hci_core.h 38.9 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

#include <net/bluetooth/hci.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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	s8			rssi;
	u16			uuid_count;
	u8			(*uuids)[16];
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	unsigned long		scan_start;
	unsigned long		scan_duration;
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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_slave;
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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 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 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 {
	__u8	instance;
	__u32	flags;
	__u16	adv_data_len;
	__u8	adv_data[HCI_MAX_AD_LENGTH];
	__u16	scan_rsp_len;
	__u8	scan_rsp_data[HCI_MAX_AD_LENGTH];
};

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#define HCI_MAX_SHORT_NAME_LENGTH	10

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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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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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#define NUM_REASSEMBLY 4
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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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	__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_white_list_size;
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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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	__u8		stored_max_keys;
	__u8		stored_num_keys;
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	__u8		io_capability;
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	__s8		inq_tx_power;
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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_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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	__u16		discov_interleaved_timeout;
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	__u16		conn_info_min_age;
	__u16		conn_info_max_age;
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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		devid_source;
	__u16		devid_vendor;
	__u16		devid_product;
	__u16		devid_version;
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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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	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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	__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 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 sk_buff_head	rx_q;
	struct sk_buff_head	raw_q;
	struct sk_buff_head	cmd_q;

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	struct sk_buff		*recv_evt;
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	struct sk_buff		*sent_cmd;
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	struct sk_buff		*reassembly[NUM_REASSEMBLY];
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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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	void			*smp_data;
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	void			*smp_bredr_data;
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	struct discovery_state	discovery;
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	struct hci_conn_hash	conn_hash;

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	struct list_head	mgmt_pending;
	struct list_head	blacklist;
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	struct list_head	whitelist;
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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_white_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 hci_dev_stats	stat;

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	atomic_t		promisc;
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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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	struct delayed_work	le_scan_disable;
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	struct delayed_work	le_scan_restart;
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	__s8			adv_tx_power;
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	__u8			adv_data[HCI_MAX_AD_LENGTH];
	__u8			adv_data_len;
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	__u8			scan_rsp_data[HCI_MAX_AD_LENGTH];
	__u8			scan_rsp_data_len;
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	struct adv_info		adv_instance;

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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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	int (*open)(struct hci_dev *hdev);
	int (*close)(struct hci_dev *hdev);
	int (*flush)(struct hci_dev *hdev);
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	int (*setup)(struct hci_dev *hdev);
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	int (*shutdown)(struct hci_dev *hdev);
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	int (*send)(struct hci_dev *hdev, struct sk_buff *skb);
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	void (*notify)(struct hci_dev *hdev, unsigned int evt);
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	void (*hw_error)(struct hci_dev *hdev, u8 code);
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	int (*set_bdaddr)(struct hci_dev *hdev, const bdaddr_t *bdaddr);
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};

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

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struct hci_conn {
	struct list_head list;

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	atomic_t	refcnt;

	bdaddr_t	dst;
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	__u8		dst_type;
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	bdaddr_t	src;
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	__u8		src_type;
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	bdaddr_t	init_addr;
	__u8		init_addr_type;
	bdaddr_t	resp_addr;
	__u8		resp_addr_type;
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	__u16		handle;
	__u16		state;
	__u8		mode;
	__u8		type;
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	__u8		role;
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	bool		out;
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	__u8		attempt;
	__u8		dev_class[3];
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	__u8		features[HCI_MAX_PAGES][8];
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	__u16		pkt_type;
	__u16		link_policy;
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	__u8		key_type;
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	__u8		auth_type;
	__u8		sec_level;
	__u8		pending_sec_level;
	__u8		pin_length;
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	__u8		enc_key_size;
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	__u8		io_capability;
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	__u32		passkey_notify;
	__u8		passkey_entered;
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	__u16		disc_timeout;
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	__u16		conn_timeout;
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	__u16		setting;
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	__u16		le_conn_min_interval;
	__u16		le_conn_max_interval;
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	__u16		le_conn_interval;
	__u16		le_conn_latency;
	__u16		le_supv_timeout;
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	__u8		le_adv_data[HCI_MAX_AD_LENGTH];
	__u8		le_adv_data_len;
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	__s8		rssi;
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	__s8		tx_power;
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	__s8		max_tx_power;
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	unsigned long	flags;
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	__u32		clock;
	__u16		clock_accuracy;

