eap.c revision 1.66.2.2 1 /* $NetBSD: eap.c,v 1.66.2.2 2004/08/12 11:41:44 skrll Exp $ */
2 /* $OpenBSD: eap.c,v 1.6 1999/10/05 19:24:42 csapuntz Exp $ */
3
4 /*
5 * Copyright (c) 1998, 1999, 2002 The NetBSD Foundation, Inc.
6 * All rights reserved.
7 *
8 * This code is derived from software contributed to The NetBSD Foundation
9 * by Lennart Augustsson <augustss (at) NetBSD.org>, Charles M. Hannum, and
10 * Antti Kantee <pooka (at) NetBSD.org>.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. All advertising materials mentioning features or use of this software
21 * must display the following acknowledgement:
22 * This product includes software developed by the NetBSD
23 * Foundation, Inc. and its contributors.
24 * 4. Neither the name of The NetBSD Foundation nor the names of its
25 * contributors may be used to endorse or promote products derived
26 * from this software without specific prior written permission.
27 *
28 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
29 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
30 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
31 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
32 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
33 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
34 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
35 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
36 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
37 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
38 * POSSIBILITY OF SUCH DAMAGE.
39 */
40
41 /*
42 * Debugging: Andreas Gustafsson <gson (at) araneus.fi>
43 * Testing: Chuck Cranor <chuck (at) maria.wustl.edu>
44 * Phil Nelson <phil (at) cs.wwu.edu>
45 *
46 * ES1371/AC97: Ezra Story <ezy (at) panix.com>
47 */
48
49 /*
50 * Ensoniq ES1370 + AK4531 and ES1371/ES1373 + AC97
51 *
52 * Documentation links:
53 *
54 * ftp://ftp.alsa-project.org/pub/manuals/ensoniq/
55 * ftp://ftp.alsa-project.org/pub/manuals/asahi_kasei/4531.pdf
56 * ftp://download.intel.com/ial/scalableplatforms/audio/ac97r21.pdf
57 */
58
59 #include <sys/cdefs.h>
60 __KERNEL_RCSID(0, "$NetBSD: eap.c,v 1.66.2.2 2004/08/12 11:41:44 skrll Exp $");
61
62 #include "midi.h"
63 #include "joy_eap.h"
64
65 #include <sys/param.h>
66 #include <sys/systm.h>
67 #include <sys/kernel.h>
68 #include <sys/fcntl.h>
69 #include <sys/malloc.h>
70 #include <sys/device.h>
71 #include <sys/proc.h>
72 #include <sys/select.h>
73
74 #include <dev/pci/pcidevs.h>
75 #include <dev/pci/pcivar.h>
76
77 #include <sys/audioio.h>
78 #include <dev/audio_if.h>
79 #include <dev/midi_if.h>
80 #include <dev/audiovar.h>
81 #include <dev/mulaw.h>
82 #include <dev/auconv.h>
83 #include <dev/ic/ac97var.h>
84
85 #include <machine/bus.h>
86
87 #include <dev/pci/eapreg.h>
88 #include <dev/pci/eapvar.h>
89
90 #define PCI_CBIO 0x10
91
92 /* Debug */
93 #ifdef AUDIO_DEBUG
94 #define DPRINTF(x) if (eapdebug) printf x
95 #define DPRINTFN(n,x) if (eapdebug>(n)) printf x
96 int eapdebug = 0;
97 #else
98 #define DPRINTF(x)
99 #define DPRINTFN(n,x)
100 #endif
101
102 int eap_match(struct device *, struct cfdata *, void *);
103 void eap_attach(struct device *, struct device *, void *);
104 int eap_detach(struct device *, int);
105 int eap_intr(void *);
106
107 struct eap_dma {
108 bus_dmamap_t map;
109 caddr_t addr;
110 bus_dma_segment_t segs[1];
111 int nsegs;
112 size_t size;
113 struct eap_dma *next;
114 };
115
116 #define DMAADDR(p) ((p)->map->dm_segs[0].ds_addr)
117 #define KERNADDR(p) ((void *)((p)->addr))
118
119 /*
120 * The card has two DACs. Using them is a bit twisted: we use DAC2
121 * as default and DAC1 as the optional secondary DAC.
122 */
123 #define EAP_DAC1 1
124 #define EAP_DAC2 0
125 #define EAP_I1 EAP_DAC2
126 #define EAP_I2 EAP_DAC1
127 struct eap_instance {
128 struct device *parent;
129 int index;
130
131 void (*ei_pintr)(void *); /* DMA completion intr handler */
132 void *ei_parg; /* arg for ei_intr() */
133 struct device *ei_audiodev; /* audio device, for detach */
134 #ifdef DIAGNOSTIC
135 char ei_prun;
136 #endif
137 };
138
139 struct eap_softc {
140 struct device sc_dev; /* base device */
141 void *sc_ih; /* interrupt vectoring */
142 bus_space_tag_t iot;
143 bus_space_handle_t ioh;
144 bus_size_t iosz;
145 bus_dma_tag_t sc_dmatag; /* DMA tag */
146
147 struct eap_dma *sc_dmas;
148
149 void (*sc_rintr)(void *); /* DMA completion intr handler */
150 void *sc_rarg; /* arg for sc_intr() */
151 #ifdef DIAGNOSTIC
152 char sc_rrun;
153 #endif
154
155 #if NMIDI > 0
156 void (*sc_iintr)(void *, int); /* midi input ready handler */
157 void (*sc_ointr)(void *); /* midi output ready handler */
158 void *sc_arg;
159 struct device *sc_mididev;
160 #endif
161 #if NJOY_EAP > 0
162 struct device *sc_gameport;
163 #endif
164
165 u_short sc_port[AK_NPORTS]; /* mirror of the hardware setting */
166 u_int sc_record_source; /* recording source mask */
167 u_int sc_output_source; /* output source mask */
168 u_int sc_mic_preamp;
169 char sc_1371; /* Using ES1371/AC97 codec */
170
171 struct ac97_codec_if *codec_if;
172 struct ac97_host_if host_if;
173
174 struct eap_instance sc_ei[2];
175
176 pci_chipset_tag_t sc_pc; /* For detach */
177 };
178
179 int eap_allocmem(struct eap_softc *, size_t, size_t, struct eap_dma *);
180 int eap_freemem(struct eap_softc *, struct eap_dma *);
181
182 #define EWRITE1(sc, r, x) bus_space_write_1((sc)->iot, (sc)->ioh, (r), (x))
183 #define EWRITE2(sc, r, x) bus_space_write_2((sc)->iot, (sc)->ioh, (r), (x))
184 #define EWRITE4(sc, r, x) bus_space_write_4((sc)->iot, (sc)->ioh, (r), (x))
185 #define EREAD1(sc, r) bus_space_read_1((sc)->iot, (sc)->ioh, (r))
186 #define EREAD2(sc, r) bus_space_read_2((sc)->iot, (sc)->ioh, (r))
187 #define EREAD4(sc, r) bus_space_read_4((sc)->iot, (sc)->ioh, (r))
188
189 CFATTACH_DECL(eap, sizeof(struct eap_softc),
190 eap_match, eap_attach, eap_detach, NULL);
191
192 int eap_open(void *, int);
193 void eap_close(void *);
194 int eap_query_encoding(void *, struct audio_encoding *);
195 int eap_set_params(void *, int, int, struct audio_params *, struct audio_params *);
196 int eap_round_blocksize(void *, int);
197 int eap_trigger_output(void *, void *, void *, int, void (*)(void *),
198 void *, struct audio_params *);
199 int eap_trigger_input(void *, void *, void *, int, void (*)(void *),
200 void *, struct audio_params *);
201 int eap_halt_output(void *);
202 int eap_halt_input(void *);
203 void eap1370_write_codec(struct eap_softc *, int, int);
204 int eap_getdev(void *, struct audio_device *);
205 int eap1370_mixer_set_port(void *, mixer_ctrl_t *);
206 int eap1370_mixer_get_port(void *, mixer_ctrl_t *);
207 int eap1371_mixer_set_port(void *, mixer_ctrl_t *);
208 int eap1371_mixer_get_port(void *, mixer_ctrl_t *);
209 int eap1370_query_devinfo(void *, mixer_devinfo_t *);
210 void *eap_malloc(void *, int, size_t, struct malloc_type *, int);
211 void eap_free(void *, void *, struct malloc_type *);
212 size_t eap_round_buffersize(void *, int, size_t);
213 paddr_t eap_mappage(void *, void *, off_t, int);
214 int eap_get_props(void *);
215 void eap1370_set_mixer(struct eap_softc *sc, int a, int d);
