hci_core.h 52.0 KB
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/*
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   BlueZ - Bluetooth protocol stack for Linux
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   Copyright (c) 2000-2001, 2010, Code Aurora Forum. All rights reserved.
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   Written 2000,2001 by Maxim Krasnyansky <maxk@qualcomm.com>

   This program is free software; you can redistribute it and/or modify
   it under the terms of the GNU General Public License version 2 as
   published by the Free Software Foundation;

   THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
   OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
   FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT OF THIRD PARTY RIGHTS.
   IN NO EVENT SHALL THE COPYRIGHT HOLDER(S) AND AUTHOR(S) BE LIABLE FOR ANY
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   CLAIM, OR ANY SPECIAL INDIRECT OR CONSEQUENTIAL DAMAGES, OR ANY DAMAGES
   WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
   ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
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   OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.

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   ALL LIABILITY, INCLUDING LIABILITY FOR INFRINGEMENT OF ANY PATENTS,
   COPYRIGHTS, TRADEMARKS OR OTHER RIGHTS, RELATING TO USE OF THIS
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   SOFTWARE IS DISCLAIMED.
*/

#ifndef __HCI_CORE_H
#define __HCI_CORE_H

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#include <linux/idr.h>
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#include <linux/leds.h>
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#include <linux/rculist.h>

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#include <net/bluetooth/hci.h>
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#include <net/bluetooth/hci_sync.h>
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#include <net/bluetooth/hci_sock.h>
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/* HCI priority */
#define HCI_PRIO_MAX	7

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/* HCI Core structures */
struct inquiry_data {
	bdaddr_t	bdaddr;
	__u8		pscan_rep_mode;
	__u8		pscan_period_mode;
	__u8		pscan_mode;
	__u8		dev_class[3];
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	__le16		clock_offset;
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	__s8		rssi;
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	__u8		ssp_mode;
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};

struct inquiry_entry {
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	struct list_head	all;		/* inq_cache.all */
	struct list_head	list;		/* unknown or resolve */
	enum {
		NAME_NOT_KNOWN,
		NAME_NEEDED,
		NAME_PENDING,
		NAME_KNOWN,
	} name_state;
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	__u32			timestamp;
	struct inquiry_data	data;
};

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struct discovery_state {
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	int			type;
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	enum {
		DISCOVERY_STOPPED,
		DISCOVERY_STARTING,
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		DISCOVERY_FINDING,
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		DISCOVERY_RESOLVING,
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		DISCOVERY_STOPPING,
	} state;
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	struct list_head	all;	/* All devices found during inquiry */
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	struct list_head	unknown;	/* Name state not known */
	struct list_head	resolve;	/* Name needs to be resolved */
	__u32			timestamp;
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	bdaddr_t		last_adv_addr;
	u8			last_adv_addr_type;
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	s8			last_adv_rssi;
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	u32			last_adv_flags;
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	u8			last_adv_data[HCI_MAX_AD_LENGTH];
	u8			last_adv_data_len;
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	bool			report_invalid_rssi;
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	bool			result_filtering;
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	bool			limited;
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	s8			rssi;
	u16			uuid_count;
	u8			(*uuids)[16];
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	unsigned long		scan_start;
	unsigned long		scan_duration;
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	unsigned long		name_resolve_timeout;
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};

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#define SUSPEND_NOTIFIER_TIMEOUT	msecs_to_jiffies(2000) /* 2 seconds */

enum suspend_tasks {
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	SUSPEND_PAUSE_DISCOVERY,
	SUSPEND_UNPAUSE_DISCOVERY,

	SUSPEND_PAUSE_ADVERTISING,
	SUSPEND_UNPAUSE_ADVERTISING,

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	SUSPEND_SCAN_DISABLE,
	SUSPEND_SCAN_ENABLE,
	SUSPEND_DISCONNECTING,

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	SUSPEND_POWERING_DOWN,

	SUSPEND_PREPARE_NOTIFIER,
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	SUSPEND_SET_ADV_FILTER,
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	__SUSPEND_NUM_TASKS
};

enum suspended_state {
	BT_RUNNING = 0,
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	BT_SUSPEND_DISCONNECT,
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	BT_SUSPEND_CONFIGURE_WAKE,
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};

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struct hci_conn_hash {
	struct list_head list;
	unsigned int     acl_num;
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	unsigned int     amp_num;
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	unsigned int     sco_num;
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	unsigned int     le_num;
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	unsigned int     le_num_peripheral;
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};

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struct bdaddr_list {
	struct list_head list;
	bdaddr_t bdaddr;
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	u8 bdaddr_type;
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};
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struct codec_list {
	struct list_head list;
	u8	id;
	__u16	cid;
	__u16	vid;
	u8	transport;
	u8	num_caps;
	u32	len;
	struct hci_codec_caps caps[];
};

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struct bdaddr_list_with_irk {
	struct list_head list;
	bdaddr_t bdaddr;
	u8 bdaddr_type;
	u8 peer_irk[16];
	u8 local_irk[16];
};

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enum hci_conn_flags {
	HCI_CONN_FLAG_REMOTE_WAKEUP,
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	HCI_CONN_FLAG_DEVICE_PRIVACY,
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	__HCI_CONN_NUM_FLAGS,
};
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/* Make sure number of flags doesn't exceed sizeof(current_flags) */
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static_assert(__HCI_CONN_NUM_FLAGS < 32);

struct bdaddr_list_with_flags {
	struct list_head list;
	bdaddr_t bdaddr;
	u8 bdaddr_type;
	DECLARE_BITMAP(flags, __HCI_CONN_NUM_FLAGS);
};
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struct bt_uuid {
	struct list_head list;
	u8 uuid[16];
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	u8 size;
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	u8 svc_hint;
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};

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struct blocked_key {
	struct list_head list;
	struct rcu_head rcu;
	u8 type;
	u8 val[16];
};

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struct smp_csrk {
	bdaddr_t bdaddr;
	u8 bdaddr_type;
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	u8 type;
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	u8 val[16];
};

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struct smp_ltk {
	struct list_head list;
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	struct rcu_head rcu;
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	bdaddr_t bdaddr;
	u8 bdaddr_type;
	u8 authenticated;
	u8 type;
	u8 enc_size;
	__le16 ediv;
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	__le64 rand;
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	u8 val[16];
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};
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struct smp_irk {
	struct list_head list;
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	struct rcu_head rcu;
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	bdaddr_t rpa;
	bdaddr_t bdaddr;
	u8 addr_type;
	u8 val[16];
};

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struct link_key {
	struct list_head list;
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	struct rcu_head rcu;
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	bdaddr_t bdaddr;
	u8 type;
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	u8 val[HCI_LINK_KEY_SIZE];
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	u8 pin_len;
};

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struct oob_data {
	struct list_head list;
	bdaddr_t bdaddr;
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	u8 bdaddr_type;
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	u8 present;
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	u8 hash192[16];
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	u8 rand192[16];
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	u8 hash256[16];
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	u8 rand256[16];
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};

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struct adv_info {
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	struct list_head list;
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	bool enabled;
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	bool pending;
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	__u8	instance;
	__u32	flags;
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	__u16	timeout;
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	__u16	remaining_time;
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	__u16	duration;
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	__u16	adv_data_len;
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	__u8	adv_data[HCI_MAX_EXT_AD_LENGTH];
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	__u16	scan_rsp_len;
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	__u8	scan_rsp_data[HCI_MAX_EXT_AD_LENGTH];
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	__s8	tx_power;
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	__u32   min_interval;
	__u32   max_interval;
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	bdaddr_t	random_addr;
	bool 		rpa_expired;
	struct delayed_work	rpa_expired_cb;
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};

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#define HCI_MAX_ADV_INSTANCES		5
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#define HCI_DEFAULT_ADV_DURATION	2

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#define HCI_ADV_TX_POWER_NO_PREFERENCE 0x7F

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struct monitored_device {
	struct list_head list;

	bdaddr_t bdaddr;
	__u8     addr_type;
	__u16    handle;
	bool     notified;
};

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struct adv_pattern {
	struct list_head list;
	__u8 ad_type;
	__u8 offset;
	__u8 length;
	__u8 value[HCI_MAX_AD_LENGTH];
};

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struct adv_rssi_thresholds {
	__s8 low_threshold;
	__s8 high_threshold;
	__u16 low_threshold_timeout;
	__u16 high_threshold_timeout;
	__u8 sampling_period;
};

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struct adv_monitor {
	struct list_head patterns;
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	struct adv_rssi_thresholds rssi;
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	__u16		handle;
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	enum {
		ADV_MONITOR_STATE_NOT_REGISTERED,
		ADV_MONITOR_STATE_REGISTERED,
		ADV_MONITOR_STATE_OFFLOADED
	} state;
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};

#define HCI_MIN_ADV_MONITOR_HANDLE		1
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#define HCI_MAX_ADV_MONITOR_NUM_HANDLES		32
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#define HCI_MAX_ADV_MONITOR_NUM_PATTERNS	16
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#define HCI_ADV_MONITOR_EXT_NONE		1
#define HCI_ADV_MONITOR_EXT_MSFT		2
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#define HCI_MAX_SHORT_NAME_LENGTH	10

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/* Min encryption key size to match with SMP */
#define HCI_MIN_ENC_KEY_SIZE		7

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/* Default LE RPA expiry time, 15 minutes */
#define HCI_DEFAULT_RPA_TIMEOUT		(15 * 60)

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/* Default min/max age of connection information (1s/3s) */
#define DEFAULT_CONN_INFO_MIN_AGE	1000
#define DEFAULT_CONN_INFO_MAX_AGE	3000
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/* Default authenticated payload timeout 30s */
#define DEFAULT_AUTH_PAYLOAD_TIMEOUT   0x0bb8
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struct amp_assoc {
	__u16	len;
	__u16	offset;
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	__u16	rem_len;
	__u16	len_so_far;
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	__u8	data[HCI_MAX_AMP_ASSOC_SIZE];
};

