1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (C) 2010-2011 Canonical Ltd <jeremy.kerr@canonical.com>
4 * Copyright (C) 2011-2012 Linaro Ltd <mturquette@linaro.org>
5 *
6 * Standard functionality for the common clock API. See Documentation/driver-api/clk.rst
7 */
8
9 #include <linux/clk/clk-conf.h>
10 #include <linux/clkdev.h>
11 #include <linux/clk.h>
12 #include <linux/clk-provider.h>
13 #include <linux/device.h>
14 #include <linux/err.h>
15 #include <linux/hashtable.h>
16 #include <linux/init.h>
17 #include <linux/list.h>
18 #include <linux/module.h>
19 #include <linux/mutex.h>
20 #include <linux/of.h>
21 #include <linux/pm_runtime.h>
22 #include <linux/sched.h>
23 #include <linux/slab.h>
24 #include <linux/spinlock.h>
25 #include <linux/string.h>
26 #include <linux/stringhash.h>
27
28 #include "clk.h"
29
30 static DEFINE_SPINLOCK(enable_lock);
31 static DEFINE_MUTEX(prepare_lock);
32
33 static struct task_struct *prepare_owner;
34 static struct task_struct *enable_owner;
35
36 static int prepare_refcnt;
37 static int enable_refcnt;
38
39 #define CLK_HASH_BITS 9
40 static DEFINE_HASHTABLE(clk_hashtable, CLK_HASH_BITS);
41
42 static HLIST_HEAD(clk_root_list);
43 static HLIST_HEAD(clk_orphan_list);
44 static LIST_HEAD(clk_notifier_list);
45
46 /* List of registered clks that use runtime PM */
47 static HLIST_HEAD(clk_rpm_list);
48 static DEFINE_MUTEX(clk_rpm_list_lock);
49
50 static const struct hlist_head *all_lists[] = {
51 &clk_root_list,
52 &clk_orphan_list,
53 NULL,
54 };
55
56 /*** private data structures ***/
57
58 struct clk_parent_map {
59 const struct clk_hw *hw;
60 struct clk_core *core;
61 const char *fw_name;
62 const char *name;
63 int index;
64 };
65
66 /**
67 * struct clk_core - The internal state of a clk in the clk tree.
68 * @name: Unique name of the clk for identification.
69 * @ops: Pointer to hardware-specific operations for this clk.
70 * @hw: Pointer for traversing from a struct clk to its
71 * corresponding hardware-specific structure.
72 * @owner: Kernel module owning this clk (for reference counting).
73 * @dev: Device associated with this clk (optional)
74 * @rpm_node: Node for runtime power management list management.
75 * @of_node: Device tree node associated with this clk (if applicable)
76 * @parent: Pointer to the current parent in the clock tree.
77 * @parents: Array of possible parents (for muxes/selectable parents).
78 * @num_parents: Number of possible parents.
79 * @new_parent_index: Index of the new parent during parent change operations.
80 * @rate: Current cached clock rate (Hz).
81 * @req_rate: The last rate requested by a call to clk_set_rate(). It's
82 * initialized to clk_core->rate. It's also updated to
83 * clk_core->rate every time the clock is reparented, and
84 * when we're doing the orphan -> !orphan transition.
85 * @new_rate: New rate to be set during a rate change operation.
86 * @new_parent: Pointer to new parent during parent change. This is also
87 * used when a clk's rate is changed.
88 * @new_child: Pointer to new child during reparenting. This is also
89 * used when a clk's rate is changed.
90 * @flags: Clock property and capability flags. See
91 * `clk framework flags`.
92 * @orphan: True if this clk is currently orphaned.
93 * @rpm_enabled: True if runtime power management is enabled for this clk.
94 * @enable_count: Reference count of enables.
95 * @prepare_count: Reference count of prepares.
96 * @protect_count: Protection reference count against disable.
97 * @min_rate: Minimum supported clock rate (Hz).
98 * @max_rate: Maximum supported clock rate (Hz).
99 * @accuracy: Accuracy of the clock rate (parts per billion).
100 * @phase: Current phase (degrees).
101 * @duty: Current duty cycle configuration (as ratio: num/den).
102 * @children: All of the children of this clk.
103 * @child_node: Node for linking as a child in the parent's list.
104 * @hashtable_node: Node for hash table that allows fast clk lookup by name.
105 * @clks: All of the clk consumers registered.
106 * @notifier_count: Number of notifiers registered for this clk.
107 * @dentry: DebugFS entry for this clk.
108 * @debug_node: DebugFS node for this clk.
109 * @ref: Reference count for structure lifetime management.
110 *
111 * Managed by the clk framework. Clk providers and consumers do not interact
112 * with this structure directly. Instead, clk operations flow through the
113 * framework and the framework manipulates this structure to keep track of
114 * parent/child relationships, rate, enable state, etc.
115 *
116 */
117 struct clk_core {
118 const char *name;
119 const struct clk_ops *ops;
120 struct clk_hw *hw;
121 struct module *owner;
122 struct device *dev;
123 struct hlist_node rpm_node;
124 struct device_node *of_node;
125 struct clk_core *parent;
126 struct clk_parent_map *parents;
127 u8 num_parents;
128 u8 new_parent_index;
129 unsigned long rate;
130 unsigned long req_rate;
131 unsigned long new_rate;
132 struct clk_core *new_parent;
133 struct clk_core *new_child;
134 unsigned long flags;
135 bool orphan;
136 bool rpm_enabled;
137 unsigned int enable_count;
138 unsigned int prepare_count;
139 unsigned int protect_count;
140 unsigned long min_rate;
141 unsigned long max_rate;
142 unsigned long accuracy;
143 int phase;
144 struct clk_duty duty;
145 struct hlist_head children;
146 struct hlist_node child_node;
147 struct hlist_node hashtable_node;
148 struct hlist_head clks;
149 unsigned int notifier_count;
150 #ifdef CONFIG_DEBUG_FS
151 struct dentry *dentry;
152 struct hlist_node debug_node;
153 #endif
154 struct kref ref;
155 };
156
157 #define CREATE_TRACE_POINTS
158 #include <trace/events/clk.h>
159
160 struct clk {
161 struct clk_core *core;
162 struct device *dev;
163 const char *dev_id;
164 const char *con_id;
165 unsigned long min_rate;
166 unsigned long max_rate;
167 unsigned int exclusive_count;
168 struct hlist_node clks_node;
169 };
170
171 /*** runtime pm ***/
clk_pm_runtime_get(struct clk_core * core)172 static int clk_pm_runtime_get(struct clk_core *core)
173 {
174 if (!core->rpm_enabled)
175 return 0;
176
177 return pm_runtime_resume_and_get(core->dev);
178 }
179
clk_pm_runtime_put(struct clk_core * core)180 static void clk_pm_runtime_put(struct clk_core *core)
181 {
182 if (!core->rpm_enabled)
183 return;
184
185 pm_runtime_put_sync(core->dev);
186 }
187
188 /**
189 * clk_pm_runtime_get_all() - Runtime "get" all clk provider devices
190 *
191 * Call clk_pm_runtime_get() on all runtime PM enabled clks in the clk tree so
192 * that disabling unused clks avoids a deadlock where a device is runtime PM
193 * resuming/suspending and the runtime PM callback is trying to grab the
194 * prepare_lock for something like clk_prepare_enable() while
195 * clk_disable_unused_subtree() holds the prepare_lock and is trying to runtime
196 * PM resume/suspend the device as well.
197 *
198 * Context: Acquires the 'clk_rpm_list_lock' and returns with the lock held on
199 * success. Otherwise the lock is released on failure.
200 *
201 * Return: 0 on success, negative errno otherwise.
202 */
clk_pm_runtime_get_all(void)203 static int clk_pm_runtime_get_all(void)
204 {
205 int ret;
206 struct clk_core *core, *failed;
207
208 /*
209 * Grab the list lock to prevent any new clks from being registered
210 * or unregistered until clk_pm_runtime_put_all().
211 */
212 mutex_lock(&clk_rpm_list_lock);
213
214 /*
215 * Runtime PM "get" all the devices that are needed for the clks
216 * currently registered. Do this without holding the prepare_lock, to
217 * avoid the deadlock.
218 */
219 hlist_for_each_entry(core, &clk_rpm_list, rpm_node) {
220 ret = clk_pm_runtime_get(core);
221 if (ret) {
222 failed = core;
223 pr_err("clk: Failed to runtime PM get '%s' for clk '%s'\n",
224 dev_name(failed->dev), failed->name);
225 goto err;
226 }
227 }
228
229 return 0;
230
231 err:
232 hlist_for_each_entry(core, &clk_rpm_list, rpm_node) {
233 if (core == failed)
234 break;
235
236 clk_pm_runtime_put(core);
237 }
238 mutex_unlock(&clk_rpm_list_lock);
239
240 return ret;
241 }
242
243 /**
244 * clk_pm_runtime_put_all() - Runtime "put" all clk provider devices
245 *
246 * Put the runtime PM references taken in clk_pm_runtime_get_all() and release
247 * the 'clk_rpm_list_lock'.
248 */
clk_pm_runtime_put_all(void)249 static void clk_pm_runtime_put_all(void)
250 {
251 struct clk_core *core;
252
253 hlist_for_each_entry(core, &clk_rpm_list, rpm_node)
254 clk_pm_runtime_put(core);
255 mutex_unlock(&clk_rpm_list_lock);
256 }
257
clk_pm_runtime_init(struct clk_core * core)258 static void clk_pm_runtime_init(struct clk_core *core)
259 {
260 struct device *dev = core->dev;
261
262 if (dev && pm_runtime_enabled(dev)) {
263 core->rpm_enabled = true;
264
265 mutex_lock(&clk_rpm_list_lock);
266 hlist_add_head(&core->rpm_node, &clk_rpm_list);
267 mutex_unlock(&clk_rpm_list_lock);
268 }
269 }
270
271 /*** locking ***/
clk_prepare_lock(void)272 static void clk_prepare_lock(void)
273 {
274 if (!mutex_trylock(&prepare_lock)) {
275 if (prepare_owner == current) {
276 prepare_refcnt++;
277 return;
278 }
279 mutex_lock(&prepare_lock);
280 }
281 WARN_ON_ONCE(prepare_owner != NULL);
282 WARN_ON_ONCE(prepare_refcnt != 0);
283 prepare_owner = current;
284 prepare_refcnt = 1;
285 }
286
clk_prepare_unlock(void)287 static void clk_prepare_unlock(void)
288 {
289 WARN_ON_ONCE(prepare_owner != current);
290 WARN_ON_ONCE(prepare_refcnt == 0);
291
292 if (--prepare_refcnt)
293 return;
294 prepare_owner = NULL;
295 mutex_unlock(&prepare_lock);
296 }
297
clk_enable_lock(void)298 static unsigned long clk_enable_lock(void)
299 __acquires(enable_lock)
300 {
301 unsigned long flags;
302
303 /*
304 * On UP systems, spin_trylock_irqsave() always returns true, even if
305 * we already hold the lock. So, in that case, we rely only on
306 * reference counting.
307 */
308 if (!IS_ENABLED(CONFIG_SMP) ||
309 !spin_trylock_irqsave(&enable_lock, flags)) {
310 if (enable_owner == current) {
311 enable_refcnt++;
312 __acquire(enable_lock);
313 if (!IS_ENABLED(CONFIG_SMP))
314 local_save_flags(flags);
315 return flags;
316 }
317 spin_lock_irqsave(&enable_lock, flags);
318 }
319 WARN_ON_ONCE(enable_owner != NULL);
320 WARN_ON_ONCE(enable_refcnt != 0);
321 enable_owner = current;
322 enable_refcnt = 1;
323 return flags;
324 }
325
clk_enable_unlock(unsigned long flags)326 static void clk_enable_unlock(unsigned long flags)
327 __releases(enable_lock)
328 {
329 WARN_ON_ONCE(enable_owner != current);
330 WARN_ON_ONCE(enable_refcnt == 0);
331
332 if (--enable_refcnt) {
333 __release(enable_lock);
334 return;
335 }
336 enable_owner = NULL;
337 spin_unlock_irqrestore(&enable_lock, flags);
338 }
339
clk_core_rate_is_protected(struct clk_core * core)340 static bool clk_core_rate_is_protected(struct clk_core *core)
341 {
342 return core->protect_count;
343 }
344
clk_core_is_prepared(struct clk_core * core)345 static bool clk_core_is_prepared(struct clk_core *core)
346 {
347 bool ret = false;
348
349 /*
350 * .is_prepared is optional for clocks that can prepare
351 * fall back to software usage counter if it is missing
352 */
353 if (!core->ops->is_prepared)
354 return core->prepare_count;
355
356 if (!clk_pm_runtime_get(core)) {
357 ret = core->ops->is_prepared(core->hw);
358 clk_pm_runtime_put(core);
359 }
360
361 return ret;
362 }
363
clk_core_is_enabled(struct clk_core * core)364 static bool clk_core_is_enabled(struct clk_core *core)
365 {
366 bool ret = false;
367
368 /*
369 * .is_enabled is only mandatory for clocks that gate
370 * fall back to software usage counter if .is_enabled is missing
371 */
372 if (!core->ops->is_enabled)
373 return core->enable_count;
374
375 /*
376 * Check if clock controller's device is runtime active before
377 * calling .is_enabled callback. If not, assume that clock is
378 * disabled, because we might be called from atomic context, from
379 * which pm_runtime_get() is not allowed.
380 * This function is called mainly from clk_disable_unused_subtree,
381 * which ensures proper runtime pm activation of controller before
382 * taking enable spinlock, but the below check is needed if one tries
383 * to call it from other places.
384 */
385 if (core->rpm_enabled) {
386 pm_runtime_get_noresume(core->dev);
387 if (!pm_runtime_active(core->dev)) {
388 ret = false;
389 goto done;
390 }
391 }
392
393 /*
394 * This could be called with the enable lock held, or from atomic
395 * context. If the parent isn't enabled already, we can't do
396 * anything here. We can also assume this clock isn't enabled.
397 */
398 if ((core->flags & CLK_OPS_PARENT_ENABLE) && core->parent)
399 if (!clk_core_is_enabled(core->parent)) {
400 ret = false;
401 goto done;
402 }
403
404 ret = core->ops->is_enabled(core->hw);
405 done:
406 if (core->rpm_enabled)
407 pm_runtime_put(core->dev);
408
409 return ret;
410 }
411
412 /*** helper functions ***/
413
__clk_get_name(const struct clk * clk)414 const char *__clk_get_name(const struct clk *clk)
415 {
416 return !clk ? NULL : clk->core->name;
417 }
418 EXPORT_SYMBOL_GPL(__clk_get_name);
419
clk_hw_get_name(const struct clk_hw * hw)420 const char *clk_hw_get_name(const struct clk_hw *hw)
421 {
422 return hw->core->name;
423 }
424 EXPORT_SYMBOL_GPL(clk_hw_get_name);
425
clk_hw_get_dev(const struct clk_hw * hw)426 struct device *clk_hw_get_dev(const struct clk_hw *hw)
427 {
428 return hw->core->dev;
429 }
430 EXPORT_SYMBOL_GPL(clk_hw_get_dev);
431
clk_hw_get_of_node(const struct clk_hw * hw)432 struct device_node *clk_hw_get_of_node(const struct clk_hw *hw)
433 {
434 return hw->core->of_node;
435 }
436 EXPORT_SYMBOL_GPL(clk_hw_get_of_node);
437
__clk_get_hw(struct clk * clk)438 struct clk_hw *__clk_get_hw(struct clk *clk)
439 {
440 return !clk ? NULL : clk->core->hw;
441 }
442 EXPORT_SYMBOL_GPL(__clk_get_hw);
443
clk_hw_get_num_parents(const struct clk_hw * hw)444 unsigned int clk_hw_get_num_parents(const struct clk_hw *hw)
445 {
446 return hw->core->num_parents;
447 }
448 EXPORT_SYMBOL_GPL(clk_hw_get_num_parents);
449
clk_hw_get_parent(const struct clk_hw * hw)450 struct clk_hw *clk_hw_get_parent(const struct clk_hw *hw)
451 {
452 return hw->core->parent ? hw->core->parent->hw : NULL;
453 }
454 EXPORT_SYMBOL_GPL(clk_hw_get_parent);
455
clk_core_lookup(const char * name)456 static struct clk_core *clk_core_lookup(const char *name)
457 {
458 struct clk_core *core;
459 u32 hash;
460
461 if (!name)
462 return NULL;
463
464 hash = full_name_hash(NULL, name, strlen(name));
465
466 /* search the hashtable */
467 hash_for_each_possible(clk_hashtable, core, hashtable_node, hash)
468 if (!strcmp(core->name, name))
469 return core;
470
471 return NULL;
472 }
473
474 #ifdef CONFIG_OF
475 static int of_parse_clkspec(const struct device_node *np, int index,
476 const char *name, struct of_phandle_args *out_args);
477 static struct clk_hw *
478 of_clk_get_hw_from_clkspec(struct of_phandle_args *clkspec);
479 #else
of_parse_clkspec(const struct device_node * np,int index,const char * name,struct of_phandle_args * out_args)480 static inline int of_parse_clkspec(const struct device_node *np, int index,
481 const char *name,
482 struct of_phandle_args *out_args)
483 {
484 return -ENOENT;
485 }
486 static inline struct clk_hw *
of_clk_get_hw_from_clkspec(struct of_phandle_args * clkspec)487 of_clk_get_hw_from_clkspec(struct of_phandle_args *clkspec)
488 {
489 return ERR_PTR(-ENOENT);
490 }
491 #endif
492
493 /**
494 * clk_core_get - Find the clk_core parent of a clk
495 * @core: clk to find parent of
496 * @p_index: parent index to search for
497 *
498 * This is the preferred method for clk providers to find the parent of a
499 * clk when that parent is external to the clk controller. The parent_names
500 * array is indexed and treated as a local name matching a string in the device
501 * node's 'clock-names' property or as the 'con_id' matching the device's
502 * dev_name() in a clk_lookup. This allows clk providers to use their own
503 * namespace instead of looking for a globally unique parent string.
504 *
505 * For example the following DT snippet would allow a clock registered by the
506 * clock-controller@c001 that has a clk_init_data::parent_data array
507 * with 'xtal' in the 'name' member to find the clock provided by the
508 * clock-controller@f00abcd without needing to get the globally unique name of
509 * the xtal clk.
510 *
511 * parent: clock-controller@f00abcd {
512 * reg = <0xf00abcd 0xabcd>;
513 * #clock-cells = <0>;
514 * };
515 *
516 * clock-controller@c001 {
517 * reg = <0xc001 0xf00d>;
518 * clocks = <&parent>;
519 * clock-names = "xtal";
520 * #clock-cells = <1>;
521 * };
522 *
523 * Returns: -ENOENT when the provider can't be found or the clk doesn't
524 * exist in the provider or the name can't be found in the DT node or
525 * in a clkdev lookup. NULL when the provider knows about the clk but it
526 * isn't provided on this system.
527 * A valid clk_core pointer when the clk can be found in the provider.
528 */
clk_core_get(struct clk_core * core,u8 p_index)529 static struct clk_core *clk_core_get(struct clk_core *core, u8 p_index)
530 {
531 const char *name = core->parents[p_index].fw_name;
532 int index = core->parents[p_index].index;
533 struct clk_hw *hw = ERR_PTR(-ENOENT);
534 struct device *dev = core->dev;
535 const char *dev_id = dev ? dev_name(dev) : NULL;
536 struct device_node *np = core->of_node;
537 struct of_phandle_args clkspec;
538
539 if (np && (name || index >= 0) &&
540 !of_parse_clkspec(np, index, name, &clkspec)) {
541 hw = of_clk_get_hw_from_clkspec(&clkspec);
542 of_node_put(clkspec.np);
543 } else if (name) {
544 /*
545 * If the DT search above couldn't find the provider fallback to
546 * looking up via clkdev based clk_lookups.
547 */
548 hw = clk_find_hw(dev_id, name);
549 }
550
551 if (IS_ERR(hw))
552 return ERR_CAST(hw);
553
554 if (!hw)
555 return NULL;
556
557 return hw->core;
558 }
559
clk_core_fill_parent_index(struct clk_core * core,u8 index)560 static void clk_core_fill_parent_index(struct clk_core *core, u8 index)
561 {
562 struct clk_parent_map *entry = &core->parents[index];
563 struct clk_core *parent;
564
565 if (entry->hw) {
566 parent = entry->hw->core;
567 } else {
568 parent = clk_core_get(core, index);
569 if (PTR_ERR(parent) == -ENOENT && entry->name)
570 parent = clk_core_lookup(entry->name);
571 }
572
573 /*
574 * We have a direct reference but it isn't registered yet?
575 * Orphan it and let clk_reparent() update the orphan status
576 * when the parent is registered.
577 */
578 if (!parent)
579 parent = ERR_PTR(-EPROBE_DEFER);
580
581 /* Only cache it if it's not an error */
582 if (!IS_ERR(parent))
583 entry->core = parent;
584 }
585
clk_core_get_parent_by_index(struct clk_core * core,u8 index)586 static struct clk_core *clk_core_get_parent_by_index(struct clk_core *core,
587 u8 index)
588 {
589 if (!core || index >= core->num_parents || !core->parents)
590 return NULL;
591
592 if (!core->parents[index].core)
593 clk_core_fill_parent_index(core, index);
594
595 return core->parents[index].core;
596 }
597
598 struct clk_hw *
clk_hw_get_parent_by_index(const struct clk_hw * hw,unsigned int index)599 clk_hw_get_parent_by_index(const struct clk_hw *hw, unsigned int index)
600 {
601 struct clk_core *parent;
602
603 parent = clk_core_get_parent_by_index(hw->core, index);
604
605 return !parent ? NULL : parent->hw;
606 }
607 EXPORT_SYMBOL_GPL(clk_hw_get_parent_by_index);
608
__clk_get_enable_count(struct clk * clk)609 unsigned int __clk_get_enable_count(struct clk *clk)
610 {
611 return !clk ? 0 : clk->core->enable_count;
612 }
613
clk_core_get_rate_nolock(struct clk_core * core)614 static unsigned long clk_core_get_rate_nolock(struct clk_core *core)
615 {
616 if (!core)
617 return 0;
618
619 if (!core->num_parents || core->parent)
620 return core->rate;
621
622 /*
623 * Clk must have a parent because num_parents > 0 but the parent isn't
624 * known yet. Best to return 0 as the rate of this clk until we can
625 * properly recalc the rate based on the parent's rate.
