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regmap: merge regmap_field_write() into macro
[karo-tx-linux.git] / drivers / base / regmap / regmap.c
1 /*
2  * Register map access API
3  *
4  * Copyright 2011 Wolfson Microelectronics plc
5  *
6  * Author: Mark Brown <broonie@opensource.wolfsonmicro.com>
7  *
8  * This program is free software; you can redistribute it and/or modify
9  * it under the terms of the GNU General Public License version 2 as
10  * published by the Free Software Foundation.
11  */
12
13 #include <linux/device.h>
14 #include <linux/slab.h>
15 #include <linux/export.h>
16 #include <linux/mutex.h>
17 #include <linux/err.h>
18 #include <linux/of.h>
19 #include <linux/rbtree.h>
20 #include <linux/sched.h>
21 #include <linux/delay.h>
22
23 #define CREATE_TRACE_POINTS
24 #include "trace.h"
25
26 #include "internal.h"
27
28 /*
29  * Sometimes for failures during very early init the trace
30  * infrastructure isn't available early enough to be used.  For this
31  * sort of problem defining LOG_DEVICE will add printks for basic
32  * register I/O on a specific device.
33  */
34 #undef LOG_DEVICE
35
36 static int _regmap_update_bits(struct regmap *map, unsigned int reg,
37                                unsigned int mask, unsigned int val,
38                                bool *change, bool force_write);
39
40 static int _regmap_bus_reg_read(void *context, unsigned int reg,
41                                 unsigned int *val);
42 static int _regmap_bus_read(void *context, unsigned int reg,
43                             unsigned int *val);
44 static int _regmap_bus_formatted_write(void *context, unsigned int reg,
45                                        unsigned int val);
46 static int _regmap_bus_reg_write(void *context, unsigned int reg,
47                                  unsigned int val);
48 static int _regmap_bus_raw_write(void *context, unsigned int reg,
49                                  unsigned int val);
50
51 bool regmap_reg_in_ranges(unsigned int reg,
52                           const struct regmap_range *ranges,
53                           unsigned int nranges)
54 {
55         const struct regmap_range *r;
56         int i;
57
58         for (i = 0, r = ranges; i < nranges; i++, r++)
59                 if (regmap_reg_in_range(reg, r))
60                         return true;
61         return false;
62 }
63 EXPORT_SYMBOL_GPL(regmap_reg_in_ranges);
64
65 bool regmap_check_range_table(struct regmap *map, unsigned int reg,
66                               const struct regmap_access_table *table)
67 {
68         /* Check "no ranges" first */
69         if (regmap_reg_in_ranges(reg, table->no_ranges, table->n_no_ranges))
70                 return false;
71
72         /* In case zero "yes ranges" are supplied, any reg is OK */
73         if (!table->n_yes_ranges)
74                 return true;
75
76         return regmap_reg_in_ranges(reg, table->yes_ranges,
77                                     table->n_yes_ranges);
78 }
79 EXPORT_SYMBOL_GPL(regmap_check_range_table);
80
81 bool regmap_writeable(struct regmap *map, unsigned int reg)
82 {
83         if (map->max_register && reg > map->max_register)
84                 return false;
85
86         if (map->writeable_reg)
87                 return map->writeable_reg(map->dev, reg);
88
89         if (map->wr_table)
90                 return regmap_check_range_table(map, reg, map->wr_table);
91
92         return true;
93 }
94
95 bool regmap_readable(struct regmap *map, unsigned int reg)
96 {
97         if (!map->reg_read)
98                 return false;
99
100         if (map->max_register && reg > map->max_register)
101                 return false;
102
103         if (map->format.format_write)
104                 return false;
105
106         if (map->readable_reg)
107                 return map->readable_reg(map->dev, reg);
108
109         if (map->rd_table)
110                 return regmap_check_range_table(map, reg, map->rd_table);
111
112         return true;
113 }
114
115 bool regmap_volatile(struct regmap *map, unsigned int reg)
116 {
117         if (!map->format.format_write && !regmap_readable(map, reg))
118                 return false;
119
120         if (map->volatile_reg)
121                 return map->volatile_reg(map->dev, reg);
122
123         if (map->volatile_table)
124                 return regmap_check_range_table(map, reg, map->volatile_table);
125
126         if (map->cache_ops)
127                 return false;
128         else
129                 return true;
130 }
131
132 bool regmap_precious(struct regmap *map, unsigned int reg)
133 {
134         if (!regmap_readable(map, reg))
135                 return false;
136
137         if (map->precious_reg)
138                 return map->precious_reg(map->dev, reg);
139
140         if (map->precious_table)
141                 return regmap_check_range_table(map, reg, map->precious_table);
142
143         return false;
144 }
145
146 static bool regmap_volatile_range(struct regmap *map, unsigned int reg,
147         size_t num)
148 {
149         unsigned int i;
150
151         for (i = 0; i < num; i++)
152                 if (!regmap_volatile(map, reg + i))
153                         return false;
154
155         return true;
156 }
157
158 static void regmap_format_2_6_write(struct regmap *map,
159                                      unsigned int reg, unsigned int val)
160 {
161         u8 *out = map->work_buf;
162
163         *out = (reg << 6) | val;
164 }
165
166 static void regmap_format_4_12_write(struct regmap *map,
167                                      unsigned int reg, unsigned int val)
168 {
169         __be16 *out = map->work_buf;
170         *out = cpu_to_be16((reg << 12) | val);
171 }
172
173 static void regmap_format_7_9_write(struct regmap *map,
174                                     unsigned int reg, unsigned int val)
175 {
176         __be16 *out = map->work_buf;
177         *out = cpu_to_be16((reg << 9) | val);
178 }
179
180 static void regmap_format_10_14_write(struct regmap *map,
181                                     unsigned int reg, unsigned int val)
182 {
183         u8 *out = map->work_buf;
184
185         out[2] = val;
186         out[1] = (val >> 8) | (reg << 6);
187         out[0] = reg >> 2;
188 }
189
190 static void regmap_format_8(void *buf, unsigned int val, unsigned int shift)
191 {
192         u8 *b = buf;
193
194         b[0] = val << shift;
195 }
196
197 static void regmap_format_16_be(void *buf, unsigned int val, unsigned int shift)
198 {
199         __be16 *b = buf;
200
201         b[0] = cpu_to_be16(val << shift);
202 }
203
204 static void regmap_format_16_le(void *buf, unsigned int val, unsigned int shift)
205 {
206         __le16 *b = buf;
207
208         b[0] = cpu_to_le16(val << shift);
209 }
210
211 static void regmap_format_16_native(void *buf, unsigned int val,
212                                     unsigned int shift)
213 {
214         *(u16 *)buf = val << shift;
215 }
216
217 static void regmap_format_24(void *buf, unsigned int val, unsigned int shift)
218 {
219         u8 *b = buf;
220
221         val <<= shift;
222
223         b[0] = val >> 16;
224         b[1] = val >> 8;
225         b[2] = val;
226 }
227
228 static void regmap_format_32_be(void *buf, unsigned int val, unsigned int shift)
229 {
230         __be32 *b = buf;
231
232         b[0] = cpu_to_be32(val << shift);
233 }
234
235 static void regmap_format_32_le(void *buf, unsigned int val, unsigned int shift)
236 {
237         __le32 *b = buf;
238
239         b[0] = cpu_to_le32(val << shift);
240 }
241
242 static void regmap_format_32_native(void *buf, unsigned int val,
243                                     unsigned int shift)
244 {
245         *(u32 *)buf = val << shift;
246 }
247
248 #ifdef CONFIG_64BIT
249 static void regmap_format_64_be(void *buf, unsigned int val, unsigned int shift)
250 {
251         __be64 *b = buf;
252
253         b[0] = cpu_to_be64((u64)val << shift);
254 }
255
256 static void regmap_format_64_le(void *buf, unsigned int val, unsigned int shift)
257 {
258         __le64 *b = buf;
259
260         b[0] = cpu_to_le64((u64)val << shift);
261 }
262
263 static void regmap_format_64_native(void *buf, unsigned int val,
264                                     unsigned int shift)
265 {
266         *(u64 *)buf = (u64)val << shift;
267 }
268 #endif
269
270 static void regmap_parse_inplace_noop(void *buf)
271 {
272 }
273
274 static unsigned int regmap_parse_8(const void *buf)
275 {
276         const u8 *b = buf;
277
278         return b[0];
279 }
280
281 static unsigned int regmap_parse_16_be(const void *buf)
282 {
283         const __be16 *b = buf;
284
285         return be16_to_cpu(b[0]);
286 }
287
288 static unsigned int regmap_parse_16_le(const void *buf)
289 {
290         const __le16 *b = buf;
291
292         return le16_to_cpu(b[0]);
293 }
294
295 static void regmap_parse_16_be_inplace(void *buf)
296 {
297         __be16 *b = buf;
298
299         b[0] = be16_to_cpu(b[0]);
300 }
301
302 static void regmap_parse_16_le_inplace(void *buf)
303 {
304         __le16 *b = buf;
305
306         b[0] = le16_to_cpu(b[0]);
307 }
308
309 static unsigned int regmap_parse_16_native(const void *buf)
310 {
311         return *(u16 *)buf;
312 }
313
314 static unsigned int regmap_parse_24(const void *buf)
315 {
316         const u8 *b = buf;
317         unsigned int ret = b[2];
318         ret |= ((unsigned int)b[1]) << 8;
319         ret |= ((unsigned int)b[0]) << 16;
320
321         return ret;
322 }
323
324 static unsigned int regmap_parse_32_be(const void *buf)
325 {
326         const __be32 *b = buf;
327
328         return be32_to_cpu(b[0]);
329 }
330
331 static unsigned int regmap_parse_32_le(const void *buf)
332 {
333         const __le32 *b = buf;
334
335         return le32_to_cpu(b[0]);
336 }
337
338 static void regmap_parse_32_be_inplace(void *buf)
339 {
340         __be32 *b = buf;
341
342         b[0] = be32_to_cpu(b[0]);
343 }
344
345 static void regmap_parse_32_le_inplace(void *buf)
346 {
347         __le32 *b = buf;
348
349         b[0] = le32_to_cpu(b[0]);
350 }
351
352 static unsigned int regmap_parse_32_native(const void *buf)
353 {
354         return *(u32 *)buf;
355 }
356
357 #ifdef CONFIG_64BIT
358 static unsigned int regmap_parse_64_be(const void *buf)
359 {
360         const __be64 *b = buf;
361
362         return be64_to_cpu(b[0]);
363 }
364
365 static unsigned int regmap_parse_64_le(const void *buf)
366 {
367         const __le64 *b = buf;
368
369         return le64_to_cpu(b[0]);
370 }
371
372 static void regmap_parse_64_be_inplace(void *buf)
373 {
374         __be64 *b = buf;
375
376         b[0] = be64_to_cpu(b[0]);
377 }
378
379 static void regmap_parse_64_le_inplace(void *buf)
380 {
381         __le64 *b = buf;
382
383         b[0] = le64_to_cpu(b[0]);
384 }
385
386 static unsigned int regmap_parse_64_native(const void *buf)
387 {
388         return *(u64 *)buf;
389 }
390 #endif
391
392 static void regmap_lock_mutex(void *__map)
393 {
394         struct regmap *map = __map;
395         mutex_lock(&map->mutex);
396 }
397
398 static void regmap_unlock_mutex(void *__map)
399 {
400         struct regmap *map = __map;
401         mutex_unlock(&map->mutex);
402 }
403
404 static void regmap_lock_spinlock(void *__map)
405 __acquires(&map->spinlock)
406 {
407         struct regmap *map = __map;
408         unsigned long flags;
409
410         spin_lock_irqsave(&map->spinlock, flags);
411         map->spinlock_flags = flags;
412 }
413
414 static void regmap_unlock_spinlock(void *__map)
415 __releases(&map->spinlock)
416 {
417         struct regmap *map = __map;
418         spin_unlock_irqrestore(&map->spinlock, map->spinlock_flags);
419 }
420
421 static void dev_get_regmap_release(struct device *dev, void *res)
422 {
423         /*
424          * We don't actually have anything to do here; the goal here
425          * is not to manage the regmap but to provide a simple way to
426          * get the regmap back given a struct device.
