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[mirror_ubuntu-bionic-kernel.git] / drivers / regulator / core.c
CommitLineData
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1/*
2 * core.c -- Voltage/Current Regulator framework.
3 *
4 * Copyright 2007, 2008 Wolfson Microelectronics PLC.
a5766f11 5 * Copyright 2008 SlimLogic Ltd.
414c70cb 6 *
a5766f11 7 * Author: Liam Girdwood <lrg@slimlogic.co.uk>
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8 *
9 * This program is free software; you can redistribute it and/or modify it
10 * under the terms of the GNU General Public License as published by the
11 * Free Software Foundation; either version 2 of the License, or (at your
12 * option) any later version.
13 *
14 */
15
16#include <linux/kernel.h>
17#include <linux/init.h>
18#include <linux/device.h>
19#include <linux/err.h>
20#include <linux/mutex.h>
21#include <linux/suspend.h>
22#include <linux/regulator/consumer.h>
23#include <linux/regulator/driver.h>
24#include <linux/regulator/machine.h>
25
26#define REGULATOR_VERSION "0.5"
27
28static DEFINE_MUTEX(regulator_list_mutex);
29static LIST_HEAD(regulator_list);
30static LIST_HEAD(regulator_map_list);
ca725561 31static int has_full_constraints;
414c70cb 32
8dc5390d 33/*
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34 * struct regulator_map
35 *
36 * Used to provide symbolic supply names to devices.
37 */
38struct regulator_map {
39 struct list_head list;
40f9244f 40 const char *dev_name; /* The dev_name() for the consumer */
414c70cb 41 const char *supply;
a5766f11 42 struct regulator_dev *regulator;
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43};
44
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45/*
46 * struct regulator
47 *
48 * One for each consumer device.
49 */
50struct regulator {
51 struct device *dev;
52 struct list_head list;
53 int uA_load;
54 int min_uV;
55 int max_uV;
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56 char *supply_name;
57 struct device_attribute dev_attr;
58 struct regulator_dev *rdev;
59};
60
61static int _regulator_is_enabled(struct regulator_dev *rdev);
62static int _regulator_disable(struct regulator_dev *rdev);
63static int _regulator_get_voltage(struct regulator_dev *rdev);
64static int _regulator_get_current_limit(struct regulator_dev *rdev);
65static unsigned int _regulator_get_mode(struct regulator_dev *rdev);
66static void _notifier_call_chain(struct regulator_dev *rdev,
67 unsigned long event, void *data);
68
69/* gets the regulator for a given consumer device */
70static struct regulator *get_device_regulator(struct device *dev)
71{
72 struct regulator *regulator = NULL;
73 struct regulator_dev *rdev;
74
75 mutex_lock(&regulator_list_mutex);
76 list_for_each_entry(rdev, &regulator_list, list) {
77 mutex_lock(&rdev->mutex);
78 list_for_each_entry(regulator, &rdev->consumer_list, list) {
79 if (regulator->dev == dev) {
80 mutex_unlock(&rdev->mutex);
81 mutex_unlock(&regulator_list_mutex);
82 return regulator;
83 }
84 }
85 mutex_unlock(&rdev->mutex);
86 }
87 mutex_unlock(&regulator_list_mutex);
88 return NULL;
89}
90
91/* Platform voltage constraint check */
92static int regulator_check_voltage(struct regulator_dev *rdev,
93 int *min_uV, int *max_uV)
94{
95 BUG_ON(*min_uV > *max_uV);
96
97 if (!rdev->constraints) {
98 printk(KERN_ERR "%s: no constraints for %s\n", __func__,
99 rdev->desc->name);
100 return -ENODEV;
101 }
102 if (!(rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_VOLTAGE)) {
103 printk(KERN_ERR "%s: operation not allowed for %s\n",
104 __func__, rdev->desc->name);
105 return -EPERM;
106 }
107
108 if (*max_uV > rdev->constraints->max_uV)
109 *max_uV = rdev->constraints->max_uV;
110 if (*min_uV < rdev->constraints->min_uV)
111 *min_uV = rdev->constraints->min_uV;
112
113 if (*min_uV > *max_uV)
114 return -EINVAL;
115
116 return 0;
117}
118
119/* current constraint check */
120static int regulator_check_current_limit(struct regulator_dev *rdev,
121 int *min_uA, int *max_uA)
122{
123 BUG_ON(*min_uA > *max_uA);
124
125 if (!rdev->constraints) {
126 printk(KERN_ERR "%s: no constraints for %s\n", __func__,
127 rdev->desc->name);
128 return -ENODEV;
129 }
130 if (!(rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_CURRENT)) {
131 printk(KERN_ERR "%s: operation not allowed for %s\n",
132 __func__, rdev->desc->name);
133 return -EPERM;
134 }
135
136 if (*max_uA > rdev->constraints->max_uA)
137 *max_uA = rdev->constraints->max_uA;
138 if (*min_uA < rdev->constraints->min_uA)
139 *min_uA = rdev->constraints->min_uA;
140
141 if (*min_uA > *max_uA)
142 return -EINVAL;
143
144 return 0;
145}
146
147/* operating mode constraint check */
148static int regulator_check_mode(struct regulator_dev *rdev, int mode)
149{
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150 switch (mode) {
151 case REGULATOR_MODE_FAST:
152 case REGULATOR_MODE_NORMAL:
153 case REGULATOR_MODE_IDLE:
154 case REGULATOR_MODE_STANDBY:
155 break;
156 default:
157 return -EINVAL;
158 }
159
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160 if (!rdev->constraints) {
161 printk(KERN_ERR "%s: no constraints for %s\n", __func__,
162 rdev->desc->name);
163 return -ENODEV;
164 }
165 if (!(rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_MODE)) {
166 printk(KERN_ERR "%s: operation not allowed for %s\n",
167 __func__, rdev->desc->name);
168 return -EPERM;
169 }
170 if (!(rdev->constraints->valid_modes_mask & mode)) {
171 printk(KERN_ERR "%s: invalid mode %x for %s\n",
172 __func__, mode, rdev->desc->name);
173 return -EINVAL;
174 }
175 return 0;
176}
177
178/* dynamic regulator mode switching constraint check */
179static int regulator_check_drms(struct regulator_dev *rdev)
180{
181 if (!rdev->constraints) {
182 printk(KERN_ERR "%s: no constraints for %s\n", __func__,
183 rdev->desc->name);
184 return -ENODEV;
185 }
186 if (!(rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_DRMS)) {
187 printk(KERN_ERR "%s: operation not allowed for %s\n",
188 __func__, rdev->desc->name);
189 return -EPERM;
190 }
191 return 0;
192}
193
194static ssize_t device_requested_uA_show(struct device *dev,
195 struct device_attribute *attr, char *buf)
196{
197 struct regulator *regulator;
198
199 regulator = get_device_regulator(dev);
200 if (regulator == NULL)
201 return 0;
202
203 return sprintf(buf, "%d\n", regulator->uA_load);
204}
205
206static ssize_t regulator_uV_show(struct device *dev,
207 struct device_attribute *attr, char *buf)
208{
a5766f11 209 struct regulator_dev *rdev = dev_get_drvdata(dev);
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210 ssize_t ret;
211
212 mutex_lock(&rdev->mutex);
213 ret = sprintf(buf, "%d\n", _regulator_get_voltage(rdev));
214 mutex_unlock(&rdev->mutex);
215
216 return ret;
217}
7ad68e2f 218static DEVICE_ATTR(microvolts, 0444, regulator_uV_show, NULL);
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219
220static ssize_t regulator_uA_show(struct device *dev,
221 struct device_attribute *attr, char *buf)
222{
a5766f11 223 struct regulator_dev *rdev = dev_get_drvdata(dev);
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224
225 return sprintf(buf, "%d\n", _regulator_get_current_limit(rdev));
226}
7ad68e2f 227static DEVICE_ATTR(microamps, 0444, regulator_uA_show, NULL);
414c70cb 228
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229static ssize_t regulator_name_show(struct device *dev,
230 struct device_attribute *attr, char *buf)
231{
232 struct regulator_dev *rdev = dev_get_drvdata(dev);
233 const char *name;
234
b39480ac 235 if (rdev->constraints && rdev->constraints->name)
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236 name = rdev->constraints->name;
237 else if (rdev->desc->name)
238 name = rdev->desc->name;
239 else
240 name = "";
241
242 return sprintf(buf, "%s\n", name);
243}
244
4fca9545 245static ssize_t regulator_print_opmode(char *buf, int mode)
414c70cb 246{
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247 switch (mode) {
248 case REGULATOR_MODE_FAST:
249 return sprintf(buf, "fast\n");
250 case REGULATOR_MODE_NORMAL:
251 return sprintf(buf, "normal\n");
252 case REGULATOR_MODE_IDLE:
253 return sprintf(buf, "idle\n");
254 case REGULATOR_MODE_STANDBY:
255 return sprintf(buf, "standby\n");
256 }
257 return sprintf(buf, "unknown\n");
258}
259
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260static ssize_t regulator_opmode_show(struct device *dev,
261 struct device_attribute *attr, char *buf)
414c70cb 262{
a5766f11 263 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 264
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265 return regulator_print_opmode(buf, _regulator_get_mode(rdev));
266}
7ad68e2f 267static DEVICE_ATTR(opmode, 0444, regulator_opmode_show, NULL);
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268
269static ssize_t regulator_print_state(char *buf, int state)
270{
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271 if (state > 0)
272 return sprintf(buf, "enabled\n");
273 else if (state == 0)
274 return sprintf(buf, "disabled\n");
275 else
276 return sprintf(buf, "unknown\n");
277}
278
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279static ssize_t regulator_state_show(struct device *dev,
280 struct device_attribute *attr, char *buf)
281{
282 struct regulator_dev *rdev = dev_get_drvdata(dev);
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283 ssize_t ret;
284
285 mutex_lock(&rdev->mutex);
286 ret = regulator_print_state(buf, _regulator_is_enabled(rdev));
287 mutex_unlock(&rdev->mutex);
4fca9545 288
9332546f 289 return ret;
4fca9545 290}
7ad68e2f 291static DEVICE_ATTR(state, 0444, regulator_state_show, NULL);
4fca9545 292
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293static ssize_t regulator_status_show(struct device *dev,
294 struct device_attribute *attr, char *buf)
295{
296 struct regulator_dev *rdev = dev_get_drvdata(dev);
297 int status;
298 char *label;
299
300 status = rdev->desc->ops->get_status(rdev);
301 if (status < 0)
302 return status;
303
304 switch (status) {
305 case REGULATOR_STATUS_OFF:
306 label = "off";
307 break;
308 case REGULATOR_STATUS_ON:
309 label = "on";
310 break;
311 case REGULATOR_STATUS_ERROR:
312 label = "error";
313 break;
314 case REGULATOR_STATUS_FAST:
315 label = "fast";
316 break;
317 case REGULATOR_STATUS_NORMAL:
318 label = "normal";
319 break;
320 case REGULATOR_STATUS_IDLE:
321 label = "idle";
322 break;
323 case REGULATOR_STATUS_STANDBY:
324 label = "standby";
325 break;
326 default:
327 return -ERANGE;
328 }
329
330 return sprintf(buf, "%s\n", label);
331}
332static DEVICE_ATTR(status, 0444, regulator_status_show, NULL);
333
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334static ssize_t regulator_min_uA_show(struct device *dev,
335 struct device_attribute *attr, char *buf)
336{
a5766f11 337 struct regulator_dev *rdev = dev_get_drvdata(dev);
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338
339 if (!rdev->constraints)
340 return sprintf(buf, "constraint not defined\n");
341
342 return sprintf(buf, "%d\n", rdev->constraints->min_uA);
343}
7ad68e2f 344static DEVICE_ATTR(min_microamps, 0444, regulator_min_uA_show, NULL);
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345
346static ssize_t regulator_max_uA_show(struct device *dev,
347 struct device_attribute *attr, char *buf)
348{
a5766f11 349 struct regulator_dev *rdev = dev_get_drvdata(dev);
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350
351 if (!rdev->constraints)
352 return sprintf(buf, "constraint not defined\n");
353
354 return sprintf(buf, "%d\n", rdev->constraints->max_uA);
355}
7ad68e2f 356static DEVICE_ATTR(max_microamps, 0444, regulator_max_uA_show, NULL);
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357
358static ssize_t regulator_min_uV_show(struct device *dev,
359 struct device_attribute *attr, char *buf)
360{
a5766f11 361 struct regulator_dev *rdev = dev_get_drvdata(dev);
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362
363 if (!rdev->constraints)
364 return sprintf(buf, "constraint not defined\n");
365
366 return sprintf(buf, "%d\n", rdev->constraints->min_uV);
367}
7ad68e2f 368static DEVICE_ATTR(min_microvolts, 0444, regulator_min_uV_show, NULL);
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369
370static ssize_t regulator_max_uV_show(struct device *dev,
371 struct device_attribute *attr, char *buf)
372{
a5766f11 373 struct regulator_dev *rdev = dev_get_drvdata(dev);