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	unsigned long	conn_info_timestamp;

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	__u8		remote_cap;
	__u8		remote_auth;
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	__u8		remote_id;
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	unsigned int	sent;
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	struct sk_buff_head data_q;
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	struct list_head chan_list;
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	struct delayed_work disc_work;
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	struct delayed_work auto_accept_work;
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	struct delayed_work idle_work;
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	struct delayed_work le_conn_timeout;
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	struct device	dev;
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	struct dentry	*debugfs;
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	struct hci_dev	*hdev;
	void		*l2cap_data;
	void		*sco_data;
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	struct amp_mgr	*amp_mgr;
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	struct hci_conn	*link;
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	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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};

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struct hci_chan {
	struct list_head list;
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	__u16 handle;
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	struct hci_conn *conn;
	struct sk_buff_head data_q;
	unsigned int	sent;
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	__u8		state;
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};

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struct hci_conn_params {
	struct list_head list;
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	struct list_head action;
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	bdaddr_t addr;
	u8 addr_type;

	u16 conn_min_interval;
	u16 conn_max_interval;
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	u16 conn_latency;
	u16 supervision_timeout;
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	enum {
		HCI_AUTO_CONN_DISABLED,
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		HCI_AUTO_CONN_REPORT,
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		HCI_AUTO_CONN_DIRECT,
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		HCI_AUTO_CONN_ALWAYS,
		HCI_AUTO_CONN_LINK_LOSS,
	} auto_connect;
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	struct hci_conn *conn;
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};

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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;
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extern struct mutex hci_cb_list_lock;
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#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);		\
		hci_dev_clear_flag(hdev, HCI_PERIODIC_INQ);	\
	} while (0)
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/* ----- HCI interface to upper protocols ----- */
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int l2cap_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr);
int l2cap_disconn_ind(struct hci_conn *hcon);
int l2cap_recv_acldata(struct hci_conn *hcon, struct sk_buff *skb, u16 flags);

int sco_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr, __u8 *flags);
int sco_recv_scodata(struct hci_conn *hcon, struct sk_buff *skb);
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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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static inline void discovery_init(struct hci_dev *hdev)
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{
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	hdev->discovery.state = DISCOVERY_STOPPED;
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	INIT_LIST_HEAD(&hdev->discovery.all);
	INIT_LIST_HEAD(&hdev->discovery.unknown);
	INIT_LIST_HEAD(&hdev->discovery.resolve);
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	hdev->discovery.report_invalid_rssi = true;
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	hdev->discovery.rssi = HCI_RSSI_INVALID;
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}

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static inline void hci_discovery_filter_clear(struct hci_dev *hdev)
{
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	hdev->discovery.result_filtering = false;
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	hdev->discovery.report_invalid_rssi = true;
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	hdev->discovery.rssi = HCI_RSSI_INVALID;
	hdev->discovery.uuid_count = 0;
	kfree(hdev->discovery.uuids);
	hdev->discovery.uuids = NULL;
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	hdev->discovery.scan_start = 0;
	hdev->discovery.scan_duration = 0;
562 563
}

564 565 566 567 568
static inline void adv_info_init(struct hci_dev *hdev)
{
	memset(&hdev->adv_instance, 0, sizeof(struct adv_info));
}

569 570
bool hci_discovery_active(struct hci_dev *hdev);

571 572
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)
{
575
	return list_empty(&hdev->discovery.all);
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}

static inline long inquiry_cache_age(struct hci_dev *hdev)
{
580
	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;
}