626 */
627 return 0;
628 }
629
clk_hw_get_rate(const struct clk_hw * hw)630 unsigned long clk_hw_get_rate(const struct clk_hw *hw)
631 {
632 return clk_core_get_rate_nolock(hw->core);
633 }
634 EXPORT_SYMBOL_GPL(clk_hw_get_rate);
635
clk_core_get_accuracy_no_lock(struct clk_core * core)636 static unsigned long clk_core_get_accuracy_no_lock(struct clk_core *core)
637 {
638 if (!core)
639 return 0;
640
641 return core->accuracy;
642 }
643
clk_hw_get_flags(const struct clk_hw * hw)644 unsigned long clk_hw_get_flags(const struct clk_hw *hw)
645 {
646 return hw->core->flags;
647 }
648 EXPORT_SYMBOL_GPL(clk_hw_get_flags);
649
clk_hw_is_prepared(const struct clk_hw * hw)650 bool clk_hw_is_prepared(const struct clk_hw *hw)
651 {
652 return clk_core_is_prepared(hw->core);
653 }
654 EXPORT_SYMBOL_GPL(clk_hw_is_prepared);
655
clk_hw_is_enabled(const struct clk_hw * hw)656 bool clk_hw_is_enabled(const struct clk_hw *hw)
657 {
658 return clk_core_is_enabled(hw->core);
659 }
660 EXPORT_SYMBOL_GPL(clk_hw_is_enabled);
661
__clk_is_enabled(struct clk * clk)662 bool __clk_is_enabled(struct clk *clk)
663 {
664 if (!clk)
665 return false;
666
667 return clk_core_is_enabled(clk->core);
668 }
669 EXPORT_SYMBOL_GPL(__clk_is_enabled);
670
mux_is_better_rate(unsigned long rate,unsigned long now,unsigned long best,unsigned long flags)671 static bool mux_is_better_rate(unsigned long rate, unsigned long now,
672 unsigned long best, unsigned long flags)
673 {
674 if (flags & CLK_MUX_ROUND_CLOSEST)
675 return abs(now - rate) < abs(best - rate);
676
677 return now <= rate && now > best;
678 }
679
680 static void clk_core_init_rate_req(struct clk_core * const core,
681 struct clk_rate_request *req,
682 unsigned long rate);
683
684 static int clk_core_round_rate_nolock(struct clk_core *core,
685 struct clk_rate_request *req);
686
clk_core_has_parent(struct clk_core * core,const struct clk_core * parent)687 static bool clk_core_has_parent(struct clk_core *core, const struct clk_core *parent)
688 {
689 struct clk_core *tmp;
690 unsigned int i;
691
692 /* Optimize for the case where the parent is already the parent. */
693 if (core->parent == parent)
694 return true;
695
696 for (i = 0; i < core->num_parents; i++) {
697 tmp = clk_core_get_parent_by_index(core, i);
698 if (!tmp)
699 continue;
700
701 if (tmp == parent)
702 return true;
703 }
704
705 return false;
706 }
707
708 static void
clk_core_forward_rate_req(struct clk_core * core,const struct clk_rate_request * old_req,struct clk_core * parent,struct clk_rate_request * req,unsigned long parent_rate)709 clk_core_forward_rate_req(struct clk_core *core,
710 const struct clk_rate_request *old_req,
711 struct clk_core *parent,
712 struct clk_rate_request *req,
713 unsigned long parent_rate)
714 {
715 if (WARN_ON(!clk_core_has_parent(core, parent)))
716 return;
717
718 clk_core_init_rate_req(parent, req, parent_rate);
719
720 if (req->min_rate < old_req->min_rate)
721 req->min_rate = old_req->min_rate;
722
723 if (req->max_rate > old_req->max_rate)
724 req->max_rate = old_req->max_rate;
725 }
726
727 static int
clk_core_determine_rate_no_reparent(struct clk_hw * hw,struct clk_rate_request * req)728 clk_core_determine_rate_no_reparent(struct clk_hw *hw,
729 struct clk_rate_request *req)
730 {
731 struct clk_core *core = hw->core;
732 struct clk_core *parent = core->parent;
733 unsigned long best;
734 int ret;
735
736 if (core->flags & CLK_SET_RATE_PARENT) {
737 struct clk_rate_request parent_req;
738
739 if (!parent) {
740 req->rate = 0;
741 return 0;
742 }
743
744 clk_core_forward_rate_req(core, req, parent, &parent_req,
745 req->rate);
746
747 trace_clk_rate_request_start(&parent_req);
748
749 ret = clk_core_round_rate_nolock(parent, &parent_req);
750 if (ret)
751 return ret;
752
753 trace_clk_rate_request_done(&parent_req);
754
755 best = parent_req.rate;
756 } else if (parent) {
757 best = clk_core_get_rate_nolock(parent);
758 } else {
759 best = clk_core_get_rate_nolock(core);
760 }
761
762 req->best_parent_rate = best;
763 req->rate = best;
764
765 return 0;
766 }
767
clk_mux_determine_rate_flags(struct clk_hw * hw,struct clk_rate_request * req,unsigned long flags)768 int clk_mux_determine_rate_flags(struct clk_hw *hw,
769 struct clk_rate_request *req,
770 unsigned long flags)
771 {
772 struct clk_core *core = hw->core, *parent, *best_parent = NULL;
773 int i, num_parents, ret;
774 unsigned long best = 0;
775
776 /* if NO_REPARENT flag set, pass through to current parent */
777 if (core->flags & CLK_SET_RATE_NO_REPARENT)
778 return clk_core_determine_rate_no_reparent(hw, req);
779
780 /* find the parent that can provide the fastest rate <= rate */
781 num_parents = core->num_parents;
782 for (i = 0; i < num_parents; i++) {
783 unsigned long parent_rate;
784
785 parent = clk_core_get_parent_by_index(core, i);
786 if (!parent)
787 continue;
788
789 if (core->flags & CLK_SET_RATE_PARENT) {
790 struct clk_rate_request parent_req;
791
792 clk_core_forward_rate_req(core, req, parent, &parent_req, req->rate);
793
794 trace_clk_rate_request_start(&parent_req);
795
796 ret = clk_core_round_rate_nolock(parent, &parent_req);
797 if (ret)
798 continue;
799
800 trace_clk_rate_request_done(&parent_req);
801
802 parent_rate = parent_req.rate;
803 } else {
804 parent_rate = clk_core_get_rate_nolock(parent);
805 }
806
807 if (mux_is_better_rate(req->rate, parent_rate,
808 best, flags)) {
809 best_parent = parent;
810 best = parent_rate;
811 }
812 }
813
814 if (!best_parent)
815 return -EINVAL;
816
817 req->best_parent_hw = best_parent->hw;
818 req->best_parent_rate = best;
819 req->rate = best;
820
821 return 0;
822 }
823 EXPORT_SYMBOL_GPL(clk_mux_determine_rate_flags);
824
__clk_lookup(const char * name)825 struct clk *__clk_lookup(const char *name)
826 {
827 struct clk_core *core = clk_core_lookup(name);
828
829 return !core ? NULL : core->hw->clk;
830 }
831
clk_core_get_boundaries(struct clk_core * core,unsigned long * min_rate,unsigned long * max_rate)832 static void clk_core_get_boundaries(struct clk_core *core,
833 unsigned long *min_rate,
834 unsigned long *max_rate)
835 {
836 struct clk *clk_user;
837
838 lockdep_assert_held(&prepare_lock);
839
840 *min_rate = core->min_rate;
841 *max_rate = core->max_rate;
842
843 hlist_for_each_entry(clk_user, &core->clks, clks_node)
844 *min_rate = max(*min_rate, clk_user->min_rate);
845
846 hlist_for_each_entry(clk_user, &core->clks, clks_node)
847 *max_rate = min(*max_rate, clk_user->max_rate);
848 }
849
850 /*
851 * clk_hw_get_rate_range() - returns the clock rate range for a hw clk
852 * @hw: the hw clk we want to get the range from
853 * @min_rate: pointer to the variable that will hold the minimum
854 * @max_rate: pointer to the variable that will hold the maximum
855 *
856 * Fills the @min_rate and @max_rate variables with the minimum and
857 * maximum that clock can reach.
858 */
clk_hw_get_rate_range(struct clk_hw * hw,unsigned long * min_rate,unsigned long * max_rate)859 void clk_hw_get_rate_range(struct clk_hw *hw, unsigned long *min_rate,
860 unsigned long *max_rate)
861 {
862 clk_core_get_boundaries(hw->core, min_rate, max_rate);
863 }
864 EXPORT_SYMBOL_GPL(clk_hw_get_rate_range);
865
clk_core_check_boundaries(struct clk_core * core,unsigned long min_rate,unsigned long max_rate)866 static bool clk_core_check_boundaries(struct clk_core *core,
867 unsigned long min_rate,
868 unsigned long max_rate)
869 {
870 struct clk *user;
871
872 lockdep_assert_held(&prepare_lock);
873
874 if (min_rate > core->max_rate || max_rate < core->min_rate)
875 return false;
876
877 hlist_for_each_entry(user, &core->clks, clks_node)
878 if (min_rate > user->max_rate || max_rate < user->min_rate)
879 return false;
880
881 return true;
882 }
883
clk_hw_set_rate_range(struct clk_hw * hw,unsigned long min_rate,unsigned long max_rate)884 void clk_hw_set_rate_range(struct clk_hw *hw, unsigned long min_rate,
885 unsigned long max_rate)
886 {
887 hw->core->min_rate = min_rate;
888 hw->core->max_rate = max_rate;
889 }
890 EXPORT_SYMBOL_GPL(clk_hw_set_rate_range);
891
892 /*
893 * __clk_mux_determine_rate - clk_ops::determine_rate implementation for a mux type clk
894 * @hw: mux type clk to determine rate on
895 * @req: rate request, also used to return preferred parent and frequencies
896 *
897 * Helper for finding best parent to provide a given frequency. This can be used
898 * directly as a determine_rate callback (e.g. for a mux), or from a more
899 * complex clock that may combine a mux with other operations.
900 *
901 * Returns: 0 on success, -EERROR value on error
902 */
__clk_mux_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)903 int __clk_mux_determine_rate(struct clk_hw *hw,
904 struct clk_rate_request *req)
905 {
906 return clk_mux_determine_rate_flags(hw, req, 0);
907 }
908 EXPORT_SYMBOL_GPL(__clk_mux_determine_rate);
909
__clk_mux_determine_rate_closest(struct clk_hw * hw,struct clk_rate_request * req)910 int __clk_mux_determine_rate_closest(struct clk_hw *hw,
911 struct clk_rate_request *req)
912 {
913 return clk_mux_determine_rate_flags(hw, req, CLK_MUX_ROUND_CLOSEST);
914 }
915 EXPORT_SYMBOL_GPL(__clk_mux_determine_rate_closest);
916
917 /*
918 * clk_hw_determine_rate_no_reparent - clk_ops::determine_rate implementation for a clk that doesn't reparent
919 * @hw: mux type clk to determine rate on
920 * @req: rate request, also used to return preferred frequency
921 *
922 * Helper for finding best parent rate to provide a given frequency.
923 * This can be used directly as a determine_rate callback (e.g. for a
924 * mux), or from a more complex clock that may combine a mux with other
925 * operations.
926 *
927 * Returns: 0 on success, -EERROR value on error
928 */
clk_hw_determine_rate_no_reparent(struct clk_hw * hw,struct clk_rate_request * req)929 int clk_hw_determine_rate_no_reparent(struct clk_hw *hw,
930 struct clk_rate_request *req)
931 {
932 return clk_core_determine_rate_no_reparent(hw, req);
933 }
934 EXPORT_SYMBOL_GPL(clk_hw_determine_rate_no_reparent);
935
936 /**
937 * clk_determine_rate_noop - clk_ops::determine_rate noop implementation
938 * @hw: clk to determine rate on
939 * @req: rate request
940 *
941 * Noop determine rate for clocks where the rate rounding is handled by the
942 * firmware/hardware, or the clock is capable of any rate. The requested rate is
943 * passed through unchanged, and the actual rate will be learned via
944 * recalc_rate() after the rate is set.
945 *
946 * Returns: 0 always
947 */
clk_determine_rate_noop(struct clk_hw * hw,struct clk_rate_request * req)948 int clk_determine_rate_noop(struct clk_hw *hw, struct clk_rate_request *req)
949 {
950 return 0;
951 }
952 EXPORT_SYMBOL_GPL(clk_determine_rate_noop);
953
954 /*** clk api ***/
955
clk_core_rate_unprotect(struct clk_core * core)956 static void clk_core_rate_unprotect(struct clk_core *core)
957 {
958 lockdep_assert_held(&prepare_lock);
959
960 if (!core)
961 return;
962
963 if (WARN(core->protect_count == 0,
964 "%s already unprotected\n", core->name))
965 return;
966
967 if (--core->protect_count > 0)
968 return;
969
970 clk_core_rate_unprotect(core->parent);
971 }
972
clk_core_rate_nuke_protect(struct clk_core * core)973 static int clk_core_rate_nuke_protect(struct clk_core *core)
974 {
975 int ret;
976
977 lockdep_assert_held(&prepare_lock);
978
979 if (!core)
980 return -EINVAL;
981
982 if (core->protect_count == 0)
983 return 0;
984
985 ret = core->protect_count;
986 core->protect_count = 1;
987 clk_core_rate_unprotect(core);
988
989 return ret;
990 }
991
992 /**
993 * clk_rate_exclusive_put - release exclusivity over clock rate control
994 * @clk: the clk over which the exclusivity is released
995 *
996 * clk_rate_exclusive_put() completes a critical section during which a clock
997 * consumer cannot tolerate any other consumer making any operation on the
998 * clock which could result in a rate change or rate glitch. Exclusive clocks
999 * cannot have their rate changed, either directly or indirectly due to changes
1000 * further up the parent chain of clocks. As a result, clocks up parent chain
1001 * also get under exclusive control of the calling consumer.
1002 *
1003 * If exlusivity is claimed more than once on clock, even by the same consumer,
1004 * the rate effectively gets locked as exclusivity can't be preempted.
1005 *
1006 * Calls to clk_rate_exclusive_put() must be balanced with calls to
1007 * clk_rate_exclusive_get(). Calls to this function may sleep, and do not return
1008 * error status.
1009 */
clk_rate_exclusive_put(struct clk * clk)1010 void clk_rate_exclusive_put(struct clk *clk)
1011 {
1012 if (!clk)
1013 return;
1014
1015 clk_prepare_lock();
1016
1017 /*
1018 * if there is something wrong with this consumer protect count, stop
1019 * here before messing with the provider
1020 */
1021 if (WARN_ON(clk->exclusive_count <= 0))
1022 goto out;
1023
1024 clk_core_rate_unprotect(clk->core);
1025 clk->exclusive_count--;
1026 out:
1027 clk_prepare_unlock();
1028 }
1029 EXPORT_SYMBOL_GPL(clk_rate_exclusive_put);
1030
clk_core_rate_protect(struct clk_core * core)1031 static void clk_core_rate_protect(struct clk_core *core)
1032 {
1033 lockdep_assert_held(&prepare_lock);
1034
1035 if (!core)
1036 return;
1037
1038 if (core->protect_count == 0)
1039 clk_core_rate_protect(core->parent);
1040
1041 core->protect_count++;
1042 }
1043
clk_core_rate_restore_protect(struct clk_core * core,int count)1044 static void clk_core_rate_restore_protect(struct clk_core *core, int count)
1045 {
1046 lockdep_assert_held(&prepare_lock);
1047
1048 if (!core)
1049 return;
1050
1051 if (count == 0)
1052 return;
1053
1054 clk_core_rate_protect(core);
1055 core->protect_count = count;
1056 }
1057
1058 /**
1059 * clk_rate_exclusive_get - get exclusivity over the clk rate control
1060 * @clk: the clk over which the exclusity of rate control is requested
1061 *
1062 * clk_rate_exclusive_get() begins a critical section during which a clock
1063 * consumer cannot tolerate any other consumer making any operation on the
1064 * clock which could result in a rate change or rate glitch. Exclusive clocks
1065 * cannot have their rate changed, either directly or indirectly due to changes
1066 * further up the parent chain of clocks. As a result, clocks up parent chain
1067 * also get under exclusive control of the calling consumer.
1068 *
1069 * If exlusivity is claimed more than once on clock, even by the same consumer,
1070 * the rate effectively gets locked as exclusivity can't be preempted.
1071 *
1072 * Calls to clk_rate_exclusive_get() should be balanced with calls to
1073 * clk_rate_exclusive_put(). Calls to this function may sleep.
1074 * Returns 0 on success, -EERROR otherwise
1075 */
clk_rate_exclusive_get(struct clk * clk)1076 int clk_rate_exclusive_get(struct clk *clk)
1077 {
1078 if (!clk)
1079 return 0;
1080
1081 clk_prepare_lock();
1082 clk_core_rate_protect(clk->core);
1083 clk->exclusive_count++;
1084 clk_prepare_unlock();
1085
1086 return 0;
1087 }
1088 EXPORT_SYMBOL_GPL(clk_rate_exclusive_get);
1089
devm_clk_rate_exclusive_put(void * data)1090 static void devm_clk_rate_exclusive_put(void *data)
1091 {
1092 struct clk *clk = data;
1093
1094 clk_rate_exclusive_put(clk);
1095 }
1096
devm_clk_rate_exclusive_get(struct device * dev,struct clk * clk)1097 int devm_clk_rate_exclusive_get(struct device *dev, struct clk *clk)
1098 {
1099 int ret;
1100
1101 ret = clk_rate_exclusive_get(clk);
1102 if (ret)
1103 return ret;
1104
1105 return devm_add_action_or_reset(dev, devm_clk_rate_exclusive_put, clk);
1106 }
1107 EXPORT_SYMBOL_GPL(devm_clk_rate_exclusive_get);
1108
clk_core_unprepare(struct clk_core * core)1109 static void clk_core_unprepare(struct clk_core *core)
1110 {
1111 lockdep_assert_held(&prepare_lock);
1112
1113 if (!core)
1114 return;
1115
1116 if (WARN(core->prepare_count == 0,
1117 "%s already unprepared\n", core->name))
1118 return;
1119
1120 if (WARN(core->prepare_count == 1 && core->flags & CLK_IS_CRITICAL,
1121 "Unpreparing critical %s\n", core->name))
1122 return;
1123
1124 if (core->flags & CLK_SET_RATE_GATE)
1125 clk_core_rate_unprotect(core);
1126
1127 if (--core->prepare_count > 0)
1128 return;
1129
1130 WARN(core->enable_count > 0, "Unpreparing enabled %s\n", core->name);
1131
1132 trace_clk_unprepare(core);
1133
1134 if (core->ops->unprepare)
1135 core->ops->unprepare(core->hw);
1136
1137 trace_clk_unprepare_complete(core);
1138 clk_core_unprepare(core->parent);
1139 clk_pm_runtime_put(core);
1140 }
1141
clk_core_unprepare_lock(struct clk_core * core)1142 static void clk_core_unprepare_lock(struct clk_core *core)
1143 {
1144 clk_prepare_lock();
1145 clk_core_unprepare(core);
1146 clk_prepare_unlock();
1147 }
1148
1149 /**
1150 * clk_unprepare - undo preparation of a clock source
1151 * @clk: the clk being unprepared
1152 *
1153 * clk_unprepare may sleep, which differentiates it from clk_disable. In a
1154 * simple case, clk_unprepare can be used instead of clk_disable to gate a clk
1155 * if the operation may sleep. One example is a clk which is accessed over
1156 * I2c. In the complex case a clk gate operation may require a fast and a slow
1157 * part. It is this reason that clk_unprepare and clk_disable are not mutually
1158 * exclusive. In fact clk_disable must be called before clk_unprepare.
1159 */
clk_unprepare(struct clk * clk)1160 void clk_unprepare(struct clk *clk)
1161 {
1162 if (IS_ERR_OR_NULL(clk))
1163 return;
1164
1165 clk_core_unprepare_lock(clk->core);
1166 }
1167 EXPORT_SYMBOL_GPL(clk_unprepare);
1168
clk_core_prepare(struct clk_core * core)1169 static int clk_core_prepare(struct clk_core *core)
1170 {
1171 int ret = 0;
1172
1173 lockdep_assert_held(&prepare_lock);
1174
1175 if (!core)
1176 return 0;
1177
1178 if (core->prepare_count == 0) {
1179 ret = clk_pm_runtime_get(core);
1180 if (ret)
1181 return ret;
1182
1183 ret = clk_core_prepare(core->parent);
1184 if (ret)
1185 goto runtime_put;
1186
1187 trace_clk_prepare(core);
1188
1189 if (core->ops->prepare)
1190 ret = core->ops->prepare(core->hw);
1191
1192 trace_clk_prepare_complete(core);
1193
1194 if (ret)
1195 goto unprepare;
1196 }
1197
1198 core->prepare_count++;
1199
1200 /*
1201 * CLK_SET_RATE_GATE is a special case of clock protection
1202 * Instead of a consumer claiming exclusive rate control, it is
1203 * actually the provider which prevents any consumer from making any
1204 * operation which could result in a rate change or rate glitch while
1205 * the clock is prepared.
1206 */
1207 if (core->flags & CLK_SET_RATE_GATE)
1208 clk_core_rate_protect(core);
1209
1210 return 0;
1211 unprepare:
1212 clk_core_unprepare(core->parent);
1213 runtime_put:
1214 clk_pm_runtime_put(core);
1215 return ret;
1216 }
1217
clk_core_prepare_lock(struct clk_core * core)1218 static int clk_core_prepare_lock(struct clk_core *core)
1219 {
1220 int ret;
1221
1222 clk_prepare_lock();
1223 ret = clk_core_prepare(core);
1224 clk_prepare_unlock();
1225
1226 return ret;
1227 }
1228
1229 /**
1230 * clk_prepare - prepare a clock source
1231 * @clk: the clk being prepared
1232 *
1233 * clk_prepare may sleep, which differentiates it from clk_enable. In a simple
1234 * case, clk_prepare can be used instead of clk_enable to ungate a clk if the
1235 * operation may sleep. One example is a clk which is accessed over I2c. In
1236 * the complex case a clk ungate operation may require a fast and a slow part.
1237 * It is this reason that clk_prepare and clk_enable are not mutually
1238 * exclusive. In fact clk_prepare must be called before clk_enable.
1239 * Returns 0 on success, -EERROR otherwise.
1240 */
clk_prepare(struct clk * clk)1241 int clk_prepare(struct clk *clk)
1242 {
1243 if (!clk)
1244 return 0;
1245
1246 return clk_core_prepare_lock(clk->core);
1247 }
1248 EXPORT_SYMBOL_GPL(clk_prepare);
1249
clk_core_disable(struct clk_core * core)1250 static void clk_core_disable(struct clk_core *core)
1251 {
1252 lockdep_assert_held(&enable_lock);
1253
1254 if (!core)
1255 return;
1256
1257 if (WARN(core->enable_count == 0, "%s already disabled\n", core->name))
1258 return;
1259
1260 if (WARN(core->enable_count == 1 && core->flags & CLK_IS_CRITICAL,
1261 "Disabling critical %s\n", core->name))
1262 return;
1263
1264 if (--core->enable_count > 0)
1265 return;
1266
1267 trace_clk_disable(core);
1268
1269 if (core->ops->disable)
1270 core->ops->disable(core->hw);
1271
1272 trace_clk_disable_complete(core);
1273
1274 clk_core_disable(core->parent);
1275 }
1276
clk_core_disable_lock(struct clk_core * core)1277 static void clk_core_disable_lock(struct clk_core *core)
1278 {
1279 unsigned long flags;
1280
1281 flags = clk_enable_lock();
1282 clk_core_disable(core);
1283 clk_enable_unlock(flags);
1284 }
1285
1286 /**
1287 * clk_disable - gate a clock
1288 * @clk: the clk being gated
1289 *
1290 * clk_disable must not sleep, which differentiates it from clk_unprepare. In
1291 * a simple case, clk_disable can be used instead of clk_unprepare to gate a
1292 * clk if the operation is fast and will never sleep. One example is a
1293 * SoC-internal clk which is controlled via simple register writes. In the
1294 * complex case a clk gate operation may require a fast and a slow part. It is
1295 * this reason that clk_unprepare and clk_disable are not mutually exclusive.
1296 * In fact clk_disable must be called before clk_unprepare.
1297 */
clk_disable(struct clk * clk)1298 void clk_disable(struct clk *clk)
1299 {
1300 if (IS_ERR_OR_NULL(clk))
1301 return;
1302
1303 clk_core_disable_lock(clk->core);
1304 }
1305 EXPORT_SYMBOL_GPL(clk_disable);
1306
clk_core_enable(struct clk_core * core)1307 static int clk_core_enable(struct clk_core *core)
1308 {
1309 int ret = 0;
1310
1311 lockdep_assert_held(&enable_lock);
1312
1313 if (!core)
1314 return 0;
1315
1316 if (WARN(core->prepare_count == 0,
1317 "Enabling unprepared %s\n", core->name))
1318 return -ESHUTDOWN;
1319
1320 if (core->enable_count == 0) {
1321 ret = clk_core_enable(core->parent);
1322
1323 if (ret)
1324 return ret;
1325
1326 trace_clk_enable(core);
1327
1328 if (core->ops->enable)
1329 ret = core->ops->enable(core->hw);
1330
1331 trace_clk_enable_complete(core);
1332
1333 if (ret) {
1334 clk_core_disable(core->parent);
1335 return ret;
1336 }
1337 }
1338
1339 core->enable_count++;
1340 return 0;
1341 }
1342
clk_core_enable_lock(struct clk_core * core)1343 static int clk_core_enable_lock(struct clk_core *core)
1344 {
1345 unsigned long flags;
1346 int ret;
1347
1348 flags = clk_enable_lock();
1349 ret = clk_core_enable(core);
1350 clk_enable_unlock(flags);
1351
1352 return ret;
1353 }
1354
1355 /**
1356 * clk_gate_restore_context - restore context for poweroff
1357 * @hw: the clk_hw pointer of clock whose state is to be restored
1358 *
1359 * The clock gate restore context function enables or disables
1360 * the gate clocks based on the enable_count. This is done in cases
1361 * where the clock context is lost and based on the enable_count
1362 * the clock either needs to be enabled/disabled. This
1363 * helps restore the state of gate clocks.
1364 */
clk_gate_restore_context(struct clk_hw * hw)1365 void clk_gate_restore_context(struct clk_hw *hw)
1366 {
1367 struct clk_core *core = hw->core;
1368
1369 if (core->enable_count)
1370 core->ops->enable(hw);
1371 else
1372 core->ops->disable(hw);
1373 }
1374 EXPORT_SYMBOL_GPL(clk_gate_restore_context);
1375
clk_core_save_context(struct clk_core * core)1376 static int clk_core_save_context(struct clk_core *core)
1377 {
1378 struct clk_core *child;
1379 int ret = 0;
1380
1381 hlist_for_each_entry(child, &core->children, child_node) {
1382 ret = clk_core_save_context(child);
1383 if (ret < 0)
1384 return ret;
1385 }
1386
1387 if (core->ops && core->ops->save_context)
1388 ret = core->ops->save_context(core->hw);
1389
1390 return ret;
1391 }
1392
clk_core_restore_context(struct clk_core * core)1393 static void clk_core_restore_context(struct clk_core *core)
1394 {
1395 struct clk_core *child;
1396
1397 if (core->ops && core->ops->restore_context)
1398 core->ops->restore_context(core->hw);
1399
1400 hlist_for_each_entry(child, &core->children, child_node)
1401 clk_core_restore_context(child);
1402 }
1403
1404 /**
1405 * clk_save_context - save clock context for poweroff
1406 *
1407 * Saves the context of the clock register for powerstates in which the
1408 * contents of the registers will be lost. Occurs deep within the suspend
1409 * code. Returns 0 on success.
1410 */
clk_save_context(void)1411 int clk_save_context(void)
1412 {
1413 struct clk_core *clk;
1414 int ret;
1415
1416 hlist_for_each_entry(clk, &clk_root_list, child_node) {
1417 ret = clk_core_save_context(clk);
1418 if (ret < 0)
1419 return ret;
1420 }
1421
1422 hlist_for_each_entry(clk, &clk_orphan_list, child_node) {
1423 ret = clk_core_save_context(clk);
1424 if (ret < 0)
1425 return ret;
1426 }
1427
1428 return 0;
1429 }
1430 EXPORT_SYMBOL_GPL(clk_save_context);
1431
1432 /**
1433 * clk_restore_context - restore clock context after poweroff
1434 *
1435 * Restore the saved clock context upon resume.
1436 *
1437 */
clk_restore_context(void)1438 void clk_restore_context(void)
1439 {
1440 struct clk_core *core;
1441
1442 hlist_for_each_entry(core, &clk_root_list, child_node)
1443 clk_core_restore_context(core);
1444
1445 hlist_for_each_entry(core, &clk_orphan_list, child_node)
1446 clk_core_restore_context(core);
1447 }
1448 EXPORT_SYMBOL_GPL(clk_restore_context);
1449
1450 /**
1451 * clk_enable - ungate a clock
1452 * @clk: the clk being ungated
1453 *
1454 * clk_enable must not sleep, which differentiates it from clk_prepare. In a
1455 * simple case, clk_enable can be used instead of clk_prepare to ungate a clk
1456 * if the operation will never sleep. One example is a SoC-internal clk which
1457 * is controlled via simple register writes. In the complex case a clk ungate
1458 * operation may require a fast and a slow part. It is this reason that
1459 * clk_enable and clk_prepare are not mutually exclusive. In fact clk_prepare
1460 * must be called before clk_enable. Returns 0 on success, -EERROR
1461 * otherwise.
