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1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Componentized device handling.
4  *
5  * This is work in progress.  We gather up the component devices into a list,
6  * and bind them when instructed.  At the moment, we're specific to the DRM
7  * subsystem, and only handles one master device, but this doesn't have to be
8  * the case.
9  */
10 #include <linux/component.h>
11 #include <linux/device.h>
12 #include <linux/kref.h>
13 #include <linux/list.h>
14 #include <linux/mutex.h>
15 #include <linux/slab.h>
16 #include <linux/debugfs.h>
17 
18 /**
19  * DOC: overview
20  *
21  * The component helper allows drivers to collect a pile of sub-devices,
22  * including their bound drivers, into an aggregate driver. Various subsystems
23  * already provide functions to get hold of such components, e.g.
24  * of_clk_get_by_name(). The component helper can be used when such a
25  * subsystem-specific way to find a device is not available: The component
26  * helper fills the niche of aggregate drivers for specific hardware, where
27  * further standardization into a subsystem would not be practical. The common
28  * example is when a logical device (e.g. a DRM display driver) is spread around
29  * the SoC on various components (scanout engines, blending blocks, transcoders
30  * for various outputs and so on).
31  *
32  * The component helper also doesn't solve runtime dependencies, e.g. for system
33  * suspend and resume operations. See also :ref:`device links<device_link>`.
34  *
35  * Components are registered using component_add() and unregistered with
36  * component_del(), usually from the driver's probe and disconnect functions.
37  *
38  * Aggregate drivers first assemble a component match list of what they need
39  * using component_match_add(). This is then registered as an aggregate driver
40  * using component_master_add_with_match(), and unregistered using
41  * component_master_del().
42  */
43 
44 struct component;
45 
46 struct component_match_array {
47 	void *data;
48 	int (*compare)(struct device *, void *);
49 	int (*compare_typed)(struct device *, int, void *);
50 	void (*release)(struct device *, void *);
51 	struct component *component;
52 	bool duplicate;
53 };
54 
55 struct component_match {
56 	size_t alloc;
57 	size_t num;
58 	struct component_match_array *compare;
59 };
60 
61 struct master {
62 	struct list_head node;
63 	bool bound;
64 
65 	const struct component_master_ops *ops;
66 	struct device *parent;
67 	struct component_match *match;
68 };
69 
70 struct component {
71 	struct list_head node;
72 	struct master *master;
73 	bool bound;
74 
75 	const struct component_ops *ops;
76 	int subcomponent;
77 	struct device *dev;
78 };
79 
80 static DEFINE_MUTEX(component_mutex);
81 static LIST_HEAD(component_list);
82 static LIST_HEAD(masters);
83 
84 #ifdef CONFIG_DEBUG_FS
85 
86 static struct dentry *component_debugfs_dir;
87 
component_devices_show(struct seq_file * s,void * data)88 static int component_devices_show(struct seq_file *s, void *data)
89 {
90 	struct master *m = s->private;
91 	struct component_match *match = m->match;
92 	size_t i;
93 
94 	mutex_lock(&component_mutex);
95 	seq_printf(s, "%-40s %20s\n", "master name", "status");
96 	seq_puts(s, "-------------------------------------------------------------\n");
97 	seq_printf(s, "%-40s %20s\n\n",
98 		   dev_name(m->parent), m->bound ? "bound" : "not bound");
99 
100 	seq_printf(s, "%-40s %20s\n", "device name", "status");
101 	seq_puts(s, "-------------------------------------------------------------\n");
102 	for (i = 0; i < match->num; i++) {
103 		struct component *component = match->compare[i].component;
104 
105 		seq_printf(s, "%-40s %20s\n",
106 			   component ? dev_name(component->dev) : "(unknown)",