589
struct inquiry_entry *hci_inquiry_cache_lookup(struct hci_dev *hdev,
590
					       bdaddr_t *bdaddr);
591
struct inquiry_entry *hci_inquiry_cache_lookup_unknown(struct hci_dev *hdev,
592
						       bdaddr_t *bdaddr);
593
struct inquiry_entry *hci_inquiry_cache_lookup_resolve(struct hci_dev *hdev,
594 595
						       bdaddr_t *bdaddr,
						       int state);
596
void hci_inquiry_cache_update_resolve(struct hci_dev *hdev,
597
				      struct inquiry_entry *ie);
598 599
u32 hci_inquiry_cache_update(struct hci_dev *hdev, struct inquiry_data *data,
			     bool name_known);
600
void hci_inquiry_cache_flush(struct hci_dev *hdev);
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/* ----- HCI Connections ----- */
enum {
	HCI_CONN_AUTH_PEND,
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	HCI_CONN_REAUTH_PEND,
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	HCI_CONN_ENCRYPT_PEND,
607 608
	HCI_CONN_RSWITCH_PEND,
	HCI_CONN_MODE_CHANGE_PEND,
609
	HCI_CONN_SCO_SETUP_PEND,
610
	HCI_CONN_MGMT_CONNECTED,
611
	HCI_CONN_SSP_ENABLED,
612
	HCI_CONN_SC_ENABLED,
613
	HCI_CONN_AES_CCM,
614
	HCI_CONN_POWER_SAVE,
615
	HCI_CONN_FLUSH_KEY,
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	HCI_CONN_ENCRYPT,
	HCI_CONN_AUTH,
	HCI_CONN_SECURE,
	HCI_CONN_FIPS,
620
	HCI_CONN_STK_ENCRYPT,
621
	HCI_CONN_AUTH_INITIATOR,
622
	HCI_CONN_DROP,
623
	HCI_CONN_PARAM_REMOVAL_PEND,
624
	HCI_CONN_NEW_LINK_KEY,
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};

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static inline bool hci_conn_ssp_enabled(struct hci_conn *conn)
{
	struct hci_dev *hdev = conn->hdev;
630
	return hci_dev_test_flag(hdev, HCI_SSP_ENABLED) &&
631
	       test_bit(HCI_CONN_SSP_ENABLED, &conn->flags);
632 633
}

634 635 636
static inline bool hci_conn_sc_enabled(struct hci_conn *conn)
{
	struct hci_dev *hdev = conn->hdev;
637
	return hci_dev_test_flag(hdev, HCI_SC_ENABLED) &&
638 639 640
	       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;
644
	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;
649 650 651
	case AMP_LINK:
		h->amp_num++;
		break;
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	case LE_LINK:
		h->le_num++;
654 655
		if (c->role == HCI_ROLE_SLAVE)
			h->le_num_slave++;
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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;
667 668 669 670

	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;
675 676 677
	case AMP_LINK:
		h->amp_num--;
		break;
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	case LE_LINK:
		h->le_num--;
680 681
		if (c->role == HCI_ROLE_SLAVE)
			h->le_num_slave--;
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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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}

690 691 692 693 694 695
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;
696 697
	case AMP_LINK:
		return h->amp_num;
698 699 700 701 702 703 704 705 706 707
	case LE_LINK:
		return h->le_num;
	case SCO_LINK:
	case ESCO_LINK:
		return h->sco_num;
	default:
		return 0;
	}
}

708 709 710 711 712 713 714
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;
}

715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734
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,
736
								__u16 handle)
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{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

741 742 743 744 745
	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;
747
		}
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	}
749 750
	rcu_read_unlock();

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	return NULL;
}

static inline struct hci_conn *hci_conn_hash_lookup_ba(struct hci_dev *hdev,
755
							__u8 type, bdaddr_t *ba)
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{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

760 761 762 763 764
	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;
766
		}
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	}
768 769 770

	rcu_read_unlock();

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	return NULL;
}

774
static inline struct hci_conn *hci_conn_hash_lookup_state(struct hci_dev *hdev,
775
							__u8 type, __u16 state)
776 777 778 779
{
	struct hci_conn_hash *h = &hdev->conn_hash;
	struct hci_conn  *c;

780 781 782 783 784
	rcu_read_lock();

	list_for_each_entry_rcu(c, &h->list, list) {
		if (c->type == type && c->state == state) {
			rcu_read_unlock();
785
			return c;
786
		}
787
	}
788

789
	rcu_read_unlock();
790

791
	return NULL;
792 793
}

794
int hci_disconnect(struct hci_conn *conn, __u8 reason);
795
bool hci_setup_sync(struct hci_conn *conn, __u16 handle);
796
void hci_sco_setup(struct hci_conn *conn, __u8 status);
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798 799
struct hci_conn *hci_conn_add(struct hci_dev *hdev, int type, bdaddr_t *dst,
			      u8 role);
800 801 802
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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804
struct hci_chan *hci_chan_create(struct hci_conn *conn);
805
void hci_chan_del(struct hci_chan *chan);
806
void hci_chan_list_flush(struct hci_conn *conn);
807
struct hci_chan *hci_chan_lookup_handle(struct hci_dev *hdev, __u16 handle);
808

