1 // SPDX-License-Identifier: GPL-2.0-only
3 * Core driver for the pin control subsystem
5 * Copyright (C) 2011-2012 ST-Ericsson SA
6 * Written on behalf of Linaro for ST-Ericsson
7 * Based on bits of regulator core, gpio core and clk core
11 * Copyright (C) 2012 NVIDIA CORPORATION. All rights reserved.
13 #define pr_fmt(fmt) "pinctrl core: " fmt
15 #include <linux/array_size.h>
16 #include <linux/cleanup.h>
17 #include <linux/debugfs.h>
18 #include <linux/device.h>
19 #include <linux/err.h>
20 #include <linux/export.h>
21 #include <linux/init.h>
22 #include <linux/kref.h>
23 #include <linux/list.h>
24 #include <linux/seq_file.h>
25 #include <linux/slab.h>
27 #include <linux/gpio.h>
28 #include <linux/gpio/driver.h>
30 #include <linux/pinctrl/consumer.h>
31 #include <linux/pinctrl/devinfo.h>
32 #include <linux/pinctrl/machine.h>
33 #include <linux/pinctrl/pinctrl.h>
36 #include "devicetree.h"
40 static bool pinctrl_dummy_state;
42 /* Mutex taken to protect pinctrl_list */
43 static DEFINE_MUTEX(pinctrl_list_mutex);
45 /* Mutex taken to protect pinctrl_maps */
46 DEFINE_MUTEX(pinctrl_maps_mutex);
48 /* Mutex taken to protect pinctrldev_list */
49 static DEFINE_MUTEX(pinctrldev_list_mutex);
51 /* Global list of pin control devices (struct pinctrl_dev) */
52 static LIST_HEAD(pinctrldev_list);
54 /* List of pin controller handles (struct pinctrl) */
55 static LIST_HEAD(pinctrl_list);
57 /* List of pinctrl maps (struct pinctrl_maps) */
58 LIST_HEAD(pinctrl_maps);
62 * pinctrl_provide_dummies() - indicate if pinctrl provides dummy state support
64 * Usually this function is called by platforms without pinctrl driver support
65 * but run with some shared drivers using pinctrl APIs.
66 * After calling this function, the pinctrl core will return successfully
67 * with creating a dummy state for the driver to keep going smoothly.
69 void pinctrl_provide_dummies(void)
71 pinctrl_dummy_state = true;
74 const char *pinctrl_dev_get_name(struct pinctrl_dev *pctldev)
76 /* We're not allowed to register devices without name */
77 return pctldev->desc->name;
79 EXPORT_SYMBOL_GPL(pinctrl_dev_get_name);
81 const char *pinctrl_dev_get_devname(struct pinctrl_dev *pctldev)
83 return dev_name(pctldev->dev);
85 EXPORT_SYMBOL_GPL(pinctrl_dev_get_devname);
87 void *pinctrl_dev_get_drvdata(struct pinctrl_dev *pctldev)
89 return pctldev->driver_data;
91 EXPORT_SYMBOL_GPL(pinctrl_dev_get_drvdata);
94 * get_pinctrl_dev_from_devname() - look up pin controller device
95 * @devname: the name of a device instance, as returned by dev_name()
97 * Looks up a pin control device matching a certain device name or pure device
98 * pointer, the pure device pointer will take precedence.
100 struct pinctrl_dev *get_pinctrl_dev_from_devname(const char *devname)
102 struct pinctrl_dev *pctldev;
107 mutex_lock(&pinctrldev_list_mutex);
109 list_for_each_entry(pctldev, &pinctrldev_list, node) {
110 if (!strcmp(dev_name(pctldev->dev), devname)) {
111 /* Matched on device name */
112 mutex_unlock(&pinctrldev_list_mutex);
117 mutex_unlock(&pinctrldev_list_mutex);
122 struct pinctrl_dev *get_pinctrl_dev_from_of_node(struct device_node *np)
124 struct pinctrl_dev *pctldev;
126 mutex_lock(&pinctrldev_list_mutex);
128 list_for_each_entry(pctldev, &pinctrldev_list, node)
129 if (device_match_of_node(pctldev->dev, np)) {
130 mutex_unlock(&pinctrldev_list_mutex);
134 mutex_unlock(&pinctrldev_list_mutex);
140 * pin_get_from_name() - look up a pin number from a name
141 * @pctldev: the pin control device to lookup the pin on
142 * @name: the name of the pin to look up
144 int pin_get_from_name(struct pinctrl_dev *pctldev, const char *name)
148 /* The pin number can be retrived from the pin controller descriptor */
149 for (i = 0; i < pctldev->desc->npins; i++) {
150 struct pin_desc *desc;
152 pin = pctldev->desc->pins[i].number;
153 desc = pin_desc_get(pctldev, pin);
154 /* Pin space may be sparse */
155 if (desc && !strcmp(name, desc->name))
163 * pin_get_name() - look up a pin name from a pin id
164 * @pctldev: the pin control device to lookup the pin on
165 * @pin: pin number/id to look up
167 const char *pin_get_name(struct pinctrl_dev *pctldev, const unsigned int pin)
169 const struct pin_desc *desc;
171 desc = pin_desc_get(pctldev, pin);
173 dev_err(pctldev->dev, "failed to get pin(%d) name\n",
180 EXPORT_SYMBOL_GPL(pin_get_name);
182 /* Deletes a range of pin descriptors */
183 static void pinctrl_free_pindescs(struct pinctrl_dev *pctldev,
184 const struct pinctrl_pin_desc *pins,
185 unsigned int num_pins)
189 for (i = 0; i < num_pins; i++) {
190 struct pin_desc *pindesc;
192 pindesc = radix_tree_lookup(&pctldev->pin_desc_tree,
195 radix_tree_delete(&pctldev->pin_desc_tree,
197 if (pindesc->dynamic_name)
198 kfree(pindesc->name);
204 static int pinctrl_register_one_pin(struct pinctrl_dev *pctldev,
205 const struct pinctrl_pin_desc *pin)
207 struct pin_desc *pindesc;
210 pindesc = pin_desc_get(pctldev, pin->number);
212 dev_err(pctldev->dev, "pin %d already registered\n",
217 pindesc = kzalloc(sizeof(*pindesc), GFP_KERNEL);
222 pindesc->pctldev = pctldev;
224 /* Copy basic pin info */
226 pindesc->name = pin->name;
228 pindesc->name = kasprintf(GFP_KERNEL, "PIN%u", pin->number);
229 if (!pindesc->name) {
233 pindesc->dynamic_name = true;
236 pindesc->drv_data = pin->drv_data;
238 error = radix_tree_insert(&pctldev->pin_desc_tree, pin->number, pindesc);
242 pr_debug("registered pin %d (%s) on %s\n",
243 pin->number, pindesc->name, pctldev->desc->name);
251 static int pinctrl_register_pins(struct pinctrl_dev *pctldev,
252 const struct pinctrl_pin_desc *pins,
253 unsigned int num_descs)
258 for (i = 0; i < num_descs; i++) {
259 ret = pinctrl_register_one_pin(pctldev, &pins[i]);
268 * gpio_to_pin() - GPIO range GPIO number to pin number translation
269 * @range: GPIO range used for the translation
270 * @gc: GPIO chip structure from the GPIO subsystem
271 * @offset: hardware offset of the GPIO relative to the controller
273 * Finds the pin number for a given GPIO using the specified GPIO range
274 * as a base for translation. The distinction between linear GPIO ranges
275 * and pin list based GPIO ranges is managed correctly by this function.
277 * This function assumes the gpio is part of the specified GPIO range, use
278 * only after making sure this is the case (e.g. by calling it on the
279 * result of successful pinctrl_get_device_gpio_range calls)!
