regmap.c 34.6 KB
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/*
 * Register map access API
 *
 * Copyright 2011 Wolfson Microelectronics plc
 *
 * Author: Mark Brown <broonie@opensource.wolfsonmicro.com>
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 */

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#include <linux/device.h>
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#include <linux/slab.h>
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#include <linux/export.h>
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#include <linux/mutex.h>
#include <linux/err.h>
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#include <linux/rbtree.h>
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#define CREATE_TRACE_POINTS
#include <trace/events/regmap.h>

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#include "internal.h"
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/*
 * Sometimes for failures during very early init the trace
 * infrastructure isn't available early enough to be used.  For this
 * sort of problem defining LOG_DEVICE will add printks for basic
 * register I/O on a specific device.
 */
#undef LOG_DEVICE

static int _regmap_update_bits(struct regmap *map, unsigned int reg,
			       unsigned int mask, unsigned int val,
			       bool *change);

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bool regmap_writeable(struct regmap *map, unsigned int reg)
{
	if (map->max_register && reg > map->max_register)
		return false;

	if (map->writeable_reg)
		return map->writeable_reg(map->dev, reg);

	return true;
}

bool regmap_readable(struct regmap *map, unsigned int reg)
{
	if (map->max_register && reg > map->max_register)
		return false;

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	if (map->format.format_write)
		return false;

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	if (map->readable_reg)
		return map->readable_reg(map->dev, reg);

	return true;
}

bool regmap_volatile(struct regmap *map, unsigned int reg)
{
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	if (!regmap_readable(map, reg))
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		return false;

	if (map->volatile_reg)
		return map->volatile_reg(map->dev, reg);

	return true;
}

bool regmap_precious(struct regmap *map, unsigned int reg)
{
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	if (!regmap_readable(map, reg))
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		return false;

	if (map->precious_reg)
		return map->precious_reg(map->dev, reg);

	return false;
}

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static bool regmap_volatile_range(struct regmap *map, unsigned int reg,
	unsigned int num)
{
	unsigned int i;

	for (i = 0; i < num; i++)
		if (!regmap_volatile(map, reg + i))
			return false;

	return true;
}

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static void regmap_format_2_6_write(struct regmap *map,
				     unsigned int reg, unsigned int val)
{
	u8 *out = map->work_buf;

	*out = (reg << 6) | val;
}

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static void regmap_format_4_12_write(struct regmap *map,
				     unsigned int reg, unsigned int val)
{
	__be16 *out = map->work_buf;
	*out = cpu_to_be16((reg << 12) | val);
}

static void regmap_format_7_9_write(struct regmap *map,
				    unsigned int reg, unsigned int val)
{
	__be16 *out = map->work_buf;
	*out = cpu_to_be16((reg << 9) | val);
}

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static void regmap_format_10_14_write(struct regmap *map,
				    unsigned int reg, unsigned int val)
{
	u8 *out = map->work_buf;

	out[2] = val;
	out[1] = (val >> 8) | (reg << 6);
	out[0] = reg >> 2;
}

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static void regmap_format_8(void *buf, unsigned int val, unsigned int shift)
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{
	u8 *b = buf;

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	b[0] = val << shift;
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}

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static void regmap_format_16_be(void *buf, unsigned int val, unsigned int shift)
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{
	__be16 *b = buf;

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	b[0] = cpu_to_be16(val << shift);
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}

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static void regmap_format_16_native(void *buf, unsigned int val,
				    unsigned int shift)
{
	*(u16 *)buf = val << shift;
}

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static void regmap_format_24(void *buf, unsigned int val, unsigned int shift)
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{
	u8 *b = buf;

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	val <<= shift;

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	b[0] = val >> 16;
	b[1] = val >> 8;
	b[2] = val;
}

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static void regmap_format_32_be(void *buf, unsigned int val, unsigned int shift)
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{
	__be32 *b = buf;

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	b[0] = cpu_to_be32(val << shift);
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}

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static void regmap_format_32_native(void *buf, unsigned int val,
				    unsigned int shift)
{
	*(u32 *)buf = val << shift;
}

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static unsigned int regmap_parse_8(void *buf)
{
	u8 *b = buf;

	return b[0];
}

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static unsigned int regmap_parse_16_be(void *buf)
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{
	__be16 *b = buf;

	b[0] = be16_to_cpu(b[0]);

	return b[0];
}

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static unsigned int regmap_parse_16_native(void *buf)
{
	return *(u16 *)buf;
}

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static unsigned int regmap_parse_24(void *buf)
{
	u8 *b = buf;
	unsigned int ret = b[2];
	ret |= ((unsigned int)b[1]) << 8;
	ret |= ((unsigned int)b[0]) << 16;

	return ret;
}

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static unsigned int regmap_parse_32_be(void *buf)
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{
	__be32 *b = buf;

	b[0] = be32_to_cpu(b[0]);

	return b[0];
}

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static unsigned int regmap_parse_32_native(void *buf)
{
	return *(u32 *)buf;
}

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static void regmap_lock_mutex(struct regmap *map)
{
	mutex_lock(&map->mutex);
}

static void regmap_unlock_mutex(struct regmap *map)
{
	mutex_unlock(&map->mutex);
}

static void regmap_lock_spinlock(struct regmap *map)
{
	spin_lock(&map->spinlock);
}

static void regmap_unlock_spinlock(struct regmap *map)
{
	spin_unlock(&map->spinlock);
}