809
struct hci_conn *hci_connect_le(struct hci_dev *hdev, bdaddr_t *dst,
810
				u8 dst_type, u8 sec_level, u16 conn_timeout,
811
				u8 role);
812 813
struct hci_conn *hci_connect_acl(struct hci_dev *hdev, bdaddr_t *dst,
				 u8 sec_level, u8 auth_type);
814 815
struct hci_conn *hci_connect_sco(struct hci_dev *hdev, int type, bdaddr_t *dst,
				 __u16 setting);
816
int hci_conn_check_link_mode(struct hci_conn *conn);
817
int hci_conn_check_secure(struct hci_conn *conn, __u8 sec_level);
818 819
int hci_conn_security(struct hci_conn *conn, __u8 sec_level, __u8 auth_type,
		      bool initiator);
820
int hci_conn_switch_role(struct hci_conn *conn, __u8 role);
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void hci_conn_enter_active_mode(struct hci_conn *conn, __u8 force_active);
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824 825
void hci_le_conn_failed(struct hci_conn *conn, u8 status);

826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846
/*
 * 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).
 */

847
static inline struct hci_conn *hci_conn_get(struct hci_conn *conn)
848 849
{
	get_device(&conn->dev);
850
	return conn;
851 852 853 854 855 856 857
}

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

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static inline void hci_conn_hold(struct hci_conn *conn)
{
860
	BT_DBG("hcon %p orig refcnt %d", conn, atomic_read(&conn->refcnt));
861

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	atomic_inc(&conn->refcnt);
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	cancel_delayed_work(&conn->disc_work);
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}

866
static inline void hci_conn_drop(struct hci_conn *conn)
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{
868
	BT_DBG("hcon %p orig refcnt %d", conn, atomic_read(&conn->refcnt));
869

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	if (atomic_dec_and_test(&conn->refcnt)) {
871
		unsigned long timeo;
872 873 874 875

		switch (conn->type) {
		case ACL_LINK:
		case LE_LINK:
876
			cancel_delayed_work(&conn->idle_work);
877
			if (conn->state == BT_CONNECTED) {
878
				timeo = conn->disc_timeout;
879
				if (!conn->out)
880
					timeo *= 2;
881
			} else {
882
				timeo = 0;
883
			}
884 885 886 887 888 889 890
			break;

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

		default:
891
			timeo = 0;
892
			break;
893
		}
894

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		cancel_delayed_work(&conn->disc_work);
896
		queue_delayed_work(conn->hdev->workqueue,
897
				   &conn->disc_work, timeo);
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	}
}

/* ----- HCI Devices ----- */
902
static inline void hci_dev_put(struct hci_dev *d)
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{
904 905 906
	BT_DBG("%s orig refcnt %d", d->name,
	       atomic_read(&d->dev.kobj.kref.refcount));

907
	put_device(&d->dev);
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}

910
static inline struct hci_dev *hci_dev_hold(struct hci_dev *d)
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{
912 913 914
	BT_DBG("%s orig refcnt %d", d->name,
	       atomic_read(&d->dev.kobj.kref.refcount));

915
	get_device(&d->dev);
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	return d;
}

919 920
#define hci_dev_lock(d)		mutex_lock(&d->lock)
#define hci_dev_unlock(d)	mutex_unlock(&d->lock)
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922
#define to_hci_dev(d) container_of(d, struct hci_dev, dev)
923
#define to_hci_conn(c) container_of(c, struct hci_conn, dev)
924

925 926 927 928 929 930 931 932 933 934
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);
}

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struct hci_dev *hci_dev_get(int index);
936
struct hci_dev *hci_get_route(bdaddr_t *dst, bdaddr_t *src);
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struct hci_dev *hci_alloc_dev(void);
void hci_free_dev(struct hci_dev *hdev);
int hci_register_dev(struct hci_dev *hdev);
941
void hci_unregister_dev(struct hci_dev *hdev);
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int hci_suspend_dev(struct hci_dev *hdev);
int hci_resume_dev(struct hci_dev *hdev);
944
int hci_reset_dev(struct hci_dev *hdev);
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int hci_dev_open(__u16 dev);
int hci_dev_close(__u16 dev);
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);
954
int hci_get_auth_info(struct hci_dev *hdev, void __user *arg);
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int hci_inquiry(void __user *arg);

