hci_link.c revision 1.11 1 /* $NetBSD: hci_link.c,v 1.11 2007/04/21 06:15:23 plunky Exp $ */
2
3 /*-
4 * Copyright (c) 2005 Iain Hibbert.
5 * Copyright (c) 2006 Itronix Inc.
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. The name of Itronix Inc. may not be used to endorse
17 * or promote products derived from this software without specific
18 * prior written permission.
19 *
20 * THIS SOFTWARE IS PROVIDED BY ITRONIX INC. ``AS IS'' AND
21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL ITRONIX INC. BE LIABLE FOR ANY
24 * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
25 * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
26 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
27 * ON ANY THEORY OF LIABILITY, WHETHER IN
28 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 * POSSIBILITY OF SUCH DAMAGE.
31 */
32
33 #include <sys/cdefs.h>
34 __KERNEL_RCSID(0, "$NetBSD: hci_link.c,v 1.11 2007/04/21 06:15:23 plunky Exp $");
35
36 #include <sys/param.h>
37 #include <sys/kernel.h>
38 #include <sys/malloc.h>
39 #include <sys/mbuf.h>
40 #include <sys/proc.h>
41 #include <sys/queue.h>
42 #include <sys/systm.h>
43
44 #include <netbt/bluetooth.h>
45 #include <netbt/hci.h>
46 #include <netbt/l2cap.h>
47 #include <netbt/sco.h>
48
49 /*******************************************************************************
50 *
51 * HCI ACL Connections
52 */
53
54 /*
55 * Automatically expire unused ACL connections after this number of
56 * seconds (if zero, do not expire unused connections) [sysctl]
57 */
58 int hci_acl_expiry = 10; /* seconds */
59
60 /*
61 * hci_acl_open(unit, bdaddr)
62 *
63 * open ACL connection to remote bdaddr. Only one ACL connection is permitted
64 * between any two Bluetooth devices, so we look for an existing one before
65 * trying to start a new one.
66 */
67 struct hci_link *
68 hci_acl_open(struct hci_unit *unit, bdaddr_t *bdaddr)
69 {
70 struct hci_link *link;
71 struct hci_memo *memo;
72 hci_create_con_cp cp;
73 int err;
74
75 KASSERT(unit != NULL);
76 KASSERT(bdaddr != NULL);
77
78 link = hci_link_lookup_bdaddr(unit, bdaddr, HCI_LINK_ACL);
79 if (link == NULL) {
80 link = hci_link_alloc(unit);
81 if (link == NULL)
82 return NULL;
83
84 link->hl_type = HCI_LINK_ACL;
85 bdaddr_copy(&link->hl_bdaddr, bdaddr);
86 }
87
88 switch(link->hl_state) {
89 case HCI_LINK_CLOSED:
90 /*
91 * open connection to remote device
92 */
93 memset(&cp, 0, sizeof(cp));
94 bdaddr_copy(&cp.bdaddr, bdaddr);
95 cp.pkt_type = htole16(unit->hci_packet_type);
96
97 memo = hci_memo_find(unit, bdaddr);
98 if (memo != NULL) {
99 cp.page_scan_rep_mode = memo->response.page_scan_rep_mode;
100 cp.page_scan_mode = memo->response.page_scan_mode;
101 cp.clock_offset = htole16(memo->response.clock_offset);
102 }
103
104 if (unit->hci_link_policy & HCI_LINK_POLICY_ENABLE_ROLE_SWITCH)
105 cp.accept_role_switch = 1;
106
107 err = hci_send_cmd(unit, HCI_CMD_CREATE_CON, &cp, sizeof(cp));
108 if (err) {
109 hci_link_free(link, err);
110 return NULL;
111 }
112
113 link->hl_state = HCI_LINK_WAIT_CONNECT;
114 break;
115
116 case HCI_LINK_WAIT_CONNECT:
117 case HCI_LINK_WAIT_AUTH:
118 case HCI_LINK_WAIT_ENCRYPT:
119 case HCI_LINK_WAIT_SECURE:
120 /*
121 * somebody else already trying to connect, we just
122 * sit on the bench with them..
123 */
124 break;
125
126 case HCI_LINK_OPEN:
127 /*
128 * If already open, halt any expiry timeouts. We dont need
129 * to care about already invoking timeouts since refcnt >0
130 * will keep the link alive.
