1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 RFCOMM implementation for Linux Bluetooth stack (BlueZ).
4 Copyright (C) 2002 Maxim Krasnyansky <maxk@qualcomm.com>
5 Copyright (C) 2002 Marcel Holtmann <marcel@holtmann.org>
6
7 THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
8 OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
9 FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT OF THIRD PARTY RIGHTS.
10 IN NO EVENT SHALL THE COPYRIGHT HOLDER(S) AND AUTHOR(S) BE LIABLE FOR ANY
11 CLAIM, OR ANY SPECIAL INDIRECT OR CONSEQUENTIAL DAMAGES, OR ANY DAMAGES
12 WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
13 ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
14 OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
15
16 ALL LIABILITY, INCLUDING LIABILITY FOR INFRINGEMENT OF ANY PATENTS,
17 COPYRIGHTS, TRADEMARKS OR OTHER RIGHTS, RELATING TO USE OF THIS
18 SOFTWARE IS DISCLAIMED.
19 */
20
21 /*
22 * Bluetooth RFCOMM core.
23 */
24
25 #include <linux/module.h>
26 #include <linux/debugfs.h>
27 #include <linux/kthread.h>
28 #include <linux/unaligned.h>
29
30 #include <net/bluetooth/bluetooth.h>
31 #include <net/bluetooth/hci_core.h>
32 #include <net/bluetooth/l2cap.h>
33 #include <net/bluetooth/rfcomm.h>
34
35 #include <trace/events/sock.h>
36
37 #define VERSION "1.11"
38
39 static bool disable_cfc;
40 static bool l2cap_ertm;
41 static int channel_mtu = -1;
42
43 static struct task_struct *rfcomm_thread;
44
45 static DEFINE_MUTEX(rfcomm_mutex);
46 #define rfcomm_lock() mutex_lock(&rfcomm_mutex)
47 #define rfcomm_unlock() mutex_unlock(&rfcomm_mutex)
48
49
50 static LIST_HEAD(session_list);
51
52 static int rfcomm_send_frame(struct rfcomm_session *s, u8 *data, int len);
53 static int rfcomm_send_sabm(struct rfcomm_session *s, u8 dlci);
54 static int rfcomm_send_disc(struct rfcomm_session *s, u8 dlci);
55 static int rfcomm_queue_disc(struct rfcomm_dlc *d);
56 static int rfcomm_send_nsc(struct rfcomm_session *s, int cr, u8 type);
57 static int rfcomm_send_pn(struct rfcomm_session *s, int cr, struct rfcomm_dlc *d);
58 static int rfcomm_send_msc(struct rfcomm_session *s, int cr, u8 dlci, u8 v24_sig);
59 static int rfcomm_send_test(struct rfcomm_session *s, int cr, u8 *pattern, int len);
60 static int rfcomm_send_credits(struct rfcomm_session *s, u8 addr, u8 credits);
61 static void rfcomm_make_uih(struct sk_buff *skb, u8 addr);
62
63 static void rfcomm_process_connect(struct rfcomm_session *s);
64
65 static struct rfcomm_session *rfcomm_session_create(bdaddr_t *src,
66 bdaddr_t *dst,
67 u8 sec_level,
68 int *err);
69 static struct rfcomm_session *rfcomm_session_get(bdaddr_t *src, bdaddr_t *dst);
70 static struct rfcomm_session *rfcomm_session_del(struct rfcomm_session *s);
71
72 /* ---- RFCOMM frame parsing macros ---- */
73 #define __get_dlci(b) ((b & 0xfc) >> 2)
74 #define __get_type(b) ((b & 0xef))
75
76 #define __test_ea(b) ((b & 0x01))
77 #define __test_cr(b) (!!(b & 0x02))
78 #define __test_pf(b) (!!(b & 0x10))
79
80 #define __session_dir(s) ((s)->initiator ? 0x00 : 0x01)
81
82 #define __addr(cr, dlci) (((dlci & 0x3f) << 2) | (cr << 1) | 0x01)
83 #define __ctrl(type, pf) (((type & 0xef) | (pf << 4)))
84 #define __dlci(dir, chn) (((chn & 0x1f) << 1) | dir)
85 #define __srv_channel(dlci) (dlci >> 1)
86
87 #define __len8(len) (((len) << 1) | 1)
88 #define __len16(len) ((len) << 1)
89
90 /* MCC macros */
91 #define __mcc_type(cr, type) (((type << 2) | (cr << 1) | 0x01))
92 #define __get_mcc_type(b) ((b & 0xfc) >> 2)
93 #define __get_mcc_len(b) ((b & 0xfe) >> 1)
94
95 /* RPN macros */
96 #define __rpn_line_settings(data, stop, parity) ((data & 0x3) | ((stop & 0x1) << 2) | ((parity & 0x7) << 3))
97 #define __get_rpn_data_bits(line) ((line) & 0x3)
98 #define __get_rpn_stop_bits(line) (((line) >> 2) & 0x1)
99 #define __get_rpn_parity(line) (((line) >> 3) & 0x7)
100
101 static DECLARE_WAIT_QUEUE_HEAD(rfcomm_wq);
102
rfcomm_schedule(void)103 static void rfcomm_schedule(void)
104 {
105 wake_up_all(&rfcomm_wq);
106 }
107
108 /* ---- RFCOMM FCS computation ---- */
109
110 /* reversed, 8-bit, poly=0x07 */
111 static unsigned char rfcomm_crc_table[256] = {
112 0x00, 0x91, 0xe3, 0x72, 0x07, 0x96, 0xe4, 0x75,
113 0x0e, 0x9f, 0xed, 0x7c, 0x09, 0x98, 0xea, 0x7b,
114 0x1c, 0x8d, 0xff, 0x6e, 0x1b, 0x8a, 0xf8, 0x69,
115 0x12, 0x83, 0xf1, 0x60, 0x15, 0x84, 0xf6, 0x67,
116
117 0x38, 0xa9, 0xdb, 0x4a, 0x3f, 0xae, 0xdc, 0x4d,
118 0x36, 0xa7, 0xd5, 0x44, 0x31, 0xa0, 0xd2, 0x43,
119 0x24, 0xb5, 0xc7, 0x56, 0x23, 0xb2, 0xc0, 0x51,
120 0x2a, 0xbb, 0xc9, 0x58, 0x2d, 0xbc, 0xce, 0x5f,
121
122 0x70, 0xe1, 0x93, 0x02, 0x77, 0xe6, 0x94, 0x05,
123 0x7e, 0xef, 0x9d, 0x0c, 0x79, 0xe8, 0x9a, 0x0b,
124 0x6c, 0xfd, 0x8f, 0x1e, 0x6b, 0xfa, 0x88, 0x19,
125 0x62, 0xf3, 0x81, 0x10, 0x65, 0xf4, 0x86, 0x17,
126
127 0x48, 0xd9, 0xab, 0x3a, 0x4f, 0xde, 0xac, 0x3d,
128 0x46, 0xd7, 0xa5, 0x34, 0x41, 0xd0, 0xa2, 0x33,
129 0x54, 0xc5, 0xb7, 0x26, 0x53, 0xc2, 0xb0, 0x21,
130 0x5a, 0xcb, 0xb9, 0x28, 0x5d, 0xcc, 0xbe, 0x2f,
131
132 0xe0, 0x71, 0x03, 0x92, 0xe7, 0x76, 0x04, 0x95,
133 0xee, 0x7f, 0x0d, 0x9c, 0xe9, 0x78, 0x0a, 0x9b,
134 0xfc, 0x6d, 0x1f, 0x8e, 0xfb, 0x6a, 0x18, 0x89,
135 0xf2, 0x63, 0x11, 0x80, 0xf5, 0x64, 0x16, 0x87,
136
137 0xd8, 0x49, 0x3b, 0xaa, 0xdf, 0x4e, 0x3c, 0xad,
138 0xd6, 0x47, 0x35, 0xa4, 0xd1, 0x40, 0x32, 0xa3,
139 0xc4, 0x55, 0x27, 0xb6, 0xc3, 0x52, 0x20, 0xb1,
140 0xca, 0x5b, 0x29, 0xb8, 0xcd, 0x5c, 0x2e, 0xbf,
141
142 0x90, 0x01, 0x73, 0xe2, 0x97, 0x06, 0x74, 0xe5,
143 0x9e, 0x0f, 0x7d, 0xec, 0x99, 0x08, 0x7a, 0xeb,
144 0x8c, 0x1d, 0x6f, 0xfe, 0x8b, 0x1a, 0x68, 0xf9,
145 0x82, 0x13, 0x61, 0xf0, 0x85, 0x14, 0x66, 0xf7,
146
147 0xa8, 0x39, 0x4b, 0xda, 0xaf, 0x3e, 0x4c, 0xdd,
148 0xa6, 0x37, 0x45, 0xd4, 0xa1, 0x30, 0x42, 0xd3,
149 0xb4, 0x25, 0x57, 0xc6, 0xb3, 0x22, 0x50, 0xc1,
150 0xba, 0x2b, 0x59, 0xc8, 0xbd, 0x2c, 0x5e, 0xcf
151 };
152
153 /* CRC on 2 bytes */
154 #define __crc(data) (rfcomm_crc_table[rfcomm_crc_table[0xff ^ data[0]] ^ data[1]])
155
156 /* FCS on 2 bytes */
__fcs(u8 * data)157 static inline u8 __fcs(u8 *data)
158 {
159 return 0xff - __crc(data);
160 }
161
162 /* FCS on 3 bytes */
__fcs2(u8 * data)163 static inline u8 __fcs2(u8 *data)
164 {
165 return 0xff - rfcomm_crc_table[__crc(data) ^ data[2]];
166 }
167
168 /* Check FCS */
__check_fcs(u8 * data,int type,u8 fcs)169 static inline int __check_fcs(u8 *data, int type, u8 fcs)
170 {
171 u8 f = __crc(data);
172
173 if (type != RFCOMM_UIH)
174 f = rfcomm_crc_table[f ^ data[2]];
175
176 return rfcomm_crc_table[f ^ fcs] != 0xcf;
177 }
178
179 /* ---- L2CAP callbacks ---- */
rfcomm_l2state_change(struct sock * sk)180 static void rfcomm_l2state_change(struct sock *sk)
181 {
182 BT_DBG("%p state %d", sk, sk->sk_state);
183 rfcomm_schedule();
184 }
185
rfcomm_l2data_ready(struct sock * sk)186 static void rfcomm_l2data_ready(struct sock *sk)
187 {
188 trace_sk_data_ready(sk);
189
190 BT_DBG("%p", sk);
191 rfcomm_schedule();
192 }
193
rfcomm_l2sock_create(struct socket ** sock)194 static int rfcomm_l2sock_create(struct socket **sock)
195 {
196 int err;
197
198 BT_DBG("");
199
200 err = sock_create_kern(&init_net, PF_BLUETOOTH, SOCK_SEQPACKET, BTPROTO_L2CAP, sock);
201 if (!err) {
202 struct sock *sk = (*sock)->sk;
203 sk->sk_data_ready = rfcomm_l2data_ready;
204 sk->sk_state_change = rfcomm_l2state_change;
205 }
206 return err;
207 }
208
rfcomm_check_security(struct rfcomm_dlc * d)209 static int rfcomm_check_security(struct rfcomm_dlc *d)
210 {
211 struct sock *sk = d->session->sock->sk;
212 struct l2cap_conn *conn = l2cap_pi(sk)->chan->conn;
213
214 __u8 auth_type;
215
216 switch (d->sec_level) {
217 case BT_SECURITY_HIGH:
218 case BT_SECURITY_FIPS:
219 auth_type = HCI_AT_GENERAL_BONDING_MITM;
220 break;
221 case BT_SECURITY_MEDIUM:
222 auth_type = HCI_AT_GENERAL_BONDING;
223 break;
224 default:
225 auth_type = HCI_AT_NO_BONDING;
226 break;
227 }
228
229 return hci_conn_security(conn->hcon, d->sec_level, auth_type,
230 d->out);
231 }
232
rfcomm_session_timeout(struct timer_list * t)233 static void rfcomm_session_timeout(struct timer_list *t)
234 {
235 struct rfcomm_session *s = timer_container_of(s, t, timer);
236
237 BT_DBG("session %p state %ld", s, s->state);
238
239 set_bit(RFCOMM_TIMED_OUT, &s->flags);
240 rfcomm_schedule();
241 }
242
rfcomm_session_set_timer(struct rfcomm_session * s,long timeout)243 static void rfcomm_session_set_timer(struct rfcomm_session *s, long timeout)
244 {
245 BT_DBG("session %p state %ld timeout %ld", s, s->state, timeout);
246
247 mod_timer(&s->timer, jiffies + timeout);
248 }
249
rfcomm_session_clear_timer(struct rfcomm_session * s)250 static void rfcomm_session_clear_timer(struct rfcomm_session *s)
251 {
252 BT_DBG("session %p state %ld", s, s->state);
253
254 timer_delete_sync(&s->timer);
255 }
256
257 /* ---- RFCOMM DLCs ---- */
rfcomm_dlc_timeout(struct timer_list * t)258 static void rfcomm_dlc_timeout(struct timer_list *t)
259 {
260 struct rfcomm_dlc *d = timer_container_of(d, t, timer);
261
262 BT_DBG("dlc %p state %ld", d, d->state);
263
264 set_bit(RFCOMM_TIMED_OUT, &d->flags);
265 rfcomm_dlc_put(d);
266 rfcomm_schedule();
267 }
268
rfcomm_dlc_set_timer(struct rfcomm_dlc * d,long timeout)269 static void rfcomm_dlc_set_timer(struct rfcomm_dlc *d, long timeout)
270 {
271 BT_DBG("dlc %p state %ld timeout %ld", d, d->state, timeout);
272
