property.c 35.8 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * property.c - Unified device property interface.
 *
 * Copyright (C) 2014, Intel Corporation
 * Authors: Rafael J. Wysocki <rafael.j.wysocki@intel.com>
 *          Mika Westerberg <mika.westerberg@linux.intel.com>
 */

#include <linux/acpi.h>
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#include <linux/export.h>
#include <linux/kernel.h>
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#include <linux/of.h>
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#include <linux/of_address.h>
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#include <linux/of_graph.h>
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#include <linux/of_irq.h>
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#include <linux/property.h>
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#include <linux/etherdevice.h>
#include <linux/phy.h>
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struct fwnode_handle *dev_fwnode(struct device *dev)
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{
	return IS_ENABLED(CONFIG_OF) && dev->of_node ?
		&dev->of_node->fwnode : dev->fwnode;
}
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EXPORT_SYMBOL_GPL(dev_fwnode);
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/**
 * device_property_present - check if a property of a device is present
 * @dev: Device whose property is being checked
 * @propname: Name of the property
 *
 * Check if property @propname is present in the device firmware description.
 */
bool device_property_present(struct device *dev, const char *propname)
{
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	return fwnode_property_present(dev_fwnode(dev), propname);
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}
EXPORT_SYMBOL_GPL(device_property_present);

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/**
 * fwnode_property_present - check if a property of a firmware node is present
 * @fwnode: Firmware node whose property to check
 * @propname: Name of the property
 */
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bool fwnode_property_present(const struct fwnode_handle *fwnode,
			     const char *propname)
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{
	bool ret;

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	ret = fwnode_call_bool_op(fwnode, property_present, propname);
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	if (ret == false && !IS_ERR_OR_NULL(fwnode) &&
	    !IS_ERR_OR_NULL(fwnode->secondary))
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		ret = fwnode_call_bool_op(fwnode->secondary, property_present,
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					 propname);
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	return ret;
}
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EXPORT_SYMBOL_GPL(fwnode_property_present);

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/**
 * device_property_read_u8_array - return a u8 array property of a device
 * @dev: Device to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Function reads an array of u8 properties with @propname from the device
 * firmware description and stores them to @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_u8_array(struct device *dev, const char *propname,
				  u8 *val, size_t nval)
{
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	return fwnode_property_read_u8_array(dev_fwnode(dev), propname, val, nval);
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}
EXPORT_SYMBOL_GPL(device_property_read_u8_array);

/**
 * device_property_read_u16_array - return a u16 array property of a device
 * @dev: Device to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Function reads an array of u16 properties with @propname from the device
 * firmware description and stores them to @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_u16_array(struct device *dev, const char *propname,
				   u16 *val, size_t nval)
{
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	return fwnode_property_read_u16_array(dev_fwnode(dev), propname, val, nval);
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}
EXPORT_SYMBOL_GPL(device_property_read_u16_array);

/**
 * device_property_read_u32_array - return a u32 array property of a device
 * @dev: Device to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Function reads an array of u32 properties with @propname from the device
 * firmware description and stores them to @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_u32_array(struct device *dev, const char *propname,
				   u32 *val, size_t nval)
{
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	return fwnode_property_read_u32_array(dev_fwnode(dev), propname, val, nval);
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}
EXPORT_SYMBOL_GPL(device_property_read_u32_array);

/**
 * device_property_read_u64_array - return a u64 array property of a device
 * @dev: Device to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Function reads an array of u64 properties with @propname from the device
 * firmware description and stores them to @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_u64_array(struct device *dev, const char *propname,
				   u64 *val, size_t nval)
{
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	return fwnode_property_read_u64_array(dev_fwnode(dev), propname, val, nval);
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}
EXPORT_SYMBOL_GPL(device_property_read_u64_array);

/**
 * device_property_read_string_array - return a string array property of device
 * @dev: Device to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Function reads an array of string properties with @propname from the device
 * firmware description and stores them to @val if found.
 *
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 * Return: number of values read on success if @val is non-NULL,
 *	   number of values available on success if @val is NULL,
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO or %-EILSEQ if the property is not an array of strings,
 *	   %-EOVERFLOW if the size of the property is not as expected.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_string_array(struct device *dev, const char *propname,
				      const char **val, size_t nval)
{
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	return fwnode_property_read_string_array(dev_fwnode(dev), propname, val, nval);
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}
EXPORT_SYMBOL_GPL(device_property_read_string_array);