281 static inline int gpio_to_pin(struct pinctrl_gpio_range *range,
282 struct gpio_chip *gc, unsigned int offset)
284 unsigned int pin = gc->base + offset - range->base;
286 return range->pins[pin];
288 return range->pin_base + pin;
292 * pinctrl_match_gpio_range() - check if a certain GPIO pin is in range
293 * @pctldev: pin controller device to check
294 * @gc: GPIO chip structure from the GPIO subsystem
295 * @offset: hardware offset of the GPIO relative to the controller
297 * Tries to match a GPIO pin number to the ranges handled by a certain pin
298 * controller, return the range or NULL
300 static struct pinctrl_gpio_range *
301 pinctrl_match_gpio_range(struct pinctrl_dev *pctldev, struct gpio_chip *gc,
304 struct pinctrl_gpio_range *range;
306 mutex_lock(&pctldev->mutex);
307 /* Loop over the ranges */
308 list_for_each_entry(range, &pctldev->gpio_ranges, node) {
309 /* Check if we're in the valid range */
310 if ((gc->base + offset) >= range->base &&
311 (gc->base + offset) < range->base + range->npins) {
312 mutex_unlock(&pctldev->mutex);
316 mutex_unlock(&pctldev->mutex);
321 * pinctrl_ready_for_gpio_range() - check if other GPIO pins of
322 * the same GPIO chip are in range
323 * @gc: GPIO chip structure from the GPIO subsystem
324 * @offset: hardware offset of the GPIO relative to the controller
326 * This function is complement of pinctrl_match_gpio_range(). If the return
327 * value of pinctrl_match_gpio_range() is NULL, this function could be used
328 * to check whether pinctrl device is ready or not. Maybe some GPIO pins
329 * of the same GPIO chip don't have back-end pinctrl interface.
330 * If the return value is true, it means that pinctrl device is ready & the
331 * certain GPIO pin doesn't have back-end pinctrl device. If the return value
332 * is false, it means that pinctrl device may not be ready.
334 #ifdef CONFIG_GPIOLIB
335 static bool pinctrl_ready_for_gpio_range(struct gpio_chip *gc,
338 struct pinctrl_dev *pctldev;
339 struct pinctrl_gpio_range *range = NULL;
341 mutex_lock(&pinctrldev_list_mutex);
343 /* Loop over the pin controllers */
344 list_for_each_entry(pctldev, &pinctrldev_list, node) {
345 /* Loop over the ranges */
346 mutex_lock(&pctldev->mutex);
347 list_for_each_entry(range, &pctldev->gpio_ranges, node) {
348 /* Check if any gpio range overlapped with gpio chip */
349 if (range->base + range->npins - 1 < gc->base ||
350 range->base > gc->base + gc->ngpio - 1)
352 mutex_unlock(&pctldev->mutex);
353 mutex_unlock(&pinctrldev_list_mutex);
356 mutex_unlock(&pctldev->mutex);
359 mutex_unlock(&pinctrldev_list_mutex);
365 pinctrl_ready_for_gpio_range(struct gpio_chip *gc, unsigned int offset)
372 * pinctrl_get_device_gpio_range() - find device for GPIO range
373 * @gc: GPIO chip structure from the GPIO subsystem
374 * @offset: hardware offset of the GPIO relative to the controller
375 * @outdev: the pin control device if found
376 * @outrange: the GPIO range if found
378 * Find the pin controller handling a certain GPIO pin from the pinspace of
379 * the GPIO subsystem, return the device and the matching GPIO range. Returns
380 * -EPROBE_DEFER if the GPIO range could not be found in any device since it
381 * may still have not been registered.
383 static int pinctrl_get_device_gpio_range(struct gpio_chip *gc,
385 struct pinctrl_dev **outdev,
386 struct pinctrl_gpio_range **outrange)
388 struct pinctrl_dev *pctldev;
390 mutex_lock(&pinctrldev_list_mutex);
392 /* Loop over the pin controllers */
393 list_for_each_entry(pctldev, &pinctrldev_list, node) {
394 struct pinctrl_gpio_range *range;
396 range = pinctrl_match_gpio_range(pctldev, gc, offset);
400 mutex_unlock(&pinctrldev_list_mutex);
405 mutex_unlock(&pinctrldev_list_mutex);
407 return -EPROBE_DEFER;
411 * pinctrl_add_gpio_range() - register a GPIO range for a controller
412 * @pctldev: pin controller device to add the range to
413 * @range: the GPIO range to add
415 * DEPRECATED: Don't use this function in new code. See section 2 of
416 * Documentation/devicetree/bindings/gpio/gpio.txt on how to bind pinctrl and
419 * This adds a range of GPIOs to be handled by a certain pin controller. Call
420 * this to register handled ranges after registering your pin controller.
422 void pinctrl_add_gpio_range(struct pinctrl_dev *pctldev,
423 struct pinctrl_gpio_range *range)
425 mutex_lock(&pctldev->mutex);
426 list_add_tail(&range->node, &pctldev->gpio_ranges);
427 mutex_unlock(&pctldev->mutex);
429 EXPORT_SYMBOL_GPL(pinctrl_add_gpio_range);
431 void pinctrl_add_gpio_ranges(struct pinctrl_dev *pctldev,
432 struct pinctrl_gpio_range *ranges,
433 unsigned int nranges)
437 for (i = 0; i < nranges; i++)
438 pinctrl_add_gpio_range(pctldev, &ranges[i]);
440 EXPORT_SYMBOL_GPL(pinctrl_add_gpio_ranges);
442 struct pinctrl_dev *pinctrl_find_and_add_gpio_range(const char *devname,
443 struct pinctrl_gpio_range *range)
445 struct pinctrl_dev *pctldev;
447 pctldev = get_pinctrl_dev_from_devname(devname);
450 * If we can't find this device, let's assume that is because
451 * it has not probed yet, so the driver trying to register this
452 * range need to defer probing.
455 return ERR_PTR(-EPROBE_DEFER);
457 pinctrl_add_gpio_range(pctldev, range);
461 EXPORT_SYMBOL_GPL(pinctrl_find_and_add_gpio_range);
463 int pinctrl_get_group_pins(struct pinctrl_dev *pctldev, const char *pin_group,
464 const unsigned int **pins, unsigned int *num_pins)
466 const struct pinctrl_ops *pctlops = pctldev->desc->pctlops;
469 if (!pctlops->get_group_pins)
472 gs = pinctrl_get_group_selector(pctldev, pin_group);
476 return pctlops->get_group_pins(pctldev, gs, pins, num_pins);
478 EXPORT_SYMBOL_GPL(pinctrl_get_group_pins);
480 struct pinctrl_gpio_range *
481 pinctrl_find_gpio_range_from_pin_nolock(struct pinctrl_dev *pctldev,
484 struct pinctrl_gpio_range *range;
486 /* Loop over the ranges */
487 list_for_each_entry(range, &pctldev->gpio_ranges, node) {
488 /* Check if we're in the valid range */
491 for (a = 0; a < range->npins; a++) {
492 if (range->pins[a] == pin)
495 } else if (pin >= range->pin_base &&
496 pin < range->pin_base + range->npins)
502 EXPORT_SYMBOL_GPL(pinctrl_find_gpio_range_from_pin_nolock);
505 * pinctrl_find_gpio_range_from_pin() - locate the GPIO range for a pin
506 * @pctldev: the pin controller device to look in
507 * @pin: a controller-local number to find the range for
509 struct pinctrl_gpio_range *
510 pinctrl_find_gpio_range_from_pin(struct pinctrl_dev *pctldev,
513 struct pinctrl_gpio_range *range;
515 mutex_lock(&pctldev->mutex);
516 range = pinctrl_find_gpio_range_from_pin_nolock(pctldev, pin);
517 mutex_unlock(&pctldev->mutex);
521 EXPORT_SYMBOL_GPL(pinctrl_find_gpio_range_from_pin);
524 * pinctrl_remove_gpio_range() - remove a range of GPIOs from a pin controller
525 * @pctldev: pin controller device to remove the range from
526 * @range: the GPIO range to remove
528 void pinctrl_remove_gpio_range(struct pinctrl_dev *pctldev,
529 struct pinctrl_gpio_range *range)
531 mutex_lock(&pctldev->mutex);
532 list_del(&range->node);
533 mutex_unlock(&pctldev->mutex);
535 EXPORT_SYMBOL_GPL(pinctrl_remove_gpio_range);
537 #ifdef CONFIG_GENERIC_PINCTRL_GROUPS
540 * pinctrl_generic_get_group_count() - returns the number of pin groups
541 * @pctldev: pin controller device
543 int pinctrl_generic_get_group_count(struct pinctrl_dev *pctldev)
545 return pctldev->num_groups;
547 EXPORT_SYMBOL_GPL(pinctrl_generic_get_group_count);
550 * pinctrl_generic_get_group_name() - returns the name of a pin group
551 * @pctldev: pin controller device
552 * @selector: group number
554 const char *pinctrl_generic_get_group_name(struct pinctrl_dev *pctldev,
555 unsigned int selector)
557 struct group_desc *group;
559 group = radix_tree_lookup(&pctldev->pin_group_tree,
564 return group->grp.name;
566 EXPORT_SYMBOL_GPL(pinctrl_generic_get_group_name);
569 * pinctrl_generic_get_group_pins() - gets the pin group pins
570 * @pctldev: pin controller device
571 * @selector: group number
572 * @pins: pins in the group
573 * @num_pins: number of pins in the group
575 int pinctrl_generic_get_group_pins(struct pinctrl_dev *pctldev,
576 unsigned int selector,
577 const unsigned int **pins,
578 unsigned int *num_pins)
580 struct group_desc *group;
582 group = radix_tree_lookup(&pctldev->pin_group_tree,
585 dev_err(pctldev->dev, "%s could not find pingroup%i\n",
590 *pins = group->grp.pins;
591 *num_pins = group->grp.npins;
595 EXPORT_SYMBOL_GPL(pinctrl_generic_get_group_pins);
598 * pinctrl_generic_get_group() - returns a pin group based on the number
599 * @pctldev: pin controller device
600 * @selector: group number
602 struct group_desc *pinctrl_generic_get_group(struct pinctrl_dev *pctldev,
603 unsigned int selector)
605 struct group_desc *group;
607 group = radix_tree_lookup(&pctldev->pin_group_tree,
614 EXPORT_SYMBOL_GPL(pinctrl_generic_get_group);
616 static int pinctrl_generic_group_name_to_selector(struct pinctrl_dev *pctldev,
617 const char *function)
619 const struct pinctrl_ops *ops = pctldev->desc->pctlops;
620 int ngroups = ops->get_groups_count(pctldev);
623 /* See if this pctldev has this group */
624 while (selector < ngroups) {
625 const char *gname = ops->get_group_name(pctldev, selector);
627 if (gname && !strcmp(function, gname))
637 * pinctrl_generic_add_group() - adds a new pin group
638 * @pctldev: pin controller device
639 * @name: name of the pin group
640 * @pins: pins in the pin group
641 * @num_pins: number of pins in the pin group
642 * @data: pin controller driver specific data
644 * Note that the caller must take care of locking.
