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/rbtree.h> 19 #include <linux/sched.h> 20 21 #define CREATE_TRACE_POINTS 22 #include <trace/events/regmap.h> 23 24 #include "internal.h" 25 26 /* 27 * Sometimes for failures during very early init the trace 28 * infrastructure isn't available early enough to be used. For this 29 * sort of problem defining LOG_DEVICE will add printks for basic 30 * register I/O on a specific device. 31 */ 32 #undef LOG_DEVICE 33 34 static int _regmap_update_bits(struct regmap *map, unsigned int reg, 35 unsigned int mask, unsigned int val, 36 bool *change); 37 38 static int _regmap_bus_read(void *context, unsigned int reg, 39 unsigned int *val); 40 static int _regmap_bus_formatted_write(void *context, unsigned int reg, 41 unsigned int val); 42 static int _regmap_bus_raw_write(void *context, unsigned int reg, 43 unsigned int val); 44 45 static void async_cleanup(struct work_struct *work) 46 { 47 struct regmap_async *async = container_of(work, struct regmap_async, 48 cleanup); 49 50 kfree(async->work_buf); 51 kfree(async); 52 } 53 54 bool regmap_reg_in_ranges(unsigned int reg, 55 const struct regmap_range *ranges, 56 unsigned int nranges) 57 { 58 const struct regmap_range *r; 59 int i; 60 61 for (i = 0, r = ranges; i < nranges; i++, r++) 62 if (regmap_reg_in_range(reg, r)) 63 return true; 64 return false; 65 } 66 EXPORT_SYMBOL_GPL(regmap_reg_in_ranges); 67 68 static bool _regmap_check_range_table(struct regmap *map, 69 unsigned int reg, 70 const struct regmap_access_table *table) 71 { 72 /* Check "no ranges" first */ 73 if (regmap_reg_in_ranges(reg, table->no_ranges, table->n_no_ranges)) 74 return false; 75 76 /* In case zero "yes ranges" are supplied, any reg is OK */ 77 if (!table->n_yes_ranges) 78 return true; 79 80 return regmap_reg_in_ranges(reg, table->yes_ranges, 81 table->n_yes_ranges); 82 } 83 84 bool regmap_writeable(struct regmap *map, unsigned int reg) 85 { 86 if (map->max_register && reg > map->max_register) 87 return false; 88 89 if (map->writeable_reg) 90 return map->writeable_reg(map->dev, reg); 91 92 if (map->wr_table) 93 return _regmap_check_range_table(map, reg, map->wr_table); 94 95 return true; 96 } 97 98 bool regmap_readable(struct regmap *map, unsigned int reg) 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 (!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 return true; 127 } 128 129 bool regmap_precious(struct regmap *map, unsigned int reg) 130 { 131 if (!regmap_readable(map, reg)) 132 return false; 133 134 if (map->precious_reg) 135 return map->precious_reg(map->dev, reg); 136 137 if (map->precious_table) 138 return _regmap_check_range_table(map, reg, map->precious_table); 139 140 return false; 141 } 142 143 static bool regmap_volatile_range(struct regmap *map, unsigned int reg, 144 size_t num) 145 { 146 unsigned int i; 147 148 for (i = 0; i < num; i++) 149 if (!regmap_volatile(map, reg + i)) 150 return false; 151 152 return true; 153 } 154 155 static void regmap_format_2_6_write(struct regmap *map, 156 unsigned int reg, unsigned int val) 157 { 158 u8 *out = map->work_buf; 159 160 *out = (reg << 6) | val; 161 } 162 163 static void regmap_format_4_12_write(struct regmap *map, 164 unsigned int reg, unsigned int val) 165 { 166 __be16 *out = map->work_buf; 167 *out = cpu_to_be16((reg << 12) | val); 168 } 169 170 static void regmap_format_7_9_write(struct regmap *map, 171 unsigned int reg, unsigned int val) 172 { 173 __be16 *out = map->work_buf; 174 *out = cpu_to_be16((reg << 9) | val); 175 } 176 177 static void regmap_format_10_14_write(struct regmap *map, 178 unsigned int reg, unsigned int val) 179 { 180 u8 *out = map->work_buf; 181 182 out[2] = val; 183 out[1] = (val >> 8) | (reg << 6); 184 out[0] = reg >> 2; 185 } 186 187 static void regmap_format_8(void *buf, unsigned int val, unsigned int shift) 188 { 189 u8 *b = buf; 190 191 b[0] = val << shift; 192 } 193 194 static void regmap_format_16_be(void *buf, unsigned int val, unsigned int shift) 195 { 196 __be16 *b = buf; 197 198 b[0] = cpu_to_be16(val << shift); 199 } 200 201 static void regmap_format_16_native(void *buf, unsigned int val, 202 unsigned int shift) 203 { 204 *(u16 *)buf = val << shift; 205 } 206 207 static void regmap_format_24(void *buf, unsigned int val, unsigned int shift) 208 { 209 u8 *b = buf; 210 211 val <<= shift; 212 213 b[0] = val >> 16; 214 b[1] = val >> 8; 215 b[2] = val; 216 } 217 218 static void regmap_format_32_be(void *buf, unsigned int val, unsigned int shift) 219 { 220 __be32 *b = buf; 221 222 b[0] = cpu_to_be32(val << shift); 223 } 224 225 static void regmap_format_32_native(void *buf, unsigned int val, 226 unsigned int shift) 227 { 228 *(u32 *)buf = val << shift; 229 } 230 231 static void regmap_parse_inplace_noop(void *buf) 232 { 233 } 234 235 static unsigned int regmap_parse_8(const void *buf) 236 { 237 const u8 *b = buf; 238 239 return b[0]; 240 } 241 242 static unsigned int regmap_parse_16_be(const void *buf) 243 { 244 const __be16 *b = buf; 245 246 return be16_to_cpu(b[0]); 247 } 248 249 static void regmap_parse_16_be_inplace(void *buf) 250 { 251 __be16 *b = buf; 252 253 b[0] = be16_to_cpu(b[0]); 254 } 255 256 static unsigned int regmap_parse_16_native(const void *buf) 257 { 258 return *(u16 *)buf; 259 } 260 261 static unsigned int regmap_parse_24(const void *buf) 262 { 263 const u8 *b = buf; 264 unsigned int ret = b[2]; 265 ret |= ((unsigned int)b[1]) << 8; 266 ret |= ((unsigned int)b[0]) << 16; 267 268 return ret; 269 } 270 271 static unsigned int regmap_parse_32_be(const void *buf) 272 { 273 const __be32 *b = buf; 274 275 return be32_to_cpu(b[0]); 276 } 277 278 static void regmap_parse_32_be_inplace(void *buf) 279 { 280 __be32 *b = buf; 281 282 b[0] = be32_to_cpu(b[0]); 283 } 284 285 static unsigned int regmap_parse_32_native(const void *buf) 286 { 287 return *(u32 *)buf; 288 } 289 290 static void regmap_lock_mutex(void *__map) 291 { 292 struct regmap *map = __map; 293 mutex_lock(&map->mutex); 294 } 295 296 static void regmap_unlock_mutex(void *__map) 297 { 298 struct regmap *map = __map; 299 mutex_unlock(&map->mutex); 300 } 301 302 static void regmap_lock_spinlock(void *__map) 303 { 304 struct regmap *map = __map; 305 spin_lock(&map->spinlock); 306 } 307 308 static void regmap_unlock_spinlock(void *__map) 309 { 310 struct regmap *map = __map; 311 spin_unlock(&map->spinlock); 312 } 313 314 static void dev_get_regmap_release(struct device *dev, void *res) 315 { 316 /* 317 * We don't actually have anything to do here; the goal here 318 * is not to manage the regmap but to provide a simple way to 319 * get the regmap back given a struct device. 