rfcomm_upper.c revision 1.3 1 1.3 plunky /* $NetBSD: rfcomm_upper.c,v 1.3 2007/03/06 19:04:31 plunky Exp $ */
2 1.1 gdamore
3 1.1 gdamore /*-
4 1.1 gdamore * Copyright (c) 2006 Itronix Inc.
5 1.1 gdamore * All rights reserved.
6 1.1 gdamore *
7 1.1 gdamore * Written by Iain Hibbert for Itronix Inc.
8 1.1 gdamore *
9 1.1 gdamore * Redistribution and use in source and binary forms, with or without
10 1.1 gdamore * modification, are permitted provided that the following conditions
11 1.1 gdamore * are met:
12 1.1 gdamore * 1. Redistributions of source code must retain the above copyright
13 1.1 gdamore * notice, this list of conditions and the following disclaimer.
14 1.1 gdamore * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 gdamore * notice, this list of conditions and the following disclaimer in the
16 1.1 gdamore * documentation and/or other materials provided with the distribution.
17 1.1 gdamore * 3. The name of Itronix Inc. may not be used to endorse
18 1.1 gdamore * or promote products derived from this software without specific
19 1.1 gdamore * prior written permission.
20 1.1 gdamore *
21 1.1 gdamore * THIS SOFTWARE IS PROVIDED BY ITRONIX INC. ``AS IS'' AND
22 1.1 gdamore * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
23 1.1 gdamore * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
24 1.1 gdamore * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL ITRONIX INC. BE LIABLE FOR ANY
25 1.1 gdamore * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
26 1.1 gdamore * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
27 1.1 gdamore * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
28 1.1 gdamore * ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.1 gdamore * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.1 gdamore * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 1.1 gdamore * POSSIBILITY OF SUCH DAMAGE.
32 1.1 gdamore */
33 1.1 gdamore
34 1.1 gdamore #include <sys/cdefs.h>
35 1.3 plunky __KERNEL_RCSID(0, "$NetBSD: rfcomm_upper.c,v 1.3 2007/03/06 19:04:31 plunky Exp $");
36 1.1 gdamore
37 1.1 gdamore #include <sys/param.h>
38 1.1 gdamore #include <sys/kernel.h>
39 1.1 gdamore #include <sys/mbuf.h>
40 1.1 gdamore #include <sys/proc.h>
41 1.1 gdamore #include <sys/systm.h>
42 1.1 gdamore
43 1.1 gdamore #include <netbt/bluetooth.h>
44 1.1 gdamore #include <netbt/hci.h>
45 1.1 gdamore #include <netbt/l2cap.h>
46 1.1 gdamore #include <netbt/rfcomm.h>
47 1.1 gdamore
48 1.1 gdamore /****************************************************************************
49 1.1 gdamore *
50 1.1 gdamore * RFCOMM DLC - Upper Protocol API
51 1.1 gdamore *
52 1.1 gdamore * Currently the only 'Port Emulation Entity' is the RFCOMM socket code
53 1.1 gdamore * but it is should be possible to provide a pseudo-device for a direct
54 1.1 gdamore * tty interface.