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#define HCI_MAX_PAGES	3
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struct hci_dev {
	struct list_head list;
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	struct mutex	lock;
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	char		name[8];
	unsigned long	flags;
	__u16		id;
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	__u8		bus;
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	__u8		dev_type;
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	bdaddr_t	bdaddr;
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	bdaddr_t	setup_addr;
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	bdaddr_t	public_addr;
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	bdaddr_t	random_addr;
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	bdaddr_t	static_addr;
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	__u8		adv_addr_type;
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	__u8		dev_name[HCI_MAX_NAME_LENGTH];
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	__u8		short_name[HCI_MAX_SHORT_NAME_LENGTH];
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	__u8		eir[HCI_MAX_EIR_LENGTH];
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	__u16		appearance;
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	__u8		dev_class[3];
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	__u8		major_class;
	__u8		minor_class;
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	__u8		max_page;
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	__u8		features[HCI_MAX_PAGES][8];
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	__u8		le_features[8];
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	__u8		le_accept_list_size;
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	__u8		le_resolv_list_size;
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	__u8		le_num_of_adv_sets;
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	__u8		le_states[8];
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	__u8		commands[64];
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	__u8		hci_ver;
	__u16		hci_rev;
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	__u8		lmp_ver;
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	__u16		manufacturer;
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	__u16		lmp_subver;
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	__u16		voice_setting;
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	__u8		num_iac;
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	__u16		stored_max_keys;
	__u16		stored_num_keys;
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	__u8		io_capability;
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	__s8		inq_tx_power;
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	__u8		err_data_reporting;
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	__u16		page_scan_interval;
	__u16		page_scan_window;
	__u8		page_scan_type;
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	__u8		le_adv_channel_map;
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	__u16		le_adv_min_interval;
	__u16		le_adv_max_interval;
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	__u8		le_scan_type;
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	__u16		le_scan_interval;
	__u16		le_scan_window;
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	__u16		le_scan_int_suspend;
	__u16		le_scan_window_suspend;
	__u16		le_scan_int_discovery;
	__u16		le_scan_window_discovery;
	__u16		le_scan_int_adv_monitor;
	__u16		le_scan_window_adv_monitor;
	__u16		le_scan_int_connect;
	__u16		le_scan_window_connect;
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	__u16		le_conn_min_interval;
	__u16		le_conn_max_interval;
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	__u16		le_conn_latency;
	__u16		le_supv_timeout;
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	__u16		le_def_tx_len;
	__u16		le_def_tx_time;
	__u16		le_max_tx_len;
	__u16		le_max_tx_time;
	__u16		le_max_rx_len;
	__u16		le_max_rx_time;
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	__u8		le_max_key_size;
	__u8		le_min_key_size;
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	__u16		discov_interleaved_timeout;
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	__u16		conn_info_min_age;
	__u16		conn_info_max_age;
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	__u16		auth_payload_timeout;
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	__u8		min_enc_key_size;
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	__u8		max_enc_key_size;
	__u8		pairing_opts;
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	__u8		ssp_debug_mode;
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	__u8		hw_error_code;
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	__u32		clock;
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	__u16		advmon_allowlist_duration;
	__u16		advmon_no_filter_duration;
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	__u8		enable_advmon_interleave_scan;
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	__u16		devid_source;
	__u16		devid_vendor;
	__u16		devid_product;
	__u16		devid_version;
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	__u8		def_page_scan_type;
	__u16		def_page_scan_int;
	__u16		def_page_scan_window;
	__u8		def_inq_scan_type;
	__u16		def_inq_scan_int;
	__u16		def_inq_scan_window;
	__u16		def_br_lsto;
	__u16		def_page_timeout;
	__u16		def_multi_adv_rotation_duration;
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	__u16		def_le_autoconnect_timeout;
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	__s8		min_le_tx_power;
	__s8		max_le_tx_power;
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	__u16		pkt_type;
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	__u16		esco_type;
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	__u16		link_policy;
	__u16		link_mode;

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	__u32		idle_timeout;
	__u16		sniff_min_interval;
	__u16		sniff_max_interval;

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	__u8		amp_status;
	__u32		amp_total_bw;
	__u32		amp_max_bw;
	__u32		amp_min_latency;
	__u32		amp_max_pdu;
	__u8		amp_type;
	__u16		amp_pal_cap;
	__u16		amp_assoc_size;
	__u32		amp_max_flush_to;
	__u32		amp_be_flush_to;

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	struct amp_assoc	loc_assoc;

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	__u8		flow_ctl_mode;

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	unsigned int	auto_accept_delay;

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	unsigned long	quirks;

	atomic_t	cmd_cnt;
	unsigned int	acl_cnt;
	unsigned int	sco_cnt;
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	unsigned int	le_cnt;
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	unsigned int	acl_mtu;
	unsigned int	sco_mtu;
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	unsigned int	le_mtu;
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	unsigned int	acl_pkts;
	unsigned int	sco_pkts;
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	unsigned int	le_pkts;
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	__u16		block_len;
	__u16		block_mtu;
	__u16		num_blocks;
	__u16		block_cnt;

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	unsigned long	acl_last_tx;
	unsigned long	sco_last_tx;
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	unsigned long	le_last_tx;
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	__u8		le_tx_def_phys;
	__u8		le_rx_def_phys;

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	struct workqueue_struct	*workqueue;
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	struct workqueue_struct	*req_workqueue;
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	struct work_struct	power_on;
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	struct delayed_work	power_off;
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	struct work_struct	error_reset;
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	struct work_struct	cmd_sync_work;
	struct list_head	cmd_sync_work_list;
	struct mutex		cmd_sync_work_lock;
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	struct work_struct	cmd_sync_cancel_work;
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	__u16			discov_timeout;
	struct delayed_work	discov_off;

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	struct delayed_work	service_cache;

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	struct delayed_work	cmd_timer;
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	struct delayed_work	ncmd_timer;
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	struct work_struct	rx_work;
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	struct work_struct	cmd_work;
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	struct work_struct	tx_work;
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	struct work_struct	discov_update;
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	struct work_struct	scan_update;
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	struct delayed_work	le_scan_disable;
	struct delayed_work	le_scan_restart;
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	struct sk_buff_head	rx_q;
	struct sk_buff_head	raw_q;
	struct sk_buff_head	cmd_q;

	struct sk_buff		*sent_cmd;

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	struct mutex		req_lock;
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	wait_queue_head_t	req_wait_q;
	__u32			req_status;
	__u32			req_result;
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	struct sk_buff		*req_skb;
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	void			*smp_data;
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	void			*smp_bredr_data;
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	struct discovery_state	discovery;
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	int			discovery_old_state;
	bool			discovery_paused;
	int			advertising_old_state;
	bool			advertising_paused;

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	struct notifier_block	suspend_notifier;
	enum suspended_state	suspend_state_next;
	enum suspended_state	suspend_state;
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	bool			scanning_paused;
	bool			suspended;
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	u8			wake_reason;
	bdaddr_t		wake_addr;
	u8			wake_addr_type;
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	struct hci_conn_hash	conn_hash;

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	struct list_head	mgmt_pending;
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	struct list_head	reject_list;
	struct list_head	accept_list;
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	struct list_head	uuids;
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	struct list_head	link_keys;
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	struct list_head	long_term_keys;
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	struct list_head	identity_resolving_keys;
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	struct list_head	remote_oob_data;
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	struct list_head	le_accept_list;
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	struct list_head	le_resolv_list;
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	struct list_head	le_conn_params;
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	struct list_head	pend_le_conns;
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	struct list_head	pend_le_reports;
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	struct list_head	blocked_keys;
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	struct list_head	local_codecs;
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	struct hci_dev_stats	stat;

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	atomic_t		promisc;
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	const char		*hw_info;
	const char		*fw_info;
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	struct dentry		*debugfs;

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	struct device		dev;
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	struct rfkill		*rfkill;

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	DECLARE_BITMAP(dev_flags, __HCI_NUM_FLAGS);
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	DECLARE_BITMAP(conn_flags, __HCI_CONN_NUM_FLAGS);
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	__s8			adv_tx_power;
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	__u8			adv_data[HCI_MAX_EXT_AD_LENGTH];
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	__u8			adv_data_len;
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	__u8			scan_rsp_data[HCI_MAX_EXT_AD_LENGTH];
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	__u8			scan_rsp_data_len;
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	struct list_head	adv_instances;
	unsigned int		adv_instance_cnt;
	__u8			cur_adv_instance;
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	__u16			adv_instance_timeout;
	struct delayed_work	adv_instance_expire;
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	struct idr		adv_monitors_idr;
	unsigned int		adv_monitors_cnt;

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	__u8			irk[16];
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	__u32			rpa_timeout;
	struct delayed_work	rpa_expired;
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	bdaddr_t		rpa;
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	enum {
		INTERLEAVE_SCAN_NONE,
		INTERLEAVE_SCAN_NO_FILTER,
		INTERLEAVE_SCAN_ALLOWLIST
	} interleave_scan_state;

	struct delayed_work	interleave_scan;

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	struct list_head	monitored_devices;
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	bool			advmon_pend_notify;
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#if IS_ENABLED(CONFIG_BT_LEDS)
607
	struct led_trigger	*power_led;
608
#endif
609

610 611 612
#if IS_ENABLED(CONFIG_BT_MSFTEXT)
	__u16			msft_opcode;
	void			*msft_data;
613
	bool			msft_curve_validity;
614 615
#endif