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static void dev_get_regmap_release(struct device *dev, void *res)
{
	/*
	 * We don't actually have anything to do here; the goal here
	 * is not to manage the regmap but to provide a simple way to
	 * get the regmap back given a struct device.
	 */
}

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static bool _regmap_range_add(struct regmap *map,
			      struct regmap_range_node *data)
{
	struct rb_root *root = &map->range_tree;
	struct rb_node **new = &(root->rb_node), *parent = NULL;

	while (*new) {
		struct regmap_range_node *this =
			container_of(*new, struct regmap_range_node, node);

		parent = *new;
		if (data->range_max < this->range_min)
			new = &((*new)->rb_left);
		else if (data->range_min > this->range_max)
			new = &((*new)->rb_right);
		else
			return false;
	}

	rb_link_node(&data->node, parent, new);
	rb_insert_color(&data->node, root);

	return true;
}

static struct regmap_range_node *_regmap_range_lookup(struct regmap *map,
						      unsigned int reg)
{
	struct rb_node *node = map->range_tree.rb_node;

	while (node) {
		struct regmap_range_node *this =
			container_of(node, struct regmap_range_node, node);

		if (reg < this->range_min)
			node = node->rb_left;
		else if (reg > this->range_max)
			node = node->rb_right;
		else
			return this;
	}

	return NULL;
}

static void regmap_range_exit(struct regmap *map)
{
	struct rb_node *next;
	struct regmap_range_node *range_node;

	next = rb_first(&map->range_tree);
	while (next) {
		range_node = rb_entry(next, struct regmap_range_node, node);
		next = rb_next(&range_node->node);
		rb_erase(&range_node->node, &map->range_tree);
		kfree(range_node);
	}

	kfree(map->selector_work_buf);
}

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/**
 * regmap_init(): Initialise register map
 *
 * @dev: Device that will be interacted with
 * @bus: Bus-specific callbacks to use with device
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 * @bus_context: Data passed to bus-specific callbacks
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 * @config: Configuration for register map
 *
 * The return value will be an ERR_PTR() on error or a valid pointer to
 * a struct regmap.  This function should generally not be called
 * directly, it should be called by bus-specific init functions.
 */
struct regmap *regmap_init(struct device *dev,
			   const struct regmap_bus *bus,
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			   void *bus_context,
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			   const struct regmap_config *config)
{
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	struct regmap *map, **m;
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	int ret = -EINVAL;
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	enum regmap_endian reg_endian, val_endian;
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	int i, j;
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	if (!bus || !config)
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		goto err;
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	map = kzalloc(sizeof(*map), GFP_KERNEL);
	if (map == NULL) {
		ret = -ENOMEM;
		goto err;
	}

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	if (bus->fast_io) {
		spin_lock_init(&map->spinlock);
		map->lock = regmap_lock_spinlock;
		map->unlock = regmap_unlock_spinlock;
	} else {
		mutex_init(&map->mutex);
		map->lock = regmap_lock_mutex;
		map->unlock = regmap_unlock_mutex;
	}
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	map->format.reg_bytes = DIV_ROUND_UP(config->reg_bits, 8);
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	map->format.pad_bytes = config->pad_bits / 8;
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	map->format.val_bytes = DIV_ROUND_UP(config->val_bits, 8);
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	map->format.buf_size = DIV_ROUND_UP(config->reg_bits +
			config->val_bits + config->pad_bits, 8);
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	map->reg_shift = config->pad_bits % 8;
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	if (config->reg_stride)
		map->reg_stride = config->reg_stride;
	else
		map->reg_stride = 1;
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	map->use_single_rw = config->use_single_rw;
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	map->dev = dev;
	map->bus = bus;
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	map->bus_context = bus_context;
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	map->max_register = config->max_register;
	map->writeable_reg = config->writeable_reg;
	map->readable_reg = config->readable_reg;
	map->volatile_reg = config->volatile_reg;
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	map->precious_reg = config->precious_reg;
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	map->cache_type = config->cache_type;
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	map->name = config->name;
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	if (config->read_flag_mask || config->write_flag_mask) {
		map->read_flag_mask = config->read_flag_mask;
		map->write_flag_mask = config->write_flag_mask;
	} else {
		map->read_flag_mask = bus->read_flag_mask;
	}

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	reg_endian = config->reg_format_endian;
	if (reg_endian == REGMAP_ENDIAN_DEFAULT)
		reg_endian = bus->reg_format_endian_default;
	if (reg_endian == REGMAP_ENDIAN_DEFAULT)
		reg_endian = REGMAP_ENDIAN_BIG;

	val_endian = config->val_format_endian;
	if (val_endian == REGMAP_ENDIAN_DEFAULT)
		val_endian = bus->val_format_endian_default;
	if (val_endian == REGMAP_ENDIAN_DEFAULT)
		val_endian = REGMAP_ENDIAN_BIG;

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	switch (config->reg_bits + map->reg_shift) {
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	case 2:
		switch (config->val_bits) {
		case 6:
			map->format.format_write = regmap_format_2_6_write;
			break;
		default:
			goto err_map;
		}
		break;

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	case 4:
		switch (config->val_bits) {
		case 12:
			map->format.format_write = regmap_format_4_12_write;
			break;
		default:
			goto err_map;
		}
		break;

	case 7:
		switch (config->val_bits) {
		case 9:
			map->format.format_write = regmap_format_7_9_write;
			break;
		default:
			goto err_map;
		}
		break;

