MAINTAINERS: add entry for common clk framework
[deliverable/linux.git] / drivers / clk / clk.c
CommitLineData
b2476490
MT
1/*
2 * Copyright (C) 2010-2011 Canonical Ltd <jeremy.kerr@canonical.com>
3 * Copyright (C) 2011-2012 Linaro Ltd <mturquette@linaro.org>
4 *
5 * This program is free software; you can redistribute it and/or modify
6 * it under the terms of the GNU General Public License version 2 as
7 * published by the Free Software Foundation.
8 *
9 * Standard functionality for the common clock API. See Documentation/clk.txt
10 */
11
12#include <linux/clk-private.h>
13#include <linux/module.h>
14#include <linux/mutex.h>
15#include <linux/spinlock.h>
16#include <linux/err.h>
17#include <linux/list.h>
18#include <linux/slab.h>
19
20static DEFINE_SPINLOCK(enable_lock);
21static DEFINE_MUTEX(prepare_lock);
22
23static HLIST_HEAD(clk_root_list);
24static HLIST_HEAD(clk_orphan_list);
25static LIST_HEAD(clk_notifier_list);
26
27/*** debugfs support ***/
28
29#ifdef CONFIG_COMMON_CLK_DEBUG
30#include <linux/debugfs.h>
31
32static struct dentry *rootdir;
33static struct dentry *orphandir;
34static int inited = 0;
35
36/* caller must hold prepare_lock */
37static int clk_debug_create_one(struct clk *clk, struct dentry *pdentry)
38{
39 struct dentry *d;
40 int ret = -ENOMEM;
41
42 if (!clk || !pdentry) {
43 ret = -EINVAL;
44 goto out;
45 }
46
47 d = debugfs_create_dir(clk->name, pdentry);
48 if (!d)
49 goto out;
50
51 clk->dentry = d;
52
53 d = debugfs_create_u32("clk_rate", S_IRUGO, clk->dentry,
54 (u32 *)&clk->rate);
55 if (!d)
56 goto err_out;
57
58 d = debugfs_create_x32("clk_flags", S_IRUGO, clk->dentry,
59 (u32 *)&clk->flags);
60 if (!d)
61 goto err_out;
62
63 d = debugfs_create_u32("clk_prepare_count", S_IRUGO, clk->dentry,
64 (u32 *)&clk->prepare_count);
65 if (!d)
66 goto err_out;
67
68 d = debugfs_create_u32("clk_enable_count", S_IRUGO, clk->dentry,
69 (u32 *)&clk->enable_count);
70 if (!d)
71 goto err_out;
72
73 d = debugfs_create_u32("clk_notifier_count", S_IRUGO, clk->dentry,
74 (u32 *)&clk->notifier_count);
75 if (!d)
76 goto err_out;
77
78 ret = 0;
79 goto out;
80
81err_out:
82 debugfs_remove(clk->dentry);
83out:
84 return ret;
85}
86
87/* caller must hold prepare_lock */
88static int clk_debug_create_subtree(struct clk *clk, struct dentry *pdentry)
89{
90 struct clk *child;
91 struct hlist_node *tmp;
92 int ret = -EINVAL;;
93
94 if (!clk || !pdentry)
95 goto out;
96
97 ret = clk_debug_create_one(clk, pdentry);
98
99 if (ret)
100 goto out;
101
102 hlist_for_each_entry(child, tmp, &clk->children, child_node)
103 clk_debug_create_subtree(child, clk->dentry);
104
105 ret = 0;
106out:
107 return ret;
108}
109
110/**
111 * clk_debug_register - add a clk node to the debugfs clk tree
112 * @clk: the clk being added to the debugfs clk tree
113 *
114 * Dynamically adds a clk to the debugfs clk tree if debugfs has been
115 * initialized. Otherwise it bails out early since the debugfs clk tree
116 * will be created lazily by clk_debug_init as part of a late_initcall.
117 *
118 * Caller must hold prepare_lock. Only clk_init calls this function (so
119 * far) so this is taken care.
120 */
121static int clk_debug_register(struct clk *clk)
122{
123 struct clk *parent;
124 struct dentry *pdentry;
125 int ret = 0;
126
127 if (!inited)
128 goto out;
129
130 parent = clk->parent;
131
132 /*
133 * Check to see if a clk is a root clk. Also check that it is
134 * safe to add this clk to debugfs
135 */
136 if (!parent)
137 if (clk->flags & CLK_IS_ROOT)
138 pdentry = rootdir;
139 else
140 pdentry = orphandir;
141 else
142 if (parent->dentry)
143 pdentry = parent->dentry;
144 else
145 goto out;
146
147 ret = clk_debug_create_subtree(clk, pdentry);
148
149out:
150 return ret;
151}
152
153/**
154 * clk_debug_init - lazily create the debugfs clk tree visualization
155 *
156 * clks are often initialized very early during boot before memory can
157 * be dynamically allocated and well before debugfs is setup.
158 * clk_debug_init walks the clk tree hierarchy while holding
159 * prepare_lock and creates the topology as part of a late_initcall,
160 * thus insuring that clks initialized very early will still be
161 * represented in the debugfs clk tree. This function should only be
162 * called once at boot-time, and all other clks added dynamically will
163 * be done so with clk_debug_register.