427          */
428 }
429
430 static bool _regmap_range_add(struct regmap *map,
431                               struct regmap_range_node *data)
432 {
433         struct rb_root *root = &map->range_tree;
434         struct rb_node **new = &(root->rb_node), *parent = NULL;
435
436         while (*new) {
437                 struct regmap_range_node *this =
438                         container_of(*new, struct regmap_range_node, node);
439
440                 parent = *new;
441                 if (data->range_max < this->range_min)
442                         new = &((*new)->rb_left);
443                 else if (data->range_min > this->range_max)
444                         new = &((*new)->rb_right);
445                 else
446                         return false;
447         }
448
449         rb_link_node(&data->node, parent, new);
450         rb_insert_color(&data->node, root);
451
452         return true;
453 }
454
455 static struct regmap_range_node *_regmap_range_lookup(struct regmap *map,
456                                                       unsigned int reg)
457 {
458         struct rb_node *node = map->range_tree.rb_node;
459
460         while (node) {
461                 struct regmap_range_node *this =
462                         container_of(node, struct regmap_range_node, node);
463
464                 if (reg < this->range_min)
465                         node = node->rb_left;
466                 else if (reg > this->range_max)
467                         node = node->rb_right;
468                 else
469                         return this;
470         }
471
472         return NULL;
473 }
474
475 static void regmap_range_exit(struct regmap *map)
476 {
477         struct rb_node *next;
478         struct regmap_range_node *range_node;
479
480         next = rb_first(&map->range_tree);
481         while (next) {
482                 range_node = rb_entry(next, struct regmap_range_node, node);
483                 next = rb_next(&range_node->node);
484                 rb_erase(&range_node->node, &map->range_tree);
485                 kfree(range_node);
486         }
487
488         kfree(map->selector_work_buf);
489 }
490
491 int regmap_attach_dev(struct device *dev, struct regmap *map,
492                       const struct regmap_config *config)
493 {
494         struct regmap **m;
495
496         map->dev = dev;
497
498         regmap_debugfs_init(map, config->name);
499
500         /* Add a devres resource for dev_get_regmap() */
501         m = devres_alloc(dev_get_regmap_release, sizeof(*m), GFP_KERNEL);
502         if (!m) {
503                 regmap_debugfs_exit(map);
504                 return -ENOMEM;
505         }
506         *m = map;
507         devres_add(dev, m);
508
509         return 0;
510 }
511 EXPORT_SYMBOL_GPL(regmap_attach_dev);
512
513 static enum regmap_endian regmap_get_reg_endian(const struct regmap_bus *bus,
514                                         const struct regmap_config *config)
515 {
516         enum regmap_endian endian;
517
518         /* Retrieve the endianness specification from the regmap config */
519         endian = config->reg_format_endian;
520
521         /* If the regmap config specified a non-default value, use that */
522         if (endian != REGMAP_ENDIAN_DEFAULT)
523                 return endian;
524
525         /* Retrieve the endianness specification from the bus config */
526         if (bus && bus->reg_format_endian_default)
527                 endian = bus->reg_format_endian_default;
528
529         /* If the bus specified a non-default value, use that */
530         if (endian != REGMAP_ENDIAN_DEFAULT)
531                 return endian;
532
533         /* Use this if no other value was found */
534         return REGMAP_ENDIAN_BIG;
535 }
536
537 enum regmap_endian regmap_get_val_endian(struct device *dev,
538                                          const struct regmap_bus *bus,
539                                          const struct regmap_config *config)
540 {
541         struct device_node *np;
542         enum regmap_endian endian;
543
544         /* Retrieve the endianness specification from the regmap config */
545         endian = config->val_format_endian;
546
547         /* If the regmap config specified a non-default value, use that */
548         if (endian != REGMAP_ENDIAN_DEFAULT)
549                 return endian;
550
551         /* If the dev and dev->of_node exist try to get endianness from DT */
552         if (dev && dev->of_node) {
553                 np = dev->of_node;
554
555                 /* Parse the device's DT node for an endianness specification */
556                 if (of_property_read_bool(np, "big-endian"))
557                         endian = REGMAP_ENDIAN_BIG;
558                 else if (of_property_read_bool(np, "little-endian"))
559                         endian = REGMAP_ENDIAN_LITTLE;
560
561                 /* If the endianness was specified in DT, use that */
562                 if (endian != REGMAP_ENDIAN_DEFAULT)
563                         return endian;
564         }
565
566         /* Retrieve the endianness specification from the bus config */
567         if (bus && bus->val_format_endian_default)
568                 endian = bus->val_format_endian_default;
569
570         /* If the bus specified a non-default value, use that */
571         if (endian != REGMAP_ENDIAN_DEFAULT)
572                 return endian;
573
574         /* Use this if no other value was found */
575         return REGMAP_ENDIAN_BIG;
576 }
577 EXPORT_SYMBOL_GPL(regmap_get_val_endian);
578
579 struct regmap *__regmap_init(struct device *dev,
580                              const struct regmap_bus *bus,
581                              void *bus_context,
582                              const struct regmap_config *config,
583                              struct lock_class_key *lock_key,
584                              const char *lock_name)
585 {
586         struct regmap *map;
587         int ret = -EINVAL;
588         enum regmap_endian reg_endian, val_endian;
589         int i, j;
590
591         if (!config)
592                 goto err;
593
594         map = kzalloc(sizeof(*map), GFP_KERNEL);
595         if (map == NULL) {
596                 ret = -ENOMEM;
597                 goto err;
598         }
599
600         if (config->lock && config->unlock) {
601                 map->lock = config->lock;
602                 map->unlock = config->unlock;
603                 map->lock_arg = config->lock_arg;
604         } else {
605                 if ((bus && bus->fast_io) ||
606                     config->fast_io) {
607                         spin_lock_init(&map->spinlock);
608                         map->lock = regmap_lock_spinlock;
609                         map->unlock = regmap_unlock_spinlock;
610                         lockdep_set_class_and_name(&map->spinlock,
611                                                    lock_key, lock_name);
612                 } else {
613                         mutex_init(&map->mutex);
614                         map->lock = regmap_lock_mutex;
615                         map->unlock = regmap_unlock_mutex;
616                         lockdep_set_class_and_name(&map->mutex,
617                                                    lock_key, lock_name);
618                 }
619                 map->lock_arg = map;
620         }
621
622         /*
623          * When we write in fast-paths with regmap_bulk_write() don't allocate
624          * scratch buffers with sleeping allocations.
625          */
626         if ((bus && bus->fast_io) || config->fast_io)
627                 map->alloc_flags = GFP_ATOMIC;
628         else
629                 map->alloc_flags = GFP_KERNEL;
630
631         map->format.reg_bytes = DIV_ROUND_UP(config->reg_bits, 8);
632         map->format.pad_bytes = config->pad_bits / 8;
633         map->format.val_bytes = DIV_ROUND_UP(config->val_bits, 8);
634         map->format.buf_size = DIV_ROUND_UP(config->reg_bits +
635                         config->val_bits + config->pad_bits, 8);
636         map->reg_shift = config->pad_bits % 8;
637         if (config->reg_stride)
638                 map->reg_stride = config->reg_stride;
639         else
640                 map->reg_stride = 1;
641         map->use_single_read = config->use_single_rw || !bus || !bus->read;
642         map->use_single_write = config->use_single_rw || !bus || !bus->write;
643         map->can_multi_write = config->can_multi_write && bus && bus->write;
644         if (bus) {
645                 map->max_raw_read = bus->max_raw_read;
646                 map->max_raw_write = bus->max_raw_write;
647         }
648         map->dev = dev;
649         map->bus = bus;
650         map->bus_context = bus_context;
651         map->max_register = config->max_register;
652         map->wr_table = config->wr_table;
653         map->rd_table = config->rd_table;
654         map->volatile_table = config->volatile_table;
655         map->precious_table = config->precious_table;
656         map->writeable_reg = config->writeable_reg;
657         map->readable_reg = config->readable_reg;
658         map->volatile_reg = config->volatile_reg;
659         map->precious_reg = config->precious_reg;
660         map->cache_type = config->cache_type;
661         map->name = config->name;
662
663         spin_lock_init(&map->async_lock);
664         INIT_LIST_HEAD(&map->async_list);
665         INIT_LIST_HEAD(&map->async_free);
666         init_waitqueue_head(&map->async_waitq);
667
668         if (config->read_flag_mask || config->write_flag_mask) {
669                 map->read_flag_mask = config->read_flag_mask;
670                 map->write_flag_mask = config->write_flag_mask;
671         } else if (bus) {
672                 map->read_flag_mask = bus->read_flag_mask;
673         }
674
675         if (!bus) {
676                 map->reg_read  = config->reg_read;
677                 map->reg_write = config->reg_write;
678
679                 map->defer_caching = false;
680                 goto skip_format_initialization;
681         } else if (!bus->read || !bus->write) {
682                 map->reg_read = _regmap_bus_reg_read;
683                 map->reg_write = _regmap_bus_reg_write;
684
685                 map->defer_caching = false;
686                 goto skip_format_initialization;
687         } else {
688                 map->reg_read  = _regmap_bus_read;
689                 map->reg_update_bits = bus->reg_update_bits;
690         }
691
692         reg_endian = regmap_get_reg_endian(bus, config);
693         val_endian = regmap_get_val_endian(dev, bus, config);
694
695         switch (config->reg_bits + map->reg_shift) {
696         case 2:
697                 switch (config->val_bits) {
698                 case 6:
699                         map->format.format_write = regmap_format_2_6_write;
700                         break;
701                 default:
702                         goto err_map;
703                 }
704                 break;
705
706         case 4:
707                 switch (config->val_bits) {
708                 case 12:
709                         map->format.format_write = regmap_format_4_12_write;
710                         break;
711                 default:
712                         goto err_map;
713                 }
714                 break;
715
716         case 7:
717                 switch (config->val_bits) {
718                 case 9:
719                         map->format.format_write = regmap_format_7_9_write;
720                         break;
721                 default:
722                         goto err_map;
723                 }
724                 break;
725
726         case 10:
727                 switch (config->val_bits) {
728                 case 14:
729                         map->format.format_write = regmap_format_10_14_write;
730                         break;
731                 default:
732                         goto err_map;
733                 }
734                 break;
735
736         case 8:
737                 map->format.format_reg = regmap_format_8;
738                 break;
739
740         case 16:
741                 switch (reg_endian) {
742                 case REGMAP_ENDIAN_BIG:
743                         map->format.format_reg = regmap_format_16_be;
744                         break;
745                 case REGMAP_ENDIAN_NATIVE:
746                         map->format.format_reg = regmap_format_16_native;
747                         break;
748                 default:
749                         goto err_map;
750                 }
751                 break;
752
753         case 24:
754                 if (reg_endian != REGMAP_ENDIAN_BIG)
755                         goto err_map;
756                 map->format.format_reg = regmap_format_24;
757                 break;
758
759         case 32:
760                 switch (reg_endian) {
761                 case REGMAP_ENDIAN_BIG:
762                         map->format.format_reg = regmap_format_32_be;
763                         break;
764                 case REGMAP_ENDIAN_NATIVE:
765                         map->format.format_reg = regmap_format_32_native;
766                         break;
767                 default:
768                         goto err_map;
769                 }
770                 break;
771
772 #ifdef CONFIG_64BIT
773         case 64:
774                 switch (reg_endian) {
775                 case REGMAP_ENDIAN_BIG:
776                         map->format.format_reg = regmap_format_64_be;
777                         break;
778                 case REGMAP_ENDIAN_NATIVE:
779                         map->format.format_reg = regmap_format_64_native;
780                         break;
781                 default:
782                         goto err_map;
783                 }
784                 break;
785 #endif
786
787         default:
788                 goto err_map;
789         }
790