957 958 959 960 961
struct bdaddr_list *hci_bdaddr_list_lookup(struct list_head *list,
					   bdaddr_t *bdaddr, u8 type);
int hci_bdaddr_list_add(struct list_head *list, bdaddr_t *bdaddr, u8 type);
int hci_bdaddr_list_del(struct list_head *list, bdaddr_t *bdaddr, u8 type);
void hci_bdaddr_list_clear(struct list_head *list);
962

963 964
struct hci_conn_params *hci_conn_params_lookup(struct hci_dev *hdev,
					       bdaddr_t *addr, u8 addr_type);
965 966
struct hci_conn_params *hci_conn_params_add(struct hci_dev *hdev,
					    bdaddr_t *addr, u8 addr_type);
967
void hci_conn_params_del(struct hci_dev *hdev, bdaddr_t *addr, u8 addr_type);
968
void hci_conn_params_clear_all(struct hci_dev *hdev);
969
void hci_conn_params_clear_disabled(struct hci_dev *hdev);
970

971 972 973
struct hci_conn_params *hci_pend_le_action_lookup(struct list_head *list,
						  bdaddr_t *addr,
						  u8 addr_type);
974

975
void hci_uuids_clear(struct hci_dev *hdev);
976

977
void hci_link_keys_clear(struct hci_dev *hdev);
978
struct link_key *hci_find_link_key(struct hci_dev *hdev, bdaddr_t *bdaddr);
979
struct link_key *hci_add_link_key(struct hci_dev *hdev, struct hci_conn *conn,
980 981
				  bdaddr_t *bdaddr, u8 *val, u8 type,
				  u8 pin_len, bool *persistent);
982
struct smp_ltk *hci_add_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr,
983
			    u8 addr_type, u8 type, u8 authenticated,
984
			    u8 tk[16], u8 enc_size, __le16 ediv, __le64 rand);
985 986
struct smp_ltk *hci_find_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr,
			     u8 addr_type, u8 role);
987
int hci_remove_ltk(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 bdaddr_type);
988
void hci_smp_ltks_clear(struct hci_dev *hdev);
989 990
int hci_remove_link_key(struct hci_dev *hdev, bdaddr_t *bdaddr);

991 992 993
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);
994 995
struct smp_irk *hci_add_irk(struct hci_dev *hdev, bdaddr_t *bdaddr,
			    u8 addr_type, u8 val[16], bdaddr_t *rpa);
996
void hci_remove_irk(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 addr_type);
997 998
void hci_smp_irks_clear(struct hci_dev *hdev);

999 1000
bool hci_bdaddr_is_paired(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 type);

1001
void hci_remote_oob_data_clear(struct hci_dev *hdev);
1002
struct oob_data *hci_find_remote_oob_data(struct hci_dev *hdev,
1003
					  bdaddr_t *bdaddr, u8 bdaddr_type);
1004
int hci_add_remote_oob_data(struct hci_dev *hdev, bdaddr_t *bdaddr,
1005
			    u8 bdaddr_type, u8 *hash192, u8 *rand192,
1006
			    u8 *hash256, u8 *rand256);
1007 1008
int hci_remove_remote_oob_data(struct hci_dev *hdev, bdaddr_t *bdaddr,
			       u8 bdaddr_type);
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void hci_event_packet(struct hci_dev *hdev, struct sk_buff *skb);

1012
int hci_recv_frame(struct hci_dev *hdev, struct sk_buff *skb);
1013
int hci_recv_stream_fragment(struct hci_dev *hdev, void *data, int count);
1014

1015
void hci_init_sysfs(struct hci_dev *hdev);
1016
void hci_conn_init_sysfs(struct hci_conn *conn);
1017 1018
void hci_conn_add_sysfs(struct hci_conn *conn);
void hci_conn_del_sysfs(struct hci_conn *conn);
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1020
#define SET_HCIDEV_DEV(hdev, pdev) ((hdev)->dev.parent = (pdev))
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/* ----- LMP capabilities ----- */
1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040
#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)
#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)
1041
#define lmp_transp_capable(dev)    ((dev)->features[0][2] & LMP_TRANSPARENT)
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1043
/* ----- Extended LMP capabilities ----- */
1044 1045 1046 1047
#define lmp_csb_master_capable(dev) ((dev)->features[2][0] & LMP_CSB_MASTER)
#define lmp_csb_slave_capable(dev)  ((dev)->features[2][0] & LMP_CSB_SLAVE)
#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)
1048 1049
#define lmp_sc_capable(dev)         ((dev)->features[2][1] & LMP_SC)
#define lmp_ping_capable(dev)       ((dev)->features[2][1] & LMP_PING)
1050 1051