164 */
165static int __init clk_debug_init(void)
166{
167 struct clk *clk;
168 struct hlist_node *tmp;
169
170 rootdir = debugfs_create_dir("clk", NULL);
171
172 if (!rootdir)
173 return -ENOMEM;
174
175 orphandir = debugfs_create_dir("orphans", rootdir);
176
177 if (!orphandir)
178 return -ENOMEM;
179
180 mutex_lock(&prepare_lock);
181
182 hlist_for_each_entry(clk, tmp, &clk_root_list, child_node)
183 clk_debug_create_subtree(clk, rootdir);
184
185 hlist_for_each_entry(clk, tmp, &clk_orphan_list, child_node)
186 clk_debug_create_subtree(clk, orphandir);
187
188 inited = 1;
189
190 mutex_unlock(&prepare_lock);
191
192 return 0;
193}
194late_initcall(clk_debug_init);
195#else
196static inline int clk_debug_register(struct clk *clk) { return 0; }
70d347e6 197#endif
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198
199#ifdef CONFIG_COMMON_CLK_DISABLE_UNUSED
200/* caller must hold prepare_lock */
201static void clk_disable_unused_subtree(struct clk *clk)
202{
203 struct clk *child;
204 struct hlist_node *tmp;
205 unsigned long flags;
206
207 if (!clk)
208 goto out;
209
210 hlist_for_each_entry(child, tmp, &clk->children, child_node)
211 clk_disable_unused_subtree(child);
212
213 spin_lock_irqsave(&enable_lock, flags);
214
215 if (clk->enable_count)
216 goto unlock_out;
217
218 if (clk->flags & CLK_IGNORE_UNUSED)
219 goto unlock_out;
220
221 if (__clk_is_enabled(clk) && clk->ops->disable)
222 clk->ops->disable(clk->hw);
223
224unlock_out:
225 spin_unlock_irqrestore(&enable_lock, flags);
226
227out:
228 return;
229}
230
231static int clk_disable_unused(void)
232{
233 struct clk *clk;
234 struct hlist_node *tmp;
235
236 mutex_lock(&prepare_lock);
237
238 hlist_for_each_entry(clk, tmp, &clk_root_list, child_node)
239 clk_disable_unused_subtree(clk);
240
241 hlist_for_each_entry(clk, tmp, &clk_orphan_list, child_node)
242 clk_disable_unused_subtree(clk);
243
244 mutex_unlock(&prepare_lock);
245
246 return 0;
247}
248late_initcall(clk_disable_unused);
70d347e6 249#endif
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250
251/*** helper functions ***/
252
253inline const char *__clk_get_name(struct clk *clk)
254{
255 return !clk ? NULL : clk->name;
256}
257
258inline struct clk_hw *__clk_get_hw(struct clk *clk)
259{
260 return !clk ? NULL : clk->hw;
261}
262
263inline u8 __clk_get_num_parents(struct clk *clk)
264{
265 return !clk ? -EINVAL : clk->num_parents;
266}
267
268inline struct clk *__clk_get_parent(struct clk *clk)
269{
270 return !clk ? NULL : clk->parent;
271}
272
273inline int __clk_get_enable_count(struct clk *clk)
274{
275 return !clk ? -EINVAL : clk->enable_count;
276}
277
278inline int __clk_get_prepare_count(struct clk *clk)
279{
280 return !clk ? -EINVAL : clk->prepare_count;
281}
282
283unsigned long __clk_get_rate(struct clk *clk)
284{
285 unsigned long ret;
286
287 if (!clk) {
34e44fe8 288 ret = 0;
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289 goto out;
290 }
291
292 ret = clk->rate;
293
294 if (clk->flags & CLK_IS_ROOT)
295 goto out;
296
297 if (!clk->parent)
34e44fe8 298 ret = 0;
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299
300out:
301 return ret;
302}
303
304inline unsigned long __clk_get_flags(struct clk *clk)
305{
306 return !clk ? -EINVAL : clk->flags;
307}
308
309int __clk_is_enabled(struct clk *clk)
310{
311 int ret;
312
313 if (!clk)
314 return -EINVAL;
315
316 /*
317 * .is_enabled is only mandatory for clocks that gate
318 * fall back to software usage counter if .is_enabled is missing
319 */
320 if (!clk->ops->is_enabled) {
321 ret = clk->enable_count ? 1 : 0;
322 goto out;
323 }
324
325 ret = clk->ops->is_enabled(clk->hw);
326out:
327 return ret;
328}
329
330static struct clk *__clk_lookup_subtree(const char *name, struct clk *clk)
331{
332 struct clk *child;
333 struct clk *ret;
334 struct hlist_node *tmp;
335
336 if (!strcmp(clk->name, name))
337 return clk;
338
339 hlist_for_each_entry(child, tmp, &clk->children, child_node) {
340 ret = __clk_lookup_subtree(name, child);
341 if (ret)
342 return ret;
343 }
344
345 return NULL;
346}
347
348struct clk *__clk_lookup(const char *name)
349{
350 struct clk *root_clk;
351 struct clk *ret;
352 struct hlist_node *tmp;
353
354 if (!name)
355 return NULL;
356
357 /* search the 'proper' clk tree first */
358 hlist_for_each_entry(root_clk, tmp, &clk_root_list, child_node) {
359 ret = __clk_lookup_subtree(name, root_clk);
360 if (ret)
361 return ret;
362 }
363
364 /* if not found, then search the orphan tree */
365 hlist_for_each_entry(root_clk, tmp, &clk_orphan_list, child_node) {
366 ret = __clk_lookup_subtree(name, root_clk);
367 if (ret)
368 return ret;
369 }
370
371 return NULL;
372}
373
374/*** clk api ***/
375
376void __clk_unprepare(struct clk *clk)
377{
378 if (!clk)
379 return;
380
381 if (WARN_ON(clk->prepare_count == 0))
382 return;
383
384 if (--clk->prepare_count > 0)
385 return;
386
387 WARN_ON(clk->enable_count > 0);
388
389 if (clk->ops->unprepare)
390 clk->ops->unprepare(clk->hw);
391
392 __clk_unprepare(clk->parent);
393}
394
395/**
396 * clk_unprepare - undo preparation of a clock source
397 * @clk: the clk being unprepare
398 *
399 * clk_unprepare may sleep, which differentiates it from clk_disable. In a
400 * simple case, clk_unprepare can be used instead of clk_disable to gate a clk
401 * if the operation may sleep. One example is a clk which is accessed over
402 * I2c. In the complex case a clk gate operation may require a fast and a slow
403 * part. It is this reason that clk_unprepare and clk_disable are not mutually
404 * exclusive. In fact clk_disable must be called before clk_unprepare.
405 */
406void clk_unprepare(struct clk *clk)
407{
408 mutex_lock(&prepare_lock);
409 __clk_unprepare(clk);
410 mutex_unlock(&prepare_lock);
411}
412EXPORT_SYMBOL_GPL(clk_unprepare);
413
414int __clk_prepare(struct clk *clk)
415{
416 int ret = 0;
417
418 if (!clk)
419 return 0;
420
421 if (clk->prepare_count == 0) {
422 ret = __clk_prepare(clk->parent);
423 if (ret)
424 return ret;
425
426 if (clk->ops->prepare) {
427 ret = clk->ops->prepare(clk->hw);
428 if (ret) {
429 __clk_unprepare(clk->parent);
430 return ret;
431 }
432 }
433 }
434
435 clk->prepare_count++;
436
437 return 0;
438}
439
440/**
441 * clk_prepare - prepare a clock source
442 * @clk: the clk being prepared
443 *
444 * clk_prepare may sleep, which differentiates it from clk_enable. In a simple
445 * case, clk_prepare can be used instead of clk_enable to ungate a clk if the
446 * operation may sleep. One example is a clk which is accessed over I2c. In
447 * the complex case a clk ungate operation may require a fast and a slow part.