320 */ 321 } 322 323 static bool _regmap_range_add(struct regmap *map, 324 struct regmap_range_node *data) 325 { 326 struct rb_root *root = &map->range_tree; 327 struct rb_node **new = &(root->rb_node), *parent = NULL; 328 329 while (*new) { 330 struct regmap_range_node *this = 331 container_of(*new, struct regmap_range_node, node); 332 333 parent = *new; 334 if (data->range_max < this->range_min) 335 new = &((*new)->rb_left); 336 else if (data->range_min > this->range_max) 337 new = &((*new)->rb_right); 338 else 339 return false; 340 } 341 342 rb_link_node(&data->node, parent, new); 343 rb_insert_color(&data->node, root); 344 345 return true; 346 } 347 348 static struct regmap_range_node *_regmap_range_lookup(struct regmap *map, 349 unsigned int reg) 350 { 351 struct rb_node *node = map->range_tree.rb_node; 352 353 while (node) { 354 struct regmap_range_node *this = 355 container_of(node, struct regmap_range_node, node); 356 357 if (reg < this->range_min) 358 node = node->rb_left; 359 else if (reg > this->range_max) 360 node = node->rb_right; 361 else 362 return this; 363 } 364 365 return NULL; 366 } 367 368 static void regmap_range_exit(struct regmap *map) 369 { 370 struct rb_node *next; 371 struct regmap_range_node *range_node; 372 373 next = rb_first(&map->range_tree); 374 while (next) { 375 range_node = rb_entry(next, struct regmap_range_node, node); 376 next = rb_next(&range_node->node); 377 rb_erase(&range_node->node, &map->range_tree); 378 kfree(range_node); 379 } 380 381 kfree(map->selector_work_buf); 382 } 383 384 /** 385 * regmap_init(): Initialise register map 386 * 387 * @dev: Device that will be interacted with 388 * @bus: Bus-specific callbacks to use with device 389 * @bus_context: Data passed to bus-specific callbacks 390 * @config: Configuration for register map 391 * 392 * The return value will be an ERR_PTR() on error or a valid pointer to 393 * a struct regmap. This function should generally not be called 394 * directly, it should be called by bus-specific init functions. 395 */ 396 struct regmap *regmap_init(struct device *dev, 397 const struct regmap_bus *bus, 398 void *bus_context, 399 const struct regmap_config *config) 400 { 401 struct regmap *map, **m; 402 int ret = -EINVAL; 403 enum regmap_endian reg_endian, val_endian; 404 int i, j; 405 406 if (!config) 407 goto err; 408 409 map = kzalloc(sizeof(*map), GFP_KERNEL); 410 if (map == NULL) { 411 ret = -ENOMEM; 412 goto err; 413 } 414 415 if (config->lock && config->unlock) { 416 map->lock = config->lock; 417 map->unlock = config->unlock; 418 map->lock_arg = config->lock_arg; 419 } else { 420 if ((bus && bus->fast_io) || 421 config->fast_io) { 422 spin_lock_init(&map->spinlock); 423 map->lock = regmap_lock_spinlock; 424 map->unlock = regmap_unlock_spinlock; 425 } else { 426 mutex_init(&map->mutex); 427 map->lock = regmap_lock_mutex; 428 map->unlock = regmap_unlock_mutex; 429 } 430 map->lock_arg = map; 431 } 432 map->format.reg_bytes = DIV_ROUND_UP(config->reg_bits, 8); 433 map->format.pad_bytes = config->pad_bits / 8; 434 map->format.val_bytes = DIV_ROUND_UP(config->val_bits, 8); 435 map->format.buf_size = DIV_ROUND_UP(config->reg_bits + 436 config->val_bits + config->pad_bits, 8); 437 map->reg_shift = config->pad_bits % 8; 438 if (config->reg_stride) 439 map->reg_stride = config->reg_stride; 440 else 441 map->reg_stride = 1; 442 map->use_single_rw = config->use_single_rw; 443 map->dev = dev; 444 map->bus = bus; 445 map->bus_context = bus_context; 446 map->max_register = config->max_register; 447 map->wr_table = config->wr_table; 448 map->rd_table = config->rd_table; 449 map->volatile_table = config->volatile_table; 450 map->precious_table = config->precious_table; 451 map->writeable_reg = config->writeable_reg; 452 map->readable_reg = config->readable_reg; 453 map->volatile_reg = config->volatile_reg; 454 map->precious_reg = config->precious_reg; 455 map->cache_type = config->cache_type; 456 map->name = config->name; 457 458 spin_lock_init(&map->async_lock); 459 INIT_LIST_HEAD(&map->async_list); 460 init_waitqueue_head(&map->async_waitq); 461 462 if (config->read_flag_mask || config->write_flag_mask) { 463 map->read_flag_mask = config->read_flag_mask; 464 map->write_flag_mask = config->write_flag_mask; 465 } else if (bus) { 466 map->read_flag_mask = bus->read_flag_mask; 467 } 468 469 if (!bus) { 470 map->reg_read = config->reg_read; 471 map->reg_write = config->reg_write; 472 473 map->defer_caching = false; 474 goto skip_format_initialization; 475 } else { 476 map->reg_read = _regmap_bus_read; 477 } 478 479 reg_endian = config->reg_format_endian; 480 if (reg_endian == REGMAP_ENDIAN_DEFAULT) 481 reg_endian = bus->reg_format_endian_default; 482 if (reg_endian == REGMAP_ENDIAN_DEFAULT) 483 reg_endian = REGMAP_ENDIAN_BIG; 484 485 val_endian = config->val_format_endian; 486 if (val_endian == REGMAP_ENDIAN_DEFAULT) 487 val_endian = bus->val_format_endian_default; 488 if (val_endian == REGMAP_ENDIAN_DEFAULT) 489 val_endian = REGMAP_ENDIAN_BIG; 490 491 switch (config->reg_bits + map->reg_shift) { 492 case 2: 493 switch (config->val_bits) { 494 case 6: 495 map->format.format_write = regmap_format_2_6_write; 496 break; 497 default: 498 goto err_map; 499 } 500 break; 501 502 case 4: 503 switch (config->val_bits) { 504 case 12: 505 map->format.format_write = regmap_format_4_12_write; 506 break; 507 default: 508 goto err_map; 509 } 510 break; 511 512 