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misc: rtsx: make various functions static
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CommitLineData
eace75cf
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1/*
2 * nvmem framework core.
3 *
4 * Copyright (C) 2015 Srinivas Kandagatla <srinivas.kandagatla@linaro.org>
5 * Copyright (C) 2013 Maxime Ripard <maxime.ripard@free-electrons.com>
6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License version 2 and
9 * only version 2 as published by the Free Software Foundation.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 */
16
17#include <linux/device.h>
18#include <linux/export.h>
19#include <linux/fs.h>
20#include <linux/idr.h>
21#include <linux/init.h>
22#include <linux/module.h>
23#include <linux/nvmem-consumer.h>
24#include <linux/nvmem-provider.h>
25#include <linux/of.h>
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26#include <linux/slab.h>
27
28struct nvmem_device {
29 const char *name;
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30 struct module *owner;
31 struct device dev;
32 int stride;
33 int word_size;
34 int ncells;
35 int id;
36 int users;
37 size_t size;
38 bool read_only;
b6c217ab
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39 int flags;
40 struct bin_attribute eeprom;
41 struct device *base_dev;
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42 nvmem_reg_read_t reg_read;
43 nvmem_reg_write_t reg_write;
44 void *priv;
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45};
46
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AL
47#define FLAG_COMPAT BIT(0)
48
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49struct nvmem_cell {
50 const char *name;
51 int offset;
52 int bytes;
53 int bit_offset;
54 int nbits;
55 struct nvmem_device *nvmem;
56 struct list_head node;
57};
58
59static DEFINE_MUTEX(nvmem_mutex);
60static DEFINE_IDA(nvmem_ida);
61
62static LIST_HEAD(nvmem_cells);
63static DEFINE_MUTEX(nvmem_cells_mutex);
64
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65#ifdef CONFIG_DEBUG_LOCK_ALLOC
66static struct lock_class_key eeprom_lock_key;
67#endif
68
eace75cf 69#define to_nvmem_device(d) container_of(d, struct nvmem_device, dev)
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70static int nvmem_reg_read(struct nvmem_device *nvmem, unsigned int offset,
71 void *val, size_t bytes)
72{
73 if (nvmem->reg_read)
74 return nvmem->reg_read(nvmem->priv, offset, val, bytes);
75
76 return -EINVAL;
77}
78
79static int nvmem_reg_write(struct nvmem_device *nvmem, unsigned int offset,
80 void *val, size_t bytes)
81{
82 if (nvmem->reg_write)
83 return nvmem->reg_write(nvmem->priv, offset, val, bytes);
84
85 return -EINVAL;
86}
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87
88static ssize_t bin_attr_nvmem_read(struct file *filp, struct kobject *kobj,
89 struct bin_attribute *attr,
90 char *buf, loff_t pos, size_t count)
91{
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92 struct device *dev;
93 struct nvmem_device *nvmem;
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94 int rc;
95
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96 if (attr->private)
97 dev = attr->private;
98 else
99 dev = container_of(kobj, struct device, kobj);
100 nvmem = to_nvmem_device(dev);
101
eace75cf 102 /* Stop the user from reading */
7c806883 103 if (pos >= nvmem->size)
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104 return 0;
105
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106 if (count < nvmem->word_size)
107 return -EINVAL;
108
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109 if (pos + count > nvmem->size)
110 count = nvmem->size - pos;
111
112 count = round_down(count, nvmem->word_size);
113
795ddd18 114 rc = nvmem_reg_read(nvmem, pos, buf, count);
eace75cf 115
287980e4 116 if (rc)
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117 return rc;
118
119 return count;
120}
121
122static ssize_t bin_attr_nvmem_write(struct file *filp, struct kobject *kobj,
123 struct bin_attribute *attr,
124 char *buf, loff_t pos, size_t count)
125{
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126 struct device *dev;
127 struct nvmem_device *nvmem;
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128 int rc;
129
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130 if (attr->private)
131 dev = attr->private;
132 else
133 dev = container_of(kobj, struct device, kobj);
134 nvmem = to_nvmem_device(dev);
135
eace75cf 136 /* Stop the user from writing */
7c806883 137 if (pos >= nvmem->size)
38b0774c 138 return -EFBIG;
eace75cf 139
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140 if (count < nvmem->word_size)
141 return -EINVAL;
142
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143 if (pos + count > nvmem->size)
144 count = nvmem->size - pos;
145
146 count = round_down(count, nvmem->word_size);
147
795ddd18 148 rc = nvmem_reg_write(nvmem, pos, buf, count);
eace75cf 149
287980e4 150 if (rc)
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151 return rc;
152
153 return count;
154}
155
156/* default read/write permissions */
157static struct bin_attribute bin_attr_rw_nvmem = {
158 .attr = {
159 .name = "nvmem",
160 .mode = S_IWUSR | S_IRUGO,
161 },
162 .read = bin_attr_nvmem_read,
163 .write = bin_attr_nvmem_write,
164};
165
166static struct bin_attribute *nvmem_bin_rw_attributes[] = {
167 &bin_attr_rw_nvmem,
168 NULL,
169};
170
171static const struct attribute_group nvmem_bin_rw_group = {
172 .bin_attrs = nvmem_bin_rw_attributes,
173};
174
175static const struct attribute_group *nvmem_rw_dev_groups[] = {
176 &nvmem_bin_rw_group,
177 NULL,
178};
179
180/* read only permission */