107 			   component ? (component->bound ? "bound" : "not bound") : "not registered");
108 	}
109 	mutex_unlock(&component_mutex);
110 
111 	return 0;
112 }
113 
114 DEFINE_SHOW_ATTRIBUTE(component_devices);
115 
component_debug_init(void)116 static int __init component_debug_init(void)
117 {
118 	component_debugfs_dir = debugfs_create_dir("device_component", NULL);
119 
120 	return 0;
121 }
122 
123 core_initcall(component_debug_init);
124 
component_master_debugfs_add(struct master * m)125 static void component_master_debugfs_add(struct master *m)
126 {
127 	debugfs_create_file(dev_name(m->parent), 0444, component_debugfs_dir, m,
128 			    &component_devices_fops);
129 }
130 
component_master_debugfs_del(struct master * m)131 static void component_master_debugfs_del(struct master *m)
132 {
133 	debugfs_lookup_and_remove(dev_name(m->parent), component_debugfs_dir);
134 }
135 
136 #else
137 
component_master_debugfs_add(struct master * m)138 static void component_master_debugfs_add(struct master *m)
139 { }
140 
component_master_debugfs_del(struct master * m)141 static void component_master_debugfs_del(struct master *m)
142 { }
143 
144 #endif
145 
__master_find(struct device * parent,const struct component_master_ops * ops)146 static struct master *__master_find(struct device *parent,
147 	const struct component_master_ops *ops)
148 {
149 	struct master *m;
150 
151 	list_for_each_entry(m, &masters, node)
152 		if (m->parent == parent && (!ops || m->ops == ops))
153 			return m;
154 
155 	return NULL;
156 }
157 
find_component(struct master * master,struct component_match_array * mc)158 static struct component *find_component(struct master *master,
159 	struct component_match_array *mc)
160 {
161 	struct component *c;
162 
163 	list_for_each_entry(c, &component_list, node) {
164 		if (c->master && c->master != master)
165 			continue;
166 
167 		if (mc->compare && mc->compare(c->dev, mc->data))
168 			return c;
169 
170 		if (mc->compare_typed &&
171 		    mc->compare_typed(c->dev, c->subcomponent, mc->data))
172 			return c;
173 	}
174 
175 	return NULL;
176 }
177 
find_components(struct master * master)178 static int find_components(struct master *master)
179 {
180 	struct component_match *match = master->match;
181 	size_t i;
182 	int ret = 0;
183 
184 	/*
185 	 * Scan the array of match functions and attach
186 	 * any components which are found to this master.
187 	 */
188 	for (i = 0; i < match->num; i++) {
189 		struct component_match_array *mc = &match->compare[i];
190 		struct component *c;
191 
192 		dev_dbg(master->parent, "Looking for component %zu\n", i);
193 
194 		if (match->compare[i].component)
195 			continue;
196 
197 		c = find_component(master, mc);
198 		if (!c) {
199 			ret = -ENXIO;
200 			break;
201 		}
202 
203 		dev_dbg(master->parent, "found component %s, duplicate %u\n", dev_name(c->dev), !!c->master);
204 
205 		/* Attach this component to the master */
206 		match->compare[i].duplicate = !!c->master;
207 		match->compare[i].component = c;
208 		c->master = master;
209 	}
210 	return ret;
211 }
212 
213 /* Detach component from associated master */
remove_component(struct master * master,struct component * c)214 static void remove_component(struct master *master, struct component *c)
215 {
216 	size_t i;
217 
218 	/* Detach the component from this master. */
219 	for (i = 0; i < master->match->num; i++)
220 		if (master->match->compare[i].component == c)
221 			master->match->compare[i].component = NULL;
222 }
223 
224 /*
225  * Try to bring up a master.  If component is NULL, we're interested in
226  * this master, otherwise it's a component which must be present to try
227  * and bring up the master.
228  *
229  * Returns 1 for successful bringup, 0 if not ready, or -ve errno.