case 7: 513 switch (config->val_bits) { 514 case 9: 515 map->format.format_write = regmap_format_7_9_write; 516 break; 517 default: 518 goto err_map; 519 } 520 break; 521 522 case 10: 523 switch (config->val_bits) { 524 case 14: 525 map->format.format_write = regmap_format_10_14_write; 526 break; 527 default: 528 goto err_map; 529 } 530 break; 531 532 case 8: 533 map->format.format_reg = regmap_format_8; 534 break; 535 536 case 16: 537 switch (reg_endian) { 538 case REGMAP_ENDIAN_BIG: 539 map->format.format_reg = regmap_format_16_be; 540 break; 541 case REGMAP_ENDIAN_NATIVE: 542 map->format.format_reg = regmap_format_16_native; 543 break; 544 default: 545 goto err_map; 546 } 547 break; 548 549 case 24: 550 if (reg_endian != REGMAP_ENDIAN_BIG) 551 goto err_map; 552 map->format.format_reg = regmap_format_24; 553 break; 554 555 case 32: 556 switch (reg_endian) { 557 case REGMAP_ENDIAN_BIG: 558 map->format.format_reg = regmap_format_32_be; 559 break; 560 case REGMAP_ENDIAN_NATIVE: 561 map->format.format_reg = regmap_format_32_native; 562 break; 563 default: 564 goto err_map; 565 } 566 break; 567 568 default: 569 goto err_map; 570 } 571 572 if (val_endian == REGMAP_ENDIAN_NATIVE) 573 map->format.parse_inplace = regmap_parse_inplace_noop; 574 575 switch (config->val_bits) { 576 case 8: 577 map->format.format_val = regmap_format_8; 578 map->format.parse_val = regmap_parse_8; 579 map->format.parse_inplace = regmap_parse_inplace_noop; 580 break; 581 case 16: 582 switch (val_endian) { 583 case REGMAP_ENDIAN_BIG: 584 map->format.format_val = regmap_format_16_be; 585 map->format.parse_val = regmap_parse_16_be; 586 map->format.parse_inplace = regmap_parse_16_be_inplace; 587 break; 588 case REGMAP_ENDIAN_NATIVE: 589 map->format.format_val = regmap_format_16_native; 590 map->format.parse_val = regmap_parse_16_native; 591 break; 592 default: 593 goto err_map; 594 } 595 break; 596 case 24: 597 if (val_endian != REGMAP_ENDIAN_BIG) 598 goto err_map; 599 map->format.format_val = regmap_format_24; 600 map->format.parse_val = regmap_parse_24; 601 break; 602 case 32: 603 switch (val_endian) { 604 case REGMAP_ENDIAN_BIG: 605 map->format.format_val = regmap_format_32_be; 606 map->format.parse_val = regmap_parse_32_be; 607 map->format.parse_inplace = regmap_parse_32_be_inplace; 608 break; 609 case REGMAP_ENDIAN_NATIVE: 610 map->format.format_val = regmap_format_32_native; 611 map->format.parse_val = regmap_parse_32_native; 612 break; 613 default: 614 goto err_map; 615 } 616 break; 617 } 618 619 if (map->format.format_write) { 620 if ((reg_endian != REGMAP_ENDIAN_BIG) || 621 (val_endian != REGMAP_ENDIAN_BIG)) 622 goto err_map; 623 map->use_single_rw = true; 624 } 625 626 if (!map->format.format_write && 627 !(map->format.format_reg && map->format.format_val)) 628 goto err_map; 629 630 map->work_buf = kzalloc(map->format.buf_size, GFP_KERNEL); 631 if (map->work_buf == NULL) { 632 ret = -ENOMEM; 633 goto err_map; 634 } 635 636 if (map->format.format_write) { 637 map->defer_caching = false; 638 map->reg_write = _regmap_bus_formatted_write; 639 } else if (map->format.format_val) { 640 map->defer_caching = true; 641 map->reg_write = _regmap_bus_raw_write; 642 } 643 644 skip_format_initialization: 645 646 map->range_tree = RB_ROOT; 647 for (i = 0; i < config->num_ranges; i++) { 648 const struct regmap_range_cfg *range_cfg = &config->ranges[i]; 649 struct regmap_range_node *new; 650 651 /* Sanity check */ 652 if (range_cfg->range_max < range_cfg->range_min) { 653 dev_err(map->dev, "Invalid range %d: %d < %d\n", i, 654 range_cfg->range_max, range_cfg->range_min); 655 goto err_range; 656 } 657 658 if (range_cfg->range_max > map->max_register) { 659 dev_err(map->dev, "Invalid range %d: %d > %d\n", i, 660 range_cfg->range_max, map->max_register); 661 goto err_range; 662 } 663 664 if (range_cfg->selector_reg > map->max_register) { 665 dev_err(map->dev, 666 "Invalid range %d: selector out of map\n", i); 667 goto err_range; 668 } 669 670 if (range_cfg->window_len == 0) { 671 dev_err(map->dev, "Invalid range %d: window_len 0\n", 672 i); 673 goto err_range; 674 } 675 676 /* Make sure, that this register range has no selector 677 or data window within its boundary */ 678 for (j = 0; j < config->num_ranges; j++) { 679 unsigned sel_reg = config->ranges[j].selector_reg; 680 unsigned win_min = config->ranges[j].window_start; 681 unsigned win_max = win_min + 682 config->ranges[j].window_len - 1; 683 684 if (range_cfg->range_min <= sel_reg && 685 sel_reg <= range_cfg->range_max) { 686 dev_err(map->dev, 687 "Range %d: selector for %d in window\n", 688 i, j); 689 goto err_range; 690 } 691 692 if (!(win_max < range_cfg->range_min || 693 win_min > range_cfg->range_max)) { 694 dev_err(map->dev, 695 "Range %d: window for %d in window\n", 696 i, j); 697 goto err_range; 698 } 699 } 700 701 new = kzalloc(sizeof(*new), GFP_KERNEL); 702 if (new == NULL) { 703 ret = -ENOMEM; 704 goto err_range; 705 } 706 707 new->map = map; 708 new->name = range_cfg->name; 709 new->range_min = range_cfg->range_min; 710 new->range_max = range_cfg->range_max; 711 new->selector_reg = range_cfg->selector_reg; 712 new->selector_mask = range_cfg->selector_mask; 713 new->selector_shift = range_cfg->selector_shift; 714 new->window_start = range_cfg->window_start; 715 new->window_len = range_cfg->window_len; 716 717 if (_regmap_range_add(map, new) == false) { 718 dev_err(map->dev, "Failed to add range %d\n", i); 719 kfree(new); 720 goto err_range; 721 } 722 723 if (map->selector_work_buf == NULL) { 724 map->selector_work_buf = 725 kzalloc(map->format.buf_size, GFP_KERNEL); 726 if (map->selector_work_buf == NULL) { 727 ret = -ENOMEM; 728 goto err_range; 729 } 730 } 731 } 732 733 regmap_debugfs_init(map, config->name); 734 735 ret = regcache_init(map, config); 736 if (ret != 0) 737 goto err_range; 738 739 /* Add a devres resource for dev_get_regmap() */ 740 m = devres_alloc(dev_get_regmap_release, sizeof(*m), GFP_KERNEL); 741 if (!m) { 742 ret = -ENOMEM; 743 goto err_debugfs; 744 } 745 *m = map; 