1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * Generic pwmlib implementation
5 * Copyright (C) 2011 Sascha Hauer <s.hauer@pengutronix.de>
6 * Copyright (C) 2011-2012 Avionic Design GmbH
9 #include <linux/acpi.h>
10 #include <linux/module.h>
11 #include <linux/pwm.h>
12 #include <linux/radix-tree.h>
13 #include <linux/list.h>
14 #include <linux/mutex.h>
15 #include <linux/err.h>
16 #include <linux/slab.h>
17 #include <linux/device.h>
18 #include <linux/debugfs.h>
19 #include <linux/seq_file.h>
21 #include <dt-bindings/pwm/pwm.h>
23 #define CREATE_TRACE_POINTS
24 #include <trace/events/pwm.h>
28 static DEFINE_MUTEX(pwm_lookup_lock);
29 static LIST_HEAD(pwm_lookup_list);
30 static DEFINE_MUTEX(pwm_lock);
31 static LIST_HEAD(pwm_chips);
32 static DECLARE_BITMAP(allocated_pwms, MAX_PWMS);
33 static RADIX_TREE(pwm_tree, GFP_KERNEL);
35 static struct pwm_device *pwm_to_device(unsigned int pwm)
37 return radix_tree_lookup(&pwm_tree, pwm);
40 static int alloc_pwms(unsigned int count)
44 start = bitmap_find_next_zero_area(allocated_pwms, MAX_PWMS, 0,
47 if (start + count > MAX_PWMS)
53 static void free_pwms(struct pwm_chip *chip)
57 for (i = 0; i < chip->npwm; i++) {
58 struct pwm_device *pwm = &chip->pwms[i];
60 radix_tree_delete(&pwm_tree, pwm->pwm);
63 bitmap_clear(allocated_pwms, chip->base, chip->npwm);
69 static struct pwm_chip *pwmchip_find_by_name(const char *name)
71 struct pwm_chip *chip;
76 mutex_lock(&pwm_lock);
78 list_for_each_entry(chip, &pwm_chips, list) {
79 const char *chip_name = dev_name(chip->dev);
81 if (chip_name && strcmp(chip_name, name) == 0) {
82 mutex_unlock(&pwm_lock);
87 mutex_unlock(&pwm_lock);
92 static int pwm_device_request(struct pwm_device *pwm, const char *label)
96 if (test_bit(PWMF_REQUESTED, &pwm->flags))
99 if (!try_module_get(pwm->chip->ops->owner))
102 if (pwm->chip->ops->request) {
103 err = pwm->chip->ops->request(pwm->chip, pwm);
105 module_put(pwm->chip->ops->owner);
110 if (pwm->chip->ops->get_state) {
111 pwm->chip->ops->get_state(pwm->chip, pwm, &pwm->state);
112 trace_pwm_get(pwm, &pwm->state);
114 if (IS_ENABLED(CONFIG_PWM_DEBUG))
115 pwm->last = pwm->state;
118 set_bit(PWMF_REQUESTED, &pwm->flags);
125 of_pwm_xlate_with_flags(struct pwm_chip *pc, const struct of_phandle_args *args)
127 struct pwm_device *pwm;
129 if (pc->of_pwm_n_cells < 2)
130 return ERR_PTR(-EINVAL);
132 /* flags in the third cell are optional */
133 if (args->args_count < 2)
134 return ERR_PTR(-EINVAL);
136 if (args->args[0] >= pc->npwm)
137 return ERR_PTR(-EINVAL);
139 pwm = pwm_request_from_chip(pc, args->args[0], NULL);
143 pwm->args.period = args->args[1];
144 pwm->args.polarity = PWM_POLARITY_NORMAL;
146 if (pc->of_pwm_n_cells >= 3) {
147 if (args->args_count > 2 && args->args[2] & PWM_POLARITY_INVERTED)
148 pwm->args.polarity = PWM_POLARITY_INVERSED;
153 EXPORT_SYMBOL_GPL(of_pwm_xlate_with_flags);
155 static void of_pwmchip_add(struct pwm_chip *chip)
157 if (!chip->dev || !chip->dev->of_node)
160 if (!chip->of_xlate) {
163 if (of_property_read_u32(chip->dev->of_node, "#pwm-cells",
167 chip->of_xlate = of_pwm_xlate_with_flags;
168 chip->of_pwm_n_cells = pwm_cells;
171 of_node_get(chip->dev->of_node);
174 static void of_pwmchip_remove(struct pwm_chip *chip)
177 of_node_put(chip->dev->of_node);
181 * pwm_set_chip_data() - set private chip data for a PWM
183 * @data: pointer to chip-specific data
185 * Returns: 0 on success or a negative error code on failure.