448 * It is this reason that clk_prepare and clk_enable are not mutually
449 * exclusive. In fact clk_prepare must be called before clk_enable.
450 * Returns 0 on success, -EERROR otherwise.
451 */
452int clk_prepare(struct clk *clk)
453{
454 int ret;
455
456 mutex_lock(&prepare_lock);
457 ret = __clk_prepare(clk);
458 mutex_unlock(&prepare_lock);
459
460 return ret;
461}
462EXPORT_SYMBOL_GPL(clk_prepare);
463
464static void __clk_disable(struct clk *clk)
465{
466 if (!clk)
467 return;
468
469 if (WARN_ON(clk->enable_count == 0))
470 return;
471
472 if (--clk->enable_count > 0)
473 return;
474
475 if (clk->ops->disable)
476 clk->ops->disable(clk->hw);
477
478 __clk_disable(clk->parent);
479}
480
481/**
482 * clk_disable - gate a clock
483 * @clk: the clk being gated
484 *
485 * clk_disable must not sleep, which differentiates it from clk_unprepare. In
486 * a simple case, clk_disable can be used instead of clk_unprepare to gate a
487 * clk if the operation is fast and will never sleep. One example is a
488 * SoC-internal clk which is controlled via simple register writes. In the
489 * complex case a clk gate operation may require a fast and a slow part. It is
490 * this reason that clk_unprepare and clk_disable are not mutually exclusive.
491 * In fact clk_disable must be called before clk_unprepare.
492 */
493void clk_disable(struct clk *clk)
494{
495 unsigned long flags;
496
497 spin_lock_irqsave(&enable_lock, flags);
498 __clk_disable(clk);
499 spin_unlock_irqrestore(&enable_lock, flags);
500}
501EXPORT_SYMBOL_GPL(clk_disable);
502
503static int __clk_enable(struct clk *clk)
504{
505 int ret = 0;
506
507 if (!clk)
508 return 0;
509
510 if (WARN_ON(clk->prepare_count == 0))
511 return -ESHUTDOWN;
512
513 if (clk->enable_count == 0) {
514 ret = __clk_enable(clk->parent);
515
516 if (ret)
517 return ret;
518
519 if (clk->ops->enable) {
520 ret = clk->ops->enable(clk->hw);
521 if (ret) {
522 __clk_disable(clk->parent);
523 return ret;
524 }
525 }
526 }
527
528 clk->enable_count++;
529 return 0;
530}
531
532/**
533 * clk_enable - ungate a clock
534 * @clk: the clk being ungated
535 *
536 * clk_enable must not sleep, which differentiates it from clk_prepare. In a
537 * simple case, clk_enable can be used instead of clk_prepare to ungate a clk
538 * if the operation will never sleep. One example is a SoC-internal clk which
539 * is controlled via simple register writes. In the complex case a clk ungate
540 * operation may require a fast and a slow part. It is this reason that
541 * clk_enable and clk_prepare are not mutually exclusive. In fact clk_prepare
542 * must be called before clk_enable. Returns 0 on success, -EERROR
543 * otherwise.
544 */
545int clk_enable(struct clk *clk)
546{
547 unsigned long flags;
548 int ret;
549
550 spin_lock_irqsave(&enable_lock, flags);
551 ret = __clk_enable(clk);
552 spin_unlock_irqrestore(&enable_lock, flags);
553
554 return ret;
555}
556EXPORT_SYMBOL_GPL(clk_enable);
557
558/**
559 * clk_get_rate - return the rate of clk
560 * @clk: the clk whose rate is being returned
561 *
562 * Simply returns the cached rate of the clk. Does not query the hardware. If
34e44fe8 563 * clk is NULL then returns 0.
b2476490
MT
564 */
565unsigned long clk_get_rate(struct clk *clk)
566{
567 unsigned long rate;
568
569 mutex_lock(&prepare_lock);
570 rate = __clk_get_rate(clk);
571 mutex_unlock(&prepare_lock);
572
573 return rate;
574}
575EXPORT_SYMBOL_GPL(clk_get_rate);
576
577/**
578 * __clk_round_rate - round the given rate for a clk
579 * @clk: round the rate of this clock
580 *
581 * Caller must hold prepare_lock. Useful for clk_ops such as .set_rate
582 */
583unsigned long __clk_round_rate(struct clk *clk, unsigned long rate)
584{
81536e07 585 unsigned long parent_rate = 0;
b2476490
MT
586
587 if (!clk)
588 return -EINVAL;
589
f4d8af2e
SG
590 if (!clk->ops->round_rate) {
591 if (clk->flags & CLK_SET_RATE_PARENT)
592 return __clk_round_rate(clk->parent, rate);
593 else
594 return clk->rate;
595 }
b2476490 596
81536e07
SG
597 if (clk->parent)
598 parent_rate = clk->parent->rate;
599
600 return clk->ops->round_rate(clk->hw, rate, &parent_rate);
b2476490
MT
601}
602
603/**
604 * clk_round_rate - round the given rate for a clk
605 * @clk: the clk for which we are rounding a rate
606 * @rate: the rate which is to be rounded
607 *
608 * Takes in a rate as input and rounds it to a rate that the clk can actually
609 * use which is then returned. If clk doesn't support round_rate operation
610 * then the parent rate is returned.
611 */
612long clk_round_rate(struct clk *clk, unsigned long rate)
613{
614 unsigned long ret;
615
616 mutex_lock(&prepare_lock);
617 ret = __clk_round_rate(clk, rate);
618 mutex_unlock(&prepare_lock);
619
620 return ret;
621}
622EXPORT_SYMBOL_GPL(clk_round_rate);
623
624/**
625 * __clk_notify - call clk notifier chain
626 * @clk: struct clk * that is changing rate
627 * @msg: clk notifier type (see include/linux/clk.h)
628 * @old_rate: old clk rate
629 * @new_rate: new clk rate
630 *
631 * Triggers a notifier call chain on the clk rate-change notification
632 * for 'clk'. Passes a pointer to the struct clk and the previous
633 * and current rates to the notifier callback. Intended to be called by
634 * internal clock code only. Returns NOTIFY_DONE from the last driver
635 * called if all went well, or NOTIFY_STOP or NOTIFY_BAD immediately if
636 * a driver returns that.