791         if (val_endian == REGMAP_ENDIAN_NATIVE)
792                 map->format.parse_inplace = regmap_parse_inplace_noop;
793
794         switch (config->val_bits) {
795         case 8:
796                 map->format.format_val = regmap_format_8;
797                 map->format.parse_val = regmap_parse_8;
798                 map->format.parse_inplace = regmap_parse_inplace_noop;
799                 break;
800         case 16:
801                 switch (val_endian) {
802                 case REGMAP_ENDIAN_BIG:
803                         map->format.format_val = regmap_format_16_be;
804                         map->format.parse_val = regmap_parse_16_be;
805                         map->format.parse_inplace = regmap_parse_16_be_inplace;
806                         break;
807                 case REGMAP_ENDIAN_LITTLE:
808                         map->format.format_val = regmap_format_16_le;
809                         map->format.parse_val = regmap_parse_16_le;
810                         map->format.parse_inplace = regmap_parse_16_le_inplace;
811                         break;
812                 case REGMAP_ENDIAN_NATIVE:
813                         map->format.format_val = regmap_format_16_native;
814                         map->format.parse_val = regmap_parse_16_native;
815                         break;
816                 default:
817                         goto err_map;
818                 }
819                 break;
820         case 24:
821                 if (val_endian != REGMAP_ENDIAN_BIG)
822                         goto err_map;
823                 map->format.format_val = regmap_format_24;
824                 map->format.parse_val = regmap_parse_24;
825                 break;
826         case 32:
827                 switch (val_endian) {
828                 case REGMAP_ENDIAN_BIG:
829                         map->format.format_val = regmap_format_32_be;
830                         map->format.parse_val = regmap_parse_32_be;
831                         map->format.parse_inplace = regmap_parse_32_be_inplace;
832                         break;
833                 case REGMAP_ENDIAN_LITTLE:
834                         map->format.format_val = regmap_format_32_le;
835                         map->format.parse_val = regmap_parse_32_le;
836                         map->format.parse_inplace = regmap_parse_32_le_inplace;
837                         break;
838                 case REGMAP_ENDIAN_NATIVE:
839                         map->format.format_val = regmap_format_32_native;
840                         map->format.parse_val = regmap_parse_32_native;
841                         break;
842                 default:
843                         goto err_map;
844                 }
845                 break;
846 #ifdef CONFIG_64BIT
847         case 64:
848                 switch (val_endian) {
849                 case REGMAP_ENDIAN_BIG:
850                         map->format.format_val = regmap_format_64_be;
851                         map->format.parse_val = regmap_parse_64_be;
852                         map->format.parse_inplace = regmap_parse_64_be_inplace;
853                         break;
854                 case REGMAP_ENDIAN_LITTLE:
855                         map->format.format_val = regmap_format_64_le;
856                         map->format.parse_val = regmap_parse_64_le;
857                         map->format.parse_inplace = regmap_parse_64_le_inplace;
858                         break;
859                 case REGMAP_ENDIAN_NATIVE:
860                         map->format.format_val = regmap_format_64_native;
861                         map->format.parse_val = regmap_parse_64_native;
862                         break;
863                 default:
864                         goto err_map;
865                 }
866                 break;
867 #endif
868         }
869
870         if (map->format.format_write) {
871                 if ((reg_endian != REGMAP_ENDIAN_BIG) ||
872                     (val_endian != REGMAP_ENDIAN_BIG))
873                         goto err_map;
874                 map->use_single_write = true;
875         }
876
877         if (!map->format.format_write &&
878             !(map->format.format_reg && map->format.format_val))
879                 goto err_map;
880
881         map->work_buf = kzalloc(map->format.buf_size, GFP_KERNEL);
882         if (map->work_buf == NULL) {
883                 ret = -ENOMEM;
884                 goto err_map;
885         }
886
887         if (map->format.format_write) {
888                 map->defer_caching = false;
889                 map->reg_write = _regmap_bus_formatted_write;
890         } else if (map->format.format_val) {
891                 map->defer_caching = true;
892                 map->reg_write = _regmap_bus_raw_write;
893         }
894
895 skip_format_initialization:
896
897         map->range_tree = RB_ROOT;
898         for (i = 0; i < config->num_ranges; i++) {
899                 const struct regmap_range_cfg *range_cfg = &config->ranges[i];
900                 struct regmap_range_node *new;
901
902                 /* Sanity check */
903                 if (range_cfg->range_max < range_cfg->range_min) {
904                         dev_err(map->dev, "Invalid range %d: %d < %d\n", i,
905                                 range_cfg->range_max, range_cfg->range_min);
906                         goto err_range;
907                 }
908
909                 if (range_cfg->range_max > map->max_register) {
910                         dev_err(map->dev, "Invalid range %d: %d > %d\n", i,
911                                 range_cfg->range_max, map->max_register);
912                         goto err_range;
913                 }
914
915                 if (range_cfg->selector_reg > map->max_register) {
916                         dev_err(map->dev,
917                                 "Invalid range %d: selector out of map\n", i);
918                         goto err_range;
919                 }
920
921                 if (range_cfg->window_len == 0) {
922                         dev_err(map->dev, "Invalid range %d: window_len 0\n",
923                                 i);
924                         goto err_range;
925                 }
926
927                 /* Make sure, that this register range has no selector
928                    or data window within its boundary */
929                 for (j = 0; j < config->num_ranges; j++) {
930                         unsigned sel_reg = config->ranges[j].selector_reg;
931                         unsigned win_min = config->ranges[j].window_start;
932                         unsigned win_max = win_min +
933                                            config->ranges[j].window_len - 1;
934
935                         /* Allow data window inside its own virtual range */
936                         if (j == i)
937                                 continue;
938
939                         if (range_cfg->range_min <= sel_reg &&
940                             sel_reg <= range_cfg->range_max) {
941                                 dev_err(map->dev,
942                                         "Range %d: selector for %d in window\n",
943                                         i, j);
944                                 goto err_range;
945                         }
946
947                         if (!(win_max < range_cfg->range_min ||
948                               win_min > range_cfg->range_max)) {
949                                 dev_err(map->dev,
950                                         "Range %d: window for %d in window\n",
951                                         i, j);
952                                 goto err_range;
953                         }
954                 }
955
956                 new = kzalloc(sizeof(*new), GFP_KERNEL);
957                 if (new == NULL) {
958                         ret = -ENOMEM;
959                         goto err_range;
960                 }
961
962                 new->map = map;
963                 new->name = range_cfg->name;
964                 new->range_min = range_cfg->range_min;
965                 new->range_max = range_cfg->range_max;
966                 new->selector_reg = range_cfg->selector_reg;
967                 new->selector_mask = range_cfg->selector_mask;
968                 new->selector_shift = range_cfg->selector_shift;
969                 new->window_start = range_cfg->window_start;
970                 new->window_len = range_cfg->window_len;
971
972                 if (!_regmap_range_add(map, new)) {
973                         dev_err(map->dev, "Failed to add range %d\n", i);
974                         kfree(new);
975                         goto err_range;
976                 }
977
978                 if (map->selector_work_buf == NULL) {
979                         map->selector_work_buf =
980                                 kzalloc(map->format.buf_size, GFP_KERNEL);
981                         if (map->selector_work_buf == NULL) {
982                                 ret = -ENOMEM;
983                                 goto err_range;
984                         }
985                 }
986         }
987
988         ret = regcache_init(map, config);
989         if (ret != 0)
990                 goto err_range;
991
992         if (dev) {
993                 ret = regmap_attach_dev(dev, map, config);
994                 if (ret != 0)
995                         goto err_regcache;
996         }
997
998         return map;
999
1000 err_regcache:
1001         regcache_exit(map);
1002 err_range:
1003         regmap_range_exit(map);
1004         kfree(map->work_buf);
1005 err_map:
1006         kfree(map);
1007 err:
1008         return ERR_PTR(ret);
1009 }
1010 EXPORT_SYMBOL_GPL(__regmap_init);
1011
1012 static void devm_regmap_release(struct device *dev, void *res)
1013 {
1014         regmap_exit(*(struct regmap **)res);
1015 }
1016
1017 struct regmap *__devm_regmap_init(struct device *dev,
1018                                   const struct regmap_bus *bus,
1019                                   void *bus_context,
1020                                   const struct regmap_config *config,
1021                                   struct lock_class_key *lock_key,
1022                                   const char *lock_name)
1023 {
1024         struct regmap **ptr, *regmap;
1025
1026         ptr = devres_alloc(devm_regmap_release, sizeof(*ptr), GFP_KERNEL);
1027         if (!ptr)
1028                 return ERR_PTR(-ENOMEM);
1029
1030         regmap = __regmap_init(dev, bus, bus_context, config,
1031                                lock_key, lock_name);
1032         if (!IS_ERR(regmap)) {
1033                 *ptr = regmap;
1034                 devres_add(dev, ptr);
1035         } else {
1036                 devres_free(ptr);
1037         }
1038
1039         return regmap;
1040 }
1041 EXPORT_SYMBOL_GPL(__devm_regmap_init);
1042
1043 static void regmap_field_init(struct regmap_field *rm_field,
1044         struct regmap *regmap, struct reg_field reg_field)
1045 {
1046         rm_field->regmap = regmap;
1047         rm_field->reg = reg_field.reg;
1048         rm_field->shift = reg_field.lsb;
1049         rm_field->mask = GENMASK(reg_field.msb, reg_field.lsb);
1050         rm_field->id_size = reg_field.id_size;
1051         rm_field->id_offset = reg_field.id_offset;
1052 }
1053
1054 /**
1055  * devm_regmap_field_alloc(): Allocate and initialise a register field
1056  * in a register map.
1057  *
1058  * @dev: Device that will be interacted with
1059  * @regmap: regmap bank in which this register field is located.
1060  * @reg_field: Register field with in the bank.
1061  *
1062  * The return value will be an ERR_PTR() on error or a valid pointer
1063  * to a struct regmap_field. The regmap_field will be automatically freed
1064  * by the device management code.
1065  */
1066 struct regmap_field *devm_regmap_field_alloc(struct device *dev,
1067                 struct regmap *regmap, struct reg_field reg_field)
1068 {
1069         struct regmap_field *rm_field = devm_kzalloc(dev,
1070                                         sizeof(*rm_field), GFP_KERNEL);
1071         if (!rm_field)
1072                 return ERR_PTR(-ENOMEM);
1073
1074         regmap_field_init(rm_field, regmap, reg_field);
1075
1076         return rm_field;
1077
1078 }
1079 EXPORT_SYMBOL_GPL(devm_regmap_field_alloc);
1080
1081 /**
1082  * devm_regmap_field_free(): Free register field allocated using
1083  * devm_regmap_field_alloc. Usally drivers need not call this function,
1084  * as the memory allocated via devm will be freed as per device-driver
1085  * life-cyle.
1086  *
1087  * @dev: Device that will be interacted with
1088  * @field: regmap field which should be freed.
1089  */
1090 void devm_regmap_field_free(struct device *dev,
1091         struct regmap_field *field)
1092 {
1093         devm_kfree(dev, field);
1094 }
1095 EXPORT_SYMBOL_GPL(devm_regmap_field_free);
1096
1097 /**
1098  * regmap_field_alloc(): Allocate and initialise a register field
1099  * in a register map.
1100  *
1101  * @regmap: regmap bank in which this register field is located.
1102  * @reg_field: Register field with in the bank.
1103  *
1104  * The return value will be an ERR_PTR() on error or a valid pointer
1105  * to a struct regmap_field. The regmap_field should be freed by the
1106  * user once its finished working with it using regmap_field_free().
1107  */
1108 struct regmap_field *regmap_field_alloc(struct regmap *regmap,
1109                 struct reg_field reg_field)
1110 {
1111         struct regmap_field *rm_field = kzalloc(sizeof(*rm_field), GFP_KERNEL);
1112
1113         if (!rm_field)
1114                 return ERR_PTR(-ENOMEM);
1115
1116         regmap_field_init(rm_field, regmap, reg_field);
1117
1118         return rm_field;
1119 }
1120 EXPORT_SYMBOL_GPL(regmap_field_alloc);
1121
1122 /**
1123  * regmap_field_free(): Free register field allocated using regmap_field_alloc
1124  *
1125  * @field: regmap field which should be freed.
