btsco.c revision 1.38.2.2 1 1.38.2.2 isaki /* $NetBSD: btsco.c,v 1.38.2.2 2019/04/24 13:30:34 isaki Exp $ */
2 1.1 tron
3 1.1 tron /*-
4 1.1 tron * Copyright (c) 2006 Itronix Inc.
5 1.1 tron * All rights reserved.
6 1.1 tron *
7 1.1 tron * Written by Iain Hibbert for Itronix Inc.
8 1.1 tron *
9 1.1 tron * Redistribution and use in source and binary forms, with or without
10 1.1 tron * modification, are permitted provided that the following conditions
11 1.1 tron * are met:
12 1.1 tron * 1. Redistributions of source code must retain the above copyright
13 1.1 tron * notice, this list of conditions and the following disclaimer.
14 1.1 tron * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 tron * notice, this list of conditions and the following disclaimer in the
16 1.1 tron * documentation and/or other materials provided with the distribution.
17 1.1 tron * 3. The name of Itronix Inc. may not be used to endorse
18 1.1 tron * or promote products derived from this software without specific
19 1.1 tron * prior written permission.
20 1.1 tron *
21 1.1 tron * THIS SOFTWARE IS PROVIDED BY ITRONIX INC. ``AS IS'' AND
22 1.1 tron * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
23 1.1 tron * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
24 1.1 tron * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL ITRONIX INC. BE LIABLE FOR ANY
25 1.1 tron * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
26 1.1 tron * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
27 1.1 tron * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
28 1.1 tron * ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.1 tron * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.1 tron * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 1.1 tron * POSSIBILITY OF SUCH DAMAGE.
32 1.1 tron */
33 1.1 tron
34 1.1 tron #include <sys/cdefs.h>
35 1.38.2.2 isaki __KERNEL_RCSID(0, "$NetBSD: btsco.c,v 1.38.2.2 2019/04/24 13:30:34 isaki Exp $");
36 1.1 tron
37 1.1 tron #include <sys/param.h>
38 1.1 tron #include <sys/audioio.h>
39 1.1 tron #include <sys/conf.h>
40 1.1 tron #include <sys/device.h>
41 1.1 tron #include <sys/fcntl.h>
42 1.1 tron #include <sys/kernel.h>
43 1.1 tron #include <sys/queue.h>
44 1.25 jmcneill #include <sys/kmem.h>
45 1.1 tron #include <sys/mbuf.h>
46 1.1 tron #include <sys/proc.h>
47 1.22 plunky #include <sys/socketvar.h>
48 1.1 tron #include <sys/systm.h>
49 1.15 ad #include <sys/intr.h>
50 1.1 tron
51 1.1 tron #include <prop/proplib.h>
52 1.1 tron
53 1.1 tron #include <netbt/bluetooth.h>
54 1.1 tron #include <netbt/rfcomm.h>
55 1.1 tron #include <netbt/sco.h>
56 1.1 tron
57 1.1 tron #include <dev/audio_if.h>
58 1.1 tron
59 1.1 tron #include <dev/bluetooth/btdev.h>
60 1.1 tron #include <dev/bluetooth/btsco.h>
61 1.1 tron
62 1.1 tron #undef DPRINTF
63 1.1 tron #undef DPRINTFN
64 1.1 tron
65 1.1 tron #ifdef BTSCO_DEBUG
66 1.1 tron int btsco_debug = BTSCO_DEBUG;
67 1.24 plunky #define DPRINTF(...) do { \
68 1.24 plunky if (btsco_debug) { \
69 1.24 plunky printf("%s: ", __func__); \
70 1.24 plunky printf(__VA_ARGS__); \
71 1.24 plunky } \
72 1.1 tron } while (/* CONSTCOND */0)
73 1.1 tron
74 1.24 plunky #define DPRINTFN(n, ...) do { \
75 1.24 plunky if (btsco_debug > (n)) { \
76 1.24 plunky printf("%s: ", __func__); \
77 1.24 plunky printf(__VA_ARGS__); \
78 1.24 plunky } \
79 1.1 tron } while (/* CONSTCOND */0)
80 1.1 tron #else
81 1.1 tron #define DPRINTF(...)
82 1.1 tron #define DPRINTFN(...)
83 1.1 tron #endif
84 1.1 tron
85 1.1 tron /*****************************************************************************
86 1.1 tron *
87 1.1 tron * Bluetooth SCO Audio device
88 1.1 tron */
89 1.1 tron
90 1.1 tron /* btsco softc */
91 1.1 tron struct btsco_softc {
92 1.1 tron uint16_t sc_flags;
93 1.16 plunky const char *sc_name; /* our device_xname */
94 1.1 tron
95 1.16 plunky device_t sc_audio; /* MI audio device */
96 1.1 tron void *sc_intr; /* interrupt cookie */
97 1.20 ad kcondvar_t sc_connect; /* connect wait */
98 1.35 nat kmutex_t sc_lock; /* for audio */
99 1.1 tron
100 1.1 tron /* Bluetooth */
101 1.1 tron bdaddr_t sc_laddr; /* local address */
102 1.1 tron bdaddr_t sc_raddr; /* remote address */
103 1.1 tron uint16_t sc_state; /* link state */
104 1.1 tron struct sco_pcb *sc_sco; /* SCO handle */
105 1.1 tron struct sco_pcb *sc_sco_l; /* SCO listen handle */
106 1.4 plunky uint16_t sc_mtu; /* SCO mtu */
107 1.1 tron uint8_t sc_channel; /* RFCOMM channel */
108 1.1 tron int sc_err; /* stored error */
109 1.1 tron
110 1.1 tron /* Receive */
111 1.1 tron int sc_rx_want; /* bytes wanted */
112 1.1 tron uint8_t *sc_rx_block; /* receive block */
113 1.1 tron void (*sc_rx_intr)(void *); /* callback */
114 1.1 tron void *sc_rx_intrarg; /* callback arg */
115 1.1 tron struct mbuf *sc_rx_mbuf; /* leftover mbuf */
116 1.1 tron
117 1.1 tron /* Transmit */
118 1.1 tron int sc_tx_size; /* bytes to send */
119 1.1 tron int sc_tx_pending; /* packets pending */
120 1.1 tron uint8_t *sc_tx_block; /* transmit block */
121 1.1 tron void (*sc_tx_intr)(void *); /* callback */
122 1.1 tron void *sc_tx_intrarg; /* callback arg */
123 1.1 tron void *sc_tx_buf; /* transmit buffer */
124 1.1 tron int sc_tx_refcnt; /* buffer refcnt */
125 1.1 tron
126 1.1 tron /* mixer data */
127 1.1 tron int sc_vgs; /* speaker volume */