646 int pinctrl_generic_add_group(struct pinctrl_dev *pctldev, const char *name,
647 const unsigned int *pins, int num_pins, void *data)
649 struct group_desc *group;
655 selector = pinctrl_generic_group_name_to_selector(pctldev, name);
659 selector = pctldev->num_groups;
661 group = devm_kzalloc(pctldev->dev, sizeof(*group), GFP_KERNEL);
665 *group = PINCTRL_GROUP_DESC(name, pins, num_pins, data);
667 error = radix_tree_insert(&pctldev->pin_group_tree, selector, group);
671 pctldev->num_groups++;
675 EXPORT_SYMBOL_GPL(pinctrl_generic_add_group);
678 * pinctrl_generic_remove_group() - removes a numbered pin group
679 * @pctldev: pin controller device
680 * @selector: group number
682 * Note that the caller must take care of locking.
684 int pinctrl_generic_remove_group(struct pinctrl_dev *pctldev,
685 unsigned int selector)
687 struct group_desc *group;
689 group = radix_tree_lookup(&pctldev->pin_group_tree,
694 radix_tree_delete(&pctldev->pin_group_tree, selector);
695 devm_kfree(pctldev->dev, group);
697 pctldev->num_groups--;
701 EXPORT_SYMBOL_GPL(pinctrl_generic_remove_group);
704 * pinctrl_generic_free_groups() - removes all pin groups
705 * @pctldev: pin controller device
707 * Note that the caller must take care of locking. The pinctrl groups
708 * are allocated with devm_kzalloc() so no need to free them here.
710 static void pinctrl_generic_free_groups(struct pinctrl_dev *pctldev)
712 struct radix_tree_iter iter;
715 radix_tree_for_each_slot(slot, &pctldev->pin_group_tree, &iter, 0)
716 radix_tree_delete(&pctldev->pin_group_tree, iter.index);
718 pctldev->num_groups = 0;
722 static inline void pinctrl_generic_free_groups(struct pinctrl_dev *pctldev)
725 #endif /* CONFIG_GENERIC_PINCTRL_GROUPS */
728 * pinctrl_get_group_selector() - returns the group selector for a group
729 * @pctldev: the pin controller handling the group
730 * @pin_group: the pin group to look up
732 int pinctrl_get_group_selector(struct pinctrl_dev *pctldev,
733 const char *pin_group)
735 const struct pinctrl_ops *pctlops = pctldev->desc->pctlops;
736 unsigned int ngroups = pctlops->get_groups_count(pctldev);
737 unsigned int group_selector = 0;
739 while (group_selector < ngroups) {
740 const char *gname = pctlops->get_group_name(pctldev,
742 if (gname && !strcmp(gname, pin_group)) {
743 dev_dbg(pctldev->dev,
744 "found group selector %u for %s\n",
747 return group_selector;
753 dev_err(pctldev->dev, "does not have pin group %s\n",
759 bool pinctrl_gpio_can_use_line(struct gpio_chip *gc, unsigned int offset)
761 struct pinctrl_dev *pctldev;
762 struct pinctrl_gpio_range *range;
767 * Try to obtain GPIO range, if it fails
768 * we're probably dealing with GPIO driver
769 * without a backing pin controller - bail out.
771 if (pinctrl_get_device_gpio_range(gc, offset, &pctldev, &range))
774 mutex_lock(&pctldev->mutex);
776 /* Convert to the pin controllers number space */
777 pin = gpio_to_pin(range, gc, offset);
779 result = pinmux_can_be_used_for_gpio(pctldev, pin);
781 mutex_unlock(&pctldev->mutex);
785 EXPORT_SYMBOL_GPL(pinctrl_gpio_can_use_line);
788 * pinctrl_gpio_request() - request a single pin to be used as GPIO
789 * @gc: GPIO chip structure from the GPIO subsystem
790 * @offset: hardware offset of the GPIO relative to the controller
792 * This function should *ONLY* be used from gpiolib-based GPIO drivers,
793 * as part of their gpio_request() semantics, platforms and individual drivers
794 * shall *NOT* request GPIO pins to be muxed in.
796 int pinctrl_gpio_request(struct gpio_chip *gc, unsigned int offset)
798 struct pinctrl_gpio_range *range;
799 struct pinctrl_dev *pctldev;
802 ret = pinctrl_get_device_gpio_range(gc, offset, &pctldev, &range);
804 if (pinctrl_ready_for_gpio_range(gc, offset))
809 mutex_lock(&pctldev->mutex);
811 /* Convert to the pin controllers number space */
812 pin = gpio_to_pin(range, gc, offset);
814 ret = pinmux_request_gpio(pctldev, range, pin, gc->base + offset);
816 mutex_unlock(&pctldev->mutex);
820 EXPORT_SYMBOL_GPL(pinctrl_gpio_request);
823 * pinctrl_gpio_free() - free control on a single pin, currently used as GPIO
824 * @gc: GPIO chip structure from the GPIO subsystem
825 * @offset: hardware offset of the GPIO relative to the controller
827 * This function should *ONLY* be used from gpiolib-based GPIO drivers,
828 * as part of their gpio_request() semantics, platforms and individual drivers
829 * shall *NOT* request GPIO pins to be muxed in.
831 void pinctrl_gpio_free(struct gpio_chip *gc, unsigned int offset)
833 struct pinctrl_gpio_range *range;
834 struct pinctrl_dev *pctldev;
837 ret = pinctrl_get_device_gpio_range(gc, offset, &pctldev, &range);
841 mutex_lock(&pctldev->mutex);
843 /* Convert to the pin controllers number space */
844 pin = gpio_to_pin(range, gc, offset);
846 pinmux_free_gpio(pctldev, pin, range);
848 mutex_unlock(&pctldev->mutex);
850 EXPORT_SYMBOL_GPL(pinctrl_gpio_free);
852 static int pinctrl_gpio_direction(struct gpio_chip *gc, unsigned int offset,
855 struct pinctrl_dev *pctldev;
856 struct pinctrl_gpio_range *range;
860 ret = pinctrl_get_device_gpio_range(gc, offset, &pctldev, &range);
865 mutex_lock(&pctldev->mutex);
867 /* Convert to the pin controllers number space */
868 pin = gpio_to_pin(range, gc, offset);
869 ret = pinmux_gpio_direction(pctldev, range, pin, input);
871 mutex_unlock(&pctldev->mutex);
877 * pinctrl_gpio_direction_input() - request a GPIO pin to go into input mode
878 * @gc: GPIO chip structure from the GPIO subsystem
879 * @offset: hardware offset of the GPIO relative to the controller
881 * This function should *ONLY* be used from gpiolib-based GPIO drivers,
882 * as part of their gpio_direction_input() semantics, platforms and individual
883 * drivers shall *NOT* touch pin control GPIO calls.