1126  */
1127 void regmap_field_free(struct regmap_field *field)
1128 {
1129         kfree(field);
1130 }
1131 EXPORT_SYMBOL_GPL(regmap_field_free);
1132
1133 /**
1134  * regmap_reinit_cache(): Reinitialise the current register cache
1135  *
1136  * @map: Register map to operate on.
1137  * @config: New configuration.  Only the cache data will be used.
1138  *
1139  * Discard any existing register cache for the map and initialize a
1140  * new cache.  This can be used to restore the cache to defaults or to
1141  * update the cache configuration to reflect runtime discovery of the
1142  * hardware.
1143  *
1144  * No explicit locking is done here, the user needs to ensure that
1145  * this function will not race with other calls to regmap.
1146  */
1147 int regmap_reinit_cache(struct regmap *map, const struct regmap_config *config)
1148 {
1149         regcache_exit(map);
1150         regmap_debugfs_exit(map);
1151
1152         map->max_register = config->max_register;
1153         map->writeable_reg = config->writeable_reg;
1154         map->readable_reg = config->readable_reg;
1155         map->volatile_reg = config->volatile_reg;
1156         map->precious_reg = config->precious_reg;
1157         map->cache_type = config->cache_type;
1158
1159         regmap_debugfs_init(map, config->name);
1160
1161         map->cache_bypass = false;
1162         map->cache_only = false;
1163
1164         return regcache_init(map, config);
1165 }
1166 EXPORT_SYMBOL_GPL(regmap_reinit_cache);
1167
1168 /**
1169  * regmap_exit(): Free a previously allocated register map
1170  */
1171 void regmap_exit(struct regmap *map)
1172 {
1173         struct regmap_async *async;
1174
1175         regcache_exit(map);
1176         regmap_debugfs_exit(map);
1177         regmap_range_exit(map);
1178         if (map->bus && map->bus->free_context)
1179                 map->bus->free_context(map->bus_context);
1180         kfree(map->work_buf);
1181         while (!list_empty(&map->async_free)) {
1182                 async = list_first_entry_or_null(&map->async_free,
1183                                                  struct regmap_async,
1184                                                  list);
1185                 list_del(&async->list);
1186                 kfree(async->work_buf);
1187                 kfree(async);
1188         }
1189         kfree(map);
1190 }
1191 EXPORT_SYMBOL_GPL(regmap_exit);
1192
1193 static int dev_get_regmap_match(struct device *dev, void *res, void *data)
1194 {
1195         struct regmap **r = res;
1196         if (!r || !*r) {
1197                 WARN_ON(!r || !*r);
1198                 return 0;
1199         }
1200
1201         /* If the user didn't specify a name match any */
1202         if (data)
1203                 return (*r)->name == data;
1204         else
1205                 return 1;
1206 }
1207
1208 /**
1209  * dev_get_regmap(): Obtain the regmap (if any) for a device
1210  *
1211  * @dev: Device to retrieve the map for
1212  * @name: Optional name for the register map, usually NULL.
1213  *
1214  * Returns the regmap for the device if one is present, or NULL.  If
1215  * name is specified then it must match the name specified when
1216  * registering the device, if it is NULL then the first regmap found
1217  * will be used.  Devices with multiple register maps are very rare,
1218  * generic code should normally not need to specify a name.
1219  */
1220 struct regmap *dev_get_regmap(struct device *dev, const char *name)
1221 {
1222         struct regmap **r = devres_find(dev, dev_get_regmap_release,
1223                                         dev_get_regmap_match, (void *)name);
1224
1225         if (!r)
1226                 return NULL;
1227         return *r;
1228 }
1229 EXPORT_SYMBOL_GPL(dev_get_regmap);
1230
1231 /**
1232  * regmap_get_device(): Obtain the device from a regmap
1233  *
1234  * @map: Register map to operate on.
1235  *
1236  * Returns the underlying device that the regmap has been created for.
1237  */
1238 struct device *regmap_get_device(struct regmap *map)
1239 {
1240         return map->dev;
1241 }
1242 EXPORT_SYMBOL_GPL(regmap_get_device);
1243
1244 static int _regmap_select_page(struct regmap *map, unsigned int *reg,
1245                                struct regmap_range_node *range,
1246                                unsigned int val_num)
1247 {
1248         void *orig_work_buf;
1249         unsigned int win_offset;
1250         unsigned int win_page;
1251         bool page_chg;
1252         int ret;
1253
1254         win_offset = (*reg - range->range_min) % range->window_len;
1255         win_page = (*reg - range->range_min) / range->window_len;
1256
1257         if (val_num > 1) {
1258                 /* Bulk write shouldn't cross range boundary */
1259                 if (*reg + val_num - 1 > range->range_max)
1260                         return -EINVAL;
1261
1262                 /* ... or single page boundary */
1263                 if (val_num > range->window_len - win_offset)
1264                         return -EINVAL;
1265         }
1266
1267         /* It is possible to have selector register inside data window.
1268            In that case, selector register is located on every page and
1269            it needs no page switching, when accessed alone. */
1270         if (val_num > 1 ||
1271             range->window_start + win_offset != range->selector_reg) {
1272                 /* Use separate work_buf during page switching */
1273                 orig_work_buf = map->work_buf;
1274                 map->work_buf = map->selector_work_buf;
1275
1276                 ret = _regmap_update_bits(map, range->selector_reg,
1277                                           range->selector_mask,
1278                                           win_page << range->selector_shift,
1279                                           &page_chg, false);
1280
1281                 map->work_buf = orig_work_buf;
1282
1283                 if (ret != 0)
1284                         return ret;
1285         }
1286
1287         *reg = range->window_start + win_offset;
1288
1289         return 0;
1290 }
1291
1292 int _regmap_raw_write(struct regmap *map, unsigned int reg,
1293                       const void *val, size_t val_len)
1294 {
1295         struct regmap_range_node *range;
1296         unsigned long flags;
1297         u8 *u8 = map->work_buf;
1298         void *work_val = map->work_buf + map->format.reg_bytes +
1299                 map->format.pad_bytes;
1300         void *buf;
1301         int ret = -ENOTSUPP;
1302         size_t len;
1303         int i;
1304
1305         WARN_ON(!map->bus);
1306
1307         /* Check for unwritable registers before we start */
1308         if (map->writeable_reg)
1309                 for (i = 0; i < val_len / map->format.val_bytes; i++)
1310                         if (!map->writeable_reg(map->dev,
1311                                                 reg + (i * map->reg_stride)))
1312                                 return -EINVAL;
1313
1314         if (!map->cache_bypass && map->format.parse_val) {
1315                 unsigned int ival;
1316                 int val_bytes = map->format.val_bytes;
1317                 for (i = 0; i < val_len / val_bytes; i++) {
1318                         ival = map->format.parse_val(val + (i * val_bytes));
1319                         ret = regcache_write(map, reg + (i * map->reg_stride),
1320                                              ival);
1321                         if (ret) {
1322                                 dev_err(map->dev,
1323                                         "Error in caching of register: %x ret: %d\n",
1324                                         reg + i, ret);
1325                                 return ret;
1326                         }
1327                 }
1328                 if (map->cache_only) {
1329                         map->cache_dirty = true;
1330                         return 0;
1331                 }
1332         }
1333
1334         range = _regmap_range_lookup(map, reg);
1335         if (range) {
1336                 int val_num = val_len / map->format.val_bytes;
1337                 int win_offset = (reg - range->range_min) % range->window_len;
1338                 int win_residue = range->window_len - win_offset;
1339
1340                 /* If the write goes beyond the end of the window split it */
1341                 while (val_num > win_residue) {
1342                         dev_dbg(map->dev, "Writing window %d/%zu\n",
1343                                 win_residue, val_len / map->format.val_bytes);
1344                         ret = _regmap_raw_write(map, reg, val, win_residue *
1345                                                 map->format.val_bytes);
1346                         if (ret != 0)
1347                                 return ret;
1348
1349                         reg += win_residue;
1350                         val_num -= win_residue;
1351                         val += win_residue * map->format.val_bytes;
1352                         val_len -= win_residue * map->format.val_bytes;
1353
1354                         win_offset = (reg - range->range_min) %
1355                                 range->window_len;
1356                         win_residue = range->window_len - win_offset;
1357                 }
1358
1359                 ret = _regmap_select_page(map, &reg, range, val_num);
1360                 if (ret != 0)
1361                         return ret;
1362         }
1363
1364         map->format.format_reg(map->work_buf, reg, map->reg_shift);
1365
1366         u8[0] |= map->write_flag_mask;
1367
1368         /*
1369          * Essentially all I/O mechanisms will be faster with a single
1370          * buffer to write.  Since register syncs often generate raw
1371          * writes of single registers optimise that case.
1372          */
1373         if (val != work_val && val_len == map->format.val_bytes) {
1374                 memcpy(work_val, val, map->format.val_bytes);
1375                 val = work_val;
1376         }
1377
1378         if (map->async && map->bus->async_write) {
1379                 struct regmap_async *async;
1380
1381                 trace_regmap_async_write_start(map, reg, val_len);
1382
1383                 spin_lock_irqsave(&map->async_lock, flags);
1384                 async = list_first_entry_or_null(&map->async_free,
1385                                                  struct regmap_async,
1386                                                  list);
1387                 if (async)
1388                         list_del(&async->list);
1389                 spin_unlock_irqrestore(&map->async_lock, flags);
1390
1391                 if (!async) {
1392                         async = map->bus->async_alloc();
1393                         if (!async)
1394                                 return -ENOMEM;
1395
1396                         async->work_buf = kzalloc(map->format.buf_size,
1397                                                   GFP_KERNEL | GFP_DMA);
1398                         if (!async->work_buf) {
1399                                 kfree(async);
1400                                 return -ENOMEM;
1401                         }
1402                 }
1403
1404                 async->map = map;
1405
1406                 /* If the caller supplied the value we can use it safely. */
1407                 memcpy(async->work_buf, map->work_buf, map->format.pad_bytes +
1408                        map->format.reg_bytes + map->format.val_bytes);
1409
1410                 spin_lock_irqsave(&map->async_lock, flags);
1411                 list_add_tail(&async->list, &map->async_list);
1412                 spin_unlock_irqrestore(&map->async_lock, flags);
1413
1414                 if (val != work_val)
1415                         ret = map->bus->async_write(map->bus_context,
1416                                                     async->work_buf,
1417                                                     map->format.reg_bytes +
1418                                                     map->format.pad_bytes,
1419                                                     val, val_len, async);
1420                 else
1421                         ret = map->bus->async_write(map->bus_context,
1422                                                     async->work_buf,
1423                                                     map->format.reg_bytes +
1424                                                     map->format.pad_bytes +
1425                                                     val_len, NULL, 0, async);
1426
1427                 if (ret != 0) {
1428                         dev_err(map->dev, "Failed to schedule write: %d\n",
1429                                 ret);
1430
1431                         spin_lock_irqsave(&map->async_lock, flags);
1432                         list_move(&async->list, &map->async_free);
1433                         spin_unlock_irqrestore(&map->async_lock, flags);
1434                 }
1435
1436                 return ret;
1437         }
1438
1439         trace_regmap_hw_write_start(map, reg, val_len / map->format.val_bytes);
1440
1441         /* If we're doing a single register write we can probably just
1442          * send the work_buf directly, otherwise try to do a gather
1443          * write.
1444          */
1445         if (val == work_val)
1446                 ret = map->bus->write(map->bus_context, map->work_buf,
1447                                       map->format.reg_bytes +
1448                                       map->format.pad_bytes +
1449                                       val_len);
1450         else if (map->bus->gather_write)
1451                 ret = map->bus->gather_write(map->bus_context, map->work_buf,
1452                                              map->format.reg_bytes +
1453                                              map->format.pad_bytes,
1454                                              val, val_len);
1455
1456         /* If that didn't work fall back on linearising by hand. */
1457         if (ret == -ENOTSUPP) {
1458                 len = map->format.reg_bytes + map->format.pad_bytes + val_len;
1459                 buf = kzalloc(len, GFP_KERNEL);
1460                 if (!buf)
1461                         return -ENOMEM;
1462
1463                 memcpy(buf, map->work_buf, map->format.reg_bytes);
1464                 memcpy(buf + map->format.reg_bytes + map->format.pad_bytes,
1465                        val, val_len);
1466                 ret = map->bus->write(map->bus_context, buf, len);
1467
1468                 kfree(buf);
1469         }
1470
1471         trace_regmap_hw_write_done(map, reg, val_len / map->format.val_bytes);
1472
1473         return ret;
1474 }
1475
1476 /**
1477  * regmap_can_raw_write - Test if regmap_raw_write() is supported
1478  *
1479  * @map: Map to check.