637 */
638static int __clk_notify(struct clk *clk, unsigned long msg,
639 unsigned long old_rate, unsigned long new_rate)
640{
641 struct clk_notifier *cn;
642 struct clk_notifier_data cnd;
643 int ret = NOTIFY_DONE;
644
645 cnd.clk = clk;
646 cnd.old_rate = old_rate;
647 cnd.new_rate = new_rate;
648
649 list_for_each_entry(cn, &clk_notifier_list, node) {
650 if (cn->clk == clk) {
651 ret = srcu_notifier_call_chain(&cn->notifier_head, msg,
652 &cnd);
653 break;
654 }
655 }
656
657 return ret;
658}
659
660/**
661 * __clk_recalc_rates
662 * @clk: first clk in the subtree
663 * @msg: notification type (see include/linux/clk.h)
664 *
665 * Walks the subtree of clks starting with clk and recalculates rates as it
666 * goes. Note that if a clk does not implement the .recalc_rate callback then
667 * it is assumed that the clock will take on the rate of it's parent.
668 *
669 * clk_recalc_rates also propagates the POST_RATE_CHANGE notification,
670 * if necessary.
671 *
672 * Caller must hold prepare_lock.
673 */
674static void __clk_recalc_rates(struct clk *clk, unsigned long msg)
675{
676 unsigned long old_rate;
677 unsigned long parent_rate = 0;
678 struct hlist_node *tmp;
679 struct clk *child;
680
681 old_rate = clk->rate;
682
683 if (clk->parent)
684 parent_rate = clk->parent->rate;
685
686 if (clk->ops->recalc_rate)
687 clk->rate = clk->ops->recalc_rate(clk->hw, parent_rate);
688 else
689 clk->rate = parent_rate;
690
691 /*
692 * ignore NOTIFY_STOP and NOTIFY_BAD return values for POST_RATE_CHANGE
693 * & ABORT_RATE_CHANGE notifiers
694 */
695 if (clk->notifier_count && msg)
696 __clk_notify(clk, msg, old_rate, clk->rate);
697
698 hlist_for_each_entry(child, tmp, &clk->children, child_node)
699 __clk_recalc_rates(child, msg);
700}
701
702/**
703 * __clk_speculate_rates
704 * @clk: first clk in the subtree
705 * @parent_rate: the "future" rate of clk's parent
706 *
707 * Walks the subtree of clks starting with clk, speculating rates as it
708 * goes and firing off PRE_RATE_CHANGE notifications as necessary.
709 *
710 * Unlike clk_recalc_rates, clk_speculate_rates exists only for sending
711 * pre-rate change notifications and returns early if no clks in the
712 * subtree have subscribed to the notifications. Note that if a clk does not
713 * implement the .recalc_rate callback then it is assumed that the clock will
714 * take on the rate of it's parent.
715 *
716 * Caller must hold prepare_lock.
717 */
718static int __clk_speculate_rates(struct clk *clk, unsigned long parent_rate)
719{
720 struct hlist_node *tmp;
721 struct clk *child;
722 unsigned long new_rate;
723 int ret = NOTIFY_DONE;
724
725 if (clk->ops->recalc_rate)
726 new_rate = clk->ops->recalc_rate(clk->hw, parent_rate);
727 else
728 new_rate = parent_rate;
729
730 /* abort the rate change if a driver returns NOTIFY_BAD */
731 if (clk->notifier_count)
732 ret = __clk_notify(clk, PRE_RATE_CHANGE, clk->rate, new_rate);
733
734 if (ret == NOTIFY_BAD)
735 goto out;
736
737 hlist_for_each_entry(child, tmp, &clk->children, child_node) {
738 ret = __clk_speculate_rates(child, new_rate);
739 if (ret == NOTIFY_BAD)
740 break;
741 }
742
743out:
744 return ret;
745}
746
747static void clk_calc_subtree(struct clk *clk, unsigned long new_rate)
748{
749 struct clk *child;
750 struct hlist_node *tmp;
751
752 clk->new_rate = new_rate;
753
754 hlist_for_each_entry(child, tmp, &clk->children, child_node) {
755 if (child->ops->recalc_rate)
756 child->new_rate = child->ops->recalc_rate(child->hw, new_rate);
757 else
758 child->new_rate = new_rate;
759 clk_calc_subtree(child, child->new_rate);
760 }
761}
762
763/*
764 * calculate the new rates returning the topmost clock that has to be
765 * changed.
766 */
767static struct clk *clk_calc_new_rates(struct clk *clk, unsigned long rate)
768{
769 struct clk *top = clk;
81536e07 770 unsigned long best_parent_rate = 0;
b2476490
MT
771 unsigned long new_rate;
772
7452b219
MT
773 /* sanity */
774 if (IS_ERR_OR_NULL(clk))
775 return NULL;
776
777 /* never propagate up to the parent */
778 if (!(clk->flags & CLK_SET_RATE_PARENT)) {
779 if (!clk->ops->round_rate) {
780 clk->new_rate = clk->rate;
781 return NULL;
7452b219
MT
782 }
783 }
784
785 /* need clk->parent from here on out */
786 if (!clk->parent) {
787 pr_debug("%s: %s has NULL parent\n", __func__, clk->name);
b2476490
MT
788 return NULL;
789 }
790
7452b219 791 if (!clk->ops->round_rate) {
b2476490 792 top = clk_calc_new_rates(clk->parent, rate);
1b2f9903 793 new_rate = clk->parent->new_rate;
b2476490
MT
794
795 goto out;
796 }
797
81536e07 798 best_parent_rate = clk->parent->rate;
7452b219 799 new_rate = clk->ops->round_rate(clk->hw, rate, &best_parent_rate);
b2476490
MT
800
801 if (best_parent_rate != clk->parent->rate) {
802 top = clk_calc_new_rates(clk->parent, best_parent_rate);
803
804 goto out;
805 }
806
807out:
808 clk_calc_subtree(clk, new_rate);
809
810 return top;
811}
812
813/*
814 * Notify about rate changes in a subtree. Always walk down the whole tree
815 * so that in case of an error we can walk down the whole tree again and
816 * abort the change.
