2 BlueZ - Bluetooth protocol stack for Linux
3 Copyright (C) 2000-2001 Qualcomm Incorporated
4 Copyright (C) 2009-2010 Gustavo F. Padovan <gustavo@padovan.org>
5 Copyright (C) 2010 Google Inc.
6 Copyright (C) 2011 ProFUSION Embedded Systems
8 Written 2000,2001 by Maxim Krasnyansky <maxk@qualcomm.com>
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License version 2 as
12 published by the Free Software Foundation;
14 THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
15 OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16 FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT OF THIRD PARTY RIGHTS.
17 IN NO EVENT SHALL THE COPYRIGHT HOLDER(S) AND AUTHOR(S) BE LIABLE FOR ANY
18 CLAIM, OR ANY SPECIAL INDIRECT OR CONSEQUENTIAL DAMAGES, OR ANY DAMAGES
19 WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
20 ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
21 OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
23 ALL LIABILITY, INCLUDING LIABILITY FOR INFRINGEMENT OF ANY PATENTS,
24 COPYRIGHTS, TRADEMARKS OR OTHER RIGHTS, RELATING TO USE OF THIS
25 SOFTWARE IS DISCLAIMED.
28 /* Bluetooth L2CAP sockets. */
30 #include <linux/module.h>
31 #include <linux/export.h>
32 #include <linux/sched/signal.h>
34 #include <net/bluetooth/bluetooth.h>
35 #include <net/bluetooth/hci_core.h>
36 #include <net/bluetooth/l2cap.h>
40 static struct bt_sock_list l2cap_sk_list
= {
41 .lock
= __RW_LOCK_UNLOCKED(l2cap_sk_list
.lock
)
44 static const struct proto_ops l2cap_sock_ops
;
45 static void l2cap_sock_init(struct sock
*sk
, struct sock
*parent
);
46 static struct sock
*l2cap_sock_alloc(struct net
*net
, struct socket
*sock
,
47 int proto
, gfp_t prio
, int kern
);
49 bool l2cap_is_socket(struct socket
*sock
)
51 return sock
&& sock
->ops
== &l2cap_sock_ops
;
53 EXPORT_SYMBOL(l2cap_is_socket
);
55 static int l2cap_validate_bredr_psm(u16 psm
)
57 /* PSM must be odd and lsb of upper byte must be 0 */
58 if ((psm
& 0x0101) != 0x0001)
61 /* Restrict usage of well-known PSMs */
62 if (psm
< L2CAP_PSM_DYN_START
&& !capable(CAP_NET_BIND_SERVICE
))
68 static int l2cap_validate_le_psm(u16 psm
)
70 /* Valid LE_PSM ranges are defined only until 0x00ff */
71 if (psm
> L2CAP_PSM_LE_DYN_END
)
74 /* Restrict fixed, SIG assigned PSM values to CAP_NET_BIND_SERVICE */
75 if (psm
< L2CAP_PSM_LE_DYN_START
&& !capable(CAP_NET_BIND_SERVICE
))
81 static int l2cap_sock_bind(struct socket
*sock
, struct sockaddr
*addr
, int alen
)
83 struct sock
*sk
= sock
->sk
;
84 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
85 struct sockaddr_l2 la
;
90 if (!addr
|| addr
->sa_family
!= AF_BLUETOOTH
)
93 memset(&la
, 0, sizeof(la
));
94 len
= min_t(unsigned int, sizeof(la
), alen
);
95 memcpy(&la
, addr
, len
);
97 if (la
.l2_cid
&& la
.l2_psm
)
100 if (!bdaddr_type_is_valid(la
.l2_bdaddr_type
))
103 if (bdaddr_type_is_le(la
.l2_bdaddr_type
)) {
104 /* We only allow ATT user space socket */
106 la
.l2_cid
!= cpu_to_le16(L2CAP_CID_ATT
))
112 if (sk
->sk_state
!= BT_OPEN
) {
118 __u16 psm
= __le16_to_cpu(la
.l2_psm
);
120 if (la
.l2_bdaddr_type
== BDADDR_BREDR
)
121 err
= l2cap_validate_bredr_psm(psm
);
123 err
= l2cap_validate_le_psm(psm
);
129 bacpy(&chan
->src
, &la
.l2_bdaddr
);
130 chan
->src_type
= la
.l2_bdaddr_type
;
133 err
= l2cap_add_scid(chan
, __le16_to_cpu(la
.l2_cid
));
135 err
= l2cap_add_psm(chan
, &la
.l2_bdaddr
, la
.l2_psm
);
140 switch (chan
->chan_type
) {
141 case L2CAP_CHAN_CONN_LESS
:
142 if (__le16_to_cpu(la
.l2_psm
) == L2CAP_PSM_3DSP
)
143 chan
->sec_level
= BT_SECURITY_SDP
;
145 case L2CAP_CHAN_CONN_ORIENTED
:
146 if (__le16_to_cpu(la
.l2_psm
) == L2CAP_PSM_SDP
||
147 __le16_to_cpu(la
.l2_psm
) == L2CAP_PSM_RFCOMM
)
148 chan
->sec_level
= BT_SECURITY_SDP
;
151 chan
->sec_level
= BT_SECURITY_SDP
;
153 case L2CAP_CHAN_FIXED
:
154 /* Fixed channels default to the L2CAP core not holding a
155 * hci_conn reference for them. For fixed channels mapping to
156 * L2CAP sockets we do want to hold a reference so set the
157 * appropriate flag to request it.