1480  */
1481 bool regmap_can_raw_write(struct regmap *map)
1482 {
1483         return map->bus && map->bus->write && map->format.format_val &&
1484                 map->format.format_reg;
1485 }
1486 EXPORT_SYMBOL_GPL(regmap_can_raw_write);
1487
1488 /**
1489  * regmap_get_raw_read_max - Get the maximum size we can read
1490  *
1491  * @map: Map to check.
1492  */
1493 size_t regmap_get_raw_read_max(struct regmap *map)
1494 {
1495         return map->max_raw_read;
1496 }
1497 EXPORT_SYMBOL_GPL(regmap_get_raw_read_max);
1498
1499 /**
1500  * regmap_get_raw_write_max - Get the maximum size we can read
1501  *
1502  * @map: Map to check.
1503  */
1504 size_t regmap_get_raw_write_max(struct regmap *map)
1505 {
1506         return map->max_raw_write;
1507 }
1508 EXPORT_SYMBOL_GPL(regmap_get_raw_write_max);
1509
1510 static int _regmap_bus_formatted_write(void *context, unsigned int reg,
1511                                        unsigned int val)
1512 {
1513         int ret;
1514         struct regmap_range_node *range;
1515         struct regmap *map = context;
1516
1517         WARN_ON(!map->bus || !map->format.format_write);
1518
1519         range = _regmap_range_lookup(map, reg);
1520         if (range) {
1521                 ret = _regmap_select_page(map, &reg, range, 1);
1522                 if (ret != 0)
1523                         return ret;
1524         }
1525
1526         map->format.format_write(map, reg, val);
1527
1528         trace_regmap_hw_write_start(map, reg, 1);
1529
1530         ret = map->bus->write(map->bus_context, map->work_buf,
1531                               map->format.buf_size);
1532
1533         trace_regmap_hw_write_done(map, reg, 1);
1534
1535         return ret;
1536 }
1537
1538 static int _regmap_bus_reg_write(void *context, unsigned int reg,
1539                                  unsigned int val)
1540 {
1541         struct regmap *map = context;
1542
1543         return map->bus->reg_write(map->bus_context, reg, val);
1544 }
1545
1546 static int _regmap_bus_raw_write(void *context, unsigned int reg,
1547                                  unsigned int val)
1548 {
1549         struct regmap *map = context;
1550
1551         WARN_ON(!map->bus || !map->format.format_val);
1552
1553         map->format.format_val(map->work_buf + map->format.reg_bytes
1554                                + map->format.pad_bytes, val, 0);
1555         return _regmap_raw_write(map, reg,
1556                                  map->work_buf +
1557                                  map->format.reg_bytes +
1558                                  map->format.pad_bytes,
1559                                  map->format.val_bytes);
1560 }
1561
1562 static inline void *_regmap_map_get_context(struct regmap *map)
1563 {
1564         return (map->bus) ? map : map->bus_context;
1565 }
1566
1567 int _regmap_write(struct regmap *map, unsigned int reg,
1568                   unsigned int val)
1569 {
1570         int ret;
1571         void *context = _regmap_map_get_context(map);
1572
1573         if (!regmap_writeable(map, reg))
1574                 return -EIO;
1575
1576         if (!map->cache_bypass && !map->defer_caching) {
1577                 ret = regcache_write(map, reg, val);
1578                 if (ret != 0)
1579                         return ret;
1580                 if (map->cache_only) {
1581                         map->cache_dirty = true;
1582                         return 0;
1583                 }
1584         }
1585
1586 #ifdef LOG_DEVICE
1587         if (map->dev && strcmp(dev_name(map->dev), LOG_DEVICE) == 0)
1588                 dev_info(map->dev, "%x <= %x\n", reg, val);
1589 #endif
1590
1591         trace_regmap_reg_write(map, reg, val);
1592
1593         return map->reg_write(context, reg, val);
1594 }
1595
1596 /**
1597  * regmap_write(): Write a value to a single register
1598  *
1599  * @map: Register map to write to
1600  * @reg: Register to write to
1601  * @val: Value to be written
1602  *
1603  * A value of zero will be returned on success, a negative errno will
1604  * be returned in error cases.
1605  */
1606 int regmap_write(struct regmap *map, unsigned int reg, unsigned int val)
1607 {
1608         int ret;
1609
1610         if (!IS_ALIGNED(reg, map->reg_stride))
1611                 return -EINVAL;
1612
1613         map->lock(map->lock_arg);
1614
1615         ret = _regmap_write(map, reg, val);
1616
1617         map->unlock(map->lock_arg);
1618
1619         return ret;
1620 }
1621 EXPORT_SYMBOL_GPL(regmap_write);
1622
1623 /**
1624  * regmap_write_async(): Write a value to a single register asynchronously
1625  *
1626  * @map: Register map to write to
1627  * @reg: Register to write to
1628  * @val: Value to be written
1629  *
1630  * A value of zero will be returned on success, a negative errno will
1631  * be returned in error cases.
1632  */
1633 int regmap_write_async(struct regmap *map, unsigned int reg, unsigned int val)
1634 {
1635         int ret;
1636
1637         if (!IS_ALIGNED(reg, map->reg_stride))
1638                 return -EINVAL;
1639
1640         map->lock(map->lock_arg);
1641
1642         map->async = true;
1643
1644         ret = _regmap_write(map, reg, val);
1645
1646         map->async = false;
1647
1648         map->unlock(map->lock_arg);
1649
1650         return ret;
1651 }
1652 EXPORT_SYMBOL_GPL(regmap_write_async);
1653
1654 /**
1655  * regmap_raw_write(): Write raw values to one or more registers
1656  *
1657  * @map: Register map to write to
1658  * @reg: Initial register to write to
1659  * @val: Block of data to be written, laid out for direct transmission to the
1660  *       device
1661  * @val_len: Length of data pointed to by val.
1662  *
1663  * This function is intended to be used for things like firmware
1664  * download where a large block of data needs to be transferred to the
1665  * device.  No formatting will be done on the data provided.
1666  *
1667  * A value of zero will be returned on success, a negative errno will
1668  * be returned in error cases.
1669  */
1670 int regmap_raw_write(struct regmap *map, unsigned int reg,
1671                      const void *val, size_t val_len)
1672 {
1673         int ret;
1674
1675         if (!regmap_can_raw_write(map))
1676                 return -EINVAL;
1677         if (val_len % map->format.val_bytes)
1678                 return -EINVAL;
1679         if (map->max_raw_write && map->max_raw_write > val_len)
1680                 return -E2BIG;
1681
1682         map->lock(map->lock_arg);
1683
1684         ret = _regmap_raw_write(map, reg, val, val_len);
1685
1686         map->unlock(map->lock_arg);
1687
1688         return ret;
1689 }
1690 EXPORT_SYMBOL_GPL(regmap_raw_write);
1691
1692 /**
1693  * regmap_field_update_bits_base():
1694  *      Perform a read/modify/write cycle on the register field
1695  *      with change, async, force option
1696  *
1697  * @field: Register field to write to
1698  * @mask: Bitmask to change
1699  * @val: Value to be written
1700  * @change: Boolean indicating if a write was done
1701  * @async: Boolean indicating asynchronously
1702  * @force: Boolean indicating use force update
1703  *
1704  * A value of zero will be returned on success, a negative errno will
1705  * be returned in error cases.
1706  */
1707 int regmap_field_update_bits_base(struct regmap_field *field,
1708                                   unsigned int mask, unsigned int val,
1709                                   bool *change, bool async, bool force)
1710 {
1711         mask = (mask << field->shift) & field->mask;
1712
1713         return regmap_update_bits_base(field->regmap, field->reg,
1714                                        mask, val << field->shift,
1715                                        change, async, force);
1716 }
1717 EXPORT_SYMBOL_GPL(regmap_field_update_bits_base);
1718
1719 /**
1720  * regmap_field_update_bits():  Perform a read/modify/write cycle
1721  *                              on the register field
1722  *
1723  * @field: Register field to write to
1724  * @mask: Bitmask to change
1725  * @val: Value to be written
1726  *
1727  * A value of zero will be returned on success, a negative errno will
1728  * be returned in error cases.
1729  */
1730 int regmap_field_update_bits(struct regmap_field *field, unsigned int mask, unsigned int val)
1731 {
1732         mask = (mask << field->shift) & field->mask;
1733
1734         return regmap_update_bits(field->regmap, field->reg,
1735                                   mask, val << field->shift);
1736 }
1737 EXPORT_SYMBOL_GPL(regmap_field_update_bits);
1738
1739 /**
1740  * regmap_fields_write(): Write a value to a single register field with port ID
1741  *
1742  * @field: Register field to write to
1743  * @id: port ID
1744  * @val: Value to be written
1745  *
1746  * A value of zero will be returned on success, a negative errno will
1747  * be returned in error cases.
1748  */
1749 int regmap_fields_write(struct regmap_field *field, unsigned int id,
1750                         unsigned int val)
1751 {
1752         if (id >= field->id_size)
1753                 return -EINVAL;
1754
1755         return regmap_update_bits(field->regmap,
1756                                   field->reg + (field->id_offset * id),
1757                                   field->mask, val << field->shift);
1758 }
1759 EXPORT_SYMBOL_GPL(regmap_fields_write);
1760
1761 int regmap_fields_force_write(struct regmap_field *field, unsigned int id,
1762                         unsigned int val)
1763 {
1764         if (id >= field->id_size)
1765                 return -EINVAL;
1766
1767         return regmap_write_bits(field->regmap,
1768                                   field->reg + (field->id_offset * id),
1769                                   field->mask, val << field->shift);
1770 }
1771 EXPORT_SYMBOL_GPL(regmap_fields_force_write);
1772
1773 /**
1774  * regmap_fields_update_bits(): Perform a read/modify/write cycle
1775  *                              on the register field
1776  *
1777  * @field: Register field to write to
1778  * @id: port ID
1779  * @mask: Bitmask to change
1780  * @val: Value to be written
1781  *
1782  * A value of zero will be returned on success, a negative errno will
1783  * be returned in error cases.
1784  */
1785 int regmap_fields_update_bits(struct regmap_field *field,  unsigned int id,
1786                               unsigned int mask, unsigned int val)
1787 {
1788         if (id >= field->id_size)
1789                 return -EINVAL;
1790
1791         mask = (mask << field->shift) & field->mask;
1792
1793         return regmap_update_bits(field->regmap,
1794                                   field->reg + (field->id_offset * id),
1795                                   mask, val << field->shift);
1796 }
1797 EXPORT_SYMBOL_GPL(regmap_fields_update_bits);
1798
1799 /*
1800  * regmap_bulk_write(): Write multiple registers to the device
1801  *
1802  * @map: Register map to write to
1803  * @reg: First register to be write from
1804  * @val: Block of data to be written, in native register size for device
1805  * @val_count: Number of registers to write
1806  *
1807  * This function is intended to be used for writing a large block of
1808  * data to the device either in single transfer or multiple transfer.
1809  *
1810  * A value of zero will be returned on success, a negative errno will
1811  * be returned in error cases.
1812  */
1813 int regmap_bulk_write(struct regmap *map, unsigned int reg, const void *val,
1814                      size_t val_count)
1815 {
1816         int ret = 0, i;
1817         size_t val_bytes = map->format.val_bytes;
1818         size_t total_size = val_bytes * val_count;
1819
1820         if (map->bus && !map->format.parse_inplace)
1821                 return -EINVAL;
1822         if (!IS_ALIGNED(reg, map->reg_stride))
1823                 return -EINVAL;
1824
1825         /*
1826          * Some devices don't support bulk write, for
1827          * them we have a series of single write operations in the first two if
1828          * blocks.