187 int pwm_set_chip_data(struct pwm_device *pwm, void *data)
192 pwm->chip_data = data;
196 EXPORT_SYMBOL_GPL(pwm_set_chip_data);
199 * pwm_get_chip_data() - get private chip data for a PWM
202 * Returns: A pointer to the chip-private data for the PWM device.
204 void *pwm_get_chip_data(struct pwm_device *pwm)
206 return pwm ? pwm->chip_data : NULL;
208 EXPORT_SYMBOL_GPL(pwm_get_chip_data);
210 static bool pwm_ops_check(const struct pwm_chip *chip)
213 const struct pwm_ops *ops = chip->ops;
215 /* driver supports legacy, non-atomic operation */
216 if (ops->config && ops->enable && ops->disable) {
217 if (IS_ENABLED(CONFIG_PWM_DEBUG))
219 "Driver needs updating to atomic API\n");
227 if (IS_ENABLED(CONFIG_PWM_DEBUG) && !ops->get_state)
229 "Please implement the .get_state() callback\n");
235 * pwmchip_add() - register a new PWM chip
236 * @chip: the PWM chip to add
238 * Register a new PWM chip.
240 * Returns: 0 on success or a negative error code on failure.
242 int pwmchip_add(struct pwm_chip *chip)
244 struct pwm_device *pwm;
248 if (!chip || !chip->dev || !chip->ops || !chip->npwm)
251 if (!pwm_ops_check(chip))
254 mutex_lock(&pwm_lock);
256 ret = alloc_pwms(chip->npwm);
262 chip->pwms = kcalloc(chip->npwm, sizeof(*pwm), GFP_KERNEL);
268 for (i = 0; i < chip->npwm; i++) {
269 pwm = &chip->pwms[i];
272 pwm->pwm = chip->base + i;
275 radix_tree_insert(&pwm_tree, pwm->pwm, pwm);
278 bitmap_set(allocated_pwms, chip->base, chip->npwm);
280 INIT_LIST_HEAD(&chip->list);
281 list_add(&chip->list, &pwm_chips);
285 if (IS_ENABLED(CONFIG_OF))
286 of_pwmchip_add(chip);
289 mutex_unlock(&pwm_lock);
292 pwmchip_sysfs_export(chip);
296 EXPORT_SYMBOL_GPL(pwmchip_add);
299 * pwmchip_remove() - remove a PWM chip
300 * @chip: the PWM chip to remove
302 * Removes a PWM chip. This function may return busy if the PWM chip provides
303 * a PWM device that is still requested.
305 * Returns: 0 on success or a negative error code on failure.
307 void pwmchip_remove(struct pwm_chip *chip)
309 pwmchip_sysfs_unexport(chip);
311 mutex_lock(&pwm_lock);
313 list_del_init(&chip->list);
315 if (IS_ENABLED(CONFIG_OF))
316 of_pwmchip_remove(chip);
320 mutex_unlock(&pwm_lock);
322 EXPORT_SYMBOL_GPL(pwmchip_remove);
324 static void devm_pwmchip_remove(void *data)
326 struct pwm_chip *chip = data;
328 pwmchip_remove(chip);
331 int devm_pwmchip_add(struct device *dev, struct pwm_chip *chip)
335 ret = pwmchip_add(chip);
339 return devm_add_action_or_reset(dev, devm_pwmchip_remove, chip);
341 EXPORT_SYMBOL_GPL(devm_pwmchip_add);
344 * pwm_request() - request a PWM device
345 * @pwm: global PWM device index
346 * @label: PWM device label
348 * This function is deprecated, use pwm_get() instead.