181static struct bin_attribute bin_attr_ro_nvmem = {
182 .attr = {
183 .name = "nvmem",
184 .mode = S_IRUGO,
185 },
186 .read = bin_attr_nvmem_read,
187};
188
189static struct bin_attribute *nvmem_bin_ro_attributes[] = {
190 &bin_attr_ro_nvmem,
191 NULL,
192};
193
194static const struct attribute_group nvmem_bin_ro_group = {
195 .bin_attrs = nvmem_bin_ro_attributes,
196};
197
198static const struct attribute_group *nvmem_ro_dev_groups[] = {
199 &nvmem_bin_ro_group,
200 NULL,
201};
202
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203/* default read/write permissions, root only */
204static struct bin_attribute bin_attr_rw_root_nvmem = {
205 .attr = {
206 .name = "nvmem",
207 .mode = S_IWUSR | S_IRUSR,
208 },
209 .read = bin_attr_nvmem_read,
210 .write = bin_attr_nvmem_write,
211};
212
213static struct bin_attribute *nvmem_bin_rw_root_attributes[] = {
214 &bin_attr_rw_root_nvmem,
215 NULL,
216};
217
218static const struct attribute_group nvmem_bin_rw_root_group = {
219 .bin_attrs = nvmem_bin_rw_root_attributes,
220};
221
222static const struct attribute_group *nvmem_rw_root_dev_groups[] = {
223 &nvmem_bin_rw_root_group,
224 NULL,
225};
226
227/* read only permission, root only */
228static struct bin_attribute bin_attr_ro_root_nvmem = {
229 .attr = {
230 .name = "nvmem",
231 .mode = S_IRUSR,
232 },
233 .read = bin_attr_nvmem_read,
234};
235
236static struct bin_attribute *nvmem_bin_ro_root_attributes[] = {
237 &bin_attr_ro_root_nvmem,
238 NULL,
239};
240
241static const struct attribute_group nvmem_bin_ro_root_group = {
242 .bin_attrs = nvmem_bin_ro_root_attributes,
243};
244
245static const struct attribute_group *nvmem_ro_root_dev_groups[] = {
246 &nvmem_bin_ro_root_group,
247 NULL,
248};
249
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250static void nvmem_release(struct device *dev)
251{
252 struct nvmem_device *nvmem = to_nvmem_device(dev);
253
254 ida_simple_remove(&nvmem_ida, nvmem->id);
255 kfree(nvmem);
256}
257
258static const struct device_type nvmem_provider_type = {
259 .release = nvmem_release,
260};
261
262static struct bus_type nvmem_bus_type = {
263 .name = "nvmem",
264};
265
266static int of_nvmem_match(struct device *dev, void *nvmem_np)
267{
268 return dev->of_node == nvmem_np;
269}
270
271static struct nvmem_device *of_nvmem_find(struct device_node *nvmem_np)
272{
273 struct device *d;
274
275 if (!nvmem_np)
276 return NULL;
277
278 d = bus_find_device(&nvmem_bus_type, NULL, nvmem_np, of_nvmem_match);
279
280 if (!d)
281 return NULL;
282
283 return to_nvmem_device(d);
284}
285
286static struct nvmem_cell *nvmem_find_cell(const char *cell_id)
287{
288 struct nvmem_cell *p;
289
666d6a36
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290 mutex_lock(&nvmem_cells_mutex);
291
eace75cf 292 list_for_each_entry(p, &nvmem_cells, node)
fd086113 293 if (!strcmp(p->name, cell_id)) {
666d6a36 294 mutex_unlock(&nvmem_cells_mutex);
eace75cf 295 return p;
666d6a36
HK
296 }
297
298 mutex_unlock(&nvmem_cells_mutex);
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299
300 return NULL;
301}
302
303static void nvmem_cell_drop(struct nvmem_cell *cell)
304{
305 mutex_lock(&nvmem_cells_mutex);
306 list_del(&cell->node);
307 mutex_unlock(&nvmem_cells_mutex);
308 kfree(cell);
309}
310
311static void nvmem_device_remove_all_cells(const struct nvmem_device *nvmem)
312{
313 struct nvmem_cell *cell;
314 struct list_head *p, *n;
315
316 list_for_each_safe(p, n, &nvmem_cells) {
317 cell = list_entry(p, struct nvmem_cell, node);
318 if (cell->nvmem == nvmem)
319 nvmem_cell_drop(cell);
320 }
321}
322
323static void nvmem_cell_add(struct nvmem_cell *cell)
324{
325 mutex_lock(&nvmem_cells_mutex);
326 list_add_tail(&cell->node, &nvmem_cells);
327 mutex_unlock(&nvmem_cells_mutex);
328}
329
330static int nvmem_cell_info_to_nvmem_cell(struct nvmem_device *nvmem,
331 const struct nvmem_cell_info *info,
332 struct nvmem_cell *cell)
333{
334 cell->nvmem = nvmem;
335 cell->offset = info->offset;
336 cell->bytes = info->bytes;
337 cell->name = info->name;
338
339 cell->bit_offset = info->bit_offset;
340 cell->nbits = info->nbits;
341
342 if (cell->nbits)
343 cell->bytes = DIV_ROUND_UP(cell->nbits + cell->bit_offset,
344 BITS_PER_BYTE);
345
346 if (!IS_ALIGNED(cell->offset, nvmem->stride)) {
347 dev_err(&nvmem->dev,
348 "cell %s unaligned to nvmem stride %d\n",
349 cell->name, nvmem->stride);
350 return -EINVAL;
351 }
352
353 return 0;
354}
355
356static int nvmem_add_cells(struct nvmem_device *nvmem,
357 const struct nvmem_config *cfg)
358{
359 struct nvmem_cell **cells;
360 const struct nvmem_cell_info *info = cfg->cells;
361 int i, rval;
362
363 cells = kcalloc(cfg->ncells, sizeof(*cells), GFP_KERNEL);
364 if (!cells)
365 return -ENOMEM;
366
367 for (i = 0; i < cfg->ncells; i++) {
368 cells[i] = kzalloc(sizeof(**cells), GFP_KERNEL);
369 if (!cells[i]) {
370 rval = -ENOMEM;
371 goto err;
372 }
373
374 rval = nvmem_cell_info_to_nvmem_cell(nvmem, &info[i], cells[i]);
287980e4 375 if (rval) {
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376 kfree(cells[i]);
377 goto err;
378 }
379
380 nvmem_cell_add(cells[i]);
381 }
382
383 nvmem->ncells = cfg->ncells;
384 /* remove tmp array */
385 kfree(cells);
386
387 return 0;
388err:
dfdf1414 389 while (i--)
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390 nvmem_cell_drop(cells[i]);
391
dfdf1414
RV
392 kfree(cells);
393
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394 return rval;
395}
396
b6c217ab
AL
397/*
398 * nvmem_setup_compat() - Create an additional binary entry in
399 * drivers sys directory, to be backwards compatible with the older
400 * drivers/misc/eeprom drivers.