885 int pinctrl_gpio_direction_input(struct gpio_chip *gc, unsigned int offset)
887 return pinctrl_gpio_direction(gc, offset, true);
889 EXPORT_SYMBOL_GPL(pinctrl_gpio_direction_input);
892 * pinctrl_gpio_direction_output() - request a GPIO pin to go into output mode
893 * @gc: GPIO chip structure from the GPIO subsystem
894 * @offset: hardware offset of the GPIO relative to the controller
896 * This function should *ONLY* be used from gpiolib-based GPIO drivers,
897 * as part of their gpio_direction_output() semantics, platforms and individual
898 * drivers shall *NOT* touch pin control GPIO calls.
900 int pinctrl_gpio_direction_output(struct gpio_chip *gc, unsigned int offset)
902 return pinctrl_gpio_direction(gc, offset, false);
904 EXPORT_SYMBOL_GPL(pinctrl_gpio_direction_output);
907 * pinctrl_gpio_set_config() - Apply config to given GPIO pin
908 * @gc: GPIO chip structure from the GPIO subsystem
909 * @offset: hardware offset of the GPIO relative to the controller
910 * @config: the configuration to apply to the GPIO
912 * This function should *ONLY* be used from gpiolib-based GPIO drivers, if
913 * they need to call the underlying pin controller to change GPIO config
914 * (for example set debounce time).
916 int pinctrl_gpio_set_config(struct gpio_chip *gc, unsigned int offset,
917 unsigned long config)
919 unsigned long configs[] = { config };
920 struct pinctrl_gpio_range *range;
921 struct pinctrl_dev *pctldev;
924 ret = pinctrl_get_device_gpio_range(gc, offset, &pctldev, &range);
928 mutex_lock(&pctldev->mutex);
929 pin = gpio_to_pin(range, gc, offset);
930 ret = pinconf_set_config(pctldev, pin, configs, ARRAY_SIZE(configs));
931 mutex_unlock(&pctldev->mutex);
935 EXPORT_SYMBOL_GPL(pinctrl_gpio_set_config);
937 static struct pinctrl_state *find_state(struct pinctrl *p,
940 struct pinctrl_state *state;
942 list_for_each_entry(state, &p->states, node)
943 if (!strcmp(state->name, name))
949 static struct pinctrl_state *create_state(struct pinctrl *p,
952 struct pinctrl_state *state;
954 state = kzalloc(sizeof(*state), GFP_KERNEL);
956 return ERR_PTR(-ENOMEM);
959 INIT_LIST_HEAD(&state->settings);
961 list_add_tail(&state->node, &p->states);
966 static int add_setting(struct pinctrl *p, struct pinctrl_dev *pctldev,
967 const struct pinctrl_map *map)
969 struct pinctrl_state *state;
970 struct pinctrl_setting *setting;
973 state = find_state(p, map->name);
975 state = create_state(p, map->name);
977 return PTR_ERR(state);
979 if (map->type == PIN_MAP_TYPE_DUMMY_STATE)
982 setting = kzalloc(sizeof(*setting), GFP_KERNEL);
986 setting->type = map->type;
989 setting->pctldev = pctldev;
992 get_pinctrl_dev_from_devname(map->ctrl_dev_name);
993 if (!setting->pctldev) {
995 /* Do not defer probing of hogs (circular loop) */
996 if (!strcmp(map->ctrl_dev_name, map->dev_name))
999 * OK let us guess that the driver is not there yet, and
1000 * let's defer obtaining this pinctrl handle to later...
1002 dev_info(p->dev, "unknown pinctrl device %s in map entry, deferring probe",
1003 map->ctrl_dev_name);
1004 return -EPROBE_DEFER;
1007 setting->dev_name = map->dev_name;
1009 switch (map->type) {
1010 case PIN_MAP_TYPE_MUX_GROUP:
1011 ret = pinmux_map_to_setting(map, setting);
1013 case PIN_MAP_TYPE_CONFIGS_PIN:
1014 case PIN_MAP_TYPE_CONFIGS_GROUP:
1015 ret = pinconf_map_to_setting(map, setting);
1026 list_add_tail(&setting->node, &state->settings);
1031 static struct pinctrl *find_pinctrl(struct device *dev)
1035 mutex_lock(&pinctrl_list_mutex);
1036 list_for_each_entry(p, &pinctrl_list, node)
1037 if (p->dev == dev) {
1038 mutex_unlock(&pinctrl_list_mutex);
1042 mutex_unlock(&pinctrl_list_mutex);
1046 static void pinctrl_free(struct pinctrl *p, bool inlist);
1048 static struct pinctrl *create_pinctrl(struct device *dev,
1049 struct pinctrl_dev *pctldev)
1052 const char *devname;
1053 struct pinctrl_maps *maps_node;
1054 const struct pinctrl_map *map;
1058 * create the state cookie holder struct pinctrl for each
1059 * mapping, this is what consumers will get when requesting
1060 * a pin control handle with pinctrl_get()
1062 p = kzalloc(sizeof(*p), GFP_KERNEL);
1064 return ERR_PTR(-ENOMEM);
1066 INIT_LIST_HEAD(&p->states);
1067 INIT_LIST_HEAD(&p->dt_maps);
1069 ret = pinctrl_dt_to_map(p, pctldev);
1072 return ERR_PTR(ret);
1075 devname = dev_name(dev);
1077 mutex_lock(&pinctrl_maps_mutex);
1078 /* Iterate over the pin control maps to locate the right ones */
1079 for_each_pin_map(maps_node, map) {
1080 /* Map must be for this device */
1081 if (strcmp(map->dev_name, devname))
1084 * If pctldev is not null, we are claiming hog for it,
1085 * that means, setting that is served by pctldev by itself.
1087 * Thus we must skip map that is for this device but is served
1091 strcmp(dev_name(pctldev->dev), map->ctrl_dev_name))
1094 ret = add_setting(p, pctldev, map);
1096 * At this point the adding of a setting may:
1098 * - Defer, if the pinctrl device is not yet available
1099 * - Fail, if the pinctrl device is not yet available,
1100 * AND the setting is a hog. We cannot defer that, since
1101 * the hog will kick in immediately after the device
1104 * If the error returned was not -EPROBE_DEFER then we
1105 * accumulate the errors to see if we end up with
1106 * an -EPROBE_DEFER later, as that is the worst case.
1108 if (ret == -EPROBE_DEFER) {
1109 pinctrl_free(p, false);
1110 mutex_unlock(&pinctrl_maps_mutex);
1111 return ERR_PTR(ret);
1114 mutex_unlock(&pinctrl_maps_mutex);
1117 /* If some other error than deferral occurred, return here */
1118 pinctrl_free(p, false);
1119 return ERR_PTR(ret);
1122 kref_init(&p->users);
1124 /* Add the pinctrl handle to the global list */
1125 mutex_lock(&pinctrl_list_mutex);
1126 list_add_tail(&p->node, &pinctrl_list);
1127 mutex_unlock(&pinctrl_list_mutex);
1133 * pinctrl_get() - retrieves the pinctrl handle for a device
1134 * @dev: the device to obtain the handle for
1136 struct pinctrl *pinctrl_get(struct device *dev)
1141 return ERR_PTR(-EINVAL);
1144 * See if somebody else (such as the device core) has already
1145 * obtained a handle to the pinctrl for this device. In that case,
1146 * return another pointer to it.