230  */
try_to_bring_up_master(struct master * master,struct component * component)231 static int try_to_bring_up_master(struct master *master,
232 	struct component *component)
233 {
234 	int ret;
235 
236 	dev_dbg(master->parent, "trying to bring up master\n");
237 
238 	if (find_components(master)) {
239 		dev_dbg(master->parent, "master has incomplete components\n");
240 		return 0;
241 	}
242 
243 	if (component && component->master != master) {
244 		dev_dbg(master->parent, "master is not for this component (%s)\n",
245 			dev_name(component->dev));
246 		return 0;
247 	}
248 
249 	if (!devres_open_group(master->parent, master, GFP_KERNEL))
250 		return -ENOMEM;
251 
252 	/* Found all components */
253 	ret = master->ops->bind(master->parent);
254 	if (ret < 0) {
255 		devres_release_group(master->parent, NULL);
256 		if (ret != -EPROBE_DEFER)
257 			dev_info(master->parent, "master bind failed: %d\n", ret);
258 		return ret;
259 	}
260 
261 	devres_close_group(master->parent, NULL);
262 	master->bound = true;
263 	return 1;
264 }
265 
try_to_bring_up_masters(struct component * component)266 static int try_to_bring_up_masters(struct component *component)
267 {
268 	struct master *m;
269 	int ret = 0;
270 
271 	list_for_each_entry(m, &masters, node) {
272 		if (!m->bound) {
273 			ret = try_to_bring_up_master(m, component);
274 			if (ret != 0)
275 				break;
276 		}
277 	}
278 
279 	return ret;
280 }
281 
take_down_master(struct master * master)282 static void take_down_master(struct master *master)
283 {
284 	if (master->bound) {
285 		master->ops->unbind(master->parent);
286 		devres_release_group(master->parent, master);
287 		master->bound = false;
288 	}
289 }
290 
devm_component_match_release(struct device * parent,void * res)291 static void devm_component_match_release(struct device *parent, void *res)
292 {
293 	struct component_match *match = res;
294 	unsigned int i;
295 
296 	for (i = 0; i < match->num; i++) {
297 		struct component_match_array *mc = &match->compare[i];
298 
299 		if (mc->release)
300 			mc->release(parent, mc->data);
301 	}
302 
303 	kfree(match->compare);
304 }
305 
component_match_realloc(struct component_match * match,size_t num)306 static int component_match_realloc(struct component_match *match, size_t num)
307 {
308 	struct component_match_array *new;
309 
310 	if (match->alloc == num)
311 		return 0;
312 
313 	new = kmalloc_array(num, sizeof(*new), GFP_KERNEL);
314 	if (!new)
315 		return -ENOMEM;
316 
317 	if (match->compare) {
318 		memcpy(new, match->compare, sizeof(*new) *
319 					    min(match->num, num));
320 		kfree(match->compare);
321 	}
322 	match->compare = new;
323 	match->alloc = num;
324 
325 	return 0;
326 }
327 
__component_match_add(struct device * master,struct component_match ** matchptr,void (* release)(struct device *,void *),int (* compare)(struct device *,void *),int (* compare_typed)(struct device *,int,void *),void * compare_data)328 static void __component_match_add(struct device *master,
329 	struct component_match **matchptr,
330 	void (*release)(struct device *, void *),
331 	int (*compare)(struct device *, void *),
332 	int (*compare_typed)(struct device *, int, void *),
333 	void *compare_data)
334 {
335 	struct component_match *match = *matchptr;
336 
337 	if (IS_ERR(match))
338 		return;
339 
340 	if (!match) {
341 		match = devres_alloc(devm_component_match_release,
342 				     sizeof(*match), GFP_KERNEL);
343 		if (!match) {
344 			*matchptr = ERR_PTR(-ENOMEM);
345 			return;
346 		}
347 
348 		devres_add(master, match);
349 
350 		*matchptr = match;
351 	}
352 
353 	if (match->num == match->alloc) {
354 		size_t new_size = match->alloc + 16;
355 		int ret;
356 
357 		ret = component_match_realloc(match, new_size);
358 		if (ret) {
359 			*matchptr = ERR_PTR(ret);
360 			return;
361 		}
362 	}
363 
364 	match->compare[match->num].compare = compare;
365 	match->compare[match->num].compare_typed = compare_typed;
366 	match->compare[match->num].release = release;
367 	match->compare[match->num].data = compare_data;
368 	match->compare[match->num].component = NULL;
369 	match->num++;
370 }
371 
372 /**
373  * component_match_add_release - add a component match entry with release callback
374  * @master: device with the aggregate driver
375  * @matchptr: pointer to the list of component matches
376  * @release: release function for @compare_data
377  * @compare: compare function to match against all components
378  * @compare_data: opaque pointer passed to the @compare function
379  *
380  * Adds a new component match to the list stored in @matchptr, which the @master
381  * aggregate driver needs to function. The list of component matches pointed to
382  * by @matchptr must be initialized to NULL before adding the first match. This
383  * only matches against components added with component_add().
384  *
385  * The allocated match list in @matchptr is automatically released using devm
386  * actions, where upon @release will be called to free any references held by
387  * @compare_data, e.g. when @compare_data is a &device_node that must be
388  * released with of_node_put().
389  *
390  * See also component_match_add() and component_match_add_typed().