401 */
402static int nvmem_setup_compat(struct nvmem_device *nvmem,
403 const struct nvmem_config *config)
404{
405 int rval;
406
407 if (!config->base_dev)
408 return -EINVAL;
409
410 if (nvmem->read_only)
411 nvmem->eeprom = bin_attr_ro_root_nvmem;
412 else
413 nvmem->eeprom = bin_attr_rw_root_nvmem;
414 nvmem->eeprom.attr.name = "eeprom";
415 nvmem->eeprom.size = nvmem->size;
416#ifdef CONFIG_DEBUG_LOCK_ALLOC
417 nvmem->eeprom.attr.key = &eeprom_lock_key;
418#endif
419 nvmem->eeprom.private = &nvmem->dev;
420 nvmem->base_dev = config->base_dev;
421
422 rval = device_create_bin_file(nvmem->base_dev, &nvmem->eeprom);
423 if (rval) {
424 dev_err(&nvmem->dev,
425 "Failed to create eeprom binary file %d\n", rval);
426 return rval;
427 }
428
429 nvmem->flags |= FLAG_COMPAT;
430
431 return 0;
432}
433
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434/**
435 * nvmem_register() - Register a nvmem device for given nvmem_config.
436 * Also creates an binary entry in /sys/bus/nvmem/devices/dev-name/nvmem
437 *
438 * @config: nvmem device configuration with which nvmem device is created.
439 *
440 * Return: Will be an ERR_PTR() on error or a valid pointer to nvmem_device
441 * on success.
442 */
443
444struct nvmem_device *nvmem_register(const struct nvmem_config *config)
445{
446 struct nvmem_device *nvmem;
447 struct device_node *np;
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448 int rval;
449
450 if (!config->dev)
451 return ERR_PTR(-EINVAL);
452
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453 nvmem = kzalloc(sizeof(*nvmem), GFP_KERNEL);
454 if (!nvmem)
455 return ERR_PTR(-ENOMEM);
456
457 rval = ida_simple_get(&nvmem_ida, 0, 0, GFP_KERNEL);
458 if (rval < 0) {
459 kfree(nvmem);
460 return ERR_PTR(rval);
461 }
462
463 nvmem->id = rval;
eace75cf 464 nvmem->owner = config->owner;
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MY
465 if (!nvmem->owner && config->dev->driver)
466 nvmem->owner = config->dev->driver->owner;
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467 nvmem->stride = config->stride;
468 nvmem->word_size = config->word_size;
469 nvmem->size = config->size;
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470 nvmem->dev.type = &nvmem_provider_type;
471 nvmem->dev.bus = &nvmem_bus_type;
472 nvmem->dev.parent = config->dev;
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473 nvmem->priv = config->priv;
474 nvmem->reg_read = config->reg_read;
475 nvmem->reg_write = config->reg_write;
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476 np = config->dev->of_node;
477 nvmem->dev.of_node = np;
478 dev_set_name(&nvmem->dev, "%s%d",
5253193d
AB
479 config->name ? : "nvmem",
480 config->name ? config->id : nvmem->id);
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481
482 nvmem->read_only = of_property_read_bool(np, "read-only") |
483 config->read_only;
484
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485 if (config->root_only)
486 nvmem->dev.groups = nvmem->read_only ?
487 nvmem_ro_root_dev_groups :
488 nvmem_rw_root_dev_groups;
489 else
490 nvmem->dev.groups = nvmem->read_only ?
491 nvmem_ro_dev_groups :
492 nvmem_rw_dev_groups;
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493
494 device_initialize(&nvmem->dev);
495
496 dev_dbg(&nvmem->dev, "Registering nvmem device %s\n", config->name);
497
498 rval = device_add(&nvmem->dev);
b6c217ab 499 if (rval)
3360acdf 500 goto err_put_device;
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AL
501
502 if (config->compat) {
503 rval = nvmem_setup_compat(nvmem, config);
504 if (rval)
3360acdf 505 goto err_device_del;
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506 }
507
508 if (config->cells)
509 nvmem_add_cells(nvmem, config);
510
511 return nvmem;
3360acdf
JH
512
513err_device_del:
514 device_del(&nvmem->dev);
515err_put_device:
516 put_device(&nvmem->dev);
517
b6c217ab 518 return ERR_PTR(rval);
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519}
520EXPORT_SYMBOL_GPL(nvmem_register);
521
522/**
523 * nvmem_unregister() - Unregister previously registered nvmem device
524 *
525 * @nvmem: Pointer to previously registered nvmem device.