/**
 * device_property_read_string - return a string property of a device
 * @dev: Device to get the property of
 * @propname: Name of the property
 * @val: The value is stored here
 *
 * Function reads property @propname from the device firmware description and
 * stores the value into @val if found. The value is checked to be a string.
 *
 * Return: %0 if the property was found (success),
 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO or %-EILSEQ if the property type is not a string.
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 *	   %-ENXIO if no suitable firmware interface is present.
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 */
int device_property_read_string(struct device *dev, const char *propname,
				const char **val)
{
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	return fwnode_property_read_string(dev_fwnode(dev), propname, val);
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}
EXPORT_SYMBOL_GPL(device_property_read_string);
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/**
 * device_property_match_string - find a string in an array and return index
 * @dev: Device to get the property of
 * @propname: Name of the property holding the array
 * @string: String to look for
 *
 * Find a given string in a string array and if it is found return the
 * index back.
 *
 * Return: %0 if the property was found (success),
 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of strings,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
int device_property_match_string(struct device *dev, const char *propname,
				 const char *string)
{
	return fwnode_property_match_string(dev_fwnode(dev), propname, string);
}
EXPORT_SYMBOL_GPL(device_property_match_string);

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static int fwnode_property_read_int_array(const struct fwnode_handle *fwnode,
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					  const char *propname,
					  unsigned int elem_size, void *val,
					  size_t nval)
{
	int ret;

	ret = fwnode_call_int_op(fwnode, property_read_int_array, propname,
				 elem_size, val, nval);
	if (ret == -EINVAL && !IS_ERR_OR_NULL(fwnode) &&
	    !IS_ERR_OR_NULL(fwnode->secondary))
		ret = fwnode_call_int_op(
			fwnode->secondary, property_read_int_array, propname,
			elem_size, val, nval);

	return ret;
}
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/**
 * fwnode_property_read_u8_array - return a u8 array property of firmware node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Read an array of u8 properties with @propname from @fwnode and stores them to
 * @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_u8_array(const struct fwnode_handle *fwnode,
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				  const char *propname, u8 *val, size_t nval)
{
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	return fwnode_property_read_int_array(fwnode, propname, sizeof(u8),
					      val, nval);
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_u8_array);

/**
 * fwnode_property_read_u16_array - return a u16 array property of firmware node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Read an array of u16 properties with @propname from @fwnode and store them to
 * @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_u16_array(const struct fwnode_handle *fwnode,
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				   const char *propname, u16 *val, size_t nval)
{
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	return fwnode_property_read_int_array(fwnode, propname, sizeof(u16),
					      val, nval);
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_u16_array);

/**
 * fwnode_property_read_u32_array - return a u32 array property of firmware node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Read an array of u32 properties with @propname from @fwnode store them to
 * @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_u32_array(const struct fwnode_handle *fwnode,
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				   const char *propname, u32 *val, size_t nval)
{
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	return fwnode_property_read_int_array(fwnode, propname, sizeof(u32),
					      val, nval);
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_u32_array);

/**
 * fwnode_property_read_u64_array - return a u64 array property firmware node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Read an array of u64 properties with @propname from @fwnode and store them to
 * @val if found.
 *
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 * Return: number of values if @val was %NULL,
 *         %0 if the property was found (success),
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of numbers,
 *	   %-EOVERFLOW if the size of the property is not as expected,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_u64_array(const struct fwnode_handle *fwnode,
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				   const char *propname, u64 *val, size_t nval)
{
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	return fwnode_property_read_int_array(fwnode, propname, sizeof(u64),
					      val, nval);
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_u64_array);

/**
 * fwnode_property_read_string_array - return string array property of a node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
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 * @val: The values are stored here or %NULL to return the number of values
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 * @nval: Size of the @val array
 *
 * Read an string list property @propname from the given firmware node and store
 * them to @val if found.
 *
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 * Return: number of values read on success if @val is non-NULL,
 *	   number of values available on success if @val is NULL,
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 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
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 *	   %-EPROTO or %-EILSEQ if the property is not an array of strings,
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 *	   %-EOVERFLOW if the size of the property is not as expected,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_string_array(const struct fwnode_handle *fwnode,
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				      const char *propname, const char **val,
				      size_t nval)
{
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	int ret;

