1 // SPDX-License-Identifier: GPL-2.0-or-later
2 //
3 // core.c -- Voltage/Current Regulator framework.
4 //
5 // Copyright 2007, 2008 Wolfson Microelectronics PLC.
6 // Copyright 2008 SlimLogic Ltd.
7 //
8 // Author: Liam Girdwood <lrg@slimlogic.co.uk>
9
10 #include <linux/kernel.h>
11 #include <linux/init.h>
12 #include <linux/debugfs.h>
13 #include <linux/device.h>
14 #include <linux/slab.h>
15 #include <linux/async.h>
16 #include <linux/err.h>
17 #include <linux/mutex.h>
18 #include <linux/suspend.h>
19 #include <linux/delay.h>
20 #include <linux/gpio/consumer.h>
21 #include <linux/of.h>
22 #include <linux/reboot.h>
23 #include <linux/regmap.h>
24 #include <linux/regulator/of_regulator.h>
25 #include <linux/regulator/consumer.h>
26 #include <linux/regulator/coupler.h>
27 #include <linux/regulator/driver.h>
28 #include <linux/regulator/machine.h>
29 #include <linux/module.h>
30 #include <linux/workqueue.h>
31
32 #define CREATE_TRACE_POINTS
33 #include <trace/events/regulator.h>
34
35 #include "dummy.h"
36 #include "internal.h"
37 #include "regnl.h"
38
39 static DEFINE_WW_CLASS(regulator_ww_class);
40 static DEFINE_MUTEX(regulator_nesting_mutex);
41 static DEFINE_MUTEX(regulator_list_mutex);
42 static LIST_HEAD(regulator_map_list);
43 static LIST_HEAD(regulator_ena_gpio_list);
44 static LIST_HEAD(regulator_supply_alias_list);
45 static LIST_HEAD(regulator_coupler_list);
46 static bool has_full_constraints;
47
48 static const struct bus_type regulator_bus;
49
50 static struct dentry *debugfs_root;
51
52 /*
53 * struct regulator_map
54 *
55 * Used to provide symbolic supply names to devices.
56 */
57 struct regulator_map {
58 struct list_head list;
59 const char *dev_name; /* The dev_name() for the consumer */
60 const char *supply;
61 struct regulator_dev *regulator;
62 };
63
64 /*
65 * struct regulator_enable_gpio
66 *
67 * Management for shared enable GPIO pin
68 */
69 struct regulator_enable_gpio {
70 struct list_head list;
71 struct gpio_desc *gpiod;
72 u32 enable_count; /* a number of enabled shared GPIO */
73 u32 request_count; /* a number of requested shared GPIO */
74 };
75
76 /*
77 * struct regulator_supply_alias
78 *
79 * Used to map lookups for a supply onto an alternative device.
80 */
81 struct regulator_supply_alias {
82 struct list_head list;
83 struct device *src_dev;
84 const char *src_supply;
85 struct device *alias_dev;
86 const char *alias_supply;
87 };
88
89 /*
90 * Work item used to forward regulator events.
91 *
92 * @work: workqueue entry
93 * @rdev: regulator device to notify (consumer receiving the forwarded event)
94 * @event: event code to be forwarded
95 */
96 struct regulator_event_work {
97 struct work_struct work;
98 struct regulator_dev *rdev;
99 unsigned long event;
100 };
101
102 static int _regulator_enable(struct regulator *regulator);
103 static int _regulator_is_enabled(struct regulator_dev *rdev);
104 static int _regulator_disable(struct regulator *regulator);
105 static int _regulator_get_error_flags(struct regulator_dev *rdev, unsigned int *flags);
106 static int _regulator_get_current_limit(struct regulator_dev *rdev);
107 static unsigned int _regulator_get_mode(struct regulator_dev *rdev);
108 static int _notifier_call_chain(struct regulator_dev *rdev,
109 unsigned long event, void *data);
110 static int _regulator_do_set_voltage(struct regulator_dev *rdev,
111 int min_uV, int max_uV);
112 static int regulator_balance_voltage(struct regulator_dev *rdev,
113 suspend_state_t state);
114 static struct regulator *create_regulator(struct regulator_dev *rdev,
115 struct device *dev,
116 const char *supply_name);
117 static void destroy_regulator(struct regulator *regulator);
118 static void _regulator_put(struct regulator *regulator);
119
rdev_get_name(struct regulator_dev * rdev)120 const char *rdev_get_name(struct regulator_dev *rdev)
121 {
122 if (rdev->constraints && rdev->constraints->name)
123 return rdev->constraints->name;
124 else if (rdev->desc->name)
125 return rdev->desc->name;
126 else
127 return "";
128 }
129 EXPORT_SYMBOL_GPL(rdev_get_name);
130
have_full_constraints(void)131 static bool have_full_constraints(void)
132 {
133 return has_full_constraints || of_have_populated_dt();
134 }
135
regulator_ops_is_valid(struct regulator_dev * rdev,int ops)136 static bool regulator_ops_is_valid(struct regulator_dev *rdev, int ops)
137 {
138 if (!rdev->constraints) {
139 rdev_err(rdev, "no constraints\n");
140 return false;
141 }
142
143 if (rdev->constraints->valid_ops_mask & ops)
144 return true;
145
146 return false;
147 }
148
149 /**
150 * regulator_lock_nested - lock a single regulator
151 * @rdev: regulator source
152 * @ww_ctx: w/w mutex acquire context
153 *
154 * This function can be called many times by one task on
155 * a single regulator and its mutex will be locked only
156 * once. If a task, which is calling this function is other
157 * than the one, which initially locked the mutex, it will
158 * wait on mutex.
159 *
160 * Return: 0 on success or a negative error number on failure.
161 */
regulator_lock_nested(struct regulator_dev * rdev,struct ww_acquire_ctx * ww_ctx)162 static inline int regulator_lock_nested(struct regulator_dev *rdev,
163 struct ww_acquire_ctx *ww_ctx)
164 {
165 bool lock = false;
166 int ret = 0;
167
168 mutex_lock(®ulator_nesting_mutex);
169
170 if (!ww_mutex_trylock(&rdev->mutex, ww_ctx)) {
171 if (rdev->mutex_owner == current)
172 rdev->ref_cnt++;
173 else
174 lock = true;
175
176 if (lock) {
177 mutex_unlock(®ulator_nesting_mutex);
178 ret = ww_mutex_lock(&rdev->mutex, ww_ctx);
179 mutex_lock(®ulator_nesting_mutex);
180 }
181 } else {
182 lock = true;
183 }
184
185 if (lock && ret != -EDEADLK) {
186 rdev->ref_cnt++;
187 rdev->mutex_owner = current;
188 }
189
190 mutex_unlock(®ulator_nesting_mutex);
191
192 return ret;
193 }
194
195 /**
196 * regulator_lock - lock a single regulator
197 * @rdev: regulator source
198 *
199 * This function can be called many times by one task on
200 * a single regulator and its mutex will be locked only
201 * once. If a task, which is calling this function is other
202 * than the one, which initially locked the mutex, it will
203 * wait on mutex.
204 */
regulator_lock(struct regulator_dev * rdev)205 static void regulator_lock(struct regulator_dev *rdev)
206 {
207 regulator_lock_nested(rdev, NULL);
208 }
209
210 /**
211 * regulator_unlock - unlock a single regulator
212 * @rdev: regulator_source
213 *
214 * This function unlocks the mutex when the
215 * reference counter reaches 0.
216 */
regulator_unlock(struct regulator_dev * rdev)217 static void regulator_unlock(struct regulator_dev *rdev)
218 {
219 mutex_lock(®ulator_nesting_mutex);
220
221 if (--rdev->ref_cnt == 0) {
222 rdev->mutex_owner = NULL;
223 ww_mutex_unlock(&rdev->mutex);
224 }
225
226 WARN_ON_ONCE(rdev->ref_cnt < 0);
227
228 mutex_unlock(®ulator_nesting_mutex);
229 }
230
231 /**
232 * regulator_lock_two - lock two regulators
233 * @rdev1: first regulator
234 * @rdev2: second regulator
235 * @ww_ctx: w/w mutex acquire context
236 *
237 * Locks both rdevs using the regulator_ww_class.
238 */
regulator_lock_two(struct regulator_dev * rdev1,struct regulator_dev * rdev2,struct ww_acquire_ctx * ww_ctx)239 static void regulator_lock_two(struct regulator_dev *rdev1,
240 struct regulator_dev *rdev2,
241 struct ww_acquire_ctx *ww_ctx)
242 {
243 struct regulator_dev *held, *contended;
244 int ret;
245
246 ww_acquire_init(ww_ctx, ®ulator_ww_class);
247
248 /* Try to just grab both of them */
249 ret = regulator_lock_nested(rdev1, ww_ctx);
250 WARN_ON(ret);
251 ret = regulator_lock_nested(rdev2, ww_ctx);
252 if (ret != -EDEADLK) {
253 WARN_ON(ret);
254 goto exit;
255 }
256
257 held = rdev1;
258 contended = rdev2;
259 while (true) {
260 regulator_unlock(held);
261
262 ww_mutex_lock_slow(&contended->mutex, ww_ctx);
263 contended->ref_cnt++;
264 contended->mutex_owner = current;
265 swap(held, contended);
266 ret = regulator_lock_nested(contended, ww_ctx);
267
268 if (ret != -EDEADLK) {
269 WARN_ON(ret);
270 break;
271 }
272 }
273
274 exit:
275 ww_acquire_done(ww_ctx);
276 }
277
278 /**
279 * regulator_unlock_two - unlock two regulators
280 * @rdev1: first regulator
281 * @rdev2: second regulator
282 * @ww_ctx: w/w mutex acquire context
283 *
284 * The inverse of regulator_lock_two().
285 */
286
regulator_unlock_two(struct regulator_dev * rdev1,struct regulator_dev * rdev2,struct ww_acquire_ctx * ww_ctx)287 static void regulator_unlock_two(struct regulator_dev *rdev1,
288 struct regulator_dev *rdev2,
289 struct ww_acquire_ctx *ww_ctx)
290 {
291 regulator_unlock(rdev2);
292 regulator_unlock(rdev1);
293 ww_acquire_fini(ww_ctx);
294 }
295
regulator_supply_is_couple(struct regulator_dev * rdev)296 static bool regulator_supply_is_couple(struct regulator_dev *rdev)
297 {
298 struct regulator_dev *c_rdev;
299 int i;
300
301 for (i = 1; i < rdev->coupling_desc.n_coupled; i++) {
302 c_rdev = rdev->coupling_desc.coupled_rdevs[i];
303
304 if (rdev->supply->rdev == c_rdev)
305 return true;
306 }
307
308 return false;
309 }
310
regulator_unlock_recursive(struct regulator_dev * rdev,unsigned int n_coupled)311 static void regulator_unlock_recursive(struct regulator_dev *rdev,
312 unsigned int n_coupled)
313 {
314 struct regulator_dev *c_rdev, *supply_rdev;
315 int i, supply_n_coupled;
316
317 for (i = n_coupled; i > 0; i--) {
318 c_rdev = rdev->coupling_desc.coupled_rdevs[i - 1];
319
320 if (!c_rdev)
321 continue;
322
323 if (c_rdev->supply && !regulator_supply_is_couple(c_rdev)) {
324 supply_rdev = c_rdev->supply->rdev;
325 supply_n_coupled = supply_rdev->coupling_desc.n_coupled;
326
327 regulator_unlock_recursive(supply_rdev,
328 supply_n_coupled);
329 }
330
331 regulator_unlock(c_rdev);
332 }
333 }
334
regulator_lock_recursive(struct regulator_dev * rdev,struct regulator_dev ** new_contended_rdev,struct regulator_dev ** old_contended_rdev,struct ww_acquire_ctx * ww_ctx)335 static int regulator_lock_recursive(struct regulator_dev *rdev,
336 struct regulator_dev **new_contended_rdev,
337 struct regulator_dev **old_contended_rdev,
338 struct ww_acquire_ctx *ww_ctx)
339 {
340 struct regulator_dev *c_rdev;
341 int i, err;
342
343 for (i = 0; i < rdev->coupling_desc.n_coupled; i++) {
344 c_rdev = rdev->coupling_desc.coupled_rdevs[i];
345
346 if (!c_rdev)
347 continue;
348
349 if (c_rdev != *old_contended_rdev) {
350 err = regulator_lock_nested(c_rdev, ww_ctx);
351 if (err) {
352 if (err == -EDEADLK) {
353 *new_contended_rdev = c_rdev;
354 goto err_unlock;
355 }
356
357 /* shouldn't happen */
358 WARN_ON_ONCE(err != -EALREADY);
359 }
360 } else {
361 *old_contended_rdev = NULL;
362 }
363
364 if (c_rdev->supply && !regulator_supply_is_couple(c_rdev)) {
365 err = regulator_lock_recursive(c_rdev->supply->rdev,
366 new_contended_rdev,
367 old_contended_rdev,
368 ww_ctx);
369 if (err) {
370 regulator_unlock(c_rdev);
371 goto err_unlock;
372 }
373 }
374 }
375
376 return 0;
377
378 err_unlock:
379 regulator_unlock_recursive(rdev, i);
380
381 return err;
382 }
383
384 /**
385 * regulator_unlock_dependent - unlock regulator's suppliers and coupled
386 * regulators
387 * @rdev: regulator source
388 * @ww_ctx: w/w mutex acquire context
389 *
390 * Unlock all regulators related with rdev by coupling or supplying.
391 */
regulator_unlock_dependent(struct regulator_dev * rdev,struct ww_acquire_ctx * ww_ctx)392 static void regulator_unlock_dependent(struct regulator_dev *rdev,
393 struct ww_acquire_ctx *ww_ctx)
394 {
395 regulator_unlock_recursive(rdev, rdev->coupling_desc.n_coupled);
396 ww_acquire_fini(ww_ctx);
397 }
398
399 /**
400 * regulator_lock_dependent - lock regulator's suppliers and coupled regulators
401 * @rdev: regulator source
402 * @ww_ctx: w/w mutex acquire context
403 *
404 * This function as a wrapper on regulator_lock_recursive(), which locks
405 * all regulators related with rdev by coupling or supplying.
406 */
regulator_lock_dependent(struct regulator_dev * rdev,struct ww_acquire_ctx * ww_ctx)407 static void regulator_lock_dependent(struct regulator_dev *rdev,
408 struct ww_acquire_ctx *ww_ctx)
409 {
410 struct regulator_dev *new_contended_rdev = NULL;
411 struct regulator_dev *old_contended_rdev = NULL;
412 int err;
413
414 mutex_lock(®ulator_list_mutex);
415
416 ww_acquire_init(ww_ctx, ®ulator_ww_class);
417
418 do {
419 if (new_contended_rdev) {
420 ww_mutex_lock_slow(&new_contended_rdev->mutex, ww_ctx);
421 old_contended_rdev = new_contended_rdev;
422 old_contended_rdev->ref_cnt++;
423 old_contended_rdev->mutex_owner = current;
424 }
425
426 err = regulator_lock_recursive(rdev,
427 &new_contended_rdev,
428 &old_contended_rdev,
429 ww_ctx);
430
431 if (old_contended_rdev)
432 regulator_unlock(old_contended_rdev);
433
434 } while (err == -EDEADLK);
435
436 ww_acquire_done(ww_ctx);
437
438 mutex_unlock(®ulator_list_mutex);
439 }
440
441 /* Platform voltage constraint check */
regulator_check_voltage(struct regulator_dev * rdev,int * min_uV,int * max_uV)442 int regulator_check_voltage(struct regulator_dev *rdev,
443 int *min_uV, int *max_uV)
444 {
445 BUG_ON(*min_uV > *max_uV);
446
447 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_VOLTAGE)) {
448 rdev_err(rdev, "voltage operation not allowed\n");
449 return -EPERM;
450 }
451
452 if (*max_uV > rdev->constraints->max_uV)
453 *max_uV = rdev->constraints->max_uV;
454 if (*min_uV < rdev->constraints->min_uV)
455 *min_uV = rdev->constraints->min_uV;
456
457 if (*min_uV > *max_uV) {
458 rdev_err(rdev, "unsupportable voltage range: %d-%duV\n",
459 *min_uV, *max_uV);
460 return -EINVAL;
461 }
462
463 return 0;
464 }
465
466 /* return 0 if the state is valid */
regulator_check_states(suspend_state_t state)467 static int regulator_check_states(suspend_state_t state)
468 {
469 return (state > PM_SUSPEND_MAX || state == PM_SUSPEND_TO_IDLE);
470 }
471
472 /* Make sure we select a voltage that suits the needs of all
473 * regulator consumers
474 */
regulator_check_consumers(struct regulator_dev * rdev,int * min_uV,int * max_uV,suspend_state_t state)475 int regulator_check_consumers(struct regulator_dev *rdev,
476 int *min_uV, int *max_uV,
477 suspend_state_t state)
478 {
479 struct regulator *regulator;
480 struct regulator_voltage *voltage;
481
482 list_for_each_entry(regulator, &rdev->consumer_list, list) {
483 voltage = ®ulator->voltage[state];
484 /*
485 * Assume consumers that didn't say anything are OK
486 * with anything in the constraint range.
487 */
488 if (!voltage->min_uV && !voltage->max_uV)
489 continue;
490
491 if (*max_uV > voltage->max_uV)
492 *max_uV = voltage->max_uV;
493 if (*min_uV < voltage->min_uV)
494 *min_uV = voltage->min_uV;
495 }
496
497 if (*min_uV > *max_uV) {
498 rdev_err(rdev, "Restricting voltage, %u-%uuV\n",
499 *min_uV, *max_uV);
500 return -EINVAL;
501 }
502
503 return 0;
504 }
505
506 /* current constraint check */
regulator_check_current_limit(struct regulator_dev * rdev,int * min_uA,int * max_uA)507 static int regulator_check_current_limit(struct regulator_dev *rdev,
508 int *min_uA, int *max_uA)
509 {
510 BUG_ON(*min_uA > *max_uA);
511
512 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_CURRENT)) {
513 rdev_err(rdev, "current operation not allowed\n");
514 return -EPERM;
515 }
516
517 if (*max_uA > rdev->constraints->max_uA &&
518 rdev->constraints->max_uA)
519 *max_uA = rdev->constraints->max_uA;
520 if (*min_uA < rdev->constraints->min_uA)
521 *min_uA = rdev->constraints->min_uA;
522
523 if (*min_uA > *max_uA) {
524 rdev_err(rdev, "unsupportable current range: %d-%duA\n",
525 *min_uA, *max_uA);
526 return -EINVAL;
527 }
528
529 return 0;
530 }
531
532 /* operating mode constraint check */
regulator_mode_constrain(struct regulator_dev * rdev,unsigned int * mode)533 static int regulator_mode_constrain(struct regulator_dev *rdev,
534 unsigned int *mode)
535 {
536 switch (*mode) {
537 case REGULATOR_MODE_FAST:
538 case REGULATOR_MODE_NORMAL:
539 case REGULATOR_MODE_IDLE:
540 case REGULATOR_MODE_STANDBY:
541 break;
542 default:
543 rdev_err(rdev, "invalid mode %x specified\n", *mode);
544 return -EINVAL;
545 }
546
547 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_MODE)) {
548 rdev_err(rdev, "mode operation not allowed\n");
549 return -EPERM;
550 }
551
552 /* The modes are bitmasks, the most power hungry modes having
553 * the lowest values. If the requested mode isn't supported
554 * try higher modes.
555 */
556 while (*mode) {
557 if (rdev->constraints->valid_modes_mask & *mode)
558 return 0;
559 *mode /= 2;
560 }
561
562 return -EINVAL;
563 }
564
565 static inline struct regulator_state *
regulator_get_suspend_state(struct regulator_dev * rdev,suspend_state_t state)566 regulator_get_suspend_state(struct regulator_dev *rdev, suspend_state_t state)
567 {
568 if (rdev->constraints == NULL)
569 return NULL;
570
571 switch (state) {
572 case PM_SUSPEND_STANDBY:
573 return &rdev->constraints->state_standby;
574 case PM_SUSPEND_MEM:
575 return &rdev->constraints->state_mem;
576 case PM_SUSPEND_MAX:
577 return &rdev->constraints->state_disk;
578 default:
579 return NULL;
580 }
581 }
582
583 static const struct regulator_state *
regulator_get_suspend_state_check(struct regulator_dev * rdev,suspend_state_t state)584 regulator_get_suspend_state_check(struct regulator_dev *rdev, suspend_state_t state)
585 {
586 const struct regulator_state *rstate;
587
588 rstate = regulator_get_suspend_state(rdev, state);
589 if (rstate == NULL)
590 return NULL;
591
592 /* If we have no suspend mode configuration don't set anything;
593 * only warn if the driver implements set_suspend_voltage or
594 * set_suspend_mode callback.
595 */
596 if (rstate->enabled != ENABLE_IN_SUSPEND &&
597 rstate->enabled != DISABLE_IN_SUSPEND) {
598 if (rdev->desc->ops->set_suspend_voltage ||
599 rdev->desc->ops->set_suspend_mode)
600 rdev_warn(rdev, "No configuration\n");
601 return NULL;
602 }
603
604 return rstate;
605 }
606
microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)607 static ssize_t microvolts_show(struct device *dev,
608 struct device_attribute *attr, char *buf)
609 {
610 struct regulator_dev *rdev = dev_get_drvdata(dev);
611 int uV;
612
613 regulator_lock(rdev);
614 uV = regulator_get_voltage_rdev(rdev);
615 regulator_unlock(rdev);
616
617 if (uV < 0)
618 return uV;
619 return sprintf(buf, "%d\n", uV);
620 }
621 static DEVICE_ATTR_RO(microvolts);
622
microamps_show(struct device * dev,struct device_attribute * attr,char * buf)623 static ssize_t microamps_show(struct device *dev,
624 struct device_attribute *attr, char *buf)
625 {
626 struct regulator_dev *rdev = dev_get_drvdata(dev);
627
628 return sprintf(buf, "%d\n", _regulator_get_current_limit(rdev));
629 }
630 static DEVICE_ATTR_RO(microamps);
631
name_show(struct device * dev,struct device_attribute * attr,char * buf)632 static ssize_t name_show(struct device *dev, struct device_attribute *attr,
633 char *buf)
634 {
635 struct regulator_dev *rdev = dev_get_drvdata(dev);
636
637 return sprintf(buf, "%s\n", rdev_get_name(rdev));
638 }
639 static DEVICE_ATTR_RO(name);
640
regulator_opmode_to_str(int mode)641 static const char *regulator_opmode_to_str(int mode)
642 {
643 switch (mode) {
644 case REGULATOR_MODE_FAST:
645 return "fast";
646 case REGULATOR_MODE_NORMAL:
647 return "normal";
648 case REGULATOR_MODE_IDLE:
649 return "idle";
650 case REGULATOR_MODE_STANDBY:
651 return "standby";
652 }
653 return "unknown";
654 }
655
regulator_print_opmode(char * buf,int mode)656 static ssize_t regulator_print_opmode(char *buf, int mode)
657 {
658 return sprintf(buf, "%s\n", regulator_opmode_to_str(mode));
659 }
660
opmode_show(struct device * dev,struct device_attribute * attr,char * buf)661 static ssize_t opmode_show(struct device *dev,
662 struct device_attribute *attr, char *buf)
663 {
664 struct regulator_dev *rdev = dev_get_drvdata(dev);
665
666 return regulator_print_opmode(buf, _regulator_get_mode(rdev));
667 }
668 static DEVICE_ATTR_RO(opmode);
669
regulator_print_state(char * buf,int state)670 static ssize_t regulator_print_state(char *buf, int state)
671 {
672 if (state > 0)
673 return sprintf(buf, "enabled\n");
674 else if (state == 0)
675 return sprintf(buf, "disabled\n");
676 else
677 return sprintf(buf, "unknown\n");
678 }
679
state_show(struct device * dev,struct device_attribute * attr,char * buf)680 static ssize_t state_show(struct device *dev,
681 struct device_attribute *attr, char *buf)
682 {
683 struct regulator_dev *rdev = dev_get_drvdata(dev);
684 ssize_t ret;
685
686 regulator_lock(rdev);
687 ret = regulator_print_state(buf, _regulator_is_enabled(rdev));
688 regulator_unlock(rdev);
689
690 return ret;
691 }
692 static DEVICE_ATTR_RO(state);
693
status_show(struct device * dev,struct device_attribute * attr,char * buf)694 static ssize_t status_show(struct device *dev,
695 struct device_attribute *attr, char *buf)
696 {
697 struct regulator_dev *rdev = dev_get_drvdata(dev);
698 int status;
699 char *label;
700
701 status = rdev->desc->ops->get_status(rdev);
702 if (status < 0)
703 return status;
704
705 switch (status) {
706 case REGULATOR_STATUS_OFF:
707 label = "off";
708 break;
709 case REGULATOR_STATUS_ON:
710 label = "on";
711 break;
712 case REGULATOR_STATUS_ERROR:
713 label = "error";
714 break;
715 case REGULATOR_STATUS_FAST:
716 label = "fast";
717 break;
718 case REGULATOR_STATUS_NORMAL:
719 label = "normal";
720 break;
721 case REGULATOR_STATUS_IDLE:
722 label = "idle";
723 break;
724 case REGULATOR_STATUS_STANDBY:
725 label = "standby";
726 break;
727 case REGULATOR_STATUS_BYPASS:
728 label = "bypass";
729 break;
730 case REGULATOR_STATUS_UNDEFINED:
731 label = "undefined";
732 break;
733 default:
734 return -ERANGE;
735 }
736
737 return sprintf(buf, "%s\n", label);
738 }
739 static DEVICE_ATTR_RO(status);
740
min_microamps_show(struct device * dev,struct device_attribute * attr,char * buf)741 static ssize_t min_microamps_show(struct device *dev,
742 struct device_attribute *attr, char *buf)
743 {
744 struct regulator_dev *rdev = dev_get_drvdata(dev);
745
746 if (!rdev->constraints)
747 return sprintf(buf, "constraint not defined\n");
748
749 return sprintf(buf, "%d\n", rdev->constraints->min_uA);
750 }
751 static DEVICE_ATTR_RO(min_microamps);
752
max_microamps_show(struct device * dev,struct device_attribute * attr,char * buf)753 static ssize_t max_microamps_show(struct device *dev,
754 struct device_attribute *attr, char *buf)
755 {
756 struct regulator_dev *rdev = dev_get_drvdata(dev);
757
758 if (!rdev->constraints)
759 return sprintf(buf, "constraint not defined\n");
760
761 return sprintf(buf, "%d\n", rdev->constraints->max_uA);
762 }
763 static DEVICE_ATTR_RO(max_microamps);
764
min_microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)765 static ssize_t min_microvolts_show(struct device *dev,
766 struct device_attribute *attr, char *buf)
767 {
768 struct regulator_dev *rdev = dev_get_drvdata(dev);
769
770 if (!rdev->constraints)
771 return sprintf(buf, "constraint not defined\n");
772
773 return sprintf(buf, "%d\n", rdev->constraints->min_uV);
774 }
775 static DEVICE_ATTR_RO(min_microvolts);
776
max_microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)777 static ssize_t max_microvolts_show(struct device *dev,
778 struct device_attribute *attr, char *buf)
779 {
780 struct regulator_dev *rdev = dev_get_drvdata(dev);
781
782 if (!rdev->constraints)
783 return sprintf(buf, "constraint not defined\n");
784
785 return sprintf(buf, "%d\n", rdev->constraints->max_uV);
786 }
787 static DEVICE_ATTR_RO(max_microvolts);
788
requested_microamps_show(struct device * dev,struct device_attribute * attr,char * buf)789 static ssize_t requested_microamps_show(struct device *dev,
790 struct device_attribute *attr, char *buf)
791 {
792 struct regulator_dev *rdev = dev_get_drvdata(dev);
793 struct regulator *regulator;
794 int uA = 0;
795
796 regulator_lock(rdev);
797 list_for_each_entry(regulator, &rdev->consumer_list, list) {
798 if (regulator->enable_count)
799 uA += regulator->uA_load;
800 }
801 regulator_unlock(rdev);
802 return sprintf(buf, "%d\n", uA);
803 }
804 static DEVICE_ATTR_RO(requested_microamps);
805
num_users_show(struct device * dev,struct device_attribute * attr,char * buf)806 static ssize_t num_users_show(struct device *dev, struct device_attribute *attr,
807 char *buf)
808 {
809 struct regulator_dev *rdev = dev_get_drvdata(dev);
810 return sprintf(buf, "%d\n", rdev->use_count);
811 }
812 static DEVICE_ATTR_RO(num_users);
813
type_show(struct device * dev,struct device_attribute * attr,char * buf)814 static ssize_t type_show(struct device *dev, struct device_attribute *attr,
815 char *buf)
816 {
817 struct regulator_dev *rdev = dev_get_drvdata(dev);
818
819 switch (rdev->desc->type) {
820 case REGULATOR_VOLTAGE:
821 return sprintf(buf, "voltage\n");
822 case REGULATOR_CURRENT:
823 return sprintf(buf, "current\n");
824 }
825 return sprintf(buf, "unknown\n");
826 }
827 static DEVICE_ATTR_RO(type);
828
suspend_mem_microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)829 static ssize_t suspend_mem_microvolts_show(struct device *dev,
830 struct device_attribute *attr, char *buf)
831 {
832 struct regulator_dev *rdev = dev_get_drvdata(dev);
833
834 return sprintf(buf, "%d\n", rdev->constraints->state_mem.uV);
835 }
836 static DEVICE_ATTR_RO(suspend_mem_microvolts);
837
suspend_disk_microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)838 static ssize_t suspend_disk_microvolts_show(struct device *dev,
839 struct device_attribute *attr, char *buf)
840 {
841 struct regulator_dev *rdev = dev_get_drvdata(dev);
842
843 return sprintf(buf, "%d\n", rdev->constraints->state_disk.uV);
844 }
845 static DEVICE_ATTR_RO(suspend_disk_microvolts);
846
suspend_standby_microvolts_show(struct device * dev,struct device_attribute * attr,char * buf)847 static ssize_t suspend_standby_microvolts_show(struct device *dev,
848 struct device_attribute *attr, char *buf)
849 {
850 struct regulator_dev *rdev = dev_get_drvdata(dev);
851
852 return sprintf(buf, "%d\n", rdev->constraints->state_standby.uV);
853 }
854 static DEVICE_ATTR_RO(suspend_standby_microvolts);
855
suspend_mem_mode_show(struct device * dev,struct device_attribute * attr,char * buf)856 static ssize_t suspend_mem_mode_show(struct device *dev,
857 struct device_attribute *attr, char *buf)
858 {
859 struct regulator_dev *rdev = dev_get_drvdata(dev);
860
861 return regulator_print_opmode(buf,
862 rdev->constraints->state_mem.mode);
863 }
864 static DEVICE_ATTR_RO(suspend_mem_mode);
865
suspend_disk_mode_show(struct device * dev,struct device_attribute * attr,char * buf)866 static ssize_t suspend_disk_mode_show(struct device *dev,
867 struct device_attribute *attr, char *buf)
868 {
869 struct regulator_dev *rdev = dev_get_drvdata(dev);
870
871 return regulator_print_opmode(buf,
872 rdev->constraints->state_disk.mode);
873 }
874 static DEVICE_ATTR_RO(suspend_disk_mode);
875
suspend_standby_mode_show(struct device * dev,struct device_attribute * attr,char * buf)876 static ssize_t suspend_standby_mode_show(struct device *dev,
877 struct device_attribute *attr, char *buf)
878 {
879 struct regulator_dev *rdev = dev_get_drvdata(dev);
880
881 return regulator_print_opmode(buf,
882 rdev->constraints->state_standby.mode);
883 }
884 static DEVICE_ATTR_RO(suspend_standby_mode);
885
suspend_mem_state_show(struct device * dev,struct device_attribute * attr,char * buf)886 static ssize_t suspend_mem_state_show(struct device *dev,
887 struct device_attribute *attr, char *buf)
888 {
889 struct regulator_dev *rdev = dev_get_drvdata(dev);
890
891 return regulator_print_state(buf,
892 rdev->constraints->state_mem.enabled);
893 }
894 static DEVICE_ATTR_RO(suspend_mem_state);
895
suspend_disk_state_show(struct device * dev,struct device_attribute * attr,char * buf)896 static ssize_t suspend_disk_state_show(struct device *dev,
897 struct device_attribute *attr, char *buf)
898 {
899 struct regulator_dev *rdev = dev_get_drvdata(dev);
900
901 return regulator_print_state(buf,
902 rdev->constraints->state_disk.enabled);
903 }
904 static DEVICE_ATTR_RO(suspend_disk_state);
905
suspend_standby_state_show(struct device * dev,struct device_attribute * attr,char * buf)906 static ssize_t suspend_standby_state_show(struct device *dev,
907 struct device_attribute *attr, char *buf)
908 {
909 struct regulator_dev *rdev = dev_get_drvdata(dev);
910
911 return regulator_print_state(buf,
912 rdev->constraints->state_standby.enabled);
913 }
914 static DEVICE_ATTR_RO(suspend_standby_state);
915
bypass_show(struct device * dev,struct device_attribute * attr,char * buf)916 static ssize_t bypass_show(struct device *dev,
917 struct device_attribute *attr, char *buf)
918 {
919 struct regulator_dev *rdev = dev_get_drvdata(dev);
920 const char *report;
921 bool bypass;
922 int ret;
923
924 ret = rdev->desc->ops->get_bypass(rdev, &bypass);
925
926 if (ret != 0)
927 report = "unknown";
928 else if (bypass)
929 report = "enabled";
930 else
931 report = "disabled";
932
933 return sprintf(buf, "%s\n", report);
934 }
935 static DEVICE_ATTR_RO(bypass);
936
power_budget_milliwatt_show(struct device * dev,struct device_attribute * attr,char * buf)937 static ssize_t power_budget_milliwatt_show(struct device *dev,
938 struct device_attribute *attr,
939 char *buf)
940 {
941 struct regulator_dev *rdev = dev_get_drvdata(dev);
942
943 return sprintf(buf, "%d\n", rdev->constraints->pw_budget_mW);
944 }
945 static DEVICE_ATTR_RO(power_budget_milliwatt);
946
power_requested_milliwatt_show(struct device * dev,struct device_attribute * attr,char * buf)947 static ssize_t power_requested_milliwatt_show(struct device *dev,
948 struct device_attribute *attr,
949 char *buf)
950 {
951 struct regulator_dev *rdev = dev_get_drvdata(dev);
952
953 return sprintf(buf, "%d\n", rdev->pw_requested_mW);
954 }
955 static DEVICE_ATTR_RO(power_requested_milliwatt);
956
957 #define REGULATOR_ERROR_ATTR(name, bit) \
958 static ssize_t name##_show(struct device *dev, struct device_attribute *attr, \
959 char *buf) \
960 { \
961 int ret; \
962 unsigned int flags; \
963 struct regulator_dev *rdev = dev_get_drvdata(dev); \
964 ret = _regulator_get_error_flags(rdev, &flags); \
965 if (ret) \
966 return ret; \
967 return sysfs_emit(buf, "%d\n", !!(flags & (bit))); \
968 } \
969 static DEVICE_ATTR_RO(name)
970
971 REGULATOR_ERROR_ATTR(under_voltage, REGULATOR_ERROR_UNDER_VOLTAGE);
972 REGULATOR_ERROR_ATTR(over_current, REGULATOR_ERROR_OVER_CURRENT);
973 REGULATOR_ERROR_ATTR(regulation_out, REGULATOR_ERROR_REGULATION_OUT);
974 REGULATOR_ERROR_ATTR(fail, REGULATOR_ERROR_FAIL);
975 REGULATOR_ERROR_ATTR(over_temp, REGULATOR_ERROR_OVER_TEMP);
976 REGULATOR_ERROR_ATTR(under_voltage_warn, REGULATOR_ERROR_UNDER_VOLTAGE_WARN);
977 REGULATOR_ERROR_ATTR(over_current_warn, REGULATOR_ERROR_OVER_CURRENT_WARN);
978 REGULATOR_ERROR_ATTR(over_voltage_warn, REGULATOR_ERROR_OVER_VOLTAGE_WARN);
979 REGULATOR_ERROR_ATTR(over_temp_warn, REGULATOR_ERROR_OVER_TEMP_WARN);
980
981 /* Calculate the new optimum regulator operating mode based on the new total
982 * consumer load. All locks held by caller
983 */
drms_uA_update(struct regulator_dev * rdev)984 static int drms_uA_update(struct regulator_dev *rdev)
985 {
986 struct regulator *sibling;
987 int current_uA = 0, output_uV, input_uV, err;
988 unsigned int mode;
989
990 /*
991 * first check to see if we can set modes at all, otherwise just
992 * tell the consumer everything is OK.