273 if (!mod_timer(&d->timer, jiffies + timeout))
274 rfcomm_dlc_hold(d);
275 }
276
rfcomm_dlc_clear_timer(struct rfcomm_dlc * d)277 static void rfcomm_dlc_clear_timer(struct rfcomm_dlc *d)
278 {
279 BT_DBG("dlc %p state %ld", d, d->state);
280
281 if (timer_delete(&d->timer))
282 rfcomm_dlc_put(d);
283 }
284
rfcomm_dlc_clear_state(struct rfcomm_dlc * d)285 static void rfcomm_dlc_clear_state(struct rfcomm_dlc *d)
286 {
287 BT_DBG("%p", d);
288
289 d->state = BT_OPEN;
290 d->flags = 0;
291 d->mscex = 0;
292 d->sec_level = BT_SECURITY_LOW;
293 d->mtu = RFCOMM_DEFAULT_MTU;
294 d->v24_sig = RFCOMM_V24_RTC | RFCOMM_V24_RTR | RFCOMM_V24_DV;
295
296 d->cfc = RFCOMM_CFC_DISABLED;
297 d->rx_credits = RFCOMM_DEFAULT_CREDITS;
298 }
299
rfcomm_dlc_alloc(gfp_t prio)300 struct rfcomm_dlc *rfcomm_dlc_alloc(gfp_t prio)
301 {
302 struct rfcomm_dlc *d = kzalloc_obj(*d, prio);
303
304 if (!d)
305 return NULL;
306
307 timer_setup(&d->timer, rfcomm_dlc_timeout, 0);
308
309 skb_queue_head_init(&d->tx_queue);
310 mutex_init(&d->lock);
311 refcount_set(&d->refcnt, 1);
312
313 rfcomm_dlc_clear_state(d);
314
315 BT_DBG("%p", d);
316
317 return d;
318 }
319
rfcomm_dlc_free(struct rfcomm_dlc * d)320 void rfcomm_dlc_free(struct rfcomm_dlc *d)
321 {
322 BT_DBG("%p", d);
323
324 skb_queue_purge(&d->tx_queue);
325 kfree(d);
326 }
327
rfcomm_dlc_link(struct rfcomm_session * s,struct rfcomm_dlc * d)328 static void rfcomm_dlc_link(struct rfcomm_session *s, struct rfcomm_dlc *d)
329 {
330 BT_DBG("dlc %p session %p", d, s);
331
332 rfcomm_session_clear_timer(s);
333 rfcomm_dlc_hold(d);
334 list_add(&d->list, &s->dlcs);
335 d->session = s;
336 }
337
rfcomm_dlc_unlink(struct rfcomm_dlc * d)338 static void rfcomm_dlc_unlink(struct rfcomm_dlc *d)
339 {
340 struct rfcomm_session *s = d->session;
341
342 BT_DBG("dlc %p refcnt %d session %p", d, refcount_read(&d->refcnt), s);
343
344 list_del(&d->list);
345 d->session = NULL;
346 rfcomm_dlc_put(d);
347
348 if (list_empty(&s->dlcs))
349 rfcomm_session_set_timer(s, RFCOMM_IDLE_TIMEOUT);
350 }
351
rfcomm_dlc_get(struct rfcomm_session * s,u8 dlci)352 static struct rfcomm_dlc *rfcomm_dlc_get(struct rfcomm_session *s, u8 dlci)
353 {
354 struct rfcomm_dlc *d;
355
356 list_for_each_entry(d, &s->dlcs, list)
357 if (d->dlci == dlci)
358 return d;
359
360 return NULL;
361 }
362
rfcomm_check_channel(u8 channel)363 static int rfcomm_check_channel(u8 channel)
364 {
365 return channel < 1 || channel > 30;
366 }
367
__rfcomm_dlc_open(struct rfcomm_dlc * d,bdaddr_t * src,bdaddr_t * dst,u8 channel)368 static int __rfcomm_dlc_open(struct rfcomm_dlc *d, bdaddr_t *src, bdaddr_t *dst, u8 channel)
369 {
370 struct rfcomm_session *s;
371 int err = 0;
372 u8 dlci;
373
374 BT_DBG("dlc %p state %ld %pMR -> %pMR channel %d",
375 d, d->state, src, dst, channel);
376
377 if (rfcomm_check_channel(channel))
378 return -EINVAL;
379
380 if (d->state != BT_OPEN && d->state != BT_CLOSED)
381 return 0;
382
383 s = rfcomm_session_get(src, dst);
384 if (!s) {
385 s = rfcomm_session_create(src, dst, d->sec_level, &err);
386 if (!s)
387 return err;
388 }
389
390 dlci = __dlci(__session_dir(s), channel);
391
392 /* Check if DLCI already exists */
393 if (rfcomm_dlc_get(s, dlci))
394 return -EBUSY;
395
396 rfcomm_dlc_clear_state(d);
397
398 d->dlci = dlci;
399 d->addr = __addr(s->initiator, dlci);
400 d->priority = 7;
401
402 d->state = BT_CONFIG;
403 rfcomm_dlc_link(s, d);
404
405 d->out = 1;
406
407 d->mtu = s->mtu;
408 d->cfc = (s->cfc == RFCOMM_CFC_UNKNOWN) ? 0 : s->cfc;
409
410 if (s->state == BT_CONNECTED) {
411 if (rfcomm_check_security(d))
412 rfcomm_send_pn(s, 1, d);
413 else
414 set_bit(RFCOMM_AUTH_PENDING, &d->flags);
415 }
416
417 rfcomm_dlc_set_timer(d, RFCOMM_CONN_TIMEOUT);
418
419 return 0;
420 }
421
rfcomm_dlc_open(struct rfcomm_dlc * d,bdaddr_t * src,bdaddr_t * dst,u8 channel)422 int rfcomm_dlc_open(struct rfcomm_dlc *d, bdaddr_t *src, bdaddr_t *dst, u8 channel)
423 {
424 int r;
425
426 rfcomm_lock();
427
428 r = __rfcomm_dlc_open(d, src, dst, channel);
429
430 rfcomm_unlock();
431 return r;
432 }
433
__rfcomm_dlc_disconn(struct rfcomm_dlc * d)434 static void __rfcomm_dlc_disconn(struct rfcomm_dlc *d)
435 {
436 struct rfcomm_session *s = d->session;
437
438 d->state = BT_DISCONN;
439 if (skb_queue_empty(&d->tx_queue)) {
440 rfcomm_send_disc(s, d->dlci);
441 rfcomm_dlc_set_timer(d, RFCOMM_DISC_TIMEOUT);
442 } else {
443 rfcomm_queue_disc(d);
444 rfcomm_dlc_set_timer(d, RFCOMM_DISC_TIMEOUT * 2);
445 }
446 }
447
__rfcomm_dlc_close(struct rfcomm_dlc * d,int err)448 static int __rfcomm_dlc_close(struct rfcomm_dlc *d, int err)
449 {
450 struct rfcomm_session *s = d->session;
451 if (!s)
452 return 0;
453
454 BT_DBG("dlc %p state %ld dlci %d err %d session %p",
455 d, d->state, d->dlci, err, s);
456
457 switch (d->state) {
458 case BT_CONNECT:
459 case BT_CONFIG:
460 case BT_OPEN:
461 case BT_CONNECT2:
462 if (test_and_clear_bit(RFCOMM_DEFER_SETUP, &d->flags)) {
463 set_bit(RFCOMM_AUTH_REJECT, &d->flags);
464 rfcomm_schedule();
465 return 0;
466 }
467 }
468
469 switch (d->state) {
470 case BT_CONNECT:
471 case BT_CONNECTED:
472 __rfcomm_dlc_disconn(d);
473 break;
474
475 case BT_CONFIG:
476 if (s->state != BT_BOUND) {
477 __rfcomm_dlc_disconn(d);
478 break;
479 }
480 /* if closing a dlc in a session that hasn't been started,
481 * just close and unlink the dlc
482 */
483 fallthrough;
484
485 default:
486 rfcomm_dlc_clear_timer(d);
487
488 rfcomm_dlc_lock(d);
489 d->state = BT_CLOSED;
490 d->state_change(d, err);
491 rfcomm_dlc_unlock(d);
492
493 skb_queue_purge(&d->tx_queue);
494 rfcomm_dlc_unlink(d);
495 }
496
497 return 0;
498 }
499
rfcomm_dlc_close(struct rfcomm_dlc * d,int err)500 int rfcomm_dlc_close(struct rfcomm_dlc *d, int err)
501 {
502 int r = 0;
503 struct rfcomm_dlc *d_list;
504 struct rfcomm_session *s, *s_list;
505
506 BT_DBG("dlc %p state %ld dlci %d err %d", d, d->state, d->dlci, err);
507
508 rfcomm_lock();
509
510 s = d->session;
511 if (!s)
512 goto no_session;
513
514 /* after waiting on the mutex check the session still exists
515 * then check the dlc still exists
516 */
517 list_for_each_entry(s_list, &session_list, list) {
518 if (s_list == s) {
519 list_for_each_entry(d_list, &s->dlcs, list) {
520 if (d_list == d) {
521 r = __rfcomm_dlc_close(d, err);
522 break;
523 }
524 }
525 break;
526 }
527 }
528
529 no_session:
530 rfcomm_unlock();
531 return r;
532 }
533
rfcomm_dlc_exists(bdaddr_t * src,bdaddr_t * dst,u8 channel)534 struct rfcomm_dlc *rfcomm_dlc_exists(bdaddr_t *src, bdaddr_t *dst, u8 channel)
535 {
536 struct rfcomm_session *s;
537 struct rfcomm_dlc *dlc = NULL;
538 u8 dlci;
539
540 if (rfcomm_check_channel(channel))
541 return ERR_PTR(-EINVAL);
542
543 rfcomm_lock();
544 s = rfcomm_session_get(src, dst);
545 if (s) {
546 dlci = __dlci(__session_dir(s), channel);
547 dlc = rfcomm_dlc_get(s, dlci);
548 }
549 rfcomm_unlock();
550 return dlc;
551 }
552
rfcomm_dlc_send_frag(struct rfcomm_dlc * d,struct sk_buff * frag)553 static int rfcomm_dlc_send_frag(struct rfcomm_dlc *d, struct sk_buff *frag)
554 {
555 int len = frag->len;
556
557 BT_DBG("dlc %p mtu %d len %d", d, d->mtu, len);
558
559 if (len > d->mtu)
560 return -EINVAL;
561
562 rfcomm_make_uih(frag, d->addr);
563 __skb_queue_tail(&d->tx_queue, frag);
564
565 return len;
566 }
567
rfcomm_dlc_send(struct rfcomm_dlc * d,struct sk_buff * skb)568 int rfcomm_dlc_send(struct rfcomm_dlc *d, struct sk_buff *skb)
569 {
570 unsigned long flags;
571 struct sk_buff *frag, *next;
572 int len;
573
574 if (d->state != BT_CONNECTED)
575 return -ENOTCONN;
576
577 frag = skb_shinfo(skb)->frag_list;
578 skb_shinfo(skb)->frag_list = NULL;
579
580 /* Queue all fragments atomically. */
581 spin_lock_irqsave(&d->tx_queue.lock, flags);
582
583 len = rfcomm_dlc_send_frag(d, skb);
584 if (len < 0 || !frag)
585 goto unlock;
586
587 for (; frag; frag = next) {
588 int ret;
589
590 next = frag->next;
591
592 ret = rfcomm_dlc_send_frag(d, frag);
593 if (ret < 0) {
594 dev_kfree_skb_irq(frag);
595 goto unlock;
596 }
597
598 len += ret;
599 }
600
601 unlock:
602 spin_unlock_irqrestore(&d->tx_queue.lock, flags);
603
604 if (len > 0 && !test_bit(RFCOMM_TX_THROTTLED, &d->flags))
605 rfcomm_schedule();
606 return len;
607 }
608
rfcomm_dlc_send_noerror(struct rfcomm_dlc * d,struct sk_buff * skb)609 void rfcomm_dlc_send_noerror(struct rfcomm_dlc *d, struct sk_buff *skb)
610 {
611 int len = skb->len;
612
613 BT_DBG("dlc %p mtu %d len %d", d, d->mtu, len);
614
615 rfcomm_make_uih(skb, d->addr);
616 skb_queue_tail(&d->tx_queue, skb);
617
618 if (d->state == BT_CONNECTED &&
619 !test_bit(RFCOMM_TX_THROTTLED, &d->flags))
620 rfcomm_schedule();
621 }
622
__rfcomm_dlc_throttle(struct rfcomm_dlc * d)623 void __rfcomm_dlc_throttle(struct rfcomm_dlc *d)
624 {
625 BT_DBG("dlc %p state %ld", d, d->state);
626
627 if (!d->cfc) {
628 d->v24_sig |= RFCOMM_V24_FC;
629 set_bit(RFCOMM_MSC_PENDING, &d->flags);
630 }
631 rfcomm_schedule();
632 }
633
__rfcomm_dlc_unthrottle(struct rfcomm_dlc * d)634 void __rfcomm_dlc_unthrottle(struct rfcomm_dlc *d)
635 {
636 BT_DBG("dlc %p state %ld", d, d->state);
637
638 if (!d->cfc) {
639 d->v24_sig &= ~RFCOMM_V24_FC;
640 set_bit(RFCOMM_MSC_PENDING, &d->flags);
641 }
642 rfcomm_schedule();
643 }
644
645 /*
646 Set/get modem status functions use _local_ status i.e. what we report
647 to the other side.