128 1.1 tron int sc_vgm; /* mic volume */
129 1.1 tron };
130 1.1 tron
131 1.1 tron /* sc_state */
132 1.1 tron #define BTSCO_CLOSED 0
133 1.1 tron #define BTSCO_WAIT_CONNECT 1
134 1.1 tron #define BTSCO_OPEN 2
135 1.1 tron
136 1.1 tron /* sc_flags */
137 1.1 tron #define BTSCO_LISTEN (1 << 1)
138 1.1 tron
139 1.1 tron /* autoconf(9) glue */
140 1.23 cegger static int btsco_match(device_t, cfdata_t, void *);
141 1.16 plunky static void btsco_attach(device_t, device_t, void *);
142 1.16 plunky static int btsco_detach(device_t, int);
143 1.1 tron
144 1.16 plunky CFATTACH_DECL_NEW(btsco, sizeof(struct btsco_softc),
145 1.1 tron btsco_match, btsco_attach, btsco_detach, NULL);
146 1.1 tron
147 1.1 tron /* audio(9) glue */
148 1.1 tron static int btsco_open(void *, int);
149 1.1 tron static void btsco_close(void *);
150 1.38.2.2 isaki static int btsco_query_format(void *, audio_format_query_t *);
151 1.38.2.2 isaki static int btsco_set_format(void *, int,
152 1.38.2.2 isaki const audio_params_t *, const audio_params_t *,
153 1.38.2.2 isaki audio_filter_reg_t *, audio_filter_reg_t *);
154 1.1 tron static int btsco_round_blocksize(void *, int, int, const audio_params_t *);
155 1.1 tron static int btsco_start_output(void *, void *, int, void (*)(void *), void *);
156 1.1 tron static int btsco_start_input(void *, void *, int, void (*)(void *), void *);
157 1.1 tron static int btsco_halt_output(void *);
158 1.1 tron static int btsco_halt_input(void *);
159 1.1 tron static int btsco_getdev(void *, struct audio_device *);
160 1.1 tron static int btsco_setfd(void *, int);
161 1.1 tron static int btsco_set_port(void *, mixer_ctrl_t *);
162 1.1 tron static int btsco_get_port(void *, mixer_ctrl_t *);
163 1.1 tron static int btsco_query_devinfo(void *, mixer_devinfo_t *);
164 1.25 jmcneill static void *btsco_allocm(void *, int, size_t);
165 1.25 jmcneill static void btsco_freem(void *, void *, size_t);
166 1.1 tron static int btsco_get_props(void *);
167 1.12 christos static int btsco_dev_ioctl(void *, u_long, void *, int, struct lwp *);
168 1.25 jmcneill static void btsco_get_locks(void *, kmutex_t **, kmutex_t **);
169 1.1 tron
170 1.1 tron static const struct audio_hw_if btsco_if = {
171 1.38 isaki .open = btsco_open,
172 1.38 isaki .close = btsco_close,
173 1.38.2.2 isaki .query_format = btsco_query_format,
174 1.38.2.2 isaki .set_format = btsco_set_format,
175 1.38 isaki .round_blocksize = btsco_round_blocksize,
176 1.38 isaki .start_output = btsco_start_output,
177 1.38 isaki .start_input = btsco_start_input,
178 1.38 isaki .halt_output = btsco_halt_output,
179 1.38 isaki .halt_input = btsco_halt_input,
180 1.38 isaki .getdev = btsco_getdev,
181 1.38 isaki .setfd = btsco_setfd,
182 1.38 isaki .set_port = btsco_set_port,
183 1.38 isaki .get_port = btsco_get_port,
184 1.38 isaki .query_devinfo = btsco_query_devinfo,
185 1.38 isaki .allocm = btsco_allocm,
186 1.38 isaki .freem = btsco_freem,
187 1.38 isaki .get_props = btsco_get_props,
188 1.38 isaki .dev_ioctl = btsco_dev_ioctl,
189 1.38 isaki .get_locks = btsco_get_locks,
190 1.1 tron };
191 1.1 tron
192 1.1 tron static const struct audio_device btsco_device = {
193 1.1 tron "Bluetooth Audio",
194 1.1 tron "",
195 1.1 tron "btsco"
196 1.1 tron };
197 1.1 tron
198 1.8 plunky /* Voice_Setting == 0x0060: 8000Hz, mono, 16-bit, slinear_le */
199 1.8 plunky static const struct audio_format btsco_format = {
200 1.38.2.1 isaki .mode = AUMODE_PLAY | AUMODE_RECORD,
201 1.38.2.1 isaki .encoding = AUDIO_ENCODING_SLINEAR_LE,
202 1.38.2.1 isaki .validbits = 16,
203 1.38.2.1 isaki .precision = 16,
204 1.38.2.1 isaki .channels = 1,
205 1.38.2.1 isaki .channel_mask = AUFMT_MONAURAL,
206 1.38.2.1 isaki .frequency_type = 1,
207 1.38.2.1 isaki .frequency = { 8000 },
208 1.8 plunky };
209 1.8 plunky
210 1.1 tron /* bluetooth(9) glue for SCO */
211 1.1 tron static void btsco_sco_connecting(void *);
212 1.1 tron static void btsco_sco_connected(void *);
213 1.1 tron static void btsco_sco_disconnected(void *, int);
214 1.1 tron static void *btsco_sco_newconn(void *, struct sockaddr_bt *, struct sockaddr_bt *);
215 1.1 tron static void btsco_sco_complete(void *, int);
216 1.14 plunky static void btsco_sco_linkmode(void *, int);
217 1.1 tron static void btsco_sco_input(void *, struct mbuf *);
218 1.1 tron
219 1.1 tron static const struct btproto btsco_sco_proto = {
220 1.1 tron btsco_sco_connecting,
221 1.1 tron btsco_sco_connected,
222 1.1 tron btsco_sco_disconnected,
223 1.1 tron btsco_sco_newconn,
224 1.1 tron btsco_sco_complete,
225 1.14 plunky btsco_sco_linkmode,
226 1.1 tron btsco_sco_input,
227 1.1 tron };
228 1.1 tron
229 1.1 tron
230 1.1 tron /*****************************************************************************
231 1.1 tron *
232 1.1 tron * btsco definitions
233 1.1 tron */
234 1.1 tron
235 1.1 tron /*
236 1.1 tron * btsco mixer class
237 1.1 tron */
238 1.1 tron #define BTSCO_VGS 0
239 1.1 tron #define BTSCO_VGM 1
240 1.1 tron #define BTSCO_INPUT_CLASS 2
241 1.1 tron #define BTSCO_OUTPUT_CLASS 3
242 1.1 tron
243 1.1 tron /* connect timeout */
244 1.1 tron #define BTSCO_TIMEOUT (30 * hz)
245 1.1 tron
246 1.1 tron /* misc btsco functions */
247 1.12 christos static void btsco_extfree(struct mbuf *, void *, size_t, void *);