993 */
994 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_DRMS)) {
995 rdev_dbg(rdev, "DRMS operation not allowed\n");
996 return 0;
997 }
998
999 if (!rdev->desc->ops->get_optimum_mode &&
1000 !rdev->desc->ops->set_load)
1001 return 0;
1002
1003 if (!rdev->desc->ops->set_mode &&
1004 !rdev->desc->ops->set_load)
1005 return -EINVAL;
1006
1007 /* calc total requested load */
1008 list_for_each_entry(sibling, &rdev->consumer_list, list) {
1009 if (sibling->enable_count)
1010 current_uA += sibling->uA_load;
1011 }
1012
1013 current_uA += rdev->constraints->system_load;
1014
1015 if (rdev->desc->ops->set_load) {
1016 /* set the optimum mode for our new total regulator load */
1017 err = rdev->desc->ops->set_load(rdev, current_uA);
1018 if (err < 0)
1019 rdev_err(rdev, "failed to set load %d: %pe\n",
1020 current_uA, ERR_PTR(err));
1021 } else {
1022 /*
1023 * Unfortunately in some cases the constraints->valid_ops has
1024 * REGULATOR_CHANGE_DRMS but there are no valid modes listed.
1025 * That's not really legit but we won't consider it a fatal
1026 * error here. We'll treat it as if REGULATOR_CHANGE_DRMS
1027 * wasn't set.
1028 */
1029 if (!rdev->constraints->valid_modes_mask) {
1030 rdev_dbg(rdev, "Can change modes; but no valid mode\n");
1031 return 0;
1032 }
1033
1034 /* get output voltage */
1035 output_uV = regulator_get_voltage_rdev(rdev);
1036
1037 /*
1038 * Don't return an error; if regulator driver cares about
1039 * output_uV then it's up to the driver to validate.
1040 */
1041 if (output_uV <= 0)
1042 rdev_dbg(rdev, "invalid output voltage found\n");
1043
1044 /* get input voltage */
1045 input_uV = 0;
1046 if (rdev->supply)
1047 input_uV = regulator_get_voltage_rdev(rdev->supply->rdev);
1048 if (input_uV <= 0)
1049 input_uV = rdev->constraints->input_uV;
1050
1051 /*
1052 * Don't return an error; if regulator driver cares about
1053 * input_uV then it's up to the driver to validate.
1054 */
1055 if (input_uV <= 0)
1056 rdev_dbg(rdev, "invalid input voltage found\n");
1057
1058 /* now get the optimum mode for our new total regulator load */
1059 mode = rdev->desc->ops->get_optimum_mode(rdev, input_uV,
1060 output_uV, current_uA);
1061
1062 /* check the new mode is allowed */
1063 err = regulator_mode_constrain(rdev, &mode);
1064 if (err < 0) {
1065 rdev_err(rdev, "failed to get optimum mode @ %d uA %d -> %d uV: %pe\n",
1066 current_uA, input_uV, output_uV, ERR_PTR(err));
1067 return err;
1068 }
1069
1070 err = rdev->desc->ops->set_mode(rdev, mode);
1071 if (err < 0)
1072 rdev_err(rdev, "failed to set optimum mode %x: %pe\n",
1073 mode, ERR_PTR(err));
1074 }
1075
1076 return err;
1077 }
1078
__suspend_set_state(struct regulator_dev * rdev,const struct regulator_state * rstate)1079 static int __suspend_set_state(struct regulator_dev *rdev,
1080 const struct regulator_state *rstate)
1081 {
1082 int ret = 0;
1083
1084 if (rstate->enabled == ENABLE_IN_SUSPEND &&
1085 rdev->desc->ops->set_suspend_enable)
1086 ret = rdev->desc->ops->set_suspend_enable(rdev);
1087 else if (rstate->enabled == DISABLE_IN_SUSPEND &&
1088 rdev->desc->ops->set_suspend_disable)
1089 ret = rdev->desc->ops->set_suspend_disable(rdev);
1090 else /* OK if set_suspend_enable or set_suspend_disable is NULL */
1091 ret = 0;
1092
1093 if (ret < 0) {
1094 rdev_err(rdev, "failed to enabled/disable: %pe\n", ERR_PTR(ret));
1095 return ret;
1096 }
1097
1098 if (rdev->desc->ops->set_suspend_voltage && rstate->uV > 0) {
1099 ret = rdev->desc->ops->set_suspend_voltage(rdev, rstate->uV);
1100 if (ret < 0) {
1101 rdev_err(rdev, "failed to set voltage: %pe\n", ERR_PTR(ret));
1102 return ret;
1103 }
1104 }
1105
1106 if (rdev->desc->ops->set_suspend_mode && rstate->mode > 0) {
1107 ret = rdev->desc->ops->set_suspend_mode(rdev, rstate->mode);
1108 if (ret < 0) {
1109 rdev_err(rdev, "failed to set mode: %pe\n", ERR_PTR(ret));
1110 return ret;
1111 }
1112 }
1113
1114 return ret;
1115 }
1116
suspend_set_initial_state(struct regulator_dev * rdev)1117 static int suspend_set_initial_state(struct regulator_dev *rdev)
1118 {
1119 const struct regulator_state *rstate;
1120
1121 rstate = regulator_get_suspend_state_check(rdev,
1122 rdev->constraints->initial_state);
1123 if (!rstate)
1124 return 0;
1125
1126 return __suspend_set_state(rdev, rstate);
1127 }
1128
1129 #if defined(DEBUG) || defined(CONFIG_DYNAMIC_DEBUG)
print_constraints_debug(struct regulator_dev * rdev)1130 static void print_constraints_debug(struct regulator_dev *rdev)
1131 {
1132 struct regulation_constraints *constraints = rdev->constraints;
1133 char buf[160] = "";
1134 size_t len = sizeof(buf) - 1;
1135 int count = 0;
1136 int ret;
1137
1138 if (constraints->min_uV && constraints->max_uV) {
1139 if (constraints->min_uV == constraints->max_uV)
1140 count += scnprintf(buf + count, len - count, "%d mV ",
1141 constraints->min_uV / 1000);
1142 else
1143 count += scnprintf(buf + count, len - count,
1144 "%d <--> %d mV ",
1145 constraints->min_uV / 1000,
1146 constraints->max_uV / 1000);
1147 }
1148
1149 if (!constraints->min_uV ||
1150 constraints->min_uV != constraints->max_uV) {
1151 ret = regulator_get_voltage_rdev(rdev);
1152 if (ret > 0)
1153 count += scnprintf(buf + count, len - count,
1154 "at %d mV ", ret / 1000);
1155 }
1156
1157 if (constraints->uV_offset)
1158 count += scnprintf(buf + count, len - count, "%dmV offset ",
1159 constraints->uV_offset / 1000);
1160
1161 if (constraints->min_uA && constraints->max_uA) {
1162 if (constraints->min_uA == constraints->max_uA)
1163 count += scnprintf(buf + count, len - count, "%d mA ",
1164 constraints->min_uA / 1000);
1165 else
1166 count += scnprintf(buf + count, len - count,
1167 "%d <--> %d mA ",
1168 constraints->min_uA / 1000,
1169 constraints->max_uA / 1000);
1170 }
1171
1172 if (!constraints->min_uA ||
1173 constraints->min_uA != constraints->max_uA) {
1174 ret = _regulator_get_current_limit(rdev);
1175 if (ret > 0)
1176 count += scnprintf(buf + count, len - count,
1177 "at %d mA ", ret / 1000);
1178 }
1179
1180 if (constraints->valid_modes_mask & REGULATOR_MODE_FAST)
1181 count += scnprintf(buf + count, len - count, "fast ");
1182 if (constraints->valid_modes_mask & REGULATOR_MODE_NORMAL)
1183 count += scnprintf(buf + count, len - count, "normal ");
1184 if (constraints->valid_modes_mask & REGULATOR_MODE_IDLE)
1185 count += scnprintf(buf + count, len - count, "idle ");
1186 if (constraints->valid_modes_mask & REGULATOR_MODE_STANDBY)
1187 count += scnprintf(buf + count, len - count, "standby ");
1188
1189 if (constraints->pw_budget_mW)
1190 count += scnprintf(buf + count, len - count, "%d mW budget ",
1191 constraints->pw_budget_mW);
1192
1193 if (!count)
1194 count = scnprintf(buf, len, "no parameters");
1195 else
1196 --count;
1197
1198 count += scnprintf(buf + count, len - count, ", %s",
1199 _regulator_is_enabled(rdev) ? "enabled" : "disabled");
1200
1201 rdev_dbg(rdev, "%s\n", buf);
1202 }
1203 #else /* !DEBUG && !CONFIG_DYNAMIC_DEBUG */
print_constraints_debug(struct regulator_dev * rdev)1204 static inline void print_constraints_debug(struct regulator_dev *rdev) {}
1205 #endif /* !DEBUG && !CONFIG_DYNAMIC_DEBUG */
1206
print_constraints(struct regulator_dev * rdev)1207 static void print_constraints(struct regulator_dev *rdev)
1208 {
1209 struct regulation_constraints *constraints = rdev->constraints;
1210
1211 print_constraints_debug(rdev);
1212
1213 if ((constraints->min_uV != constraints->max_uV) &&
1214 !regulator_ops_is_valid(rdev, REGULATOR_CHANGE_VOLTAGE))
1215 rdev_warn(rdev,
1216 "Voltage range but no REGULATOR_CHANGE_VOLTAGE\n");
1217 }
1218
machine_constraints_voltage(struct regulator_dev * rdev,struct regulation_constraints * constraints)1219 static int machine_constraints_voltage(struct regulator_dev *rdev,
1220 struct regulation_constraints *constraints)
1221 {
1222 const struct regulator_ops *ops = rdev->desc->ops;
1223 int ret;
1224 bool apply_uV;
1225
1226 /*
1227 * Decide up front, from the constraints as handed to us, whether
1228 * apply_uV needs to run below. The clamping pass right after this
1229 * may rewrite constraints->min_uV/max_uV (e.g. the fixed-voltage
1230 * autoconfigure case), and we don't want that to change whether
1231 * apply_uV fires.
1232 */
1233 apply_uV = rdev->constraints->apply_uV &&
1234 rdev->constraints->min_uV && rdev->constraints->max_uV;
1235
1236 /*
1237 * Constrain machine-level voltage specs to fit the actual range
1238 * supported by this regulator before apply_uV (below) tries to
1239 * force hardware to a value from that range: otherwise apply_uV
1240 * can target a constraint value that doesn't correspond to any
1241 * real voltage selector and fail registration outright, even
1242 * though the clamping pass would have narrowed it to a value
1243 * the regulator can actually hit.
1244 */
1245 if (ops->list_voltage && rdev->desc->n_voltages) {
1246 int count = rdev->desc->n_voltages;
1247 int i;
1248 int min_uV = INT_MAX;
1249 int max_uV = INT_MIN;
1250 int cmin = constraints->min_uV;
1251 int cmax = constraints->max_uV;
1252
1253 /* it's safe to autoconfigure fixed-voltage supplies
1254 * and the constraints are used by list_voltage.
1255 */
1256 if (count == 1 && !cmin) {
1257 cmin = 1;
1258 cmax = INT_MAX;
1259 constraints->min_uV = cmin;
1260 constraints->max_uV = cmax;
1261 }
1262
1263 /* voltage constraints are optional */
1264 if ((cmin == 0) && (cmax == 0)) {
1265 /* nothing more to do */
1266
1267 /* else require explicit machine-level constraints */
1268 } else if (cmin <= 0 || cmax <= 0 || cmax < cmin) {
1269 rdev_err(rdev, "invalid voltage constraints\n");
1270 return -EINVAL;
1271
1272 /* no need to loop voltages if range is continuous */
1273 } else if (rdev->desc->continuous_voltage_range) {
1274 /* nothing more to do */
1275
1276 } else {
1277 /* initial: [cmin..cmax] valid, [min_uV..max_uV] not */
1278 for (i = 0; i < count; i++) {
1279 int value;
1280
1281 value = ops->list_voltage(rdev, i);
1282 if (value <= 0)
1283 continue;
1284
1285 /* maybe adjust [min_uV..max_uV] */
1286 if (value >= cmin && value < min_uV)
1287 min_uV = value;
1288 if (value <= cmax && value > max_uV)
1289 max_uV = value;
1290 }
1291
1292 /* final: [min_uV..max_uV] valid iff constraints valid */
1293 if (max_uV < min_uV) {
1294 rdev_err(rdev,
1295 "unsupportable voltage constraints %u-%uuV\n",
1296 min_uV, max_uV);
1297 return -EINVAL;
1298 }
1299
1300 /* use regulator's subset of machine constraints */
1301 if (constraints->min_uV < min_uV) {
1302 rdev_dbg(rdev, "override min_uV, %d -> %d\n",
1303 constraints->min_uV, min_uV);
1304 constraints->min_uV = min_uV;
1305 }
1306 if (constraints->max_uV > max_uV) {
1307 rdev_dbg(rdev, "override max_uV, %d -> %d\n",
1308 constraints->max_uV, max_uV);
1309 constraints->max_uV = max_uV;
1310 }
1311 }
1312 }
1313
1314 /* do we need to apply the constraint voltage */
1315 if (apply_uV) {
1316 int target_min, target_max;
1317 int current_uV = regulator_get_voltage_rdev(rdev);
1318
1319 if (current_uV == -ENOTRECOVERABLE) {
1320 /* This regulator can't be read and must be initialized */
1321 rdev_info(rdev, "Setting %d-%duV\n",
1322 rdev->constraints->min_uV,
1323 rdev->constraints->max_uV);
1324 _regulator_do_set_voltage(rdev,
1325 rdev->constraints->min_uV,
1326 rdev->constraints->max_uV);
1327 current_uV = regulator_get_voltage_rdev(rdev);
1328 }
1329
1330 if (current_uV < 0) {
1331 if (current_uV != -EPROBE_DEFER)
1332 rdev_err(rdev,
1333 "failed to get the current voltage: %pe\n",
1334 ERR_PTR(current_uV));
1335 return current_uV;
1336 }
1337
1338 /*
1339 * If we're below the minimum voltage move up to the
1340 * minimum voltage, if we're above the maximum voltage
1341 * then move down to the maximum.
1342 */
1343 target_min = current_uV;
1344 target_max = current_uV;
1345
1346 if (current_uV < rdev->constraints->min_uV) {
1347 target_min = rdev->constraints->min_uV;
1348 target_max = rdev->constraints->min_uV;
1349 }
1350
1351 if (current_uV > rdev->constraints->max_uV) {
1352 target_min = rdev->constraints->max_uV;
1353 target_max = rdev->constraints->max_uV;
1354 }
1355
1356 if (target_min != current_uV || target_max != current_uV) {
1357 rdev_info(rdev, "Bringing %duV into %d-%duV\n",
1358 current_uV, target_min, target_max);
1359 ret = _regulator_do_set_voltage(
1360 rdev, target_min, target_max);
1361 if (ret < 0) {
1362 rdev_err(rdev,
1363 "failed to apply %d-%duV constraint: %pe\n",
1364 target_min, target_max, ERR_PTR(ret));
1365 return ret;
1366 }
1367 }
1368 }
1369
1370 return 0;
1371 }
1372
machine_constraints_current(struct regulator_dev * rdev,struct regulation_constraints * constraints)1373 static int machine_constraints_current(struct regulator_dev *rdev,
1374 struct regulation_constraints *constraints)
1375 {
1376 const struct regulator_ops *ops = rdev->desc->ops;
1377 int ret;
1378
1379 if (!constraints->min_uA && !constraints->max_uA)
1380 return 0;
1381
1382 if (constraints->min_uA > constraints->max_uA) {
1383 rdev_err(rdev, "Invalid current constraints\n");
1384 return -EINVAL;
1385 }
1386
1387 if (!ops->set_current_limit || !ops->get_current_limit) {
1388 rdev_warn(rdev, "Operation of current configuration missing\n");
1389 return 0;
1390 }
1391
1392 /* Set regulator current in constraints range */
1393 ret = ops->set_current_limit(rdev, constraints->min_uA,
1394 constraints->max_uA);
1395 if (ret < 0) {
1396 rdev_err(rdev, "Failed to set current constraint, %d\n", ret);
1397 return ret;
1398 }
1399
1400 return 0;
1401 }
1402
1403 static int _regulator_do_enable(struct regulator_dev *rdev);
1404
notif_set_limit(struct regulator_dev * rdev,int (* set)(struct regulator_dev *,int,int,bool),int limit,int severity)1405 static int notif_set_limit(struct regulator_dev *rdev,
1406 int (*set)(struct regulator_dev *, int, int, bool),
1407 int limit, int severity)
1408 {
1409 bool enable;
1410
1411 if (limit == REGULATOR_NOTIF_LIMIT_DISABLE) {
1412 enable = false;
1413 limit = 0;
1414 } else {
1415 enable = true;
1416 }
1417
1418 if (limit == REGULATOR_NOTIF_LIMIT_ENABLE)
1419 limit = 0;
1420
1421 return set(rdev, limit, severity, enable);
1422 }
1423
handle_notify_limits(struct regulator_dev * rdev,int (* set)(struct regulator_dev *,int,int,bool),struct notification_limit * limits)1424 static int handle_notify_limits(struct regulator_dev *rdev,
1425 int (*set)(struct regulator_dev *, int, int, bool),
1426 struct notification_limit *limits)
1427 {
1428 int ret = 0;
1429
1430 if (!set)
1431 return -EOPNOTSUPP;
1432
1433 if (limits->prot)
1434 ret = notif_set_limit(rdev, set, limits->prot,
1435 REGULATOR_SEVERITY_PROT);
1436 if (ret)
1437 return ret;
1438
1439 if (limits->err)
1440 ret = notif_set_limit(rdev, set, limits->err,
1441 REGULATOR_SEVERITY_ERR);
1442 if (ret)
1443 return ret;
1444
1445 if (limits->warn)
1446 ret = notif_set_limit(rdev, set, limits->warn,
1447 REGULATOR_SEVERITY_WARN);
1448
1449 return ret;
1450 }
1451 /**
1452 * set_machine_constraints - sets regulator constraints
1453 * @rdev: regulator source
1454 * @is_locked: whether or not this is called with locks held already
1455 *
1456 * Allows platform initialisation code to define and constrain
1457 * regulator circuits e.g. valid voltage/current ranges, etc. NOTE:
1458 * Constraints *must* be set by platform code in order for some
1459 * regulator operations to proceed i.e. set_voltage, set_current_limit,
1460 * set_mode.
1461 *
1462 * Return: 0 on success or a negative error number on failure.
1463 */
set_machine_constraints(struct regulator_dev * rdev,bool is_locked)1464 static int set_machine_constraints(struct regulator_dev *rdev,
1465 bool is_locked)
1466 {
1467 int ret = 0;
1468 const struct regulator_ops *ops = rdev->desc->ops;
1469
1470 /*
1471 * If there is no mechanism for controlling the regulator then
1472 * flag it as always_on so we don't end up duplicating checks
1473 * for this so much. Note that we could control the state of
1474 * a supply to control the output on a regulator that has no
1475 * direct control.
1476 */
1477 if (!rdev->ena_pin && !ops->enable) {
1478 if (rdev->supply_name && !rdev->supply)
1479 return -EPROBE_DEFER;
1480
1481 if (rdev->supply)
1482 rdev->constraints->always_on =
1483 rdev->supply->rdev->constraints->always_on;
1484 else
1485 rdev->constraints->always_on = true;
1486 }
1487
1488 /*
1489 * If we want to enable this regulator, make sure that we know the
1490 * supplying regulator.
1491 */
1492 if (rdev->constraints->always_on || rdev->constraints->boot_on) {
1493 if (rdev->supply_name && !rdev->supply)
1494 return -EPROBE_DEFER;
1495 }
1496
1497 ret = machine_constraints_voltage(rdev, rdev->constraints);
1498 if (ret != 0)
1499 return ret;
1500
1501 ret = machine_constraints_current(rdev, rdev->constraints);
1502 if (ret != 0)
1503 return ret;
1504
1505 if (rdev->constraints->ilim_uA && ops->set_input_current_limit) {
1506 ret = ops->set_input_current_limit(rdev,
1507 rdev->constraints->ilim_uA);
1508 if (ret < 0) {
1509 rdev_err(rdev, "failed to set input limit: %pe\n", ERR_PTR(ret));
1510 return ret;
1511 }
1512 }
1513
1514 /* do we need to setup our suspend state */
1515 if (rdev->constraints->initial_state) {
1516 ret = suspend_set_initial_state(rdev);
1517 if (ret < 0) {
1518 rdev_err(rdev, "failed to set suspend state: %pe\n", ERR_PTR(ret));
1519 return ret;
1520 }
1521 }
1522
1523 if (rdev->constraints->initial_mode) {
1524 if (!ops->set_mode) {
1525 rdev_err(rdev, "no set_mode operation\n");
1526 return -EINVAL;
1527 }
1528
1529 ret = ops->set_mode(rdev, rdev->constraints->initial_mode);
1530 if (ret < 0) {
1531 rdev_err(rdev, "failed to set initial mode: %pe\n", ERR_PTR(ret));
1532 return ret;
1533 }
1534 } else if (rdev->constraints->system_load) {
1535 /*
1536 * We'll only apply the initial system load if an
1537 * initial mode wasn't specified.
1538 */
1539 drms_uA_update(rdev);
1540 }
1541
1542 if ((rdev->constraints->ramp_delay || rdev->constraints->ramp_disable)
1543 && ops->set_ramp_delay) {
1544 ret = ops->set_ramp_delay(rdev, rdev->constraints->ramp_delay);
1545 if (ret < 0) {
1546 rdev_err(rdev, "failed to set ramp_delay: %pe\n", ERR_PTR(ret));
1547 return ret;
1548 }
1549 }
1550
1551 if (rdev->constraints->pull_down && ops->set_pull_down) {
1552 ret = ops->set_pull_down(rdev);
1553 if (ret < 0) {
1554 rdev_err(rdev, "failed to set pull down: %pe\n", ERR_PTR(ret));
1555 return ret;
1556 }
1557 }
1558
1559 if (rdev->constraints->soft_start && ops->set_soft_start) {
1560 ret = ops->set_soft_start(rdev);
1561 if (ret < 0) {
1562 rdev_err(rdev, "failed to set soft start: %pe\n", ERR_PTR(ret));
1563 return ret;
1564 }
1565 }
1566
1567 /*
1568 * Existing logic does not warn if over_current_protection is given as
1569 * a constraint but driver does not support that. I think we should
1570 * warn about this type of issues as it is possible someone changes
1571 * PMIC on board to another type - and the other PMIC's driver does
1572 * not support setting protection. Board composer may happily believe
1573 * the DT limits are respected - especially if the new PMIC HW also
1574 * supports protection but the driver does not. I won't change the logic
1575 * without hearing more experienced opinion on this though.
1576 *
1577 * If warning is seen as a good idea then we can merge handling the
1578 * over-curret protection and detection and get rid of this special
1579 * handling.
1580 */
1581 if (rdev->constraints->over_current_protection
1582 && ops->set_over_current_protection) {
1583 int lim = rdev->constraints->over_curr_limits.prot;
1584
1585 ret = ops->set_over_current_protection(rdev, lim,
1586 REGULATOR_SEVERITY_PROT,
1587 true);
1588 if (ret < 0) {
1589 rdev_err(rdev, "failed to set over current protection: %pe\n",
1590 ERR_PTR(ret));
1591 return ret;
1592 }
1593 }
1594
1595 if (rdev->constraints->over_current_detection)
1596 ret = handle_notify_limits(rdev,
1597 ops->set_over_current_protection,
1598 &rdev->constraints->over_curr_limits);
1599 if (ret) {
1600 if (ret != -EOPNOTSUPP) {
1601 rdev_err(rdev, "failed to set over current limits: %pe\n",
1602 ERR_PTR(ret));
1603 return ret;
1604 }
1605 rdev_warn(rdev,
1606 "IC does not support requested over-current limits\n");
1607 }
1608
1609 if (rdev->constraints->over_voltage_detection)
1610 ret = handle_notify_limits(rdev,
1611 ops->set_over_voltage_protection,
1612 &rdev->constraints->over_voltage_limits);
1613 if (ret) {
1614 if (ret != -EOPNOTSUPP) {
1615 rdev_err(rdev, "failed to set over voltage limits %pe\n",
1616 ERR_PTR(ret));
1617 return ret;
1618 }
1619 rdev_warn(rdev,
1620 "IC does not support requested over voltage limits\n");
1621 }
1622
1623 if (rdev->constraints->under_voltage_detection)
1624 ret = handle_notify_limits(rdev,
1625 ops->set_under_voltage_protection,
1626 &rdev->constraints->under_voltage_limits);
1627 if (ret) {
1628 if (ret != -EOPNOTSUPP) {
1629 rdev_err(rdev, "failed to set under voltage limits %pe\n",
1630 ERR_PTR(ret));
1631 return ret;
1632 }
1633 rdev_warn(rdev,
1634 "IC does not support requested under voltage limits\n");
1635 }
1636
1637 if (rdev->constraints->over_temp_detection)
1638 ret = handle_notify_limits(rdev,
1639 ops->set_thermal_protection,
1640 &rdev->constraints->temp_limits);
1641 if (ret) {
1642 if (ret != -EOPNOTSUPP) {
1643 rdev_err(rdev, "failed to set temperature limits %pe\n",
1644 ERR_PTR(ret));
1645 return ret;
1646 }
1647 rdev_warn(rdev,
1648 "IC does not support requested temperature limits\n");
1649 }
1650
1651 if (rdev->constraints->active_discharge && ops->set_active_discharge) {
1652 bool ad_state = rdev->constraints->active_discharge ==
1653 REGULATOR_ACTIVE_DISCHARGE_ENABLE;
1654
1655 ret = ops->set_active_discharge(rdev, ad_state);
1656 if (ret < 0) {
1657 rdev_err(rdev, "failed to set active discharge: %pe\n", ERR_PTR(ret));
1658 return ret;
1659 }
1660 }
1661
1662 /* If the constraints say the regulator should be on at this point
1663 * and we have control then make sure it is enabled.
1664 */
1665 if (rdev->constraints->always_on || rdev->constraints->boot_on) {
1666 bool supply_enabled = false;
1667
1668 /* We have ensured a potential supply has been resolved above.
1669 *
1670 * If supplying regulator has already been enabled,
1671 * it's not intended to have use_count increment
1672 * when rdev is only boot-on.
1673 */
1674 if (rdev->supply &&
1675 (rdev->constraints->always_on ||
1676 !regulator_is_enabled(rdev->supply))) {
1677 ret = (is_locked
1678 ? _regulator_enable(rdev->supply)
1679 : regulator_enable(rdev->supply));
1680 if (ret < 0) {
1681 _regulator_put(rdev->supply);
1682 rdev->supply = NULL;
1683 return ret;
1684 }
1685 supply_enabled = true;
1686 }
1687
1688 ret = _regulator_do_enable(rdev);
1689 if (ret < 0 && ret != -EINVAL) {
1690 rdev_err(rdev, "failed to enable: %pe\n", ERR_PTR(ret));
1691 if (supply_enabled)
1692 regulator_disable(rdev->supply);
1693 return ret;
1694 }
1695
1696 if (rdev->constraints->always_on)
1697 rdev->use_count++;
1698 } else if (rdev->desc->off_on_delay) {
1699 rdev->last_off = ktime_get();
1700 }
1701
1702 if (!rdev->constraints->pw_budget_mW)
1703 rdev->constraints->pw_budget_mW = INT_MAX;
1704
1705 print_constraints(rdev);
1706 return 0;
1707 }
1708
1709 /**
1710 * regulator_event_work_fn - process a deferred regulator event
1711 * @work: work_struct queued by the notifier
1712 *
1713 * Calls the regulator's notifier chain in process context while holding
1714 * the rdev lock, then releases the device reference.