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	ret = fwnode_call_int_op(fwnode, property_read_string_array, propname,
				 val, nval);
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	if (ret == -EINVAL && !IS_ERR_OR_NULL(fwnode) &&
	    !IS_ERR_OR_NULL(fwnode->secondary))
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		ret = fwnode_call_int_op(fwnode->secondary,
					 property_read_string_array, propname,
					 val, nval);
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	return ret;
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_string_array);

/**
 * fwnode_property_read_string - return a string property of a firmware node
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property
 * @val: The value is stored here
 *
 * Read property @propname from the given firmware node and store the value into
 * @val if found.  The value is checked to be a string.
 *
 * Return: %0 if the property was found (success),
 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO or %-EILSEQ if the property is not a string,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_read_string(const struct fwnode_handle *fwnode,
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				const char *propname, const char **val)
{
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	int ret = fwnode_property_read_string_array(fwnode, propname, val, 1);
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	return ret < 0 ? ret : 0;
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}
EXPORT_SYMBOL_GPL(fwnode_property_read_string);

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/**
 * fwnode_property_match_string - find a string in an array and return index
 * @fwnode: Firmware node to get the property of
 * @propname: Name of the property holding the array
 * @string: String to look for
 *
 * Find a given string in a string array and if it is found return the
 * index back.
 *
 * Return: %0 if the property was found (success),
 *	   %-EINVAL if given arguments are not valid,
 *	   %-ENODATA if the property does not have a value,
 *	   %-EPROTO if the property is not an array of strings,
 *	   %-ENXIO if no suitable firmware interface is present.
 */
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int fwnode_property_match_string(const struct fwnode_handle *fwnode,
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	const char *propname, const char *string)
{
	const char **values;
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	int nval, ret;
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	nval = fwnode_property_read_string_array(fwnode, propname, NULL, 0);
	if (nval < 0)
		return nval;

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	if (nval == 0)
		return -ENODATA;

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	values = kcalloc(nval, sizeof(*values), GFP_KERNEL);
	if (!values)
		return -ENOMEM;

	ret = fwnode_property_read_string_array(fwnode, propname, values, nval);
	if (ret < 0)
		goto out;

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	ret = match_string(values, nval, string);
	if (ret < 0)
		ret = -ENODATA;
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out:
	kfree(values);
	return ret;
}
EXPORT_SYMBOL_GPL(fwnode_property_match_string);

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/**
 * fwnode_property_get_reference_args() - Find a reference with arguments
 * @fwnode:	Firmware node where to look for the reference
 * @prop:	The name of the property
 * @nargs_prop:	The name of the property telling the number of
 *		arguments in the referred node. NULL if @nargs is known,
 *		otherwise @nargs is ignored. Only relevant on OF.
 * @nargs:	Number of arguments. Ignored if @nargs_prop is non-NULL.
 * @index:	Index of the reference, from zero onwards.
 * @args:	Result structure with reference and integer arguments.
 *
 * Obtain a reference based on a named property in an fwnode, with
 * integer arguments.
 *
 * Caller is responsible to call fwnode_handle_put() on the returned
 * args->fwnode pointer.
 *
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 * Returns: %0 on success
 *	    %-ENOENT when the index is out of bounds, the index has an empty
 *		     reference or the property was not found
 *	    %-EINVAL on parse error
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 */
int fwnode_property_get_reference_args(const struct fwnode_handle *fwnode,
				       const char *prop, const char *nargs_prop,
				       unsigned int nargs, unsigned int index,
				       struct fwnode_reference_args *args)
{
	return fwnode_call_int_op(fwnode, get_reference_args, prop, nargs_prop,
				  nargs, index, args);
}
EXPORT_SYMBOL_GPL(fwnode_property_get_reference_args);

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/**
 * fwnode_find_reference - Find named reference to a fwnode_handle
 * @fwnode: Firmware node where to look for the reference
 * @name: The name of the reference
 * @index: Index of the reference
 *
 * @index can be used when the named reference holds a table of references.
 *
 * Returns pointer to the reference fwnode, or ERR_PTR. Caller is responsible to
 * call fwnode_handle_put() on the returned fwnode pointer.
 */
struct fwnode_handle *fwnode_find_reference(const struct fwnode_handle *fwnode,
					    const char *name,
					    unsigned int index)
{
	struct fwnode_reference_args args;
	int ret;

	ret = fwnode_property_get_reference_args(fwnode, name, NULL, 0, index,
						 &args);
	return ret ? ERR_PTR(ret) : args.fwnode;
}
EXPORT_SYMBOL_GPL(fwnode_find_reference);