648 Remote status is provided by dlc->modem_status() callback.
649 */
rfcomm_dlc_set_modem_status(struct rfcomm_dlc * d,u8 v24_sig)650 int rfcomm_dlc_set_modem_status(struct rfcomm_dlc *d, u8 v24_sig)
651 {
652 BT_DBG("dlc %p state %ld v24_sig 0x%x",
653 d, d->state, v24_sig);
654
655 if (test_bit(RFCOMM_RX_THROTTLED, &d->flags))
656 v24_sig |= RFCOMM_V24_FC;
657 else
658 v24_sig &= ~RFCOMM_V24_FC;
659
660 d->v24_sig = v24_sig;
661
662 if (!test_and_set_bit(RFCOMM_MSC_PENDING, &d->flags))
663 rfcomm_schedule();
664
665 return 0;
666 }
667
rfcomm_dlc_get_modem_status(struct rfcomm_dlc * d,u8 * v24_sig)668 int rfcomm_dlc_get_modem_status(struct rfcomm_dlc *d, u8 *v24_sig)
669 {
670 BT_DBG("dlc %p state %ld v24_sig 0x%x",
671 d, d->state, d->v24_sig);
672
673 *v24_sig = d->v24_sig;
674 return 0;
675 }
676
677 /* ---- RFCOMM sessions ---- */
rfcomm_session_add(struct socket * sock,int state)678 static struct rfcomm_session *rfcomm_session_add(struct socket *sock, int state)
679 {
680 struct rfcomm_session *s = kzalloc_obj(*s);
681
682 if (!s)
683 return NULL;
684
685 BT_DBG("session %p sock %p", s, sock);
686
687 timer_setup(&s->timer, rfcomm_session_timeout, 0);
688
689 INIT_LIST_HEAD(&s->dlcs);
690 s->state = state;
691 s->sock = sock;
692
693 s->mtu = RFCOMM_DEFAULT_MTU;
694 s->cfc = disable_cfc ? RFCOMM_CFC_DISABLED : RFCOMM_CFC_UNKNOWN;
695
696 /* Do not increment module usage count for listening sessions.
697 * Otherwise we won't be able to unload the module. */
698 if (state != BT_LISTEN)
699 if (!try_module_get(THIS_MODULE)) {
700 kfree(s);
701 return NULL;
702 }
703
704 list_add(&s->list, &session_list);
705
706 return s;
707 }
708
rfcomm_session_del(struct rfcomm_session * s)709 static struct rfcomm_session *rfcomm_session_del(struct rfcomm_session *s)
710 {
711 int state = s->state;
712
713 BT_DBG("session %p state %ld", s, s->state);
714
715 list_del(&s->list);
716
717 rfcomm_session_clear_timer(s);
718 sock_release(s->sock);
719 kfree(s);
720
721 if (state != BT_LISTEN)
722 module_put(THIS_MODULE);
723
724 return NULL;
725 }
726
rfcomm_session_get(bdaddr_t * src,bdaddr_t * dst)727 static struct rfcomm_session *rfcomm_session_get(bdaddr_t *src, bdaddr_t *dst)
728 {
729 struct rfcomm_session *s, *n;
730 struct l2cap_chan *chan;
731 list_for_each_entry_safe(s, n, &session_list, list) {
732 chan = l2cap_pi(s->sock->sk)->chan;
733
734 if ((!bacmp(src, BDADDR_ANY) || !bacmp(&chan->src, src)) &&
735 !bacmp(&chan->dst, dst))
736 return s;
737 }
738 return NULL;
739 }
740
rfcomm_session_close(struct rfcomm_session * s,int err)741 static struct rfcomm_session *rfcomm_session_close(struct rfcomm_session *s,
742 int err)
743 {
744 struct rfcomm_dlc *d, *n;
745
746 s->state = BT_CLOSED;
747
748 BT_DBG("session %p state %ld err %d", s, s->state, err);
749
750 /* Close all dlcs */
751 list_for_each_entry_safe(d, n, &s->dlcs, list) {
752 d->state = BT_CLOSED;
753 __rfcomm_dlc_close(d, err);
754 }
755
756 rfcomm_session_clear_timer(s);
757 return rfcomm_session_del(s);
758 }
759
rfcomm_session_create(bdaddr_t * src,bdaddr_t * dst,u8 sec_level,int * err)760 static struct rfcomm_session *rfcomm_session_create(bdaddr_t *src,
761 bdaddr_t *dst,
762 u8 sec_level,
763 int *err)
764 {
765 struct rfcomm_session *s = NULL;
766 struct sockaddr_l2 addr;
767 struct socket *sock;
768 struct sock *sk;
769
770 BT_DBG("%pMR -> %pMR", src, dst);
771
772 *err = rfcomm_l2sock_create(&sock);
773 if (*err < 0)
774 return NULL;
775
776 bacpy(&addr.l2_bdaddr, src);
777 addr.l2_family = AF_BLUETOOTH;
778 addr.l2_psm = 0;
779 addr.l2_cid = 0;
780 addr.l2_bdaddr_type = BDADDR_BREDR;
781 *err = kernel_bind(sock, (struct sockaddr_unsized *)&addr, sizeof(addr));
782 if (*err < 0)
783 goto failed;
784
785 /* Set L2CAP options */
786 sk = sock->sk;
787 lock_sock(sk);
788 /* Set MTU to 0 so L2CAP can auto select the MTU */
789 l2cap_pi(sk)->chan->imtu = 0;
790 l2cap_pi(sk)->chan->sec_level = sec_level;
791 if (l2cap_ertm)
792 l2cap_pi(sk)->chan->mode = L2CAP_MODE_ERTM;
793 release_sock(sk);
794
795 s = rfcomm_session_add(sock, BT_BOUND);
796 if (!s) {
797 *err = -ENOMEM;
798 goto failed;
799 }
800
801 s->initiator = 1;
802
803 bacpy(&addr.l2_bdaddr, dst);
804 addr.l2_family = AF_BLUETOOTH;
805 addr.l2_psm = cpu_to_le16(L2CAP_PSM_RFCOMM);
806 addr.l2_cid = 0;
807 addr.l2_bdaddr_type = BDADDR_BREDR;
808 *err = kernel_connect(sock, (struct sockaddr_unsized *)&addr, sizeof(addr), O_NONBLOCK);
809 if (*err == 0 || *err == -EINPROGRESS)
810 return s;
811
812 return rfcomm_session_del(s);
813
814 failed:
815 sock_release(sock);
816 return NULL;
817 }
818
rfcomm_session_getaddr(struct rfcomm_session * s,bdaddr_t * src,bdaddr_t * dst)819 void rfcomm_session_getaddr(struct rfcomm_session *s, bdaddr_t *src, bdaddr_t *dst)
820 {
821 struct l2cap_chan *chan = l2cap_pi(s->sock->sk)->chan;
822 if (src)
823 bacpy(src, &chan->src);
824 if (dst)
825 bacpy(dst, &chan->dst);
826 }
827
828 /* ---- RFCOMM frame sending ---- */
rfcomm_send_frame(struct rfcomm_session * s,u8 * data,int len)829 static int rfcomm_send_frame(struct rfcomm_session *s, u8 *data, int len)
830 {
831 struct kvec iv = { data, len };
832 struct msghdr msg;
833
834 BT_DBG("session %p len %d", s, len);
835
836 memset(&msg, 0, sizeof(msg));
837
838 return kernel_sendmsg(s->sock, &msg, &iv, 1, len);
839 }
840
rfcomm_send_cmd(struct rfcomm_session * s,struct rfcomm_cmd * cmd)841 static int rfcomm_send_cmd(struct rfcomm_session *s, struct rfcomm_cmd *cmd)
842 {
843 BT_DBG("%p cmd %u", s, cmd->ctrl);
844
845 return rfcomm_send_frame(s, (void *) cmd, sizeof(*cmd));
846 }
847
rfcomm_send_sabm(struct rfcomm_session * s,u8 dlci)848 static int rfcomm_send_sabm(struct rfcomm_session *s, u8 dlci)
849 {
850 struct rfcomm_cmd cmd;
851
852 BT_DBG("%p dlci %d", s, dlci);
853
854 cmd.addr = __addr(s->initiator, dlci);
855 cmd.ctrl = __ctrl(RFCOMM_SABM, 1);
856 cmd.len = __len8(0);
857 cmd.fcs = __fcs2((u8 *) &cmd);
858
859 return rfcomm_send_cmd(s, &cmd);
860 }
861
rfcomm_send_ua(struct rfcomm_session * s,u8 dlci)862 static int rfcomm_send_ua(struct rfcomm_session *s, u8 dlci)
863 {
864 struct rfcomm_cmd cmd;
865
866 BT_DBG("%p dlci %d", s, dlci);
867
868 cmd.addr = __addr(!s->initiator, dlci);
869 cmd.ctrl = __ctrl(RFCOMM_UA, 1);
870 cmd.len = __len8(0);
871 cmd.fcs = __fcs2((u8 *) &cmd);
872
873 return rfcomm_send_cmd(s, &cmd);
874 }
875
rfcomm_send_disc(struct rfcomm_session * s,u8 dlci)876 static int rfcomm_send_disc(struct rfcomm_session *s, u8 dlci)
877 {
878 struct rfcomm_cmd cmd;
879
880 BT_DBG("%p dlci %d", s, dlci);
881
882 cmd.addr = __addr(s->initiator, dlci);
883 cmd.ctrl = __ctrl(RFCOMM_DISC, 1);
884 cmd.len = __len8(0);
885 cmd.fcs = __fcs2((u8 *) &cmd);
886
887 return rfcomm_send_cmd(s, &cmd);
888 }
889
rfcomm_queue_disc(struct rfcomm_dlc * d)890 static int rfcomm_queue_disc(struct rfcomm_dlc *d)
891 {
892 struct rfcomm_cmd *cmd;
893 struct sk_buff *skb;