350 * Returns: A pointer to a PWM device or an ERR_PTR()-encoded error code on
353 struct pwm_device *pwm_request(int pwm, const char *label)
355 struct pwm_device *dev;
358 if (pwm < 0 || pwm >= MAX_PWMS)
359 return ERR_PTR(-EINVAL);
361 mutex_lock(&pwm_lock);
363 dev = pwm_to_device(pwm);
365 dev = ERR_PTR(-EPROBE_DEFER);
369 err = pwm_device_request(dev, label);
374 mutex_unlock(&pwm_lock);
378 EXPORT_SYMBOL_GPL(pwm_request);
381 * pwm_request_from_chip() - request a PWM device relative to a PWM chip
383 * @index: per-chip index of the PWM to request
384 * @label: a literal description string of this PWM
386 * Returns: A pointer to the PWM device at the given index of the given PWM
387 * chip. A negative error code is returned if the index is not valid for the
388 * specified PWM chip or if the PWM device cannot be requested.
390 struct pwm_device *pwm_request_from_chip(struct pwm_chip *chip,
394 struct pwm_device *pwm;
397 if (!chip || index >= chip->npwm)
398 return ERR_PTR(-EINVAL);
400 mutex_lock(&pwm_lock);
401 pwm = &chip->pwms[index];
403 err = pwm_device_request(pwm, label);
407 mutex_unlock(&pwm_lock);
410 EXPORT_SYMBOL_GPL(pwm_request_from_chip);
413 * pwm_free() - free a PWM device
416 * This function is deprecated, use pwm_put() instead.
418 void pwm_free(struct pwm_device *pwm)
422 EXPORT_SYMBOL_GPL(pwm_free);
424 static void pwm_apply_state_debug(struct pwm_device *pwm,
425 const struct pwm_state *state)
427 struct pwm_state *last = &pwm->last;
428 struct pwm_chip *chip = pwm->chip;
429 struct pwm_state s1, s2;
432 if (!IS_ENABLED(CONFIG_PWM_DEBUG))
435 /* No reasonable diagnosis possible without .get_state() */
436 if (!chip->ops->get_state)
440 * *state was just applied. Read out the hardware state and do some
444 chip->ops->get_state(chip, pwm, &s1);
445 trace_pwm_get(pwm, &s1);
448 * The lowlevel driver either ignored .polarity (which is a bug) or as
449 * best effort inverted .polarity and fixed .duty_cycle respectively.
450 * Undo this inversion and fixup for further tests.