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374
375 if (!rdev->constraints)
376 return sprintf(buf, "constraint not defined\n");
377
378 return sprintf(buf, "%d\n", rdev->constraints->max_uV);
379}
7ad68e2f 380static DEVICE_ATTR(max_microvolts, 0444, regulator_max_uV_show, NULL);
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381
382static ssize_t regulator_total_uA_show(struct device *dev,
383 struct device_attribute *attr, char *buf)
384{
a5766f11 385 struct regulator_dev *rdev = dev_get_drvdata(dev);
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386 struct regulator *regulator;
387 int uA = 0;
388
389 mutex_lock(&rdev->mutex);
390 list_for_each_entry(regulator, &rdev->consumer_list, list)
391 uA += regulator->uA_load;
392 mutex_unlock(&rdev->mutex);
393 return sprintf(buf, "%d\n", uA);
394}
7ad68e2f 395static DEVICE_ATTR(requested_microamps, 0444, regulator_total_uA_show, NULL);
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396
397static ssize_t regulator_num_users_show(struct device *dev,
398 struct device_attribute *attr, char *buf)
399{
a5766f11 400 struct regulator_dev *rdev = dev_get_drvdata(dev);
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401 return sprintf(buf, "%d\n", rdev->use_count);
402}
403
404static ssize_t regulator_type_show(struct device *dev,
405 struct device_attribute *attr, char *buf)
406{
a5766f11 407 struct regulator_dev *rdev = dev_get_drvdata(dev);
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408
409 switch (rdev->desc->type) {
410 case REGULATOR_VOLTAGE:
411 return sprintf(buf, "voltage\n");
412 case REGULATOR_CURRENT:
413 return sprintf(buf, "current\n");
414 }
415 return sprintf(buf, "unknown\n");
416}
417
418static ssize_t regulator_suspend_mem_uV_show(struct device *dev,
419 struct device_attribute *attr, char *buf)
420{
a5766f11 421 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 422
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423 return sprintf(buf, "%d\n", rdev->constraints->state_mem.uV);
424}
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425static DEVICE_ATTR(suspend_mem_microvolts, 0444,
426 regulator_suspend_mem_uV_show, NULL);
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427
428static ssize_t regulator_suspend_disk_uV_show(struct device *dev,
429 struct device_attribute *attr, char *buf)
430{
a5766f11 431 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 432
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433 return sprintf(buf, "%d\n", rdev->constraints->state_disk.uV);
434}
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435static DEVICE_ATTR(suspend_disk_microvolts, 0444,
436 regulator_suspend_disk_uV_show, NULL);
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437
438static ssize_t regulator_suspend_standby_uV_show(struct device *dev,
439 struct device_attribute *attr, char *buf)
440{
a5766f11 441 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 442
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443 return sprintf(buf, "%d\n", rdev->constraints->state_standby.uV);
444}
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445static DEVICE_ATTR(suspend_standby_microvolts, 0444,
446 regulator_suspend_standby_uV_show, NULL);
414c70cb 447
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448static ssize_t regulator_suspend_mem_mode_show(struct device *dev,
449 struct device_attribute *attr, char *buf)
450{
a5766f11 451 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 452
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DB
453 return regulator_print_opmode(buf,
454 rdev->constraints->state_mem.mode);
414c70cb 455}
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456static DEVICE_ATTR(suspend_mem_mode, 0444,
457 regulator_suspend_mem_mode_show, NULL);
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458
459static ssize_t regulator_suspend_disk_mode_show(struct device *dev,
460 struct device_attribute *attr, char *buf)
461{
a5766f11 462 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 463
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464 return regulator_print_opmode(buf,
465 rdev->constraints->state_disk.mode);
414c70cb 466}
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467static DEVICE_ATTR(suspend_disk_mode, 0444,
468 regulator_suspend_disk_mode_show, NULL);
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469
470static ssize_t regulator_suspend_standby_mode_show(struct device *dev,
471 struct device_attribute *attr, char *buf)
472{
a5766f11 473 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 474
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475 return regulator_print_opmode(buf,
476 rdev->constraints->state_standby.mode);
414c70cb 477}
7ad68e2f
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478static DEVICE_ATTR(suspend_standby_mode, 0444,
479 regulator_suspend_standby_mode_show, NULL);
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480
481static ssize_t regulator_suspend_mem_state_show(struct device *dev,
482 struct device_attribute *attr, char *buf)
483{
a5766f11 484 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 485
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486 return regulator_print_state(buf,
487 rdev->constraints->state_mem.enabled);
414c70cb 488}
7ad68e2f
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489static DEVICE_ATTR(suspend_mem_state, 0444,
490 regulator_suspend_mem_state_show, NULL);
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491
492static ssize_t regulator_suspend_disk_state_show(struct device *dev,
493 struct device_attribute *attr, char *buf)
494{
a5766f11 495 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 496
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497 return regulator_print_state(buf,
498 rdev->constraints->state_disk.enabled);
414c70cb 499}
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500static DEVICE_ATTR(suspend_disk_state, 0444,
501 regulator_suspend_disk_state_show, NULL);
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502
503static ssize_t regulator_suspend_standby_state_show(struct device *dev,
504 struct device_attribute *attr, char *buf)
505{
a5766f11 506 struct regulator_dev *rdev = dev_get_drvdata(dev);
414c70cb 507
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508 return regulator_print_state(buf,
509 rdev->constraints->state_standby.enabled);
414c70cb 510}
7ad68e2f
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511static DEVICE_ATTR(suspend_standby_state, 0444,
512 regulator_suspend_standby_state_show, NULL);
513
bc558a60 514
7ad68e2f
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515/*
516 * These are the only attributes are present for all regulators.
517 * Other attributes are a function of regulator functionality.
518 */
414c70cb 519static struct device_attribute regulator_dev_attrs[] = {
bc558a60 520 __ATTR(name, 0444, regulator_name_show, NULL),
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521 __ATTR(num_users, 0444, regulator_num_users_show, NULL),
522 __ATTR(type, 0444, regulator_type_show, NULL),
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523 __ATTR_NULL,
524};
525
526static void regulator_dev_release(struct device *dev)
527{
a5766f11 528 struct regulator_dev *rdev = dev_get_drvdata(dev);
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529 kfree(rdev);
530}
531
532static struct class regulator_class = {
533 .name = "regulator",
534 .dev_release = regulator_dev_release,
535 .dev_attrs = regulator_dev_attrs,
536};
537
538/* Calculate the new optimum regulator operating mode based on the new total
539 * consumer load. All locks held by caller */
540static void drms_uA_update(struct regulator_dev *rdev)
541{
542 struct regulator *sibling;
543 int current_uA = 0, output_uV, input_uV, err;
544 unsigned int mode;
545
546 err = regulator_check_drms(rdev);
547 if (err < 0 || !rdev->desc->ops->get_optimum_mode ||
036de8ef
DC
548 !rdev->desc->ops->get_voltage || !rdev->desc->ops->set_mode)
549 return;
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550
551 /* get output voltage */
552 output_uV = rdev->desc->ops->get_voltage(rdev);
553 if (output_uV <= 0)
554 return;
555
556 /* get input voltage */
557 if (rdev->supply && rdev->supply->desc->ops->get_voltage)
558 input_uV = rdev->supply->desc->ops->get_voltage(rdev->supply);
559 else
560 input_uV = rdev->constraints->input_uV;
561 if (input_uV <= 0)
562 return;
563
564 /* calc total requested load */
565 list_for_each_entry(sibling, &rdev->consumer_list, list)
566 current_uA += sibling->uA_load;
567
568 /* now get the optimum mode for our new total regulator load */
569 mode = rdev->desc->ops->get_optimum_mode(rdev, input_uV,
570 output_uV, current_uA);
571
572 /* check the new mode is allowed */
573 err = regulator_check_mode(rdev, mode);
574 if (err == 0)
575 rdev->desc->ops->set_mode(rdev, mode);
576}
577
578static int suspend_set_state(struct regulator_dev *rdev,
579 struct regulator_state *rstate)
580{
581 int ret = 0;
582
583 /* enable & disable are mandatory for suspend control */
584 if (!rdev->desc->ops->set_suspend_enable ||
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585 !rdev->desc->ops->set_suspend_disable) {
586 printk(KERN_ERR "%s: no way to set suspend state\n",
587 __func__);
414c70cb 588 return -EINVAL;
a5766f11 589 }
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590
591 if (rstate->enabled)
592 ret = rdev->desc->ops->set_suspend_enable(rdev);
593 else
594 ret = rdev->desc->ops->set_suspend_disable(rdev);
595 if (ret < 0) {
596 printk(KERN_ERR "%s: failed to enabled/disable\n", __func__);
597 return ret;
598 }
599
600 if (rdev->desc->ops->set_suspend_voltage && rstate->uV > 0) {
601 ret = rdev->desc->ops->set_suspend_voltage(rdev, rstate->uV);
602 if (ret < 0) {
603 printk(KERN_ERR "%s: failed to set voltage\n",
604 __func__);
605 return ret;
606 }
607 }
608
609 if (rdev->desc->ops->set_suspend_mode && rstate->mode > 0) {
610 ret = rdev->desc->ops->set_suspend_mode(rdev, rstate->mode);
611 if (ret < 0) {
612 printk(KERN_ERR "%s: failed to set mode\n", __func__);
613 return ret;
614 }
615 }
616 return ret;
617}
618
619/* locks held by caller */
620static int suspend_prepare(struct regulator_dev *rdev, suspend_state_t state)
621{
622 if (!rdev->constraints)
623 return -EINVAL;
624
625 switch (state) {
626 case PM_SUSPEND_STANDBY:
627 return suspend_set_state(rdev,
628 &rdev->constraints->state_standby);
629 case PM_SUSPEND_MEM:
630 return suspend_set_state(rdev,
631 &rdev->constraints->state_mem);
632 case PM_SUSPEND_MAX:
633 return suspend_set_state(rdev,
634 &rdev->constraints->state_disk);
635 default:
636 return -EINVAL;
637 }
638}
639
640static void print_constraints(struct regulator_dev *rdev)
641{
642 struct regulation_constraints *constraints = rdev->constraints;
643 char buf[80];
644 int count;
645
646 if (rdev->desc->type == REGULATOR_VOLTAGE) {
647 if (constraints->min_uV == constraints->max_uV)
648 count = sprintf(buf, "%d mV ",
649 constraints->min_uV / 1000);
650 else
651 count = sprintf(buf, "%d <--> %d mV ",
652 constraints->min_uV / 1000,
653 constraints->max_uV / 1000);
654 } else {
655 if (constraints->min_uA == constraints->max_uA)
656 count = sprintf(buf, "%d mA ",
657 constraints->min_uA / 1000);
658 else
659 count = sprintf(buf, "%d <--> %d mA ",
660 constraints->min_uA / 1000,
661 constraints->max_uA / 1000);
662 }
663 if (constraints->valid_modes_mask & REGULATOR_MODE_FAST)
664 count += sprintf(buf + count, "fast ");
665 if (constraints->valid_modes_mask & REGULATOR_MODE_NORMAL)
666 count += sprintf(buf + count, "normal ");
667 if (constraints->valid_modes_mask & REGULATOR_MODE_IDLE)
668 count += sprintf(buf + count, "idle ");
669 if (constraints->valid_modes_mask & REGULATOR_MODE_STANDBY)
670 count += sprintf(buf + count, "standby");
671
672 printk(KERN_INFO "regulator: %s: %s\n", rdev->desc->name, buf);
673}
674
a5766f11
LG
675/**
676 * set_machine_constraints - sets regulator constraints
69279fb9 677 * @rdev: regulator source
c8e7e464 678 * @constraints: constraints to apply
a5766f11
LG
679 *
680 * Allows platform initialisation code to define and constrain
681 * regulator circuits e.g. valid voltage/current ranges, etc. NOTE:
682 * Constraints *must* be set by platform code in order for some
683 * regulator operations to proceed i.e. set_voltage, set_current_limit,
684 * set_mode.