248 1.1 tron static void btsco_intr(void *);
249 1.1 tron
250 1.1 tron
251 1.1 tron /*****************************************************************************
252 1.1 tron *
253 1.1 tron * btsco autoconf(9) routines
254 1.1 tron */
255 1.1 tron
256 1.1 tron static int
257 1.23 cegger btsco_match(device_t self, cfdata_t cfdata, void *aux)
258 1.1 tron {
259 1.1 tron prop_dictionary_t dict = aux;
260 1.1 tron prop_object_t obj;
261 1.1 tron
262 1.9 plunky obj = prop_dictionary_get(dict, BTDEVservice);
263 1.9 plunky if (prop_string_equals_cstring(obj, "HSET"))
264 1.9 plunky return 1;
265 1.9 plunky
266 1.9 plunky if (prop_string_equals_cstring(obj, "HF"))
267 1.9 plunky return 1;
268 1.9 plunky
269 1.9 plunky return 0;
270 1.1 tron }
271 1.1 tron
272 1.1 tron static void
273 1.16 plunky btsco_attach(device_t parent, device_t self, void *aux)
274 1.1 tron {
275 1.16 plunky struct btsco_softc *sc = device_private(self);
276 1.1 tron prop_dictionary_t dict = aux;
277 1.1 tron prop_object_t obj;
278 1.1 tron
279 1.1 tron /*
280 1.1 tron * Init softc
281 1.1 tron */
282 1.1 tron sc->sc_vgs = 200;
283 1.1 tron sc->sc_vgm = 200;
284 1.1 tron sc->sc_state = BTSCO_CLOSED;
285 1.16 plunky sc->sc_name = device_xname(self);
286 1.20 ad cv_init(&sc->sc_connect, "connect");
287 1.35 nat mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_NONE);
288 1.1 tron
289 1.1 tron /*
290 1.1 tron * copy in our configuration info
291 1.1 tron */
292 1.3 plunky obj = prop_dictionary_get(dict, BTDEVladdr);
293 1.1 tron bdaddr_copy(&sc->sc_laddr, prop_data_data_nocopy(obj));
294 1.1 tron
295 1.3 plunky obj = prop_dictionary_get(dict, BTDEVraddr);
296 1.1 tron bdaddr_copy(&sc->sc_raddr, prop_data_data_nocopy(obj));
297 1.1 tron
298 1.9 plunky obj = prop_dictionary_get(dict, BTDEVservice);
299 1.9 plunky if (prop_string_equals_cstring(obj, "HF")) {
300 1.1 tron sc->sc_flags |= BTSCO_LISTEN;
301 1.2 plunky aprint_verbose(" listen mode");
302 1.1 tron }
303 1.1 tron
304 1.3 plunky obj = prop_dictionary_get(dict, BTSCOchannel);
305 1.3 plunky if (prop_object_type(obj) != PROP_TYPE_NUMBER
306 1.1 tron || prop_number_integer_value(obj) < RFCOMM_CHANNEL_MIN
307 1.1 tron || prop_number_integer_value(obj) > RFCOMM_CHANNEL_MAX) {
308 1.3 plunky aprint_error(" invalid %s", BTSCOchannel);
309 1.1 tron return;
310 1.1 tron }
311 1.1 tron sc->sc_channel = prop_number_integer_value(obj);
312 1.1 tron
313 1.1 tron aprint_verbose(" channel %d", sc->sc_channel);
314 1.1 tron aprint_normal("\n");
315 1.1 tron
316 1.1 tron DPRINTF("sc=%p\n", sc);
317 1.1 tron
318 1.1 tron /*
319 1.1 tron * set up transmit interrupt
320 1.1 tron */
321 1.15 ad sc->sc_intr = softint_establish(SOFTINT_NET, btsco_intr, sc);
322 1.1 tron if (sc->sc_intr == NULL) {
323 1.16 plunky aprint_error_dev(self, "softint_establish failed\n");
324 1.1 tron return;
325 1.1 tron }
326 1.1 tron
327 1.1 tron /*
328 1.1 tron * attach audio device
329 1.1 tron */
330 1.16 plunky sc->sc_audio = audio_attach_mi(&btsco_if, sc, self);
331 1.1 tron if (sc->sc_audio == NULL) {
332 1.16 plunky aprint_error_dev(self, "audio_attach_mi failed\n");
333 1.1 tron return;
334 1.1 tron }
335 1.28 plunky
336 1.28 plunky pmf_device_register(self, NULL, NULL);
337 1.1 tron }
338 1.1 tron
339 1.1 tron static int
340 1.16 plunky btsco_detach(device_t self, int flags)
341 1.1 tron {
342 1.16 plunky struct btsco_softc *sc = device_private(self);
343 1.1 tron
344 1.1 tron DPRINTF("sc=%p\n", sc);
345 1.1 tron
346 1.28 plunky pmf_device_deregister(self);
347 1.28 plunky
348 1.20 ad mutex_enter(bt_lock);
349 1.1 tron if (sc->sc_sco != NULL) {
350 1.1 tron DPRINTF("sc_sco=%p\n", sc->sc_sco);
351 1.32 rtr sco_disconnect_pcb(sc->sc_sco, 0);
352 1.29 rmind sco_detach_pcb(&sc->sc_sco);
353 1.1 tron sc->sc_sco = NULL;
354 1.1 tron }
355 1.1 tron
356 1.1 tron if (sc->sc_sco_l != NULL) {
357 1.1 tron DPRINTF("sc_sco_l=%p\n", sc->sc_sco_l);
358 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
359 1.1 tron sc->sc_sco_l = NULL;
360 1.1 tron }
361 1.20 ad mutex_exit(bt_lock);
362 1.1 tron
363 1.1 tron if (sc->sc_audio != NULL) {
364 1.1 tron DPRINTF("sc_audio=%p\n", sc->sc_audio);
365 1.1 tron config_detach(sc->sc_audio, flags);
366 1.1 tron sc->sc_audio = NULL;
367 1.1 tron }
368 1.1 tron
369 1.1 tron if (sc->sc_intr != NULL) {
370 1.15 ad softint_disestablish(sc->sc_intr);
371 1.1 tron sc->sc_intr = NULL;
372 1.1 tron }
373 1.1 tron
374 1.35 nat mutex_enter(bt_lock);
375 1.1 tron if (sc->sc_rx_mbuf != NULL) {
376 1.1 tron m_freem(sc->sc_rx_mbuf);
377 1.1 tron sc->sc_rx_mbuf = NULL;
378 1.1 tron }
379 1.35 nat mutex_exit(bt_lock);
380 1.1 tron
381 1.1 tron if (sc->sc_tx_refcnt > 0) {
382 1.16 plunky aprint_error_dev(self, "tx_refcnt=%d!\n", sc->sc_tx_refcnt);
383 1.1 tron
384 1.1 tron if ((flags & DETACH_FORCE) == 0)
385 1.1 tron return EAGAIN;
386 1.1 tron }
387 1.1 tron
388 1.20 ad cv_destroy(&sc->sc_connect);
389 1.35 nat mutex_destroy(&sc->sc_lock);
390 1.20 ad
391 1.1 tron return 0;
392 1.1 tron }
393 1.1 tron
394 1.1 tron /*****************************************************************************
395 1.1 tron *
396 1.1 tron * bluetooth(9) methods for SCO
397 1.1 tron *
398 1.1 tron * All these are called from Bluetooth Protocol code, in a soft
399 1.1 tron * interrupt context at IPL_SOFTNET.