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	case 10:
		switch (config->val_bits) {
		case 14:
			map->format.format_write = regmap_format_10_14_write;
			break;
		default:
			goto err_map;
		}
		break;

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	case 8:
		map->format.format_reg = regmap_format_8;
		break;

	case 16:
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		switch (reg_endian) {
		case REGMAP_ENDIAN_BIG:
			map->format.format_reg = regmap_format_16_be;
			break;
		case REGMAP_ENDIAN_NATIVE:
			map->format.format_reg = regmap_format_16_native;
			break;
		default:
			goto err_map;
		}
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		break;

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	case 32:
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		switch (reg_endian) {
		case REGMAP_ENDIAN_BIG:
			map->format.format_reg = regmap_format_32_be;
			break;
		case REGMAP_ENDIAN_NATIVE:
			map->format.format_reg = regmap_format_32_native;
			break;
		default:
			goto err_map;
		}
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		break;

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	default:
		goto err_map;
	}

	switch (config->val_bits) {
	case 8:
		map->format.format_val = regmap_format_8;
		map->format.parse_val = regmap_parse_8;
		break;
	case 16:
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		switch (val_endian) {
		case REGMAP_ENDIAN_BIG:
			map->format.format_val = regmap_format_16_be;
			map->format.parse_val = regmap_parse_16_be;
			break;
		case REGMAP_ENDIAN_NATIVE:
			map->format.format_val = regmap_format_16_native;
			map->format.parse_val = regmap_parse_16_native;
			break;
		default:
			goto err_map;
		}
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		break;
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	case 24:
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		if (val_endian != REGMAP_ENDIAN_BIG)
			goto err_map;
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		map->format.format_val = regmap_format_24;
		map->format.parse_val = regmap_parse_24;
		break;
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	case 32:
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		switch (val_endian) {
		case REGMAP_ENDIAN_BIG:
			map->format.format_val = regmap_format_32_be;
			map->format.parse_val = regmap_parse_32_be;
			break;
		case REGMAP_ENDIAN_NATIVE:
			map->format.format_val = regmap_format_32_native;
			map->format.parse_val = regmap_parse_32_native;
			break;
		default:
			goto err_map;
		}
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		break;
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	}

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	if (map->format.format_write) {
		if ((reg_endian != REGMAP_ENDIAN_BIG) ||
		    (val_endian != REGMAP_ENDIAN_BIG))
			goto err_map;
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		map->use_single_rw = true;
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	}
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	if (!map->format.format_write &&
	    !(map->format.format_reg && map->format.format_val))
		goto err_map;

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	map->work_buf = kzalloc(map->format.buf_size, GFP_KERNEL);
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	if (map->work_buf == NULL) {
		ret = -ENOMEM;
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		goto err_map;
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	}

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	map->range_tree = RB_ROOT;
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	for (i = 0; i < config->num_ranges; i++) {
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		const struct regmap_range_cfg *range_cfg = &config->ranges[i];
		struct regmap_range_node *new;

		/* Sanity check */
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		if (range_cfg->range_max < range_cfg->range_min) {
			dev_err(map->dev, "Invalid range %d: %d < %d\n", i,
				range_cfg->range_max, range_cfg->range_min);
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			goto err_range;
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		}

		if (range_cfg->range_max > map->max_register) {
			dev_err(map->dev, "Invalid range %d: %d > %d\n", i,
				range_cfg->range_max, map->max_register);
			goto err_range;
		}

		if (range_cfg->selector_reg > map->max_register) {
			dev_err(map->dev,
				"Invalid range %d: selector out of map\n", i);
			goto err_range;
		}

		if (range_cfg->window_len == 0) {
			dev_err(map->dev, "Invalid range %d: window_len 0\n",
				i);
			goto err_range;
		}
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		/* Make sure, that this register range has no selector
		   or data window within its boundary */
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		for (j = 0; j < config->num_ranges; j++) {
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			unsigned sel_reg = config->ranges[j].selector_reg;
			unsigned win_min = config->ranges[j].window_start;
			unsigned win_max = win_min +
					   config->ranges[j].window_len - 1;

			if (range_cfg->range_min <= sel_reg &&
			    sel_reg <= range_cfg->range_max) {
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				dev_err(map->dev,
					"Range %d: selector for %d in window\n",
					i, j);
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				goto err_range;
			}

			if (!(win_max < range_cfg->range_min ||
			      win_min > range_cfg->range_max)) {
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				dev_err(map->dev,
					"Range %d: window for %d in window\n",
					i, j);
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				goto err_range;
			}
		}

		new = kzalloc(sizeof(*new), GFP_KERNEL);
		if (new == NULL) {
			ret = -ENOMEM;
			goto err_range;
		}

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		new->map = map;
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		new->name = range_cfg->name;
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		new->range_min = range_cfg->range_min;
		new->range_max = range_cfg->range_max;
		new->selector_reg = range_cfg->selector_reg;
		new->selector_mask = range_cfg->selector_mask;
		new->selector_shift = range_cfg->selector_shift;
		new->window_start = range_cfg->window_start;
		new->window_len = range_cfg->window_len;

		if (_regmap_range_add(map, new) == false) {
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			dev_err(map->dev, "Failed to add range %d\n", i);
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			kfree(new);
			goto err_range;
		}

		if (map->selector_work_buf == NULL) {
			map->selector_work_buf =
				kzalloc(map->format.buf_size, GFP_KERNEL);
			if (map->selector_work_buf == NULL) {
				ret = -ENOMEM;
				goto err_range;
			}
		}
	}
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	ret = regcache_init(map, config);
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	if (ret != 0)
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		goto err_range;

	regmap_debugfs_init(map, config->name);
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	/* Add a devres resource for dev_get_regmap() */
	m = devres_alloc(dev_get_regmap_release, sizeof(*m), GFP_KERNEL);
	if (!m) {
		ret = -ENOMEM;
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		goto err_debugfs;
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	}
	*m = map;
	devres_add(dev, m);