1715 */
regulator_event_work_fn(struct work_struct * work)1716 static void regulator_event_work_fn(struct work_struct *work)
1717 {
1718 struct regulator_event_work *rew =
1719 container_of(work, struct regulator_event_work, work);
1720 struct regulator_dev *rdev = rew->rdev;
1721 int ret;
1722
1723 regulator_lock(rdev);
1724 ret = regulator_notifier_call_chain(rdev, rew->event, NULL);
1725 regulator_unlock(rdev);
1726 if (ret == NOTIFY_BAD)
1727 dev_err(rdev_get_dev(rdev), "failed to forward regulator event\n");
1728
1729 put_device(rdev_get_dev(rdev));
1730 kfree(rew);
1731 }
1732
1733 /**
1734 * regulator_event_forward_notifier - notifier callback for supply events
1735 * @nb: notifier block embedded in the regulator
1736 * @event: regulator event code
1737 * @data: unused
1738 *
1739 * Packages the event into a work item and schedules it in process context.
1740 * Takes a reference on @rdev->dev to pin the regulator until the work
1741 * completes (see put_device() in the worker).
1742 *
1743 * Return: NOTIFY_OK on success, NOTIFY_DONE for events that are not forwarded.
1744 */
regulator_event_forward_notifier(struct notifier_block * nb,unsigned long event,void __always_unused * data)1745 static int regulator_event_forward_notifier(struct notifier_block *nb,
1746 unsigned long event,
1747 void __always_unused *data)
1748 {
1749 struct regulator_dev *rdev = container_of(nb, struct regulator_dev,
1750 supply_fwd_nb);
1751 struct regulator_event_work *rew;
1752
1753 switch (event) {
1754 case REGULATOR_EVENT_UNDER_VOLTAGE:
1755 break;
1756 default:
1757 /* Only forward allowed events downstream. */
1758 return NOTIFY_DONE;
1759 }
1760
1761 rew = kmalloc_obj(*rew, GFP_ATOMIC);
1762 if (!rew)
1763 return NOTIFY_DONE;
1764
1765 get_device(rdev_get_dev(rdev));
1766 rew->rdev = rdev;
1767 rew->event = event;
1768 INIT_WORK(&rew->work, regulator_event_work_fn);
1769
1770 queue_work(system_highpri_wq, &rew->work);
1771
1772 return NOTIFY_OK;
1773 }
1774
1775 /**
1776 * register_regulator_event_forwarding - enable supply event forwarding
1777 * @rdev: regulator device
1778 *
1779 * Registers a notifier on the regulator's supply so that supply events
1780 * are forwarded to the consumer regulator via the deferred work handler.
1781 *
1782 * Return: 0 on success, -EALREADY if already enabled, or a negative error code.
1783 */
register_regulator_event_forwarding(struct regulator_dev * rdev)1784 static int register_regulator_event_forwarding(struct regulator_dev *rdev)
1785 {
1786 int ret;
1787
1788 if (!rdev->supply)
1789 return 0; /* top-level regulator: nothing to forward */
1790
1791 if (rdev->supply_fwd_nb.notifier_call)
1792 return -EALREADY;
1793
1794 rdev->supply_fwd_nb.notifier_call = regulator_event_forward_notifier;
1795
1796 ret = regulator_register_notifier(rdev->supply, &rdev->supply_fwd_nb);
1797 if (ret) {
1798 dev_err(&rdev->dev, "failed to register supply notifier: %pe\n",
1799 ERR_PTR(ret));
1800 rdev->supply_fwd_nb.notifier_call = NULL;
1801 return ret;
1802 }
1803
1804 return 0;
1805 }
1806
unregister_regulator_event_forwarding(struct regulator_dev * rdev)1807 static void unregister_regulator_event_forwarding(struct regulator_dev *rdev)
1808 {
1809 if (!rdev->supply_fwd_nb.notifier_call)
1810 return;
1811
1812 regulator_unregister_notifier(rdev->supply, &rdev->supply_fwd_nb);
1813 rdev->supply_fwd_nb.notifier_call = NULL;
1814 }
1815
1816 /**
1817 * set_supply - set regulator supply regulator
1818 * @rdev: regulator (locked)
1819 * @supply_rdev: supply regulator (locked))
1820 *
1821 * Called by platform initialisation code to set the supply regulator for this
1822 * regulator. This ensures that a regulators supply will also be enabled by the
1823 * core if it's child is enabled.
1824 *
1825 * Return: 0 on success or a negative error number on failure.
1826 */
set_supply(struct regulator_dev * rdev,struct regulator_dev * supply_rdev)1827 static int set_supply(struct regulator_dev *rdev,
1828 struct regulator_dev *supply_rdev)
1829 {
1830 int err;
1831
1832 rdev_dbg(rdev, "supplied by %s\n", rdev_get_name(supply_rdev));
1833
1834 if (!try_module_get(supply_rdev->owner))
1835 return -ENODEV;
1836
1837 rdev->supply = create_regulator(supply_rdev, &rdev->dev, "SUPPLY");
1838 if (rdev->supply == NULL) {
1839 module_put(supply_rdev->owner);
1840 err = -ENOMEM;
1841 return err;
1842 }
1843 supply_rdev->open_count++;
1844
1845 return 0;
1846 }
1847
1848 /**
1849 * set_consumer_device_supply - Bind a regulator to a symbolic supply
1850 * @rdev: regulator source
1851 * @consumer_dev_name: dev_name() string for device supply applies to
1852 * @supply: symbolic name for supply
1853 *
1854 * Allows platform initialisation code to map physical regulator
1855 * sources to symbolic names for supplies for use by devices. Devices
1856 * should use these symbolic names to request regulators, avoiding the
1857 * need to provide board-specific regulator names as platform data.
1858 *
1859 * Return: 0 on success or a negative error number on failure.
1860 */
set_consumer_device_supply(struct regulator_dev * rdev,const char * consumer_dev_name,const char * supply)1861 static int set_consumer_device_supply(struct regulator_dev *rdev,
1862 const char *consumer_dev_name,
1863 const char *supply)
1864 {
1865 struct regulator_map *node, *new_node;
1866 int has_dev;
1867
1868 if (supply == NULL)
1869 return -EINVAL;
1870
1871 if (consumer_dev_name != NULL)
1872 has_dev = 1;
1873 else
1874 has_dev = 0;
1875
1876 new_node = kzalloc_obj(struct regulator_map);
1877 if (new_node == NULL)
1878 return -ENOMEM;
1879
1880 new_node->regulator = rdev;
1881 new_node->supply = supply;
1882
1883 if (has_dev) {
1884 new_node->dev_name = kstrdup(consumer_dev_name, GFP_KERNEL);
1885 if (new_node->dev_name == NULL) {
1886 kfree(new_node);
1887 return -ENOMEM;
1888 }
1889 }
1890
1891 mutex_lock(®ulator_list_mutex);
1892 list_for_each_entry(node, ®ulator_map_list, list) {
1893 if (node->dev_name && consumer_dev_name) {
1894 if (strcmp(node->dev_name, consumer_dev_name) != 0)
1895 continue;
1896 } else if (node->dev_name || consumer_dev_name) {
1897 continue;
1898 }
1899
1900 if (strcmp(node->supply, supply) != 0)
1901 continue;
1902
1903 pr_debug("%s: %s/%s is '%s' supply; fail %s/%s\n",
1904 consumer_dev_name,
1905 dev_name(&node->regulator->dev),
1906 node->regulator->desc->name,
1907 supply,
1908 dev_name(&rdev->dev), rdev_get_name(rdev));
1909 goto fail;
1910 }
1911
1912 list_add(&new_node->list, ®ulator_map_list);
1913 mutex_unlock(®ulator_list_mutex);
1914
1915 return 0;
1916
1917 fail:
1918 mutex_unlock(®ulator_list_mutex);
1919 kfree(new_node->dev_name);
1920 kfree(new_node);
1921 return -EBUSY;
1922 }
1923
unset_regulator_supplies(struct regulator_dev * rdev)1924 static void unset_regulator_supplies(struct regulator_dev *rdev)
1925 {
1926 struct regulator_map *node, *n;
1927
1928 list_for_each_entry_safe(node, n, ®ulator_map_list, list) {
1929 if (rdev == node->regulator) {
1930 list_del(&node->list);
1931 kfree(node->dev_name);
1932 kfree(node);
1933 }
1934 }
1935 }
1936
1937 #ifdef CONFIG_DEBUG_FS
constraint_flags_read_file(struct file * file,char __user * user_buf,size_t count,loff_t * ppos)1938 static ssize_t constraint_flags_read_file(struct file *file,
1939 char __user *user_buf,
1940 size_t count, loff_t *ppos)
1941 {
1942 const struct regulator *regulator = file->private_data;
1943 const struct regulation_constraints *c = regulator->rdev->constraints;
1944 char *buf;
1945 ssize_t ret;
1946
1947 if (!c)
1948 return 0;
1949
1950 buf = kmalloc(PAGE_SIZE, GFP_KERNEL);
1951 if (!buf)
1952 return -ENOMEM;
1953
1954 ret = snprintf(buf, PAGE_SIZE,
1955 "always_on: %u\n"
1956 "boot_on: %u\n"
1957 "apply_uV: %u\n"
1958 "ramp_disable: %u\n"
1959 "soft_start: %u\n"
1960 "pull_down: %u\n"
1961 "over_current_protection: %u\n",
1962 c->always_on,
1963 c->boot_on,
1964 c->apply_uV,
1965 c->ramp_disable,
1966 c->soft_start,
1967 c->pull_down,
1968 c->over_current_protection);
1969
1970 ret = simple_read_from_buffer(user_buf, count, ppos, buf, ret);
1971 kfree(buf);
1972
1973 return ret;
1974 }
1975
1976 #endif
1977
1978 static const struct file_operations constraint_flags_fops = {
1979 #ifdef CONFIG_DEBUG_FS
1980 .open = simple_open,
1981 .read = constraint_flags_read_file,
1982 .llseek = default_llseek,
1983 #endif
1984 };
1985
link_and_create_debugfs(struct regulator * regulator,struct regulator_dev * rdev,struct device * dev)1986 static void link_and_create_debugfs(struct regulator *regulator, struct regulator_dev *rdev,
1987 struct device *dev)
1988 {
1989 int err = 0;
1990
1991 if (dev) {
1992 regulator->dev = dev;
1993
1994 /* Add a link to the device sysfs entry */
1995 err = sysfs_create_link_nowarn(&rdev->dev.kobj, &dev->kobj,
1996 regulator->supply_name);
1997 if (err) {
1998 rdev_dbg(rdev, "could not add device link %s: %pe\n",
1999 dev->kobj.name, ERR_PTR(err));
2000 /* non-fatal */
2001 }
2002 }
2003
2004 if (err != -EEXIST) {
2005 regulator->debugfs = debugfs_create_dir(regulator->supply_name, rdev->debugfs);
2006 if (IS_ERR(regulator->debugfs)) {
2007 rdev_dbg(rdev, "Failed to create debugfs directory\n");
2008 regulator->debugfs = NULL;
2009 }
2010 }
2011
2012 if (regulator->debugfs) {
2013 debugfs_create_u32("uA_load", 0444, regulator->debugfs,
2014 ®ulator->uA_load);
2015 debugfs_create_u32("min_uV", 0444, regulator->debugfs,
2016 ®ulator->voltage[PM_SUSPEND_ON].min_uV);
2017 debugfs_create_u32("max_uV", 0444, regulator->debugfs,
2018 ®ulator->voltage[PM_SUSPEND_ON].max_uV);
2019 debugfs_create_file("constraint_flags", 0444, regulator->debugfs,
2020 regulator, &constraint_flags_fops);
2021 }
2022 }
2023
create_regulator(struct regulator_dev * rdev,struct device * dev,const char * supply_name)2024 static struct regulator *create_regulator(struct regulator_dev *rdev,
2025 struct device *dev,
2026 const char *supply_name)
2027 {
2028 struct regulator *regulator;
2029
2030 lockdep_assert_held_once(&rdev->mutex.base);
2031
2032 if (dev) {
2033 supply_name = kasprintf(GFP_KERNEL, "%s-%s", dev->kobj.name, supply_name);
2034 if (supply_name == NULL)
2035 return NULL;
2036 } else {
2037 supply_name = kstrdup_const(supply_name, GFP_KERNEL);
2038 if (supply_name == NULL)
2039 return NULL;
2040 }
2041
2042 regulator = kzalloc_obj(*regulator);
2043 if (regulator == NULL) {
2044 kfree_const(supply_name);
2045 return NULL;
2046 }
2047
2048 regulator->rdev = rdev;
2049 regulator->supply_name = supply_name;
2050
2051 list_add(®ulator->list, &rdev->consumer_list);
2052
2053 /*
2054 * Check now if the regulator is an always on regulator - if
2055 * it is then we don't need to do nearly so much work for
2056 * enable/disable calls.
2057 */
2058 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_STATUS) &&
2059 _regulator_is_enabled(rdev))
2060 regulator->always_on = true;
2061
2062 return regulator;
2063 }
2064
_regulator_get_enable_time(struct regulator_dev * rdev)2065 static int _regulator_get_enable_time(struct regulator_dev *rdev)
2066 {
2067 if (rdev->constraints && rdev->constraints->enable_time)
2068 return rdev->constraints->enable_time;
2069 if (rdev->desc->ops->enable_time)
2070 return rdev->desc->ops->enable_time(rdev);
2071 return rdev->desc->enable_time;
2072 }
2073
regulator_find_supply_alias(struct device * dev,const char * supply)2074 static struct regulator_supply_alias *regulator_find_supply_alias(
2075 struct device *dev, const char *supply)
2076 {
2077 struct regulator_supply_alias *map;
2078
2079 list_for_each_entry(map, ®ulator_supply_alias_list, list)
2080 if (map->src_dev == dev && strcmp(map->src_supply, supply) == 0)
2081 return map;
2082
2083 return NULL;
2084 }
2085
regulator_supply_alias(struct device ** dev,const char ** supply)2086 static void regulator_supply_alias(struct device **dev, const char **supply)
2087 {
2088 struct regulator_supply_alias *map;
2089
2090 mutex_lock(®ulator_list_mutex);
2091 map = regulator_find_supply_alias(*dev, *supply);
2092 if (map) {
2093 dev_dbg(*dev, "Mapping supply %s to %s,%s\n",
2094 *supply, map->alias_supply,
2095 dev_name(map->alias_dev));
2096 *dev = map->alias_dev;
2097 *supply = map->alias_supply;
2098 }
2099 mutex_unlock(®ulator_list_mutex);
2100 }
2101
regulator_match(struct device * dev,const void * data)2102 static int regulator_match(struct device *dev, const void *data)
2103 {
2104 struct regulator_dev *r = dev_to_rdev(dev);
2105
2106 return strcmp(rdev_get_name(r), data) == 0;
2107 }
2108
regulator_lookup_by_name(const char * name)2109 static struct regulator_dev *regulator_lookup_by_name(const char *name)
2110 {
2111 struct device *dev;
2112
2113 dev = class_find_device(®ulator_class, NULL, name, regulator_match);
2114
2115 return dev ? dev_to_rdev(dev) : NULL;
2116 }
2117
regulator_dt_lookup(struct device * dev,const char * supply)2118 static struct regulator_dev *regulator_dt_lookup(struct device *dev,
2119 const char *supply)
2120 {
2121 struct regulator_dev *r = NULL;
2122
2123 if (dev_of_node(dev)) {
2124 r = of_regulator_dev_lookup(dev, dev_of_node(dev), supply);
2125 if (PTR_ERR(r) == -ENODEV)
2126 r = NULL;
2127 }
2128
2129 return r;
2130 }
2131
2132 /**
2133 * regulator_dev_lookup - lookup a regulator device.
2134 * @dev: device for regulator "consumer".
2135 * @supply: Supply name or regulator ID.
2136 *
2137 * Return: pointer to &struct regulator_dev or ERR_PTR() encoded negative error number.
2138 *
2139 * If successful, returns a struct regulator_dev that corresponds to the name
2140 * @supply and with the embedded struct device refcount incremented by one.
2141 * The refcount must be dropped by calling put_device().
2142 * On failure one of the following ERR_PTR() encoded values is returned:
2143 * -%ENODEV if lookup fails permanently, -%EPROBE_DEFER if lookup could succeed
2144 * in the future.
2145 */
regulator_dev_lookup(struct device * dev,const char * supply)2146 static struct regulator_dev *regulator_dev_lookup(struct device *dev,
2147 const char *supply)
2148 {
2149 struct regulator_dev *r = NULL;
2150 struct regulator_map *map;
2151 const char *devname = NULL;
2152
2153 regulator_supply_alias(&dev, &supply);
2154
2155 /* first do a dt based lookup */
2156 r = regulator_dt_lookup(dev, supply);
2157 if (r)
2158 return r;
2159
2160 /* if not found, try doing it non-dt way */
2161 if (dev)
2162 devname = dev_name(dev);
2163
2164 mutex_lock(®ulator_list_mutex);
2165 list_for_each_entry(map, ®ulator_map_list, list) {
2166 /* If the mapping has a device set up it must match */
2167 if (map->dev_name &&
2168 (!devname || strcmp(map->dev_name, devname)))
2169 continue;
2170
2171 if (strcmp(map->supply, supply) == 0 &&
2172 get_device(&map->regulator->dev)) {
2173 r = map->regulator;
2174 break;
2175 }
2176 }
2177 mutex_unlock(®ulator_list_mutex);
2178
2179 if (r)
2180 return r;
2181
2182 r = regulator_lookup_by_name(supply);
2183 if (r)
2184 return r;
2185
2186 return ERR_PTR(-ENODEV);
2187 }
2188
regulator_resolve_supply(struct regulator_dev * rdev)2189 static int regulator_resolve_supply(struct regulator_dev *rdev)
2190 {
2191 struct regulator_dev *r;
2192 struct device *dev = rdev->dev.parent;
2193 struct ww_acquire_ctx ww_ctx;
2194 struct regulator *supply;
2195 bool do_final_setup;
2196 int ret = 0;
2197
2198 /* No supply to resolve? */
2199 if (!rdev->supply_name)
2200 return 0;
2201
2202 /* Supply already resolved? (fast-path without locking contention) */
2203 if (rdev->supply && !rdev->constraints_pending)
2204 return 0;
2205
2206 /* first do a dt based lookup on the node described in the virtual
2207 * device.
2208 */
2209 r = regulator_dt_lookup(&rdev->dev, rdev->supply_name);
2210
2211 /* If regulator not found use usual search path in the parent
2212 * device.
2213 */
2214 if (!r)
2215 r = regulator_dev_lookup(dev, rdev->supply_name);
2216
2217 if (IS_ERR(r)) {
2218 ret = PTR_ERR(r);
2219
2220 /* Did the lookup explicitly defer for us? */
2221 if (ret == -EPROBE_DEFER)
2222 goto out;
2223
2224 if (have_full_constraints()) {
2225 r = dummy_regulator_rdev;
2226 if (!r) {
2227 ret = -EPROBE_DEFER;
2228 goto out;
2229 }
2230 get_device(&r->dev);
2231 } else {
2232 dev_err(dev, "Failed to resolve %s-supply for %s\n",
2233 rdev->supply_name, rdev->desc->name);
2234 ret = -EPROBE_DEFER;
2235 goto out;
2236 }
2237 }
2238
2239 if (r == rdev) {
2240 dev_err(dev, "Supply for %s (%s) resolved to itself\n",
2241 rdev->desc->name, rdev->supply_name);
2242 if (!have_full_constraints()) {
2243 ret = -EINVAL;
2244 goto out;
2245 }
2246 r = dummy_regulator_rdev;
2247 if (!r) {
2248 ret = -EPROBE_DEFER;
2249 goto out;
2250 }
2251 get_device(&r->dev);
2252 }
2253
2254 /*
2255 * If the supply's parent device is not the same as the
2256 * regulator's parent device, then ensure the parent device
2257 * is bound before we resolve the supply, in case the parent
2258 * device get probe deferred and unregisters the supply.
2259 */
2260 if (r->dev.parent && r->dev.parent != rdev->dev.parent) {
2261 if (!device_is_bound(r->dev.parent)) {
2262 put_device(&r->dev);
2263 ret = -EPROBE_DEFER;
2264 goto out;
2265 }
2266 }
2267
2268 /* Recursively resolve the supply of the supply */
2269 ret = regulator_resolve_supply(r);
2270 if (ret < 0) {
2271 put_device(&r->dev);
2272 goto out;
2273 }
2274
2275 /*
2276 * Recheck rdev->supply with rdev->mutex lock held to avoid a race
2277 * between rdev->supply null check and setting rdev->supply in
2278 * set_supply() from concurrent tasks.
2279 */
2280 regulator_lock_two(rdev, r, &ww_ctx);
2281
2282 /* Supply just resolved by a concurrent task? */
2283 if (rdev->supply) {
2284 /* Constraints might still be pending due to concurrency. */
2285 bool done = !rdev->constraints_pending;
2286
2287 supply = rdev->supply;
2288
2289 regulator_unlock_two(rdev, r, &ww_ctx);
2290 put_device(&r->dev);
2291
2292 /*
2293 * Supply resolved by concurrent task, and constraints set as
2294 * well (or not required): fast path.
2295 */
2296 if (done)
2297 goto out;
2298
2299 do_final_setup = false;
2300 } else {
2301 ret = set_supply(rdev, r);
2302 if (ret < 0) {
2303 regulator_unlock_two(rdev, r, &ww_ctx);
2304 put_device(&r->dev);
2305 goto out;
2306 }
2307
2308 supply = rdev->supply;
2309
2310 /*
2311 * Automatically register for event forwarding from the new
2312 * supply. This creates the downstream propagation link for
2313 * events like under-voltage.
2314 */
2315 ret = register_regulator_event_forwarding(rdev);
2316 if (ret < 0) {
2317 rdev_warn(rdev,
2318 "Failed to register event forwarding: %pe\n",
2319 ERR_PTR(ret));
2320
2321 goto unset_supply;
2322 }
2323
2324 regulator_unlock_two(rdev, r, &ww_ctx);
2325
2326 do_final_setup = true;
2327 }
2328
2329 /*
2330 * Now that we have the supply, we can retry setting the machine
2331 * constraints, if necessary.
2332 */
2333 regulator_lock_dependent(rdev, &ww_ctx);
2334 if (rdev->constraints_pending) {
2335 if (!rdev->supply) {
2336 /*
2337 * Supply could have been released by another task that
2338 * failed to set the constraints or event forwarding.
2339 */
2340 regulator_unlock_dependent(rdev, &ww_ctx);
2341 ret = -EPROBE_DEFER;
2342 goto out;
2343 }
2344
2345 ret = set_machine_constraints(rdev, true);
2346 if (ret < 0) {
2347 regulator_unlock_dependent(rdev, &ww_ctx);
2348
2349 rdev_warn(rdev,
2350 "Failed to set machine constraints: %pe\n",
2351 ERR_PTR(ret));
2352
2353 regulator_lock_two(rdev, r, &ww_ctx);
2354
2355 if (supply != rdev->supply) {
2356 /*
2357 * Supply could have been released by another
2358 * task that got here before us. If it did, it
2359 * will have released 'supply' (i.e. the
2360 * previous rdev->supply) and we shouldn't do
2361 * that again via unset_supply.
2362 */
2363 regulator_unlock_two(rdev, r, &ww_ctx);
2364 goto out;
2365 }
2366
2367 unregister_regulator_event_forwarding(rdev);
2368 rdev->constraints_pending = true;
2369 goto unset_supply;
2370 }
2371 rdev->constraints_pending = false;
2372 }
2373 regulator_unlock_dependent(rdev, &ww_ctx);
2374
2375 if (!do_final_setup)
2376 goto out;
2377
2378 /* rdev->supply was created in set_supply() */
2379 link_and_create_debugfs(rdev->supply, rdev->supply->rdev, &rdev->dev);
2380
2381 out:
2382 return ret;
2383
2384 unset_supply:
2385 lockdep_assert_held_once(&rdev->mutex.base);
2386 lockdep_assert_held_once(&r->mutex.base);
2387 rdev->supply = NULL;
2388 regulator_unlock_two(rdev, supply->rdev, &ww_ctx);
2389
2390 regulator_put(supply);
2391
2392 return ret;
2393 }
2394
2395 /* common pre-checks for regulator requests */
_regulator_get_common_check(struct device * dev,const char * id,enum regulator_get_type get_type)2396 int _regulator_get_common_check(struct device *dev, const char *id,
2397 enum regulator_get_type get_type)
2398 {
2399 if (get_type >= MAX_GET_TYPE) {
2400 dev_err(dev, "invalid type %d in %s\n", get_type, __func__);
2401 return -EINVAL;
2402 }
2403
2404 if (id == NULL) {
2405 dev_err(dev, "regulator request with no identifier\n");
2406 return -EINVAL;
2407 }
2408
2409 return 0;
2410 }
2411
2412 /**
2413 * _regulator_get_common - Common code for regulator requests
2414 * @rdev: regulator device pointer as returned by *regulator_dev_lookup()
2415 * Its reference count is expected to have been incremented.
2416 * @dev: device used for dev_printk messages
2417 * @id: Supply name or regulator ID
2418 * @get_type: enum regulator_get_type value corresponding to type of request
2419 *
2420 * Returns: pointer to struct regulator corresponding to @rdev, or ERR_PTR()
2421 * encoded error.
2422 *
2423 * This function should be chained with *regulator_dev_lookup() functions.
2424 */
_regulator_get_common(struct regulator_dev * rdev,struct device * dev,const char * id,enum regulator_get_type get_type)2425 struct regulator *_regulator_get_common(struct regulator_dev *rdev, struct device *dev,
2426 const char *id, enum regulator_get_type get_type)
2427 {
2428 struct regulator *regulator;
2429 struct device_link *link;
2430 int ret;
2431
2432 if (IS_ERR(rdev)) {
2433 ret = PTR_ERR(rdev);
2434
2435 /*
2436 * If regulator_dev_lookup() fails with error other
2437 * than -ENODEV our job here is done, we simply return it.
2438 */
2439 if (ret != -ENODEV)
2440 return ERR_PTR(ret);
2441
2442 if (!have_full_constraints()) {
2443 dev_warn(dev,
2444 "incomplete constraints, dummy supplies not allowed (id=%s)\n", id);
2445 return ERR_PTR(-ENODEV);
2446 }
2447
2448 switch (get_type) {
2449 case NORMAL_GET:
2450 /*
2451 * Assume that a regulator is physically present and
2452 * enabled, even if it isn't hooked up, and just
2453 * provide a dummy.
2454 */
2455 rdev = dummy_regulator_rdev;
2456 if (!rdev)
2457 return ERR_PTR(-EPROBE_DEFER);
2458 dev_warn(dev, "supply %s not found, using dummy regulator\n", id);
2459 get_device(&rdev->dev);
2460 break;
2461
2462 case EXCLUSIVE_GET:
2463 dev_warn(dev,
2464 "dummy supplies not allowed for exclusive requests (id=%s)\n", id);
2465 fallthrough;
2466
2467 default:
2468 return ERR_PTR(-ENODEV);
2469 }
2470 }
2471
2472 if (rdev->exclusive) {
2473 regulator = ERR_PTR(-EPERM);
2474 put_device(&rdev->dev);
2475 return regulator;
2476 }
2477
2478 if (get_type == EXCLUSIVE_GET && rdev->open_count) {
2479 regulator = ERR_PTR(-EBUSY);
2480 put_device(&rdev->dev);
2481 return regulator;
2482 }
2483
2484 mutex_lock(®ulator_list_mutex);
2485 ret = (rdev->coupling_desc.n_resolved != rdev->coupling_desc.n_coupled);
2486 mutex_unlock(®ulator_list_mutex);
2487
2488 if (ret != 0) {
2489 regulator = ERR_PTR(-EPROBE_DEFER);
2490 put_device(&rdev->dev);
2491 return regulator;
2492 }
2493
2494 ret = regulator_resolve_supply(rdev);
2495 if (ret < 0) {
2496 regulator = ERR_PTR(ret);
2497 put_device(&rdev->dev);
2498 return regulator;
2499 }
2500
2501 if (!try_module_get(rdev->owner)) {
2502 regulator = ERR_PTR(-EPROBE_DEFER);
2503 put_device(&rdev->dev);
2504 return regulator;
2505 }
2506
2507 regulator_lock(rdev);
2508 regulator = create_regulator(rdev, dev, id);
2509 regulator_unlock(rdev);
2510 if (regulator == NULL) {
2511 regulator = ERR_PTR(-ENOMEM);
2512 module_put(rdev->owner);
2513 put_device(&rdev->dev);
2514 return regulator;
2515 }
2516
2517 link_and_create_debugfs(regulator, rdev, dev);
2518
2519 rdev->open_count++;
2520 if (get_type == EXCLUSIVE_GET) {
2521 rdev->exclusive = 1;
2522
2523 ret = _regulator_is_enabled(rdev);
2524 if (ret > 0) {
2525 rdev->use_count = 1;
2526 regulator->enable_count = 1;
2527
2528 /* Propagate the regulator state to its supply */
2529 if (rdev->supply) {
2530 ret = regulator_enable(rdev->supply);
2531 if (ret < 0) {
2532 destroy_regulator(regulator);
2533 module_put(rdev->owner);
2534 put_device(&rdev->dev);
2535 return ERR_PTR(ret);
2536 }
2537 }
2538 } else {
2539 rdev->use_count = 0;
2540 regulator->enable_count = 0;
2541 }
2542 }
2543
2544 link = device_link_add(dev, &rdev->dev, DL_FLAG_STATELESS);
2545 if (!IS_ERR_OR_NULL(link))
2546 regulator->device_link = true;
2547
2548 return regulator;
2549 }
2550
2551 /* Internal regulator request function */
_regulator_get(struct device * dev,const char * id,enum regulator_get_type get_type)2552 struct regulator *_regulator_get(struct device *dev, const char *id,
2553 enum regulator_get_type get_type)
2554 {
2555 struct regulator_dev *rdev;
2556 int ret;
2557
2558 ret = _regulator_get_common_check(dev, id, get_type);
2559 if (ret)
2560 return ERR_PTR(ret);
2561
2562 rdev = regulator_dev_lookup(dev, id);
2563 return _regulator_get_common(rdev, dev, id, get_type);
2564 }
2565
2566 /**
2567 * regulator_get - lookup and obtain a reference to a regulator.
2568 * @dev: device for regulator "consumer"
2569 * @id: Supply name or regulator ID.
2570 *
2571 * Use of supply names configured via set_consumer_device_supply() is
2572 * strongly encouraged. It is recommended that the supply name used
2573 * should match the name used for the supply and/or the relevant
2574 * device pins in the datasheet.
2575 *
2576 * Return: Pointer to a &struct regulator corresponding to the regulator
2577 * producer, or an ERR_PTR() encoded negative error number.
2578 */
regulator_get(struct device * dev,const char * id)2579 struct regulator *regulator_get(struct device *dev, const char *id)
2580 {
2581 return _regulator_get(dev, id, NORMAL_GET);
2582 }
2583 EXPORT_SYMBOL_GPL(regulator_get);
2584
2585 /**
2586 * regulator_get_exclusive - obtain exclusive access to a regulator.
2587 * @dev: device for regulator "consumer"
2588 * @id: Supply name or regulator ID.
2589 *
2590 * Other consumers will be unable to obtain this regulator while this
2591 * reference is held and the use count for the regulator will be
2592 * initialised to reflect the current state of the regulator.
2593 *
2594 * This is intended for use by consumers which cannot tolerate shared
2595 * use of the regulator such as those which need to force the
2596 * regulator off for correct operation of the hardware they are
2597 * controlling.
2598 *
2599 * Use of supply names configured via set_consumer_device_supply() is
2600 * strongly encouraged. It is recommended that the supply name used
2601 * should match the name used for the supply and/or the relevant
2602 * device pins in the datasheet.
2603 *
2604 * Return: Pointer to a &struct regulator corresponding to the regulator
2605 * producer, or an ERR_PTR() encoded negative error number.
2606 */
regulator_get_exclusive(struct device * dev,const char * id)2607 struct regulator *regulator_get_exclusive(struct device *dev, const char *id)
2608 {
2609 return _regulator_get(dev, id, EXCLUSIVE_GET);
2610 }
2611 EXPORT_SYMBOL_GPL(regulator_get_exclusive);
2612
2613 /**
2614 * regulator_get_optional - obtain optional access to a regulator.