216 u_int32_t eap1371_src_wait(struct eap_softc *sc);
217 void eap1371_set_adc_rate(struct eap_softc *sc, int rate);
218 void eap1371_set_dac_rate(struct eap_instance *ei, int rate);
219 int eap1371_src_read(struct eap_softc *sc, int a);
220 void eap1371_src_write(struct eap_softc *sc, int a, int d);
221 int eap1371_query_devinfo(void *addr, mixer_devinfo_t *dip);
222
223 int eap1371_attach_codec(void *sc, struct ac97_codec_if *);
224 int eap1371_read_codec(void *sc, u_int8_t a, u_int16_t *d);
225 int eap1371_write_codec(void *sc, u_int8_t a, u_int16_t d);
226 void eap1371_reset_codec(void *sc);
227 int eap1371_get_portnum_by_name(struct eap_softc *, char *, char *,
228 char *);
229 #if NMIDI > 0
230 void eap_midi_close(void *);
231 void eap_midi_getinfo(void *, struct midi_info *);
232 int eap_midi_open(void *, int, void (*)(void *, int),
233 void (*)(void *), void *);
234 int eap_midi_output(void *, int);
235 #endif
236
237 struct audio_hw_if eap1370_hw_if = {
238 eap_open,
239 eap_close,
240 NULL,
241 eap_query_encoding,
242 eap_set_params,
243 eap_round_blocksize,
244 NULL,
245 NULL,
246 NULL,
247 NULL,
248 NULL,
249 eap_halt_output,
250 eap_halt_input,
251 NULL,
252 eap_getdev,
253 NULL,
254 eap1370_mixer_set_port,
255 eap1370_mixer_get_port,
256 eap1370_query_devinfo,
257 eap_malloc,
258 eap_free,
259 eap_round_buffersize,
260 eap_mappage,
261 eap_get_props,
262 eap_trigger_output,
263 eap_trigger_input,
264 NULL,
265 };
266
267 struct audio_hw_if eap1371_hw_if = {
268 eap_open,
269 eap_close,
270 NULL,
271 eap_query_encoding,
272 eap_set_params,
273 eap_round_blocksize,
274 NULL,
275 NULL,
276 NULL,
277 NULL,
278 NULL,
279 eap_halt_output,
280 eap_halt_input,
281 NULL,
282 eap_getdev,
283 NULL,
284 eap1371_mixer_set_port,
285 eap1371_mixer_get_port,
286 eap1371_query_devinfo,
287 eap_malloc,
288 eap_free,
289 eap_round_buffersize,
290 eap_mappage,
291 eap_get_props,
292 eap_trigger_output,
293 eap_trigger_input,
294 NULL,
295 };
296
297 #if NMIDI > 0
298 struct midi_hw_if eap_midi_hw_if = {
299 eap_midi_open,
300 eap_midi_close,
301 eap_midi_output,
302 eap_midi_getinfo,
303 0, /* ioctl */
304 };
305 #endif
306
307 struct audio_device eap_device = {
308 "Ensoniq AudioPCI",
309 "",
310 "eap"
311 };
312
313 int
314 eap_match(struct device *parent, struct cfdata *match, void *aux)
315 {
316 struct pci_attach_args *pa = (struct pci_attach_args *) aux;
317
318 switch (PCI_VENDOR(pa->pa_id)) {
319 case PCI_VENDOR_CREATIVELABS:
320 switch (PCI_PRODUCT(pa->pa_id)) {
321 case PCI_PRODUCT_CREATIVELABS_EV1938:
322 return (1);
323 }
324 break;
325 case PCI_VENDOR_ENSONIQ:
326 switch (PCI_PRODUCT(pa->pa_id)) {
327 case PCI_PRODUCT_ENSONIQ_AUDIOPCI:
328 case PCI_PRODUCT_ENSONIQ_AUDIOPCI97:
329 case PCI_PRODUCT_ENSONIQ_CT5880:
330 return (1);
331 }
332 break;
333 }
334
335 return (0);
336 }
337
338 void
339 eap1370_write_codec(struct eap_softc *sc, int a, int d)
340 {
341 int icss, to;
342
343 to = EAP_WRITE_TIMEOUT;
344 do {
345 icss = EREAD4(sc, EAP_ICSS);
346 DPRINTFN(5,("eap: codec %d prog: icss=0x%08x\n", a, icss));
347 if (!to--) {
348 printf("eap: timeout writing to codec\n");
349 return;
350 }
351 } while(icss & EAP_CWRIP); /* XXX could use CSTAT here */
352 EWRITE4(sc, EAP_CODEC, EAP_SET_CODEC(a, d));
353 }
354
355 /*
356 * Reading and writing the CODEC is very convoluted. This mimics the
357 * FreeBSD and Linux drivers.
358 */
359
360 static __inline void
361 eap1371_ready_codec(struct eap_softc *sc, u_int8_t a, u_int32_t wd)
362 {
363 int to, s;
364 u_int32_t src, t;
365
366 for (to = 0; to < EAP_WRITE_TIMEOUT; to++) {
367 if (!(EREAD4(sc, E1371_CODEC) & E1371_CODEC_WIP))
368 break;
369 delay(1);
370 }
371 if (to >= EAP_WRITE_TIMEOUT)
372 printf("%s: eap1371_ready_codec timeout 1\n",
373 sc->sc_dev.dv_xname);
374
375 s = splaudio();
376 src = eap1371_src_wait(sc) & E1371_SRC_CTLMASK;
377 EWRITE4(sc, E1371_SRC, src | E1371_SRC_STATE_OK);
378
379 for (to = 0; to < EAP_READ_TIMEOUT; to++) {
380 t = EREAD4(sc, E1371_SRC);
381 if ((t & E1371_SRC_STATE_MASK) == 0)
382 break;
383 delay(1);
384 }
385 if (to >= EAP_READ_TIMEOUT)
386 printf("%s: eap1371_ready_codec timeout 2\n",
387 sc->sc_dev.dv_xname);
388
389 for (to = 0; to < EAP_READ_TIMEOUT; to++) {
390 t = EREAD4(sc, E1371_SRC);
391 if ((t & E1371_SRC_STATE_MASK) == E1371_SRC_STATE_OK)
392 break;
393 delay(1);
394 }
395 if (to >= EAP_READ_TIMEOUT)
396 printf("%s: eap1371_ready_codec timeout 3\n",
397 sc->sc_dev.dv_xname);
398
399 EWRITE4(sc, E1371_CODEC, wd);
400
401 eap1371_src_wait(sc);
402 EWRITE4(sc, E1371_SRC, src);
403
404 splx(s);
405 }
406
407 int
408 eap1371_read_codec(void *sc_, u_int8_t a, u_int16_t *d)
409 {
410 struct eap_softc *sc = sc_;
411 int to;
412 u_int32_t t;
413
414 eap1371_ready_codec(sc, a, E1371_SET_CODEC(a, 0) | E1371_CODEC_READ);
415
416 for (to = 0; to < EAP_WRITE_TIMEOUT; to++) {
417 if (!(EREAD4(sc, E1371_CODEC) & E1371_CODEC_WIP))
418 break;
419 }
420 if (to > EAP_WRITE_TIMEOUT)
421 printf("%s: eap1371_read_codec timeout 1\n",
422 sc->sc_dev.dv_xname);
423
424 for (to = 0; to < EAP_WRITE_TIMEOUT; to++) {
425 t = EREAD4(sc, E1371_CODEC);
426 if (t & E1371_CODEC_VALID)
427 break;
428 }
429 if (to > EAP_WRITE_TIMEOUT)
430 printf("%s: eap1371_read_codec timeout 2\n",
431 sc->sc_dev.dv_xname);
432
433 *d = (u_int16_t)t;
434
435 DPRINTFN(10, ("eap1371: reading codec (%x) = %x\n", a, *d));
436
437 return (0);
438 }
439
440 int
441 eap1371_write_codec(void *sc_, u_int8_t a, u_int16_t d)
442 {
443 struct eap_softc *sc = sc_;
444
445 eap1371_ready_codec(sc, a, E1371_SET_CODEC(a, d));
446
447 DPRINTFN(10, ("eap1371: writing codec %x --> %x\n", d, a));
448
449 return (0);
450 }
451
452 u_int32_t
453 eap1371_src_wait(struct eap_softc *sc)
454 {
455 int to;
456 u_int32_t src;
457
458 for (to = 0; to < EAP_READ_TIMEOUT; to++) {
459 src = EREAD4(sc, E1371_SRC);
460 if (!(src & E1371_SRC_RBUSY))
461 return (src);
462 delay(1);
463 }
464 printf("%s: eap1371_src_wait timeout\n", sc->sc_dev.dv_xname);
465 return (src);
466 }
467
468 int
469 eap1371_src_read(struct eap_softc *sc, int a)
470 {
471 int to;
472 u_int32_t src, t;
473
474 src = eap1371_src_wait(sc) & E1371_SRC_CTLMASK;
475 src |= E1371_SRC_ADDR(a);
476 EWRITE4(sc, E1371_SRC, src | E1371_SRC_STATE_OK);
477
478 t = eap1371_src_wait(sc);
479 if ((t & E1371_SRC_STATE_MASK) != E1371_SRC_STATE_OK) {
480 for (to = 0; to < EAP_READ_TIMEOUT; to++) {
481 t = EREAD4(sc, E1371_SRC);
482 if ((t & E1371_SRC_STATE_MASK) == E1371_SRC_STATE_OK)
483 break;
484 delay(1);
485 }
486 }
487
488 EWRITE4(sc, E1371_SRC, src);
489
490 return t & E1371_SRC_DATAMASK;
491 }
492
493 void
494 eap1371_src_write(struct eap_softc *sc, int a, int d)
495 {
496 u_int32_t r;
497
498 r = eap1371_src_wait(sc) & E1371_SRC_CTLMASK;
499 r |= E1371_SRC_RAMWE | E1371_SRC_ADDR(a) | E1371_SRC_DATA(d);
500 EWRITE4(sc, E1371_SRC, r);
501 }
502
503 void
504 eap1371_set_adc_rate(struct eap_softc *sc, int rate)
505 {
506 int freq, n, truncm;
507 int out;
508 int s;
509
510 /* Whatever, it works, so I'll leave it :) */
511
512 if (rate > 48000)
513 rate = 48000;
514 if (rate < 4000)
