xref: /freebsd/sys/dev/sound/pci/hdspe-pcm.c (revision 6486b015fc84e96725fef22b0e3363351399ae83)
1 /*-
2  * Copyright (c) 2012 Ruslan Bukin <br@bsdpad.com>
3  * All rights reserved.
4  *
5  * Redistribution and use in source and binary forms, with or without
6  * modification, are permitted provided that the following conditions
7  * are met:
8  * 1. Redistributions of source code must retain the above copyright
9  *    notice, this list of conditions and the following disclaimer.
10  * 2. Redistributions in binary form must reproduce the above copyright
11  *    notice, this list of conditions and the following disclaimer in the
12  *    documentation and/or other materials provided with the distribution.
13  *
14  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
15  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
16  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
17  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
18  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
19  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
20  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
21  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
22  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
23  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
24  * SUCH DAMAGE.
25  */
26 
27 /*
28  * RME HDSPe driver for FreeBSD (pcm-part).
29  * Supported cards: AIO, RayDAT.
30  */
31 
32 #include <dev/sound/pcm/sound.h>
33 #include <dev/sound/pci/hdspe.h>
34 #include <dev/sound/chip.h>
35 
36 #include <dev/pci/pcireg.h>
37 #include <dev/pci/pcivar.h>
38 
39 #include <mixer_if.h>
40 
41 SND_DECLARE_FILE("$FreeBSD$");
42 
43 struct hdspe_latency {
44 	uint32_t n;
45 	uint32_t period;
46 	float ms;
47 };
48 
49 static struct hdspe_latency latency_map[] = {
50 	{ 7,   32, 0.7 },
51 	{ 0,   64, 1.5 },
52 	{ 1,  128,   3 },
53 	{ 2,  256,   6 },
54 	{ 3,  512,  12 },
55 	{ 4, 1024,  23 },
56 	{ 5, 2048,  46 },
57 	{ 6, 4096,  93 },
58 
59 	{ 0,    0,   0 },
60 };
61 
62 struct hdspe_rate {
63 	uint32_t speed;
64 	uint32_t reg;
65 };
66 
67 static struct hdspe_rate rate_map[] = {
68 	{  32000, (HDSPE_FREQ_32000) },
69 	{  44100, (HDSPE_FREQ_44100) },
70 	{  48000, (HDSPE_FREQ_48000) },
71 	{  64000, (HDSPE_FREQ_32000 | HDSPE_FREQ_DOUBLE) },
72 	{  88200, (HDSPE_FREQ_44100 | HDSPE_FREQ_DOUBLE) },
73 	{  96000, (HDSPE_FREQ_48000 | HDSPE_FREQ_DOUBLE) },
74 	{ 128000, (HDSPE_FREQ_32000 | HDSPE_FREQ_QUAD)   },
75 	{ 176400, (HDSPE_FREQ_44100 | HDSPE_FREQ_QUAD)   },
76 	{ 192000, (HDSPE_FREQ_48000 | HDSPE_FREQ_QUAD)   },
77 
78 	{ 0, 0 },
79 };
80 
81 
82 static int
83 hdspe_hw_mixer(struct sc_chinfo *ch, unsigned int dst,
84     unsigned int src, unsigned short data)
85 {
86 	struct sc_pcminfo *scp = ch->parent;
87 	struct sc_info *sc = scp->sc;
88 	int offs = 0;
89 
90 	if (ch->dir == PCMDIR_PLAY)
91 		offs = 64;
92 
93 	hdspe_write_4(sc, HDSPE_MIXER_BASE +
94 	    ((offs + src + 128 * dst) * sizeof(uint32_t)),
95 	    data & 0xFFFF);
96 
97 	return 0;
98 };
99 
100 static int
101 hdspechan_setgain(struct sc_chinfo *ch)
102 {
103 
104 	hdspe_hw_mixer(ch, ch->lslot, ch->lslot,
105 	    ch->lvol * HDSPE_MAX_GAIN / 100);
106 	hdspe_hw_mixer(ch, ch->rslot, ch->rslot,
107 	    ch->rvol * HDSPE_MAX_GAIN / 100);
108 
109 	return 0;
110 }
111 
112 static int
113 hdspemixer_init(struct snd_mixer *m)
114 {
115 	struct sc_pcminfo *scp = mix_getdevinfo(m);
116 	struct sc_info *sc = scp->sc;
117 	int mask;
118 
119 	if (sc == NULL)