2615 * @dev: device for regulator "consumer"
2616 * @id: Supply name or regulator ID.
2617 *
2618 * This is intended for use by consumers for devices which can have
2619 * some supplies unconnected in normal use, such as some MMC devices.
2620 * It can allow the regulator core to provide stub supplies for other
2621 * supplies requested using normal regulator_get() calls without
2622 * disrupting the operation of drivers that can handle absent
2623 * supplies.
2624 *
2625 * Use of supply names configured via set_consumer_device_supply() is
2626 * strongly encouraged. It is recommended that the supply name used
2627 * should match the name used for the supply and/or the relevant
2628 * device pins in the datasheet.
2629 *
2630 * Return: Pointer to a &struct regulator corresponding to the regulator
2631 * producer, or an ERR_PTR() encoded negative error number.
2632 */
regulator_get_optional(struct device * dev,const char * id)2633 struct regulator *regulator_get_optional(struct device *dev, const char *id)
2634 {
2635 return _regulator_get(dev, id, OPTIONAL_GET);
2636 }
2637 EXPORT_SYMBOL_GPL(regulator_get_optional);
2638
destroy_regulator(struct regulator * regulator)2639 static void destroy_regulator(struct regulator *regulator)
2640 {
2641 struct regulator_dev *rdev = regulator->rdev;
2642
2643 debugfs_remove_recursive(regulator->debugfs);
2644
2645 if (regulator->dev) {
2646 if (regulator->device_link)
2647 device_link_remove(regulator->dev, &rdev->dev);
2648
2649 /* remove any sysfs entries */
2650 sysfs_remove_link(&rdev->dev.kobj, regulator->supply_name);
2651 }
2652
2653 regulator_lock(rdev);
2654 list_del(®ulator->list);
2655
2656 rdev->open_count--;
2657 rdev->exclusive = 0;
2658 regulator_unlock(rdev);
2659
2660 kfree_const(regulator->supply_name);
2661 kfree(regulator);
2662 }
2663
2664 /* regulator_list_mutex lock held by regulator_put() */
_regulator_put(struct regulator * regulator)2665 static void _regulator_put(struct regulator *regulator)
2666 {
2667 struct regulator_dev *rdev;
2668
2669 if (IS_ERR_OR_NULL(regulator))
2670 return;
2671
2672 lockdep_assert_held_once(®ulator_list_mutex);
2673
2674 /* Docs say you must disable before calling regulator_put() */
2675 WARN_ON(regulator->enable_count);
2676
2677 rdev = regulator->rdev;
2678
2679 destroy_regulator(regulator);
2680
2681 module_put(rdev->owner);
2682 put_device(&rdev->dev);
2683 }
2684
2685 /**
2686 * regulator_put - "free" the regulator source
2687 * @regulator: regulator source
2688 *
2689 * Note: drivers must ensure that all regulator_enable calls made on this
2690 * regulator source are balanced by regulator_disable calls prior to calling
2691 * this function.
2692 */
regulator_put(struct regulator * regulator)2693 void regulator_put(struct regulator *regulator)
2694 {
2695 mutex_lock(®ulator_list_mutex);
2696 _regulator_put(regulator);
2697 mutex_unlock(®ulator_list_mutex);
2698 }
2699 EXPORT_SYMBOL_GPL(regulator_put);
2700
2701 /**
2702 * regulator_register_supply_alias - Provide device alias for supply lookup
2703 *
2704 * @dev: device that will be given as the regulator "consumer"
2705 * @id: Supply name or regulator ID
2706 * @alias_dev: device that should be used to lookup the supply
2707 * @alias_id: Supply name or regulator ID that should be used to lookup the
2708 * supply
2709 *
2710 * All lookups for id on dev will instead be conducted for alias_id on
2711 * alias_dev.
2712 *
2713 * Return: 0 on success or a negative error number on failure.
2714 */
regulator_register_supply_alias(struct device * dev,const char * id,struct device * alias_dev,const char * alias_id)2715 int regulator_register_supply_alias(struct device *dev, const char *id,
2716 struct device *alias_dev,
2717 const char *alias_id)
2718 {
2719 struct regulator_supply_alias *map;
2720 struct regulator_supply_alias *new_map;
2721
2722 new_map = kzalloc_obj(struct regulator_supply_alias);
2723 if (!new_map)
2724 return -ENOMEM;
2725
2726 mutex_lock(®ulator_list_mutex);
2727 map = regulator_find_supply_alias(dev, id);
2728 if (map) {
2729 mutex_unlock(®ulator_list_mutex);
2730 kfree(new_map);
2731 return -EEXIST;
2732 }
2733
2734 new_map->src_dev = dev;
2735 new_map->src_supply = id;
2736 new_map->alias_dev = alias_dev;
2737 new_map->alias_supply = alias_id;
2738 list_add(&new_map->list, ®ulator_supply_alias_list);
2739 mutex_unlock(®ulator_list_mutex);
2740 pr_info("Adding alias for supply %s,%s -> %s,%s\n",
2741 id, dev_name(dev), alias_id, dev_name(alias_dev));
2742
2743 return 0;
2744 }
2745 EXPORT_SYMBOL_GPL(regulator_register_supply_alias);
2746
2747 /**
2748 * regulator_unregister_supply_alias - Remove device alias
2749 *
2750 * @dev: device that will be given as the regulator "consumer"
2751 * @id: Supply name or regulator ID
2752 *
2753 * Remove a lookup alias if one exists for id on dev.
2754 */
regulator_unregister_supply_alias(struct device * dev,const char * id)2755 void regulator_unregister_supply_alias(struct device *dev, const char *id)
2756 {
2757 struct regulator_supply_alias *map;
2758
2759 mutex_lock(®ulator_list_mutex);
2760 map = regulator_find_supply_alias(dev, id);
2761 if (map) {
2762 list_del(&map->list);
2763 kfree(map);
2764 }
2765 mutex_unlock(®ulator_list_mutex);
2766 }
2767 EXPORT_SYMBOL_GPL(regulator_unregister_supply_alias);
2768
2769 /**
2770 * regulator_bulk_register_supply_alias - register multiple aliases
2771 *
2772 * @dev: device that will be given as the regulator "consumer"
2773 * @id: List of supply names or regulator IDs
2774 * @alias_dev: device that should be used to lookup the supply
2775 * @alias_id: List of supply names or regulator IDs that should be used to
2776 * lookup the supply
2777 * @num_id: Number of aliases to register
2778 *
2779 * This helper function allows drivers to register several supply
2780 * aliases in one operation. If any of the aliases cannot be
2781 * registered any aliases that were registered will be removed
2782 * before returning to the caller.
2783 *
2784 * Return: 0 on success or a negative error number on failure.
2785 */
regulator_bulk_register_supply_alias(struct device * dev,const char * const * id,struct device * alias_dev,const char * const * alias_id,int num_id)2786 int regulator_bulk_register_supply_alias(struct device *dev,
2787 const char *const *id,
2788 struct device *alias_dev,
2789 const char *const *alias_id,
2790 int num_id)
2791 {
2792 int i;
2793 int ret;
2794
2795 for (i = 0; i < num_id; ++i) {
2796 ret = regulator_register_supply_alias(dev, id[i], alias_dev,
2797 alias_id[i]);
2798 if (ret < 0)
2799 goto err;
2800 }
2801
2802 return 0;
2803
2804 err:
2805 dev_err(dev,
2806 "Failed to create supply alias %s,%s -> %s,%s\n",
2807 id[i], dev_name(dev), alias_id[i], dev_name(alias_dev));
2808
2809 while (--i >= 0)
2810 regulator_unregister_supply_alias(dev, id[i]);
2811
2812 return ret;
2813 }
2814 EXPORT_SYMBOL_GPL(regulator_bulk_register_supply_alias);
2815
2816 /**
2817 * regulator_bulk_unregister_supply_alias - unregister multiple aliases
2818 *
2819 * @dev: device that will be given as the regulator "consumer"
2820 * @id: List of supply names or regulator IDs
2821 * @num_id: Number of aliases to unregister
2822 *
2823 * This helper function allows drivers to unregister several supply
2824 * aliases in one operation.
2825 */
regulator_bulk_unregister_supply_alias(struct device * dev,const char * const * id,int num_id)2826 void regulator_bulk_unregister_supply_alias(struct device *dev,
2827 const char *const *id,
2828 int num_id)
2829 {
2830 int i;
2831
2832 for (i = 0; i < num_id; ++i)
2833 regulator_unregister_supply_alias(dev, id[i]);
2834 }
2835 EXPORT_SYMBOL_GPL(regulator_bulk_unregister_supply_alias);
2836
2837
2838 /* Manage enable GPIO list. Same GPIO pin can be shared among regulators */
regulator_ena_gpio_request(struct regulator_dev * rdev,const struct regulator_config * config)2839 static int regulator_ena_gpio_request(struct regulator_dev *rdev,
2840 const struct regulator_config *config)
2841 {
2842 struct regulator_enable_gpio *pin, *new_pin;
2843 struct gpio_desc *gpiod;
2844
2845 gpiod = config->ena_gpiod;
2846 new_pin = kzalloc_obj(*new_pin);
2847
2848 mutex_lock(®ulator_list_mutex);
2849
2850 if (gpiod_is_shared(gpiod))
2851 /*
2852 * The sharing of this GPIO pin is managed internally by
2853 * GPIOLIB. We don't need to keep track of its enable count.
2854 */
2855 goto skip_compare;
2856
2857 list_for_each_entry(pin, ®ulator_ena_gpio_list, list) {
2858 if (gpiod_is_equal(pin->gpiod, gpiod)) {
2859 rdev_dbg(rdev, "GPIO is already used\n");
2860 goto update_ena_gpio_to_rdev;
2861 }
2862 }
2863
2864 if (new_pin == NULL) {
2865 mutex_unlock(®ulator_list_mutex);
2866 return -ENOMEM;
2867 }
2868
2869 skip_compare:
2870 pin = new_pin;
2871 new_pin = NULL;
2872
2873 pin->gpiod = gpiod;
2874 list_add(&pin->list, ®ulator_ena_gpio_list);
2875
2876 update_ena_gpio_to_rdev:
2877 pin->request_count++;
2878 rdev->ena_pin = pin;
2879
2880 mutex_unlock(®ulator_list_mutex);
2881 kfree(new_pin);
2882
2883 return 0;
2884 }
2885
regulator_ena_gpio_free(struct regulator_dev * rdev)2886 static void regulator_ena_gpio_free(struct regulator_dev *rdev)
2887 {
2888 struct regulator_enable_gpio *pin, *n;
2889
2890 if (!rdev->ena_pin)
2891 return;
2892
2893 /* Free the GPIO only in case of no use */
2894 list_for_each_entry_safe(pin, n, ®ulator_ena_gpio_list, list) {
2895 if (pin != rdev->ena_pin)
2896 continue;
2897
2898 if (--pin->request_count)
2899 break;
2900
2901 gpiod_put(pin->gpiod);
2902 list_del(&pin->list);
2903 kfree(pin);
2904 break;
2905 }
2906
2907 rdev->ena_pin = NULL;
2908 }
2909
2910 /**
2911 * regulator_ena_gpio_ctrl - balance enable_count of each GPIO and actual GPIO pin control
2912 * @rdev: regulator_dev structure
2913 * @enable: enable GPIO at initial use?
2914 *
2915 * GPIO is enabled in case of initial use. (enable_count is 0)
2916 * GPIO is disabled when it is not shared any more. (enable_count <= 1)
2917 *
2918 * Return: 0 on success or a negative error number on failure.
2919 */
regulator_ena_gpio_ctrl(struct regulator_dev * rdev,bool enable)2920 static int regulator_ena_gpio_ctrl(struct regulator_dev *rdev, bool enable)
2921 {
2922 struct regulator_enable_gpio *pin = rdev->ena_pin;
2923 int ret;
2924
2925 if (!pin)
2926 return -EINVAL;
2927
2928 if (enable) {
2929 /* Enable GPIO at initial use */
2930 if (pin->enable_count == 0) {
2931 ret = gpiod_set_value_cansleep(pin->gpiod, 1);
2932 if (ret)
2933 return ret;
2934 }
2935
2936 pin->enable_count++;
2937 } else {
2938 if (pin->enable_count > 1) {
2939 pin->enable_count--;
2940 return 0;
2941 }
2942
2943 /* Disable GPIO if not used */
2944 if (pin->enable_count <= 1) {
2945 ret = gpiod_set_value_cansleep(pin->gpiod, 0);
2946 if (ret)
2947 return ret;
2948
2949 pin->enable_count = 0;
2950 }
2951 }
2952
2953 return 0;
2954 }
2955
2956 /**
2957 * _regulator_check_status_enabled - check if regulator status can be
2958 * interpreted as "regulator is enabled"
2959 * @rdev: the regulator device to check
2960 *
2961 * Return:
2962 * * 1 - if status shows regulator is in enabled state
2963 * * 0 - if not enabled state
2964 * * Error Value - as received from ops->get_status()
2965 */
_regulator_check_status_enabled(struct regulator_dev * rdev)2966 static inline int _regulator_check_status_enabled(struct regulator_dev *rdev)
2967 {
2968 int ret = rdev->desc->ops->get_status(rdev);
2969
2970 if (ret < 0) {
2971 rdev_info(rdev, "get_status returned error: %d\n", ret);
2972 return ret;
2973 }
2974
2975 switch (ret) {
2976 case REGULATOR_STATUS_OFF:
2977 case REGULATOR_STATUS_ERROR:
2978 case REGULATOR_STATUS_UNDEFINED:
2979 return 0;
2980 default:
2981 return 1;
2982 }
2983 }
2984
_regulator_do_enable(struct regulator_dev * rdev)2985 static int _regulator_do_enable(struct regulator_dev *rdev)
2986 {
2987 int ret, delay;
2988
2989 /* Query before enabling in case configuration dependent. */
2990 ret = _regulator_get_enable_time(rdev);
2991 if (ret >= 0) {
2992 delay = ret;
2993 } else {
2994 rdev_warn(rdev, "enable_time() failed: %pe\n", ERR_PTR(ret));
2995 delay = 0;
2996 }
2997
2998 trace_regulator_enable(rdev_get_name(rdev));
2999
3000 if (rdev->desc->off_on_delay) {
3001 /* if needed, keep a distance of off_on_delay from last time
3002 * this regulator was disabled.
3003 */
3004 ktime_t end = ktime_add_us(rdev->last_off, rdev->desc->off_on_delay);
3005 s64 remaining = ktime_us_delta(end, ktime_get_boottime());
3006
3007 if (remaining > 0)
3008 fsleep(remaining);
3009 }
3010
3011 if (rdev->ena_pin) {
3012 if (!rdev->ena_gpio_state) {
3013 ret = regulator_ena_gpio_ctrl(rdev, true);
3014 if (ret < 0)
3015 return ret;
3016 rdev->ena_gpio_state = 1;
3017 }
3018 } else if (rdev->desc->ops->enable) {
3019 ret = rdev->desc->ops->enable(rdev);
3020 if (ret < 0)
3021 return ret;
3022 } else {
3023 return -EINVAL;
3024 }
3025
3026 /* Allow the regulator to ramp; it would be useful to extend
3027 * this for bulk operations so that the regulators can ramp
3028 * together.
3029 */
3030 trace_regulator_enable_delay(rdev_get_name(rdev));
3031
3032 /* If poll_enabled_time is set, poll upto the delay calculated
3033 * above, delaying poll_enabled_time uS to check if the regulator
3034 * actually got enabled.
3035 * If the regulator isn't enabled after our delay helper has expired,
3036 * return -ETIMEDOUT.
3037 */
3038 if (rdev->desc->poll_enabled_time) {
3039 int time_remaining = delay;
3040
3041 while (time_remaining > 0) {
3042 fsleep(rdev->desc->poll_enabled_time);
3043
3044 if (rdev->desc->ops->get_status) {
3045 ret = _regulator_check_status_enabled(rdev);
3046 if (ret < 0)
3047 return ret;
3048 else if (ret)
3049 break;
3050 } else if (rdev->desc->ops->is_enabled(rdev))
3051 break;
3052
3053 time_remaining -= rdev->desc->poll_enabled_time;
3054 }
3055
3056 if (time_remaining <= 0) {
3057 rdev_err(rdev, "Enabled check timed out\n");
3058 return -ETIMEDOUT;
3059 }
3060 } else {
3061 fsleep(delay);
3062 }
3063
3064 trace_regulator_enable_complete(rdev_get_name(rdev));
3065
3066 return 0;
3067 }
3068
3069 /**
3070 * _regulator_handle_consumer_enable - handle that a consumer enabled
3071 * @regulator: regulator source
3072 *
3073 * Some things on a regulator consumer (like the contribution towards total
3074 * load on the regulator) only have an effect when the consumer wants the
3075 * regulator enabled. Explained in example with two consumers of the same
3076 * regulator:
3077 * consumer A: set_load(100); => total load = 0
3078 * consumer A: regulator_enable(); => total load = 100
3079 * consumer B: set_load(1000); => total load = 100
3080 * consumer B: regulator_enable(); => total load = 1100
3081 * consumer A: regulator_disable(); => total_load = 1000
3082 *
3083 * This function (together with _regulator_handle_consumer_disable) is
3084 * responsible for keeping track of the refcount for a given regulator consumer
3085 * and applying / unapplying these things.
3086 *
3087 * Return: 0 on success or negative error number on failure.
3088 */
_regulator_handle_consumer_enable(struct regulator * regulator)3089 static int _regulator_handle_consumer_enable(struct regulator *regulator)
3090 {
3091 int ret;
3092 struct regulator_dev *rdev = regulator->rdev;
3093
3094 lockdep_assert_held_once(&rdev->mutex.base);
3095
3096 regulator->enable_count++;
3097 if (regulator->uA_load && regulator->enable_count == 1) {
3098 ret = drms_uA_update(rdev);
3099 if (ret)
3100 regulator->enable_count--;
3101 return ret;
3102 }
3103
3104 return 0;
3105 }
3106
3107 /**
3108 * _regulator_handle_consumer_disable - handle that a consumer disabled
3109 * @regulator: regulator source
3110 *
3111 * The opposite of _regulator_handle_consumer_enable().
3112 *
3113 * Return: 0 on success or a negative error number on failure.
3114 */
_regulator_handle_consumer_disable(struct regulator * regulator)3115 static int _regulator_handle_consumer_disable(struct regulator *regulator)
3116 {
3117 struct regulator_dev *rdev = regulator->rdev;
3118
3119 lockdep_assert_held_once(&rdev->mutex.base);
3120
3121 if (!regulator->enable_count) {
3122 rdev_err(rdev, "Underflow of regulator enable count\n");
3123 return -EINVAL;
3124 }
3125
3126 regulator->enable_count--;
3127 if (regulator->uA_load && regulator->enable_count == 0)
3128 return drms_uA_update(rdev);
3129
3130 return 0;
3131 }
3132
3133 /* locks held by regulator_enable() */
_regulator_enable(struct regulator * regulator)3134 static int _regulator_enable(struct regulator *regulator)
3135 {
3136 struct regulator_dev *rdev = regulator->rdev;
3137 int ret;
3138
3139 lockdep_assert_held_once(&rdev->mutex.base);
3140
3141 if (rdev->use_count == 0 && rdev->supply) {
3142 ret = _regulator_enable(rdev->supply);
3143 if (ret < 0)
3144 return ret;
3145 }
3146
3147 /* balance only if there are regulators coupled */
3148 if (rdev->coupling_desc.n_coupled > 1) {
3149 ret = regulator_balance_voltage(rdev, PM_SUSPEND_ON);
3150 if (ret < 0)
3151 goto err_disable_supply;
3152 }
3153
3154 ret = _regulator_handle_consumer_enable(regulator);
3155 if (ret < 0)
3156 goto err_disable_supply;
3157
3158 if (rdev->use_count == 0) {
3159 /*
3160 * The regulator may already be enabled if it's not switchable
3161 * or was left on
3162 */
3163 ret = _regulator_is_enabled(rdev);
3164 if (ret == -EINVAL || ret == 0) {
3165 if (!regulator_ops_is_valid(rdev,
3166 REGULATOR_CHANGE_STATUS)) {
3167 ret = -EPERM;
3168 goto err_consumer_disable;
3169 }
3170
3171 ret = _regulator_do_enable(rdev);
3172 if (ret < 0)
3173 goto err_consumer_disable;
3174
3175 _notifier_call_chain(rdev, REGULATOR_EVENT_ENABLE,
3176 NULL);
3177 } else if (ret < 0) {
3178 rdev_err(rdev, "is_enabled() failed: %pe\n", ERR_PTR(ret));
3179 goto err_consumer_disable;
3180 }
3181 /* Fallthrough on positive return values - already enabled */
3182 }
3183
3184 if (regulator->enable_count == 1)
3185 rdev->use_count++;
3186
3187 return 0;
3188
3189 err_consumer_disable:
3190 _regulator_handle_consumer_disable(regulator);
3191
3192 err_disable_supply:
3193 if (rdev->use_count == 0 && rdev->supply)
3194 _regulator_disable(rdev->supply);
3195
3196 return ret;
3197 }
3198
3199 /**
3200 * regulator_enable - enable regulator output
3201 * @regulator: regulator source
3202 *
3203 * Request that the regulator be enabled with the regulator output at
3204 * the predefined voltage or current value. Calls to regulator_enable()
3205 * must be balanced with calls to regulator_disable().
3206 *
3207 * NOTE: the output value can be set by other drivers, boot loader or may be
3208 * hardwired in the regulator.
3209 *
3210 * Return: 0 on success or a negative error number on failure.
3211 */
regulator_enable(struct regulator * regulator)3212 int regulator_enable(struct regulator *regulator)
3213 {
3214 struct regulator_dev *rdev = regulator->rdev;
3215 struct ww_acquire_ctx ww_ctx;
3216 int ret;
3217
3218 regulator_lock_dependent(rdev, &ww_ctx);
3219 ret = _regulator_enable(regulator);
3220 regulator_unlock_dependent(rdev, &ww_ctx);
3221
3222 return ret;
3223 }
3224 EXPORT_SYMBOL_GPL(regulator_enable);
3225
_regulator_do_disable(struct regulator_dev * rdev)3226 static int _regulator_do_disable(struct regulator_dev *rdev)
3227 {
3228 int ret;
3229
3230 trace_regulator_disable(rdev_get_name(rdev));
3231
3232 if (rdev->ena_pin) {
3233 if (rdev->ena_gpio_state) {
3234 ret = regulator_ena_gpio_ctrl(rdev, false);
3235 if (ret < 0)
3236 return ret;
3237 rdev->ena_gpio_state = 0;
3238 }
3239
3240 } else if (rdev->desc->ops->disable) {
3241 ret = rdev->desc->ops->disable(rdev);
3242 if (ret != 0)
3243 return ret;
3244 }
3245
3246 if (rdev->desc->off_on_delay)
3247 rdev->last_off = ktime_get_boottime();
3248
3249 trace_regulator_disable_complete(rdev_get_name(rdev));
3250
3251 return 0;
3252 }
3253
3254 /* locks held by regulator_disable() */
_regulator_disable(struct regulator * regulator)3255 static int _regulator_disable(struct regulator *regulator)
3256 {
3257 struct regulator_dev *rdev = regulator->rdev;
3258 int ret = 0;
3259
3260 lockdep_assert_held_once(&rdev->mutex.base);
3261
3262 if (WARN(regulator->enable_count == 0,
3263 "unbalanced disables for %s\n", rdev_get_name(rdev)))
3264 return -EIO;
3265
3266 if (regulator->enable_count == 1) {
3267 /* disabling last enable_count from this regulator */
3268 /* are we the last user and permitted to disable ? */
3269 if (rdev->use_count == 1 &&
3270 (rdev->constraints && !rdev->constraints->always_on)) {
3271
3272 /* we are last user */
3273 if (regulator_ops_is_valid(rdev, REGULATOR_CHANGE_STATUS)) {
3274 ret = _notifier_call_chain(rdev,
3275 REGULATOR_EVENT_PRE_DISABLE,
3276 NULL);
3277 if (ret & NOTIFY_STOP_MASK)
3278 return -EINVAL;
3279
3280 ret = _regulator_do_disable(rdev);
3281 if (ret < 0) {
3282 rdev_err(rdev, "failed to disable: %pe\n", ERR_PTR(ret));
3283 _notifier_call_chain(rdev,
3284 REGULATOR_EVENT_ABORT_DISABLE,
3285 NULL);
3286 return ret;
3287 }
3288 _notifier_call_chain(rdev, REGULATOR_EVENT_DISABLE,
3289 NULL);
3290 }
3291
3292 rdev->use_count = 0;
3293 } else if (rdev->use_count > 1) {
3294 rdev->use_count--;
3295 }
3296 }
3297
3298 if (ret == 0)
3299 ret = _regulator_handle_consumer_disable(regulator);
3300
3301 if (ret == 0 && rdev->coupling_desc.n_coupled > 1)
3302 ret = regulator_balance_voltage(rdev, PM_SUSPEND_ON);
3303
3304 if (ret == 0 && rdev->use_count == 0 && rdev->supply)
3305 ret = _regulator_disable(rdev->supply);
3306
3307 return ret;
3308 }
3309
3310 /**
3311 * regulator_disable - disable regulator output
3312 * @regulator: regulator source
3313 *
3314 * Disable the regulator output voltage or current. Calls to
3315 * regulator_enable() must be balanced with calls to
3316 * regulator_disable().
3317 *
3318 * NOTE: this will only disable the regulator output if no other consumer
3319 * devices have it enabled, the regulator device supports disabling and
3320 * machine constraints permit this operation.
3321 *
3322 * Return: 0 on success or a negative error number on failure.
3323 */
regulator_disable(struct regulator * regulator)3324 int regulator_disable(struct regulator *regulator)
3325 {
3326 struct regulator_dev *rdev = regulator->rdev;
3327 struct ww_acquire_ctx ww_ctx;
3328 int ret;
3329
3330 regulator_lock_dependent(rdev, &ww_ctx);
3331 ret = _regulator_disable(regulator);
3332 regulator_unlock_dependent(rdev, &ww_ctx);
3333
3334 return ret;
3335 }
3336 EXPORT_SYMBOL_GPL(regulator_disable);
3337
3338 /* locks held by regulator_force_disable() */
_regulator_force_disable(struct regulator_dev * rdev)3339 static int _regulator_force_disable(struct regulator_dev *rdev)
3340 {
3341 int ret = 0;
3342
3343 lockdep_assert_held_once(&rdev->mutex.base);
3344
3345 ret = _notifier_call_chain(rdev, REGULATOR_EVENT_FORCE_DISABLE |
3346 REGULATOR_EVENT_PRE_DISABLE, NULL);
3347 if (ret & NOTIFY_STOP_MASK)
3348 return -EINVAL;
3349
3350 ret = _regulator_do_disable(rdev);
3351 if (ret < 0) {
3352 rdev_err(rdev, "failed to force disable: %pe\n", ERR_PTR(ret));
3353 _notifier_call_chain(rdev, REGULATOR_EVENT_FORCE_DISABLE |
3354 REGULATOR_EVENT_ABORT_DISABLE, NULL);
3355 return ret;
3356 }
3357
3358 _notifier_call_chain(rdev, REGULATOR_EVENT_FORCE_DISABLE |
3359 REGULATOR_EVENT_DISABLE, NULL);
3360
3361 return 0;
3362 }
3363
3364 /**
3365 * regulator_force_disable - force disable regulator output
3366 * @regulator: regulator source
3367 *
3368 * Forcibly disable the regulator output voltage or current.
3369 * NOTE: this *will* disable the regulator output even if other consumer
3370 * devices have it enabled. This should be used for situations when device
3371 * damage will likely occur if the regulator is not disabled (e.g. over temp).
3372 *
3373 * Return: 0 on success or a negative error number on failure.
3374 */
regulator_force_disable(struct regulator * regulator)3375 int regulator_force_disable(struct regulator *regulator)
3376 {
3377 struct regulator_dev *rdev = regulator->rdev;
3378 struct ww_acquire_ctx ww_ctx;
3379 int ret;
3380
3381 regulator_lock_dependent(rdev, &ww_ctx);
3382
3383 ret = _regulator_force_disable(regulator->rdev);
3384
3385 if (rdev->coupling_desc.n_coupled > 1)
3386 regulator_balance_voltage(rdev, PM_SUSPEND_ON);
3387
3388 if (regulator->uA_load) {
3389 regulator->uA_load = 0;
3390 ret = drms_uA_update(rdev);
3391 }
3392
3393 if (rdev->use_count != 0 && rdev->supply)
3394 _regulator_disable(rdev->supply);
3395
3396 regulator_unlock_dependent(rdev, &ww_ctx);
3397
3398 return ret;
3399 }
3400 EXPORT_SYMBOL_GPL(regulator_force_disable);
3401
regulator_disable_work(struct work_struct * work)3402 static void regulator_disable_work(struct work_struct *work)
3403 {
3404 struct regulator_dev *rdev = container_of(work, struct regulator_dev,
3405 disable_work.work);
3406 struct ww_acquire_ctx ww_ctx;
3407 int count, i, ret;
3408 struct regulator *regulator;
3409 int total_count = 0;
3410
3411 regulator_lock_dependent(rdev, &ww_ctx);
3412
3413 /*
3414 * Workqueue functions queue the new work instance while the previous
3415 * work instance is being processed. Cancel the queued work instance
3416 * as the work instance under processing does the job of the queued
3417 * work instance.
3418 */
3419 cancel_delayed_work(&rdev->disable_work);
3420
3421 list_for_each_entry(regulator, &rdev->consumer_list, list) {
3422 count = regulator->deferred_disables;
3423
3424 if (!count)
3425 continue;
3426
3427 total_count += count;
3428 regulator->deferred_disables = 0;
3429
3430 for (i = 0; i < count; i++) {
3431 ret = _regulator_disable(regulator);
3432 if (ret != 0)
3433 rdev_err(rdev, "Deferred disable failed: %pe\n",
3434 ERR_PTR(ret));
3435 }
3436 }
3437 WARN_ON(!total_count);
3438
3439 if (rdev->coupling_desc.n_coupled > 1)
3440 regulator_balance_voltage(rdev, PM_SUSPEND_ON);
3441
3442 regulator_unlock_dependent(rdev, &ww_ctx);
3443 }
3444
3445 /**
3446 * regulator_disable_deferred - disable regulator output with delay
3447 * @regulator: regulator source
3448 * @ms: milliseconds until the regulator is disabled
3449 *
3450 * Execute regulator_disable() on the regulator after a delay. This
3451 * is intended for use with devices that require some time to quiesce.
3452 *
3453 * NOTE: this will only disable the regulator output if no other consumer
3454 * devices have it enabled, the regulator device supports disabling and
3455 * machine constraints permit this operation.
3456 *
3457 * Return: 0 on success or a negative error number on failure.
3458 */
regulator_disable_deferred(struct regulator * regulator,int ms)3459 int regulator_disable_deferred(struct regulator *regulator, int ms)
3460 {
3461 struct regulator_dev *rdev = regulator->rdev;
3462
3463 if (!ms)
3464 return regulator_disable(regulator);
3465
3466 regulator_lock(rdev);
3467 regulator->deferred_disables++;
3468 mod_delayed_work(system_power_efficient_wq, &rdev->disable_work,
3469 msecs_to_jiffies(ms));
3470 regulator_unlock(rdev);
3471
3472 return 0;
3473 }
3474 EXPORT_SYMBOL_GPL(regulator_disable_deferred);
3475
_regulator_is_enabled(struct regulator_dev * rdev)3476 static int _regulator_is_enabled(struct regulator_dev *rdev)
3477 {
3478 /* A GPIO control always takes precedence */
3479 if (rdev->ena_pin)
3480 return rdev->ena_gpio_state;
3481
3482 /* If we don't know then assume that the regulator is always on */
3483 if (!rdev->desc->ops->is_enabled)
3484 return 1;
3485
3486 return rdev->desc->ops->is_enabled(rdev);
3487 }
3488
_regulator_list_voltage(struct regulator_dev * rdev,unsigned selector,int lock)3489 static int _regulator_list_voltage(struct regulator_dev *rdev,
3490 unsigned selector, int lock)
3491 {
3492 const struct regulator_ops *ops = rdev->desc->ops;
3493 int ret;
3494
3495 if (rdev->desc->fixed_uV && rdev->desc->n_voltages == 1 && !selector)
3496 return rdev->desc->fixed_uV;
3497
3498 if (ops->list_voltage) {
3499 if (selector >= rdev->desc->n_voltages)
3500 return -EINVAL;
3501 if (selector < rdev->desc->linear_min_sel)
3502 return 0;
3503 if (lock)
3504 regulator_lock(rdev);
3505 ret = ops->list_voltage(rdev, selector);
3506 if (lock)
3507 regulator_unlock(rdev);
3508 } else if (rdev->is_switch && rdev->supply) {
3509 ret = _regulator_list_voltage(rdev->supply->rdev,
3510 selector, lock);
3511 } else {
3512 return -EINVAL;
3513 }
3514
3515 if (ret > 0) {
3516 if (ret < rdev->constraints->min_uV)
3517 ret = 0;
3518 else if (ret > rdev->constraints->max_uV)
3519 ret = 0;
3520 }
3521
3522 return ret;
3523 }
3524
3525 /**
3526 * regulator_is_enabled - is the regulator output enabled
3527 * @regulator: regulator source
3528 *
3529 * Note that the device backing this regulator handle can have multiple
3530 * users, so it might be enabled even if regulator_enable() was never
3531 * called for this particular source.