/* ----- Host capabilities ----- */
1052
#define lmp_host_ssp_capable(dev)  ((dev)->features[1][0] & LMP_HOST_SSP)
1053
#define lmp_host_sc_capable(dev)   ((dev)->features[1][0] & LMP_HOST_SC)
1054 1055
#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))
1056

1057 1058 1059 1060
#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))
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/* ----- HCI protocols ----- */
1063 1064
#define HCI_PROTO_DEFER             0x01

1065
static inline int hci_proto_connect_ind(struct hci_dev *hdev, bdaddr_t *bdaddr,
1066
					__u8 type, __u8 *flags)
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{
1068 1069 1070
	switch (type) {
	case ACL_LINK:
		return l2cap_connect_ind(hdev, bdaddr);
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1072 1073
	case SCO_LINK:
	case ESCO_LINK:
1074
		return sco_connect_ind(hdev, bdaddr, flags);
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1076 1077 1078 1079
	default:
		BT_ERR("unknown link type %d", type);
		return -EINVAL;
	}
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}

1082
static inline int hci_proto_disconn_ind(struct hci_conn *conn)
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{
1084 1085
	if (conn->type != ACL_LINK && conn->type != LE_LINK)
		return HCI_ERROR_REMOTE_USER_TERM;
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1087
	return l2cap_disconn_ind(conn);
1088 1089
}

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

	char *name;

1096
	void (*connect_cfm)	(struct hci_conn *conn, __u8 status);
1097
	void (*disconn_cfm)	(struct hci_conn *conn, __u8 status);
1098 1099
	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);
};

1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118
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);
}

1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133
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)
{
1136
	struct hci_cb *cb;
1137
	__u8 encrypt;
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1139
	if (test_bit(HCI_CONN_ENCRYPT_PEND, &conn->flags))
1140 1141
		return;

1142
	encrypt = test_bit(HCI_CONN_ENCRYPT, &conn->flags) ? 0x01 : 0x00;
1143

1144
	mutex_lock(&hci_cb_list_lock);
1145
	list_for_each_entry(cb, &hci_cb_list, list) {
1146 1147
		if (cb->security_cfm)
			cb->security_cfm(conn, status, encrypt);
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	}
1149
	mutex_unlock(&hci_cb_list_lock);
1150 1151 1152

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

1155 1156
static inline void hci_encrypt_cfm(struct hci_conn *conn, __u8 status,
								__u8 encrypt)
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{
1158
	struct hci_cb *cb;
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1160 1161 1162
	if (conn->sec_level == BT_SECURITY_SDP)
		conn->sec_level = BT_SECURITY_LOW;

1163 1164 1165
	if (conn->pending_sec_level > conn->sec_level)
		conn->sec_level = conn->pending_sec_level;

1166
	mutex_lock(&hci_cb_list_lock);
1167
	list_for_each_entry(cb, &hci_cb_list, list) {
1168 1169
		if (cb->security_cfm)
			cb->security_cfm(conn, status, encrypt);
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	}
1171
	mutex_unlock(&hci_cb_list_lock);
1172 1173 1174

	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)
{
1179
	struct hci_cb *cb;
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1181
	mutex_lock(&hci_cb_list_lock);
1182
	list_for_each_entry(cb, &hci_cb_list, list) {
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		if (cb->key_change_cfm)
			cb->key_change_cfm(conn, status);
	}
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	mutex_unlock(&hci_cb_list_lock);
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}

1189 1190
static inline void hci_role_switch_cfm(struct hci_conn *conn, __u8 status,
								__u8 role)
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{
1192
	struct hci_cb *cb;
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1194
	mutex_lock(&hci_cb_list_lock);
1195
	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);
	}
1199
	mutex_unlock(&hci_cb_list_lock);
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}

1202 1203
static inline bool eir_has_data_type(u8 *data, size_t data_len, u8 type)
{
1204
	size_t parsed = 0;
1205

1206 1207 1208
	if (data_len < 2)
		return false;