616 617
#if IS_ENABLED(CONFIG_BT_AOSPEXT)
	bool			aosp_capable;
618
	bool			aosp_quality_report;
619 620
#endif

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	int (*open)(struct hci_dev *hdev);
	int (*close)(struct hci_dev *hdev);
	int (*flush)(struct hci_dev *hdev);
624
	int (*setup)(struct hci_dev *hdev);
625
	int (*shutdown)(struct hci_dev *hdev);
626
	int (*send)(struct hci_dev *hdev, struct sk_buff *skb);
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	void (*notify)(struct hci_dev *hdev, unsigned int evt);
628
	void (*hw_error)(struct hci_dev *hdev, u8 code);
629
	int (*post_init)(struct hci_dev *hdev);
630
	int (*set_diag)(struct hci_dev *hdev, bool enable);
631
	int (*set_bdaddr)(struct hci_dev *hdev, const bdaddr_t *bdaddr);
632
	void (*cmd_timeout)(struct hci_dev *hdev);
633
	bool (*wakeup)(struct hci_dev *hdev);
634
	int (*set_quality_report)(struct hci_dev *hdev, bool enable);
635
	int (*get_data_path_id)(struct hci_dev *hdev, __u8 *data_path);
636 637 638
	int (*get_codec_config_data)(struct hci_dev *hdev, __u8 type,
				     struct bt_codec *codec, __u8 *vnd_len,
				     __u8 **vnd_data);
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};

641 642
#define HCI_PHY_HANDLE(handle)	(handle & 0xff)

643 644 645 646 647 648
enum conn_reasons {
	CONN_REASON_PAIR_DEVICE,
	CONN_REASON_L2CAP_CHAN,
	CONN_REASON_SCO_CONNECT,
};

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struct hci_conn {
	struct list_head list;

652 653 654
	atomic_t	refcnt;

	bdaddr_t	dst;
655
	__u8		dst_type;
656
	bdaddr_t	src;
657
	__u8		src_type;
658 659 660 661
	bdaddr_t	init_addr;
	__u8		init_addr_type;
	bdaddr_t	resp_addr;
	__u8		resp_addr_type;
662
	__u8		adv_instance;
663 664 665 666
	__u16		handle;
	__u16		state;
	__u8		mode;
	__u8		type;
667
	__u8		role;
668
	bool		out;
669 670
	__u8		attempt;
	__u8		dev_class[3];
671
	__u8		features[HCI_MAX_PAGES][8];
672 673
	__u16		pkt_type;
	__u16		link_policy;
674
	__u8		key_type;
675 676 677 678
	__u8		auth_type;
	__u8		sec_level;
	__u8		pending_sec_level;
	__u8		pin_length;
679
	__u8		enc_key_size;
680
	__u8		io_capability;
681 682
	__u32		passkey_notify;
	__u8		passkey_entered;
683
	__u16		disc_timeout;
684
	__u16		conn_timeout;
685
	__u16		setting;
686
	__u16		auth_payload_timeout;
687 688
	__u16		le_conn_min_interval;
	__u16		le_conn_max_interval;
689 690 691
	__u16		le_conn_interval;
	__u16		le_conn_latency;
	__u16		le_supv_timeout;
692 693
	__u8		le_adv_data[HCI_MAX_AD_LENGTH];
	__u8		le_adv_data_len;
694 695
	__u8		le_tx_phy;
	__u8		le_rx_phy;
696
	__s8		rssi;
697
	__s8		tx_power;
698
	__s8		max_tx_power;
699
	unsigned long	flags;
700

701 702
	enum conn_reasons conn_reason;

703 704 705
	__u32		clock;
	__u16		clock_accuracy;

706 707
	unsigned long	conn_info_timestamp;

708 709
	__u8		remote_cap;
	__u8		remote_auth;
710
	__u8		remote_id;
711

712
	unsigned int	sent;
713

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	struct sk_buff_head data_q;
715
	struct list_head chan_list;
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717
	struct delayed_work disc_work;
718
	struct delayed_work auto_accept_work;
719
	struct delayed_work idle_work;
720
	struct delayed_work le_conn_timeout;
721
	struct work_struct  le_scan_cleanup;
722

723
	struct device	dev;
724
	struct dentry	*debugfs;
725

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	struct hci_dev	*hdev;
	void		*l2cap_data;
	void		*sco_data;
729
	struct amp_mgr	*amp_mgr;
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	struct hci_conn	*link;
732
	struct bt_codec codec;
733 734 735 736

	void (*connect_cfm_cb)	(struct hci_conn *conn, u8 status);
	void (*security_cfm_cb)	(struct hci_conn *conn, u8 status);
	void (*disconn_cfm_cb)	(struct hci_conn *conn, u8 reason);
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};

739 740
struct hci_chan {
	struct list_head list;
741
	__u16 handle;
742 743 744
	struct hci_conn *conn;
	struct sk_buff_head data_q;
	unsigned int	sent;
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	__u8		state;
746
	bool		amp;
747 748
};

749 750
struct hci_conn_params {
	struct list_head list;
751
	struct list_head action;
752 753 754 755 756 757

	bdaddr_t addr;
	u8 addr_type;

	u16 conn_min_interval;
	u16 conn_max_interval;
758 759
	u16 conn_latency;
	u16 supervision_timeout;
760 761 762

	enum {
		HCI_AUTO_CONN_DISABLED,
763
		HCI_AUTO_CONN_REPORT,
764
		HCI_AUTO_CONN_DIRECT,
765 766
		HCI_AUTO_CONN_ALWAYS,
		HCI_AUTO_CONN_LINK_LOSS,
767
		HCI_AUTO_CONN_EXPLICIT,
768
	} auto_connect;
769 770

	struct hci_conn *conn;
771
	bool explicit_connect;
772
	DECLARE_BITMAP(flags, __HCI_CONN_NUM_FLAGS);
773
	u8  privacy_mode;
774 775
};

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extern struct list_head hci_dev_list;
extern struct list_head hci_cb_list;
extern rwlock_t hci_dev_list_lock;
779
extern struct mutex hci_cb_list_lock;
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781 782 783 784 785 786 787 788 789 790 791 792
#define hci_dev_set_flag(hdev, nr)             set_bit((nr), (hdev)->dev_flags)
#define hci_dev_clear_flag(hdev, nr)           clear_bit((nr), (hdev)->dev_flags)
#define hci_dev_change_flag(hdev, nr)          change_bit((nr), (hdev)->dev_flags)
#define hci_dev_test_flag(hdev, nr)            test_bit((nr), (hdev)->dev_flags)
#define hci_dev_test_and_set_flag(hdev, nr)    test_and_set_bit((nr), (hdev)->dev_flags)
#define hci_dev_test_and_clear_flag(hdev, nr)  test_and_clear_bit((nr), (hdev)->dev_flags)
#define hci_dev_test_and_change_flag(hdev, nr) test_and_change_bit((nr), (hdev)->dev_flags)

#define hci_dev_clear_volatile_flags(hdev)			\
	do {							\
		hci_dev_clear_flag(hdev, HCI_LE_SCAN);		\
		hci_dev_clear_flag(hdev, HCI_LE_ADV);		\
793
		hci_dev_clear_flag(hdev, HCI_LL_RPA_RESOLUTION);\
794
		hci_dev_clear_flag(hdev, HCI_PERIODIC_INQ);	\
795
		hci_dev_clear_flag(hdev, HCI_QUALITY_REPORT);	\
796
	} while (0)
797

798 799 800 801 802 803
#define hci_dev_le_state_simultaneous(hdev) \
	(test_bit(HCI_QUIRK_VALID_LE_STATES, &hdev->quirks) && \
	 (hdev->le_states[4] & 0x08) &&	/* Central */ \
	 (hdev->le_states[4] & 0x40) &&	/* Peripheral */ \
	 (hdev->le_states[3] & 0x10))	/* Simultaneous */

804
/* ----- HCI interface to upper protocols ----- */
805 806
int l2cap_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr);
int l2cap_disconn_ind(struct hci_conn *hcon);
807
void l2cap_recv_acldata(struct hci_conn *hcon, struct sk_buff *skb, u16 flags);
808

809
#if IS_ENABLED(CONFIG_BT_BREDR)
810
int sco_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr, __u8 *flags);
811
void sco_recv_scodata(struct hci_conn *hcon, struct sk_buff *skb);
812 813 814 815 816 817 818 819 820 821 822
#else
static inline int sco_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr,
				  __u8 *flags)
{
	return 0;
}

static inline void sco_recv_scodata(struct hci_conn *hcon, struct sk_buff *skb)
{
}
#endif
823

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/* ----- Inquiry cache ----- */
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#define INQUIRY_CACHE_AGE_MAX   (HZ*30)   /* 30 seconds */
#define INQUIRY_ENTRY_AGE_MAX   (HZ*60)   /* 60 seconds */
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828
static inline void discovery_init(struct hci_dev *hdev)
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{
830
	hdev->discovery.state = DISCOVERY_STOPPED;
831 832 833
	INIT_LIST_HEAD(&hdev->discovery.all);
	INIT_LIST_HEAD(&hdev->discovery.unknown);
	INIT_LIST_HEAD(&hdev->discovery.resolve);
834
	hdev->discovery.report_invalid_rssi = true;
835
	hdev->discovery.rssi = HCI_RSSI_INVALID;
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}

838 839
static inline void hci_discovery_filter_clear(struct hci_dev *hdev)
{
840
	hdev->discovery.result_filtering = false;
841
	hdev->discovery.report_invalid_rssi = true;
842 843 844 845
	hdev->discovery.rssi = HCI_RSSI_INVALID;
	hdev->discovery.uuid_count = 0;
	kfree(hdev->discovery.uuids);
	hdev->discovery.uuids = NULL;
846 847
	hdev->discovery.scan_start = 0;
	hdev->discovery.scan_duration = 0;
848 849
}