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/**
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 * device_remove_properties - Remove properties from a device object.
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 * @dev: Device whose properties to remove.
 *
 * The function removes properties previously associated to the device
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 * firmware node with device_add_properties(). Memory allocated to the
 * properties will also be released.
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 */
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void device_remove_properties(struct device *dev)
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{
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	struct fwnode_handle *fwnode = dev_fwnode(dev);
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	if (!fwnode)
		return;
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	if (is_software_node(fwnode->secondary)) {
		fwnode_remove_software_node(fwnode->secondary);
		set_secondary_fwnode(dev, NULL);
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	}
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}
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EXPORT_SYMBOL_GPL(device_remove_properties);
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/**
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 * device_add_properties - Add a collection of properties to a device object.
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 * @dev: Device to add properties to.
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 * @properties: Collection of properties to add.
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 *
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 * Associate a collection of device properties represented by @properties with
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 * @dev. The function takes a copy of @properties.
 *
 * WARNING: The callers should not use this function if it is known that there
 * is no real firmware node associated with @dev! In that case the callers
 * should create a software node and assign it to @dev directly.
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 */
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int device_add_properties(struct device *dev,
			  const struct property_entry *properties)
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{
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	struct fwnode_handle *fwnode;
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	fwnode = fwnode_create_software_node(properties, NULL);
	if (IS_ERR(fwnode))
		return PTR_ERR(fwnode);
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	set_secondary_fwnode(dev, fwnode);
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	return 0;
}
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EXPORT_SYMBOL_GPL(device_add_properties);
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/**
 * fwnode_get_next_parent - Iterate to the node's parent
 * @fwnode: Firmware whose parent is retrieved
 *
 * This is like fwnode_get_parent() except that it drops the refcount
 * on the passed node, making it suitable for iterating through a
 * node's parents.
 *
 * Returns a node pointer with refcount incremented, use
 * fwnode_handle_node() on it when done.
 */
struct fwnode_handle *fwnode_get_next_parent(struct fwnode_handle *fwnode)
{
	struct fwnode_handle *parent = fwnode_get_parent(fwnode);

	fwnode_handle_put(fwnode);

	return parent;
}
EXPORT_SYMBOL_GPL(fwnode_get_next_parent);

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/**
 * fwnode_get_parent - Return parent firwmare node
 * @fwnode: Firmware whose parent is retrieved
 *
 * Return parent firmware node of the given node if possible or %NULL if no
 * parent was available.
 */
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struct fwnode_handle *fwnode_get_parent(const struct fwnode_handle *fwnode)
588
{
589
	return fwnode_call_ptr_op(fwnode, get_parent);
590 591 592
}
EXPORT_SYMBOL_GPL(fwnode_get_parent);

593
/**
594 595 596
 * fwnode_get_next_child_node - Return the next child node handle for a node
 * @fwnode: Firmware node to find the next child node for.
 * @child: Handle to one of the node's child nodes or a %NULL handle.
597
 */
598 599 600
struct fwnode_handle *
fwnode_get_next_child_node(const struct fwnode_handle *fwnode,
			   struct fwnode_handle *child)
601
{
602
	return fwnode_call_ptr_op(fwnode, get_next_child_node, child);
603
}
604 605
EXPORT_SYMBOL_GPL(fwnode_get_next_child_node);

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/**
 * fwnode_get_next_available_child_node - Return the next
 * available child node handle for a node
 * @fwnode: Firmware node to find the next child node for.
 * @child: Handle to one of the node's child nodes or a %NULL handle.
 */
struct fwnode_handle *
fwnode_get_next_available_child_node(const struct fwnode_handle *fwnode,
				     struct fwnode_handle *child)
{
	struct fwnode_handle *next_child = child;

	if (!fwnode)
		return NULL;

	do {
		next_child = fwnode_get_next_child_node(fwnode, next_child);

		if (!next_child || fwnode_device_is_available(next_child))
			break;
	} while (next_child);

	return next_child;
}
EXPORT_SYMBOL_GPL(fwnode_get_next_available_child_node);

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/**
 * device_get_next_child_node - Return the next child node handle for a device
 * @dev: Device to find the next child node for.
 * @child: Handle to one of the device's child nodes or a null handle.
 */
struct fwnode_handle *device_get_next_child_node(struct device *dev,
						 struct fwnode_handle *child)
{
	struct acpi_device *adev = ACPI_COMPANION(dev);
	struct fwnode_handle *fwnode = NULL;

	if (dev->of_node)
		fwnode = &dev->of_node->fwnode;
	else if (adev)
		fwnode = acpi_fwnode_handle(adev);

	return fwnode_get_next_child_node(fwnode, child);
}
650 651
EXPORT_SYMBOL_GPL(device_get_next_child_node);