1148 p = find_pinctrl(dev);
1150 dev_dbg(dev, "obtain a copy of previously claimed pinctrl\n");
1151 kref_get(&p->users);
1155 return create_pinctrl(dev, NULL);
1157 EXPORT_SYMBOL_GPL(pinctrl_get);
1159 static void pinctrl_free_setting(bool disable_setting,
1160 struct pinctrl_setting *setting)
1162 switch (setting->type) {
1163 case PIN_MAP_TYPE_MUX_GROUP:
1164 if (disable_setting)
1165 pinmux_disable_setting(setting);
1166 pinmux_free_setting(setting);
1168 case PIN_MAP_TYPE_CONFIGS_PIN:
1169 case PIN_MAP_TYPE_CONFIGS_GROUP:
1170 pinconf_free_setting(setting);
1177 static void pinctrl_free(struct pinctrl *p, bool inlist)
1179 struct pinctrl_state *state, *n1;
1180 struct pinctrl_setting *setting, *n2;
1182 mutex_lock(&pinctrl_list_mutex);
1183 list_for_each_entry_safe(state, n1, &p->states, node) {
1184 list_for_each_entry_safe(setting, n2, &state->settings, node) {
1185 pinctrl_free_setting(state == p->state, setting);
1186 list_del(&setting->node);
1189 list_del(&state->node);
1193 pinctrl_dt_free_maps(p);
1198 mutex_unlock(&pinctrl_list_mutex);
1202 * pinctrl_release() - release the pinctrl handle
1203 * @kref: the kref in the pinctrl being released
1205 static void pinctrl_release(struct kref *kref)
1207 struct pinctrl *p = container_of(kref, struct pinctrl, users);
1209 pinctrl_free(p, true);
1213 * pinctrl_put() - decrease use count on a previously claimed pinctrl handle
1214 * @p: the pinctrl handle to release
1216 void pinctrl_put(struct pinctrl *p)
1218 kref_put(&p->users, pinctrl_release);
1220 EXPORT_SYMBOL_GPL(pinctrl_put);
1223 * pinctrl_lookup_state() - retrieves a state handle from a pinctrl handle
1224 * @p: the pinctrl handle to retrieve the state from
1225 * @name: the state name to retrieve
1227 struct pinctrl_state *pinctrl_lookup_state(struct pinctrl *p,
1230 struct pinctrl_state *state;
1232 state = find_state(p, name);
1234 if (pinctrl_dummy_state) {
1235 /* create dummy state */
1236 dev_dbg(p->dev, "using pinctrl dummy state (%s)\n",
1238 state = create_state(p, name);
1240 state = ERR_PTR(-ENODEV);
1245 EXPORT_SYMBOL_GPL(pinctrl_lookup_state);
1247 static void pinctrl_link_add(struct pinctrl_dev *pctldev,
1248 struct device *consumer)
1250 if (pctldev->desc->link_consumers)
1251 device_link_add(consumer, pctldev->dev,
1252 DL_FLAG_PM_RUNTIME |
1253 DL_FLAG_AUTOREMOVE_CONSUMER);
1257 * pinctrl_commit_state() - select/activate/program a pinctrl state to HW
1258 * @p: the pinctrl handle for the device that requests configuration
1259 * @state: the state handle to select/activate/program
1261 static int pinctrl_commit_state(struct pinctrl *p, struct pinctrl_state *state)
1263 struct pinctrl_setting *setting, *setting2;
1264 struct pinctrl_state *old_state = READ_ONCE(p->state);
1269 * For each pinmux setting in the old state, forget SW's record
1270 * of mux owner for that pingroup. Any pingroups which are
1271 * still owned by the new state will be re-acquired by the call
1272 * to pinmux_enable_setting() in the loop below.
1274 list_for_each_entry(setting, &old_state->settings, node) {
1275 if (setting->type != PIN_MAP_TYPE_MUX_GROUP)
1277 pinmux_disable_setting(setting);
1283 /* Apply all the settings for the new state - pinmux first */
1284 list_for_each_entry(setting, &state->settings, node) {
1285 switch (setting->type) {
1286 case PIN_MAP_TYPE_MUX_GROUP:
1287 ret = pinmux_enable_setting(setting);
1289 case PIN_MAP_TYPE_CONFIGS_PIN:
1290 case PIN_MAP_TYPE_CONFIGS_GROUP:
1299 goto unapply_new_state;
1301 /* Do not link hogs (circular dependency) */
1302 if (p != setting->pctldev->p)
1303 pinctrl_link_add(setting->pctldev, p->dev);
1306 /* Apply all the settings for the new state - pinconf after */
1307 list_for_each_entry(setting, &state->settings, node) {
1308 switch (setting->type) {
1309 case PIN_MAP_TYPE_MUX_GROUP:
1312 case PIN_MAP_TYPE_CONFIGS_PIN:
1313 case PIN_MAP_TYPE_CONFIGS_GROUP:
1314 ret = pinconf_apply_setting(setting);
1322 goto unapply_new_state;
1325 /* Do not link hogs (circular dependency) */
1326 if (p != setting->pctldev->p)
1327 pinctrl_link_add(setting->pctldev, p->dev);
1335 dev_err(p->dev, "Error applying setting, reverse things back\n");
1337 list_for_each_entry(setting2, &state->settings, node) {
1338 if (&setting2->node == &setting->node)
1341 * All we can do here is pinmux_disable_setting.
1342 * That means that some pins are muxed differently now
1343 * than they were before applying the setting (We can't
1344 * "unmux a pin"!), but it's not a big deal since the pins
1345 * are free to be muxed by another apply_setting.
1347 if (setting2->type == PIN_MAP_TYPE_MUX_GROUP)
1348 pinmux_disable_setting(setting2);
1351 /* There's no infinite recursive loop here because p->state is NULL */
1353 pinctrl_select_state(p, old_state);
1359 * pinctrl_select_state() - select/activate/program a pinctrl state to HW
1360 * @p: the pinctrl handle for the device that requests configuration
1361 * @state: the state handle to select/activate/program
1363 int pinctrl_select_state(struct pinctrl *p, struct pinctrl_state *state)
1365 if (p->state == state)
1368 return pinctrl_commit_state(p, state);
1370 EXPORT_SYMBOL_GPL(pinctrl_select_state);
1372 static void devm_pinctrl_release(struct device *dev, void *res)
1374 pinctrl_put(*(struct pinctrl **)res);
1378 * devm_pinctrl_get() - Resource managed pinctrl_get()
1379 * @dev: the device to obtain the handle for
1381 * If there is a need to explicitly destroy the returned struct pinctrl,
1382 * devm_pinctrl_put() should be used, rather than plain pinctrl_put().
1384 struct pinctrl *devm_pinctrl_get(struct device *dev)
1386 struct pinctrl **ptr, *p;
1388 ptr = devres_alloc(devm_pinctrl_release, sizeof(*ptr), GFP_KERNEL);
1390 return ERR_PTR(-ENOMEM);
1392 p = pinctrl_get(dev);
1395 devres_add(dev, ptr);
1402 EXPORT_SYMBOL_GPL(devm_pinctrl_get);
1404 static int devm_pinctrl_match(struct device *dev, void *res, void *data)
1406 struct pinctrl **p = res;
1412 * devm_pinctrl_put() - Resource managed pinctrl_put()
1413 * @p: the pinctrl handle to release
1415 * Deallocate a struct pinctrl obtained via devm_pinctrl_get(). Normally
1416 * this function will not need to be called and the resource management
1417 * code will ensure that the resource is freed.
1419 void devm_pinctrl_put(struct pinctrl *p)
1421 WARN_ON(devres_release(p->dev, devm_pinctrl_release,
1422 devm_pinctrl_match, p));
1424 EXPORT_SYMBOL_GPL(devm_pinctrl_put);
1427 * pinctrl_register_mappings() - register a set of pin controller mappings
1428 * @maps: the pincontrol mappings table to register. Note the pinctrl-core
1429 * keeps a reference to the passed in maps, so they should _not_ be
1430 * marked with __initdata.
1431 * @num_maps: the number of maps in the mapping table
1433 int pinctrl_register_mappings(const struct pinctrl_map *maps,
1434 unsigned int num_maps)
1437 struct pinctrl_maps *maps_node;
1439 pr_debug("add %u pinctrl maps\n", num_maps);
1441 /* First sanity check the new mapping */
1442 for (i = 0; i < num_maps; i++) {
1443 if (!maps[i].dev_name) {
1444 pr_err("failed to register map %s (%d): no device given\n",
1449 if (!maps[i].name) {
1450 pr_err("failed to register map %d: no map name given\n",
1455 if (maps[i].type != PIN_MAP_TYPE_DUMMY_STATE &&
1456 !maps[i].ctrl_dev_name) {
1457 pr_err("failed to register map %s (%d): no pin control device given\n",
1462 switch (maps[i].type) {
1463 case PIN_MAP_TYPE_DUMMY_STATE:
1465 case PIN_MAP_TYPE_MUX_GROUP:
1466 ret = pinmux_validate_map(&maps[i], i);
1470 case PIN_MAP_TYPE_CONFIGS_PIN:
1471 case PIN_MAP_TYPE_CONFIGS_GROUP:
1472 ret = pinconf_validate_map(&maps[i], i);
1477 pr_err("failed to register map %s (%d): invalid type given\n",
1483 maps_node = kzalloc(sizeof(*maps_node), GFP_KERNEL);
1487 maps_node->maps = maps;
1488 maps_node->num_maps = num_maps;
1490 mutex_lock(&pinctrl_maps_mutex);
1491 list_add_tail(&maps_node->node, &pinctrl_maps);
1492 mutex_unlock(&pinctrl_maps_mutex);
1496 EXPORT_SYMBOL_GPL(pinctrl_register_mappings);
1499 * pinctrl_unregister_mappings() - unregister a set of pin controller mappings
1500 * @map: the pincontrol mappings table passed to pinctrl_register_mappings()
1501 * when registering the mappings.