131 */
132 callout_stop(&link->hl_expire);
133 break;
134
135 default:
136 UNKNOWN(link->hl_state);
137 return NULL;
138 }
139
140 /* open */
141 link->hl_refcnt++;
142
143 return link;
144 }
145
146 /*
147 * Close ACL connection. When there are no more references to this link,
148 * we can either close it down or schedule a delayed closedown.
149 */
150 void
151 hci_acl_close(struct hci_link *link, int err)
152 {
153
154 KASSERT(link != NULL);
155
156 if (--link->hl_refcnt == 0) {
157 if (link->hl_state == HCI_LINK_CLOSED)
158 hci_link_free(link, err);
159 else if (hci_acl_expiry > 0)
160 callout_schedule(&link->hl_expire, hci_acl_expiry * hz);
161 }
162 }
163
164 /*
165 * Incoming ACL connection.
166 *
167 * For now, we accept all connections but it would be better to check
168 * the L2CAP listen list and only accept when there is a listener
169 * available.
170 *
171 * There should not be a link to the same bdaddr already, we check
172 * anyway though its left unhandled for now.
173 */
174 struct hci_link *
175 hci_acl_newconn(struct hci_unit *unit, bdaddr_t *bdaddr)
176 {
177 struct hci_link *link;
178
179 link = hci_link_lookup_bdaddr(unit, bdaddr, HCI_LINK_ACL);
180 if (link != NULL)
181 return NULL;
182
183 link = hci_link_alloc(unit);
184 if (link != NULL) {
185 link->hl_state = HCI_LINK_WAIT_CONNECT;
186 link->hl_type = HCI_LINK_ACL;
187 bdaddr_copy(&link->hl_bdaddr, bdaddr);
188
189 if (hci_acl_expiry > 0)
190 callout_schedule(&link->hl_expire, hci_acl_expiry * hz);
191 }
192
193 return link;
194 }
195
196 void
197 hci_acl_timeout(void *arg)
198 {
199 struct hci_link *link = arg;
200 hci_discon_cp cp;
201 int s, err;
202
203 s = splsoftnet();
204 callout_ack(&link->hl_expire);
205
206 if (link->hl_refcnt > 0)
207 goto out;
208
209 DPRINTF("link #%d expired\n", link->hl_handle);
210
211 switch (link->hl_state) {
212 case HCI_LINK_CLOSED:
213 case HCI_LINK_WAIT_CONNECT:
214 hci_link_free(link, ECONNRESET);
215 break;
216
217 case HCI_LINK_WAIT_AUTH:
218 case HCI_LINK_WAIT_ENCRYPT:
219 case HCI_LINK_WAIT_SECURE:
220 case HCI_LINK_OPEN:
221 cp.con_handle = htole16(link->hl_handle);
222 cp.reason = 0x13; /* "Remote User Terminated Connection" */
223
224 err = hci_send_cmd(link->hl_unit, HCI_CMD_DISCONNECT,
225 &cp, sizeof(cp));
226
227 if (err) {
228 DPRINTF("error %d sending HCI_CMD_DISCONNECT\n",
229 err);
230 }
231
232 break;
233
234 default:
235 UNKNOWN(link->hl_state);
236 break;
237 }
238
239 out:
240 splx(s);
241 }
242
243 /*
244 * Initiate any Link Mode change requests.