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	return map;

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err_debugfs:
	regmap_debugfs_exit(map);
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	regcache_exit(map);
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err_range:
	regmap_range_exit(map);
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	kfree(map->work_buf);
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err_map:
	kfree(map);
err:
	return ERR_PTR(ret);
}
EXPORT_SYMBOL_GPL(regmap_init);

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static void devm_regmap_release(struct device *dev, void *res)
{
	regmap_exit(*(struct regmap **)res);
}

/**
 * devm_regmap_init(): Initialise managed register map
 *
 * @dev: Device that will be interacted with
 * @bus: Bus-specific callbacks to use with device
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 * @bus_context: Data passed to bus-specific callbacks
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 * @config: Configuration for register map
 *
 * The return value will be an ERR_PTR() on error or a valid pointer
 * to a struct regmap.  This function should generally not be called
 * directly, it should be called by bus-specific init functions.  The
 * map will be automatically freed by the device management code.
 */
struct regmap *devm_regmap_init(struct device *dev,
				const struct regmap_bus *bus,
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				void *bus_context,
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				const struct regmap_config *config)
{
	struct regmap **ptr, *regmap;

	ptr = devres_alloc(devm_regmap_release, sizeof(*ptr), GFP_KERNEL);
	if (!ptr)
		return ERR_PTR(-ENOMEM);

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	regmap = regmap_init(dev, bus, bus_context, config);
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	if (!IS_ERR(regmap)) {
		*ptr = regmap;
		devres_add(dev, ptr);
	} else {
		devres_free(ptr);
	}

	return regmap;
}
EXPORT_SYMBOL_GPL(devm_regmap_init);

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/**
 * regmap_reinit_cache(): Reinitialise the current register cache
 *
 * @map: Register map to operate on.
 * @config: New configuration.  Only the cache data will be used.
 *
 * Discard any existing register cache for the map and initialize a
 * new cache.  This can be used to restore the cache to defaults or to
 * update the cache configuration to reflect runtime discovery of the
 * hardware.
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 *
 * No explicit locking is done here, the user needs to ensure that
 * this function will not race with other calls to regmap.
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 */
int regmap_reinit_cache(struct regmap *map, const struct regmap_config *config)
{
	regcache_exit(map);
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	regmap_debugfs_exit(map);
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	map->max_register = config->max_register;
	map->writeable_reg = config->writeable_reg;
	map->readable_reg = config->readable_reg;
	map->volatile_reg = config->volatile_reg;
	map->precious_reg = config->precious_reg;
	map->cache_type = config->cache_type;

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	regmap_debugfs_init(map, config->name);
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	map->cache_bypass = false;
	map->cache_only = false;

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	return regcache_init(map, config);
711
}
712
EXPORT_SYMBOL_GPL(regmap_reinit_cache);
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714 715 716 717 718
/**
 * regmap_exit(): Free a previously allocated register map
 */
void regmap_exit(struct regmap *map)
{
719
	regcache_exit(map);
720
	regmap_debugfs_exit(map);
721
	regmap_range_exit(map);
722 723
	if (map->bus->free_context)
		map->bus->free_context(map->bus_context);
724 725 726 727 728
	kfree(map->work_buf);
	kfree(map);
}
EXPORT_SYMBOL_GPL(regmap_exit);

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729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766
static int dev_get_regmap_match(struct device *dev, void *res, void *data)
{
	struct regmap **r = res;
	if (!r || !*r) {
		WARN_ON(!r || !*r);
		return 0;
	}

	/* If the user didn't specify a name match any */
	if (data)
		return (*r)->name == data;
	else
		return 1;
}

/**
 * dev_get_regmap(): Obtain the regmap (if any) for a device
 *
 * @dev: Device to retrieve the map for
 * @name: Optional name for the register map, usually NULL.
 *
 * Returns the regmap for the device if one is present, or NULL.  If
 * name is specified then it must match the name specified when
 * registering the device, if it is NULL then the first regmap found
 * will be used.  Devices with multiple register maps are very rare,
 * generic code should normally not need to specify a name.
 */
struct regmap *dev_get_regmap(struct device *dev, const char *name)
{
	struct regmap **r = devres_find(dev, dev_get_regmap_release,
					dev_get_regmap_match, (void *)name);

	if (!r)
		return NULL;
	return *r;
}
EXPORT_SYMBOL_GPL(dev_get_regmap);

767
static int _regmap_select_page(struct regmap *map, unsigned int *reg,
768
			       struct regmap_range_node *range,
769 770 771 772 773 774 775 776
			       unsigned int val_num)
{
	void *orig_work_buf;
	unsigned int win_offset;
	unsigned int win_page;
	bool page_chg;
	int ret;

777 778
	win_offset = (*reg - range->range_min) % range->window_len;
	win_page = (*reg - range->range_min) / range->window_len;
779