685 */
686static int set_machine_constraints(struct regulator_dev *rdev,
687 struct regulation_constraints *constraints)
688{
689 int ret = 0;
e06f5b4f 690 const char *name;
e5fda26c 691 struct regulator_ops *ops = rdev->desc->ops;
e06f5b4f
MB
692
693 if (constraints->name)
694 name = constraints->name;
695 else if (rdev->desc->name)
696 name = rdev->desc->name;
697 else
698 name = "regulator";
a5766f11 699
4367cfdc
DB
700 /* constrain machine-level voltage specs to fit
701 * the actual range supported by this regulator.
702 */
703 if (ops->list_voltage && rdev->desc->n_voltages) {
704 int count = rdev->desc->n_voltages;
705 int i;
706 int min_uV = INT_MAX;
707 int max_uV = INT_MIN;
708 int cmin = constraints->min_uV;
709 int cmax = constraints->max_uV;
710
3e590918
MB
711 /* it's safe to autoconfigure fixed-voltage supplies
712 and the constraints are used by list_voltage. */
4367cfdc 713 if (count == 1 && !cmin) {
3e590918 714 cmin = 1;
4367cfdc 715 cmax = INT_MAX;
3e590918
MB
716 constraints->min_uV = cmin;
717 constraints->max_uV = cmax;
4367cfdc
DB
718 }
719
3e2b9abd
MB
720 /* voltage constraints are optional */
721 if ((cmin == 0) && (cmax == 0))
722 goto out;
723
4367cfdc 724 /* else require explicit machine-level constraints */
3e2b9abd 725 if (cmin <= 0 || cmax <= 0 || cmax < cmin) {
4367cfdc
DB
726 pr_err("%s: %s '%s' voltage constraints\n",
727 __func__, "invalid", name);
728 ret = -EINVAL;
729 goto out;
730 }
731
732 /* initial: [cmin..cmax] valid, [min_uV..max_uV] not */
733 for (i = 0; i < count; i++) {
734 int value;
735
736 value = ops->list_voltage(rdev, i);
737 if (value <= 0)
738 continue;
739
740 /* maybe adjust [min_uV..max_uV] */
741 if (value >= cmin && value < min_uV)
742 min_uV = value;
743 if (value <= cmax && value > max_uV)
744 max_uV = value;
745 }
746
747 /* final: [min_uV..max_uV] valid iff constraints valid */
748 if (max_uV < min_uV) {
749 pr_err("%s: %s '%s' voltage constraints\n",
750 __func__, "unsupportable", name);
751 ret = -EINVAL;
752 goto out;
753 }
754
755 /* use regulator's subset of machine constraints */
756 if (constraints->min_uV < min_uV) {
757 pr_debug("%s: override '%s' %s, %d -> %d\n",
758 __func__, name, "min_uV",
759 constraints->min_uV, min_uV);
760 constraints->min_uV = min_uV;
761 }
762 if (constraints->max_uV > max_uV) {
763 pr_debug("%s: override '%s' %s, %d -> %d\n",
764 __func__, name, "max_uV",
765 constraints->max_uV, max_uV);
766 constraints->max_uV = max_uV;
767 }
768 }
769
a5766f11
LG
770 rdev->constraints = constraints;
771
772 /* do we need to apply the constraint voltage */
773 if (rdev->constraints->apply_uV &&
774 rdev->constraints->min_uV == rdev->constraints->max_uV &&
e5fda26c
MB
775 ops->set_voltage) {
776 ret = ops->set_voltage(rdev,
a5766f11
LG
777 rdev->constraints->min_uV, rdev->constraints->max_uV);
778 if (ret < 0) {
e06f5b4f
MB
779 printk(KERN_ERR "%s: failed to apply %duV constraint to %s\n",
780 __func__,
781 rdev->constraints->min_uV, name);
a5766f11
LG
782 rdev->constraints = NULL;
783 goto out;
784 }
785 }
786
a5766f11 787 /* do we need to setup our suspend state */
e06f5b4f 788 if (constraints->initial_state) {
a5766f11 789 ret = suspend_prepare(rdev, constraints->initial_state);
e06f5b4f
MB
790 if (ret < 0) {
791 printk(KERN_ERR "%s: failed to set suspend state for %s\n",
792 __func__, name);
793 rdev->constraints = NULL;
794 goto out;
795 }
796 }
a5766f11 797
a308466c
MB
798 if (constraints->initial_mode) {
799 if (!ops->set_mode) {
800 printk(KERN_ERR "%s: no set_mode operation for %s\n",
801 __func__, name);
802 ret = -EINVAL;
803 goto out;
804 }
805
806 ret = ops->set_mode(rdev, constraints->initial_mode);
807 if (ret < 0) {
808 printk(KERN_ERR
809 "%s: failed to set initial mode for %s: %d\n",
810 __func__, name, ret);
811 goto out;
812 }
813 }
814
cacf90f2
MB
815 /* If the constraints say the regulator should be on at this point
816 * and we have control then make sure it is enabled.
817 */
818 if ((constraints->always_on || constraints->boot_on) && ops->enable) {
e5fda26c
MB
819 ret = ops->enable(rdev);
820 if (ret < 0) {
821 printk(KERN_ERR "%s: failed to enable %s\n",
822 __func__, name);
823 rdev->constraints = NULL;
824 goto out;
825 }
826 }
827
a5766f11
LG
828 print_constraints(rdev);
829out:
830 return ret;
831}
832
833/**
834 * set_supply - set regulator supply regulator
69279fb9
MB
835 * @rdev: regulator name
836 * @supply_rdev: supply regulator name
a5766f11
LG
837 *
838 * Called by platform initialisation code to set the supply regulator for this
839 * regulator. This ensures that a regulators supply will also be enabled by the
840 * core if it's child is enabled.
841 */
842static int set_supply(struct regulator_dev *rdev,
843 struct regulator_dev *supply_rdev)
844{
845 int err;
846
847 err = sysfs_create_link(&rdev->dev.kobj, &supply_rdev->dev.kobj,
848 "supply");
849 if (err) {
850 printk(KERN_ERR
851 "%s: could not add device link %s err %d\n",
852 __func__, supply_rdev->dev.kobj.name, err);
853 goto out;
854 }
855 rdev->supply = supply_rdev;
856 list_add(&rdev->slist, &supply_rdev->supply_list);
857out:
858 return err;
859}
860
861/**
862 * set_consumer_device_supply: Bind a regulator to a symbolic supply
69279fb9
MB
863 * @rdev: regulator source
864 * @consumer_dev: device the supply applies to
40f9244f 865 * @consumer_dev_name: dev_name() string for device supply applies to
69279fb9 866 * @supply: symbolic name for supply
a5766f11
LG
867 *
868 * Allows platform initialisation code to map physical regulator
869 * sources to symbolic names for supplies for use by devices. Devices
870 * should use these symbolic names to request regulators, avoiding the
871 * need to provide board-specific regulator names as platform data.
40f9244f
MB
872 *
873 * Only one of consumer_dev and consumer_dev_name may be specified.