850 851
bool hci_discovery_active(struct hci_dev *hdev);

852 853
void hci_discovery_set_state(struct hci_dev *hdev, int state);

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static inline int inquiry_cache_empty(struct hci_dev *hdev)
{
856
	return list_empty(&hdev->discovery.all);
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}

static inline long inquiry_cache_age(struct hci_dev *hdev)
{
861
	struct discovery_state *c = &hdev->discovery;
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	return jiffies - c->timestamp;
}

static inline long inquiry_entry_age(struct inquiry_entry *e)
{
	return jiffies - e->timestamp;
}

870
struct inquiry_entry *hci_inquiry_cache_lookup(struct hci_dev *hdev,
871
					       bdaddr_t *bdaddr);
872
struct inquiry_entry *hci_inquiry_cache_lookup_unknown(struct hci_dev *hdev,
873
						       bdaddr_t *bdaddr);
874
struct inquiry_entry *hci_inquiry_cache_lookup_resolve(struct hci_dev *hdev,
875 876
						       bdaddr_t *bdaddr,
						       int state);
877
void hci_inquiry_cache_update_resolve(struct hci_dev *hdev,
878
				      struct inquiry_entry *ie);
879 880
u32 hci_inquiry_cache_update(struct hci_dev *hdev, struct inquiry_data *data,
			     bool name_known);
881
void hci_inquiry_cache_flush(struct hci_dev *hdev);
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/* ----- HCI Connections ----- */
enum {
	HCI_CONN_AUTH_PEND,
886
	HCI_CONN_REAUTH_PEND,
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	HCI_CONN_ENCRYPT_PEND,
888 889
	HCI_CONN_RSWITCH_PEND,
	HCI_CONN_MODE_CHANGE_PEND,
890
	HCI_CONN_SCO_SETUP_PEND,
891
	HCI_CONN_MGMT_CONNECTED,
892
	HCI_CONN_SSP_ENABLED,
893
	HCI_CONN_SC_ENABLED,
894
	HCI_CONN_AES_CCM,
895
	HCI_CONN_POWER_SAVE,
896
	HCI_CONN_FLUSH_KEY,
897 898 899 900
	HCI_CONN_ENCRYPT,
	HCI_CONN_AUTH,
	HCI_CONN_SECURE,
	HCI_CONN_FIPS,
901
	HCI_CONN_STK_ENCRYPT,
902
	HCI_CONN_AUTH_INITIATOR,
903
	HCI_CONN_DROP,
904
	HCI_CONN_PARAM_REMOVAL_PEND,
905
	HCI_CONN_NEW_LINK_KEY,
906
	HCI_CONN_SCANNING,
907
	HCI_CONN_AUTH_FAILURE,
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};

910 911 912
static inline bool hci_conn_ssp_enabled(struct hci_conn *conn)
{
	struct hci_dev *hdev = conn->hdev;
913
	return hci_dev_test_flag(hdev, HCI_SSP_ENABLED) &&
914
	       test_bit(HCI_CONN_SSP_ENABLED, &conn->flags);
915 916
}

917 918 919
static inline bool hci_conn_sc_enabled(struct hci_conn *conn)
{
	struct hci_dev *hdev = conn->hdev;
920
	return hci_dev_test_flag(hdev, HCI_SC_ENABLED) &&
921 922 923
	       test_bit(HCI_CONN_SC_ENABLED, &conn->flags);
}

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static inline void hci_conn_hash_add(struct hci_dev *hdev, struct hci_conn *c)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
927
	list_add_rcu(&c->list, &h->list);
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	switch (c->type) {
	case ACL_LINK:
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		h->acl_num++;
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		break;
932 933 934
	case AMP_LINK:
		h->amp_num++;
		break;
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	case LE_LINK:
		h->le_num++;
937
		if (c->role == HCI_ROLE_SLAVE)
938
			h->le_num_peripheral++;
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		break;
	case SCO_LINK:
	case ESCO_LINK:
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		h->sco_num++;
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		break;
	}
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}

static inline void hci_conn_hash_del(struct hci_dev *hdev, struct hci_conn *c)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
950 951 952 953

	list_del_rcu(&c->list);
	synchronize_rcu();

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	switch (c->type) {
	case ACL_LINK:
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		h->acl_num--;
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		break;
958 959 960
	case AMP_LINK:
		h->amp_num--;
		break;
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	case LE_LINK:
		h->le_num--;
963
		if (c->role == HCI_ROLE_SLAVE)
964
			h->le_num_peripheral--;
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		break;
	case SCO_LINK:
	case ESCO_LINK:
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		h->sco_num--;
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		break;
	}
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}

973 974 975 976 977 978
static inline unsigned int hci_conn_num(struct hci_dev *hdev, __u8 type)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	switch (type) {
	case ACL_LINK:
		return h->acl_num;
979 980
	case AMP_LINK:
		return h->amp_num;
981 982 983 984 985 986 987 988 989 990
	case LE_LINK:
		return h->le_num;
	case SCO_LINK:
	case ESCO_LINK:
		return h->sco_num;
	default:
		return 0;
	}
}

991 992 993 994 995 996 997
static inline unsigned int hci_conn_count(struct hci_dev *hdev)
{
	struct hci_conn_hash *c = &hdev->conn_hash;

	return c->acl_num + c->amp_num + c->sco_num + c->le_num;
}

998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017
static inline __u8 hci_conn_lookup_type(struct hci_dev *hdev, __u16 handle)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn *c;
	__u8 type = INVALID_LINK;

	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->handle == handle) {
			type = c->type;
			break;
		}
	}

	rcu_read_unlock();

	return type;
}

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static inline struct hci_conn *hci_conn_hash_lookup_handle(struct hci_dev *hdev,
1019
								__u16 handle)
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{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

1024 1025 1026 1027 1028
	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->handle == handle) {
			rcu_read_unlock();
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			return c;
1030
		}
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	}
1032 1033
	rcu_read_unlock();

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	return NULL;
}

static inline struct hci_conn *hci_conn_hash_lookup_ba(struct hci_dev *hdev,
1038
							__u8 type, bdaddr_t *ba)
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{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

1043 1044 1045 1046 1047
	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->type == type && !bacmp(&c->dst, ba)) {
			rcu_read_unlock();
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			return c;
1049
		}
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	}
1051 1052 1053

	rcu_read_unlock();

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	return NULL;
}

1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080
static inline struct hci_conn *hci_conn_hash_lookup_le(struct hci_dev *hdev,
						       bdaddr_t *ba,
						       __u8 ba_type)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->type != LE_LINK)
		       continue;

		if (ba_type == c->dst_type && !bacmp(&c->dst, ba)) {
			rcu_read_unlock();
			return c;
		}
	}

	rcu_read_unlock();

	return NULL;
}

1081
static inline struct hci_conn *hci_conn_hash_lookup_state(struct hci_dev *hdev,
1082
							__u8 type, __u16 state)
1083 1084 1085 1086
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

1087 1088 1089 1090 1091
	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->type == type && c->state == state) {
			rcu_read_unlock();
1092
			return c;
1093
		}
1094
	}
1095

1096
	rcu_read_unlock();
1097

1098
	return NULL;
1099 1100
}

1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120
static inline struct hci_conn *hci_lookup_le_connect(struct hci_dev *hdev)
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->type == LE_LINK && c->state == BT_CONNECT &&
		    !test_bit(HCI_CONN_SCANNING, &c->flags)) {
			rcu_read_unlock();
			return c;
		}
	}

	rcu_read_unlock();

	return NULL;
}

1121
int hci_disconnect(struct hci_conn *conn, __u8 reason);
1122
bool hci_setup_sync(struct hci_conn *conn, __u16 handle);
1123
void hci_sco_setup(struct hci_conn *conn, __u8 status);
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1125 1126
struct hci_conn *hci_conn_add(struct hci_dev *hdev, int type, bdaddr_t *dst,
			      u8 role);
1127 1128 1129
int hci_conn_del(struct hci_conn *conn);
void hci_conn_hash_flush(struct hci_dev *hdev);
void hci_conn_check_pending(struct hci_dev *hdev);
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1131
struct hci_chan *hci_chan_create(struct hci_conn *conn);
1132
void hci_chan_del(struct hci_chan *chan);
1133
void hci_chan_list_flush(struct hci_conn *conn);
1134
struct hci_chan *hci_chan_lookup_handle(struct hci_dev *hdev, __u16 handle);
1135

1136 1137
struct hci_conn *hci_connect_le_scan(struct hci_dev *hdev, bdaddr_t *dst,
				     u8 dst_type, u8 sec_level,
1138 1139
				     u16 conn_timeout,
				     enum conn_reasons conn_reason);
1140
struct hci_conn *hci_connect_le(struct hci_dev *hdev, bdaddr_t *dst,
1141
				u8 dst_type, bool dst_resolved, u8 sec_level,
1142
				u16 conn_timeout, u8 role);
1143
struct hci_conn *hci_connect_acl(struct hci_dev *hdev, bdaddr_t *dst,
1144 1145
				 u8 sec_level, u8 auth_type,
				 enum conn_reasons conn_reason);
1146
struct hci_conn *hci_connect_sco(struct hci_dev *hdev, int type, bdaddr_t *dst,
1147
				 __u16 setting, struct bt_codec *codec);
1148
int hci_conn_check_link_mode(struct hci_conn *conn);
1149
int hci_conn_check_secure(struct hci_conn *conn, __u8 sec_level);
1150 1151
int hci_conn_security(struct hci_conn *conn, __u8 sec_level, __u8 auth_type,
		      bool initiator);
1152
int hci_conn_switch_role(struct hci_conn *conn, __u8 role);
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1154
void hci_conn_enter_active_mode(struct hci_conn *conn, __u8 force_active);
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1155