400 1.1 tron */
401 1.1 tron
402 1.1 tron static void
403 1.11 christos btsco_sco_connecting(void *arg)
404 1.1 tron {
405 1.1 tron /* struct btsco_softc *sc = arg; */
406 1.1 tron
407 1.1 tron /* dont care */
408 1.1 tron }
409 1.1 tron
410 1.1 tron static void
411 1.1 tron btsco_sco_connected(void *arg)
412 1.1 tron {
413 1.1 tron struct btsco_softc *sc = arg;
414 1.1 tron
415 1.16 plunky DPRINTF("%s\n", sc->sc_name);
416 1.1 tron
417 1.1 tron KASSERT(sc->sc_sco != NULL);
418 1.1 tron KASSERT(sc->sc_state == BTSCO_WAIT_CONNECT);
419 1.1 tron
420 1.2 plunky /*
421 1.2 plunky * If we are listening, no more need
422 1.2 plunky */
423 1.2 plunky if (sc->sc_sco_l != NULL)
424 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
425 1.2 plunky
426 1.1 tron sc->sc_state = BTSCO_OPEN;
427 1.20 ad cv_broadcast(&sc->sc_connect);
428 1.1 tron }
429 1.1 tron
430 1.1 tron static void
431 1.1 tron btsco_sco_disconnected(void *arg, int err)
432 1.1 tron {
433 1.1 tron struct btsco_softc *sc = arg;
434 1.1 tron
435 1.16 plunky DPRINTF("%s sc_state %d\n", sc->sc_name, sc->sc_state);
436 1.1 tron
437 1.1 tron KASSERT(sc->sc_sco != NULL);
438 1.1 tron
439 1.1 tron sc->sc_err = err;
440 1.29 rmind sco_detach_pcb(&sc->sc_sco);
441 1.1 tron
442 1.1 tron switch (sc->sc_state) {
443 1.1 tron case BTSCO_CLOSED: /* dont think this can happen */
444 1.1 tron break;
445 1.1 tron
446 1.1 tron case BTSCO_WAIT_CONNECT: /* connect failed */
447 1.20 ad cv_broadcast(&sc->sc_connect);
448 1.1 tron break;
449 1.1 tron
450 1.1 tron case BTSCO_OPEN: /* link lost */
451 1.2 plunky /*
452 1.2 plunky * If IO is in progress, tell the audio driver that it
453 1.2 plunky * has completed so that when it tries to send more, we
454 1.2 plunky * can indicate an error.
455 1.2 plunky */
456 1.35 nat mutex_enter(bt_lock);
457 1.2 plunky if (sc->sc_tx_pending > 0) {
458 1.2 plunky sc->sc_tx_pending = 0;
459 1.2 plunky (*sc->sc_tx_intr)(sc->sc_tx_intrarg);
460 1.2 plunky }
461 1.2 plunky if (sc->sc_rx_want > 0) {
462 1.2 plunky sc->sc_rx_want = 0;
463 1.2 plunky (*sc->sc_rx_intr)(sc->sc_rx_intrarg);
464 1.2 plunky }
465 1.35 nat mutex_exit(bt_lock);
466 1.1 tron break;
467 1.1 tron
468 1.1 tron default:
469 1.1 tron UNKNOWN(sc->sc_state);
470 1.1 tron }
471 1.1 tron
472 1.1 tron sc->sc_state = BTSCO_CLOSED;
473 1.1 tron }
474 1.1 tron
475 1.1 tron static void *
476 1.11 christos btsco_sco_newconn(void *arg, struct sockaddr_bt *laddr,
477 1.10 christos struct sockaddr_bt *raddr)
478 1.1 tron {
479 1.1 tron struct btsco_softc *sc = arg;
480 1.1 tron
481 1.16 plunky DPRINTF("%s\n", sc->sc_name);
482 1.16 plunky
483 1.1 tron if (bdaddr_same(&raddr->bt_bdaddr, &sc->sc_raddr) == 0
484 1.1 tron || sc->sc_state != BTSCO_WAIT_CONNECT
485 1.1 tron || sc->sc_sco != NULL)
486 1.1 tron return NULL;
487 1.1 tron
488 1.29 rmind sco_attach_pcb(&sc->sc_sco, &btsco_sco_proto, sc);
489 1.1 tron return sc->sc_sco;
490 1.1 tron }
491 1.1 tron
492 1.1 tron static void
493 1.1 tron btsco_sco_complete(void *arg, int count)
494 1.1 tron {
495 1.1 tron struct btsco_softc *sc = arg;
496 1.1 tron
497 1.16 plunky DPRINTFN(10, "%s count %d\n", sc->sc_name, count);
498 1.1 tron
499 1.1 tron if (sc->sc_tx_pending > 0) {
500 1.1 tron sc->sc_tx_pending -= count;
501 1.1 tron if (sc->sc_tx_pending == 0)
502 1.1 tron (*sc->sc_tx_intr)(sc->sc_tx_intrarg);
503 1.1 tron }
504 1.1 tron }
505 1.1 tron
506 1.1 tron static void
507 1.14 plunky btsco_sco_linkmode(void *arg, int new)
508 1.14 plunky {
509 1.14 plunky /* struct btsco_softc *sc = arg; */
510 1.14 plunky
511 1.14 plunky /* dont care */
512 1.14 plunky }
513 1.14 plunky
514 1.14 plunky static void
515 1.1 tron btsco_sco_input(void *arg, struct mbuf *m)
516 1.1 tron {
517 1.1 tron struct btsco_softc *sc = arg;
518 1.25 jmcneill int len;
519 1.1 tron
520 1.16 plunky DPRINTFN(10, "%s len=%d\n", sc->sc_name, m->m_pkthdr.len);
521 1.1 tron
522 1.1 tron if (sc->sc_rx_want == 0) {
523 1.1 tron m_freem(m);
524 1.1 tron } else {
525 1.1 tron KASSERT(sc->sc_rx_intr != NULL);
526 1.1 tron KASSERT(sc->sc_rx_block != NULL);
527 1.1 tron
528 1.1 tron len = MIN(sc->sc_rx_want, m->m_pkthdr.len);
529 1.1 tron m_copydata(m, 0, len, sc->sc_rx_block);
530 1.1 tron
531 1.1 tron sc->sc_rx_want -= len;
532 1.1 tron sc->sc_rx_block += len;
533 1.1 tron
534 1.1 tron if (len > m->m_pkthdr.len) {
535 1.1 tron if (sc->sc_rx_mbuf != NULL)
536 1.1 tron m_freem(sc->sc_rx_mbuf);
537 1.1 tron
538 1.1 tron m_adj(m, len);
539 1.1 tron sc->sc_rx_mbuf = m;
540 1.1 tron } else {
541 1.1 tron m_freem(m);
542 1.1 tron }
543 1.1 tron
544 1.1 tron if (sc->sc_rx_want == 0)
545 1.1 tron (*sc->sc_rx_intr)(sc->sc_rx_intrarg);
546 1.1 tron }
547 1.1 tron }
548 1.1 tron
549 1.1 tron
550 1.1 tron /*****************************************************************************
551 1.1 tron *
552 1.1 tron * audio(9) methods
553 1.1 tron *
554 1.1 tron */
555 1.1 tron
556 1.1 tron static int