391  */
component_match_add_release(struct device * master,struct component_match ** matchptr,void (* release)(struct device *,void *),int (* compare)(struct device *,void *),void * compare_data)392 void component_match_add_release(struct device *master,
393 	struct component_match **matchptr,
394 	void (*release)(struct device *, void *),
395 	int (*compare)(struct device *, void *), void *compare_data)
396 {
397 	__component_match_add(master, matchptr, release, compare, NULL,
398 			      compare_data);
399 }
400 EXPORT_SYMBOL(component_match_add_release);
401 
402 /**
403  * component_match_add_typed - add a component match entry for a typed component
404  * @master: device with the aggregate driver
405  * @matchptr: pointer to the list of component matches
406  * @compare_typed: compare function to match against all typed components
407  * @compare_data: opaque pointer passed to the @compare function
408  *
409  * Adds a new component match to the list stored in @matchptr, which the @master
410  * aggregate driver needs to function. The list of component matches pointed to
411  * by @matchptr must be initialized to NULL before adding the first match. This
412  * only matches against components added with component_add_typed().
413  *
414  * The allocated match list in @matchptr is automatically released using devm
415  * actions.
416  *
417  * See also component_match_add_release() and component_match_add_typed().
418  */
component_match_add_typed(struct device * master,struct component_match ** matchptr,int (* compare_typed)(struct device *,int,void *),void * compare_data)419 void component_match_add_typed(struct device *master,
420 	struct component_match **matchptr,
421 	int (*compare_typed)(struct device *, int, void *), void *compare_data)
422 {
423 	__component_match_add(master, matchptr, NULL, NULL, compare_typed,
424 			      compare_data);
425 }
426 EXPORT_SYMBOL(component_match_add_typed);
427 
free_master(struct master * master)428 static void free_master(struct master *master)
429 {
430 	struct component_match *match = master->match;
431 	int i;
432 
433 	component_master_debugfs_del(master);
434 	list_del(&master->node);
435 
436 	if (match) {
437 		for (i = 0; i < match->num; i++) {
438 			struct component *c = match->compare[i].component;
439 			if (c)
440 				c->master = NULL;
441 		}
442 	}
443 
444 	kfree(master);
445 }
446 
447 /**
448  * component_master_add_with_match - register an aggregate driver
449  * @parent: parent device of the aggregate driver
450  * @ops: callbacks for the aggregate driver
451  * @match: component match list for the aggregate driver
452  *
453  * Registers a new aggregate driver consisting of the components added to @match
454  * by calling one of the component_match_add() functions. Once all components in
455  * @match are available, it will be assembled by calling
456  * &component_master_ops.bind from @ops. Must be unregistered by calling
457  * component_master_del().
458  */
component_master_add_with_match(struct device * parent,const struct component_master_ops * ops,struct component_match * match)459 int component_master_add_with_match(struct device *parent,
460 	const struct component_master_ops *ops,
461 	struct component_match *match)
462 {
463 	struct master *master;
464 	int ret;
465 
466 	/* Reallocate the match array for its true size */
467 	ret = component_match_realloc(match, match->num);
468 	if (ret)
469 		return ret;
470 
471 	master = kzalloc(sizeof(*master), GFP_KERNEL);
472 	if (!master)
473 		return -ENOMEM;
474 
475 	master->parent = parent;
476 	master->ops = ops;
477 	master->match = match;
478 
479 	component_master_debugfs_add(master);
480 	/* Add to the list of available masters. */
481 	mutex_lock(&component_mutex);
482 	list_add(&master->node, &masters);
483 
484 	ret = try_to_bring_up_master(master, NULL);
485 
486 	if (ret < 0)
487 		free_master(master);
488 
489 	mutex_unlock(&component_mutex);
490 
491 	return ret < 0 ? ret : 0;
492 }
493 EXPORT_SYMBOL_GPL(component_master_add_with_match);
494 
495 /**
496  * component_master_del - unregister an aggregate driver
497  * @parent: parent device of the aggregate driver
498  * @ops: callbacks for the aggregate driver
499  *
500  * Unregisters an aggregate driver registered with
501  * component_master_add_with_match(). If necessary the aggregate driver is first
502  * disassembled by calling &component_master_ops.unbind from @ops.