515 rate = 4000;
516 n = rate / 3000;
517 if ((1 << n) & SRC_MAGIC)
518 n--;
519 truncm = ((21 * n) - 1) | 1;
520 freq = ((48000 << 15) / rate) * n;
521 if (rate >= 24000) {
522 if (truncm > 239)
523 truncm = 239;
524 out = ESRC_SET_TRUNC((239 - truncm) / 2);
525 } else {
526 if (truncm > 119)
527 truncm = 119;
528 out = ESRC_SMF | ESRC_SET_TRUNC((119 - truncm) / 2);
529 }
530 out |= ESRC_SET_N(n);
531 s = splaudio();
532 eap1371_src_write(sc, ESRC_ADC+ESRC_TRUNC_N, out);
533
534
535 out = eap1371_src_read(sc, ESRC_ADC+ESRC_IREGS) & 0xff;
536 eap1371_src_write(sc, ESRC_ADC+ESRC_IREGS, out |
537 ESRC_SET_VFI(freq >> 15));
538 eap1371_src_write(sc, ESRC_ADC+ESRC_VFF, freq & 0x7fff);
539 eap1371_src_write(sc, ESRC_ADC_VOLL, ESRC_SET_ADC_VOL(n));
540 eap1371_src_write(sc, ESRC_ADC_VOLR, ESRC_SET_ADC_VOL(n));
541 splx(s);
542 }
543
544 void
545 eap1371_set_dac_rate(struct eap_instance *ei, int rate)
546 {
547 struct eap_softc *sc = (struct eap_softc *)ei->parent;
548 int dac = ei->index == EAP_DAC1 ? ESRC_DAC1 : ESRC_DAC2;
549 int freq, r;
550 int s;
551
552 DPRINTFN(2, ("eap1371_set_dac_date: set rate for %d\n", ei->index));
553
554 /* Whatever, it works, so I'll leave it :) */
555
556 if (rate > 48000)
557 rate = 48000;
558 if (rate < 4000)
559 rate = 4000;
560 freq = ((rate << 15) + 1500) / 3000;
561
562 s = splaudio();
563 eap1371_src_wait(sc);
564 r = EREAD4(sc, E1371_SRC) & (E1371_SRC_DISABLE |
565 E1371_SRC_DISP2 | E1371_SRC_DISP1 | E1371_SRC_DISREC);
566 r |= ei->index == EAP_DAC1 ? E1371_SRC_DISP1 : E1371_SRC_DISP2;
567 EWRITE4(sc, E1371_SRC, r);
568 r = eap1371_src_read(sc, dac + ESRC_IREGS) & 0x00ff;
569 eap1371_src_write(sc, dac + ESRC_IREGS, r | ((freq >> 5) & 0xfc00));
570 eap1371_src_write(sc, dac + ESRC_VFF, freq & 0x7fff);
571 r = EREAD4(sc, E1371_SRC) & (E1371_SRC_DISABLE |
572 E1371_SRC_DISP2 | E1371_SRC_DISP1 | E1371_SRC_DISREC);
573 r &= ~(ei->index == EAP_DAC1 ? E1371_SRC_DISP1 : E1371_SRC_DISP2);
574 EWRITE4(sc, E1371_SRC, r);
575 splx(s);
576 }
577
578 void
579 eap_attach(struct device *parent, struct device *self, void *aux)
580 {
581 struct eap_softc *sc = (struct eap_softc *)self;
582 struct pci_attach_args *pa = (struct pci_attach_args *)aux;
583 pci_chipset_tag_t pc = pa->pa_pc;
584 struct audio_hw_if *eap_hw_if;
585 char const *intrstr;
586 pci_intr_handle_t ih;
587 pcireg_t csr;
588 char devinfo[256];
589 mixer_ctrl_t ctl;
590 int i;
591 int revision, ct5880;
592 const char *revstr = "";
593 #if NJOY_EAP > 0
594 struct eap_gameport_args gpargs;
595 #endif
596
597 aprint_naive(": Audio controller\n");
598
599 /* Stash this away for detach */
600 sc->sc_pc = pc;
601
602 /* Flag if we're "creative" */
603 sc->sc_1371 = !(PCI_VENDOR(pa->pa_id) == PCI_VENDOR_ENSONIQ &&
604 PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_ENSONIQ_AUDIOPCI);
605
606 /*
607 * The vendor and product ID's are quite "interesting". Just
608 * trust the following and be happy.
609 */
610 pci_devinfo(pa->pa_id, pa->pa_class, 0, devinfo, sizeof(devinfo));
611 revision = PCI_REVISION(pa->pa_class);
612 ct5880 = 0;
613 if (sc->sc_1371) {
614 if (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_ENSONIQ &&
615 PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_ENSONIQ_CT5880) {
616 ct5880 = 1;
617 switch (revision) {
618 case EAP_CT5880_C: revstr = "CT5880-C "; break;
619 case EAP_CT5880_D: revstr = "CT5880-D "; break;
620 case EAP_CT5880_E: revstr = "CT5880-E "; break;
621 }
622 } else {
623 switch (revision) {
624 case EAP_EV1938_A: revstr = "EV1938-A "; break;
625 case EAP_ES1373_A: revstr = "ES1373-A "; break;
626 case EAP_ES1373_B: revstr = "ES1373-B "; break;
627 case EAP_CT5880_A: revstr = "CT5880-A "; ct5880=1;break;
628 case EAP_ES1373_8: revstr = "ES1373-8" ; ct5880=1;break;
629 case EAP_ES1371_B: revstr = "ES1371-B "; break;
630 }
631 }
632 }
633 aprint_normal(": %s %s(rev. 0x%02x)\n", devinfo, revstr, revision);
634
635 /* Map I/O register */
636 if (pci_mapreg_map(pa, PCI_CBIO, PCI_MAPREG_TYPE_IO, 0,
637 &sc->iot, &sc->ioh, NULL, &sc->iosz)) {
638 aprint_error("%s: can't map i/o space\n", sc->sc_dev.dv_xname);
639 return;
640 }
641
642 sc->sc_dmatag = pa->pa_dmat;
643
644 /* Enable the device. */
645 csr = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
646 pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG,
647 csr | PCI_COMMAND_MASTER_ENABLE);
648
649 /* Map and establish the interrupt. */
650 if (pci_intr_map(pa, &ih)) {
651 aprint_error("%s: couldn't map interrupt\n",
652 sc->sc_dev.dv_xname);
653 return;
654 }
655 intrstr = pci_intr_string(pc, ih);
656 sc->sc_ih = pci_intr_establish(pc, ih, IPL_AUDIO, eap_intr, sc);
657 if (sc->sc_ih == NULL) {
658 aprint_error("%s: couldn't establish interrupt",
659 sc->sc_dev.dv_xname);
660 if (intrstr != NULL)
661 aprint_normal(" at %s", intrstr);
662 aprint_normal("\n");
663 return;
664 }
665 aprint_normal("%s: interrupting at %s\n", sc->sc_dev.dv_xname, intrstr);
666
667 sc->sc_ei[EAP_I1].parent = (struct device *)sc;
668 sc->sc_ei[EAP_I1].index = EAP_DAC2;
669 sc->sc_ei[EAP_I2].parent = (struct device *)sc;
670 sc->sc_ei[EAP_I2].index = EAP_DAC1;
671
672 if (!sc->sc_1371) {
673 /* Enable interrupts and looping mode. */
674 /* enable the parts we need */
675 EWRITE4(sc, EAP_SIC, EAP_P2_INTR_EN | EAP_R1_INTR_EN);
676 EWRITE4(sc, EAP_ICSC, EAP_CDC_EN);
677
678 /* reset codec */
679 /* normal operation */
680 /* select codec clocks */
681 eap1370_write_codec(sc, AK_RESET, AK_PD);
682 eap1370_write_codec(sc, AK_RESET, AK_PD | AK_NRST);
683 eap1370_write_codec(sc, AK_CS, 0x0);
684
685 eap_hw_if = &eap1370_hw_if;
686
687 /* Enable all relevant mixer switches. */
688 ctl.dev = EAP_OUTPUT_SELECT;
689 ctl.type = AUDIO_MIXER_SET;
690 ctl.un.mask = 1 << EAP_VOICE_VOL | 1 << EAP_FM_VOL |
691 1 << EAP_CD_VOL | 1 << EAP_LINE_VOL | 1 << EAP_AUX_VOL |
692 1 << EAP_MIC_VOL;
693 eap_hw_if->set_port(&sc->sc_ei[EAP_I1], &ctl);
694
695 ctl.type = AUDIO_MIXER_VALUE;
696 ctl.un.value.num_channels = 1;
697 for (ctl.dev = EAP_MASTER_VOL; ctl.dev < EAP_MIC_VOL;
698 ctl.dev++) {
699 ctl.un.value.level[AUDIO_MIXER_LEVEL_MONO] = VOL_0DB;
700 eap_hw_if->set_port(&sc->sc_ei[EAP_I1], &ctl);
701 }
702 ctl.un.value.level[AUDIO_MIXER_LEVEL_MONO] = 0;
703 eap_hw_if->set_port(&sc->sc_ei[EAP_I1], &ctl);
704 ctl.dev = EAP_MIC_PREAMP;
705 ctl.type = AUDIO_MIXER_ENUM;
706 ctl.un.ord = 0;
707 eap_hw_if->set_port(&sc->sc_ei[EAP_I1], &ctl);
708 ctl.dev = EAP_RECORD_SOURCE;
709 ctl.type = AUDIO_MIXER_SET;
710 ctl.un.mask = 1 << EAP_MIC_VOL;
711 eap_hw_if->set_port(&sc->sc_ei[EAP_I1], &ctl);
712 } else {
713 /* clean slate */
714
715 EWRITE4(sc, EAP_SIC, 0);
716 EWRITE4(sc, EAP_ICSC, 0);
717 EWRITE4(sc, E1371_LEGACY, 0);
718
719 if (ct5880) {
720 EWRITE4(sc, EAP_ICSS, EAP_CT5880_AC97_RESET);
721 /* Let codec wake up */
722 delay(20000);
723 }
724
725 /* Reset from es1371's perspective */
726 EWRITE4(sc, EAP_ICSC, E1371_SYNC_RES);
727 delay(20);
728 EWRITE4(sc, EAP_ICSC, 0);
729
730 /*
731 * Must properly reprogram sample rate converter,
732 * or it locks up. Set some defaults for the life of the
733 * machine, and set up a sb default sample rate.