1462 */
clk_enable(struct clk * clk)1463 int clk_enable(struct clk *clk)
1464 {
1465 if (!clk)
1466 return 0;
1467
1468 return clk_core_enable_lock(clk->core);
1469 }
1470 EXPORT_SYMBOL_GPL(clk_enable);
1471
1472 /**
1473 * clk_is_enabled_when_prepared - indicate if preparing a clock also enables it.
1474 * @clk: clock source
1475 *
1476 * Returns true if clk_prepare() implicitly enables the clock, effectively
1477 * making clk_enable()/clk_disable() no-ops, false otherwise.
1478 *
1479 * This is of interest mainly to power management code where actually
1480 * disabling the clock also requires unpreparing it to have any material
1481 * effect.
1482 *
1483 * Regardless of the value returned here, the caller must always invoke
1484 * clk_enable() or clk_prepare_enable() and counterparts for usage counts
1485 * to be right.
1486 */
clk_is_enabled_when_prepared(struct clk * clk)1487 bool clk_is_enabled_when_prepared(struct clk *clk)
1488 {
1489 return clk && !(clk->core->ops->enable && clk->core->ops->disable);
1490 }
1491 EXPORT_SYMBOL_GPL(clk_is_enabled_when_prepared);
1492
clk_core_prepare_enable(struct clk_core * core)1493 static int clk_core_prepare_enable(struct clk_core *core)
1494 {
1495 int ret;
1496
1497 ret = clk_core_prepare_lock(core);
1498 if (ret)
1499 return ret;
1500
1501 ret = clk_core_enable_lock(core);
1502 if (ret)
1503 clk_core_unprepare_lock(core);
1504
1505 return ret;
1506 }
1507
clk_core_disable_unprepare(struct clk_core * core)1508 static void clk_core_disable_unprepare(struct clk_core *core)
1509 {
1510 clk_core_disable_lock(core);
1511 clk_core_unprepare_lock(core);
1512 }
1513
clk_unprepare_unused_subtree(struct clk_core * core)1514 static void __init clk_unprepare_unused_subtree(struct clk_core *core)
1515 {
1516 struct clk_core *child;
1517
1518 lockdep_assert_held(&prepare_lock);
1519
1520 hlist_for_each_entry(child, &core->children, child_node)
1521 clk_unprepare_unused_subtree(child);
1522
1523 if (core->prepare_count)
1524 return;
1525
1526 if (core->flags & CLK_IGNORE_UNUSED)
1527 return;
1528
1529 if (clk_core_is_prepared(core)) {
1530 trace_clk_unprepare(core);
1531 if (core->ops->unprepare_unused)
1532 core->ops->unprepare_unused(core->hw);
1533 else if (core->ops->unprepare)
1534 core->ops->unprepare(core->hw);
1535 trace_clk_unprepare_complete(core);
1536 }
1537 }
1538
clk_disable_unused_subtree(struct clk_core * core)1539 static void __init clk_disable_unused_subtree(struct clk_core *core)
1540 {
1541 struct clk_core *child;
1542 unsigned long flags;
1543
1544 lockdep_assert_held(&prepare_lock);
1545
1546 hlist_for_each_entry(child, &core->children, child_node)
1547 clk_disable_unused_subtree(child);
1548
1549 if (core->flags & CLK_OPS_PARENT_ENABLE)
1550 clk_core_prepare_enable(core->parent);
1551
1552 flags = clk_enable_lock();
1553
1554 if (core->enable_count)
1555 goto unlock_out;
1556
1557 if (core->flags & CLK_IGNORE_UNUSED)
1558 goto unlock_out;
1559
1560 /*
1561 * some gate clocks have special needs during the disable-unused
1562 * sequence. call .disable_unused if available, otherwise fall
1563 * back to .disable
1564 */
1565 if (clk_core_is_enabled(core)) {
1566 trace_clk_disable(core);
1567 if (core->ops->disable_unused)
1568 core->ops->disable_unused(core->hw);
1569 else if (core->ops->disable)
1570 core->ops->disable(core->hw);
1571 trace_clk_disable_complete(core);
1572 }
1573
1574 unlock_out:
1575 clk_enable_unlock(flags);
1576 if (core->flags & CLK_OPS_PARENT_ENABLE)
1577 clk_core_disable_unprepare(core->parent);
1578 }
1579
1580 static bool clk_ignore_unused __initdata;
clk_ignore_unused_setup(char * __unused)1581 static int __init clk_ignore_unused_setup(char *__unused)
1582 {
1583 clk_ignore_unused = true;
1584 return 1;
1585 }
1586 __setup("clk_ignore_unused", clk_ignore_unused_setup);
1587
clk_disable_unused(void)1588 static int __init clk_disable_unused(void)
1589 {
1590 struct clk_core *core;
1591 int ret;
1592
1593 if (clk_ignore_unused) {
1594 pr_warn("clk: Not disabling unused clocks\n");
1595 return 0;
1596 }
1597
1598 pr_info("clk: Disabling unused clocks\n");
1599
1600 ret = clk_pm_runtime_get_all();
1601 if (ret)
1602 return ret;
1603 /*
1604 * Grab the prepare lock to keep the clk topology stable while iterating
1605 * over clks.
1606 */
1607 clk_prepare_lock();
1608
1609 hlist_for_each_entry(core, &clk_root_list, child_node)
1610 clk_disable_unused_subtree(core);
1611
1612 hlist_for_each_entry(core, &clk_orphan_list, child_node)
1613 clk_disable_unused_subtree(core);
1614
1615 hlist_for_each_entry(core, &clk_root_list, child_node)
1616 clk_unprepare_unused_subtree(core);
1617
1618 hlist_for_each_entry(core, &clk_orphan_list, child_node)
1619 clk_unprepare_unused_subtree(core);
1620
1621 clk_prepare_unlock();
1622
1623 clk_pm_runtime_put_all();
1624
1625 return 0;
1626 }
1627 late_initcall_sync(clk_disable_unused);
1628
clk_core_determine_round_nolock(struct clk_core * core,struct clk_rate_request * req)1629 static int clk_core_determine_round_nolock(struct clk_core *core,
1630 struct clk_rate_request *req)
1631 {
1632 lockdep_assert_held(&prepare_lock);
1633
1634 if (!core)
1635 return 0;
1636
1637 /*
1638 * Some clock providers hand-craft their clk_rate_requests and
1639 * might not fill min_rate and max_rate.
1640 *
1641 * If it's the case, clamping the rate is equivalent to setting
1642 * the rate to 0 which is bad. Skip the clamping but complain so
1643 * that it gets fixed, hopefully.
1644 */
1645 if (!req->min_rate && !req->max_rate)
1646 pr_warn("%s: %s: clk_rate_request has initialized min or max rate.\n",
1647 __func__, core->name);
1648 else
1649 req->rate = clamp(req->rate, req->min_rate, req->max_rate);
1650
1651 /*
1652 * At this point, core protection will be disabled
1653 * - if the provider is not protected at all
1654 * - if the calling consumer is the only one which has exclusivity
1655 * over the provider
1656 */
1657 if (clk_core_rate_is_protected(core)) {
1658 req->rate = core->rate;
1659 } else if (core->ops->determine_rate) {
1660 return core->ops->determine_rate(core->hw, req);
1661 } else {
1662 return -EINVAL;
1663 }
1664
1665 return 0;
1666 }
1667
clk_core_init_rate_req(struct clk_core * const core,struct clk_rate_request * req,unsigned long rate)1668 static void clk_core_init_rate_req(struct clk_core * const core,
1669 struct clk_rate_request *req,
1670 unsigned long rate)
1671 {
1672 struct clk_core *parent;
1673
1674 if (WARN_ON(!req))
1675 return;
1676
1677 memset(req, 0, sizeof(*req));
1678 req->max_rate = ULONG_MAX;
1679
1680 if (!core)
1681 return;
1682
1683 req->core = core;
1684 req->rate = rate;
1685 clk_core_get_boundaries(core, &req->min_rate, &req->max_rate);
1686
1687 parent = core->parent;
1688 if (parent) {
1689 req->best_parent_hw = parent->hw;
1690 req->best_parent_rate = parent->rate;
1691 } else {
1692 req->best_parent_hw = NULL;
1693 req->best_parent_rate = 0;
1694 }
1695 }
1696
1697 /**
1698 * clk_hw_init_rate_request - Initializes a clk_rate_request
1699 * @hw: the clk for which we want to submit a rate request
1700 * @req: the clk_rate_request structure we want to initialise
1701 * @rate: the rate which is to be requested
1702 *
1703 * Initializes a clk_rate_request structure to submit to
1704 * __clk_determine_rate() or similar functions.
1705 */
clk_hw_init_rate_request(const struct clk_hw * hw,struct clk_rate_request * req,unsigned long rate)1706 void clk_hw_init_rate_request(const struct clk_hw *hw,
1707 struct clk_rate_request *req,
1708 unsigned long rate)
1709 {
1710 if (WARN_ON(!hw || !req))
1711 return;
1712
1713 clk_core_init_rate_req(hw->core, req, rate);
1714 }
1715 EXPORT_SYMBOL_GPL(clk_hw_init_rate_request);
1716
1717 /**
1718 * clk_hw_forward_rate_request - Forwards a clk_rate_request to a clock's parent
1719 * @hw: the original clock that got the rate request
1720 * @old_req: the original clk_rate_request structure we want to forward
1721 * @parent: the clk we want to forward @old_req to
1722 * @req: the clk_rate_request structure we want to initialise
1723 * @parent_rate: The rate which is to be requested to @parent
1724 *
1725 * Initializes a clk_rate_request structure to submit to a clock parent
1726 * in __clk_determine_rate() or similar functions.
1727 */
clk_hw_forward_rate_request(const struct clk_hw * hw,const struct clk_rate_request * old_req,const struct clk_hw * parent,struct clk_rate_request * req,unsigned long parent_rate)1728 void clk_hw_forward_rate_request(const struct clk_hw *hw,
1729 const struct clk_rate_request *old_req,
1730 const struct clk_hw *parent,
1731 struct clk_rate_request *req,
1732 unsigned long parent_rate)
1733 {
1734 if (WARN_ON(!hw || !old_req || !parent || !req))
1735 return;
1736
1737 clk_core_forward_rate_req(hw->core, old_req,
1738 parent->core, req,
1739 parent_rate);
1740 }
1741 EXPORT_SYMBOL_GPL(clk_hw_forward_rate_request);
1742
clk_core_can_round(struct clk_core * const core)1743 static bool clk_core_can_round(struct clk_core * const core)
1744 {
1745 return core->ops->determine_rate;
1746 }
1747
clk_core_round_rate_nolock(struct clk_core * core,struct clk_rate_request * req)1748 static int clk_core_round_rate_nolock(struct clk_core *core,
1749 struct clk_rate_request *req)
1750 {
1751 int ret;
1752
1753 lockdep_assert_held(&prepare_lock);
1754
1755 if (!core) {
1756 req->rate = 0;
1757 return 0;
1758 }
1759
1760 if (clk_core_can_round(core))
1761 return clk_core_determine_round_nolock(core, req);
1762
1763 if (core->flags & CLK_SET_RATE_PARENT) {
1764 struct clk_rate_request parent_req;
1765
1766 clk_core_forward_rate_req(core, req, core->parent, &parent_req, req->rate);
1767
1768 trace_clk_rate_request_start(&parent_req);
1769
1770 ret = clk_core_round_rate_nolock(core->parent, &parent_req);
1771 if (ret)
1772 return ret;
1773
1774 trace_clk_rate_request_done(&parent_req);
1775
1776 req->best_parent_rate = parent_req.rate;
1777 req->rate = parent_req.rate;
1778
1779 return 0;
1780 }
1781
1782 req->rate = core->rate;
1783 return 0;
1784 }
1785
1786 /**
1787 * __clk_determine_rate - get the closest rate actually supported by a clock
1788 * @hw: determine the rate of this clock
1789 * @req: target rate request
1790 *
1791 * Useful for clk_ops such as .set_rate and .determine_rate.
1792 */
__clk_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)1793 int __clk_determine_rate(struct clk_hw *hw, struct clk_rate_request *req)
1794 {
1795 if (!hw) {
1796 req->rate = 0;
1797 return 0;
1798 }
1799
1800 return clk_core_round_rate_nolock(hw->core, req);
1801 }
1802 EXPORT_SYMBOL_GPL(__clk_determine_rate);
1803
1804 /**
1805 * clk_hw_round_rate() - round the given rate for a hw clk
1806 * @hw: the hw clk for which we are rounding a rate
1807 * @rate: the rate which is to be rounded
1808 *
1809 * Takes in a rate as input and rounds it to a rate that the clk can actually
1810 * use.
1811 *
1812 * Context: prepare_lock must be held.
1813 * For clk providers to call from within clk_ops such as
1814 * .determine_rate.
1815 *
1816 * Return: returns rounded rate of hw clk if clk supports determine_rate
1817 * operation; else returns the parent rate.
1818 */
clk_hw_round_rate(struct clk_hw * hw,unsigned long rate)1819 unsigned long clk_hw_round_rate(struct clk_hw *hw, unsigned long rate)
1820 {
1821 int ret;
1822 struct clk_rate_request req;
1823
1824 clk_core_init_rate_req(hw->core, &req, rate);
1825
1826 trace_clk_rate_request_start(&req);
1827
1828 ret = clk_core_round_rate_nolock(hw->core, &req);
1829 if (ret)
1830 return 0;
1831
1832 trace_clk_rate_request_done(&req);
1833
1834 return req.rate;
1835 }
1836 EXPORT_SYMBOL_GPL(clk_hw_round_rate);
1837
1838 /**
1839 * clk_round_rate - round the given rate for a clk
1840 * @clk: the clk for which we are rounding a rate
1841 * @rate: the rate which is to be rounded
1842 *
1843 * Takes in a rate as input and rounds it to a rate that the clk can actually
1844 * use which is then returned. If clk doesn't support round_rate operation
1845 * then the parent rate is returned.
1846 */
clk_round_rate(struct clk * clk,unsigned long rate)1847 long clk_round_rate(struct clk *clk, unsigned long rate)
1848 {
1849 struct clk_rate_request req;
1850 int ret;
1851
1852 if (!clk)
1853 return 0;
1854
1855 clk_prepare_lock();
1856
1857 if (clk->exclusive_count)
1858 clk_core_rate_unprotect(clk->core);
1859
1860 clk_core_init_rate_req(clk->core, &req, rate);
1861
1862 trace_clk_rate_request_start(&req);
1863
1864 ret = clk_core_round_rate_nolock(clk->core, &req);
1865
1866 trace_clk_rate_request_done(&req);
1867
1868 if (clk->exclusive_count)
1869 clk_core_rate_protect(clk->core);
1870
1871 clk_prepare_unlock();
1872
1873 if (ret)
1874 return ret;
1875
1876 return req.rate;
1877 }
1878 EXPORT_SYMBOL_GPL(clk_round_rate);
1879
1880 /**
1881 * __clk_notify - call clk notifier chain
1882 * @core: clk that is changing rate
1883 * @msg: clk notifier type (see include/linux/clk.h)
1884 * @old_rate: old clk rate
1885 * @new_rate: new clk rate
1886 *
1887 * Triggers a notifier call chain on the clk rate-change notification
1888 * for 'clk'. Passes a pointer to the struct clk and the previous
1889 * and current rates to the notifier callback. Intended to be called by
1890 * internal clock code only. Returns NOTIFY_DONE from the last driver
1891 * called if all went well, or NOTIFY_STOP or NOTIFY_BAD immediately if
1892 * a driver returns that.
1893 */
__clk_notify(struct clk_core * core,unsigned long msg,unsigned long old_rate,unsigned long new_rate)1894 static int __clk_notify(struct clk_core *core, unsigned long msg,
1895 unsigned long old_rate, unsigned long new_rate)
1896 {
1897 struct clk_notifier *cn;
1898 struct clk_notifier_data cnd;
1899 int ret = NOTIFY_DONE;
1900
1901 cnd.old_rate = old_rate;
1902 cnd.new_rate = new_rate;
1903
1904 list_for_each_entry(cn, &clk_notifier_list, node) {
1905 if (cn->clk->core == core) {
1906 cnd.clk = cn->clk;
1907 ret = srcu_notifier_call_chain(&cn->notifier_head, msg,
1908 &cnd);
1909 if (ret & NOTIFY_STOP_MASK)
1910 return ret;
1911 }
1912 }
1913
1914 return ret;
1915 }
1916
1917 /**
1918 * __clk_recalc_accuracies - recalculate all accuracies in the clk subtree
1919 * @core: first clk in the subtree
1920 *
1921 * Walks the subtree of clks starting with @core and recalculates accuracies as
1922 * it goes. Note that if a clk does not implement the .recalc_accuracy
1923 * callback then it is assumed that the clock will take on the accuracy of its
1924 * parent.
1925 */
__clk_recalc_accuracies(struct clk_core * core)1926 static void __clk_recalc_accuracies(struct clk_core *core)
1927 {
1928 unsigned long parent_accuracy = 0;
1929 struct clk_core *child;
1930
1931 lockdep_assert_held(&prepare_lock);
1932
1933 if (core->parent)
1934 parent_accuracy = core->parent->accuracy;
1935
1936 if (core->ops->recalc_accuracy)
1937 core->accuracy = core->ops->recalc_accuracy(core->hw,
1938 parent_accuracy);
1939 else
1940 core->accuracy = parent_accuracy;
1941
1942 hlist_for_each_entry(child, &core->children, child_node)
1943 __clk_recalc_accuracies(child);
1944 }
1945
clk_core_get_accuracy_recalc(struct clk_core * core)1946 static long clk_core_get_accuracy_recalc(struct clk_core *core)
1947 {
1948 if (core && (core->flags & CLK_GET_ACCURACY_NOCACHE))
1949 __clk_recalc_accuracies(core);
1950
1951 return clk_core_get_accuracy_no_lock(core);
1952 }
1953
1954 /**
1955 * clk_get_accuracy - return the accuracy of clk
1956 * @clk: the clk whose accuracy is being returned
1957 *
1958 * Simply returns the cached accuracy of the clk, unless
1959 * CLK_GET_ACCURACY_NOCACHE flag is set, which means a recalc_rate will be
1960 * issued.
1961 * If clk is NULL then returns 0.
1962 */
clk_get_accuracy(struct clk * clk)1963 long clk_get_accuracy(struct clk *clk)
1964 {
1965 long accuracy;
1966
1967 if (!clk)
1968 return 0;
1969
1970 clk_prepare_lock();
1971 accuracy = clk_core_get_accuracy_recalc(clk->core);
1972 clk_prepare_unlock();
1973
1974 return accuracy;
1975 }
1976 EXPORT_SYMBOL_GPL(clk_get_accuracy);
1977
clk_recalc(struct clk_core * core,unsigned long parent_rate)1978 static unsigned long clk_recalc(struct clk_core *core,
1979 unsigned long parent_rate)
1980 {
1981 unsigned long rate = parent_rate;
1982
1983 if (core->ops->recalc_rate && !clk_pm_runtime_get(core)) {
1984 rate = core->ops->recalc_rate(core->hw, parent_rate);
1985 clk_pm_runtime_put(core);
1986 }
1987 return rate;
1988 }
1989
1990 /**
1991 * __clk_recalc_rates - recalculate all rates in the clk subtree
1992 * @core: first clk in the subtree
1993 * @update_req: Whether req_rate should be updated with the new rate
1994 * @msg: notification type (see include/linux/clk.h)
1995 *
1996 * Walks the subtree of clks starting with @core and recalculates rates as it
1997 * goes. Note that if a clk does not implement the .recalc_rate callback then
1998 * it is assumed that the clock will take on the rate of its parent.
1999 *
2000 * __clk_recalc_rates also propagates the POST_RATE_CHANGE notification,
2001 * if necessary.
2002 */
__clk_recalc_rates(struct clk_core * core,bool update_req,unsigned long msg)2003 static void __clk_recalc_rates(struct clk_core *core, bool update_req,
2004 unsigned long msg)
2005 {
2006 unsigned long old_rate;
2007 unsigned long parent_rate = 0;
2008 struct clk_core *child;
2009
2010 lockdep_assert_held(&prepare_lock);
2011
2012 old_rate = core->rate;
2013
2014 if (core->parent)
2015 parent_rate = core->parent->rate;
2016
2017 core->rate = clk_recalc(core, parent_rate);
2018 if (update_req)
2019 core->req_rate = core->rate;
2020
2021 /*
2022 * ignore NOTIFY_STOP and NOTIFY_BAD return values for POST_RATE_CHANGE
2023 * & ABORT_RATE_CHANGE notifiers
2024 */
2025 if (core->notifier_count && msg)
2026 __clk_notify(core, msg, old_rate, core->rate);
2027
2028 hlist_for_each_entry(child, &core->children, child_node)
2029 __clk_recalc_rates(child, update_req, msg);
2030 }
2031
clk_core_get_rate_recalc(struct clk_core * core)2032 static unsigned long clk_core_get_rate_recalc(struct clk_core *core)
2033 {
2034 if (core && (core->flags & CLK_GET_RATE_NOCACHE))
2035 __clk_recalc_rates(core, false, 0);
2036
2037 return clk_core_get_rate_nolock(core);
2038 }
2039
2040 /**
2041 * clk_get_rate - return the rate of clk
2042 * @clk: the clk whose rate is being returned
2043 *
2044 * Simply returns the cached rate of the clk, unless CLK_GET_RATE_NOCACHE flag
2045 * is set, which means a recalc_rate will be issued. Can be called regardless of
2046 * the clock enabledness. If clk is NULL, or if an error occurred, then returns
2047 * 0.
2048 */
clk_get_rate(struct clk * clk)2049 unsigned long clk_get_rate(struct clk *clk)
2050 {
2051 unsigned long rate;
2052
2053 if (!clk)
2054 return 0;
2055
2056 clk_prepare_lock();
2057 rate = clk_core_get_rate_recalc(clk->core);
2058 clk_prepare_unlock();
2059
2060 return rate;
2061 }
2062 EXPORT_SYMBOL_GPL(clk_get_rate);
2063
clk_fetch_parent_index(struct clk_core * core,struct clk_core * parent)2064 static int clk_fetch_parent_index(struct clk_core *core,
2065 struct clk_core *parent)
2066 {
2067 int i;
2068
2069 if (!parent)
2070 return -EINVAL;
2071
2072 for (i = 0; i < core->num_parents; i++) {
2073 /* Found it first try! */
2074 if (core->parents[i].core == parent)
2075 return i;
2076
2077 /* Something else is here, so keep looking */
2078 if (core->parents[i].core)
2079 continue;
2080
2081 /* Maybe core hasn't been cached but the hw is all we know? */
2082 if (core->parents[i].hw) {
2083 if (core->parents[i].hw == parent->hw)
2084 break;
2085
2086 /* Didn't match, but we're expecting a clk_hw */
2087 continue;
2088 }
2089
2090 /* Maybe it hasn't been cached (clk_set_parent() path) */
2091 if (parent == clk_core_get(core, i))
2092 break;
2093
2094 /* Fallback to comparing globally unique names */
2095 if (core->parents[i].name &&
2096 !strcmp(parent->name, core->parents[i].name))
2097 break;
2098 }
2099
2100 if (i == core->num_parents)
2101 return -EINVAL;
2102
2103 core->parents[i].core = parent;
2104 return i;
2105 }
2106
2107 /**
2108 * clk_hw_get_parent_index - return the index of the parent clock
2109 * @hw: clk_hw associated with the clk being consumed
2110 *
2111 * Fetches and returns the index of parent clock. Returns -EINVAL if the given
2112 * clock does not have a current parent.
2113 */
clk_hw_get_parent_index(struct clk_hw * hw)2114 int clk_hw_get_parent_index(struct clk_hw *hw)
2115 {
2116 struct clk_hw *parent = clk_hw_get_parent(hw);
2117
2118 if (WARN_ON(parent == NULL))
2119 return -EINVAL;
2120
2121 return clk_fetch_parent_index(hw->core, parent->core);
2122 }
2123 EXPORT_SYMBOL_GPL(clk_hw_get_parent_index);
2124
2125 /*
2126 * Update the orphan status of @core and all its children.
2127 */
clk_core_update_orphan_status(struct clk_core * core,bool is_orphan)2128 static void clk_core_update_orphan_status(struct clk_core *core, bool is_orphan)
2129 {
2130 struct clk_core *child;
2131
2132 core->orphan = is_orphan;
2133
2134 hlist_for_each_entry(child, &core->children, child_node)
2135 clk_core_update_orphan_status(child, is_orphan);
2136 }
2137
clk_reparent(struct clk_core * core,struct clk_core * new_parent)2138 static void clk_reparent(struct clk_core *core, struct clk_core *new_parent)
2139 {
2140 bool was_orphan = core->orphan;
2141
2142 hlist_del(&core->child_node);
2143
2144 if (new_parent) {
2145 bool becomes_orphan = new_parent->orphan;
2146
2147 /* avoid duplicate POST_RATE_CHANGE notifications */
2148 if (new_parent->new_child == core)
2149 new_parent->new_child = NULL;
2150
2151 hlist_add_head(&core->child_node, &new_parent->children);
2152
2153 if (was_orphan != becomes_orphan)
2154 clk_core_update_orphan_status(core, becomes_orphan);
2155 } else {
2156 hlist_add_head(&core->child_node, &clk_orphan_list);
2157 if (!was_orphan)
2158 clk_core_update_orphan_status(core, true);
2159 }
2160
2161 core->parent = new_parent;
2162 }
2163
__clk_set_parent_before(struct clk_core * core,struct clk_core * parent)2164 static struct clk_core *__clk_set_parent_before(struct clk_core *core,
2165 struct clk_core *parent)
2166 {
2167 unsigned long flags;
2168 struct clk_core *old_parent = core->parent;
2169
2170 /*
2171 * 1. enable parents for CLK_OPS_PARENT_ENABLE clock
2172 *
2173 * 2. Migrate prepare state between parents and prevent race with
2174 * clk_enable().