55 1.1 gdamore */
56 1.1 gdamore
57 1.1 gdamore /*
58 1.1 gdamore * rfcomm_attach(handle, proto, upper)
59 1.1 gdamore *
60 1.1 gdamore * attach a new RFCOMM DLC to handle, populate with reasonable defaults
61 1.1 gdamore */
62 1.1 gdamore int
63 1.1 gdamore rfcomm_attach(struct rfcomm_dlc **handle,
64 1.1 gdamore const struct btproto *proto, void *upper)
65 1.1 gdamore {
66 1.1 gdamore struct rfcomm_dlc *dlc;
67 1.1 gdamore
68 1.1 gdamore KASSERT(handle);
69 1.1 gdamore KASSERT(proto);
70 1.1 gdamore KASSERT(upper);
71 1.1 gdamore
72 1.1 gdamore dlc = malloc(sizeof(struct rfcomm_dlc), M_BLUETOOTH, M_NOWAIT | M_ZERO);
73 1.1 gdamore if (dlc == NULL)
74 1.1 gdamore return ENOMEM;
75 1.1 gdamore
76 1.1 gdamore dlc->rd_state = RFCOMM_DLC_CLOSED;
77 1.1 gdamore dlc->rd_mtu = rfcomm_mtu_default;
78 1.1 gdamore
79 1.1 gdamore dlc->rd_proto = proto;
80 1.1 gdamore dlc->rd_upper = upper;
81 1.1 gdamore
82 1.1 gdamore dlc->rd_laddr.bt_len = sizeof(struct sockaddr_bt);
83 1.1 gdamore dlc->rd_laddr.bt_family = AF_BLUETOOTH;
84 1.1 gdamore dlc->rd_laddr.bt_psm = L2CAP_PSM_RFCOMM;
85 1.1 gdamore
86 1.1 gdamore dlc->rd_raddr.bt_len = sizeof(struct sockaddr_bt);
87 1.1 gdamore dlc->rd_raddr.bt_family = AF_BLUETOOTH;
88 1.1 gdamore dlc->rd_raddr.bt_psm = L2CAP_PSM_RFCOMM;
89 1.1 gdamore
90 1.1 gdamore dlc->rd_lmodem = RFCOMM_MSC_RTC | RFCOMM_MSC_RTR | RFCOMM_MSC_DV;
91 1.1 gdamore
92 1.1 gdamore callout_init(&dlc->rd_timeout);
93 1.1 gdamore callout_setfunc(&dlc->rd_timeout, rfcomm_dlc_timeout, dlc);
94 1.1 gdamore
95 1.1 gdamore *handle = dlc;
96 1.1 gdamore return 0;
97 1.1 gdamore }
98 1.1 gdamore
99 1.1 gdamore /*
100 1.1 gdamore * rfcomm_bind(dlc, sockaddr)
101 1.1 gdamore *
102 1.1 gdamore * bind DLC to local address
103 1.1 gdamore */
104 1.1 gdamore int
105 1.1 gdamore rfcomm_bind(struct rfcomm_dlc *dlc, struct sockaddr_bt *addr)
106 1.1 gdamore {
107 1.1 gdamore
108 1.1 gdamore memcpy(&dlc->rd_laddr, addr, sizeof(struct sockaddr_bt));
109 1.1 gdamore return 0;
110 1.1 gdamore }
111 1.1 gdamore
112 1.1 gdamore /*
113 1.1 gdamore * rfcomm_sockaddr(dlc, sockaddr)
114 1.1 gdamore *
115 1.1 gdamore * return local address
116 1.1 gdamore */
117 1.1 gdamore int
118 1.1 gdamore rfcomm_sockaddr(struct rfcomm_dlc *dlc, struct sockaddr_bt *addr)
119 1.1 gdamore {
120 1.1 gdamore
121 1.1 gdamore memcpy(addr, &dlc->rd_laddr, sizeof(struct sockaddr_bt));
122 1.1 gdamore return 0;
123 1.1 gdamore }
124 1.1 gdamore
125 1.1 gdamore /*
126 1.1 gdamore * rfcomm_connect(dlc, sockaddr)
127 1.1 gdamore *
128 1.1 gdamore * Initiate connection of RFCOMM DLC to remote address.
129 1.1 gdamore */
130 1.1 gdamore int
131 1.1 gdamore rfcomm_connect(struct rfcomm_dlc *dlc, struct sockaddr_bt *dest)
132 1.1 gdamore {
133 1.1 gdamore struct rfcomm_session *rs;
134 1.1 gdamore int err = 0;
135 1.1 gdamore
136 1.1 gdamore if (dlc->rd_state != RFCOMM_DLC_CLOSED)
137 1.1 gdamore return EISCONN;
138 1.1 gdamore
139 1.1 gdamore memcpy(&dlc->rd_raddr, dest, sizeof(struct sockaddr_bt));
140 1.1 gdamore
141 1.1 gdamore if (dlc->rd_raddr.bt_channel < RFCOMM_CHANNEL_MIN
142 1.1 gdamore || dlc->rd_raddr.bt_channel > RFCOMM_CHANNEL_MAX
143 1.1 gdamore || bdaddr_any(&dlc->rd_raddr.bt_bdaddr))
144 1.1 gdamore return EDESTADDRREQ;
145 1.1 gdamore
146 1.1 gdamore if (dlc->rd_raddr.bt_psm == L2CAP_PSM_ANY)
147 1.1 gdamore dlc->rd_raddr.bt_psm = L2CAP_PSM_RFCOMM;
148 1.1 gdamore else if (dlc->rd_raddr.bt_psm != L2CAP_PSM_RFCOMM
149 1.1 gdamore && (dlc->rd_raddr.bt_psm < 0x1001
150 1.1 gdamore || L2CAP_PSM_INVALID(dlc->rd_raddr.bt_psm)))
151 1.1 gdamore return EINVAL;
152 1.1 gdamore
153 1.1 gdamore /*
154 1.1 gdamore * We are allowed only one RFCOMM session between any 2 Bluetooth
155 1.1 gdamore * devices, so see if there is a session already otherwise create
156 1.1 gdamore * one and set it connecting.