1503 void pinctrl_unregister_mappings(const struct pinctrl_map *map)
1505 struct pinctrl_maps *maps_node;
1507 mutex_lock(&pinctrl_maps_mutex);
1508 list_for_each_entry(maps_node, &pinctrl_maps, node) {
1509 if (maps_node->maps == map) {
1510 list_del(&maps_node->node);
1512 mutex_unlock(&pinctrl_maps_mutex);
1516 mutex_unlock(&pinctrl_maps_mutex);
1518 EXPORT_SYMBOL_GPL(pinctrl_unregister_mappings);
1521 * pinctrl_force_sleep() - turn a given controller device into sleep state
1522 * @pctldev: pin controller device
1524 int pinctrl_force_sleep(struct pinctrl_dev *pctldev)
1526 if (!IS_ERR(pctldev->p) && !IS_ERR(pctldev->hog_sleep))
1527 return pinctrl_commit_state(pctldev->p, pctldev->hog_sleep);
1530 EXPORT_SYMBOL_GPL(pinctrl_force_sleep);
1533 * pinctrl_force_default() - turn a given controller device into default state
1534 * @pctldev: pin controller device
1536 int pinctrl_force_default(struct pinctrl_dev *pctldev)
1538 if (!IS_ERR(pctldev->p) && !IS_ERR(pctldev->hog_default))
1539 return pinctrl_commit_state(pctldev->p, pctldev->hog_default);
1542 EXPORT_SYMBOL_GPL(pinctrl_force_default);
1545 * pinctrl_init_done() - tell pinctrl probe is done
1547 * We'll use this time to switch the pins from "init" to "default" unless the
1548 * driver selected some other state.
1550 * @dev: device to that's done probing
1552 int pinctrl_init_done(struct device *dev)
1554 struct dev_pin_info *pins = dev->pins;
1560 if (IS_ERR(pins->init_state))
1561 return 0; /* No such state */
1563 if (pins->p->state != pins->init_state)
1564 return 0; /* Not at init anyway */
1566 if (IS_ERR(pins->default_state))
1567 return 0; /* No default state */
1569 ret = pinctrl_select_state(pins->p, pins->default_state);
1571 dev_err(dev, "failed to activate default pinctrl state\n");
1576 static int pinctrl_select_bound_state(struct device *dev,
1577 struct pinctrl_state *state)
1579 struct dev_pin_info *pins = dev->pins;
1583 return 0; /* No such state */
1584 ret = pinctrl_select_state(pins->p, state);
1586 dev_err(dev, "failed to activate pinctrl state %s\n",
1592 * pinctrl_select_default_state() - select default pinctrl state
1593 * @dev: device to select default state for
1595 int pinctrl_select_default_state(struct device *dev)
1600 return pinctrl_select_bound_state(dev, dev->pins->default_state);
1602 EXPORT_SYMBOL_GPL(pinctrl_select_default_state);
1607 * pinctrl_pm_select_default_state() - select default pinctrl state for PM
1608 * @dev: device to select default state for
1610 int pinctrl_pm_select_default_state(struct device *dev)
1612 return pinctrl_select_default_state(dev);
1614 EXPORT_SYMBOL_GPL(pinctrl_pm_select_default_state);
1617 * pinctrl_pm_select_sleep_state() - select sleep pinctrl state for PM
1618 * @dev: device to select sleep state for
1620 int pinctrl_pm_select_sleep_state(struct device *dev)
1625 return pinctrl_select_bound_state(dev, dev->pins->sleep_state);
1627 EXPORT_SYMBOL_GPL(pinctrl_pm_select_sleep_state);
1630 * pinctrl_pm_select_idle_state() - select idle pinctrl state for PM
1631 * @dev: device to select idle state for
1633 int pinctrl_pm_select_idle_state(struct device *dev)
1638 return pinctrl_select_bound_state(dev, dev->pins->idle_state);
1640 EXPORT_SYMBOL_GPL(pinctrl_pm_select_idle_state);
1643 #ifdef CONFIG_DEBUG_FS
1645 static int pinctrl_pins_show(struct seq_file *s, void *what)
1647 struct pinctrl_dev *pctldev = s->private;
1648 const struct pinctrl_ops *ops = pctldev->desc->pctlops;
1649 unsigned int i, pin;
1650 #ifdef CONFIG_GPIOLIB
1651 struct gpio_device *gdev = NULL;
1652 struct pinctrl_gpio_range *range;
1656 seq_printf(s, "registered pins: %d\n", pctldev->desc->npins);
1658 mutex_lock(&pctldev->mutex);
1660 /* The pin number can be retrived from the pin controller descriptor */
1661 for (i = 0; i < pctldev->desc->npins; i++) {
1662 struct pin_desc *desc;
1664 pin = pctldev->desc->pins[i].number;
1665 desc = pin_desc_get(pctldev, pin);
1666 /* Pin space may be sparse */
1670 seq_printf(s, "pin %d (%s) ", pin, desc->name);
1672 #ifdef CONFIG_GPIOLIB
1674 list_for_each_entry(range, &pctldev->gpio_ranges, node) {
1675 if ((pin >= range->pin_base) &&
1676 (pin < (range->pin_base + range->npins))) {
1677 gpio_num = range->base + (pin - range->pin_base);
1683 * FIXME: gpio_num comes from the global GPIO numberspace.
1684 * we need to get rid of the range->base eventually and
1685 * get the descriptor directly from the gpio_chip.
1687 gdev = gpiod_to_gpio_device(gpio_to_desc(gpio_num));
1689 seq_printf(s, "%u:%s ",
1690 gpio_num - gpio_device_get_base(gdev),
1691 gpio_device_get_label(gdev));
1693 seq_puts(s, "0:? ");
1696 /* Driver-specific info per pin */
1697 if (ops->pin_dbg_show)
1698 ops->pin_dbg_show(pctldev, s, pin);
1703 mutex_unlock(&pctldev->mutex);
1707 DEFINE_SHOW_ATTRIBUTE(pinctrl_pins);
1709 static int pinctrl_groups_show(struct seq_file *s, void *what)
1711 struct pinctrl_dev *pctldev = s->private;
1712 const struct pinctrl_ops *ops = pctldev->desc->pctlops;
1713 unsigned int ngroups, selector = 0;
1715 mutex_lock(&pctldev->mutex);
1717 ngroups = ops->get_groups_count(pctldev);
1719 seq_puts(s, "registered pin groups:\n");
1720 while (selector < ngroups) {
1721 const unsigned int *pins = NULL;
1722 unsigned int num_pins = 0;
1723 const char *gname = ops->get_group_name(pctldev, selector);
1728 if (ops->get_group_pins)
1729 ret = ops->get_group_pins(pctldev, selector,
1732 seq_printf(s, "%s [ERROR GETTING PINS]\n",
1735 seq_printf(s, "group: %s\n", gname);
1736 for (i = 0; i < num_pins; i++) {
1737 pname = pin_get_name(pctldev, pins[i]);
1738 if (WARN_ON(!pname)) {
1739 mutex_unlock(&pctldev->mutex);
1742 seq_printf(s, "pin %d (%s)\n", pins[i], pname);
1749 mutex_unlock(&pctldev->mutex);
1753 DEFINE_SHOW_ATTRIBUTE(pinctrl_groups);
1755 static int pinctrl_gpioranges_show(struct seq_file *s, void *what)
1757 struct pinctrl_dev *pctldev = s->private;
1758 struct pinctrl_gpio_range *range;
1760 seq_puts(s, "GPIO ranges handled:\n");
1762 mutex_lock(&pctldev->mutex);
1764 /* Loop over the ranges */
1765 list_for_each_entry(range, &pctldev->gpio_ranges, node) {
1768 seq_printf(s, "%u: %s GPIOS [%u - %u] PINS {",
1769 range->id, range->name,
1770 range->base, (range->base + range->npins - 1));
1771 for (a = 0; a < range->npins - 1; a++)
1772 seq_printf(s, "%u, ", range->pins[a]);
1773 seq_printf(s, "%u}\n", range->pins[a]);
1776 seq_printf(s, "%u: %s GPIOS [%u - %u] PINS [%u - %u]\n",
1777 range->id, range->name,
1778 range->base, (range->base + range->npins - 1),
1780 (range->pin_base + range->npins - 1));
1783 mutex_unlock(&pctldev->mutex);
1787 DEFINE_SHOW_ATTRIBUTE(pinctrl_gpioranges);
1789 static int pinctrl_devices_show(struct seq_file *s, void *what)
1791 struct pinctrl_dev *pctldev;
1793 seq_puts(s, "name [pinmux] [pinconf]\n");
1795 mutex_lock(&pinctrldev_list_mutex);
1797 list_for_each_entry(pctldev, &pinctrldev_list, node) {
1798 seq_printf(s, "%s ", pctldev->desc->name);
1799 if (pctldev->desc->pmxops)
1800 seq_puts(s, "yes ");
1803 if (pctldev->desc->confops)
1810 mutex_unlock(&pinctrldev_list_mutex);
1814 DEFINE_SHOW_ATTRIBUTE(pinctrl_devices);
1816 static inline const char *map_type(enum pinctrl_map_type type)
1818 static const char * const names[] = {
1826 if (type >= ARRAY_SIZE(names))
1832 static int pinctrl_maps_show(struct seq_file *s, void *what)
1834 struct pinctrl_maps *maps_node;
1835 const struct pinctrl_map *map;
1837 seq_puts(s, "Pinctrl maps:\n");
1839 mutex_lock(&pinctrl_maps_mutex);
1840 for_each_pin_map(maps_node, map) {