2175 *
2176 * If the clock is not prepared, then a race with
2177 * clk_enable/disable() is impossible since we already have the
2178 * prepare lock (future calls to clk_enable() need to be preceded by
2179 * a clk_prepare()).
2180 *
2181 * If the clock is prepared, migrate the prepared state to the new
2182 * parent and also protect against a race with clk_enable() by
2183 * forcing the clock and the new parent on. This ensures that all
2184 * future calls to clk_enable() are practically NOPs with respect to
2185 * hardware and software states.
2186 *
2187 * See also: Comment for clk_set_parent() below.
2188 */
2189
2190 /* enable old_parent & parent if CLK_OPS_PARENT_ENABLE is set */
2191 if (core->flags & CLK_OPS_PARENT_ENABLE) {
2192 clk_core_prepare_enable(old_parent);
2193 clk_core_prepare_enable(parent);
2194 }
2195
2196 /* migrate prepare count if > 0 */
2197 if (core->prepare_count) {
2198 clk_core_prepare_enable(parent);
2199 clk_core_enable_lock(core);
2200 }
2201
2202 /* update the clk tree topology */
2203 flags = clk_enable_lock();
2204 clk_reparent(core, parent);
2205 clk_enable_unlock(flags);
2206
2207 return old_parent;
2208 }
2209
__clk_set_parent_after(struct clk_core * core,struct clk_core * parent,struct clk_core * old_parent)2210 static void __clk_set_parent_after(struct clk_core *core,
2211 struct clk_core *parent,
2212 struct clk_core *old_parent)
2213 {
2214 /*
2215 * Finish the migration of prepare state and undo the changes done
2216 * for preventing a race with clk_enable().
2217 */
2218 if (core->prepare_count) {
2219 clk_core_disable_lock(core);
2220 clk_core_disable_unprepare(old_parent);
2221 }
2222
2223 /* re-balance ref counting if CLK_OPS_PARENT_ENABLE is set */
2224 if (core->flags & CLK_OPS_PARENT_ENABLE) {
2225 clk_core_disable_unprepare(parent);
2226 clk_core_disable_unprepare(old_parent);
2227 }
2228 }
2229
__clk_set_parent(struct clk_core * core,struct clk_core * parent,u8 p_index)2230 static int __clk_set_parent(struct clk_core *core, struct clk_core *parent,
2231 u8 p_index)
2232 {
2233 unsigned long flags;
2234 int ret = 0;
2235 struct clk_core *old_parent;
2236
2237 old_parent = __clk_set_parent_before(core, parent);
2238
2239 trace_clk_set_parent(core, parent);
2240
2241 /* change clock input source */
2242 if (parent && core->ops->set_parent)
2243 ret = core->ops->set_parent(core->hw, p_index);
2244
2245 trace_clk_set_parent_complete(core, parent);
2246
2247 if (ret) {
2248 flags = clk_enable_lock();
2249 clk_reparent(core, old_parent);
2250 clk_enable_unlock(flags);
2251
2252 __clk_set_parent_after(core, old_parent, parent);
2253
2254 return ret;
2255 }
2256
2257 __clk_set_parent_after(core, parent, old_parent);
2258
2259 return 0;
2260 }
2261
2262 /**
2263 * __clk_speculate_rates - speculate all rates in the clk subtree
2264 * @core: first clk in the subtree
2265 * @parent_rate: the "future" rate of clk's parent
2266 *
2267 * Walks the subtree of clks starting with @core, speculating rates as it
2268 * goes and firing off PRE_RATE_CHANGE notifications as necessary.
2269 *
2270 * Unlike __clk_recalc_rates, __clk_speculate_rates exists only for sending
2271 * pre-rate change notifications and returns early if no clks in the
2272 * subtree have subscribed to the notifications. Note that if a clk does not
2273 * implement the .recalc_rate callback then it is assumed that the clock will
2274 * take on the rate of its parent.
2275 */
__clk_speculate_rates(struct clk_core * core,unsigned long parent_rate)2276 static int __clk_speculate_rates(struct clk_core *core,
2277 unsigned long parent_rate)
2278 {
2279 struct clk_core *child;
2280 unsigned long new_rate;
2281 int ret = NOTIFY_DONE;
2282
2283 lockdep_assert_held(&prepare_lock);
2284
2285 new_rate = clk_recalc(core, parent_rate);
2286
2287 /* abort rate change if a driver returns NOTIFY_BAD or NOTIFY_STOP */
2288 if (core->notifier_count)
2289 ret = __clk_notify(core, PRE_RATE_CHANGE, core->rate, new_rate);
2290
2291 if (ret & NOTIFY_STOP_MASK) {
2292 pr_debug("%s: clk notifier callback for clock %s aborted with error %d\n",
2293 __func__, core->name, ret);
2294 goto out;
2295 }
2296
2297 hlist_for_each_entry(child, &core->children, child_node) {
2298 ret = __clk_speculate_rates(child, new_rate);
2299 if (ret & NOTIFY_STOP_MASK)
2300 break;
2301 }
2302
2303 out:
2304 return ret;
2305 }
2306
clk_calc_subtree(struct clk_core * core,unsigned long new_rate,struct clk_core * new_parent,u8 p_index)2307 static void clk_calc_subtree(struct clk_core *core, unsigned long new_rate,
2308 struct clk_core *new_parent, u8 p_index)
2309 {
2310 struct clk_core *child;
2311
2312 core->new_rate = new_rate;
2313 core->new_parent = new_parent;
2314 core->new_parent_index = p_index;
2315 /* include clk in new parent's PRE_RATE_CHANGE notifications */
2316 core->new_child = NULL;
2317 if (new_parent && new_parent != core->parent)
2318 new_parent->new_child = core;
2319
2320 hlist_for_each_entry(child, &core->children, child_node) {
2321 child->new_rate = clk_recalc(child, new_rate);
2322 clk_calc_subtree(child, child->new_rate, NULL, 0);
2323 }
2324 }
2325
2326 /*
2327 * calculate the new rates returning the topmost clock that has to be
2328 * changed.
2329 */
clk_calc_new_rates(struct clk_core * core,unsigned long rate)2330 static struct clk_core *clk_calc_new_rates(struct clk_core *core,
2331 unsigned long rate)
2332 {
2333 struct clk_core *top = core;
2334 struct clk_core *old_parent, *parent;
2335 unsigned long best_parent_rate = 0;
2336 unsigned long new_rate;
2337 unsigned long min_rate;
2338 unsigned long max_rate;
2339 int p_index = 0;
2340 int ret;
2341
2342 /* sanity */
2343 if (IS_ERR_OR_NULL(core))
2344 return NULL;
2345
2346 /* save parent rate, if it exists */
2347 parent = old_parent = core->parent;
2348 if (parent)
2349 best_parent_rate = parent->rate;
2350
2351 clk_core_get_boundaries(core, &min_rate, &max_rate);
2352
2353 /* find the closest rate and parent clk/rate */
2354 if (clk_core_can_round(core)) {
2355 struct clk_rate_request req;
2356
2357 clk_core_init_rate_req(core, &req, rate);
2358
2359 trace_clk_rate_request_start(&req);
2360
2361 ret = clk_core_determine_round_nolock(core, &req);
2362 if (ret < 0)
2363 return NULL;
2364
2365 trace_clk_rate_request_done(&req);
2366
2367 best_parent_rate = req.best_parent_rate;
2368 new_rate = req.rate;
2369 parent = req.best_parent_hw ? req.best_parent_hw->core : NULL;
2370
2371 if (new_rate < min_rate || new_rate > max_rate)
2372 return NULL;
2373 } else if (!parent || !(core->flags & CLK_SET_RATE_PARENT)) {
2374 /* pass-through clock without adjustable parent */
2375 core->new_rate = core->rate;
2376 return NULL;
2377 } else {
2378 /* pass-through clock with adjustable parent */
2379 top = clk_calc_new_rates(parent, rate);
2380 new_rate = parent->new_rate;
2381 goto out;
2382 }
2383
2384 /* some clocks must be gated to change parent */
2385 if (parent != old_parent &&
2386 (core->flags & CLK_SET_PARENT_GATE) && core->prepare_count) {
2387 pr_debug("%s: %s not gated but wants to reparent\n",
2388 __func__, core->name);
2389 return NULL;
2390 }
2391
2392 /* try finding the new parent index */
2393 if (parent && core->num_parents > 1) {
2394 p_index = clk_fetch_parent_index(core, parent);
2395 if (p_index < 0) {
2396 pr_debug("%s: clk %s can not be parent of clk %s\n",
2397 __func__, parent->name, core->name);
2398 return NULL;
2399 }
2400 }
2401
2402 if ((core->flags & CLK_SET_RATE_PARENT) && parent &&
2403 best_parent_rate != parent->rate)
2404 top = clk_calc_new_rates(parent, best_parent_rate);
2405
2406 out:
2407 clk_calc_subtree(core, new_rate, parent, p_index);
2408
2409 return top;
2410 }
2411
2412 /*
2413 * Notify about rate changes in a subtree. Always walk down the whole tree
2414 * so that in case of an error we can walk down the whole tree again and
2415 * abort the change.
2416 */
clk_propagate_rate_change(struct clk_core * core,unsigned long event)2417 static struct clk_core *clk_propagate_rate_change(struct clk_core *core,
2418 unsigned long event)
2419 {
2420 struct clk_core *child, *tmp_clk, *fail_clk = NULL;
2421 int ret = NOTIFY_DONE;
2422
2423 if (core->rate == core->new_rate)
2424 return NULL;
2425
2426 if (core->notifier_count) {
2427 ret = __clk_notify(core, event, core->rate, core->new_rate);
2428 if (ret & NOTIFY_STOP_MASK)
2429 fail_clk = core;
2430 }
2431
2432 hlist_for_each_entry(child, &core->children, child_node) {
2433 /* Skip children who will be reparented to another clock */
2434 if (child->new_parent && child->new_parent != core)
2435 continue;
2436 tmp_clk = clk_propagate_rate_change(child, event);
2437 if (tmp_clk)
2438 fail_clk = tmp_clk;
2439 }
2440
2441 /* handle the new child who might not be in core->children yet */
2442 if (core->new_child) {
2443 tmp_clk = clk_propagate_rate_change(core->new_child, event);
2444 if (tmp_clk)
2445 fail_clk = tmp_clk;
2446 }
2447
2448 return fail_clk;
2449 }
2450
2451 /*
2452 * walk down a subtree and set the new rates notifying the rate
2453 * change on the way
2454 */
clk_change_rate(struct clk_core * core)2455 static void clk_change_rate(struct clk_core *core)
2456 {
2457 struct clk_core *child;
2458 struct hlist_node *tmp;
2459 unsigned long old_rate;
2460 unsigned long best_parent_rate = 0;
2461 bool skip_set_rate = false;
2462 struct clk_core *old_parent;
2463 struct clk_core *parent = NULL;
2464
2465 old_rate = core->rate;
2466
2467 if (core->new_parent) {
2468 parent = core->new_parent;
2469 best_parent_rate = core->new_parent->rate;
2470 } else if (core->parent) {
2471 parent = core->parent;
2472 best_parent_rate = core->parent->rate;
2473 }
2474
2475 if (clk_pm_runtime_get(core))
2476 return;
2477
2478 if (core->flags & CLK_SET_RATE_UNGATE) {
2479 clk_core_prepare(core);
2480 clk_core_enable_lock(core);
2481 }
2482
2483 if (core->new_parent && core->new_parent != core->parent) {
2484 old_parent = __clk_set_parent_before(core, core->new_parent);
2485 trace_clk_set_parent(core, core->new_parent);
2486
2487 if (core->ops->set_rate_and_parent) {
2488 skip_set_rate = true;
2489 core->ops->set_rate_and_parent(core->hw, core->new_rate,
2490 best_parent_rate,
2491 core->new_parent_index);
2492 } else if (core->ops->set_parent) {
2493 core->ops->set_parent(core->hw, core->new_parent_index);
2494 }
2495
2496 trace_clk_set_parent_complete(core, core->new_parent);
2497 __clk_set_parent_after(core, core->new_parent, old_parent);
2498 }
2499
2500 if (core->flags & CLK_OPS_PARENT_ENABLE)
2501 clk_core_prepare_enable(parent);
2502
2503 trace_clk_set_rate(core, core->new_rate);
2504
2505 if (!skip_set_rate && core->ops->set_rate)
2506 core->ops->set_rate(core->hw, core->new_rate, best_parent_rate);
2507
2508 trace_clk_set_rate_complete(core, core->new_rate);
2509
2510 core->rate = clk_recalc(core, best_parent_rate);
2511
2512 if (core->flags & CLK_SET_RATE_UNGATE) {
2513 clk_core_disable_lock(core);
2514 clk_core_unprepare(core);
2515 }
2516
2517 if (core->flags & CLK_OPS_PARENT_ENABLE)
2518 clk_core_disable_unprepare(parent);
2519
2520 if (core->notifier_count && old_rate != core->rate)
2521 __clk_notify(core, POST_RATE_CHANGE, old_rate, core->rate);
2522
2523 if (core->flags & CLK_RECALC_NEW_RATES)
2524 (void)clk_calc_new_rates(core, core->new_rate);
2525
2526 /*
2527 * Use safe iteration, as change_rate can actually swap parents
2528 * for certain clock types.
2529 */
2530 hlist_for_each_entry_safe(child, tmp, &core->children, child_node) {
2531 /* Skip children who will be reparented to another clock */
2532 if (child->new_parent && child->new_parent != core)
2533 continue;
2534 clk_change_rate(child);
2535 }
2536
2537 /* handle the new child who might not be in core->children yet */
2538 if (core->new_child)
2539 clk_change_rate(core->new_child);
2540
2541 clk_pm_runtime_put(core);
2542 }
2543
clk_core_req_round_rate_nolock(struct clk_core * core,unsigned long req_rate)2544 static unsigned long clk_core_req_round_rate_nolock(struct clk_core *core,
2545 unsigned long req_rate)
2546 {
2547 int ret, cnt;
2548 struct clk_rate_request req;
2549
2550 lockdep_assert_held(&prepare_lock);
2551
2552 if (!core)
2553 return 0;
2554
2555 /* simulate what the rate would be if it could be freely set */
2556 cnt = clk_core_rate_nuke_protect(core);
2557 if (cnt < 0)
2558 return cnt;
2559
2560 clk_core_init_rate_req(core, &req, req_rate);
2561
2562 trace_clk_rate_request_start(&req);
2563
2564 ret = clk_core_round_rate_nolock(core, &req);
2565
2566 trace_clk_rate_request_done(&req);
2567
2568 /* restore the protection */
2569 clk_core_rate_restore_protect(core, cnt);
2570
2571 return ret ? 0 : req.rate;
2572 }
2573
clk_core_set_rate_nolock(struct clk_core * core,unsigned long req_rate)2574 static int clk_core_set_rate_nolock(struct clk_core *core,
2575 unsigned long req_rate)
2576 {
2577 struct clk_core *top, *fail_clk;
2578 unsigned long rate;
2579 int ret;
2580
2581 if (!core)
2582 return 0;
2583
2584 rate = clk_core_req_round_rate_nolock(core, req_rate);
2585
2586 /* bail early if nothing to do */
2587 if (rate == clk_core_get_rate_nolock(core))
2588 return 0;
2589
2590 /* fail on a direct rate set of a protected provider */
2591 if (clk_core_rate_is_protected(core))
2592 return -EBUSY;
2593
2594 /* calculate new rates and get the topmost changed clock */
2595 top = clk_calc_new_rates(core, req_rate);
2596 if (!top)
2597 return -EINVAL;
2598
2599 ret = clk_pm_runtime_get(core);
2600 if (ret)
2601 return ret;
2602
2603 /* notify that we are about to change rates */
2604 fail_clk = clk_propagate_rate_change(top, PRE_RATE_CHANGE);
2605 if (fail_clk) {
2606 pr_debug("%s: failed to set %s rate\n", __func__,
2607 fail_clk->name);
2608 clk_propagate_rate_change(top, ABORT_RATE_CHANGE);
2609 ret = -EBUSY;
2610 goto err;
2611 }
2612
2613 /* change the rates */
2614 clk_change_rate(top);
2615
2616 core->req_rate = req_rate;
2617 err:
2618 clk_pm_runtime_put(core);
2619
2620 return ret;
2621 }
2622
2623 /**
2624 * clk_set_rate - specify a new rate for clk
2625 * @clk: the clk whose rate is being changed
2626 * @rate: the new rate for clk
2627 *
2628 * In the simplest case clk_set_rate will only adjust the rate of clk.
2629 *
2630 * Setting the CLK_SET_RATE_PARENT flag allows the rate change operation to
2631 * propagate up to clk's parent; whether or not this happens depends on the
2632 * outcome of clk's .determine_rate implementation. If req->best_parent_rate
2633 * is unchanged after calling .determine_rate then upstream parent propagation
2634 * is ignored. If req->best_parent_rate comes back with a new rate for clk's
2635 * parent then we propagate up to clk's parent and set its rate. Upward
2636 * propagation will continue until either a clk does not support the
2637 * CLK_SET_RATE_PARENT flag or .determine_rate stops requesting changes to
2638 * clk's parent_rate.
2639 *
2640 * Rate changes are accomplished via tree traversal that also recalculates the
2641 * rates for the clocks and fires off POST_RATE_CHANGE notifiers.
2642 *
2643 * Returns 0 on success, -EERROR otherwise.
2644 */
clk_set_rate(struct clk * clk,unsigned long rate)2645 int clk_set_rate(struct clk *clk, unsigned long rate)
2646 {
2647 int ret;
2648
2649 if (!clk)
2650 return 0;
2651
2652 /* prevent racing with updates to the clock topology */
2653 clk_prepare_lock();
2654
2655 if (clk->exclusive_count)
2656 clk_core_rate_unprotect(clk->core);
2657
2658 ret = clk_core_set_rate_nolock(clk->core, rate);
2659
2660 if (clk->exclusive_count)
2661 clk_core_rate_protect(clk->core);
2662
2663 clk_prepare_unlock();
2664
2665 return ret;
2666 }
2667 EXPORT_SYMBOL_GPL(clk_set_rate);
2668
2669 /**
2670 * clk_set_rate_exclusive - specify a new rate and get exclusive control
2671 * @clk: the clk whose rate is being changed
2672 * @rate: the new rate for clk
2673 *
2674 * This is a combination of clk_set_rate() and clk_rate_exclusive_get()
2675 * within a critical section
2676 *
2677 * This can be used initially to ensure that at least 1 consumer is
2678 * satisfied when several consumers are competing for exclusivity over the
2679 * same clock provider.
2680 *
2681 * The exclusivity is not applied if setting the rate failed.
2682 *
2683 * Calls to clk_rate_exclusive_get() should be balanced with calls to
2684 * clk_rate_exclusive_put().
2685 *
2686 * Returns 0 on success, -EERROR otherwise.
2687 */
clk_set_rate_exclusive(struct clk * clk,unsigned long rate)2688 int clk_set_rate_exclusive(struct clk *clk, unsigned long rate)
2689 {
2690 int ret;
2691
2692 if (!clk)
2693 return 0;
2694
2695 /* prevent racing with updates to the clock topology */
2696 clk_prepare_lock();
2697
2698 /*
2699 * The temporary protection removal is not here, on purpose
2700 * This function is meant to be used instead of clk_rate_protect,
2701 * so before the consumer code path protect the clock provider
2702 */
2703
2704 ret = clk_core_set_rate_nolock(clk->core, rate);
2705 if (!ret) {
2706 clk_core_rate_protect(clk->core);
2707 clk->exclusive_count++;
2708 }
2709
2710 clk_prepare_unlock();
2711
2712 return ret;
2713 }
2714 EXPORT_SYMBOL_GPL(clk_set_rate_exclusive);
2715
clk_set_rate_range_nolock(struct clk * clk,unsigned long min,unsigned long max)2716 static int clk_set_rate_range_nolock(struct clk *clk,
2717 unsigned long min,
2718 unsigned long max)
2719 {
2720 int ret = 0;
2721 unsigned long old_min, old_max, rate;
2722
2723 lockdep_assert_held(&prepare_lock);
2724
2725 if (!clk)
2726 return 0;
2727
2728 trace_clk_set_rate_range(clk->core, min, max);
2729
2730 if (min > max) {
2731 pr_err("%s: clk %s dev %s con %s: invalid range [%lu, %lu]\n",
2732 __func__, clk->core->name, clk->dev_id, clk->con_id,
2733 min, max);
2734 return -EINVAL;
2735 }
2736
2737 if (clk->exclusive_count)
2738 clk_core_rate_unprotect(clk->core);
2739
2740 /* Save the current values in case we need to rollback the change */
2741 old_min = clk->min_rate;
2742 old_max = clk->max_rate;
2743 clk->min_rate = min;
2744 clk->max_rate = max;
2745
2746 if (!clk_core_check_boundaries(clk->core, min, max)) {
2747 ret = -EINVAL;
2748 goto out;
2749 }
2750
2751 rate = clk->core->req_rate;
2752 if (clk->core->flags & CLK_GET_RATE_NOCACHE)
2753 rate = clk_core_get_rate_recalc(clk->core);
2754
2755 /*
2756 * Since the boundaries have been changed, let's give the
2757 * opportunity to the provider to adjust the clock rate based on
2758 * the new boundaries.
2759 *
2760 * We also need to handle the case where the clock is currently
2761 * outside of the boundaries. Clamping the last requested rate
2762 * to the current minimum and maximum will also handle this.
2763 *
2764 * FIXME:
2765 * There is a catch. It may fail for the usual reason (clock
2766 * broken, clock protected, etc) but also because:
2767 * - the determine_rate() callback does not really check for
2768 * this corner case when determining the rate
2769 */
2770 rate = clamp(rate, min, max);
2771 ret = clk_core_set_rate_nolock(clk->core, rate);
2772 if (ret) {
2773 /* rollback the changes */
2774 clk->min_rate = old_min;
2775 clk->max_rate = old_max;
2776 }
2777
2778 out:
2779 if (clk->exclusive_count)
2780 clk_core_rate_protect(clk->core);
2781
2782 return ret;
2783 }
2784
2785 /**
2786 * clk_set_rate_range - set a rate range for a clock source
2787 * @clk: clock source
2788 * @min: desired minimum clock rate in Hz, inclusive
2789 * @max: desired maximum clock rate in Hz, inclusive
2790 *
2791 * Return: 0 for success or negative errno on failure.
2792 */
clk_set_rate_range(struct clk * clk,unsigned long min,unsigned long max)2793 int clk_set_rate_range(struct clk *clk, unsigned long min, unsigned long max)
2794 {
2795 int ret;
2796
2797 if (!clk)
2798 return 0;
2799
2800 clk_prepare_lock();
2801
2802 ret = clk_set_rate_range_nolock(clk, min, max);
2803
2804 clk_prepare_unlock();
2805
2806 return ret;
2807 }
2808 EXPORT_SYMBOL_GPL(clk_set_rate_range);
2809
2810 /**
2811 * clk_set_min_rate - set a minimum clock rate for a clock source
2812 * @clk: clock source
2813 * @rate: desired minimum clock rate in Hz, inclusive
2814 *
2815 * Returns success (0) or negative errno.
2816 */
clk_set_min_rate(struct clk * clk,unsigned long rate)2817 int clk_set_min_rate(struct clk *clk, unsigned long rate)
2818 {
2819 if (!clk)
2820 return 0;
2821
2822 trace_clk_set_min_rate(clk->core, rate);
2823
2824 return clk_set_rate_range(clk, rate, clk->max_rate);
2825 }
2826 EXPORT_SYMBOL_GPL(clk_set_min_rate);
2827
2828 /**
2829 * clk_set_max_rate - set a maximum clock rate for a clock source
2830 * @clk: clock source
2831 * @rate: desired maximum clock rate in Hz, inclusive
2832 *
2833 * Returns success (0) or negative errno.
2834 */
clk_set_max_rate(struct clk * clk,unsigned long rate)2835 int clk_set_max_rate(struct clk *clk, unsigned long rate)
2836 {
2837 if (!clk)
2838 return 0;
2839
2840 trace_clk_set_max_rate(clk->core, rate);
2841
2842 return clk_set_rate_range(clk, clk->min_rate, rate);
2843 }
2844 EXPORT_SYMBOL_GPL(clk_set_max_rate);
2845
clk_hw_set_spread_spectrum(struct clk_hw * hw,const struct clk_spread_spectrum * ss_conf)2846 int clk_hw_set_spread_spectrum(struct clk_hw *hw, const struct clk_spread_spectrum *ss_conf)
2847 {
2848 struct clk_core *core;
2849 int ret;
2850
2851 if (!hw)
2852 return 0;
2853
2854 core = hw->core;
2855
2856 clk_prepare_lock();
2857
2858 ret = clk_pm_runtime_get(core);
2859 if (ret)
2860 goto fail;
2861
2862 if (core->ops->set_spread_spectrum)
2863 ret = core->ops->set_spread_spectrum(hw, ss_conf);
2864
2865 clk_pm_runtime_put(core);
2866
2867 fail:
2868 clk_prepare_unlock();
2869 return ret;
2870 }
2871 EXPORT_SYMBOL_GPL(clk_hw_set_spread_spectrum);
2872
2873 /**
2874 * clk_get_parent - return the parent of a clk
2875 * @clk: the clk whose parent gets returned
2876 *
2877 * Simply returns clk->parent. Returns NULL if clk is NULL.