817 */
818static struct clk *clk_propagate_rate_change(struct clk *clk, unsigned long event)
819{
820 struct hlist_node *tmp;
821 struct clk *child, *fail_clk = NULL;
822 int ret = NOTIFY_DONE;
823
824 if (clk->rate == clk->new_rate)
825 return 0;
826
827 if (clk->notifier_count) {
828 ret = __clk_notify(clk, event, clk->rate, clk->new_rate);
829 if (ret == NOTIFY_BAD)
830 fail_clk = clk;
831 }
832
833 hlist_for_each_entry(child, tmp, &clk->children, child_node) {
834 clk = clk_propagate_rate_change(child, event);
835 if (clk)
836 fail_clk = clk;
837 }
838
839 return fail_clk;
840}
841
842/*
843 * walk down a subtree and set the new rates notifying the rate
844 * change on the way
845 */
846static void clk_change_rate(struct clk *clk)
847{
848 struct clk *child;
849 unsigned long old_rate;
850 struct hlist_node *tmp;
851
852 old_rate = clk->rate;
853
854 if (clk->ops->set_rate)
1c0035d7 855 clk->ops->set_rate(clk->hw, clk->new_rate, clk->parent->rate);
b2476490
MT
856
857 if (clk->ops->recalc_rate)
858 clk->rate = clk->ops->recalc_rate(clk->hw,
859 clk->parent->rate);
860 else
861 clk->rate = clk->parent->rate;
862
863 if (clk->notifier_count && old_rate != clk->rate)
864 __clk_notify(clk, POST_RATE_CHANGE, old_rate, clk->rate);
865
866 hlist_for_each_entry(child, tmp, &clk->children, child_node)
867 clk_change_rate(child);
868}
869
870/**
871 * clk_set_rate - specify a new rate for clk
872 * @clk: the clk whose rate is being changed
873 * @rate: the new rate for clk
874 *
5654dc94 875 * In the simplest case clk_set_rate will only adjust the rate of clk.
b2476490 876 *
5654dc94
MT
877 * Setting the CLK_SET_RATE_PARENT flag allows the rate change operation to
878 * propagate up to clk's parent; whether or not this happens depends on the
879 * outcome of clk's .round_rate implementation. If *parent_rate is unchanged
880 * after calling .round_rate then upstream parent propagation is ignored. If
881 * *parent_rate comes back with a new rate for clk's parent then we propagate
882 * up to clk's parent and set it's rate. Upward propagation will continue
883 * until either a clk does not support the CLK_SET_RATE_PARENT flag or
884 * .round_rate stops requesting changes to clk's parent_rate.
b2476490 885 *
5654dc94
MT
886 * Rate changes are accomplished via tree traversal that also recalculates the
887 * rates for the clocks and fires off POST_RATE_CHANGE notifiers.
b2476490
MT
888 *
889 * Returns 0 on success, -EERROR otherwise.
890 */
891int clk_set_rate(struct clk *clk, unsigned long rate)
892{
893 struct clk *top, *fail_clk;
894 int ret = 0;
895
896 /* prevent racing with updates to the clock topology */
897 mutex_lock(&prepare_lock);
898
899 /* bail early if nothing to do */
900 if (rate == clk->rate)
901 goto out;
902
0e1c0301
VK
903 if ((clk->flags & CLK_SET_RATE_GATE) && __clk_is_enabled(clk)) {
904 ret = -EBUSY;
905 goto out;
906 }
907
b2476490
MT
908 /* calculate new rates and get the topmost changed clock */
909 top = clk_calc_new_rates(clk, rate);
910 if (!top) {
911 ret = -EINVAL;
912 goto out;
913 }
914
915 /* notify that we are about to change rates */
916 fail_clk = clk_propagate_rate_change(top, PRE_RATE_CHANGE);
917 if (fail_clk) {
918 pr_warn("%s: failed to set %s rate\n", __func__,
919 fail_clk->name);
920 clk_propagate_rate_change(top, ABORT_RATE_CHANGE);
921 ret = -EBUSY;
922 goto out;
923 }
924
925 /* change the rates */
926 clk_change_rate(top);
927
928 mutex_unlock(&prepare_lock);
929
930 return 0;
931out:
932 mutex_unlock(&prepare_lock);
933
934 return ret;
935}
936EXPORT_SYMBOL_GPL(clk_set_rate);
937
938/**
939 * clk_get_parent - return the parent of a clk
940 * @clk: the clk whose parent gets returned
941 *
942 * Simply returns clk->parent. Returns NULL if clk is NULL.
943 */
944struct clk *clk_get_parent(struct clk *clk)
945{
946 struct clk *parent;
947
948 mutex_lock(&prepare_lock);
949 parent = __clk_get_parent(clk);
950 mutex_unlock(&prepare_lock);
951
952 return parent;
953}
954EXPORT_SYMBOL_GPL(clk_get_parent);
955
956/*
957 * .get_parent is mandatory for clocks with multiple possible parents. It is
958 * optional for single-parent clocks. Always call .get_parent if it is
959 * available and WARN if it is missing for multi-parent clocks.
960 *
961 * For single-parent clocks without .get_parent, first check to see if the
962 * .parents array exists, and if so use it to avoid an expensive tree
963 * traversal. If .parents does not exist then walk the tree with __clk_lookup.