1829          *
1830          * The first if block is used for memory mapped io. It does not allow
1831          * val_bytes of 3 for example.
1832          * The second one is used for busses which do not have this limitation
1833          * and can write arbitrary value lengths.
1834          */
1835         if (!map->bus) {
1836                 map->lock(map->lock_arg);
1837                 for (i = 0; i < val_count; i++) {
1838                         unsigned int ival;
1839
1840                         switch (val_bytes) {
1841                         case 1:
1842                                 ival = *(u8 *)(val + (i * val_bytes));
1843                                 break;
1844                         case 2:
1845                                 ival = *(u16 *)(val + (i * val_bytes));
1846                                 break;
1847                         case 4:
1848                                 ival = *(u32 *)(val + (i * val_bytes));
1849                                 break;
1850 #ifdef CONFIG_64BIT
1851                         case 8:
1852                                 ival = *(u64 *)(val + (i * val_bytes));
1853                                 break;
1854 #endif
1855                         default:
1856                                 ret = -EINVAL;
1857                                 goto out;
1858                         }
1859
1860                         ret = _regmap_write(map, reg + (i * map->reg_stride),
1861                                         ival);
1862                         if (ret != 0)
1863                                 goto out;
1864                 }
1865 out:
1866                 map->unlock(map->lock_arg);
1867         } else if (map->use_single_write ||
1868                    (map->max_raw_write && map->max_raw_write < total_size)) {
1869                 int chunk_stride = map->reg_stride;
1870                 size_t chunk_size = val_bytes;
1871                 size_t chunk_count = val_count;
1872
1873                 if (!map->use_single_write) {
1874                         chunk_size = map->max_raw_write;
1875                         if (chunk_size % val_bytes)
1876                                 chunk_size -= chunk_size % val_bytes;
1877                         chunk_count = total_size / chunk_size;
1878                         chunk_stride *= chunk_size / val_bytes;
1879                 }
1880
1881                 map->lock(map->lock_arg);
1882                 /* Write as many bytes as possible with chunk_size */
1883                 for (i = 0; i < chunk_count; i++) {
1884                         ret = _regmap_raw_write(map,
1885                                                 reg + (i * chunk_stride),
1886                                                 val + (i * chunk_size),
1887                                                 chunk_size);
1888                         if (ret)
1889                                 break;
1890                 }
1891
1892                 /* Write remaining bytes */
1893                 if (!ret && chunk_size * i < total_size) {
1894                         ret = _regmap_raw_write(map, reg + (i * chunk_stride),
1895                                                 val + (i * chunk_size),
1896                                                 total_size - i * chunk_size);
1897                 }
1898                 map->unlock(map->lock_arg);
1899         } else {
1900                 void *wval;
1901
1902                 if (!val_count)
1903                         return -EINVAL;
1904
1905                 wval = kmemdup(val, val_count * val_bytes, map->alloc_flags);
1906                 if (!wval) {
1907                         dev_err(map->dev, "Error in memory allocation\n");
1908                         return -ENOMEM;
1909                 }
1910                 for (i = 0; i < val_count * val_bytes; i += val_bytes)
1911                         map->format.parse_inplace(wval + i);
1912
1913                 map->lock(map->lock_arg);
1914                 ret = _regmap_raw_write(map, reg, wval, val_bytes * val_count);
1915                 map->unlock(map->lock_arg);
1916
1917                 kfree(wval);
1918         }
1919         return ret;
1920 }
1921 EXPORT_SYMBOL_GPL(regmap_bulk_write);
1922
1923 /*
1924  * _regmap_raw_multi_reg_write()
1925  *
1926  * the (register,newvalue) pairs in regs have not been formatted, but
1927  * they are all in the same page and have been changed to being page
1928  * relative. The page register has been written if that was necessary.
1929  */
1930 static int _regmap_raw_multi_reg_write(struct regmap *map,
1931                                        const struct reg_sequence *regs,
1932                                        size_t num_regs)
1933 {
1934         int ret;
1935         void *buf;
1936         int i;
1937         u8 *u8;
1938         size_t val_bytes = map->format.val_bytes;
1939         size_t reg_bytes = map->format.reg_bytes;
1940         size_t pad_bytes = map->format.pad_bytes;
1941         size_t pair_size = reg_bytes + pad_bytes + val_bytes;
1942         size_t len = pair_size * num_regs;
1943
1944         if (!len)
1945                 return -EINVAL;
1946
1947         buf = kzalloc(len, GFP_KERNEL);
1948         if (!buf)
1949                 return -ENOMEM;
1950
1951         /* We have to linearise by hand. */
1952
1953         u8 = buf;
1954
1955         for (i = 0; i < num_regs; i++) {
1956                 unsigned int reg = regs[i].reg;
1957                 unsigned int val = regs[i].def;
1958                 trace_regmap_hw_write_start(map, reg, 1);
1959                 map->format.format_reg(u8, reg, map->reg_shift);
1960                 u8 += reg_bytes + pad_bytes;
1961                 map->format.format_val(u8, val, 0);
1962                 u8 += val_bytes;
1963         }
1964         u8 = buf;
1965         *u8 |= map->write_flag_mask;
1966
1967         ret = map->bus->write(map->bus_context, buf, len);
1968
1969         kfree(buf);
1970
1971         for (i = 0; i < num_regs; i++) {
1972                 int reg = regs[i].reg;
1973                 trace_regmap_hw_write_done(map, reg, 1);
1974         }
1975         return ret;
1976 }
1977
1978 static unsigned int _regmap_register_page(struct regmap *map,
1979                                           unsigned int reg,
1980                                           struct regmap_range_node *range)
1981 {
1982         unsigned int win_page = (reg - range->range_min) / range->window_len;
1983
1984         return win_page;
1985 }
1986
1987 static int _regmap_range_multi_paged_reg_write(struct regmap *map,
1988                                                struct reg_sequence *regs,
1989                                                size_t num_regs)
1990 {
1991         int ret;
1992         int i, n;
1993         struct reg_sequence *base;
1994         unsigned int this_page = 0;
1995         unsigned int page_change = 0;
1996         /*
1997          * the set of registers are not neccessarily in order, but
1998          * since the order of write must be preserved this algorithm
1999          * chops the set each time the page changes. This also applies
2000          * if there is a delay required at any point in the sequence.
2001          */
2002         base = regs;
2003         for (i = 0, n = 0; i < num_regs; i++, n++) {
2004                 unsigned int reg = regs[i].reg;
2005                 struct regmap_range_node *range;
2006
2007                 range = _regmap_range_lookup(map, reg);
2008                 if (range) {
2009                         unsigned int win_page = _regmap_register_page(map, reg,
2010                                                                       range);
2011
2012                         if (i == 0)
2013                                 this_page = win_page;
2014                         if (win_page != this_page) {
2015                                 this_page = win_page;
2016                                 page_change = 1;
2017                         }
2018                 }
2019
2020                 /* If we have both a page change and a delay make sure to
2021                  * write the regs and apply the delay before we change the
2022                  * page.
2023                  */
2024
2025                 if (page_change || regs[i].delay_us) {
2026
2027                                 /* For situations where the first write requires
2028                                  * a delay we need to make sure we don't call
2029                                  * raw_multi_reg_write with n=0
2030                                  * This can't occur with page breaks as we
2031                                  * never write on the first iteration
2032                                  */
2033                                 if (regs[i].delay_us && i == 0)
2034                                         n = 1;
2035
2036                                 ret = _regmap_raw_multi_reg_write(map, base, n);
2037                                 if (ret != 0)
2038                                         return ret;
2039
2040                                 if (regs[i].delay_us)
2041                                         udelay(regs[i].delay_us);
2042
2043                                 base += n;
2044                                 n = 0;
2045
2046                                 if (page_change) {
2047                                         ret = _regmap_select_page(map,
2048                                                                   &base[n].reg,
2049                                                                   range, 1);
2050                                         if (ret != 0)
2051                                                 return ret;
2052
2053                                         page_change = 0;
2054                                 }
2055
2056                 }
2057
2058         }
2059         if (n > 0)
2060                 return _regmap_raw_multi_reg_write(map, base, n);
2061         return 0;
2062 }
2063
2064 static int _regmap_multi_reg_write(struct regmap *map,
2065                                    const struct reg_sequence *regs,
2066                                    size_t num_regs)
2067 {
2068         int i;
2069         int ret;
2070
2071         if (!map->can_multi_write) {
2072                 for (i = 0; i < num_regs; i++) {
2073                         ret = _regmap_write(map, regs[i].reg, regs[i].def);
2074                         if (ret != 0)
2075                                 return ret;
2076
2077                         if (regs[i].delay_us)
2078                                 udelay(regs[i].delay_us);
2079                 }
2080                 return 0;
2081         }
2082
2083         if (!map->format.parse_inplace)
2084                 return -EINVAL;
2085
2086         if (map->writeable_reg)
2087                 for (i = 0; i < num_regs; i++) {
2088                         int reg = regs[i].reg;
2089                         if (!map->writeable_reg(map->dev, reg))
2090                                 return -EINVAL;
2091                         if (!IS_ALIGNED(reg, map->reg_stride))
2092                                 return -EINVAL;
2093                 }
2094
2095         if (!map->cache_bypass) {
2096                 for (i = 0; i < num_regs; i++) {
2097                         unsigned int val = regs[i].def;
2098                         unsigned int reg = regs[i].reg;
2099                         ret = regcache_write(map, reg, val);
2100                         if (ret) {
2101                                 dev_err(map->dev,
2102                                 "Error in caching of register: %x ret: %d\n",
2103                                                                 reg, ret);
2104                                 return ret;
2105                         }
2106                 }
2107                 if (map->cache_only) {
2108                         map->cache_dirty = true;
2109                         return 0;
2110                 }
2111         }
2112
2113         WARN_ON(!map->bus);
2114
2115         for (i = 0; i < num_regs; i++) {
2116                 unsigned int reg = regs[i].reg;
2117                 struct regmap_range_node *range;
2118
2119                 /* Coalesce all the writes between a page break or a delay
2120                  * in a sequence
2121                  */
2122                 range = _regmap_range_lookup(map, reg);
2123                 if (range || regs[i].delay_us) {
2124                         size_t len = sizeof(struct reg_sequence)*num_regs;
2125                         struct reg_sequence *base = kmemdup(regs, len,
2126                                                            GFP_KERNEL);
2127                         if (!base)
2128                                 return -ENOMEM;
2129                         ret = _regmap_range_multi_paged_reg_write(map, base,
2130                                                                   num_regs);
2131                         kfree(base);
2132
2133                         return ret;
2134                 }
2135         }
2136         return _regmap_raw_multi_reg_write(map, regs, num_regs);
2137 }
2138
2139 /*
2140  * regmap_multi_reg_write(): Write multiple registers to the device
2141  *
2142  * where the set of register,value pairs are supplied in any order,
2143  * possibly not all in a single range.
2144  *
2145  * @map: Register map to write to
2146  * @regs: Array of structures containing register,value to be written
2147  * @num_regs: Number of registers to write
2148  *
2149  * The 'normal' block write mode will send ultimately send data on the
2150  * target bus as R,V1,V2,V3,..,Vn where successively higer registers are
2151  * addressed. However, this alternative block multi write mode will send
2152  * the data as R1,V1,R2,V2,..,Rn,Vn on the target bus. The target device
2153  * must of course support the mode.
2154  *
2155  * A value of zero will be returned on success, a negative errno will be
2156  * returned in error cases.