245 */
246 int
247 hci_acl_setmode(struct hci_link *link)
248 {
249 int err;
250
251 KASSERT(link != NULL);
252 KASSERT(link->hl_unit != NULL);
253
254 if (link->hl_state != HCI_LINK_OPEN)
255 return EINPROGRESS;
256
257 if ((link->hl_flags & HCI_LINK_AUTH_REQ)
258 && !(link->hl_flags & HCI_LINK_AUTH)) {
259 hci_auth_req_cp cp;
260
261 DPRINTF("requesting auth for handle #%d\n",
262 link->hl_handle);
263
264 link->hl_state = HCI_LINK_WAIT_AUTH;
265 cp.con_handle = htole16(link->hl_handle);
266 err = hci_send_cmd(link->hl_unit, HCI_CMD_AUTH_REQ,
267 &cp, sizeof(cp));
268
269 return (err == 0 ? EINPROGRESS : err);
270 }
271
272 if ((link->hl_flags & HCI_LINK_ENCRYPT_REQ)
273 && !(link->hl_flags & HCI_LINK_ENCRYPT)) {
274 hci_set_con_encryption_cp cp;
275
276 /* XXX we should check features for encryption capability */
277
278 DPRINTF("requesting encryption for handle #%d\n",
279 link->hl_handle);
280
281 link->hl_state = HCI_LINK_WAIT_ENCRYPT;
282 cp.con_handle = htole16(link->hl_handle);
283 cp.encryption_enable = 0x01;
284
285 err = hci_send_cmd(link->hl_unit, HCI_CMD_SET_CON_ENCRYPTION,
286 &cp, sizeof(cp));
287
288 return (err == 0 ? EINPROGRESS : err);
289 }
290
291 if ((link->hl_flags & HCI_LINK_SECURE_REQ)) {
292 hci_change_con_link_key_cp cp;
293
294 /* always change link key for SECURE requests */
295 link->hl_flags &= ~HCI_LINK_SECURE;
296
297 DPRINTF("changing link key for handle #%d\n",
298 link->hl_handle);
299
300 link->hl_state = HCI_LINK_WAIT_SECURE;
301 cp.con_handle = htole16(link->hl_handle);
302
303 err = hci_send_cmd(link->hl_unit, HCI_CMD_CHANGE_CON_LINK_KEY,
304 &cp, sizeof(cp));
305
306 return (err == 0 ? EINPROGRESS : err);
307 }
308
309 return 0;
310 }
311
312 /*
313 * Link Mode changed.
314 *
315 * This is called from event handlers when the mode change
316 * is complete. We notify upstream and restart the link.
317 */
318 void
319 hci_acl_linkmode(struct hci_link *link)
320 {
321 struct l2cap_channel *chan, *next;
322 int err, mode = 0;
323
324 DPRINTF("handle #%d, auth %s, encrypt %s, secure %s\n",
325 link->hl_handle,
326 (link->hl_flags & HCI_LINK_AUTH ? "on" : "off"),
327 (link->hl_flags & HCI_LINK_ENCRYPT ? "on" : "off"),
328 (link->hl_flags & HCI_LINK_SECURE ? "on" : "off"));
329
330 if (link->hl_flags & HCI_LINK_AUTH)
331 mode |= L2CAP_LM_AUTH;
332
333 if (link->hl_flags & HCI_LINK_ENCRYPT)
334 mode |= L2CAP_LM_ENCRYPT;
335
336 if (link->hl_flags & HCI_LINK_SECURE)
337 mode |= L2CAP_LM_SECURE;
338
339 /*
340 * The link state will only be OPEN here if the mode change
341 * was successful. So, we can proceed with L2CAP connections,
342 * or notify already establshed channels, to allow any that
343 * are dissatisfied to disconnect before we restart.
344 */
345 next = LIST_FIRST(&l2cap_active_list);
346 while ((chan = next) != NULL) {
347 next = LIST_NEXT(chan, lc_ncid);
348
349 if (chan->lc_link != link)
350 continue;
351
352 switch(chan->lc_state) {
353 case L2CAP_WAIT_SEND_CONNECT_REQ: /* we are connecting */
354 if ((mode & chan->lc_mode) != chan->lc_mode) {
355 l2cap_close(chan, ECONNABORTED);
356 break;
357 }
358
359 chan->lc_state = L2CAP_WAIT_RECV_CONNECT_RSP;
360 err = l2cap_send_connect_req(chan);
361 if (err) {
362 l2cap_close(chan, err);
363 break;
364 }
365 break;
366
367 case L2CAP_WAIT_SEND_CONNECT_RSP: /* they are connecting */
368 if ((mode & chan->lc_mode) != chan->lc_mode) {
369 l2cap_send_connect_rsp(link, chan->lc_ident,
370 0, chan->lc_rcid,
371 L2CAP_SECURITY_BLOCK);
372
373 l2cap_close(chan, ECONNABORTED);
374 break;
375 }
376
377 l2cap_send_connect_rsp(link, chan->lc_ident,
378 chan->lc_lcid, chan->lc_rcid,
379 L2CAP_SUCCESS);
380
381 chan->lc_state = L2CAP_WAIT_CONFIG;
382 chan->lc_flags |= (L2CAP_WAIT_CONFIG_RSP | L2CAP_WAIT_CONFIG_REQ);
383 err = l2cap_send_config_req(chan);
384 if (err) {
385 l2cap_close(chan, err);
386 break;
387 }
388 break;
389
390 case L2CAP_WAIT_RECV_CONNECT_RSP:
391 case L2CAP_WAIT_CONFIG:
392 case L2CAP_OPEN: /* already established */
393 (*chan->lc_proto->linkmode)(chan->lc_upper, mode);
394 break;
395
396 default:
397 break;
398 }
399 }
400
401 link->hl_state = HCI_LINK_OPEN;
402 hci_acl_start(link);
403 }
404
405 /*
406 * Receive ACL Data
407 *
408 * we accumulate packet fragments on the hci_link structure
409 * until a full L2CAP frame is ready, then send it on.