1841 seq_printf(s, "device %s\nstate %s\ntype %s (%d)\n",
1842 map->dev_name, map->name, map_type(map->type),
1845 if (map->type != PIN_MAP_TYPE_DUMMY_STATE)
1846 seq_printf(s, "controlling device %s\n",
1847 map->ctrl_dev_name);
1849 switch (map->type) {
1850 case PIN_MAP_TYPE_MUX_GROUP:
1851 pinmux_show_map(s, map);
1853 case PIN_MAP_TYPE_CONFIGS_PIN:
1854 case PIN_MAP_TYPE_CONFIGS_GROUP:
1855 pinconf_show_map(s, map);
1863 mutex_unlock(&pinctrl_maps_mutex);
1867 DEFINE_SHOW_ATTRIBUTE(pinctrl_maps);
1869 static int pinctrl_show(struct seq_file *s, void *what)
1872 struct pinctrl_state *state;
1873 struct pinctrl_setting *setting;
1875 seq_puts(s, "Requested pin control handlers their pinmux maps:\n");
1877 mutex_lock(&pinctrl_list_mutex);
1879 list_for_each_entry(p, &pinctrl_list, node) {
1880 seq_printf(s, "device: %s current state: %s\n",
1882 p->state ? p->state->name : "none");
1884 list_for_each_entry(state, &p->states, node) {
1885 seq_printf(s, " state: %s\n", state->name);
1887 list_for_each_entry(setting, &state->settings, node) {
1888 struct pinctrl_dev *pctldev = setting->pctldev;
1890 seq_printf(s, " type: %s controller %s ",
1891 map_type(setting->type),
1892 pinctrl_dev_get_name(pctldev));
1894 switch (setting->type) {
1895 case PIN_MAP_TYPE_MUX_GROUP:
1896 pinmux_show_setting(s, setting);
1898 case PIN_MAP_TYPE_CONFIGS_PIN:
1899 case PIN_MAP_TYPE_CONFIGS_GROUP:
1900 pinconf_show_setting(s, setting);
1909 mutex_unlock(&pinctrl_list_mutex);
1913 DEFINE_SHOW_ATTRIBUTE(pinctrl);
1915 static struct dentry *debugfs_root;
1917 static void pinctrl_init_device_debugfs(struct pinctrl_dev *pctldev)
1919 struct dentry *device_root;
1920 const char *debugfs_name;
1922 if (pctldev->desc->name &&
1923 strcmp(dev_name(pctldev->dev), pctldev->desc->name)) {
1924 debugfs_name = devm_kasprintf(pctldev->dev, GFP_KERNEL,
1925 "%s-%s", dev_name(pctldev->dev),
1926 pctldev->desc->name);
1927 if (!debugfs_name) {
1928 pr_warn("failed to determine debugfs dir name for %s\n",
1929 dev_name(pctldev->dev));
1933 debugfs_name = dev_name(pctldev->dev);
1936 device_root = debugfs_create_dir(debugfs_name, debugfs_root);
1937 pctldev->device_root = device_root;
1939 if (IS_ERR(device_root) || !device_root) {
1940 pr_warn("failed to create debugfs directory for %s\n",
1941 dev_name(pctldev->dev));
1944 debugfs_create_file("pins", 0444,
1945 device_root, pctldev, &pinctrl_pins_fops);
1946 debugfs_create_file("pingroups", 0444,
1947 device_root, pctldev, &pinctrl_groups_fops);
1948 debugfs_create_file("gpio-ranges", 0444,
1949 device_root, pctldev, &pinctrl_gpioranges_fops);
1950 if (pctldev->desc->pmxops)
1951 pinmux_init_device_debugfs(device_root, pctldev);
1952 if (pctldev->desc->confops)
1953 pinconf_init_device_debugfs(device_root, pctldev);
1956 static void pinctrl_remove_device_debugfs(struct pinctrl_dev *pctldev)
1958 debugfs_remove_recursive(pctldev->device_root);
1961 static void pinctrl_init_debugfs(void)
1963 debugfs_root = debugfs_create_dir("pinctrl", NULL);
1964 if (IS_ERR(debugfs_root) || !debugfs_root) {
1965 pr_warn("failed to create debugfs directory\n");
1966 debugfs_root = NULL;
1970 debugfs_create_file("pinctrl-devices", 0444,
1971 debugfs_root, NULL, &pinctrl_devices_fops);
1972 debugfs_create_file("pinctrl-maps", 0444,
1973 debugfs_root, NULL, &pinctrl_maps_fops);
1974 debugfs_create_file("pinctrl-handles", 0444,
1975 debugfs_root, NULL, &pinctrl_fops);
1978 #else /* CONFIG_DEBUG_FS */
1980 static void pinctrl_init_device_debugfs(struct pinctrl_dev *pctldev)
1984 static void pinctrl_init_debugfs(void)
1988 static void pinctrl_remove_device_debugfs(struct pinctrl_dev *pctldev)
1994 static int pinctrl_check_ops(struct pinctrl_dev *pctldev)
1996 const struct pinctrl_ops *ops = pctldev->desc->pctlops;
1999 !ops->get_groups_count ||
2000 !ops->get_group_name)
2007 * pinctrl_init_controller() - init a pin controller device
2008 * @pctldesc: descriptor for this pin controller
2009 * @dev: parent device for this pin controller
2010 * @driver_data: private pin controller data for this pin controller
2012 static struct pinctrl_dev *
2013 pinctrl_init_controller(struct pinctrl_desc *pctldesc, struct device *dev,
2016 struct pinctrl_dev *pctldev;
2020 return ERR_PTR(-EINVAL);
2021 if (!pctldesc->name)
2022 return ERR_PTR(-EINVAL);
2024 pctldev = kzalloc(sizeof(*pctldev), GFP_KERNEL);
2026 return ERR_PTR(-ENOMEM);
2028 /* Initialize pin control device struct */
2029 pctldev->owner = pctldesc->owner;
2030 pctldev->desc = pctldesc;
2031 pctldev->driver_data = driver_data;
2032 INIT_RADIX_TREE(&pctldev->pin_desc_tree, GFP_KERNEL);
2033 #ifdef CONFIG_GENERIC_PINCTRL_GROUPS
2034 INIT_RADIX_TREE(&pctldev->pin_group_tree, GFP_KERNEL);
2036 #ifdef CONFIG_GENERIC_PINMUX_FUNCTIONS
2037 INIT_RADIX_TREE(&pctldev->pin_function_tree, GFP_KERNEL);
2039 INIT_LIST_HEAD(&pctldev->gpio_ranges);
2040 INIT_LIST_HEAD(&pctldev->node);
2042 mutex_init(&pctldev->mutex);
2044 /* check core ops for sanity */
2045 ret = pinctrl_check_ops(pctldev);
2047 dev_err(dev, "pinctrl ops lacks necessary functions\n");
2051 /* If we're implementing pinmuxing, check the ops for sanity */
2052 if (pctldesc->pmxops) {
2053 ret = pinmux_check_ops(pctldev);
2058 /* If we're implementing pinconfig, check the ops for sanity */
2059 if (pctldesc->confops) {
2060 ret = pinconf_check_ops(pctldev);
2065 /* Register all the pins */
2066 dev_dbg(dev, "try to register %d pins ...\n", pctldesc->npins);
2067 ret = pinctrl_register_pins(pctldev, pctldesc->pins, pctldesc->npins);
2069 dev_err(dev, "error during pin registration\n");
2070 pinctrl_free_pindescs(pctldev, pctldesc->pins,
2078 mutex_destroy(&pctldev->mutex);
2080 return ERR_PTR(ret);
2083 static int pinctrl_claim_hogs(struct pinctrl_dev *pctldev)
2085 pctldev->p = create_pinctrl(pctldev->dev, pctldev);
2086 if (PTR_ERR(pctldev->p) == -ENODEV) {
2087 dev_dbg(pctldev->dev, "no hogs found\n");
2092 if (IS_ERR(pctldev->p)) {
2093 dev_err(pctldev->dev, "error claiming hogs: %li\n",
2094 PTR_ERR(pctldev->p));
2096 return PTR_ERR(pctldev->p);
2099 pctldev->hog_default =
2100 pinctrl_lookup_state(pctldev->p, PINCTRL_STATE_DEFAULT);
2101 if (IS_ERR(pctldev->hog_default)) {
2102 dev_dbg(pctldev->dev,
2103 "failed to lookup the default state\n");
2105 if (pinctrl_select_state(pctldev->p,
2106 pctldev->hog_default))
2107 dev_err(pctldev->dev,
2108 "failed to select default state\n");
2111 pctldev->hog_sleep =
2112 pinctrl_lookup_state(pctldev->p,
2113 PINCTRL_STATE_SLEEP);
2114 if (IS_ERR(pctldev->hog_sleep))
2115 dev_dbg(pctldev->dev,
2116 "failed to lookup the sleep state\n");
2121 int pinctrl_enable(struct pinctrl_dev *pctldev)
2125 error = pinctrl_claim_hogs(pctldev);
2127 dev_err(pctldev->dev, "could not claim hogs: %i\n", error);
2131 mutex_lock(&pinctrldev_list_mutex);
2132 list_add_tail(&pctldev->node, &pinctrldev_list);
2133 mutex_unlock(&pinctrldev_list_mutex);
2135 pinctrl_init_device_debugfs(pctldev);
2139 EXPORT_SYMBOL_GPL(pinctrl_enable);
2142 * pinctrl_register() - register a pin controller device
2143 * @pctldesc: descriptor for this pin controller
2144 * @dev: parent device for this pin controller
2145 * @driver_data: private pin controller data for this pin controller
2147 * Note that pinctrl_register() is known to have problems as the pin
2148 * controller driver functions are called before the driver has a
2149 * struct pinctrl_dev handle. To avoid issues later on, please use the
2150 * new pinctrl_register_and_init() below instead.