964 */
965static struct clk *__clk_init_parent(struct clk *clk)
966{
967 struct clk *ret = NULL;
968 u8 index;
969
970 /* handle the trivial cases */
971
972 if (!clk->num_parents)
973 goto out;
974
975 if (clk->num_parents == 1) {
976 if (IS_ERR_OR_NULL(clk->parent))
977 ret = clk->parent = __clk_lookup(clk->parent_names[0]);
978 ret = clk->parent;
979 goto out;
980 }
981
982 if (!clk->ops->get_parent) {
983 WARN(!clk->ops->get_parent,
984 "%s: multi-parent clocks must implement .get_parent\n",
985 __func__);
986 goto out;
987 };
988
989 /*
990 * Do our best to cache parent clocks in clk->parents. This prevents
991 * unnecessary and expensive calls to __clk_lookup. We don't set
992 * clk->parent here; that is done by the calling function
993 */
994
995 index = clk->ops->get_parent(clk->hw);
996
997 if (!clk->parents)
998 clk->parents =
999 kmalloc((sizeof(struct clk*) * clk->num_parents),
1000 GFP_KERNEL);
1001
1002 if (!clk->parents)
1003 ret = __clk_lookup(clk->parent_names[index]);
1004 else if (!clk->parents[index])
1005 ret = clk->parents[index] =
1006 __clk_lookup(clk->parent_names[index]);
1007 else
1008 ret = clk->parents[index];
1009
1010out:
1011 return ret;
1012}
1013
1014void __clk_reparent(struct clk *clk, struct clk *new_parent)
1015{
1016#ifdef CONFIG_COMMON_CLK_DEBUG
1017 struct dentry *d;
1018 struct dentry *new_parent_d;
1019#endif
1020
1021 if (!clk || !new_parent)
1022 return;
1023
1024 hlist_del(&clk->child_node);
1025
1026 if (new_parent)
1027 hlist_add_head(&clk->child_node, &new_parent->children);
1028 else
1029 hlist_add_head(&clk->child_node, &clk_orphan_list);
1030
1031#ifdef CONFIG_COMMON_CLK_DEBUG
1032 if (!inited)
1033 goto out;
1034
1035 if (new_parent)
1036 new_parent_d = new_parent->dentry;
1037 else
1038 new_parent_d = orphandir;
1039
1040 d = debugfs_rename(clk->dentry->d_parent, clk->dentry,
1041 new_parent_d, clk->name);
1042 if (d)
1043 clk->dentry = d;
1044 else
1045 pr_debug("%s: failed to rename debugfs entry for %s\n",
1046 __func__, clk->name);
1047out:
1048#endif
1049
1050 clk->parent = new_parent;
1051
1052 __clk_recalc_rates(clk, POST_RATE_CHANGE);
1053}
1054
1055static int __clk_set_parent(struct clk *clk, struct clk *parent)
1056{
1057 struct clk *old_parent;
1058 unsigned long flags;
1059 int ret = -EINVAL;
1060 u8 i;
1061
1062 old_parent = clk->parent;
1063
1064 /* find index of new parent clock using cached parent ptrs */
1065 for (i = 0; i < clk->num_parents; i++)
1066 if (clk->parents[i] == parent)
1067 break;
1068
1069 /*
1070 * find index of new parent clock using string name comparison
1071 * also try to cache the parent to avoid future calls to __clk_lookup
1072 */
1073 if (i == clk->num_parents)
1074 for (i = 0; i < clk->num_parents; i++)
1075 if (!strcmp(clk->parent_names[i], parent->name)) {
1076 clk->parents[i] = __clk_lookup(parent->name);
1077 break;
1078 }
1079
1080 if (i == clk->num_parents) {
1081 pr_debug("%s: clock %s is not a possible parent of clock %s\n",
1082 __func__, parent->name, clk->name);
1083 goto out;
1084 }
1085
1086 /* migrate prepare and enable */
1087 if (clk->prepare_count)
1088 __clk_prepare(parent);
1089
1090 /* FIXME replace with clk_is_enabled(clk) someday */
1091 spin_lock_irqsave(&enable_lock, flags);
1092 if (clk->enable_count)
1093 __clk_enable(parent);
1094 spin_unlock_irqrestore(&enable_lock, flags);
1095
1096 /* change clock input source */
1097 ret = clk->ops->set_parent(clk->hw, i);
1098
1099 /* clean up old prepare and enable */
1100 spin_lock_irqsave(&enable_lock, flags);
1101 if (clk->enable_count)
1102 __clk_disable(old_parent);
1103 spin_unlock_irqrestore(&enable_lock, flags);
1104
1105 if (clk->prepare_count)
1106 __clk_unprepare(old_parent);
1107
1108out:
1109 return ret;
1110}
1111
1112/**
1113 * clk_set_parent - switch the parent of a mux clk
1114 * @clk: the mux clk whose input we are switching
1115 * @parent: the new input to clk
1116 *
1117 * Re-parent clk to use parent as it's new input source. If clk has the
1118 * CLK_SET_PARENT_GATE flag set then clk must be gated for this
1119 * operation to succeed. After successfully changing clk's parent
1120 * clk_set_parent will update the clk topology, sysfs topology and
1121 * propagate rate recalculation via __clk_recalc_rates. Returns 0 on
1122 * success, -EERROR otherwise.
1123 */
1124int clk_set_parent(struct clk *clk, struct clk *parent)
1125{
1126 int ret = 0;
1127
1128 if (!clk || !clk->ops)
1129 return -EINVAL;
1130
1131 if (!clk->ops->set_parent)
1132 return -ENOSYS;
1133
1134 /* prevent racing with updates to the clock topology */
1135 mutex_lock(&prepare_lock);
1136
1137 if (clk->parent == parent)
1138 goto out;
1139
1140 /* propagate PRE_RATE_CHANGE notifications */
1141 if (clk->notifier_count)
1142 ret = __clk_speculate_rates(clk, parent->rate);
1143
1144 /* abort if a driver objects */
1145 if (ret == NOTIFY_STOP)
1146 goto out;
1147
1148 /* only re-parent if the clock is not in use */
1149 if ((clk->flags & CLK_SET_PARENT_GATE) && clk->prepare_count)
1150 ret = -EBUSY;
1151 else
1152 ret = __clk_set_parent(clk, parent);
1153
1154 /* propagate ABORT_RATE_CHANGE if .set_parent failed */
1155 if (ret) {
1156 __clk_recalc_rates(clk, ABORT_RATE_CHANGE);
1157 goto out;
1158 }
1159
1160 /* propagate rate recalculation downstream */
1161 __clk_reparent(clk, parent);
1162
1163out:
1164 mutex_unlock(&prepare_lock);
1165
1166 return ret;
1167}
1168EXPORT_SYMBOL_GPL(clk_set_parent);
1169
1170/**
1171 * __clk_init - initialize the data structures in a struct clk
1172 * @dev: device initializing this clk, placeholder for now
1173 * @clk: clk being initialized
1174 *
1175 * Initializes the lists in struct clk, queries the hardware for the
1176 * parent and rate and sets them both.
b2476490 1177 */
d1302a36 1178int __clk_init(struct device *dev, struct clk *clk)
b2476490 1179{
d1302a36 1180 int i, ret = 0;
b2476490
MT
1181 struct clk *orphan;
1182 struct hlist_node *tmp, *tmp2;
1183
1184 if (!clk)
d1302a36 1185 return -EINVAL;
b2476490
MT
1186
1187 mutex_lock(&prepare_lock);
1188
1189 /* check to see if a clock with this name is already registered */
d1302a36
MT
1190 if (__clk_lookup(clk->name)) {
1191 pr_debug("%s: clk %s already initialized\n",
1192 __func__, clk->name);
1193 ret = -EEXIST;
b2476490 1194 goto out;
d1302a36 1195 }
b2476490 1196
d4d7e3dd
MT
1197 /* check that clk_ops are sane. See Documentation/clk.txt */
1198 if (clk->ops->set_rate &&
1199 !(clk->ops->round_rate && clk->ops->recalc_rate)) {
1200 pr_warning("%s: %s must implement .round_rate & .recalc_rate\n",
1201 __func__, clk->name);
d1302a36 1202 ret = -EINVAL;
d4d7e3dd
MT
1203 goto out;
1204 }
1205
1206 if (clk->ops->set_parent && !clk->ops->get_parent) {
1207 pr_warning("%s: %s must implement .get_parent & .set_parent\n",
1208 __func__, clk->name);
d1302a36 1209 ret = -EINVAL;
d4d7e3dd
MT
1210 goto out;
1211 }
1212
b2476490
MT
1213 /* throw a WARN if any entries in parent_names are NULL */
1214 for (i = 0; i < clk->num_parents; i++)
1215 WARN(!clk->parent_names[i],
1216 "%s: invalid NULL in %s's .parent_names\n",
1217 __func__, clk->name);
1218
1219 /*
1220 * Allocate an array of struct clk *'s to avoid unnecessary string
1221 * look-ups of clk's possible parents. This can fail for clocks passed
1222 * in to clk_init during early boot; thus any access to clk->parents[]
1223 * must always check for a NULL pointer and try to populate it if
1224 * necessary.