120 		return -1;
121 
122 	mask = SOUND_MASK_PCM;
123 
124 	if (scp->hc->play)
125 		mask |= SOUND_MASK_VOLUME;
126 
127 	if (scp->hc->rec)
128 		mask |= SOUND_MASK_RECLEV;
129 
130 	snd_mtxlock(sc->lock);
131 	pcm_setflags(scp->dev, pcm_getflags(scp->dev) | SD_F_SOFTPCMVOL);
132 	mix_setdevs(m, mask);
133 	snd_mtxunlock(sc->lock);
134 
135 	return 0;
136 }
137 
138 static int
139 hdspemixer_set(struct snd_mixer *m, unsigned dev,
140     unsigned left, unsigned right)
141 {
142 	struct sc_pcminfo *scp = mix_getdevinfo(m);
143 	struct sc_chinfo *ch;
144 	int i;
145 
146 #if 0
147 	device_printf(scp->dev, "hdspemixer_set() %d %d\n",
148 	    left,right);
149 #endif
150 
151 	for (i = 0; i < scp->chnum; i++) {
152 		ch = &scp->chan[i];
153 		if ((dev == SOUND_MIXER_VOLUME && ch->dir == PCMDIR_PLAY) ||
154 		    (dev == SOUND_MIXER_RECLEV && ch->dir == PCMDIR_REC)) {
155 			ch->lvol = left;
156 			ch->rvol = right;
157 			if (ch->run)
158 				hdspechan_setgain(ch);
159 		}
160 	}
161 
162 	return 0;
163 }
164 
165 static kobj_method_t hdspemixer_methods[] = {
166 	KOBJMETHOD(mixer_init,      hdspemixer_init),
167 	KOBJMETHOD(mixer_set,       hdspemixer_set),
168 	KOBJMETHOD_END
169 };
170 MIXER_DECLARE(hdspemixer);
171 
172 static void
173 hdspechan_enable(struct sc_chinfo *ch, int value)
174 {
175 	struct sc_pcminfo *scp = ch->parent;
176 	struct sc_info *sc = scp->sc;
177 	int reg;
178 
179 	if (ch->dir == PCMDIR_PLAY)
180 		reg = HDSPE_OUT_ENABLE_BASE;
181 	else
182 		reg = HDSPE_IN_ENABLE_BASE;
183 
184 	ch->run = value;
185 
186 	hdspe_write_1(sc, reg + (4 * ch->lslot), value);
187 	hdspe_write_1(sc, reg + (4 * ch->rslot), value);
188 }
189 
190 static int
191 hdspe_running(struct sc_info *sc)
192 {
193 	struct sc_pcminfo *scp;
194 	struct sc_chinfo *ch;
195 	int i, j, devcount, err;
196 	device_t *devlist;
197 
198 	if ((err = device_get_children(sc->dev, &devlist, &devcount)) != 0)
199 		goto bad;
200 
201 	for (i = 0; i < devcount; i++) {
202 		scp = device_get_ivars(devlist[i]);
203 		for (j = 0; j < scp->chnum; j++) {
204 			ch = &scp->chan[j];
205 			if (ch->run)
206 				goto bad;
207 		}
208 	}
209 
210 	return 0;
211 bad:
212 
213 #if 0
214 	device_printf(sc->dev,"hdspe is running\n");
215 #endif
216 
217 	return 1;
218 }
219 
220 static void
221 hdspe_start_audio(struct sc_info *sc)
222 {
223 
224 	sc->ctrl_register |= (HDSPE_AUDIO_INT_ENABLE | HDSPE_ENABLE);
225 	hdspe_write_4(sc, HDSPE_CONTROL_REG, sc->ctrl_register);
226 }
227 
228 static void
229 hdspe_stop_audio(struct sc_info *sc)
230 {
231 
232 	if (hdspe_running(sc) == 1)
233 		return;
234 
235 	sc->ctrl_register &= ~(HDSPE_AUDIO_INT_ENABLE | HDSPE_ENABLE);
236 	hdspe_write_4(sc, HDSPE_CONTROL_REG, sc->ctrl_register);
237 }
238 
239 /* Multiplex / demultiplex: 2.0 <-> 2 x 1.0. */
240 static void
241 buffer_copy(struct sc_chinfo *ch)
242 {
243 	struct sc_pcminfo *scp = ch->parent;
244 	struct sc_info *sc = scp->sc;
245 	int length,src,dst;
246 	int ssize, dsize;
247 	int i;
248 
249 	length = sndbuf_getready(ch->buffer) /
250 	    (4 /* Bytes per sample. */ * 2 /* channels */);
251 
252 	if (ch->dir == PCMDIR_PLAY) {
253 		src = sndbuf_getreadyptr(ch->buffer);
254 	} else {
255 		src = sndbuf_getfreeptr(ch->buffer);
256 	}
257 
258 	src /= 4; /* Bytes per sample. */
259 	dst = src / 2; /* Destination buffer twice smaller. */
260 
261 	ssize = ch->size / 4;
262 	dsize = ch->size / 8;
263 
264 	/*
265 	 * Use two fragment buffer to avoid sound clipping.