159 set_bit(FLAG_HOLD_HCI_CONN
, &chan
->flags
);
163 if (chan
->psm
&& bdaddr_type_is_le(chan
->src_type
))
164 chan
->mode
= L2CAP_MODE_LE_FLOWCTL
;
166 chan
->state
= BT_BOUND
;
167 sk
->sk_state
= BT_BOUND
;
174 static int l2cap_sock_connect(struct socket
*sock
, struct sockaddr
*addr
,
177 struct sock
*sk
= sock
->sk
;
178 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
179 struct sockaddr_l2 la
;
184 if (!addr
|| alen
< sizeof(addr
->sa_family
) ||
185 addr
->sa_family
!= AF_BLUETOOTH
)
188 memset(&la
, 0, sizeof(la
));
189 len
= min_t(unsigned int, sizeof(la
), alen
);
190 memcpy(&la
, addr
, len
);
192 if (la
.l2_cid
&& la
.l2_psm
)
195 if (!bdaddr_type_is_valid(la
.l2_bdaddr_type
))
198 /* Check that the socket wasn't bound to something that
199 * conflicts with the address given to connect(). If chan->src
200 * is BDADDR_ANY it means bind() was never used, in which case
201 * chan->src_type and la.l2_bdaddr_type do not need to match.
203 if (chan
->src_type
== BDADDR_BREDR
&& bacmp(&chan
->src
, BDADDR_ANY
) &&
204 bdaddr_type_is_le(la
.l2_bdaddr_type
)) {
205 /* Old user space versions will try to incorrectly bind
206 * the ATT socket using BDADDR_BREDR. We need to accept
207 * this and fix up the source address type only when
208 * both the source CID and destination CID indicate
209 * ATT. Anything else is an invalid combination.
211 if (chan
->scid
!= L2CAP_CID_ATT
||
212 la
.l2_cid
!= cpu_to_le16(L2CAP_CID_ATT
))
215 /* We don't have the hdev available here to make a
216 * better decision on random vs public, but since all
217 * user space versions that exhibit this issue anyway do
218 * not support random local addresses assuming public
219 * here is good enough.
221 chan
->src_type
= BDADDR_LE_PUBLIC
;
224 if (chan
->src_type
!= BDADDR_BREDR
&& la
.l2_bdaddr_type
== BDADDR_BREDR
)
227 if (bdaddr_type_is_le(la
.l2_bdaddr_type
)) {
228 /* We only allow ATT user space socket */
230 la
.l2_cid
!= cpu_to_le16(L2CAP_CID_ATT
))
234 if (chan
->psm
&& bdaddr_type_is_le(chan
->src_type
))
235 chan
->mode
= L2CAP_MODE_LE_FLOWCTL
;
237 err
= l2cap_chan_connect(chan
, la
.l2_psm
, __le16_to_cpu(la
.l2_cid
),
238 &la
.l2_bdaddr
, la
.l2_bdaddr_type
);
244 err
= bt_sock_wait_state(sk
, BT_CONNECTED
,
245 sock_sndtimeo(sk
, flags
& O_NONBLOCK
));
252 static int l2cap_sock_listen(struct socket
*sock
, int backlog
)
254 struct sock
*sk
= sock
->sk
;
255 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
258 BT_DBG("sk %p backlog %d", sk
, backlog
);
262 if (sk
->sk_state
!= BT_BOUND
) {
267 if (sk
->sk_type
!= SOCK_SEQPACKET
&& sk
->sk_type
!= SOCK_STREAM
) {
272 switch (chan
->mode
) {
273 case L2CAP_MODE_BASIC
:
274 case L2CAP_MODE_LE_FLOWCTL
:
276 case L2CAP_MODE_ERTM
:
277 case L2CAP_MODE_STREAMING
:
286 sk
->sk_max_ack_backlog
= backlog
;
287 sk
->sk_ack_backlog
= 0;
289 /* Listening channels need to use nested locking in order not to
290 * cause lockdep warnings when the created child channels end up
291 * being locked in the same thread as the parent channel.
293 atomic_set(&chan
->nesting
, L2CAP_NESTING_PARENT
);
295 chan
->state
= BT_LISTEN
;
296 sk
->sk_state
= BT_LISTEN
;
303 static int l2cap_sock_accept(struct socket
*sock
, struct socket
*newsock
,
304 int flags
, bool kern
)
306 DEFINE_WAIT_FUNC(wait
, woken_wake_function
);
307 struct sock
*sk
= sock
->sk
, *nsk
;
311 lock_sock_nested(sk
, L2CAP_NESTING_PARENT
);
313 timeo
= sock_rcvtimeo(sk
, flags
& O_NONBLOCK
);
315 BT_DBG("sk %p timeo %ld", sk
, timeo
);
317 /* Wait for an incoming connection. (wake-one). */
318 add_wait_queue_exclusive(sk_sleep(sk
), &wait
);
320 if (sk
->sk_state
!= BT_LISTEN
) {
325 nsk
= bt_accept_dequeue(sk
, newsock
);
334 if (signal_pending(current
)) {
335 err
= sock_intr_errno(timeo
);
341 timeo
= wait_woken(&wait
, TASK_INTERRUPTIBLE
, timeo
);
343 lock_sock_nested(sk
, L2CAP_NESTING_PARENT
);
345 remove_wait_queue(sk_sleep(sk
), &wait
);
350 newsock
->state
= SS_CONNECTED
;
352 BT_DBG("new socket %p", nsk
);
359 static int l2cap_sock_getname(struct socket
*sock
, struct sockaddr
*addr
,
362 struct sockaddr_l2
*la
= (struct sockaddr_l2
*) addr
;
363 struct sock
*sk
= sock
->sk
;
364 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
366 BT_DBG("sock %p, sk %p", sock
, sk
);
368 if (peer
&& sk
->sk_state
!= BT_CONNECTED
&&
369 sk
->sk_state
!= BT_CONNECT
&& sk
->sk_state
!= BT_CONNECT2
&&
370 sk
->sk_state
!= BT_CONFIG
)
373 memset(la
, 0, sizeof(struct sockaddr_l2
));
374 addr
->sa_family
= AF_BLUETOOTH
;
375 *len
= sizeof(struct sockaddr_l2
);
377 la
->l2_psm
= chan
->psm
;
380 bacpy(&la
->l2_bdaddr
, &chan
->dst
);
381 la
->l2_cid
= cpu_to_le16(chan
->dcid
);
382 la
->l2_bdaddr_type
= chan
->dst_type
;
384 bacpy(&la
->l2_bdaddr
, &chan
->src
);
385 la
->l2_cid
= cpu_to_le16(chan
->scid
);
386 la
->l2_bdaddr_type
= chan
->src_type
;
392 static int l2cap_sock_getsockopt_old(struct socket
*sock
, int optname
,
393 char __user
*optval
, int __user
*optlen
)
395 struct sock
*sk
= sock
->sk
;
396 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
397 struct l2cap_options opts
;
398 struct l2cap_conninfo cinfo
;
404 if (get_user(len
, optlen
))
411 /* LE sockets should use BT_SNDMTU/BT_RCVMTU, but since
412 * legacy ATT code depends on getsockopt for
413 * L2CAP_OPTIONS we need to let this pass.