780 781 782 783
	if (val_num > 1) {
		/* Bulk write shouldn't cross range boundary */
		if (*reg + val_num - 1 > range->range_max)
			return -EINVAL;
784

785 786 787 788
		/* ... or single page boundary */
		if (val_num > range->window_len - win_offset)
			return -EINVAL;
	}
789

790 791 792 793 794 795 796 797
	/* It is possible to have selector register inside data window.
	   In that case, selector register is located on every page and
	   it needs no page switching, when accessed alone. */
	if (val_num > 1 ||
	    range->window_start + win_offset != range->selector_reg) {
		/* Use separate work_buf during page switching */
		orig_work_buf = map->work_buf;
		map->work_buf = map->selector_work_buf;
798

799 800 801 802
		ret = _regmap_update_bits(map, range->selector_reg,
					  range->selector_mask,
					  win_page << range->selector_shift,
					  &page_chg);
803

804
		map->work_buf = orig_work_buf;
805

806
		if (ret != 0)
807
			return ret;
808 809
	}

810 811
	*reg = range->window_start + win_offset;

812 813 814
	return 0;
}

815 816 817
static int _regmap_raw_write(struct regmap *map, unsigned int reg,
			     const void *val, size_t val_len)
{
818
	struct regmap_range_node *range;
819
	u8 *u8 = map->work_buf;
820 821 822
	void *buf;
	int ret = -ENOTSUPP;
	size_t len;
823 824 825 826 827
	int i;

	/* Check for unwritable registers before we start */
	if (map->writeable_reg)
		for (i = 0; i < val_len / map->format.val_bytes; i++)
828 829
			if (!map->writeable_reg(map->dev,
						reg + (i * map->reg_stride)))
830
				return -EINVAL;
831

832 833 834 835 836 837
	if (!map->cache_bypass && map->format.parse_val) {
		unsigned int ival;
		int val_bytes = map->format.val_bytes;
		for (i = 0; i < val_len / val_bytes; i++) {
			memcpy(map->work_buf, val + (i * val_bytes), val_bytes);
			ival = map->format.parse_val(map->work_buf);
838 839
			ret = regcache_write(map, reg + (i * map->reg_stride),
					     ival);
840 841 842 843 844 845 846 847 848 849 850 851 852
			if (ret) {
				dev_err(map->dev,
				   "Error in caching of register: %u ret: %d\n",
					reg + i, ret);
				return ret;
			}
		}
		if (map->cache_only) {
			map->cache_dirty = true;
			return 0;
		}
	}

853 854
	range = _regmap_range_lookup(map, reg);
	if (range) {
855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878
		int val_num = val_len / map->format.val_bytes;
		int win_offset = (reg - range->range_min) % range->window_len;
		int win_residue = range->window_len - win_offset;

		/* If the write goes beyond the end of the window split it */
		while (val_num > win_residue) {
			dev_dbg(map->dev, "Writing window %d/%d\n",
				win_residue, val_len / map->format.val_bytes);
			ret = _regmap_raw_write(map, reg, val, win_residue *
						map->format.val_bytes);
			if (ret != 0)
				return ret;

			reg += win_residue;
			val_num -= win_residue;
			val += win_residue * map->format.val_bytes;
			val_len -= win_residue * map->format.val_bytes;

			win_offset = (reg - range->range_min) %
				range->window_len;
			win_residue = range->window_len - win_offset;
		}

		ret = _regmap_select_page(map, &reg, range, val_num);
879
		if (ret != 0)
880 881
			return ret;
	}
882

883
	map->format.format_reg(map->work_buf, reg, map->reg_shift);
884

885 886
	u8[0] |= map->write_flag_mask;

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887 888 889
	trace_regmap_hw_write_start(map->dev, reg,
				    val_len / map->format.val_bytes);

890 891 892 893
	/* If we're doing a single register write we can probably just
	 * send the work_buf directly, otherwise try to do a gather
	 * write.
	 */
894 895
	if (val == (map->work_buf + map->format.pad_bytes +
		    map->format.reg_bytes))
896
		ret = map->bus->write(map->bus_context, map->work_buf,
897 898 899
				      map->format.reg_bytes +
				      map->format.pad_bytes +
				      val_len);
900
	else if (map->bus->gather_write)
901
		ret = map->bus->gather_write(map->bus_context, map->work_buf,
902 903
					     map->format.reg_bytes +
					     map->format.pad_bytes,
904 905
					     val, val_len);

906
	/* If that didn't work fall back on linearising by hand. */
907
	if (ret == -ENOTSUPP) {
908 909
		len = map->format.reg_bytes + map->format.pad_bytes + val_len;
		buf = kzalloc(len, GFP_KERNEL);
910 911 912 913
		if (!buf)
			return -ENOMEM;

		memcpy(buf, map->work_buf, map->format.reg_bytes);
914 915
		memcpy(buf + map->format.reg_bytes + map->format.pad_bytes,
		       val, val_len);
916
		ret = map->bus->write(map->bus_context, buf, len);
917 918 919 920

		kfree(buf);
	}

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Mark Brown 已提交
921 922 923
	trace_regmap_hw_write_done(map->dev, reg,
				   val_len / map->format.val_bytes);

924 925 926
	return ret;
}

927 928
int _regmap_write(struct regmap *map, unsigned int reg,
		  unsigned int val)
929
{
930
	struct regmap_range_node *range;
M
Mark Brown 已提交
931
	int ret;
932 933
	BUG_ON(!map->format.format_write && !map->format.format_val);