3532 *
3533 * Return: Positive if the regulator driver backing the source/client
3534 * has requested that the device be enabled, zero if it hasn't,
3535 * else a negative error number.
3536 */
regulator_is_enabled(struct regulator * regulator)3537 int regulator_is_enabled(struct regulator *regulator)
3538 {
3539 int ret;
3540
3541 if (regulator->always_on)
3542 return 1;
3543
3544 regulator_lock(regulator->rdev);
3545 ret = _regulator_is_enabled(regulator->rdev);
3546 regulator_unlock(regulator->rdev);
3547
3548 return ret;
3549 }
3550 EXPORT_SYMBOL_GPL(regulator_is_enabled);
3551
3552 /**
3553 * regulator_count_voltages - count regulator_list_voltage() selectors
3554 * @regulator: regulator source
3555 *
3556 * Return: Number of selectors for @regulator, or negative error number.
3557 *
3558 * Selectors are numbered starting at zero, and typically correspond to
3559 * bitfields in hardware registers.
3560 */
regulator_count_voltages(struct regulator * regulator)3561 int regulator_count_voltages(struct regulator *regulator)
3562 {
3563 struct regulator_dev *rdev = regulator->rdev;
3564
3565 if (rdev->desc->n_voltages)
3566 return rdev->desc->n_voltages;
3567
3568 if (!rdev->is_switch || !rdev->supply)
3569 return -EINVAL;
3570
3571 return regulator_count_voltages(rdev->supply);
3572 }
3573 EXPORT_SYMBOL_GPL(regulator_count_voltages);
3574
3575 /**
3576 * regulator_list_voltage - enumerate supported voltages
3577 * @regulator: regulator source
3578 * @selector: identify voltage to list
3579 * Context: can sleep
3580 *
3581 * Return: Voltage for @selector that can be passed to regulator_set_voltage(),
3582 * 0 if @selector can't be used on this system, or a negative error
3583 * number on failure.
3584 */
regulator_list_voltage(struct regulator * regulator,unsigned selector)3585 int regulator_list_voltage(struct regulator *regulator, unsigned selector)
3586 {
3587 return _regulator_list_voltage(regulator->rdev, selector, 1);
3588 }
3589 EXPORT_SYMBOL_GPL(regulator_list_voltage);
3590
3591 /**
3592 * regulator_get_regmap - get the regulator's register map
3593 * @regulator: regulator source
3594 *
3595 * Return: Pointer to the &struct regmap for @regulator, or ERR_PTR()
3596 * encoded -%EOPNOTSUPP if @regulator doesn't use regmap.
3597 */
regulator_get_regmap(struct regulator * regulator)3598 struct regmap *regulator_get_regmap(struct regulator *regulator)
3599 {
3600 struct regmap *map = regulator->rdev->regmap;
3601
3602 return map ? map : ERR_PTR(-EOPNOTSUPP);
3603 }
3604 EXPORT_SYMBOL_GPL(regulator_get_regmap);
3605
3606 /**
3607 * regulator_get_hardware_vsel_register - get the HW voltage selector register
3608 * @regulator: regulator source
3609 * @vsel_reg: voltage selector register, output parameter
3610 * @vsel_mask: mask for voltage selector bitfield, output parameter
3611 *
3612 * Returns the hardware register offset and bitmask used for setting the
3613 * regulator voltage. This might be useful when configuring voltage-scaling
3614 * hardware or firmware that can make I2C requests behind the kernel's back,
3615 * for example.
3616 *
3617 * Return: 0 on success, or -%EOPNOTSUPP if the regulator does not support
3618 * voltage selectors.
3619 *
3620 * On success, the output parameters @vsel_reg and @vsel_mask are filled in
3621 * and 0 is returned, otherwise a negative error number is returned.
3622 */
regulator_get_hardware_vsel_register(struct regulator * regulator,unsigned * vsel_reg,unsigned * vsel_mask)3623 int regulator_get_hardware_vsel_register(struct regulator *regulator,
3624 unsigned *vsel_reg,
3625 unsigned *vsel_mask)
3626 {
3627 struct regulator_dev *rdev = regulator->rdev;
3628 const struct regulator_ops *ops = rdev->desc->ops;
3629
3630 if (ops->set_voltage_sel != regulator_set_voltage_sel_regmap)
3631 return -EOPNOTSUPP;
3632
3633 *vsel_reg = rdev->desc->vsel_reg;
3634 *vsel_mask = rdev->desc->vsel_mask;
3635
3636 return 0;
3637 }
3638 EXPORT_SYMBOL_GPL(regulator_get_hardware_vsel_register);
3639
3640 /**
3641 * regulator_list_hardware_vsel - get the HW-specific register value for a selector
3642 * @regulator: regulator source
3643 * @selector: identify voltage to list
3644 *
3645 * Converts the selector to a hardware-specific voltage selector that can be
3646 * directly written to the regulator registers. The address of the voltage
3647 * register can be determined by calling @regulator_get_hardware_vsel_register.
3648 *
3649 * Return: 0 on success, -%EINVAL if the selector is outside the supported
3650 * range, or -%EOPNOTSUPP if the regulator does not support voltage
3651 * selectors.
3652 */
regulator_list_hardware_vsel(struct regulator * regulator,unsigned selector)3653 int regulator_list_hardware_vsel(struct regulator *regulator,
3654 unsigned selector)
3655 {
3656 struct regulator_dev *rdev = regulator->rdev;
3657 const struct regulator_ops *ops = rdev->desc->ops;
3658
3659 if (selector >= rdev->desc->n_voltages)
3660 return -EINVAL;
3661 if (selector < rdev->desc->linear_min_sel)
3662 return 0;
3663 if (ops->set_voltage_sel != regulator_set_voltage_sel_regmap)
3664 return -EOPNOTSUPP;
3665
3666 return selector;
3667 }
3668 EXPORT_SYMBOL_GPL(regulator_list_hardware_vsel);
3669
3670 /**
3671 * regulator_hardware_enable - access the HW for enable/disable regulator
3672 * @regulator: regulator source
3673 * @enable: true for enable, false for disable
3674 *
3675 * Request that the regulator be enabled/disabled with the regulator output at
3676 * the predefined voltage or current value.
3677 *
3678 * Return: 0 on success or a negative error number on failure.
3679 */
regulator_hardware_enable(struct regulator * regulator,bool enable)3680 int regulator_hardware_enable(struct regulator *regulator, bool enable)
3681 {
3682 struct regulator_dev *rdev = regulator->rdev;
3683 const struct regulator_ops *ops = rdev->desc->ops;
3684 int ret = -EOPNOTSUPP;
3685
3686 if (!rdev->exclusive || !ops || !ops->enable || !ops->disable)
3687 return ret;
3688
3689 if (enable)
3690 ret = ops->enable(rdev);
3691 else
3692 ret = ops->disable(rdev);
3693
3694 return ret;
3695 }
3696 EXPORT_SYMBOL_GPL(regulator_hardware_enable);
3697
3698 /**
3699 * regulator_get_linear_step - return the voltage step size between VSEL values
3700 * @regulator: regulator source
3701 *
3702 * Return: The voltage step size between VSEL values for linear regulators,
3703 * or 0 if the regulator isn't a linear regulator.
3704 */
regulator_get_linear_step(struct regulator * regulator)3705 unsigned int regulator_get_linear_step(struct regulator *regulator)
3706 {
3707 struct regulator_dev *rdev = regulator->rdev;
3708
3709 return rdev->desc->uV_step;
3710 }
3711 EXPORT_SYMBOL_GPL(regulator_get_linear_step);
3712
3713 /**
3714 * regulator_is_supported_voltage - check if a voltage range can be supported
3715 *
3716 * @regulator: Regulator to check.
3717 * @min_uV: Minimum required voltage in uV.
3718 * @max_uV: Maximum required voltage in uV.
3719 *
3720 * Return: 1 if the voltage range is supported, 0 if not, or a negative error
3721 * number if @regulator's voltage can't be changed and voltage readback
3722 * failed.
3723 */
regulator_is_supported_voltage(struct regulator * regulator,int min_uV,int max_uV)3724 int regulator_is_supported_voltage(struct regulator *regulator,
3725 int min_uV, int max_uV)
3726 {
3727 struct regulator_dev *rdev = regulator->rdev;
3728 int i, voltages, ret;
3729
3730 /* If we can't change voltage check the current voltage */
3731 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_VOLTAGE)) {
3732 ret = regulator_get_voltage(regulator);
3733 if (ret >= 0)
3734 return min_uV <= ret && ret <= max_uV;
3735 else
3736 return ret;
3737 }
3738
3739 /* Any voltage within constrains range is fine? */
3740 if (rdev->desc->continuous_voltage_range)
3741 return min_uV >= rdev->constraints->min_uV &&
3742 max_uV <= rdev->constraints->max_uV;
3743
3744 ret = regulator_count_voltages(regulator);
3745 if (ret < 0)
3746 return 0;
3747 voltages = ret;
3748
3749 for (i = 0; i < voltages; i++) {
3750 ret = regulator_list_voltage(regulator, i);
3751
3752 if (ret >= min_uV && ret <= max_uV)
3753 return 1;
3754 }
3755
3756 return 0;
3757 }
3758 EXPORT_SYMBOL_GPL(regulator_is_supported_voltage);
3759
regulator_map_voltage(struct regulator_dev * rdev,int min_uV,int max_uV)3760 static int regulator_map_voltage(struct regulator_dev *rdev, int min_uV,
3761 int max_uV)
3762 {
3763 const struct regulator_desc *desc = rdev->desc;
3764
3765 if (desc->ops->map_voltage)
3766 return desc->ops->map_voltage(rdev, min_uV, max_uV);
3767
3768 if (desc->ops->list_voltage == regulator_list_voltage_linear)
3769 return regulator_map_voltage_linear(rdev, min_uV, max_uV);
3770
3771 if (desc->ops->list_voltage == regulator_list_voltage_linear_range)
3772 return regulator_map_voltage_linear_range(rdev, min_uV, max_uV);
3773
3774 if (desc->ops->list_voltage ==
3775 regulator_list_voltage_pickable_linear_range)
3776 return regulator_map_voltage_pickable_linear_range(rdev,
3777 min_uV, max_uV);
3778
3779 return regulator_map_voltage_iterate(rdev, min_uV, max_uV);
3780 }
3781
_regulator_call_set_voltage(struct regulator_dev * rdev,int min_uV,int max_uV,unsigned * selector)3782 static int _regulator_call_set_voltage(struct regulator_dev *rdev,
3783 int min_uV, int max_uV,
3784 unsigned *selector)
3785 {
3786 struct pre_voltage_change_data data;
3787 int ret;
3788
3789 data.old_uV = regulator_get_voltage_rdev(rdev);
3790 data.min_uV = min_uV;
3791 data.max_uV = max_uV;
3792 ret = _notifier_call_chain(rdev, REGULATOR_EVENT_PRE_VOLTAGE_CHANGE,
3793 &data);
3794 if (ret & NOTIFY_STOP_MASK)
3795 return -EINVAL;
3796
3797 ret = rdev->desc->ops->set_voltage(rdev, min_uV, max_uV, selector);
3798 if (ret >= 0)
3799 return ret;
3800
3801 _notifier_call_chain(rdev, REGULATOR_EVENT_ABORT_VOLTAGE_CHANGE,
3802 (void *)data.old_uV);
3803
3804 return ret;
3805 }
3806
_regulator_call_set_voltage_sel(struct regulator_dev * rdev,int uV,unsigned selector)3807 static int _regulator_call_set_voltage_sel(struct regulator_dev *rdev,
3808 int uV, unsigned selector)
3809 {
3810 struct pre_voltage_change_data data;
3811 int ret;
3812
3813 data.old_uV = regulator_get_voltage_rdev(rdev);
3814 data.min_uV = uV;
3815 data.max_uV = uV;
3816 ret = _notifier_call_chain(rdev, REGULATOR_EVENT_PRE_VOLTAGE_CHANGE,
3817 &data);
3818 if (ret & NOTIFY_STOP_MASK)
3819 return -EINVAL;
3820
3821 ret = rdev->desc->ops->set_voltage_sel(rdev, selector);
3822 if (ret >= 0)
3823 return ret;
3824
3825 _notifier_call_chain(rdev, REGULATOR_EVENT_ABORT_VOLTAGE_CHANGE,
3826 (void *)data.old_uV);
3827
3828 return ret;
3829 }
3830
_regulator_set_voltage_sel_step(struct regulator_dev * rdev,int uV,int new_selector)3831 static int _regulator_set_voltage_sel_step(struct regulator_dev *rdev,
3832 int uV, int new_selector)
3833 {
3834 const struct regulator_ops *ops = rdev->desc->ops;
3835 int diff, old_sel, curr_sel, ret;
3836
3837 /* Stepping is only needed if the regulator is enabled. */
3838 if (!_regulator_is_enabled(rdev))
3839 goto final_set;
3840
3841 if (!ops->get_voltage_sel)
3842 return -EINVAL;
3843
3844 old_sel = ops->get_voltage_sel(rdev);
3845 if (old_sel < 0)
3846 return old_sel;
3847
3848 diff = new_selector - old_sel;
3849 if (diff == 0)
3850 return 0; /* No change needed. */
3851
3852 if (diff > 0) {
3853 /* Stepping up. */
3854 for (curr_sel = old_sel + rdev->desc->vsel_step;
3855 curr_sel < new_selector;
3856 curr_sel += rdev->desc->vsel_step) {
3857 /*
3858 * Call the callback directly instead of using
3859 * _regulator_call_set_voltage_sel() as we don't
3860 * want to notify anyone yet. Same in the branch
3861 * below.
3862 */
3863 ret = ops->set_voltage_sel(rdev, curr_sel);
3864 if (ret)
3865 goto try_revert;
3866 }
3867 } else {
3868 /* Stepping down. */
3869 for (curr_sel = old_sel - rdev->desc->vsel_step;
3870 curr_sel > new_selector;
3871 curr_sel -= rdev->desc->vsel_step) {
3872 ret = ops->set_voltage_sel(rdev, curr_sel);
3873 if (ret)
3874 goto try_revert;
3875 }
3876 }
3877
3878 final_set:
3879 /* The final selector will trigger the notifiers. */
3880 return _regulator_call_set_voltage_sel(rdev, uV, new_selector);
3881
3882 try_revert:
3883 /*
3884 * At least try to return to the previous voltage if setting a new
3885 * one failed.
3886 */
3887 (void)ops->set_voltage_sel(rdev, old_sel);
3888 return ret;
3889 }
3890
_regulator_set_voltage_time(struct regulator_dev * rdev,int old_uV,int new_uV)3891 static int _regulator_set_voltage_time(struct regulator_dev *rdev,
3892 int old_uV, int new_uV)
3893 {
3894 unsigned int ramp_delay = 0;
3895
3896 if (rdev->constraints->ramp_delay)
3897 ramp_delay = rdev->constraints->ramp_delay;
3898 else if (rdev->desc->ramp_delay)
3899 ramp_delay = rdev->desc->ramp_delay;
3900 else if (rdev->constraints->settling_time)
3901 return rdev->constraints->settling_time;
3902 else if (rdev->constraints->settling_time_up &&
3903 (new_uV > old_uV))
3904 return rdev->constraints->settling_time_up;
3905 else if (rdev->constraints->settling_time_down &&
3906 (new_uV < old_uV))
3907 return rdev->constraints->settling_time_down;
3908
3909 if (ramp_delay == 0)
3910 return 0;
3911
3912 return DIV_ROUND_UP(abs(new_uV - old_uV), ramp_delay);
3913 }
3914
_regulator_do_set_voltage(struct regulator_dev * rdev,int min_uV,int max_uV)3915 static int _regulator_do_set_voltage(struct regulator_dev *rdev,
3916 int min_uV, int max_uV)
3917 {
3918 int ret;
3919 int delay = 0;
3920 int best_val = 0;
3921 unsigned int selector;
3922 int old_selector = -1;
3923 const struct regulator_ops *ops = rdev->desc->ops;
3924 int old_uV = regulator_get_voltage_rdev(rdev);
3925
3926 trace_regulator_set_voltage(rdev_get_name(rdev), min_uV, max_uV);
3927
3928 min_uV += rdev->constraints->uV_offset;
3929 max_uV += rdev->constraints->uV_offset;
3930
3931 /*
3932 * If we can't obtain the old selector there is not enough
3933 * info to call set_voltage_time_sel().
3934 */
3935 if (_regulator_is_enabled(rdev) &&
3936 ops->set_voltage_time_sel && ops->get_voltage_sel) {
3937 old_selector = ops->get_voltage_sel(rdev);
3938 if (old_selector < 0)
3939 return old_selector;
3940 }
3941
3942 if (ops->set_voltage) {
3943 ret = _regulator_call_set_voltage(rdev, min_uV, max_uV,
3944 &selector);
3945
3946 if (ret >= 0) {
3947 if (ops->list_voltage)
3948 best_val = ops->list_voltage(rdev,
3949 selector);
3950 else
3951 best_val = regulator_get_voltage_rdev(rdev);
3952 }
3953
3954 } else if (ops->set_voltage_sel) {
3955 ret = regulator_map_voltage(rdev, min_uV, max_uV);
3956 if (ret >= 0) {
3957 best_val = ops->list_voltage(rdev, ret);
3958 if (min_uV <= best_val && max_uV >= best_val) {
3959 selector = ret;
3960 if (old_selector == selector)
3961 ret = 0;
3962 else if (rdev->desc->vsel_step)
3963 ret = _regulator_set_voltage_sel_step(
3964 rdev, best_val, selector);
3965 else
3966 ret = _regulator_call_set_voltage_sel(
3967 rdev, best_val, selector);
3968 } else {
3969 ret = -EINVAL;
3970 }
3971 }
3972 } else {
3973 ret = -EINVAL;
3974 }
3975
3976 if (ret)
3977 goto out;
3978
3979 if (ops->set_voltage_time_sel) {
3980 /*
3981 * Call set_voltage_time_sel if successfully obtained
3982 * old_selector
3983 */
3984 if (old_selector >= 0 && old_selector != selector)
3985 delay = ops->set_voltage_time_sel(rdev, old_selector,
3986 selector);
3987 } else {
3988 if (old_uV != best_val) {
3989 if (ops->set_voltage_time)
3990 delay = ops->set_voltage_time(rdev, old_uV,
3991 best_val);
3992 else
3993 delay = _regulator_set_voltage_time(rdev,
3994 old_uV,
3995 best_val);
3996 }
3997 }
3998
3999 if (delay < 0) {
4000 rdev_warn(rdev, "failed to get delay: %pe\n", ERR_PTR(delay));
4001 delay = 0;
4002 }
4003
4004 /* Insert any necessary delays */
4005 fsleep(delay);
4006
4007 if (best_val >= 0) {
4008 unsigned long data = best_val;
4009
4010 _notifier_call_chain(rdev, REGULATOR_EVENT_VOLTAGE_CHANGE,
4011 (void *)data);
4012 }
4013
4014 out:
4015 trace_regulator_set_voltage_complete(rdev_get_name(rdev), best_val);
4016
4017 return ret;
4018 }
4019
_regulator_do_set_suspend_voltage(struct regulator_dev * rdev,int min_uV,int max_uV,suspend_state_t state)4020 static int _regulator_do_set_suspend_voltage(struct regulator_dev *rdev,
4021 int min_uV, int max_uV, suspend_state_t state)
4022 {
4023 struct regulator_state *rstate;
4024 int uV, sel;
4025
4026 rstate = regulator_get_suspend_state(rdev, state);
4027 if (rstate == NULL)
4028 return -EINVAL;
4029
4030 if (min_uV < rstate->min_uV)
4031 min_uV = rstate->min_uV;
4032 if (max_uV > rstate->max_uV)
4033 max_uV = rstate->max_uV;
4034
4035 sel = regulator_map_voltage(rdev, min_uV, max_uV);
4036 if (sel < 0)
4037 return sel;
4038
4039 uV = rdev->desc->ops->list_voltage(rdev, sel);
4040 if (uV >= min_uV && uV <= max_uV)
4041 rstate->uV = uV;
4042
4043 return 0;
4044 }
4045
regulator_get_voltage_delta(struct regulator_dev * rdev,int uV)4046 static int regulator_get_voltage_delta(struct regulator_dev *rdev, int uV)
4047 {
4048 int current_uV = regulator_get_voltage_rdev(rdev);
4049
4050 if (current_uV < 0)
4051 return current_uV;
4052
4053 return abs(current_uV - uV);
4054 }
4055
regulator_set_voltage_unlocked(struct regulator * regulator,int min_uV,int max_uV,suspend_state_t state)4056 static int regulator_set_voltage_unlocked(struct regulator *regulator,
4057 int min_uV, int max_uV,
4058 suspend_state_t state)
4059 {
4060 struct regulator_dev *rdev = regulator->rdev;
4061 struct regulator_voltage *voltage = ®ulator->voltage[state];
4062 int ret = 0;
4063 int current_uV, delta, new_delta;
4064 int old_min_uV, old_max_uV;
4065
4066 /* If we're setting the same range as last time the change
4067 * should be a noop (some cpufreq implementations use the same
4068 * voltage for multiple frequencies, for example).
4069 */
4070 if (voltage->min_uV == min_uV && voltage->max_uV == max_uV)
4071 goto out;
4072
4073 /* If we're trying to set a range that overlaps the current voltage,
4074 * return successfully even though the regulator does not support
4075 * changing the voltage.
4076 */
4077 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_VOLTAGE)) {
4078 current_uV = regulator_get_voltage_rdev(rdev);
4079 if (min_uV <= current_uV && current_uV <= max_uV) {
4080 voltage->min_uV = min_uV;
4081 voltage->max_uV = max_uV;
4082 goto out;
4083 }
4084 }
4085
4086 /* sanity check */
4087 if (!rdev->desc->ops->set_voltage &&
4088 !rdev->desc->ops->set_voltage_sel) {
4089 ret = -EINVAL;
4090 goto out;
4091 }
4092
4093 /* constraints check */
4094 ret = regulator_check_voltage(rdev, &min_uV, &max_uV);
4095 if (ret < 0)
4096 goto out;
4097
4098 /* restore original values in case of error */
4099 old_min_uV = voltage->min_uV;
4100 old_max_uV = voltage->max_uV;
4101 voltage->min_uV = min_uV;
4102 voltage->max_uV = max_uV;
4103
4104 /* for not coupled regulators this will just set the voltage */
4105 ret = regulator_balance_voltage(rdev, state);
4106 if (ret < 0) {
4107 voltage->min_uV = old_min_uV;
4108 voltage->max_uV = old_max_uV;
4109 }
4110
4111 if (rdev->constraints->max_uV_step > 0) {
4112 /* For regulators with a maximum voltage step, reaching the desired
4113 * voltage might take a few retries.
4114 */
4115 ret = regulator_get_voltage_delta(rdev, min_uV);
4116 if (ret < 0)
4117 goto out;
4118
4119 delta = ret;
4120
4121 while (delta > 0) {
4122 ret = regulator_balance_voltage(rdev, state);
4123 if (ret < 0)
4124 goto out;
4125
4126 ret = regulator_get_voltage_delta(rdev, min_uV);
4127 if (ret < 0)
4128 goto out;
4129
4130 new_delta = ret;
4131
4132 /* check that voltage is converging quickly enough */
4133 if (delta - new_delta < rdev->constraints->max_uV_step) {
4134 ret = -EWOULDBLOCK;
4135 goto out;
4136 }
4137
4138 delta = new_delta;
4139 }
4140 }
4141
4142 out:
4143 return ret;
4144 }
4145
regulator_set_voltage_rdev(struct regulator_dev * rdev,int min_uV,int max_uV,suspend_state_t state)4146 int regulator_set_voltage_rdev(struct regulator_dev *rdev, int min_uV,
4147 int max_uV, suspend_state_t state)
4148 {
4149 int best_supply_uV = 0;
4150 int supply_change_uV = 0;
4151 int ret;
4152
4153 if (rdev->supply &&
4154 regulator_ops_is_valid(rdev->supply->rdev,
4155 REGULATOR_CHANGE_VOLTAGE) &&
4156 (rdev->desc->min_dropout_uV || !(rdev->desc->ops->get_voltage ||
4157 rdev->desc->ops->get_voltage_sel))) {
4158 int current_supply_uV;
4159 int selector;
4160
4161 selector = regulator_map_voltage(rdev, min_uV, max_uV);
4162 if (selector < 0) {
4163 ret = selector;
4164 goto out;
4165 }
4166
4167 best_supply_uV = _regulator_list_voltage(rdev, selector, 0);
4168 if (best_supply_uV < 0) {
4169 ret = best_supply_uV;
4170 goto out;
4171 }
4172
4173 best_supply_uV += rdev->desc->min_dropout_uV;
4174
4175 current_supply_uV = regulator_get_voltage_rdev(rdev->supply->rdev);
4176 if (current_supply_uV < 0) {
4177 ret = current_supply_uV;
4178 goto out;
4179 }
4180
4181 supply_change_uV = best_supply_uV - current_supply_uV;
4182 }
4183
4184 if (supply_change_uV > 0) {
4185 ret = regulator_set_voltage_unlocked(rdev->supply,
4186 best_supply_uV, INT_MAX, state);
4187 if (ret) {
4188 dev_err(&rdev->dev, "Failed to increase supply voltage: %pe\n",
4189 ERR_PTR(ret));
4190 goto out;
4191 }
4192 }
4193
4194 if (state == PM_SUSPEND_ON)
4195 ret = _regulator_do_set_voltage(rdev, min_uV, max_uV);
4196 else
4197 ret = _regulator_do_set_suspend_voltage(rdev, min_uV,
4198 max_uV, state);
4199 if (ret < 0)
4200 goto out;
4201
4202 if (supply_change_uV < 0) {
4203 ret = regulator_set_voltage_unlocked(rdev->supply,
4204 best_supply_uV, INT_MAX, state);
4205 if (ret)
4206 dev_warn(&rdev->dev, "Failed to decrease supply voltage: %pe\n",
4207 ERR_PTR(ret));
4208 /* No need to fail here */
4209 ret = 0;
4210 }
4211
4212 out:
4213 return ret;
4214 }
4215 EXPORT_SYMBOL_GPL(regulator_set_voltage_rdev);
4216
regulator_limit_voltage_step(struct regulator_dev * rdev,int * current_uV,int * min_uV)4217 static int regulator_limit_voltage_step(struct regulator_dev *rdev,
4218 int *current_uV, int *min_uV)
4219 {
4220 struct regulation_constraints *constraints = rdev->constraints;
4221
4222 /* Limit voltage change only if necessary */
4223 if (!constraints->max_uV_step || !_regulator_is_enabled(rdev))
4224 return 1;
4225
4226 if (*current_uV < 0) {
4227 *current_uV = regulator_get_voltage_rdev(rdev);
4228
4229 if (*current_uV < 0)
4230 return *current_uV;
4231 }
4232
4233 if (abs(*current_uV - *min_uV) <= constraints->max_uV_step)
4234 return 1;
4235
4236 /* Clamp target voltage within the given step */
4237 if (*current_uV < *min_uV)
4238 *min_uV = min(*current_uV + constraints->max_uV_step,
4239 *min_uV);
4240 else
4241 *min_uV = max(*current_uV - constraints->max_uV_step,
4242 *min_uV);
4243
4244 return 0;
4245 }
4246
regulator_get_optimal_voltage(struct regulator_dev * rdev,int * current_uV,int * min_uV,int * max_uV,suspend_state_t state,int n_coupled)4247 static int regulator_get_optimal_voltage(struct regulator_dev *rdev,
4248 int *current_uV,
4249 int *min_uV, int *max_uV,
4250 suspend_state_t state,
4251 int n_coupled)
4252 {
4253 struct coupling_desc *c_desc = &rdev->coupling_desc;
4254 struct regulator_dev **c_rdevs = c_desc->coupled_rdevs;
4255 struct regulation_constraints *constraints = rdev->constraints;
4256 int desired_min_uV = 0, desired_max_uV = INT_MAX;
4257 int max_current_uV = 0, min_current_uV = INT_MAX;
4258 int highest_min_uV = 0, target_uV, possible_uV;
4259 int i, ret, max_spread;
4260 bool done;
4261
4262 *current_uV = -1;
4263
4264 /*
4265 * If there are no coupled regulators, simply set the voltage
4266 * demanded by consumers.
4267 */
4268 if (n_coupled == 1) {
4269 /*
4270 * If consumers don't provide any demands, set voltage
4271 * to min_uV
4272 */
4273 desired_min_uV = constraints->min_uV;
4274 desired_max_uV = constraints->max_uV;
4275
4276 ret = regulator_check_consumers(rdev,
4277 &desired_min_uV,
4278 &desired_max_uV, state);
4279 if (ret < 0)
4280 return ret;
4281
4282 done = true;
4283
4284 goto finish;
4285 }
4286
4287 /* Find highest min desired voltage */
4288 for (i = 0; i < n_coupled; i++) {
4289 int tmp_min = 0;
4290 int tmp_max = INT_MAX;
4291
4292 lockdep_assert_held_once(&c_rdevs[i]->mutex.base);
4293
4294 ret = regulator_check_consumers(c_rdevs[i],
4295 &tmp_min,
4296 &tmp_max, state);
4297 if (ret < 0)
4298 return ret;
4299
4300 ret = regulator_check_voltage(c_rdevs[i], &tmp_min, &tmp_max);
4301 if (ret < 0)
4302 return ret;
4303
4304 highest_min_uV = max(highest_min_uV, tmp_min);
4305
4306 if (i == 0) {
4307 desired_min_uV = tmp_min;
4308 desired_max_uV = tmp_max;
4309 }
4310 }
4311
4312 max_spread = constraints->max_spread[0];
4313
4314 /*
4315 * Let target_uV be equal to the desired one if possible.
4316 * If not, set it to minimum voltage, allowed by other coupled
4317 * regulators.
4318 */
4319 target_uV = max(desired_min_uV, highest_min_uV - max_spread);
4320
4321 /*
4322 * Find min and max voltages, which currently aren't violating
4323 * max_spread.