746 devres_add(dev, m); 747 748 return map; 749 750 err_debugfs: 751 regmap_debugfs_exit(map); 752 regcache_exit(map); 753 err_range: 754 regmap_range_exit(map); 755 kfree(map->work_buf); 756 err_map: 757 kfree(map); 758 err: 759 return ERR_PTR(ret); 760 } 761 EXPORT_SYMBOL_GPL(regmap_init); 762 763 static void devm_regmap_release(struct device *dev, void *res) 764 { 765 regmap_exit(*(struct regmap **)res); 766 } 767 768 /** 769 * devm_regmap_init(): Initialise managed register map 770 * 771 * @dev: Device that will be interacted with 772 * @bus: Bus-specific callbacks to use with device 773 * @bus_context: Data passed to bus-specific callbacks 774 * @config: Configuration for register map 775 * 776 * The return value will be an ERR_PTR() on error or a valid pointer 777 * to a struct regmap. This function should generally not be called 778 * directly, it should be called by bus-specific init functions. The 779 * map will be automatically freed by the device management code. 780 */ 781 struct regmap *devm_regmap_init(struct device *dev, 782 const struct regmap_bus *bus, 783 void *bus_context, 784 const struct regmap_config *config) 785 { 786 struct regmap **ptr, *regmap; 787 788 ptr = devres_alloc(devm_regmap_release, sizeof(*ptr), GFP_KERNEL); 789 if (!ptr) 790 return ERR_PTR(-ENOMEM); 791 792 regmap = regmap_init(dev, bus, bus_context, config); 793 if (!IS_ERR(regmap)) { 794 *ptr = regmap; 795 devres_add(dev, ptr); 796 } else { 797 devres_free(ptr); 798 } 799 800 return regmap; 801 } 802 EXPORT_SYMBOL_GPL(devm_regmap_init); 803 804 /** 805 * regmap_reinit_cache(): Reinitialise the current register cache 806 * 807 * @map: Register map to operate on. 808 * @config: New configuration. Only the cache data will be used. 809 * 810 * Discard any existing register cache for the map and initialize a 811 * new cache. This can be used to restore the cache to defaults or to 812 * update the cache configuration to reflect runtime discovery of the 813 * hardware. 814 * 815 * No explicit locking is done here, the user needs to ensure that 816 * this function will not race with other calls to regmap. 817 */ 818 int regmap_reinit_cache(struct regmap *map, const struct regmap_config *config) 819 { 820 regcache_exit(map); 821 regmap_debugfs_exit(map); 822 823 map->max_register = config->max_register; 824 map->writeable_reg = config->writeable_reg; 825 map->readable_reg = config->readable_reg; 826 map->volatile_reg = config->volatile_reg; 827 map->precious_reg = config->precious_reg; 828 map->cache_type = config->cache_type; 829 830 regmap_debugfs_init(map, config->name); 831 832 map->cache_bypass = false; 833 map->cache_only = false; 834 835 return regcache_init(map, config); 836 } 837 EXPORT_SYMBOL_GPL(regmap_reinit_cache); 838 839 /** 840 * regmap_exit(): Free a previously allocated register map 841 */ 842 void regmap_exit(struct regmap *map) 843 { 844 regcache_exit(map); 845 regmap_debugfs_exit(map); 846 regmap_range_exit(map); 847 if (map->bus && map->bus->free_context) 848 map->bus->free_context(map->bus_context); 849 kfree(map->work_buf); 850 kfree(map); 851 } 852 EXPORT_SYMBOL_GPL(regmap_exit); 853 854 static int dev_get_regmap_match(struct device *dev, void *res, void *data) 855 { 856 struct regmap **r = res; 857 if (!r || !*r) { 858 WARN_ON(!r || !*r); 859 return 0; 860 } 861 862 /* If the user didn't specify a name match any */ 863 if (data) 864 return (*r)->name == data; 865 else 866 return 1; 867 } 868 869 /** 870 * dev_get_regmap(): Obtain the regmap (if any) for a device 871 * 872 * @dev: Device to retrieve the map for 873 * @name: Optional name for the register map, usually NULL. 874 * 875 * Returns the regmap for the device if one is present, or NULL. If 876 * name is specified then it must match the name specified when 877 * registering the device, if it is NULL then the first regmap found 878 * will be used. Devices with multiple register maps are very rare, 879 * generic code should normally not need to specify a name. 880 */ 881 struct regmap *dev_get_regmap(struct device *dev, const char *name) 882 { 883 struct regmap **r = devres_find(dev, dev_get_regmap_release, 884 dev_get_regmap_match, (void *)name); 885 886 if (!r) 887 return NULL; 888 return *r; 889 } 890 EXPORT_SYMBOL_GPL(dev_get_regmap); 891 892 static int _regmap_select_page(struct regmap *map, unsigned int *reg, 893 struct regmap_range_node *range, 894 unsigned int val_num) 895 { 896 void *orig_work_buf; 897 unsigned int win_offset; 898 unsigned int win_page; 899 bool page_chg; 900 int ret; 901 902 win_offset = (*reg - range->range_min) % range->window_len; 903 win_page = (*reg - range->range_min) / range->window_len; 904 905 if (val_num > 1) { 906 /* Bulk write shouldn't cross range boundary */ 907 if (*reg + val_num - 1 > range->range_max) 908 return -EINVAL; 909 910 /* ... or single page boundary */ 911 if (val_num > range->window_len - win_offset) 912 return -EINVAL; 913 } 914 915 /* It is possible to have selector register inside data window. 916 In that case, selector register is located on every page and 917 it needs no page switching, when accessed alone. */ 918 if (val_num > 1 || 919 range->window_start + win_offset != range->selector_reg) { 920 /* Use separate work_buf during page switching */ 921 orig_work_buf = map->work_buf; 922 map->work_buf = map->selector_work_buf; 923 924 ret = _regmap_update_bits(map, range->selector_reg, 925 range->selector_mask, 926 win_page << range->selector_shift, 927 &page_chg); 928 929 map->work_buf = orig_work_buf; 930 931 if (ret != 0) 932 return ret; 933 } 934 935 *reg = range->window_start + win_offset; 936 937 return 0; 938 } 939 940 int _regmap_raw_write(struct regmap *map, unsigned int reg, 941 const void *val, size_t val_len, bool async) 942 { 943 struct regmap_range_node *range; 944 unsigned long flags; 945 u8 *u8 = map->work_buf; 946 void *work_val = map->work_buf + map->format.reg_bytes + 947 map->format.pad_bytes; 948 void *buf; 949 int ret = -ENOTSUPP; 950 size_t len; 951 int i; 952 953 