a5766f11
LG
874 */
875static int set_consumer_device_supply(struct regulator_dev *rdev,
40f9244f
MB
876 struct device *consumer_dev, const char *consumer_dev_name,
877 const char *supply)
a5766f11
LG
878{
879 struct regulator_map *node;
9ed2099e 880 int has_dev;
a5766f11 881
40f9244f
MB
882 if (consumer_dev && consumer_dev_name)
883 return -EINVAL;
884
885 if (!consumer_dev_name && consumer_dev)
886 consumer_dev_name = dev_name(consumer_dev);
887
a5766f11
LG
888 if (supply == NULL)
889 return -EINVAL;
890
9ed2099e
MB
891 if (consumer_dev_name != NULL)
892 has_dev = 1;
893 else
894 has_dev = 0;
895
6001e13c 896 list_for_each_entry(node, &regulator_map_list, list) {
40f9244f 897 if (consumer_dev_name != node->dev_name)
6001e13c
DB
898 continue;
899 if (strcmp(node->supply, supply) != 0)
900 continue;
901
902 dev_dbg(consumer_dev, "%s/%s is '%s' supply; fail %s/%s\n",
903 dev_name(&node->regulator->dev),
904 node->regulator->desc->name,
905 supply,
906 dev_name(&rdev->dev), rdev->desc->name);
907 return -EBUSY;
908 }
909
9ed2099e 910 node = kzalloc(sizeof(struct regulator_map), GFP_KERNEL);
a5766f11
LG
911 if (node == NULL)
912 return -ENOMEM;
913
914 node->regulator = rdev;
a5766f11
LG
915 node->supply = supply;
916
9ed2099e
MB
917 if (has_dev) {
918 node->dev_name = kstrdup(consumer_dev_name, GFP_KERNEL);
919 if (node->dev_name == NULL) {
920 kfree(node);
921 return -ENOMEM;
922 }
40f9244f
MB
923 }
924
a5766f11
LG
925 list_add(&node->list, &regulator_map_list);
926 return 0;
927}
928
929static void unset_consumer_device_supply(struct regulator_dev *rdev,
40f9244f 930 const char *consumer_dev_name, struct device *consumer_dev)
a5766f11
LG
931{
932 struct regulator_map *node, *n;
933
40f9244f
MB
934 if (consumer_dev && !consumer_dev_name)
935 consumer_dev_name = dev_name(consumer_dev);
936
a5766f11 937 list_for_each_entry_safe(node, n, &regulator_map_list, list) {
40f9244f
MB
938 if (rdev != node->regulator)
939 continue;
940
941 if (consumer_dev_name && node->dev_name &&
942 strcmp(consumer_dev_name, node->dev_name))
943 continue;
944
945 list_del(&node->list);
946 kfree(node->dev_name);
947 kfree(node);
948 return;
a5766f11
LG
949 }
950}
951
0f1d747b
MR
952static void unset_regulator_supplies(struct regulator_dev *rdev)
953{
954 struct regulator_map *node, *n;
955
956 list_for_each_entry_safe(node, n, &regulator_map_list, list) {
957 if (rdev == node->regulator) {
958 list_del(&node->list);
40f9244f 959 kfree(node->dev_name);
0f1d747b
MR
960 kfree(node);
961 return;
962 }
963 }
964}
965
414c70cb
LG
966#define REG_STR_SIZE 32
967
968static struct regulator *create_regulator(struct regulator_dev *rdev,
969 struct device *dev,
970 const char *supply_name)
971{
972 struct regulator *regulator;
973 char buf[REG_STR_SIZE];
974 int err, size;
975
976 regulator = kzalloc(sizeof(*regulator), GFP_KERNEL);
977 if (regulator == NULL)
978 return NULL;
979
980 mutex_lock(&rdev->mutex);
981 regulator->rdev = rdev;
982 list_add(&regulator->list, &rdev->consumer_list);
983
984 if (dev) {
985 /* create a 'requested_microamps_name' sysfs entry */
986 size = scnprintf(buf, REG_STR_SIZE, "microamps_requested_%s",
987 supply_name);
988 if (size >= REG_STR_SIZE)
989 goto overflow_err;
990
991 regulator->dev = dev;
992 regulator->dev_attr.attr.name = kstrdup(buf, GFP_KERNEL);
993 if (regulator->dev_attr.attr.name == NULL)
994 goto attr_name_err;
995
996 regulator->dev_attr.attr.owner = THIS_MODULE;
997 regulator->dev_attr.attr.mode = 0444;
998 regulator->dev_attr.show = device_requested_uA_show;
999 err = device_create_file(dev, &regulator->dev_attr);
1000 if (err < 0) {
1001 printk(KERN_WARNING "%s: could not add regulator_dev"
1002 " load sysfs\n", __func__);
1003 goto attr_name_err;
1004 }
1005
1006 /* also add a link to the device sysfs entry */
1007 size = scnprintf(buf, REG_STR_SIZE, "%s-%s",
1008 dev->kobj.name, supply_name);
1009 if (size >= REG_STR_SIZE)
1010 goto attr_err;
1011
1012 regulator->supply_name = kstrdup(buf, GFP_KERNEL);
1013 if (regulator->supply_name == NULL)
1014 goto attr_err;
1015
1016 err = sysfs_create_link(&rdev->dev.kobj, &dev->kobj,
1017 buf);
1018 if (err) {
1019 printk(KERN_WARNING
1020 "%s: could not add device link %s err %d\n",
1021 __func__, dev->kobj.name, err);
1022 device_remove_file(dev, &regulator->dev_attr);
1023 goto link_name_err;
1024 }
1025 }
1026 mutex_unlock(&rdev->mutex);
1027 return regulator;
1028link_name_err:
1029 kfree(regulator->supply_name);
1030attr_err:
1031 device_remove_file(regulator->dev, &regulator->dev_attr);
1032attr_name_err:
1033 kfree(regulator->dev_attr.attr.name);
1034overflow_err:
1035 list_del(&regulator->list);
1036 kfree(regulator);
1037 mutex_unlock(&rdev->mutex);
1038 return NULL;
1039}
1040
5ffbd136
MB
1041/* Internal regulator request function */
1042static struct regulator *_regulator_get(struct device *dev, const char *id,
1043 int exclusive)
414c70cb
LG
1044{
1045 struct regulator_dev *rdev;
1046 struct regulator_map *map;
1047 struct regulator *regulator = ERR_PTR(-ENODEV);
40f9244f 1048 const char *devname = NULL;
5ffbd136 1049 int ret;
414c70cb
LG
1050
1051 if (id == NULL) {
1052 printk(KERN_ERR "regulator: get() with no identifier\n");
1053 return regulator;
1054 }
1055
40f9244f
MB
1056 if (dev)
1057 devname = dev_name(dev);
1058
414c70cb
LG
1059 mutex_lock(&regulator_list_mutex);
1060
1061 list_for_each_entry(map, &regulator_map_list, list) {
40f9244f
MB
1062 /* If the mapping has a device set up it must match */
1063 if (map->dev_name &&
1064 (!devname || strcmp(map->dev_name, devname)))
1065 continue;
1066
1067 if (strcmp(map->supply, id) == 0) {
a5766f11 1068 rdev = map->regulator;
414c70cb 1069 goto found;
a5766f11 1070 }
414c70cb 1071 }
414c70cb
LG
1072 mutex_unlock(&regulator_list_mutex);
1073 return regulator;
1074
1075found:
5ffbd136
MB
1076 if (rdev->exclusive) {
1077 regulator = ERR_PTR(-EPERM);
1078 goto out;
1079 }
1080
1081 if (exclusive && rdev->open_count) {
1082 regulator = ERR_PTR(-EBUSY);
1083 goto out;
1084 }
1085
a5766f11
LG
1086 if (!try_module_get(rdev->owner))
1087 goto out;
1088
414c70cb
LG
1089 regulator = create_regulator(rdev, dev, id);
1090 if (regulator == NULL) {
1091 regulator = ERR_PTR(-ENOMEM);
1092 module_put(rdev->owner);
1093 }
1094
5ffbd136
MB
1095 rdev->open_count++;
1096 if (exclusive) {
1097 rdev->exclusive = 1;
1098
1099 ret = _regulator_is_enabled(rdev);
1100 if (ret > 0)
1101 rdev->use_count = 1;
1102 else
1103 rdev->use_count = 0;
1104 }
1105
a5766f11 1106out:
414c70cb 1107 mutex_unlock(&regulator_list_mutex);
5ffbd136 1108
414c70cb
LG
1109 return regulator;
1110}
5ffbd136
MB
1111
1112/**
1113 * regulator_get - lookup and obtain a reference to a regulator.
1114 * @dev: device for regulator "consumer"
1115 * @id: Supply name or regulator ID.
1116 *
1117 * Returns a struct regulator corresponding to the regulator producer,
1118 * or IS_ERR() condition containing errno.
1119 *
1120 * Use of supply names configured via regulator_set_device_supply() is
1121 * strongly encouraged. It is recommended that the supply name used
1122 * should match the name used for the supply and/or the relevant
1123 * device pins in the datasheet.
1124 */
1125struct regulator *regulator_get(struct device *dev, const char *id)
1126{
1127 return _regulator_get(dev, id, 0);
1128}
414c70cb
LG
1129EXPORT_SYMBOL_GPL(regulator_get);
1130
5ffbd136
MB
1131/**
1132 * regulator_get_exclusive - obtain exclusive access to a regulator.
1133 * @dev: device for regulator "consumer"
1134 * @id: Supply name or regulator ID.
1135 *
1136 * Returns a struct regulator corresponding to the regulator producer,
1137 * or IS_ERR() condition containing errno. Other consumers will be
1138 * unable to obtain this reference is held and the use count for the
1139 * regulator will be initialised to reflect the current state of the
1140 * regulator.
1141 *
1142 * This is intended for use by consumers which cannot tolerate shared
1143 * use of the regulator such as those which need to force the
1144 * regulator off for correct operation of the hardware they are
1145 * controlling.
1146 *
1147 * Use of supply names configured via regulator_set_device_supply() is
1148 * strongly encouraged. It is recommended that the supply name used
1149 * should match the name used for the supply and/or the relevant
1150 * device pins in the datasheet.
1151 */
1152struct regulator *regulator_get_exclusive(struct device *dev, const char *id)
1153{
1154 return _regulator_get(dev, id, 1);
1155}
1156EXPORT_SYMBOL_GPL(regulator_get_exclusive);
1157
414c70cb
LG
1158/**
1159 * regulator_put - "free" the regulator source
1160 * @regulator: regulator source
1161 *
1162 * Note: drivers must ensure that all regulator_enable calls made on this
1163 * regulator source are balanced by regulator_disable calls prior to calling
1164 * this function.
1165 */
1166void regulator_put(struct regulator *regulator)
1167{
1168 struct regulator_dev *rdev;
1169
1170 if (regulator == NULL || IS_ERR(regulator))
1171 return;
1172
414c70cb
LG
1173 mutex_lock(&regulator_list_mutex);
1174 rdev = regulator->rdev;
1175
1176 /* remove any sysfs entries */
1177 if (regulator->dev) {
1178 sysfs_remove_link(&rdev->dev.kobj, regulator->supply_name);
1179 kfree(regulator->supply_name);
1180 device_remove_file(regulator->dev, &regulator->dev_attr);
1181 kfree(regulator->dev_attr.attr.name);
1182 }
1183 list_del(&regulator->list);
1184 kfree(regulator);
1185
5ffbd136
MB
1186 rdev->open_count--;
1187 rdev->exclusive = 0;
1188
414c70cb
LG
1189 module_put(rdev->owner);
1190 mutex_unlock(&regulator_list_mutex);
1191}
1192EXPORT_SYMBOL_GPL(regulator_put);
1193
9a2372fa
MB
1194static int _regulator_can_change_status(struct regulator_dev *rdev)
1195{
1196 if (!rdev->constraints)
1197 return 0;
1198
1199 if (rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_STATUS)
1200 return 1;
1201 else
1202 return 0;
1203}
1204
414c70cb
LG
1205/* locks held by regulator_enable() */
1206static int _regulator_enable(struct regulator_dev *rdev)
1207{
9a2372fa 1208 int ret;
414c70cb
LG
1209
1210 /* do we need to enable the supply regulator first */
1211 if (rdev->supply) {
1212 ret = _regulator_enable(rdev->supply);
1213 if (ret < 0) {
1214 printk(KERN_ERR "%s: failed to enable %s: %d\n",
1215 __func__, rdev->desc->name, ret);
1216 return ret;
1217 }
1218 }
1219
1220 /* check voltage and requested load before enabling */
9a2372fa
MB
1221 if (rdev->constraints &&
1222 (rdev->constraints->valid_ops_mask & REGULATOR_CHANGE_DRMS))
1223 drms_uA_update(rdev);
414c70cb 1224
9a2372fa
MB
1225 if (rdev->use_count == 0) {
1226 /* The regulator may on if it's not switchable or left on */
1227 ret = _regulator_is_enabled(rdev);
1228 if (ret == -EINVAL || ret == 0) {
1229 if (!_regulator_can_change_status(rdev))
1230 return -EPERM;
1231
1232 if (rdev->desc->ops->enable) {
1233 ret = rdev->desc->ops->enable(rdev);
1234 if (ret < 0)
1235 return ret;
1236 } else {
1237 return -EINVAL;
1238 }
a7433cff 1239 } else if (ret < 0) {
9a2372fa 1240 printk(KERN_ERR "%s: is_enabled() failed for %s: %d\n",
414c70cb
LG
1241 __func__, rdev->desc->name, ret);
1242 return ret;
1243 }
a7433cff 1244 /* Fallthrough on positive return values - already enabled */
414c70cb
LG
1245 }
1246
9a2372fa
MB
1247 rdev->use_count++;
1248
1249 return 0;
414c70cb
LG
1250}
1251
1252/**
1253 * regulator_enable - enable regulator output
1254 * @regulator: regulator source
1255 *
cf7bbcdf
MB
1256 * Request that the regulator be enabled with the regulator output at
1257 * the predefined voltage or current value. Calls to regulator_enable()
1258 * must be balanced with calls to regulator_disable().