934
	if (!map->cache_bypass && map->format.format_write) {
935 936 937
		ret = regcache_write(map, reg, val);
		if (ret != 0)
			return ret;
938 939
		if (map->cache_only) {
			map->cache_dirty = true;
940
			return 0;
941
		}
942 943
	}

944 945 946 947 948
#ifdef LOG_DEVICE
	if (strcmp(dev_name(map->dev), LOG_DEVICE) == 0)
		dev_info(map->dev, "%x <= %x\n", reg, val);
#endif

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Mark Brown 已提交
949 950
	trace_regmap_reg_write(map->dev, reg, val);

951
	if (map->format.format_write) {
952 953 954
		range = _regmap_range_lookup(map, reg);
		if (range) {
			ret = _regmap_select_page(map, &reg, range, 1);
955
			if (ret != 0)
956 957
				return ret;
		}
958

959 960
		map->format.format_write(map, reg, val);

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Mark Brown 已提交
961 962
		trace_regmap_hw_write_start(map->dev, reg, 1);

963
		ret = map->bus->write(map->bus_context, map->work_buf,
M
Mark Brown 已提交
964 965 966 967 968
				      map->format.buf_size);

		trace_regmap_hw_write_done(map->dev, reg, 1);

		return ret;
969
	} else {
970
		map->format.format_val(map->work_buf + map->format.reg_bytes
971
				       + map->format.pad_bytes, val, 0);
972
		return _regmap_raw_write(map, reg,
973 974 975
					 map->work_buf +
					 map->format.reg_bytes +
					 map->format.pad_bytes,
976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993
					 map->format.val_bytes);
	}
}

/**
 * regmap_write(): Write a value to a single register
 *
 * @map: Register map to write to
 * @reg: Register to write to
 * @val: Value to be written
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_write(struct regmap *map, unsigned int reg, unsigned int val)
{
	int ret;

994 995 996
	if (reg % map->reg_stride)
		return -EINVAL;

997
	map->lock(map);
998 999 1000

	ret = _regmap_write(map, reg, val);

1001
	map->unlock(map);
1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027

	return ret;
}
EXPORT_SYMBOL_GPL(regmap_write);

/**
 * regmap_raw_write(): Write raw values to one or more registers
 *
 * @map: Register map to write to
 * @reg: Initial register to write to
 * @val: Block of data to be written, laid out for direct transmission to the
 *       device
 * @val_len: Length of data pointed to by val.
 *
 * This function is intended to be used for things like firmware
 * download where a large block of data needs to be transferred to the
 * device.  No formatting will be done on the data provided.
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_raw_write(struct regmap *map, unsigned int reg,
		     const void *val, size_t val_len)
{
	int ret;

1028 1029
	if (val_len % map->format.val_bytes)
		return -EINVAL;
1030 1031
	if (reg % map->reg_stride)
		return -EINVAL;
1032

1033
	map->lock(map);
1034 1035 1036

	ret = _regmap_raw_write(map, reg, val, val_len);

1037
	map->unlock(map);
1038 1039 1040 1041 1042

	return ret;
}
EXPORT_SYMBOL_GPL(regmap_raw_write);

1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065
/*
 * regmap_bulk_write(): Write multiple registers to the device
 *
 * @map: Register map to write to
 * @reg: First register to be write from
 * @val: Block of data to be written, in native register size for device
 * @val_count: Number of registers to write
 *
 * This function is intended to be used for writing a large block of
 * data to be device either in single transfer or multiple transfer.
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_bulk_write(struct regmap *map, unsigned int reg, const void *val,
		     size_t val_count)
{
	int ret = 0, i;
	size_t val_bytes = map->format.val_bytes;
	void *wval;

	if (!map->format.parse_val)
		return -EINVAL;
1066 1067
	if (reg % map->reg_stride)
		return -EINVAL;
1068

1069
	map->lock(map);
1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083

	/* No formatting is require if val_byte is 1 */
	if (val_bytes == 1) {
		wval = (void *)val;
	} else {
		wval = kmemdup(val, val_count * val_bytes, GFP_KERNEL);
		if (!wval) {
			ret = -ENOMEM;
			dev_err(map->dev, "Error in memory allocation\n");
			goto out;
		}
		for (i = 0; i < val_count * val_bytes; i += val_bytes)
			map->format.parse_val(wval + i);
	}
1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099
	/*
	 * Some devices does not support bulk write, for
	 * them we have a series of single write operations.
	 */
	if (map->use_single_rw) {
		for (i = 0; i < val_count; i++) {
			ret = regmap_raw_write(map,
						reg + (i * map->reg_stride),
						val + (i * val_bytes),
						val_bytes);
			if (ret != 0)
				return ret;
		}
	} else {
		ret = _regmap_raw_write(map, reg, wval, val_bytes * val_count);
	}
1100 1101 1102 1103 1104

	if (val_bytes != 1)
		kfree(wval);

out:
1105
	map->unlock(map);
1106 1107 1108 1109
	return ret;
}
EXPORT_SYMBOL_GPL(regmap_bulk_write);

1110 1111 1112
static int _regmap_raw_read(struct regmap *map, unsigned int reg, void *val,
			    unsigned int val_len)
{
1113
	struct regmap_range_node *range;
1114 1115 1116
	u8 *u8 = map->work_buf;
	int ret;