526 *
527 * Return: Will be an negative on error or a zero on success.
528 */
529int nvmem_unregister(struct nvmem_device *nvmem)
530{
69aba794
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531 mutex_lock(&nvmem_mutex);
532 if (nvmem->users) {
533 mutex_unlock(&nvmem_mutex);
eace75cf 534 return -EBUSY;
69aba794
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535 }
536 mutex_unlock(&nvmem_mutex);
eace75cf 537
b6c217ab
AL
538 if (nvmem->flags & FLAG_COMPAT)
539 device_remove_bin_file(nvmem->base_dev, &nvmem->eeprom);
540
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541 nvmem_device_remove_all_cells(nvmem);
542 device_del(&nvmem->dev);
79fbf046 543 put_device(&nvmem->dev);
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544
545 return 0;
546}
547EXPORT_SYMBOL_GPL(nvmem_unregister);
548
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549static struct nvmem_device *__nvmem_device_get(struct device_node *np,
550 struct nvmem_cell **cellp,
551 const char *cell_id)
552{
553 struct nvmem_device *nvmem = NULL;
554
555 mutex_lock(&nvmem_mutex);
556
557 if (np) {
558 nvmem = of_nvmem_find(np);
559 if (!nvmem) {
560 mutex_unlock(&nvmem_mutex);
561 return ERR_PTR(-EPROBE_DEFER);
562 }
563 } else {
564 struct nvmem_cell *cell = nvmem_find_cell(cell_id);
565
566 if (cell) {
567 nvmem = cell->nvmem;
568 *cellp = cell;
569 }
570
571 if (!nvmem) {
572 mutex_unlock(&nvmem_mutex);
573 return ERR_PTR(-ENOENT);
574 }
575 }
576
577 nvmem->users++;
578 mutex_unlock(&nvmem_mutex);
579
580 if (!try_module_get(nvmem->owner)) {
581 dev_err(&nvmem->dev,
582 "could not increase module refcount for cell %s\n",
583 nvmem->name);
584
585 mutex_lock(&nvmem_mutex);
586 nvmem->users--;
587 mutex_unlock(&nvmem_mutex);
588
589 return ERR_PTR(-EINVAL);
590 }
591
592 return nvmem;
593}
594
595static void __nvmem_device_put(struct nvmem_device *nvmem)
596{
597 module_put(nvmem->owner);
598 mutex_lock(&nvmem_mutex);
599 nvmem->users--;
600 mutex_unlock(&nvmem_mutex);
601}
602
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603static int nvmem_match(struct device *dev, void *data)
604{
605 return !strcmp(dev_name(dev), data);
606}
607
608static struct nvmem_device *nvmem_find(const char *name)
609{
610 struct device *d;
611
612 d = bus_find_device(&nvmem_bus_type, NULL, (void *)name, nvmem_match);
613
614 if (!d)
615 return NULL;
616
617 return to_nvmem_device(d);
618}
619
e701c67c 620#if IS_ENABLED(CONFIG_OF)
e2a5402e
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621/**
622 * of_nvmem_device_get() - Get nvmem device from a given id
623 *
29143268 624 * @np: Device tree node that uses the nvmem device.
e2a5402e
SK
625 * @id: nvmem name from nvmem-names property.
626 *
627 * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
628 * on success.
629 */
630struct nvmem_device *of_nvmem_device_get(struct device_node *np, const char *id)
631{
632
633 struct device_node *nvmem_np;
634 int index;
635
636 index = of_property_match_string(np, "nvmem-names", id);
637
638 nvmem_np = of_parse_phandle(np, "nvmem", index);
639 if (!nvmem_np)
640 return ERR_PTR(-EINVAL);
641
642 return __nvmem_device_get(nvmem_np, NULL, NULL);
643}
644EXPORT_SYMBOL_GPL(of_nvmem_device_get);
645#endif
646
647/**
648 * nvmem_device_get() - Get nvmem device from a given id
649 *
29143268
VG
650 * @dev: Device that uses the nvmem device.
651 * @dev_name: name of the requested nvmem device.
e2a5402e
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652 *
653 * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
654 * on success.
655 */
656struct nvmem_device *nvmem_device_get(struct device *dev, const char *dev_name)
657{
658 if (dev->of_node) { /* try dt first */
659 struct nvmem_device *nvmem;
660
661 nvmem = of_nvmem_device_get(dev->of_node, dev_name);
662
663 if (!IS_ERR(nvmem) || PTR_ERR(nvmem) == -EPROBE_DEFER)
664 return nvmem;
665
666 }
667
668 return nvmem_find(dev_name);
669}
670EXPORT_SYMBOL_GPL(nvmem_device_get);
671
672static int devm_nvmem_device_match(struct device *dev, void *res, void *data)
673{
674 struct nvmem_device **nvmem = res;
675
676 if (WARN_ON(!nvmem || !*nvmem))
677 return 0;
678
679 return *nvmem == data;
680}
681
682static void devm_nvmem_device_release(struct device *dev, void *res)
683{
684 nvmem_device_put(*(struct nvmem_device **)res);
685}
686
687/**
688 * devm_nvmem_device_put() - put alredy got nvmem device
689 *
29143268 690 * @dev: Device that uses the nvmem device.
e2a5402e
SK
691 * @nvmem: pointer to nvmem device allocated by devm_nvmem_cell_get(),
692 * that needs to be released.