157 1.1 gdamore */
158 1.1 gdamore rs = rfcomm_session_lookup(&dlc->rd_laddr, &dlc->rd_raddr);
159 1.1 gdamore if (rs == NULL) {
160 1.1 gdamore rs = rfcomm_session_alloc(&rfcomm_session_active,
161 1.1 gdamore &dlc->rd_laddr);
162 1.1 gdamore if (rs == NULL)
163 1.1 gdamore return ENOMEM;
164 1.1 gdamore
165 1.1 gdamore rs->rs_flags |= RFCOMM_SESSION_INITIATOR;
166 1.1 gdamore rs->rs_state = RFCOMM_SESSION_WAIT_CONNECT;
167 1.1 gdamore
168 1.1 gdamore err = l2cap_connect(rs->rs_l2cap, &dlc->rd_raddr);
169 1.1 gdamore if (err) {
170 1.1 gdamore rfcomm_session_free(rs);
171 1.1 gdamore return err;
172 1.1 gdamore }
173 1.1 gdamore
174 1.1 gdamore /*
175 1.1 gdamore * This session will start up automatically when its
176 1.1 gdamore * L2CAP channel is connected.
177 1.1 gdamore */
178 1.1 gdamore }
179 1.1 gdamore
180 1.1 gdamore /* construct DLC */
181 1.1 gdamore dlc->rd_dlci = RFCOMM_MKDLCI(IS_INITIATOR(rs) ? 0:1, dest->bt_channel);
182 1.1 gdamore if (rfcomm_dlc_lookup(rs, dlc->rd_dlci))
183 1.1 gdamore return EBUSY;
184 1.1 gdamore
185 1.1 gdamore l2cap_sockaddr(rs->rs_l2cap, &dlc->rd_laddr);
186 1.1 gdamore
187 1.1 gdamore /*
188 1.1 gdamore * attach the DLC to the session and start it off
189 1.1 gdamore */
190 1.1 gdamore dlc->rd_session = rs;
191 1.1 gdamore dlc->rd_state = RFCOMM_DLC_WAIT_SESSION;
192 1.1 gdamore LIST_INSERT_HEAD(&rs->rs_dlcs, dlc, rd_next);
193 1.1 gdamore
194 1.1 gdamore if (rs->rs_state == RFCOMM_SESSION_OPEN)
195 1.1 gdamore err = rfcomm_dlc_connect(dlc);
196 1.1 gdamore
197 1.1 gdamore return err;
198 1.1 gdamore }
199 1.1 gdamore
200 1.1 gdamore /*
201 1.1 gdamore * rfcomm_peeraddr(dlc, sockaddr)
202 1.1 gdamore *
203 1.1 gdamore * return remote address
204 1.1 gdamore */
205 1.1 gdamore int
206 1.1 gdamore rfcomm_peeraddr(struct rfcomm_dlc *dlc, struct sockaddr_bt *addr)
207 1.1 gdamore {
208 1.1 gdamore
209 1.1 gdamore memcpy(addr, &dlc->rd_raddr, sizeof(struct sockaddr_bt));
210 1.1 gdamore return 0;
211 1.1 gdamore }
212 1.1 gdamore
213 1.1 gdamore /*
214 1.1 gdamore * rfcomm_disconnect(dlc, linger)
215 1.1 gdamore *
216 1.1 gdamore * disconnect RFCOMM DLC
217 1.1 gdamore */
218 1.1 gdamore int
219 1.1 gdamore rfcomm_disconnect(struct rfcomm_dlc *dlc, int linger)
220 1.1 gdamore {
221 1.1 gdamore struct rfcomm_session *rs = dlc->rd_session;
222 1.1 gdamore int err = 0;
223 1.1 gdamore
224 1.1 gdamore KASSERT(dlc != NULL);
225 1.1 gdamore
226 1.1 gdamore switch (dlc->rd_state) {
