 static struct irq_data
*irq_domain_insert_irq_data(struct irq_domain
*domain
,
940 struct irq_data
*child
)
942 struct irq_data
*irq_data
;
944 irq_data
= kzalloc_node(sizeof(*irq_data
), GFP_KERNEL
,
945 irq_data_get_node(child
));
947 child
->parent_data
= irq_data
;
948 irq_data
->irq
= child
->irq
;
949 irq_data
->common
= child
->common
;
950 irq_data
->domain
= domain
;
956 static void irq_domain_free_irq_data(unsigned int virq
, unsigned int nr_irqs
)
958 struct irq_data
*irq_data
, *tmp
;
961 for (i
= 0; i
< nr_irqs
; i
++) {
962 irq_data
= irq_get_irq_data(virq
+ i
);
963 tmp
= irq_data
->parent_data
;
964 irq_data
->parent_data
= NULL
;
965 irq_data
->domain
= NULL
;
969 tmp
= tmp
->parent_data
;
975 static int irq_domain_alloc_irq_data(struct irq_domain
*domain
,
976 unsigned int virq
, unsigned int nr_irqs
)
978 struct irq_data
*irq_data
;
979 struct irq_domain
*parent
;
982 /* The outermost irq_data is embedded in struct irq_desc */
983 for (i
= 0; i
< nr_irqs
; i
++) {
984 irq_data
= irq_get_irq_data(virq
+ i
);
985 irq_data
->domain
= domain
;
987 for (parent
= domain
->parent
; parent
; parent
= parent
->parent
) {
988 irq_data
= irq_domain_insert_irq_data(parent
, irq_data
);
990 irq_domain_free_irq_data(virq
, i
+ 1);
1000 * irq_domain_get_irq_data - Get irq_data associated with @virq and @domain
1001 * @domain: domain to match
1002 * @virq: IRQ number to get irq_data
1004 struct irq_data
*irq_domain_get_irq_data(struct irq_domain
*domain
,
1007 struct irq_data
*irq_data
;
1009 for (irq_data
= irq_get_irq_data(virq
); irq_data
;
1010 irq_data
= irq_data
->parent_data
)
1011 if (irq_data
->domain
== domain
)
1018 * irq_domain_set_hwirq_and_chip - Set hwirq and irqchip of @virq at @domain
1019 * @domain: Interrupt domain to match
1021 * @hwirq: The hwirq number
1022 * @chip: The associated interrupt chip
1023 * @chip_data: The associated chip data
1025 int irq_domain_set_hwirq_and_chip(struct irq_domain
*domain
, unsigned int virq
,
1026 irq_hw_number_t hwirq
, struct irq_chip
*chip
,
1029 struct irq_data
*irq_data
= irq_domain_get_irq_data(domain
, virq
);
1034 irq_data
->hwirq
= hwirq
;
1035 irq_data
->chip
= chip
? chip
: &no_irq_chip
;
1036 irq_data
->chip_data
= chip_data
;
1042 * irq_domain_set_info - Set the complete data for a @virq in @domain
1043 * @domain: Interrupt domain to match
1045 * @hwirq: The hardware interrupt number
1046 * @chip: The associated interrupt chip
1047 * @chip_data: The associated interrupt chip data
1048 * @handler: The interrupt flow handler
1049 * @handler_data: The interrupt flow handler data
1050 * @handler_name: The interrupt handler name
1052 void irq_domain_set_info(struct irq_domain
*domain
, unsigned int virq
,
1053 irq_hw_number_t hwirq
, struct irq_chip
*chip
,
1054 void *chip_data
, irq_flow_handler_t handler
,
1055 void *handler_data
, const char *handler_name
)
1057 irq_domain_set_hwirq_and_chip(domain
, virq
, hwirq
, chip
, chip_data
);
1058 __irq_set_handler(virq
, handler
, 0, handler_name
);
1059 irq_set_handler_data(virq
, handler_data
);
1063 * irq_domain_reset_irq_data - Clear hwirq, chip and chip_data in @irq_data
1064 * @irq_data: The pointer to irq_data
1066 void irq_domain_reset_irq_data(struct irq_data
*irq_data
)
1068 irq_data
->hwirq
= 0;
1069 irq_data
->chip
= &no_irq_chip
;
1070 irq_data
->chip_data
= NULL
;
1074 * irq_domain_free_irqs_common - Clear irq_data and free the parent
1075 * @domain: Interrupt domain to match
1076 * @virq: IRQ number to start with
1077 * @nr_irqs: The number of irqs to free
1079 void irq_domain_free_irqs_common(struct irq_domain
*domain
, unsigned int virq
,
1080 unsigned int nr_irqs
)
1082 struct irq_data
*irq_data
;
1085 for (i
= 0; i
< nr_irqs
; i
++) {
1086 irq_data
= irq_domain_get_irq_data(domain
, virq
+ i
);
1088 irq_domain_reset_irq_data(irq_data
);
1090 irq_domain_free_irqs_parent(domain
, virq
, nr_irqs
);
1094 * irq_domain_free_irqs_top - Clear handler and handler data, clear irqdata and free parent
1095 * @domain: Interrupt domain to match
1096 * @virq: IRQ number to start with
1097 * @nr_irqs: The number of irqs to free
1099 void irq_domain_free_irqs_top(struct irq_domain
*domain
, unsigned int virq