2878 */
clk_get_parent(struct clk * clk)2879 struct clk *clk_get_parent(struct clk *clk)
2880 {
2881 struct clk *parent;
2882
2883 if (!clk)
2884 return NULL;
2885
2886 clk_prepare_lock();
2887 /* TODO: Create a per-user clk and change callers to call clk_put */
2888 parent = !clk->core->parent ? NULL : clk->core->parent->hw->clk;
2889 clk_prepare_unlock();
2890
2891 return parent;
2892 }
2893 EXPORT_SYMBOL_GPL(clk_get_parent);
2894
__clk_init_parent(struct clk_core * core)2895 static struct clk_core *__clk_init_parent(struct clk_core *core)
2896 {
2897 u8 index = 0;
2898
2899 if (core->num_parents > 1 && core->ops->get_parent)
2900 index = core->ops->get_parent(core->hw);
2901
2902 return clk_core_get_parent_by_index(core, index);
2903 }
2904
clk_core_reparent(struct clk_core * core,struct clk_core * new_parent)2905 static void clk_core_reparent(struct clk_core *core,
2906 struct clk_core *new_parent)
2907 {
2908 clk_reparent(core, new_parent);
2909 __clk_recalc_accuracies(core);
2910 __clk_recalc_rates(core, true, POST_RATE_CHANGE);
2911 }
2912
clk_hw_reparent(struct clk_hw * hw,struct clk_hw * new_parent)2913 void clk_hw_reparent(struct clk_hw *hw, struct clk_hw *new_parent)
2914 {
2915 if (!hw)
2916 return;
2917
2918 clk_core_reparent(hw->core, !new_parent ? NULL : new_parent->core);
2919 }
2920
2921 /**
2922 * clk_has_parent - check if a clock is a possible parent for another
2923 * @clk: clock source
2924 * @parent: parent clock source
2925 *
2926 * This function can be used in drivers that need to check that a clock can be
2927 * the parent of another without actually changing the parent.
2928 *
2929 * Returns true if @parent is a possible parent for @clk, false otherwise.
2930 */
clk_has_parent(const struct clk * clk,const struct clk * parent)2931 bool clk_has_parent(const struct clk *clk, const struct clk *parent)
2932 {
2933 /* NULL clocks should be nops, so return success if either is NULL. */
2934 if (!clk || !parent)
2935 return true;
2936
2937 return clk_core_has_parent(clk->core, parent->core);
2938 }
2939 EXPORT_SYMBOL_GPL(clk_has_parent);
2940
clk_core_set_parent_nolock(struct clk_core * core,struct clk_core * parent)2941 static int clk_core_set_parent_nolock(struct clk_core *core,
2942 struct clk_core *parent)
2943 {
2944 int ret = 0;
2945 int p_index = 0;
2946 unsigned long p_rate = 0;
2947
2948 lockdep_assert_held(&prepare_lock);
2949
2950 if (!core)
2951 return 0;
2952
2953 if (core->parent == parent)
2954 return 0;
2955
2956 /* verify ops for multi-parent clks */
2957 if (core->num_parents > 1 && !core->ops->set_parent)
2958 return -EPERM;
2959
2960 /* check that we are allowed to re-parent if the clock is in use */
2961 if ((core->flags & CLK_SET_PARENT_GATE) && core->prepare_count)
2962 return -EBUSY;
2963
2964 if (clk_core_rate_is_protected(core))
2965 return -EBUSY;
2966
2967 /* try finding the new parent index */
2968 if (parent) {
2969 p_index = clk_fetch_parent_index(core, parent);
2970 if (p_index < 0) {
2971 pr_debug("%s: clk %s can not be parent of clk %s\n",
2972 __func__, parent->name, core->name);
2973 return p_index;
2974 }
2975 p_rate = parent->rate;
2976 }
2977
2978 ret = clk_pm_runtime_get(core);
2979 if (ret)
2980 return ret;
2981
2982 /* propagate PRE_RATE_CHANGE notifications */
2983 ret = __clk_speculate_rates(core, p_rate);
2984
2985 /* abort if a driver objects */
2986 if (ret & NOTIFY_STOP_MASK)
2987 goto runtime_put;
2988
2989 /* do the re-parent */
2990 ret = __clk_set_parent(core, parent, p_index);
2991
2992 /* propagate rate an accuracy recalculation accordingly */
2993 if (ret) {
2994 __clk_recalc_rates(core, true, ABORT_RATE_CHANGE);
2995 } else {
2996 __clk_recalc_rates(core, true, POST_RATE_CHANGE);
2997 __clk_recalc_accuracies(core);
2998 }
2999
3000 runtime_put:
3001 clk_pm_runtime_put(core);
3002
3003 return ret;
3004 }
3005
clk_hw_set_parent(struct clk_hw * hw,struct clk_hw * parent)3006 int clk_hw_set_parent(struct clk_hw *hw, struct clk_hw *parent)
3007 {
3008 return clk_core_set_parent_nolock(hw->core, parent->core);
3009 }
3010 EXPORT_SYMBOL_GPL(clk_hw_set_parent);
3011
3012 /**
3013 * clk_set_parent - switch the parent of a mux clk
3014 * @clk: the mux clk whose input we are switching
3015 * @parent: the new input to clk
3016 *
3017 * Re-parent clk to use parent as its new input source. If clk is in
3018 * prepared state, the clk will get enabled for the duration of this call. If
3019 * that's not acceptable for a specific clk (Eg: the consumer can't handle
3020 * that, the reparenting is glitchy in hardware, etc), use the
3021 * CLK_SET_PARENT_GATE flag to allow reparenting only when clk is unprepared.
3022 *
3023 * After successfully changing clk's parent clk_set_parent will update the
3024 * clk topology, sysfs topology and propagate rate recalculation via
3025 * __clk_recalc_rates.
3026 *
3027 * Returns 0 on success, -EERROR otherwise.
3028 */
clk_set_parent(struct clk * clk,struct clk * parent)3029 int clk_set_parent(struct clk *clk, struct clk *parent)
3030 {
3031 int ret;
3032
3033 if (!clk)
3034 return 0;
3035
3036 clk_prepare_lock();
3037
3038 if (clk->exclusive_count)
3039 clk_core_rate_unprotect(clk->core);
3040
3041 ret = clk_core_set_parent_nolock(clk->core,
3042 parent ? parent->core : NULL);
3043
3044 if (clk->exclusive_count)
3045 clk_core_rate_protect(clk->core);
3046
3047 clk_prepare_unlock();
3048
3049 return ret;
3050 }
3051 EXPORT_SYMBOL_GPL(clk_set_parent);
3052
clk_core_set_phase_nolock(struct clk_core * core,int degrees)3053 static int clk_core_set_phase_nolock(struct clk_core *core, int degrees)
3054 {
3055 int ret = -EINVAL;
3056
3057 lockdep_assert_held(&prepare_lock);
3058
3059 if (!core)
3060 return 0;
3061
3062 if (clk_core_rate_is_protected(core))
3063 return -EBUSY;
3064
3065 trace_clk_set_phase(core, degrees);
3066
3067 if (core->ops->set_phase) {
3068 ret = core->ops->set_phase(core->hw, degrees);
3069 if (!ret)
3070 core->phase = degrees;
3071 }
3072
3073 trace_clk_set_phase_complete(core, degrees);
3074
3075 return ret;
3076 }
3077
3078 /**
3079 * clk_set_phase - adjust the phase shift of a clock signal
3080 * @clk: clock signal source
3081 * @degrees: number of degrees the signal is shifted
3082 *
3083 * Shifts the phase of a clock signal by the specified
3084 * degrees. Returns 0 on success, -EERROR otherwise.
3085 *
3086 * This function makes no distinction about the input or reference
3087 * signal that we adjust the clock signal phase against. For example
3088 * phase locked-loop clock signal generators we may shift phase with
3089 * respect to feedback clock signal input, but for other cases the
3090 * clock phase may be shifted with respect to some other, unspecified
3091 * signal.
3092 *
3093 * Additionally the concept of phase shift does not propagate through
3094 * the clock tree hierarchy, which sets it apart from clock rates and
3095 * clock accuracy. A parent clock phase attribute does not have an
3096 * impact on the phase attribute of a child clock.
3097 */
clk_set_phase(struct clk * clk,int degrees)3098 int clk_set_phase(struct clk *clk, int degrees)
3099 {
3100 int ret;
3101
3102 if (!clk)
3103 return 0;
3104
3105 /* sanity check degrees */
3106 degrees %= 360;
3107 if (degrees < 0)
3108 degrees += 360;
3109
3110 clk_prepare_lock();
3111
3112 if (clk->exclusive_count)
3113 clk_core_rate_unprotect(clk->core);
3114
3115 ret = clk_core_set_phase_nolock(clk->core, degrees);
3116
3117 if (clk->exclusive_count)
3118 clk_core_rate_protect(clk->core);
3119
3120 clk_prepare_unlock();
3121
3122 return ret;
3123 }
3124 EXPORT_SYMBOL_GPL(clk_set_phase);
3125
clk_core_get_phase(struct clk_core * core)3126 static int clk_core_get_phase(struct clk_core *core)
3127 {
3128 int ret;
3129
3130 lockdep_assert_held(&prepare_lock);
3131 if (!core->ops->get_phase)
3132 return 0;
3133
3134 /* Always try to update cached phase if possible */
3135 ret = core->ops->get_phase(core->hw);
3136 if (ret >= 0)
3137 core->phase = ret;
3138
3139 return ret;
3140 }
3141
3142 /**
3143 * clk_get_phase - return the phase shift of a clock signal
3144 * @clk: clock signal source
3145 *
3146 * Returns the phase shift of a clock node in degrees, otherwise returns
3147 * -EERROR.
3148 */
clk_get_phase(struct clk * clk)3149 int clk_get_phase(struct clk *clk)
3150 {
3151 int ret;
3152
3153 if (!clk)
3154 return 0;
3155
3156 clk_prepare_lock();
3157 ret = clk_core_get_phase(clk->core);
3158 clk_prepare_unlock();
3159
3160 return ret;
3161 }
3162 EXPORT_SYMBOL_GPL(clk_get_phase);
3163
clk_core_reset_duty_cycle_nolock(struct clk_core * core)3164 static void clk_core_reset_duty_cycle_nolock(struct clk_core *core)
3165 {
3166 /* Assume a default value of 50% */
3167 core->duty.num = 1;
3168 core->duty.den = 2;
3169 }
3170
3171 static int clk_core_update_duty_cycle_parent_nolock(struct clk_core *core);
3172
clk_core_update_duty_cycle_nolock(struct clk_core * core)3173 static int clk_core_update_duty_cycle_nolock(struct clk_core *core)
3174 {
3175 struct clk_duty *duty = &core->duty;
3176 int ret = 0;
3177
3178 if (!core->ops->get_duty_cycle)
3179 return clk_core_update_duty_cycle_parent_nolock(core);
3180
3181 ret = core->ops->get_duty_cycle(core->hw, duty);
3182 if (ret)
3183 goto reset;
3184
3185 /* Don't trust the clock provider too much */
3186 if (duty->den == 0 || duty->num > duty->den) {
3187 ret = -EINVAL;
3188 goto reset;
3189 }
3190
3191 return 0;
3192
3193 reset:
3194 clk_core_reset_duty_cycle_nolock(core);
3195 return ret;
3196 }
3197
clk_core_update_duty_cycle_parent_nolock(struct clk_core * core)3198 static int clk_core_update_duty_cycle_parent_nolock(struct clk_core *core)
3199 {
3200 int ret = 0;
3201
3202 if (core->parent &&
3203 core->flags & CLK_DUTY_CYCLE_PARENT) {
3204 ret = clk_core_update_duty_cycle_nolock(core->parent);
3205 memcpy(&core->duty, &core->parent->duty, sizeof(core->duty));
3206 } else {
3207 clk_core_reset_duty_cycle_nolock(core);
3208 }
3209
3210 return ret;
3211 }
3212
3213 static int clk_core_set_duty_cycle_parent_nolock(struct clk_core *core,
3214 struct clk_duty *duty);
3215
clk_core_set_duty_cycle_nolock(struct clk_core * core,struct clk_duty * duty)3216 static int clk_core_set_duty_cycle_nolock(struct clk_core *core,
3217 struct clk_duty *duty)
3218 {
3219 int ret;
3220
3221 lockdep_assert_held(&prepare_lock);
3222
3223 if (clk_core_rate_is_protected(core))
3224 return -EBUSY;
3225
3226 trace_clk_set_duty_cycle(core, duty);
3227
3228 if (!core->ops->set_duty_cycle)
3229 return clk_core_set_duty_cycle_parent_nolock(core, duty);
3230
3231 ret = core->ops->set_duty_cycle(core->hw, duty);
3232 if (!ret)
3233 memcpy(&core->duty, duty, sizeof(*duty));
3234
3235 trace_clk_set_duty_cycle_complete(core, duty);
3236
3237 return ret;
3238 }
3239
clk_core_set_duty_cycle_parent_nolock(struct clk_core * core,struct clk_duty * duty)3240 static int clk_core_set_duty_cycle_parent_nolock(struct clk_core *core,
3241 struct clk_duty *duty)
3242 {
3243 int ret = 0;
3244
3245 if (core->parent &&
3246 core->flags & (CLK_DUTY_CYCLE_PARENT | CLK_SET_RATE_PARENT)) {
3247 ret = clk_core_set_duty_cycle_nolock(core->parent, duty);
3248 memcpy(&core->duty, &core->parent->duty, sizeof(core->duty));
3249 }
3250
3251 return ret;
3252 }
3253
3254 /**
3255 * clk_set_duty_cycle - adjust the duty cycle ratio of a clock signal
3256 * @clk: clock signal source
3257 * @num: numerator of the duty cycle ratio to be applied
3258 * @den: denominator of the duty cycle ratio to be applied
3259 *
3260 * Apply the duty cycle ratio if the ratio is valid and the clock can
3261 * perform this operation
3262 *
3263 * Returns (0) on success, a negative errno otherwise.
3264 */
clk_set_duty_cycle(struct clk * clk,unsigned int num,unsigned int den)3265 int clk_set_duty_cycle(struct clk *clk, unsigned int num, unsigned int den)
3266 {
3267 int ret;
3268 struct clk_duty duty;
3269
3270 if (!clk)
3271 return 0;
3272
3273 /* sanity check the ratio */
3274 if (den == 0 || num > den)
3275 return -EINVAL;
3276
3277 duty.num = num;
3278 duty.den = den;
3279
3280 clk_prepare_lock();
3281
3282 if (clk->exclusive_count)
3283 clk_core_rate_unprotect(clk->core);
3284
3285 ret = clk_core_set_duty_cycle_nolock(clk->core, &duty);
3286
3287 if (clk->exclusive_count)
3288 clk_core_rate_protect(clk->core);
3289
3290 clk_prepare_unlock();
3291
3292 return ret;
3293 }
3294 EXPORT_SYMBOL_GPL(clk_set_duty_cycle);
3295
clk_core_get_scaled_duty_cycle(struct clk_core * core,unsigned int scale)3296 static int clk_core_get_scaled_duty_cycle(struct clk_core *core,
3297 unsigned int scale)
3298 {
3299 struct clk_duty *duty = &core->duty;
3300 int ret;
3301
3302 clk_prepare_lock();
3303
3304 ret = clk_core_update_duty_cycle_nolock(core);
3305 if (!ret)
3306 ret = mult_frac(scale, duty->num, duty->den);
3307
3308 clk_prepare_unlock();
3309
3310 return ret;
3311 }
3312
3313 /**
3314 * clk_get_scaled_duty_cycle - return the duty cycle ratio of a clock signal
3315 * @clk: clock signal source
3316 * @scale: scaling factor to be applied to represent the ratio as an integer
3317 *
3318 * Returns the duty cycle ratio of a clock node multiplied by the provided
3319 * scaling factor, or negative errno on error.
3320 */
clk_get_scaled_duty_cycle(struct clk * clk,unsigned int scale)3321 int clk_get_scaled_duty_cycle(struct clk *clk, unsigned int scale)
3322 {
3323 if (!clk)
3324 return 0;
3325
3326 return clk_core_get_scaled_duty_cycle(clk->core, scale);
3327 }
3328 EXPORT_SYMBOL_GPL(clk_get_scaled_duty_cycle);
3329
3330 /**
3331 * clk_is_match - check if two clk's point to the same hardware clock
3332 * @p: clk compared against q
3333 * @q: clk compared against p
3334 *
3335 * Returns true if the two struct clk pointers both point to the same hardware
3336 * clock node. Put differently, returns true if struct clk *p and struct clk *q
3337 * share the same struct clk_core object.
3338 *
3339 * Returns false otherwise. Note that two NULL clks are treated as matching.
3340 */
clk_is_match(const struct clk * p,const struct clk * q)3341 bool clk_is_match(const struct clk *p, const struct clk *q)
3342 {
3343 /* trivial case: identical struct clk's or both NULL */
3344 if (p == q)
3345 return true;
3346
3347 /* true if clk->core pointers match. Avoid dereferencing garbage */
3348 if (IS_ERR_OR_NULL(p) || IS_ERR_OR_NULL(q))
3349 return false;
3350
3351 return p->core == q->core;
3352 }
3353 EXPORT_SYMBOL_GPL(clk_is_match);
3354
3355 /*** debugfs support ***/
3356
3357 #ifdef CONFIG_DEBUG_FS
3358 #include <linux/debugfs.h>
3359
3360 static struct dentry *rootdir;
3361 static int inited = 0;
3362 static DEFINE_MUTEX(clk_debug_lock);
3363 static HLIST_HEAD(clk_debug_list);
3364
3365 static struct hlist_head *orphan_list[] = {
3366 &clk_orphan_list,
3367 NULL,
3368 };
3369
clk_summary_show_one(struct seq_file * s,struct clk_core * c,int level)3370 static void clk_summary_show_one(struct seq_file *s, struct clk_core *c,
3371 int level)
3372 {
3373 int phase;
3374 struct clk *clk_user;
3375 int multi_node = 0;
3376
3377 seq_printf(s, "%*s%-*s %-7d %-8d %-8d %-11lu %-10lu ",
3378 level * 3 + 1, "",
3379 35 - level * 3, c->name,
3380 c->enable_count, c->prepare_count, c->protect_count,
3381 clk_core_get_rate_recalc(c),
3382 clk_core_get_accuracy_recalc(c));
3383
3384 phase = clk_core_get_phase(c);
3385 if (phase >= 0)
3386 seq_printf(s, "%-5d", phase);
3387 else
3388 seq_puts(s, "-----");
3389
3390 seq_printf(s, " %-6d", clk_core_get_scaled_duty_cycle(c, 100000));
3391
3392 if (c->ops->is_enabled)
3393 seq_printf(s, " %5c ", clk_core_is_enabled(c) ? 'Y' : 'N');
3394 else if (!c->ops->enable)
3395 seq_printf(s, " %5c ", 'Y');
3396 else
3397 seq_printf(s, " %5c ", '?');
3398
3399 hlist_for_each_entry(clk_user, &c->clks, clks_node) {
3400 seq_printf(s, "%*s%-*s %-25s\n",
3401 level * 3 + 2 + 105 * multi_node, "",
3402 30,
3403 clk_user->dev_id ? clk_user->dev_id : "deviceless",
3404 clk_user->con_id ? clk_user->con_id : "no_connection_id");
3405
3406 multi_node = 1;
3407 }
3408
3409 }
3410
clk_summary_show_subtree(struct seq_file * s,struct clk_core * c,int level)3411 static void clk_summary_show_subtree(struct seq_file *s, struct clk_core *c,
3412 int level)
3413 {
3414 struct clk_core *child;
3415
3416 clk_summary_show_one(s, c, level);
3417
3418 hlist_for_each_entry(child, &c->children, child_node)
3419 clk_summary_show_subtree(s, child, level + 1);
3420 }
3421
clk_summary_show(struct seq_file * s,void * data)3422 static int clk_summary_show(struct seq_file *s, void *data)
3423 {
3424 struct clk_core *c;
3425 struct hlist_head **lists = s->private;
3426 int ret;
3427
3428 seq_puts(s, " enable prepare protect duty hardware connection\n");
3429 seq_puts(s, " clock count count count rate accuracy phase cycle enable consumer id\n");
3430 seq_puts(s, "---------------------------------------------------------------------------------------------------------------------------------------------\n");
3431
3432 ret = clk_pm_runtime_get_all();
3433 if (ret)
3434 return ret;
3435
3436 clk_prepare_lock();
3437
3438 for (; *lists; lists++)
3439 hlist_for_each_entry(c, *lists, child_node)
3440 clk_summary_show_subtree(s, c, 0);
3441
3442 clk_prepare_unlock();
3443 clk_pm_runtime_put_all();
3444
3445 return 0;
3446 }
3447 DEFINE_SHOW_ATTRIBUTE(clk_summary);
3448
clk_dump_one(struct seq_file * s,struct clk_core * c,int level)3449 static void clk_dump_one(struct seq_file *s, struct clk_core *c, int level)
3450 {
3451 int phase;
3452 unsigned long min_rate, max_rate;
3453
3454 clk_core_get_boundaries(c, &min_rate, &max_rate);
3455
3456 /* This should be JSON format, i.e. elements separated with a comma */
3457 seq_printf(s, "\"%s\": { ", c->name);
3458 seq_printf(s, "\"enable_count\": %d,", c->enable_count);
3459 seq_printf(s, "\"prepare_count\": %d,", c->prepare_count);
3460 seq_printf(s, "\"protect_count\": %d,", c->protect_count);
3461 seq_printf(s, "\"rate\": %lu,", clk_core_get_rate_recalc(c));
3462 seq_printf(s, "\"min_rate\": %lu,", min_rate);
3463 seq_printf(s, "\"max_rate\": %lu,", max_rate);
3464 seq_printf(s, "\"accuracy\": %lu,", clk_core_get_accuracy_recalc(c));
3465 phase = clk_core_get_phase(c);
3466 if (phase >= 0)
3467 seq_printf(s, "\"phase\": %d,", phase);
3468 seq_printf(s, "\"duty_cycle\": %u",
3469 clk_core_get_scaled_duty_cycle(c, 100000));
3470 }
3471
clk_dump_subtree(struct seq_file * s,struct clk_core * c,int level)3472 static void clk_dump_subtree(struct seq_file *s, struct clk_core *c, int level)
3473 {
3474 struct clk_core *child;
3475
3476 clk_dump_one(s, c, level);
3477
3478 hlist_for_each_entry(child, &c->children, child_node) {
3479 seq_putc(s, ',');
3480 clk_dump_subtree(s, child, level + 1);
3481 }
3482
3483 seq_putc(s, '}');
3484 }
3485
clk_dump_show(struct seq_file * s,void * data)3486 static int clk_dump_show(struct seq_file *s, void *data)
3487 {
3488 struct clk_core *c;
3489 bool first_node = true;
3490 struct hlist_head **lists = s->private;
3491 int ret;
3492
3493 ret = clk_pm_runtime_get_all();
3494 if (ret)
3495 return ret;
3496
3497 seq_putc(s, '{');
3498
3499 clk_prepare_lock();
3500
3501 for (; *lists; lists++) {
3502 hlist_for_each_entry(c, *lists, child_node) {
3503 if (!first_node)
3504 seq_putc(s, ',');
3505 first_node = false;
3506 clk_dump_subtree(s, c, 0);
3507 }
3508 }
3509
3510 clk_prepare_unlock();
3511 clk_pm_runtime_put_all();
3512
3513 seq_puts(s, "}\n");
3514 return 0;
3515 }
3516 DEFINE_SHOW_ATTRIBUTE(clk_dump);
3517
3518 #undef CLOCK_ALLOW_WRITE_DEBUGFS
3519 #ifdef CLOCK_ALLOW_WRITE_DEBUGFS
3520 /*
3521 * This can be dangerous, therefore don't provide any real compile time
3522 * configuration option for this feature.
3523 * People who want to use this will need to modify the source code directly.
3524 */
clk_rate_set(void * data,u64 val)3525 static int clk_rate_set(void *data, u64 val)
3526 {
3527 struct clk_core *core = data;
3528 int ret;
3529
3530 clk_prepare_lock();
3531 ret = clk_core_set_rate_nolock(core, val);
3532 clk_prepare_unlock();
3533
3534 return ret;
3535 }
3536
3537 #define clk_rate_mode 0644
3538
clk_phase_set(void * data,u64 val)3539 static int clk_phase_set(void *data, u64 val)
3540 {
3541 struct clk_core *core = data;
3542 int degrees = do_div(val, 360);
3543 int ret;
3544
3545 clk_prepare_lock();
3546 ret = clk_core_set_phase_nolock(core, degrees);
3547 clk_prepare_unlock();
3548
3549 return ret;
3550 }
3551
3552 #define clk_phase_mode 0644
3553
clk_prepare_enable_set(void * data,u64 val)3554 static int clk_prepare_enable_set(void *data, u64 val)
3555 {
3556 struct clk_core *core = data;
3557 int ret = 0;
3558
3559 if (val)
3560 ret = clk_prepare_enable(core->hw->clk);
3561 else
3562 clk_disable_unprepare(core->hw->clk);
3563
3564 return ret;
3565 }
3566
clk_prepare_enable_get(void * data,u64 * val)3567 static int clk_prepare_enable_get(void *data, u64 *val)
3568 {
3569 struct clk_core *core = data;
3570
3571 *val = core->enable_count && core->prepare_count;
3572 return 0;
3573 }
3574
3575 DEFINE_DEBUGFS_ATTRIBUTE(clk_prepare_enable_fops, clk_prepare_enable_get,
3576 clk_prepare_enable_set, "%llu\n");
3577
3578 #else
3579 #define clk_rate_set NULL
3580 #define clk_rate_mode 0444
3581
3582 #define clk_phase_set NULL
3583 #define clk_phase_mode 0644
3584 #endif
3585
clk_rate_get(void * data,u64 * val)3586 static int clk_rate_get(void *data, u64 *val)
3587 {
3588 struct clk_core *core = data;
3589
3590 clk_prepare_lock();
3591 *val = clk_core_get_rate_recalc(core);
3592 clk_prepare_unlock();
3593
3594 return 0;
3595 }
3596
3597 DEFINE_DEBUGFS_ATTRIBUTE(clk_rate_fops, clk_rate_get, clk_rate_set, "%llu\n");
3598
clk_phase_get(void * data,u64 * val)3599 static int clk_phase_get(void *data, u64 *val)
3600 {
3601 struct clk_core *core = data;
3602
3603 *val = core->phase;
3604 return 0;
3605 }
3606
3607 DEFINE_DEBUGFS_ATTRIBUTE(clk_phase_fops, clk_phase_get, clk_phase_set, "%llu\n");
3608
3609 static const struct {
3610 unsigned long flag;
3611 const char *name;
3612 } clk_flags[] = {
3613 #define ENTRY(f) { f, #f }
3614 ENTRY(CLK_SET_RATE_GATE),
3615 ENTRY(CLK_SET_PARENT_GATE),
3616 ENTRY(CLK_SET_RATE_PARENT),
3617 ENTRY(CLK_IGNORE_UNUSED),
3618 ENTRY(CLK_GET_RATE_NOCACHE),
3619 ENTRY(CLK_SET_RATE_NO_REPARENT),
3620 ENTRY(CLK_GET_ACCURACY_NOCACHE),
3621 ENTRY(CLK_RECALC_NEW_RATES),
3622 ENTRY(CLK_SET_RATE_UNGATE),
3623 ENTRY(CLK_IS_CRITICAL),
3624 ENTRY(CLK_OPS_PARENT_ENABLE),
3625 ENTRY(CLK_DUTY_CYCLE_PARENT),
3626 #undef ENTRY
3627 };
3628
clk_flags_show(struct seq_file * s,void * data)3629 static int clk_flags_show(struct seq_file *s, void *data)
3630 {
3631 struct clk_core *core = s->private;
3632 unsigned long flags = core->flags;
3633 unsigned int i;
3634
3635 for (i = 0; flags && i < ARRAY_SIZE(clk_flags); i++) {
3636 if (flags & clk_flags[i].flag) {
3637 seq_printf(s, "%s\n", clk_flags[i].name);
3638 flags &= ~clk_flags[i].flag;
3639 }
3640 }
3641 if (flags) {
3642 /* Unknown flags */
3643 seq_printf(s, "0x%lx\n", flags);
3644 }
3645
3646 return 0;
3647 }
3648 DEFINE_SHOW_ATTRIBUTE(clk_flags);
3649
possible_parent_show(struct seq_file * s,struct clk_core * core,unsigned int i,char terminator)3650 static void possible_parent_show(struct seq_file *s, struct clk_core *core,
3651 unsigned int i, char terminator)
3652 {
3653 struct clk_core *parent;
3654 const char *name = NULL;
3655
3656 /*
3657 * Go through the following options to fetch a parent's name.