452 if (s1.enabled && s1.polarity != state->polarity) {
453 s2.polarity = state->polarity;
454 s2.duty_cycle = s1.period - s1.duty_cycle;
455 s2.period = s1.period;
456 s2.enabled = s1.enabled;
461 if (s2.polarity != state->polarity &&
462 state->duty_cycle < state->period)
463 dev_warn(chip->dev, ".apply ignored .polarity\n");
465 if (state->enabled &&
466 last->polarity == state->polarity &&
467 last->period > s2.period &&
468 last->period <= state->period)
470 ".apply didn't pick the best available period (requested: %llu, applied: %llu, possible: %llu)\n",
471 state->period, s2.period, last->period);
473 if (state->enabled && state->period < s2.period)
475 ".apply is supposed to round down period (requested: %llu, applied: %llu)\n",
476 state->period, s2.period);
478 if (state->enabled &&
479 last->polarity == state->polarity &&
480 last->period == s2.period &&
481 last->duty_cycle > s2.duty_cycle &&
482 last->duty_cycle <= state->duty_cycle)
484 ".apply didn't pick the best available duty cycle (requested: %llu/%llu, applied: %llu/%llu, possible: %llu/%llu)\n",
485 state->duty_cycle, state->period,
486 s2.duty_cycle, s2.period,
487 last->duty_cycle, last->period);
489 if (state->enabled && state->duty_cycle < s2.duty_cycle)
491 ".apply is supposed to round down duty_cycle (requested: %llu/%llu, applied: %llu/%llu)\n",
492 state->duty_cycle, state->period,
493 s2.duty_cycle, s2.period);
495 if (!state->enabled && s2.enabled && s2.duty_cycle > 0)
497 "requested disabled, but yielded enabled with duty > 0\n");
499 /* reapply the state that the driver reported being configured. */
500 err = chip->ops->apply(chip, pwm, &s1);
503 dev_err(chip->dev, "failed to reapply current setting\n");
507 trace_pwm_apply(pwm, &s1);
509 chip->ops->get_state(chip, pwm, last);
510 trace_pwm_get(pwm, last);
512 /* reapplication of the current state should give an exact match */
513 if (s1.enabled != last->enabled ||
514 s1.polarity != last->polarity ||
515 (s1.enabled && s1.period != last->period) ||
516 (s1.enabled && s1.duty_cycle != last->duty_cycle)) {
518 ".apply is not idempotent (ena=%d pol=%d %llu/%llu) -> (ena=%d pol=%d %llu/%llu)\n",
519 s1.enabled, s1.polarity, s1.duty_cycle, s1.period,
520 last->enabled, last->polarity, last->duty_cycle,
526 * pwm_apply_state() - atomically apply a new state to a PWM device
528 * @state: new state to apply
530 int pwm_apply_state(struct pwm_device *pwm, const struct pwm_state *state)
532 struct pwm_chip *chip;
535 if (!pwm || !state || !state->period ||
536 state->duty_cycle > state->period)
541 if (state->period == pwm->state.period &&
542 state->duty_cycle == pwm->state.duty_cycle &&
543 state->polarity == pwm->state.polarity &&
544 state->enabled == pwm->state.enabled &&
545 state->usage_power == pwm->state.usage_power)
548 if (chip->ops->apply) {
549 err = chip->ops->apply(chip, pwm, state);
553 trace_pwm_apply(pwm, state);
558 * only do this after pwm->state was applied as some
559 * implementations of .get_state depend on this
561 pwm_apply_state_debug(pwm, state);
564 * FIXME: restore the initial state in case of error.
566 if (state->polarity != pwm->state.polarity) {
567 if (!chip->ops->set_polarity)
571 * Changing the polarity of a running PWM is
572 * only allowed when the PWM driver implements
575 if (pwm->state.enabled) {
576 chip->ops->disable(chip, pwm);
577 pwm->state.enabled = false;
580 err = chip->ops->set_polarity(chip, pwm,
585 pwm->state.polarity = state->polarity;
588 if (state->period != pwm->state.period ||
589 state->duty_cycle != pwm->state.duty_cycle) {
590 err = chip->ops->config(pwm->chip, pwm,
596 pwm->state.duty_cycle = state->duty_cycle;
597 pwm->state.period = state->period;
600 if (state->enabled != pwm->state.enabled) {
601 if (state->enabled) {
602 err = chip->ops->enable(chip, pwm);
606 chip->ops->disable(chip, pwm);
609 pwm->state.enabled = state->enabled;
615 EXPORT_SYMBOL_GPL(pwm_apply_state);
618 * pwm_capture() - capture and report a PWM signal
620 * @result: structure to fill with capture result
621 * @timeout: time to wait, in milliseconds, before giving up on capture
623 * Returns: 0 on success or a negative error code on failure.