652
/**
653 654
 * fwnode_get_named_child_node - Return first matching named child node handle
 * @fwnode: Firmware node to find the named child node for.
655 656
 * @childname: String to match child node name against.
 */
657 658 659
struct fwnode_handle *
fwnode_get_named_child_node(const struct fwnode_handle *fwnode,
			    const char *childname)
660
{
661
	return fwnode_call_ptr_op(fwnode, get_named_child_node, childname);
662
}
663 664 665 666 667 668 669 670 671 672 673 674
EXPORT_SYMBOL_GPL(fwnode_get_named_child_node);

/**
 * device_get_named_child_node - Return first matching named child node handle
 * @dev: Device to find the named child node for.
 * @childname: String to match child node name against.
 */
struct fwnode_handle *device_get_named_child_node(struct device *dev,
						  const char *childname)
{
	return fwnode_get_named_child_node(dev_fwnode(dev), childname);
}
675 676
EXPORT_SYMBOL_GPL(device_get_named_child_node);

677 678 679
/**
 * fwnode_handle_get - Obtain a reference to a device node
 * @fwnode: Pointer to the device node to obtain the reference to.
680 681
 *
 * Returns the fwnode handle.
682
 */
683
struct fwnode_handle *fwnode_handle_get(struct fwnode_handle *fwnode)
684
{
685 686 687 688
	if (!fwnode_has_op(fwnode, get))
		return fwnode;

	return fwnode_call_ptr_op(fwnode, get);
689 690 691
}
EXPORT_SYMBOL_GPL(fwnode_handle_get);

692 693 694 695 696 697 698 699 700 701
/**
 * fwnode_handle_put - Drop reference to a device node
 * @fwnode: Pointer to the device node to drop the reference to.
 *
 * This has to be used when terminating device_for_each_child_node() iteration
 * with break or return to prevent stale device node references from being left
 * behind.
 */
void fwnode_handle_put(struct fwnode_handle *fwnode)
{
702
	fwnode_call_void_op(fwnode, put);
703 704 705
}
EXPORT_SYMBOL_GPL(fwnode_handle_put);

706 707 708 709
/**
 * fwnode_device_is_available - check if a device is available for use
 * @fwnode: Pointer to the fwnode of the device.
 */
710
bool fwnode_device_is_available(const struct fwnode_handle *fwnode)
711
{
712
	return fwnode_call_bool_op(fwnode, device_is_available);
713 714 715
}
EXPORT_SYMBOL_GPL(fwnode_device_is_available);

716 717 718 719 720 721 722 723 724 725 726 727 728 729 730
/**
 * device_get_child_node_count - return the number of child nodes for device
 * @dev: Device to cound the child nodes for
 */
unsigned int device_get_child_node_count(struct device *dev)
{
	struct fwnode_handle *child;
	unsigned int count = 0;

	device_for_each_child_node(dev, child)
		count++;

	return count;
}
EXPORT_SYMBOL_GPL(device_get_child_node_count);
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
bool device_dma_supported(struct device *dev)
{
	/* For DT, this is always supported.
	 * For ACPI, this depends on CCA, which
	 * is determined by the acpi_dma_supported().
	 */
	if (IS_ENABLED(CONFIG_OF) && dev->of_node)
		return true;

	return acpi_dma_supported(ACPI_COMPANION(dev));
}
EXPORT_SYMBOL_GPL(device_dma_supported);

enum dev_dma_attr device_get_dma_attr(struct device *dev)
{
	enum dev_dma_attr attr = DEV_DMA_NOT_SUPPORTED;

	if (IS_ENABLED(CONFIG_OF) && dev->of_node) {
		if (of_dma_is_coherent(dev->of_node))
			attr = DEV_DMA_COHERENT;
		else
			attr = DEV_DMA_NON_COHERENT;
	} else
		attr = acpi_get_dma_attr(ACPI_COMPANION(dev));

	return attr;
}
EXPORT_SYMBOL_GPL(device_get_dma_attr);