894
895 BT_DBG("dlc %p dlci %d", d, d->dlci);
896
897 skb = alloc_skb(sizeof(*cmd), GFP_KERNEL);
898 if (!skb)
899 return -ENOMEM;
900
901 cmd = __skb_put(skb, sizeof(*cmd));
902 cmd->addr = d->addr;
903 cmd->ctrl = __ctrl(RFCOMM_DISC, 1);
904 cmd->len = __len8(0);
905 cmd->fcs = __fcs2((u8 *) cmd);
906
907 skb_queue_tail(&d->tx_queue, skb);
908 rfcomm_schedule();
909 return 0;
910 }
911
rfcomm_send_dm(struct rfcomm_session * s,u8 dlci)912 static int rfcomm_send_dm(struct rfcomm_session *s, u8 dlci)
913 {
914 struct rfcomm_cmd cmd;
915
916 BT_DBG("%p dlci %d", s, dlci);
917
918 cmd.addr = __addr(!s->initiator, dlci);
919 cmd.ctrl = __ctrl(RFCOMM_DM, 1);
920 cmd.len = __len8(0);
921 cmd.fcs = __fcs2((u8 *) &cmd);
922
923 return rfcomm_send_cmd(s, &cmd);
924 }
925
rfcomm_send_nsc(struct rfcomm_session * s,int cr,u8 type)926 static int rfcomm_send_nsc(struct rfcomm_session *s, int cr, u8 type)
927 {
928 struct rfcomm_hdr *hdr;
929 struct rfcomm_mcc *mcc;
930 u8 buf[16], *ptr = buf;
931
932 BT_DBG("%p cr %d type %d", s, cr, type);
933
934 hdr = (void *) ptr; ptr += sizeof(*hdr);
935 hdr->addr = __addr(s->initiator, 0);
936 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
937 hdr->len = __len8(sizeof(*mcc) + 1);
938
939 mcc = (void *) ptr; ptr += sizeof(*mcc);
940 mcc->type = __mcc_type(0, RFCOMM_NSC);
941 mcc->len = __len8(1);
942
943 /* Type that we didn't like */
944 *ptr = __mcc_type(cr, type); ptr++;
945
946 *ptr = __fcs(buf); ptr++;
947
948 return rfcomm_send_frame(s, buf, ptr - buf);
949 }
950
rfcomm_send_pn(struct rfcomm_session * s,int cr,struct rfcomm_dlc * d)951 static int rfcomm_send_pn(struct rfcomm_session *s, int cr, struct rfcomm_dlc *d)
952 {
953 struct rfcomm_hdr *hdr;
954 struct rfcomm_mcc *mcc;
955 struct rfcomm_pn *pn;
956 u8 buf[16], *ptr = buf;
957
958 BT_DBG("%p cr %d dlci %d mtu %d", s, cr, d->dlci, d->mtu);
959
960 hdr = (void *) ptr; ptr += sizeof(*hdr);
961 hdr->addr = __addr(s->initiator, 0);
962 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
963 hdr->len = __len8(sizeof(*mcc) + sizeof(*pn));
964
965 mcc = (void *) ptr; ptr += sizeof(*mcc);
966 mcc->type = __mcc_type(cr, RFCOMM_PN);
967 mcc->len = __len8(sizeof(*pn));
968
969 pn = (void *) ptr; ptr += sizeof(*pn);
970 pn->dlci = d->dlci;
971 pn->priority = d->priority;
972 pn->ack_timer = 0;
973 pn->max_retrans = 0;
974
975 if (s->cfc) {
976 pn->flow_ctrl = cr ? 0xf0 : 0xe0;
977 pn->credits = RFCOMM_DEFAULT_CREDITS;
978 } else {
979 pn->flow_ctrl = 0;
980 pn->credits = 0;
981 }
982
983 if (cr && channel_mtu >= 0)
984 pn->mtu = cpu_to_le16(channel_mtu);
985 else
986 pn->mtu = cpu_to_le16(d->mtu);
987
988 *ptr = __fcs(buf); ptr++;
989
990 return rfcomm_send_frame(s, buf, ptr - buf);
991 }
992
rfcomm_send_rpn(struct rfcomm_session * s,int cr,u8 dlci,u8 bit_rate,u8 data_bits,u8 stop_bits,u8 parity,u8 flow_ctrl_settings,u8 xon_char,u8 xoff_char,u16 param_mask)993 int rfcomm_send_rpn(struct rfcomm_session *s, int cr, u8 dlci,
994 u8 bit_rate, u8 data_bits, u8 stop_bits,
995 u8 parity, u8 flow_ctrl_settings,
996 u8 xon_char, u8 xoff_char, u16 param_mask)
997 {
998 struct rfcomm_hdr *hdr;
999 struct rfcomm_mcc *mcc;
1000 struct rfcomm_rpn *rpn;
1001 u8 buf[16], *ptr = buf;
1002
1003 BT_DBG("%p cr %d dlci %d bit_r 0x%x data_b 0x%x stop_b 0x%x parity 0x%x"
1004 " flwc_s 0x%x xon_c 0x%x xoff_c 0x%x p_mask 0x%x",
1005 s, cr, dlci, bit_rate, data_bits, stop_bits, parity,
1006 flow_ctrl_settings, xon_char, xoff_char, param_mask);
1007
1008 hdr = (void *) ptr; ptr += sizeof(*hdr);
1009 hdr->addr = __addr(s->initiator, 0);
1010 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1011 hdr->len = __len8(sizeof(*mcc) + sizeof(*rpn));
1012
1013 mcc = (void *) ptr; ptr += sizeof(*mcc);
1014 mcc->type = __mcc_type(cr, RFCOMM_RPN);
1015 mcc->len = __len8(sizeof(*rpn));
1016
1017 rpn = (void *) ptr; ptr += sizeof(*rpn);
1018 rpn->dlci = __addr(1, dlci);
1019 rpn->bit_rate = bit_rate;
1020 rpn->line_settings = __rpn_line_settings(data_bits, stop_bits, parity);
1021 rpn->flow_ctrl = flow_ctrl_settings;
1022 rpn->xon_char = xon_char;
1023 rpn->xoff_char = xoff_char;
1024 rpn->param_mask = cpu_to_le16(param_mask);
1025
1026 *ptr = __fcs(buf); ptr++;
1027
1028 return rfcomm_send_frame(s, buf, ptr - buf);
1029 }
1030
rfcomm_dlc_send_rpn(struct rfcomm_dlc * d,u8 bit_rate,u8 data_bits,u8 stop_bits,u8 parity,u8 flow_ctrl_settings,u8 xon_char,u8 xoff_char,u16 param_mask)1031 int rfcomm_dlc_send_rpn(struct rfcomm_dlc *d, u8 bit_rate, u8 data_bits,
1032 u8 stop_bits, u8 parity, u8 flow_ctrl_settings,
1033 u8 xon_char, u8 xoff_char, u16 param_mask)
1034 {
1035 int err = -ENOTCONN;
1036
1037 rfcomm_lock();
1038 if (d->session)
1039 err = rfcomm_send_rpn(d->session, 1, d->dlci, bit_rate,
1040 data_bits, stop_bits, parity,
1041 flow_ctrl_settings, xon_char, xoff_char,
1042 param_mask);
1043 rfcomm_unlock();
1044
1045 return err;
1046 }
1047
rfcomm_send_rls(struct rfcomm_session * s,int cr,u8 dlci,u8 status)1048 static int rfcomm_send_rls(struct rfcomm_session *s, int cr, u8 dlci, u8 status)
1049 {
1050 struct rfcomm_hdr *hdr;
1051 struct rfcomm_mcc *mcc;
1052 struct rfcomm_rls *rls;
1053 u8 buf[16], *ptr = buf;
1054
1055 BT_DBG("%p cr %d status 0x%x", s, cr, status);
1056
1057 hdr = (void *) ptr; ptr += sizeof(*hdr);
1058 hdr->addr = __addr(s->initiator, 0);
1059 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1060 hdr->len = __len8(sizeof(*mcc) + sizeof(*rls));
1061
1062 mcc = (void *) ptr; ptr += sizeof(*mcc);
1063 mcc->type = __mcc_type(cr, RFCOMM_RLS);
1064 mcc->len = __len8(sizeof(*rls));
1065
1066 rls = (void *) ptr; ptr += sizeof(*rls);
1067 rls->dlci = __addr(1, dlci);
1068 rls->status = status;
1069
1070 *ptr = __fcs(buf); ptr++;
1071
1072 return rfcomm_send_frame(s, buf, ptr - buf);
1073 }
1074
rfcomm_send_msc(struct rfcomm_session * s,int cr,u8 dlci,u8 v24_sig)1075 static int rfcomm_send_msc(struct rfcomm_session *s, int cr, u8 dlci, u8 v24_sig)
1076 {
1077 struct rfcomm_hdr *hdr;
1078 struct rfcomm_mcc *mcc;
1079 struct rfcomm_msc *msc;
1080 u8 buf[16], *ptr = buf;
1081
1082 BT_DBG("%p cr %d v24 0x%x", s, cr, v24_sig);
1083
1084 hdr = (void *) ptr; ptr += sizeof(*hdr);
1085 hdr->addr = __addr(s->initiator, 0);
1086 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1087 hdr->len = __len8(sizeof(*mcc) + sizeof(*msc));
1088
1089 mcc = (void *) ptr; ptr += sizeof(*mcc);
1090 mcc->type = __mcc_type(cr, RFCOMM_MSC);
1091 mcc->len = __len8(sizeof(*msc));
1092
1093 msc = (void *) ptr; ptr += sizeof(*msc);
1094 msc->dlci = __addr(1, dlci);
1095 msc->v24_sig = v24_sig | 0x01;
1096
1097 *ptr = __fcs(buf); ptr++;
1098
1099 return rfcomm_send_frame(s, buf, ptr - buf);
1100 }
1101
rfcomm_send_fcoff(struct rfcomm_session * s,int cr)1102 static int rfcomm_send_fcoff(struct rfcomm_session *s, int cr)
1103 {
1104 struct rfcomm_hdr *hdr;
1105 struct rfcomm_mcc *mcc;
1106 u8 buf[16], *ptr = buf;
1107
1108 BT_DBG("%p cr %d", s, cr);