625 int pwm_capture(struct pwm_device *pwm, struct pwm_capture *result,
626 unsigned long timeout)
630 if (!pwm || !pwm->chip->ops)
633 if (!pwm->chip->ops->capture)
636 mutex_lock(&pwm_lock);
637 err = pwm->chip->ops->capture(pwm->chip, pwm, result, timeout);
638 mutex_unlock(&pwm_lock);
642 EXPORT_SYMBOL_GPL(pwm_capture);
645 * pwm_adjust_config() - adjust the current PWM config to the PWM arguments
648 * This function will adjust the PWM config to the PWM arguments provided
649 * by the DT or PWM lookup table. This is particularly useful to adapt
650 * the bootloader config to the Linux one.
652 int pwm_adjust_config(struct pwm_device *pwm)
654 struct pwm_state state;
655 struct pwm_args pargs;
657 pwm_get_args(pwm, &pargs);
658 pwm_get_state(pwm, &state);
661 * If the current period is zero it means that either the PWM driver
662 * does not support initial state retrieval or the PWM has not yet
665 * In either case, we setup the new period and polarity, and assign a
669 state.duty_cycle = 0;
670 state.period = pargs.period;
671 state.polarity = pargs.polarity;
673 return pwm_apply_state(pwm, &state);
677 * Adjust the PWM duty cycle/period based on the period value provided
680 if (pargs.period != state.period) {
681 u64 dutycycle = (u64)state.duty_cycle * pargs.period;
683 do_div(dutycycle, state.period);
684 state.duty_cycle = dutycycle;
685 state.period = pargs.period;
689 * If the polarity changed, we should also change the duty cycle.
691 if (pargs.polarity != state.polarity) {
692 state.polarity = pargs.polarity;
693 state.duty_cycle = state.period - state.duty_cycle;
696 return pwm_apply_state(pwm, &state);
698 EXPORT_SYMBOL_GPL(pwm_adjust_config);
700 static struct pwm_chip *fwnode_to_pwmchip(struct fwnode_handle *fwnode)
702 struct pwm_chip *chip;
704 mutex_lock(&pwm_lock);
706 list_for_each_entry(chip, &pwm_chips, list)
707 if (chip->dev && dev_fwnode(chip->dev) == fwnode) {
708 mutex_unlock(&pwm_lock);
712 mutex_unlock(&pwm_lock);
714 return ERR_PTR(-EPROBE_DEFER);
717 static struct device_link *pwm_device_link_add(struct device *dev,
718 struct pwm_device *pwm)
720 struct device_link *dl;
724 * No device for the PWM consumer has been provided. It may
725 * impact the PM sequence ordering: the PWM supplier may get
726 * suspended before the consumer.
728 dev_warn(pwm->chip->dev,
729 "No consumer device specified to create a link to\n");
733 dl = device_link_add(dev, pwm->chip->dev, DL_FLAG_AUTOREMOVE_CONSUMER);
735 dev_err(dev, "failed to create device link to %s\n",
736 dev_name(pwm->chip->dev));
737 return ERR_PTR(-EINVAL);
744 * of_pwm_get() - request a PWM via the PWM framework
745 * @dev: device for PWM consumer
746 * @np: device node to get the PWM from
747 * @con_id: consumer name
749 * Returns the PWM device parsed from the phandle and index specified in the
750 * "pwms" property of a device tree node or a negative error-code on failure.
751 * Values parsed from the device tree are stored in the returned PWM device
754 * If con_id is NULL, the first PWM device listed in the "pwms" property will
755 * be requested. Otherwise the "pwm-names" property is used to do a reverse
756 * lookup of the PWM index. This also means that the "pwm-names" property
757 * becomes mandatory for devices that look up the PWM device via the con_id
760 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
761 * error code on failure.