227 1.1 gdamore case RFCOMM_DLC_CLOSED:
228 1.1 gdamore case RFCOMM_DLC_LISTEN:
229 1.1 gdamore return EINVAL;
230 1.1 gdamore
231 1.1 gdamore case RFCOMM_DLC_WAIT_SESSION:
232 1.1 gdamore rfcomm_dlc_close(dlc, 0);
233 1.1 gdamore break;
234 1.1 gdamore
235 1.1 gdamore case RFCOMM_DLC_OPEN:
236 1.1 gdamore if (dlc->rd_txbuf != NULL && linger != 0) {
237 1.1 gdamore dlc->rd_flags |= RFCOMM_DLC_SHUTDOWN;
238 1.1 gdamore break;
239 1.1 gdamore }
240 1.1 gdamore
241 1.1 gdamore /* else fall through */
242 1.1 gdamore case RFCOMM_DLC_WAIT_CONNECT:
243 1.1 gdamore dlc->rd_state = RFCOMM_DLC_WAIT_DISCONNECT;
244 1.1 gdamore err = rfcomm_session_send_frame(rs, RFCOMM_FRAME_DISC,
245 1.1 gdamore dlc->rd_dlci);
246 1.1 gdamore callout_schedule(&dlc->rd_timeout, rfcomm_ack_timeout * hz);
247 1.1 gdamore break;
248 1.1 gdamore
249 1.1 gdamore case RFCOMM_DLC_WAIT_DISCONNECT:
250 1.1 gdamore err = EALREADY;
251 1.1 gdamore break;
252 1.1 gdamore
253 1.1 gdamore default:
254 1.1 gdamore UNKNOWN(dlc->rd_state);
255 1.1 gdamore break;
256 1.1 gdamore }
257 1.1 gdamore
258 1.1 gdamore return err;
259 1.1 gdamore }
260 1.1 gdamore
261 1.1 gdamore /*
262 1.1 gdamore * rfcomm_detach(handle)
263 1.1 gdamore *
264 1.1 gdamore * detach RFCOMM DLC from handle
265 1.1 gdamore */
266 1.1 gdamore int
267 1.1 gdamore rfcomm_detach(struct rfcomm_dlc **handle)
268 1.1 gdamore {
269 1.1 gdamore struct rfcomm_dlc *dlc = *handle;
270 1.1 gdamore
271 1.1 gdamore if (dlc->rd_state != RFCOMM_DLC_CLOSED)
272 1.1 gdamore rfcomm_dlc_close(dlc, 0);
273 1.1 gdamore
274 1.1 gdamore if (dlc->rd_txbuf != NULL) {
275 1.1 gdamore m_freem(dlc->rd_txbuf);
276 1.1 gdamore dlc->rd_txbuf = NULL;
277 1.1 gdamore }
278 1.1 gdamore
279 1.1 gdamore dlc->rd_upper = NULL;
280 1.1 gdamore *handle = NULL;
281 1.1 gdamore
282 1.1 gdamore /*
283 1.1 gdamore * If callout is invoking we can't free the DLC so
284 1.1 gdamore * mark it and let the callout release it.
285 1.1 gdamore */
286 1.1 gdamore if (callout_invoking(&dlc->rd_timeout))
287 1.1 gdamore dlc->rd_flags |= RFCOMM_DLC_DETACH;
288 1.1 gdamore else
289 1.1 gdamore free(dlc, M_BLUETOOTH);
290 1.1 gdamore
291 1.1 gdamore return 0;
292 1.1 gdamore }
293 1.1 gdamore
294 1.1 gdamore /*
295 1.1 gdamore * rfcomm_listen(dlc)
296 1.1 gdamore *
297 1.1 gdamore * This DLC is a listener. We look for an existing listening session
298 1.1 gdamore * with a matching address to attach to or else create a new one on
299 1.1 gdamore * the listeners list.