734 */
735 EWRITE4(sc, E1371_SRC, E1371_SRC_DISABLE);
736 for (i = 0; i < 0x80; i++)
737 eap1371_src_write(sc, i, 0);
738 eap1371_src_write(sc, ESRC_DAC1+ESRC_TRUNC_N, ESRC_SET_N(16));
739 eap1371_src_write(sc, ESRC_DAC2+ESRC_TRUNC_N, ESRC_SET_N(16));
740 eap1371_src_write(sc, ESRC_DAC1+ESRC_IREGS, ESRC_SET_VFI(16));
741 eap1371_src_write(sc, ESRC_DAC2+ESRC_IREGS, ESRC_SET_VFI(16));
742 eap1371_src_write(sc, ESRC_ADC_VOLL, ESRC_SET_ADC_VOL(16));
743 eap1371_src_write(sc, ESRC_ADC_VOLR, ESRC_SET_ADC_VOL(16));
744 eap1371_src_write(sc, ESRC_DAC1_VOLL, ESRC_SET_DAC_VOLI(1));
745 eap1371_src_write(sc, ESRC_DAC1_VOLR, ESRC_SET_DAC_VOLI(1));
746 eap1371_src_write(sc, ESRC_DAC2_VOLL, ESRC_SET_DAC_VOLI(1));
747 eap1371_src_write(sc, ESRC_DAC2_VOLR, ESRC_SET_DAC_VOLI(1));
748 eap1371_set_adc_rate(sc, 22050);
749 eap1371_set_dac_rate(&sc->sc_ei[0], 22050);
750 eap1371_set_dac_rate(&sc->sc_ei[1], 22050);
751
752 EWRITE4(sc, E1371_SRC, 0);
753
754 /* Reset codec */
755
756 /* Interrupt enable */
757 sc->host_if.arg = sc;
758 sc->host_if.attach = eap1371_attach_codec;
759 sc->host_if.read = eap1371_read_codec;
760 sc->host_if.write = eap1371_write_codec;
761 sc->host_if.reset = eap1371_reset_codec;
762
763 if (ac97_attach(&sc->host_if) == 0) {
764 /* Interrupt enable */
765 EWRITE4(sc, EAP_SIC, EAP_P2_INTR_EN | EAP_R1_INTR_EN);
766 } else
767 return;
768
769 eap_hw_if = &eap1371_hw_if;
770
771 /* Just enable the DAC and master volumes by default */
772 ctl.type = AUDIO_MIXER_ENUM;
773 ctl.un.ord = 0; /* off */
774 ctl.dev = eap1371_get_portnum_by_name(sc, AudioCoutputs,
775 AudioNmaster, AudioNmute);
776 eap1371_mixer_set_port(&sc->sc_ei[EAP_I1], &ctl);
777 ctl.dev = eap1371_get_portnum_by_name(sc, AudioCinputs,
778 AudioNdac, AudioNmute);
779 eap1371_mixer_set_port(&sc->sc_ei[EAP_I1], &ctl);
780 ctl.dev = eap1371_get_portnum_by_name(sc, AudioCrecord,
781 AudioNvolume, AudioNmute);
782 eap1371_mixer_set_port(&sc->sc_ei[EAP_I1], &ctl);
783
784 ctl.dev = eap1371_get_portnum_by_name(sc, AudioCrecord,
785 AudioNsource, NULL);
786 ctl.type = AUDIO_MIXER_ENUM;
787 ctl.un.ord = 0;
788 eap1371_mixer_set_port(&sc->sc_ei[EAP_I1], &ctl);
789
790 }
791
792 sc->sc_ei[EAP_I1].ei_audiodev =
793 audio_attach_mi(eap_hw_if, &sc->sc_ei[EAP_I1], &sc->sc_dev);
794
795 #ifdef EAP_USE_BOTH_DACS
796 aprint_normal("%s: attaching secondary DAC\n", sc->sc_dev.dv_xname);
797 sc->sc_ei[EAP_I2].ei_audiodev =
798 audio_attach_mi(eap_hw_if, &sc->sc_ei[EAP_I2], &sc->sc_dev);
799 #endif
800
801 #if NMIDI > 0
802 sc->sc_mididev = midi_attach_mi(&eap_midi_hw_if, sc, &sc->sc_dev);
803 #endif
804
805 #if NJOY_EAP > 0
806 if (sc->sc_1371) {
807 gpargs.gpa_iot = sc->iot;
808 gpargs.gpa_ioh = sc->ioh;
809 sc->sc_gameport = eap_joy_attach(&sc->sc_dev, &gpargs);
810 }
811 #endif
812 }
813
814 int
815 eap_detach(struct device *self, int flags)
816 {
817 struct eap_softc *sc = (struct eap_softc *) self;
818 int res;
819 #if NJOY_EAP > 0
820 struct eap_gameport_args gpargs;
821
822 if (sc->sc_gameport) {
823 gpargs.gpa_iot = sc->iot;
824 gpargs.gpa_ioh = sc->ioh;
825 res = eap_joy_detach(sc->sc_gameport, &gpargs);
826 if (res)
827 return (res);
828 }
829 #endif
830 #if NMIDI > 0
831 if (sc->sc_mididev != NULL) {
832 res = config_detach(sc->sc_mididev, 0);
833 if (res)
834 return (res);
835 }
836 #endif
837 #ifdef EAP_USE_BOTH_DACS
838 if (sc->sc_ei[EAP_I2].ei_audiodev != NULL) {
839 res = config_detach(sc->sc_ei[EAP_I2].ei_audiodev, 0);
840 if (res)
841 return (res);
842 }
843 #endif
844 if (sc->sc_ei[EAP_I1].ei_audiodev != NULL) {
845 res = config_detach(sc->sc_ei[EAP_I1].ei_audiodev, 0);
846 if (res)
847 return (res);
848 }
849
850 bus_space_unmap(sc->iot, sc->ioh, sc->iosz);
851 pci_intr_disestablish(sc->sc_pc, sc->sc_ih);
852
853 return (0);
854 }
855
856 int
857 eap1371_attach_codec(void *sc_, struct ac97_codec_if *codec_if)
858 {
859 struct eap_softc *sc = sc_;
860
861 sc->codec_if = codec_if;
862 return (0);
863 }
864
865 void
866 eap1371_reset_codec(void *sc_)
867 {
868 struct eap_softc *sc = sc_;
869 u_int32_t icsc;
870 int s;
871
872 s = splaudio();
873 icsc = EREAD4(sc, EAP_ICSC);
874 EWRITE4(sc, EAP_ICSC, icsc | E1371_SYNC_RES);
875 delay(20);
876 EWRITE4(sc, EAP_ICSC, icsc & ~E1371_SYNC_RES);
877 delay(1);
878 splx(s);
879
880 return;
881 }
882
883 int
884 eap_intr(void *p)
885 {
886 struct eap_softc *sc = p;
887 u_int32_t intr, sic;
888
889 intr = EREAD4(sc, EAP_ICSS);
890 if (!(intr & EAP_INTR))
891 return (0);
892 sic = EREAD4(sc, EAP_SIC);
893 DPRINTFN(5, ("eap_intr: ICSS=0x%08x, SIC=0x%08x\n", intr, sic));
894 if (intr & EAP_I_ADC) {
895 #if 0
896 /*
897 * XXX This is a hack!
898 * The EAP chip sometimes generates the recording interrupt
899 * while it is still transferring the data. To make sure
900 * it has all arrived we busy wait until the count is right.
901 * The transfer we are waiting for is 8 longwords.
902 */
903 int s, nw, n;
904 EWRITE4(sc, EAP_MEMPAGE, EAP_ADC_PAGE);
905 s = EREAD4(sc, EAP_ADC_CSR);
906 nw = ((s & 0xffff) + 1) >> 2; /* # of words in DMA */
907 n = 0;
908 while (((EREAD4(sc, EAP_ADC_SIZE) >> 16) + 8) % nw == 0) {
909 delay(10);
910 if (++n > 100) {
911 printf("eapintr: DMA fix timeout");
912 break;
913 }
914 }
915 /* Continue with normal interrupt handling. */
916 #endif
917 EWRITE4(sc, EAP_SIC, sic & ~EAP_R1_INTR_EN);
918 EWRITE4(sc, EAP_SIC, sic | EAP_R1_INTR_EN);
919 if (sc->sc_rintr)
920 sc->sc_rintr(sc->sc_rarg);
921 }
922
923 if (intr & EAP_I_DAC2) {
924 EWRITE4(sc, EAP_SIC, sic & ~EAP_P2_INTR_EN);
925 EWRITE4(sc, EAP_SIC, sic | EAP_P2_INTR_EN);
926 if (sc->sc_ei[EAP_DAC2].ei_pintr)
927 sc->sc_ei[EAP_DAC2].ei_pintr(sc->sc_ei[EAP_DAC2].ei_parg);
928 }
929
930 if (intr & EAP_I_DAC1) {
931 EWRITE4(sc, EAP_SIC, sic & ~EAP_P1_INTR_EN);
932 EWRITE4(sc, EAP_SIC, sic | EAP_P1_INTR_EN);
933 if (sc->sc_ei[EAP_DAC1].ei_pintr)
934 sc->sc_ei[EAP_DAC1].ei_pintr(sc->sc_ei[EAP_DAC1].ei_parg);
935 }
936
937 if (intr & EAP_I_MCCB)
938 panic("eap_intr: unexpected MCCB interrupt");
939 #if NMIDI > 0
940 if ((intr & EAP_I_UART) && sc->sc_iintr != NULL) {
941 u_int32_t data;
942
943 if (EREAD1(sc, EAP_UART_STATUS) & EAP_US_RXINT) {
944 while (EREAD1(sc, EAP_UART_STATUS) & EAP_US_RXRDY) {
945 data = EREAD1(sc, EAP_UART_DATA);
946 sc->sc_iintr(sc->sc_arg, data);
947 }
948 }
949 }
950 #endif
951 return (1);
952 }
953
954 int
955 eap_allocmem(struct eap_softc *sc, size_t size, size_t align, struct eap_dma *p)
956 {
957 int error;
958
959 p->size = size;
960 error = bus_dmamem_alloc(sc->sc_dmatag, p->size, align, 0,
961 p->segs, sizeof(p->segs)/sizeof(p->segs[0]),
962 &p->nsegs, BUS_DMA_NOWAIT);
963 if (error)
964 return (error);
965
966 error = bus_dmamem_map(sc->sc_dmatag, p->segs, p->nsegs, p->size,
967 &p->addr, BUS_DMA_NOWAIT|BUS_DMA_COHERENT);
968 if (error)
969 goto free;
970
971 error = bus_dmamap_create(sc->sc_dmatag, p->size, 1, p->size,
972 0, BUS_DMA_NOWAIT, &p->map);
973 if (error)
974 goto unmap;
975
976 error = bus_dmamap_load(sc->sc_dmatag, p->map, p->addr, p->size, NULL,
977 BUS_DMA_NOWAIT);
978 if (error)
979 goto destroy;
980 return (0);
981
982 destroy:
983 bus_dmamap_destroy(sc->sc_dmatag, p->map);
984 unmap:
985 bus_dmamem_unmap(sc->sc_dmatag, p->addr, p->size);
986 free:
987 bus_dmamem_free(sc->sc_dmatag, p->segs, p->nsegs);
988 return (error);
989 }
990
991 int
992 eap_freemem(struct eap_softc *sc, struct eap_dma *p)
993 {
994 bus_dmamap_unload(sc->sc_dmatag, p->map);
995 bus_dmamap_destroy(sc->sc_dmatag, p->map);
996 bus_dmamem_unmap(sc->sc_dmatag, p->addr, p->size);
997 bus_dmamem_free(sc->sc_dmatag, p->segs, p->nsegs);
998 return (0);
999 }
1000
1001 int
1002 eap_open(void *addr, int flags)
1003 {
1004 struct eap_instance *ei = addr;
1005
1006 /* there is only one ADC */
1007 if (ei->index == EAP_I2 && flags & FREAD)
1008 return (EOPNOTSUPP);
1009
1010 return (0);
1011 }
1012
1013 /*
1014 * Close function is called at splaudio().