410 */
411 void
412 hci_acl_recv(struct mbuf *m, struct hci_unit *unit)
413 {
414 struct hci_link *link;
415 hci_acldata_hdr_t hdr;
416 uint16_t handle, want;
417 int pb, got;
418
419 KASSERT(m != NULL);
420 KASSERT(unit != NULL);
421
422 KASSERT(m->m_pkthdr.len >= sizeof(hdr));
423 m_copydata(m, 0, sizeof(hdr), &hdr);
424 m_adj(m, sizeof(hdr));
425
426 #ifdef DIAGNOSTIC
427 if (hdr.type != HCI_ACL_DATA_PKT) {
428 printf("%s: bad ACL packet type\n", unit->hci_devname);
429 goto bad;
430 }
431
432 if (m->m_pkthdr.len != le16toh(hdr.length)) {
433 printf("%s: bad ACL packet length (%d != %d)\n",
434 unit->hci_devname, m->m_pkthdr.len, le16toh(hdr.length));
435 goto bad;
436 }
437 #endif
438
439 hdr.length = le16toh(hdr.length);
440 hdr.con_handle = le16toh(hdr.con_handle);
441 handle = HCI_CON_HANDLE(hdr.con_handle);
442 pb = HCI_PB_FLAG(hdr.con_handle);
443
444 link = hci_link_lookup_handle(unit, handle);
445 if (link == NULL) {
446 hci_discon_cp cp;
447
448 DPRINTF("%s: dumping packet for unknown handle #%d\n",
449 unit->hci_devname, handle);
450
451 /*
452 * There is no way to find out what this connection handle is
453 * for, just get rid of it. This may happen, if a USB dongle
454 * is plugged into a self powered hub and does not reset when
455 * the system is shut down.
456 */
457 cp.con_handle = htole16(handle);
458 cp.reason = 0x13; /* "Remote User Terminated Connection" */
459 hci_send_cmd(unit, HCI_CMD_DISCONNECT, &cp, sizeof(cp));
460 goto bad;
461 }
462
463 switch (pb) {
464 case HCI_PACKET_START:
465 if (link->hl_rxp != NULL)
466 printf("%s: dropped incomplete ACL packet\n",
467 unit->hci_devname);
468
469 if (m->m_pkthdr.len < sizeof(l2cap_hdr_t)) {
470 printf("%s: short ACL packet\n",
471 unit->hci_devname);
472
473 goto bad;
474 }
475
476 link->hl_rxp = m;
477 got = m->m_pkthdr.len;
478 break;
479
480 case HCI_PACKET_FRAGMENT:
481 if (link->hl_rxp == NULL) {
482 printf("%s: unexpected packet fragment\n",
483 unit->hci_devname);
484
485 goto bad;
486 }
487
488 got = m->m_pkthdr.len + link->hl_rxp->m_pkthdr.len;
489 m_cat(link->hl_rxp, m);
490 m = link->hl_rxp;
491 m->m_pkthdr.len = got;
492 break;
493
494 default:
495 printf("%s: unknown packet type\n",
496 unit->hci_devname);
497
498 goto bad;
499 }
500
501 m_copydata(m, 0, sizeof(want), &want);
502 want = le16toh(want) + sizeof(l2cap_hdr_t) - got;
503
504 if (want > 0)
505 return;
506
507 link->hl_rxp = NULL;
508
509 if (want == 0) {
510 l2cap_recv_frame(m, link);
511 return;
512 }
513
514 bad:
515 m_freem(m);
516 }
517
518 /*
519 * Send ACL data on link
520 *
521 * We must fragment packets into chunks of less than unit->hci_max_acl_size and
522 * prepend a relevant ACL header to each fragment. We keep a PDU structure
523 * attached to the link, so that completed fragments can be marked off and
524 * more data requested from above once the PDU is sent.