266 	 */
267 
268 	for (i = 0; i < sc->period * 2 /* fragments */; i++) {
269 		if (ch->dir == PCMDIR_PLAY) {
270 			sc->pbuf[dst + HDSPE_CHANBUF_SAMPLES * ch->lslot] =
271 			    ch->data[src];
272 			sc->pbuf[dst + HDSPE_CHANBUF_SAMPLES * ch->rslot] =
273 			    ch->data[src + 1];
274 
275 		} else {
276 			ch->data[src] =
277 			    sc->rbuf[dst + HDSPE_CHANBUF_SAMPLES * ch->lslot];
278 			ch->data[src+1] =
279 			    sc->rbuf[dst + HDSPE_CHANBUF_SAMPLES * ch->rslot];
280 		}
281 
282 		dst+=1;
283 		dst %= dsize;
284 		src+=2;
285 		src %= ssize;
286 	}
287 }
288 
289 static int
290 clean(struct sc_chinfo *ch){
291 	struct sc_pcminfo *scp = ch->parent;
292 	struct sc_info *sc = scp->sc;
293 	uint32_t *buf = sc->rbuf;
294 
295 	if (ch->dir == PCMDIR_PLAY) {
296 		buf = sc->pbuf;
297 	}
298 
299 	bzero(buf + HDSPE_CHANBUF_SAMPLES * ch->lslot, HDSPE_CHANBUF_SIZE);
300 	bzero(buf + HDSPE_CHANBUF_SAMPLES * ch->rslot, HDSPE_CHANBUF_SIZE);
301 
302 	return 0;
303 }
304 
305 
306 /* Channel interface. */
307 static void *
308 hdspechan_init(kobj_t obj, void *devinfo, struct snd_dbuf *b,
309                struct pcm_channel *c, int dir)
310 {
311 	struct sc_pcminfo *scp = devinfo;
312 	struct sc_info *sc = scp->sc;
313 	struct sc_chinfo *ch;
314 	int num;
315 
316 	snd_mtxlock(sc->lock);
317 	num = scp->chnum;
318 
319 	ch = &scp->chan[num];
320 	ch->lslot = scp->hc->left;
321 	ch->rslot = scp->hc->right;
322 	ch->run = 0;
323 	ch->lvol = 0;
324 	ch->rvol = 0;
325 
326 	ch->size = HDSPE_CHANBUF_SIZE * 2 /* slots */;
327 	ch->data = malloc(ch->size, M_HDSPE, M_NOWAIT);
328 
329 	ch->buffer = b;
330 	ch->channel = c;
331 	ch->parent = scp;
332 
333 	ch->dir = dir;
334 
335 	snd_mtxunlock(sc->lock);
336 
337 	if (sndbuf_setup(ch->buffer, ch->data, ch->size) != 0) {
338 		device_printf(scp->dev, "Can't setup sndbuf.\n");
339 		return NULL;
340 	}
341 
342 	return ch;
343 }
344 
345 static int
346 hdspechan_trigger(kobj_t obj, void *data, int go)
347 {
348 	struct sc_chinfo *ch = data;
349 	struct sc_pcminfo *scp = ch->parent;
350 	struct sc_info *sc = scp->sc;
351 
352 	snd_mtxlock(sc->lock);
353 	switch (go) {
354 	case PCMTRIG_START:
355 #if 0
356 		device_printf(scp->dev, "hdspechan_trigger(): start\n");
357 #endif
358 		hdspechan_enable(ch, 1);
359 		hdspechan_setgain(ch);
360 		hdspe_start_audio(sc);
361 		break;
362 
363 	case PCMTRIG_STOP:
364 	case PCMTRIG_ABORT:
365 #if 0
366 		device_printf(scp->dev, "hdspechan_trigger(): stop or abort\n");
367 #endif
368 		clean(ch);
369 		hdspechan_enable(ch, 0);
370 		hdspe_stop_audio(sc);
371 		break;
372 
373 	case PCMTRIG_EMLDMAWR:
374 	case PCMTRIG_EMLDMARD:
375 		if(ch->run)
376 			buffer_copy(ch);
377 		break;
378 	}
379 
380 	snd_mtxunlock(sc->lock);
381 
382 	return 0;
383 }
384 
385 static uint32_t
386 hdspechan_getptr(kobj_t obj, void *data)
387 {
388 	struct sc_chinfo *ch = data;
389 	struct sc_pcminfo *scp = ch->parent;
390 	struct sc_info *sc = scp->sc;
391 	uint32_t ret, pos;
392 
393 	snd_mtxlock(sc->lock);
394 	ret = hdspe_read_2(sc, HDSPE_STATUS_REG);
395 	snd_mtxunlock(sc->lock);
396 
397 	pos = ret & HDSPE_BUF_POSITION_MASK;
398 	pos *= 2; /* Hardbuf twice bigger. */
399 
400 	return pos;
401 }
402 
403 static int
404 hdspechan_free(kobj_t obj, void *data)
405 {
406 	struct sc_chinfo *ch = data;
407 	struct sc_pcminfo *scp = ch->parent;
408 	struct sc_info *sc = scp->sc;
409 
410 #if 0
411 	device_printf(scp->dev, "hdspechan_free()\n");
412 #endif
413 	snd_mtxlock(sc->lock);
414 	if (ch->data != NULL) {
415 		free(ch->data, M_HDSPE);
416 		ch->data = NULL;
417 	}
418 	snd_mtxunlock(sc->lock);
419 
420 	return 0;
421 }
422 
423 static int
424 hdspechan_setformat(kobj_t obj, void *data, uint32_t format)
425 {
426 	struct sc_chinfo *ch = data;
427 
428 #if 0
429 	struct sc_pcminfo *scp = ch->parent;
430 	device_printf(scp->dev, "hdspechan_setformat(%d)\n", format);
431 #endif
432 
433 	ch->format = format;
434 
435 	return 0;
436 }
437 
438 static uint32_t
439 hdspechan_setspeed(kobj_t obj, void *data, uint32_t speed)
440 {
441 	struct sc_chinfo *ch = data;
442 	struct sc_pcminfo *scp = ch->parent;
443 	struct sc_info *sc = scp->sc;
444 	struct hdspe_rate *hr = NULL;
445 	long long period;
446 	int threshold;
447 	int i;
448 
449 #if 0
450 	device_printf(scp->dev, "hdspechan_setspeed(%d)\n", speed);
451 #endif
452 
453 	if (hdspe_running(sc) == 1)
454 		goto end;
455 
456 	/* First look for equal frequency. */
457 	for (i = 0; rate_map[i].speed != 0; i++) {
458 		if (rate_map[i].speed == speed)
459 			hr = &rate_map[i];
460 	}
461 
462 	/* If no match, just find nearest. */
463 	if (hr == NULL) {
464 		for (i = 0; rate_map[i].speed != 0; i++) {
465 			hr = &rate_map[i];
466 			threshold = hr->speed + ((rate_map[i + 1].speed != 0) ?