415 if (bdaddr_type_is_le(chan
->src_type
) &&
416 chan
->scid
!= L2CAP_CID_ATT
) {
421 memset(&opts
, 0, sizeof(opts
));
422 opts
.imtu
= chan
->imtu
;
423 opts
.omtu
= chan
->omtu
;
424 opts
.flush_to
= chan
->flush_to
;
425 opts
.mode
= chan
->mode
;
426 opts
.fcs
= chan
->fcs
;
427 opts
.max_tx
= chan
->max_tx
;
428 opts
.txwin_size
= chan
->tx_win
;
430 len
= min_t(unsigned int, len
, sizeof(opts
));
431 if (copy_to_user(optval
, (char *) &opts
, len
))
437 switch (chan
->sec_level
) {
438 case BT_SECURITY_LOW
:
441 case BT_SECURITY_MEDIUM
:
442 opt
= L2CAP_LM_AUTH
| L2CAP_LM_ENCRYPT
;
444 case BT_SECURITY_HIGH
:
445 opt
= L2CAP_LM_AUTH
| L2CAP_LM_ENCRYPT
|
448 case BT_SECURITY_FIPS
:
449 opt
= L2CAP_LM_AUTH
| L2CAP_LM_ENCRYPT
|
450 L2CAP_LM_SECURE
| L2CAP_LM_FIPS
;
457 if (test_bit(FLAG_ROLE_SWITCH
, &chan
->flags
))
458 opt
|= L2CAP_LM_MASTER
;
460 if (test_bit(FLAG_FORCE_RELIABLE
, &chan
->flags
))
461 opt
|= L2CAP_LM_RELIABLE
;
463 if (put_user(opt
, (u32 __user
*) optval
))
469 if (sk
->sk_state
!= BT_CONNECTED
&&
470 !(sk
->sk_state
== BT_CONNECT2
&&
471 test_bit(BT_SK_DEFER_SETUP
, &bt_sk(sk
)->flags
))) {
476 memset(&cinfo
, 0, sizeof(cinfo
));
477 cinfo
.hci_handle
= chan
->conn
->hcon
->handle
;
478 memcpy(cinfo
.dev_class
, chan
->conn
->hcon
->dev_class
, 3);
480 len
= min_t(unsigned int, len
, sizeof(cinfo
));
481 if (copy_to_user(optval
, (char *) &cinfo
, len
))
495 static int l2cap_sock_getsockopt(struct socket
*sock
, int level
, int optname
,
496 char __user
*optval
, int __user
*optlen
)
498 struct sock
*sk
= sock
->sk
;
499 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
500 struct bt_security sec
;
506 if (level
== SOL_L2CAP
)
507 return l2cap_sock_getsockopt_old(sock
, optname
, optval
, optlen
);
509 if (level
!= SOL_BLUETOOTH
)
512 if (get_user(len
, optlen
))
519 if (chan
->chan_type
!= L2CAP_CHAN_CONN_ORIENTED
&&
520 chan
->chan_type
!= L2CAP_CHAN_FIXED
&&
521 chan
->chan_type
!= L2CAP_CHAN_RAW
) {
526 memset(&sec
, 0, sizeof(sec
));
528 sec
.level
= chan
->conn
->hcon
->sec_level
;
530 if (sk
->sk_state
== BT_CONNECTED
)
531 sec
.key_size
= chan
->conn
->hcon
->enc_key_size
;
533 sec
.level
= chan
->sec_level
;
536 len
= min_t(unsigned int, len
, sizeof(sec
));
537 if (copy_to_user(optval
, (char *) &sec
, len
))
543 if (sk
->sk_state
!= BT_BOUND
&& sk
->sk_state
!= BT_LISTEN
) {
548 if (put_user(test_bit(BT_SK_DEFER_SETUP
, &bt_sk(sk
)->flags
),
549 (u32 __user
*) optval
))
555 if (put_user(test_bit(FLAG_FLUSHABLE
, &chan
->flags
),
556 (u32 __user
*) optval
))
562 if (sk
->sk_type
!= SOCK_SEQPACKET
&& sk
->sk_type
!= SOCK_STREAM
563 && sk
->sk_type
!= SOCK_RAW
) {
568 pwr
.force_active
= test_bit(FLAG_FORCE_ACTIVE
, &chan
->flags
);
570 len
= min_t(unsigned int, len
, sizeof(pwr
));
571 if (copy_to_user(optval
, (char *) &pwr
, len
))
576 case BT_CHANNEL_POLICY
:
577 if (put_user(chan
->chan_policy
, (u32 __user
*) optval
))
582 if (!bdaddr_type_is_le(chan
->src_type
)) {
587 if (sk
->sk_state
!= BT_CONNECTED
) {
592 if (put_user(chan
->omtu
, (u16 __user
*) optval
))
597 if (!bdaddr_type_is_le(chan
->src_type
)) {
602 if (put_user(chan
->imtu
, (u16 __user
*) optval
))
615 static bool l2cap_valid_mtu(struct l2cap_chan
*chan
, u16 mtu
)
617 switch (chan
->scid
) {
619 if (mtu
< L2CAP_LE_MIN_MTU
)
624 if (mtu
< L2CAP_DEFAULT_MIN_MTU
)
631 static int l2cap_sock_setsockopt_old(struct socket
*sock
, int optname
,
632 char __user
*optval
, unsigned int optlen
)
634 struct sock
*sk
= sock
->sk
;
635 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
636 struct l2cap_options opts
;
646 if (bdaddr_type_is_le(chan
->src_type
)) {
651 if (sk
->sk_state
== BT_CONNECTED
) {
656 opts
.imtu
= chan
->imtu
;
657 opts
.omtu
= chan
->omtu
;
658 opts
.flush_to
= chan
->flush_to
;
659 opts
.mode
= chan
->mode
;
660 opts
.fcs
= chan
->fcs
;
661 opts
.max_tx
= chan
->max_tx
;
662 opts
.txwin_size
= chan
->tx_win
;
664 len
= min_t(unsigned int, sizeof(opts
), optlen
);
665 if (copy_from_user((char *) &opts
, optval
, len
)) {
670 if (opts
.txwin_size