525 */
526 int
527 hci_acl_send(struct mbuf *m, struct hci_link *link,
528 struct l2cap_channel *chan)
529 {
530 struct l2cap_pdu *pdu;
531 struct mbuf *n = NULL;
532 int plen, mlen, num = 0;
533
534 KASSERT(link != NULL);
535 KASSERT(m != NULL);
536 KASSERT(m->m_flags & M_PKTHDR);
537 KASSERT(m->m_pkthdr.len > 0);
538
539 if (link->hl_state == HCI_LINK_CLOSED) {
540 m_freem(m);
541 return ENETDOWN;
542 }
543
544 pdu = pool_get(&l2cap_pdu_pool, PR_NOWAIT);
545 if (pdu == NULL)
546 goto nomem;
547
548 pdu->lp_chan = chan;
549 pdu->lp_pending = 0;
550 MBUFQ_INIT(&pdu->lp_data);
551
552 plen = m->m_pkthdr.len;
553 mlen = link->hl_unit->hci_max_acl_size;
554
555 DPRINTFN(5, "%s: handle #%d, plen = %d, max = %d\n",
556 link->hl_unit->hci_devname, link->hl_handle, plen, mlen);
557
558 while (plen > 0) {
559 if (plen > mlen) {
560 n = m_split(m, mlen, M_DONTWAIT);
561 if (n == NULL)
562 goto nomem;
563 } else {
564 mlen = plen;
565 }
566
567 if (num++ == 0)
568 m->m_flags |= M_PROTO1; /* tag first fragment */
569
570 DPRINTFN(10, "chunk of %d (plen = %d) bytes\n", mlen, plen);
571 MBUFQ_ENQUEUE(&pdu->lp_data, m);
572 m = n;
573 plen -= mlen;
574 }
575
576 TAILQ_INSERT_TAIL(&link->hl_txq, pdu, lp_next);
577 link->hl_txqlen += num;
578
579 hci_acl_start(link);
580
581 return 0;
582
583 nomem:
584 if (m) m_freem(m);
585 if (pdu) {
586 MBUFQ_DRAIN(&pdu->lp_data);
587 pool_put(&l2cap_pdu_pool, pdu);
588 }
589
590 return ENOMEM;
591 }
592
593 /*
594 * Start sending ACL data on link.
595 *
596 * This is called when the queue may need restarting: as new data
597 * is queued, after link mode changes have completed, or when device
598 * buffers have cleared.
599 *
600 * We may use all the available packet slots. The reason that we add
601 * the ACL encapsulation here rather than in hci_acl_send() is that L2CAP
602 * signal packets may be queued before the handle is given to us..
603 */
604 void
605 hci_acl_start(struct hci_link *link)
606 {
607 struct hci_unit *unit;
608 hci_acldata_hdr_t *hdr;
609 struct l2cap_pdu *pdu;
610 struct mbuf *m;
611 uint16_t handle;
612
613 KASSERT(link != NULL);
614
615 unit = link->hl_unit;
616 KASSERT(unit != NULL);
617
618 /* this is mainly to block ourselves (below) */
619 if (link->hl_state != HCI_LINK_OPEN)
620 return;
621
622 if (link->hl_txqlen == 0 || unit->hci_num_acl_pkts == 0)
623 return;
624
625 /* find first PDU with data to send */
626 pdu = TAILQ_FIRST(&link->hl_txq);
627 for (;;) {
628 if (pdu == NULL)
629 return;
630
631 if (MBUFQ_FIRST(&pdu->lp_data) != NULL)
632 break;
633
634 pdu = TAILQ_NEXT(pdu, lp_next);
635 }
636
637 while (unit->hci_num_acl_pkts > 0) {
638 MBUFQ_DEQUEUE(&pdu->lp_data, m);
639 KASSERT(m != NULL);
640
641 if (m->m_flags & M_PROTO1)
642 handle = HCI_MK_CON_HANDLE(link->hl_handle,
643 HCI_PACKET_START, 0);
644 else
645 handle = HCI_MK_CON_HANDLE(link->hl_handle,
646 HCI_PACKET_FRAGMENT, 0);
647
648 M_PREPEND(m, sizeof(*hdr), M_DONTWAIT);
649 if (m == NULL)
650 break;
651
652 hdr = mtod(m, hci_acldata_hdr_t *);
653 hdr->type = HCI_ACL_DATA_PKT;
654 hdr->con_handle = htole16(handle);
655 hdr->length = htole16(m->m_pkthdr.len - sizeof(*hdr));
656
657 link->hl_txqlen--;
658 pdu->lp_pending++;
659
660 hci_output_acl(unit, m);
661
662 if (MBUFQ_FIRST(&pdu->lp_data) == NULL) {
663 if (pdu->lp_chan) {
664 /*
665 * This should enable streaming of PDUs - when
666 * we have placed all the fragments on the acl
667 * output queue, we trigger the L2CAP layer to
668 * send us down one more. Use a false state so
669 * we dont run into ourselves coming back from
670 * the future..