1109
1110 hdr = (void *) ptr; ptr += sizeof(*hdr);
1111 hdr->addr = __addr(s->initiator, 0);
1112 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1113 hdr->len = __len8(sizeof(*mcc));
1114
1115 mcc = (void *) ptr; ptr += sizeof(*mcc);
1116 mcc->type = __mcc_type(cr, RFCOMM_FCOFF);
1117 mcc->len = __len8(0);
1118
1119 *ptr = __fcs(buf); ptr++;
1120
1121 return rfcomm_send_frame(s, buf, ptr - buf);
1122 }
1123
rfcomm_send_fcon(struct rfcomm_session * s,int cr)1124 static int rfcomm_send_fcon(struct rfcomm_session *s, int cr)
1125 {
1126 struct rfcomm_hdr *hdr;
1127 struct rfcomm_mcc *mcc;
1128 u8 buf[16], *ptr = buf;
1129
1130 BT_DBG("%p cr %d", s, cr);
1131
1132 hdr = (void *) ptr; ptr += sizeof(*hdr);
1133 hdr->addr = __addr(s->initiator, 0);
1134 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1135 hdr->len = __len8(sizeof(*mcc));
1136
1137 mcc = (void *) ptr; ptr += sizeof(*mcc);
1138 mcc->type = __mcc_type(cr, RFCOMM_FCON);
1139 mcc->len = __len8(0);
1140
1141 *ptr = __fcs(buf); ptr++;
1142
1143 return rfcomm_send_frame(s, buf, ptr - buf);
1144 }
1145
rfcomm_send_test(struct rfcomm_session * s,int cr,u8 * pattern,int len)1146 static int rfcomm_send_test(struct rfcomm_session *s, int cr, u8 *pattern, int len)
1147 {
1148 struct socket *sock = s->sock;
1149 struct kvec iv[3];
1150 struct msghdr msg;
1151 unsigned char hdr[5], crc[1];
1152
1153 if (len > 125)
1154 return -EINVAL;
1155
1156 BT_DBG("%p cr %d", s, cr);
1157
1158 hdr[0] = __addr(s->initiator, 0);
1159 hdr[1] = __ctrl(RFCOMM_UIH, 0);
1160 hdr[2] = 0x01 | ((len + 2) << 1);
1161 hdr[3] = 0x01 | ((cr & 0x01) << 1) | (RFCOMM_TEST << 2);
1162 hdr[4] = 0x01 | (len << 1);
1163
1164 crc[0] = __fcs(hdr);
1165
1166 iv[0].iov_base = hdr;
1167 iv[0].iov_len = 5;
1168 iv[1].iov_base = pattern;
1169 iv[1].iov_len = len;
1170 iv[2].iov_base = crc;
1171 iv[2].iov_len = 1;
1172
1173 memset(&msg, 0, sizeof(msg));
1174
1175 return kernel_sendmsg(sock, &msg, iv, 3, 6 + len);
1176 }
1177
rfcomm_send_credits(struct rfcomm_session * s,u8 addr,u8 credits)1178 static int rfcomm_send_credits(struct rfcomm_session *s, u8 addr, u8 credits)
1179 {
1180 struct rfcomm_hdr *hdr;
1181 u8 buf[16], *ptr = buf;
1182
1183 BT_DBG("%p addr %d credits %d", s, addr, credits);
1184
1185 hdr = (void *) ptr; ptr += sizeof(*hdr);
1186 hdr->addr = addr;
1187 hdr->ctrl = __ctrl(RFCOMM_UIH, 1);
1188 hdr->len = __len8(0);
1189
1190 *ptr = credits; ptr++;
1191
1192 *ptr = __fcs(buf); ptr++;
1193
1194 return rfcomm_send_frame(s, buf, ptr - buf);
1195 }
1196
rfcomm_make_uih(struct sk_buff * skb,u8 addr)1197 static void rfcomm_make_uih(struct sk_buff *skb, u8 addr)
1198 {
1199 struct rfcomm_hdr *hdr;
1200 int len = skb->len;
1201 u8 *crc;
1202
1203 if (len > 127) {
1204 hdr = skb_push(skb, 4);
1205 put_unaligned(cpu_to_le16(__len16(len)), (__le16 *) &hdr->len);
1206 } else {
1207 hdr = skb_push(skb, 3);
1208 hdr->len = __len8(len);
1209 }
1210 hdr->addr = addr;
1211 hdr->ctrl = __ctrl(RFCOMM_UIH, 0);
1212
1213 crc = skb_put(skb, 1);
1214 *crc = __fcs((void *) hdr);
1215 }
1216
1217 /* ---- RFCOMM frame reception ---- */
rfcomm_recv_ua(struct rfcomm_session * s,u8 dlci)1218 static struct rfcomm_session *rfcomm_recv_ua(struct rfcomm_session *s, u8 dlci)
1219 {
1220 BT_DBG("session %p state %ld dlci %d", s, s->state, dlci);
1221
1222 if (dlci) {
1223 /* Data channel */
1224 struct rfcomm_dlc *d = rfcomm_dlc_get(s, dlci);
1225 if (!d) {
1226 rfcomm_send_dm(s, dlci);
1227 return s;
1228 }
1229
1230 switch (d->state) {
1231 case BT_CONNECT:
1232 rfcomm_dlc_clear_timer(d);
1233
1234 rfcomm_dlc_lock(d);
1235 d->state = BT_CONNECTED;
1236 d->state_change(d, 0);
1237 rfcomm_dlc_unlock(d);
1238
1239 rfcomm_send_msc(s, 1, dlci, d->v24_sig);
1240 break;
1241
1242 case BT_DISCONN:
1243 d->state = BT_CLOSED;
1244 __rfcomm_dlc_close(d, 0);
1245
1246 if (list_empty(&s->dlcs)) {
1247 s->state = BT_DISCONN;
1248 rfcomm_send_disc(s, 0);
1249 rfcomm_session_clear_timer(s);
1250 }
1251
1252 break;
1253 }
1254 } else {
1255 /* Control channel */
1256 switch (s->state) {
1257 case BT_CONNECT:
1258 s->state = BT_CONNECTED;
1259 rfcomm_process_connect(s);
1260 break;
1261
1262 case BT_DISCONN:
1263 s = rfcomm_session_close(s, ECONNRESET);
1264 break;
1265 }
1266 }
1267 return s;
1268 }
1269
rfcomm_recv_dm(struct rfcomm_session * s,u8 dlci)1270 static struct rfcomm_session *rfcomm_recv_dm(struct rfcomm_session *s, u8 dlci)
1271 {
1272 int err = 0;
1273
1274 BT_DBG("session %p state %ld dlci %d", s, s->state, dlci);
1275
1276 if (dlci) {
1277 /* Data DLC */
1278 struct rfcomm_dlc *d = rfcomm_dlc_get(s, dlci);
1279 if (d) {
1280 if (d->state == BT_CONNECT || d->state == BT_CONFIG)
1281 err = ECONNREFUSED;
1282 else
1283 err = ECONNRESET;
1284
1285 d->state = BT_CLOSED;
1286 __rfcomm_dlc_close(d, err);
1287 }
1288 } else {
1289 if (s->state == BT_CONNECT)
1290 err = ECONNREFUSED;
1291 else
1292 err = ECONNRESET;
1293
1294 s = rfcomm_session_close(s, err);
1295 }
1296 return s;
1297 }
1298
rfcomm_recv_disc(struct rfcomm_session * s,u8 dlci)1299 static struct rfcomm_session *rfcomm_recv_disc(struct rfcomm_session *s,
1300 u8 dlci)
1301 {
1302 int err = 0;
1303
1304 BT_DBG("session %p state %ld dlci %d", s, s->state, dlci);
1305
1306 if (dlci) {
1307 struct rfcomm_dlc *d = rfcomm_dlc_get(s, dlci);
1308 if (d) {
1309 rfcomm_send_ua(s, dlci);
1310
1311 if (d->state == BT_CONNECT || d->state == BT_CONFIG)
1312 err = ECONNREFUSED;
1313 else
1314 err = ECONNRESET;
1315
1316 d->state = BT_CLOSED;
1317 __rfcomm_dlc_close(d, err);
1318 } else
1319 rfcomm_send_dm(s, dlci);
1320
1321 } else {
1322 rfcomm_send_ua(s, 0);
1323
1324 if (s->state == BT_CONNECT)
1325 err = ECONNREFUSED;
1326 else
1327 err = ECONNRESET;
1328
1329 s = rfcomm_session_close(s, err);
1330 }
1331 return s;
1332 }
1333
1334 /* Must be called with rfcomm_mutex held, so that the session cannot be
1335 * unlinked from under us.
1336 */
__rfcomm_dlc_accept(struct rfcomm_dlc * d)1337 static void __rfcomm_dlc_accept(struct rfcomm_dlc *d)
1338 {
1339 struct sock *sk = d->session->sock->sk;
1340 struct l2cap_conn *conn = l2cap_pi(sk)->chan->conn;
1341
1342 BT_DBG("dlc %p", d);
1343
1344 rfcomm_send_ua(d->session, d->dlci);
1345
1346 rfcomm_dlc_clear_timer(d);
1347
1348 rfcomm_dlc_lock(d);
1349 d->state = BT_CONNECTED;
1350 d->state_change(d, 0);
1351 rfcomm_dlc_unlock(d);
1352
1353 if (d->role_switch)
1354 hci_conn_switch_role(conn->hcon, 0x00);
1355
1356 rfcomm_send_msc(d->session, 1, d->dlci, d->v24_sig);
1357 }
1358
rfcomm_dlc_accept(struct rfcomm_dlc * d)1359 void rfcomm_dlc_accept(struct rfcomm_dlc *d)
1360 {
1361 rfcomm_lock();
1362
1363 /* rfcomm_recv_disc() sets the dlc state to BT_CLOSED before calling
1364 * __rfcomm_dlc_close(), so the RFCOMM_DEFER_SETUP handshake there is
1365 * skipped and the session can already be unlinked by the time the
1366 * deferred accept runs from rfcomm_sock_recvmsg().