300 1.1 gdamore */
301 1.1 gdamore int
302 1.1 gdamore rfcomm_listen(struct rfcomm_dlc *dlc)
303 1.1 gdamore {
304 1.1 gdamore struct rfcomm_session *rs, *any, *best;
305 1.1 gdamore struct sockaddr_bt addr;
306 1.1 gdamore int err;
307 1.1 gdamore
308 1.1 gdamore if (dlc->rd_state != RFCOMM_DLC_CLOSED)
309 1.1 gdamore return EISCONN;
310 1.1 gdamore
311 1.1 gdamore if (dlc->rd_laddr.bt_channel < RFCOMM_CHANNEL_MIN
312 1.1 gdamore || dlc->rd_laddr.bt_channel > RFCOMM_CHANNEL_MAX)
313 1.1 gdamore return EADDRNOTAVAIL;
314 1.1 gdamore
315 1.1 gdamore if (dlc->rd_laddr.bt_psm == L2CAP_PSM_ANY)
316 1.1 gdamore dlc->rd_laddr.bt_psm = L2CAP_PSM_RFCOMM;
317 1.1 gdamore else if (dlc->rd_laddr.bt_psm != L2CAP_PSM_RFCOMM
318 1.1 gdamore && (dlc->rd_laddr.bt_psm < 0x1001
319 1.1 gdamore || L2CAP_PSM_INVALID(dlc->rd_laddr.bt_psm)))
320 1.1 gdamore return EADDRNOTAVAIL;
321 1.1 gdamore
322 1.1 gdamore any = best = NULL;
323 1.1 gdamore LIST_FOREACH(rs, &rfcomm_session_listen, rs_next) {
324 1.1 gdamore l2cap_sockaddr(rs->rs_l2cap, &addr);
325 1.1 gdamore
326 1.1 gdamore if (addr.bt_psm != dlc->rd_laddr.bt_psm)
327 1.1 gdamore continue;
328 1.1 gdamore
329 1.1 gdamore if (bdaddr_same(&dlc->rd_laddr.bt_bdaddr, &addr.bt_bdaddr))
330 1.1 gdamore best = rs;
331 1.1 gdamore
332 1.1 gdamore if (bdaddr_any(&addr.bt_bdaddr))
333 1.1 gdamore any = rs;
334 1.1 gdamore }
335 1.1 gdamore
336 1.1 gdamore rs = best ? best : any;
337 1.1 gdamore if (rs == NULL) {
338 1.1 gdamore rs = rfcomm_session_alloc(&rfcomm_session_listen,
339 1.1 gdamore &dlc->rd_laddr);
340 1.1 gdamore if (rs == NULL)
341 1.1 gdamore return ENOMEM;
342 1.1 gdamore
343 1.1 gdamore rs->rs_state = RFCOMM_SESSION_LISTEN;
344 1.1 gdamore
345 1.1 gdamore err = l2cap_listen(rs->rs_l2cap);
346 1.1 gdamore if (err) {
347 1.1 gdamore rfcomm_session_free(rs);
348 1.1 gdamore return err;
349 1.1 gdamore }
350 1.1 gdamore }
351 1.1 gdamore
352 1.1 gdamore dlc->rd_session = rs;
353 1.1 gdamore dlc->rd_state = RFCOMM_DLC_LISTEN;
354 1.1 gdamore LIST_INSERT_HEAD(&rs->rs_dlcs, dlc, rd_next);
355 1.1 gdamore
356 1.1 gdamore return 0;
357 1.1 gdamore }
358 1.1 gdamore
359 1.1 gdamore /*
360 1.1 gdamore * rfcomm_send(dlc, mbuf)
361 1.1 gdamore *
362 1.1 gdamore * Output data on DLC. This is streamed data, so we add it
363 1.1 gdamore * to our buffer and start the the DLC, which will assemble
364 1.1 gdamore * packets and send them if it can.
365 1.1 gdamore */
366 1.1 gdamore int
367 1.1 gdamore rfcomm_send(struct rfcomm_dlc *dlc, struct mbuf *m)
368 1.1 gdamore {
369 1.1 gdamore
370 1.1 gdamore if (dlc->rd_txbuf != NULL) {
371 1.1 gdamore dlc->rd_txbuf->m_pkthdr.len += m->m_pkthdr.len;
372 1.1 gdamore m_cat(dlc->rd_txbuf, m);
373 1.1 gdamore } else {
374 1.1 gdamore dlc->rd_txbuf = m;
375 1.1 gdamore }
376 1.1 gdamore
377 1.1 gdamore if (dlc->rd_state == RFCOMM_DLC_OPEN)
378 1.1 gdamore rfcomm_dlc_start(dlc);
379 1.1 gdamore
380 1.1 gdamore return 0;
381 1.1 gdamore }
382 1.1 gdamore
383 1.1 gdamore /*
384 1.1 gdamore * rfcomm_rcvd(dlc, space)
385 1.1 gdamore *
386 1.1 gdamore * Indicate space now available in receive buffer
387 1.1 gdamore *
388 1.1 gdamore * This should be used to give an initial value of the receive buffer
389 1.1 gdamore * size when the DLC is attached and anytime data is cleared from the
390 1.1 gdamore * buffer after that.