> L2CAP_DEFAULT_EXT_WINDOW
) {
675 if (!l2cap_valid_mtu(chan
, opts
.imtu
)) {
680 chan
->mode
= opts
.mode
;
681 switch (chan
->mode
) {
682 case L2CAP_MODE_LE_FLOWCTL
:
684 case L2CAP_MODE_BASIC
:
685 clear_bit(CONF_STATE2_DEVICE
, &chan
->conf_state
);
687 case L2CAP_MODE_ERTM
:
688 case L2CAP_MODE_STREAMING
:
697 chan
->imtu
= opts
.imtu
;
698 chan
->omtu
= opts
.omtu
;
699 chan
->fcs
= opts
.fcs
;
700 chan
->max_tx
= opts
.max_tx
;
701 chan
->tx_win
= opts
.txwin_size
;
702 chan
->flush_to
= opts
.flush_to
;
706 if (get_user(opt
, (u32 __user
*) optval
)) {
711 if (opt
& L2CAP_LM_FIPS
) {
716 if (opt
& L2CAP_LM_AUTH
)
717 chan
->sec_level
= BT_SECURITY_LOW
;
718 if (opt
& L2CAP_LM_ENCRYPT
)
719 chan
->sec_level
= BT_SECURITY_MEDIUM
;
720 if (opt
& L2CAP_LM_SECURE
)
721 chan
->sec_level
= BT_SECURITY_HIGH
;
723 if (opt
& L2CAP_LM_MASTER
)
724 set_bit(FLAG_ROLE_SWITCH
, &chan
->flags
);
726 clear_bit(FLAG_ROLE_SWITCH
, &chan
->flags
);
728 if (opt
& L2CAP_LM_RELIABLE
)
729 set_bit(FLAG_FORCE_RELIABLE
, &chan
->flags
);
731 clear_bit(FLAG_FORCE_RELIABLE
, &chan
->flags
);
743 static int l2cap_sock_setsockopt(struct socket
*sock
, int level
, int optname
,
744 char __user
*optval
, unsigned int optlen
)
746 struct sock
*sk
= sock
->sk
;
747 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
748 struct bt_security sec
;
750 struct l2cap_conn
*conn
;
756 if (level
== SOL_L2CAP
)
757 return l2cap_sock_setsockopt_old(sock
, optname
, optval
, optlen
);
759 if (level
!= SOL_BLUETOOTH
)
766 if (chan
->chan_type
!= L2CAP_CHAN_CONN_ORIENTED
&&
767 chan
->chan_type
!= L2CAP_CHAN_FIXED
&&
768 chan
->chan_type
!= L2CAP_CHAN_RAW
) {
773 sec
.level
= BT_SECURITY_LOW
;
775 len
= min_t(unsigned int, sizeof(sec
), optlen
);
776 if (copy_from_user((char *) &sec
, optval
, len
)) {
781 if (sec
.level
< BT_SECURITY_LOW
||
782 sec
.level
> BT_SECURITY_FIPS
) {
787 chan
->sec_level
= sec
.level
;
794 /*change security for LE channels */
795 if (chan
->scid
== L2CAP_CID_ATT
) {
796 if (smp_conn_security(conn
->hcon
, sec
.level
))
798 set_bit(FLAG_PENDING_SECURITY
, &chan
->flags
);
799 sk
->sk_state
= BT_CONFIG
;
800 chan
->state
= BT_CONFIG
;
802 /* or for ACL link */
803 } else if ((sk
->sk_state
== BT_CONNECT2
&&
804 test_bit(BT_SK_DEFER_SETUP
, &bt_sk(sk
)->flags
)) ||
805 sk
->sk_state
== BT_CONNECTED
) {
806 if (!l2cap_chan_check_security(chan
, true))
807 set_bit(BT_SK_SUSPEND
, &bt_sk(sk
)->flags
);
809 sk
->sk_state_change(sk
);
816 if (sk
->sk_state
!= BT_BOUND
&& sk
->sk_state
!= BT_LISTEN
) {
821 if (get_user(opt
, (u32 __user
*) optval
)) {
827 set_bit(BT_SK_DEFER_SETUP
, &bt_sk(sk
)->flags
);
828 set_bit(FLAG_DEFER_SETUP
, &chan
->flags
);
830 clear_bit(BT_SK_DEFER_SETUP
, &bt_sk(sk
)->flags
);
831 clear_bit(FLAG_DEFER_SETUP
, &chan
->flags
);
836 if (get_user(opt
, (u32 __user
*) optval
)) {
841 if (opt
> BT_FLUSHABLE_ON
) {
846 if (opt
== BT_FLUSHABLE_OFF
) {
848 /* proceed further only when we have l2cap_conn and
849 No Flush support in the LM */
850 if (!conn
|| !lmp_no_flush_capable(conn
->hcon
->hdev
)) {
857 set_bit(FLAG_FLUSHABLE
, &chan
->flags
);
859 clear_bit(FLAG_FLUSHABLE
, &chan
->flags
);
863 if (chan
->chan_type
!= L2CAP_CHAN_CONN_ORIENTED
&&
864 chan
->chan_type
!= L2CAP_CHAN_RAW
) {
869 pwr
.force_active
= BT_POWER_FORCE_ACTIVE_ON
;
871 len
= min_t(unsigned int, sizeof(pwr
), optlen
);
872 if (copy_from_user((char *) &pwr
, optval
, len
)) {
877 if (pwr
.force_active
)
878 set_bit(FLAG_FORCE_ACTIVE
, &chan
->flags
);
880 clear_bit(FLAG_FORCE_ACTIVE
, &chan
->flags
);
883 case BT_CHANNEL_POLICY
:
884 if (get_user(opt
, (u32 __user
*) optval
)) {
889 if (opt
> BT_CHANNEL_POLICY_AMP_PREFERRED
) {
894 if (chan
->mode
!= L2CAP_MODE_ERTM
&&
895 chan
->mode
!= L2CAP_MODE_STREAMING
) {
900 chan
->chan_policy
= (u8
) opt
;
902 if (sk
->sk_state
== BT_CONNECTED
&&
903 chan
->move_role
== L2CAP_MOVE_ROLE_NONE
)
904 l2cap_move_start(chan
);
909 if (!bdaddr_type_is_le(chan
->src_type
)) {
914 /* Setting is not supported as it's the remote side that
921 if (!bdaddr_type_is_le(chan