693 */
694void devm_nvmem_device_put(struct device *dev, struct nvmem_device *nvmem)
695{
696 int ret;
697
698 ret = devres_release(dev, devm_nvmem_device_release,
699 devm_nvmem_device_match, nvmem);
700
701 WARN_ON(ret);
702}
703EXPORT_SYMBOL_GPL(devm_nvmem_device_put);
704
705/**
706 * nvmem_device_put() - put alredy got nvmem device
707 *
708 * @nvmem: pointer to nvmem device that needs to be released.
709 */
710void nvmem_device_put(struct nvmem_device *nvmem)
711{
712 __nvmem_device_put(nvmem);
713}
714EXPORT_SYMBOL_GPL(nvmem_device_put);
715
716/**
717 * devm_nvmem_device_get() - Get nvmem cell of device form a given id
718 *
29143268
VG
719 * @dev: Device that requests the nvmem device.
720 * @id: name id for the requested nvmem device.
e2a5402e
SK
721 *
722 * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_cell
723 * on success. The nvmem_cell will be freed by the automatically once the
724 * device is freed.
725 */
726struct nvmem_device *devm_nvmem_device_get(struct device *dev, const char *id)
727{
728 struct nvmem_device **ptr, *nvmem;
729
730 ptr = devres_alloc(devm_nvmem_device_release, sizeof(*ptr), GFP_KERNEL);
731 if (!ptr)
732 return ERR_PTR(-ENOMEM);
733
734 nvmem = nvmem_device_get(dev, id);
735 if (!IS_ERR(nvmem)) {
736 *ptr = nvmem;
737 devres_add(dev, ptr);
738 } else {
739 devres_free(ptr);
740 }
741
742 return nvmem;
743}
744EXPORT_SYMBOL_GPL(devm_nvmem_device_get);
745
69aba794
SK
746static struct nvmem_cell *nvmem_cell_get_from_list(const char *cell_id)
747{
748 struct nvmem_cell *cell = NULL;
749 struct nvmem_device *nvmem;
750
751 nvmem = __nvmem_device_get(NULL, &cell, cell_id);
752 if (IS_ERR(nvmem))
753 return ERR_CAST(nvmem);
754
755 return cell;
756}
757
e701c67c 758#if IS_ENABLED(CONFIG_OF)
69aba794
SK
759/**
760 * of_nvmem_cell_get() - Get a nvmem cell from given device node and cell id
761 *
29143268 762 * @np: Device tree node that uses the nvmem cell.
fd0c478c
VG
763 * @name: nvmem cell name from nvmem-cell-names property, or NULL
764 * for the cell at index 0 (the lone cell with no accompanying
765 * nvmem-cell-names property).
69aba794
SK
766 *
767 * Return: Will be an ERR_PTR() on error or a valid pointer
768 * to a struct nvmem_cell. The nvmem_cell will be freed by the
769 * nvmem_cell_put().
770 */
771struct nvmem_cell *of_nvmem_cell_get(struct device_node *np,
772 const char *name)
773{
774 struct device_node *cell_np, *nvmem_np;
775 struct nvmem_cell *cell;
776 struct nvmem_device *nvmem;
777 const __be32 *addr;
fd0c478c
VG
778 int rval, len;
779 int index = 0;
69aba794 780
fd0c478c
VG
781 /* if cell name exists, find index to the name */
782 if (name)
783 index = of_property_match_string(np, "nvmem-cell-names", name);
69aba794
SK
784
785 cell_np = of_parse_phandle(np, "nvmem-cells", index);
786 if (!cell_np)
787 return ERR_PTR(-EINVAL);
788
789 nvmem_np = of_get_next_parent(cell_np);
790 if (!nvmem_np)
791 return ERR_PTR(-EINVAL);
792
793 nvmem = __nvmem_device_get(nvmem_np, NULL, NULL);
aad8d097 794 of_node_put(nvmem_np);
69aba794
SK
795 if (IS_ERR(nvmem))
796 return ERR_CAST(nvmem);
797
798 addr = of_get_property(cell_np, "reg", &len);
799 if (!addr || (len < 2 * sizeof(u32))) {
5f214ccd
RH
800 dev_err(&nvmem->dev, "nvmem: invalid reg on %pOF\n",
801 cell_np);
69aba794
SK
802 rval = -EINVAL;
803 goto err_mem;
804 }
805
806 cell = kzalloc(sizeof(*cell), GFP_KERNEL);
807 if (!cell) {
808 rval = -ENOMEM;
809 goto err_mem;
810 }
811
812 cell->nvmem = nvmem;
813 cell->offset = be32_to_cpup(addr++);
814 cell->bytes = be32_to_cpup(addr);
815 cell->name = cell_np->name;
816
817 addr = of_get_property(cell_np, "bits", &len);
818 if (addr && len == (2 * sizeof(u32))) {
819 cell->bit_offset = be32_to_cpup(addr++);
820 cell->nbits = be32_to_cpup(addr);
821 }
822
823 if (cell->nbits)
824 cell->bytes = DIV_ROUND_UP(cell->nbits + cell->bit_offset,
825 BITS_PER_BYTE);
826
827 if (!IS_ALIGNED(cell->offset, nvmem->stride)) {
828 dev_err(&nvmem->dev,
829 "cell %s unaligned to nvmem stride %d\n",
830 cell->name, nvmem->stride);
831 rval = -EINVAL;
832 goto err_sanity;
833 }
834
835 nvmem_cell_add(cell);
836
837 return cell;
838
839err_sanity:
840 kfree(cell);
841
842err_mem:
843 __nvmem_device_put(nvmem);
844
845 return ERR_PTR(rval);
846}
847EXPORT_SYMBOL_GPL(of_nvmem_cell_get);
848#endif
849
850/**
851 * nvmem_cell_get() - Get nvmem cell of device form a given cell name
852 *
29143268
VG
853 * @dev: Device that requests the nvmem cell.