WARN_ON(!map->bus); 954 955 /* Check for unwritable registers before we start */ 956 if (map->writeable_reg) 957 for (i = 0; i < val_len / map->format.val_bytes; i++) 958 if (!map->writeable_reg(map->dev, 959 reg + (i * map->reg_stride))) 960 return -EINVAL; 961 962 if (!map->cache_bypass && map->format.parse_val) { 963 unsigned int ival; 964 int val_bytes = map->format.val_bytes; 965 for (i = 0; i < val_len / val_bytes; i++) { 966 ival = map->format.parse_val(val + (i * val_bytes)); 967 ret = regcache_write(map, reg + (i * map->reg_stride), 968 ival); 969 if (ret) { 970 dev_err(map->dev, 971 "Error in caching of register: %x ret: %d\n", 972 reg + i, ret); 973 return ret; 974 } 975 } 976 if (map->cache_only) { 977 map->cache_dirty = true; 978 return 0; 979 } 980 } 981 982 range = _regmap_range_lookup(map, reg); 983 if (range) { 984 int val_num = val_len / map->format.val_bytes; 985 int win_offset = (reg - range->range_min) % range->window_len; 986 int win_residue = range->window_len - win_offset; 987 988 /* If the write goes beyond the end of the window split it */ 989 while (val_num > win_residue) { 990 dev_dbg(map->dev, "Writing window %d/%zu\n", 991 win_residue, val_len / map->format.val_bytes); 992 ret = _regmap_raw_write(map, reg, val, win_residue * 993 map->format.val_bytes, async); 994 if (ret != 0) 995 return ret; 996 997 reg += win_residue; 998 val_num -= win_residue; 999 val += win_residue * map->format.val_bytes; 1000 val_len -= win_residue * map->format.val_bytes; 1001 1002 win_offset = (reg - range->range_min) % 1003 range->window_len; 1004 win_residue = range->window_len - win_offset; 1005 } 1006 1007 ret = _regmap_select_page(map, ®, range, val_num); 1008 if (ret != 0) 1009 return ret; 1010 } 1011 1012 map->format.format_reg(map->work_buf, reg, map->reg_shift); 1013 1014 u8[0] |= map->write_flag_mask; 1015 1016 if (async && map->bus->async_write) { 1017 struct regmap_async *async = map->bus->async_alloc(); 1018 if (!async) 1019 return -ENOMEM; 1020 1021 trace_regmap_async_write_start(map->dev, reg, val_len); 1022 1023 async->work_buf = kzalloc(map->format.buf_size, 1024 GFP_KERNEL | GFP_DMA); 1025 if (!async->work_buf) { 1026 kfree(async); 1027 return -ENOMEM; 1028 } 1029 1030 INIT_WORK(&async->cleanup, async_cleanup); 1031 async->map = map; 1032 1033 /* If the caller supplied the value we can use it safely. */ 1034 memcpy(async->work_buf, map->work_buf, map->format.pad_bytes + 1035 map->format.reg_bytes + map->format.val_bytes); 1036 if (val == work_val) 1037 val = async->work_buf + map->format.pad_bytes + 1038 map->format.reg_bytes; 1039 1040 spin_lock_irqsave(&map->async_lock, flags); 1041 list_add_tail(&async->list, &map->async_list); 1042 spin_unlock_irqrestore(&map->async_lock, flags); 1043 1044 ret = map->bus->async_write(map->bus_context, async->work_buf, 1045 map->format.reg_bytes + 1046 map->format.pad_bytes, 1047 val, val_len, async); 1048 1049 if (ret != 0) { 1050 dev_err(map->dev, "Failed to schedule write: %d\n", 1051 ret); 1052 1053 spin_lock_irqsave(&map->async_lock, flags); 1054 list_del(&async->list); 1055 spin_unlock_irqrestore(&map->async_lock, flags); 1056 1057 kfree(async->work_buf); 1058 kfree(async); 1059 } 1060 1061 return ret; 1062 } 1063 1064 trace_regmap_hw_write_start(map->dev, reg, 1065 val_len / map->format.val_bytes); 1066 1067 /* If we're doing a single register write we can probably just 1068 * send the work_buf directly, otherwise try to do a gather 1069 * write. 1070 */ 1071 if (val == work_val) 1072 ret = map->bus->write(map->bus_context, map->work_buf, 1073 map->format.reg_bytes + 1074 map->format.pad_bytes + 1075 val_len); 1076 else if (map->bus->gather_write) 1077 ret = map->bus->gather_write(map->bus_context, map->work_buf, 1078 map->format.reg_bytes + 1079 map->format.pad_bytes, 1080 val, val_len); 1081 1082 /* If that didn't work fall back on linearising by hand. */ 1083 if (ret == -ENOTSUPP) { 1084 len = map->format.reg_bytes + map->format.pad_bytes + val_len; 1085 buf = kzalloc(len, GFP_KERNEL); 1086 if (!buf) 1087 return -ENOMEM; 1088 1089 memcpy(buf, map->work_buf, map->format.reg_bytes); 1090 memcpy(buf + map->format.reg_bytes + map->format.pad_bytes, 1091 val, val_len); 1092 ret = map->bus->write(map->bus_context, buf, len); 1093 1094 kfree(buf); 1095 } 1096 1097 trace_regmap_hw_write_done(map->dev, reg, 1098 val_len / map->format.val_bytes); 1099 1100 return ret; 1101 } 1102 1103 /** 1104 * regmap_can_raw_write - Test if regmap_raw_write() is supported 1105 * 1106 * @map: Map to check. 1107 */ 1108 bool regmap_can_raw_write(struct regmap *map) 1109 { 1110 return map->bus && map->format.format_val && map->format.format_reg; 1111 } 1112 EXPORT_SYMBOL_GPL(regmap_can_raw_write); 1113 1114 static int _regmap_bus_formatted_write(void *context, unsigned int reg, 1115 unsigned int val) 1116 { 1117 int ret; 1118 struct regmap_range_node *range; 1119 struct regmap *map = context; 1120 1121 WARN_ON(!map->bus || !map->format.format_write); 1122 1123 range = _regmap_range_lookup(map, reg); 1124 if (range) { 1125 ret = _regmap_select_page(map, ®, range, 1); 1126 if (ret != 0) 1127 return ret; 1128 } 1129 1130 map->format.format_write(map, reg, val); 1131 1132 trace_regmap_hw_write_start(map->dev, reg, 1); 1133 1134 ret = map->bus->write(map->bus_context, map->work_buf, 1135 map->format.buf_size); 1136 1137 trace_regmap_hw_write_done(map->dev, reg, 1); 1138 1139 return ret; 1140 } 1141 1142 static int _regmap_bus_raw_write(void *context, unsigned int reg, 1143 unsigned int val) 1144 { 1145 struct regmap *map = context; 1146 1147 WARN_ON(!map->bus || !map->format.format_val); 1148 1149 map->format.format_val(map->work_buf + map->format.reg_bytes 1150 + map->format.pad_bytes, val, 0); 1151 return _regmap_raw_write(map, reg, 1152 map->work_buf + 1153 map->format.reg_bytes + 1154 map->format.pad_bytes, 1155 map->format.val_bytes, false); 1156 } 1157 1158 static inline void *_regmap_map_get_context(struct regmap *map) 1159 { 1160 return (map->bus) ? map : map->bus_context; 1161 } 1162 1163 int _regmap_write(struct regmap *map, unsigned int reg, 1164 unsigned int val) 1165 { 1166 int ret; 1167 void *context = _regmap_map_get_context(map); 1168 1169 if (!map->cache_bypass && !map->defer_caching) { 1170 ret = regcache_write(map, reg, val); 1171 if (ret != 0) 1172 return ret; 1173 if (map->cache_only) { 1174 map->cache_dirty = true; 1175 return 0; 1176 } 1177 } 1178 1179 #ifdef LOG_DEVICE 1180 if (strcmp(dev_name(map->dev), LOG_DEVICE) == 0) 1181 dev_info(map->dev, "%x <= %x\n", reg, val); 1182 #endif 1183 1184 trace_regmap_reg_write(map->dev, reg, val); 1185 1186 return map->reg_write(context, reg, val); 1187 } 1188 1189 /** 1190 * regmap_write(): Write a value to a single register 1191 * 1192 * @map: Register map to write to 1193 * @reg: Register to write to 1194 * @val: Value to be written 1195 * 1196 * A value of zero will be returned on success, a negative errno will 1197 * be returned in error cases. 1198 */ 1199 int regmap_write(struct regmap *map, unsigned int reg, unsigned int val) 1200 { 1201 int ret; 1202 1203 if (reg % map->reg_stride) 1204 return -EINVAL; 1205 1206 map->lock(map->lock_arg); 1207 1208 ret = _regmap_write(map, reg, val); 1209 1210 map->unlock(map->lock_arg); 1211 1212 return ret; 1213 } 1214 EXPORT_SYMBOL_GPL(regmap_write); 1215 1216 /** 1217 * regmap_raw_write(): Write raw values to one or more registers 1218 * 1219 * @map: Register map to write to 1220 * @reg: Initial register to write to 1221 * @val: Block of data to be written, laid out for direct transmission to the 1222 * device 1223 * @val_len: Length of data pointed to by val. 1224 * 1225 * This function is intended to be used for things like firmware 1226 * download where a large block of data needs to be transferred to the 1227 * device. No formatting will be done on the data provided. 1228 * 1229 * A value of zero will be returned on success, a negative errno will 1230 * be returned in error cases. 1231 */ 1232 int regmap_raw_write(struct regmap *map, unsigned int reg, 1233 const void *val, size_t val_len) 1234 { 1235 int ret; 1236 1237 if (!regmap_can_raw_write(map)) 1238 return -EINVAL; 1239 if (val_len % map->format.val_bytes) 1240 return -EINVAL; 1241 1242 map->lock(map->lock_arg); 1243 1244 ret = _regmap_raw_write(map, reg, val, val_len, false); 1245 1246 map->unlock(map->lock_arg); 1247 1248 return ret; 1249 } 1250 EXPORT_SYMBOL_GPL(regmap_raw_write); 1251 1252 /* 1253 * regmap_bulk_write(): Write multiple registers to the device 1254 * 1255 * @map: Register map to write to 1256 * @reg: First register to be write from 1257 * @val: Block of data to be written, in native register size for device 1258 * @val_count: Number of registers to write 1259 * 1260 * This function is intended to be used for writing a large block of 1261 * data to the device either in single transfer or multiple transfer. 1262 * 1263 * A value of zero will be returned on success, a negative errno will 1264 * be returned in error cases. 1265 */ 1266 int regmap_bulk_write(struct regmap *map, unsigned int reg, const void *val, 1267 size_t val_count) 1268 { 1269 int ret = 0, i; 1270 size_t val_bytes = map->format.val_bytes; 1271 void *wval; 1272 1273 if (!map->bus) 1274 return -EINVAL; 1275 if (!map->format.parse_inplace) 1276 return -EINVAL; 1277 if (reg % map->reg_stride) 1278 return -EINVAL; 1279 1280 map->lock(map->lock_arg); 1281 1282 /* No formatting is require if val_byte is 1 */ 1283 if (val_bytes == 1) { 1284 wval = (void *)val; 1285 } else { 1286 wval = kmemdup(val, val_count * val_bytes, GFP_KERNEL); 1287 if (!wval) { 1288 ret = -ENOMEM; 1289 dev_err(map->dev, "Error in memory allocation\n"); 1290 goto out; 1291 } 1292 for (i = 0; i < val_count * val_bytes; i += val_bytes) 1293 map->format.parse_inplace(wval + i); 1294 } 1295 /* 1296 * Some devices does not support bulk write, for 1297 * them we have a series of single write operations. 1298 */ 1299 if (map->use_single_rw) { 1300 for (i = 0; i < val_count; i++) { 1301 ret = regmap_raw_write(map, 1302 reg + (i * map->reg_stride), 1303 val + (i * val_bytes), 1304 val_bytes); 1305 if (ret != 0) 1306 return ret; 1307 } 1308 } else { 1309 ret = _regmap_raw_write(map, reg, wval, val_bytes * val_count, 1310 false); 1311 } 1312 1313 if (val_bytes != 1) 1314 kfree(wval); 1315 1316 out: 1317 map->unlock(map->lock_arg); 1318 return ret; 1319 } 1320 EXPORT_SYMBOL_GPL(regmap_bulk_write); 1321 1322 /** 1323 * regmap_raw_write_async(): Write raw values to one or more registers 1324 * asynchronously 1325 * 1326 * @map: Register map to write to 1327 * @reg: Initial register to write to 1328 * @val: Block of data to be written, laid out for direct transmission to the 1329 * device. Must be valid until regmap_async_complete() is called. 1330 * @val_len: Length of data pointed to by val. 1331 * 1332 * This function is intended to be used for things like firmware 1333 * download where a large block of data needs to be transferred to the 1334 * device. No formatting will be done on the data provided. 1335 * 1336 * If supported by the underlying bus the write will be scheduled 1337 * asynchronously, helping maximise I/O speed on higher speed buses 1338 * like SPI. regmap_async_complete() can be called to ensure that all 1339 * asynchrnous writes have been completed. 1340 * 1341 * A value of zero will be returned on success, a negative errno will 1342 * be returned in error cases. 