671 */
672 link->hl_state = HCI_LINK_BLOCK;
673 l2cap_start(pdu->lp_chan);
674 link->hl_state = HCI_LINK_OPEN;
675 }
676
677 pdu = TAILQ_NEXT(pdu, lp_next);
678 if (pdu == NULL)
679 break;
680 }
681 }
682
683 /*
684 * We had our turn now, move to the back of the queue to let
685 * other links have a go at the output buffers..
686 */
687 if (TAILQ_NEXT(link, hl_next)) {
688 TAILQ_REMOVE(&unit->hci_links, link, hl_next);
689 TAILQ_INSERT_TAIL(&unit->hci_links, link, hl_next);
690 }
691 }
692
693 /*
694 * Confirm ACL packets cleared from Controller buffers. We scan our PDU
695 * list to clear pending fragments and signal upstream for more data
696 * when a PDU is complete.
697 */
698 void
699 hci_acl_complete(struct hci_link *link, int num)
700 {
701 struct l2cap_pdu *pdu;
702 struct l2cap_channel *chan;
703
704 DPRINTFN(5, "handle #%d (%d)\n", link->hl_handle, num);
705
706 while (num > 0) {
707 pdu = TAILQ_FIRST(&link->hl_txq);
708 if (pdu == NULL) {
709 printf("%s: %d packets completed on handle #%x "
710 "but none pending!\n",
711 link->hl_unit->hci_devname, num,
712 link->hl_handle);
713 return;
714 }
715
716 if (num >= pdu->lp_pending) {
717 num -= pdu->lp_pending;
718 pdu->lp_pending = 0;
719
720 if (MBUFQ_FIRST(&pdu->lp_data) == NULL) {
721 TAILQ_REMOVE(&link->hl_txq, pdu, lp_next);
722 chan = pdu->lp_chan;
723 if (chan != NULL) {
724 chan->lc_pending--;
725 (*chan->lc_proto->complete)
726 (chan->lc_upper, 1);
727
728 if (chan->lc_pending == 0)
729 l2cap_start(chan);
730 }
731
732 pool_put(&l2cap_pdu_pool, pdu);
733 }
734 } else {
735 pdu->lp_pending -= num;
736 num = 0;
737 }
738 }
739 }
740
741 /*******************************************************************************
742 *
743 * HCI SCO Connections
744 */
745
746 /*
747 * Incoming SCO Connection. We check the list for anybody willing
748 * to take it.
749 */
750 struct hci_link *
751 hci_sco_newconn(struct hci_unit *unit, bdaddr_t *bdaddr)
752 {
753 struct sockaddr_bt laddr, raddr;
754 struct sco_pcb *pcb, *new;
755 struct hci_link *sco, *acl;
756
757 memset(&laddr, 0, sizeof(laddr));
758 laddr.bt_len = sizeof(laddr);
759 laddr.bt_family = AF_BLUETOOTH;
760 bdaddr_copy(&laddr.bt_bdaddr, &unit->hci_bdaddr);
761
762 memset(&raddr, 0, sizeof(raddr));
763 raddr.bt_len = sizeof(raddr);
764 raddr.bt_family = AF_BLUETOOTH;
765 bdaddr_copy(&raddr.bt_bdaddr, bdaddr);
766
767 /*
768 * There should already be an ACL link up and running before
769 * the controller sends us SCO connection requests, but you
770 * never know..
771 */
772 acl = hci_link_lookup_bdaddr(unit, bdaddr, HCI_LINK_ACL);
773 if (acl == NULL || acl->hl_state != HCI_LINK_OPEN)
774 return NULL;
775
776 LIST_FOREACH(pcb, &sco_pcb, sp_next) {
777 if ((pcb->sp_flags & SP_LISTENING) == 0)
778 continue;
779
780 new = (*pcb->sp_proto->newconn)(pcb->sp_upper, &laddr, &raddr);
781 if (new == NULL)
782 continue;
783
784 /*
785 * Ok, got new pcb so we can start a new link and fill
786 * in all the details.