->src_type
)) {
926 if (sk
->sk_state
== BT_CONNECTED
) {
931 if (get_user(opt
, (u16 __user
*) optval
)) {
948 static int l2cap_sock_sendmsg(struct socket
*sock
, struct msghdr
*msg
,
951 struct sock
*sk
= sock
->sk
;
952 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
955 BT_DBG("sock %p, sk %p", sock
, sk
);
957 err
= sock_error(sk
);
961 if (msg
->msg_flags
& MSG_OOB
)
964 if (sk
->sk_state
!= BT_CONNECTED
)
968 err
= bt_sock_wait_ready(sk
, msg
->msg_flags
);
973 l2cap_chan_lock(chan
);
974 err
= l2cap_chan_send(chan
, msg
, len
);
975 l2cap_chan_unlock(chan
);
980 static int l2cap_sock_recvmsg(struct socket
*sock
, struct msghdr
*msg
,
981 size_t len
, int flags
)
983 struct sock
*sk
= sock
->sk
;
984 struct l2cap_pinfo
*pi
= l2cap_pi(sk
);
989 if (sk
->sk_state
== BT_CONNECT2
&& test_bit(BT_SK_DEFER_SETUP
,
990 &bt_sk(sk
)->flags
)) {
991 if (bdaddr_type_is_le(pi
->chan
->src_type
)) {
992 sk
->sk_state
= BT_CONNECTED
;
993 pi
->chan
->state
= BT_CONNECTED
;
994 __l2cap_le_connect_rsp_defer(pi
->chan
);
996 sk
->sk_state
= BT_CONFIG
;
997 pi
->chan
->state
= BT_CONFIG
;
998 __l2cap_connect_rsp_defer(pi
->chan
);
1007 if (sock
->type
== SOCK_STREAM
)
1008 err
= bt_sock_stream_recvmsg(sock
, msg
, len
, flags
);
1010 err
= bt_sock_recvmsg(sock
, msg
, len
, flags
);
1012 if (pi
->chan
->mode
!= L2CAP_MODE_ERTM
)
1015 /* Attempt to put pending rx data in the socket buffer */
1019 if (!test_bit(CONN_LOCAL_BUSY
, &pi
->chan
->conn_state
))
1022 if (pi
->rx_busy_skb
) {
1023 if (!__sock_queue_rcv_skb(sk
, pi
->rx_busy_skb
))
1024 pi
->rx_busy_skb
= NULL
;
1029 /* Restore data flow when half of the receive buffer is
1030 * available. This avoids resending large numbers of
1033 if (atomic_read(&sk
->sk_rmem_alloc
) <= sk
->sk_rcvbuf
>> 1)
1034 l2cap_chan_busy(pi
->chan
, 0);
1041 /* Kill socket (only if zapped and orphan)
1042 * Must be called on unlocked socket.
1044 static void l2cap_sock_kill(struct sock
*sk
)
1046 if (!sock_flag(sk
, SOCK_ZAPPED
) || sk
->sk_socket
)
1049 BT_DBG("sk %p state %s", sk
, state_to_string(sk
->sk_state
));
1051 /* Kill poor orphan */
1053 l2cap_chan_put(l2cap_pi(sk
)->chan
);
1054 sock_set_flag(sk
, SOCK_DEAD
);
1058 static int __l2cap_wait_ack(struct sock
*sk
, struct l2cap_chan
*chan
)
1060 DECLARE_WAITQUEUE(wait
, current
);
1062 int timeo
= L2CAP_WAIT_ACK_POLL_PERIOD
;
1063 /* Timeout to prevent infinite loop */
1064 unsigned long timeout
= jiffies
+ L2CAP_WAIT_ACK_TIMEOUT
;
1066 add_wait_queue(sk_sleep(sk
), &wait
);
1067 set_current_state(TASK_INTERRUPTIBLE
);
1069 BT_DBG("Waiting for %d ACKs, timeout %04d ms",
1070 chan
->unacked_frames
, time_after(jiffies
, timeout
) ? 0 :
1071 jiffies_to_msecs(timeout
- jiffies
));
1074 timeo
= L2CAP_WAIT_ACK_POLL_PERIOD
;
1076 if (signal_pending(current
)) {
1077 err
= sock_intr_errno(timeo
);
1082 timeo
= schedule_timeout(timeo
);
1084 set_current_state(TASK_INTERRUPTIBLE
);
1086 err
= sock_error(sk
);
1090 if (time_after(jiffies
, timeout
)) {
1095 } while (chan
->unacked_frames
> 0 &&
1096 chan
->state
== BT_CONNECTED
);
1098 set_current_state(TASK_RUNNING
);
1099 remove_wait_queue(sk_sleep(sk
), &wait
);
1103 static int l2cap_sock_shutdown(struct socket
*sock
, int how
)
1105 struct sock
*sk
= sock
->sk
;
1106 struct l2cap_chan
*chan
;
1107 struct l2cap_conn
*conn
;
1110 BT_DBG("sock %p, sk %p", sock
, sk
);
1117 if (sk
->sk_shutdown
)
1118 goto shutdown_already
;
1120 BT_DBG("Handling sock shutdown");
1122 /* prevent sk structure from being freed whilst unlocked */
1125 chan
= l2cap_pi(sk
)->chan
;
1126 /* prevent chan structure from being freed whilst unlocked */
1127 l2cap_chan_hold(chan
);
1129 BT_DBG("chan %p state %s", chan
, state_to_string(chan
->state
));
1131 if (chan
->mode
== L2CAP_MODE_ERTM
&&
1132 chan
->unacked_frames
> 0 &&
1133 chan
->state
== BT_CONNECTED
) {
1134 err
= __l2cap_wait_ack(sk
, chan
);
1136 /* After waiting for ACKs, check whether shutdown
1137 * has already been actioned to close the L2CAP
1138 * link such as by l2cap_disconnection_req().
