device.h 56.7 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * device.h - generic, centralized driver model
 *
 * Copyright (c) 2001-2003 Patrick Mochel <mochel@osdl.org>
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 * Copyright (c) 2004-2009 Greg Kroah-Hartman <gregkh@suse.de>
 * Copyright (c) 2008-2009 Novell Inc.
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 *
 * See Documentation/driver-model/ for more information.
 */

#ifndef _DEVICE_H_
#define _DEVICE_H_

#include <linux/ioport.h>
#include <linux/kobject.h>
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#include <linux/klist.h>
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#include <linux/list.h>
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#include <linux/lockdep.h>
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#include <linux/compiler.h>
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#include <linux/types.h>
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#include <linux/mutex.h>
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#include <linux/pm.h>
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#include <linux/atomic.h>
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#include <linux/ratelimit.h>
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#include <linux/uidgid.h>
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#include <linux/gfp.h>
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#include <linux/overflow.h>
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#include <asm/device.h>
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struct device;
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struct device_private;
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struct device_driver;
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struct driver_private;
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struct module;
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struct class;
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struct subsys_private;
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struct bus_type;
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struct device_node;
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struct fwnode_handle;
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struct iommu_ops;
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struct iommu_group;
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struct iommu_fwspec;
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struct dev_pin_info;
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struct bus_attribute {
	struct attribute	attr;
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	ssize_t (*show)(struct bus_type *bus, char *buf);
	ssize_t (*store)(struct bus_type *bus, const char *buf, size_t count);
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};

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#define BUS_ATTR(_name, _mode, _show, _store)	\
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	struct bus_attribute bus_attr_##_name = __ATTR(_name, _mode, _show, _store)
#define BUS_ATTR_RW(_name) \
	struct bus_attribute bus_attr_##_name = __ATTR_RW(_name)
#define BUS_ATTR_RO(_name) \
	struct bus_attribute bus_attr_##_name = __ATTR_RO(_name)
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#define BUS_ATTR_WO(_name) \
	struct bus_attribute bus_attr_##_name = __ATTR_WO(_name)
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extern int __must_check bus_create_file(struct bus_type *,
					struct bus_attribute *);
extern void bus_remove_file(struct bus_type *, struct bus_attribute *);
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/**
 * struct bus_type - The bus type of the device
 *
 * @name:	The name of the bus.
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 * @dev_name:	Used for subsystems to enumerate devices like ("foo%u", dev->id).
 * @dev_root:	Default device to use as the parent.
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 * @bus_groups:	Default attributes of the bus.
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 * @dev_groups:	Default attributes of the devices on the bus.
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 * @drv_groups: Default attributes of the device drivers on the bus.
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 * @match:	Called, perhaps multiple times, whenever a new device or driver
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 *		is added for this bus. It should return a positive value if the
 *		given device can be handled by the given driver and zero
 *		otherwise. It may also return error code if determining that
 *		the driver supports the device is not possible. In case of
 *		-EPROBE_DEFER it will queue the device for deferred probing.
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 * @uevent:	Called when a device is added, removed, or a few other things
 *		that generate uevents to add the environment variables.
 * @probe:	Called when a new device or driver add to this bus, and callback
 *		the specific driver's probe to initial the matched device.
 * @remove:	Called when a device removed from this bus.
 * @shutdown:	Called at shut-down time to quiesce the device.
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 *
 * @online:	Called to put the device back online (after offlining it).
 * @offline:	Called to put the device offline for hot-removal. May fail.
 *
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 * @suspend:	Called when a device on this bus wants to go to sleep mode.
 * @resume:	Called to bring a device on this bus out of sleep mode.
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 * @num_vf:	Called to find out how many virtual functions a device on this
 *		bus supports.
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 * @dma_configure:	Called to setup DMA configuration on a device on
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 *			this bus.
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 * @pm:		Power management operations of this bus, callback the specific
 *		device driver's pm-ops.
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 * @iommu_ops:  IOMMU specific operations for this bus, used to attach IOMMU
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 *              driver implementations to a bus and allow the driver to do
 *              bus-specific setup
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 * @p:		The private data of the driver core, only the driver core can
 *		touch this.
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 * @lock_key:	Lock class key for use by the lock validator
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 * @need_parent_lock:	When probing or removing a device on this bus, the
 *			device core should lock the device's parent.
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 *
 * A bus is a channel between the processor and one or more devices. For the
 * purposes of the device model, all devices are connected via a bus, even if
 * it is an internal, virtual, "platform" bus. Buses can plug into each other.
 * A USB controller is usually a PCI device, for example. The device model
 * represents the actual connections between buses and the devices they control.
 * A bus is represented by the bus_type structure. It contains the name, the
 * default attributes, the bus' methods, PM operations, and the driver core's
 * private data.
 */
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struct bus_type {
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	const char		*name;
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	const char		*dev_name;
	struct device		*dev_root;
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	const struct attribute_group **bus_groups;
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	const struct attribute_group **dev_groups;
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	const struct attribute_group **drv_groups;
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	int (*match)(struct device *dev, struct device_driver *drv);
	int (*uevent)(struct device *dev, struct kobj_uevent_env *env);
	int (*probe)(struct device *dev);
	int (*remove)(struct device *dev);
	void (*shutdown)(struct device *dev);

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	int (*online)(struct device *dev);
	int (*offline)(struct device *dev);

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	int (*suspend)(struct device *dev, pm_message_t state);
	int (*resume)(struct device *dev);
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	int (*num_vf)(struct device *dev);

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	int (*dma_configure)(struct device *dev);

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	const struct dev_pm_ops *pm;
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	const struct iommu_ops *iommu_ops;
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	struct subsys_private *p;
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	struct lock_class_key lock_key;
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	bool need_parent_lock;
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};

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extern int __must_check bus_register(struct bus_type *bus);

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extern void bus_unregister(struct bus_type *bus);
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extern int __must_check bus_rescan_devices(struct bus_type *bus);
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/* iterator helpers for buses */
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struct subsys_dev_iter {
	struct klist_iter		ki;
	const struct device_type	*type;
};
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void subsys_dev_iter_init(struct subsys_dev_iter *iter,
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			 struct bus_type *subsys,
			 struct device *start,
			 const struct device_type *type);
struct device *subsys_dev_iter_next(struct subsys_dev_iter *iter);
void subsys_dev_iter_exit(struct subsys_dev_iter *iter);
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int bus_for_each_dev(struct bus_type *bus, struct device *start, void *data,
		     int (*fn)(struct device *dev, void *data));
struct device *bus_find_device(struct bus_type *bus, struct device *start,
			       void *data,
			       int (*match)(struct device *dev, void *data));
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struct device *bus_find_device_by_name(struct bus_type *bus,
				       struct device *start,
				       const char *name);
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struct device *subsys_find_device_by_id(struct bus_type *bus, unsigned int id,
					struct device *hint);
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int bus_for_each_drv(struct bus_type *bus, struct device_driver *start,
		     void *data, int (*fn)(struct device_driver *, void *));
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void bus_sort_breadthfirst(struct bus_type *bus,
			   int (*compare)(const struct device *a,
					  const struct device *b));
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/*
 * Bus notifiers: Get notified of addition/removal of devices
 * and binding/unbinding of drivers to devices.
 * In the long run, it should be a replacement for the platform
 * notify hooks.
 */
struct notifier_block;

extern int bus_register_notifier(struct bus_type *bus,
				 struct notifier_block *nb);
extern int bus_unregister_notifier(struct bus_type *bus,
				   struct notifier_block *nb);