3658 *
3659 * 1. Fetch the registered parent clock and use its name
3660 * 2. Use the global (fallback) name if specified
3661 * 3. Use the local fw_name if provided
3662 * 4. Fetch parent clock's clock-output-name if DT index was set
3663 *
3664 * This may still fail in some cases, such as when the parent is
3665 * specified directly via a struct clk_hw pointer, but it isn't
3666 * registered (yet).
3667 */
3668 parent = clk_core_get_parent_by_index(core, i);
3669 if (parent) {
3670 seq_puts(s, parent->name);
3671 } else if (core->parents[i].name) {
3672 seq_puts(s, core->parents[i].name);
3673 } else if (core->parents[i].fw_name) {
3674 seq_printf(s, "<%s>(fw)", core->parents[i].fw_name);
3675 } else {
3676 if (core->parents[i].index >= 0)
3677 name = of_clk_get_parent_name(core->of_node, core->parents[i].index);
3678 if (!name)
3679 name = "(missing)";
3680
3681 seq_puts(s, name);
3682 }
3683
3684 seq_putc(s, terminator);
3685 }
3686
possible_parents_show(struct seq_file * s,void * data)3687 static int possible_parents_show(struct seq_file *s, void *data)
3688 {
3689 struct clk_core *core = s->private;
3690 int i;
3691
3692 for (i = 0; i < core->num_parents - 1; i++)
3693 possible_parent_show(s, core, i, ' ');
3694
3695 possible_parent_show(s, core, i, '\n');
3696
3697 return 0;
3698 }
3699 DEFINE_SHOW_ATTRIBUTE(possible_parents);
3700
current_parent_show(struct seq_file * s,void * data)3701 static int current_parent_show(struct seq_file *s, void *data)
3702 {
3703 struct clk_core *core = s->private;
3704
3705 if (core->parent)
3706 seq_printf(s, "%s\n", core->parent->name);
3707
3708 return 0;
3709 }
3710 DEFINE_SHOW_ATTRIBUTE(current_parent);
3711
3712 #ifdef CLOCK_ALLOW_WRITE_DEBUGFS
current_parent_write(struct file * file,const char __user * ubuf,size_t count,loff_t * ppos)3713 static ssize_t current_parent_write(struct file *file, const char __user *ubuf,
3714 size_t count, loff_t *ppos)
3715 {
3716 struct seq_file *s = file->private_data;
3717 struct clk_core *core = s->private;
3718 struct clk_core *parent;
3719 u8 idx;
3720 int err;
3721
3722 err = kstrtou8_from_user(ubuf, count, 0, &idx);
3723 if (err < 0)
3724 return err;
3725
3726 parent = clk_core_get_parent_by_index(core, idx);
3727 if (!parent)
3728 return -ENOENT;
3729
3730 clk_prepare_lock();
3731 err = clk_core_set_parent_nolock(core, parent);
3732 clk_prepare_unlock();
3733 if (err)
3734 return err;
3735
3736 return count;
3737 }
3738
3739 static const struct file_operations current_parent_rw_fops = {
3740 .open = current_parent_open,
3741 .write = current_parent_write,
3742 .read = seq_read,
3743 .llseek = seq_lseek,
3744 .release = single_release,
3745 };
3746 #endif
3747
clk_duty_cycle_show(struct seq_file * s,void * data)3748 static int clk_duty_cycle_show(struct seq_file *s, void *data)
3749 {
3750 struct clk_core *core = s->private;
3751 struct clk_duty *duty = &core->duty;
3752
3753 seq_printf(s, "%u/%u\n", duty->num, duty->den);
3754
3755 return 0;
3756 }
3757 DEFINE_SHOW_ATTRIBUTE(clk_duty_cycle);
3758
clk_min_rate_show(struct seq_file * s,void * data)3759 static int clk_min_rate_show(struct seq_file *s, void *data)
3760 {
3761 struct clk_core *core = s->private;
3762 unsigned long min_rate, max_rate;
3763
3764 clk_prepare_lock();
3765 clk_core_get_boundaries(core, &min_rate, &max_rate);
3766 clk_prepare_unlock();
3767 seq_printf(s, "%lu\n", min_rate);
3768
3769 return 0;
3770 }
3771 DEFINE_SHOW_ATTRIBUTE(clk_min_rate);
3772
clk_max_rate_show(struct seq_file * s,void * data)3773 static int clk_max_rate_show(struct seq_file *s, void *data)
3774 {
3775 struct clk_core *core = s->private;
3776 unsigned long min_rate, max_rate;
3777
3778 clk_prepare_lock();
3779 clk_core_get_boundaries(core, &min_rate, &max_rate);
3780 clk_prepare_unlock();
3781 seq_printf(s, "%lu\n", max_rate);
3782
3783 return 0;
3784 }
3785 DEFINE_SHOW_ATTRIBUTE(clk_max_rate);
3786
clk_debug_create_one(struct clk_core * core,struct dentry * pdentry)3787 static void clk_debug_create_one(struct clk_core *core, struct dentry *pdentry)
3788 {
3789 struct dentry *root;
3790
3791 if (!core || !pdentry)
3792 return;
3793
3794 root = debugfs_create_dir(core->name, pdentry);
3795 core->dentry = root;
3796
3797 debugfs_create_file("clk_rate", clk_rate_mode, root, core,
3798 &clk_rate_fops);
3799 debugfs_create_file("clk_min_rate", 0444, root, core, &clk_min_rate_fops);
3800 debugfs_create_file("clk_max_rate", 0444, root, core, &clk_max_rate_fops);
3801 debugfs_create_ulong("clk_accuracy", 0444, root, &core->accuracy);
3802 debugfs_create_file("clk_phase", clk_phase_mode, root, core,
3803 &clk_phase_fops);
3804 debugfs_create_file("clk_flags", 0444, root, core, &clk_flags_fops);
3805 debugfs_create_u32("clk_prepare_count", 0444, root, &core->prepare_count);
3806 debugfs_create_u32("clk_enable_count", 0444, root, &core->enable_count);
3807 debugfs_create_u32("clk_protect_count", 0444, root, &core->protect_count);
3808 debugfs_create_u32("clk_notifier_count", 0444, root, &core->notifier_count);
3809 debugfs_create_file("clk_duty_cycle", 0444, root, core,
3810 &clk_duty_cycle_fops);
3811 #ifdef CLOCK_ALLOW_WRITE_DEBUGFS
3812 debugfs_create_file("clk_prepare_enable", 0644, root, core,
3813 &clk_prepare_enable_fops);
3814
3815 if (core->num_parents > 1)
3816 debugfs_create_file("clk_parent", 0644, root, core,
3817 ¤t_parent_rw_fops);
3818 else
3819 #endif
3820 if (core->num_parents > 0)
3821 debugfs_create_file("clk_parent", 0444, root, core,
3822 ¤t_parent_fops);
3823
3824 if (core->num_parents > 1)
3825 debugfs_create_file("clk_possible_parents", 0444, root, core,
3826 &possible_parents_fops);
3827
3828 if (core->ops->debug_init)
3829 core->ops->debug_init(core->hw, core->dentry);
3830 }
3831
3832 /**
3833 * clk_debug_register - add a clk node to the debugfs clk directory
3834 * @core: the clk being added to the debugfs clk directory
3835 *
3836 * Dynamically adds a clk to the debugfs clk directory if debugfs has been
3837 * initialized. Otherwise it bails out early since the debugfs clk directory
3838 * will be created lazily by clk_debug_init as part of a late_initcall.
3839 */
clk_debug_register(struct clk_core * core)3840 static void clk_debug_register(struct clk_core *core)
3841 {
3842 mutex_lock(&clk_debug_lock);
3843 hlist_add_head(&core->debug_node, &clk_debug_list);
3844 if (inited)
3845 clk_debug_create_one(core, rootdir);
3846 mutex_unlock(&clk_debug_lock);
3847 }
3848
3849 /**
3850 * clk_debug_unregister - remove a clk node from the debugfs clk directory
3851 * @core: the clk being removed from the debugfs clk directory
3852 *
3853 * Dynamically removes a clk and all its child nodes from the
3854 * debugfs clk directory if clk->dentry points to debugfs created by
3855 * clk_debug_register in __clk_core_init.
3856 */
clk_debug_unregister(struct clk_core * core)3857 static void clk_debug_unregister(struct clk_core *core)
3858 {
3859 mutex_lock(&clk_debug_lock);
3860 hlist_del_init(&core->debug_node);
3861 debugfs_remove_recursive(core->dentry);
3862 core->dentry = NULL;
3863 mutex_unlock(&clk_debug_lock);
3864 }
3865
3866 /**
3867 * clk_debug_init - lazily populate the debugfs clk directory
3868 *
3869 * clks are often initialized very early during boot before memory can be
3870 * dynamically allocated and well before debugfs is setup. This function
3871 * populates the debugfs clk directory once at boot-time when we know that
3872 * debugfs is setup. It should only be called once at boot-time, all other clks
3873 * added dynamically will be done so with clk_debug_register.
3874 */
clk_debug_init(void)3875 static int __init clk_debug_init(void)
3876 {
3877 struct clk_core *core;
3878
3879 #ifdef CLOCK_ALLOW_WRITE_DEBUGFS
3880 pr_warn("\n");
3881 pr_warn("********************************************************************\n");
3882 pr_warn("** NOTICE NOTICE NOTICE NOTICE NOTICE NOTICE NOTICE **\n");
3883 pr_warn("** **\n");
3884 pr_warn("** WRITEABLE clk DebugFS SUPPORT HAS BEEN ENABLED IN THIS KERNEL **\n");
3885 pr_warn("** **\n");
3886 pr_warn("** This means that this kernel is built to expose clk operations **\n");
3887 pr_warn("** such as parent or rate setting, enabling, disabling, etc. **\n");
3888 pr_warn("** to userspace, which may compromise security on your system. **\n");
3889 pr_warn("** **\n");
3890 pr_warn("** If you see this message and you are not debugging the **\n");
3891 pr_warn("** kernel, report this immediately to your vendor! **\n");
3892 pr_warn("** **\n");
3893 pr_warn("** NOTICE NOTICE NOTICE NOTICE NOTICE NOTICE NOTICE **\n");
3894 pr_warn("********************************************************************\n");
3895 #endif
3896
3897 rootdir = debugfs_create_dir("clk", NULL);
3898
3899 debugfs_create_file("clk_summary", 0444, rootdir, &all_lists,
3900 &clk_summary_fops);
3901 debugfs_create_file("clk_dump", 0444, rootdir, &all_lists,
3902 &clk_dump_fops);
3903 debugfs_create_file("clk_orphan_summary", 0444, rootdir, &orphan_list,
3904 &clk_summary_fops);
3905 debugfs_create_file("clk_orphan_dump", 0444, rootdir, &orphan_list,
3906 &clk_dump_fops);
3907
3908 mutex_lock(&clk_debug_lock);
3909 hlist_for_each_entry(core, &clk_debug_list, debug_node)
3910 clk_debug_create_one(core, rootdir);
3911
3912 inited = 1;
3913 mutex_unlock(&clk_debug_lock);
3914
3915 return 0;
3916 }
3917 late_initcall(clk_debug_init);
3918 #else
clk_debug_register(struct clk_core * core)3919 static inline void clk_debug_register(struct clk_core *core) { }
clk_debug_unregister(struct clk_core * core)3920 static inline void clk_debug_unregister(struct clk_core *core)
3921 {
3922 }
3923 #endif
3924
clk_core_reparent_orphans_nolock(void)3925 static void clk_core_reparent_orphans_nolock(void)
3926 {
3927 struct clk_core *orphan;
3928 struct hlist_node *tmp2;
3929
3930 /*
3931 * walk the list of orphan clocks and reparent any that newly finds a
3932 * parent.
3933 */
3934 hlist_for_each_entry_safe(orphan, tmp2, &clk_orphan_list, child_node) {
3935 struct clk_core *parent = __clk_init_parent(orphan);
3936
3937 /*
3938 * We need to use __clk_set_parent_before() and _after() to
3939 * properly migrate any prepare/enable count of the orphan
3940 * clock. This is important for CLK_IS_CRITICAL clocks, which
3941 * are enabled during init but might not have a parent yet.
3942 */
3943 if (parent) {
3944 /* update the clk tree topology */
3945 __clk_set_parent_before(orphan, parent);
3946 __clk_set_parent_after(orphan, parent, NULL);
3947 __clk_recalc_accuracies(orphan);
3948 __clk_recalc_rates(orphan, true, 0);
3949
3950 /*
3951 * __clk_init_parent() will set the initial req_rate to
3952 * 0 if the clock doesn't have clk_ops::recalc_rate and
3953 * is an orphan when it's registered.
3954 *
3955 * 'req_rate' is used by clk_set_rate_range() and
3956 * clk_put() to trigger a clk_set_rate() call whenever
3957 * the boundaries are modified. Let's make sure
3958 * 'req_rate' is set to something non-zero so that
3959 * clk_set_rate_range() doesn't drop the frequency.
3960 */
3961 orphan->req_rate = orphan->rate;
3962 }
3963 }
3964 }
3965
3966 /**
3967 * __clk_core_init - initialize the data structures in a struct clk_core
3968 * @core: clk_core being initialized
3969 *
3970 * Initializes the lists in struct clk_core, queries the hardware for the
3971 * parent and rate and sets them both.
3972 */
__clk_core_init(struct clk_core * core)3973 static int __clk_core_init(struct clk_core *core)
3974 {
3975 int ret;
3976 struct clk_core *parent;
3977 unsigned long rate;
3978 int phase;
3979
3980 clk_prepare_lock();
3981
3982 /*
3983 * Set hw->core after grabbing the prepare_lock to synchronize with
3984 * callers of clk_core_fill_parent_index() where we treat hw->core
3985 * being NULL as the clk not being registered yet. This is crucial so
3986 * that clks aren't parented until their parent is fully registered.
3987 */
3988 core->hw->core = core;
3989
3990 ret = clk_pm_runtime_get(core);
3991 if (ret)
3992 goto unlock;
3993
3994 /* check to see if a clock with this name is already registered */
3995 if (clk_core_lookup(core->name)) {
3996 pr_debug("%s: clk %s already initialized\n",
3997 __func__, core->name);
3998 ret = -EEXIST;
3999 goto out;
4000 }
4001
4002 /* check that clk_ops are sane. See Documentation/driver-api/clk.rst */
4003 if (core->ops->set_rate && !core->ops->determine_rate &&
4004 core->ops->recalc_rate) {
4005 pr_err("%s: %s must implement .determine_rate in addition to .recalc_rate\n",
4006 __func__, core->name);
4007 ret = -EINVAL;
4008 goto out;
4009 }
4010
4011 if (core->ops->set_parent && !core->ops->get_parent) {
4012 pr_err("%s: %s must implement .get_parent & .set_parent\n",
4013 __func__, core->name);
4014 ret = -EINVAL;
4015 goto out;
4016 }
4017
4018 if (core->ops->set_parent && !core->ops->determine_rate) {
4019 pr_err("%s: %s must implement .set_parent & .determine_rate\n",
4020 __func__, core->name);
4021 ret = -EINVAL;
4022 goto out;
4023 }
4024
4025 if (core->num_parents > 1 && !core->ops->get_parent) {
4026 pr_err("%s: %s must implement .get_parent as it has multi parents\n",
4027 __func__, core->name);
4028 ret = -EINVAL;
4029 goto out;
4030 }
4031
4032 if (core->ops->set_rate_and_parent &&
4033 !(core->ops->set_parent && core->ops->set_rate)) {
4034 pr_err("%s: %s must implement .set_parent & .set_rate\n",
4035 __func__, core->name);
4036 ret = -EINVAL;
4037 goto out;
4038 }
4039
4040 /*
4041 * optional platform-specific magic
4042 *
4043 * The .init callback is not used by any of the basic clock types, but
4044 * exists for weird hardware that must perform initialization magic for
4045 * CCF to get an accurate view of clock for any other callbacks. It may
4046 * also be used needs to perform dynamic allocations. Such allocation
4047 * must be freed in the terminate() callback.
4048 * This callback shall not be used to initialize the parameters state,
4049 * such as rate, parent, etc ...
4050 *
4051 * If it exist, this callback should called before any other callback of
4052 * the clock
4053 */
4054 if (core->ops->init) {
4055 ret = core->ops->init(core->hw);
4056 if (ret)
4057 goto out;
4058 }
4059
4060 parent = core->parent = __clk_init_parent(core);
4061
4062 /*
4063 * Populate core->parent if parent has already been clk_core_init'd. If
4064 * parent has not yet been clk_core_init'd then place clk in the orphan
4065 * list. If clk doesn't have any parents then place it in the root
4066 * clk list.
4067 *
4068 * Every time a new clk is clk_init'd then we walk the list of orphan
4069 * clocks and re-parent any that are children of the clock currently
4070 * being clk_init'd.
4071 */
4072 if (parent) {
4073 hlist_add_head(&core->child_node, &parent->children);
4074 core->orphan = parent->orphan;
4075 } else if (!core->num_parents) {
4076 hlist_add_head(&core->child_node, &clk_root_list);
4077 core->orphan = false;
4078 } else {
4079 hlist_add_head(&core->child_node, &clk_orphan_list);
4080 core->orphan = true;
4081 }
4082 hash_add(clk_hashtable, &core->hashtable_node,
4083 full_name_hash(NULL, core->name, strlen(core->name)));
4084
4085 /*
4086 * Set clk's accuracy. The preferred method is to use
4087 * .recalc_accuracy. For simple clocks and lazy developers the default
4088 * fallback is to use the parent's accuracy. If a clock doesn't have a
4089 * parent (or is orphaned) then accuracy is set to zero (perfect
4090 * clock).
4091 */
4092 if (core->ops->recalc_accuracy)
4093 core->accuracy = core->ops->recalc_accuracy(core->hw,
4094 clk_core_get_accuracy_no_lock(parent));
4095 else if (parent)
4096 core->accuracy = parent->accuracy;
4097 else
4098 core->accuracy = 0;
4099
4100 /*
4101 * Set clk's phase by clk_core_get_phase() caching the phase.
4102 * Since a phase is by definition relative to its parent, just
4103 * query the current clock phase, or just assume it's in phase.
4104 */
4105 phase = clk_core_get_phase(core);
4106 if (phase < 0) {
4107 ret = phase;
4108 pr_warn("%s: Failed to get phase for clk '%s'\n", __func__,
4109 core->name);
4110 goto out;
4111 }
4112
4113 /*
4114 * Set clk's duty cycle.
4115 */
4116 clk_core_update_duty_cycle_nolock(core);
4117
4118 /*
4119 * Set clk's rate. The preferred method is to use .recalc_rate. For
4120 * simple clocks and lazy developers the default fallback is to use the
4121 * parent's rate. If a clock doesn't have a parent (or is orphaned)
4122 * then rate is set to zero.
4123 */
4124 if (core->ops->recalc_rate)
4125 rate = core->ops->recalc_rate(core->hw,
4126 clk_core_get_rate_nolock(parent));
4127 else if (parent)
4128 rate = parent->rate;
4129 else
4130 rate = 0;
4131 core->rate = core->req_rate = rate;
4132
4133 /*
4134 * Enable CLK_IS_CRITICAL clocks so newly added critical clocks
4135 * don't get accidentally disabled when walking the orphan tree and
4136 * reparenting clocks
4137 */
4138 if (core->flags & CLK_IS_CRITICAL) {
4139 ret = clk_core_prepare(core);
4140 if (ret) {
4141 pr_warn("%s: critical clk '%s' failed to prepare\n",
4142 __func__, core->name);
4143 goto out;
4144 }
4145
4146 ret = clk_core_enable_lock(core);
4147 if (ret) {
4148 pr_warn("%s: critical clk '%s' failed to enable\n",
4149 __func__, core->name);
4150 clk_core_unprepare(core);
4151 goto out;
4152 }
4153 }
4154
4155 clk_core_reparent_orphans_nolock();
4156 out:
4157 clk_pm_runtime_put(core);
4158 unlock:
4159 if (ret) {
4160 hash_del(&core->hashtable_node);
4161 hlist_del_init(&core->child_node);
4162 core->hw->core = NULL;
4163 }
4164
4165 clk_prepare_unlock();
4166
4167 if (!ret)
4168 clk_debug_register(core);
4169
4170 return ret;
4171 }
4172
4173 /**
4174 * clk_core_link_consumer - Add a clk consumer to the list of consumers in a clk_core
4175 * @core: clk to add consumer to
4176 * @clk: consumer to link to a clk
4177 */
clk_core_link_consumer(struct clk_core * core,struct clk * clk)4178 static void clk_core_link_consumer(struct clk_core *core, struct clk *clk)
4179 {
4180 clk_prepare_lock();
4181 hlist_add_head(&clk->clks_node, &core->clks);
4182 clk_prepare_unlock();
4183 }
4184
4185 /**
4186 * clk_core_unlink_consumer - Remove a clk consumer from the list of consumers in a clk_core
4187 * @clk: consumer to unlink
4188 */
clk_core_unlink_consumer(struct clk * clk)4189 static void clk_core_unlink_consumer(struct clk *clk)
4190 {
4191 lockdep_assert_held(&prepare_lock);
4192 hlist_del(&clk->clks_node);
4193 }
4194
4195 /**
4196 * alloc_clk - Allocate a clk consumer, but leave it unlinked to the clk_core
4197 * @core: clk to allocate a consumer for
4198 * @dev_id: string describing device name
4199 * @con_id: connection ID string on device
4200 *
4201 * Returns: clk consumer left unlinked from the consumer list
4202 */
alloc_clk(struct clk_core * core,const char * dev_id,const char * con_id)4203 static struct clk *alloc_clk(struct clk_core *core, const char *dev_id,
4204 const char *con_id)
4205 {
4206 struct clk *clk;
4207
4208 clk = kzalloc_obj(*clk);
4209 if (!clk)
4210 return ERR_PTR(-ENOMEM);
4211
4212 clk->core = core;
4213 clk->dev_id = dev_id;
4214 clk->con_id = kstrdup_const(con_id, GFP_KERNEL);
4215 clk->max_rate = ULONG_MAX;
4216
4217 return clk;
4218 }
4219
4220 /**
4221 * free_clk - Free a clk consumer
4222 * @clk: clk consumer to free
4223 *
4224 * Note, this assumes the clk has been unlinked from the clk_core consumer
4225 * list.
4226 */
free_clk(struct clk * clk)4227 static void free_clk(struct clk *clk)
4228 {
4229 kfree_const(clk->con_id);
4230 kfree(clk);
4231 }
4232
4233 /**
4234 * clk_hw_create_clk: Allocate and link a clk consumer to a clk_core given
4235 * a clk_hw
4236 * @dev: clk consumer device
4237 * @hw: clk_hw associated with the clk being consumed
4238 * @dev_id: string describing device name
4239 * @con_id: connection ID string on device
4240 *
4241 * This is the main function used to create a clk pointer for use by clk
4242 * consumers. It connects a consumer to the clk_core and clk_hw structures
4243 * used by the framework and clk provider respectively.