1209 1210
	while (parsed < data_len - 1) {
		u8 field_len = data[0];
1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228

		if (field_len == 0)
			break;

		parsed += field_len + 1;

		if (parsed > data_len)
			break;

		if (data[1] == type)
			return true;

		data += field_len + 1;
	}

	return false;
}

1229 1230
static inline bool hci_bdaddr_is_rpa(bdaddr_t *bdaddr, u8 addr_type)
{
1231
	if (addr_type != ADDR_LE_DEV_RANDOM)
1232 1233 1234 1235 1236 1237 1238 1239
		return false;

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

	return false;
}

1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251
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;
}

1252 1253 1254 1255 1256 1257 1258 1259 1260
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);
}

1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281
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;

	max_latency = (to_multiplier * 8 / max) - 1;
	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);

1285
bool hci_req_pending(struct hci_dev *hdev);
1286

1287
struct sk_buff *__hci_cmd_sync(struct hci_dev *hdev, u16 opcode, u32 plen,
1288
			       const void *param, u32 timeout);
1289
struct sk_buff *__hci_cmd_sync_ev(struct hci_dev *hdev, u16 opcode, u32 plen,
1290
				  const void *param, u8 event, u32 timeout);
1291

1292 1293
int hci_send_cmd(struct hci_dev *hdev, __u16 opcode, __u32 plen,
		 const void *param);
1294
void hci_send_acl(struct hci_chan *chan, struct sk_buff *skb, __u16 flags);
1295
void hci_send_sco(struct hci_conn *conn, struct sk_buff *skb);
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1297
void *hci_sent_cmd_data(struct hci_dev *hdev, __u16 opcode);
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/* ----- HCI Sockets ----- */
1300
void hci_send_to_sock(struct hci_dev *hdev, struct sk_buff *skb);
1301
void hci_send_to_channel(unsigned short channel, struct sk_buff *skb,
1302
			 int flag, struct sock *skip_sk);
1303
void hci_send_to_monitor(struct hci_dev *hdev, struct sk_buff *skb);
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1305 1306
void hci_sock_dev_event(struct hci_dev *hdev, int event);

1307 1308 1309 1310
#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)
1311

1312 1313 1314 1315
struct hci_mgmt_handler {
	int (*func) (struct sock *sk, struct hci_dev *hdev, void *data,
		     u16 data_len);
	size_t data_len;
1316
	unsigned long flags;
1317 1318 1319 1320 1321 1322 1323
};

struct hci_mgmt_chan {
	struct list_head list;
	unsigned short channel;
	size_t handler_count;
	const struct hci_mgmt_handler *handlers;
1324
	void (*hdev_init) (struct sock *sk, struct hci_dev *hdev);
1325 1326 1327 1328 1329
};

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

1330
/* Management interface */
1331 1332 1333 1334 1335 1336
#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))
1337

1338 1339 1340 1341 1342
/* 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
1343
#define DISCOV_LE_TIMEOUT		10240	/* msec */
1344
#define DISCOV_INTERLEAVED_TIMEOUT	5120	/* msec */
1345 1346
#define DISCOV_INTERLEAVED_INQUIRY_LEN	0x04
#define DISCOV_BREDR_INQUIRY_LEN	0x08
1347
#define DISCOV_LE_RESTART_DELAY		msecs_to_jiffies(200)	/* msec */
1348