4324 */
4325 for (i = 1; i < n_coupled; i++) {
4326 int tmp_act;
4327
4328 if (!_regulator_is_enabled(c_rdevs[i]))
4329 continue;
4330
4331 tmp_act = regulator_get_voltage_rdev(c_rdevs[i]);
4332 if (tmp_act < 0)
4333 return tmp_act;
4334
4335 min_current_uV = min(tmp_act, min_current_uV);
4336 max_current_uV = max(tmp_act, max_current_uV);
4337 }
4338
4339 /* There aren't any other regulators enabled */
4340 if (max_current_uV == 0) {
4341 possible_uV = target_uV;
4342 } else {
4343 /*
4344 * Correct target voltage, so as it currently isn't
4345 * violating max_spread
4346 */
4347 possible_uV = max(target_uV, max_current_uV - max_spread);
4348 possible_uV = min(possible_uV, min_current_uV + max_spread);
4349 }
4350
4351 if (possible_uV > desired_max_uV)
4352 return -EINVAL;
4353
4354 done = (possible_uV == target_uV);
4355 desired_min_uV = possible_uV;
4356
4357 finish:
4358 /* Apply max_uV_step constraint if necessary */
4359 if (state == PM_SUSPEND_ON) {
4360 ret = regulator_limit_voltage_step(rdev, current_uV,
4361 &desired_min_uV);
4362 if (ret < 0)
4363 return ret;
4364
4365 if (ret == 0)
4366 done = false;
4367 }
4368
4369 /* Set current_uV if wasn't done earlier in the code and if necessary */
4370 if (n_coupled > 1 && *current_uV == -1) {
4371
4372 if (_regulator_is_enabled(rdev)) {
4373 ret = regulator_get_voltage_rdev(rdev);
4374 if (ret < 0)
4375 return ret;
4376
4377 *current_uV = ret;
4378 } else {
4379 *current_uV = desired_min_uV;
4380 }
4381 }
4382
4383 *min_uV = desired_min_uV;
4384 *max_uV = desired_max_uV;
4385
4386 return done;
4387 }
4388
regulator_do_balance_voltage(struct regulator_dev * rdev,suspend_state_t state,bool skip_coupled)4389 int regulator_do_balance_voltage(struct regulator_dev *rdev,
4390 suspend_state_t state, bool skip_coupled)
4391 {
4392 struct regulator_dev **c_rdevs;
4393 struct regulator_dev *best_rdev;
4394 struct coupling_desc *c_desc = &rdev->coupling_desc;
4395 int i, ret, n_coupled, best_min_uV, best_max_uV, best_c_rdev;
4396 unsigned int delta, best_delta;
4397 unsigned long c_rdev_done = 0;
4398 bool best_c_rdev_done;
4399
4400 c_rdevs = c_desc->coupled_rdevs;
4401 n_coupled = skip_coupled ? 1 : c_desc->n_coupled;
4402
4403 /*
4404 * Find the best possible voltage change on each loop. Leave the loop
4405 * if there isn't any possible change.
4406 */
4407 do {
4408 best_c_rdev_done = false;
4409 best_delta = 0;
4410 best_min_uV = 0;
4411 best_max_uV = 0;
4412 best_c_rdev = 0;
4413 best_rdev = NULL;
4414
4415 /*
4416 * Find highest difference between optimal voltage
4417 * and current voltage.
4418 */
4419 for (i = 0; i < n_coupled; i++) {
4420 /*
4421 * optimal_uV is the best voltage that can be set for
4422 * i-th regulator at the moment without violating
4423 * max_spread constraint in order to balance
4424 * the coupled voltages.
4425 */
4426 int optimal_uV = 0, optimal_max_uV = 0, current_uV = 0;
4427
4428 if (test_bit(i, &c_rdev_done))
4429 continue;
4430
4431 ret = regulator_get_optimal_voltage(c_rdevs[i],
4432 ¤t_uV,
4433 &optimal_uV,
4434 &optimal_max_uV,
4435 state, n_coupled);
4436 if (ret < 0)
4437 goto out;
4438
4439 delta = abs(optimal_uV - current_uV);
4440
4441 if (delta && best_delta <= delta) {
4442 best_c_rdev_done = ret;
4443 best_delta = delta;
4444 best_rdev = c_rdevs[i];
4445 best_min_uV = optimal_uV;
4446 best_max_uV = optimal_max_uV;
4447 best_c_rdev = i;
4448 }
4449 }
4450
4451 /* Nothing to change, return successfully */
4452 if (!best_rdev) {
4453 ret = 0;
4454 goto out;
4455 }
4456
4457 ret = regulator_set_voltage_rdev(best_rdev, best_min_uV,
4458 best_max_uV, state);
4459
4460 if (ret < 0)
4461 goto out;
4462
4463 if (best_c_rdev_done)
4464 set_bit(best_c_rdev, &c_rdev_done);
4465
4466 } while (n_coupled > 1);
4467
4468 out:
4469 return ret;
4470 }
4471
regulator_balance_voltage(struct regulator_dev * rdev,suspend_state_t state)4472 static int regulator_balance_voltage(struct regulator_dev *rdev,
4473 suspend_state_t state)
4474 {
4475 struct coupling_desc *c_desc = &rdev->coupling_desc;
4476 struct regulator_coupler *coupler = c_desc->coupler;
4477 bool skip_coupled = false;
4478
4479 /*
4480 * If system is in a state other than PM_SUSPEND_ON, don't check
4481 * other coupled regulators.
4482 */
4483 if (state != PM_SUSPEND_ON)
4484 skip_coupled = true;
4485
4486 if (c_desc->n_resolved < c_desc->n_coupled) {
4487 rdev_err(rdev, "Not all coupled regulators registered\n");
4488 return -EPERM;
4489 }
4490
4491 /* Invoke custom balancer for customized couplers */
4492 if (coupler && coupler->balance_voltage)
4493 return coupler->balance_voltage(coupler, rdev, state);
4494
4495 return regulator_do_balance_voltage(rdev, state, skip_coupled);
4496 }
4497
4498 /**
4499 * regulator_set_voltage - set regulator output voltage
4500 * @regulator: regulator source
4501 * @min_uV: Minimum required voltage in uV
4502 * @max_uV: Maximum acceptable voltage in uV
4503 *
4504 * Sets a voltage regulator to the desired output voltage. This can be set
4505 * during any regulator state. IOW, regulator can be disabled or enabled.
4506 *
4507 * If the regulator is enabled then the voltage will change to the new value
4508 * immediately otherwise if the regulator is disabled the regulator will
4509 * output at the new voltage when enabled.
4510 *
4511 * NOTE: If the regulator is shared between several devices then the lowest
4512 * request voltage that meets the system constraints will be used.
4513 * Regulator system constraints must be set for this regulator before
4514 * calling this function otherwise this call will fail.
4515 *
4516 * Return: 0 on success or a negative error number on failure.
4517 */
regulator_set_voltage(struct regulator * regulator,int min_uV,int max_uV)4518 int regulator_set_voltage(struct regulator *regulator, int min_uV, int max_uV)
4519 {
4520 struct ww_acquire_ctx ww_ctx;
4521 int ret;
4522
4523 regulator_lock_dependent(regulator->rdev, &ww_ctx);
4524
4525 ret = regulator_set_voltage_unlocked(regulator, min_uV, max_uV,
4526 PM_SUSPEND_ON);
4527
4528 regulator_unlock_dependent(regulator->rdev, &ww_ctx);
4529
4530 return ret;
4531 }
4532 EXPORT_SYMBOL_GPL(regulator_set_voltage);
4533
regulator_suspend_toggle(struct regulator_dev * rdev,suspend_state_t state,bool en)4534 static inline int regulator_suspend_toggle(struct regulator_dev *rdev,
4535 suspend_state_t state, bool en)
4536 {
4537 struct regulator_state *rstate;
4538
4539 rstate = regulator_get_suspend_state(rdev, state);
4540 if (rstate == NULL)
4541 return -EINVAL;
4542
4543 if (!rstate->changeable)
4544 return -EPERM;
4545
4546 rstate->enabled = (en) ? ENABLE_IN_SUSPEND : DISABLE_IN_SUSPEND;
4547
4548 return 0;
4549 }
4550
regulator_suspend_enable(struct regulator_dev * rdev,suspend_state_t state)4551 int regulator_suspend_enable(struct regulator_dev *rdev,
4552 suspend_state_t state)
4553 {
4554 return regulator_suspend_toggle(rdev, state, true);
4555 }
4556 EXPORT_SYMBOL_GPL(regulator_suspend_enable);
4557
regulator_suspend_disable(struct regulator_dev * rdev,suspend_state_t state)4558 int regulator_suspend_disable(struct regulator_dev *rdev,
4559 suspend_state_t state)
4560 {
4561 struct regulator *regulator;
4562 struct regulator_voltage *voltage;
4563
4564 /*
4565 * if any consumer wants this regulator device keeping on in
4566 * suspend states, don't set it as disabled.
4567 */
4568 list_for_each_entry(regulator, &rdev->consumer_list, list) {
4569 voltage = ®ulator->voltage[state];
4570 if (voltage->min_uV || voltage->max_uV)
4571 return 0;
4572 }
4573
4574 return regulator_suspend_toggle(rdev, state, false);
4575 }
4576 EXPORT_SYMBOL_GPL(regulator_suspend_disable);
4577
_regulator_set_suspend_voltage(struct regulator * regulator,int min_uV,int max_uV,suspend_state_t state)4578 static int _regulator_set_suspend_voltage(struct regulator *regulator,
4579 int min_uV, int max_uV,
4580 suspend_state_t state)
4581 {
4582 struct regulator_dev *rdev = regulator->rdev;
4583 struct regulator_state *rstate;
4584
4585 rstate = regulator_get_suspend_state(rdev, state);
4586 if (rstate == NULL)
4587 return -EINVAL;
4588
4589 if (rstate->min_uV == rstate->max_uV) {
4590 rdev_err(rdev, "The suspend voltage can't be changed!\n");
4591 return -EPERM;
4592 }
4593
4594 return regulator_set_voltage_unlocked(regulator, min_uV, max_uV, state);
4595 }
4596
regulator_set_suspend_voltage(struct regulator * regulator,int min_uV,int max_uV,suspend_state_t state)4597 int regulator_set_suspend_voltage(struct regulator *regulator, int min_uV,
4598 int max_uV, suspend_state_t state)
4599 {
4600 struct ww_acquire_ctx ww_ctx;
4601 int ret;
4602
4603 /* PM_SUSPEND_ON is handled by regulator_set_voltage() */
4604 if (regulator_check_states(state) || state == PM_SUSPEND_ON)
4605 return -EINVAL;
4606
4607 regulator_lock_dependent(regulator->rdev, &ww_ctx);
4608
4609 ret = _regulator_set_suspend_voltage(regulator, min_uV,
4610 max_uV, state);
4611
4612 regulator_unlock_dependent(regulator->rdev, &ww_ctx);
4613
4614 return ret;
4615 }
4616 EXPORT_SYMBOL_GPL(regulator_set_suspend_voltage);
4617
4618 /**
4619 * regulator_set_voltage_time - get raise/fall time
4620 * @regulator: regulator source
4621 * @old_uV: starting voltage in microvolts
4622 * @new_uV: target voltage in microvolts
4623 *
4624 * Provided with the starting and ending voltage, this function attempts to
4625 * calculate the time in microseconds required to rise or fall to this new
4626 * voltage.
4627 *
4628 * Return: ramp time in microseconds, or a negative error number if calculation failed.
4629 */
regulator_set_voltage_time(struct regulator * regulator,int old_uV,int new_uV)4630 int regulator_set_voltage_time(struct regulator *regulator,
4631 int old_uV, int new_uV)
4632 {
4633 struct regulator_dev *rdev = regulator->rdev;
4634 const struct regulator_ops *ops = rdev->desc->ops;
4635 int old_sel = -1;
4636 int new_sel = -1;
4637 int voltage;
4638 int i;
4639
4640 if (ops->set_voltage_time)
4641 return ops->set_voltage_time(rdev, old_uV, new_uV);
4642 else if (!ops->set_voltage_time_sel)
4643 return _regulator_set_voltage_time(rdev, old_uV, new_uV);
4644
4645 /* Currently requires operations to do this */
4646 if (!ops->list_voltage || !rdev->desc->n_voltages)
4647 return -EINVAL;
4648
4649 for (i = 0; i < rdev->desc->n_voltages; i++) {
4650 /* We only look for exact voltage matches here */
4651 if (i < rdev->desc->linear_min_sel)
4652 continue;
4653
4654 if (old_sel >= 0 && new_sel >= 0)
4655 break;
4656
4657 voltage = regulator_list_voltage(regulator, i);
4658 if (voltage < 0)
4659 return -EINVAL;
4660 if (voltage == 0)
4661 continue;
4662 if (voltage == old_uV)
4663 old_sel = i;
4664 if (voltage == new_uV)
4665 new_sel = i;
4666 }
4667
4668 if (old_sel < 0 || new_sel < 0)
4669 return -EINVAL;
4670
4671 return ops->set_voltage_time_sel(rdev, old_sel, new_sel);
4672 }
4673 EXPORT_SYMBOL_GPL(regulator_set_voltage_time);
4674
4675 /**
4676 * regulator_set_voltage_time_sel - get raise/fall time
4677 * @rdev: regulator source device
4678 * @old_selector: selector for starting voltage
4679 * @new_selector: selector for target voltage
4680 *
4681 * Provided with the starting and target voltage selectors, this function
4682 * returns time in microseconds required to rise or fall to this new voltage
4683 *
4684 * Drivers providing ramp_delay in regulation_constraints can use this as their
4685 * set_voltage_time_sel() operation.
4686 *
4687 * Return: ramp time in microseconds, or a negative error number if calculation failed.
4688 */
regulator_set_voltage_time_sel(struct regulator_dev * rdev,unsigned int old_selector,unsigned int new_selector)4689 int regulator_set_voltage_time_sel(struct regulator_dev *rdev,
4690 unsigned int old_selector,
4691 unsigned int new_selector)
4692 {
4693 int old_volt, new_volt;
4694
4695 /* sanity check */
4696 if (!rdev->desc->ops->list_voltage)
4697 return -EINVAL;
4698
4699 old_volt = rdev->desc->ops->list_voltage(rdev, old_selector);
4700 new_volt = rdev->desc->ops->list_voltage(rdev, new_selector);
4701
4702 if (rdev->desc->ops->set_voltage_time)
4703 return rdev->desc->ops->set_voltage_time(rdev, old_volt,
4704 new_volt);
4705 else
4706 return _regulator_set_voltage_time(rdev, old_volt, new_volt);
4707 }
4708 EXPORT_SYMBOL_GPL(regulator_set_voltage_time_sel);
4709
regulator_sync_voltage_rdev(struct regulator_dev * rdev)4710 int regulator_sync_voltage_rdev(struct regulator_dev *rdev)
4711 {
4712 int ret;
4713
4714 regulator_lock(rdev);
4715
4716 if (!rdev->desc->ops->set_voltage &&
4717 !rdev->desc->ops->set_voltage_sel) {
4718 ret = -EINVAL;
4719 goto out;
4720 }
4721
4722 /* balance only, if regulator is coupled */
4723 if (rdev->coupling_desc.n_coupled > 1)
4724 ret = regulator_balance_voltage(rdev, PM_SUSPEND_ON);
4725 else
4726 ret = -EOPNOTSUPP;
4727
4728 out:
4729 regulator_unlock(rdev);
4730 return ret;
4731 }
4732
4733 /**
4734 * regulator_sync_voltage - re-apply last regulator output voltage
4735 * @regulator: regulator source
4736 *
4737 * Re-apply the last configured voltage. This is intended to be used
4738 * where some external control source the consumer is cooperating with
4739 * has caused the configured voltage to change.
4740 *
4741 * Return: 0 on success or a negative error number on failure.
4742 */
regulator_sync_voltage(struct regulator * regulator)4743 int regulator_sync_voltage(struct regulator *regulator)
4744 {
4745 struct regulator_dev *rdev = regulator->rdev;
4746 struct regulator_voltage *voltage = ®ulator->voltage[PM_SUSPEND_ON];
4747 int ret, min_uV, max_uV;
4748
4749 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_VOLTAGE))
4750 return 0;
4751
4752 regulator_lock(rdev);
4753
4754 if (!rdev->desc->ops->set_voltage &&
4755 !rdev->desc->ops->set_voltage_sel) {
4756 ret = -EINVAL;
4757 goto out;
4758 }
4759
4760 /* This is only going to work if we've had a voltage configured. */
4761 if (!voltage->min_uV && !voltage->max_uV) {
4762 ret = -EINVAL;
4763 goto out;
4764 }
4765
4766 min_uV = voltage->min_uV;
4767 max_uV = voltage->max_uV;
4768
4769 /* This should be a paranoia check... */
4770 ret = regulator_check_voltage(rdev, &min_uV, &max_uV);
4771 if (ret < 0)
4772 goto out;
4773
4774 ret = regulator_check_consumers(rdev, &min_uV, &max_uV, 0);
4775 if (ret < 0)
4776 goto out;
4777
4778 /* balance only, if regulator is coupled */
4779 if (rdev->coupling_desc.n_coupled > 1)
4780 ret = regulator_balance_voltage(rdev, PM_SUSPEND_ON);
4781 else
4782 ret = _regulator_do_set_voltage(rdev, min_uV, max_uV);
4783
4784 out:
4785 regulator_unlock(rdev);
4786 return ret;
4787 }
4788 EXPORT_SYMBOL_GPL(regulator_sync_voltage);
4789
regulator_get_voltage_rdev(struct regulator_dev * rdev)4790 int regulator_get_voltage_rdev(struct regulator_dev *rdev)
4791 {
4792 int sel, ret;
4793 bool bypassed;
4794
4795 if (rdev->desc->ops->get_bypass) {
4796 ret = rdev->desc->ops->get_bypass(rdev, &bypassed);
4797 if (ret < 0)
4798 return ret;
4799 if (bypassed) {
4800 /* if bypassed the regulator must have a supply */
4801 if (!rdev->supply) {
4802 rdev_err(rdev,
4803 "bypassed regulator has no supply!\n");
4804 return -EPROBE_DEFER;
4805 }
4806
4807 return regulator_get_voltage_rdev(rdev->supply->rdev);
4808 }
4809 }
4810
4811 if (rdev->desc->ops->get_voltage_sel) {
4812 sel = rdev->desc->ops->get_voltage_sel(rdev);
4813 if (sel < 0)
4814 return sel;
4815 ret = rdev->desc->ops->list_voltage(rdev, sel);
4816 } else if (rdev->desc->ops->get_voltage) {
4817 ret = rdev->desc->ops->get_voltage(rdev);
4818 } else if (rdev->desc->ops->list_voltage) {
4819 ret = rdev->desc->ops->list_voltage(rdev, 0);
4820 } else if (rdev->desc->fixed_uV && (rdev->desc->n_voltages == 1)) {
4821 ret = rdev->desc->fixed_uV;
4822 } else if (rdev->supply) {
4823 ret = regulator_get_voltage_rdev(rdev->supply->rdev);
4824 } else if (rdev->supply_name) {
4825 return -EPROBE_DEFER;
4826 } else {
4827 return -EINVAL;
4828 }
4829
4830 if (ret < 0)
4831 return ret;
4832 return ret - rdev->constraints->uV_offset;
4833 }
4834 EXPORT_SYMBOL_GPL(regulator_get_voltage_rdev);
4835
4836 /**
4837 * regulator_get_voltage - get regulator output voltage
4838 * @regulator: regulator source
4839 *
4840 * Return: Current regulator voltage in uV, or a negative error number on failure.
4841 *
4842 * NOTE: If the regulator is disabled it will return the voltage value. This
4843 * function should not be used to determine regulator state.
4844 */
regulator_get_voltage(struct regulator * regulator)4845 int regulator_get_voltage(struct regulator *regulator)
4846 {
4847 struct ww_acquire_ctx ww_ctx;
4848 int ret;
4849
4850 regulator_lock_dependent(regulator->rdev, &ww_ctx);
4851 ret = regulator_get_voltage_rdev(regulator->rdev);
4852 regulator_unlock_dependent(regulator->rdev, &ww_ctx);
4853
4854 return ret;
4855 }
4856 EXPORT_SYMBOL_GPL(regulator_get_voltage);
4857
4858 /**
4859 * regulator_set_current_limit - set regulator output current limit
4860 * @regulator: regulator source
4861 * @min_uA: Minimum supported current in uA
4862 * @max_uA: Maximum supported current in uA
4863 *
4864 * Sets current sink to the desired output current. This can be set during
4865 * any regulator state. IOW, regulator can be disabled or enabled.
4866 *
4867 * If the regulator is enabled then the current will change to the new value
4868 * immediately otherwise if the regulator is disabled the regulator will
4869 * output at the new current when enabled.
4870 *
4871 * NOTE: Regulator system constraints must be set for this regulator before
4872 * calling this function otherwise this call will fail.
4873 *
4874 * Return: 0 on success or a negative error number on failure.
4875 */
regulator_set_current_limit(struct regulator * regulator,int min_uA,int max_uA)4876 int regulator_set_current_limit(struct regulator *regulator,
4877 int min_uA, int max_uA)
4878 {
4879 struct regulator_dev *rdev = regulator->rdev;
4880 int ret;
4881
4882 regulator_lock(rdev);
4883
4884 /* sanity check */
4885 if (!rdev->desc->ops->set_current_limit) {
4886 ret = -EINVAL;
4887 goto out;
4888 }
4889
4890 /* constraints check */
4891 ret = regulator_check_current_limit(rdev, &min_uA, &max_uA);
4892 if (ret < 0)
4893 goto out;
4894
4895 ret = rdev->desc->ops->set_current_limit(rdev, min_uA, max_uA);
4896 out:
4897 regulator_unlock(rdev);
4898 return ret;
4899 }
4900 EXPORT_SYMBOL_GPL(regulator_set_current_limit);
4901
_regulator_get_current_limit_unlocked(struct regulator_dev * rdev)4902 static int _regulator_get_current_limit_unlocked(struct regulator_dev *rdev)
4903 {
4904 /* sanity check */
4905 if (!rdev->desc->ops->get_current_limit)
4906 return -EINVAL;
4907
4908 return rdev->desc->ops->get_current_limit(rdev);
4909 }
4910
_regulator_get_current_limit(struct regulator_dev * rdev)4911 static int _regulator_get_current_limit(struct regulator_dev *rdev)
4912 {
4913 int ret;
4914
4915 regulator_lock(rdev);
4916 ret = _regulator_get_current_limit_unlocked(rdev);
4917 regulator_unlock(rdev);
4918
4919 return ret;
4920 }
4921
4922 /**
4923 * regulator_get_current_limit - get regulator output current
4924 * @regulator: regulator source
4925 *
4926 * Return: Current supplied by the specified current sink in uA,
4927 * or a negative error number on failure.
4928 *
4929 * NOTE: If the regulator is disabled it will return the current value. This
4930 * function should not be used to determine regulator state.
4931 */
regulator_get_current_limit(struct regulator * regulator)4932 int regulator_get_current_limit(struct regulator *regulator)
4933 {
4934 return _regulator_get_current_limit(regulator->rdev);
4935 }
4936 EXPORT_SYMBOL_GPL(regulator_get_current_limit);
4937
4938 /**
4939 * regulator_get_unclaimed_power_budget - get regulator unclaimed power budget
4940 * @regulator: regulator source
4941 *
4942 * Return: Unclaimed power budget of the regulator in mW.
4943 */
regulator_get_unclaimed_power_budget(struct regulator * regulator)4944 int regulator_get_unclaimed_power_budget(struct regulator *regulator)
4945 {
4946 return regulator->rdev->constraints->pw_budget_mW -
4947 regulator->rdev->pw_requested_mW;
4948 }
4949 EXPORT_SYMBOL_GPL(regulator_get_unclaimed_power_budget);
4950
4951 /**
4952 * regulator_request_power_budget - request power budget on a regulator
4953 * @regulator: regulator source
4954 * @pw_req: Power requested
4955 *
4956 * Return: 0 on success or a negative error number on failure.
4957 */
regulator_request_power_budget(struct regulator * regulator,unsigned int pw_req)4958 int regulator_request_power_budget(struct regulator *regulator,
4959 unsigned int pw_req)
4960 {
4961 struct regulator_dev *rdev = regulator->rdev;
4962 int ret = 0, pw_tot_req;
4963
4964 regulator_lock(rdev);
4965 if (rdev->supply) {
4966 ret = regulator_request_power_budget(rdev->supply, pw_req);
4967 if (ret < 0)
4968 goto out;
4969 }
4970
4971 pw_tot_req = rdev->pw_requested_mW + pw_req;
4972 if (pw_tot_req > rdev->constraints->pw_budget_mW) {
4973 rdev_warn(rdev, "power requested %d mW out of budget %d mW",
4974 pw_req,
4975 rdev->constraints->pw_budget_mW - rdev->pw_requested_mW);
4976 regulator_notifier_call_chain(rdev,
4977 REGULATOR_EVENT_OVER_CURRENT_WARN,
4978 NULL);
4979 ret = -ERANGE;
4980 goto out;
4981 }
4982
4983 rdev->pw_requested_mW = pw_tot_req;
4984 out:
4985 regulator_unlock(rdev);
4986 return ret;
4987 }
4988 EXPORT_SYMBOL_GPL(regulator_request_power_budget);
4989
4990 /**
4991 * regulator_free_power_budget - free power budget on a regulator
4992 * @regulator: regulator source
4993 * @pw: Power to be released.
4994 *
4995 * Return: Power budget of the regulator in mW.
4996 */
regulator_free_power_budget(struct regulator * regulator,unsigned int pw)4997 void regulator_free_power_budget(struct regulator *regulator,
4998 unsigned int pw)
4999 {
5000 struct regulator_dev *rdev = regulator->rdev;
5001 int pw_tot_req;
5002
5003 regulator_lock(rdev);
5004 if (rdev->supply)
5005 regulator_free_power_budget(rdev->supply, pw);
5006
5007 pw_tot_req = rdev->pw_requested_mW - pw;
5008 if (pw_tot_req >= 0)
5009 rdev->pw_requested_mW = pw_tot_req;
5010 else
5011 rdev_warn(rdev,
5012 "too much power freed %d mW (already requested %d mW)",
5013 pw, rdev->pw_requested_mW);
5014
5015 regulator_unlock(rdev);
5016 }
5017 EXPORT_SYMBOL_GPL(regulator_free_power_budget);
5018
5019 /**
5020 * regulator_set_mode - set regulator operating mode
5021 * @regulator: regulator source
5022 * @mode: operating mode - one of the REGULATOR_MODE constants
5023 *
5024 * Set regulator operating mode to increase regulator efficiency or improve
5025 * regulation performance.
5026 *
5027 * NOTE: Regulator system constraints must be set for this regulator before
5028 * calling this function otherwise this call will fail.
5029 *
5030 * Return: 0 on success or a negative error number on failure.
5031 */
regulator_set_mode(struct regulator * regulator,unsigned int mode)5032 int regulator_set_mode(struct regulator *regulator, unsigned int mode)
5033 {
5034 struct regulator_dev *rdev = regulator->rdev;
5035 int ret;
5036 int regulator_curr_mode;
5037
5038 regulator_lock(rdev);
5039
5040 /* sanity check */
5041 if (!rdev->desc->ops->set_mode) {
5042 ret = -EINVAL;
5043 goto out;
5044 }
5045
5046 /* return if the same mode is requested */
5047 if (rdev->desc->ops->get_mode) {
5048 regulator_curr_mode = rdev->desc->ops->get_mode(rdev);
5049 if (regulator_curr_mode == mode) {
5050 ret = 0;
5051 goto out;
5052 }
5053 }
5054
5055 /* constraints check */
5056 ret = regulator_mode_constrain(rdev, &mode);
5057 if (ret < 0)
5058 goto out;
5059
5060 ret = rdev->desc->ops->set_mode(rdev, mode);
5061 out:
5062 regulator_unlock(rdev);
5063 return ret;
5064 }
5065 EXPORT_SYMBOL_GPL(regulator_set_mode);
5066
_regulator_get_mode_unlocked(struct regulator_dev * rdev)5067 static unsigned int _regulator_get_mode_unlocked(struct regulator_dev *rdev)
5068 {
5069 /* sanity check */
5070 if (!rdev->desc->ops->get_mode)
5071 return -EINVAL;
5072
5073 return rdev->desc->ops->get_mode(rdev);
5074 }
5075
_regulator_get_mode(struct regulator_dev * rdev)5076 static unsigned int _regulator_get_mode(struct regulator_dev *rdev)
5077 {
5078 int ret;
5079
5080 regulator_lock(rdev);
5081 ret = _regulator_get_mode_unlocked(rdev);
5082 regulator_unlock(rdev);
5083
5084 return ret;
5085 }
5086
5087 /**
5088 * regulator_get_mode - get regulator operating mode
5089 * @regulator: regulator source
5090 *
5091 * Get the current regulator operating mode.
5092 *
5093 * Return: Current operating mode as %REGULATOR_MODE_* values,
5094 * or a negative error number on failure.
5095 */
regulator_get_mode(struct regulator * regulator)5096 unsigned int regulator_get_mode(struct regulator *regulator)
5097 {
5098 return _regulator_get_mode(regulator->rdev);
5099 }
5100 EXPORT_SYMBOL_GPL(regulator_get_mode);
5101
rdev_get_cached_err_flags(struct regulator_dev * rdev)5102 static int rdev_get_cached_err_flags(struct regulator_dev *rdev)
5103 {
5104 int ret = 0;
5105
5106 if (rdev->use_cached_err) {
5107 spin_lock(&rdev->err_lock);
5108 ret = rdev->cached_err;
5109 spin_unlock(&rdev->err_lock);
5110 }
5111 return ret;
5112 }
5113
_regulator_get_error_flags(struct regulator_dev * rdev,unsigned int * flags)5114 static int _regulator_get_error_flags(struct regulator_dev *rdev,
5115 unsigned int *flags)
5116 {
5117 int cached_flags, ret = 0;
5118
5119 regulator_lock(rdev);
5120
5121 cached_flags = rdev_get_cached_err_flags(rdev);
5122
5123 if (rdev->desc->ops->get_error_flags)
5124 ret = rdev->desc->ops->get_error_flags(rdev, flags);
5125 else if (!rdev->use_cached_err)
5126 ret = -EINVAL;
5127
5128 *flags |= cached_flags;
5129
5130 regulator_unlock(rdev);
5131
5132 return ret;
5133 }
5134
5135 /**
5136 * regulator_get_error_flags - get regulator error information
5137 * @regulator: regulator source
5138 * @flags: pointer to store error flags
5139 *
5140 * Get the current regulator error information.
5141 *
5142 * Return: 0 on success or a negative error number on failure.
5143 */
regulator_get_error_flags(struct regulator * regulator,unsigned int * flags)5144 int regulator_get_error_flags(struct regulator *regulator,
5145 unsigned int *flags)
5146 {
5147 return _regulator_get_error_flags(regulator->rdev, flags);
5148 }
5149 EXPORT_SYMBOL_GPL(regulator_get_error_flags);
5150
5151 /**
5152 * regulator_set_load - set regulator load
5153 * @regulator: regulator source
5154 * @uA_load: load current
5155 *
5156 * Notifies the regulator core of a new device load. This is then used by
5157 * DRMS (if enabled by constraints) to set the most efficient regulator
5158 * operating mode for the new regulator loading.
5159 *
5160 * Consumer devices notify their supply regulator of the maximum power
5161 * they will require (can be taken from device datasheet in the power
5162 * consumption tables) when they change operational status and hence power
5163 * state. Examples of operational state changes that can affect power
5164 * consumption are :-
5165 *
5166 * o Device is opened / closed.
5167 * o Device I/O is about to begin or has just finished.
5168 * o Device is idling in between work.
5169 *
5170 * This information is also exported via sysfs to userspace.
5171 *
5172 * DRMS will sum the total requested load on the regulator and change
5173 * to the most efficient operating mode if platform constraints allow.
5174 *
5175 * NOTE: when a regulator consumer requests to have a regulator
5176 * disabled then any load that consumer requested no longer counts
5177 * toward the total requested load. If the regulator is re-enabled
5178 * then the previously requested load will start counting again.
5179 *
5180 * If a regulator is an always-on regulator then an individual consumer's
5181 * load will still be removed if that consumer is fully disabled.
5182 *
5183 * Return: 0 on success or a negative error number on failure.
5184 */
regulator_set_load(struct regulator * regulator,int uA_load)5185 int regulator_set_load(struct regulator *regulator, int uA_load)
5186 {
5187 struct regulator_dev *rdev = regulator->rdev;
5188 int old_uA_load;
5189 int ret = 0;
5190
5191 regulator_lock(rdev);
5192 old_uA_load = regulator->uA_load;
5193 regulator->uA_load = uA_load;
5194 if (regulator->enable_count && old_uA_load != uA_load) {
5195 ret = drms_uA_update(rdev);
5196 if (ret < 0)
5197 regulator->uA_load = old_uA_load;
5198 }
5199 regulator_unlock(rdev);
5200
5201 return ret;
5202 }
5203 EXPORT_SYMBOL_GPL(regulator_set_load);
5204
5205 /**
5206 * regulator_allow_bypass - allow the regulator to go into bypass mode
5207 *
5208 * @regulator: Regulator to configure
5209 * @enable: enable or disable bypass mode
5210 *
5211 * Allow the regulator to go into bypass mode if all other consumers
5212 * for the regulator also enable bypass mode and the machine
5213 * constraints allow this. Bypass mode means that the regulator is
5214 * simply passing the input directly to the output with no regulation.