557 1.11 christos btsco_open(void *hdl, int flags)
558 1.1 tron {
559 1.1 tron struct sockaddr_bt sa;
560 1.1 tron struct btsco_softc *sc = hdl;
561 1.22 plunky struct sockopt sopt;
562 1.20 ad int err, timo;
563 1.1 tron
564 1.16 plunky DPRINTF("%s flags 0x%x\n", sc->sc_name, flags);
565 1.1 tron /* flags FREAD & FWRITE? */
566 1.1 tron
567 1.1 tron if (sc->sc_sco != NULL || sc->sc_sco_l != NULL)
568 1.1 tron return EIO;
569 1.1 tron
570 1.26 jmcneill KASSERT(mutex_owned(bt_lock));
571 1.1 tron
572 1.1 tron memset(&sa, 0, sizeof(sa));
573 1.1 tron sa.bt_len = sizeof(sa);
574 1.1 tron sa.bt_family = AF_BLUETOOTH;
575 1.1 tron bdaddr_copy(&sa.bt_bdaddr, &sc->sc_laddr);
576 1.1 tron
577 1.1 tron if (sc->sc_flags & BTSCO_LISTEN) {
578 1.29 rmind err = sco_attach_pcb(&sc->sc_sco_l, &btsco_sco_proto, sc);
579 1.1 tron if (err)
580 1.1 tron goto done;
581 1.1 tron
582 1.30 rtr err = sco_bind_pcb(sc->sc_sco_l, &sa);
583 1.1 tron if (err) {
584 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
585 1.1 tron goto done;
586 1.1 tron }
587 1.1 tron
588 1.30 rtr err = sco_listen_pcb(sc->sc_sco_l);
589 1.1 tron if (err) {
590 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
591 1.1 tron goto done;
592 1.1 tron }
593 1.2 plunky
594 1.2 plunky timo = 0; /* no timeout */
595 1.1 tron } else {
596 1.29 rmind err = sco_attach_pcb(&sc->sc_sco, &btsco_sco_proto, sc);
597 1.1 tron if (err)
598 1.1 tron goto done;
599 1.1 tron
600 1.30 rtr err = sco_bind_pcb(sc->sc_sco, &sa);
601 1.1 tron if (err) {
602 1.29 rmind sco_detach_pcb(&sc->sc_sco);
603 1.1 tron goto done;
604 1.1 tron }
605 1.1 tron
606 1.1 tron bdaddr_copy(&sa.bt_bdaddr, &sc->sc_raddr);
607 1.31 rtr err = sco_connect_pcb(sc->sc_sco, &sa);
608 1.1 tron if (err) {
609 1.29 rmind sco_detach_pcb(&sc->sc_sco);
610 1.1 tron goto done;
611 1.1 tron }
612 1.2 plunky
613 1.2 plunky timo = BTSCO_TIMEOUT;
614 1.1 tron }
615 1.1 tron
616 1.1 tron sc->sc_state = BTSCO_WAIT_CONNECT;
617 1.1 tron while (err == 0 && sc->sc_state == BTSCO_WAIT_CONNECT)
618 1.20 ad err = cv_timedwait_sig(&sc->sc_connect, bt_lock, timo);
619 1.1 tron
620 1.1 tron switch (sc->sc_state) {
621 1.1 tron case BTSCO_CLOSED: /* disconnected */
622 1.1 tron err = sc->sc_err;
623 1.1 tron
624 1.37 mrg /* FALLTHROUGH */
625 1.1 tron case BTSCO_WAIT_CONNECT: /* error */
626 1.1 tron if (sc->sc_sco != NULL)
627 1.29 rmind sco_detach_pcb(&sc->sc_sco);
628 1.1 tron
629 1.1 tron if (sc->sc_sco_l != NULL)
630 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
631 1.1 tron
632 1.1 tron break;
633 1.1 tron
634 1.1 tron case BTSCO_OPEN: /* hurrah */
635 1.22 plunky sockopt_init(&sopt, BTPROTO_SCO, SO_SCO_MTU, 0);
636 1.22 plunky (void)sco_getopt(sc->sc_sco, &sopt);
637 1.22 plunky (void)sockopt_get(&sopt, &sc->sc_mtu, sizeof(sc->sc_mtu));
638 1.22 plunky sockopt_destroy(&sopt);
639 1.1 tron break;
640 1.1 tron
641 1.1 tron default:
642 1.1 tron UNKNOWN(sc->sc_state);
643 1.1 tron break;
644 1.1 tron }
645 1.1 tron
646 1.1 tron done:
647 1.1 tron DPRINTF("done err=%d, sc_state=%d, sc_mtu=%d\n",
648 1.1 tron err, sc->sc_state, sc->sc_mtu);
649 1.1 tron return err;
650 1.1 tron }
651 1.1 tron
652 1.1 tron static void
653 1.1 tron btsco_close(void *hdl)
654 1.1 tron {
655 1.1 tron struct btsco_softc *sc = hdl;
656 1.1 tron
657 1.16 plunky DPRINTF("%s\n", sc->sc_name);
658 1.1 tron
659 1.26 jmcneill KASSERT(mutex_owned(bt_lock));
660 1.26 jmcneill
661 1.1 tron if (sc->sc_sco != NULL) {
662 1.32 rtr sco_disconnect_pcb(sc->sc_sco, 0);
663 1.29 rmind sco_detach_pcb(&sc->sc_sco);
664 1.1 tron }
665 1.1 tron
666 1.1 tron if (sc->sc_sco_l != NULL) {
667 1.29 rmind sco_detach_pcb(&sc->sc_sco_l);
668 1.1 tron }
669 1.1 tron
670 1.1 tron if (sc->sc_rx_mbuf != NULL) {
671 1.1 tron m_freem(sc->sc_rx_mbuf);
672 1.1 tron sc->sc_rx_mbuf = NULL;
673 1.1 tron }
674 1.1 tron
675 1.1 tron sc->sc_rx_want = 0;
676 1.1 tron sc->sc_rx_block = NULL;
677 1.1 tron sc->sc_rx_intr = NULL;
678 1.1 tron sc->sc_rx_intrarg = NULL;
679 1.1 tron
680 1.1 tron sc->sc_tx_size = 0;
681 1.1 tron sc->sc_tx_block = NULL;
682 1.1 tron sc->sc_tx_pending = 0;
683 1.1 tron sc->sc_tx_intr = NULL;
684 1.1 tron sc->sc_tx_intrarg = NULL;
685 1.1 tron }
686 1.1 tron
687 1.1 tron static int
688 1.38.2.2 isaki btsco_query_format(void *hdl, audio_format_query_t *afp)
689 1.1 tron {
690 1.1 tron
691 1.38.2.2 isaki return audio_query_format(&btsco_format, 1, afp);
692 1.1 tron }
693 1.1 tron
694 1.1 tron static int
695 1.38.2.2 isaki btsco_set_format(void *hdl, int setmode,
696 1.38.2.2 isaki const audio_params_t *play, const audio_params_t *rec,
697 1.38.2.2 isaki audio_filter_reg_t *pfil, audio_filter_reg_t *rfil)
698 1.1 tron {
699 1.1 tron
700 1.38.2.2 isaki /* We have only one format so nothing to do here. */
701 1.8 plunky return 0;
702 1.1 tron }
703 1.1 tron
704 1.1 tron /*
705 1.1 tron * If we have an MTU value to use, round the blocksize to that.