/* All 4 notifers below get called with the target struct device *
 * as an argument. Note that those functions are likely to be called
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 * with the device lock held in the core, so be careful.
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 */
#define BUS_NOTIFY_ADD_DEVICE		0x00000001 /* device added */
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#define BUS_NOTIFY_DEL_DEVICE		0x00000002 /* device to be removed */
#define BUS_NOTIFY_REMOVED_DEVICE	0x00000003 /* device removed */
#define BUS_NOTIFY_BIND_DRIVER		0x00000004 /* driver about to be
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						      bound */
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#define BUS_NOTIFY_BOUND_DRIVER		0x00000005 /* driver bound to device */
#define BUS_NOTIFY_UNBIND_DRIVER	0x00000006 /* driver about to be
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						      unbound */
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#define BUS_NOTIFY_UNBOUND_DRIVER	0x00000007 /* driver is unbound
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						      from the device */
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#define BUS_NOTIFY_DRIVER_NOT_BOUND	0x00000008 /* driver fails to be bound */
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extern struct kset *bus_get_kset(struct bus_type *bus);
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extern struct klist *bus_get_device_klist(struct bus_type *bus);
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/**
 * enum probe_type - device driver probe type to try
 *	Device drivers may opt in for special handling of their
 *	respective probe routines. This tells the core what to
 *	expect and prefer.
 *
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 * @PROBE_DEFAULT_STRATEGY: Used by drivers that work equally well
 *	whether probed synchronously or asynchronously.
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 * @PROBE_PREFER_ASYNCHRONOUS: Drivers for "slow" devices which
 *	probing order is not essential for booting the system may
 *	opt into executing their probes asynchronously.
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 * @PROBE_FORCE_SYNCHRONOUS: Use this to annotate drivers that need
 *	their probe routines to run synchronously with driver and
 *	device registration (with the exception of -EPROBE_DEFER
 *	handling - re-probing always ends up being done asynchronously).
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 *
 * Note that the end goal is to switch the kernel to use asynchronous
 * probing by default, so annotating drivers with
 * %PROBE_PREFER_ASYNCHRONOUS is a temporary measure that allows us
 * to speed up boot process while we are validating the rest of the
 * drivers.
 */
enum probe_type {
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	PROBE_DEFAULT_STRATEGY,
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	PROBE_PREFER_ASYNCHRONOUS,
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	PROBE_FORCE_SYNCHRONOUS,
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};

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/**
 * struct device_driver - The basic device driver structure
 * @name:	Name of the device driver.
 * @bus:	The bus which the device of this driver belongs to.
 * @owner:	The module owner.
 * @mod_name:	Used for built-in modules.
 * @suppress_bind_attrs: Disables bind/unbind via sysfs.
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 * @probe_type:	Type of the probe (synchronous or asynchronous) to use.
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 * @of_match_table: The open firmware table.
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 * @acpi_match_table: The ACPI match table.
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 * @probe:	Called to query the existence of a specific device,
 *		whether this driver can work with it, and bind the driver
 *		to a specific device.
 * @remove:	Called when the device is removed from the system to
 *		unbind a device from this driver.
 * @shutdown:	Called at shut-down time to quiesce the device.
 * @suspend:	Called to put the device to sleep mode. Usually to a
 *		low power state.
 * @resume:	Called to bring a device from sleep mode.
 * @groups:	Default attributes that get created by the driver core
 *		automatically.
 * @pm:		Power management operations of the device which matched
 *		this driver.
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 * @coredump:	Called when sysfs entry is written to. The device driver
 *		is expected to call the dev_coredump API resulting in a
 *		uevent.
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 * @p:		Driver core's private data, no one other than the driver
 *		core can touch this.
 *
 * The device driver-model tracks all of the drivers known to the system.
 * The main reason for this tracking is to enable the driver core to match
 * up drivers with new devices. Once drivers are known objects within the
 * system, however, a number of other things become possible. Device drivers
 * can export information and configuration variables that are independent
 * of any specific device.
 */
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struct device_driver {
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	const char		*name;
	struct bus_type		*bus;
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	struct module		*owner;
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	const char		*mod_name;	/* used for built-in modules */

	bool suppress_bind_attrs;	/* disables bind/unbind via sysfs */
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	enum probe_type probe_type;
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	const struct of_device_id	*of_match_table;
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	const struct acpi_device_id	*acpi_match_table;
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	int (*probe) (struct device *dev);
	int (*remove) (struct device *dev);
	void (*shutdown) (struct device *dev);
	int (*suspend) (struct device *dev, pm_message_t state);
	int (*resume) (struct device *dev);
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	const struct attribute_group **groups;
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	const struct dev_pm_ops *pm;
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	void (*coredump) (struct device *dev);
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	struct driver_private *p;
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};


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extern int __must_check driver_register(struct device_driver *drv);
extern void driver_unregister(struct device_driver *drv);
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extern struct device_driver *driver_find(const char *name,
					 struct bus_type *bus);
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extern int driver_probe_done(void);
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extern void wait_for_device_probe(void);
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/* sysfs interface for exporting driver attributes */
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struct driver_attribute {
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	struct attribute attr;
	ssize_t (*show)(struct device_driver *driver, char *buf);
	ssize_t (*store)(struct device_driver *driver, const char *buf,
			 size_t count);
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};

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#define DRIVER_ATTR_RW(_name) \
	struct driver_attribute driver_attr_##_name = __ATTR_RW(_name)
#define DRIVER_ATTR_RO(_name) \
	struct driver_attribute driver_attr_##_name = __ATTR_RO(_name)
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#define DRIVER_ATTR_WO(_name) \
	struct driver_attribute driver_attr_##_name = __ATTR_WO(_name)
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extern int __must_check driver_create_file(struct device_driver *driver,
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					const struct driver_attribute *attr);
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extern void driver_remove_file(struct device_driver *driver,
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			       const struct driver_attribute *attr);
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extern int __must_check driver_for_each_device(struct device_driver *drv,
					       struct device *start,
					       void *data,
					       int (*fn)(struct device *dev,
							 void *));
struct device *driver_find_device(struct device_driver *drv,
				  struct device *start, void *data,
				  int (*match)(struct device *dev, void *data));
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void driver_deferred_probe_add(struct device *dev);
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int driver_deferred_probe_check_state(struct device *dev);

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/**
 * struct subsys_interface - interfaces to device functions
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 * @name:       name of the device function
 * @subsys:     subsytem of the devices to attach to
 * @node:       the list of functions registered at the subsystem
 * @add_dev:    device hookup to device function handler
 * @remove_dev: device hookup to device function handler
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 *
 * Simple interfaces attached to a subsystem. Multiple interfaces can
 * attach to a subsystem and its devices. Unlike drivers, they do not
 * exclusively claim or control devices. Interfaces usually represent
 * a specific functionality of a subsystem/class of devices.
 */
struct subsys_interface {
	const char *name;
	struct bus_type *subsys;
	struct list_head node;
	int (*add_dev)(struct device *dev, struct subsys_interface *sif);
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	void (*remove_dev)(struct device *dev, struct subsys_interface *sif);
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};

int subsys_interface_register(struct subsys_interface *sif);
void subsys_interface_unregister(struct subsys_interface *sif);

int subsys_system_register(struct bus_type *subsys,
			   const struct attribute_group **groups);
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int subsys_virtual_register(struct bus_type *subsys,
			    const struct attribute_group **groups);
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/**
 * struct class - device classes
 * @name:	Name of the class.
 * @owner:	The module owner.
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 * @class_groups: Default attributes of this class.
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 * @dev_groups:	Default attributes of the devices that belong to the class.
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 * @dev_kobj:	The kobject that represents this class and links it into the hierarchy.
 * @dev_uevent:	Called when a device is added, removed from this class, or a
 *		few other things that generate uevents to add the environment
 *		variables.
 * @devnode:	Callback to provide the devtmpfs.
 * @class_release: Called to release this class.
 * @dev_release: Called to release the device.
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 * @shutdown_pre: Called at shut-down time before driver shutdown.
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 * @ns_type:	Callbacks so sysfs can detemine namespaces.
 * @namespace:	Namespace of the device belongs to this class.
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 * @get_ownership: Allows class to specify uid/gid of the sysfs directories
 *		for the devices belonging to the class. Usually tied to
 *		device's namespace.
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 * @pm:		The default device power management operations of this class.
 * @p:		The private data of the driver core, no one other than the
 *		driver core can touch this.
 *
 * A class is a higher-level view of a device that abstracts out low-level
 * implementation details. Drivers may see a SCSI disk or an ATA disk, but,
 * at the class level, they are all simply disks. Classes allow user space
 * to work with devices based on what they do, rather than how they are
 * connected or how they work.
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 */
struct class {
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	const char		*name;
	struct module		*owner;
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	const struct attribute_group	**class_groups;
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	const struct attribute_group	**dev_groups;
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	struct kobject			*dev_kobj;
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	int (*dev_uevent)(struct device *dev, struct kobj_uevent_env *env);
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	char *(*devnode)(struct device *dev, umode_t *mode);
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	void (*class_release)(struct class *class);
	void (*dev_release)(struct device *dev);
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	int (*shutdown_pre)(struct device *dev);
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	const struct kobj_ns_type_operations *ns_type;
	const void *(*namespace)(struct device *dev);