1343 */ 1344 int regmap_raw_write_async(struct regmap *map, unsigned int reg, 1345 const void *val, size_t val_len) 1346 { 1347 int ret; 1348 1349 if (val_len % map->format.val_bytes) 1350 return -EINVAL; 1351 if (reg % map->reg_stride) 1352 return -EINVAL; 1353 1354 map->lock(map->lock_arg); 1355 1356 ret = _regmap_raw_write(map, reg, val, val_len, true); 1357 1358 map->unlock(map->lock_arg); 1359 1360 return ret; 1361 } 1362 EXPORT_SYMBOL_GPL(regmap_raw_write_async); 1363 1364 static int _regmap_raw_read(struct regmap *map, unsigned int reg, void *val, 1365 unsigned int val_len) 1366 { 1367 struct regmap_range_node *range; 1368 u8 *u8 = map->work_buf; 1369 int ret; 1370 1371 WARN_ON(!map->bus); 1372 1373 range = _regmap_range_lookup(map, reg); 1374 if (range) { 1375 ret = _regmap_select_page(map, ®, range, 1376 val_len / map->format.val_bytes); 1377 if (ret != 0) 1378 return ret; 1379 } 1380 1381 map->format.format_reg(map->work_buf, reg, map->reg_shift); 1382 1383 /* 1384 * Some buses or devices flag reads by setting the high bits in the 1385 * register addresss; since it's always the high bits for all 1386 * current formats we can do this here rather than in 1387 * formatting. This may break if we get interesting formats. 1388 */ 1389 u8[0] |= map->read_flag_mask; 1390 1391 trace_regmap_hw_read_start(map->dev, reg, 1392 val_len / map->format.val_bytes); 1393 1394 ret = map->bus->read(map->bus_context, map->work_buf, 1395 map->format.reg_bytes + map->format.pad_bytes, 1396 val, val_len); 1397 1398 trace_regmap_hw_read_done(map->dev, reg, 1399 val_len / map->format.val_bytes); 1400 1401 return ret; 1402 } 1403 1404 static int _regmap_bus_read(void *context, unsigned int reg, 1405 unsigned int *val) 1406 { 1407 int ret; 1408 struct regmap *map = context; 1409 1410 if (!map->format.parse_val) 1411 return -EINVAL; 1412 1413 ret = _regmap_raw_read(map, reg, map->work_buf, map->format.val_bytes); 1414 if (ret == 0) 1415 *val = map->format.parse_val(map->work_buf); 1416 1417 return ret; 1418 } 1419 1420 static int _regmap_read(struct regmap *map, unsigned int reg, 1421 unsigned int *val) 1422 { 1423 int ret; 1424 void *context = _regmap_map_get_context(map); 1425 1426 WARN_ON(!map->reg_read); 1427 1428 if (!map->cache_bypass) { 1429 ret = regcache_read(map, reg, val); 1430 if (ret == 0) 1431 return 0; 1432 } 1433 1434 if (map->cache_only) 1435 return -EBUSY; 1436 1437 ret = map->reg_read(context, reg, val); 1438 if (ret == 0) { 1439 #ifdef LOG_DEVICE 1440 if (strcmp(dev_name(map->dev), LOG_DEVICE) == 0) 1441 dev_info(map->dev, "%x => %x\n", reg, *val); 1442 #endif 1443 1444 trace_regmap_reg_read(map->dev, reg, *val); 1445 1446 if (!map->cache_bypass) 1447 regcache_write(map, reg, *val); 1448 } 1449 1450 return ret; 1451 } 1452 1453 /** 1454 * regmap_read(): Read a value from a single register 1455 * 1456 * @map: Register map to write to 1457 * @reg: Register to be read from 1458 * @val: Pointer to store read value 1459 * 1460 * A value of zero will be returned on success, a negative errno will 1461 * be returned in error cases. 1462 */ 1463 int regmap_read(struct regmap *map, unsigned int reg, unsigned int *val) 1464 { 1465 int ret; 1466 1467 if (reg % map->reg_stride) 1468 return -EINVAL; 1469 1470 map->lock(map->lock_arg); 1471 1472 ret = _regmap_read(map, reg, val); 1473 1474 map->unlock(map->lock_arg); 1475 1476 return ret; 1477 } 1478 EXPORT_SYMBOL_GPL(regmap_read); 1479 1480 /** 1481 * regmap_raw_read(): Read raw data from the device 1482 * 1483 * @map: Register map to write to 1484 * @reg: First register to be read from 1485 * @val: Pointer to store read value 1486 * @val_len: Size of data to read 1487 * 1488 * A value of zero will be returned on success, a negative errno will 1489 * be returned in error cases. 1490 */ 1491 int regmap_raw_read(struct regmap *map, unsigned int reg, void *val, 1492 size_t val_len) 1493 { 1494 size_t val_bytes = map->format.val_bytes; 1495 size_t val_count = val_len / val_bytes; 1496 unsigned int v; 1497 int ret, i; 1498 1499 if (!map->bus) 1500 return -EINVAL; 1501 if (val_len % map->format.val_bytes) 1502 return -EINVAL; 1503 if (reg % map->reg_stride) 1504 return -EINVAL; 1505 1506 map->lock(map->lock_arg); 1507 1508 if (regmap_volatile_range(map, reg, val_count) || map->cache_bypass || 1509 map->cache_type == REGCACHE_NONE) { 1510 /* Physical block read if there's no cache involved */ 1511 ret = _regmap_raw_read(map, reg, val, val_len); 1512 1513 } else { 1514 /* Otherwise go word by word for the cache; should be low 1515 * cost as we expect to hit the cache. 1516 */ 1517 for (i = 0; i < val_count; i++) { 1518 ret = _regmap_read(map, reg + (i * map->reg_stride), 1519 &v); 1520 if (ret != 0) 1521 goto out; 1522 1523 map->format.format_val(val + (i * val_bytes), v, 0); 1524 } 1525 } 1526 1527 out: 1528 map->unlock(map->lock_arg); 1529 1530 return ret; 1531 } 1532 EXPORT_SYMBOL_GPL(regmap_raw_read); 1533 1534 /** 1535 * regmap_bulk_read(): Read multiple registers from the device 1536 * 1537 * @map: Register map to write to 1538 * @reg: First register to be read from 1539 * @val: Pointer to store read value, in native register size for device 1540 * @val_count: Number of registers to read 1541 * 1542 * A value of zero will be returned on success, a negative errno will 1543 * be returned in error cases. 1544 */ 1545 int regmap_bulk_read(struct regmap *map, unsigned int reg, void *val, 1546 size_t val_count) 1547 { 1548 int ret, i; 1549 size_t val_bytes = map->format.val_bytes; 1550 bool vol = regmap_volatile_range(map, reg, val_count); 1551 1552 if (!map->bus) 1553 return -EINVAL; 1554 if (!map->format.parse_inplace) 1555 return -EINVAL; 1556 if (reg % map->reg_stride) 1557 return -EINVAL; 1558 1559 if (vol || map->cache_type == REGCACHE_NONE) { 1560 /* 1561 * Some devices does not support bulk read, for 1562 * them we have a series of single read operations. 