cs4231.c revision 1.16 1 /* $NetBSD: cs4231.c,v 1.16 2004/07/09 18:45:56 petrov Exp $ */
2
3 /*-
4 * Copyright (c) 1998, 1999 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Paul Kranenburg.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: cs4231.c,v 1.16 2004/07/09 18:45:56 petrov Exp $");
41
42 #include "audio.h"
43 #if NAUDIO > 0
44
45 #include <sys/param.h>
46 #include <sys/systm.h>
47 #include <sys/errno.h>
48 #include <sys/device.h>
49 #include <sys/malloc.h>
50
51 #include <machine/autoconf.h>
52 #include <machine/cpu.h>
53
54 #include <sys/audioio.h>
55 #include <dev/audio_if.h>
56
57 #include <dev/ic/ad1848reg.h>
58 #include <dev/ic/cs4231reg.h>
59 #include <dev/ic/ad1848var.h>
60 #include <dev/ic/cs4231var.h>
61
62 /*---*/
63 #define CSAUDIO_DAC_LVL 0
64 #define CSAUDIO_LINE_IN_LVL 1
65 #define CSAUDIO_MONO_LVL 2
66 #define CSAUDIO_CD_LVL 3
67 #define CSAUDIO_OUTPUT_LVL 4
68 #define CSAUDIO_OUT_LVL 5
69 #define CSAUDIO_LINE_IN_MUTE 6
70 #define CSAUDIO_DAC_MUTE 7
71 #define CSAUDIO_CD_MUTE 8
72 #define CSAUDIO_MONO_MUTE 9
73 #define CSAUDIO_OUTPUT_MUTE 10
74 #define CSAUDIO_OUT_MUTE 11
75 #define CSAUDIO_REC_LVL 12
76 #define CSAUDIO_RECORD_SOURCE 13
77
78 #define CSAUDIO_INPUT_CLASS 14
79 #define CSAUDIO_MONITOR_CLASS 15
80 #define CSAUDIO_RECORD_CLASS 16
81
82 #ifdef AUDIO_DEBUG
83 int cs4231_debug = 0;
84 #define DPRINTF(x) if (cs4231_debug) printf x
85 #else
86 #define DPRINTF(x)
87 #endif
88
89 struct audio_device cs4231_device = {
90 "cs4231",
91 "x",
92 "audio"
93 };
94
95
96 /* ad1848 sc_{read,write}reg */
97 static int cs4231_read(struct ad1848_softc *, int);
98 static void cs4231_write(struct ad1848_softc *, int, int);
99
100 int
101 cs4231_read(sc, index)
102 struct ad1848_softc *sc;
103 int index;
104 {
105
106 return bus_space_read_1(sc->sc_iot, sc->sc_ioh, (index << 2));
107 }
108
109 void
110 cs4231_write(sc, index, value)
111 struct ad1848_softc *sc;
112 int index, value;
113 {
114
115 bus_space_write_1(sc->sc_iot, sc->sc_ioh, (index << 2), value);
116 }
117
118
119 void
120 cs4231_common_attach(sc, ioh)
121 struct cs4231_softc *sc;
122 bus_space_handle_t ioh;
123 {
124 char *buf;
125 int reg;
126
127 sc->sc_ad1848.parent = sc;
128 sc->sc_ad1848.sc_iot = sc->sc_bustag;
129 sc->sc_ad1848.sc_ioh = ioh;
130 sc->sc_ad1848.sc_readreg = cs4231_read;
131 sc->sc_ad1848.sc_writereg = cs4231_write;
132
133 sc->sc_playback.t_name = "playback";
134 sc->sc_capture.t_name = "capture";
135
136 evcnt_attach_dynamic(&sc->sc_intrcnt, EVCNT_TYPE_INTR,
137 NULL,
138 sc->sc_ad1848.sc_dev.dv_xname, "total");
139
140 evcnt_attach_dynamic(&sc->sc_playback.t_intrcnt, EVCNT_TYPE_INTR,
141 &sc->sc_intrcnt,
142 sc->sc_ad1848.sc_dev.dv_xname, "playback");
143
144 evcnt_attach_dynamic(&sc->sc_playback.t_ierrcnt, EVCNT_TYPE_INTR,
145 &sc->sc_intrcnt,
146 sc->sc_ad1848.sc_dev.dv_xname, "perrors");
147
148 evcnt_attach_dynamic(&sc->sc_capture.t_intrcnt, EVCNT_TYPE_INTR,
149 &sc->sc_intrcnt,
150 sc->sc_ad1848.sc_dev.dv_xname, "capture");
151
152 evcnt_attach_dynamic(&sc->sc_capture.t_ierrcnt, EVCNT_TYPE_INTR,