467 			    ((rate_map[i + 1].speed - hr->speed) >> 1) : 0);
468 			if (speed < threshold)
469 				break;
470 		}
471 	}
472 
473 	switch (sc->type) {
474 	case RAYDAT:
475 	case AIO:
476 		period = HDSPE_FREQ_AIO;
477 		break;
478 	default:
479 		/* Unsupported card. */
480 		goto end;
481 	}
482 
483 	/* Write frequency on the device. */
484 	sc->ctrl_register &= ~HDSPE_FREQ_MASK;
485 	sc->ctrl_register |= hr->reg;
486 	hdspe_write_4(sc, HDSPE_CONTROL_REG, sc->ctrl_register);
487 
488 	speed = hr->speed;
489 	if (speed > 96000)
490 		speed /= 4;
491 	else if (speed > 48000)
492 		speed /= 2;
493 
494 	/* Set DDS value. */
495 	period /= speed;
496 	hdspe_write_4(sc, HDSPE_FREQ_REG, period);
497 
498 	sc->speed = hr->speed;
499 end:
500 	return sc->speed;
501 }
502 
503 static uint32_t
504 hdspechan_setblocksize(kobj_t obj, void *data, uint32_t blocksize)
505 {
506 	struct sc_chinfo *ch = data;
507 	struct sc_pcminfo *scp = ch->parent;
508 	struct sc_info *sc = scp->sc;
509 	struct hdspe_latency *hl = NULL;
510 	int threshold;
511 	int i;
512 
513 #if 0
514 	device_printf(scp->dev, "hdspechan_setblocksize(%d)\n", blocksize);
515 #endif
516 
517 	if (hdspe_running(sc) == 1)
518 		goto end;
519 
520 	if (blocksize > HDSPE_LAT_BYTES_MAX)
521 		blocksize = HDSPE_LAT_BYTES_MAX;
522 	else if (blocksize < HDSPE_LAT_BYTES_MIN)
523 		blocksize = HDSPE_LAT_BYTES_MIN;
524 
525 	blocksize /= 4 /* samples */;
526 
527 	/* First look for equal latency. */
528 	for (i = 0; latency_map[i].period != 0; i++) {
529 		if (latency_map[i].period == blocksize) {
530 			hl = &latency_map[i];
531 		}
532 	}
533 
534 	/* If no match, just find nearest. */
535 	if (hl == NULL) {
536 		for (i = 0; latency_map[i].period != 0; i++) {
537 			hl = &latency_map[i];
538 			threshold = hl->period + ((latency_map[i + 1].period != 0) ?
539 			    ((latency_map[i + 1].period - hl->period) >> 1) : 0);
540 			if (blocksize < threshold)
541 				break;
542 		}
543 	}
544 
545 	snd_mtxlock(sc->lock);
546 	sc->ctrl_register &= ~HDSPE_LAT_MASK;
547 	sc->ctrl_register |= hdspe_encode_latency(hl->n);
548 	hdspe_write_4(sc, HDSPE_CONTROL_REG, sc->ctrl_register);
549 	sc->period = hl->period;
550 	snd_mtxunlock(sc->lock);
551 
552 #if 0
553 	device_printf(scp->dev, "New period=%d\n", sc->period);
554 #endif
555 
556 	sndbuf_resize(ch->buffer, (HDSPE_CHANBUF_SIZE * 2) / (sc->period * 4),
557 	    (sc->period * 4));
558 end:
559 	return sndbuf_getblksz(ch->buffer);
560 }
561 
562 static uint32_t hdspe_rfmt[] = {
563 	SND_FORMAT(AFMT_S32_LE, 2, 0),
564 	0
565 };
566 
567 static struct pcmchan_caps hdspe_rcaps = {32000, 192000, hdspe_rfmt, 0};
568 
569 static uint32_t hdspe_pfmt[] = {
570 	SND_FORMAT(AFMT_S32_LE, 2, 0),
571 	0
572 };
573 
574 static struct pcmchan_caps hdspe_pcaps = {32000, 192000, hdspe_pfmt, 0};
575 
576 static struct pcmchan_caps *
577 hdspechan_getcaps(kobj_t obj, void *data)
578 {
579 	struct sc_chinfo *ch = data;
580 
581 #if 0
582 	struct sc_pcminfo *scl = ch->parent;
583 	device_printf(scp->dev, "hdspechan_getcaps()\n");
584 #endif
585 
586 	return (ch->dir == PCMDIR_PLAY) ?