503  */
component_master_del(struct device * parent,const struct component_master_ops * ops)504 void component_master_del(struct device *parent,
505 	const struct component_master_ops *ops)
506 {
507 	struct master *master;
508 
509 	mutex_lock(&component_mutex);
510 	master = __master_find(parent, ops);
511 	if (master) {
512 		take_down_master(master);
513 		free_master(master);
514 	}
515 	mutex_unlock(&component_mutex);
516 }
517 EXPORT_SYMBOL_GPL(component_master_del);
518 
component_unbind(struct component * component,struct master * master,void * data)519 static void component_unbind(struct component *component,
520 	struct master *master, void *data)
521 {
522 	WARN_ON(!component->bound);
523 
524 	if (component->ops && component->ops->unbind)
525 		component->ops->unbind(component->dev, master->parent, data);
526 	component->bound = false;
527 
528 	/* Release all resources claimed in the binding of this component */
529 	devres_release_group(component->dev, component);
530 }
531 
532 /**
533  * component_unbind_all - unbind all components of an aggregate driver
534  * @parent: parent device of the aggregate driver
535  * @data: opaque pointer, passed to all components
536  *
537  * Unbinds all components of the aggregate device by passing @data to their
538  * &component_ops.unbind functions. Should be called from
539  * &component_master_ops.unbind.
540  */
component_unbind_all(struct device * parent,void * data)541 void component_unbind_all(struct device *parent, void *data)
542 {
543 	struct master *master;
544 	struct component *c;
545 	size_t i;
546 
547 	WARN_ON(!mutex_is_locked(&component_mutex));
548 
549 	master = __master_find(parent, NULL);
550 	if (!master)
551 		return;
552 
553 	/* Unbind components in reverse order */
554 	for (i = master->match->num; i--; )
555 		if (!master->match->compare[i].duplicate) {
556 			c = master->match->compare[i].component;
557 			component_unbind(c, master, data);
558 		}
559 }
560 EXPORT_SYMBOL_GPL(component_unbind_all);
561 
component_bind(struct component * component,struct master * master,void * data)562 static int component_bind(struct component *component, struct master *master,
563 	void *data)
564 {
565 	int ret;
566 
567 	/*
568 	 * Each component initialises inside its own devres group.
569 	 * This allows us to roll-back a failed component without
570 	 * affecting anything else.
571 	 */
572 	if (!devres_open_group(master->parent, NULL, GFP_KERNEL))
573 		return -ENOMEM;
574 
575 	/*
576 	 * Also open a group for the device itself: this allows us
577 	 * to release the resources claimed against the sub-device
578 	 * at the appropriate moment.
579 	 */
580 	if (!devres_open_group(component->dev, component, GFP_KERNEL)) {
581 		devres_release_group(master->parent, NULL);
582 		return -ENOMEM;
583 	}
584 
585 	dev_dbg(master->parent, "binding %s (ops %ps)\n",
586 		dev_name(component->dev), component->ops);
587 
588 	ret = component->ops->bind(component->dev, master->parent, data);
589 	if (!ret) {
590 		component->bound = true;
591 
592 		/*
593 		 * Close the component device's group so that resources
594 		 * allocated in the binding are encapsulated for removal
595 		 * at unbind.  Remove the group on the DRM device as we
596 		 * can clean those resources up independently.
597 		 */
598 		devres_close_group(component->dev, NULL);
599 		devres_remove_group(master->parent, NULL);
600 
601 		dev_info(master->parent, "bound %s (ops %ps)\n",
602 			 dev_name(component->dev), component->ops);
603 	} else {
604 		devres_release_group(component->dev, NULL);
605 		devres_release_group(master->parent, NULL);
606 
607 		if (ret != -EPROBE_DEFER)
608 			dev_err(master->parent, "failed to bind %s (ops %ps): %d\n",
609 				dev_name(component->dev), component->ops, ret);
610 	}
611 
612 	return ret;
613 }
614 
615 /**
616  * component_bind_all - bind all components of an aggregate driver
617  * @parent: parent device of the aggregate driver
618  * @data: opaque pointer, passed to all components
619  *
620  * Binds all components of the aggregate @dev by passing @data to their
621  * &component_ops.bind functions. Should be called from
622  * &component_master_ops.bind.