763 struct pwm_device *of_pwm_get(struct device *dev, struct device_node *np,
766 struct pwm_device *pwm = NULL;
767 struct of_phandle_args args;
768 struct device_link *dl;
774 index = of_property_match_string(np, "pwm-names", con_id);
776 return ERR_PTR(index);
779 err = of_parse_phandle_with_args(np, "pwms", "#pwm-cells", index,
782 pr_err("%s(): can't parse \"pwms\" property\n", __func__);
786 pc = fwnode_to_pwmchip(of_fwnode_handle(args.np));
788 if (PTR_ERR(pc) != -EPROBE_DEFER)
789 pr_err("%s(): PWM chip not found\n", __func__);
795 pwm = pc->of_xlate(pc, &args);
799 dl = pwm_device_link_add(dev, pwm);
801 /* of_xlate ended up calling pwm_request_from_chip() */
808 * If a consumer name was not given, try to look it up from the
809 * "pwm-names" property if it exists. Otherwise use the name of
810 * the user device node.
813 err = of_property_read_string_index(np, "pwm-names", index,
822 of_node_put(args.np);
826 EXPORT_SYMBOL_GPL(of_pwm_get);
829 * acpi_pwm_get() - request a PWM via parsing "pwms" property in ACPI
830 * @fwnode: firmware node to get the "pwms" property from
832 * Returns the PWM device parsed from the fwnode and index specified in the
833 * "pwms" property or a negative error-code on failure.
834 * Values parsed from the device tree are stored in the returned PWM device
837 * This is analogous to of_pwm_get() except con_id is not yet supported.
838 * ACPI entries must look like
839 * Package () {"pwms", Package ()
840 * { <PWM device reference>, <PWM index>, <PWM period> [, <PWM flags>]}}
842 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
843 * error code on failure.
845 static struct pwm_device *acpi_pwm_get(const struct fwnode_handle *fwnode)
847 struct pwm_device *pwm;
848 struct fwnode_reference_args args;
849 struct pwm_chip *chip;
852 memset(&args, 0, sizeof(args));
854 ret = __acpi_node_get_property_reference(fwnode, "pwms", 0, 3, &args);
859 return ERR_PTR(-EPROTO);
861 chip = fwnode_to_pwmchip(args.fwnode);
863 return ERR_CAST(chip);
865 pwm = pwm_request_from_chip(chip, args.args[0], NULL);
869 pwm->args.period = args.args[1];
870 pwm->args.polarity = PWM_POLARITY_NORMAL;
872 if (args.nargs > 2 && args.args[2] & PWM_POLARITY_INVERTED)
873 pwm->args.polarity = PWM_POLARITY_INVERSED;
879 * pwm_add_table() - register PWM device consumers
880 * @table: array of consumers to register
881 * @num: number of consumers in table
883 void pwm_add_table(struct pwm_lookup *table, size_t num)
885 mutex_lock(&pwm_lookup_lock);
888 list_add_tail(&table->list, &pwm_lookup_list);
892 mutex_unlock(&pwm_lookup_lock);
896 * pwm_remove_table() - unregister PWM device consumers
897 * @table: array of consumers to unregister
898 * @num: number of consumers in table
900 void pwm_remove_table(struct pwm_lookup *table, size_t num)
902 mutex_lock(&pwm_lookup_lock);
905 list_del(&table->list);
909 mutex_unlock(&pwm_lookup_lock);
913 * pwm_get() - look up and request a PWM device
914 * @dev: device for PWM consumer
915 * @con_id: consumer name
917 * Lookup is first attempted using DT. If the device was not instantiated from
918 * a device tree, a PWM chip and a relative index is looked up via a table
919 * supplied by board setup code (see pwm_add_table()).
921 * Once a PWM chip has been found the specified PWM device will be requested
922 * and is ready to be used.
924 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
925 * error code on failure.