1015 */
1016 void
1017 eap_close(void *addr)
1018 {
1019 }
1020
1021 int
1022 eap_query_encoding(void *addr, struct audio_encoding *fp)
1023 {
1024 switch (fp->index) {
1025 case 0:
1026 strcpy(fp->name, AudioEulinear);
1027 fp->encoding = AUDIO_ENCODING_ULINEAR;
1028 fp->precision = 8;
1029 fp->flags = 0;
1030 return (0);
1031 case 1:
1032 strcpy(fp->name, AudioEmulaw);
1033 fp->encoding = AUDIO_ENCODING_ULAW;
1034 fp->precision = 8;
1035 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1036 return (0);
1037 case 2:
1038 strcpy(fp->name, AudioEalaw);
1039 fp->encoding = AUDIO_ENCODING_ALAW;
1040 fp->precision = 8;
1041 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1042 return (0);
1043 case 3:
1044 strcpy(fp->name, AudioEslinear);
1045 fp->encoding = AUDIO_ENCODING_SLINEAR;
1046 fp->precision = 8;
1047 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1048 return (0);
1049 case 4:
1050 strcpy(fp->name, AudioEslinear_le);
1051 fp->encoding = AUDIO_ENCODING_SLINEAR_LE;
1052 fp->precision = 16;
1053 fp->flags = 0;
1054 return (0);
1055 case 5:
1056 strcpy(fp->name, AudioEulinear_le);
1057 fp->encoding = AUDIO_ENCODING_ULINEAR_LE;
1058 fp->precision = 16;
1059 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1060 return (0);
1061 case 6:
1062 strcpy(fp->name, AudioEslinear_be);
1063 fp->encoding = AUDIO_ENCODING_SLINEAR_BE;
1064 fp->precision = 16;
1065 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1066 return (0);
1067 case 7:
1068 strcpy(fp->name, AudioEulinear_be);
1069 fp->encoding = AUDIO_ENCODING_ULINEAR_BE;
1070 fp->precision = 16;
1071 fp->flags = AUDIO_ENCODINGFLAG_EMULATED;
1072 return (0);
1073 default:
1074 return (EINVAL);
1075 }
1076 }
1077
1078 int
1079 eap_set_params(void *addr, int setmode, int usemode,
1080 struct audio_params *play, struct audio_params *rec)
1081 {
1082 struct eap_instance *ei = addr;
1083 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1084 struct audio_params *p;
1085 int mode;
1086 u_int32_t div;
1087
1088 /*
1089 * The es1370 only has one clock, so make the sample rates match.
1090 * This only applies for ADC/DAC2. The FM DAC is handled below.
1091 */
1092 if (!sc->sc_1371 && ei->index == EAP_DAC2) {
1093 if (play->sample_rate != rec->sample_rate &&
1094 usemode == (AUMODE_PLAY | AUMODE_RECORD)) {
1095 if (setmode == AUMODE_PLAY) {
1096 rec->sample_rate = play->sample_rate;
1097 setmode |= AUMODE_RECORD;
1098 } else if (setmode == AUMODE_RECORD) {
1099 play->sample_rate = rec->sample_rate;
1100 setmode |= AUMODE_PLAY;
1101 } else
1102 return (EINVAL);
1103 }
1104 }
1105
1106 for (mode = AUMODE_RECORD; mode != -1;
1107 mode = mode == AUMODE_RECORD ? AUMODE_PLAY : -1) {
1108 if ((setmode & mode) == 0)
1109 continue;
1110
1111 p = mode == AUMODE_PLAY ? play : rec;
1112
1113 if (p->sample_rate < 4000 || p->sample_rate > 48000 ||
1114 (p->precision != 8 && p->precision != 16) ||
1115 (p->channels != 1 && p->channels != 2))
1116 return (EINVAL);
1117
1118 p->factor = 1;
1119 p->sw_code = 0;
1120 switch (p->encoding) {
1121 case AUDIO_ENCODING_SLINEAR_BE:
1122 if (p->precision == 16)
1123 p->sw_code = swap_bytes;
1124 else
1125 p->sw_code = change_sign8;
1126 break;
1127 case AUDIO_ENCODING_SLINEAR_LE:
1128 if (p->precision != 16)
1129 p->sw_code = change_sign8;
1130 break;
1131 case AUDIO_ENCODING_ULINEAR_BE:
1132 if (p->precision == 16) {
1133 if (mode == AUMODE_PLAY)
1134 p->sw_code = swap_bytes_change_sign16_le;
1135 else
1136 p->sw_code = change_sign16_swap_bytes_le;
1137 }
1138 break;
1139 case AUDIO_ENCODING_ULINEAR_LE:
1140 if (p->precision == 16)
1141 p->sw_code = change_sign16_le;
1142 break;
1143 case AUDIO_ENCODING_ULAW:
1144 if (mode == AUMODE_PLAY) {
1145 p->factor = 2;
1146 p->sw_code = mulaw_to_slinear16_le;
1147 } else
1148 p->sw_code = ulinear8_to_mulaw;
1149 break;
1150 case AUDIO_ENCODING_ALAW:
1151 if (mode == AUMODE_PLAY) {
1152 p->factor = 2;
1153 p->sw_code = alaw_to_slinear16_le;
1154 } else
1155 p->sw_code = ulinear8_to_alaw;
1156 break;
1157 default:
1158 return (EINVAL);
1159 }
1160 }
1161
1162 if (sc->sc_1371) {
1163 eap1371_set_dac_rate(ei, play->sample_rate);
1164 eap1371_set_adc_rate(sc, rec->sample_rate);
1165 } else if (ei->index == EAP_DAC2) {
1166 /* Set the speed */
1167 DPRINTFN(2, ("eap_set_params: old ICSC = 0x%08x\n",
1168 EREAD4(sc, EAP_ICSC)));
1169 div = EREAD4(sc, EAP_ICSC) & ~EAP_PCLKBITS;
1170 /*
1171 * XXX
1172 * The -2 isn't documented, but seemed to make the wall
1173 * time match
1174 * what I expect. - mycroft
1175 */
1176 if (usemode == AUMODE_RECORD)
1177 div |= EAP_SET_PCLKDIV(EAP_XTAL_FREQ /
1178 rec->sample_rate - 2);
1179 else
1180 div |= EAP_SET_PCLKDIV(EAP_XTAL_FREQ /
1181 play->sample_rate - 2);
1182 #if 0
1183 div |= EAP_CCB_INTRM;
1184 #else
1185 /*
1186 * It is not obvious how to acknowledge MCCB interrupts, so
1187 * we had better not enable them.
1188 */
1189 #endif
1190 EWRITE4(sc, EAP_ICSC, div);
1191 DPRINTFN(2, ("eap_set_params: set ICSC = 0x%08x\n", div));
1192 } else {
1193 /*
1194 * The FM DAC has only a few fixed-frequency choises, so
1195 * pick out the best candidate.