153 &sc->sc_intrcnt,
154 sc->sc_ad1848.sc_dev.dv_xname, "cerrors");
155
156 /* put chip in native mode to access (extended) ID register */
157 reg = ad_read(&sc->sc_ad1848, SP_MISC_INFO);
158 ad_write(&sc->sc_ad1848, SP_MISC_INFO, reg | MODE2);
159
160 /* read version numbers from I25 */
161 reg = ad_read(&sc->sc_ad1848, CS_VERSION_ID);
162 switch (reg & (CS_VERSION_NUMBER | CS_VERSION_CHIPID)) {
163 case 0xa0:
164 sc->sc_ad1848.chip_name = "CS4231A";
165 break;
166 case 0x80:
167 sc->sc_ad1848.chip_name = "CS4231";
168 break;
169 case 0x82:
170 sc->sc_ad1848.chip_name = "CS4232";
171 break;
172 default:
173 if ((buf = malloc(32, M_TEMP, M_NOWAIT)) != NULL) {
174 snprintf(buf, 32, "unknown rev: %x/%x",
175 reg&0xe0, reg&7);
176 sc->sc_ad1848.chip_name = buf;
177 }
178 }
179
180 sc->sc_ad1848.mode = 2; /* put ad1848 driver in `MODE 2' mode */
181 ad1848_attach(&sc->sc_ad1848);
182 }
183
184 void *
185 cs4231_malloc(addr, direction, size, pool, flags)
186 void *addr;
187 int direction;
188 size_t size;
189 struct malloc_type *pool;
190 int flags;
191 {
192 struct cs4231_softc *sc = addr;
193 bus_dma_tag_t dmatag = sc->sc_dmatag;
194 struct cs_dma *p;
195
196 p = malloc(sizeof(*p), pool, flags);
197 if (p == NULL)
198 return (NULL);
199
200 /* Allocate a DMA map */
201 if (bus_dmamap_create(dmatag, size, 1, size, 0,
202 BUS_DMA_NOWAIT, &p->dmamap) != 0)
203 goto fail1;
204
205 /* Allocate DMA memory */
206 p->size = size;
207 if (bus_dmamem_alloc(dmatag, size, 64*1024, 0,
208 p->segs, sizeof(p->segs)/sizeof(p->segs[0]),
209 &p->nsegs, BUS_DMA_NOWAIT) != 0)
210 goto fail2;
211
212 /* Map DMA memory into kernel space */
213 if (bus_dmamem_map(dmatag, p->segs, p->nsegs, p->size,
214 &p->addr, BUS_DMA_NOWAIT|BUS_DMA_COHERENT) != 0)
215 goto fail3;
216
217 /* Load the buffer */
218 if (bus_dmamap_load(dmatag, p->dmamap,
219 p->addr, size, NULL, BUS_DMA_NOWAIT) != 0)
220 goto fail4;
221
222 p->next = sc->sc_dmas;
223 sc->sc_dmas = p;
224 return (p->addr);
225
226 fail4:
227 bus_dmamem_unmap(dmatag, p->addr, p->size);
228 fail3:
229 bus_dmamem_free(dmatag, p->segs, p->nsegs);
230 fail2:
231 bus_dmamap_destroy(dmatag, p->dmamap);
232 fail1:
233 free(p, pool);
234 return (NULL);
235 }
236
237 void
238 cs4231_free(addr, ptr, pool)
239 void *addr;
240 void *ptr;
241 struct malloc_type *pool;
242 {
243 struct cs4231_softc *sc = addr;
244 bus_dma_tag_t dmatag = sc->sc_dmatag;
245 struct cs_dma *p, **pp;
246
247 for (pp = &sc->sc_dmas; (p = *pp) != NULL; pp = &(*pp)->next) {
248 if (p->addr != ptr)
249 continue;
250 bus_dmamap_unload(dmatag, p->dmamap);
251 bus_dmamem_unmap(dmatag, p->addr, p->size);
252 bus_dmamem_free(dmatag, p->segs, p->nsegs);
253 bus_dmamap_destroy(dmatag, p->dmamap);
254 *pp = p->next;
255 free(p, pool);
256 return;
257 }
258 printf("cs4231_free: rogue pointer\n");
259 }
260
261
262 /*
263 * Set up transfer and return DMA address and byte count in paddr and psize
264 * for bus dependent trigger_{in,out}put to load into the DMA controller.