2157  */
2158 int regmap_multi_reg_write(struct regmap *map, const struct reg_sequence *regs,
2159                            int num_regs)
2160 {
2161         int ret;
2162
2163         map->lock(map->lock_arg);
2164
2165         ret = _regmap_multi_reg_write(map, regs, num_regs);
2166
2167         map->unlock(map->lock_arg);
2168
2169         return ret;
2170 }
2171 EXPORT_SYMBOL_GPL(regmap_multi_reg_write);
2172
2173 /*
2174  * regmap_multi_reg_write_bypassed(): Write multiple registers to the
2175  *                                    device but not the cache
2176  *
2177  * where the set of register are supplied in any order
2178  *
2179  * @map: Register map to write to
2180  * @regs: Array of structures containing register,value to be written
2181  * @num_regs: Number of registers to write
2182  *
2183  * This function is intended to be used for writing a large block of data
2184  * atomically to the device in single transfer for those I2C client devices
2185  * that implement this alternative block write mode.
2186  *
2187  * A value of zero will be returned on success, a negative errno will
2188  * be returned in error cases.
2189  */
2190 int regmap_multi_reg_write_bypassed(struct regmap *map,
2191                                     const struct reg_sequence *regs,
2192                                     int num_regs)
2193 {
2194         int ret;
2195         bool bypass;
2196
2197         map->lock(map->lock_arg);
2198
2199         bypass = map->cache_bypass;
2200         map->cache_bypass = true;
2201
2202         ret = _regmap_multi_reg_write(map, regs, num_regs);
2203
2204         map->cache_bypass = bypass;
2205
2206         map->unlock(map->lock_arg);
2207
2208         return ret;
2209 }
2210 EXPORT_SYMBOL_GPL(regmap_multi_reg_write_bypassed);
2211
2212 /**
2213  * regmap_raw_write_async(): Write raw values to one or more registers
2214  *                           asynchronously
2215  *
2216  * @map: Register map to write to
2217  * @reg: Initial register to write to
2218  * @val: Block of data to be written, laid out for direct transmission to the
2219  *       device.  Must be valid until regmap_async_complete() is called.
2220  * @val_len: Length of data pointed to by val.
2221  *
2222  * This function is intended to be used for things like firmware
2223  * download where a large block of data needs to be transferred to the
2224  * device.  No formatting will be done on the data provided.
2225  *
2226  * If supported by the underlying bus the write will be scheduled
2227  * asynchronously, helping maximise I/O speed on higher speed buses
2228  * like SPI.  regmap_async_complete() can be called to ensure that all
2229  * asynchrnous writes have been completed.
2230  *
2231  * A value of zero will be returned on success, a negative errno will
2232  * be returned in error cases.
2233  */
2234 int regmap_raw_write_async(struct regmap *map, unsigned int reg,
2235                            const void *val, size_t val_len)
2236 {
2237         int ret;
2238
2239         if (val_len % map->format.val_bytes)
2240                 return -EINVAL;
2241         if (!IS_ALIGNED(reg, map->reg_stride))
2242                 return -EINVAL;
2243
2244         map->lock(map->lock_arg);
2245
2246         map->async = true;
2247
2248         ret = _regmap_raw_write(map, reg, val, val_len);
2249
2250         map->async = false;
2251
2252         map->unlock(map->lock_arg);
2253
2254         return ret;
2255 }
2256 EXPORT_SYMBOL_GPL(regmap_raw_write_async);
2257
2258 static int _regmap_raw_read(struct regmap *map, unsigned int reg, void *val,
2259                             unsigned int val_len)
2260 {
2261         struct regmap_range_node *range;
2262         u8 *u8 = map->work_buf;
2263         int ret;
2264
2265         WARN_ON(!map->bus);
2266
2267         range = _regmap_range_lookup(map, reg);
2268         if (range) {
2269                 ret = _regmap_select_page(map, &reg, range,
2270                                           val_len / map->format.val_bytes);
2271                 if (ret != 0)
2272                         return ret;
2273         }
2274
2275         map->format.format_reg(map->work_buf, reg, map->reg_shift);
2276
2277         /*
2278          * Some buses or devices flag reads by setting the high bits in the
2279          * register address; since it's always the high bits for all
2280          * current formats we can do this here rather than in
2281          * formatting.  This may break if we get interesting formats.
2282          */
2283         u8[0] |= map->read_flag_mask;
2284
2285         trace_regmap_hw_read_start(map, reg, val_len / map->format.val_bytes);
2286
2287         ret = map->bus->read(map->bus_context, map->work_buf,
2288                              map->format.reg_bytes + map->format.pad_bytes,
2289                              val, val_len);
2290
2291         trace_regmap_hw_read_done(map, reg, val_len / map->format.val_bytes);
2292
2293         return ret;
2294 }
2295
2296 static int _regmap_bus_reg_read(void *context, unsigned int reg,
2297                                 unsigned int *val)
2298 {
2299         struct regmap *map = context;
2300
2301         return map->bus->reg_read(map->bus_context, reg, val);
2302 }
2303
2304 static int _regmap_bus_read(void *context, unsigned int reg,
2305                             unsigned int *val)
2306 {
2307         int ret;
2308         struct regmap *map = context;
2309
2310         if (!map->format.parse_val)
2311                 return -EINVAL;
2312
2313         ret = _regmap_raw_read(map, reg, map->work_buf, map->format.val_bytes);
2314         if (ret == 0)
2315                 *val = map->format.parse_val(map->work_buf);
2316
2317         return ret;
2318 }
2319
2320 static int _regmap_read(struct regmap *map, unsigned int reg,
2321                         unsigned int *val)
2322 {
2323         int ret;
2324         void *context = _regmap_map_get_context(map);
2325
2326         if (!map->cache_bypass) {
2327                 ret = regcache_read(map, reg, val);
2328                 if (ret == 0)
2329                         return 0;
2330         }
2331
2332         if (map->cache_only)
2333                 return -EBUSY;
2334
2335         if (!regmap_readable(map, reg))
2336                 return -EIO;
2337
2338         ret = map->reg_read(context, reg, val);
2339         if (ret == 0) {
2340 #ifdef LOG_DEVICE
2341                 if (map->dev && strcmp(dev_name(map->dev), LOG_DEVICE) == 0)
2342                         dev_info(map->dev, "%x => %x\n", reg, *val);
2343 #endif
2344
2345                 trace_regmap_reg_read(map, reg, *val);
2346
2347                 if (!map->cache_bypass)
2348                         regcache_write(map, reg, *val);
2349         }
2350
2351         return ret;
2352 }
2353
2354 /**
2355  * regmap_read(): Read a value from a single register
2356  *
2357  * @map: Register map to read from
2358  * @reg: Register to be read from
2359  * @val: Pointer to store read value
2360  *
2361  * A value of zero will be returned on success, a negative errno will
2362  * be returned in error cases.
2363  */
2364 int regmap_read(struct regmap *map, unsigned int reg, unsigned int *val)
2365 {
2366         int ret;
2367
2368         if (!IS_ALIGNED(reg, map->reg_stride))
2369                 return -EINVAL;
2370
2371         map->lock(map->lock_arg);
2372
2373         ret = _regmap_read(map, reg, val);
2374
2375         map->unlock(map->lock_arg);
2376
2377         return ret;
2378 }
2379 EXPORT_SYMBOL_GPL(regmap_read);
2380
2381 /**
2382  * regmap_raw_read(): Read raw data from the device
2383  *
2384  * @map: Register map to read from
2385  * @reg: First register to be read from
2386  * @val: Pointer to store read value
2387  * @val_len: Size of data to read
2388  *
2389  * A value of zero will be returned on success, a negative errno will
2390  * be returned in error cases.
2391  */
2392 int regmap_raw_read(struct regmap *map, unsigned int reg, void *val,
2393                     size_t val_len)
2394 {
2395         size_t val_bytes = map->format.val_bytes;
2396         size_t val_count = val_len / val_bytes;
2397         unsigned int v;
2398         int ret, i;
2399
2400         if (!map->bus)
2401                 return -EINVAL;
2402         if (val_len % map->format.val_bytes)
2403                 return -EINVAL;
2404         if (!IS_ALIGNED(reg, map->reg_stride))
2405                 return -EINVAL;
2406         if (val_count == 0)
2407                 return -EINVAL;
2408
2409         map->lock(map->lock_arg);
2410
2411         if (regmap_volatile_range(map, reg, val_count) || map->cache_bypass ||
2412             map->cache_type == REGCACHE_NONE) {
2413                 if (!map->bus->read) {
2414                         ret = -ENOTSUPP;
2415                         goto out;
2416                 }
2417                 if (map->max_raw_read && map->max_raw_read < val_len) {
2418                         ret = -E2BIG;
2419                         goto out;
2420                 }
2421
2422                 /* Physical block read if there's no cache involved */
2423                 ret = _regmap_raw_read(map, reg, val, val_len);
2424
2425         } else {
2426                 /* Otherwise go word by word for the cache; should be low
2427                  * cost as we expect to hit the cache.
2428                  */
2429                 for (i = 0; i < val_count; i++) {
2430                         ret = _regmap_read(map, reg + (i * map->reg_stride),
2431                                            &v);
2432                         if (ret != 0)
2433                                 goto out;
2434
2435                         map->format.format_val(val + (i * val_bytes), v, 0);
2436                 }
2437         }
2438
2439  out:
2440         map->unlock(map->lock_arg);
2441
2442         return ret;
2443 }
2444 EXPORT_SYMBOL_GPL(regmap_raw_read);
2445
2446 /**
2447  * regmap_field_read(): Read a value to a single register field
2448  *
2449  * @field: Register field to read from
2450  * @val: Pointer to store read value
2451  *
2452  * A value of zero will be returned on success, a negative errno will
2453  * be returned in error cases.
2454  */
2455 int regmap_field_read(struct regmap_field *field, unsigned int *val)
2456 {
2457         int ret;
2458         unsigned int reg_val;
2459         ret = regmap_read(field->regmap, field->reg, &reg_val);
2460         if (ret != 0)
2461                 return ret;
2462
2463         reg_val &= field->mask;
2464         reg_val >>= field->shift;
2465         *val = reg_val;
2466
2467         return ret;
2468 }
2469 EXPORT_SYMBOL_GPL(regmap_field_read);
2470
2471 /**
2472  * regmap_fields_read(): Read a value to a single register field with port ID
2473  *
2474  * @field: Register field to read from
2475  * @id: port ID
2476  * @val: Pointer to store read value
2477  *
2478  * A value of zero will be returned on success, a negative errno will
2479  * be returned in error cases.
2480  */
2481 int regmap_fields_read(struct regmap_field *field, unsigned int id,
2482                        unsigned int *val)
2483 {
2484         int ret;
2485         unsigned int reg_val;
2486
2487         if (id >= field->id_size)
2488                 return -EINVAL;
2489
2490         ret = regmap_read(field->regmap,
2491                           field->reg + (field->id_offset * id),
2492                           &reg_val);
2493         if (ret != 0)
2494                 return ret;
2495
2496         reg_val &= field->mask;
2497         reg_val >>= field->shift;
2498         *val = reg_val;
2499
2500         return ret;
2501 }
2502 EXPORT_SYMBOL_GPL(regmap_fields_read);
2503
2504 /**
2505  * regmap_bulk_read(): Read multiple registers from the device
2506  *
2507  * @map: Register map to read from
2508  * @reg: First register to be read from
2509  * @val: Pointer to store read value, in native register size for device
2510  * @val_count: Number of registers to read
2511  *
2512  * A value of zero will be returned on success, a negative errno will
2513  * be returned in error cases.
2514  */
2515 int regmap_bulk_read(struct regmap *map, unsigned int reg, void *val,
2516                      size_t val_count)
2517 {
2518         int ret, i;
2519         size_t val_bytes = map->format.val_bytes;
2520         bool vol = regmap_volatile_range(map, reg, val_count);
2521
2522         if (!IS_ALIGNED(reg, map->reg_stride))
2523                 return -EINVAL;
2524
2525         if (map->bus && map->format.parse_inplace && (vol || map->cache_type == REGCACHE_NONE)) {
2526                 /*
2527                  * Some devices does not support bulk read, for
2528                  * them we have a series of single read operations.
2529                  */
2530                 size_t total_size = val_bytes * val_count;
2531
2532                 if (!map->use_single_read &&
2533                     (!map->max_raw_read || map->max_raw_read > total_size)) {
2534                         ret = regmap_raw_read(map, reg, val,
2535                                               val_bytes * val_count);
2536                         if (ret != 0)
2537                                 return ret;
2538                 } else {
2539                         /*
2540                          * Some devices do not support bulk read or do not
2541                          * support large bulk reads, for them we have a series
2542                          * of read operations.