761
/**
762 763
 * fwnode_get_phy_mode - Get phy mode for given firmware node
 * @fwnode:	Pointer to the given node
764 765 766 767 768
 *
 * The function gets phy interface string from property 'phy-mode' or
 * 'phy-connection-type', and return its index in phy_modes table, or errno in
 * error case.
 */
769
int fwnode_get_phy_mode(struct fwnode_handle *fwnode)
770 771 772 773
{
	const char *pm;
	int err, i;

774
	err = fwnode_property_read_string(fwnode, "phy-mode", &pm);
775
	if (err < 0)
776
		err = fwnode_property_read_string(fwnode,
777 778 779 780 781 782 783 784 785 786
						  "phy-connection-type", &pm);
	if (err < 0)
		return err;

	for (i = 0; i < PHY_INTERFACE_MODE_MAX; i++)
		if (!strcasecmp(pm, phy_modes(i)))
			return i;

	return -ENODEV;
}
787 788 789 790 791 792 793 794 795 796 797 798 799 800
EXPORT_SYMBOL_GPL(fwnode_get_phy_mode);

/**
 * device_get_phy_mode - Get phy mode for given device
 * @dev:	Pointer to the given device
 *
 * The function gets phy interface string from property 'phy-mode' or
 * 'phy-connection-type', and return its index in phy_modes table, or errno in
 * error case.
 */
int device_get_phy_mode(struct device *dev)
{
	return fwnode_get_phy_mode(dev_fwnode(dev));
}
801 802
EXPORT_SYMBOL_GPL(device_get_phy_mode);

803
static void *fwnode_get_mac_addr(struct fwnode_handle *fwnode,
804 805 806
				 const char *name, char *addr,
				 int alen)
{
807
	int ret = fwnode_property_read_u8_array(fwnode, name, addr, alen);
808

809
	if (ret == 0 && alen == ETH_ALEN && is_valid_ether_addr(addr))
810 811 812 813 814
		return addr;
	return NULL;
}

/**
815 816
 * fwnode_get_mac_address - Get the MAC from the firmware node
 * @fwnode:	Pointer to the firmware node
817 818 819 820
 * @addr:	Address of buffer to store the MAC in
 * @alen:	Length of the buffer pointed to by addr, should be ETH_ALEN
 *
 * Search the firmware node for the best MAC address to use.  'mac-address' is
821 822 823 824 825 826 827 828 829 830
 * checked first, because that is supposed to contain to "most recent" MAC
 * address. If that isn't set, then 'local-mac-address' is checked next,
 * because that is the default address.  If that isn't set, then the obsolete
 * 'address' is checked, just in case we're using an old device tree.
 *
 * Note that the 'address' property is supposed to contain a virtual address of
 * the register set, but some DTS files have redefined that property to be the
 * MAC address.
 *
 * All-zero MAC addresses are rejected, because those could be properties that
831 832 833 834 835
 * exist in the firmware tables, but were not updated by the firmware.  For
 * example, the DTS could define 'mac-address' and 'local-mac-address', with
 * zero MAC addresses.  Some older U-Boots only initialized 'local-mac-address'.
 * In this case, the real MAC is in 'local-mac-address', and 'mac-address'
 * exists but is all zeros.
836
*/
837
void *fwnode_get_mac_address(struct fwnode_handle *fwnode, char *addr, int alen)
838
{
839
	char *res;
840

841
	res = fwnode_get_mac_addr(fwnode, "mac-address", addr, alen);
842 843 844
	if (res)
		return res;

845
	res = fwnode_get_mac_addr(fwnode, "local-mac-address", addr, alen);
846 847
	if (res)
		return res;
848

849 850 851 852 853 854 855 856 857 858 859 860 861
	return fwnode_get_mac_addr(fwnode, "address", addr, alen);
}
EXPORT_SYMBOL(fwnode_get_mac_address);

/**
 * device_get_mac_address - Get the MAC for a given device
 * @dev:	Pointer to the device
 * @addr:	Address of buffer to store the MAC in
 * @alen:	Length of the buffer pointed to by addr, should be ETH_ALEN
 */
void *device_get_mac_address(struct device *dev, char *addr, int alen)
{
	return fwnode_get_mac_address(dev_fwnode(dev), addr, alen);
862 863
}
EXPORT_SYMBOL(device_get_mac_address);
864