1196 */
1197 div = EREAD4(sc, EAP_ICSC);
1198 DPRINTFN(2, ("eap_set_params: old ICSC = 0x%08x\n", div));
1199
1200 div &= ~EAP_WTSRSEL;
1201 if (play->sample_rate < 8268)
1202 div |= EAP_WTSRSEL_5;
1203 else if (play->sample_rate < 16537)
1204 div |= EAP_WTSRSEL_11;
1205 else if (play->sample_rate < 33075)
1206 div |= EAP_WTSRSEL_22;
1207 else
1208 div |= EAP_WTSRSEL_44;
1209
1210 EWRITE4(sc, EAP_ICSC, div);
1211 DPRINTFN(2, ("eap_set_params: set ICSC = 0x%08x\n", div));
1212 }
1213
1214 return (0);
1215 }
1216
1217 int
1218 eap_round_blocksize(void *addr, int blk)
1219 {
1220 return (blk & -32); /* keep good alignment */
1221 }
1222
1223 int
1224 eap_trigger_output(
1225 void *addr,
1226 void *start,
1227 void *end,
1228 int blksize,
1229 void (*intr)(void *),
1230 void *arg,
1231 struct audio_params *param)
1232 {
1233 struct eap_instance *ei = addr;
1234 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1235 struct eap_dma *p;
1236 u_int32_t icsc, sic;
1237 int sampshift;
1238
1239 #ifdef DIAGNOSTIC
1240 if (ei->ei_prun)
1241 panic("eap_trigger_output: already running");
1242 ei->ei_prun = 1;
1243 #endif
1244
1245 DPRINTFN(1, ("eap_trigger_output: sc=%p start=%p end=%p "
1246 "blksize=%d intr=%p(%p)\n", addr, start, end, blksize, intr, arg));
1247 ei->ei_pintr = intr;
1248 ei->ei_parg = arg;
1249
1250 sic = EREAD4(sc, EAP_SIC);
1251 sic &= ~(EAP_S_EB(ei->index) | EAP_S_MB(ei->index) | EAP_INC_BITS);
1252
1253 if (ei->index == EAP_DAC2)
1254 sic |= EAP_SET_P2_ST_INC(0)
1255 | EAP_SET_P2_END_INC(param->precision * param->factor / 8);
1256
1257 sampshift = 0;
1258 if (param->precision * param->factor == 16) {
1259 sic |= EAP_S_EB(ei->index);
1260 sampshift++;
1261 }
1262 if (param->channels == 2) {
1263 sic |= EAP_S_MB(ei->index);
1264 sampshift++;
1265 }
1266 EWRITE4(sc, EAP_SIC, sic & ~EAP_P_INTR_EN(ei->index));
1267 EWRITE4(sc, EAP_SIC, sic | EAP_P_INTR_EN(ei->index));
1268
1269 for (p = sc->sc_dmas; p && KERNADDR(p) != start; p = p->next)
1270 ;
1271 if (!p) {
1272 printf("eap_trigger_output: bad addr %p\n", start);
1273 return (EINVAL);
1274 }
1275
1276 if (ei->index == EAP_DAC2) {
1277 DPRINTF(("eap_trigger_output: DAC2_ADDR=0x%x, DAC2_SIZE=0x%x\n",
1278 (int)DMAADDR(p),
1279 (int)EAP_SET_SIZE(0,
1280 (((char *)end - (char *)start) >> 2) - 1)));
1281 EWRITE4(sc, EAP_MEMPAGE, EAP_DAC_PAGE);
1282 EWRITE4(sc, EAP_DAC2_ADDR, DMAADDR(p));
1283 EWRITE4(sc, EAP_DAC2_SIZE,
1284 EAP_SET_SIZE(0,
1285 ((char *)end - (char *)start) >> 2) - 1);
1286 EWRITE4(sc, EAP_DAC2_CSR, (blksize >> sampshift) - 1);
1287 } else if (ei->index == EAP_DAC1) {
1288 DPRINTF(("eap_trigger_output: DAC1_ADDR=0x%x, DAC1_SIZE=0x%x\n",
1289 (int)DMAADDR(p),
1290 (int)EAP_SET_SIZE(0,
1291 (((char *)end - (char *)start) >> 2) - 1)));
1292 EWRITE4(sc, EAP_MEMPAGE, EAP_DAC_PAGE);
1293 EWRITE4(sc, EAP_DAC1_ADDR, DMAADDR(p));
1294 EWRITE4(sc, EAP_DAC1_SIZE,
1295 EAP_SET_SIZE(0,
1296 ((char *)end - (char *)start) >> 2) - 1);
1297 EWRITE4(sc, EAP_DAC1_CSR, (blksize >> sampshift) - 1);
1298 }
1299 #ifdef DIAGNOSTIC
1300 else
1301 panic("eap_trigger_output: impossible instance %d", ei->index);
1302 #endif
1303
1304 if (sc->sc_1371)
1305 EWRITE4(sc, E1371_SRC, 0);
1306
1307 icsc = EREAD4(sc, EAP_ICSC);
1308 icsc |= EAP_DAC_EN(ei->index);
1309 EWRITE4(sc, EAP_ICSC, icsc);
1310
1311 DPRINTFN(1, ("eap_trigger_output: set ICSC = 0x%08x\n", icsc));
1312
1313 return (0);
1314 }
1315
1316 int
1317 eap_trigger_input(
1318 void *addr,
1319 void *start,
1320 void *end,
1321 int blksize,
1322 void (*intr)(void *),
1323 void *arg,
1324 struct audio_params *param)
1325 {
1326 struct eap_instance *ei = addr;
1327 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1328 struct eap_dma *p;
1329 u_int32_t icsc, sic;
1330 int sampshift;
1331
1332 #ifdef DIAGNOSTIC
1333 if (sc->sc_rrun)
1334 panic("eap_trigger_input: already running");
1335 sc->sc_rrun = 1;
1336 #endif
1337
1338 DPRINTFN(1, ("eap_trigger_input: ei=%p start=%p end=%p blksize=%d intr=%p(%p)\n",
1339 addr, start, end, blksize, intr, arg));
1340 sc->sc_rintr = intr;
1341 sc->sc_rarg = arg;
1342
1343 sic = EREAD4(sc, EAP_SIC);
1344 sic &= ~(EAP_R1_S_EB | EAP_R1_S_MB);
1345 sampshift = 0;
1346 if (param->precision * param->factor == 16) {
1347 sic |= EAP_R1_S_EB;
1348 sampshift++;
1349 }
1350 if (param->channels == 2) {
1351 sic |= EAP_R1_S_MB;
1352 sampshift++;
1353 }
1354 EWRITE4(sc, EAP_SIC, sic & ~EAP_R1_INTR_EN);
1355 EWRITE4(sc, EAP_SIC, sic | EAP_R1_INTR_EN);
1356
1357 for (p = sc->sc_dmas; p && KERNADDR(p) != start; p = p->next)
1358 ;
1359 if (!p) {
1360 printf("eap_trigger_input: bad addr %p\n", start);
1361 return (EINVAL);
1362 }
1363
1364 DPRINTF(("eap_trigger_input: ADC_ADDR=0x%x, ADC_SIZE=0x%x\n",
1365 (int)DMAADDR(p),
1366 (int)EAP_SET_SIZE(0, (((char *)end - (char *)start) >> 2) - 1)));
1367 EWRITE4(sc, EAP_MEMPAGE, EAP_ADC_PAGE);
1368 EWRITE4(sc, EAP_ADC_ADDR, DMAADDR(p));
1369 EWRITE4(sc, EAP_ADC_SIZE,
1370 EAP_SET_SIZE(0, (((char *)end - (char *)start) >> 2) - 1));
1371
1372 EWRITE4(sc, EAP_ADC_CSR, (blksize >> sampshift) - 1);
1373
1374 if (sc->sc_1371)
1375 EWRITE4(sc, E1371_SRC, 0);
1376
1377 icsc = EREAD4(sc, EAP_ICSC);
1378 icsc |= EAP_ADC_EN;
1379 EWRITE4(sc, EAP_ICSC, icsc);
1380
1381 DPRINTFN(1, ("eap_trigger_input: set ICSC = 0x%08x\n", icsc));
1382
1383 return (0);
1384 }
1385
1386 int
1387 eap_halt_output(void *addr)
1388 {
1389 struct eap_instance *ei = addr;
1390 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1391 u_int32_t icsc;
1392
1393 DPRINTF(("eap: eap_halt_output\n"));
1394 icsc = EREAD4(sc, EAP_ICSC);
1395 EWRITE4(sc, EAP_ICSC, icsc & ~(EAP_DAC_EN(ei->index)));
1396 ei->ei_pintr = 0;
1397 #ifdef DIAGNOSTIC
1398 ei->ei_prun = 0;
1399 #endif
1400
1401 return (0);
1402 }
1403
1404 int
1405 eap_halt_input(void *addr)
1406 {
1407 struct eap_instance *ei = addr;
1408 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1409 u_int32_t icsc;
1410
1411 #define EAP_USE_FMDAC_ALSO
1412 DPRINTF(("eap: eap_halt_input\n"));
1413 icsc = EREAD4(sc, EAP_ICSC);
1414 EWRITE4(sc, EAP_ICSC, icsc & ~EAP_ADC_EN);
1415 sc->sc_rintr = 0;
1416 #ifdef DIAGNOSTIC
1417 sc->sc_rrun = 0;
1418 #endif
1419
1420 return (0);
1421 }
1422
1423 int
1424 eap_getdev(void *addr, struct audio_device *retp)
1425 {
1426 *retp = eap_device;
1427 return (0);
1428 }
1429
1430 int
1431 eap1371_mixer_set_port(void *addr, mixer_ctrl_t *cp)
1432 {
1433 struct eap_instance *ei = addr;
1434 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1435
1436 return (sc->codec_if->vtbl->mixer_set_port(sc->codec_if, cp));
1437 }
1438
1439 int
1440 eap1371_mixer_get_port(void *addr, mixer_ctrl_t *cp)
1441 {
1442 struct eap_instance *ei = addr;
1443 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1444
1445 return (sc->codec_if->vtbl->mixer_get_port(sc->codec_if, cp));
1446 }
1447
1448 int
1449 eap1371_query_devinfo(void *addr, mixer_devinfo_t *dip)
1450 {
1451 struct eap_instance *ei = addr;
1452 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1453