927 struct pwm_device *pwm_get(struct device *dev, const char *con_id)
929 const struct fwnode_handle *fwnode = dev ? dev_fwnode(dev) : NULL;
930 const char *dev_id = dev ? dev_name(dev) : NULL;
931 struct pwm_device *pwm;
932 struct pwm_chip *chip;
933 struct device_link *dl;
934 unsigned int best = 0;
935 struct pwm_lookup *p, *chosen = NULL;
939 /* look up via DT first */
940 if (is_of_node(fwnode))
941 return of_pwm_get(dev, to_of_node(fwnode), con_id);
943 /* then lookup via ACPI */
944 if (is_acpi_node(fwnode)) {
945 pwm = acpi_pwm_get(fwnode);
946 if (!IS_ERR(pwm) || PTR_ERR(pwm) != -ENOENT)
951 * We look up the provider in the static table typically provided by
952 * board setup code. We first try to lookup the consumer device by
953 * name. If the consumer device was passed in as NULL or if no match
954 * was found, we try to find the consumer by directly looking it up
957 * If a match is found, the provider PWM chip is looked up by name
958 * and a PWM device is requested using the PWM device per-chip index.
960 * The lookup algorithm was shamelessly taken from the clock
963 * We do slightly fuzzy matching here:
964 * An entry with a NULL ID is assumed to be a wildcard.
965 * If an entry has a device ID, it must match
966 * If an entry has a connection ID, it must match
967 * Then we take the most specific entry - with the following order
968 * of precedence: dev+con > dev only > con only.
970 mutex_lock(&pwm_lookup_lock);
972 list_for_each_entry(p, &pwm_lookup_list, list) {
976 if (!dev_id || strcmp(p->dev_id, dev_id))
983 if (!con_id || strcmp(p->con_id, con_id))
999 mutex_unlock(&pwm_lookup_lock);
1002 return ERR_PTR(-ENODEV);
1004 chip = pwmchip_find_by_name(chosen->provider);
1007 * If the lookup entry specifies a module, load the module and retry
1008 * the PWM chip lookup. This can be used to work around driver load
1009 * ordering issues if driver's can't be made to properly support the
1010 * deferred probe mechanism.
1012 if (!chip && chosen->module) {
1013 err = request_module(chosen->module);
1015 chip = pwmchip_find_by_name(chosen->provider);
1019 return ERR_PTR(-EPROBE_DEFER);
1021 pwm = pwm_request_from_chip(chip, chosen->index, con_id ?: dev_id);
1025 dl = pwm_device_link_add(dev, pwm);
1028 return ERR_CAST(dl);
1031 pwm->args.period = chosen->period;
1032 pwm->args.polarity = chosen->polarity;
1036 EXPORT_SYMBOL_GPL(pwm_get);
1039 * pwm_put() - release a PWM device
1042 void pwm_put(struct pwm_device *pwm)
1047 mutex_lock(&pwm_lock);
1049 if (!test_and_clear_bit(PWMF_REQUESTED, &pwm->flags)) {
1050 pr_warn("PWM device already freed\n");
1054 if (pwm->chip->ops->free)
1055 pwm->chip->ops->free(pwm->chip, pwm);
1057 pwm_set_chip_data(pwm, NULL);
1060 module_put(pwm->chip->ops->owner);
1062 mutex_unlock(&pwm_lock);
1064 EXPORT_SYMBOL_GPL(pwm_put);
1066 static void devm_pwm_release(void *pwm)
1072 * devm_pwm_get() - resource managed pwm_get()
1073 * @dev: device for PWM consumer
1074 * @con_id: consumer name
1076 * This function performs like pwm_get() but the acquired PWM device will
1077 * automatically be released on driver detach.
1079 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
1080 * error code on failure.
1082 struct pwm_device *devm_pwm_get(struct device *dev, const char *con_id)
1084 struct pwm_device *pwm;
1087 pwm = pwm_get(dev, con_id);
1091 ret = devm_add_action_or_reset(dev, devm_pwm_release, pwm);
1093 return ERR_PTR(ret);
1097 EXPORT_SYMBOL_GPL(devm_pwm_get);
1100 * devm_of_pwm_get() - resource managed of_pwm_get()
1101 * @dev: device for PWM consumer
1102 * @np: device node to get the PWM from
1103 * @con_id: consumer name
1105 * This function performs like of_pwm_get() but the acquired PWM device will
1106 * automatically be released on driver detach.
1108 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
1109 * error code on failure.