865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889
/**
 * fwnode_irq_get - Get IRQ directly from a fwnode
 * @fwnode:	Pointer to the firmware node
 * @index:	Zero-based index of the IRQ
 *
 * Returns Linux IRQ number on success. Other values are determined
 * accordingly to acpi_/of_ irq_get() operation.
 */
int fwnode_irq_get(struct fwnode_handle *fwnode, unsigned int index)
{
	struct device_node *of_node = to_of_node(fwnode);
	struct resource res;
	int ret;

	if (IS_ENABLED(CONFIG_OF) && of_node)
		return of_irq_get(of_node, index);

	ret = acpi_irq_get(ACPI_HANDLE_FWNODE(fwnode), index, &res);
	if (ret)
		return ret;

	return res.start;
}
EXPORT_SYMBOL(fwnode_irq_get);

890
/**
891
 * fwnode_graph_get_next_endpoint - Get next endpoint firmware node
892 893 894 895 896 897 898
 * @fwnode: Pointer to the parent firmware node
 * @prev: Previous endpoint node or %NULL to get the first
 *
 * Returns an endpoint firmware node pointer or %NULL if no more endpoints
 * are available.
 */
struct fwnode_handle *
899
fwnode_graph_get_next_endpoint(const struct fwnode_handle *fwnode,
900 901
			       struct fwnode_handle *prev)
{
902
	return fwnode_call_ptr_op(fwnode, graph_get_next_endpoint, prev);
903 904 905
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_next_endpoint);

906 907 908 909 910 911 912
/**
 * fwnode_graph_get_port_parent - Return the device fwnode of a port endpoint
 * @endpoint: Endpoint firmware node of the port
 *
 * Return: the firmware node of the device the @endpoint belongs to.
 */
struct fwnode_handle *
913
fwnode_graph_get_port_parent(const struct fwnode_handle *endpoint)
914 915 916 917 918 919 920 921 922 923 924 925
{
	struct fwnode_handle *port, *parent;

	port = fwnode_get_parent(endpoint);
	parent = fwnode_call_ptr_op(port, graph_get_port_parent);

	fwnode_handle_put(port);

	return parent;
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_port_parent);

926 927 928 929 930 931 932
/**
 * fwnode_graph_get_remote_port_parent - Return fwnode of a remote device
 * @fwnode: Endpoint firmware node pointing to the remote endpoint
 *
 * Extracts firmware node of a remote device the @fwnode points to.
 */
struct fwnode_handle *
933
fwnode_graph_get_remote_port_parent(const struct fwnode_handle *fwnode)
934
{
935
	struct fwnode_handle *endpoint, *parent;
936

937 938
	endpoint = fwnode_graph_get_remote_endpoint(fwnode);
	parent = fwnode_graph_get_port_parent(endpoint);
939

940
	fwnode_handle_put(endpoint);
941 942 943 944 945 946 947 948 949 950 951

	return parent;
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_remote_port_parent);

/**
 * fwnode_graph_get_remote_port - Return fwnode of a remote port
 * @fwnode: Endpoint firmware node pointing to the remote endpoint
 *
 * Extracts firmware node of a remote port the @fwnode points to.
 */
952 953
struct fwnode_handle *
fwnode_graph_get_remote_port(const struct fwnode_handle *fwnode)
954
{
955
	return fwnode_get_next_parent(fwnode_graph_get_remote_endpoint(fwnode));
956 957 958 959 960 961 962 963 964 965
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_remote_port);

/**
 * fwnode_graph_get_remote_endpoint - Return fwnode of a remote endpoint
 * @fwnode: Endpoint firmware node pointing to the remote endpoint
 *
 * Extracts firmware node of a remote endpoint the @fwnode points to.
 */
struct fwnode_handle *
966
fwnode_graph_get_remote_endpoint(const struct fwnode_handle *fwnode)
967
{
968
	return fwnode_call_ptr_op(fwnode, graph_get_remote_endpoint);
969 970
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_remote_endpoint);
971

972 973 974 975 976 977 978 979 980
/**
 * fwnode_graph_get_remote_node - get remote parent node for given port/endpoint
 * @fwnode: pointer to parent fwnode_handle containing graph port/endpoint
 * @port_id: identifier of the parent port node
 * @endpoint_id: identifier of the endpoint node
 *
 * Return: Remote fwnode handle associated with remote endpoint node linked
 *	   to @node. Use fwnode_node_put() on it when done.
 */
981 982 983
struct fwnode_handle *
fwnode_graph_get_remote_node(const struct fwnode_handle *fwnode, u32 port_id,
			     u32 endpoint_id)
984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009
{
	struct fwnode_handle *endpoint = NULL;

	while ((endpoint = fwnode_graph_get_next_endpoint(fwnode, endpoint))) {
		struct fwnode_endpoint fwnode_ep;
		struct fwnode_handle *remote;
		int ret;

		ret = fwnode_graph_parse_endpoint(endpoint, &fwnode_ep);
		if (ret < 0)
			continue;

		if (fwnode_ep.port != port_id || fwnode_ep.id != endpoint_id)
			continue;

		remote = fwnode_graph_get_remote_port_parent(endpoint);
		if (!remote)
			return NULL;

		return fwnode_device_is_available(remote) ? remote : NULL;
	}

	return NULL;
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_remote_node);