1259 *
414c70cb 1260 * NOTE: the output value can be set by other drivers, boot loader or may be
cf7bbcdf 1261 * hardwired in the regulator.
414c70cb
LG
1262 */
1263int regulator_enable(struct regulator *regulator)
1264{
412aec61
DB
1265 struct regulator_dev *rdev = regulator->rdev;
1266 int ret = 0;
414c70cb 1267
412aec61 1268 mutex_lock(&rdev->mutex);
cd94b505 1269 ret = _regulator_enable(rdev);
412aec61 1270 mutex_unlock(&rdev->mutex);
414c70cb
LG
1271 return ret;
1272}
1273EXPORT_SYMBOL_GPL(regulator_enable);
1274
1275/* locks held by regulator_disable() */
1276static int _regulator_disable(struct regulator_dev *rdev)
1277{
1278 int ret = 0;
1279
cd94b505
DB
1280 if (WARN(rdev->use_count <= 0,
1281 "unbalanced disables for %s\n",
1282 rdev->desc->name))
1283 return -EIO;
1284
414c70cb
LG
1285 /* are we the last user and permitted to disable ? */
1286 if (rdev->use_count == 1 && !rdev->constraints->always_on) {
1287
1288 /* we are last user */
9a2372fa
MB
1289 if (_regulator_can_change_status(rdev) &&
1290 rdev->desc->ops->disable) {
414c70cb
LG
1291 ret = rdev->desc->ops->disable(rdev);
1292 if (ret < 0) {
1293 printk(KERN_ERR "%s: failed to disable %s\n",
1294 __func__, rdev->desc->name);
1295 return ret;
1296 }
1297 }
1298
1299 /* decrease our supplies ref count and disable if required */
1300 if (rdev->supply)
1301 _regulator_disable(rdev->supply);
1302
1303 rdev->use_count = 0;
1304 } else if (rdev->use_count > 1) {
1305
1306 if (rdev->constraints &&
1307 (rdev->constraints->valid_ops_mask &
1308 REGULATOR_CHANGE_DRMS))
1309 drms_uA_update(rdev);
1310
1311 rdev->use_count--;
1312 }
1313 return ret;
1314}
1315
1316/**
1317 * regulator_disable - disable regulator output
1318 * @regulator: regulator source
1319 *
cf7bbcdf
MB
1320 * Disable the regulator output voltage or current. Calls to
1321 * regulator_enable() must be balanced with calls to
1322 * regulator_disable().
69279fb9 1323 *
414c70cb 1324 * NOTE: this will only disable the regulator output if no other consumer
cf7bbcdf
MB
1325 * devices have it enabled, the regulator device supports disabling and
1326 * machine constraints permit this operation.
414c70cb
LG
1327 */
1328int regulator_disable(struct regulator *regulator)
1329{
412aec61
DB
1330 struct regulator_dev *rdev = regulator->rdev;
1331 int ret = 0;
414c70cb 1332
412aec61 1333 mutex_lock(&rdev->mutex);
cd94b505 1334 ret = _regulator_disable(rdev);
412aec61 1335 mutex_unlock(&rdev->mutex);
414c70cb
LG
1336 return ret;
1337}
1338EXPORT_SYMBOL_GPL(regulator_disable);
1339
1340/* locks held by regulator_force_disable() */
1341static int _regulator_force_disable(struct regulator_dev *rdev)
1342{
1343 int ret = 0;
1344
1345 /* force disable */
1346 if (rdev->desc->ops->disable) {
1347 /* ah well, who wants to live forever... */
1348 ret = rdev->desc->ops->disable(rdev);
1349 if (ret < 0) {
1350 printk(KERN_ERR "%s: failed to force disable %s\n",
1351 __func__, rdev->desc->name);
1352 return ret;
1353 }
1354 /* notify other consumers that power has been forced off */
1355 _notifier_call_chain(rdev, REGULATOR_EVENT_FORCE_DISABLE,
1356 NULL);
1357 }
1358
1359 /* decrease our supplies ref count and disable if required */
1360 if (rdev->supply)
1361 _regulator_disable(rdev->supply);
1362
1363 rdev->use_count = 0;
1364 return ret;
1365}
1366
1367/**
1368 * regulator_force_disable - force disable regulator output
1369 * @regulator: regulator source
1370 *
1371 * Forcibly disable the regulator output voltage or current.
1372 * NOTE: this *will* disable the regulator output even if other consumer
1373 * devices have it enabled. This should be used for situations when device
1374 * damage will likely occur if the regulator is not disabled (e.g. over temp).
1375 */
1376int regulator_force_disable(struct regulator *regulator)
1377{
1378 int ret;
1379
1380 mutex_lock(&regulator->rdev->mutex);
414c70cb
LG
1381 regulator->uA_load = 0;
1382 ret = _regulator_force_disable(regulator->rdev);
1383 mutex_unlock(&regulator->rdev->mutex);
1384 return ret;
1385}
1386EXPORT_SYMBOL_GPL(regulator_force_disable);
1387
1388static int _regulator_is_enabled(struct regulator_dev *rdev)
1389{
414c70cb 1390 /* sanity check */
9332546f
MB
1391 if (!rdev->desc->ops->is_enabled)
1392 return -EINVAL;
414c70cb 1393
9332546f 1394 return rdev->desc->ops->is_enabled(rdev);
414c70cb
LG
1395}
1396
1397/**
1398 * regulator_is_enabled - is the regulator output enabled
1399 * @regulator: regulator source
1400 *
412aec61
DB
1401 * Returns positive if the regulator driver backing the source/client
1402 * has requested that the device be enabled, zero if it hasn't, else a
1403 * negative errno code.
1404 *
1405 * Note that the device backing this regulator handle can have multiple
1406 * users, so it might be enabled even if regulator_enable() was never
1407 * called for this particular source.
414c70cb
LG
1408 */
1409int regulator_is_enabled(struct regulator *regulator)
1410{
9332546f
MB
1411 int ret;
1412
1413 mutex_lock(&regulator->rdev->mutex);
1414 ret = _regulator_is_enabled(regulator->rdev);
1415 mutex_unlock(&regulator->rdev->mutex);
1416
1417 return ret;
414c70cb
LG
1418}
1419EXPORT_SYMBOL_GPL(regulator_is_enabled);
1420
4367cfdc
DB
1421/**
1422 * regulator_count_voltages - count regulator_list_voltage() selectors
1423 * @regulator: regulator source
1424 *
1425 * Returns number of selectors, or negative errno. Selectors are
1426 * numbered starting at zero, and typically correspond to bitfields
1427 * in hardware registers.
1428 */
1429int regulator_count_voltages(struct regulator *regulator)
1430{
1431 struct regulator_dev *rdev = regulator->rdev;
1432
1433 return rdev->desc->n_voltages ? : -EINVAL;
1434}
1435EXPORT_SYMBOL_GPL(regulator_count_voltages);
1436
1437/**
1438 * regulator_list_voltage - enumerate supported voltages
1439 * @regulator: regulator source
1440 * @selector: identify voltage to list
1441 * Context: can sleep
1442 *
1443 * Returns a voltage that can be passed to @regulator_set_voltage(),
1444 * zero if this selector code can't be used on this sytem, or a
1445 * negative errno.
1446 */
1447int regulator_list_voltage(struct regulator *regulator, unsigned selector)
1448{
1449 struct regulator_dev *rdev = regulator->rdev;
1450 struct regulator_ops *ops = rdev->desc->ops;
1451 int ret;
1452
1453 if (!ops->list_voltage || selector >= rdev->desc->n_voltages)
1454 return -EINVAL;
1455
1456 mutex_lock(&rdev->mutex);
1457 ret = ops->list_voltage(rdev, selector);
1458 mutex_unlock(&rdev->mutex);
1459
1460 if (ret > 0) {
1461 if (ret < rdev->constraints->min_uV)
1462 ret = 0;
1463 else if (ret > rdev->constraints->max_uV)
1464 ret = 0;
1465 }
1466
1467 return ret;
1468}
1469EXPORT_SYMBOL_GPL(regulator_list_voltage);
1470
a7a1ad90
MB
1471/**
1472 * regulator_is_supported_voltage - check if a voltage range can be supported
1473 *
1474 * @regulator: Regulator to check.
1475 * @min_uV: Minimum required voltage in uV.
1476 * @max_uV: Maximum required voltage in uV.
1477 *
1478 * Returns a boolean or a negative error code.
1479 */
1480int regulator_is_supported_voltage(struct regulator *regulator,
1481 int min_uV, int max_uV)
1482{
1483 int i, voltages, ret;
1484
1485 ret = regulator_count_voltages(regulator);
1486 if (ret < 0)
1487 return ret;
1488 voltages = ret;
1489
1490 for (i = 0; i < voltages; i++) {
1491 ret = regulator_list_voltage(regulator, i);
1492
1493 if (ret >= min_uV && ret <= max_uV)
1494 return 1;
1495 }
1496
1497 return 0;
1498}
1499
414c70cb
LG
1500/**
1501 * regulator_set_voltage - set regulator output voltage
1502 * @regulator: regulator source
1503 * @min_uV: Minimum required voltage in uV
1504 * @max_uV: Maximum acceptable voltage in uV
1505 *
1506 * Sets a voltage regulator to the desired output voltage. This can be set
1507 * during any regulator state. IOW, regulator can be disabled or enabled.
1508 *
1509 * If the regulator is enabled then the voltage will change to the new value
1510 * immediately otherwise if the regulator is disabled the regulator will
1511 * output at the new voltage when enabled.
1512 *
1513 * NOTE: If the regulator is shared between several devices then the lowest
1514 * request voltage that meets the system constraints will be used.
69279fb9 1515 * Regulator system constraints must be set for this regulator before
414c70cb
LG
1516 * calling this function otherwise this call will fail.
1517 */
1518int regulator_set_voltage(struct regulator *regulator, int min_uV, int max_uV)
1519{
1520 struct regulator_dev *rdev = regulator->rdev;
1521 int ret;
1522
1523 mutex_lock(&rdev->mutex);
1524
1525 /* sanity check */
1526 if (!rdev->desc->ops->set_voltage) {
1527 ret = -EINVAL;
1528 goto out;
1529 }
1530
1531 /* constraints check */
1532 ret = regulator_check_voltage(rdev, &min_uV, &max_uV);
1533 if (ret < 0)
1534 goto out;
1535 regulator->min_uV = min_uV;
1536 regulator->max_uV = max_uV;
1537 ret = rdev->desc->ops->set_voltage(rdev, min_uV, max_uV);
1538
1539out:
b136fb44 1540 _notifier_call_chain(rdev, REGULATOR_EVENT_VOLTAGE_CHANGE, NULL);
414c70cb
LG
1541 mutex_unlock(&rdev->mutex);
1542 return ret;
1543}
1544EXPORT_SYMBOL_GPL(regulator_set_voltage);
1545
1546static int _regulator_get_voltage(struct regulator_dev *rdev)
1547{
1548 /* sanity check */
1549 if (rdev->desc->ops->get_voltage)
1550 return rdev->desc->ops->get_voltage(rdev);
1551 else
1552 return -EINVAL;
1553}
1554
1555/**
1556 * regulator_get_voltage - get regulator output voltage
1557 * @regulator: regulator source
1558 *
1559 * This returns the current regulator voltage in uV.