2152 struct pinctrl_dev *pinctrl_register(struct pinctrl_desc *pctldesc,
2153 struct device *dev, void *driver_data)
2155 struct pinctrl_dev *pctldev;
2158 pctldev = pinctrl_init_controller(pctldesc, dev, driver_data);
2159 if (IS_ERR(pctldev))
2162 error = pinctrl_enable(pctldev);
2164 return ERR_PTR(error);
2168 EXPORT_SYMBOL_GPL(pinctrl_register);
2171 * pinctrl_register_and_init() - register and init pin controller device
2172 * @pctldesc: descriptor for this pin controller
2173 * @dev: parent device for this pin controller
2174 * @driver_data: private pin controller data for this pin controller
2175 * @pctldev: pin controller device
2177 * Note that pinctrl_enable() still needs to be manually called after
2178 * this once the driver is ready.
2180 int pinctrl_register_and_init(struct pinctrl_desc *pctldesc,
2181 struct device *dev, void *driver_data,
2182 struct pinctrl_dev **pctldev)
2184 struct pinctrl_dev *p;
2186 p = pinctrl_init_controller(pctldesc, dev, driver_data);
2191 * We have pinctrl_start() call functions in the pin controller
2192 * driver with create_pinctrl() for at least dt_node_to_map(). So
2193 * let's make sure pctldev is properly initialized for the
2194 * pin controller driver before we do anything.
2200 EXPORT_SYMBOL_GPL(pinctrl_register_and_init);
2203 * pinctrl_unregister() - unregister pinmux
2204 * @pctldev: pin controller to unregister
2206 * Called by pinmux drivers to unregister a pinmux.
2208 void pinctrl_unregister(struct pinctrl_dev *pctldev)
2210 struct pinctrl_gpio_range *range, *n;
2215 mutex_lock(&pctldev->mutex);
2216 pinctrl_remove_device_debugfs(pctldev);
2217 mutex_unlock(&pctldev->mutex);
2219 if (!IS_ERR_OR_NULL(pctldev->p))
2220 pinctrl_put(pctldev->p);
2222 mutex_lock(&pinctrldev_list_mutex);
2223 mutex_lock(&pctldev->mutex);
2224 /* TODO: check that no pinmuxes are still active? */
2225 list_del(&pctldev->node);
2226 pinmux_generic_free_functions(pctldev);
2227 pinctrl_generic_free_groups(pctldev);
2228 /* Destroy descriptor tree */
2229 pinctrl_free_pindescs(pctldev, pctldev->desc->pins,
2230 pctldev->desc->npins);
2231 /* remove gpio ranges map */
2232 list_for_each_entry_safe(range, n, &pctldev->gpio_ranges, node)
2233 list_del(&range->node);
2235 mutex_unlock(&pctldev->mutex);
2236 mutex_destroy(&pctldev->mutex);
2238 mutex_unlock(&pinctrldev_list_mutex);
2240 EXPORT_SYMBOL_GPL(pinctrl_unregister);
2242 static void devm_pinctrl_dev_release(struct device *dev, void *res)
2244 struct pinctrl_dev *pctldev = *(struct pinctrl_dev **)res;
2246 pinctrl_unregister(pctldev);
2249 static int devm_pinctrl_dev_match(struct device *dev, void *res, void *data)
2251 struct pctldev **r = res;
2253 if (WARN_ON(!r || !*r))
2260 * devm_pinctrl_register() - Resource managed version of pinctrl_register().
2261 * @dev: parent device for this pin controller
2262 * @pctldesc: descriptor for this pin controller
2263 * @driver_data: private pin controller data for this pin controller
2265 * Returns an error pointer if pincontrol register failed. Otherwise
2266 * it returns valid pinctrl handle.
2268 * The pinctrl device will be automatically released when the device is unbound.
2270 struct pinctrl_dev *devm_pinctrl_register(struct device *dev,
2271 struct pinctrl_desc *pctldesc,
2274 struct pinctrl_dev **ptr, *pctldev;
2276 ptr = devres_alloc(devm_pinctrl_dev_release, sizeof(*ptr), GFP_KERNEL);
2278 return ERR_PTR(-ENOMEM);
2280 pctldev = pinctrl_register(pctldesc, dev, driver_data);
2281 if (IS_ERR(pctldev)) {
2287 devres_add(dev, ptr);
2291 EXPORT_SYMBOL_GPL(devm_pinctrl_register);
2294 * devm_pinctrl_register_and_init() - Resource managed pinctrl register and init
2295 * @dev: parent device for this pin controller
2296 * @pctldesc: descriptor for this pin controller
2297 * @driver_data: private pin controller data for this pin controller
2298 * @pctldev: pin controller device
2300 * Returns zero on success or an error number on failure.
2302 * The pinctrl device will be automatically released when the device is unbound.
2304 int devm_pinctrl_register_and_init(struct device *dev,
2305 struct pinctrl_desc *pctldesc,
2307 struct pinctrl_dev **pctldev)
2309 struct pinctrl_dev **ptr;
2312 ptr = devres_alloc(devm_pinctrl_dev_release, sizeof(*ptr), GFP_KERNEL);
2316 error = pinctrl_register_and_init(pctldesc, dev, driver_data, pctldev);
2323 devres_add(dev, ptr);
2327 EXPORT_SYMBOL_GPL(devm_pinctrl_register_and_init);
2330 * devm_pinctrl_unregister() - Resource managed version of pinctrl_unregister().
2331 * @dev: device for which resource was allocated
2332 * @pctldev: the pinctrl device to unregister.
2334 void devm_pinctrl_unregister(struct device *dev, struct pinctrl_dev *pctldev)
2336 WARN_ON(devres_release(dev, devm_pinctrl_dev_release,
2337 devm_pinctrl_dev_match, pctldev));
2339 EXPORT_SYMBOL_GPL(devm_pinctrl_unregister);
2341 static int __init pinctrl_init(void)
2343 pr_info("initialized pinctrl subsystem\n");
2344 pinctrl_init_debugfs();
2348 /* init early since many drivers really need to initialized pinmux early */
2349 core_initcall(pinctrl_init);