854 * @cell_id: nvmem cell name to get.
69aba794
SK
855 *
856 * Return: Will be an ERR_PTR() on error or a valid pointer
857 * to a struct nvmem_cell. The nvmem_cell will be freed by the
858 * nvmem_cell_put().
859 */
860struct nvmem_cell *nvmem_cell_get(struct device *dev, const char *cell_id)
861{
862 struct nvmem_cell *cell;
863
864 if (dev->of_node) { /* try dt first */
865 cell = of_nvmem_cell_get(dev->of_node, cell_id);
866 if (!IS_ERR(cell) || PTR_ERR(cell) == -EPROBE_DEFER)
867 return cell;
868 }
869
870 return nvmem_cell_get_from_list(cell_id);
871}
872EXPORT_SYMBOL_GPL(nvmem_cell_get);
873
874static void devm_nvmem_cell_release(struct device *dev, void *res)
875{
876 nvmem_cell_put(*(struct nvmem_cell **)res);
877}
878
879/**
880 * devm_nvmem_cell_get() - Get nvmem cell of device form a given id
881 *
29143268
VG
882 * @dev: Device that requests the nvmem cell.
883 * @id: nvmem cell name id to get.
69aba794
SK
884 *
885 * Return: Will be an ERR_PTR() on error or a valid pointer
886 * to a struct nvmem_cell. The nvmem_cell will be freed by the
887 * automatically once the device is freed.
888 */
889struct nvmem_cell *devm_nvmem_cell_get(struct device *dev, const char *id)
890{
891 struct nvmem_cell **ptr, *cell;
892
893 ptr = devres_alloc(devm_nvmem_cell_release, sizeof(*ptr), GFP_KERNEL);
894 if (!ptr)
895 return ERR_PTR(-ENOMEM);
896
897 cell = nvmem_cell_get(dev, id);
898 if (!IS_ERR(cell)) {
899 *ptr = cell;
900 devres_add(dev, ptr);
901 } else {
902 devres_free(ptr);
903 }
904
905 return cell;
906}
907EXPORT_SYMBOL_GPL(devm_nvmem_cell_get);
908
909static int devm_nvmem_cell_match(struct device *dev, void *res, void *data)
910{
911 struct nvmem_cell **c = res;
912
913 if (WARN_ON(!c || !*c))
914 return 0;
915
916 return *c == data;
917}
918
919/**
920 * devm_nvmem_cell_put() - Release previously allocated nvmem cell
921 * from devm_nvmem_cell_get.
922 *
29143268
VG
923 * @dev: Device that requests the nvmem cell.
924 * @cell: Previously allocated nvmem cell by devm_nvmem_cell_get().
69aba794
SK
925 */
926void devm_nvmem_cell_put(struct device *dev, struct nvmem_cell *cell)
927{
928 int ret;
929
930 ret = devres_release(dev, devm_nvmem_cell_release,
931 devm_nvmem_cell_match, cell);
932
933 WARN_ON(ret);
934}
935EXPORT_SYMBOL(devm_nvmem_cell_put);
936
937/**
938 * nvmem_cell_put() - Release previously allocated nvmem cell.
939 *
29143268 940 * @cell: Previously allocated nvmem cell by nvmem_cell_get().
69aba794
SK
941 */
942void nvmem_cell_put(struct nvmem_cell *cell)
943{
944 struct nvmem_device *nvmem = cell->nvmem;
945
946 __nvmem_device_put(nvmem);
947 nvmem_cell_drop(cell);
948}
949EXPORT_SYMBOL_GPL(nvmem_cell_put);
950
f7c04f16 951static void nvmem_shift_read_buffer_in_place(struct nvmem_cell *cell, void *buf)
69aba794
SK
952{
953 u8 *p, *b;
954 int i, bit_offset = cell->bit_offset;
955
956 p = b = buf;
957 if (bit_offset) {
958 /* First shift */
959 *b++ >>= bit_offset;
960
961 /* setup rest of the bytes if any */
962 for (i = 1; i < cell->bytes; i++) {
963 /* Get bits from next byte and shift them towards msb */
964 *p |= *b << (BITS_PER_BYTE - bit_offset);
965
966 p = b;
967 *b++ >>= bit_offset;
968 }
969
970 /* result fits in less bytes */
971 if (cell->bytes != DIV_ROUND_UP(cell->nbits, BITS_PER_BYTE))
972 *p-- = 0;
973 }
974 /* clear msb bits if any leftover in the last byte */
975 *p &= GENMASK((cell->nbits%BITS_PER_BYTE) - 1, 0);
976}
977
978static int __nvmem_cell_read(struct nvmem_device *nvmem,
979 struct nvmem_cell *cell,
980 void *buf, size_t *len)
981{
982 int rc;
983
795ddd18 984 rc = nvmem_reg_read(nvmem, cell->offset, buf, cell->bytes);
69aba794 985
287980e4 986 if (rc)
69aba794
SK
987 return rc;
988
989 /* shift bits in-place */
cbf854ab 990 if (cell->bit_offset || cell->nbits)
69aba794
SK
991 nvmem_shift_read_buffer_in_place(cell, buf);
992
3b4a6877
VG
993 if (len)
994 *len = cell->bytes;
69aba794
SK
995
996 return 0;
997}
998
999/**
1000 * nvmem_cell_read() - Read a given nvmem cell
1001 *
1002 * @cell: nvmem cell to be read.