1560 *
1561 * NOTE: If the regulator is disabled it will return the voltage value. This
1562 * function should not be used to determine regulator state.
1563 */
1564int regulator_get_voltage(struct regulator *regulator)
1565{
1566 int ret;
1567
1568 mutex_lock(&regulator->rdev->mutex);
1569
1570 ret = _regulator_get_voltage(regulator->rdev);
1571
1572 mutex_unlock(&regulator->rdev->mutex);
1573
1574 return ret;
1575}
1576EXPORT_SYMBOL_GPL(regulator_get_voltage);
1577
1578/**
1579 * regulator_set_current_limit - set regulator output current limit
1580 * @regulator: regulator source
1581 * @min_uA: Minimuum supported current in uA
1582 * @max_uA: Maximum supported current in uA
1583 *
1584 * Sets current sink to the desired output current. This can be set during
1585 * any regulator state. IOW, regulator can be disabled or enabled.
1586 *
1587 * If the regulator is enabled then the current will change to the new value
1588 * immediately otherwise if the regulator is disabled the regulator will
1589 * output at the new current when enabled.
1590 *
1591 * NOTE: Regulator system constraints must be set for this regulator before
1592 * calling this function otherwise this call will fail.
1593 */
1594int regulator_set_current_limit(struct regulator *regulator,
1595 int min_uA, int max_uA)
1596{
1597 struct regulator_dev *rdev = regulator->rdev;
1598 int ret;
1599
1600 mutex_lock(&rdev->mutex);
1601
1602 /* sanity check */
1603 if (!rdev->desc->ops->set_current_limit) {
1604 ret = -EINVAL;
1605 goto out;
1606 }
1607
1608 /* constraints check */
1609 ret = regulator_check_current_limit(rdev, &min_uA, &max_uA);
1610 if (ret < 0)
1611 goto out;
1612
1613 ret = rdev->desc->ops->set_current_limit(rdev, min_uA, max_uA);
1614out:
1615 mutex_unlock(&rdev->mutex);
1616 return ret;
1617}
1618EXPORT_SYMBOL_GPL(regulator_set_current_limit);
1619
1620static int _regulator_get_current_limit(struct regulator_dev *rdev)
1621{
1622 int ret;
1623
1624 mutex_lock(&rdev->mutex);
1625
1626 /* sanity check */
1627 if (!rdev->desc->ops->get_current_limit) {
1628 ret = -EINVAL;
1629 goto out;
1630 }
1631
1632 ret = rdev->desc->ops->get_current_limit(rdev);
1633out:
1634 mutex_unlock(&rdev->mutex);
1635 return ret;
1636}
1637
1638/**
1639 * regulator_get_current_limit - get regulator output current
1640 * @regulator: regulator source
1641 *
1642 * This returns the current supplied by the specified current sink in uA.
1643 *
1644 * NOTE: If the regulator is disabled it will return the current value. This
1645 * function should not be used to determine regulator state.
1646 */
1647int regulator_get_current_limit(struct regulator *regulator)
1648{
1649 return _regulator_get_current_limit(regulator->rdev);
1650}
1651EXPORT_SYMBOL_GPL(regulator_get_current_limit);
1652
1653/**
1654 * regulator_set_mode - set regulator operating mode
1655 * @regulator: regulator source
1656 * @mode: operating mode - one of the REGULATOR_MODE constants
1657 *
1658 * Set regulator operating mode to increase regulator efficiency or improve
1659 * regulation performance.
1660 *
1661 * NOTE: Regulator system constraints must be set for this regulator before
1662 * calling this function otherwise this call will fail.
1663 */
1664int regulator_set_mode(struct regulator *regulator, unsigned int mode)
1665{
1666 struct regulator_dev *rdev = regulator->rdev;
1667 int ret;
1668
1669 mutex_lock(&rdev->mutex);
1670
1671 /* sanity check */
1672 if (!rdev->desc->ops->set_mode) {
1673 ret = -EINVAL;
1674 goto out;
1675 }
1676
1677 /* constraints check */
1678 ret = regulator_check_mode(rdev, mode);
1679 if (ret < 0)
1680 goto out;
1681
1682 ret = rdev->desc->ops->set_mode(rdev, mode);
1683out:
1684 mutex_unlock(&rdev->mutex);
1685 return ret;
1686}
1687EXPORT_SYMBOL_GPL(regulator_set_mode);
1688
1689static unsigned int _regulator_get_mode(struct regulator_dev *rdev)
1690{
1691 int ret;
1692
1693 mutex_lock(&rdev->mutex);
1694
1695 /* sanity check */
1696 if (!rdev->desc->ops->get_mode) {
1697 ret = -EINVAL;
1698 goto out;
1699 }
1700
1701 ret = rdev->desc->ops->get_mode(rdev);
1702out:
1703 mutex_unlock(&rdev->mutex);
1704 return ret;
1705}
1706
1707/**
1708 * regulator_get_mode - get regulator operating mode
1709 * @regulator: regulator source
1710 *
1711 * Get the current regulator operating mode.
1712 */
1713unsigned int regulator_get_mode(struct regulator *regulator)
1714{
1715 return _regulator_get_mode(regulator->rdev);
1716}
1717EXPORT_SYMBOL_GPL(regulator_get_mode);
1718
1719/**
1720 * regulator_set_optimum_mode - set regulator optimum operating mode
1721 * @regulator: regulator source
1722 * @uA_load: load current
1723 *
1724 * Notifies the regulator core of a new device load. This is then used by
1725 * DRMS (if enabled by constraints) to set the most efficient regulator
1726 * operating mode for the new regulator loading.
1727 *
1728 * Consumer devices notify their supply regulator of the maximum power
1729 * they will require (can be taken from device datasheet in the power
1730 * consumption tables) when they change operational status and hence power
1731 * state. Examples of operational state changes that can affect power
1732 * consumption are :-
1733 *
1734 * o Device is opened / closed.
1735 * o Device I/O is about to begin or has just finished.
1736 * o Device is idling in between work.
1737 *
1738 * This information is also exported via sysfs to userspace.
1739 *
1740 * DRMS will sum the total requested load on the regulator and change
1741 * to the most efficient operating mode if platform constraints allow.
1742 *
1743 * Returns the new regulator mode or error.
1744 */
1745int regulator_set_optimum_mode(struct regulator *regulator, int uA_load)
1746{
1747 struct regulator_dev *rdev = regulator->rdev;
1748 struct regulator *consumer;
1749 int ret, output_uV, input_uV, total_uA_load = 0;
1750 unsigned int mode;
1751
1752 mutex_lock(&rdev->mutex);
1753
1754 regulator->uA_load = uA_load;
1755 ret = regulator_check_drms(rdev);
1756 if (ret < 0)
1757 goto out;
1758 ret = -EINVAL;
1759
1760 /* sanity check */
1761 if (!rdev->desc->ops->get_optimum_mode)
1762 goto out;
1763
1764 /* get output voltage */
1765 output_uV = rdev->desc->ops->get_voltage(rdev);
1766 if (output_uV <= 0) {
1767 printk(KERN_ERR "%s: invalid output voltage found for %s\n",
1768 __func__, rdev->desc->name);
1769 goto out;
1770 }
1771
1772 /* get input voltage */
1773 if (rdev->supply && rdev->supply->desc->ops->get_voltage)
1774 input_uV = rdev->supply->desc->ops->get_voltage(rdev->supply);
1775 else
1776 input_uV = rdev->constraints->input_uV;
1777 if (input_uV <= 0) {
1778 printk(KERN_ERR "%s: invalid input voltage found for %s\n",
1779 __func__, rdev->desc->name);
1780 goto out;
1781 }
1782
1783 /* calc total requested load for this regulator */
1784 list_for_each_entry(consumer, &rdev->consumer_list, list)
1785 total_uA_load += consumer->uA_load;
1786
1787 mode = rdev->desc->ops->get_optimum_mode(rdev,
1788 input_uV, output_uV,
1789 total_uA_load);
e573520b
DB
1790 ret = regulator_check_mode(rdev, mode);
1791 if (ret < 0) {
414c70cb
LG
1792 printk(KERN_ERR "%s: failed to get optimum mode for %s @"
1793 " %d uA %d -> %d uV\n", __func__, rdev->desc->name,
1794 total_uA_load, input_uV, output_uV);
1795 goto out;
1796 }
1797
1798 ret = rdev->desc->ops->set_mode(rdev, mode);
e573520b 1799 if (ret < 0) {
414c70cb
LG
1800 printk(KERN_ERR "%s: failed to set optimum mode %x for %s\n",
1801 __func__, mode, rdev->desc->name);
1802 goto out;
1803 }
1804 ret = mode;
1805out:
1806 mutex_unlock(&rdev->mutex);
1807 return ret;
1808}
1809EXPORT_SYMBOL_GPL(regulator_set_optimum_mode);
1810
1811/**
1812 * regulator_register_notifier - register regulator event notifier
1813 * @regulator: regulator source
69279fb9 1814 * @nb: notifier block
414c70cb
LG
1815 *
1816 * Register notifier block to receive regulator events.
1817 */
1818int regulator_register_notifier(struct regulator *regulator,
1819 struct notifier_block *nb)
1820{
1821 return blocking_notifier_chain_register(&regulator->rdev->notifier,
1822 nb);
1823}
1824EXPORT_SYMBOL_GPL(regulator_register_notifier);
1825
1826/**
1827 * regulator_unregister_notifier - unregister regulator event notifier
1828 * @regulator: regulator source
69279fb9 1829 * @nb: notifier block
414c70cb
LG
1830 *
1831 * Unregister regulator event notifier block.
1832 */
1833int regulator_unregister_notifier(struct regulator *regulator,
1834 struct notifier_block *nb)
1835{
1836 return blocking_notifier_chain_unregister(&regulator->rdev->notifier,
1837 nb);
1838}
1839EXPORT_SYMBOL_GPL(regulator_unregister_notifier);
1840
b136fb44
JC
1841/* notify regulator consumers and downstream regulator consumers.
1842 * Note mutex must be held by caller.
1843 */
414c70cb
LG
1844static void _notifier_call_chain(struct regulator_dev *rdev,
1845 unsigned long event, void *data)
1846{
1847 struct regulator_dev *_rdev;
1848
1849 /* call rdev chain first */
414c70cb 1850 blocking_notifier_call_chain(&rdev->notifier, event, NULL);
414c70cb
LG
1851
1852 /* now notify regulator we supply */
b136fb44
JC
1853 list_for_each_entry(_rdev, &rdev->supply_list, slist) {
1854 mutex_lock(&_rdev->mutex);
1855 _notifier_call_chain(_rdev, event, data);
1856 mutex_unlock(&_rdev->mutex);
1857 }
414c70cb
LG
1858}
1859
1860/**
1861 * regulator_bulk_get - get multiple regulator consumers
1862 *
1863 * @dev: Device to supply
1864 * @num_consumers: Number of consumers to register
1865 * @consumers: Configuration of consumers; clients are stored here.