1111 struct pwm_device *devm_of_pwm_get(struct device *dev, struct device_node *np,
1114 struct pwm_device *pwm;
1117 pwm = of_pwm_get(dev, np, con_id);
1121 ret = devm_add_action_or_reset(dev, devm_pwm_release, pwm);
1123 return ERR_PTR(ret);
1127 EXPORT_SYMBOL_GPL(devm_of_pwm_get);
1130 * devm_fwnode_pwm_get() - request a resource managed PWM from firmware node
1131 * @dev: device for PWM consumer
1132 * @fwnode: firmware node to get the PWM from
1133 * @con_id: consumer name
1135 * Returns the PWM device parsed from the firmware node. See of_pwm_get() and
1136 * acpi_pwm_get() for a detailed description.
1138 * Returns: A pointer to the requested PWM device or an ERR_PTR()-encoded
1139 * error code on failure.
1141 struct pwm_device *devm_fwnode_pwm_get(struct device *dev,
1142 struct fwnode_handle *fwnode,
1145 struct pwm_device *pwm = ERR_PTR(-ENODEV);
1148 if (is_of_node(fwnode))
1149 pwm = of_pwm_get(dev, to_of_node(fwnode), con_id);
1150 else if (is_acpi_node(fwnode))
1151 pwm = acpi_pwm_get(fwnode);
1155 ret = devm_add_action_or_reset(dev, devm_pwm_release, pwm);
1157 return ERR_PTR(ret);
1161 EXPORT_SYMBOL_GPL(devm_fwnode_pwm_get);
1163 #ifdef CONFIG_DEBUG_FS
1164 static void pwm_dbg_show(struct pwm_chip *chip, struct seq_file *s)
1168 for (i = 0; i < chip->npwm; i++) {
1169 struct pwm_device *pwm = &chip->pwms[i];
1170 struct pwm_state state;
1172 pwm_get_state(pwm, &state);
1174 seq_printf(s, " pwm-%-3d (%-20.20s):", i, pwm->label);
1176 if (test_bit(PWMF_REQUESTED, &pwm->flags))
1177 seq_puts(s, " requested");
1180 seq_puts(s, " enabled");
1182 seq_printf(s, " period: %llu ns", state.period);
1183 seq_printf(s, " duty: %llu ns", state.duty_cycle);
1184 seq_printf(s, " polarity: %s",
1185 state.polarity ? "inverse" : "normal");
1187 if (state.usage_power)
1188 seq_puts(s, " usage_power");
1194 static void *pwm_seq_start(struct seq_file *s, loff_t *pos)
1196 mutex_lock(&pwm_lock);
1199 return seq_list_start(&pwm_chips, *pos);
1202 static void *pwm_seq_next(struct seq_file *s, void *v, loff_t *pos)
1206 return seq_list_next(v, &pwm_chips, pos);
1209 static void pwm_seq_stop(struct seq_file *s, void *v)
1211 mutex_unlock(&pwm_lock);
1214 static int pwm_seq_show(struct seq_file *s, void *v)
1216 struct pwm_chip *chip = list_entry(v, struct pwm_chip, list);
1218 seq_printf(s, "%s%s/%s, %d PWM device%s\n", (char *)s->private,
1219 chip->dev->bus ? chip->dev->bus->name : "no-bus",
1220 dev_name(chip->dev), chip->npwm,
1221 (chip->npwm != 1) ? "s" : "");
1223 pwm_dbg_show(chip, s);
1228 static const struct seq_operations pwm_debugfs_sops = {
1229 .start = pwm_seq_start,
1230 .next = pwm_seq_next,
1231 .stop = pwm_seq_stop,
1232 .show = pwm_seq_show,
1235 DEFINE_SEQ_ATTRIBUTE(pwm_debugfs);
1237 static int __init pwm_debugfs_init(void)
1239 debugfs_create_file("pwm", S_IFREG | 0444, NULL, NULL,
1244 subsys_initcall(pwm_debugfs_init);
1245 #endif /* CONFIG_DEBUG_FS */