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	void (*get_ownership)(struct device *dev, kuid_t *uid, kgid_t *gid);

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	const struct dev_pm_ops *pm;

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	struct subsys_private *p;
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};

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struct class_dev_iter {
	struct klist_iter		ki;
	const struct device_type	*type;
};

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extern struct kobject *sysfs_dev_block_kobj;
extern struct kobject *sysfs_dev_char_kobj;
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extern int __must_check __class_register(struct class *class,
					 struct lock_class_key *key);
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extern void class_unregister(struct class *class);
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/* This is a #define to keep the compiler from merging different
 * instances of the __key variable */
#define class_register(class)			\
({						\
	static struct lock_class_key __key;	\
	__class_register(class, &__key);	\
})

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struct class_compat;
struct class_compat *class_compat_register(const char *name);
void class_compat_unregister(struct class_compat *cls);
int class_compat_create_link(struct class_compat *cls, struct device *dev,
			     struct device *device_link);
void class_compat_remove_link(struct class_compat *cls, struct device *dev,
			      struct device *device_link);

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extern void class_dev_iter_init(struct class_dev_iter *iter,
				struct class *class,
				struct device *start,
				const struct device_type *type);
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extern struct device *class_dev_iter_next(struct class_dev_iter *iter);
extern void class_dev_iter_exit(struct class_dev_iter *iter);

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extern int class_for_each_device(struct class *class, struct device *start,
				 void *data,
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				 int (*fn)(struct device *dev, void *data));
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extern struct device *class_find_device(struct class *class,
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					struct device *start, const void *data,
					int (*match)(struct device *, const void *));
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struct class_attribute {
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	struct attribute attr;
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	ssize_t (*show)(struct class *class, struct class_attribute *attr,
			char *buf);
	ssize_t (*store)(struct class *class, struct class_attribute *attr,
			const char *buf, size_t count);
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};

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#define CLASS_ATTR_RW(_name) \
	struct class_attribute class_attr_##_name = __ATTR_RW(_name)
#define CLASS_ATTR_RO(_name) \
	struct class_attribute class_attr_##_name = __ATTR_RO(_name)
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#define CLASS_ATTR_WO(_name) \
	struct class_attribute class_attr_##_name = __ATTR_WO(_name)
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extern int __must_check class_create_file_ns(struct class *class,
					     const struct class_attribute *attr,
					     const void *ns);
extern void class_remove_file_ns(struct class *class,
				 const struct class_attribute *attr,
				 const void *ns);

static inline int __must_check class_create_file(struct class *class,
					const struct class_attribute *attr)
{
	return class_create_file_ns(class, attr, NULL);
}

static inline void class_remove_file(struct class *class,
				     const struct class_attribute *attr)
{
	return class_remove_file_ns(class, attr, NULL);
}
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/* Simple class attribute that is just a static string */
struct class_attribute_string {
	struct class_attribute attr;
	char *str;
};

/* Currently read-only only */
#define _CLASS_ATTR_STRING(_name, _mode, _str) \
	{ __ATTR(_name, _mode, show_class_attr_string, NULL), _str }
#define CLASS_ATTR_STRING(_name, _mode, _str) \
	struct class_attribute_string class_attr_##_name = \
		_CLASS_ATTR_STRING(_name, _mode, _str)

extern ssize_t show_class_attr_string(struct class *class, struct class_attribute *attr,
                        char *buf);

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struct class_interface {
	struct list_head	node;
	struct class		*class;

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	int (*add_dev)		(struct device *, struct class_interface *);
	void (*remove_dev)	(struct device *, struct class_interface *);
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};

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extern int __must_check class_interface_register(struct class_interface *);
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extern void class_interface_unregister(struct class_interface *);

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extern struct class * __must_check __class_create(struct module *owner,
						  const char *name,
						  struct lock_class_key *key);
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extern void class_destroy(struct class *cls);

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/* This is a #define to keep the compiler from merging different
 * instances of the __key variable */
#define class_create(owner, name)		\
({						\
	static struct lock_class_key __key;	\
	__class_create(owner, name, &__key);	\
})

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/*
 * The type of device, "struct device" is embedded in. A class
 * or bus can contain devices of different types
 * like "partitions" and "disks", "mouse" and "event".
 * This identifies the device type and carries type-specific
 * information, equivalent to the kobj_type of a kobject.
 * If "name" is specified, the uevent will contain it in
 * the DEVTYPE variable.
 */
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struct device_type {
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	const char *name;
557
	const struct attribute_group **groups;
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	int (*uevent)(struct device *dev, struct kobj_uevent_env *env);
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	char *(*devnode)(struct device *dev, umode_t *mode,
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			 kuid_t *uid, kgid_t *gid);
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	void (*release)(struct device *dev);
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	const struct dev_pm_ops *pm;
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};

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/* interface for exporting device attributes */
struct device_attribute {
	struct attribute	attr;
	ssize_t (*show)(struct device *dev, struct device_attribute *attr,
			char *buf);
	ssize_t (*store)(struct device *dev, struct device_attribute *attr,
			 const char *buf, size_t count);
};

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struct dev_ext_attribute {
	struct device_attribute attr;
	void *var;
};

ssize_t device_show_ulong(struct device *dev, struct device_attribute *attr,
			  char *buf);
ssize_t device_store_ulong(struct device *dev, struct device_attribute *attr,
			   const char *buf, size_t count);
ssize_t device_show_int(struct device *dev, struct device_attribute *attr,
			char *buf);
ssize_t device_store_int(struct device *dev, struct device_attribute *attr,
			 const char *buf, size_t count);
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ssize_t device_show_bool(struct device *dev, struct device_attribute *attr,
			char *buf);
ssize_t device_store_bool(struct device *dev, struct device_attribute *attr,
			 const char *buf, size_t count);
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#define DEVICE_ATTR(_name, _mode, _show, _store) \
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	struct device_attribute dev_attr_##_name = __ATTR(_name, _mode, _show, _store)
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#define DEVICE_ATTR_PREALLOC(_name, _mode, _show, _store) \
	struct device_attribute dev_attr_##_name = \
		__ATTR_PREALLOC(_name, _mode, _show, _store)
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#define DEVICE_ATTR_RW(_name) \
	struct device_attribute dev_attr_##_name = __ATTR_RW(_name)
#define DEVICE_ATTR_RO(_name) \
	struct device_attribute dev_attr_##_name = __ATTR_RO(_name)
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#define DEVICE_ATTR_WO(_name) \
	struct device_attribute dev_attr_##_name = __ATTR_WO(_name)
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#define DEVICE_ULONG_ATTR(_name, _mode, _var) \
	struct dev_ext_attribute dev_attr_##_name = \
		{ __ATTR(_name, _mode, device_show_ulong, device_store_ulong), &(_var) }
#define DEVICE_INT_ATTR(_name, _mode, _var) \
	struct dev_ext_attribute dev_attr_##_name = \
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		{ __ATTR(_name, _mode, device_show_int, device_store_int), &(_var) }
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#define DEVICE_BOOL_ATTR(_name, _mode, _var) \
	struct dev_ext_attribute dev_attr_##_name = \
		{ __ATTR(_name, _mode, device_show_bool, device_store_bool), &(_var) }
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#define DEVICE_ATTR_IGNORE_LOCKDEP(_name, _mode, _show, _store) \
	struct device_attribute dev_attr_##_name =		\
		__ATTR_IGNORE_LOCKDEP(_name, _mode, _show, _store)
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extern int device_create_file(struct device *device,
			      const struct device_attribute *entry);
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extern void device_remove_file(struct device *dev,
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			       const struct device_attribute *attr);
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extern bool device_remove_file_self(struct device *dev,
				    const struct device_attribute *attr);
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extern int __must_check device_create_bin_file(struct device *dev,
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					const struct bin_attribute *attr);
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extern void device_remove_bin_file(struct device *dev,
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				   const struct bin_attribute *attr);
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/* device resource management */
typedef void (*dr_release_t)(struct device *dev, void *res);
typedef int (*dr_match_t)(struct device *dev, void *res, void *match_data);