1866 *
1867 * @return 0 on success, an errno on failure.
1868 *
1869 * This helper function allows drivers to get several regulator
1870 * consumers in one operation. If any of the regulators cannot be
1871 * acquired then any regulators that were allocated will be freed
1872 * before returning to the caller.
1873 */
1874int regulator_bulk_get(struct device *dev, int num_consumers,
1875 struct regulator_bulk_data *consumers)
1876{
1877 int i;
1878 int ret;
1879
1880 for (i = 0; i < num_consumers; i++)
1881 consumers[i].consumer = NULL;
1882
1883 for (i = 0; i < num_consumers; i++) {
1884 consumers[i].consumer = regulator_get(dev,
1885 consumers[i].supply);
1886 if (IS_ERR(consumers[i].consumer)) {
1887 dev_err(dev, "Failed to get supply '%s'\n",
1888 consumers[i].supply);
1889 ret = PTR_ERR(consumers[i].consumer);
1890 consumers[i].consumer = NULL;
1891 goto err;
1892 }
1893 }
1894
1895 return 0;
1896
1897err:
1898 for (i = 0; i < num_consumers && consumers[i].consumer; i++)
1899 regulator_put(consumers[i].consumer);
1900
1901 return ret;
1902}
1903EXPORT_SYMBOL_GPL(regulator_bulk_get);
1904
1905/**
1906 * regulator_bulk_enable - enable multiple regulator consumers
1907 *
1908 * @num_consumers: Number of consumers
1909 * @consumers: Consumer data; clients are stored here.
1910 * @return 0 on success, an errno on failure
1911 *
1912 * This convenience API allows consumers to enable multiple regulator
1913 * clients in a single API call. If any consumers cannot be enabled
1914 * then any others that were enabled will be disabled again prior to
1915 * return.
1916 */
1917int regulator_bulk_enable(int num_consumers,
1918 struct regulator_bulk_data *consumers)
1919{
1920 int i;
1921 int ret;
1922
1923 for (i = 0; i < num_consumers; i++) {
1924 ret = regulator_enable(consumers[i].consumer);
1925 if (ret != 0)
1926 goto err;
1927 }
1928
1929 return 0;
1930
1931err:
1932 printk(KERN_ERR "Failed to enable %s\n", consumers[i].supply);
1933 for (i = 0; i < num_consumers; i++)
1934 regulator_disable(consumers[i].consumer);
1935
1936 return ret;
1937}
1938EXPORT_SYMBOL_GPL(regulator_bulk_enable);
1939
1940/**
1941 * regulator_bulk_disable - disable multiple regulator consumers
1942 *
1943 * @num_consumers: Number of consumers
1944 * @consumers: Consumer data; clients are stored here.
1945 * @return 0 on success, an errno on failure
1946 *
1947 * This convenience API allows consumers to disable multiple regulator
1948 * clients in a single API call. If any consumers cannot be enabled
1949 * then any others that were disabled will be disabled again prior to
1950 * return.
1951 */
1952int regulator_bulk_disable(int num_consumers,
1953 struct regulator_bulk_data *consumers)
1954{
1955 int i;
1956 int ret;
1957
1958 for (i = 0; i < num_consumers; i++) {
1959 ret = regulator_disable(consumers[i].consumer);
1960 if (ret != 0)
1961 goto err;
1962 }
1963
1964 return 0;
1965
1966err:
1967 printk(KERN_ERR "Failed to disable %s\n", consumers[i].supply);
1968 for (i = 0; i < num_consumers; i++)
1969 regulator_enable(consumers[i].consumer);
1970
1971 return ret;
1972}
1973EXPORT_SYMBOL_GPL(regulator_bulk_disable);
1974
1975/**
1976 * regulator_bulk_free - free multiple regulator consumers
1977 *
1978 * @num_consumers: Number of consumers
1979 * @consumers: Consumer data; clients are stored here.
1980 *
1981 * This convenience API allows consumers to free multiple regulator
1982 * clients in a single API call.
1983 */
1984void regulator_bulk_free(int num_consumers,
1985 struct regulator_bulk_data *consumers)
1986{
1987 int i;
1988
1989 for (i = 0; i < num_consumers; i++) {
1990 regulator_put(consumers[i].consumer);
1991 consumers[i].consumer = NULL;
1992 }
1993}
1994EXPORT_SYMBOL_GPL(regulator_bulk_free);
1995
1996/**
1997 * regulator_notifier_call_chain - call regulator event notifier
69279fb9 1998 * @rdev: regulator source
414c70cb 1999 * @event: notifier block
69279fb9 2000 * @data: callback-specific data.
414c70cb
LG
2001 *
2002 * Called by regulator drivers to notify clients a regulator event has
2003 * occurred. We also notify regulator clients downstream.
b136fb44 2004 * Note lock must be held by caller.
414c70cb
LG
2005 */
2006int regulator_notifier_call_chain(struct regulator_dev *rdev,
2007 unsigned long event, void *data)
2008{
2009 _notifier_call_chain(rdev, event, data);
2010 return NOTIFY_DONE;
2011
2012}
2013EXPORT_SYMBOL_GPL(regulator_notifier_call_chain);
2014
be721979
MB
2015/**
2016 * regulator_mode_to_status - convert a regulator mode into a status
2017 *
2018 * @mode: Mode to convert
2019 *
2020 * Convert a regulator mode into a status.
2021 */
2022int regulator_mode_to_status(unsigned int mode)
2023{
2024 switch (mode) {
2025 case REGULATOR_MODE_FAST:
2026 return REGULATOR_STATUS_FAST;
2027 case REGULATOR_MODE_NORMAL:
2028 return REGULATOR_STATUS_NORMAL;
2029 case REGULATOR_MODE_IDLE:
2030 return REGULATOR_STATUS_IDLE;
2031 case REGULATOR_STATUS_STANDBY:
2032 return REGULATOR_STATUS_STANDBY;
2033 default:
2034 return 0;
2035 }
2036}
2037EXPORT_SYMBOL_GPL(regulator_mode_to_status);
2038
7ad68e2f
DB
2039/*
2040 * To avoid cluttering sysfs (and memory) with useless state, only
2041 * create attributes that can be meaningfully displayed.
2042 */
2043static int add_regulator_attributes(struct regulator_dev *rdev)
2044{
2045 struct device *dev = &rdev->dev;
2046 struct regulator_ops *ops = rdev->desc->ops;
2047 int status = 0;
2048
2049 /* some attributes need specific methods to be displayed */
2050 if (ops->get_voltage) {
2051 status = device_create_file(dev, &dev_attr_microvolts);
2052 if (status < 0)
2053 return status;
2054 }
2055 if (ops->get_current_limit) {
2056 status = device_create_file(dev, &dev_attr_microamps);
2057 if (status < 0)
2058 return status;
2059 }
2060 if (ops->get_mode) {
2061 status = device_create_file(dev, &dev_attr_opmode);
2062 if (status < 0)
2063 return status;
2064 }
2065 if (ops->is_enabled) {
2066 status = device_create_file(dev, &dev_attr_state);
2067 if (status < 0)
2068 return status;
2069 }
853116a1
DB
2070 if (ops->get_status) {
2071 status = device_create_file(dev, &dev_attr_status);
2072 if (status < 0)
2073 return status;
2074 }
7ad68e2f
DB
2075
2076 /* some attributes are type-specific */
2077 if (rdev->desc->type == REGULATOR_CURRENT) {
2078 status = device_create_file(dev, &dev_attr_requested_microamps);
2079 if (status < 0)
2080 return status;
2081 }
2082
2083 /* all the other attributes exist to support constraints;
2084 * don't show them if there are no constraints, or if the
2085 * relevant supporting methods are missing.
2086 */
2087 if (!rdev->constraints)
2088 return status;
2089
2090 /* constraints need specific supporting methods */
2091 if (ops->set_voltage) {
2092 status = device_create_file(dev, &dev_attr_min_microvolts);
2093 if (status < 0)
2094 return status;
2095 status = device_create_file(dev, &dev_attr_max_microvolts);
2096 if (status < 0)
2097 return status;
2098 }
2099 if (ops->set_current_limit) {
2100 status = device_create_file(dev, &dev_attr_min_microamps);
2101 if (status < 0)
2102 return status;
2103 status = device_create_file(dev, &dev_attr_max_microamps);
2104 if (status < 0)
2105 return status;
2106 }
2107
2108 /* suspend mode constraints need multiple supporting methods */
2109 if (!(ops->set_suspend_enable && ops->set_suspend_disable))
2110 return status;
2111
2112 status = device_create_file(dev, &dev_attr_suspend_standby_state);
2113 if (status < 0)
2114 return status;
2115 status = device_create_file(dev, &dev_attr_suspend_mem_state);
2116 if (status < 0)
2117 return status;
2118 status = device_create_file(dev, &dev_attr_suspend_disk_state);
2119 if (status < 0)
2120 return status;
2121
2122 if (ops->set_suspend_voltage) {
2123 status = device_create_file(dev,
2124 &dev_attr_suspend_standby_microvolts);
2125 if (status < 0)
2126 return status;
2127 status = device_create_file(dev,
2128 &dev_attr_suspend_mem_microvolts);
2129 if (status < 0)
2130 return status;
2131 status = device_create_file(dev,
2132 &dev_attr_suspend_disk_microvolts);
2133 if (status < 0)
2134 return status;
2135 }
2136
2137 if (ops->set_suspend_mode) {
2138 status = device_create_file(dev,
2139 &dev_attr_suspend_standby_mode);
2140 if (status < 0)
2141 return status;
2142 status = device_create_file(dev,
2143 &dev_attr_suspend_mem_mode);
2144 if (status < 0)
2145 return status;
2146 status = device_create_file(dev,
2147 &dev_attr_suspend_disk_mode);
2148 if (status < 0)
2149 return status;
2150 }
2151
2152 return status;
2153}
2154
414c70cb
LG
2155/**
2156 * regulator_register - register regulator
69279fb9
MB
2157 * @regulator_desc: regulator to register
2158 * @dev: struct device for the regulator
0527100f 2159 * @init_data: platform provided init data, passed through by driver
69279fb9 2160 * @driver_data: private regulator data
414c70cb
LG
2161 *
2162 * Called by regulator drivers to register a regulator.
2163 * Returns 0 on success.