265 */
266 int
267 cs4231_transfer_init(sc, t, paddr, psize, start, end, blksize, intr, arg)
268 struct cs4231_softc *sc;
269 struct cs_transfer *t;
270 bus_addr_t *paddr;
271 bus_size_t *psize;
272 void *start, *end;
273 int blksize;
274 void (*intr)(void *);
275 void *arg;
276 {
277 struct cs_dma *p;
278 vsize_t n;
279
280 if (t->t_active) {
281 printf("%s: %s already running\n",
282 sc->sc_ad1848.sc_dev.dv_xname, t->t_name);
283 return (EINVAL);
284 }
285
286 t->t_intr = intr;
287 t->t_arg = arg;
288
289 for (p = sc->sc_dmas; p != NULL && p->addr != start; p = p->next)
290 continue;
291 if (p == NULL) {
292 printf("%s: bad %s addr %p\n",
293 sc->sc_ad1848.sc_dev.dv_xname, t->t_name, start);
294 return (EINVAL);
295 }
296
297 n = (char *)end - (char *)start;
298
299 t->t_dma = p; /* the DMA memory segment */
300 t->t_segsz = n; /* size of DMA segment */
301 t->t_blksz = blksize; /* do transfers in blksize chunks */
302
303 if (n > t->t_blksz)
304 n = t->t_blksz;
305
306 t->t_cnt = n;
307
308 /* for caller to load into DMA controller */
309 *paddr = t->t_dma->dmamap->dm_segs[0].ds_addr;
310 *psize = n;
311
312 DPRINTF(("%s: init %s: [%p..%p] %lu bytes %lu blocks;"
313 " DMA at 0x%lx count %lu\n",
314 sc->sc_ad1848.sc_dev.dv_xname, t->t_name,
315 start, end, (u_long)t->t_segsz, (u_long)t->t_blksz,
316 (u_long)*paddr, (u_long)*psize));
317
318 t->t_active = 1;
319 return (0);
320 }
321
322 /*
323 * Compute next DMA address/counter, update transfer status.
324 */
325 void
326 cs4231_transfer_advance(t, paddr, psize)
327 struct cs_transfer *t;
328 bus_addr_t *paddr;
329 bus_size_t *psize;
330 {
331 bus_addr_t dmabase, nextaddr;
332 bus_size_t togo;
333
334 dmabase = t->t_dma->dmamap->dm_segs[0].ds_addr;
335
336 togo = t->t_segsz - t->t_cnt;
337 if (togo == 0) { /* roll over */
338 nextaddr = dmabase;
339 t->t_cnt = togo = t->t_blksz;
340 } else {
341 nextaddr = dmabase + t->t_cnt;
342 if (togo > t->t_blksz)
343 togo = t->t_blksz;
344 t->t_cnt += togo;
345 }
346
347 /* for caller to load into DMA controller */
348 *paddr = nextaddr;
349 *psize = togo;
350 }
351
352
353 int
354 cs4231_open(addr, flags)
355 void *addr;
356 int flags;
357 {
358 struct cs4231_softc *sc = addr;
359
360 DPRINTF(("sa_open: unit %p\n", sc));
361
362 sc->sc_playback.t_active = 0;
363 sc->sc_playback.t_intr = NULL;
364 sc->sc_playback.t_arg = NULL;
365
366 sc->sc_capture.t_active = 0;
367 sc->sc_capture.t_intr = NULL;
368 sc->sc_capture.t_arg = NULL;
369
370 /* no interrupts from ad1848 */
371 ad_write(&sc->sc_ad1848, SP_PIN_CONTROL, 0);
372 ad1848_reset(&sc->sc_ad1848);
373