623  */
component_bind_all(struct device * parent,void * data)624 int component_bind_all(struct device *parent, void *data)
625 {
626 	struct master *master;
627 	struct component *c;
628 	size_t i;
629 	int ret = 0;
630 
631 	WARN_ON(!mutex_is_locked(&component_mutex));
632 
633 	master = __master_find(parent, NULL);
634 	if (!master)
635 		return -EINVAL;
636 
637 	/* Bind components in match order */
638 	for (i = 0; i < master->match->num; i++)
639 		if (!master->match->compare[i].duplicate) {
640 			c = master->match->compare[i].component;
641 			ret = component_bind(c, master, data);
642 			if (ret)
643 				break;
644 		}
645 
646 	if (ret != 0) {
647 		for (; i > 0; i--)
648 			if (!master->match->compare[i - 1].duplicate) {
649 				c = master->match->compare[i - 1].component;
650 				component_unbind(c, master, data);
651 			}
652 	}
653 
654 	return ret;
655 }
656 EXPORT_SYMBOL_GPL(component_bind_all);
657 
__component_add(struct device * dev,const struct component_ops * ops,int subcomponent)658 static int __component_add(struct device *dev, const struct component_ops *ops,
659 	int subcomponent)
660 {
661 	struct component *component;
662 	int ret;
663 
664 	component = kzalloc(sizeof(*component), GFP_KERNEL);
665 	if (!component)
666 		return -ENOMEM;
667 
668 	component->ops = ops;
669 	component->dev = dev;
670 	component->subcomponent = subcomponent;
671 
672 	dev_dbg(dev, "adding component (ops %ps)\n", ops);
673 
674 	mutex_lock(&component_mutex);
675 	list_add_tail(&component->node, &component_list);
676 
677 	ret = try_to_bring_up_masters(component);
678 	if (ret < 0) {
679 		if (component->master)
680 			remove_component(component->master, component);
681 		list_del(&component->node);
682 
683 		kfree(component);
684 	}
685 	mutex_unlock(&component_mutex);
686 
687 	return ret < 0 ? ret : 0;
688 }
689 
690 /**
691  * component_add_typed - register a component
692  * @dev: component device
693  * @ops: component callbacks
694  * @subcomponent: nonzero identifier for subcomponents
695  *
696  * Register a new component for @dev. Functions in @ops will be call when the
697  * aggregate driver is ready to bind the overall driver by calling
698  * component_bind_all(). See also &struct component_ops.
699  *
700  * @subcomponent must be nonzero and is used to differentiate between multiple
701  * components registerd on the same device @dev. These components are match
702  * using component_match_add_typed().
703  *
704  * The component needs to be unregistered at driver unload/disconnect by
705  * calling component_del().
706  *
707  * See also component_add().
708  */
component_add_typed(struct device * dev,const struct component_ops * ops,int subcomponent)709 int component_add_typed(struct device *dev, const struct component_ops *ops,
710 	int subcomponent)
711 {
712 	if (WARN_ON(subcomponent == 0))
713 		return -EINVAL;
714 
715 	return __component_add(dev, ops, subcomponent);
716 }
717 EXPORT_SYMBOL_GPL(component_add_typed);
718 
719 /**
720  * component_add - register a component
721  * @dev: component device
722  * @ops: component callbacks
723  *
724  * Register a new component for @dev. Functions in @ops will be called when the
725  * aggregate driver is ready to bind the overall driver by calling
726  * component_bind_all(). See also &struct component_ops.
727  *
728  * The component needs to be unregistered at driver unload/disconnect by
729  * calling component_del().
730  *
731  * See also component_add_typed() for a variant that allows multipled different
732  * components on the same device.
733  */
component_add(struct device * dev,const struct component_ops * ops)734 int component_add(struct device *dev, const struct component_ops *ops)
735 {
736 	return __component_add(dev, ops, 0);
737 }
738 EXPORT_SYMBOL_GPL(component_add);
739 
740 /**
741  * component_del - unregister a component
742  * @dev: component device
743  * @ops: component callbacks
744  *
745  * Unregister a component added with component_add(). If the component is bound
746  * into an aggregate driver, this will force the entire aggregate driver, including
747  * all its components, to be unbound.
748  */
component_del(struct device * dev,const struct component_ops * ops)749 void component_del(struct device *dev, const struct component_ops *ops)
750 {
751 	struct component *c, *component = NULL;
752 
753 	mutex_lock(&component_mutex);
754 	list_for_each_entry(c, &component_list, node)
755 		if (c->dev == dev && c->ops == ops) {
756 			list_del(&c->node);
757 			component = c;
758 			break;
759 		}
760 
761 	if (component && component->master) {
762 		take_down_master(component->master);
763 		remove_component(component->master, component);
764 	}
765 
766 	mutex_unlock(&component_mutex);
767 
768 	WARN_ON(!component);
769 	kfree(component);
770 }
771 EXPORT_SYMBOL_GPL(component_del);
772