1156 1157
void hci_le_conn_failed(struct hci_conn *conn, u8 status);

1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178
/*
 * hci_conn_get() and hci_conn_put() are used to control the life-time of an
 * "hci_conn" object. They do not guarantee that the hci_conn object is running,
 * working or anything else. They just guarantee that the object is available
 * and can be dereferenced. So you can use its locks, local variables and any
 * other constant data.
 * Before accessing runtime data, you _must_ lock the object and then check that
 * it is still running. As soon as you release the locks, the connection might
 * get dropped, though.
 *
 * On the other hand, hci_conn_hold() and hci_conn_drop() are used to control
 * how long the underlying connection is held. So every channel that runs on the
 * hci_conn object calls this to prevent the connection from disappearing. As
 * long as you hold a device, you must also guarantee that you have a valid
 * reference to the device via hci_conn_get() (or the initial reference from
 * hci_conn_add()).
 * The hold()/drop() ref-count is known to drop below 0 sometimes, which doesn't
 * break because nobody cares for that. But this means, we cannot use
 * _get()/_drop() in it, but require the caller to have a valid ref (FIXME).
 */

1179
static inline struct hci_conn *hci_conn_get(struct hci_conn *conn)
1180 1181
{
	get_device(&conn->dev);
1182
	return conn;
1183 1184 1185 1186 1187 1188 1189
}

static inline void hci_conn_put(struct hci_conn *conn)
{
	put_device(&conn->dev);
}

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1190 1191
static inline void hci_conn_hold(struct hci_conn *conn)
{
1192
	BT_DBG("hcon %p orig refcnt %d", conn, atomic_read(&conn->refcnt));
1193

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1194
	atomic_inc(&conn->refcnt);
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1195
	cancel_delayed_work(&conn->disc_work);
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1196 1197
}

1198
static inline void hci_conn_drop(struct hci_conn *conn)
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1199
{
1200
	BT_DBG("hcon %p orig refcnt %d", conn, atomic_read(&conn->refcnt));
1201

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1202
	if (atomic_dec_and_test(&conn->refcnt)) {
1203
		unsigned long timeo;
1204 1205 1206 1207

		switch (conn->type) {
		case ACL_LINK:
		case LE_LINK:
1208
			cancel_delayed_work(&conn->idle_work);
1209
			if (conn->state == BT_CONNECTED) {
1210
				timeo = conn->disc_timeout;
1211
				if (!conn->out)
1212
					timeo *= 2;
1213
			} else {
1214
				timeo = 0;
1215
			}
1216 1217 1218 1219 1220 1221 1222
			break;

		case AMP_LINK:
			timeo = conn->disc_timeout;
			break;

		default:
1223
			timeo = 0;
1224
			break;
1225
		}
1226

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Andre Guedes 已提交
1227
		cancel_delayed_work(&conn->disc_work);
1228
		queue_delayed_work(conn->hdev->workqueue,
1229
				   &conn->disc_work, timeo);
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1230 1231 1232 1233
	}
}

/* ----- HCI Devices ----- */
1234
static inline void hci_dev_put(struct hci_dev *d)
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1235
{
1236
	BT_DBG("%s orig refcnt %d", d->name,
1237
	       kref_read(&d->dev.kobj.kref));
1238

1239
	put_device(&d->dev);
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1240 1241
}

1242
static inline struct hci_dev *hci_dev_hold(struct hci_dev *d)
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1243
{
1244
	BT_DBG("%s orig refcnt %d", d->name,
1245
	       kref_read(&d->dev.kobj.kref));
1246

1247
	get_device(&d->dev);
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1248 1249 1250
	return d;
}

1251 1252
#define hci_dev_lock(d)		mutex_lock(&d->lock)
#define hci_dev_unlock(d)	mutex_unlock(&d->lock)
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1253

1254
#define to_hci_dev(d) container_of(d, struct hci_dev, dev)
1255
#define to_hci_conn(c) container_of(c, struct hci_conn, dev)
1256

1257 1258 1259 1260 1261 1262 1263 1264 1265 1266
static inline void *hci_get_drvdata(struct hci_dev *hdev)
{
	return dev_get_drvdata(&hdev->dev);
}

static inline void hci_set_drvdata(struct hci_dev *hdev, void *data)
{
	dev_set_drvdata(&hdev->dev, data);
}

1267 1268 1269 1270 1271
static inline void *hci_get_priv(struct hci_dev *hdev)
{
	return (char *)hdev + sizeof(*hdev);
}

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1272
struct hci_dev *hci_dev_get(int index);
1273
struct hci_dev *hci_get_route(bdaddr_t *dst, bdaddr_t *src, u8 src_type);
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1275 1276 1277 1278 1279 1280 1281
struct hci_dev *hci_alloc_dev_priv(int sizeof_priv);

static inline struct hci_dev *hci_alloc_dev(void)
{
	return hci_alloc_dev_priv(0);
}

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1282 1283
void hci_free_dev(struct hci_dev *hdev);
int hci_register_dev(struct hci_dev *hdev);
1284
void hci_unregister_dev(struct hci_dev *hdev);
1285
void hci_release_dev(struct hci_dev *hdev);
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1286 1287
int hci_suspend_dev(struct hci_dev *hdev);
int hci_resume_dev(struct hci_dev *hdev);
1288
int hci_reset_dev(struct hci_dev *hdev);
1289 1290
int hci_recv_frame(struct hci_dev *hdev, struct sk_buff *skb);
int hci_recv_diag(struct hci_dev *hdev, struct sk_buff *skb);
1291 1292
__printf(2, 3) void hci_set_hw_info(struct hci_dev *hdev, const char *fmt, ...);
__printf(2, 3) void hci_set_fw_info(struct hci_dev *hdev, const char *fmt, ...);
1293 1294 1295 1296 1297 1298 1299 1300

static inline void hci_set_msft_opcode(struct hci_dev *hdev, __u16 opcode)
{
#if IS_ENABLED(CONFIG_BT_MSFTEXT)
	hdev->msft_opcode = opcode;
#endif
}

1301 1302 1303 1304 1305 1306 1307
static inline void hci_set_aosp_capable(struct hci_dev *hdev)
{
#if IS_ENABLED(CONFIG_BT_AOSPEXT)
	hdev->aosp_capable = true;
#endif
}

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1308 1309
int hci_dev_open(__u16 dev);
int hci_dev_close(__u16 dev);
1310
int hci_dev_do_close(struct hci_dev *hdev);
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1311 1312 1313 1314 1315 1316 1317
int hci_dev_reset(__u16 dev);
int hci_dev_reset_stat(__u16 dev);
int hci_dev_cmd(unsigned int cmd, void __user *arg);
int hci_get_dev_list(void __user *arg);
int hci_get_dev_info(void __user *arg);
int hci_get_conn_list(void __user *arg);
int hci_get_conn_info(struct hci_dev *hdev, void __user *arg);
1318
int hci_get_auth_info(struct hci_dev *hdev, void __user *arg);
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1319 1320
int hci_inquiry(void __user *arg);

1321 1322
struct bdaddr_list *hci_bdaddr_list_lookup(struct list_head *list,
					   bdaddr_t *bdaddr, u8 type);
1323 1324 1325
struct bdaddr_list_with_irk *hci_bdaddr_list_lookup_with_irk(
				    struct list_head *list, bdaddr_t *bdaddr,
				    u8 type);
1326 1327 1328
struct bdaddr_list_with_flags *
hci_bdaddr_list_lookup_with_flags(struct list_head *list, bdaddr_t *bdaddr,
				  u8 type);
1329
int hci_bdaddr_list_add(struct list_head *list, bdaddr_t *bdaddr, u8 type);
1330
int hci_bdaddr_list_add_with_irk(struct list_head *list, bdaddr_t *bdaddr,
1331 1332 1333
				 u8 type, u8 *peer_irk, u8 *local_irk);
int hci_bdaddr_list_add_with_flags(struct list_head *list, bdaddr_t *bdaddr,
				   u8 type, u32 flags);
1334
int hci_bdaddr_list_del(struct list_head *list, bdaddr_t *bdaddr, u8 type);
1335
int hci_bdaddr_list_del_with_irk(struct list_head *list, bdaddr_t *bdaddr,
1336 1337 1338
				 u8 type);
int hci_bdaddr_list_del_with_flags(struct list_head *list, bdaddr_t *bdaddr,
				   u8 type);
1339
void hci_bdaddr_list_clear(struct list_head *list);
1340

1341 1342
struct hci_conn_params *hci_conn_params_lookup(struct hci_dev *hdev,
					       bdaddr_t *addr, u8 addr_type);
1343 1344
struct hci_conn_params *hci_conn_params_add(struct hci_dev *hdev,
					    bdaddr_t *addr, u8 addr_type);
1345
void hci_conn_params_del(struct hci_dev *hdev, bdaddr_t *addr, u8 addr_type);
1346
void hci_conn_params_clear_disabled(struct hci_dev *hdev);
1347

1348 1349 1350
struct hci_conn_params *hci_pend_le_action_lookup(struct list_head *list,
						  bdaddr_t *addr,
						  u8 addr_type);
1351