2164 */
2165struct regulator_dev *regulator_register(struct regulator_desc *regulator_desc,
0527100f
MB
2166 struct device *dev, struct regulator_init_data *init_data,
2167 void *driver_data)
414c70cb
LG
2168{
2169 static atomic_t regulator_no = ATOMIC_INIT(0);
2170 struct regulator_dev *rdev;
a5766f11 2171 int ret, i;
414c70cb
LG
2172
2173 if (regulator_desc == NULL)
2174 return ERR_PTR(-EINVAL);
2175
2176 if (regulator_desc->name == NULL || regulator_desc->ops == NULL)
2177 return ERR_PTR(-EINVAL);
2178
cd78dfc6
DL
2179 if (regulator_desc->type != REGULATOR_VOLTAGE &&
2180 regulator_desc->type != REGULATOR_CURRENT)
414c70cb
LG
2181 return ERR_PTR(-EINVAL);
2182
46fabe1e
MB
2183 if (!init_data)
2184 return ERR_PTR(-EINVAL);
2185
414c70cb
LG
2186 rdev = kzalloc(sizeof(struct regulator_dev), GFP_KERNEL);
2187 if (rdev == NULL)
2188 return ERR_PTR(-ENOMEM);
2189
2190 mutex_lock(&regulator_list_mutex);
2191
2192 mutex_init(&rdev->mutex);
a5766f11 2193 rdev->reg_data = driver_data;
414c70cb
LG
2194 rdev->owner = regulator_desc->owner;
2195 rdev->desc = regulator_desc;
2196 INIT_LIST_HEAD(&rdev->consumer_list);
2197 INIT_LIST_HEAD(&rdev->supply_list);
2198 INIT_LIST_HEAD(&rdev->list);
2199 INIT_LIST_HEAD(&rdev->slist);
2200 BLOCKING_INIT_NOTIFIER_HEAD(&rdev->notifier);
2201
a5766f11
LG
2202 /* preform any regulator specific init */
2203 if (init_data->regulator_init) {
2204 ret = init_data->regulator_init(rdev->reg_data);
4fca9545
DB
2205 if (ret < 0)
2206 goto clean;
a5766f11
LG
2207 }
2208
a5766f11 2209 /* register with sysfs */
414c70cb 2210 rdev->dev.class = &regulator_class;
a5766f11 2211 rdev->dev.parent = dev;
812460a9
KS
2212 dev_set_name(&rdev->dev, "regulator.%d",
2213 atomic_inc_return(&regulator_no) - 1);
a5766f11 2214 ret = device_register(&rdev->dev);
4fca9545
DB
2215 if (ret != 0)
2216 goto clean;
a5766f11
LG
2217
2218 dev_set_drvdata(&rdev->dev, rdev);
2219
74f544c1
MR
2220 /* set regulator constraints */
2221 ret = set_machine_constraints(rdev, &init_data->constraints);
2222 if (ret < 0)
2223 goto scrub;
2224
7ad68e2f
DB
2225 /* add attributes supported by this regulator */
2226 ret = add_regulator_attributes(rdev);
2227 if (ret < 0)
2228 goto scrub;
2229
a5766f11
LG
2230 /* set supply regulator if it exists */
2231 if (init_data->supply_regulator_dev) {
2232 ret = set_supply(rdev,
2233 dev_get_drvdata(init_data->supply_regulator_dev));
4fca9545
DB
2234 if (ret < 0)
2235 goto scrub;
a5766f11
LG
2236 }
2237
2238 /* add consumers devices */
2239 for (i = 0; i < init_data->num_consumer_supplies; i++) {
2240 ret = set_consumer_device_supply(rdev,
2241 init_data->consumer_supplies[i].dev,
40f9244f 2242 init_data->consumer_supplies[i].dev_name,
a5766f11
LG
2243 init_data->consumer_supplies[i].supply);
2244 if (ret < 0) {
2245 for (--i; i >= 0; i--)
2246 unset_consumer_device_supply(rdev,
40f9244f
MB
2247 init_data->consumer_supplies[i].dev_name,
2248 init_data->consumer_supplies[i].dev);
4fca9545 2249 goto scrub;
a5766f11 2250 }
414c70cb 2251 }
a5766f11
LG
2252
2253 list_add(&rdev->list, &regulator_list);
2254out:
414c70cb
LG
2255 mutex_unlock(&regulator_list_mutex);
2256 return rdev;
4fca9545
DB
2257
2258scrub:
2259 device_unregister(&rdev->dev);
53032daf
PW
2260 /* device core frees rdev */
2261 rdev = ERR_PTR(ret);
2262 goto out;
2263
4fca9545
DB
2264clean:
2265 kfree(rdev);
2266 rdev = ERR_PTR(ret);
2267 goto out;
414c70cb
LG
2268}
2269EXPORT_SYMBOL_GPL(regulator_register);
2270
2271/**
2272 * regulator_unregister - unregister regulator
69279fb9 2273 * @rdev: regulator to unregister
414c70cb
LG
2274 *
2275 * Called by regulator drivers to unregister a regulator.
2276 */
2277void regulator_unregister(struct regulator_dev *rdev)
2278{
2279 if (rdev == NULL)
2280 return;
2281
2282 mutex_lock(&regulator_list_mutex);
6bf87d17 2283 WARN_ON(rdev->open_count);
0f1d747b 2284 unset_regulator_supplies(rdev);
414c70cb
LG
2285 list_del(&rdev->list);
2286 if (rdev->supply)
2287 sysfs_remove_link(&rdev->dev.kobj, "supply");
2288 device_unregister(&rdev->dev);
2289 mutex_unlock(&regulator_list_mutex);
2290}
2291EXPORT_SYMBOL_GPL(regulator_unregister);
2292
414c70cb 2293/**
cf7bbcdf 2294 * regulator_suspend_prepare - prepare regulators for system wide suspend
414c70cb
LG
2295 * @state: system suspend state
2296 *
2297 * Configure each regulator with it's suspend operating parameters for state.
2298 * This will usually be called by machine suspend code prior to supending.
2299 */
2300int regulator_suspend_prepare(suspend_state_t state)
2301{
2302 struct regulator_dev *rdev;
2303 int ret = 0;
2304
2305 /* ON is handled by regulator active state */
2306 if (state == PM_SUSPEND_ON)
2307 return -EINVAL;
2308
2309 mutex_lock(&regulator_list_mutex);
2310 list_for_each_entry(rdev, &regulator_list, list) {
2311
2312 mutex_lock(&rdev->mutex);
2313 ret = suspend_prepare(rdev, state);
2314 mutex_unlock(&rdev->mutex);
2315
2316 if (ret < 0) {
2317 printk(KERN_ERR "%s: failed to prepare %s\n",
2318 __func__, rdev->desc->name);
2319 goto out;
2320 }
2321 }
2322out:
2323 mutex_unlock(&regulator_list_mutex);
2324 return ret;
2325}
2326EXPORT_SYMBOL_GPL(regulator_suspend_prepare);
2327
ca725561
MB
2328/**
2329 * regulator_has_full_constraints - the system has fully specified constraints
2330 *
2331 * Calling this function will cause the regulator API to disable all
2332 * regulators which have a zero use count and don't have an always_on
2333 * constraint in a late_initcall.
2334 *
2335 * The intention is that this will become the default behaviour in a
2336 * future kernel release so users are encouraged to use this facility
2337 * now.
2338 */
2339void regulator_has_full_constraints(void)
2340{
2341 has_full_constraints = 1;
2342}
2343EXPORT_SYMBOL_GPL(regulator_has_full_constraints);
2344
414c70cb
LG
2345/**
2346 * rdev_get_drvdata - get rdev regulator driver data
69279fb9 2347 * @rdev: regulator
414c70cb
LG
2348 *
2349 * Get rdev regulator driver private data. This call can be used in the
2350 * regulator driver context.
2351 */
2352void *rdev_get_drvdata(struct regulator_dev *rdev)
2353{
2354 return rdev->reg_data;
2355}
2356EXPORT_SYMBOL_GPL(rdev_get_drvdata);
2357
2358/**
2359 * regulator_get_drvdata - get regulator driver data
2360 * @regulator: regulator
2361 *
2362 * Get regulator driver private data. This call can be used in the consumer
2363 * driver context when non API regulator specific functions need to be called.
2364 */
2365void *regulator_get_drvdata(struct regulator *regulator)
2366{
2367 return regulator->rdev->reg_data;
2368}
2369EXPORT_SYMBOL_GPL(regulator_get_drvdata);
2370
2371/**
2372 * regulator_set_drvdata - set regulator driver data
2373 * @regulator: regulator
2374 * @data: data
2375 */
2376void regulator_set_drvdata(struct regulator *regulator, void *data)
2377{
2378 regulator->rdev->reg_data = data;
2379}
2380EXPORT_SYMBOL_GPL(regulator_set_drvdata);
2381
2382/**
2383 * regulator_get_id - get regulator ID
69279fb9 2384 * @rdev: regulator
414c70cb
LG
2385 */
2386int rdev_get_id(struct regulator_dev *rdev)
2387{
2388 return rdev->desc->id;
2389}
2390EXPORT_SYMBOL_GPL(rdev_get_id);
2391
a5766f11
LG
2392struct device *rdev_get_dev(struct regulator_dev *rdev)
2393{
2394 return &rdev->dev;
2395}
2396EXPORT_SYMBOL_GPL(rdev_get_dev);
2397
2398void *regulator_get_init_drvdata(struct regulator_init_data *reg_init_data)
2399{
2400 return reg_init_data->driver_data;
2401}
2402EXPORT_SYMBOL_GPL(regulator_get_init_drvdata);
2403
414c70cb
LG
2404static int __init regulator_init(void)
2405{
2406 printk(KERN_INFO "regulator: core version %s\n", REGULATOR_VERSION);
2407 return class_register(&regulator_class);
2408}
2409
2410/* init early to allow our consumers to complete system booting */
2411core_initcall(regulator_init);
ca725561
MB
2412
2413static int __init regulator_init_complete(void)
2414{
2415 struct regulator_dev *rdev;
2416 struct regulator_ops *ops;
2417 struct regulation_constraints *c;
2418 int enabled, ret;
2419 const char *name;
2420
2421 mutex_lock(&regulator_list_mutex);
2422
2423 /* If we have a full configuration then disable any regulators
2424 * which are not in use or always_on. This will become the
2425 * default behaviour in the future.
2426 */
2427 list_for_each_entry(rdev, &regulator_list, list) {
2428 ops = rdev->desc->ops;
2429 c = rdev->constraints;
2430
f25e0b4f 2431 if (c && c->name)
ca725561
MB
2432 name = c->name;
2433 else if (rdev->desc->name)
2434 name = rdev->desc->name;
2435 else
2436 name = "regulator";
2437
f25e0b4f 2438 if (!ops->disable || (c && c->always_on))
ca725561
MB
2439 continue;
2440
2441 mutex_lock(&rdev->mutex);
2442
2443 if (rdev->use_count)
2444 goto unlock;
2445
2446 /* If we can't read the status assume it's on. */
2447 if (ops->is_enabled)
2448 enabled = ops->is_enabled(rdev);
2449 else
2450 enabled = 1;
2451
2452 if (!enabled)
2453 goto unlock;
2454
2455 if (has_full_constraints) {
2456 /* We log since this may kill the system if it
2457 * goes wrong. */
2458 printk(KERN_INFO "%s: disabling %s\n",
2459 __func__, name);
2460 ret = ops->disable(rdev);
2461 if (ret != 0) {
2462 printk(KERN_ERR
2463 "%s: couldn't disable %s: %d\n",
2464 __func__, name, ret);
2465 }
2466 } else {
2467 /* The intention is that in future we will
2468 * assume that full constraints are provided
2469 * so warn even if we aren't going to do
2470 * anything here.
2471 */
2472 printk(KERN_WARNING
2473 "%s: incomplete constraints, leaving %s on\n",
2474 __func__, name);
2475 }
2476
2477unlock:
2478 mutex_unlock(&rdev->mutex);
2479 }
2480
2481 mutex_unlock(&regulator_list_mutex);
2482
2483 return 0;
2484}
2485late_initcall(regulator_init_complete);