4244 */
clk_hw_create_clk(struct device * dev,struct clk_hw * hw,const char * dev_id,const char * con_id)4245 struct clk *clk_hw_create_clk(struct device *dev, struct clk_hw *hw,
4246 const char *dev_id, const char *con_id)
4247 {
4248 struct clk *clk;
4249 struct clk_core *core;
4250
4251 /* This is to allow this function to be chained to others */
4252 if (IS_ERR_OR_NULL(hw))
4253 return ERR_CAST(hw);
4254
4255 core = hw->core;
4256 clk = alloc_clk(core, dev_id, con_id);
4257 if (IS_ERR(clk))
4258 return clk;
4259 clk->dev = dev;
4260
4261 if (!try_module_get(core->owner)) {
4262 free_clk(clk);
4263 return ERR_PTR(-ENOENT);
4264 }
4265
4266 kref_get(&core->ref);
4267 clk_core_link_consumer(core, clk);
4268
4269 return clk;
4270 }
4271
4272 /**
4273 * clk_hw_get_clk - get clk consumer given an clk_hw
4274 * @hw: clk_hw associated with the clk being consumed
4275 * @con_id: connection ID string on device
4276 *
4277 * Returns: new clk consumer
4278 * This is the function to be used by providers which need
4279 * to get a consumer clk and act on the clock element
4280 * Calls to this function must be balanced with calls clk_put()
4281 */
clk_hw_get_clk(struct clk_hw * hw,const char * con_id)4282 struct clk *clk_hw_get_clk(struct clk_hw *hw, const char *con_id)
4283 {
4284 struct device *dev = hw->core->dev;
4285 const char *name = dev ? dev_name(dev) : NULL;
4286
4287 return clk_hw_create_clk(dev, hw, name, con_id);
4288 }
4289 EXPORT_SYMBOL(clk_hw_get_clk);
4290
clk_cpy_name(const char ** dst_p,const char * src,bool must_exist)4291 static int clk_cpy_name(const char **dst_p, const char *src, bool must_exist)
4292 {
4293 const char *dst;
4294
4295 if (!src) {
4296 if (must_exist)
4297 return -EINVAL;
4298 return 0;
4299 }
4300
4301 *dst_p = dst = kstrdup_const(src, GFP_KERNEL);
4302 if (!dst)
4303 return -ENOMEM;
4304
4305 return 0;
4306 }
4307
clk_core_populate_parent_map(struct clk_core * core,const struct clk_init_data * init)4308 static int clk_core_populate_parent_map(struct clk_core *core,
4309 const struct clk_init_data *init)
4310 {
4311 u8 num_parents = init->num_parents;
4312 const char * const *parent_names = init->parent_names;
4313 const struct clk_hw **parent_hws = init->parent_hws;
4314 const struct clk_parent_data *parent_data = init->parent_data;
4315 int i, ret = 0;
4316 struct clk_parent_map *parents, *parent;
4317
4318 if (!num_parents)
4319 return 0;
4320
4321 /*
4322 * Avoid unnecessary string look-ups of clk_core's possible parents by
4323 * having a cache of names/clk_hw pointers to clk_core pointers.
4324 */
4325 parents = kzalloc_objs(*parents, num_parents);
4326 core->parents = parents;
4327 if (!parents)
4328 return -ENOMEM;
4329
4330 /* Copy everything over because it might be __initdata */
4331 for (i = 0, parent = parents; i < num_parents; i++, parent++) {
4332 parent->index = -1;
4333 if (parent_names) {
4334 /* throw a WARN if any entries are NULL */
4335 WARN(!parent_names[i],
4336 "%s: invalid NULL in %s's .parent_names\n",
4337 __func__, core->name);
4338 ret = clk_cpy_name(&parent->name, parent_names[i],
4339 true);
4340 } else if (parent_data) {
4341 parent->hw = parent_data[i].hw;
4342 parent->index = parent_data[i].index;
4343 ret = clk_cpy_name(&parent->fw_name,
4344 parent_data[i].fw_name, false);
4345 if (!ret)
4346 ret = clk_cpy_name(&parent->name,
4347 parent_data[i].name,
4348 false);
4349 } else if (parent_hws) {
4350 parent->hw = parent_hws[i];
4351 } else {
4352 ret = -EINVAL;
4353 WARN(1, "Must specify parents if num_parents > 0\n");
4354 }
4355
4356 if (ret) {
4357 do {
4358 kfree_const(parents[i].name);
4359 kfree_const(parents[i].fw_name);
4360 } while (--i >= 0);
4361 kfree(parents);
4362
4363 return ret;
4364 }
4365 }
4366
4367 return 0;
4368 }
4369
clk_core_free_parent_map(struct clk_core * core)4370 static void clk_core_free_parent_map(struct clk_core *core)
4371 {
4372 int i = core->num_parents;
4373
4374 if (!core->num_parents)
4375 return;
4376
4377 while (--i >= 0) {
4378 kfree_const(core->parents[i].name);
4379 kfree_const(core->parents[i].fw_name);
4380 }
4381
4382 kfree(core->parents);
4383 }
4384
4385 /* Free memory allocated for a struct clk_core */
__clk_release(struct kref * ref)4386 static void __clk_release(struct kref *ref)
4387 {
4388 struct clk_core *core = container_of(ref, struct clk_core, ref);
4389
4390 if (core->rpm_enabled) {
4391 mutex_lock(&clk_rpm_list_lock);
4392 hlist_del(&core->rpm_node);
4393 mutex_unlock(&clk_rpm_list_lock);
4394 }
4395
4396 clk_core_free_parent_map(core);
4397 kfree_const(core->name);
4398 kfree(core);
4399 }
4400
4401 static struct clk *
__clk_register(struct device * dev,struct device_node * np,struct clk_hw * hw)4402 __clk_register(struct device *dev, struct device_node *np, struct clk_hw *hw)
4403 {
4404 int ret;
4405 struct clk_core *core;
4406 const struct clk_init_data *init = hw->init;
4407
4408 /*
4409 * The init data is not supposed to be used outside of registration path.
4410 * Set it to NULL so that provider drivers can't use it either and so that
4411 * we catch use of hw->init early on in the core.
4412 */
4413 hw->init = NULL;
4414
4415 core = kzalloc_obj(*core);
4416 if (!core) {
4417 ret = -ENOMEM;
4418 goto fail_out;
4419 }
4420
4421 kref_init(&core->ref);
4422
4423 core->name = kstrdup_const(init->name, GFP_KERNEL);
4424 if (!core->name) {
4425 ret = -ENOMEM;
4426 goto fail_name;
4427 }
4428
4429 if (WARN_ON(!init->ops)) {
4430 ret = -EINVAL;
4431 goto fail_ops;
4432 }
4433 core->ops = init->ops;
4434
4435 core->dev = dev;
4436 clk_pm_runtime_init(core);
4437 core->of_node = np;
4438 if (dev && dev->driver)
4439 core->owner = dev->driver->owner;
4440 core->hw = hw;
4441 core->flags = init->flags;
4442 core->num_parents = init->num_parents;
4443 core->min_rate = 0;
4444 core->max_rate = ULONG_MAX;
4445
4446 ret = clk_core_populate_parent_map(core, init);
4447 if (ret)
4448 goto fail_parents;
4449
4450 INIT_HLIST_HEAD(&core->clks);
4451
4452 /*
4453 * Don't call clk_hw_create_clk() here because that would pin the
4454 * provider module to itself and prevent it from ever being removed.
4455 */
4456 hw->clk = alloc_clk(core, NULL, NULL);
4457 if (IS_ERR(hw->clk)) {
4458 ret = PTR_ERR(hw->clk);
4459 goto fail_create_clk;
4460 }
4461
4462 clk_core_link_consumer(core, hw->clk);
4463
4464 ret = __clk_core_init(core);
4465 if (!ret)
4466 return hw->clk;
4467
4468 clk_prepare_lock();
4469 clk_core_unlink_consumer(hw->clk);
4470 clk_prepare_unlock();
4471
4472 free_clk(hw->clk);
4473 hw->clk = NULL;
4474
4475 fail_create_clk:
4476 fail_parents:
4477 fail_ops:
4478 fail_name:
4479 kref_put(&core->ref, __clk_release);
4480 fail_out:
4481 if (dev) {
4482 dev_err_probe(dev, ret, "failed to register clk '%s' (%pS)\n",
4483 init->name, hw);
4484 } else {
4485 pr_err("%pOF: error %pe: failed to register clk '%s' (%pS)\n",
4486 np, ERR_PTR(ret), init->name, hw);
4487 }
4488 return ERR_PTR(ret);
4489 }
4490
4491 /**
4492 * dev_or_parent_of_node() - Get device node of @dev or @dev's parent
4493 * @dev: Device to get device node of
4494 *
4495 * Return: device node pointer of @dev, or the device node pointer of
4496 * @dev->parent if dev doesn't have a device node, or NULL if neither
4497 * @dev or @dev->parent have a device node.
4498 */
dev_or_parent_of_node(struct device * dev)4499 static struct device_node *dev_or_parent_of_node(struct device *dev)
4500 {
4501 struct device_node *np;
4502
4503 if (!dev)
4504 return NULL;
4505
4506 np = dev_of_node(dev);
4507 if (!np)
4508 np = dev_of_node(dev->parent);
4509
4510 return np;
4511 }
4512
4513 /**
4514 * clk_register - allocate a new clock, register it and return an opaque cookie
4515 * @dev: device that is registering this clock
4516 * @hw: link to hardware-specific clock data
4517 *
4518 * clk_register is the *deprecated* interface for populating the clock tree with
4519 * new clock nodes. Use clk_hw_register() instead.
4520 *
4521 * Returns: a pointer to the newly allocated struct clk which
4522 * cannot be dereferenced by driver code but may be used in conjunction with the
4523 * rest of the clock API. In the event of an error clk_register will return an
4524 * error code; drivers must test for an error code after calling clk_register.
4525 */
clk_register(struct device * dev,struct clk_hw * hw)4526 struct clk *clk_register(struct device *dev, struct clk_hw *hw)
4527 {
4528 return __clk_register(dev, dev_or_parent_of_node(dev), hw);
4529 }
4530 EXPORT_SYMBOL_GPL(clk_register);
4531
4532 /**
4533 * clk_hw_register - register a clk_hw and return an error code
4534 * @dev: device that is registering this clock
4535 * @hw: link to hardware-specific clock data
4536 *
4537 * clk_hw_register is the primary interface for populating the clock tree with
4538 * new clock nodes. It returns an integer equal to zero indicating success or
4539 * less than zero indicating failure. Drivers must test for an error code after
4540 * calling clk_hw_register().
4541 */
clk_hw_register(struct device * dev,struct clk_hw * hw)4542 int clk_hw_register(struct device *dev, struct clk_hw *hw)
4543 {
4544 return PTR_ERR_OR_ZERO(__clk_register(dev, dev_or_parent_of_node(dev),
4545 hw));
4546 }
4547 EXPORT_SYMBOL_GPL(clk_hw_register);
4548
4549 /*
4550 * of_clk_hw_register - register a clk_hw and return an error code
4551 * @node: device_node of device that is registering this clock
4552 * @hw: link to hardware-specific clock data
4553 *
4554 * of_clk_hw_register() is the primary interface for populating the clock tree
4555 * with new clock nodes when a struct device is not available, but a struct
4556 * device_node is. It returns an integer equal to zero indicating success or
4557 * less than zero indicating failure. Drivers must test for an error code after
4558 * calling of_clk_hw_register().
4559 */
of_clk_hw_register(struct device_node * node,struct clk_hw * hw)4560 int of_clk_hw_register(struct device_node *node, struct clk_hw *hw)
4561 {
4562 return PTR_ERR_OR_ZERO(__clk_register(NULL, node, hw));
4563 }
4564 EXPORT_SYMBOL_GPL(of_clk_hw_register);
4565
4566 /*
4567 * Empty clk_ops for unregistered clocks. These are used temporarily
4568 * after clk_unregister() was called on a clock and until last clock
4569 * consumer calls clk_put() and the struct clk object is freed.
4570 */
clk_nodrv_prepare_enable(struct clk_hw * hw)4571 static int clk_nodrv_prepare_enable(struct clk_hw *hw)
4572 {
4573 return -ENXIO;
4574 }
4575
clk_nodrv_disable_unprepare(struct clk_hw * hw)4576 static void clk_nodrv_disable_unprepare(struct clk_hw *hw)
4577 {
4578 WARN_ON_ONCE(1);
4579 }
4580
clk_nodrv_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)4581 static int clk_nodrv_set_rate(struct clk_hw *hw, unsigned long rate,
4582 unsigned long parent_rate)
4583 {
4584 return -ENXIO;
4585 }
4586
clk_nodrv_set_parent(struct clk_hw * hw,u8 index)4587 static int clk_nodrv_set_parent(struct clk_hw *hw, u8 index)
4588 {
4589 return -ENXIO;
4590 }
4591
clk_nodrv_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)4592 static int clk_nodrv_determine_rate(struct clk_hw *hw,
4593 struct clk_rate_request *req)
4594 {
4595 return -ENXIO;
4596 }
4597
4598 static const struct clk_ops clk_nodrv_ops = {
4599 .enable = clk_nodrv_prepare_enable,
4600 .disable = clk_nodrv_disable_unprepare,
4601 .prepare = clk_nodrv_prepare_enable,
4602 .unprepare = clk_nodrv_disable_unprepare,
4603 .determine_rate = clk_nodrv_determine_rate,
4604 .set_rate = clk_nodrv_set_rate,
4605 .set_parent = clk_nodrv_set_parent,
4606 };
4607
clk_core_evict_parent_cache_subtree(struct clk_core * root,const struct clk_core * target)4608 static void clk_core_evict_parent_cache_subtree(struct clk_core *root,
4609 const struct clk_core *target)
4610 {
4611 int i;
4612 struct clk_core *child;
4613
4614 for (i = 0; i < root->num_parents; i++)
4615 if (root->parents[i].core == target)
4616 root->parents[i].core = NULL;
4617
4618 hlist_for_each_entry(child, &root->children, child_node)
4619 clk_core_evict_parent_cache_subtree(child, target);
4620 }
4621
4622 /* Remove this clk from all parent caches */
clk_core_evict_parent_cache(struct clk_core * core)4623 static void clk_core_evict_parent_cache(struct clk_core *core)
4624 {
4625 const struct hlist_head **lists;
4626 struct clk_core *root;
4627
4628 lockdep_assert_held(&prepare_lock);
4629
4630 for (lists = all_lists; *lists; lists++)
4631 hlist_for_each_entry(root, *lists, child_node)
4632 clk_core_evict_parent_cache_subtree(root, core);
4633
4634 }
4635
4636 /**
4637 * clk_unregister - unregister a currently registered clock
4638 * @clk: clock to unregister
4639 */
clk_unregister(struct clk * clk)4640 void clk_unregister(struct clk *clk)
4641 {
4642 unsigned long flags;
4643 const struct clk_ops *ops;
4644
4645 if (!clk || WARN_ON_ONCE(IS_ERR(clk)))
4646 return;
4647
4648 clk_debug_unregister(clk->core);
4649
4650 clk_prepare_lock();
4651
4652 ops = clk->core->ops;
4653 if (ops == &clk_nodrv_ops) {
4654 pr_err("%s: unregistered clock: %s\n", __func__,
4655 clk->core->name);
4656 clk_prepare_unlock();
4657 return;
4658 }
4659 /*
4660 * Assign empty clock ops for consumers that might still hold
4661 * a reference to this clock.
4662 */
4663 flags = clk_enable_lock();
4664 clk->core->ops = &clk_nodrv_ops;
4665 clk_enable_unlock(flags);
4666
4667 if (ops->terminate)
4668 ops->terminate(clk->core->hw);
4669
4670 if (!hlist_empty(&clk->core->children)) {
4671 struct clk_core *child;
4672 struct hlist_node *t;
4673
4674 /* Reparent all children to the orphan list. */
4675 hlist_for_each_entry_safe(child, t, &clk->core->children,
4676 child_node)
4677 clk_core_set_parent_nolock(child, NULL);
4678 }
4679
4680 clk_core_evict_parent_cache(clk->core);
4681
4682 hash_del(&clk->core->hashtable_node);
4683 hlist_del_init(&clk->core->child_node);
4684
4685 if (clk->core->prepare_count)
4686 pr_warn("%s: unregistering prepared clock: %s\n",
4687 __func__, clk->core->name);
4688
4689 if (clk->core->protect_count)
4690 pr_warn("%s: unregistering protected clock: %s\n",
4691 __func__, clk->core->name);
4692 clk_prepare_unlock();
4693
4694 kref_put(&clk->core->ref, __clk_release);
4695 free_clk(clk);
4696 }
4697 EXPORT_SYMBOL_GPL(clk_unregister);
4698
4699 /**
4700 * clk_hw_unregister - unregister a currently registered clk_hw
4701 * @hw: hardware-specific clock data to unregister
4702 */
clk_hw_unregister(struct clk_hw * hw)4703 void clk_hw_unregister(struct clk_hw *hw)
4704 {
4705 clk_unregister(hw->clk);
4706 }
4707 EXPORT_SYMBOL_GPL(clk_hw_unregister);
4708
devm_clk_unregister_cb(struct device * dev,void * res)4709 static void devm_clk_unregister_cb(struct device *dev, void *res)
4710 {
4711 clk_unregister(*(struct clk **)res);
4712 }
4713
devm_clk_hw_unregister_cb(struct device * dev,void * res)4714 static void devm_clk_hw_unregister_cb(struct device *dev, void *res)
4715 {
4716 clk_hw_unregister(*(struct clk_hw **)res);
4717 }
4718
4719 /**
4720 * devm_clk_register - resource managed clk_register()
4721 * @dev: device that is registering this clock
4722 * @hw: link to hardware-specific clock data
4723 *
4724 * Managed clk_register(). This function is *deprecated*, use devm_clk_hw_register() instead.
4725 *
4726 * Clocks returned from this function are automatically clk_unregister()ed on
4727 * driver detach. See clk_register() for more information.
4728 */
devm_clk_register(struct device * dev,struct clk_hw * hw)4729 struct clk *devm_clk_register(struct device *dev, struct clk_hw *hw)
4730 {
4731 struct clk *clk;
4732 struct clk **clkp;
4733
4734 clkp = devres_alloc(devm_clk_unregister_cb, sizeof(*clkp), GFP_KERNEL);
4735 if (!clkp)
4736 return ERR_PTR(-ENOMEM);
4737
4738 clk = clk_register(dev, hw);
4739 if (!IS_ERR(clk)) {
4740 *clkp = clk;
4741 devres_add(dev, clkp);
4742 } else {
4743 devres_free(clkp);
4744 }
4745
4746 return clk;
4747 }
4748 EXPORT_SYMBOL_GPL(devm_clk_register);
4749
4750 /**
4751 * devm_clk_hw_register - resource managed clk_hw_register()
4752 * @dev: device that is registering this clock
4753 * @hw: link to hardware-specific clock data
4754 *
4755 * Managed clk_hw_register(). Clocks registered by this function are
4756 * automatically clk_hw_unregister()ed on driver detach. See clk_hw_register()
4757 * for more information.
4758 */
devm_clk_hw_register(struct device * dev,struct clk_hw * hw)4759 int devm_clk_hw_register(struct device *dev, struct clk_hw *hw)
4760 {
4761 struct clk_hw **hwp;
4762 int ret;
4763
4764 hwp = devres_alloc(devm_clk_hw_unregister_cb, sizeof(*hwp), GFP_KERNEL);
4765 if (!hwp)
4766 return -ENOMEM;
4767
4768 ret = clk_hw_register(dev, hw);
4769 if (!ret) {
4770 *hwp = hw;
4771 devres_add(dev, hwp);
4772 } else {
4773 devres_free(hwp);
4774 }
4775
4776 return ret;
4777 }
4778 EXPORT_SYMBOL_GPL(devm_clk_hw_register);
4779
devm_clk_release(struct device * dev,void * res)4780 static void devm_clk_release(struct device *dev, void *res)
4781 {
4782 clk_put(*(struct clk **)res);
4783 }
4784
4785 /**
4786 * devm_clk_hw_get_clk - resource managed clk_hw_get_clk()
4787 * @dev: device that is registering this clock
4788 * @hw: clk_hw associated with the clk being consumed
4789 * @con_id: connection ID string on device
4790 *
4791 * Managed clk_hw_get_clk(). Clocks got with this function are
4792 * automatically clk_put() on driver detach. See clk_put()
4793 * for more information.
4794 */
devm_clk_hw_get_clk(struct device * dev,struct clk_hw * hw,const char * con_id)4795 struct clk *devm_clk_hw_get_clk(struct device *dev, struct clk_hw *hw,
4796 const char *con_id)
4797 {
4798 struct clk *clk;
4799 struct clk **clkp;
4800
4801 /* This should not happen because it would mean we have drivers
4802 * passing around clk_hw pointers instead of having the caller use
4803 * proper clk_get() style APIs
4804 */
4805 WARN_ON_ONCE(dev != hw->core->dev);
4806
4807 clkp = devres_alloc(devm_clk_release, sizeof(*clkp), GFP_KERNEL);
4808 if (!clkp)
4809 return ERR_PTR(-ENOMEM);
4810
4811 clk = clk_hw_get_clk(hw, con_id);
4812 if (!IS_ERR(clk)) {
4813 *clkp = clk;
4814 devres_add(dev, clkp);
4815 } else {
4816 devres_free(clkp);
4817 }
4818
4819 return clk;
4820 }
4821 EXPORT_SYMBOL_GPL(devm_clk_hw_get_clk);
4822
4823 /*
4824 * clkdev helpers
4825 */
4826
__clk_put(struct clk * clk)4827 void __clk_put(struct clk *clk)
4828 {
4829 struct module *owner;
4830
4831 if (!clk || WARN_ON_ONCE(IS_ERR(clk)))
4832 return;
4833
4834 clk_prepare_lock();
4835
4836 /*
4837 * Before calling clk_put, all calls to clk_rate_exclusive_get() from a
4838 * given user should be balanced with calls to clk_rate_exclusive_put()
4839 * and by that same consumer
4840 */
4841 if (WARN_ON(clk->exclusive_count)) {
4842 /* We voiced our concern, let's sanitize the situation */
4843 clk->core->protect_count -= (clk->exclusive_count - 1);
4844 clk_core_rate_unprotect(clk->core);
4845 clk->exclusive_count = 0;
4846 }
4847
4848 clk_core_unlink_consumer(clk);
4849
4850 /* If we had any boundaries on that clock, let's drop them. */
4851 if (clk->min_rate > 0 || clk->max_rate < ULONG_MAX)
4852 clk_set_rate_range_nolock(clk, 0, ULONG_MAX);
4853
4854 clk_prepare_unlock();
4855
4856 owner = clk->core->owner;
4857 kref_put(&clk->core->ref, __clk_release);
4858 module_put(owner);
4859 free_clk(clk);
4860 }
4861
4862 /*** clk rate change notifiers ***/
4863
4864 /**
4865 * clk_notifier_register - add a clk rate change notifier
4866 * @clk: struct clk * to watch
4867 * @nb: struct notifier_block * with callback info
4868 *
4869 * Request notification when clk's rate changes. This uses an SRCU
4870 * notifier because we want it to block and notifier unregistrations are
4871 * uncommon. The callbacks associated with the notifier must not
4872 * re-enter into the clk framework by calling any top-level clk APIs;
4873 * this will cause a nested prepare_lock mutex.
4874 *
4875 * In all notification cases (pre, post and abort rate change) the original
4876 * clock rate is passed to the callback via struct clk_notifier_data.old_rate
4877 * and the new frequency is passed via struct clk_notifier_data.new_rate.
4878 *
4879 * clk_notifier_register() must be called from non-atomic context.
4880 * Returns -EINVAL if called with null arguments, -ENOMEM upon
4881 * allocation failure; otherwise, passes along the return value of
4882 * srcu_notifier_chain_register().
4883 */
clk_notifier_register(struct clk * clk,struct notifier_block * nb)4884 int clk_notifier_register(struct clk *clk, struct notifier_block *nb)
4885 {
4886 struct clk_notifier *cn;
4887 int ret = -ENOMEM;
4888
4889 if (!clk || !nb)
4890 return -EINVAL;
4891
4892 clk_prepare_lock();
4893
4894 /* search the list of notifiers for this clk */
4895 list_for_each_entry(cn, &clk_notifier_list, node)
4896 if (cn->clk == clk)
4897 goto found;
4898
4899 /* if clk wasn't in the notifier list, allocate new clk_notifier */
4900 cn = kzalloc_obj(*cn);
4901 if (!cn)
4902 goto out;
4903
4904 cn->clk = clk;
4905 srcu_init_notifier_head(&cn->notifier_head);
4906
4907 list_add(&cn->node, &clk_notifier_list);
4908
4909 found:
4910 ret = srcu_notifier_chain_register(&cn->notifier_head, nb);
4911
4912 clk->core->notifier_count++;
4913
4914 out:
4915 clk_prepare_unlock();
4916
4917 return ret;
4918 }
4919 EXPORT_SYMBOL_GPL(clk_notifier_register);
4920
4921 /**
4922 * clk_notifier_unregister - remove a clk rate change notifier
4923 * @clk: struct clk *
4924 * @nb: struct notifier_block * with callback info
4925 *
4926 * Request no further notification for changes to 'clk' and frees memory
4927 * allocated in clk_notifier_register.
4928 *
4929 * Returns -EINVAL if called with null arguments; otherwise, passes
4930 * along the return value of srcu_notifier_chain_unregister().