1140 if (sk
->sk_shutdown
)
1144 sk
->sk_shutdown
= SHUTDOWN_MASK
;
1147 l2cap_chan_lock(chan
);
1150 /* prevent conn structure from being freed */
1151 l2cap_conn_get(conn
);
1152 l2cap_chan_unlock(chan
);
1155 /* mutex lock must be taken before l2cap_chan_lock() */
1156 mutex_lock(&conn
->chan_lock
);
1158 l2cap_chan_lock(chan
);
1159 l2cap_chan_close(chan
, 0);
1160 l2cap_chan_unlock(chan
);
1163 mutex_unlock(&conn
->chan_lock
);
1164 l2cap_conn_put(conn
);
1169 if (sock_flag(sk
, SOCK_LINGER
) && sk
->sk_lingertime
&&
1170 !(current
->flags
& PF_EXITING
))
1171 err
= bt_sock_wait_state(sk
, BT_CLOSED
,
1175 l2cap_chan_put(chan
);
1179 if (!err
&& sk
->sk_err
)
1184 BT_DBG("Sock shutdown complete err: %d", err
);
1189 static int l2cap_sock_release(struct socket
*sock
)
1191 struct sock
*sk
= sock
->sk
;
1194 BT_DBG("sock %p, sk %p", sock
, sk
);
1199 bt_sock_unlink(&l2cap_sk_list
, sk
);
1201 err
= l2cap_sock_shutdown(sock
, 2);
1204 l2cap_sock_kill(sk
);
1208 static void l2cap_sock_cleanup_listen(struct sock
*parent
)
1212 BT_DBG("parent %p state %s", parent
,
1213 state_to_string(parent
->sk_state
));
1215 /* Close not yet accepted channels */
1216 while ((sk
= bt_accept_dequeue(parent
, NULL
))) {
1217 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
1219 BT_DBG("child chan %p state %s", chan
,
1220 state_to_string(chan
->state
));
1222 l2cap_chan_lock(chan
);
1223 __clear_chan_timer(chan
);
1224 l2cap_chan_close(chan
, ECONNRESET
);
1225 l2cap_chan_unlock(chan
);
1227 l2cap_sock_kill(sk
);
1231 static struct l2cap_chan
*l2cap_sock_new_connection_cb(struct l2cap_chan
*chan
)
1233 struct sock
*sk
, *parent
= chan
->data
;
1237 /* Check for backlog size */
1238 if (sk_acceptq_is_full(parent
)) {
1239 BT_DBG("backlog full %d", parent
->sk_ack_backlog
);
1240 release_sock(parent
);
1244 sk
= l2cap_sock_alloc(sock_net(parent
), NULL
, BTPROTO_L2CAP
,
1247 release_sock(parent
);
1251 bt_sock_reclassify_lock(sk
, BTPROTO_L2CAP
);
1253 l2cap_sock_init(sk
, parent
);
1255 bt_accept_enqueue(parent
, sk
);
1257 release_sock(parent
);
1259 return l2cap_pi(sk
)->chan
;
1262 static int l2cap_sock_recv_cb(struct l2cap_chan
*chan
, struct sk_buff
*skb
)
1264 struct sock
*sk
= chan
->data
;
1269 if (l2cap_pi(sk
)->rx_busy_skb
) {
1274 if (chan
->mode
!= L2CAP_MODE_ERTM
&&
1275 chan
->mode
!= L2CAP_MODE_STREAMING
) {
1276 /* Even if no filter is attached, we could potentially
1277 * get errors from security modules, etc.
1279 err
= sk_filter(sk
, skb
);
1284 err
= __sock_queue_rcv_skb(sk
, skb
);
1286 /* For ERTM, handle one skb that doesn't fit into the recv
1287 * buffer. This is important to do because the data frames
1288 * have already been acked, so the skb cannot be discarded.