1352
void hci_uuids_clear(struct hci_dev *hdev);
1353

1354
void hci_link_keys_clear(struct hci_dev *hdev);
1355
struct link_key *hci_find_link_key(struct hci_dev *hdev, bdaddr_t *bdaddr);
1356
struct link_key *hci_add_link_key(struct hci_dev *hdev, struct hci_conn *conn,
1357 1358
				  bdaddr_t *bdaddr, u8 *val, u8 type,
				  u8 pin_len, bool *persistent);
1359
struct smp_ltk *hci_add_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr,
1360
			    u8 addr_type, u8 type, u8 authenticated,
1361
			    u8 tk[16], u8 enc_size, __le16 ediv, __le64 rand);
1362 1363
struct smp_ltk *hci_find_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr,
			     u8 addr_type, u8 role);
1364
int hci_remove_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 bdaddr_type);
1365
void hci_smp_ltks_clear(struct hci_dev *hdev);
1366 1367
int hci_remove_link_key(struct hci_dev *hdev, bdaddr_t *bdaddr);

1368 1369 1370
struct smp_irk *hci_find_irk_by_rpa(struct hci_dev *hdev, bdaddr_t *rpa);
struct smp_irk *hci_find_irk_by_addr(struct hci_dev *hdev, bdaddr_t *bdaddr,
				     u8 addr_type);
1371 1372
struct smp_irk *hci_add_irk(struct hci_dev *hdev, bdaddr_t *bdaddr,
			    u8 addr_type, u8 val[16], bdaddr_t *rpa);
1373
void hci_remove_irk(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 addr_type);
1374 1375
bool hci_is_blocked_key(struct hci_dev *hdev, u8 type, u8 val[16]);
void hci_blocked_keys_clear(struct hci_dev *hdev);
1376 1377
void hci_smp_irks_clear(struct hci_dev *hdev);

1378 1379
bool hci_bdaddr_is_paired(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 type);

1380
void hci_remote_oob_data_clear(struct hci_dev *hdev);
1381
struct oob_data *hci_find_remote_oob_data(struct hci_dev *hdev,
1382
					  bdaddr_t *bdaddr, u8 bdaddr_type);
1383
int hci_add_remote_oob_data(struct hci_dev *hdev, bdaddr_t *bdaddr,
1384
			    u8 bdaddr_type, u8 *hash192, u8 *rand192,
1385
			    u8 *hash256, u8 *rand256);
1386 1387
int hci_remove_remote_oob_data(struct hci_dev *hdev, bdaddr_t *bdaddr,
			       u8 bdaddr_type);
1388

1389 1390 1391 1392 1393 1394
void hci_adv_instances_clear(struct hci_dev *hdev);
struct adv_info *hci_find_adv_instance(struct hci_dev *hdev, u8 instance);
struct adv_info *hci_get_next_instance(struct hci_dev *hdev, u8 instance);
int hci_add_adv_instance(struct hci_dev *hdev, u8 instance, u32 flags,
			 u16 adv_data_len, u8 *adv_data,
			 u16 scan_rsp_len, u8 *scan_rsp_data,
1395 1396
			 u16 timeout, u16 duration, s8 tx_power,
			 u32 min_interval, u32 max_interval);
1397 1398 1399
int hci_set_adv_instance_data(struct hci_dev *hdev, u8 instance,
			 u16 adv_data_len, u8 *adv_data,
			 u16 scan_rsp_len, u8 *scan_rsp_data);
1400
int hci_remove_adv_instance(struct hci_dev *hdev, u8 instance);
1401
void hci_adv_instances_set_rpa_expired(struct hci_dev *hdev, bool rpa_expired);
1402 1403
u32 hci_adv_instance_flags(struct hci_dev *hdev, u8 instance);
bool hci_adv_instance_is_scannable(struct hci_dev *hdev, u8 instance);
1404

1405
void hci_adv_monitors_clear(struct hci_dev *hdev);
1406
void hci_free_adv_monitor(struct hci_dev *hdev, struct adv_monitor *monitor);
1407
int hci_add_adv_patterns_monitor_complete(struct hci_dev *hdev, u8 status);
1408
int hci_remove_adv_monitor_complete(struct hci_dev *hdev, u8 status);
1409 1410
bool hci_add_adv_monitor(struct hci_dev *hdev, struct adv_monitor *monitor,
			int *err);
1411 1412
bool hci_remove_single_adv_monitor(struct hci_dev *hdev, u16 handle, int *err);
bool hci_remove_all_adv_monitor(struct hci_dev *hdev, int *err);
1413
bool hci_is_adv_monitoring(struct hci_dev *hdev);
1414
int hci_get_adv_monitor_offload_ext(struct hci_dev *hdev);
1415

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1416 1417
void hci_event_packet(struct hci_dev *hdev, struct sk_buff *skb);

1418
void hci_init_sysfs(struct hci_dev *hdev);
1419
void hci_conn_init_sysfs(struct hci_conn *conn);
1420 1421
void hci_conn_add_sysfs(struct hci_conn *conn);
void hci_conn_del_sysfs(struct hci_conn *conn);
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1422

1423
#define SET_HCIDEV_DEV(hdev, pdev) ((hdev)->dev.parent = (pdev))
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1424 1425

/* ----- LMP capabilities ----- */
1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436
#define lmp_encrypt_capable(dev)   ((dev)->features[0][0] & LMP_ENCRYPT)
#define lmp_rswitch_capable(dev)   ((dev)->features[0][0] & LMP_RSWITCH)
#define lmp_hold_capable(dev)      ((dev)->features[0][0] & LMP_HOLD)
#define lmp_sniff_capable(dev)     ((dev)->features[0][0] & LMP_SNIFF)
#define lmp_park_capable(dev)      ((dev)->features[0][1] & LMP_PARK)
#define lmp_inq_rssi_capable(dev)  ((dev)->features[0][3] & LMP_RSSI_INQ)
#define lmp_esco_capable(dev)      ((dev)->features[0][3] & LMP_ESCO)
#define lmp_bredr_capable(dev)     (!((dev)->features[0][4] & LMP_NO_BREDR))
#define lmp_le_capable(dev)        ((dev)->features[0][4] & LMP_LE)
#define lmp_sniffsubr_capable(dev) ((dev)->features[0][5] & LMP_SNIFF_SUBR)
#define lmp_pause_enc_capable(dev) ((dev)->features[0][5] & LMP_PAUSE_ENC)
1437
#define lmp_esco_2m_capable(dev)   ((dev)->features[0][5] & LMP_EDR_ESCO_2M)
1438 1439 1440 1441 1442 1443 1444
#define lmp_ext_inq_capable(dev)   ((dev)->features[0][6] & LMP_EXT_INQ)
#define lmp_le_br_capable(dev)     (!!((dev)->features[0][6] & LMP_SIMUL_LE_BR))
#define lmp_ssp_capable(dev)       ((dev)->features[0][6] & LMP_SIMPLE_PAIR)
#define lmp_no_flush_capable(dev)  ((dev)->features[0][6] & LMP_NO_FLUSH)
#define lmp_lsto_capable(dev)      ((dev)->features[0][7] & LMP_LSTO)
#define lmp_inq_tx_pwr_capable(dev) ((dev)->features[0][7] & LMP_INQ_TX_PWR)
#define lmp_ext_feat_capable(dev)  ((dev)->features[0][7] & LMP_EXTFEATURES)
1445
#define lmp_transp_capable(dev)    ((dev)->features[0][2] & LMP_TRANSPARENT)
1446 1447 1448 1449
#define lmp_edr_2m_capable(dev)    ((dev)->features[0][3] & LMP_EDR_2M)
#define lmp_edr_3m_capable(dev)    ((dev)->features[0][3] & LMP_EDR_3M)
#define lmp_edr_3slot_capable(dev) ((dev)->features[0][4] & LMP_EDR_3SLOT)
#define lmp_edr_5slot_capable(dev) ((dev)->features[0][5] & LMP_EDR_5SLOT)
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1450

1451
/* ----- Extended LMP capabilities ----- */
1452 1453
#define lmp_cpb_central_capable(dev) ((dev)->features[2][0] & LMP_CPB_CENTRAL)
#define lmp_cpb_peripheral_capable(dev) ((dev)->features[2][0] & LMP_CPB_PERIPHERAL)
1454 1455
#define lmp_sync_train_capable(dev) ((dev)->features[2][0] & LMP_SYNC_TRAIN)
#define lmp_sync_scan_capable(dev)  ((dev)->features[2][0] & LMP_SYNC_SCAN)
1456 1457
#define lmp_sc_capable(dev)         ((dev)->features[2][1] & LMP_SC)
#define lmp_ping_capable(dev)       ((dev)->features[2][1] & LMP_PING)
1458 1459

/* ----- Host capabilities ----- */
1460
#define lmp_host_ssp_capable(dev)  ((dev)->features[1][0] & LMP_HOST_SSP)
1461
#define lmp_host_sc_capable(dev)   ((dev)->features[1][0] & LMP_HOST_SC)
1462 1463
#define lmp_host_le_capable(dev)   (!!((dev)->features[1][0] & LMP_HOST_LE))
#define lmp_host_le_br_capable(dev) (!!((dev)->features[1][0] & LMP_HOST_LE_BREDR))
1464

1465 1466 1467 1468
#define hdev_is_powered(dev)   (test_bit(HCI_UP, &(dev)->flags) && \
				!hci_dev_test_flag(dev, HCI_AUTO_OFF))
#define bredr_sc_enabled(dev)  (lmp_sc_capable(dev) && \
				hci_dev_test_flag(dev, HCI_SC_ENABLED))
1469 1470 1471 1472
#define rpa_valid(dev)         (bacmp(&dev->rpa, BDADDR_ANY) && \
				!hci_dev_test_flag(dev, HCI_RPA_EXPIRED))
#define adv_rpa_valid(adv)     (bacmp(&adv->random_addr, BDADDR_ANY) && \
				!adv->rpa_expired)
1473

1474 1475 1476 1477 1478 1479 1480 1481 1482
#define scan_1m(dev) (((dev)->le_tx_def_phys & HCI_LE_SET_PHY_1M) || \
		      ((dev)->le_rx_def_phys & HCI_LE_SET_PHY_1M))