,
1100 unsigned int nr_irqs
)
1104 for (i
= 0; i
< nr_irqs
; i
++) {
1105 irq_set_handler_data(virq
+ i
, NULL
);
1106 irq_set_handler(virq
+ i
, NULL
);
1108 irq_domain_free_irqs_common(domain
, virq
, nr_irqs
);
1111 static bool irq_domain_is_auto_recursive(struct irq_domain
*domain
)
1113 return domain
->flags
& IRQ_DOMAIN_FLAG_AUTO_RECURSIVE
;
1116 static void irq_domain_free_irqs_recursive(struct irq_domain
*domain
,
1117 unsigned int irq_base
,
1118 unsigned int nr_irqs
)
1120 domain
->ops
->free(domain
, irq_base
, nr_irqs
);
1121 if (irq_domain_is_auto_recursive(domain
)) {
1122 BUG_ON(!domain
->parent
);
1123 irq_domain_free_irqs_recursive(domain
->parent
, irq_base
,
1128 static int irq_domain_alloc_irqs_recursive(struct irq_domain
*domain
,
1129 unsigned int irq_base
,
1130 unsigned int nr_irqs
, void *arg
)
1133 struct irq_domain
*parent
= domain
->parent
;
1134 bool recursive
= irq_domain_is_auto_recursive(domain
);
1136 BUG_ON(recursive
&& !parent
);
1138 ret
= irq_domain_alloc_irqs_recursive(parent
, irq_base
,
1141 ret
= domain
->ops
->alloc(domain
, irq_base
, nr_irqs
, arg
);
1142 if (ret
< 0 && recursive
)
1143 irq_domain_free_irqs_recursive(parent
, irq_base
, nr_irqs
);
1149 * __irq_domain_alloc_irqs - Allocate IRQs from domain
1150 * @domain: domain to allocate from
1151 * @irq_base: allocate specified IRQ nubmer if irq_base >= 0
1152 * @nr_irqs: number of IRQs to allocate
1153 * @node: NUMA node id for memory allocation
1154 * @arg: domain specific argument
1155 * @realloc: IRQ descriptors have already been allocated if true
1157 * Allocate IRQ numbers and initialized all data structures to support
1158 * hierarchy IRQ domains.
1159 * Parameter @realloc is mainly to support legacy IRQs.
1160 * Returns error code or allocated IRQ number
1162 * The whole process to setup an IRQ has been split into two steps.
1163 * The first step, __irq_domain_alloc_irqs(), is to allocate IRQ
1164 * descriptor and required hardware resources. The second step,
1165 * irq_domain_activate_irq(), is to program hardwares with preallocated
1166 * resources. In this way, it's easier to rollback when failing to
1167 * allocate resources.
1169 int __irq_domain_alloc_irqs(struct irq_domain
*domain
, int irq_base
,
1170 unsigned int nr_irqs
, int node
, void *arg
,
1175 if (domain
== NULL
) {
1176 domain
= irq_default_domain
;
1177 if (WARN(!domain
, "domain is NULL; cannot allocate IRQ\n"))
1181 if (!domain
->ops
->alloc
) {
1182 pr_debug("domain->ops->alloc() is NULL\n");
1186 if (realloc
&& irq_base
>= 0) {
1189 virq
= irq_domain_alloc_descs(irq_base
, nr_irqs
, 0, node
);
1191 pr_debug("cannot allocate IRQ(base %d, count %d)\n",
1197 if (irq_domain_alloc_irq_data(domain
, virq
, nr_irqs
)) {
1198 pr_debug("cannot allocate memory for IRQ%d\n", virq
);
1203 mutex_lock(&irq_domain_mutex
);
1204 ret
= irq_domain_alloc_irqs_recursive(domain
, virq
, nr_irqs
, arg
);
1206 mutex_unlock(&irq_domain_mutex
);
1207 goto out_free_irq_data
;
1209 for (i
= 0; i
< nr_irqs
; i
++)
1210 irq_domain_insert_irq(virq
+ i
);
1211 mutex_unlock(&irq_domain_mutex
);
1216 irq_domain_free_irq_data(virq
, nr_irqs
);
1218 irq_free_descs(virq
, nr_irqs
);
1223 * irq_domain_free_irqs - Free IRQ number and associated data structures
1224 * @virq: base IRQ number
1225 * @nr_irqs: number of IRQs to free
1227 void irq_domain_free_irqs(unsigned int virq
, unsigned int nr_irqs
)
1229 struct irq_data
*data
= irq_get_irq_data(virq
);
1232 if (WARN(!data
|| !data
->domain
|| !data
->domain
->ops
->free
,
1233 "NULL pointer, cannot free irq\n"))
1236 mutex_lock(&irq_domain_mutex
);
1237 for (i
= 0; i
< nr_irqs
; i
++)
1238 irq_domain_remove_irq(virq
+ i
);
1239 irq_domain_free_irqs_recursive(data
->domain
, virq
, nr_irqs
);
1240 mutex_unlock(&irq_domain_mutex
);
1242 irq_domain_free_irq_data(virq
, nr_irqs
);
1243 irq_free_descs(virq
, nr_irqs
);
1247 * irq_domain_alloc_irqs_parent - Allocate interrupts from parent domain
1248 * @irq_base: Base IRQ number
1249 * @nr_irqs: Number of IRQs to allocate
1250 * @arg: Allocation data (arch/domain specific)
1252 * Check whether the domain has been setup recursive. If not allocate
1253 * through the parent domain.