4931 */
clk_notifier_unregister(struct clk * clk,struct notifier_block * nb)4932 int clk_notifier_unregister(struct clk *clk, struct notifier_block *nb)
4933 {
4934 struct clk_notifier *cn;
4935 int ret = -ENOENT;
4936
4937 if (!clk || !nb)
4938 return -EINVAL;
4939
4940 clk_prepare_lock();
4941
4942 list_for_each_entry(cn, &clk_notifier_list, node) {
4943 if (cn->clk == clk) {
4944 ret = srcu_notifier_chain_unregister(&cn->notifier_head, nb);
4945
4946 clk->core->notifier_count--;
4947
4948 /* XXX the notifier code should handle this better */
4949 if (!cn->notifier_head.head) {
4950 srcu_cleanup_notifier_head(&cn->notifier_head);
4951 list_del(&cn->node);
4952 kfree(cn);
4953 }
4954 break;
4955 }
4956 }
4957
4958 clk_prepare_unlock();
4959
4960 return ret;
4961 }
4962 EXPORT_SYMBOL_GPL(clk_notifier_unregister);
4963
4964 struct clk_notifier_devres {
4965 struct clk *clk;
4966 struct notifier_block *nb;
4967 };
4968
devm_clk_notifier_release(struct device * dev,void * res)4969 static void devm_clk_notifier_release(struct device *dev, void *res)
4970 {
4971 struct clk_notifier_devres *devres = res;
4972
4973 clk_notifier_unregister(devres->clk, devres->nb);
4974 }
4975
devm_clk_notifier_register(struct device * dev,struct clk * clk,struct notifier_block * nb)4976 int devm_clk_notifier_register(struct device *dev, struct clk *clk,
4977 struct notifier_block *nb)
4978 {
4979 struct clk_notifier_devres *devres;
4980 int ret;
4981
4982 devres = devres_alloc(devm_clk_notifier_release,
4983 sizeof(*devres), GFP_KERNEL);
4984
4985 if (!devres)
4986 return -ENOMEM;
4987
4988 ret = clk_notifier_register(clk, nb);
4989 if (!ret) {
4990 devres->clk = clk;
4991 devres->nb = nb;
4992 devres_add(dev, devres);
4993 } else {
4994 devres_free(devres);
4995 }
4996
4997 return ret;
4998 }
4999 EXPORT_SYMBOL_GPL(devm_clk_notifier_register);
5000
5001 #ifdef CONFIG_OF
clk_core_reparent_orphans(void)5002 static void clk_core_reparent_orphans(void)
5003 {
5004 clk_prepare_lock();
5005 clk_core_reparent_orphans_nolock();
5006 clk_prepare_unlock();
5007 }
5008
5009 /**
5010 * struct of_clk_provider - Clock provider registration structure
5011 * @link: Entry in global list of clock providers
5012 * @node: Pointer to device tree node of clock provider
5013 * @get: Get clock callback. Returns NULL or a struct clk for the
5014 * given clock specifier
5015 * @get_hw: Get clk_hw callback. Returns NULL, ERR_PTR or a
5016 * struct clk_hw for the given clock specifier
5017 * @data: context pointer to be passed into @get callback
5018 */
5019 struct of_clk_provider {
5020 struct list_head link;
5021
5022 struct device_node *node;
5023 struct clk *(*get)(struct of_phandle_args *clkspec, void *data);
5024 struct clk_hw *(*get_hw)(struct of_phandle_args *clkspec, void *data);
5025 void *data;
5026 };
5027
5028 extern struct of_device_id __clk_of_table;
5029 static const struct of_device_id __clk_of_table_sentinel
5030 __used __section("__clk_of_table_end");
5031
5032 static LIST_HEAD(of_clk_providers);
5033 static DEFINE_MUTEX(of_clk_mutex);
5034
of_clk_src_simple_get(struct of_phandle_args * clkspec,void * data)5035 struct clk *of_clk_src_simple_get(struct of_phandle_args *clkspec,
5036 void *data)
5037 {
5038 return data;
5039 }
5040 EXPORT_SYMBOL_GPL(of_clk_src_simple_get);
5041
of_clk_hw_simple_get(struct of_phandle_args * clkspec,void * data)5042 struct clk_hw *of_clk_hw_simple_get(struct of_phandle_args *clkspec, void *data)
5043 {
5044 return data;
5045 }
5046 EXPORT_SYMBOL_GPL(of_clk_hw_simple_get);
5047
of_clk_src_onecell_get(struct of_phandle_args * clkspec,void * data)5048 struct clk *of_clk_src_onecell_get(struct of_phandle_args *clkspec, void *data)
5049 {
5050 struct clk_onecell_data *clk_data = data;
5051 unsigned int idx = clkspec->args[0];
5052
5053 if (idx >= clk_data->clk_num) {
5054 pr_err("%s: invalid clock index %u\n", __func__, idx);
5055 return ERR_PTR(-EINVAL);
5056 }
5057
5058 return clk_data->clks[idx];
5059 }
5060 EXPORT_SYMBOL_GPL(of_clk_src_onecell_get);
5061
5062 struct clk_hw *
of_clk_hw_onecell_get(struct of_phandle_args * clkspec,void * data)5063 of_clk_hw_onecell_get(struct of_phandle_args *clkspec, void *data)
5064 {
5065 struct clk_hw_onecell_data *hw_data = data;
5066 unsigned int idx = clkspec->args[0];
5067
5068 if (idx >= hw_data->num) {
5069 pr_err("%s: invalid index %u\n", __func__, idx);
5070 return ERR_PTR(-EINVAL);
5071 }
5072
5073 return hw_data->hws[idx];
5074 }
5075 EXPORT_SYMBOL_GPL(of_clk_hw_onecell_get);
5076
5077 /**
5078 * of_clk_add_provider() - Register a clock provider for a node
5079 * @np: Device node pointer associated with clock provider
5080 * @clk_src_get: callback for decoding clock
5081 * @data: context pointer for @clk_src_get callback.
5082 *
5083 * This function is *deprecated*. Use of_clk_add_hw_provider() instead.
5084 */
of_clk_add_provider(struct device_node * np,struct clk * (* clk_src_get)(struct of_phandle_args * clkspec,void * data),void * data)5085 int of_clk_add_provider(struct device_node *np,
5086 struct clk *(*clk_src_get)(struct of_phandle_args *clkspec,
5087 void *data),
5088 void *data)
5089 {
5090 struct of_clk_provider *cp;
5091 int ret;
5092
5093 if (!np)
5094 return 0;
5095
5096 cp = kzalloc_obj(*cp);
5097 if (!cp)
5098 return -ENOMEM;
5099
5100 cp->node = of_node_get(np);
5101 cp->data = data;
5102 cp->get = clk_src_get;
5103
5104 mutex_lock(&of_clk_mutex);
5105 list_add(&cp->link, &of_clk_providers);
5106 mutex_unlock(&of_clk_mutex);
5107 pr_debug("Added clock from %pOF\n", np);
5108
5109 clk_core_reparent_orphans();
5110
5111 ret = of_clk_set_defaults(np, true);
5112 if (ret < 0)
5113 of_clk_del_provider(np);
5114
5115 fwnode_dev_initialized(&np->fwnode, true);
5116
5117 return ret;
5118 }
5119 EXPORT_SYMBOL_GPL(of_clk_add_provider);
5120
5121 /**
5122 * of_clk_add_hw_provider() - Register a clock provider for a node
5123 * @np: Device node pointer associated with clock provider
5124 * @get: callback for decoding clk_hw
5125 * @data: context pointer for @get callback.
5126 */
of_clk_add_hw_provider(struct device_node * np,struct clk_hw * (* get)(struct of_phandle_args * clkspec,void * data),void * data)5127 int of_clk_add_hw_provider(struct device_node *np,
5128 struct clk_hw *(*get)(struct of_phandle_args *clkspec,
5129 void *data),
5130 void *data)
5131 {
5132 struct of_clk_provider *cp;
5133 int ret;
5134
5135 if (!np)
5136 return 0;
5137
5138 cp = kzalloc_obj(*cp);
5139 if (!cp)
5140 return -ENOMEM;
5141
5142 cp->node = of_node_get(np);
5143 cp->data = data;
5144 cp->get_hw = get;
5145
5146 mutex_lock(&of_clk_mutex);
5147 list_add(&cp->link, &of_clk_providers);
5148 mutex_unlock(&of_clk_mutex);
5149 pr_debug("Added clk_hw provider from %pOF\n", np);
5150
5151 clk_core_reparent_orphans();
5152
5153 ret = of_clk_set_defaults(np, true);
5154 if (ret < 0)
5155 of_clk_del_provider(np);
5156
5157 fwnode_dev_initialized(&np->fwnode, true);
5158
5159 return ret;
5160 }
5161 EXPORT_SYMBOL_GPL(of_clk_add_hw_provider);
5162
devm_of_clk_release_provider(struct device * dev,void * res)5163 static void devm_of_clk_release_provider(struct device *dev, void *res)
5164 {
5165 of_clk_del_provider(*(struct device_node **)res);
5166 }
5167
5168 /*
5169 * We allow a child device to use its parent device as the clock provider node
5170 * for cases like MFD sub-devices where the child device driver wants to use
5171 * devm_*() APIs but not list the device in DT as a sub-node.
5172 */
get_clk_provider_node(struct device * dev)5173 static struct device_node *get_clk_provider_node(struct device *dev)
5174 {
5175 struct device_node *np, *parent_np;
5176
5177 np = dev->of_node;
5178 parent_np = dev->parent ? dev->parent->of_node : NULL;
5179
5180 if (!of_property_present(np, "#clock-cells"))
5181 if (of_property_present(parent_np, "#clock-cells"))
5182 np = parent_np;
5183
5184 return np;
5185 }
5186
5187 /**
5188 * devm_of_clk_add_hw_provider() - Managed clk provider node registration
5189 * @dev: Device acting as the clock provider (used for DT node and lifetime)
5190 * @get: callback for decoding clk_hw
5191 * @data: context pointer for @get callback
5192 *
5193 * Registers clock provider for given device's node. If the device has no DT
5194 * node or if the device node lacks of clock provider information (#clock-cells)
5195 * then the parent device's node is scanned for this information. If parent node
5196 * has the #clock-cells then it is used in registration. Provider is
5197 * automatically released at device exit.
5198 *
5199 * Return: 0 on success or an errno on failure.
5200 */
devm_of_clk_add_hw_provider(struct device * dev,struct clk_hw * (* get)(struct of_phandle_args * clkspec,void * data),void * data)5201 int devm_of_clk_add_hw_provider(struct device *dev,
5202 struct clk_hw *(*get)(struct of_phandle_args *clkspec,
5203 void *data),
5204 void *data)
5205 {
5206 struct device_node **ptr, *np;
5207 int ret;
5208
5209 ptr = devres_alloc(devm_of_clk_release_provider, sizeof(*ptr),
5210 GFP_KERNEL);
5211 if (!ptr)
5212 return -ENOMEM;
5213
5214 np = get_clk_provider_node(dev);
5215 ret = of_clk_add_hw_provider(np, get, data);
5216 if (!ret) {
5217 *ptr = np;
5218 devres_add(dev, ptr);
5219 } else {
5220 devres_free(ptr);
5221 }
5222
5223 return ret;
5224 }
5225 EXPORT_SYMBOL_GPL(devm_of_clk_add_hw_provider);
5226
5227 /**
5228 * of_clk_del_provider() - Remove a previously registered clock provider
5229 * @np: Device node pointer associated with clock provider
5230 */
of_clk_del_provider(struct device_node * np)5231 void of_clk_del_provider(struct device_node *np)
5232 {
5233 struct of_clk_provider *cp;
5234
5235 if (!np)
5236 return;
5237
5238 mutex_lock(&of_clk_mutex);
5239 list_for_each_entry(cp, &of_clk_providers, link) {
5240 if (cp->node == np) {
5241 list_del(&cp->link);
5242 fwnode_dev_initialized(&np->fwnode, false);
5243 of_node_put(cp->node);
5244 kfree(cp);
5245 break;
5246 }
5247 }
5248 mutex_unlock(&of_clk_mutex);
5249 }
5250 EXPORT_SYMBOL_GPL(of_clk_del_provider);
5251
5252 /**
5253 * of_parse_clkspec() - Parse a DT clock specifier for a given device node
5254 * @np: device node to parse clock specifier from
5255 * @index: index of phandle to parse clock out of. If index < 0, @name is used
5256 * @name: clock name to find and parse. If name is NULL, the index is used
5257 * @out_args: Result of parsing the clock specifier
5258 *
5259 * Parses a device node's "clocks" and "clock-names" properties to find the
5260 * phandle and cells for the index or name that is desired. The resulting clock
5261 * specifier is placed into @out_args, or an errno is returned when there's a
5262 * parsing error. The @index argument is ignored if @name is non-NULL.
5263 *
5264 * Example:
5265 *
5266 * phandle1: clock-controller@1 {
5267 * #clock-cells = <2>;
5268 * }
5269 *
5270 * phandle2: clock-controller@2 {
5271 * #clock-cells = <1>;
5272 * }
5273 *
5274 * clock-consumer@3 {
5275 * clocks = <&phandle1 1 2 &phandle2 3>;
5276 * clock-names = "name1", "name2";
5277 * }
5278 *
5279 * To get a device_node for `clock-controller@2' node you may call this
5280 * function a few different ways:
5281 *
5282 * of_parse_clkspec(clock-consumer@3, -1, "name2", &args);
5283 * of_parse_clkspec(clock-consumer@3, 1, NULL, &args);
5284 * of_parse_clkspec(clock-consumer@3, 1, "name2", &args);
5285 *
5286 * Return: 0 upon successfully parsing the clock specifier. Otherwise, -ENOENT
5287 * if @name is NULL or -EINVAL if @name is non-NULL and it can't be found in
5288 * the "clock-names" property of @np.
5289 */
of_parse_clkspec(const struct device_node * np,int index,const char * name,struct of_phandle_args * out_args)5290 static int of_parse_clkspec(const struct device_node *np, int index,
5291 const char *name, struct of_phandle_args *out_args)
5292 {
5293 int ret = -ENOENT;
5294
5295 /* Walk up the tree of devices looking for a clock property that matches */
5296 while (np) {
5297 /*
5298 * For named clocks, first look up the name in the
5299 * "clock-names" property. If it cannot be found, then index
5300 * will be an error code and of_parse_phandle_with_args() will
5301 * return -EINVAL.
5302 */
5303 if (name)
5304 index = of_property_match_string(np, "clock-names", name);
5305 ret = of_parse_phandle_with_args(np, "clocks", "#clock-cells",
5306 index, out_args);
5307 if (!ret)
5308 break;
5309 if (name && index >= 0)
5310 break;
5311
5312 /*
5313 * No matching clock found on this node. If the parent node
5314 * has a "clock-ranges" property, then we can try one of its
5315 * clocks.
5316 */
5317 np = np->parent;
5318 if (np && !of_property_present(np, "clock-ranges"))
5319 break;
5320 index = 0;
5321 }
5322
5323 return ret;
5324 }
5325
5326 static struct clk_hw *
__of_clk_get_hw_from_provider(struct of_clk_provider * provider,struct of_phandle_args * clkspec)5327 __of_clk_get_hw_from_provider(struct of_clk_provider *provider,
5328 struct of_phandle_args *clkspec)
5329 {
5330 struct clk *clk;
5331
5332 if (provider->get_hw)
5333 return provider->get_hw(clkspec, provider->data);
5334
5335 clk = provider->get(clkspec, provider->data);
5336 if (IS_ERR(clk))
5337 return ERR_CAST(clk);
5338 return __clk_get_hw(clk);
5339 }
5340
5341 static struct clk_hw *
of_clk_get_hw_from_clkspec(struct of_phandle_args * clkspec)5342 of_clk_get_hw_from_clkspec(struct of_phandle_args *clkspec)
5343 {
5344 struct of_clk_provider *provider;
5345 struct clk_hw *hw = ERR_PTR(-EPROBE_DEFER);
5346
5347 if (!clkspec)
5348 return ERR_PTR(-EINVAL);
5349
5350 /* Check if node in clkspec is in disabled/fail state */
5351 if (!of_device_is_available(clkspec->np))
5352 return ERR_PTR(-ENOENT);
5353
5354 mutex_lock(&of_clk_mutex);
5355 list_for_each_entry(provider, &of_clk_providers, link) {
5356 if (provider->node == clkspec->np) {
5357 hw = __of_clk_get_hw_from_provider(provider, clkspec);
5358 if (!IS_ERR(hw))
5359 break;
5360 }
5361 }
5362 mutex_unlock(&of_clk_mutex);
5363
5364 return hw;
5365 }
5366
5367 /**
5368 * of_clk_get_from_provider() - Lookup a clock from a clock provider
5369 * @clkspec: pointer to a clock specifier data structure
5370 *
5371 * This function looks up a struct clk from the registered list of clock
5372 * providers, an input is a clock specifier data structure as returned
5373 * from the of_parse_phandle_with_args() function call.
5374 */
of_clk_get_from_provider(struct of_phandle_args * clkspec)5375 struct clk *of_clk_get_from_provider(struct of_phandle_args *clkspec)
5376 {
5377 struct clk_hw *hw = of_clk_get_hw_from_clkspec(clkspec);
5378
5379 return clk_hw_create_clk(NULL, hw, NULL, __func__);
5380 }
5381 EXPORT_SYMBOL_GPL(of_clk_get_from_provider);
5382
of_clk_get_hw(struct device_node * np,int index,const char * con_id)5383 struct clk_hw *of_clk_get_hw(struct device_node *np, int index,
5384 const char *con_id)
5385 {
5386 int ret;
5387 struct clk_hw *hw;
5388 struct of_phandle_args clkspec;
5389
5390 ret = of_parse_clkspec(np, index, con_id, &clkspec);
5391 if (ret)
5392 return ERR_PTR(ret);
5393
5394 hw = of_clk_get_hw_from_clkspec(&clkspec);
5395 of_node_put(clkspec.np);
5396
5397 return hw;
5398 }
5399
__of_clk_get(struct device_node * np,int index,const char * dev_id,const char * con_id)5400 static struct clk *__of_clk_get(struct device_node *np,
5401 int index, const char *dev_id,
5402 const char *con_id)
5403 {
5404 struct clk_hw *hw = of_clk_get_hw(np, index, con_id);
5405
5406 return clk_hw_create_clk(NULL, hw, dev_id, con_id);
5407 }
5408
of_clk_get(struct device_node * np,int index)5409 struct clk *of_clk_get(struct device_node *np, int index)
5410 {
5411 return __of_clk_get(np, index, np->full_name, NULL);
5412 }
5413 EXPORT_SYMBOL(of_clk_get);
5414
5415 /**
5416 * of_clk_get_by_name() - Parse and lookup a clock referenced by a device node
5417 * @np: pointer to clock consumer node
5418 * @name: name of consumer's clock input, or NULL for the first clock reference
5419 *
5420 * This function parses the clocks and clock-names properties,
5421 * and uses them to look up the struct clk from the registered list of clock
5422 * providers.
5423 */
of_clk_get_by_name(struct device_node * np,const char * name)5424 struct clk *of_clk_get_by_name(struct device_node *np, const char *name)
5425 {
5426 if (!np)
5427 return ERR_PTR(-ENOENT);
5428
5429 return __of_clk_get(np, 0, np->full_name, name);
5430 }
5431 EXPORT_SYMBOL(of_clk_get_by_name);
5432
5433 /**
5434 * of_clk_get_parent_count() - Count the number of clocks a device node has
5435 * @np: device node to count
5436 *
5437 * Returns: The number of clocks that are possible parents of this node
5438 */
of_clk_get_parent_count(const struct device_node * np)5439 unsigned int of_clk_get_parent_count(const struct device_node *np)
5440 {
5441 int count;
5442
5443 count = of_count_phandle_with_args(np, "clocks", "#clock-cells");
5444 if (count < 0)
5445 return 0;
5446
5447 return count;
5448 }
5449 EXPORT_SYMBOL_GPL(of_clk_get_parent_count);
5450
of_clk_get_parent_name(const struct device_node * np,int index)5451 const char *of_clk_get_parent_name(const struct device_node *np, int index)
5452 {
5453 struct of_phandle_args clkspec;
5454 const char *clk_name;
5455 bool found = false;
5456 u32 pv;
5457 int rc;
5458 int count;
5459 struct clk *clk;
5460
5461 rc = of_parse_phandle_with_args(np, "clocks", "#clock-cells", index,
5462 &clkspec);
5463 if (rc)
5464 return NULL;
5465
5466 index = clkspec.args_count ? clkspec.args[0] : 0;
5467 count = 0;
5468
5469 /* if there is an indices property, use it to transfer the index
5470 * specified into an array offset for the clock-output-names property.
5471 */
5472 of_property_for_each_u32(clkspec.np, "clock-indices", pv) {
5473 if (index == pv) {
5474 index = count;
5475 found = true;
5476 break;
5477 }
5478 count++;
5479 }
5480 /* We went off the end of 'clock-indices' without finding it */
5481 if (of_property_present(clkspec.np, "clock-indices") && !found) {
5482 of_node_put(clkspec.np);
5483 return NULL;
5484 }
5485
5486 if (of_property_read_string_index(clkspec.np, "clock-output-names",
5487 index,
5488 &clk_name) < 0) {
5489 /*
5490 * Best effort to get the name if the clock has been
5491 * registered with the framework. If the clock isn't
5492 * registered, we return the node name as the name of
5493 * the clock as long as #clock-cells = 0.
5494 */
5495 clk = of_clk_get_from_provider(&clkspec);
5496 if (IS_ERR(clk)) {
5497 if (clkspec.args_count == 0)
5498 clk_name = clkspec.np->name;
5499 else
5500 clk_name = NULL;
5501 } else {
5502 clk_name = __clk_get_name(clk);
5503 clk_put(clk);
5504 }
5505 }
5506
5507
5508 of_node_put(clkspec.np);
5509 return clk_name;
5510 }
5511 EXPORT_SYMBOL_GPL(of_clk_get_parent_name);
5512
5513 /**
5514 * of_clk_parent_fill() - Fill @parents with names of @np's parents and return
5515 * number of parents
5516 * @np: Device node pointer associated with clock provider
5517 * @parents: pointer to char array that hold the parents' names
5518 * @size: size of the @parents array
5519 *
5520 * Return: number of parents for the clock node.
5521 */
of_clk_parent_fill(struct device_node * np,const char ** parents,unsigned int size)5522 int of_clk_parent_fill(struct device_node *np, const char **parents,
5523 unsigned int size)
5524 {
5525 unsigned int i = 0;
5526
5527 while (i < size && (parents[i] = of_clk_get_parent_name(np, i)) != NULL)
5528 i++;
5529
5530 return i;
5531 }
5532 EXPORT_SYMBOL_GPL(of_clk_parent_fill);
5533
5534 struct clock_provider {
5535 void (*clk_init_cb)(struct device_node *);
5536 struct device_node *np;
5537 struct list_head node;
5538 };
5539
5540 /*
5541 * This function looks for a parent clock. If there is one, then it
5542 * checks that the provider for this parent clock was initialized, in
5543 * this case the parent clock will be ready.
5544 */
parent_ready(struct device_node * np)5545 static int parent_ready(struct device_node *np)
5546 {
5547 int i = 0;
5548
5549 while (true) {
5550 struct clk *clk = of_clk_get(np, i);
5551
5552 /* this parent is ready we can check the next one */
5553 if (!IS_ERR(clk)) {
5554 clk_put(clk);
5555 i++;
5556 continue;
5557 }
5558
5559 /* at least one parent is not ready, we exit now */
5560 if (PTR_ERR(clk) == -EPROBE_DEFER)
5561 return 0;
5562
5563 /*
5564 * Here we make assumption that the device tree is
5565 * written correctly. So an error means that there is
5566 * no more parent. As we didn't exit yet, then the
5567 * previous parent are ready. If there is no clock
5568 * parent, no need to wait for them, then we can
5569 * consider their absence as being ready
5570 */
5571 return 1;
5572 }
5573 }
5574
5575 /**
5576 * of_clk_detect_critical() - set CLK_IS_CRITICAL flag from Device Tree
5577 * @np: Device node pointer associated with clock provider
5578 * @index: clock index
5579 * @flags: pointer to top-level framework flags
5580 *
5581 * Detects if the clock-critical property exists and, if so, sets the
5582 * corresponding CLK_IS_CRITICAL flag.
5583 *
5584 * Do not use this function. It exists only for legacy Device Tree
5585 * bindings, such as the one-clock-per-node style that are outdated.
5586 * Those bindings typically put all clock data into .dts and the Linux
5587 * driver has no clock data, thus making it impossible to set this flag
5588 * correctly from the driver. Only those drivers may call
5589 * of_clk_detect_critical from their setup functions.
5590 *
5591 * Return: error code or zero on success
5592 */
of_clk_detect_critical(struct device_node * np,int index,unsigned long * flags)5593 int of_clk_detect_critical(struct device_node *np, int index,
5594 unsigned long *flags)
5595 {
5596 uint32_t idx;
5597
5598 if (!np || !flags)
5599 return -EINVAL;
5600
5601 of_property_for_each_u32(np, "clock-critical", idx)
5602 if (index == idx)
5603 *flags |= CLK_IS_CRITICAL;
5604
5605 return 0;
5606 }
5607
5608 /**
5609 * of_clk_init() - Scan and init clock providers from the DT
5610 * @matches: array of compatible values and init functions for providers.
5611 *
5612 * This function scans the device tree for matching clock providers
5613 * and calls their initialization functions. It also does it by trying
5614 * to follow the dependencies.
5615 */
of_clk_init(const struct of_device_id * matches)5616 void __init of_clk_init(const struct of_device_id *matches)
5617 {
5618 const struct of_device_id *match;
5619 struct device_node *np;
5620 struct clock_provider *clk_provider, *next;
5621 bool is_init_done;
5622 bool force = false;
5623 LIST_HEAD(clk_provider_list);
5624
5625 if (!matches)
5626 matches = &__clk_of_table;
5627
5628 /* First prepare the list of the clocks providers */
5629 for_each_matching_node_and_match(np, matches, &match) {
5630 struct clock_provider *parent;
5631
5632 if (!of_device_is_available(np))
5633 continue;
5634
5635 parent = kzalloc_obj(*parent);
5636 if (!parent) {
5637 list_for_each_entry_safe(clk_provider, next,
5638 &clk_provider_list, node) {
5639 list_del(&clk_provider->node);
5640 of_node_put(clk_provider->np);
5641 kfree(clk_provider);
5642 }
5643 of_node_put(np);
5644 return;
5645 }
5646
5647 parent->clk_init_cb = match->data;
5648 parent->np = of_node_get(np);
5649 list_add_tail(&parent->node, &clk_provider_list);
5650 }
5651
5652 while (!list_empty(&clk_provider_list)) {
5653 is_init_done = false;
5654 list_for_each_entry_safe(clk_provider, next,
5655 &clk_provider_list, node) {
5656 if (force || parent_ready(clk_provider->np)) {
5657
5658 /* Don't populate platform devices */
5659 of_node_set_flag(clk_provider->np,
5660 OF_POPULATED);
5661
5662 clk_provider->clk_init_cb(clk_provider->np);
5663 of_clk_set_defaults(clk_provider->np, true);
5664
5665 list_del(&clk_provider->node);
5666 of_node_put(clk_provider->np);
5667 kfree(clk_provider);
5668 is_init_done = true;
5669 }
5670 }
5671
5672 /*
5673 * We didn't manage to initialize any of the
5674 * remaining providers during the last loop, so now we
5675 * initialize all the remaining ones unconditionally
5676 * in case the clock parent was not mandatory
5677 */
5678 if (!is_init_done)
5679 force = true;
5680 }
5681 }
5682 #endif
5683