374 DPRINTF(("sa_open: ok -> sc=%p\n", sc));
375 return (0);
376 }
377
378 void
379 cs4231_close(addr)
380 void *addr;
381 {
382
383 DPRINTF(("sa_close: sc=%p\n", addr));
384
385 /* audio(9) already called halt methods */
386
387 DPRINTF(("sa_close: closed.\n"));
388 }
389
390 int
391 cs4231_getdev(addr, retp)
392 void *addr;
393 struct audio_device *retp;
394 {
395
396 *retp = cs4231_device;
397 return (0);
398 }
399
400 static ad1848_devmap_t csmapping[] = {
401 { CSAUDIO_DAC_LVL, AD1848_KIND_LVL, AD1848_AUX1_CHANNEL },
402 { CSAUDIO_LINE_IN_LVL, AD1848_KIND_LVL, AD1848_LINE_CHANNEL },
403 { CSAUDIO_MONO_LVL, AD1848_KIND_LVL, AD1848_MONO_CHANNEL },
404 { CSAUDIO_CD_LVL, AD1848_KIND_LVL, AD1848_AUX2_CHANNEL },
405 { CSAUDIO_OUTPUT_LVL, AD1848_KIND_LVL, AD1848_MONITOR_CHANNEL },
406 { CSAUDIO_OUT_LVL, AD1848_KIND_LVL, AD1848_DAC_CHANNEL },
407 { CSAUDIO_DAC_MUTE, AD1848_KIND_MUTE, AD1848_AUX1_CHANNEL },
408 { CSAUDIO_LINE_IN_MUTE, AD1848_KIND_MUTE, AD1848_LINE_CHANNEL },
409 { CSAUDIO_MONO_MUTE, AD1848_KIND_MUTE, AD1848_MONO_CHANNEL },
410 { CSAUDIO_CD_MUTE, AD1848_KIND_MUTE, AD1848_AUX2_CHANNEL },
411 { CSAUDIO_OUTPUT_MUTE, AD1848_KIND_MUTE, AD1848_MONITOR_CHANNEL },
412 { CSAUDIO_OUT_MUTE, AD1848_KIND_MUTE, AD1848_OUT_CHANNEL },
413 { CSAUDIO_REC_LVL, AD1848_KIND_RECORDGAIN, -1 },
414 { CSAUDIO_RECORD_SOURCE, AD1848_KIND_RECORDSOURCE, -1 }
415 };
416
417 static int nummap = sizeof(csmapping) / sizeof(csmapping[0]);
418
419
420 int
421 cs4231_set_port(addr, cp)
422 void *addr;
423 mixer_ctrl_t *cp;
424 {
425 struct ad1848_softc *ac = addr;
426
427 DPRINTF(("cs4231_set_port: port=%d", cp->dev));
428 return (ad1848_mixer_set_port(ac, csmapping, nummap, cp));
429 }
430
431 int
432 cs4231_get_port(addr, cp)
433 void *addr;
434 mixer_ctrl_t *cp;
435 {
436 struct ad1848_softc *ac = addr;
437
438 DPRINTF(("cs4231_get_port: port=%d", cp->dev));
439 return (ad1848_mixer_get_port(ac, csmapping, nummap, cp));
440 }
441
442 int
443 cs4231_get_props(addr)
444 void *addr;
445 {
446
447 return (AUDIO_PROP_FULLDUPLEX);
448 }
449
450 int
451 cs4231_query_devinfo(addr, dip)
452 void *addr;
453 mixer_devinfo_t *dip;
454 {
455
456 switch(dip->index) {
457
458 case CSAUDIO_DAC_LVL: /* dacout */
459 dip->type = AUDIO_MIXER_VALUE;
460 dip->mixer_class = CSAUDIO_INPUT_CLASS;
461 dip->prev = AUDIO_MIXER_LAST;
462 dip->next = CSAUDIO_DAC_MUTE;
463 strcpy(dip->label.name, AudioNdac);
464 dip->un.v.num_channels = 2;
465 strcpy(dip->un.v.units.name, AudioNvolume);
466 break;
467
468 case CSAUDIO_LINE_IN_LVL: /* line */
469 dip->type = AUDIO_MIXER_VALUE;
470 dip->mixer_class = CSAUDIO_INPUT_CLASS;