5215 *
5216 * Return: 0 on success or if changing bypass is not possible, or
5217 * a negative error number on failure.
5218 */
regulator_allow_bypass(struct regulator * regulator,bool enable)5219 int regulator_allow_bypass(struct regulator *regulator, bool enable)
5220 {
5221 struct regulator_dev *rdev = regulator->rdev;
5222 const char *name = rdev_get_name(rdev);
5223 int ret = 0;
5224
5225 if (!rdev->desc->ops->set_bypass)
5226 return 0;
5227
5228 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_BYPASS))
5229 return 0;
5230
5231 regulator_lock(rdev);
5232
5233 if (enable && !regulator->bypass) {
5234 rdev->bypass_count++;
5235
5236 if (rdev->bypass_count == rdev->open_count) {
5237 trace_regulator_bypass_enable(name);
5238
5239 ret = rdev->desc->ops->set_bypass(rdev, enable);
5240 if (ret != 0)
5241 rdev->bypass_count--;
5242 else
5243 trace_regulator_bypass_enable_complete(name);
5244 }
5245
5246 } else if (!enable && regulator->bypass) {
5247 rdev->bypass_count--;
5248
5249 if (rdev->bypass_count != rdev->open_count) {
5250 trace_regulator_bypass_disable(name);
5251
5252 ret = rdev->desc->ops->set_bypass(rdev, enable);
5253 if (ret != 0)
5254 rdev->bypass_count++;
5255 else
5256 trace_regulator_bypass_disable_complete(name);
5257 }
5258 }
5259
5260 if (ret == 0)
5261 regulator->bypass = enable;
5262
5263 regulator_unlock(rdev);
5264
5265 return ret;
5266 }
5267 EXPORT_SYMBOL_GPL(regulator_allow_bypass);
5268
5269 /**
5270 * regulator_register_notifier - register regulator event notifier
5271 * @regulator: regulator source
5272 * @nb: notifier block
5273 *
5274 * Register notifier block to receive regulator events.
5275 *
5276 * Return: 0 on success or a negative error number on failure.
5277 */
regulator_register_notifier(struct regulator * regulator,struct notifier_block * nb)5278 int regulator_register_notifier(struct regulator *regulator,
5279 struct notifier_block *nb)
5280 {
5281 return blocking_notifier_chain_register(®ulator->rdev->notifier,
5282 nb);
5283 }
5284 EXPORT_SYMBOL_GPL(regulator_register_notifier);
5285
5286 /**
5287 * regulator_unregister_notifier - unregister regulator event notifier
5288 * @regulator: regulator source
5289 * @nb: notifier block
5290 *
5291 * Unregister regulator event notifier block.
5292 *
5293 * Return: 0 on success or a negative error number on failure.
5294 */
regulator_unregister_notifier(struct regulator * regulator,struct notifier_block * nb)5295 int regulator_unregister_notifier(struct regulator *regulator,
5296 struct notifier_block *nb)
5297 {
5298 return blocking_notifier_chain_unregister(®ulator->rdev->notifier,
5299 nb);
5300 }
5301 EXPORT_SYMBOL_GPL(regulator_unregister_notifier);
5302
5303 /* notify regulator consumers and downstream regulator consumers.
5304 * Note mutex must be held by caller.
5305 */
_notifier_call_chain(struct regulator_dev * rdev,unsigned long event,void * data)5306 static int _notifier_call_chain(struct regulator_dev *rdev,
5307 unsigned long event, void *data)
5308 {
5309 /* call rdev chain first */
5310 int ret = blocking_notifier_call_chain(&rdev->notifier, event, data);
5311
5312 if (IS_REACHABLE(CONFIG_REGULATOR_NETLINK_EVENTS)) {
5313 struct device *parent = rdev->dev.parent;
5314 const char *rname = rdev_get_name(rdev);
5315 char name[32];
5316
5317 /* Avoid duplicate debugfs directory names */
5318 if (parent && rname == rdev->desc->name) {
5319 snprintf(name, sizeof(name), "%s-%s", dev_name(parent),
5320 rname);
5321 rname = name;
5322 }
5323 reg_generate_netlink_event(rname, event);
5324 }
5325
5326 return ret;
5327 }
5328
_regulator_bulk_get(struct device * dev,int num_consumers,struct regulator_bulk_data * consumers,enum regulator_get_type get_type)5329 int _regulator_bulk_get(struct device *dev, int num_consumers,
5330 struct regulator_bulk_data *consumers, enum regulator_get_type get_type)
5331 {
5332 int i;
5333 int ret;
5334
5335 for (i = 0; i < num_consumers; i++)
5336 consumers[i].consumer = NULL;
5337
5338 for (i = 0; i < num_consumers; i++) {
5339 consumers[i].consumer = _regulator_get(dev,
5340 consumers[i].supply, get_type);
5341 if (IS_ERR(consumers[i].consumer)) {
5342 ret = dev_err_probe(dev, PTR_ERR(consumers[i].consumer),
5343 "Failed to get supply '%s'\n",
5344 consumers[i].supply);
5345 consumers[i].consumer = NULL;
5346 goto err;
5347 }
5348
5349 if (consumers[i].init_load_uA > 0) {
5350 ret = regulator_set_load(consumers[i].consumer,
5351 consumers[i].init_load_uA);
5352 if (ret) {
5353 i++;
5354 goto err;
5355 }
5356 }
5357 }
5358
5359 return 0;
5360
5361 err:
5362 while (--i >= 0)
5363 regulator_put(consumers[i].consumer);
5364
5365 return ret;
5366 }
5367
5368 /**
5369 * regulator_bulk_get - get multiple regulator consumers
5370 *
5371 * @dev: Device to supply
5372 * @num_consumers: Number of consumers to register
5373 * @consumers: Configuration of consumers; clients are stored here.
5374 *
5375 * This helper function allows drivers to get several regulator
5376 * consumers in one operation. If any of the regulators cannot be
5377 * acquired then any regulators that were allocated will be freed
5378 * before returning to the caller.
5379 *
5380 * Return: 0 on success or a negative error number on failure.
5381 */
regulator_bulk_get(struct device * dev,int num_consumers,struct regulator_bulk_data * consumers)5382 int regulator_bulk_get(struct device *dev, int num_consumers,
5383 struct regulator_bulk_data *consumers)
5384 {
5385 return _regulator_bulk_get(dev, num_consumers, consumers, NORMAL_GET);
5386 }
5387 EXPORT_SYMBOL_GPL(regulator_bulk_get);
5388
regulator_bulk_enable_async(void * data,async_cookie_t cookie)5389 static void regulator_bulk_enable_async(void *data, async_cookie_t cookie)
5390 {
5391 struct regulator_bulk_data *bulk = data;
5392
5393 bulk->ret = regulator_enable(bulk->consumer);
5394 }
5395
5396 /**
5397 * regulator_bulk_enable - enable multiple regulator consumers
5398 *
5399 * @num_consumers: Number of consumers
5400 * @consumers: Consumer data; clients are stored here.
5401 *
5402 * This convenience API allows consumers to enable multiple regulator
5403 * clients in a single API call. If any consumers cannot be enabled
5404 * then any others that were enabled will be disabled again prior to
5405 * return.
5406 *
5407 * Return: 0 on success or a negative error number on failure.
5408 */
regulator_bulk_enable(int num_consumers,struct regulator_bulk_data * consumers)5409 int regulator_bulk_enable(int num_consumers,
5410 struct regulator_bulk_data *consumers)
5411 {
5412 ASYNC_DOMAIN_EXCLUSIVE(async_domain);
5413 int i;
5414 int ret = 0;
5415
5416 for (i = 0; i < num_consumers; i++) {
5417 async_schedule_domain(regulator_bulk_enable_async,
5418 &consumers[i], &async_domain);
5419 }
5420
5421 async_synchronize_full_domain(&async_domain);
5422
5423 /* If any consumer failed we need to unwind any that succeeded */
5424 for (i = 0; i < num_consumers; i++) {
5425 if (consumers[i].ret != 0) {
5426 ret = consumers[i].ret;
5427 goto err;
5428 }
5429 }
5430
5431 return 0;
5432
5433 err:
5434 for (i = 0; i < num_consumers; i++) {
5435 if (consumers[i].ret < 0)
5436 pr_err("Failed to enable %s: %pe\n", consumers[i].supply,
5437 ERR_PTR(consumers[i].ret));
5438 else
5439 regulator_disable(consumers[i].consumer);
5440 }
5441
5442 return ret;
5443 }
5444 EXPORT_SYMBOL_GPL(regulator_bulk_enable);
5445
5446 /**
5447 * regulator_bulk_disable - disable multiple regulator consumers
5448 *
5449 * @num_consumers: Number of consumers
5450 * @consumers: Consumer data; clients are stored here.
5451 *
5452 * This convenience API allows consumers to disable multiple regulator
5453 * clients in a single API call. If any consumers cannot be disabled
5454 * then any others that were disabled will be enabled again prior to
5455 * return.
5456 *
5457 * Return: 0 on success or a negative error number on failure.
5458 */
regulator_bulk_disable(int num_consumers,struct regulator_bulk_data * consumers)5459 int regulator_bulk_disable(int num_consumers,
5460 struct regulator_bulk_data *consumers)
5461 {
5462 int i;
5463 int ret, r;
5464
5465 for (i = num_consumers - 1; i >= 0; --i) {
5466 ret = regulator_disable(consumers[i].consumer);
5467 if (ret != 0)
5468 goto err;
5469 }
5470
5471 return 0;
5472
5473 err:
5474 pr_err("Failed to disable %s: %pe\n", consumers[i].supply, ERR_PTR(ret));
5475 for (++i; i < num_consumers; ++i) {
5476 r = regulator_enable(consumers[i].consumer);
5477 if (r != 0)
5478 pr_err("Failed to re-enable %s: %pe\n",
5479 consumers[i].supply, ERR_PTR(r));
5480 }
5481
5482 return ret;
5483 }
5484 EXPORT_SYMBOL_GPL(regulator_bulk_disable);
5485
5486 /**
5487 * regulator_bulk_force_disable - force disable multiple regulator consumers
5488 *
5489 * @num_consumers: Number of consumers
5490 * @consumers: Consumer data; clients are stored here.
5491 *
5492 * This convenience API allows consumers to forcibly disable multiple regulator
5493 * clients in a single API call.
5494 * NOTE: This should be used for situations when device damage will
5495 * likely occur if the regulators are not disabled (e.g. over temp).
5496 * Although regulator_force_disable function call for some consumers can
5497 * return error numbers, the function is called for all consumers.
5498 *
5499 * Return: 0 on success or a negative error number on failure.
5500 */
regulator_bulk_force_disable(int num_consumers,struct regulator_bulk_data * consumers)5501 int regulator_bulk_force_disable(int num_consumers,
5502 struct regulator_bulk_data *consumers)
5503 {
5504 int i;
5505 int ret = 0;
5506
5507 for (i = 0; i < num_consumers; i++) {
5508 consumers[i].ret =
5509 regulator_force_disable(consumers[i].consumer);
5510
5511 /* Store first error for reporting */
5512 if (consumers[i].ret && !ret)
5513 ret = consumers[i].ret;
5514 }
5515
5516 return ret;
5517 }
5518 EXPORT_SYMBOL_GPL(regulator_bulk_force_disable);
5519
5520 /**
5521 * regulator_bulk_free - free multiple regulator consumers
5522 *
5523 * @num_consumers: Number of consumers
5524 * @consumers: Consumer data; clients are stored here.
5525 *
5526 * This convenience API allows consumers to free multiple regulator
5527 * clients in a single API call.
5528 */
regulator_bulk_free(int num_consumers,struct regulator_bulk_data * consumers)5529 void regulator_bulk_free(int num_consumers,
5530 struct regulator_bulk_data *consumers)
5531 {
5532 int i;
5533
5534 for (i = 0; i < num_consumers; i++) {
5535 regulator_put(consumers[i].consumer);
5536 consumers[i].consumer = NULL;
5537 }
5538 }
5539 EXPORT_SYMBOL_GPL(regulator_bulk_free);
5540
5541 /**
5542 * regulator_handle_critical - Handle events for system-critical regulators.
5543 * @rdev: The regulator device.
5544 * @event: The event being handled.
5545 *
5546 * This function handles critical events such as under-voltage, over-current,
5547 * and unknown errors for regulators deemed system-critical. On detecting such
5548 * events, it triggers a hardware protection shutdown with a defined timeout.
5549 */
regulator_handle_critical(struct regulator_dev * rdev,unsigned long event)5550 static void regulator_handle_critical(struct regulator_dev *rdev,
5551 unsigned long event)
5552 {
5553 const char *reason = NULL;
5554
5555 if (!rdev->constraints->system_critical)
5556 return;
5557
5558 switch (event) {
5559 case REGULATOR_EVENT_UNDER_VOLTAGE:
5560 reason = "System critical regulator: voltage drop detected";
5561 break;
5562 case REGULATOR_EVENT_OVER_CURRENT:
5563 reason = "System critical regulator: over-current detected";
5564 break;
5565 case REGULATOR_EVENT_FAIL:
5566 reason = "System critical regulator: unknown error";
5567 }
5568
5569 if (!reason)
5570 return;
5571
5572 hw_protection_trigger(reason,
5573 rdev->constraints->uv_less_critical_window_ms);
5574 }
5575
5576 /**
5577 * regulator_notifier_call_chain - call regulator event notifier
5578 * @rdev: regulator source
5579 * @event: notifier block
5580 * @data: callback-specific data.
5581 *
5582 * Called by regulator drivers to notify clients a regulator event has
5583 * occurred.
5584 *
5585 * Return: %NOTIFY_DONE.
5586 */
regulator_notifier_call_chain(struct regulator_dev * rdev,unsigned long event,void * data)5587 int regulator_notifier_call_chain(struct regulator_dev *rdev,
5588 unsigned long event, void *data)
5589 {
5590 regulator_handle_critical(rdev, event);
5591
5592 _notifier_call_chain(rdev, event, data);
5593 return NOTIFY_DONE;
5594
5595 }
5596 EXPORT_SYMBOL_GPL(regulator_notifier_call_chain);
5597
5598 /**
5599 * regulator_mode_to_status - convert a regulator mode into a status
5600 *
5601 * @mode: Mode to convert
5602 *
5603 * Convert a regulator mode into a status.
5604 *
5605 * Return: %REGULATOR_STATUS_* value corresponding to given mode.
5606 */
regulator_mode_to_status(unsigned int mode)5607 int regulator_mode_to_status(unsigned int mode)
5608 {
5609 switch (mode) {
5610 case REGULATOR_MODE_FAST:
5611 return REGULATOR_STATUS_FAST;
5612 case REGULATOR_MODE_NORMAL:
5613 return REGULATOR_STATUS_NORMAL;
5614 case REGULATOR_MODE_IDLE:
5615 return REGULATOR_STATUS_IDLE;
5616 case REGULATOR_MODE_STANDBY:
5617 return REGULATOR_STATUS_STANDBY;
5618 default:
5619 return REGULATOR_STATUS_UNDEFINED;
5620 }
5621 }
5622 EXPORT_SYMBOL_GPL(regulator_mode_to_status);
5623
5624 static struct attribute *regulator_dev_attrs[] = {
5625 &dev_attr_name.attr,
5626 &dev_attr_num_users.attr,
5627 &dev_attr_type.attr,
5628 &dev_attr_microvolts.attr,
5629 &dev_attr_microamps.attr,
5630 &dev_attr_opmode.attr,
5631 &dev_attr_state.attr,
5632 &dev_attr_status.attr,
5633 &dev_attr_bypass.attr,
5634 &dev_attr_requested_microamps.attr,
5635 &dev_attr_min_microvolts.attr,
5636 &dev_attr_max_microvolts.attr,
5637 &dev_attr_min_microamps.attr,
5638 &dev_attr_max_microamps.attr,
5639 &dev_attr_under_voltage.attr,
5640 &dev_attr_over_current.attr,
5641 &dev_attr_regulation_out.attr,
5642 &dev_attr_fail.attr,
5643 &dev_attr_over_temp.attr,
5644 &dev_attr_under_voltage_warn.attr,
5645 &dev_attr_over_current_warn.attr,
5646 &dev_attr_over_voltage_warn.attr,
5647 &dev_attr_over_temp_warn.attr,
5648 &dev_attr_suspend_standby_state.attr,
5649 &dev_attr_suspend_mem_state.attr,
5650 &dev_attr_suspend_disk_state.attr,
5651 &dev_attr_suspend_standby_microvolts.attr,
5652 &dev_attr_suspend_mem_microvolts.attr,
5653 &dev_attr_suspend_disk_microvolts.attr,
5654 &dev_attr_suspend_standby_mode.attr,
5655 &dev_attr_suspend_mem_mode.attr,
5656 &dev_attr_suspend_disk_mode.attr,
5657 &dev_attr_power_budget_milliwatt.attr,
5658 &dev_attr_power_requested_milliwatt.attr,
5659 NULL
5660 };
5661
5662 /*
5663 * To avoid cluttering sysfs (and memory) with useless state, only
5664 * create attributes that can be meaningfully displayed.
5665 */
regulator_attr_is_visible(struct kobject * kobj,struct attribute * attr,int idx)5666 static umode_t regulator_attr_is_visible(struct kobject *kobj,
5667 struct attribute *attr, int idx)
5668 {
5669 struct device *dev = kobj_to_dev(kobj);
5670 struct regulator_dev *rdev = dev_to_rdev(dev);
5671 const struct regulator_ops *ops = rdev->desc->ops;
5672 umode_t mode = attr->mode;
5673
5674 /* these three are always present */
5675 if (attr == &dev_attr_name.attr ||
5676 attr == &dev_attr_num_users.attr ||
5677 attr == &dev_attr_type.attr)
5678 return mode;
5679
5680 /* some attributes need specific methods to be displayed */
5681 if (attr == &dev_attr_microvolts.attr) {
5682 if ((ops->get_voltage && ops->get_voltage(rdev) >= 0) ||
5683 (ops->get_voltage_sel && ops->get_voltage_sel(rdev) >= 0) ||
5684 (ops->list_voltage && ops->list_voltage(rdev, 0) >= 0) ||
5685 (rdev->desc->fixed_uV && rdev->desc->n_voltages == 1))
5686 return mode;
5687 return 0;
5688 }
5689
5690 if (attr == &dev_attr_microamps.attr)
5691 return ops->get_current_limit ? mode : 0;
5692
5693 if (attr == &dev_attr_opmode.attr)
5694 return ops->get_mode ? mode : 0;
5695
5696 if (attr == &dev_attr_state.attr)
5697 return (rdev->ena_pin || ops->is_enabled) ? mode : 0;
5698
5699 if (attr == &dev_attr_status.attr)
5700 return ops->get_status ? mode : 0;
5701
5702 if (attr == &dev_attr_bypass.attr)
5703 return ops->get_bypass ? mode : 0;
5704
5705 if (attr == &dev_attr_under_voltage.attr ||
5706 attr == &dev_attr_over_current.attr ||
5707 attr == &dev_attr_regulation_out.attr ||
5708 attr == &dev_attr_fail.attr ||
5709 attr == &dev_attr_over_temp.attr ||
5710 attr == &dev_attr_under_voltage_warn.attr ||
5711 attr == &dev_attr_over_current_warn.attr ||
5712 attr == &dev_attr_over_voltage_warn.attr ||
5713 attr == &dev_attr_over_temp_warn.attr)
5714 return ops->get_error_flags ? mode : 0;
5715
5716 /* constraints need specific supporting methods */
5717 if (attr == &dev_attr_min_microvolts.attr ||
5718 attr == &dev_attr_max_microvolts.attr)
5719 return (ops->set_voltage || ops->set_voltage_sel) ? mode : 0;
5720
5721 if (attr == &dev_attr_min_microamps.attr ||
5722 attr == &dev_attr_max_microamps.attr)
5723 return ops->set_current_limit ? mode : 0;
5724
5725 if (attr == &dev_attr_suspend_standby_state.attr ||
5726 attr == &dev_attr_suspend_mem_state.attr ||
5727 attr == &dev_attr_suspend_disk_state.attr)
5728 return mode;
5729
5730 if (attr == &dev_attr_suspend_standby_microvolts.attr ||
5731 attr == &dev_attr_suspend_mem_microvolts.attr ||
5732 attr == &dev_attr_suspend_disk_microvolts.attr)
5733 return ops->set_suspend_voltage ? mode : 0;
5734
5735 if (attr == &dev_attr_suspend_standby_mode.attr ||
5736 attr == &dev_attr_suspend_mem_mode.attr ||
5737 attr == &dev_attr_suspend_disk_mode.attr)
5738 return ops->set_suspend_mode ? mode : 0;
5739
5740 if (attr == &dev_attr_power_budget_milliwatt.attr ||
5741 attr == &dev_attr_power_requested_milliwatt.attr)
5742 return rdev->constraints->pw_budget_mW != INT_MAX ? mode : 0;
5743
5744 return mode;
5745 }
5746
5747 static const struct attribute_group regulator_dev_group = {
5748 .attrs = regulator_dev_attrs,
5749 .is_visible = regulator_attr_is_visible,
5750 };
5751
5752 static const struct attribute_group *regulator_dev_groups[] = {
5753 ®ulator_dev_group,
5754 NULL
5755 };
5756
regulator_dev_release(struct device * dev)5757 static void regulator_dev_release(struct device *dev)
5758 {
5759 struct regulator_dev *rdev = dev_get_drvdata(dev);
5760
5761 debugfs_remove_recursive(rdev->debugfs);
5762 kfree(rdev->constraints);
5763 of_node_put(rdev->dev.of_node);
5764 kfree(rdev);
5765 }
5766
rdev_init_debugfs(struct regulator_dev * rdev)5767 static void rdev_init_debugfs(struct regulator_dev *rdev)
5768 {
5769 struct device *parent = rdev->dev.parent;
5770 const char *rname = rdev_get_name(rdev);
5771 char name[NAME_MAX];
5772
5773 /* Avoid duplicate debugfs directory names */
5774 if (parent && rname == rdev->desc->name) {
5775 snprintf(name, sizeof(name), "%s-%s", dev_name(parent),
5776 rname);
5777 rname = name;
5778 }
5779
5780 rdev->debugfs = debugfs_create_dir(rname, debugfs_root);
5781 if (IS_ERR(rdev->debugfs))
5782 rdev_dbg(rdev, "Failed to create debugfs directory\n");
5783
5784 debugfs_create_u32("use_count", 0444, rdev->debugfs,
5785 &rdev->use_count);
5786 debugfs_create_u32("open_count", 0444, rdev->debugfs,
5787 &rdev->open_count);
5788 debugfs_create_u32("bypass_count", 0444, rdev->debugfs,
5789 &rdev->bypass_count);
5790 }
5791
regulator_coupler_register(struct regulator_coupler * coupler)5792 int regulator_coupler_register(struct regulator_coupler *coupler)
5793 {
5794 mutex_lock(®ulator_list_mutex);
5795 list_add_tail(&coupler->list, ®ulator_coupler_list);
5796 mutex_unlock(®ulator_list_mutex);
5797
5798 return 0;
5799 }
5800
5801 static struct regulator_coupler *
regulator_find_coupler(struct regulator_dev * rdev)5802 regulator_find_coupler(struct regulator_dev *rdev)
5803 {
5804 struct regulator_coupler *coupler;
5805 int err;
5806
5807 /*
5808 * Note that regulators are appended to the list and the generic
5809 * coupler is registered first, hence it will be attached at last
5810 * if nobody cared.
5811 */
5812 list_for_each_entry_reverse(coupler, ®ulator_coupler_list, list) {
5813 err = coupler->attach_regulator(coupler, rdev);
5814 if (!err) {
5815 if (!coupler->balance_voltage &&
5816 rdev->coupling_desc.n_coupled > 2)
5817 goto err_unsupported;
5818
5819 return coupler;
5820 }
5821
5822 if (err < 0)
5823 return ERR_PTR(err);
5824
5825 if (err == 1)
5826 continue;
5827
5828 break;
5829 }
5830
5831 return ERR_PTR(-EINVAL);
5832
5833 err_unsupported:
5834 if (coupler->detach_regulator)
5835 coupler->detach_regulator(coupler, rdev);
5836
5837 rdev_err(rdev,
5838 "Voltage balancing for multiple regulator couples is unimplemented\n");
5839
5840 return ERR_PTR(-EPERM);
5841 }
5842
regulator_resolve_coupling(struct regulator_dev * rdev)5843 static void regulator_resolve_coupling(struct regulator_dev *rdev)
5844 {
5845 struct regulator_coupler *coupler = rdev->coupling_desc.coupler;
5846 struct coupling_desc *c_desc = &rdev->coupling_desc;
5847 int n_coupled = c_desc->n_coupled;
5848 struct regulator_dev *c_rdev;
5849 int i;
5850
5851 for (i = 1; i < n_coupled; i++) {
5852 /* already resolved */
5853 if (c_desc->coupled_rdevs[i])
5854 continue;
5855
5856 c_rdev = of_parse_coupled_regulator(rdev, i - 1);
5857
5858 if (!c_rdev)
5859 continue;
5860
5861 if (c_rdev->coupling_desc.coupler != coupler) {
5862 rdev_err(rdev, "coupler mismatch with %s\n",
5863 rdev_get_name(c_rdev));
5864 return;
5865 }
5866
5867 c_desc->coupled_rdevs[i] = c_rdev;
5868 c_desc->n_resolved++;
5869
5870 regulator_resolve_coupling(c_rdev);
5871 }
5872 }
5873
regulator_remove_coupling(struct regulator_dev * rdev)5874 static void regulator_remove_coupling(struct regulator_dev *rdev)
5875 {
5876 struct regulator_coupler *coupler = rdev->coupling_desc.coupler;
5877 struct coupling_desc *__c_desc, *c_desc = &rdev->coupling_desc;
5878 struct regulator_dev *__c_rdev, *c_rdev;
5879 unsigned int __n_coupled, n_coupled;
5880 int i, k;
5881 int err;
5882
5883 n_coupled = c_desc->n_coupled;
5884
5885 for (i = 1; i < n_coupled; i++) {
5886 c_rdev = c_desc->coupled_rdevs[i];
5887
5888 if (!c_rdev)
5889 continue;
5890
5891 regulator_lock(c_rdev);
5892
5893 __c_desc = &c_rdev->coupling_desc;
5894 __n_coupled = __c_desc->n_coupled;
5895
5896 for (k = 1; k < __n_coupled; k++) {
5897 __c_rdev = __c_desc->coupled_rdevs[k];
5898
5899 if (__c_rdev == rdev) {
5900 __c_desc->coupled_rdevs[k] = NULL;
5901 __c_desc->n_resolved--;
5902 break;
5903 }
5904 }
5905
5906 regulator_unlock(c_rdev);
5907
5908 c_desc->coupled_rdevs[i] = NULL;
5909 c_desc->n_resolved--;
5910 }
5911
5912 if (coupler && coupler->detach_regulator) {
5913 err = coupler->detach_regulator(coupler, rdev);
5914 if (err)
5915 rdev_err(rdev, "failed to detach from coupler: %pe\n",
5916 ERR_PTR(err));
5917 }
5918
5919 rdev->coupling_desc.n_coupled = 0;
5920 kfree(rdev->coupling_desc.coupled_rdevs);
5921 rdev->coupling_desc.coupled_rdevs = NULL;
5922 }
5923
regulator_init_coupling(struct regulator_dev * rdev)5924 static int regulator_init_coupling(struct regulator_dev *rdev)
5925 {
5926 struct regulator_dev **coupled;
5927 int err, n_phandles;
5928
5929 if (!IS_ENABLED(CONFIG_OF))
5930 n_phandles = 0;
5931 else
5932 n_phandles = of_get_n_coupled(rdev);
5933
5934 coupled = kzalloc_objs(*coupled, n_phandles + 1);
5935 if (!coupled)
5936 return -ENOMEM;
5937
5938 rdev->coupling_desc.coupled_rdevs = coupled;
5939
5940 /*
5941 * Every regulator should always have coupling descriptor filled with
5942 * at least pointer to itself.
5943 */
5944 rdev->coupling_desc.coupled_rdevs[0] = rdev;
5945 rdev->coupling_desc.n_coupled = n_phandles + 1;
5946 rdev->coupling_desc.n_resolved++;
5947
5948 /* regulator isn't coupled */
5949 if (n_phandles == 0)
5950 return 0;
5951
5952 if (!of_check_coupling_data(rdev))
5953 return -EPERM;
5954
5955 mutex_lock(®ulator_list_mutex);
5956 rdev->coupling_desc.coupler = regulator_find_coupler(rdev);
5957 mutex_unlock(®ulator_list_mutex);
5958
5959 if (IS_ERR(rdev->coupling_desc.coupler)) {
5960 err = PTR_ERR(rdev->coupling_desc.coupler);
5961 rdev_err(rdev, "failed to get coupler: %pe\n", ERR_PTR(err));
5962 return err;
5963 }
5964
5965 return 0;
5966 }
5967
generic_coupler_attach(struct regulator_coupler * coupler,struct regulator_dev * rdev)5968 static int generic_coupler_attach(struct regulator_coupler *coupler,
5969 struct regulator_dev *rdev)
5970 {
5971 if (rdev->coupling_desc.n_coupled > 2) {
5972 rdev_err(rdev,
5973 "Voltage balancing for multiple regulator couples is unimplemented\n");
5974 return -EPERM;
5975 }
5976
5977 if (!rdev->constraints->always_on) {
5978 rdev_err(rdev,
5979 "Coupling of a non always-on regulator is unimplemented\n");
5980 return -ENOTSUPP;
5981 }
5982
5983 return 0;
5984 }
5985
5986 static struct regulator_coupler generic_regulator_coupler = {
5987 .attach_regulator = generic_coupler_attach,
5988 };
5989
5990 /**
5991 * regulator_register - register regulator
5992 * @dev: the device that drive the regulator
5993 * @regulator_desc: regulator to register
5994 * @cfg: runtime configuration for regulator
5995 *
5996 * Called by regulator drivers to register a regulator.
5997 *
5998 * Return: Pointer to a valid &struct regulator_dev on success or
5999 * an ERR_PTR() encoded negative error number on failure.
6000 */
6001 struct regulator_dev *
regulator_register(struct device * dev,const struct regulator_desc * regulator_desc,const struct regulator_config * cfg)6002 regulator_register(struct device *dev,
6003 const struct regulator_desc *regulator_desc,
6004 const struct regulator_config *cfg)
6005 {
6006 const struct regulator_init_data *init_data;
6007 struct regulator_config *config = NULL;
6008 static atomic_t regulator_no = ATOMIC_INIT(-1);
6009 struct regulator_dev *rdev;
6010 bool tried_supply_resolve = false;
6011 bool dangling_cfg_gpiod = false;
6012 bool dangling_of_gpiod = false;
6013 int ret, i;
6014
6015 if (cfg == NULL)
6016 return ERR_PTR(-EINVAL);
6017 if (cfg->ena_gpiod)
6018 dangling_cfg_gpiod = true;
6019 if (regulator_desc == NULL) {
6020 ret = -EINVAL;
6021 goto rinse;
6022 }
6023
6024 WARN_ON(!dev || !cfg->dev);
6025
6026 if (regulator_desc->name == NULL || regulator_desc->ops == NULL) {
6027 ret = -EINVAL;
6028 goto rinse;
6029 }
6030
6031 if (regulator_desc->type != REGULATOR_VOLTAGE &&
6032 regulator_desc->type != REGULATOR_CURRENT) {
6033 ret = -EINVAL;
6034 goto rinse;
6035 }
6036
6037 /* Only one of each should be implemented */
6038 WARN_ON(regulator_desc->ops->get_voltage &&
6039 regulator_desc->ops->get_voltage_sel);
6040 WARN_ON(regulator_desc->ops->set_voltage &&
6041 regulator_desc->ops->set_voltage_sel);
6042
6043 /* If we're using selectors we must implement list_voltage. */
6044 if (regulator_desc->ops->get_voltage_sel &&
6045 !regulator_desc->ops->list_voltage) {
6046 ret = -EINVAL;
6047 goto rinse;
6048 }
6049 if (regulator_desc->ops->set_voltage_sel &&
6050 !regulator_desc->ops->list_voltage) {
6051 ret = -EINVAL;
6052 goto rinse;
6053 }
6054
6055 rdev = kzalloc_obj(struct regulator_dev);
6056 if (rdev == NULL) {
6057 ret = -ENOMEM;
6058 goto rinse;
6059 }
6060 device_initialize(&rdev->dev);
6061 dev_set_drvdata(&rdev->dev, rdev);
6062 rdev->dev.class = ®ulator_class;
6063 spin_lock_init(&rdev->err_lock);
6064
6065 /*
6066 * Duplicate the config so the driver could override it after
6067 * parsing init data.