3b4a6877
VG
1003 * @len: pointer to length of cell which will be populated on successful read;
1004 * can be NULL.
69aba794 1005 *
b577fafc
BN
1006 * Return: ERR_PTR() on error or a valid pointer to a buffer on success. The
1007 * buffer should be freed by the consumer with a kfree().
69aba794
SK
1008 */
1009void *nvmem_cell_read(struct nvmem_cell *cell, size_t *len)
1010{
1011 struct nvmem_device *nvmem = cell->nvmem;
1012 u8 *buf;
1013 int rc;
1014
795ddd18 1015 if (!nvmem)
69aba794
SK
1016 return ERR_PTR(-EINVAL);
1017
1018 buf = kzalloc(cell->bytes, GFP_KERNEL);
1019 if (!buf)
1020 return ERR_PTR(-ENOMEM);
1021
1022 rc = __nvmem_cell_read(nvmem, cell, buf, len);
287980e4 1023 if (rc) {
69aba794
SK
1024 kfree(buf);
1025 return ERR_PTR(rc);
1026 }
1027
1028 return buf;
1029}
1030EXPORT_SYMBOL_GPL(nvmem_cell_read);
1031
f7c04f16
MY
1032static void *nvmem_cell_prepare_write_buffer(struct nvmem_cell *cell,
1033 u8 *_buf, int len)
69aba794
SK
1034{
1035 struct nvmem_device *nvmem = cell->nvmem;
1036 int i, rc, nbits, bit_offset = cell->bit_offset;
1037 u8 v, *p, *buf, *b, pbyte, pbits;
1038
1039 nbits = cell->nbits;
1040 buf = kzalloc(cell->bytes, GFP_KERNEL);
1041 if (!buf)
1042 return ERR_PTR(-ENOMEM);
1043
1044 memcpy(buf, _buf, len);
1045 p = b = buf;
1046
1047 if (bit_offset) {
1048 pbyte = *b;
1049 *b <<= bit_offset;
1050
1051 /* setup the first byte with lsb bits from nvmem */
795ddd18 1052 rc = nvmem_reg_read(nvmem, cell->offset, &v, 1);
272fef0c
MM
1053 if (rc)
1054 goto err;
69aba794
SK
1055 *b++ |= GENMASK(bit_offset - 1, 0) & v;
1056
1057 /* setup rest of the byte if any */
1058 for (i = 1; i < cell->bytes; i++) {
1059 /* Get last byte bits and shift them towards lsb */
1060 pbits = pbyte >> (BITS_PER_BYTE - 1 - bit_offset);
1061 pbyte = *b;
1062 p = b;
1063 *b <<= bit_offset;
1064 *b++ |= pbits;
1065 }
1066 }
1067
1068 /* if it's not end on byte boundary */
1069 if ((nbits + bit_offset) % BITS_PER_BYTE) {
1070 /* setup the last byte with msb bits from nvmem */
795ddd18 1071 rc = nvmem_reg_read(nvmem,
69aba794 1072 cell->offset + cell->bytes - 1, &v, 1);
272fef0c
MM
1073 if (rc)
1074 goto err;
69aba794
SK
1075 *p |= GENMASK(7, (nbits + bit_offset) % BITS_PER_BYTE) & v;
1076
1077 }
1078
1079 return buf;
272fef0c
MM
1080err:
1081 kfree(buf);
1082 return ERR_PTR(rc);
69aba794
SK
1083}
1084
1085/**
1086 * nvmem_cell_write() - Write to a given nvmem cell
1087 *
1088 * @cell: nvmem cell to be written.
1089 * @buf: Buffer to be written.
1090 * @len: length of buffer to be written to nvmem cell.
1091 *
1092 * Return: length of bytes written or negative on failure.
1093 */
1094int nvmem_cell_write(struct nvmem_cell *cell, void *buf, size_t len)
1095{
1096 struct nvmem_device *nvmem = cell->nvmem;
1097 int rc;
1098
795ddd18 1099 if (!nvmem || nvmem->read_only ||
69aba794
SK
1100 (cell->bit_offset == 0 && len != cell->bytes))
1101 return -EINVAL;
1102
1103 if (cell->bit_offset || cell->nbits) {
1104 buf = nvmem_cell_prepare_write_buffer(cell, buf, len);
1105 if (IS_ERR(buf))
1106 return PTR_ERR(buf);
1107 }
1108
795ddd18 1109 rc = nvmem_reg_write(nvmem, cell->offset, buf, cell->bytes);
69aba794
SK
1110
1111 /* free the tmp buffer */
ace22170 1112 if (cell->bit_offset || cell->nbits)
69aba794
SK
1113 kfree(buf);
1114
287980e4 1115 if (rc)
69aba794
SK
1116 return rc;
1117
1118 return len;
1119}
1120EXPORT_SYMBOL_GPL(nvmem_cell_write);
1121
d026d70a
LC
1122/**
1123 * nvmem_cell_read_u32() - Read a cell value as an u32
1124 *
1125 * @dev: Device that requests the nvmem cell.
1126 * @cell_id: Name of nvmem cell to read.
1127 * @val: pointer to output value.
1128 *
1129 * Return: 0 on success or negative errno.