1367 */
1368 if (d->session)
1369 __rfcomm_dlc_accept(d);
1370
1371 rfcomm_unlock();
1372 }
1373
rfcomm_check_accept(struct rfcomm_dlc * d)1374 static void rfcomm_check_accept(struct rfcomm_dlc *d)
1375 {
1376 if (rfcomm_check_security(d)) {
1377 if (d->defer_setup) {
1378 set_bit(RFCOMM_DEFER_SETUP, &d->flags);
1379 rfcomm_dlc_set_timer(d, RFCOMM_AUTH_TIMEOUT);
1380
1381 rfcomm_dlc_lock(d);
1382 d->state = BT_CONNECT2;
1383 d->state_change(d, 0);
1384 rfcomm_dlc_unlock(d);
1385 } else
1386 __rfcomm_dlc_accept(d);
1387 } else {
1388 set_bit(RFCOMM_AUTH_PENDING, &d->flags);
1389 rfcomm_dlc_set_timer(d, RFCOMM_AUTH_TIMEOUT);
1390 }
1391 }
1392
rfcomm_recv_sabm(struct rfcomm_session * s,u8 dlci)1393 static int rfcomm_recv_sabm(struct rfcomm_session *s, u8 dlci)
1394 {
1395 struct rfcomm_dlc *d;
1396 u8 channel;
1397
1398 BT_DBG("session %p state %ld dlci %d", s, s->state, dlci);
1399
1400 if (!dlci) {
1401 rfcomm_send_ua(s, 0);
1402
1403 if (s->state == BT_OPEN) {
1404 s->state = BT_CONNECTED;
1405 rfcomm_process_connect(s);
1406 }
1407 return 0;
1408 }
1409
1410 /* Check if DLC exists */
1411 d = rfcomm_dlc_get(s, dlci);
1412 if (d) {
1413 if (d->state == BT_OPEN) {
1414 /* DLC was previously opened by PN request */
1415 rfcomm_check_accept(d);
1416 }
1417 return 0;
1418 }
1419
1420 /* Notify socket layer about incoming connection */
1421 channel = __srv_channel(dlci);
1422 if (rfcomm_connect_ind(s, channel, &d)) {
1423 d->dlci = dlci;
1424 d->addr = __addr(s->initiator, dlci);
1425 rfcomm_dlc_link(s, d);
1426
1427 rfcomm_check_accept(d);
1428 } else {
1429 rfcomm_send_dm(s, dlci);
1430 }
1431
1432 return 0;
1433 }
1434
rfcomm_apply_pn(struct rfcomm_dlc * d,int cr,struct rfcomm_pn * pn)1435 static int rfcomm_apply_pn(struct rfcomm_dlc *d, int cr, struct rfcomm_pn *pn)
1436 {
1437 struct rfcomm_session *s = d->session;
1438
1439 BT_DBG("dlc %p state %ld dlci %d mtu %d fc 0x%x credits %d",
1440 d, d->state, d->dlci, pn->mtu, pn->flow_ctrl, pn->credits);
1441
1442 if ((pn->flow_ctrl == 0xf0 && s->cfc != RFCOMM_CFC_DISABLED) ||
1443 pn->flow_ctrl == 0xe0) {
1444 d->cfc = RFCOMM_CFC_ENABLED;
1445 d->tx_credits = pn->credits;
1446 } else {
1447 d->cfc = RFCOMM_CFC_DISABLED;
1448 set_bit(RFCOMM_TX_THROTTLED, &d->flags);
1449 }
1450
1451 if (s->cfc == RFCOMM_CFC_UNKNOWN)
1452 s->cfc = d->cfc;
1453
1454 d->priority = pn->priority;
1455
1456 d->mtu = __le16_to_cpu(pn->mtu);
1457
1458 /* MTU 0 causes an infinite loop when fragmenting in sendmsg */
1459 if (!d->mtu)
1460 d->mtu = RFCOMM_DEFAULT_MTU;
1461
1462 if (cr && d->mtu > s->mtu)
1463 d->mtu = s->mtu;
1464
1465 return 0;
1466 }
1467
rfcomm_recv_pn(struct rfcomm_session * s,int cr,struct sk_buff * skb)1468 static int rfcomm_recv_pn(struct rfcomm_session *s, int cr, struct sk_buff *skb)
1469 {
1470 struct rfcomm_pn *pn;
1471 struct rfcomm_dlc *d;
1472 u8 dlci;
1473
1474 pn = skb_pull_data(skb, sizeof(*pn));
1475 if (!pn)
1476 return -EILSEQ;
1477
1478 dlci = pn->dlci;
1479 BT_DBG("session %p state %ld dlci %d", s, s->state, dlci);
1480
1481 if (!dlci)
1482 return 0;
1483
1484 d = rfcomm_dlc_get(s, dlci);
1485 if (d) {
1486 if (cr) {
1487 /* PN request */
1488 rfcomm_apply_pn(d, cr, pn);
1489 rfcomm_send_pn(s, 0, d);
1490 } else {
1491 /* PN response */
1492 switch (d->state) {
1493 case BT_CONFIG:
1494 rfcomm_apply_pn(d, cr, pn);
1495
1496 d->state = BT_CONNECT;
1497 rfcomm_send_sabm(s, d->dlci);
1498 break;
1499 }
1500 }
1501 } else {
1502 u8 channel = __srv_channel(dlci);
1503
1504 if (!cr)
1505 return 0;
1506
1507 /* PN request for non existing DLC.
1508 * Assume incoming connection. */
1509 if (rfcomm_connect_ind(s, channel, &d)) {
1510 d->dlci = dlci;
1511 d->addr = __addr(s->initiator, dlci);
1512 rfcomm_dlc_link(s, d);
1513
1514 rfcomm_apply_pn(d, cr, pn);
1515
1516 d->state = BT_OPEN;
1517 rfcomm_send_pn(s, 0, d);
1518 } else {
1519 rfcomm_send_dm(s, dlci);
1520 }
1521 }
1522 return 0;
1523 }
1524
rfcomm_recv_rpn(struct rfcomm_session * s,int cr,int len,struct sk_buff * skb)1525 static int rfcomm_recv_rpn(struct rfcomm_session *s, int cr, int len, struct sk_buff *skb)
1526 {
1527 struct rfcomm_rpn *rpn;
1528 u8 dlci;
1529
1530 u8 bit_rate = 0;
1531 u8 data_bits = 0;
1532 u8 stop_bits = 0;
1533 u8 parity = 0;
1534 u8 flow_ctrl = 0;
1535 u8 xon_char = 0;
1536 u8 xoff_char = 0;
1537 u16 rpn_mask = RFCOMM_RPN_PM_ALL;
1538
1539 if (len == 1) {
1540 rpn = skb_pull_data(skb, 1);
1541 if (!rpn)
1542 return -EILSEQ;
1543
1544 dlci = __get_dlci(rpn->dlci);
1545
1546 if (!cr)
1547 return 0;
1548
1549 bit_rate = RFCOMM_RPN_BR_9600;
1550 data_bits = RFCOMM_RPN_DATA_8;
1551 stop_bits = RFCOMM_RPN_STOP_1;
1552 parity = RFCOMM_RPN_PARITY_NONE;
1553 flow_ctrl = RFCOMM_RPN_FLOW_NONE;
1554 xon_char = RFCOMM_RPN_XON_CHAR;
1555 xoff_char = RFCOMM_RPN_XOFF_CHAR;
1556 goto rpn_out;
1557 }
1558
1559 rpn = skb_pull_data(skb, sizeof(*rpn));
1560 if (!rpn)
1561 return -EILSEQ;
1562
1563 dlci = __get_dlci(rpn->dlci);
1564
1565 BT_DBG("dlci %d cr %d len 0x%x bitr 0x%x line 0x%x flow 0x%x xonc 0x%x xoffc 0x%x pm 0x%x",
1566 dlci, cr, len, rpn->bit_rate, rpn->line_settings, rpn->flow_ctrl,
1567 rpn->xon_char, rpn->xoff_char, rpn->param_mask);
1568
1569 if (!cr)
1570 return 0;
1571
1572 /* Check for sane values, ignore/accept bit_rate, 8 bits, 1 stop bit,
1573 * no parity, no flow control lines, normal XON/XOFF chars */
1574
1575 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_BITRATE)) {
1576 bit_rate = rpn->bit_rate;
1577 if (bit_rate > RFCOMM_RPN_BR_230400) {
1578 BT_DBG("RPN bit rate mismatch 0x%x", bit_rate);
1579 bit_rate = RFCOMM_RPN_BR_9600;
1580 rpn_mask ^= RFCOMM_RPN_PM_BITRATE;
1581 }
1582 }
1583
1584 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_DATA)) {
1585 data_bits = __get_rpn_data_bits(rpn->line_settings);
1586 if (data_bits != RFCOMM_RPN_DATA_8) {
1587 BT_DBG("RPN data bits mismatch 0x%x", data_bits);
1588 data_bits = RFCOMM_RPN_DATA_8;
1589 rpn_mask ^= RFCOMM_RPN_PM_DATA;
1590 }
1591 }
1592
1593 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_STOP)) {
1594 stop_bits = __get_rpn_stop_bits(rpn->line_settings);
1595 if (stop_bits != RFCOMM_RPN_STOP_1) {
1596 BT_DBG("RPN stop bits mismatch 0x%x", stop_bits);
1597 stop_bits = RFCOMM_RPN_STOP_1;
1598 rpn_mask ^= RFCOMM_RPN_PM_STOP;
1599 }
1600 }
1601
1602 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_PARITY)) {
1603 parity = __get_rpn_parity(rpn->line_settings);
1604 if (parity != RFCOMM_RPN_PARITY_NONE) {
1605 BT_DBG("RPN parity mismatch 0x%x", parity);
1606 parity = RFCOMM_RPN_PARITY_NONE;
1607 rpn_mask ^= RFCOMM_RPN_PM_PARITY;
1608 }
1609 }
1610
1611 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_FLOW)) {
1612 flow_ctrl = rpn->flow_ctrl;
1613 if (flow_ctrl != RFCOMM_RPN_FLOW_NONE) {
1614 BT_DBG("RPN flow ctrl mismatch 0x%x", flow_ctrl);
1615 flow_ctrl = RFCOMM_RPN_FLOW_NONE;
1616 rpn_mask ^= RFCOMM_RPN_PM_FLOW;
1617 }
1618 }
1619
1620 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_XON)) {
1621 xon_char = rpn->xon_char;
1622 if (xon_char != RFCOMM_RPN_XON_CHAR) {
1623 BT_DBG("RPN XON char mismatch 0x%x", xon_char);
1624 xon_char = RFCOMM_RPN_XON_CHAR;
1625 rpn_mask ^= RFCOMM_RPN_PM_XON;
1626 }
1627 }
1628
1629 if (rpn->param_mask & cpu_to_le16(RFCOMM_RPN_PM_XOFF)) {
1630 xoff_char = rpn->xoff_char;
1631 if (xoff_char != RFCOMM_RPN_XOFF_CHAR) {
1632 BT_DBG("RPN XOFF char mismatch 0x%x", xoff_char);
1633 xoff_char = RFCOMM_RPN_XOFF_CHAR;
1634 rpn_mask ^= RFCOMM_RPN_PM_XOFF;
1635 }
1636 }
1637
1638 rpn_out:
1639 rfcomm_send_rpn(s, 0, dlci, bit_rate, data_bits, stop_bits,
1640 parity, flow_ctrl, xon_char, xoff_char, rpn_mask);
1641
1642 return 0;
1643 }
1644
rfcomm_recv_rls(struct rfcomm_session * s,int cr,struct sk_buff * skb)1645 static int rfcomm_recv_rls(struct rfcomm_session *s, int cr, struct sk_buff *skb)
1646 {
1647 struct rfcomm_rls *rls;
1648 u8 dlci;
1649
1650 rls = skb_pull_data(skb, sizeof(*rls));
1651 if (!rls)
1652 return -EILSEQ;
1653
1654 dlci = __get_dlci(rls->dlci);
1655 BT_DBG("dlci %d cr %d status 0x%x", dlci, cr, rls->status);
1656
1657 if (!cr)
1658 return 0;
1659
1660 /* We should probably do something with this information here. But
1661 * for now it's sufficient just to reply -- Bluetooth 1.1 says it's
1662 * mandatory to recognise and respond to RLS */
1663
1664 rfcomm_send_rls(s, 0, dlci, rls->status);
1665
1666 return 0;
1667 }
1668
rfcomm_recv_msc(struct rfcomm_session * s,int cr,struct sk_buff * skb)1669 static int rfcomm_recv_msc(struct rfcomm_session *s, int cr, struct sk_buff *skb)
1670 {
1671 struct rfcomm_msc *msc;
1672 struct rfcomm_dlc *d;
1673 u8 dlci;
1674
1675 msc = skb_pull_data(skb, sizeof(*msc));
1676 if (!msc)
1677 return -EILSEQ;
1678
1679 dlci = __get_dlci(msc->dlci);
1680 BT_DBG("dlci %d cr %d v24 0x%x", dlci, cr, msc->v24_sig);
1681
1682 d = rfcomm_dlc_get(s, dlci);
1683 if (!d)
1684 return 0;
1685
1686 if (cr) {
1687 if (msc->v24_sig & RFCOMM_V24_FC && !d->cfc)