706 1.1 tron */
707 1.1 tron static int
708 1.11 christos btsco_round_blocksize(void *hdl, int bs, int mode,
709 1.11 christos const audio_params_t *param)
710 1.1 tron {
711 1.1 tron struct btsco_softc *sc = hdl;
712 1.1 tron
713 1.4 plunky if (sc->sc_mtu > 0) {
714 1.1 tron bs = (bs / sc->sc_mtu) * sc->sc_mtu;
715 1.4 plunky if (bs == 0)
716 1.4 plunky bs = sc->sc_mtu;
717 1.4 plunky }
718 1.13 plunky
719 1.1 tron DPRINTF("%s mode=0x%x, bs=%d, sc_mtu=%d\n",
720 1.16 plunky sc->sc_name, mode, bs, sc->sc_mtu);
721 1.1 tron
722 1.1 tron return bs;
723 1.1 tron }
724 1.1 tron
725 1.1 tron /*
726 1.1 tron * Start Output
727 1.1 tron *
728 1.35 nat * We dont want to be calling the network stack with bt_lock held
729 1.25 jmcneill * so make a note of what is to be sent, and schedule an interrupt to
730 1.25 jmcneill * bundle it up and queue it.
731 1.1 tron */
732 1.1 tron static int
733 1.1 tron btsco_start_output(void *hdl, void *block, int blksize,
734 1.1 tron void (*intr)(void *), void *intrarg)
735 1.1 tron {
736 1.1 tron struct btsco_softc *sc = hdl;
737 1.1 tron
738 1.16 plunky DPRINTFN(5, "%s blksize %d\n", sc->sc_name, blksize);
739 1.1 tron
740 1.1 tron if (sc->sc_sco == NULL)
741 1.1 tron return ENOTCONN; /* connection lost */
742 1.1 tron
743 1.1 tron sc->sc_tx_block = block;
744 1.1 tron sc->sc_tx_pending = 0;
745 1.1 tron sc->sc_tx_size = blksize;
746 1.1 tron sc->sc_tx_intr = intr;
747 1.1 tron sc->sc_tx_intrarg = intrarg;
748 1.1 tron
749 1.34 nat kpreempt_disable();
750 1.15 ad softint_schedule(sc->sc_intr);
751 1.34 nat kpreempt_enable();
752 1.1 tron return 0;
753 1.1 tron }
754 1.1 tron
755 1.1 tron /*
756 1.1 tron * Start Input
757 1.1 tron *
758 1.1 tron * When the SCO link is up, we are getting data in any case, so all we do
759 1.1 tron * is note what we want and where to put it and let the sco_input routine
760 1.1 tron * fill in the data.
761 1.1 tron *
762 1.1 tron * If there was any leftover data that didnt fit in the last block, retry
763 1.1 tron * it now.
764 1.1 tron */
765 1.1 tron static int
766 1.1 tron btsco_start_input(void *hdl, void *block, int blksize,
767 1.1 tron void (*intr)(void *), void *intrarg)
768 1.1 tron {
769 1.1 tron struct btsco_softc *sc = hdl;
770 1.1 tron struct mbuf *m;
771 1.1 tron
772 1.16 plunky DPRINTFN(5, "%s blksize %d\n", sc->sc_name, blksize);
773 1.1 tron
774 1.1 tron if (sc->sc_sco == NULL)
775 1.5 plunky return ENOTCONN;
776 1.1 tron
777 1.1 tron sc->sc_rx_want = blksize;
778 1.1 tron sc->sc_rx_block = block;
779 1.1 tron sc->sc_rx_intr = intr;
780 1.1 tron sc->sc_rx_intrarg = intrarg;
781 1.1 tron
782 1.1 tron if (sc->sc_rx_mbuf != NULL) {
783 1.1 tron m = sc->sc_rx_mbuf;
784 1.1 tron sc->sc_rx_mbuf = NULL;
785 1.1 tron btsco_sco_input(sc, m);
786 1.1 tron }
787 1.1 tron
788 1.1 tron return 0;
789 1.1 tron }
790 1.1 tron
791 1.1 tron /*
792 1.1 tron * Halt Output
793 1.1 tron *
794 1.1 tron * This doesnt really halt the output, but it will look
795 1.1 tron * that way to the audio driver. The current block will
796 1.1 tron * still be transmitted.
797 1.1 tron */
798 1.1 tron static int
799 1.1 tron btsco_halt_output(void *hdl)
800 1.1 tron {
801 1.1 tron struct btsco_softc *sc = hdl;
802 1.1 tron
803 1.16 plunky DPRINTFN(5, "%s\n", sc->sc_name);
804 1.1 tron
805 1.1 tron sc->sc_tx_size = 0;
806 1.1 tron sc->sc_tx_block = NULL;
807 1.1 tron sc->sc_tx_pending = 0;
808 1.1 tron sc->sc_tx_intr = NULL;
809 1.1 tron sc->sc_tx_intrarg = NULL;
810 1.1 tron
811 1.1 tron return 0;
812 1.1 tron }
813 1.1 tron
814 1.1 tron /*
815 1.1 tron * Halt Input
816 1.1 tron *
817 1.1 tron * This doesnt really halt the input, but it will look
818 1.1 tron * that way to the audio driver. Incoming data will be
819 1.1 tron * discarded.