#ifdef CONFIG_DEBUG_DEVRES
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extern void *__devres_alloc_node(dr_release_t release, size_t size, gfp_t gfp,
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				 int nid, const char *name) __malloc;
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#define devres_alloc(release, size, gfp) \
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	__devres_alloc_node(release, size, gfp, NUMA_NO_NODE, #release)
#define devres_alloc_node(release, size, gfp, nid) \
	__devres_alloc_node(release, size, gfp, nid, #release)
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#else
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extern void *devres_alloc_node(dr_release_t release, size_t size, gfp_t gfp,
641
			       int nid) __malloc;
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static inline void *devres_alloc(dr_release_t release, size_t size, gfp_t gfp)
{
	return devres_alloc_node(release, size, gfp, NUMA_NO_NODE);
}
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#endif
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extern void devres_for_each_res(struct device *dev, dr_release_t release,
				dr_match_t match, void *match_data,
				void (*fn)(struct device *, void *, void *),
				void *data);
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extern void devres_free(void *res);
extern void devres_add(struct device *dev, void *res);
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extern void *devres_find(struct device *dev, dr_release_t release,
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			 dr_match_t match, void *match_data);
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extern void *devres_get(struct device *dev, void *new_res,
			dr_match_t match, void *match_data);
extern void *devres_remove(struct device *dev, dr_release_t release,
			   dr_match_t match, void *match_data);
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extern int devres_destroy(struct device *dev, dr_release_t release,
			  dr_match_t match, void *match_data);
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extern int devres_release(struct device *dev, dr_release_t release,
			  dr_match_t match, void *match_data);
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/* devres group */
extern void * __must_check devres_open_group(struct device *dev, void *id,
					     gfp_t gfp);
extern void devres_close_group(struct device *dev, void *id);
extern void devres_remove_group(struct device *dev, void *id);
extern int devres_release_group(struct device *dev, void *id);

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/* managed devm_k.alloc/kfree for device drivers */
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extern void *devm_kmalloc(struct device *dev, size_t size, gfp_t gfp) __malloc;
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extern __printf(3, 0)
char *devm_kvasprintf(struct device *dev, gfp_t gfp, const char *fmt,
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		      va_list ap) __malloc;
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extern __printf(3, 4)
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char *devm_kasprintf(struct device *dev, gfp_t gfp, const char *fmt, ...) __malloc;
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static inline void *devm_kzalloc(struct device *dev, size_t size, gfp_t gfp)
{
	return devm_kmalloc(dev, size, gfp | __GFP_ZERO);
}
static inline void *devm_kmalloc_array(struct device *dev,
				       size_t n, size_t size, gfp_t flags)
{
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	size_t bytes;

	if (unlikely(check_mul_overflow(n, size, &bytes)))
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		return NULL;
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	return devm_kmalloc(dev, bytes, flags);
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}
static inline void *devm_kcalloc(struct device *dev,
				 size_t n, size_t size, gfp_t flags)
{
	return devm_kmalloc_array(dev, n, size, flags | __GFP_ZERO);
}
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extern void devm_kfree(struct device *dev, const void *p);
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extern char *devm_kstrdup(struct device *dev, const char *s, gfp_t gfp) __malloc;
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extern const char *devm_kstrdup_const(struct device *dev,
				      const char *s, gfp_t gfp);
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extern void *devm_kmemdup(struct device *dev, const void *src, size_t len,
			  gfp_t gfp);
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extern unsigned long devm_get_free_pages(struct device *dev,
					 gfp_t gfp_mask, unsigned int order);
extern void devm_free_pages(struct device *dev, unsigned long addr);
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void __iomem *devm_ioremap_resource(struct device *dev, struct resource *res);
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void __iomem *devm_of_iomap(struct device *dev,
			    struct device_node *node, int index,
			    resource_size_t *size);

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/* allows to add/remove a custom action to devres stack */
int devm_add_action(struct device *dev, void (*action)(void *), void *data);
void devm_remove_action(struct device *dev, void (*action)(void *), void *data);

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static inline int devm_add_action_or_reset(struct device *dev,
					   void (*action)(void *), void *data)
{
	int ret;

	ret = devm_add_action(dev, action, data);
	if (ret)
		action(data);

	return ret;
}

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/**
 * devm_alloc_percpu - Resource-managed alloc_percpu
 * @dev: Device to allocate per-cpu memory for
 * @type: Type to allocate per-cpu memory for
 *
 * Managed alloc_percpu. Per-cpu memory allocated with this function is
 * automatically freed on driver detach.
 *
 * RETURNS:
 * Pointer to allocated memory on success, NULL on failure.
 */
#define devm_alloc_percpu(dev, type)      \
	((typeof(type) __percpu *)__devm_alloc_percpu((dev), sizeof(type), \
						      __alignof__(type)))

void __percpu *__devm_alloc_percpu(struct device *dev, size_t size,
				   size_t align);
void devm_free_percpu(struct device *dev, void __percpu *pdata);

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struct device_dma_parameters {
	/*
	 * a low level driver may set these to teach IOMMU code about
	 * sg limitations.
	 */
	unsigned int max_segment_size;
	unsigned long segment_boundary_mask;
};

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/**
 * struct device_connection - Device Connection Descriptor
 * @endpoint: The names of the two devices connected together
 * @id: Unique identifier for the connection
 * @list: List head, private, for internal use only
 */
struct device_connection {
	const char		*endpoint[2];
	const char		*id;
	struct list_head	list;
};

void *device_connection_find_match(struct device *dev, const char *con_id,
				void *data,
				void *(*match)(struct device_connection *con,
					       int ep, void *data));

struct device *device_connection_find(struct device *dev, const char *con_id);

void device_connection_add(struct device_connection *con);
void device_connection_remove(struct device_connection *con);

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/**
 * device_connections_add - Add multiple device connections at once
 * @cons: Zero terminated array of device connection descriptors
 */
static inline void device_connections_add(struct device_connection *cons)
{
	struct device_connection *c;

	for (c = cons; c->endpoint[0]; c++)
		device_connection_add(c);
}

/**
 * device_connections_remove - Remove multiple device connections at once
 * @cons: Zero terminated array of device connection descriptors
 */
static inline void device_connections_remove(struct device_connection *cons)
{
	struct device_connection *c;

	for (c = cons; c->endpoint[0]; c++)
		device_connection_remove(c);
}

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/**
 * enum device_link_state - Device link states.
 * @DL_STATE_NONE: The presence of the drivers is not being tracked.
 * @DL_STATE_DORMANT: None of the supplier/consumer drivers is present.
 * @DL_STATE_AVAILABLE: The supplier driver is present, but the consumer is not.
 * @DL_STATE_CONSUMER_PROBE: The consumer is probing (supplier driver present).
 * @DL_STATE_ACTIVE: Both the supplier and consumer drivers are present.
 * @DL_STATE_SUPPLIER_UNBIND: The supplier driver is unbinding.
 */
enum device_link_state {
	DL_STATE_NONE = -1,
	DL_STATE_DORMANT = 0,
	DL_STATE_AVAILABLE,
	DL_STATE_CONSUMER_PROBE,
	DL_STATE_ACTIVE,
	DL_STATE_SUPPLIER_UNBIND,
};