787 */
788 bdaddr_copy(&new->sp_laddr, &unit->hci_bdaddr);
789 bdaddr_copy(&new->sp_raddr, bdaddr);
790
791 sco = hci_link_alloc(unit);
792 if (sco == NULL) {
793 sco_detach(&new);
794 return NULL;
795 }
796
797 sco->hl_type = HCI_LINK_SCO;
798 bdaddr_copy(&sco->hl_bdaddr, bdaddr);
799
800 sco->hl_link = hci_acl_open(unit, bdaddr);
801 KASSERT(sco->hl_link == acl);
802
803 sco->hl_sco = new;
804 new->sp_link = sco;
805
806 new->sp_mtu = unit->hci_max_sco_size;
807 return sco;
808 }
809
810 return NULL;
811 }
812
813 /*
814 * receive SCO packet, we only need to strip the header and send
815 * it to the right handler
816 */
817 void
818 hci_sco_recv(struct mbuf *m, struct hci_unit *unit)
819 {
820 struct hci_link *link;
821 hci_scodata_hdr_t hdr;
822 uint16_t handle;
823
824 KASSERT(m != NULL);
825 KASSERT(unit != NULL);
826
827 KASSERT(m->m_pkthdr.len >= sizeof(hdr));
828 m_copydata(m, 0, sizeof(hdr), &hdr);
829 m_adj(m, sizeof(hdr));
830
831 #ifdef DIAGNOSTIC
832 if (hdr.type != HCI_SCO_DATA_PKT) {
833 printf("%s: bad SCO packet type\n", unit->hci_devname);
834 goto bad;
835 }
836
837 if (m->m_pkthdr.len != hdr.length) {
838 printf("%s: bad SCO packet length (%d != %d)\n", unit->hci_devname, m->m_pkthdr.len, hdr.length);
839 goto bad;
840 }
841 #endif
842
843 hdr.con_handle = le16toh(hdr.con_handle);
844 handle = HCI_CON_HANDLE(hdr.con_handle);
845
846 link = hci_link_lookup_handle(unit, handle);
847 if (link == NULL || link->hl_type == HCI_LINK_ACL) {
848 DPRINTF("%s: dumping packet for unknown handle #%d\n",
849 unit->hci_devname, handle);
850
851 goto bad;
852 }
853
854 (*link->hl_sco->sp_proto->input)(link->hl_sco->sp_upper, m);
855 return;
856
857 bad:
858 m_freem(m);
859 }
860
861 void
862 hci_sco_start(struct hci_link *link)
863 {
864 }
865
866 /*
867 * SCO packets have completed at the controller, so we can
868 * signal up to free the buffer space.
869 */
870 void
871 hci_sco_complete(struct hci_link *link, int num)
872 {
873
874 DPRINTFN(5, "handle #%d (num=%d)\n", link->hl_handle, num);
875 link->hl_sco->sp_pending--;
876 (*link->hl_sco->sp_proto->complete)(link->hl_sco->sp_upper, num);
877 }
878
879 /*******************************************************************************
880 *
881 * Generic HCI Connection alloc/free/lookup etc
882 */
883
884 struct hci_link *
885 hci_link_alloc(struct hci_unit *unit)
886 {
887 struct hci_link *link;
888
889 KASSERT(unit != NULL);
890
891 link = malloc(sizeof(struct hci_link), M_BLUETOOTH, M_NOWAIT | M_ZERO);
892 if (link == NULL)
893 return NULL;
894
895 link->hl_unit = unit;
896 link->hl_state = HCI_LINK_CLOSED;
897
898 /* init ACL portion */
899 callout_init(&link->hl_expire);
900 callout_setfunc(&link->hl_expire, hci_acl_timeout, link);
901
902 TAILQ_INIT(&link->hl_txq); /* outgoing packets */
903 TAILQ_INIT(&link->hl_reqs); /* request queue */
904
905 link->hl_mtu = L2CAP_MTU_DEFAULT; /* L2CAP signal mtu */
906 link->hl_flush = L2CAP_FLUSH_TIMO_DEFAULT; /* flush timeout */
907
908 /* init SCO portion */
909 MBUFQ_INIT(&link->hl_data);
910
911 /* attach to unit */
912 TAILQ_INSERT_HEAD(&unit->hci_links, link, hl_next);