820 1.1 tron */
821 1.1 tron static int
822 1.1 tron btsco_halt_input(void *hdl)
823 1.1 tron {
824 1.1 tron struct btsco_softc *sc = hdl;
825 1.1 tron
826 1.16 plunky DPRINTFN(5, "%s\n", sc->sc_name);
827 1.1 tron
828 1.1 tron sc->sc_rx_want = 0;
829 1.1 tron sc->sc_rx_block = NULL;
830 1.1 tron sc->sc_rx_intr = NULL;
831 1.1 tron sc->sc_rx_intrarg = NULL;
832 1.1 tron
833 1.1 tron if (sc->sc_rx_mbuf != NULL) {
834 1.1 tron m_freem(sc->sc_rx_mbuf);
835 1.1 tron sc->sc_rx_mbuf = NULL;
836 1.1 tron }
837 1.1 tron
838 1.1 tron return 0;
839 1.1 tron }
840 1.1 tron
841 1.1 tron static int
842 1.11 christos btsco_getdev(void *hdl, struct audio_device *ret)
843 1.1 tron {
844 1.1 tron
845 1.1 tron *ret = btsco_device;
846 1.1 tron return 0;
847 1.1 tron }
848 1.1 tron
849 1.1 tron static int
850 1.11 christos btsco_setfd(void *hdl, int fd)
851 1.1 tron {
852 1.1 tron DPRINTF("set %s duplex\n", fd ? "full" : "half");
853 1.1 tron
854 1.1 tron return 0;
855 1.1 tron }
856 1.1 tron
857 1.1 tron static int
858 1.1 tron btsco_set_port(void *hdl, mixer_ctrl_t *mc)
859 1.1 tron {
860 1.1 tron struct btsco_softc *sc = hdl;
861 1.1 tron int err = 0;
862 1.1 tron
863 1.16 plunky DPRINTF("%s dev %d type %d\n", sc->sc_name, mc->dev, mc->type);
864 1.1 tron
865 1.1 tron switch (mc->dev) {
866 1.1 tron case BTSCO_VGS:
867 1.1 tron if (mc->type != AUDIO_MIXER_VALUE ||
868 1.1 tron mc->un.value.num_channels != 1) {
869 1.1 tron err = EINVAL;
870 1.1 tron break;
871 1.1 tron }
872 1.1 tron
873 1.1 tron sc->sc_vgs = mc->un.value.level[AUDIO_MIXER_LEVEL_MONO];
874 1.1 tron break;
875 1.1 tron
876 1.1 tron case BTSCO_VGM:
877 1.1 tron if (mc->type != AUDIO_MIXER_VALUE ||
878 1.1 tron mc->un.value.num_channels != 1) {
879 1.1 tron err = EINVAL;
880 1.1 tron break;
881 1.1 tron }
882 1.1 tron
883 1.1 tron sc->sc_vgm = mc->un.value.level[AUDIO_MIXER_LEVEL_MONO];
884 1.1 tron break;
885 1.1 tron
886 1.1 tron default:
887 1.1 tron err = EINVAL;
888 1.1 tron break;
889 1.1 tron }
890 1.1 tron
891 1.1 tron return err;
892 1.1 tron }
893 1.1 tron
894 1.1 tron static int
895 1.1 tron btsco_get_port(void *hdl, mixer_ctrl_t *mc)
896 1.1 tron {
897 1.1 tron struct btsco_softc *sc = hdl;
898 1.1 tron int err = 0;
899 1.1 tron
900 1.16 plunky DPRINTF("%s dev %d\n", sc->sc_name, mc->dev);
901 1.1 tron
902 1.1 tron switch (mc->dev) {
903 1.1 tron case BTSCO_VGS:
904 1.1 tron mc->type = AUDIO_MIXER_VALUE;
905 1.1 tron mc->un.value.num_channels = 1;
906 1.1 tron mc->un.value.level[AUDIO_MIXER_LEVEL_MONO] = sc->sc_vgs;
907 1.1 tron break;
908 1.1 tron
909 1.1 tron case BTSCO_VGM:
910 1.1 tron mc->type = AUDIO_MIXER_VALUE;
911 1.1 tron mc->un.value.num_channels = 1;
912 1.1 tron mc->un.value.level[AUDIO_MIXER_LEVEL_MONO] = sc->sc_vgm;
913 1.1 tron break;
914 1.1 tron
915 1.1 tron default:
916 1.1 tron err = EINVAL;
917 1.1 tron break;
918 1.1 tron }
919 1.1 tron
920 1.1 tron return err;
921 1.1 tron }
922 1.1 tron
923 1.1 tron static int
924 1.11 christos btsco_query_devinfo(void *hdl, mixer_devinfo_t *di)
925 1.1 tron {
926 1.1 tron /* struct btsco_softc *sc = hdl; */
927 1.1 tron int err = 0;
928 1.1 tron
929 1.1 tron switch(di->index) {
930 1.1 tron case BTSCO_VGS:
931 1.1 tron di->mixer_class = BTSCO_INPUT_CLASS;
932 1.1 tron di->next = di->prev = AUDIO_MIXER_LAST;
933 1.1 tron strcpy(di->label.name, AudioNspeaker);
934 1.1 tron di->type = AUDIO_MIXER_VALUE;
935 1.1 tron strcpy(di->un.v.units.name, AudioNvolume);
936 1.1 tron di->un.v.num_channels = 1;
937 1.1 tron di->un.v.delta = BTSCO_DELTA;
938 1.1 tron break;
939 1.1 tron
940 1.1 tron case BTSCO_VGM:
941 1.1 tron di->mixer_class = BTSCO_INPUT_CLASS;
942 1.1 tron di->next = di->prev = AUDIO_MIXER_LAST;
943 1.1 tron strcpy(di->label.name, AudioNmicrophone);
944 1.1 tron di->type = AUDIO_MIXER_VALUE;
945 1.1 tron strcpy(di->un.v.units.name, AudioNvolume);
946 1.1 tron di->un.v.num_channels = 1;
947 1.1 tron di->un.v.delta = BTSCO_DELTA;
948 1.1 tron break;
949 1.1 tron
950 1.1 tron case BTSCO_INPUT_CLASS:
951 1.1 tron di->mixer_class = BTSCO_INPUT_CLASS;
952 1.1 tron di->next = di->prev = AUDIO_MIXER_LAST;
953 1.1 tron strcpy(di->label.name, AudioCinputs);
954 1.1 tron di->type = AUDIO_MIXER_CLASS;
955 1.1 tron break;
956 1.1 tron
957 1.1 tron default:
958 1.1 tron err = ENXIO;
959 1.1 tron break;
960 1.1 tron }
961 1.1 tron
962 1.1 tron return err;
963 1.1 tron }
964 1.1 tron
965 1.1 tron /*
966 1.1 tron * Allocate Ring Buffers.
967 1.1 tron */
968 1.1 tron static void *
969 1.25 jmcneill btsco_allocm(void *hdl, int direction, size_t size)
970 1.1 tron {
971 1.1 tron struct btsco_softc *sc = hdl;
972 1.1 tron void *addr;
973 1.1 tron
974 1.16 plunky DPRINTF("%s: size %d direction %d\n", sc->sc_name, size, direction);
975 1.1 tron
976 1.25 jmcneill addr = kmem_alloc(size, KM_SLEEP);
977 1.1 tron
978 1.36 chs if (direction == AUMODE_PLAY) {
979 1.1 tron sc->sc_tx_buf = addr;
980 1.1 tron sc->sc_tx_refcnt = 0;
981 1.1 tron }
982 1.1 tron
983 1.1 tron return addr;
984 1.1 tron }
985 1.1 tron
986 1.1 tron /*
987 1.1 tron * Free Ring Buffers.
988 1.1 tron *
989 1.1 tron * Because we used external memory for the tx mbufs, we dont
990 1.1 tron * want to free the memory until all the mbufs are done with
991 1.1 tron *
992 1.1 tron * Just to be sure, dont free if something is still pending.
993 1.1 tron * This would be a memory leak but at least there is a warning..