471 dip->prev = AUDIO_MIXER_LAST;
472 dip->next = CSAUDIO_LINE_IN_MUTE;
473 strcpy(dip->label.name, AudioNline);
474 dip->un.v.num_channels = 2;
475 strcpy(dip->un.v.units.name, AudioNvolume);
476 break;
477
478 case CSAUDIO_MONO_LVL: /* mono/microphone mixer */
479 dip->type = AUDIO_MIXER_VALUE;
480 dip->mixer_class = CSAUDIO_INPUT_CLASS;
481 dip->prev = AUDIO_MIXER_LAST;
482 dip->next = CSAUDIO_MONO_MUTE;
483 strcpy(dip->label.name, AudioNmicrophone);
484 dip->un.v.num_channels = 1;
485 strcpy(dip->un.v.units.name, AudioNvolume);
486 break;
487
488 case CSAUDIO_CD_LVL: /* cd */
489 dip->type = AUDIO_MIXER_VALUE;
490 dip->mixer_class = CSAUDIO_INPUT_CLASS;
491 dip->prev = AUDIO_MIXER_LAST;
492 dip->next = CSAUDIO_CD_MUTE;
493 strcpy(dip->label.name, AudioNcd);
494 dip->un.v.num_channels = 2;
495 strcpy(dip->un.v.units.name, AudioNvolume);
496 break;
497
498
499 case CSAUDIO_OUTPUT_LVL: /* monitor level */
500 dip->type = AUDIO_MIXER_VALUE;
501 dip->mixer_class = CSAUDIO_MONITOR_CLASS;
502 dip->next = CSAUDIO_OUTPUT_MUTE;
503 dip->prev = AUDIO_MIXER_LAST;
504 strcpy(dip->label.name, AudioNmonitor);
505 dip->un.v.num_channels = 1;
506 strcpy(dip->un.v.units.name, AudioNvolume);
507 break;
508
509 case CSAUDIO_OUT_LVL: /* cs4231 output volume */
510 dip->type = AUDIO_MIXER_VALUE;
511 dip->mixer_class = CSAUDIO_MONITOR_CLASS;
512 dip->next = dip->prev = AUDIO_MIXER_LAST;
513 strcpy(dip->label.name, AudioNmaster);
514 dip->un.v.num_channels = 2;
515 strcpy(dip->un.v.units.name, AudioNvolume);
516 break;
517
518 case CSAUDIO_OUT_MUTE: /* mute built-in speaker */
519 dip->mixer_class = CSAUDIO_MONITOR_CLASS;
520 dip->type = AUDIO_MIXER_ENUM;
521 dip->prev = CSAUDIO_MONITOR_CLASS;
522 dip->next = AUDIO_MIXER_LAST;
523 strcpy(dip->label.name, AudioNmono);
524 /* names reversed, this is a "mute" value used as "mono enabled" */
525 dip->un.e.num_mem = 2;
526 strcpy(dip->un.e.member[0].label.name, AudioNon);
527 dip->un.e.member[0].ord = 0;
528 strcpy(dip->un.e.member[1].label.name, AudioNoff);
529 dip->un.e.member[1].ord = 1;
530 break;
531
532 case CSAUDIO_LINE_IN_MUTE:
533 dip->mixer_class = CSAUDIO_INPUT_CLASS;
534 dip->type = AUDIO_MIXER_ENUM;
535 dip->prev = CSAUDIO_LINE_IN_LVL;
536 dip->next = AUDIO_MIXER_LAST;
537 goto mute;
538
539 case CSAUDIO_DAC_MUTE:
540 dip->mixer_class = CSAUDIO_INPUT_CLASS;
541 dip->type = AUDIO_MIXER_ENUM;
542 dip->prev = CSAUDIO_DAC_LVL;
543 dip->next = AUDIO_MIXER_LAST;
544 goto mute;
545
546 case CSAUDIO_CD_MUTE:
547 dip->mixer_class = CSAUDIO_INPUT_CLASS;
548 dip->type = AUDIO_MIXER_ENUM;
549 dip->prev = CSAUDIO_CD_LVL;