1688 set_bit(RFCOMM_TX_THROTTLED, &d->flags);
1689 else
1690 clear_bit(RFCOMM_TX_THROTTLED, &d->flags);
1691
1692 rfcomm_dlc_lock(d);
1693
1694 d->remote_v24_sig = msc->v24_sig;
1695
1696 if (d->modem_status)
1697 d->modem_status(d, msc->v24_sig);
1698
1699 rfcomm_dlc_unlock(d);
1700
1701 rfcomm_send_msc(s, 0, dlci, msc->v24_sig);
1702
1703 d->mscex |= RFCOMM_MSCEX_RX;
1704 } else
1705 d->mscex |= RFCOMM_MSCEX_TX;
1706
1707 return 0;
1708 }
1709
rfcomm_recv_mcc(struct rfcomm_session * s,struct sk_buff * skb)1710 static int rfcomm_recv_mcc(struct rfcomm_session *s, struct sk_buff *skb)
1711 {
1712 struct rfcomm_mcc *mcc;
1713 u8 type, cr, len;
1714
1715 mcc = skb_pull_data(skb, sizeof(*mcc));
1716 if (!mcc)
1717 return -EILSEQ;
1718
1719 cr = __test_cr(mcc->type);
1720 type = __get_mcc_type(mcc->type);
1721 len = __get_mcc_len(mcc->len);
1722
1723 BT_DBG("%p type 0x%x cr %d", s, type, cr);
1724
1725 switch (type) {
1726 case RFCOMM_PN:
1727 rfcomm_recv_pn(s, cr, skb);
1728 break;
1729
1730 case RFCOMM_RPN:
1731 rfcomm_recv_rpn(s, cr, len, skb);
1732 break;
1733
1734 case RFCOMM_RLS:
1735 rfcomm_recv_rls(s, cr, skb);
1736 break;
1737
1738 case RFCOMM_MSC:
1739 rfcomm_recv_msc(s, cr, skb);
1740 break;
1741
1742 case RFCOMM_FCOFF:
1743 if (cr) {
1744 set_bit(RFCOMM_TX_THROTTLED, &s->flags);
1745 rfcomm_send_fcoff(s, 0);
1746 }
1747 break;
1748
1749 case RFCOMM_FCON:
1750 if (cr) {
1751 clear_bit(RFCOMM_TX_THROTTLED, &s->flags);
1752 rfcomm_send_fcon(s, 0);
1753 }
1754 break;
1755
1756 case RFCOMM_TEST:
1757 if (cr)
1758 rfcomm_send_test(s, 0, skb->data, skb->len);
1759 break;
1760
1761 case RFCOMM_NSC:
1762 break;
1763
1764 default:
1765 BT_ERR("Unknown control type 0x%02x", type);
1766 rfcomm_send_nsc(s, cr, type);
1767 break;
1768 }
1769 return 0;
1770 }
1771
rfcomm_recv_data(struct rfcomm_session * s,u8 dlci,int pf,struct sk_buff * skb)1772 static int rfcomm_recv_data(struct rfcomm_session *s, u8 dlci, int pf, struct sk_buff *skb)
1773 {
1774 struct rfcomm_dlc *d;
1775
1776 BT_DBG("session %p state %ld dlci %d pf %d", s, s->state, dlci, pf);
1777
1778 d = rfcomm_dlc_get(s, dlci);
1779 if (!d) {
1780 rfcomm_send_dm(s, dlci);
1781 goto drop;
1782 }
1783
1784 if (pf && d->cfc) {
1785 u8 *credits = skb_pull_data(skb, 1);
1786
1787 if (!credits)
1788 goto drop;
1789
1790 d->tx_credits += *credits;
1791 if (d->tx_credits)
1792 clear_bit(RFCOMM_TX_THROTTLED, &d->flags);
1793 }
1794
1795 if (skb->len && d->state == BT_CONNECTED) {
1796 rfcomm_dlc_lock(d);
1797 d->rx_credits--;
1798 d->data_ready(d, skb);
1799 rfcomm_dlc_unlock(d);
1800 return 0;
1801 }
1802
1803 drop:
1804 kfree_skb(skb);
1805 return 0;
1806 }
1807
rfcomm_recv_frame(struct rfcomm_session * s,struct sk_buff * skb)1808 static struct rfcomm_session *rfcomm_recv_frame(struct rfcomm_session *s,
1809 struct sk_buff *skb)
1810 {
1811 struct rfcomm_hdr *hdr = (void *) skb->data;
1812 u8 type, dlci, fcs;
1813
1814 if (!s) {
1815 /* no session, so free socket data */
1816 kfree_skb(skb);
1817 return s;
1818 }
1819
1820 if (skb->len < sizeof(*hdr) + 1) {
1821 kfree_skb(skb);
1822 return s;
1823 }
1824
1825 dlci = __get_dlci(hdr->addr);
1826 type = __get_type(hdr->ctrl);
1827
1828 /* Trim FCS */
1829 skb->len--; skb->tail--;
1830 fcs = *(u8 *)skb_tail_pointer(skb);
1831
1832 if (__check_fcs(skb->data, type, fcs)) {
1833 BT_ERR("bad checksum in packet");
1834 kfree_skb(skb);
1835 return s;
1836 }
1837
1838 if (__test_ea(hdr->len))
1839 skb_pull(skb, 3);
1840 else
1841 skb_pull(skb, 4);
1842
1843 switch (type) {
1844 case RFCOMM_SABM:
1845 if (__test_pf(hdr->ctrl))
1846 rfcomm_recv_sabm(s, dlci);
1847 break;
1848
1849 case RFCOMM_DISC:
1850 if (__test_pf(hdr->ctrl))
1851 s = rfcomm_recv_disc(s, dlci);
1852 break;
1853
1854 case RFCOMM_UA:
1855 if (__test_pf(hdr->ctrl))
1856 s = rfcomm_recv_ua(s, dlci);
1857 break;
1858
1859 case RFCOMM_DM:
1860 s = rfcomm_recv_dm(s, dlci);
1861 break;
1862
1863 case RFCOMM_UIH:
1864 if (dlci) {
1865 rfcomm_recv_data(s, dlci, __test_pf(hdr->ctrl), skb);
1866 return s;
1867 }
1868 rfcomm_recv_mcc(s, skb);
1869 break;
1870
1871 default:
1872 BT_ERR("Unknown packet type 0x%02x", type);
1873 break;
1874 }
1875 kfree_skb(skb);
1876 return s;
1877 }
1878
1879 /* ---- Connection and data processing ---- */
1880
rfcomm_process_connect(struct rfcomm_session * s)1881 static void rfcomm_process_connect(struct rfcomm_session *s)
1882 {
1883 struct rfcomm_dlc *d, *n;
1884
1885 BT_DBG("session %p state %ld", s, s->state);
1886
1887 list_for_each_entry_safe(d, n, &s->dlcs, list) {
1888 if (d->state == BT_CONFIG) {
1889 d->mtu = s->mtu;
1890 if (rfcomm_check_security(d)) {
1891 rfcomm_send_pn(s, 1, d);
1892 } else {
1893 set_bit(RFCOMM_AUTH_PENDING, &d->flags);
1894 rfcomm_dlc_set_timer(d, RFCOMM_AUTH_TIMEOUT);
1895 }
1896 }
1897 }
1898 }
1899
1900 /* Send data queued for the DLC.
1901 * Return number of frames left in the queue.
1902 */
rfcomm_process_tx(struct rfcomm_dlc * d)1903 static int rfcomm_process_tx(struct rfcomm_dlc *d)
1904 {
1905 struct sk_buff *skb;
1906 int err;
1907
1908 BT_DBG("dlc %p state %ld cfc %d rx_credits %d tx_credits %d",
1909 d, d->state, d->cfc, d->rx_credits, d->tx_credits);
1910
1911 /* Send pending MSC */
1912 if (test_and_clear_bit(RFCOMM_MSC_PENDING, &d->flags))
1913 rfcomm_send_msc(d->session, 1, d->dlci, d->v24_sig);
1914
1915 if (d->cfc) {
1916 /* CFC enabled.
1917 * Give them some credits */
1918 if (!test_bit(RFCOMM_RX_THROTTLED, &d->flags) &&
1919 d->rx_credits <= (d->cfc >> 2)) {
1920 rfcomm_send_credits(d->session, d->addr, d->cfc - d->rx_credits);
1921 d->rx_credits = d->cfc;
1922 }
1923 } else {
1924 /* CFC disabled.
1925 * Give ourselves some credits */
1926 d->tx_credits = 5;
1927 }
1928
1929 if (test_bit(RFCOMM_TX_THROTTLED, &d->flags))
1930 return skb_queue_len(&d->tx_queue);
1931
1932 while (d->tx_credits && (skb = skb_dequeue(&d->tx_queue))) {
1933 err = rfcomm_send_frame(d->session, skb->data, skb->len);
1934 if (err < 0) {
1935 skb_queue_head(&d->tx_queue, skb);
1936 break;
1937 }
1938 kfree_skb(skb);
1939 d->tx_credits--;
1940 }
1941
1942 if (d->cfc && !d->tx_credits) {
1943 /* We're out of TX credits.
1944 * Set TX_THROTTLED flag to avoid unnesary wakeups by dlc_send. */
1945 set_bit(RFCOMM_TX_THROTTLED, &d->flags);
1946 }
1947
1948 return skb_queue_len(&d->tx_queue);
1949 }
1950
rfcomm_process_dlcs(struct rfcomm_session * s)1951 static void rfcomm_process_dlcs(struct rfcomm_session *s)
1952 {
1953 struct rfcomm_dlc *d, *n;
1954
1955 BT_DBG("session %p state %ld", s, s->state);
1956
1957 list_for_each_entry_safe(d, n, &s->dlcs, list) {
1958 if (test_bit(RFCOMM_TIMED_OUT, &d->flags)) {
1959 __rfcomm_dlc_close(d, ETIMEDOUT);
1960 continue;
1961 }
1962
1963 if (test_bit(RFCOMM_ENC_DROP, &d->flags)) {
1964 __rfcomm_dlc_close(d, ECONNREFUSED);
1965 continue;
1966 }
1967
1968 if (test_and_clear_bit(RFCOMM_AUTH_ACCEPT, &d->flags)) {
1969 rfcomm_dlc_clear_timer(d);
1970 if (d->out) {
1971 rfcomm_send_pn(s, 1, d);
1972 rfcomm_dlc_set_timer(d, RFCOMM_CONN_TIMEOUT);
1973 } else {
1974 if (d->defer_setup) {
1975 set_bit(RFCOMM_DEFER_SETUP, &d->flags);
1976 rfcomm_dlc_set_timer(d, RFCOMM_AUTH_TIMEOUT);
1977
1978 rfcomm_dlc_lock(d);
1979 d->state = BT_CONNECT2;
1980 d->state_change(d, 0);
1981 rfcomm_dlc_unlock(d);
1982 } else
1983 __rfcomm_dlc_accept(d);
1984 }
1985 continue;
1986 } else if (test_and_clear_bit(RFCOMM_AUTH_REJECT, &d->flags)) {
1987 rfcomm_dlc_clear_timer(d);
1988 if (!d->out)
1989 rfcomm_send_dm(s, d->dlci);
1990 else
1991 d->state = BT_CLOSED;
1992 __rfcomm_dlc_close(d, ECONNREFUSED);
1993 continue;
1994 }
1995
1996 if (test_bit(RFCOMM_SEC_PENDING, &d->flags))
1997 continue;
1998
1999 if (test_bit(RFCOMM_TX_THROTTLED, &s->flags))
2000 continue;
2001
2002 if ((d->state == BT_CONNECTED || d->state == BT_DISCONN) &&
2003 d->mscex == RFCOMM_MSCEX_OK)
2004 rfcomm_process_tx(d);
2005 }
2006 }
2007
rfcomm_process_rx(struct rfcomm_session * s)2008 static struct rfcomm_session *rfcomm_process_rx(struct rfcomm_session *s)
2009 {
2010 struct socket *sock = s->sock;
2011 struct sock *sk = sock->sk;
2012 struct sk_buff *skb;
2013
2014 BT_DBG("session %p state %ld qlen %d", s, s->state, skb_queue_len(&sk->sk_receive_queue));
2015
2016 /* Get data directly from socket receive queue without copying it. */
2017 while ((skb = skb_dequeue(&sk->sk_receive_queue))) {
2018 skb_orphan(skb);
2019 if (!skb_linearize(skb) && sk->sk_state != BT_CLOSED) {
2020 s = rfcomm_recv_frame(s, skb);
2021 if (!s)
2022 break;
2023 } else {
2024 kfree_skb(skb);
2025 }
2026 }
2027
2028 if (s && (sk->sk_state == BT_CLOSED))
2029 s = rfcomm_session_close(s, sk->sk_err);
2030
2031 return s;
2032 }
2033
rfcomm_accept_connection(struct rfcomm_session * s)2034 static void rfcomm_accept_connection(struct rfcomm_session *s)
2035 {
2036 struct socket *sock = s->sock, *nsock;
2037 int err;
2038
2039 /* Fast check for a new connection.