/*
 * Device link flags.
 *
 * STATELESS: The core won't track the presence of supplier/consumer drivers.
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 * AUTOREMOVE_CONSUMER: Remove the link automatically on consumer driver unbind.
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 * PM_RUNTIME: If set, the runtime PM framework will use this link.
 * RPM_ACTIVE: Run pm_runtime_get_sync() on the supplier during link creation.
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 * AUTOREMOVE_SUPPLIER: Remove the link automatically on supplier driver unbind.
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 * AUTOPROBE_CONSUMER: Probe consumer driver automatically after supplier binds.
832
 */
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#define DL_FLAG_STATELESS		BIT(0)
#define DL_FLAG_AUTOREMOVE_CONSUMER	BIT(1)
#define DL_FLAG_PM_RUNTIME		BIT(2)
#define DL_FLAG_RPM_ACTIVE		BIT(3)
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#define DL_FLAG_AUTOREMOVE_SUPPLIER	BIT(4)
838
#define DL_FLAG_AUTOPROBE_CONSUMER	BIT(5)
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/**
 * struct device_link - Device link representation.
 * @supplier: The device on the supplier end of the link.
 * @s_node: Hook to the supplier device's list of links to consumers.
 * @consumer: The device on the consumer end of the link.
 * @c_node: Hook to the consumer device's list of links to suppliers.
 * @status: The state of the link (with respect to the presence of drivers).
 * @flags: Link flags.
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 * @rpm_active: Whether or not the consumer device is runtime-PM-active.
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 * @kref: Count repeated addition of the same link.
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 * @rcu_head: An RCU head to use for deferred execution of SRCU callbacks.
 */
struct device_link {
	struct device *supplier;
	struct list_head s_node;
	struct device *consumer;
	struct list_head c_node;
	enum device_link_state status;
	u32 flags;
859
	refcount_t rpm_active;
860
	struct kref kref;
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#ifdef CONFIG_SRCU
	struct rcu_head rcu_head;
#endif
};

/**
 * enum dl_dev_state - Device driver presence tracking information.
 * @DL_DEV_NO_DRIVER: There is no driver attached to the device.
 * @DL_DEV_PROBING: A driver is probing.
 * @DL_DEV_DRIVER_BOUND: The driver has been bound to the device.
 * @DL_DEV_UNBINDING: The driver is unbinding from the device.
 */
enum dl_dev_state {
	DL_DEV_NO_DRIVER = 0,
	DL_DEV_PROBING,
	DL_DEV_DRIVER_BOUND,
	DL_DEV_UNBINDING,
};

/**
 * struct dev_links_info - Device data related to device links.
 * @suppliers: List of links to supplier devices.
 * @consumers: List of links to consumer devices.
 * @status: Driver status information.
 */
struct dev_links_info {
	struct list_head suppliers;
	struct list_head consumers;
	enum dl_dev_state status;
};

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/**
 * struct device - The basic device structure
 * @parent:	The device's "parent" device, the device to which it is attached.
 * 		In most cases, a parent device is some sort of bus or host
 * 		controller. If parent is NULL, the device, is a top-level device,
 * 		which is not usually what you want.
 * @p:		Holds the private data of the driver core portions of the device.
 * 		See the comment of the struct device_private for detail.
 * @kobj:	A top-level, abstract class from which other classes are derived.
 * @init_name:	Initial name of the device.
 * @type:	The type of device.
 * 		This identifies the device type and carries type-specific
 * 		information.
 * @mutex:	Mutex to synchronize calls to its driver.
 * @bus:	Type of bus device is on.
 * @driver:	Which driver has allocated this
 * @platform_data: Platform data specific to the device.
 * 		Example: For devices on custom boards, as typical of embedded
 * 		and SOC based hardware, Linux often uses platform_data to point
 * 		to board-specific structures describing devices and how they
 * 		are wired.  That can include what ports are available, chip
 * 		variants, which GPIO pins act in what additional roles, and so
 * 		on.  This shrinks the "Board Support Packages" (BSPs) and
 * 		minimizes board-specific #ifdefs in drivers.
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 * @driver_data: Private pointer for driver specific info.
917
 * @links:	Links to suppliers and consumers of this device.
918
 * @power:	For device power management.
919
 *		See Documentation/driver-api/pm/devices.rst for details.
920
 * @pm_domain:	Provide callbacks that are executed during system suspend,
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 * 		hibernation, system resume and during runtime PM transitions
 * 		along with subsystem-level and driver-level callbacks.
923
 * @pins:	For device pin management.
924
 *		See Documentation/driver-api/pinctl.rst for details.
925
 * @msi_list:	Hosts MSI descriptors
926
 * @msi_domain: The generic MSI domain this device is using.
927
 * @numa_node:	NUMA node this device is close to.
928
 * @dma_ops:    DMA mapping operations for this device.
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 * @dma_mask:	Dma mask (if dma'ble device).
 * @coherent_dma_mask: Like dma_mask, but for alloc_coherent mapping as not all
 * 		hardware supports 64-bit addresses for consistent allocations
 * 		such descriptors.
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 * @bus_dma_mask: Mask of an upstream bridge or bus which imposes a smaller DMA
 *		limit than the device itself supports.
935
 * @dma_pfn_offset: offset of DMA memory range relatively of RAM
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 * @dma_parms:	A low level driver may set these to teach IOMMU code about
 * 		segment limitations.
 * @dma_pools:	Dma pools (if dma'ble device).
 * @dma_mem:	Internal for coherent mem override.
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 * @cma_area:	Contiguous memory area for dma allocations
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 * @archdata:	For arch-specific additions.
 * @of_node:	Associated device tree node.
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 * @fwnode:	Associated device node supplied by platform firmware.
944
 * @devt:	For creating the sysfs "dev".
945
 * @id:		device instance
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 * @devres_lock: Spinlock to protect the resource of the device.
 * @devres_head: The resources list of the device.
 * @knode_class: The node used to add the device to the class list.
 * @class:	The class of the device.
 * @groups:	Optional attribute groups.
 * @release:	Callback to free the device after all references have
 * 		gone away. This should be set by the allocator of the
 * 		device (i.e. the bus driver that discovered the device).
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 * @iommu_group: IOMMU group the device belongs to.
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 * @iommu_fwspec: IOMMU-specific properties supplied by firmware.
956
 *
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 * @offline_disabled: If set, the device is permanently online.
 * @offline:	Set after successful invocation of bus type's .offline().
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 * @of_node_reused: Set if the device-tree node is shared with an ancestor
 *              device.
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 * @dma_coherent: this particular device is dma coherent, even if the
 *		architecture supports non-coherent devices.
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 *
 * At the lowest level, every device in a Linux system is represented by an
 * instance of struct device. The device structure contains the information
 * that the device model core needs to model the system. Most subsystems,
 * however, track additional information about the devices they host. As a
 * result, it is rare for devices to be represented by bare device structures;
 * instead, that structure, like kobject structures, is usually embedded within
 * a higher-level representation of the device.
 */
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struct device {
973
	struct device		*parent;
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	struct device_private	*p;

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	struct kobject kobj;
978
	const char		*init_name; /* initial name of the device */
979
	const struct device_type *type;
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981
	struct mutex		mutex;	/* mutex to synchronize calls to
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					 * its driver.
					 */

985
	struct bus_type	*bus;		/* type of bus device is on */
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	struct device_driver *driver;	/* which driver has allocated this
					   device */
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	void		*platform_data;	/* Platform specific data, device
					   core doesn't touch it */
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	void		*driver_data;	/* Driver data, set and get with
					   dev_set/get_drvdata */
992
	struct dev_links_info	links;
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	struct dev_pm_info	power;
994
	struct dev_pm_domain	*pm_domain;
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#ifdef CONFIG_GENERIC_MSI_IRQ_DOMAIN
	struct irq_domain	*msi_domain;
#endif
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#ifdef CONFIG_PINCTRL
	struct dev_pin_info	*pins;
#endif
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#ifdef CONFIG_GENERIC_MSI_IRQ
	struct list_head	msi_list;
#endif
1005

1006 1007 1008
#ifdef CONFIG_NUMA
	int		numa_node;	/* NUMA node this device is close to */
#endif
1009
	const struct dma_map_ops *dma_ops;
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	u64		*dma_mask;	/* dma mask (if dma'able device) */
	u64		coherent_dma_mask;/* Like dma_mask, but for
					     alloc_coherent mappings as
					     not all hardware supports
					     64 bit addresses for consistent
					     allocations such descriptors. */
1016
	u64		bus_dma_mask;	/* upstream dma_mask constraint */
1017
	unsigned long	dma_pfn_offset;
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	struct device_dma_parameters *dma_parms;