913 return link;
914 }
915
916 void
917 hci_link_free(struct hci_link *link, int err)
918 {
919 struct l2cap_req *req;
920 struct l2cap_pdu *pdu;
921 struct l2cap_channel *chan, *next;
922
923 KASSERT(link != NULL);
924
925 DPRINTF("#%d, type = %d, state = %d, refcnt = %d\n",
926 link->hl_handle, link->hl_type,
927 link->hl_state, link->hl_refcnt);
928
929 /* ACL reference count */
930 if (link->hl_refcnt > 0) {
931 next = LIST_FIRST(&l2cap_active_list);
932 while ((chan = next) != NULL) {
933 next = LIST_NEXT(chan, lc_ncid);
934 if (chan->lc_link == link)
935 l2cap_close(chan, err);
936 }
937 }
938 KASSERT(link->hl_refcnt == 0);
939
940 /* ACL L2CAP requests.. */
941 while ((req = TAILQ_FIRST(&link->hl_reqs)) != NULL)
942 l2cap_request_free(req);
943
944 KASSERT(TAILQ_EMPTY(&link->hl_reqs));
945
946 /* ACL outgoing data queue */
947 while ((pdu = TAILQ_FIRST(&link->hl_txq)) != NULL) {
948 TAILQ_REMOVE(&link->hl_txq, pdu, lp_next);
949 MBUFQ_DRAIN(&pdu->lp_data);
950 if (pdu->lp_pending)
951 link->hl_unit->hci_num_acl_pkts += pdu->lp_pending;
952
953 pool_put(&l2cap_pdu_pool, pdu);
954 }
955
956 KASSERT(TAILQ_EMPTY(&link->hl_txq));
957
958 /* ACL incoming data packet */
959 if (link->hl_rxp != NULL) {
960 m_freem(link->hl_rxp);
961 link->hl_rxp = NULL;
962 }
963
964 /* SCO master ACL link */
965 if (link->hl_link != NULL) {
966 hci_acl_close(link->hl_link, err);
967 link->hl_link = NULL;
968 }
969
970 /* SCO pcb */
971 if (link->hl_sco != NULL) {
972 struct sco_pcb *pcb;
973
974 pcb = link->hl_sco;
975 pcb->sp_link = NULL;
976 link->hl_sco = NULL;
977 (*pcb->sp_proto->disconnected)(pcb->sp_upper, err);
978 }
979
980 /* flush any SCO data */
981 MBUFQ_DRAIN(&link->hl_data);
982
983 /*
984 * Halt the callout - if its already running we cannot free the
985 * link structure but the timeout function will call us back in
986 * any case.
987 */
988 link->hl_state = HCI_LINK_CLOSED;
989 callout_stop(&link->hl_expire);
990 if (callout_invoking(&link->hl_expire))
991 return;
992
993 TAILQ_REMOVE(&link->hl_unit->hci_links, link, hl_next);
994 free(link, M_BLUETOOTH);
995 }
996
997 /*
998 * Lookup HCI link by address and type. Note that for SCO links there may
999 * be more than one link per address, so we only return links with no
1000 * handle (ie new links)
1001 */
1002 struct hci_link *
1003 hci_link_lookup_bdaddr(struct hci_unit *unit, bdaddr_t *bdaddr, uint16_t type)
1004 {
1005 struct hci_link *link;
1006
1007 KASSERT(unit != NULL);
1008 KASSERT(bdaddr != NULL);
1009
1010 TAILQ_FOREACH(link, &unit->hci_links, hl_next) {
1011 if (link->hl_type != type)
1012 continue;
1013
1014 if (type == HCI_LINK_SCO && link->hl_handle != 0)
1015 continue;
1016
1017 if (bdaddr_same(&link->hl_bdaddr, bdaddr))
1018 break;
1019 }
1020
1021 return link;
1022 }
1023
1024 struct hci_link *
1025 hci_link_lookup_handle(struct hci_unit *unit, uint16_t handle)
1026 {
1027 struct hci_link *link;
1028
1029 KASSERT(unit != NULL);
1030
1031 TAILQ_FOREACH(link, &unit->hci_links, hl_next) {
1032 if (handle == link->hl_handle)
1033 break;
1034 }
1035
1036 return link;
1037 }
1038