1225 *
1226 * If clk->parents is not NULL we skip this entire block. This allows
1227 * for clock drivers to statically initialize clk->parents.
1228 */
1229 if (clk->num_parents && !clk->parents) {
1230 clk->parents = kmalloc((sizeof(struct clk*) * clk->num_parents),
1231 GFP_KERNEL);
1232 /*
1233 * __clk_lookup returns NULL for parents that have not been
1234 * clk_init'd; thus any access to clk->parents[] must check
1235 * for a NULL pointer. We can always perform lazy lookups for
1236 * missing parents later on.
1237 */
1238 if (clk->parents)
1239 for (i = 0; i < clk->num_parents; i++)
1240 clk->parents[i] =
1241 __clk_lookup(clk->parent_names[i]);
1242 }
1243
1244 clk->parent = __clk_init_parent(clk);
1245
1246 /*
1247 * Populate clk->parent if parent has already been __clk_init'd. If
1248 * parent has not yet been __clk_init'd then place clk in the orphan
1249 * list. If clk has set the CLK_IS_ROOT flag then place it in the root
1250 * clk list.
1251 *
1252 * Every time a new clk is clk_init'd then we walk the list of orphan
1253 * clocks and re-parent any that are children of the clock currently
1254 * being clk_init'd.
1255 */
1256 if (clk->parent)
1257 hlist_add_head(&clk->child_node,
1258 &clk->parent->children);
1259 else if (clk->flags & CLK_IS_ROOT)
1260 hlist_add_head(&clk->child_node, &clk_root_list);
1261 else
1262 hlist_add_head(&clk->child_node, &clk_orphan_list);
1263
1264 /*
1265 * Set clk's rate. The preferred method is to use .recalc_rate. For
1266 * simple clocks and lazy developers the default fallback is to use the
1267 * parent's rate. If a clock doesn't have a parent (or is orphaned)
1268 * then rate is set to zero.
1269 */
1270 if (clk->ops->recalc_rate)
1271 clk->rate = clk->ops->recalc_rate(clk->hw,
1272 __clk_get_rate(clk->parent));
1273 else if (clk->parent)
1274 clk->rate = clk->parent->rate;
1275 else
1276 clk->rate = 0;
1277
1278 /*
1279 * walk the list of orphan clocks and reparent any that are children of
1280 * this clock
1281 */
1282 hlist_for_each_entry_safe(orphan, tmp, tmp2, &clk_orphan_list, child_node)
1283 for (i = 0; i < orphan->num_parents; i++)
1284 if (!strcmp(clk->name, orphan->parent_names[i])) {
1285 __clk_reparent(orphan, clk);
1286 break;
1287 }
1288
1289 /*
1290 * optional platform-specific magic
1291 *
1292 * The .init callback is not used by any of the basic clock types, but
1293 * exists for weird hardware that must perform initialization magic.
1294 * Please consider other ways of solving initialization problems before
1295 * using this callback, as it's use is discouraged.
1296 */
1297 if (clk->ops->init)
1298 clk->ops->init(clk->hw);
1299
1300 clk_debug_register(clk);
1301
1302out:
1303 mutex_unlock(&prepare_lock);
1304
d1302a36 1305 return ret;
b2476490
MT
1306}
1307
0197b3ea
SK
1308/**
1309 * __clk_register - register a clock and return a cookie.
1310 *
1311 * Same as clk_register, except that the .clk field inside hw shall point to a
1312 * preallocated (generally statically allocated) struct clk. None of the fields
1313 * of the struct clk need to be initialized.
1314 *
1315 * The data pointed to by .init and .clk field shall NOT be marked as init
1316 * data.
1317 *
1318 * __clk_register is only exposed via clk-private.h and is intended for use with
1319 * very large numbers of clocks that need to be statically initialized. It is
1320 * a layering violation to include clk-private.h from any code which implements
1321 * a clock's .ops; as such any statically initialized clock data MUST be in a
1322 * separate C file from the logic that implements it's operations. Returns 0
1323 * on success, otherwise an error code.
1324 */
1325struct clk *__clk_register(struct device *dev, struct clk_hw *hw)
1326{
1327 int ret;
1328 struct clk *clk;
1329
1330 clk = hw->clk;
1331 clk->name = hw->init->name;
1332 clk->ops = hw->init->ops;
1333 clk->hw = hw;
1334 clk->flags = hw->init->flags;
1335 clk->parent_names = hw->init->parent_names;
1336 clk->num_parents = hw->init->num_parents;
1337
1338 ret = __clk_init(dev, clk);
1339 if (ret)
1340 return ERR_PTR(ret);
1341
1342 return clk;
1343}
1344EXPORT_SYMBOL_GPL(__clk_register);
1345
b2476490
MT
1346/**
1347 * clk_register - allocate a new clock, register it and return an opaque cookie
1348 * @dev: device that is registering this clock
b2476490 1349 * @hw: link to hardware-specific clock data
b2476490
MT
1350 *
1351 * clk_register is the primary interface for populating the clock tree with new
1352 * clock nodes. It returns a pointer to the newly allocated struct clk which
1353 * cannot be dereferenced by driver code but may be used in conjuction with the
d1302a36
MT
1354 * rest of the clock API. In the event of an error clk_register will return an
1355 * error code; drivers must test for an error code after calling clk_register.