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	struct list_head	dma_pools;	/* dma pools (if dma'ble) */

	struct dma_coherent_mem	*dma_mem; /* internal for coherent mem
					     override */
1025
#ifdef CONFIG_DMA_CMA
1026 1027 1028
	struct cma *cma_area;		/* contiguous memory area for dma
					   allocations */
#endif
1029 1030
	/* arch specific additions */
	struct dev_archdata	archdata;
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	struct device_node	*of_node; /* associated device tree node */
1033
	struct fwnode_handle	*fwnode; /* firmware device node */
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1035
	dev_t			devt;	/* dev_t, creates the sysfs "dev" */
1036
	u32			id;	/* device instance */
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	spinlock_t		devres_lock;
	struct list_head	devres_head;

1041
	struct class		*class;
1042
	const struct attribute_group **groups;	/* optional groups */
1043

1044
	void	(*release)(struct device *dev);
1045
	struct iommu_group	*iommu_group;
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	struct iommu_fwspec	*iommu_fwspec;
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	bool			offline_disabled:1;
	bool			offline:1;
1050
	bool			of_node_reused:1;
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#if defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_DEVICE) || \
    defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU) || \
    defined(CONFIG_ARCH_HAS_SYNC_DMA_FOR_CPU_ALL)
	bool			dma_coherent:1;
#endif
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};

1058 1059 1060 1061 1062
static inline struct device *kobj_to_dev(struct kobject *kobj)
{
	return container_of(kobj, struct device, kobj);
}

1063 1064 1065 1066 1067 1068 1069 1070 1071 1072
/**
 * device_iommu_mapped - Returns true when the device DMA is translated
 *			 by an IOMMU
 * @dev: Device to perform the check on
 */
static inline bool device_iommu_mapped(struct device *dev)
{
	return (dev->iommu_group != NULL);
}

1073 1074 1075
/* Get the wakeup routines, which depend on struct device */
#include <linux/pm_wakeup.h>

1076
static inline const char *dev_name(const struct device *dev)
1077
{
1078 1079 1080 1081
	/* Use the init name until the kobject becomes available */
	if (dev->init_name)
		return dev->init_name;

1082
	return kobject_name(&dev->kobj);
1083 1084
}

1085 1086
extern __printf(2, 3)
int dev_set_name(struct device *dev, const char *name, ...);
1087

1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106
#ifdef CONFIG_NUMA
static inline int dev_to_node(struct device *dev)
{
	return dev->numa_node;
}
static inline void set_dev_node(struct device *dev, int node)
{
	dev->numa_node = node;
}
#else
static inline int dev_to_node(struct device *dev)
{
	return -1;
}
static inline void set_dev_node(struct device *dev, int node)
{
}
#endif

1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122
static inline struct irq_domain *dev_get_msi_domain(const struct device *dev)
{
#ifdef CONFIG_GENERIC_MSI_IRQ_DOMAIN
	return dev->msi_domain;
#else
	return NULL;
#endif
}

static inline void dev_set_msi_domain(struct device *dev, struct irq_domain *d)
{
#ifdef CONFIG_GENERIC_MSI_IRQ_DOMAIN
	dev->msi_domain = d;
#endif
}

1123 1124 1125 1126 1127 1128 1129 1130 1131 1132
static inline void *dev_get_drvdata(const struct device *dev)
{
	return dev->driver_data;
}

static inline void dev_set_drvdata(struct device *dev, void *data)
{
	dev->driver_data = data;
}

1133 1134 1135 1136 1137
static inline struct pm_subsys_data *dev_to_psd(struct device *dev)
{
	return dev ? dev->power.subsys_data : NULL;
}

1138 1139 1140 1141 1142 1143 1144 1145 1146 1147
static inline unsigned int dev_get_uevent_suppress(const struct device *dev)
{
	return dev->kobj.uevent_suppress;
}

static inline void dev_set_uevent_suppress(struct device *dev, int val)
{
	dev->kobj.uevent_suppress = val;
}

1148 1149
static inline int device_is_registered(struct device *dev)
{
1150
	return dev->kobj.state_in_sysfs;
1151 1152
}

1153 1154
static inline void device_enable_async_suspend(struct device *dev)
{
1155
	if (!dev->power.is_prepared)
1156 1157 1158
		dev->power.async_suspend = true;
}

1159 1160
static inline void device_disable_async_suspend(struct device *dev)
{
1161
	if (!dev->power.is_prepared)
1162 1163 1164 1165 1166 1167 1168 1169
		dev->power.async_suspend = false;
}

static inline bool device_async_suspend_enabled(struct device *dev)
{
	return !!dev->power.async_suspend;
}

1170 1171 1172 1173 1174 1175 1176
static inline void dev_pm_syscore_device(struct device *dev, bool val)
{
#ifdef CONFIG_PM_SLEEP
	dev->power.syscore = val;
#endif
}

1177 1178 1179 1180 1181 1182 1183 1184 1185 1186
static inline void dev_pm_set_driver_flags(struct device *dev, u32 flags)
{
	dev->power.driver_flags = flags;
}

static inline bool dev_pm_test_driver_flags(struct device *dev, u32 flags)
{
	return !!(dev->power.driver_flags & flags);
}

1187 1188
static inline void device_lock(struct device *dev)
{
1189
	mutex_lock(&dev->mutex);
1190 1191
}

1192 1193 1194 1195 1196
static inline int device_lock_interruptible(struct device *dev)
{
	return mutex_lock_interruptible(&dev->mutex);
}

1197 1198
static inline int device_trylock(struct device *dev)
{
1199
	return mutex_trylock(&dev->mutex);
1200 1201 1202 1203
}

static inline void device_unlock(struct device *dev)
{
1204
	mutex_unlock(&dev->mutex);
1205 1206
}

1207 1208 1209 1210 1211
static inline void device_lock_assert(struct device *dev)
{
	lockdep_assert_held(&dev->mutex);
}

1212 1213 1214 1215 1216 1217 1218
static inline struct device_node *dev_of_node(struct device *dev)
{
	if (!IS_ENABLED(CONFIG_OF))
		return NULL;
	return dev->of_node;
}

1219 1220
void driver_init(void);

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/*
 * High level routines for use by the bus drivers
 */
1224 1225 1226 1227 1228 1229 1230
extern int __must_check device_register(struct device *dev);
extern void device_unregister(struct device *dev);
extern void device_initialize(struct device *dev);
extern int __must_check device_add(struct device *dev);
extern void device_del(struct device *dev);
extern int device_for_each_child(struct device *dev, void *data,
		     int (*fn)(struct device *dev, void *data));
1231 1232
extern int device_for_each_child_reverse(struct device *dev, void *data,
		     int (*fn)(struct device *dev, void *data));
1233 1234
extern struct device *device_find_child(struct device *dev, void *data,
				int (*match)(struct device *dev, void *data));
1235
extern int device_rename(struct device *dev, const char *new_name);
1236 1237
extern int device_move(struct device *dev, struct device *new_parent,
		       enum dpm_order dpm_order);
1238
extern const char *device_get_devnode(struct device *dev,
1239
				      umode_t *mode, kuid_t *uid, kgid_t *gid,
1240
				      const char **tmp);
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1242 1243 1244 1245 1246 1247 1248
static inline bool device_supports_offline(struct device *dev)
{
	return dev->bus && dev->bus->offline && dev->bus->online;
}

extern void lock_device_hotplug(void);
extern void unlock_device_hotplug(void);
1249
extern int lock_device_hotplug_sysfs(void);
1250 1251
extern int device_offline(struct device *dev);
extern int device_online(struct device *dev);
1252 1253
extern void set_primary_fwnode(struct device *dev, struct fwnode_handle *fwnode);
extern void set_secondary_fwnode(struct device *dev, struct fwnode_handle *fwnode);
1254
void device_set_of_node_from_dev(struct device *dev, const struct device *dev2);
1255

1256 1257 1258 1259 1260 1261 1262
static inline int dev_num_vf(struct device *dev)
{
	if (dev->bus && dev->bus->num_vf)
		return dev->bus->num_vf(dev);
	return 0;
}

1263 1264 1265 1266 1267
/*
 * Root device objects for grouping under /sys/devices
 */
extern struct device *__root_device_register(const char *name,
					     struct module *owner);
1268

1269
/* This is a macro to avoid include problems with THIS_MODULE */
1270 1271 1272
#define root_device_register(name) \
	__root_device_register(name, THIS_MODULE)

1273 1274
extern void root_device_unregister(struct device *root);