391 1.1 gdamore */
392 1.1 gdamore int
393 1.1 gdamore rfcomm_rcvd(struct rfcomm_dlc *dlc, size_t space)
394 1.1 gdamore {
395 1.1 gdamore
396 1.1 gdamore KASSERT(dlc != NULL);
397 1.1 gdamore
398 1.1 gdamore dlc->rd_rxsize = space;
399 1.1 gdamore
400 1.1 gdamore /*
401 1.1 gdamore * if we are using credit based flow control, we may
402 1.1 gdamore * want to send some credits..
403 1.1 gdamore */
404 1.1 gdamore if (dlc->rd_state == RFCOMM_DLC_OPEN
405 1.1 gdamore && (dlc->rd_session->rs_flags & RFCOMM_SESSION_CFC))
406 1.1 gdamore rfcomm_dlc_start(dlc);
407 1.1 gdamore
408 1.1 gdamore return 0;
409 1.1 gdamore }
410 1.1 gdamore
411 1.1 gdamore /*
412 1.1 gdamore * rfcomm_setopt(dlc, option, addr)
413 1.1 gdamore *
414 1.1 gdamore * set DLC options
415 1.1 gdamore */
416 1.1 gdamore int
417 1.1 gdamore rfcomm_setopt(struct rfcomm_dlc *dlc, int opt, void *addr)
418 1.1 gdamore {
419 1.1 gdamore int err = 0;
420 1.3 plunky uint16_t mtu;
421 1.1 gdamore
422 1.1 gdamore if (dlc->rd_state != RFCOMM_DLC_CLOSED)
423 1.1 gdamore return EBUSY;
424 1.1 gdamore
425 1.1 gdamore switch (opt) {
426 1.1 gdamore case SO_RFCOMM_MTU:
427 1.3 plunky mtu = *(uint16_t *)addr;
428 1.3 plunky if (mtu < RFCOMM_MTU_MIN || mtu > RFCOMM_MTU_MAX)
429 1.1 gdamore err = EINVAL;
430 1.3 plunky else
431 1.3 plunky dlc->rd_mtu = mtu;
432 1.3 plunky
433 1.1 gdamore break;
434 1.1 gdamore
435 1.1 gdamore default:
436 1.2 plunky err = ENOPROTOOPT;
437 1.1 gdamore break;
438 1.1 gdamore }
439 1.1 gdamore return err;
440 1.1 gdamore }
441 1.1 gdamore
442 1.1 gdamore /*
443 1.1 gdamore * rfcomm_getopt(dlc, option, addr)
444 1.1 gdamore *
445 1.1 gdamore * get DLC options
446 1.1 gdamore */
447 1.1 gdamore int
448 1.1 gdamore rfcomm_getopt(struct rfcomm_dlc *dlc, int opt, void *addr)
449 1.1 gdamore {
450 1.1 gdamore struct rfcomm_fc_info *fc;
451 1.1 gdamore
452 1.1 gdamore switch (opt) {
453 1.1 gdamore case SO_RFCOMM_MTU:
454 1.1 gdamore *(uint16_t *)addr = dlc->rd_mtu;
455 1.1 gdamore return sizeof(uint16_t);
456 1.1 gdamore
457 1.1 gdamore case SO_RFCOMM_FC_INFO:
458 1.1 gdamore fc = addr;
459 1.1 gdamore memset(fc, 0, sizeof(*fc));
460 1.1 gdamore fc->lmodem = dlc->rd_lmodem;
461 1.1 gdamore fc->rmodem = dlc->rd_rmodem;
462 1.1 gdamore fc->tx_cred = max(dlc->rd_txcred, 0xff);
463 1.1 gdamore fc->rx_cred = max(dlc->rd_rxcred, 0xff);
464 1.1 gdamore if (dlc->rd_session
465 1.1 gdamore && (dlc->rd_session->rs_flags & RFCOMM_SESSION_CFC))
466 1.1 gdamore fc->cfc = 1;
467 1.1 gdamore
468 1.1 gdamore return sizeof(*fc);
469 1.1 gdamore
470 1.1 gdamore default:
471 1.1 gdamore break;
472 1.1 gdamore }
473 1.1 gdamore
474 1.1 gdamore return 0;
475 1.1 gdamore }
476