b2476490 1356 */
0197b3ea 1357struct clk *clk_register(struct device *dev, struct clk_hw *hw)
b2476490 1358{
d1302a36 1359 int i, ret;
b2476490
MT
1360 struct clk *clk;
1361
1362 clk = kzalloc(sizeof(*clk), GFP_KERNEL);
d1302a36
MT
1363 if (!clk) {
1364 pr_err("%s: could not allocate clk\n", __func__);
1365 ret = -ENOMEM;
1366 goto fail_out;
1367 }
b2476490 1368
0197b3ea
SK
1369 clk->name = kstrdup(hw->init->name, GFP_KERNEL);
1370 if (!clk->name) {
1371 pr_err("%s: could not allocate clk->name\n", __func__);
1372 ret = -ENOMEM;
1373 goto fail_name;
1374 }
1375 clk->ops = hw->init->ops;
b2476490 1376 clk->hw = hw;
0197b3ea
SK
1377 clk->flags = hw->init->flags;
1378 clk->num_parents = hw->init->num_parents;
b2476490
MT
1379 hw->clk = clk;
1380
d1302a36 1381 /* allocate local copy in case parent_names is __initdata */
0197b3ea 1382 clk->parent_names = kzalloc((sizeof(char*) * clk->num_parents),
d1302a36
MT
1383 GFP_KERNEL);
1384
1385 if (!clk->parent_names) {
1386 pr_err("%s: could not allocate clk->parent_names\n", __func__);
1387 ret = -ENOMEM;
1388 goto fail_parent_names;
1389 }
1390
1391
1392 /* copy each string name in case parent_names is __initdata */
0197b3ea
SK
1393 for (i = 0; i < clk->num_parents; i++) {
1394 clk->parent_names[i] = kstrdup(hw->init->parent_names[i],
1395 GFP_KERNEL);
d1302a36
MT
1396 if (!clk->parent_names[i]) {
1397 pr_err("%s: could not copy parent_names\n", __func__);
1398 ret = -ENOMEM;
1399 goto fail_parent_names_copy;
1400 }
1401 }
1402
1403 ret = __clk_init(dev, clk);
1404 if (!ret)
1405 return clk;
b2476490 1406
d1302a36
MT
1407fail_parent_names_copy:
1408 while (--i >= 0)
1409 kfree(clk->parent_names[i]);
1410 kfree(clk->parent_names);
1411fail_parent_names:
0197b3ea
SK
1412 kfree(clk->name);
1413fail_name:
d1302a36
MT
1414 kfree(clk);
1415fail_out:
1416 return ERR_PTR(ret);
b2476490
MT
1417}
1418EXPORT_SYMBOL_GPL(clk_register);
1419
1420/*** clk rate change notifiers ***/
1421
1422/**
1423 * clk_notifier_register - add a clk rate change notifier
1424 * @clk: struct clk * to watch
1425 * @nb: struct notifier_block * with callback info
1426 *
1427 * Request notification when clk's rate changes. This uses an SRCU
1428 * notifier because we want it to block and notifier unregistrations are
1429 * uncommon. The callbacks associated with the notifier must not
1430 * re-enter into the clk framework by calling any top-level clk APIs;
1431 * this will cause a nested prepare_lock mutex.
1432 *
1433 * Pre-change notifier callbacks will be passed the current, pre-change
1434 * rate of the clk via struct clk_notifier_data.old_rate. The new,
1435 * post-change rate of the clk is passed via struct
1436 * clk_notifier_data.new_rate.
1437 *
1438 * Post-change notifiers will pass the now-current, post-change rate of
1439 * the clk in both struct clk_notifier_data.old_rate and struct
1440 * clk_notifier_data.new_rate.
1441 *
1442 * Abort-change notifiers are effectively the opposite of pre-change
1443 * notifiers: the original pre-change clk rate is passed in via struct
1444 * clk_notifier_data.new_rate and the failed post-change rate is passed
1445 * in via struct clk_notifier_data.old_rate.
1446 *
1447 * clk_notifier_register() must be called from non-atomic context.
1448 * Returns -EINVAL if called with null arguments, -ENOMEM upon
1449 * allocation failure; otherwise, passes along the return value of
1450 * srcu_notifier_chain_register().
1451 */
1452int clk_notifier_register(struct clk *clk, struct notifier_block *nb)
1453{
1454 struct clk_notifier *cn;
1455 int ret = -ENOMEM;
1456
1457 if (!clk || !nb)
1458 return -EINVAL;
1459
1460 mutex_lock(&prepare_lock);
1461
1462 /* search the list of notifiers for this clk */
1463 list_for_each_entry(cn, &clk_notifier_list, node)
1464 if (cn->clk == clk)
1465 break;
1466
1467 /* if clk wasn't in the notifier list, allocate new clk_notifier */
1468 if (cn->clk != clk) {
1469 cn = kzalloc(sizeof(struct clk_notifier), GFP_KERNEL);
1470 if (!cn)
1471 goto out;
1472
1473 cn->clk = clk;
1474 srcu_init_notifier_head(&cn->notifier_head);
1475
1476 list_add(&cn->node, &clk_notifier_list);
1477 }
1478
1479 ret = srcu_notifier_chain_register(&cn->notifier_head, nb);
1480
1481 clk->notifier_count++;
1482
1483out:
1484 mutex_unlock(&prepare_lock);
1485
1486 return ret;
1487}
1488EXPORT_SYMBOL_GPL(clk_notifier_register);
1489
1490/**
1491 * clk_notifier_unregister - remove a clk rate change notifier
1492 * @clk: struct clk *
1493 * @nb: struct notifier_block * with callback info
1494 *
1495 * Request no further notification for changes to 'clk' and frees memory
1496 * allocated in clk_notifier_register.
1497 *
1498 * Returns -EINVAL if called with null arguments; otherwise, passes
1499 * along the return value of srcu_notifier_chain_unregister().
1500 */
1501int clk_notifier_unregister(struct clk *clk, struct notifier_block *nb)
1502{
1503 struct clk_notifier *cn = NULL;
1504 int ret = -EINVAL;
1505
1506 if (!clk || !nb)
1507 return -EINVAL;
1508
1509 mutex_lock(&prepare_lock);
1510
1511 list_for_each_entry(cn, &clk_notifier_list, node)
1512 if (cn->clk == clk)
1513 break;
1514
1515 if (cn->clk == clk) {
1516 ret = srcu_notifier_chain_unregister(&cn->notifier_head, nb);
1517
1518 clk->notifier_count--;
1519
1520 /* XXX the notifier code should handle this better */
1521 if (!cn->notifier_head.head) {
1522 srcu_cleanup_notifier_head(&cn->notifier_head);
1523 kfree(cn);
1524 }
1525
1526 } else {
1527 ret = -ENOENT;
1528 }
1529
1530 mutex_unlock(&prepare_lock);
1531
1532 return ret;
1533}
1534EXPORT_SYMBOL_GPL(clk_notifier_unregister);
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