1275 1276 1277 1278 1279
static inline void *dev_get_platdata(const struct device *dev)
{
	return dev->platform_data;
}

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/*
 * Manual binding of a device to driver. See drivers/base/bus.c
 * for information on use.
 */
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extern int __must_check device_bind_driver(struct device *dev);
1285 1286
extern void device_release_driver(struct device *dev);
extern int  __must_check device_attach(struct device *dev);
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extern int __must_check driver_attach(struct device_driver *drv);
1288
extern void device_initial_probe(struct device *dev);
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extern int __must_check device_reprobe(struct device *dev);
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1291 1292
extern bool device_is_bound(struct device *dev);

1293 1294 1295
/*
 * Easy functions for dynamically creating devices on the fly
 */
1296 1297 1298 1299
extern __printf(5, 0)
struct device *device_create_vargs(struct class *cls, struct device *parent,
				   dev_t devt, void *drvdata,
				   const char *fmt, va_list vargs);
1300 1301 1302 1303
extern __printf(5, 6)
struct device *device_create(struct class *cls, struct device *parent,
			     dev_t devt, void *drvdata,
			     const char *fmt, ...);
1304 1305 1306 1307 1308
extern __printf(6, 7)
struct device *device_create_with_groups(struct class *cls,
			     struct device *parent, dev_t devt, void *drvdata,
			     const struct attribute_group **groups,
			     const char *fmt, ...);
1309
extern void device_destroy(struct class *cls, dev_t devt);
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1311 1312 1313 1314 1315
extern int __must_check device_add_groups(struct device *dev,
					const struct attribute_group **groups);
extern void device_remove_groups(struct device *dev,
				 const struct attribute_group **groups);

1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331
static inline int __must_check device_add_group(struct device *dev,
					const struct attribute_group *grp)
{
	const struct attribute_group *groups[] = { grp, NULL };

	return device_add_groups(dev, groups);
}

static inline void device_remove_group(struct device *dev,
				       const struct attribute_group *grp)
{
	const struct attribute_group *groups[] = { grp, NULL };

	return device_remove_groups(dev, groups);
}

1332 1333 1334 1335 1336 1337 1338 1339 1340
extern int __must_check devm_device_add_groups(struct device *dev,
					const struct attribute_group **groups);
extern void devm_device_remove_groups(struct device *dev,
				      const struct attribute_group **groups);
extern int __must_check devm_device_add_group(struct device *dev,
					const struct attribute_group *grp);
extern void devm_device_remove_group(struct device *dev,
				     const struct attribute_group *grp);

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/*
 * Platform "fixup" functions - allow the platform to have their say
 * about devices and actions that the general device layer doesn't
 * know about.
 */
/* Notify platform of device discovery */
1347
extern int (*platform_notify)(struct device *dev);
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1349
extern int (*platform_notify_remove)(struct device *dev);
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1352
/*
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 * get_device - atomically increment the reference count for the device.
 *
 */
1356 1357
extern struct device *get_device(struct device *dev);
extern void put_device(struct device *dev);
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Linus Torvalds 已提交
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1359 1360 1361
#ifdef CONFIG_DEVTMPFS
extern int devtmpfs_create_node(struct device *dev);
extern int devtmpfs_delete_node(struct device *dev);
1362
extern int devtmpfs_mount(const char *mntdir);
1363 1364 1365 1366 1367 1368
#else
static inline int devtmpfs_create_node(struct device *dev) { return 0; }
static inline int devtmpfs_delete_node(struct device *dev) { return 0; }
static inline int devtmpfs_mount(const char *mountpoint) { return 0; }
#endif

1369
/* drivers/base/power/shutdown.c */
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extern void device_shutdown(void);

/* debugging and troubleshooting/diagnostic helpers. */
1373
extern const char *dev_driver_string(const struct device *dev);
1374

1375 1376 1377 1378
/* Device links interface. */
struct device_link *device_link_add(struct device *consumer,
				    struct device *supplier, u32 flags);
void device_link_del(struct device_link *link);
1379
void device_link_remove(void *consumer, struct device *supplier);
1380

1381 1382 1383 1384
#ifndef dev_fmt
#define dev_fmt(fmt) fmt
#endif

1385 1386
#ifdef CONFIG_PRINTK

1387
__printf(3, 0) __cold
1388 1389
int dev_vprintk_emit(int level, const struct device *dev,
		     const char *fmt, va_list args);
1390
__printf(3, 4) __cold
1391
int dev_printk_emit(int level, const struct device *dev, const char *fmt, ...);
1392

1393
__printf(3, 4) __cold
1394 1395
void dev_printk(const char *level, const struct device *dev,
		const char *fmt, ...);
1396
__printf(2, 3) __cold
1397
void _dev_emerg(const struct device *dev, const char *fmt, ...);
1398
__printf(2, 3) __cold
1399
void _dev_alert(const struct device *dev, const char *fmt, ...);
1400
__printf(2, 3) __cold
1401
void _dev_crit(const struct device *dev, const char *fmt, ...);
1402
__printf(2, 3) __cold
1403
void _dev_err(const struct device *dev, const char *fmt, ...);
1404
__printf(2, 3) __cold
1405
void _dev_warn(const struct device *dev, const char *fmt, ...);
1406
__printf(2, 3) __cold
1407
void _dev_notice(const struct device *dev, const char *fmt, ...);
1408
__printf(2, 3) __cold
1409
void _dev_info(const struct device *dev, const char *fmt, ...);
1410 1411 1412

#else

1413 1414 1415
static inline __printf(3, 0)
int dev_vprintk_emit(int level, const struct device *dev,
		     const char *fmt, va_list args)
1416 1417 1418 1419 1420
{ return 0; }
static inline __printf(3, 4)
int dev_printk_emit(int level, const struct device *dev, const char *fmt, ...)
{ return 0; }

1421 1422 1423
static inline void __dev_printk(const char *level, const struct device *dev,
				struct va_format *vaf)
{}
1424
static inline __printf(3, 4)
1425
void dev_printk(const char *level, const struct device *dev,
1426
		 const char *fmt, ...)
1427
{}
1428 1429

static inline __printf(2, 3)
1430
void _dev_emerg(const struct device *dev, const char *fmt, ...)
1431
{}
1432
static inline __printf(2, 3)
1433
void _dev_crit(const struct device *dev, const char *fmt, ...)
1434
{}
1435
static inline __printf(2, 3)
1436
void _dev_alert(const struct device *dev, const char *fmt, ...)
1437
{}
1438
static inline __printf(2, 3)
1439
void _dev_err(const struct device *dev, const char *fmt, ...)
1440
{}
1441
static inline __printf(2, 3)
1442
void _dev_warn(const struct device *dev, const char *fmt, ...)
1443
{}
1444
static inline __printf(2, 3)
1445
void _dev_notice(const struct device *dev, const char *fmt, ...)
1446
{}
1447
static inline __printf(2, 3)
1448 1449
void _dev_info(const struct device *dev, const char *fmt, ...)
{}
1450 1451 1452

#endif

1453
/*
1454 1455
 * #defines for all the dev_<level> macros to prefix with whatever
 * possible use of #define dev_fmt(fmt) ...
1456 1457
 */

1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471
#define dev_emerg(dev, fmt, ...)					\
	_dev_emerg(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_crit(dev, fmt, ...)						\
	_dev_crit(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_alert(dev, fmt, ...)					\
	_dev_alert(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_err(dev, fmt, ...)						\
	_dev_err(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_warn(dev, fmt, ...)						\
	_dev_warn(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_notice(dev, fmt, ...)					\
	_dev_notice(dev, dev_fmt(fmt), ##__VA_ARGS__)
#define dev_info(dev, fmt, ...)						\
	_dev_info(dev, dev_fmt(fmt), ##__VA_ARGS__)
1472 1473

#if defined(CONFIG_DYNAMIC_DEBUG)
1474 1475
#define dev_dbg(dev, fmt, ...)						\
	dynamic_dev_dbg(dev, dev_fmt(fmt), ##__VA_ARGS__)
1476
#elif defined(DEBUG)
1477 1478
#define dev_dbg(dev, fmt, ...)						\
	dev_printk(KERN_DEBUG, dev, dev_fmt(fmt), ##__VA_ARGS__)
1479
#else
1480 1481 1482 1483
#define dev_dbg(dev, fmt, ...)						\
({									\
	if (0)								\
		dev_printk(KERN_DEBUG, dev, dev_fmt(fmt), ##__VA_ARGS__); \
1484 1485 1486
})
#endif