1349
int mgmt_new_settings(struct hci_dev *hdev);
1350 1351
void mgmt_index_added(struct hci_dev *hdev);
void mgmt_index_removed(struct hci_dev *hdev);
1352
void mgmt_set_powered_failed(struct hci_dev *hdev, int err);
1353
int mgmt_powered(struct hci_dev *hdev, u8 powered);
1354
int mgmt_update_adv_data(struct hci_dev *hdev);
1355
void mgmt_discoverable_timeout(struct hci_dev *hdev);
1356 1357
void mgmt_new_link_key(struct hci_dev *hdev, struct link_key *key,
		       bool persistent);
1358 1359
void mgmt_device_connected(struct hci_dev *hdev, struct hci_conn *conn,
			   u32 flags, u8 *name, u8 name_len);
1360
void mgmt_device_disconnected(struct hci_dev *hdev, bdaddr_t *bdaddr,
1361 1362
			      u8 link_type, u8 addr_type, u8 reason,
			      bool mgmt_connected);
1363 1364
void mgmt_disconnect_failed(struct hci_dev *hdev, bdaddr_t *bdaddr,
			    u8 link_type, u8 addr_type, u8 status);
1365 1366
void mgmt_connect_failed(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
			 u8 addr_type, u8 status);
1367
void mgmt_pin_code_request(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 secure);
1368 1369
void mgmt_pin_code_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
				  u8 status);
1370 1371
void mgmt_pin_code_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
				      u8 status);
1372
int mgmt_user_confirm_request(struct hci_dev *hdev, bdaddr_t *bdaddr,
1373
			      u8 link_type, u8 addr_type, u32 value,
1374
			      u8 confirm_hint);
1375
int mgmt_user_confirm_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1376
				     u8 link_type, u8 addr_type, u8 status);
1377
int mgmt_user_confirm_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1378
					 u8 link_type, u8 addr_type, u8 status);
1379
int mgmt_user_passkey_request(struct hci_dev *hdev, bdaddr_t *bdaddr,
1380
			      u8 link_type, u8 addr_type);
1381
int mgmt_user_passkey_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1382
				     u8 link_type, u8 addr_type, u8 status);
1383
int mgmt_user_passkey_neg_reply_complete(struct hci_dev *hdev, bdaddr_t *bdaddr,
1384
					 u8 link_type, u8 addr_type, u8 status);
1385 1386 1387
int mgmt_user_passkey_notify(struct hci_dev *hdev, bdaddr_t *bdaddr,
			     u8 link_type, u8 addr_type, u32 passkey,
			     u8 entered);
1388
void mgmt_auth_failed(struct hci_conn *conn, u8 status);
1389
void mgmt_auth_enable_complete(struct hci_dev *hdev, u8 status);
1390
void mgmt_ssp_enable_complete(struct hci_dev *hdev, u8 enable, u8 status);
1391 1392
void mgmt_set_class_of_dev_complete(struct hci_dev *hdev, u8 *dev_class,
				    u8 status);
1393
void mgmt_set_local_name_complete(struct hci_dev *hdev, u8 *name, u8 status);
1394
void mgmt_read_local_oob_data_complete(struct hci_dev *hdev, u8 *hash192,
1395 1396
				       u8 *rand192, u8 *hash256, u8 *rand256,
				       u8 status);
1397
void mgmt_device_found(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
1398 1399
		       u8 addr_type, u8 *dev_class, s8 rssi, u32 flags,
		       u8 *eir, u16 eir_len, u8 *scan_rsp, u8 scan_rsp_len);
1400 1401
void mgmt_remote_name(struct hci_dev *hdev, bdaddr_t *bdaddr, u8 link_type,
		      u8 addr_type, s8 rssi, u8 *name, u8 name_len);
1402
void mgmt_discovering(struct hci_dev *hdev, u8 discovering);
1403
bool mgmt_powering_down(struct hci_dev *hdev);
1404
void mgmt_new_ltk(struct hci_dev *hdev, struct smp_ltk *key, bool persistent);
1405
void mgmt_new_irk(struct hci_dev *hdev, struct smp_irk *irk);
1406 1407
void mgmt_new_csrk(struct hci_dev *hdev, struct smp_csrk *csrk,
		   bool persistent);
1408
void mgmt_new_conn_param(struct hci_dev *hdev, bdaddr_t *bdaddr,
1409 1410
			 u8 bdaddr_type, u8 store_hint, u16 min_interval,
			 u16 max_interval, u16 latency, u16 timeout);
1411
void mgmt_reenable_advertising(struct hci_dev *hdev);
1412
void mgmt_smp_complete(struct hci_conn *conn, bool complete);
1413

1414 1415
u8 hci_le_conn_update(struct hci_conn *conn, u16 min, u16 max, u16 latency,
		      u16 to_multiplier);
1416
void hci_le_start_enc(struct hci_conn *conn, __le16 ediv, __le64 rand,
1417
							__u8 ltk[16]);
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1419 1420
void hci_copy_identity_address(struct hci_dev *hdev, bdaddr_t *bdaddr,
			       u8 *bdaddr_type);
1421

1422 1423 1424 1425
#define SCO_AIRMODE_MASK       0x0003
#define SCO_AIRMODE_CVSD       0x0000
#define SCO_AIRMODE_TRANSP     0x0003

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#endif /* __HCI_CORE_H */