1290 * Notify the l2cap core that the buffer is full, so the
1291 * LOCAL_BUSY state is entered and no more frames are
1292 * acked and reassembled until there is buffer space
1295 if (err
< 0 && chan
->mode
== L2CAP_MODE_ERTM
) {
1296 l2cap_pi(sk
)->rx_busy_skb
= skb
;
1297 l2cap_chan_busy(chan
, 1);
1307 static void l2cap_sock_close_cb(struct l2cap_chan
*chan
)
1309 struct sock
*sk
= chan
->data
;
1311 l2cap_sock_kill(sk
);
1314 static void l2cap_sock_teardown_cb(struct l2cap_chan
*chan
, int err
)
1316 struct sock
*sk
= chan
->data
;
1317 struct sock
*parent
;
1319 BT_DBG("chan %p state %s", chan
, state_to_string(chan
->state
));
1321 /* This callback can be called both for server (BT_LISTEN)
1322 * sockets as well as "normal" ones. To avoid lockdep warnings
1323 * with child socket locking (through l2cap_sock_cleanup_listen)
1324 * we need separation into separate nesting levels. The simplest
1325 * way to accomplish this is to inherit the nesting level used
1328 lock_sock_nested(sk
, atomic_read(&chan
->nesting
));
1330 parent
= bt_sk(sk
)->parent
;
1332 sock_set_flag(sk
, SOCK_ZAPPED
);
1334 switch (chan
->state
) {
1340 l2cap_sock_cleanup_listen(sk
);
1341 sk
->sk_state
= BT_CLOSED
;
1342 chan
->state
= BT_CLOSED
;
1346 sk
->sk_state
= BT_CLOSED
;
1347 chan
->state
= BT_CLOSED
;
1352 bt_accept_unlink(sk
);
1353 parent
->sk_data_ready(parent
);
1355 sk
->sk_state_change(sk
);
1364 static void l2cap_sock_state_change_cb(struct l2cap_chan
*chan
, int state
,
1367 struct sock
*sk
= chan
->data
;
1369 sk
->sk_state
= state
;
1375 static struct sk_buff
*l2cap_sock_alloc_skb_cb(struct l2cap_chan
*chan
,
1376 unsigned long hdr_len
,
1377 unsigned long len
, int nb
)
1379 struct sock
*sk
= chan
->data
;
1380 struct sk_buff
*skb
;
1383 l2cap_chan_unlock(chan
);
1384 skb
= bt_skb_send_alloc(sk
, hdr_len
+ len
, nb
, &err
);
1385 l2cap_chan_lock(chan
);
1388 return ERR_PTR(err
);
1390 skb
->priority
= sk
->sk_priority
;
1392 bt_cb(skb
)->l2cap
.chan
= chan
;
1397 static void l2cap_sock_ready_cb(struct l2cap_chan
*chan
)
1399 struct sock
*sk
= chan
->data
;
1400 struct sock
*parent
;
1404 parent
= bt_sk(sk
)->parent
;
1406 BT_DBG("sk %p, parent %p", sk
, parent
);
1408 sk
->sk_state
= BT_CONNECTED
;
1409 sk
->sk_state_change(sk
);
1412 parent
->sk_data_ready(parent
);
1417 static void l2cap_sock_defer_cb(struct l2cap_chan
*chan
)
1419 struct sock
*parent
, *sk
= chan
->data
;
1423 parent
= bt_sk(sk
)->parent
;
1425 parent
->sk_data_ready(parent
);
1430 static void l2cap_sock_resume_cb(struct l2cap_chan
*chan
)
1432 struct sock
*sk
= chan
->data
;
1434 if (test_and_clear_bit(FLAG_PENDING_SECURITY
, &chan
->flags
)) {
1435 sk
->sk_state
= BT_CONNECTED
;
1436 chan
->state
= BT_CONNECTED
;
1439 clear_bit(BT_SK_SUSPEND
, &bt_sk(sk
)->flags
);
1440 sk
->sk_state_change(sk
);
1443 static void l2cap_sock_set_shutdown_cb(struct l2cap_chan
*chan
)
1445 struct sock
*sk
= chan
->data
;
1448 sk
->sk_shutdown
= SHUTDOWN_MASK
;
1452 static long l2cap_sock_get_sndtimeo_cb(struct l2cap_chan
*chan
)
1454 struct sock
*sk
= chan
->data
;
1456 return sk
->sk_sndtimeo
;
1459 static void l2cap_sock_suspend_cb(struct l2cap_chan
*chan
)
1461 struct sock
*sk
= chan
->data
;
1463 set_bit(BT_SK_SUSPEND
, &bt_sk(sk
)->flags
);
1464 sk
->sk_state_change(sk
);
1467 static const struct l2cap_ops l2cap_chan_ops
= {
1468 .name
= "L2CAP Socket Interface",
1469 .new_connection
= l2cap_sock_new_connection_cb
,
1470 .recv
= l2cap_sock_recv_cb
,
1471 .close
= l2cap_sock_close_cb
,
1472 .teardown
= l2cap_sock_teardown_cb
,
1473 .state_change
= l2cap_sock_state_change_cb
,
1474 .ready
= l2cap_sock_ready_cb
,
1475 .defer
= l2cap_sock_defer_cb
,
1476 .resume
= l2cap_sock_resume_cb
,
1477 .suspend
= l2cap_sock_suspend_cb
,
1478 .set_shutdown
= l2cap_sock_set_shutdown_cb
,
1479 .get_sndtimeo
= l2cap_sock_get_sndtimeo_cb
,
1480 .alloc_skb
= l2cap_sock_alloc_skb_cb
,
1483 static void l2cap_sock_destruct(struct sock
*sk
)
1485 BT_DBG("sk %p", sk
);
1487 if (l2cap_pi(sk
)->chan
)
1488 l2cap_chan_put(l2cap_pi(sk
)->chan
);
1490 if (l2cap_pi(sk
)->rx_busy_skb
) {
1491 kfree_skb(l2cap_pi(sk
)->rx_busy_skb
);
1492 l2cap_pi(sk
)->rx_busy_skb
= NULL
;
1495 skb_queue_purge(&sk
->sk_receive_queue
);
1496 skb_queue_purge(&sk
->sk_write_queue
);
1499 static void l2cap_skb_msg_name(struct sk_buff
*skb
, void *msg_name
,
1502 DECLARE_SOCKADDR(struct sockaddr_l2
*, la
, msg_name
);
1504 memset(la
, 0, sizeof(struct sockaddr_l2
));
1505 la
->l2_family
= AF_BLUETOOTH
;
1506 la
->l2_psm