1563 */ 1564 if (map->use_single_rw) { 1565 for (i = 0; i < val_count; i++) { 1566 ret = regmap_raw_read(map, 1567 reg + (i * map->reg_stride), 1568 val + (i * val_bytes), 1569 val_bytes); 1570 if (ret != 0) 1571 return ret; 1572 } 1573 } else { 1574 ret = regmap_raw_read(map, reg, val, 1575 val_bytes * val_count); 1576 if (ret != 0) 1577 return ret; 1578 } 1579 1580 for (i = 0; i < val_count * val_bytes; i += val_bytes) 1581 map->format.parse_inplace(val + i); 1582 } else { 1583 for (i = 0; i < val_count; i++) { 1584 unsigned int ival; 1585 ret = regmap_read(map, reg + (i * map->reg_stride), 1586 &ival); 1587 if (ret != 0) 1588 return ret; 1589 memcpy(val + (i * val_bytes), &ival, val_bytes); 1590 } 1591 } 1592 1593 return 0; 1594 } 1595 EXPORT_SYMBOL_GPL(regmap_bulk_read); 1596 1597 static int _regmap_update_bits(struct regmap *map, unsigned int reg, 1598 unsigned int mask, unsigned int val, 1599 bool *change) 1600 { 1601 int ret; 1602 unsigned int tmp, orig; 1603 1604 ret = _regmap_read(map, reg, &orig); 1605 if (ret != 0) 1606 return ret; 1607 1608 tmp = orig & ~mask; 1609 tmp |= val & mask; 1610 1611 if (tmp != orig) { 1612 ret = _regmap_write(map, reg, tmp); 1613 *change = true; 1614 } else { 1615 *change = false; 1616 } 1617 1618 return ret; 1619 } 1620 1621 /** 1622 * regmap_update_bits: Perform a read/modify/write cycle on the register map 1623 * 1624 * @map: Register map to update 1625 * @reg: Register to update 1626 * @mask: Bitmask to change 1627 * @val: New value for bitmask 1628 * 1629 * Returns zero for success, a negative number on error. 1630 */ 1631 int regmap_update_bits(struct regmap *map, unsigned int reg, 1632 unsigned int mask, unsigned int val) 1633 { 1634 bool change; 1635 int ret; 1636 1637 map->lock(map->lock_arg); 1638 ret = _regmap_update_bits(map, reg, mask, val, &change); 1639 map->unlock(map->lock_arg); 1640 1641 return ret; 1642 } 1643 EXPORT_SYMBOL_GPL(regmap_update_bits); 1644 1645 /** 1646 * regmap_update_bits_check: Perform a read/modify/write cycle on the 1647 * register map and report if updated 1648 * 1649 * @map: Register map to update 1650 * @reg: Register to update 1651 * @mask: Bitmask to change 1652 * @val: New value for bitmask 1653 * @change: Boolean indicating if a write was done 1654 * 1655 * Returns zero for success, a negative number on error. 1656 */ 1657 int regmap_update_bits_check(struct regmap *map, unsigned int reg, 1658 unsigned int mask, unsigned int val, 1659 bool *change) 1660 { 1661 int ret; 1662 1663 map->lock(map->lock_arg); 1664 ret = _regmap_update_bits(map, reg, mask, val, change); 1665 map->unlock(map->lock_arg); 1666 return ret; 1667 } 1668 EXPORT_SYMBOL_GPL(regmap_update_bits_check); 1669 1670 void regmap_async_complete_cb(struct regmap_async *async, int ret) 1671 { 1672 struct regmap *map = async->map; 1673 bool wake; 1674 1675 trace_regmap_async_io_complete(map->dev); 1676 1677 spin_lock(&map->async_lock); 1678 1679 list_del(&async->list); 1680 wake = list_empty(&map->async_list); 1681 1682 if (ret != 0) 1683 map->async_ret = ret; 1684 1685 spin_unlock(&map->async_lock); 1686 1687 schedule_work(&async->cleanup); 1688 1689 if (wake) 1690 wake_up(&map->async_waitq); 1691 } 1692 EXPORT_SYMBOL_GPL(regmap_async_complete_cb); 1693 1694 static int regmap_async_is_done(struct regmap *map) 1695 { 1696 unsigned long flags; 1697 int ret; 1698 1699 spin_lock_irqsave(&map->async_lock, flags); 1700 ret = list_empty(&map->async_list); 1701 spin_unlock_irqrestore(&map->async_lock, flags); 1702 1703 return ret; 1704 } 1705 1706 /** 1707 * regmap_async_complete: Ensure all asynchronous I/O has completed. 1708 * 1709 * @map: Map to operate on. 1710 * 1711 * Blocks until any pending asynchronous I/O has completed. Returns 1712 * an error code for any failed I/O operations. 1713 */ 1714 int regmap_async_complete(struct regmap *map) 1715 { 1716 unsigned long flags; 1717 int ret; 1718 1719 /* Nothing to do with no async support */ 1720 if (!map->bus->async_write) 1721 return 0; 1722 1723 trace_regmap_async_complete_start(map->dev); 1724 1725 wait_event(map->async_waitq, regmap_async_is_done(map)); 1726 1727 spin_lock_irqsave(&map->async_lock, flags); 1728 ret = map->async_ret; 1729 map->async_ret = 0; 1730 spin_unlock_irqrestore(&map->async_lock, flags); 1731 1732 trace_regmap_async_complete_done(map->dev); 1733 1734 return ret; 1735 } 1736 EXPORT_SYMBOL_GPL(regmap_async_complete); 1737 1738 /** 1739 * regmap_register_patch: Register and apply register updates to be applied 1740 * on device initialistion 1741 * 1742 * @map: Register map to apply updates to. 1743 * @regs: Values to update. 1744 * @num_regs: Number of entries in regs. 1745 * 1746 * Register a set of register updates to be applied to the device 1747 * whenever the device registers are synchronised with the cache and 1748 * apply them immediately. Typically this is used to apply 1749 * corrections to be applied to the device defaults on startup, such 1750 * as the updates some vendors provide to undocumented registers. 1751 */ 1752 int regmap_register_patch(struct regmap *map, const struct reg_default *regs, 1753 int num_regs) 1754 { 1755 int i, ret; 1756 bool bypass; 1757 1758 /* If needed the implementation can be extended to support this */ 1759 if (map->patch) 1760 return -EBUSY; 1761 1762 map->lock(map->lock_arg); 1763 1764 bypass = map->cache_bypass; 1765 1766 map->cache_bypass = true; 1767 1768 /* Write out first; it's useful to apply even if we fail later. */ 1769 for (i = 0; i < num_regs; i++) { 1770 ret = _regmap_write(map, regs[i].reg, regs[i].def); 1771 if (ret != 0) { 1772 dev_err(map->dev, "Failed to write %x = %x: %d\n", 1773 regs[i].reg, regs[i].def, ret); 1774 goto out; 1775 } 1776 } 1777 1778 map->patch = kcalloc(num_regs, sizeof(struct reg_default), GFP_KERNEL); 1779 if (map->patch != NULL) { 1780 memcpy(map->patch, regs, 1781 num_regs * sizeof(struct reg_default)); 1782 map->patch_regs = num_regs; 1783 } else { 1784 ret = -ENOMEM; 1785 } 1786 1787 out: 1788 map->cache_bypass = bypass; 1789 1790 map->unlock(map->lock_arg); 1791 1792 return ret; 1793 } 1794 EXPORT_SYMBOL_GPL(regmap_register_patch); 1795 1796 /* 1797 * regmap_get_val_bytes(): Report the size of a register value 1798 * 1799 * Report the size of a register value, mainly intended to for use by 1800 * generic infrastructure built on top of regmap. 1801 */ 1802 int regmap_get_val_bytes(struct regmap *map) 1803 { 1804 if (map->format.format_write) 1805 return -EINVAL; 1806 1807 return map->format.val_bytes; 1808 } 1809 EXPORT_SYMBOL_GPL(regmap_get_val_bytes); 1810 1811 static int __init regmap_initcall(void) 1812 { 1813 regmap_debugfs_initcall(); 1814 1815 return 0; 1816 } 1817 postcore_initcall(regmap_initcall); 1818