1130 */
1131int nvmem_cell_read_u32(struct device *dev, const char *cell_id, u32 *val)
1132{
1133 struct nvmem_cell *cell;
1134 void *buf;
1135 size_t len;
1136
1137 cell = nvmem_cell_get(dev, cell_id);
1138 if (IS_ERR(cell))
1139 return PTR_ERR(cell);
1140
1141 buf = nvmem_cell_read(cell, &len);
1142 if (IS_ERR(buf)) {
1143 nvmem_cell_put(cell);
1144 return PTR_ERR(buf);
1145 }
1146 if (len != sizeof(*val)) {
1147 kfree(buf);
1148 nvmem_cell_put(cell);
1149 return -EINVAL;
1150 }
1151 memcpy(val, buf, sizeof(*val));
1152
1153 kfree(buf);
1154 nvmem_cell_put(cell);
1155 return 0;
1156}
1157EXPORT_SYMBOL_GPL(nvmem_cell_read_u32);
1158
e2a5402e
SK
1159/**
1160 * nvmem_device_cell_read() - Read a given nvmem device and cell
1161 *
1162 * @nvmem: nvmem device to read from.
1163 * @info: nvmem cell info to be read.
1164 * @buf: buffer pointer which will be populated on successful read.
1165 *
1166 * Return: length of successful bytes read on success and negative
1167 * error code on error.
1168 */
1169ssize_t nvmem_device_cell_read(struct nvmem_device *nvmem,
1170 struct nvmem_cell_info *info, void *buf)
1171{
1172 struct nvmem_cell cell;
1173 int rc;
1174 ssize_t len;
1175
795ddd18 1176 if (!nvmem)
e2a5402e
SK
1177 return -EINVAL;
1178
1179 rc = nvmem_cell_info_to_nvmem_cell(nvmem, info, &cell);
287980e4 1180 if (rc)
e2a5402e
SK
1181 return rc;
1182
1183 rc = __nvmem_cell_read(nvmem, &cell, buf, &len);
287980e4 1184 if (rc)
e2a5402e
SK
1185 return rc;
1186
1187 return len;
1188}
1189EXPORT_SYMBOL_GPL(nvmem_device_cell_read);
1190
1191/**
1192 * nvmem_device_cell_write() - Write cell to a given nvmem device
1193 *
1194 * @nvmem: nvmem device to be written to.
29143268 1195 * @info: nvmem cell info to be written.
e2a5402e
SK
1196 * @buf: buffer to be written to cell.
1197 *
1198 * Return: length of bytes written or negative error code on failure.
1199 * */
1200int nvmem_device_cell_write(struct nvmem_device *nvmem,
1201 struct nvmem_cell_info *info, void *buf)
1202{
1203 struct nvmem_cell cell;
1204 int rc;
1205
795ddd18 1206 if (!nvmem)
e2a5402e
SK
1207 return -EINVAL;
1208
1209 rc = nvmem_cell_info_to_nvmem_cell(nvmem, info, &cell);
287980e4 1210 if (rc)
e2a5402e
SK
1211 return rc;
1212
1213 return nvmem_cell_write(&cell, buf, cell.bytes);
1214}
1215EXPORT_SYMBOL_GPL(nvmem_device_cell_write);
1216
1217/**
1218 * nvmem_device_read() - Read from a given nvmem device
1219 *
1220 * @nvmem: nvmem device to read from.
1221 * @offset: offset in nvmem device.
1222 * @bytes: number of bytes to read.
1223 * @buf: buffer pointer which will be populated on successful read.
1224 *
1225 * Return: length of successful bytes read on success and negative
1226 * error code on error.
1227 */
1228int nvmem_device_read(struct nvmem_device *nvmem,
1229 unsigned int offset,
1230 size_t bytes, void *buf)
1231{
1232 int rc;
1233
795ddd18 1234 if (!nvmem)
e2a5402e
SK
1235 return -EINVAL;
1236
795ddd18 1237 rc = nvmem_reg_read(nvmem, offset, buf, bytes);
e2a5402e 1238
287980e4 1239 if (rc)
e2a5402e
SK
1240 return rc;
1241
1242 return bytes;
1243}
1244EXPORT_SYMBOL_GPL(nvmem_device_read);
1245
1246/**
1247 * nvmem_device_write() - Write cell to a given nvmem device
1248 *
1249 * @nvmem: nvmem device to be written to.
1250 * @offset: offset in nvmem device.
1251 * @bytes: number of bytes to write.
1252 * @buf: buffer to be written.
1253 *
1254 * Return: length of bytes written or negative error code on failure.
1255 * */
1256int nvmem_device_write(struct nvmem_device *nvmem,
1257 unsigned int offset,
1258 size_t bytes, void *buf)
1259{
1260 int rc;
1261
795ddd18 1262 if (!nvmem)
e2a5402e
SK
1263 return -EINVAL;
1264
795ddd18 1265 rc = nvmem_reg_write(nvmem, offset, buf, bytes);
e2a5402e 1266
287980e4 1267 if (rc)
e2a5402e
SK
1268 return rc;
1269
1270
1271 return bytes;
1272}
1273EXPORT_SYMBOL_GPL(nvmem_device_write);
1274
eace75cf
SK
1275static int __init nvmem_init(void)
1276{
1277 return bus_register(&nvmem_bus_type);
1278}
1279
1280static void __exit nvmem_exit(void)
1281{
1282 bus_unregister(&nvmem_bus_type);
1283}
1284
1285subsys_initcall(nvmem_init);
1286module_exit(nvmem_exit);
1287
1288MODULE_AUTHOR("Srinivas Kandagatla <srinivas.kandagatla@linaro.org");
1289MODULE_AUTHOR("Maxime Ripard <maxime.ripard@free-electrons.com");
1290MODULE_DESCRIPTION("nvmem Driver Core");
1291MODULE_LICENSE("GPL v2");