1117 1118 1119 1120
	range = _regmap_range_lookup(map, reg);
	if (range) {
		ret = _regmap_select_page(map, &reg, range,
					  val_len / map->format.val_bytes);
1121
		if (ret != 0)
1122 1123
			return ret;
	}
1124

1125
	map->format.format_reg(map->work_buf, reg, map->reg_shift);
1126 1127

	/*
1128
	 * Some buses or devices flag reads by setting the high bits in the
1129 1130 1131 1132
	 * register addresss; since it's always the high bits for all
	 * current formats we can do this here rather than in
	 * formatting.  This may break if we get interesting formats.
	 */
1133
	u8[0] |= map->read_flag_mask;
1134

M
Mark Brown 已提交
1135 1136 1137
	trace_regmap_hw_read_start(map->dev, reg,
				   val_len / map->format.val_bytes);

1138
	ret = map->bus->read(map->bus_context, map->work_buf,
1139
			     map->format.reg_bytes + map->format.pad_bytes,
M
Mark Brown 已提交
1140
			     val, val_len);
1141

M
Mark Brown 已提交
1142 1143 1144 1145
	trace_regmap_hw_read_done(map->dev, reg,
				  val_len / map->format.val_bytes);

	return ret;
1146 1147 1148 1149 1150 1151 1152
}

static int _regmap_read(struct regmap *map, unsigned int reg,
			unsigned int *val)
{
	int ret;

1153 1154 1155 1156 1157 1158
	if (!map->cache_bypass) {
		ret = regcache_read(map, reg, val);
		if (ret == 0)
			return 0;
	}

1159 1160 1161
	if (!map->format.parse_val)
		return -EINVAL;

1162 1163 1164
	if (map->cache_only)
		return -EBUSY;

1165
	ret = _regmap_raw_read(map, reg, map->work_buf, map->format.val_bytes);
M
Mark Brown 已提交
1166
	if (ret == 0) {
1167
		*val = map->format.parse_val(map->work_buf);
1168 1169 1170 1171 1172 1173

#ifdef LOG_DEVICE
		if (strcmp(dev_name(map->dev), LOG_DEVICE) == 0)
			dev_info(map->dev, "%x => %x\n", reg, *val);
#endif

M
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1174 1175
		trace_regmap_reg_read(map->dev, reg, *val);
	}
1176

1177 1178 1179
	if (ret == 0 && !map->cache_bypass)
		regcache_write(map, reg, *val);

1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196
	return ret;
}

/**
 * regmap_read(): Read a value from a single register
 *
 * @map: Register map to write to
 * @reg: Register to be read from
 * @val: Pointer to store read value
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_read(struct regmap *map, unsigned int reg, unsigned int *val)
{
	int ret;

1197 1198 1199
	if (reg % map->reg_stride)
		return -EINVAL;

1200
	map->lock(map);
1201 1202 1203

	ret = _regmap_read(map, reg, val);

1204
	map->unlock(map);
1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223

	return ret;
}
EXPORT_SYMBOL_GPL(regmap_read);

/**
 * regmap_raw_read(): Read raw data from the device
 *
 * @map: Register map to write to
 * @reg: First register to be read from
 * @val: Pointer to store read value
 * @val_len: Size of data to read
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_raw_read(struct regmap *map, unsigned int reg, void *val,
		    size_t val_len)
{
1224 1225 1226 1227
	size_t val_bytes = map->format.val_bytes;
	size_t val_count = val_len / val_bytes;
	unsigned int v;
	int ret, i;
1228

1229 1230
	if (val_len % map->format.val_bytes)
		return -EINVAL;
1231 1232
	if (reg % map->reg_stride)
		return -EINVAL;
1233

1234
	map->lock(map);
1235

1236 1237 1238 1239 1240 1241 1242 1243 1244 1245
	if (regmap_volatile_range(map, reg, val_count) || map->cache_bypass ||
	    map->cache_type == REGCACHE_NONE) {
		/* Physical block read if there's no cache involved */
		ret = _regmap_raw_read(map, reg, val, val_len);

	} else {
		/* Otherwise go word by word for the cache; should be low
		 * cost as we expect to hit the cache.
		 */
		for (i = 0; i < val_count; i++) {
1246 1247
			ret = _regmap_read(map, reg + (i * map->reg_stride),
					   &v);
1248 1249 1250
			if (ret != 0)
				goto out;

1251
			map->format.format_val(val + (i * val_bytes), v, 0);
1252 1253
		}
	}
1254

1255
 out:
1256
	map->unlock(map);
1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277

	return ret;
}
EXPORT_SYMBOL_GPL(regmap_raw_read);

/**
 * regmap_bulk_read(): Read multiple registers from the device
 *
 * @map: Register map to write to
 * @reg: First register to be read from
 * @val: Pointer to store read value, in native register size for device
 * @val_count: Number of registers to read
 *
 * A value of zero will be returned on success, a negative errno will
 * be returned in error cases.
 */
int regmap_bulk_read(struct regmap *map, unsigned int reg, void *val,
		     size_t val_count)
{
	int ret, i;
	size_t val_bytes = map->format.val_bytes;
1278
	bool vol = regmap_volatile_range(map, reg, val_count);
1279

1280 1281
	if (!map->format.parse_val)
		return -EINVAL;
1282 1283
	if (reg % map->reg_stride)
		return -EINVAL;
1284