1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084
/**
 * fwnode_graph_get_endpoint_by_id - get endpoint by port and endpoint numbers
 * @fwnode: parent fwnode_handle containing the graph
 * @port: identifier of the port node
 * @endpoint: identifier of the endpoint node under the port node
 * @flags: fwnode lookup flags
 *
 * Return the fwnode handle of the local endpoint corresponding the port and
 * endpoint IDs or NULL if not found.
 *
 * If FWNODE_GRAPH_ENDPOINT_NEXT is passed in @flags and the specified endpoint
 * has not been found, look for the closest endpoint ID greater than the
 * specified one and return the endpoint that corresponds to it, if present.
 *
 * Do not return endpoints that belong to disabled devices, unless
 * FWNODE_GRAPH_DEVICE_DISABLED is passed in @flags.
 *
 * The returned endpoint needs to be released by calling fwnode_handle_put() on
 * it when it is not needed any more.
 */
struct fwnode_handle *
fwnode_graph_get_endpoint_by_id(const struct fwnode_handle *fwnode,
				u32 port, u32 endpoint, unsigned long flags)
{
	struct fwnode_handle *ep = NULL, *best_ep = NULL;
	unsigned int best_ep_id = 0;
	bool endpoint_next = flags & FWNODE_GRAPH_ENDPOINT_NEXT;
	bool enabled_only = !(flags & FWNODE_GRAPH_DEVICE_DISABLED);

	while ((ep = fwnode_graph_get_next_endpoint(fwnode, ep))) {
		struct fwnode_endpoint fwnode_ep = { 0 };
		int ret;

		if (enabled_only) {
			struct fwnode_handle *dev_node;
			bool available;

			dev_node = fwnode_graph_get_remote_port_parent(ep);
			available = fwnode_device_is_available(dev_node);
			fwnode_handle_put(dev_node);
			if (!available)
				continue;
		}

		ret = fwnode_graph_parse_endpoint(ep, &fwnode_ep);
		if (ret < 0)
			continue;

		if (fwnode_ep.port != port)
			continue;

		if (fwnode_ep.id == endpoint)
			return ep;

		if (!endpoint_next)
			continue;

		/*
		 * If the endpoint that has just been found is not the first
		 * matching one and the ID of the one found previously is closer
		 * to the requested endpoint ID, skip it.
		 */
		if (fwnode_ep.id < endpoint ||
		    (best_ep && best_ep_id < fwnode_ep.id))
			continue;

		fwnode_handle_put(best_ep);
		best_ep = fwnode_handle_get(ep);
		best_ep_id = fwnode_ep.id;
	}

	return best_ep;
}
EXPORT_SYMBOL_GPL(fwnode_graph_get_endpoint_by_id);

1085 1086 1087 1088 1089 1090 1091 1092 1093
/**
 * fwnode_graph_parse_endpoint - parse common endpoint node properties
 * @fwnode: pointer to endpoint fwnode_handle
 * @endpoint: pointer to the fwnode endpoint data structure
 *
 * Parse @fwnode representing a graph endpoint node and store the
 * information in @endpoint. The caller must hold a reference to
 * @fwnode.
 */
1094
int fwnode_graph_parse_endpoint(const struct fwnode_handle *fwnode,
1095 1096 1097 1098
				struct fwnode_endpoint *endpoint)
{
	memset(endpoint, 0, sizeof(*endpoint));

1099
	return fwnode_call_int_op(fwnode, graph_parse_endpoint, endpoint);
1100 1101
}
EXPORT_SYMBOL(fwnode_graph_parse_endpoint);
1102

1103
const void *device_get_match_data(struct device *dev)
1104
{
1105
	return fwnode_call_ptr_op(dev_fwnode(dev), device_get_match_data, dev);
1106 1107
}
EXPORT_SYMBOL_GPL(device_get_match_data);