6068 */
6069 config = kmemdup(cfg, sizeof(*cfg), GFP_KERNEL);
6070 if (config == NULL) {
6071 ret = -ENOMEM;
6072 goto clean;
6073 }
6074
6075 /*
6076 * DT may override the config->init_data provided if the platform
6077 * needs to do so. If so, config->init_data is completely ignored.
6078 */
6079 init_data = regulator_of_get_init_data(dev, regulator_desc, config,
6080 &rdev->dev.of_node);
6081
6082 /*
6083 * Sometimes not all resources are probed already so we need to take
6084 * that into account. This happens most the time if the ena_gpiod comes
6085 * from a gpio extender or something else.
6086 */
6087 if (PTR_ERR(init_data) == -EPROBE_DEFER) {
6088 ret = -EPROBE_DEFER;
6089 goto clean;
6090 }
6091
6092 /*
6093 * We need to keep track of any GPIO descriptor coming from the
6094 * device tree until we have handled it over to the core. If the
6095 * config that was passed in to this function DOES NOT contain
6096 * a descriptor, and the config after this call DOES contain
6097 * a descriptor, we definitely got one from parsing the device
6098 * tree.
6099 */
6100 if (!cfg->ena_gpiod && config->ena_gpiod)
6101 dangling_of_gpiod = true;
6102 if (!init_data) {
6103 init_data = config->init_data;
6104 rdev->dev.of_node = of_node_get(config->of_node);
6105 }
6106
6107 ww_mutex_init(&rdev->mutex, ®ulator_ww_class);
6108 rdev->reg_data = config->driver_data;
6109 rdev->owner = regulator_desc->owner;
6110 rdev->desc = regulator_desc;
6111 if (config->regmap)
6112 rdev->regmap = config->regmap;
6113 else if (dev_get_regmap(dev, NULL))
6114 rdev->regmap = dev_get_regmap(dev, NULL);
6115 else if (dev->parent)
6116 rdev->regmap = dev_get_regmap(dev->parent, NULL);
6117 INIT_LIST_HEAD(&rdev->consumer_list);
6118 INIT_LIST_HEAD(&rdev->list);
6119 BLOCKING_INIT_NOTIFIER_HEAD(&rdev->notifier);
6120 INIT_DELAYED_WORK(&rdev->disable_work, regulator_disable_work);
6121
6122 if (init_data && init_data->supply_regulator)
6123 rdev->supply_name = init_data->supply_regulator;
6124 else if (regulator_desc->supply_name)
6125 rdev->supply_name = regulator_desc->supply_name;
6126
6127 /* register with sysfs */
6128 rdev->dev.parent = config->dev;
6129 dev_set_name(&rdev->dev, "regulator.%lu",
6130 (unsigned long) atomic_inc_return(®ulator_no));
6131
6132 /* set regulator constraints */
6133 if (init_data)
6134 rdev->constraints = kmemdup(&init_data->constraints,
6135 sizeof(*rdev->constraints),
6136 GFP_KERNEL);
6137 else
6138 rdev->constraints = kzalloc_obj(*rdev->constraints);
6139 if (!rdev->constraints) {
6140 ret = -ENOMEM;
6141 goto wash;
6142 }
6143
6144 if (regulator_desc->init_cb) {
6145 ret = regulator_desc->init_cb(rdev, config);
6146 if (ret < 0)
6147 goto wash;
6148 }
6149
6150 if (config->ena_gpiod) {
6151 ret = regulator_ena_gpio_request(rdev, config);
6152 if (ret != 0) {
6153 rdev_err(rdev, "Failed to request enable GPIO: %pe\n",
6154 ERR_PTR(ret));
6155 goto wash;
6156 }
6157 /* The regulator core took over the GPIO descriptor */
6158 dangling_cfg_gpiod = false;
6159 dangling_of_gpiod = false;
6160 }
6161
6162 ret = set_machine_constraints(rdev, false);
6163 if (ret == -EPROBE_DEFER) {
6164 /* Regulator might be in bypass mode or an always-on or boot-on
6165 * regulator and so needs its supply to set the constraints or
6166 * for enable.
6167 */
6168 /* FIXME: this currently triggers a chicken-and-egg problem
6169 * when creating -SUPPLY symlink in sysfs to a regulator
6170 * that is just being created
6171 */
6172 rdev_dbg(rdev, "will resolve supply early: %s\n",
6173 rdev->supply_name);
6174 ret = regulator_resolve_supply(rdev);
6175 if (!ret)
6176 ret = set_machine_constraints(rdev, false);
6177 else
6178 rdev_dbg(rdev, "unable to resolve supply early: %pe\n",
6179 ERR_PTR(ret));
6180 tried_supply_resolve = true;
6181 }
6182 if (ret < 0) {
6183 if (ret != -EPROBE_DEFER)
6184 goto wash;
6185 rdev->constraints_pending = true;
6186 }
6187
6188 ret = regulator_init_coupling(rdev);
6189 if (ret < 0)
6190 goto wash;
6191
6192 /* add consumers devices */
6193 if (init_data) {
6194 for (i = 0; i < init_data->num_consumer_supplies; i++) {
6195 ret = set_consumer_device_supply(rdev,
6196 init_data->consumer_supplies[i].dev_name,
6197 init_data->consumer_supplies[i].supply);
6198 if (ret < 0) {
6199 dev_err(dev, "Failed to set supply %s\n",
6200 init_data->consumer_supplies[i].supply);
6201 goto unset_supplies;
6202 }
6203 }
6204 }
6205
6206 if (!rdev->desc->ops->get_voltage &&
6207 !rdev->desc->ops->list_voltage &&
6208 !rdev->desc->fixed_uV)
6209 rdev->is_switch = true;
6210
6211 ret = device_add(&rdev->dev);
6212 if (ret != 0)
6213 goto unset_supplies;
6214
6215 if (!tried_supply_resolve) {
6216 /*
6217 * As an optimisation, try to resolve our supply (if any) now to
6218 * avoid adding the bus device. Errors are not fatal at this
6219 * stage, we'll simply try again later.
6220 */
6221 ret = regulator_resolve_supply(rdev);
6222 if (ret)
6223 rdev_dbg(rdev,
6224 "unable to resolve supply (ignoring): %pe\n",
6225 ERR_PTR(ret));
6226 }
6227
6228 /*
6229 * If we have a supply but couldn't resolve it yet, register a device
6230 * with our bus, so that the bus probe gets called whenever any new
6231 * driver binds, allowing us to retry matching supplies and which then
6232 * triggers (re)probe of consumers if successful.
6233 */
6234 if (rdev->supply_name && !rdev->supply) {
6235 device_initialize(&rdev->bdev);
6236 rdev->bdev.bus = ®ulator_bus;
6237 rdev->bdev.parent = &rdev->dev;
6238 device_set_pm_not_required(&rdev->dev);
6239 dev_set_name(&rdev->bdev, "%s.bdev", dev_name(&rdev->dev));
6240
6241 ret = device_add(&rdev->bdev);
6242 if (ret)
6243 goto del_cdev_and_bdev;
6244 }
6245
6246 rdev_init_debugfs(rdev);
6247
6248 /* try to resolve regulators coupling since a new one was registered */
6249 mutex_lock(®ulator_list_mutex);
6250 regulator_resolve_coupling(rdev);
6251 mutex_unlock(®ulator_list_mutex);
6252
6253 kfree(config);
6254 return rdev;
6255
6256 del_cdev_and_bdev:
6257 if (rdev->bdev.bus == ®ulator_bus)
6258 put_device(&rdev->bdev);
6259 device_del(&rdev->dev);
6260 unset_supplies:
6261 mutex_lock(®ulator_list_mutex);
6262 unset_regulator_supplies(rdev);
6263 regulator_remove_coupling(rdev);
6264 mutex_unlock(®ulator_list_mutex);
6265 wash:
6266 regulator_put(rdev->supply);
6267 kfree(rdev->coupling_desc.coupled_rdevs);
6268 mutex_lock(®ulator_list_mutex);
6269 regulator_ena_gpio_free(rdev);
6270 mutex_unlock(®ulator_list_mutex);
6271 clean:
6272 if (dangling_of_gpiod)
6273 gpiod_put(config->ena_gpiod);
6274 kfree(config);
6275 put_device(&rdev->dev);
6276 rinse:
6277 if (dangling_cfg_gpiod)
6278 gpiod_put(cfg->ena_gpiod);
6279 return ERR_PTR(ret);
6280 }
6281 EXPORT_SYMBOL_GPL(regulator_register);
6282
6283 /**
6284 * regulator_unregister - unregister regulator
6285 * @rdev: regulator to unregister
6286 *
6287 * Called by regulator drivers to unregister a regulator.
6288 */
regulator_unregister(struct regulator_dev * rdev)6289 void regulator_unregister(struct regulator_dev *rdev)
6290 {
6291 if (rdev == NULL)
6292 return;
6293
6294 if (rdev->supply) {
6295 regulator_unregister_notifier(rdev->supply,
6296 &rdev->supply_fwd_nb);
6297
6298 while (rdev->use_count--)
6299 regulator_disable(rdev->supply);
6300 regulator_put(rdev->supply);
6301 }
6302
6303 flush_work(&rdev->disable_work.work);
6304
6305 mutex_lock(®ulator_list_mutex);
6306
6307 WARN_ON(rdev->open_count);
6308 regulator_remove_coupling(rdev);
6309 unset_regulator_supplies(rdev);
6310 list_del(&rdev->list);
6311 regulator_ena_gpio_free(rdev);
6312 if (rdev->bdev.bus == ®ulator_bus)
6313 /* only if the device was added in the first place */
6314 device_unregister(&rdev->bdev);
6315 device_unregister(&rdev->dev);
6316
6317 mutex_unlock(®ulator_list_mutex);
6318 }
6319 EXPORT_SYMBOL_GPL(regulator_unregister);
6320
6321 #ifdef CONFIG_SUSPEND
6322 /**
6323 * regulator_suspend - prepare regulators for system wide suspend
6324 * @dev: ``&struct device`` pointer that is passed to _regulator_suspend()
6325 *
6326 * Configure each regulator with it's suspend operating parameters for state.
6327 *
6328 * Return: 0 on success or a negative error number on failure.
6329 */
regulator_suspend(struct device * dev)6330 static int regulator_suspend(struct device *dev)
6331 {
6332 struct regulator_dev *rdev = dev_to_rdev(dev);
6333 suspend_state_t state = pm_suspend_target_state;
6334 int ret;
6335 const struct regulator_state *rstate;
6336
6337 rstate = regulator_get_suspend_state_check(rdev, state);
6338 if (!rstate)
6339 return 0;
6340
6341 regulator_lock(rdev);
6342 ret = __suspend_set_state(rdev, rstate);
6343 regulator_unlock(rdev);
6344
6345 return ret;
6346 }
6347
regulator_resume(struct device * dev)6348 static int regulator_resume(struct device *dev)
6349 {
6350 suspend_state_t state = pm_suspend_target_state;
6351 struct regulator_dev *rdev = dev_to_rdev(dev);
6352 struct regulator_state *rstate;
6353 int ret = 0;
6354
6355 rstate = regulator_get_suspend_state(rdev, state);
6356 if (rstate == NULL)
6357 return 0;
6358
6359 /* Avoid grabbing the lock if we don't need to */
6360 if (!rdev->desc->ops->resume)
6361 return 0;
6362
6363 regulator_lock(rdev);
6364
6365 if (rstate->enabled == ENABLE_IN_SUSPEND ||
6366 rstate->enabled == DISABLE_IN_SUSPEND)
6367 ret = rdev->desc->ops->resume(rdev);
6368
6369 regulator_unlock(rdev);
6370
6371 return ret;
6372 }
6373 #else /* !CONFIG_SUSPEND */
6374
6375 #define regulator_suspend NULL
6376 #define regulator_resume NULL
6377
6378 #endif /* !CONFIG_SUSPEND */
6379
6380 #ifdef CONFIG_PM
6381 static const struct dev_pm_ops __maybe_unused regulator_pm_ops = {
6382 .suspend = regulator_suspend,
6383 .resume = regulator_resume,
6384 };
6385 #endif
6386
6387 const struct class regulator_class = {
6388 .name = "regulator",
6389 .dev_release = regulator_dev_release,
6390 .dev_groups = regulator_dev_groups,
6391 #ifdef CONFIG_PM
6392 .pm = ®ulator_pm_ops,
6393 #endif
6394 };
6395
6396 #define bdev_to_rdev(__bdev) container_of_const(__bdev, struct regulator_dev, bdev)
6397
regulator_bus_match(struct device * bdev,const struct device_driver * drv)6398 static int regulator_bus_match(struct device *bdev,
6399 const struct device_driver *drv)
6400 {
6401 /* Match always succeeds, we only have one driver */
6402 return 1;
6403 }
6404
regulator_bus_probe(struct device * bdev)6405 static int regulator_bus_probe(struct device *bdev)
6406 {
6407 struct regulator_dev *rdev = bdev_to_rdev(bdev);
6408 int ret;
6409
6410 ret = regulator_resolve_supply(rdev);
6411 if (ret)
6412 rdev_dbg(rdev,
6413 "unable to resolve supply or constraints '%s': %pe\n",
6414 rdev->supply_name, ERR_PTR(ret));
6415 else
6416 rdev_dbg(rdev, "resolved supply '%s'\n", rdev->supply_name);
6417
6418 return ret;
6419 }
6420
6421 static const struct bus_type regulator_bus = {
6422 .name = "regulator",
6423 .match = regulator_bus_match,
6424 .probe = regulator_bus_probe,
6425 };
6426
6427 static struct device_driver regulator_bus_driver = {
6428 .name = "regulator-bus-drv",
6429 .bus = ®ulator_bus,
6430 .suppress_bind_attrs = true,
6431 .probe_type = PROBE_PREFER_ASYNCHRONOUS,
6432 };
6433
6434 /**
6435 * regulator_has_full_constraints - the system has fully specified constraints
6436 *
6437 * Calling this function will cause the regulator API to disable all
6438 * regulators which have a zero use count and don't have an always_on
6439 * constraint in a late_initcall.
6440 *
6441 * The intention is that this will become the default behaviour in a
6442 * future kernel release so users are encouraged to use this facility
6443 * now.
6444 */
regulator_has_full_constraints(void)6445 void regulator_has_full_constraints(void)
6446 {
6447 has_full_constraints = 1;
6448 }
6449 EXPORT_SYMBOL_GPL(regulator_has_full_constraints);
6450
6451 /**
6452 * rdev_get_drvdata - get rdev regulator driver data
6453 * @rdev: regulator
6454 *
6455 * Get rdev regulator driver private data. This call can be used in the
6456 * regulator driver context.
6457 *
6458 * Return: Pointer to regulator driver private data.
6459 */
rdev_get_drvdata(struct regulator_dev * rdev)6460 void *rdev_get_drvdata(struct regulator_dev *rdev)
6461 {
6462 return rdev->reg_data;
6463 }
6464 EXPORT_SYMBOL_GPL(rdev_get_drvdata);
6465
6466 /**
6467 * regulator_get_drvdata - get regulator driver data
6468 * @regulator: regulator
6469 *
6470 * Get regulator driver private data. This call can be used in the consumer
6471 * driver context when non API regulator specific functions need to be called.
6472 *
6473 * Return: Pointer to regulator driver private data.
6474 */
regulator_get_drvdata(struct regulator * regulator)6475 void *regulator_get_drvdata(struct regulator *regulator)
6476 {
6477 return regulator->rdev->reg_data;
6478 }
6479 EXPORT_SYMBOL_GPL(regulator_get_drvdata);
6480
6481 /**
6482 * regulator_set_drvdata - set regulator driver data
6483 * @regulator: regulator
6484 * @data: data
6485 */
regulator_set_drvdata(struct regulator * regulator,void * data)6486 void regulator_set_drvdata(struct regulator *regulator, void *data)
6487 {
6488 regulator->rdev->reg_data = data;
6489 }
6490 EXPORT_SYMBOL_GPL(regulator_set_drvdata);
6491
6492 /**
6493 * rdev_get_id - get regulator ID
6494 * @rdev: regulator
6495 *
6496 * Return: Regulator ID for @rdev.
6497 */
rdev_get_id(struct regulator_dev * rdev)6498 int rdev_get_id(struct regulator_dev *rdev)
6499 {
6500 return rdev->desc->id;
6501 }
6502 EXPORT_SYMBOL_GPL(rdev_get_id);
6503
rdev_get_dev(struct regulator_dev * rdev)6504 struct device *rdev_get_dev(struct regulator_dev *rdev)
6505 {
6506 return &rdev->dev;
6507 }
6508 EXPORT_SYMBOL_GPL(rdev_get_dev);
6509
rdev_get_regmap(struct regulator_dev * rdev)6510 struct regmap *rdev_get_regmap(struct regulator_dev *rdev)
6511 {
6512 return rdev->regmap;
6513 }
6514 EXPORT_SYMBOL_GPL(rdev_get_regmap);
6515
regulator_get_init_drvdata(struct regulator_init_data * reg_init_data)6516 void *regulator_get_init_drvdata(struct regulator_init_data *reg_init_data)
6517 {
6518 return reg_init_data->driver_data;
6519 }
6520 EXPORT_SYMBOL_GPL(regulator_get_init_drvdata);
6521
6522 #ifdef CONFIG_DEBUG_FS
supply_map_show(struct seq_file * sf,void * data)6523 static int supply_map_show(struct seq_file *sf, void *data)
6524 {
6525 struct regulator_map *map;
6526
6527 list_for_each_entry(map, ®ulator_map_list, list) {
6528 seq_printf(sf, "%s -> %s.%s\n",
6529 rdev_get_name(map->regulator), map->dev_name,
6530 map->supply);
6531 }
6532
6533 return 0;
6534 }
6535 DEFINE_SHOW_ATTRIBUTE(supply_map);
6536
6537 struct summary_data {
6538 struct seq_file *s;
6539 struct regulator_dev *parent;
6540 int level;
6541 };
6542
6543 static void regulator_summary_show_subtree(struct seq_file *s,
6544 struct regulator_dev *rdev,
6545 int level);
6546
regulator_summary_show_children(struct device * dev,void * data)6547 static int regulator_summary_show_children(struct device *dev, void *data)
6548 {
6549 struct regulator_dev *rdev = dev_to_rdev(dev);
6550 struct summary_data *summary_data = data;
6551
6552 if (rdev->supply && rdev->supply->rdev == summary_data->parent)
6553 regulator_summary_show_subtree(summary_data->s, rdev,
6554 summary_data->level + 1);
6555
6556 return 0;
6557 }
6558
regulator_summary_show_subtree(struct seq_file * s,struct regulator_dev * rdev,int level)6559 static void regulator_summary_show_subtree(struct seq_file *s,
6560 struct regulator_dev *rdev,
6561 int level)
6562 {
6563 struct regulation_constraints *c;
6564 struct regulator *consumer;
6565 struct summary_data summary_data;
6566 unsigned int opmode;
6567
6568 if (!rdev)
6569 return;
6570
6571 opmode = _regulator_get_mode_unlocked(rdev);
6572 seq_printf(s, "%*s%-*s %3d %4d %6d %7s ",
6573 level * 3 + 1, "",
6574 30 - level * 3, rdev_get_name(rdev),
6575 rdev->use_count, rdev->open_count, rdev->bypass_count,
6576 regulator_opmode_to_str(opmode));
6577
6578 seq_printf(s, "%5dmV ", regulator_get_voltage_rdev(rdev) / 1000);
6579 seq_printf(s, "%5dmA ",
6580 _regulator_get_current_limit_unlocked(rdev) / 1000);
6581
6582 c = rdev->constraints;
6583 if (c) {
6584 switch (rdev->desc->type) {
6585 case REGULATOR_VOLTAGE:
6586 seq_printf(s, "%5dmV %5dmV ",
6587 c->min_uV / 1000, c->max_uV / 1000);
6588 break;
6589 case REGULATOR_CURRENT:
6590 seq_printf(s, "%5dmA %5dmA ",
6591 c->min_uA / 1000, c->max_uA / 1000);
6592 break;
6593 }
6594 }
6595
6596 seq_puts(s, "\n");
6597
6598 list_for_each_entry(consumer, &rdev->consumer_list, list) {
6599 if (consumer->dev && consumer->dev->class == ®ulator_class)
6600 continue;
6601
6602 seq_printf(s, "%*s%-*s ",
6603 (level + 1) * 3 + 1, "",
6604 30 - (level + 1) * 3,
6605 consumer->supply_name ? consumer->supply_name :
6606 consumer->dev ? dev_name(consumer->dev) : "deviceless");
6607
6608 switch (rdev->desc->type) {
6609 case REGULATOR_VOLTAGE:
6610 seq_printf(s, "%3d %33dmA%c%5dmV %5dmV",
6611 consumer->enable_count,
6612 consumer->uA_load / 1000,
6613 consumer->uA_load && !consumer->enable_count ?
6614 '*' : ' ',
6615 consumer->voltage[PM_SUSPEND_ON].min_uV / 1000,
6616 consumer->voltage[PM_SUSPEND_ON].max_uV / 1000);
6617 break;
6618 case REGULATOR_CURRENT:
6619 break;
6620 }
6621
6622 seq_puts(s, "\n");
6623 }
6624
6625 summary_data.s = s;
6626 summary_data.level = level;
6627 summary_data.parent = rdev;
6628
6629 class_for_each_device(®ulator_class, NULL, &summary_data,
6630 regulator_summary_show_children);
6631 }
6632
6633 struct summary_lock_data {
6634 struct ww_acquire_ctx *ww_ctx;
6635 struct regulator_dev **new_contended_rdev;
6636 struct regulator_dev **old_contended_rdev;
6637 };
6638
regulator_summary_lock_one(struct device * dev,void * data)6639 static int regulator_summary_lock_one(struct device *dev, void *data)
6640 {
6641 struct regulator_dev *rdev = dev_to_rdev(dev);
6642 struct summary_lock_data *lock_data = data;
6643 int ret = 0;
6644
6645 if (rdev != *lock_data->old_contended_rdev) {
6646 ret = regulator_lock_nested(rdev, lock_data->ww_ctx);
6647
6648 if (ret == -EDEADLK)
6649 *lock_data->new_contended_rdev = rdev;
6650 else
6651 WARN_ON_ONCE(ret);
6652 } else {
6653 *lock_data->old_contended_rdev = NULL;
6654 }
6655
6656 return ret;
6657 }
6658
regulator_summary_unlock_one(struct device * dev,void * data)6659 static int regulator_summary_unlock_one(struct device *dev, void *data)
6660 {
6661 struct regulator_dev *rdev = dev_to_rdev(dev);
6662 struct summary_lock_data *lock_data = data;
6663
6664 if (lock_data) {
6665 if (rdev == *lock_data->new_contended_rdev)
6666 return -EDEADLK;
6667 }
6668
6669 regulator_unlock(rdev);
6670
6671 return 0;
6672 }
6673
regulator_summary_lock_all(struct ww_acquire_ctx * ww_ctx,struct regulator_dev ** new_contended_rdev,struct regulator_dev ** old_contended_rdev)6674 static int regulator_summary_lock_all(struct ww_acquire_ctx *ww_ctx,
6675 struct regulator_dev **new_contended_rdev,
6676 struct regulator_dev **old_contended_rdev)
6677 {
6678 struct summary_lock_data lock_data;
6679 int ret;
6680
6681 lock_data.ww_ctx = ww_ctx;
6682 lock_data.new_contended_rdev = new_contended_rdev;
6683 lock_data.old_contended_rdev = old_contended_rdev;
6684
6685 ret = class_for_each_device(®ulator_class, NULL, &lock_data,
6686 regulator_summary_lock_one);
6687 if (ret)
6688 class_for_each_device(®ulator_class, NULL, &lock_data,
6689 regulator_summary_unlock_one);
6690
6691 return ret;
6692 }
6693
regulator_summary_lock(struct ww_acquire_ctx * ww_ctx)6694 static void regulator_summary_lock(struct ww_acquire_ctx *ww_ctx)
6695 {
6696 struct regulator_dev *new_contended_rdev = NULL;
6697 struct regulator_dev *old_contended_rdev = NULL;
6698 int err;
6699
6700 mutex_lock(®ulator_list_mutex);
6701
6702 ww_acquire_init(ww_ctx, ®ulator_ww_class);
6703
6704 do {
6705 if (new_contended_rdev) {
6706 ww_mutex_lock_slow(&new_contended_rdev->mutex, ww_ctx);
6707 old_contended_rdev = new_contended_rdev;
6708 old_contended_rdev->ref_cnt++;
6709 old_contended_rdev->mutex_owner = current;
6710 }
6711
6712 err = regulator_summary_lock_all(ww_ctx,
6713 &new_contended_rdev,
6714 &old_contended_rdev);
6715
6716 if (old_contended_rdev)
6717 regulator_unlock(old_contended_rdev);
6718
6719 } while (err == -EDEADLK);
6720
6721 ww_acquire_done(ww_ctx);
6722 }
6723
regulator_summary_unlock(struct ww_acquire_ctx * ww_ctx)6724 static void regulator_summary_unlock(struct ww_acquire_ctx *ww_ctx)
6725 {
6726 class_for_each_device(®ulator_class, NULL, NULL,
6727 regulator_summary_unlock_one);
6728 ww_acquire_fini(ww_ctx);
6729
6730 mutex_unlock(®ulator_list_mutex);
6731 }
6732
regulator_summary_show_roots(struct device * dev,void * data)6733 static int regulator_summary_show_roots(struct device *dev, void *data)
6734 {
6735 struct regulator_dev *rdev = dev_to_rdev(dev);
6736 struct seq_file *s = data;
6737
6738 if (!rdev->supply)
6739 regulator_summary_show_subtree(s, rdev, 0);
6740
6741 return 0;
6742 }
6743
regulator_summary_show(struct seq_file * s,void * data)6744 static int regulator_summary_show(struct seq_file *s, void *data)
6745 {
6746 struct ww_acquire_ctx ww_ctx;
6747
6748 seq_puts(s, " regulator use open bypass opmode voltage current min max\n");
6749 seq_puts(s, "---------------------------------------------------------------------------------------\n");
6750
6751 regulator_summary_lock(&ww_ctx);
6752
6753 class_for_each_device(®ulator_class, NULL, s,
6754 regulator_summary_show_roots);
6755
6756 regulator_summary_unlock(&ww_ctx);
6757
6758 return 0;
6759 }
6760 DEFINE_SHOW_ATTRIBUTE(regulator_summary);
6761 #endif /* CONFIG_DEBUG_FS */
6762
regulator_init(void)6763 static int __init regulator_init(void)
6764 {
6765 int ret;
6766
6767 ret = bus_register(®ulator_bus);
6768 if (ret)
6769 return ret;
6770
6771 ret = class_register(®ulator_class);
6772 if (ret)
6773 goto err_class;
6774
6775 ret = driver_register(®ulator_bus_driver);
6776 if (ret)
6777 goto err_driver;
6778
6779 debugfs_root = debugfs_create_dir("regulator", NULL);
6780 if (IS_ERR(debugfs_root))
6781 pr_debug("regulator: Failed to create debugfs directory\n");
6782
6783 #ifdef CONFIG_DEBUG_FS
6784 debugfs_create_file("supply_map", 0444, debugfs_root, NULL,
6785 &supply_map_fops);
6786
6787 debugfs_create_file("regulator_summary", 0444, debugfs_root,
6788 NULL, ®ulator_summary_fops);
6789 #endif
6790 regulator_dummy_init();
6791
6792 regulator_coupler_register(&generic_regulator_coupler);
6793
6794 return 0;
6795
6796 err_driver:
6797 class_unregister(®ulator_class);
6798 err_class:
6799 bus_unregister(®ulator_bus);
6800 return ret;
6801 }
6802
6803 /* init early to allow our consumers to complete system booting */
6804 core_initcall(regulator_init);
6805
regulator_late_cleanup(struct device * dev,void * data)6806 static int regulator_late_cleanup(struct device *dev, void *data)
6807 {
6808 struct regulator_dev *rdev = dev_to_rdev(dev);
6809 struct regulation_constraints *c = rdev->constraints;
6810 int ret;
6811
6812 if (c && c->always_on)
6813 return 0;
6814
6815 if (!regulator_ops_is_valid(rdev, REGULATOR_CHANGE_STATUS))
6816 return 0;
6817
6818 regulator_lock(rdev);
6819
6820 if (rdev->use_count)
6821 goto unlock;
6822
6823 /* If reading the status failed, assume that it's off. */
6824 if (_regulator_is_enabled(rdev) <= 0)
6825 goto unlock;
6826
6827 if (have_full_constraints()) {
6828 /* We log since this may kill the system if it goes
6829 * wrong.
6830 */
6831 rdev_info(rdev, "disabling\n");
6832 ret = _regulator_do_disable(rdev);
6833 if (ret != 0)
6834 rdev_err(rdev, "couldn't disable: %pe\n", ERR_PTR(ret));
6835 } else {
6836 /* The intention is that in future we will
6837 * assume that full constraints are provided
6838 * so warn even if we aren't going to do
6839 * anything here.
6840 */
6841 rdev_warn(rdev, "incomplete constraints, leaving on\n");
6842 }
6843
6844 unlock:
6845 regulator_unlock(rdev);
6846
6847 return 0;
6848 }
6849
6850 static bool regulator_ignore_unused;
regulator_ignore_unused_setup(char * __unused)6851 static int __init regulator_ignore_unused_setup(char *__unused)
6852 {
6853 regulator_ignore_unused = true;
6854 return 1;
6855 }
6856 __setup("regulator_ignore_unused", regulator_ignore_unused_setup);
6857
regulator_init_complete_work_function(struct work_struct * work)6858 static void regulator_init_complete_work_function(struct work_struct *work)
6859 {
6860 /*
6861 * For debugging purposes, it may be useful to prevent unused
6862 * regulators from being disabled.
6863 */
6864 if (regulator_ignore_unused) {
6865 pr_warn("regulator: Not disabling unused regulators\n");
6866 return;
6867 }
6868
6869 /* If we have a full configuration then disable any regulators
6870 * we have permission to change the status for and which are
6871 * not in use or always_on. This is effectively the default
6872 * for DT and ACPI as they have full constraints.
6873 */
6874 class_for_each_device(®ulator_class, NULL, NULL,
6875 regulator_late_cleanup);
6876 }
6877
6878 static DECLARE_DELAYED_WORK(regulator_init_complete_work,
6879 regulator_init_complete_work_function);
6880
regulator_init_complete(void)6881 static int __init regulator_init_complete(void)
6882 {
6883 /*
6884 * Since DT doesn't provide an idiomatic mechanism for
6885 * enabling full constraints and since it's much more natural
6886 * with DT to provide them just assume that a DT enabled
6887 * system has full constraints.
6888 */
6889 if (of_have_populated_dt())
6890 has_full_constraints = true;
6891
6892 /*
6893 * We punt completion for an arbitrary amount of time since
6894 * systems like distros will load many drivers from userspace
6895 * so consumers might not always be ready yet, this is
6896 * particularly an issue with laptops where this might bounce
6897 * the display off then on. Ideally we'd get a notification
6898 * from userspace when this happens but we don't so just wait
6899 * a bit and hope we waited long enough. It'd be better if
6900 * we'd only do this on systems that need it, and a kernel
6901 * command line option might be useful.
6902 */
6903 queue_delayed_work(system_freezable_wq,
6904 ®ulator_init_complete_work,
6905 msecs_to_jiffies(30000));
6906
6907 return 0;
6908 }
6909 late_initcall_sync(regulator_init_complete);
6910