2040 * Avoids unnecessary socket allocations.
2041 */
2042 if (list_empty(&bt_sk(sock->sk)->accept_q))
2043 return;
2044
2045 BT_DBG("session %p", s);
2046
2047 err = kernel_accept(sock, &nsock, O_NONBLOCK);
2048 if (err < 0)
2049 return;
2050
2051 /* Set our callbacks */
2052 nsock->sk->sk_data_ready = rfcomm_l2data_ready;
2053 nsock->sk->sk_state_change = rfcomm_l2state_change;
2054
2055 s = rfcomm_session_add(nsock, BT_OPEN);
2056 if (s) {
2057 /* We should adjust MTU on incoming sessions.
2058 * L2CAP MTU minus UIH header and FCS. */
2059 s->mtu = min(l2cap_pi(nsock->sk)->chan->omtu,
2060 l2cap_pi(nsock->sk)->chan->imtu) - 5;
2061
2062 rfcomm_schedule();
2063 } else
2064 sock_release(nsock);
2065 }
2066
rfcomm_check_connection(struct rfcomm_session * s)2067 static struct rfcomm_session *rfcomm_check_connection(struct rfcomm_session *s)
2068 {
2069 struct sock *sk = s->sock->sk;
2070
2071 BT_DBG("%p state %ld", s, s->state);
2072
2073 switch (sk->sk_state) {
2074 case BT_CONNECTED:
2075 s->state = BT_CONNECT;
2076
2077 /* We can adjust MTU on outgoing sessions.
2078 * L2CAP MTU minus UIH header and FCS. */
2079 s->mtu = min(l2cap_pi(sk)->chan->omtu, l2cap_pi(sk)->chan->imtu) - 5;
2080
2081 rfcomm_send_sabm(s, 0);
2082 break;
2083
2084 case BT_CLOSED:
2085 s = rfcomm_session_close(s, sk->sk_err);
2086 break;
2087 }
2088 return s;
2089 }
2090
rfcomm_process_sessions(void)2091 static void rfcomm_process_sessions(void)
2092 {
2093 struct rfcomm_session *s, *n;
2094
2095 rfcomm_lock();
2096
2097 list_for_each_entry_safe(s, n, &session_list, list) {
2098 if (test_and_clear_bit(RFCOMM_TIMED_OUT, &s->flags)) {
2099 s->state = BT_DISCONN;
2100 rfcomm_send_disc(s, 0);
2101 continue;
2102 }
2103
2104 switch (s->state) {
2105 case BT_LISTEN:
2106 rfcomm_accept_connection(s);
2107 continue;
2108
2109 case BT_BOUND:
2110 s = rfcomm_check_connection(s);
2111 break;
2112
2113 default:
2114 s = rfcomm_process_rx(s);
2115 break;
2116 }
2117
2118 if (s)
2119 rfcomm_process_dlcs(s);
2120 }
2121
2122 rfcomm_unlock();
2123 }
2124
rfcomm_add_listener(bdaddr_t * ba)2125 static int rfcomm_add_listener(bdaddr_t *ba)
2126 {
2127 struct sockaddr_l2 addr;
2128 struct socket *sock;
2129 struct sock *sk;
2130 struct rfcomm_session *s;
2131 int err = 0;
2132
2133 /* Create socket */
2134 err = rfcomm_l2sock_create(&sock);
2135 if (err < 0) {
2136 BT_ERR("Create socket failed %d", err);
2137 return err;
2138 }
2139
2140 /* Bind socket */
2141 bacpy(&addr.l2_bdaddr, ba);
2142 addr.l2_family = AF_BLUETOOTH;
2143 addr.l2_psm = cpu_to_le16(L2CAP_PSM_RFCOMM);
2144 addr.l2_cid = 0;
2145 addr.l2_bdaddr_type = BDADDR_BREDR;
2146 err = kernel_bind(sock, (struct sockaddr_unsized *)&addr, sizeof(addr));
2147 if (err < 0) {
2148 BT_ERR("Bind failed %d", err);
2149 goto failed;
2150 }
2151
2152 /* Set L2CAP options */
2153 sk = sock->sk;
2154 lock_sock(sk);
2155 /* Set MTU to 0 so L2CAP can auto select the MTU */
2156 l2cap_pi(sk)->chan->imtu = 0;
2157 release_sock(sk);
2158
2159 /* Start listening on the socket */
2160 err = kernel_listen(sock, 10);
2161 if (err) {
2162 BT_ERR("Listen failed %d", err);
2163 goto failed;
2164 }
2165
2166 /* Add listening session */
2167 s = rfcomm_session_add(sock, BT_LISTEN);
2168 if (!s) {
2169 err = -ENOMEM;
2170 goto failed;
2171 }
2172
2173 return 0;
2174 failed:
2175 sock_release(sock);
2176 return err;
2177 }
2178
rfcomm_kill_listener(void)2179 static void rfcomm_kill_listener(void)
2180 {
2181 struct rfcomm_session *s, *n;
2182
2183 BT_DBG("");
2184
2185 rfcomm_lock();
2186 list_for_each_entry_safe(s, n, &session_list, list)
2187 rfcomm_session_del(s);
2188 rfcomm_unlock();
2189 }
2190
rfcomm_run(void * unused)2191 static int rfcomm_run(void *unused)
2192 {
2193 DEFINE_WAIT_FUNC(wait, woken_wake_function);
2194 BT_DBG("");
2195
2196 set_user_nice(current, -10);
2197
2198 rfcomm_add_listener(BDADDR_ANY);
2199
2200 add_wait_queue(&rfcomm_wq, &wait);
2201 while (!kthread_should_stop()) {
2202
2203 /* Process stuff */
2204 rfcomm_process_sessions();
2205
2206 wait_woken(&wait, TASK_INTERRUPTIBLE, MAX_SCHEDULE_TIMEOUT);
2207 }
2208 remove_wait_queue(&rfcomm_wq, &wait);
2209
2210 rfcomm_kill_listener();
2211
2212 return 0;
2213 }
2214
rfcomm_security_cfm(struct hci_conn * conn,u8 status,u8 encrypt)2215 static void rfcomm_security_cfm(struct hci_conn *conn, u8 status, u8 encrypt)
2216 {
2217 struct rfcomm_session *s;
2218 struct rfcomm_dlc *d, *n;
2219
2220 BT_DBG("conn %p status 0x%02x encrypt 0x%02x", conn, status, encrypt);
2221
2222 rfcomm_lock();
2223
2224 s = rfcomm_session_get(&conn->hdev->bdaddr, &conn->dst);
2225 if (!s) {
2226 rfcomm_unlock();
2227 return;
2228 }
2229
2230 list_for_each_entry_safe(d, n, &s->dlcs, list) {
2231 if (test_and_clear_bit(RFCOMM_SEC_PENDING, &d->flags)) {
2232 rfcomm_dlc_clear_timer(d);
2233 if (status || encrypt == 0x00) {
2234 set_bit(RFCOMM_ENC_DROP, &d->flags);
2235 continue;
2236 }
2237 }
2238
2239 if (d->state == BT_CONNECTED && !status && encrypt == 0x00) {
2240 if (d->sec_level == BT_SECURITY_MEDIUM) {
2241 set_bit(RFCOMM_SEC_PENDING, &d->flags);
2242 rfcomm_dlc_set_timer(d, RFCOMM_AUTH_TIMEOUT);
2243 continue;
2244 } else if (d->sec_level == BT_SECURITY_HIGH ||
2245 d->sec_level == BT_SECURITY_FIPS) {
2246 set_bit(RFCOMM_ENC_DROP, &d->flags);
2247 continue;
2248 }
2249 }
2250
2251 if (!test_and_clear_bit(RFCOMM_AUTH_PENDING, &d->flags))
2252 continue;
2253
2254 if (!status && hci_conn_check_secure(conn, d->sec_level))
2255 set_bit(RFCOMM_AUTH_ACCEPT, &d->flags);
2256 else
2257 set_bit(RFCOMM_AUTH_REJECT, &d->flags);
2258 }
2259
2260 rfcomm_unlock();
2261
2262 rfcomm_schedule();
2263 }
2264
2265 static struct hci_cb rfcomm_cb = {
2266 .name = "RFCOMM",
2267 .security_cfm = rfcomm_security_cfm
2268 };
2269
rfcomm_dlc_debugfs_show(struct seq_file * f,void * x)2270 static int rfcomm_dlc_debugfs_show(struct seq_file *f, void *x)
2271 {
2272 struct rfcomm_session *s;
2273
2274 rfcomm_lock();
2275
2276 list_for_each_entry(s, &session_list, list) {
2277 struct l2cap_chan *chan = l2cap_pi(s->sock->sk)->chan;
2278 struct rfcomm_dlc *d;
2279 list_for_each_entry(d, &s->dlcs, list) {
2280 seq_printf(f, "%pMR %pMR %ld %d %d %d %d\n",
2281 &chan->src, &chan->dst,
2282 d->state, d->dlci, d->mtu,
2283 d->rx_credits, d->tx_credits);
2284 }
2285 }
2286
2287 rfcomm_unlock();
2288
2289 return 0;
2290 }
2291
2292 DEFINE_SHOW_ATTRIBUTE(rfcomm_dlc_debugfs);
2293
2294 static struct dentry *rfcomm_dlc_debugfs;
2295
2296 /* ---- Initialization ---- */
rfcomm_init(void)2297 static int __init rfcomm_init(void)
2298 {
2299 int err;
2300
2301 hci_register_cb(&rfcomm_cb);
2302
2303 rfcomm_thread = kthread_run(rfcomm_run, NULL, "krfcommd");
2304 if (IS_ERR(rfcomm_thread)) {
2305 err = PTR_ERR(rfcomm_thread);
2306 goto unregister;
2307 }
2308
2309 err = rfcomm_init_ttys();
2310 if (err < 0)
2311 goto stop;
2312
2313 err = rfcomm_init_sockets();
2314 if (err < 0)
2315 goto cleanup;
2316
2317 BT_INFO("RFCOMM ver %s", VERSION);
2318
2319 if (IS_ERR_OR_NULL(bt_debugfs))
2320 return 0;
2321
2322 rfcomm_dlc_debugfs = debugfs_create_file("rfcomm_dlc", 0444,
2323 bt_debugfs, NULL,
2324 &rfcomm_dlc_debugfs_fops);
2325
2326 return 0;
2327
2328 cleanup:
2329 rfcomm_cleanup_ttys();
2330
2331 stop:
2332 kthread_stop(rfcomm_thread);
2333
2334 unregister:
2335 hci_unregister_cb(&rfcomm_cb);
2336
2337 return err;
2338 }
2339
rfcomm_exit(void)2340 static void __exit rfcomm_exit(void)
2341 {
2342 debugfs_remove(rfcomm_dlc_debugfs);
2343
2344 hci_unregister_cb(&rfcomm_cb);
2345
2346 kthread_stop(rfcomm_thread);
2347
2348 rfcomm_cleanup_ttys();
2349
2350 rfcomm_cleanup_sockets();
2351 }
2352
2353 module_init(rfcomm_init);
2354 module_exit(rfcomm_exit);
2355
2356 module_param(disable_cfc, bool, 0644);
2357 MODULE_PARM_DESC(disable_cfc, "Disable credit based flow control");
2358
2359 module_param(channel_mtu, int, 0644);
2360 MODULE_PARM_DESC(channel_mtu, "Default MTU for the RFCOMM channel");
2361
2362 module_param(l2cap_ertm, bool, 0644);
2363 MODULE_PARM_DESC(l2cap_ertm, "Use L2CAP ERTM mode for connection");
2364
2365 MODULE_AUTHOR("Marcel Holtmann <marcel@holtmann.org>");
2366 MODULE_DESCRIPTION("Bluetooth RFCOMM ver " VERSION);
2367 MODULE_VERSION(VERSION);
2368 MODULE_LICENSE("GPL");
2369 MODULE_ALIAS("bt-proto-3");
2370