1454 return (sc->codec_if->vtbl->query_devinfo(sc->codec_if, dip));
1455 }
1456
1457 int
1458 eap1371_get_portnum_by_name(struct eap_softc *sc,
1459 char *class, char *device, char *qualifier)
1460 {
1461 return (sc->codec_if->vtbl->get_portnum_by_name(sc->codec_if, class,
1462 device, qualifier));
1463 }
1464
1465 void
1466 eap1370_set_mixer(struct eap_softc *sc, int a, int d)
1467 {
1468 eap1370_write_codec(sc, a, d);
1469
1470 sc->sc_port[a] = d;
1471 DPRINTFN(1, ("eap1370_mixer_set_port port 0x%02x = 0x%02x\n", a, d));
1472 }
1473
1474 int
1475 eap1370_mixer_set_port(void *addr, mixer_ctrl_t *cp)
1476 {
1477 struct eap_instance *ei = addr;
1478 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1479 int lval, rval, l, r, la, ra;
1480 int l1, r1, l2, r2, m, o1, o2;
1481
1482 if (cp->dev == EAP_RECORD_SOURCE) {
1483 if (cp->type != AUDIO_MIXER_SET)
1484 return (EINVAL);
1485 m = sc->sc_record_source = cp->un.mask;
1486 l1 = l2 = r1 = r2 = 0;
1487 if (m & (1 << EAP_VOICE_VOL))
1488 l2 |= AK_M_VOICE, r2 |= AK_M_VOICE;
1489 if (m & (1 << EAP_FM_VOL))
1490 l1 |= AK_M_FM_L, r1 |= AK_M_FM_R;
1491 if (m & (1 << EAP_CD_VOL))
1492 l1 |= AK_M_CD_L, r1 |= AK_M_CD_R;
1493 if (m & (1 << EAP_LINE_VOL))
1494 l1 |= AK_M_LINE_L, r1 |= AK_M_LINE_R;
1495 if (m & (1 << EAP_AUX_VOL))
1496 l2 |= AK_M2_AUX_L, r2 |= AK_M2_AUX_R;
1497 if (m & (1 << EAP_MIC_VOL))
1498 l2 |= AK_M_TMIC, r2 |= AK_M_TMIC;
1499 eap1370_set_mixer(sc, AK_IN_MIXER1_L, l1);
1500 eap1370_set_mixer(sc, AK_IN_MIXER1_R, r1);
1501 eap1370_set_mixer(sc, AK_IN_MIXER2_L, l2);
1502 eap1370_set_mixer(sc, AK_IN_MIXER2_R, r2);
1503 return (0);
1504 }
1505 if (cp->dev == EAP_OUTPUT_SELECT) {
1506 if (cp->type != AUDIO_MIXER_SET)
1507 return (EINVAL);
1508 m = sc->sc_output_source = cp->un.mask;
1509 o1 = o2 = 0;
1510 if (m & (1 << EAP_VOICE_VOL))
1511 o2 |= AK_M_VOICE_L | AK_M_VOICE_R;
1512 if (m & (1 << EAP_FM_VOL))
1513 o1 |= AK_M_FM_L | AK_M_FM_R;
1514 if (m & (1 << EAP_CD_VOL))
1515 o1 |= AK_M_CD_L | AK_M_CD_R;
1516 if (m & (1 << EAP_LINE_VOL))
1517 o1 |= AK_M_LINE_L | AK_M_LINE_R;
1518 if (m & (1 << EAP_AUX_VOL))
1519 o2 |= AK_M_AUX_L | AK_M_AUX_R;
1520 if (m & (1 << EAP_MIC_VOL))
1521 o1 |= AK_M_MIC;
1522 eap1370_set_mixer(sc, AK_OUT_MIXER1, o1);
1523 eap1370_set_mixer(sc, AK_OUT_MIXER2, o2);
1524 return (0);
1525 }
1526 if (cp->dev == EAP_MIC_PREAMP) {
1527 if (cp->type != AUDIO_MIXER_ENUM)
1528 return (EINVAL);
1529 if (cp->un.ord != 0 && cp->un.ord != 1)
1530 return (EINVAL);
1531 sc->sc_mic_preamp = cp->un.ord;
1532 eap1370_set_mixer(sc, AK_MGAIN, cp->un.ord);
1533 return (0);
1534 }
1535 if (cp->type != AUDIO_MIXER_VALUE)
1536 return (EINVAL);
1537 if (cp->un.value.num_channels == 1)
1538 lval = rval = cp->un.value.level[AUDIO_MIXER_LEVEL_MONO];
1539 else if (cp->un.value.num_channels == 2) {
1540 lval = cp->un.value.level[AUDIO_MIXER_LEVEL_LEFT];
1541 rval = cp->un.value.level[AUDIO_MIXER_LEVEL_RIGHT];
1542 } else
1543 return (EINVAL);
1544 ra = -1;
1545 switch (cp->dev) {
1546 case EAP_MASTER_VOL:
1547 l = VOL_TO_ATT5(lval);
1548 r = VOL_TO_ATT5(rval);
1549 la = AK_MASTER_L;
1550 ra = AK_MASTER_R;
1551 break;
1552 case EAP_MIC_VOL:
1553 if (cp->un.value.num_channels != 1)
1554 return (EINVAL);
1555 la = AK_MIC;
1556 goto lr;
1557 case EAP_VOICE_VOL:
1558 la = AK_VOICE_L;
1559 ra = AK_VOICE_R;
1560 goto lr;
1561 case EAP_FM_VOL:
1562 la = AK_FM_L;
1563 ra = AK_FM_R;
1564 goto lr;
1565 case EAP_CD_VOL:
1566 la = AK_CD_L;
1567 ra = AK_CD_R;
1568 goto lr;
1569 case EAP_LINE_VOL:
1570 la = AK_LINE_L;
1571 ra = AK_LINE_R;
1572 goto lr;
1573 case EAP_AUX_VOL:
1574 la = AK_AUX_L;
1575 ra = AK_AUX_R;
1576 lr:
1577 l = VOL_TO_GAIN5(lval);
1578 r = VOL_TO_GAIN5(rval);
1579 break;
1580 default:
1581 return (EINVAL);
1582 }
1583 eap1370_set_mixer(sc, la, l);
1584 if (ra >= 0) {
1585 eap1370_set_mixer(sc, ra, r);
1586 }
1587 return (0);
1588 }
1589
1590 int
1591 eap1370_mixer_get_port(void *addr, mixer_ctrl_t *cp)
1592 {
1593 struct eap_instance *ei = addr;
1594 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1595 int la, ra, l, r;
1596
1597 switch (cp->dev) {
1598 case EAP_RECORD_SOURCE:
1599 if (cp->type != AUDIO_MIXER_SET)
1600 return (EINVAL);
1601 cp->un.mask = sc->sc_record_source;
1602 return (0);
1603 case EAP_OUTPUT_SELECT:
1604 if (cp->type != AUDIO_MIXER_SET)
1605 return (EINVAL);
1606 cp->un.mask = sc->sc_output_source;
1607 return (0);
1608 case EAP_MIC_PREAMP:
1609 if (cp->type != AUDIO_MIXER_ENUM)
1610 return (EINVAL);
1611 cp->un.ord = sc->sc_mic_preamp;
1612 return (0);
1613 case EAP_MASTER_VOL:
1614 l = ATT5_TO_VOL(sc->sc_port[AK_MASTER_L]);
1615 r = ATT5_TO_VOL(sc->sc_port[AK_MASTER_R]);
1616 break;
1617 case EAP_MIC_VOL:
1618 if (cp->un.value.num_channels != 1)
1619 return (EINVAL);
1620 la = ra = AK_MIC;
1621 goto lr;
1622 case EAP_VOICE_VOL:
1623 la = AK_VOICE_L;
1624 ra = AK_VOICE_R;
1625 goto lr;
1626 case EAP_FM_VOL:
1627 la = AK_FM_L;
1628 ra = AK_FM_R;
1629 goto lr;
1630 case EAP_CD_VOL:
1631 la = AK_CD_L;
1632 ra = AK_CD_R;
1633 goto lr;
1634 case EAP_LINE_VOL:
1635 la = AK_LINE_L;
1636 ra = AK_LINE_R;
1637 goto lr;
1638 case EAP_AUX_VOL:
1639 la = AK_AUX_L;
1640 ra = AK_AUX_R;
1641 lr:
1642 l = GAIN5_TO_VOL(sc->sc_port[la]);
1643 r = GAIN5_TO_VOL(sc->sc_port[ra]);
1644 break;
1645 default:
1646 return (EINVAL);
1647 }
1648 if (cp->un.value.num_channels == 1)
1649 cp->un.value.level[AUDIO_MIXER_LEVEL_MONO] = (l+r) / 2;
1650 else if (cp->un.value.num_channels == 2) {
1651 cp->un.value.level[AUDIO_MIXER_LEVEL_LEFT] = l;
1652 cp->un.value.level[AUDIO_MIXER_LEVEL_RIGHT] = r;
1653 } else
1654 return (EINVAL);
1655 return (0);
1656 }
1657
1658 int
1659 eap1370_query_devinfo(void *addr, mixer_devinfo_t *dip)
1660 {
1661
1662 switch (dip->index) {
1663 case EAP_MASTER_VOL:
1664 dip->type = AUDIO_MIXER_VALUE;
1665 dip->mixer_class = EAP_OUTPUT_CLASS;
1666 dip->prev = dip->next = AUDIO_MIXER_LAST;
1667 strcpy(dip->label.name, AudioNmaster);
1668 dip->un.v.num_channels = 2;
1669 strcpy(dip->un.v.units.name, AudioNvolume);
1670 return (0);
1671 case EAP_VOICE_VOL:
1672 dip->type = AUDIO_MIXER_VALUE;
1673 dip->mixer_class = EAP_INPUT_CLASS;
1674 dip->prev = AUDIO_MIXER_LAST;
1675 dip->next = AUDIO_MIXER_LAST;
1676 strcpy(dip->label.name, AudioNdac);
1677 dip->un.v.num_channels = 2;
1678 strcpy(dip->un.v.units.name, AudioNvolume);
1679 return (0);
1680 case EAP_FM_VOL:
1681 dip->type = AUDIO_MIXER_VALUE;
1682 dip->mixer_class = EAP_INPUT_CLASS;
1683 dip->prev = AUDIO_MIXER_LAST;
1684 dip->next = AUDIO_MIXER_LAST;
1685 strcpy(dip->label.name, AudioNfmsynth);
1686 dip->un.v.num_channels = 2;
1687 strcpy(dip->un.v.units.name, AudioNvolume);
1688 return (0);
1689 case EAP_CD_VOL:
1690 dip->type = AUDIO_MIXER_VALUE;
1691 dip->mixer_class = EAP_INPUT_CLASS;
1692 dip->prev = AUDIO_MIXER_LAST;
1693 dip->next = AUDIO_MIXER_LAST;
1694 strcpy(dip->label.name, AudioNcd);
1695 dip->un.v.num_channels = 2;
1696 strcpy(dip->un.v.units.name, AudioNvolume);
1697 return (0);
1698 case EAP_LINE_VOL:
1699 dip->type = AUDIO_MIXER_VALUE;
1700 dip->mixer_class = EAP_INPUT_CLASS;
1701 dip->prev = AUDIO_MIXER_LAST;
1702 dip->next = AUDIO_MIXER_LAST;
1703 strcpy(dip->label.name, AudioNline);
1704 dip->un.v.num_channels = 2;
1705 strcpy(dip->un.v.units.name, AudioNvolume);
1706 return (0);
1707 case EAP_AUX_VOL:
1708 dip->type = AUDIO_MIXER_VALUE;
1709 dip->mixer_class = EAP_INPUT_CLASS;
1710 dip->prev = AUDIO_MIXER_LAST;
1711 dip->next = AUDIO_MIXER_LAST;
1712 strcpy(dip->label.name, AudioNaux);
1713 dip->un.v.num_channels = 2;
1714 strcpy(dip->un.v.units.name, AudioNvolume);
1715 return (0);
1716 case EAP_MIC_VOL:
1717 dip->type = AUDIO_MIXER_VALUE;
1718 dip->mixer_class = EAP_INPUT_CLASS;
1719 dip->prev = AUDIO_MIXER_LAST;
1720 dip->next = EAP_MIC_PREAMP;
1721 strcpy(dip->label.name, AudioNmicrophone);
1722 dip->un.v.num_channels = 1;
1723 strcpy(dip->un.v.units.name, AudioNvolume);
1724 return (0);
1725 case EAP_RECORD_SOURCE:
1726 dip->mixer_class = EAP_RECORD_CLASS;
1727 dip->prev = dip->next = AUDIO_MIXER_LAST;
1728 strcpy(dip->label.name, AudioNsource);
1729 dip->type = AUDIO_MIXER_SET;
1730 dip->un.s.num_mem = 6;
1731 strcpy(dip->un.s.member[0].label.name, AudioNmicrophone);
1732 dip->un.s.member[0].mask = 1 << EAP_MIC_VOL;
1733 strcpy(dip->un.s.member[1].label.name, AudioNcd);
1734 dip->un.s.member[1].mask = 1 << EAP_CD_VOL;
1735 strcpy(dip->un.s.member[2].label.name, AudioNline);
1736 dip->un.s.member[2].mask = 1 << EAP_LINE_VOL;
1737 strcpy(dip->un.s.member[3].label.name, AudioNfmsynth);
1738 dip->un.s.member[3].mask = 1 << EAP_FM_VOL;
1739 strcpy(dip->un.s.member[4].label.name, AudioNaux);
1740 dip->un.s.member[4].mask = 1 << EAP_AUX_VOL;
1741 strcpy(dip->un.s.member[5].label.name, AudioNdac);
1742 dip->un.s.member[5].mask = 1 << EAP_VOICE_VOL;
1743 return (0);
1744 case EAP_OUTPUT_SELECT:
1745 dip->mixer_class = EAP_OUTPUT_CLASS;
1746 dip->prev = dip->next = AUDIO_MIXER_LAST;
1747 strcpy(dip->label.name, AudioNselect);
1748 dip->type = AUDIO_MIXER_SET;
1749 dip->un.s.num_mem = 6;
1750 strcpy(dip->un.s.member[0].label.name, AudioNmicrophone);
1751 dip->un.s.member[0].mask = 1 << EAP_MIC_VOL;
1752 strcpy(dip->un.s.member[1].label.name, AudioNcd);
1753 dip->un.s.member[1].mask = 1 << EAP_CD_VOL;
1754 strcpy(dip->un.s.member[2].label.name, AudioNline);
1755 dip->un.s.member[2].mask = 1 << EAP_LINE_VOL;
1756 strcpy(dip->un.s.member[3].label.name, AudioNfmsynth);
1757 dip->un.s.member[3].mask = 1 << EAP_FM_VOL;
1758 strcpy(dip->un.s.member[4].label.name, AudioNaux);
1759 dip->un.s.member[4].mask = 1 << EAP_AUX_VOL;
1760 strcpy(dip->un.s.member[5].label.name, AudioNdac);
1761 dip->un.s.member[5].mask = 1 << EAP_VOICE_VOL;
1762 return (0);
1763 case EAP_MIC_PREAMP:
1764 dip->type = AUDIO_MIXER_ENUM;
1765 dip->mixer_class = EAP_INPUT_CLASS;
1766 dip->prev = EAP_MIC_VOL;
1767 dip->next = AUDIO_MIXER_LAST;
1768 strcpy(dip->label.name, AudioNpreamp);
1769 dip->un.e.num_mem = 2;
1770 strcpy(dip->un.e.member[0].label.name, AudioNoff);
1771 dip->un.e.member[0].ord = 0;
1772 strcpy(dip->un.e.member[1].label.name, AudioNon);
1773 dip->un.e.member[1].ord = 1;
1774 return (0);
1775 case EAP_OUTPUT_CLASS:
1776 dip->type = AUDIO_MIXER_CLASS;
1777 dip->mixer_class = EAP_OUTPUT_CLASS;
1778 dip->next = dip->prev = AUDIO_MIXER_LAST;
1779 strcpy(dip->label.name, AudioCoutputs);
1780 return (0);
1781 case EAP_RECORD_CLASS:
1782 dip->type = AUDIO_MIXER_CLASS;
1783 dip->mixer_class = EAP_RECORD_CLASS;
1784 dip->next = dip->prev = AUDIO_MIXER_LAST;
1785 strcpy(dip->label.name, AudioCrecord);
1786 return (0);
1787 case EAP_INPUT_CLASS:
1788 dip->type = AUDIO_MIXER_CLASS;
1789 dip->mixer_class = EAP_INPUT_CLASS;
1790 dip->next = dip->prev = AUDIO_MIXER_LAST;
1791 strcpy(dip->label.name, AudioCinputs);
1792 return (0);
1793 }
1794 return (ENXIO);
1795 }
1796
1797 void *
1798 eap_malloc(void *addr, int direction, size_t size,
1799 struct malloc_type *pool, int flags)
1800 {
1801 struct eap_instance *ei = addr;
1802 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1803 struct eap_dma *p;
1804 int error;
1805
1806 p = malloc(sizeof(*p), pool, flags);
1807 if (!p)
1808 return (0);
1809 error = eap_allocmem(sc, size, 16, p);
1810 if (error) {
1811 free(p, pool);
1812 return (0);
1813 }
1814 p->next = sc->sc_dmas;
1815 sc->sc_dmas = p;
1816 return (KERNADDR(p));
1817 }
1818
1819 void
1820 eap_free(void *addr, void *ptr, struct malloc_type *pool)
1821 {
1822 struct eap_instance *ei = addr;
1823 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1824 struct eap_dma **pp, *p;
1825
1826 for (pp = &sc->sc_dmas; (p = *pp) != NULL; pp = &p->next) {
1827 if (KERNADDR(p) == ptr) {
1828 eap_freemem(sc, p);
1829 *pp = p->next;
1830 free(p, pool);
1831 return;
1832 }
1833 }
1834 }
1835
1836 size_t
1837 eap_round_buffersize(void *addr, int direction, size_t size)
1838 {
1839
1840 return (size);
1841 }
1842
1843 paddr_t
1844 eap_mappage(void *addr, void *mem, off_t off, int prot)
1845 {
1846 struct eap_instance *ei = addr;
1847 struct eap_softc *sc = (struct eap_softc *)ei->parent;
1848 struct eap_dma *p;
1849
1850 if (off < 0)
1851 return (-1);
1852 for (p = sc->sc_dmas; p && KERNADDR(p) != mem; p = p->next)
1853 ;
1854 if (!p)
1855 return (-1);
1856 return (bus_dmamem_mmap(sc->sc_dmatag, p->segs, p->nsegs,
1857 off, prot, BUS_DMA_WAITOK));
1858 }
1859
1860 int
1861 eap_get_props(void *addr)
1862 {
1863
1864 return (AUDIO_PROP_MMAP | AUDIO_PROP_INDEPENDENT |
1865 AUDIO_PROP_FULLDUPLEX);
1866 }
1867
1868 #if NMIDI > 0
1869 int
1870 eap_midi_open(void *addr, int flags,
1871 void (*iintr)(void *, int),
1872 void (*ointr)(void *),
1873 void *arg)
1874 {
1875 struct eap_softc *sc = addr;
1876 u_int32_t uctrl;
1877
1878 sc->sc_iintr = iintr;
1879 sc->sc_ointr = ointr;
1880 sc->sc_arg = arg;
1881
1882 EWRITE4(sc, EAP_ICSC, EREAD4(sc, EAP_ICSC) | EAP_UART_EN);
1883 uctrl = 0;
1884 if (flags & FREAD)
1885 uctrl |= EAP_UC_RXINTEN;
1886 #if 0
1887 /* I don't understand ../midi.c well enough to use output interrupts */
1888 if (flags & FWRITE)
1889 uctrl |= EAP_UC_TXINTEN; */
1890 #endif
1891 EWRITE1(sc, EAP_UART_CONTROL, uctrl);
1892
1893 return (0);
1894 }
1895
1896 void
1897 eap_midi_close(void *addr)
1898 {
1899 struct eap_softc *sc = addr;
1900
1901 tsleep(sc, PWAIT, "eapclm", hz/10); /* give uart a chance to drain */
1902 EWRITE1(sc, EAP_UART_CONTROL, 0);
1903 EWRITE4(sc, EAP_ICSC, EREAD4(sc, EAP_ICSC) & ~EAP_UART_EN);
1904
1905 sc->sc_iintr = 0;
1906 sc->sc_ointr = 0;
1907 }
1908
1909 int
1910 eap_midi_output(void *addr, int d)
1911 {
1912 struct eap_softc *sc = addr;
1913 int x;
1914
1915 for (x = 0; x != MIDI_BUSY_WAIT; x++) {
1916 if (EREAD1(sc, EAP_UART_STATUS) & EAP_US_TXRDY) {
1917 EWRITE1(sc, EAP_UART_DATA, d);
1918 return (0);
1919 }
1920 delay(MIDI_BUSY_DELAY);
1921 }
1922 return (EIO);
1923 }
1924
1925 void
1926 eap_midi_getinfo(void *addr, struct midi_info *mi)
1927 {
1928 mi->name = "AudioPCI MIDI UART";
1929 mi->props = MIDI_PROP_CAN_INPUT;
1930 }
1931
1932 #endif
1933