#define scan_2m(dev) (((dev)->le_tx_def_phys & HCI_LE_SET_PHY_2M) || \
		      ((dev)->le_rx_def_phys & HCI_LE_SET_PHY_2M))

#define scan_coded(dev) (((dev)->le_tx_def_phys & HCI_LE_SET_PHY_CODED) || \
			 ((dev)->le_rx_def_phys & HCI_LE_SET_PHY_CODED))

1483 1484
#define ll_privacy_capable(dev) ((dev)->le_features[0] & HCI_LE_LL_PRIVACY)

1485
/* Use LL Privacy based address resolution if supported */
1486 1487
#define use_ll_privacy(dev) (ll_privacy_capable(dev) && \
			     hci_dev_test_flag(dev, HCI_ENABLE_LL_PRIVACY))
1488

1489 1490 1491
#define privacy_mode_capable(dev) (use_ll_privacy(dev) && \
				   (hdev->commands[39] & 0x04))

1492 1493 1494
/* Use enhanced synchronous connection if command is supported */
#define enhanced_sco_capable(dev) ((dev)->commands[29] & 0x08)

1495 1496 1497
/* Use ext scanning if set ext scan param and ext scan enable is supported */
#define use_ext_scan(dev) (((dev)->commands[37] & 0x20) && \
			   ((dev)->commands[37] & 0x40))
1498 1499
/* Use ext create connection if command is supported */
#define use_ext_conn(dev) ((dev)->commands[37] & 0x80)
1500

1501 1502 1503
/* Extended advertising support */
#define ext_adv_capable(dev) (((dev)->le_features[1] & HCI_LE_EXT_ADV))

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1504
/* ----- HCI protocols ----- */
1505 1506
#define HCI_PROTO_DEFER             0x01

1507
static inline int hci_proto_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr,
1508
					__u8 type, __u8 *flags)
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{
1510 1511 1512
	switch (type) {
	case ACL_LINK:
		return l2cap_connect_ind(hdev, bdaddr);
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1514 1515
	case SCO_LINK:
	case ESCO_LINK:
1516
		return sco_connect_ind(hdev, bdaddr, flags);
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1518 1519 1520 1521
	default:
		BT_ERR("unknown link type %d", type);
		return -EINVAL;
	}
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}

1524
static inline int hci_proto_disconn_ind(struct hci_conn *conn)
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{
1526 1527
	if (conn->type != ACL_LINK && conn->type != LE_LINK)
		return HCI_ERROR_REMOTE_USER_TERM;
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1529
	return l2cap_disconn_ind(conn);
1530 1531
}

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/* ----- HCI callbacks ----- */
struct hci_cb {
	struct list_head list;

	char *name;

1538
	void (*connect_cfm)	(struct hci_conn *conn, __u8 status);
1539
	void (*disconn_cfm)	(struct hci_conn *conn, __u8 status);
1540 1541
	void (*security_cfm)	(struct hci_conn *conn, __u8 status,
								__u8 encrypt);
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	void (*key_change_cfm)	(struct hci_conn *conn, __u8 status);
	void (*role_switch_cfm)	(struct hci_conn *conn, __u8 status, __u8 role);
};

1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560
static inline void hci_connect_cfm(struct hci_conn *conn, __u8 status)
{
	struct hci_cb *cb;

	mutex_lock(&hci_cb_list_lock);
	list_for_each_entry(cb, &hci_cb_list, list) {
		if (cb->connect_cfm)
			cb->connect_cfm(conn, status);
	}
	mutex_unlock(&hci_cb_list_lock);

	if (conn->connect_cfm_cb)
		conn->connect_cfm_cb(conn, status);
}

1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575
static inline void hci_disconn_cfm(struct hci_conn *conn, __u8 reason)
{
	struct hci_cb *cb;

	mutex_lock(&hci_cb_list_lock);
	list_for_each_entry(cb, &hci_cb_list, list) {
		if (cb->disconn_cfm)
			cb->disconn_cfm(conn, reason);
	}
	mutex_unlock(&hci_cb_list_lock);

	if (conn->disconn_cfm_cb)
		conn->disconn_cfm_cb(conn, reason);
}

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static inline void hci_auth_cfm(struct hci_conn *conn, __u8 status)
{
1578
	struct hci_cb *cb;
1579
	__u8 encrypt;
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1581
	if (test_bit(HCI_CONN_ENCRYPT_PEND, &conn->flags))
1582 1583
		return;

1584
	encrypt = test_bit(HCI_CONN_ENCRYPT, &conn->flags) ? 0x01 : 0x00;
1585

1586
	mutex_lock(&hci_cb_list_lock);
1587
	list_for_each_entry(cb, &hci_cb_list, list) {
1588 1589
		if (cb->security_cfm)
			cb->security_cfm(conn, status, encrypt);
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	}
1591
	mutex_unlock(&hci_cb_list_lock);
1592 1593 1594

	if (conn->security_cfm_cb)
		conn->security_cfm_cb(conn, status);
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}

1597
static inline void hci_encrypt_cfm(struct hci_conn *conn, __u8 status)
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{
1599
	struct hci_cb *cb;
1600 1601 1602
	__u8 encrypt;

	if (conn->state == BT_CONFIG) {
1603
		if (!status)
1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616
			conn->state = BT_CONNECTED;

		hci_connect_cfm(conn, status);
		hci_conn_drop(conn);
		return;
	}

	if (!test_bit(HCI_CONN_ENCRYPT, &conn->flags))
		encrypt = 0x00;
	else if (test_bit(HCI_CONN_AES_CCM, &conn->flags))
		encrypt = 0x02;
	else
		encrypt = 0x01;
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1618 1619 1620
	if (!status) {
		if (conn->sec_level == BT_SECURITY_SDP)
			conn->sec_level = BT_SECURITY_LOW;
1621

1622 1623 1624
		if (conn->pending_sec_level > conn->sec_level)
			conn->sec_level = conn->pending_sec_level;
	}
1625

1626
	mutex_lock(&hci_cb_list_lock);
1627
	list_for_each_entry(cb, &hci_cb_list, list) {
1628 1629
		if (cb->security_cfm)
			cb->security_cfm(conn, status, encrypt);
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	}
1631
	mutex_unlock(&hci_cb_list_lock);
1632 1633 1634

	if (conn->security_cfm_cb)
		conn->security_cfm_cb(conn, status);
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}

static inline void hci_key_change_cfm(struct hci_conn *conn, __u8 status)
{
1639
	struct hci_cb *cb;
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1641
	mutex_lock(&hci_cb_list_lock);
1642
	list_for_each_entry(cb, &hci_cb_list, list) {
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1643 1644 1645
		if (cb->key_change_cfm)
			cb->key_change_cfm(conn, status);
	}
1646
	mutex_unlock(&hci_cb_list_lock);
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}

1649 1650
static inline void hci_role_switch_cfm(struct hci_conn *conn, __u8 status,
								__u8 role)
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{
1652
	struct hci_cb *cb;
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1654
	mutex_lock(&hci_cb_list_lock);
1655
	list_for_each_entry(cb, &hci_cb_list, list) {
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		if (cb->role_switch_cfm)
			cb->role_switch_cfm(conn, status, role);
	}
1659
	mutex_unlock(&hci_cb_list_lock);
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}

1662 1663
static inline bool hci_bdaddr_is_rpa(bdaddr_t *bdaddr, u8 addr_type)
{
1664
	if (addr_type != ADDR_LE_DEV_RANDOM)
1665 1666 1667 1668 1669 1670 1671 1672
		return false;

	if ((bdaddr->b[5] & 0xc0) == 0x40)
	       return true;

	return false;
}

1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684
static inline bool hci_is_identity_address(bdaddr_t *addr, u8 addr_type)
{
	if (addr_type == ADDR_LE_DEV_PUBLIC)
		return true;

	/* Check for Random Static address type */
	if ((addr->b[5] & 0xc0) == 0xc0)
		return true;

	return false;
}

1685 1686 1687 1688 1689 1690 1691 1692 1693
static inline struct smp_irk *hci_get_irk(struct hci_dev *hdev,
					  bdaddr_t *bdaddr, u8 addr_type)
{
	if (!hci_bdaddr_is_rpa(bdaddr, addr_type))
		return NULL;

	return hci_find_irk_by_rpa(hdev, bdaddr);
}

1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707
static inline int hci_check_conn_params(u16 min, u16 max, u16 latency,
					u16 to_multiplier)
{
	u16 max_latency;

	if (min > max || min < 6 || max > 3200)
		return -EINVAL;

	if (to_multiplier < 10 || to_multiplier > 3200)
		return -EINVAL;

	if (max >= to_multiplier * 8)
		return -EINVAL;

1708
	max_latency = (to_multiplier * 4 / max) - 1;
1709 1710 1711 1712 1713 1714
	if (latency > 499 || latency > max_latency)
		return -EINVAL;

	return 0;
}

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int hci_register_cb(struct hci_cb *hcb);
int hci_unregister_cb(struct hci_cb *hcb);

1718 1719
int __hci_cmd_send(struct hci_dev *hdev, u16 opcode, u32 plen,
		   const void *param);
1720

1721 1722
int hci_send_cmd(struct hci_dev *hdev, __u16 opcode, __u32 plen,
		 const void *param);
1723
void hci_send_acl(struct hci_chan *chan, struct sk_buff *skb, __u16 flags);
1724
void hci_send_sco(struct hci_conn *conn, struct sk_buff *skb);
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1726
void *hci_sent_cmd_data(struct hci_dev *hdev, __u16 opcode);
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1727

1728 1729
u32 hci_conn_get_phy(struct hci_conn *conn);