2543                          */
2544                         int chunk_stride = map->reg_stride;
2545                         size_t chunk_size = val_bytes;
2546                         size_t chunk_count = val_count;
2547
2548                         if (!map->use_single_read) {
2549                                 chunk_size = map->max_raw_read;
2550                                 if (chunk_size % val_bytes)
2551                                         chunk_size -= chunk_size % val_bytes;
2552                                 chunk_count = total_size / chunk_size;
2553                                 chunk_stride *= chunk_size / val_bytes;
2554                         }
2555
2556                         /* Read bytes that fit into a multiple of chunk_size */
2557                         for (i = 0; i < chunk_count; i++) {
2558                                 ret = regmap_raw_read(map,
2559                                                       reg + (i * chunk_stride),
2560                                                       val + (i * chunk_size),
2561                                                       chunk_size);
2562                                 if (ret != 0)
2563                                         return ret;
2564                         }
2565
2566                         /* Read remaining bytes */
2567                         if (chunk_size * i < total_size) {
2568                                 ret = regmap_raw_read(map,
2569                                                       reg + (i * chunk_stride),
2570                                                       val + (i * chunk_size),
2571                                                       total_size - i * chunk_size);
2572                                 if (ret != 0)
2573                                         return ret;
2574                         }
2575                 }
2576
2577                 for (i = 0; i < val_count * val_bytes; i += val_bytes)
2578                         map->format.parse_inplace(val + i);
2579         } else {
2580                 for (i = 0; i < val_count; i++) {
2581                         unsigned int ival;
2582                         ret = regmap_read(map, reg + (i * map->reg_stride),
2583                                           &ival);
2584                         if (ret != 0)
2585                                 return ret;
2586
2587                         if (map->format.format_val) {
2588                                 map->format.format_val(val + (i * val_bytes), ival, 0);
2589                         } else {
2590                                 /* Devices providing read and write
2591                                  * operations can use the bulk I/O
2592                                  * functions if they define a val_bytes,
2593                                  * we assume that the values are native
2594                                  * endian.
2595                                  */
2596 #ifdef CONFIG_64BIT
2597                                 u64 *u64 = val;
2598 #endif
2599                                 u32 *u32 = val;
2600                                 u16 *u16 = val;
2601                                 u8 *u8 = val;
2602
2603                                 switch (map->format.val_bytes) {
2604 #ifdef CONFIG_64BIT
2605                                 case 8:
2606                                         u64[i] = ival;
2607                                         break;
2608 #endif
2609                                 case 4:
2610                                         u32[i] = ival;
2611                                         break;
2612                                 case 2:
2613                                         u16[i] = ival;
2614                                         break;
2615                                 case 1:
2616                                         u8[i] = ival;
2617                                         break;
2618                                 default:
2619                                         return -EINVAL;
2620                                 }
2621                         }
2622                 }
2623         }
2624
2625         return 0;
2626 }
2627 EXPORT_SYMBOL_GPL(regmap_bulk_read);
2628
2629 static int _regmap_update_bits(struct regmap *map, unsigned int reg,
2630                                unsigned int mask, unsigned int val,
2631                                bool *change, bool force_write)
2632 {
2633         int ret;
2634         unsigned int tmp, orig;
2635
2636         if (change)
2637                 *change = false;
2638
2639         if (regmap_volatile(map, reg) && map->reg_update_bits) {
2640                 ret = map->reg_update_bits(map->bus_context, reg, mask, val);
2641                 if (ret == 0 && change)
2642                         *change = true;
2643         } else {
2644                 ret = _regmap_read(map, reg, &orig);
2645                 if (ret != 0)
2646                         return ret;
2647
2648                 tmp = orig & ~mask;
2649                 tmp |= val & mask;
2650
2651                 if (force_write || (tmp != orig)) {
2652                         ret = _regmap_write(map, reg, tmp);
2653                         if (ret == 0 && change)
2654                                 *change = true;
2655                 }
2656         }
2657
2658         return ret;
2659 }
2660
2661 /**
2662  * regmap_update_bits_base:
2663  *      Perform a read/modify/write cycle on the
2664  *      register map with change, async, force option
2665  *
2666  * @map: Register map to update
2667  * @reg: Register to update
2668  * @mask: Bitmask to change
2669  * @val: New value for bitmask
2670  * @change: Boolean indicating if a write was done
2671  * @async: Boolean indicating asynchronously
2672  * @force: Boolean indicating use force update
2673  *
2674  * if async was true,
2675  * With most buses the read must be done synchronously so this is most
2676  * useful for devices with a cache which do not need to interact with
2677  * the hardware to determine the current register value.
2678  *
2679  * Returns zero for success, a negative number on error.
2680  */
2681 int regmap_update_bits_base(struct regmap *map, unsigned int reg,
2682                             unsigned int mask, unsigned int val,
2683                             bool *change, bool async, bool force)
2684 {
2685         int ret;
2686
2687         map->lock(map->lock_arg);
2688
2689         map->async = async;
2690
2691         ret = _regmap_update_bits(map, reg, mask, val, change, force);
2692
2693         map->async = false;
2694
2695         map->unlock(map->lock_arg);
2696
2697         return ret;
2698 }
2699 EXPORT_SYMBOL_GPL(regmap_update_bits_base);
2700
2701 /**
2702  * regmap_write_bits: Perform a read/modify/write cycle on the register map
2703  *
2704  * @map: Register map to update
2705  * @reg: Register to update
2706  * @mask: Bitmask to change
2707  * @val: New value for bitmask
2708  *
2709  * Returns zero for success, a negative number on error.
2710  */
2711 int regmap_write_bits(struct regmap *map, unsigned int reg,
2712                       unsigned int mask, unsigned int val)
2713 {
2714         int ret;
2715
2716         map->lock(map->lock_arg);
2717         ret = _regmap_update_bits(map, reg, mask, val, NULL, true);
2718         map->unlock(map->lock_arg);
2719
2720         return ret;
2721 }
2722 EXPORT_SYMBOL_GPL(regmap_write_bits);
2723
2724 void regmap_async_complete_cb(struct regmap_async *async, int ret)
2725 {
2726         struct regmap *map = async->map;
2727         bool wake;
2728
2729         trace_regmap_async_io_complete(map);
2730
2731         spin_lock(&map->async_lock);
2732         list_move(&async->list, &map->async_free);
2733         wake = list_empty(&map->async_list);
2734
2735         if (ret != 0)
2736                 map->async_ret = ret;
2737
2738         spin_unlock(&map->async_lock);
2739
2740         if (wake)
2741                 wake_up(&map->async_waitq);
2742 }
2743 EXPORT_SYMBOL_GPL(regmap_async_complete_cb);
2744
2745 static int regmap_async_is_done(struct regmap *map)
2746 {
2747         unsigned long flags;
2748         int ret;
2749
2750         spin_lock_irqsave(&map->async_lock, flags);
2751         ret = list_empty(&map->async_list);
2752         spin_unlock_irqrestore(&map->async_lock, flags);
2753
2754         return ret;
2755 }
2756
2757 /**
2758  * regmap_async_complete: Ensure all asynchronous I/O has completed.
2759  *
2760  * @map: Map to operate on.
2761  *
2762  * Blocks until any pending asynchronous I/O has completed.  Returns
2763  * an error code for any failed I/O operations.
2764  */
2765 int regmap_async_complete(struct regmap *map)
2766 {
2767         unsigned long flags;
2768         int ret;
2769
2770         /* Nothing to do with no async support */
2771         if (!map->bus || !map->bus->async_write)
2772                 return 0;
2773
2774         trace_regmap_async_complete_start(map);
2775
2776         wait_event(map->async_waitq, regmap_async_is_done(map));
2777
2778         spin_lock_irqsave(&map->async_lock, flags);
2779         ret = map->async_ret;
2780         map->async_ret = 0;
2781         spin_unlock_irqrestore(&map->async_lock, flags);
2782
2783         trace_regmap_async_complete_done(map);
2784
2785         return ret;
2786 }
2787 EXPORT_SYMBOL_GPL(regmap_async_complete);
2788
2789 /**
2790  * regmap_register_patch: Register and apply register updates to be applied
2791  *                        on device initialistion
2792  *
2793  * @map: Register map to apply updates to.
2794  * @regs: Values to update.
2795  * @num_regs: Number of entries in regs.
2796  *
2797  * Register a set of register updates to be applied to the device
2798  * whenever the device registers are synchronised with the cache and
2799  * apply them immediately.  Typically this is used to apply
2800  * corrections to be applied to the device defaults on startup, such
2801  * as the updates some vendors provide to undocumented registers.
2802  *
2803  * The caller must ensure that this function cannot be called
2804  * concurrently with either itself or regcache_sync().
2805  */
2806 int regmap_register_patch(struct regmap *map, const struct reg_sequence *regs,
2807                           int num_regs)
2808 {
2809         struct reg_sequence *p;
2810         int ret;
2811         bool bypass;
2812
2813         if (WARN_ONCE(num_regs <= 0, "invalid registers number (%d)\n",
2814             num_regs))
2815                 return 0;
2816
2817         p = krealloc(map->patch,
2818                      sizeof(struct reg_sequence) * (map->patch_regs + num_regs),
2819                      GFP_KERNEL);
2820         if (p) {
2821                 memcpy(p + map->patch_regs, regs, num_regs * sizeof(*regs));
2822                 map->patch = p;
2823                 map->patch_regs += num_regs;
2824         } else {
2825                 return -ENOMEM;
2826         }
2827
2828         map->lock(map->lock_arg);
2829
2830         bypass = map->cache_bypass;
2831
2832         map->cache_bypass = true;
2833         map->async = true;
2834
2835         ret = _regmap_multi_reg_write(map, regs, num_regs);
2836
2837         map->async = false;
2838         map->cache_bypass = bypass;
2839
2840         map->unlock(map->lock_arg);
2841
2842         regmap_async_complete(map);
2843
2844         return ret;
2845 }
2846 EXPORT_SYMBOL_GPL(regmap_register_patch);
2847
2848 /*
2849  * regmap_get_val_bytes(): Report the size of a register value
2850  *
2851  * Report the size of a register value, mainly intended to for use by
2852  * generic infrastructure built on top of regmap.
2853  */
2854 int regmap_get_val_bytes(struct regmap *map)
2855 {
2856         if (map->format.format_write)
2857                 return -EINVAL;
2858
2859         return map->format.val_bytes;
2860 }
2861 EXPORT_SYMBOL_GPL(regmap_get_val_bytes);
2862
2863 /**
2864  * regmap_get_max_register(): Report the max register value
2865  *
2866  * Report the max register value, mainly intended to for use by
2867  * generic infrastructure built on top of regmap.
2868  */
2869 int regmap_get_max_register(struct regmap *map)
2870 {
2871         return map->max_register ? map->max_register : -EINVAL;
2872 }
2873 EXPORT_SYMBOL_GPL(regmap_get_max_register);
2874
2875 /**
2876  * regmap_get_reg_stride(): Report the register address stride
2877  *
2878  * Report the register address stride, mainly intended to for use by
2879  * generic infrastructure built on top of regmap.
2880  */
2881 int regmap_get_reg_stride(struct regmap *map)
2882 {
2883         return map->reg_stride;
2884 }
2885 EXPORT_SYMBOL_GPL(regmap_get_reg_stride);
2886
2887 int regmap_parse_val(struct regmap *map, const void *buf,
2888                         unsigned int *val)
2889 {
2890         if (!map->format.parse_val)
2891                 return -EINVAL;
2892
2893         *val = map->format.parse_val(buf);
2894
2895         return 0;
2896 }
2897 EXPORT_SYMBOL_GPL(regmap_parse_val);
2898
2899 static int __init regmap_initcall(void)
2900 {
2901         regmap_debugfs_initcall();
2902
2903         return 0;
2904 }
2905 postcore_initcall(regmap_initcall);