= bt_cb(skb
)->l2cap
.psm
;
1507 bacpy(&la
->l2_bdaddr
, &bt_cb(skb
)->l2cap
.bdaddr
);
1509 *msg_namelen
= sizeof(struct sockaddr_l2
);
1512 static void l2cap_sock_init(struct sock
*sk
, struct sock
*parent
)
1514 struct l2cap_chan
*chan
= l2cap_pi(sk
)->chan
;
1516 BT_DBG("sk %p", sk
);
1519 struct l2cap_chan
*pchan
= l2cap_pi(parent
)->chan
;
1521 sk
->sk_type
= parent
->sk_type
;
1522 bt_sk(sk
)->flags
= bt_sk(parent
)->flags
;
1524 chan
->chan_type
= pchan
->chan_type
;
1525 chan
->imtu
= pchan
->imtu
;
1526 chan
->omtu
= pchan
->omtu
;
1527 chan
->conf_state
= pchan
->conf_state
;
1528 chan
->mode
= pchan
->mode
;
1529 chan
->fcs
= pchan
->fcs
;
1530 chan
->max_tx
= pchan
->max_tx
;
1531 chan
->tx_win
= pchan
->tx_win
;
1532 chan
->tx_win_max
= pchan
->tx_win_max
;
1533 chan
->sec_level
= pchan
->sec_level
;
1534 chan
->flags
= pchan
->flags
;
1535 chan
->tx_credits
= pchan
->tx_credits
;
1536 chan
->rx_credits
= pchan
->rx_credits
;
1538 if (chan
->chan_type
== L2CAP_CHAN_FIXED
) {
1539 chan
->scid
= pchan
->scid
;
1540 chan
->dcid
= pchan
->scid
;
1543 security_sk_clone(parent
, sk
);
1545 switch (sk
->sk_type
) {
1547 chan
->chan_type
= L2CAP_CHAN_RAW
;
1550 chan
->chan_type
= L2CAP_CHAN_CONN_LESS
;
1551 bt_sk(sk
)->skb_msg_name
= l2cap_skb_msg_name
;
1553 case SOCK_SEQPACKET
:
1555 chan
->chan_type
= L2CAP_CHAN_CONN_ORIENTED
;
1559 chan
->imtu
= L2CAP_DEFAULT_MTU
;
1561 if (!disable_ertm
&& sk
->sk_type
== SOCK_STREAM
) {
1562 chan
->mode
= L2CAP_MODE_ERTM
;
1563 set_bit(CONF_STATE2_DEVICE
, &chan
->conf_state
);
1565 chan
->mode
= L2CAP_MODE_BASIC
;
1568 l2cap_chan_set_defaults(chan
);
1571 /* Default config options */
1572 chan
->flush_to
= L2CAP_DEFAULT_FLUSH_TO
;
1575 chan
->ops
= &l2cap_chan_ops
;
1578 static struct proto l2cap_proto
= {
1580 .owner
= THIS_MODULE
,
1581 .obj_size
= sizeof(struct l2cap_pinfo
)
1584 static struct sock
*l2cap_sock_alloc(struct net
*net
, struct socket
*sock
,
1585 int proto
, gfp_t prio
, int kern
)
1588 struct l2cap_chan
*chan
;
1590 sk
= sk_alloc(net
, PF_BLUETOOTH
, prio
, &l2cap_proto
, kern
);
1594 sock_init_data(sock
, sk
);
1595 INIT_LIST_HEAD(&bt_sk(sk
)->accept_q
);
1597 sk
->sk_destruct
= l2cap_sock_destruct
;
1598 sk
->sk_sndtimeo
= L2CAP_CONN_TIMEOUT
;
1600 sock_reset_flag(sk
, SOCK_ZAPPED
);
1602 sk
->sk_protocol
= proto
;
1603 sk
->sk_state
= BT_OPEN
;
1605 chan
= l2cap_chan_create();
1611 l2cap_chan_hold(chan
);
1613 l2cap_pi(sk
)->chan
= chan
;
1618 static int l2cap_sock_create(struct net
*net
, struct socket
*sock
, int protocol
,
1623 BT_DBG("sock %p", sock
);
1625 sock
->state
= SS_UNCONNECTED
;
1627 if (sock
->type
!= SOCK_SEQPACKET
&& sock
->type
!= SOCK_STREAM
&&
1628 sock
->type
!= SOCK_DGRAM
&& sock
->type
!= SOCK_RAW
)
1629 return -ESOCKTNOSUPPORT
;
1631 if (sock
->type
== SOCK_RAW
&& !kern
&& !capable(CAP_NET_RAW
))
1634 sock
->ops
= &l2cap_sock_ops
;
1636 sk
= l2cap_sock_alloc(net
, sock
, protocol
, GFP_ATOMIC
, kern
);
1640 l2cap_sock_init(sk
, NULL
);
1641 bt_sock_link(&l2cap_sk_list
, sk
);
1645 static const struct proto_ops l2cap_sock_ops
= {
1646 .family
= PF_BLUETOOTH
,
1647 .owner
= THIS_MODULE
,
1648 .release
= l2cap_sock_release
,
1649 .bind
= l2cap_sock_bind
,
1650 .connect
= l2cap_sock_connect
,
1651 .listen
= l2cap_sock_listen
,
1652 .accept
= l2cap_sock_accept
,
1653 .getname
= l2cap_sock_getname
,
1654 .sendmsg
= l2cap_sock_sendmsg
,
1655 .recvmsg
= l2cap_sock_recvmsg
,
1656 .poll
= bt_sock_poll
,
1657 .ioctl
= bt_sock_ioctl
,
1658 .mmap
= sock_no_mmap
,
1659 .socketpair
= sock_no_socketpair
,
1660 .shutdown
= l2cap_sock_shutdown
,
1661 .setsockopt
= l2cap_sock_setsockopt
,
1662 .getsockopt
= l2cap_sock_getsockopt
1665 static const struct net_proto_family l2cap_sock_family_ops
= {
1666 .family
= PF_BLUETOOTH
,
1667 .owner
= THIS_MODULE
,
1668 .create
= l2cap_sock_create
,
1671 int __init
l2cap_init_sockets(void)
1675 BUILD_BUG_ON(sizeof(struct sockaddr_l2
) > sizeof(struct sockaddr
));
1677 err
= proto_register(&l2cap_proto
, 0);
1681 err
= bt_sock_register(BTPROTO_L2CAP
, &l2cap_sock_family_ops
);
1683 BT_ERR("L2CAP socket registration failed");
1687 err
= bt_procfs_init(&init_net
, "l2cap", &l2cap_sk_list
,
1690 BT_ERR("Failed to create L2CAP proc file");
1691 bt_sock_unregister(BTPROTO_L2CAP
);
1695 BT_INFO("L2CAP socket layer initialized");
1700 proto_unregister(&l2cap_proto
);
1704 void l2cap_cleanup_sockets(void)
1706 bt_procfs_cleanup(&init_net
, "l2cap");
1707 bt_sock_unregister(BTPROTO_L2CAP
);
1708 proto_unregister(&l2cap_proto
);