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/* ----- HCI Sockets ----- */
1731
void hci_send_to_sock(struct hci_dev *hdev, struct sk_buff *skb);
1732
void hci_send_to_channel(unsigned short channel, struct sk_buff *skb,
1733
			 int flag, struct sock *skip_sk);
1734
void hci_send_to_monitor(struct hci_dev *hdev, struct sk_buff *skb);
1735 1736 1737
void hci_send_monitor_ctrl_event(struct hci_dev *hdev, u16 event,
				 void *data, u16 data_len, ktime_t tstamp,
				 int flag, struct sock *skip_sk);
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1739 1740
void hci_sock_dev_event(struct hci_dev *hdev, int event);

1741 1742 1743 1744
#define HCI_MGMT_VAR_LEN	BIT(0)
#define HCI_MGMT_NO_HDEV	BIT(1)
#define HCI_MGMT_UNTRUSTED	BIT(2)
#define HCI_MGMT_UNCONFIGURED	BIT(3)
1745
#define HCI_MGMT_HDEV_OPTIONAL	BIT(4)
1746

1747 1748 1749 1750
struct hci_mgmt_handler {
	int (*func) (struct sock *sk, struct hci_dev *hdev, void *data,
		     u16 data_len);
	size_t data_len;
1751
	unsigned long flags;
1752 1753 1754 1755 1756 1757 1758
};

struct hci_mgmt_chan {
	struct list_head list;
	unsigned short channel;
	size_t handler_count;
	const struct hci_mgmt_handler *handlers;
1759
	void (*hdev_init) (struct sock *sk, struct hci_dev *hdev);
1760 1761 1762 1763 1764
};

int hci_mgmt_chan_register(struct hci_mgmt_chan *c);
void hci_mgmt_chan_unregister(struct hci_mgmt_chan *c);

1765
/* Management interface */
1766 1767 1768 1769 1770 1771
#define DISCOV_TYPE_BREDR		(BIT(BDADDR_BREDR))
#define DISCOV_TYPE_LE			(BIT(BDADDR_LE_PUBLIC) | \
					 BIT(BDADDR_LE_RANDOM))
#define DISCOV_TYPE_INTERLEAVED		(BIT(BDADDR_BREDR) | \
					 BIT(BDADDR_LE_PUBLIC) | \
					 BIT(BDADDR_LE_RANDOM))
1772

1773 1774 1775 1776 1777
/* These LE scan and inquiry parameters were chosen according to LE General
 * Discovery Procedure specification.
 */
#define DISCOV_LE_SCAN_WIN		0x12
#define DISCOV_LE_SCAN_INT		0x12
1778
#define DISCOV_LE_TIMEOUT		10240	/* msec */
1779
#define DISCOV_INTERLEAVED_TIMEOUT	5120	/* msec */
1780 1781
#define DISCOV_INTERLEAVED_INQUIRY_LEN	0x04
#define DISCOV_BREDR_INQUIRY_LEN	0x08
1782
#define DISCOV_LE_RESTART_DELAY		msecs_to_jiffies(200)	/* msec */
1783 1784
#define DISCOV_LE_FAST_ADV_INT_MIN	0x00A0	/* 100 msec */
#define DISCOV_LE_FAST_ADV_INT_MAX	0x00F0	/* 150 msec */
1785

1786 1787
#define NAME_RESOLVE_DURATION		msecs_to_jiffies(10240)	/* 10.24 sec */

1788
void mgmt_fill_version_info(void *ver);
1789
int mgmt_new_settings(struct hci_dev *hdev);
1790 1791
void mgmt_index_added(struct hci_dev *hdev);
void mgmt_index_removed(struct hci_dev *hdev);
1792
void mgmt_set_powered_failed(struct hci_dev *hdev, int err);
1793 1794
void mgmt_power_on(struct hci_dev *hdev, int err);
void __mgmt_power_off(struct hci_dev *hdev);
1795 1796
void mgmt_new_link_key(struct hci_dev *hdev, struct link_key *key,
		       bool persistent);
1797
void mgmt_device_connected(struct hci_dev *hdev, struct hci_conn *conn,
1798
			   u8 *name, u8 name_len);
1799
void mgmt_device_disconnected(struct hci_dev *hdev, bdaddr_t *bdaddr,
1800 1801
			      u8 link_type, u8 addr_type, u8 reason,
			      bool mgmt_connected);
1802 1803
void mgmt_disconnect_failed(struct hci_dev *hdev, bdaddr_t *bdaddr,
			    u8 link_type, u8 addr_type, u8 status);
1804 1805
void mgmt_connect_failed(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
			 u8 addr_type, u8 status);
1806
void mgmt_pin_code_request(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 secure);
1807 1808
void mgmt_pin_code_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
				  u8 status);
1809 1810
void mgmt_pin_code_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
				      u8 status);
1811
int mgmt_user_confirm_request(struct hci_dev *hdev, bdaddr_t *bdaddr,
1812
			      u8 link_type, u8 addr_type, u32 value,
1813
			      u8 confirm_hint);
1814
int mgmt_user_confirm_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1815
				     u8 link_type, u8 addr_type, u8 status);
1816
int mgmt_user_confirm_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1817
					 u8 link_type, u8 addr_type, u8 status);
1818
int mgmt_user_passkey_request(struct hci_dev *hdev, bdaddr_t *bdaddr,
1819
			      u8 link_type, u8 addr_type);
1820
int mgmt_user_passkey_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1821
				     u8 link_type, u8 addr_type, u8 status);
1822
int mgmt_user_passkey_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1823
					 u8 link_type, u8 addr_type, u8 status);
1824 1825 1826
int mgmt_user_passkey_notify(struct hci_dev *hdev, bdaddr_t *bdaddr,
			     u8 link_type, u8 addr_type, u32 passkey,
			     u8 entered);
1827
void mgmt_auth_failed(struct hci_conn *conn, u8 status);
1828
void mgmt_auth_enable_complete(struct hci_dev *hdev, u8 status);
1829 1830
void mgmt_set_class_of_dev_complete(struct hci_dev *hdev, u8 *dev_class,
				    u8 status);
1831
void mgmt_set_local_name_complete(struct hci_dev *hdev, u8 *name, u8 status);
1832
void mgmt_start_discovery_complete(struct hci_dev *hdev, u8 status);
1833
void mgmt_stop_discovery_complete(struct hci_dev *hdev, u8 status);
1834
void mgmt_device_found(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
1835 1836
		       u8 addr_type, u8 *dev_class, s8 rssi, u32 flags,
		       u8 *eir, u16 eir_len, u8 *scan_rsp, u8 scan_rsp_len);
1837 1838
void mgmt_remote_name(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
		      u8 addr_type, s8 rssi, u8 *name, u8 name_len);
1839
void mgmt_discovering(struct hci_dev *hdev, u8 discovering);
1840 1841 1842
void mgmt_suspending(struct hci_dev *hdev, u8 state);
void mgmt_resuming(struct hci_dev *hdev, u8 reason, bdaddr_t *bdaddr,
		   u8 addr_type);
1843
bool mgmt_powering_down(struct hci_dev *hdev);
1844
void mgmt_new_ltk(struct hci_dev *hdev, struct smp_ltk *key, bool persistent);
1845
void mgmt_new_irk(struct hci_dev *hdev, struct smp_irk *irk, bool persistent);
1846 1847
void mgmt_new_csrk(struct hci_dev *hdev, struct smp_csrk *csrk,
		   bool persistent);
1848
void mgmt_new_conn_param(struct hci_dev *hdev, bdaddr_t *bdaddr,
1849 1850
			 u8 bdaddr_type, u8 store_hint, u16 min_interval,
			 u16 max_interval, u16 latency, u16 timeout);
1851
void mgmt_smp_complete(struct hci_conn *conn, bool complete);
1852 1853 1854 1855 1856 1857
bool mgmt_get_connectable(struct hci_dev *hdev);
u8 mgmt_get_adv_discov_flags(struct hci_dev *hdev);
void mgmt_advertising_added(struct sock *sk, struct hci_dev *hdev,
			    u8 instance);
void mgmt_advertising_removed(struct sock *sk, struct hci_dev *hdev,
			      u8 instance);
1858
void mgmt_adv_monitor_removed(struct hci_dev *hdev, u16 handle);
1859
int mgmt_phy_configuration_changed(struct hci_dev *hdev, struct sock *skip);
1860
int mgmt_add_adv_patterns_monitor_complete(struct hci_dev *hdev, u8 status);
1861
int mgmt_remove_adv_monitor_complete(struct hci_dev *hdev, u8 status);
1862 1863
void mgmt_adv_monitor_device_lost(struct hci_dev *hdev, u16 handle,
				  bdaddr_t *bdaddr, u8 addr_type);
1864

1865 1866
u8 hci_le_conn_update(struct hci_conn *conn, u16 min, u16 max, u16 latency,
		      u16 to_multiplier);
1867
void hci_le_start_enc(struct hci_conn *conn, __le16 ediv, __le64 rand,
1868
		      __u8 ltk[16], __u8 key_size);
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Andre Guedes 已提交
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1870 1871
void hci_copy_identity_address(struct hci_dev *hdev, bdaddr_t *bdaddr,
			       u8 *bdaddr_type);
1872

1873 1874 1875 1876
#define SCO_AIRMODE_MASK       0x0003
#define SCO_AIRMODE_CVSD       0x0000
#define SCO_AIRMODE_TRANSP     0x0003

1877 1878 1879 1880 1881
#define LOCAL_CODEC_ACL_MASK	BIT(0)
#define LOCAL_CODEC_SCO_MASK	BIT(1)

#define TRANSPORT_TYPE_MAX	0x04

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#endif /* __HCI_CORE_H */