1255 int irq_domain_alloc_irqs_parent(struct irq_domain
*domain
,
1256 unsigned int irq_base
, unsigned int nr_irqs
,
1259 /* irq_domain_alloc_irqs_recursive() has called parent's alloc() */
1260 if (irq_domain_is_auto_recursive(domain
))
1263 domain
= domain
->parent
;
1265 return irq_domain_alloc_irqs_recursive(domain
, irq_base
,
1271 * irq_domain_free_irqs_parent - Free interrupts from parent domain
1272 * @irq_base: Base IRQ number
1273 * @nr_irqs: Number of IRQs to free
1275 * Check whether the domain has been setup recursive. If not free
1276 * through the parent domain.
1278 void irq_domain_free_irqs_parent(struct irq_domain
*domain
,
1279 unsigned int irq_base
, unsigned int nr_irqs
)
1281 /* irq_domain_free_irqs_recursive() will call parent's free */
1282 if (!irq_domain_is_auto_recursive(domain
) && domain
->parent
)
1283 irq_domain_free_irqs_recursive(domain
->parent
, irq_base
,
1288 * irq_domain_activate_irq - Call domain_ops->activate recursively to activate
1290 * @irq_data: outermost irq_data associated with interrupt
1292 * This is the second step to call domain_ops->activate to program interrupt
1293 * controllers, so the interrupt could actually get delivered.
1295 void irq_domain_activate_irq(struct irq_data
*irq_data
)
1297 if (irq_data
&& irq_data
->domain
) {
1298 struct irq_domain
*domain
= irq_data
->domain
;
1300 if (irq_data
->parent_data
)
1301 irq_domain_activate_irq(irq_data
->parent_data
);
1302 if (domain
->ops
->activate
)
1303 domain
->ops
->activate(domain
, irq_data
);
1308 * irq_domain_deactivate_irq - Call domain_ops->deactivate recursively to
1309 * deactivate interrupt
1310 * @irq_data: outermost irq_data associated with interrupt
1312 * It calls domain_ops->deactivate to program interrupt controllers to disable
1313 * interrupt delivery.
1315 void irq_domain_deactivate_irq(struct irq_data
*irq_data
)
1317 if (irq_data
&& irq_data
->domain
) {
1318 struct irq_domain
*domain
= irq_data
->domain
;
1320 if (domain
->ops
->deactivate
)
1321 domain
->ops
->deactivate(domain
, irq_data
);
1322 if (irq_data
->parent_data
)
1323 irq_domain_deactivate_irq(irq_data
->parent_data
);
1327 static void irq_domain_check_hierarchy(struct irq_domain
*domain
)
1329 /* Hierarchy irq_domains must implement callback alloc() */
1330 if (domain
->ops
->alloc
)
1331 domain
->flags
|= IRQ_DOMAIN_FLAG_HIERARCHY
;
1333 #else /* CONFIG_IRQ_DOMAIN_HIERARCHY */
1335 * irq_domain_get_irq_data - Get irq_data associated with @virq and @domain
1336 * @domain: domain to match
1337 * @virq: IRQ number to get irq_data
1339 struct irq_data
*irq_domain_get_irq_data(struct irq_domain
*domain
,
1342 struct irq_data
*irq_data
= irq_get_irq_data(virq
);
1344 return (irq_data
&& irq_data
->domain
== domain
) ? irq_data
: NULL
;
1348 * irq_domain_set_info - Set the complete data for a @virq in @domain
1349 * @domain: Interrupt domain to match
1351 * @hwirq: The hardware interrupt number
1352 * @chip: The associated interrupt chip
1353 * @chip_data: The associated interrupt chip data
1354 * @handler: The interrupt flow handler
1355 * @handler_data: The interrupt flow handler data
1356 * @handler_name: The interrupt handler name
1358 void irq_domain_set_info(struct irq_domain
*domain
, unsigned int virq
,
1359 irq_hw_number_t hwirq
, struct irq_chip
*chip
,
1360 void *chip_data
, irq_flow_handler_t handler
,
1361 void *handler_data
, const char *handler_name
)
1363 irq_set_chip_and_handler_name(virq
, chip
, handler
, handler_name
);
1364 irq_set_chip_data(virq
, chip_data
);
1365 irq_set_handler_data(virq
, handler_data
);
1368 static void irq_domain_check_hierarchy(struct irq_domain
*domain
)
1371 #endif /* CONFIG_IRQ_DOMAIN_HIERARCHY */