994 1.1 tron */
995 1.1 tron static void
996 1.25 jmcneill btsco_freem(void *hdl, void *addr, size_t size)
997 1.1 tron {
998 1.1 tron struct btsco_softc *sc = hdl;
999 1.1 tron int count = hz / 2;
1000 1.1 tron
1001 1.1 tron if (addr == sc->sc_tx_buf) {
1002 1.16 plunky DPRINTF("%s: tx_refcnt=%d\n", sc->sc_name, sc->sc_tx_refcnt);
1003 1.1 tron
1004 1.1 tron sc->sc_tx_buf = NULL;
1005 1.1 tron
1006 1.1 tron while (sc->sc_tx_refcnt> 0 && count-- > 0)
1007 1.25 jmcneill kpause("drain", false, 1, NULL);
1008 1.1 tron
1009 1.1 tron if (sc->sc_tx_refcnt > 0) {
1010 1.18 plunky aprint_error("%s: ring buffer unreleased!\n", sc->sc_name);
1011 1.1 tron return;
1012 1.1 tron }
1013 1.1 tron }
1014 1.1 tron
1015 1.25 jmcneill kmem_free(addr, size);
1016 1.1 tron }
1017 1.1 tron
1018 1.1 tron static int
1019 1.11 christos btsco_get_props(void *hdl)
1020 1.1 tron {
1021 1.1 tron
1022 1.1 tron return AUDIO_PROP_FULLDUPLEX;
1023 1.1 tron }
1024 1.1 tron
1025 1.25 jmcneill static void
1026 1.25 jmcneill btsco_get_locks(void *hdl, kmutex_t **intr, kmutex_t **thread)
1027 1.25 jmcneill {
1028 1.25 jmcneill struct btsco_softc *sc = hdl;
1029 1.25 jmcneill
1030 1.35 nat *thread = &sc->sc_lock;
1031 1.35 nat *intr = bt_lock;
1032 1.25 jmcneill }
1033 1.25 jmcneill
1034 1.1 tron /*
1035 1.1 tron * Handle private ioctl. We pass information out about how to talk
1036 1.1 tron * to the device and mixer.
1037 1.1 tron */
1038 1.1 tron static int
1039 1.12 christos btsco_dev_ioctl(void *hdl, u_long cmd, void *addr, int flag,
1040 1.11 christos struct lwp *l)
1041 1.1 tron {
1042 1.1 tron struct btsco_softc *sc = hdl;
1043 1.1 tron struct btsco_info *bi = (struct btsco_info *)addr;
1044 1.1 tron int err = 0;
1045 1.1 tron
1046 1.16 plunky DPRINTF("%s cmd 0x%lx flag %d\n", sc->sc_name, cmd, flag);
1047 1.1 tron
1048 1.1 tron switch (cmd) {
1049 1.1 tron case BTSCO_GETINFO:
1050 1.1 tron memset(bi, 0, sizeof(*bi));
1051 1.1 tron bdaddr_copy(&bi->laddr, &sc->sc_laddr);
1052 1.1 tron bdaddr_copy(&bi->raddr, &sc->sc_raddr);
1053 1.1 tron bi->channel = sc->sc_channel;
1054 1.1 tron bi->vgs = BTSCO_VGS;
1055 1.1 tron bi->vgm = BTSCO_VGM;
1056 1.1 tron break;
1057 1.1 tron
1058 1.1 tron default:
1059 1.1 tron err = EPASSTHROUGH;
1060 1.1 tron break;
1061 1.1 tron }
1062 1.1 tron
1063 1.1 tron return err;
1064 1.1 tron }
1065 1.1 tron
1066 1.1 tron
1067 1.1 tron /*****************************************************************************
1068 1.1 tron *
1069 1.1 tron * misc btsco functions
1070 1.1 tron *
1071 1.1 tron */
1072 1.1 tron
1073 1.1 tron /*
1074 1.1 tron * Our transmit interrupt. This is triggered when a new block is to be
1075 1.1 tron * sent. We send mtu sized chunks of the block as mbufs with external
1076 1.33 rtr * storage to sco_send_pcb()
1077 1.1 tron */
1078 1.1 tron static void
1079 1.1 tron btsco_intr(void *arg)
1080 1.1 tron {
1081 1.1 tron struct btsco_softc *sc = arg;
1082 1.1 tron struct mbuf *m;
1083 1.1 tron uint8_t *block;
1084 1.1 tron int mlen, size;
1085 1.1 tron
1086 1.1 tron DPRINTFN(10, "%s block %p size %d\n",
1087 1.16 plunky sc->sc_name, sc->sc_tx_block, sc->sc_tx_size);
1088 1.1 tron
1089 1.1 tron if (sc->sc_sco == NULL)
1090 1.1 tron return; /* connection is lost */
1091 1.1 tron
1092 1.35 nat mutex_enter(bt_lock);
1093 1.1 tron block = sc->sc_tx_block;
1094 1.1 tron size = sc->sc_tx_size;
1095 1.1 tron sc->sc_tx_block = NULL;
1096 1.1 tron sc->sc_tx_size = 0;
1097 1.1 tron
1098 1.1 tron while (size > 0) {
1099 1.1 tron MGETHDR(m, M_DONTWAIT, MT_DATA);
1100 1.1 tron if (m == NULL)
1101 1.1 tron break;
1102 1.1 tron
1103 1.1 tron mlen = MIN(sc->sc_mtu, size);
1104 1.1 tron
1105 1.1 tron /* I think M_DEVBUF is true but not relevant */
1106 1.1 tron MEXTADD(m, block, mlen, M_DEVBUF, btsco_extfree, sc);
1107 1.1 tron if ((m->m_flags & M_EXT) == 0) {
1108 1.1 tron m_free(m);
1109 1.1 tron break;
1110 1.1 tron }
1111 1.1 tron sc->sc_tx_refcnt++;
1112 1.1 tron
1113 1.1 tron m->m_pkthdr.len = m->m_len = mlen;
1114 1.1 tron sc->sc_tx_pending++;
1115 1.1 tron
1116 1.33 rtr if (sco_send_pcb(sc->sc_sco, m) > 0) {
1117 1.1 tron sc->sc_tx_pending--;
1118 1.1 tron break;
1119 1.1 tron }
1120 1.1 tron
1121 1.1 tron block += mlen;
1122 1.1 tron size -= mlen;
1123 1.1 tron }
1124 1.21 plunky mutex_exit(bt_lock);
1125 1.1 tron }
1126 1.1 tron
1127 1.1 tron /*
1128 1.1 tron * Release the mbuf, we keep a reference count on the tx buffer so
1129 1.1 tron * that we dont release it before its free.
1130 1.1 tron */
1131 1.1 tron static void
1132 1.12 christos btsco_extfree(struct mbuf *m, void *addr, size_t size,
1133 1.10 christos void *arg)
1134 1.1 tron {
1135 1.1 tron struct btsco_softc *sc = arg;
1136 1.1 tron
1137 1.1 tron if (m != NULL)
1138 1.17 ad pool_cache_put(mb_cache, m);
1139 1.1 tron
1140 1.1 tron sc->sc_tx_refcnt--;
1141 1.1 tron }
1142