1285
	if (vol || map->cache_type == REGCACHE_NONE) {
1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304
		/*
		 * Some devices does not support bulk read, for
		 * them we have a series of single read operations.
		 */
		if (map->use_single_rw) {
			for (i = 0; i < val_count; i++) {
				ret = regmap_raw_read(map,
						reg + (i * map->reg_stride),
						val + (i * val_bytes),
						val_bytes);
				if (ret != 0)
					return ret;
			}
		} else {
			ret = regmap_raw_read(map, reg, val,
					      val_bytes * val_count);
			if (ret != 0)
				return ret;
		}
1305 1306 1307 1308 1309

		for (i = 0; i < val_count * val_bytes; i += val_bytes)
			map->format.parse_val(val + i);
	} else {
		for (i = 0; i < val_count; i++) {
1310
			unsigned int ival;
1311
			ret = regmap_read(map, reg + (i * map->reg_stride),
1312
					  &ival);
1313 1314
			if (ret != 0)
				return ret;
1315
			memcpy(val + (i * val_bytes), &ival, val_bytes);
1316 1317
		}
	}
1318 1319 1320 1321 1322

	return 0;
}
EXPORT_SYMBOL_GPL(regmap_bulk_read);

1323 1324 1325
static int _regmap_update_bits(struct regmap *map, unsigned int reg,
			       unsigned int mask, unsigned int val,
			       bool *change)
1326 1327
{
	int ret;
1328
	unsigned int tmp, orig;
1329

1330
	ret = _regmap_read(map, reg, &orig);
1331
	if (ret != 0)
1332
		return ret;
1333

1334
	tmp = orig & ~mask;
1335 1336
	tmp |= val & mask;

1337
	if (tmp != orig) {
1338
		ret = _regmap_write(map, reg, tmp);
1339 1340 1341 1342
		*change = true;
	} else {
		*change = false;
	}
1343 1344 1345

	return ret;
}
1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360

/**
 * regmap_update_bits: Perform a read/modify/write cycle on the register map
 *
 * @map: Register map to update
 * @reg: Register to update
 * @mask: Bitmask to change
 * @val: New value for bitmask
 *
 * Returns zero for success, a negative number on error.
 */
int regmap_update_bits(struct regmap *map, unsigned int reg,
		       unsigned int mask, unsigned int val)
{
	bool change;
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	int ret;

	map->lock(map);
	ret = _regmap_update_bits(map, reg, mask, val, &change);
	map->unlock(map);

	return ret;
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}
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EXPORT_SYMBOL_GPL(regmap_update_bits);
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/**
 * regmap_update_bits_check: Perform a read/modify/write cycle on the
 *                           register map and report if updated
 *
 * @map: Register map to update
 * @reg: Register to update
 * @mask: Bitmask to change
 * @val: New value for bitmask
 * @change: Boolean indicating if a write was done
 *
 * Returns zero for success, a negative number on error.
 */
int regmap_update_bits_check(struct regmap *map, unsigned int reg,
			     unsigned int mask, unsigned int val,
			     bool *change)
{
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	int ret;

	map->lock(map);
	ret = _regmap_update_bits(map, reg, mask, val, change);
	map->unlock(map);
	return ret;
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}
EXPORT_SYMBOL_GPL(regmap_update_bits_check);

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/**
 * regmap_register_patch: Register and apply register updates to be applied
 *                        on device initialistion
 *
 * @map: Register map to apply updates to.
 * @regs: Values to update.
 * @num_regs: Number of entries in regs.
 *
 * Register a set of register updates to be applied to the device
 * whenever the device registers are synchronised with the cache and
 * apply them immediately.  Typically this is used to apply
 * corrections to be applied to the device defaults on startup, such
 * as the updates some vendors provide to undocumented registers.
 */
int regmap_register_patch(struct regmap *map, const struct reg_default *regs,
			  int num_regs)
{
	int i, ret;
	bool bypass;

	/* If needed the implementation can be extended to support this */
	if (map->patch)
		return -EBUSY;

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	map->lock(map);
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	bypass = map->cache_bypass;

	map->cache_bypass = true;

	/* Write out first; it's useful to apply even if we fail later. */
	for (i = 0; i < num_regs; i++) {
		ret = _regmap_write(map, regs[i].reg, regs[i].def);
		if (ret != 0) {
			dev_err(map->dev, "Failed to write %x = %x: %d\n",
				regs[i].reg, regs[i].def, ret);
			goto out;
		}
	}

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	map->patch = kcalloc(num_regs, sizeof(struct reg_default), GFP_KERNEL);
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	if (map->patch != NULL) {
		memcpy(map->patch, regs,
		       num_regs * sizeof(struct reg_default));
		map->patch_regs = num_regs;
	} else {
		ret = -ENOMEM;
	}

out:
	map->cache_bypass = bypass;

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	map->unlock(map);
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	return ret;
}
EXPORT_SYMBOL_GPL(regmap_register_patch);

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/*
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 * regmap_get_val_bytes(): Report the size of a register value
 *
 * Report the size of a register value, mainly intended to for use by
 * generic infrastructure built on top of regmap.
 */
int regmap_get_val_bytes(struct regmap *map)
{
	if (map->format.format_write)
		return -EINVAL;

	return map->format.val_bytes;
}
EXPORT_SYMBOL_GPL(regmap_get_val_bytes);

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static int __init regmap_initcall(void)
{
	regmap_debugfs_initcall();

	return 0;
}
postcore_initcall(regmap_initcall);