550 dip->next = AUDIO_MIXER_LAST;
551 goto mute;
552
553 case CSAUDIO_MONO_MUTE:
554 dip->mixer_class = CSAUDIO_INPUT_CLASS;
555 dip->type = AUDIO_MIXER_ENUM;
556 dip->prev = CSAUDIO_MONO_LVL;
557 dip->next = AUDIO_MIXER_LAST;
558 goto mute;
559
560 case CSAUDIO_OUTPUT_MUTE:
561 dip->mixer_class = CSAUDIO_MONITOR_CLASS;
562 dip->type = AUDIO_MIXER_ENUM;
563 dip->prev = CSAUDIO_OUTPUT_LVL;
564 dip->next = AUDIO_MIXER_LAST;
565 mute:
566 strcpy(dip->label.name, AudioNmute);
567 dip->un.e.num_mem = 2;
568 strcpy(dip->un.e.member[0].label.name, AudioNoff);
569 dip->un.e.member[0].ord = 0;
570 strcpy(dip->un.e.member[1].label.name, AudioNon);
571 dip->un.e.member[1].ord = 1;
572 break;
573
574 case CSAUDIO_REC_LVL: /* record level */
575 dip->type = AUDIO_MIXER_VALUE;
576 dip->mixer_class = CSAUDIO_RECORD_CLASS;
577 dip->prev = AUDIO_MIXER_LAST;
578 dip->next = CSAUDIO_RECORD_SOURCE;
579 strcpy(dip->label.name, AudioNrecord);
580 dip->un.v.num_channels = 2;
581 strcpy(dip->un.v.units.name, AudioNvolume);
582 break;
583
584 case CSAUDIO_RECORD_SOURCE:
585 dip->mixer_class = CSAUDIO_RECORD_CLASS;
586 dip->type = AUDIO_MIXER_ENUM;
587 dip->prev = CSAUDIO_REC_LVL;
588 dip->next = AUDIO_MIXER_LAST;
589 strcpy(dip->label.name, AudioNsource);
590 dip->un.e.num_mem = 4;
591 strcpy(dip->un.e.member[0].label.name, AudioNoutput);
592 dip->un.e.member[0].ord = DAC_IN_PORT;
593 strcpy(dip->un.e.member[1].label.name, AudioNmicrophone);
594 dip->un.e.member[1].ord = MIC_IN_PORT;
595 strcpy(dip->un.e.member[2].label.name, AudioNdac);
596 dip->un.e.member[2].ord = AUX1_IN_PORT;
597 strcpy(dip->un.e.member[3].label.name, AudioNline);
598 dip->un.e.member[3].ord = LINE_IN_PORT;
599 break;
600
601 case CSAUDIO_INPUT_CLASS: /* input class descriptor */
602 dip->type = AUDIO_MIXER_CLASS;
603 dip->mixer_class = CSAUDIO_INPUT_CLASS;
604 dip->next = dip->prev = AUDIO_MIXER_LAST;
605 strcpy(dip->label.name, AudioCinputs);
606 break;
607
608 case CSAUDIO_MONITOR_CLASS: /* output class descriptor */
609 dip->type = AUDIO_MIXER_CLASS;
610 dip->mixer_class = CSAUDIO_MONITOR_CLASS;
611 dip->next = dip->prev = AUDIO_MIXER_LAST;
612 strcpy(dip->label.name, AudioCmonitor);
613 break;
614
615 case CSAUDIO_RECORD_CLASS: /* record source class */
616 dip->type = AUDIO_MIXER_CLASS;
617 dip->mixer_class = CSAUDIO_RECORD_CLASS;
618 dip->next = dip->prev = AUDIO_MIXER_LAST;
619 strcpy(dip->label.name, AudioCrecord);
620 break;
621
622 default:
623 return ENXIO;
624 /*NOTREACHED*/
625 }
626 DPRINTF(("AUDIO_MIXER_DEVINFO: name=%s\n", dip->label.name));
627
628 return (0);
629 }
630
631 #endif /* NAUDIO > 0 */
632