587 	    &hdspe_pcaps : &hdspe_rcaps;
588 }
589 
590 static kobj_method_t hdspechan_methods[] = {
591 	KOBJMETHOD(channel_init,         hdspechan_init),
592 	KOBJMETHOD(channel_free,         hdspechan_free),
593 	KOBJMETHOD(channel_setformat,    hdspechan_setformat),
594 	KOBJMETHOD(channel_setspeed,     hdspechan_setspeed),
595 	KOBJMETHOD(channel_setblocksize, hdspechan_setblocksize),
596 	KOBJMETHOD(channel_trigger,      hdspechan_trigger),
597 	KOBJMETHOD(channel_getptr,       hdspechan_getptr),
598 	KOBJMETHOD(channel_getcaps,      hdspechan_getcaps),
599 	KOBJMETHOD_END
600 };
601 CHANNEL_DECLARE(hdspechan);
602 
603 
604 static int
605 hdspe_pcm_probe(device_t dev)
606 {
607 
608 #if 0
609 	device_printf(dev,"hdspe_pcm_probe()\n");
610 #endif
611 
612 	return 0;
613 }
614 
615 static uint32_t
616 hdspe_pcm_intr(struct sc_pcminfo *scp) {
617 	struct sc_chinfo *ch;
618 	struct sc_info *sc = scp->sc;
619 	int i;
620 
621 	for (i = 0; i < scp->chnum; i++) {
622 		ch = &scp->chan[i];
623 		snd_mtxunlock(sc->lock);
624 		chn_intr(ch->channel);
625 		snd_mtxlock(sc->lock);
626 	}
627 
628 	return 0;
629 }
630 
631 static int
632 hdspe_pcm_attach(device_t dev)
633 {
634 	struct sc_pcminfo *scp;
635 	char status[SND_STATUSLEN];
636 	char desc[64];
637 	int i, err;
638 
639 	scp = device_get_ivars(dev);
640 	scp->ih = &hdspe_pcm_intr;
641 
642 	bzero(desc, sizeof(desc));
643 	snprintf(desc, sizeof(desc), "HDSPe AIO [%s]", scp->hc->descr);
644 	device_set_desc_copy(dev, desc);
645 
646 	/*
647 	 * We don't register interrupt handler with snd_setup_intr
648 	 * in pcm device. Mark pcm device as MPSAFE manually.
649 	 */
650 	pcm_setflags(dev, pcm_getflags(dev) | SD_F_MPSAFE);
651 
652 	err = pcm_register(dev, scp, scp->hc->play, scp->hc->rec);
653 	if (err) {
654 		device_printf(dev, "Can't register pcm.\n");
655 		return ENXIO;
656 	}
657 
658 	scp->chnum = 0;
659 	for (i = 0; i < scp->hc->play; i++) {
660 		pcm_addchan(dev, PCMDIR_PLAY, &hdspechan_class, scp);
661 		scp->chnum++;
662 	}
663 
664 	for (i = 0; i < scp->hc->rec; i++) {
665 		pcm_addchan(dev, PCMDIR_REC, &hdspechan_class, scp);
666 		scp->chnum++;
667 	}
668 
669 	snprintf(status, SND_STATUSLEN, "at io 0x%lx irq %ld %s",
670 	    rman_get_start(scp->sc->cs),
671 	    rman_get_start(scp->sc->irq),
672 	    PCM_KLDSTRING(snd_hdspe));
673 	pcm_setstatus(dev, status);
674 
675 	mixer_init(dev, &hdspemixer_class, scp);
676 
677 	return 0;
678 }
679 
680 static int
681 hdspe_pcm_detach(device_t dev)
682 {
683 	int err;
684 
685 	err = pcm_unregister(dev);
686 	if (err) {
687 		device_printf(dev, "Can't unregister device.\n");
688 		return err;
689 	}
690 
691 	return 0;
692 }
693 
694 static device_method_t hdspe_pcm_methods[] = {
695 	DEVMETHOD(device_probe,     hdspe_pcm_probe),
696 	DEVMETHOD(device_attach,    hdspe_pcm_attach),
697 	DEVMETHOD(device_detach,    hdspe_pcm_detach),
698 	{ 0, 0 }
699 };
700 
701 static driver_t hdspe_pcm_driver = {
702 	"pcm",
703 	hdspe_pcm_methods,
704 	PCM_SOFTC_SIZE,
705 };
706 
707 DRIVER_MODULE(snd_hdspe_pcm, hdspe, hdspe_pcm_driver, pcm_devclass, 0, 0);
708 MODULE_DEPEND(snd_hdspe, sound, SOUND_MINVER, SOUND_PREFVER, SOUND_MAXVER);
709 MODULE_VERSION(snd_hdspe, 1);
710