1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519
#ifdef CONFIG_PRINTK
#define dev_level_once(dev_level, dev, fmt, ...)			\
do {									\
	static bool __print_once __read_mostly;				\
									\
	if (!__print_once) {						\
		__print_once = true;					\
		dev_level(dev, fmt, ##__VA_ARGS__);			\
	}								\
} while (0)
#else
#define dev_level_once(dev_level, dev, fmt, ...)			\
do {									\
	if (0)								\
		dev_level(dev, fmt, ##__VA_ARGS__);			\
} while (0)
#endif

#define dev_emerg_once(dev, fmt, ...)					\
	dev_level_once(dev_emerg, dev, fmt, ##__VA_ARGS__)
#define dev_alert_once(dev, fmt, ...)					\
	dev_level_once(dev_alert, dev, fmt, ##__VA_ARGS__)
#define dev_crit_once(dev, fmt, ...)					\
	dev_level_once(dev_crit, dev, fmt, ##__VA_ARGS__)
#define dev_err_once(dev, fmt, ...)					\
	dev_level_once(dev_err, dev, fmt, ##__VA_ARGS__)
#define dev_warn_once(dev, fmt, ...)					\
	dev_level_once(dev_warn, dev, fmt, ##__VA_ARGS__)
#define dev_notice_once(dev, fmt, ...)					\
	dev_level_once(dev_notice, dev, fmt, ##__VA_ARGS__)
#define dev_info_once(dev, fmt, ...)					\
	dev_level_once(dev_info, dev, fmt, ##__VA_ARGS__)
#define dev_dbg_once(dev, fmt, ...)					\
J
Joe Perches 已提交
1520
	dev_level_once(dev_dbg, dev, fmt, ##__VA_ARGS__)
1521

1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544
#define dev_level_ratelimited(dev_level, dev, fmt, ...)			\
do {									\
	static DEFINE_RATELIMIT_STATE(_rs,				\
				      DEFAULT_RATELIMIT_INTERVAL,	\
				      DEFAULT_RATELIMIT_BURST);		\
	if (__ratelimit(&_rs))						\
		dev_level(dev, fmt, ##__VA_ARGS__);			\
} while (0)

#define dev_emerg_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_emerg, dev, fmt, ##__VA_ARGS__)
#define dev_alert_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_alert, dev, fmt, ##__VA_ARGS__)
#define dev_crit_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_crit, dev, fmt, ##__VA_ARGS__)
#define dev_err_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_err, dev, fmt, ##__VA_ARGS__)
#define dev_warn_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_warn, dev, fmt, ##__VA_ARGS__)
#define dev_notice_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_notice, dev, fmt, ##__VA_ARGS__)
#define dev_info_ratelimited(dev, fmt, ...)				\
	dev_level_ratelimited(dev_info, dev, fmt, ##__VA_ARGS__)
1545 1546
#if defined(CONFIG_DYNAMIC_DEBUG)
/* descriptor check is first to prevent flooding with "callbacks suppressed" */
1547
#define dev_dbg_ratelimited(dev, fmt, ...)				\
1548 1549 1550 1551 1552 1553 1554
do {									\
	static DEFINE_RATELIMIT_STATE(_rs,				\
				      DEFAULT_RATELIMIT_INTERVAL,	\
				      DEFAULT_RATELIMIT_BURST);		\
	DEFINE_DYNAMIC_DEBUG_METADATA(descriptor, fmt);			\
	if (unlikely(descriptor.flags & _DPRINTK_FLAGS_PRINT) &&	\
	    __ratelimit(&_rs))						\
1555
		__dynamic_dev_dbg(&descriptor, dev, dev_fmt(fmt),	\
1556 1557 1558 1559 1560 1561 1562 1563 1564
				  ##__VA_ARGS__);			\
} while (0)
#elif defined(DEBUG)
#define dev_dbg_ratelimited(dev, fmt, ...)				\
do {									\
	static DEFINE_RATELIMIT_STATE(_rs,				\
				      DEFAULT_RATELIMIT_INTERVAL,	\
				      DEFAULT_RATELIMIT_BURST);		\
	if (__ratelimit(&_rs))						\
1565
		dev_printk(KERN_DEBUG, dev, dev_fmt(fmt), ##__VA_ARGS__); \
1566
} while (0)
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#else
1568 1569 1570
#define dev_dbg_ratelimited(dev, fmt, ...)				\
do {									\
	if (0)								\
1571
		dev_printk(KERN_DEBUG, dev, dev_fmt(fmt), ##__VA_ARGS__); \
1572
} while (0)
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1573 1574
#endif

1575 1576 1577
#ifdef VERBOSE_DEBUG
#define dev_vdbg	dev_dbg
#else
1578 1579 1580 1581
#define dev_vdbg(dev, fmt, ...)						\
({									\
	if (0)								\
		dev_printk(KERN_DEBUG, dev, dev_fmt(fmt), ##__VA_ARGS__); \
1582
})
1583 1584
#endif

1585
/*
1586 1587
 * dev_WARN*() acts like dev_printk(), but with the key difference of
 * using WARN/WARN_ONCE to include file/line information and a backtrace.
1588 1589
 */
#define dev_WARN(dev, format, arg...) \
1590
	WARN(1, "%s %s: " format, dev_driver_string(dev), dev_name(dev), ## arg);
1591

F
Felipe Balbi 已提交
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#define dev_WARN_ONCE(dev, condition, format, arg...) \
1593 1594
	WARN_ONCE(condition, "%s %s: " format, \
			dev_driver_string(dev), dev_name(dev), ## arg)
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Felipe Balbi 已提交
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/* Create alias, so I can be autoloaded. */
#define MODULE_ALIAS_CHARDEV(major,minor) \
	MODULE_ALIAS("char-major-" __stringify(major) "-" __stringify(minor))
#define MODULE_ALIAS_CHARDEV_MAJOR(major) \
	MODULE_ALIAS("char-major-" __stringify(major) "-*")
1601 1602 1603 1604 1605 1606 1607

#ifdef CONFIG_SYSFS_DEPRECATED
extern long sysfs_deprecated;
#else
#define sysfs_deprecated 0
#endif

1608 1609 1610 1611 1612 1613
/**
 * module_driver() - Helper macro for drivers that don't do anything
 * special in module init/exit. This eliminates a lot of boilerplate.
 * Each module may only use this macro once, and calling it replaces
 * module_init() and module_exit().
 *
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 * @__driver: driver name
 * @__register: register function for this driver type
 * @__unregister: unregister function for this driver type
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 * @...: Additional arguments to be passed to __register and __unregister.
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 *
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 * Use this macro to construct bus specific macros for registering
 * drivers, and do not use it on its own.
 */
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#define module_driver(__driver, __register, __unregister, ...) \
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static int __init __driver##_init(void) \
{ \
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	return __register(&(__driver) , ##__VA_ARGS__); \
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} \
module_init(__driver##_init); \
static void __exit __driver##_exit(void) \
{ \
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	__unregister(&(__driver) , ##__VA_ARGS__); \
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} \
module_exit(__driver##_exit);

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/**
 * builtin_driver() - Helper macro for drivers that don't do anything
 * special in init and have no exit. This eliminates some boilerplate.
 * Each driver may only use this macro once, and calling it replaces
 * device_initcall (or in some cases, the legacy __initcall).  This is
 * meant to be a direct parallel of module_driver() above but without
 * the __exit stuff that is not used for builtin cases.
 *
 * @__driver: driver name
 * @__register: register function for this driver type
 * @...: Additional arguments to be passed to __register
 *
 * Use this macro to construct bus specific macros for registering
 * drivers, and do not use it on its own.
 */
#define builtin_driver(__driver, __register, ...) \
static int __init __driver##_init(void) \
{ \
	return __register(&(__driver) , ##__VA_ARGS__); \
} \
device_initcall(__driver##_init);

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Linus Torvalds 已提交
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#endif /* _DEVICE_H_ */