sequencer.c revision 1.3 1 /* $NetBSD: sequencer.c,v 1.3 1998/08/12 18:11:53 augustss Exp $ */
2
3 /*
4 * Copyright (c) 1998 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * Author: Lennart Augustsson
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. All advertising materials mentioning features or use of this software
18 * must display the following acknowledgement:
19 * This product includes software developed by the NetBSD
20 * Foundation, Inc. and its contributors.
21 * 4. Neither the name of The NetBSD Foundation nor the names of its
22 * contributors may be used to endorse or promote products derived
23 * from this software without specific prior written permission.
24 *
25 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
26 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
27 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
28 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
29 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
30 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
31 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
32 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
33 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
34 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
35 * POSSIBILITY OF SUCH DAMAGE.
36 */
37
38 #include "sequencer.h"
39 #if NSEQUENCER > 0
40
41 #include <sys/param.h>
42 #include <sys/ioctl.h>
43 #include <sys/fcntl.h>
44 #include <sys/vnode.h>
45 #include <sys/select.h>
46 #include <sys/poll.h>
47 #include <sys/malloc.h>
48 #include <sys/proc.h>
49 #include <sys/systm.h>
50 #include <sys/syslog.h>
51 #include <sys/kernel.h>
52 #include <sys/signalvar.h>
53 #include <sys/conf.h>
54 #include <sys/audioio.h>
55 #include <sys/midiio.h>
56 #include <sys/device.h>
57
58 #include <dev/audio_if.h>
59 #include <dev/midivar.h>
60 #include <dev/sequencervar.h>
61
62 #define ADDTIMEVAL(a, b) ( \
63 (a)->tv_sec += (b)->tv_sec, \
64 (a)->tv_usec += (b)->tv_usec, \
65 (a)->tv_usec > 1000000 ? ((a)->tv_sec++, (a)->tv_usec -= 1000000) : 0\
66 )
67
68 #define SUBTIMEVAL(a, b) ( \
69 (a)->tv_sec -= (b)->tv_sec, \
70 (a)->tv_usec -= (b)->tv_usec, \
71 (a)->tv_usec < 0 ? ((a)->tv_sec--, (a)->tv_usec += 1000000) : 0\
72 )
73
74 #ifdef AUDIO_DEBUG
75 #define DPRINTF(x) if (sequencerdebug) printf x
76 #define DPRINTFN(n,x) if (sequencerdebug >= (n)) printf x
77 int sequencerdebug = 0;
78 #else
79 #define DPRINTF(x)
80 #define DPRINTFN(n,x)
81 #endif
82
83 #define SEQ_CMD(b) ((b)->arr[0])
84
85 #define SEQ_EDEV(b) ((b)->arr[1])
86 #define SEQ_ECMD(b) ((b)->arr[2])
87 #define SEQ_ECHAN(b) ((b)->arr[3])
88 #define SEQ_ENOTE(b) ((b)->arr[4])
89 #define SEQ_EPARM(b) ((b)->arr[5])
90
91 #define SEQ_EP1(b) ((b)->arr[4])
92 #define SEQ_EP2(b) ((b)->arr[5])
93
94 #define SEQ_XCMD(b) ((b)->arr[1])
95 #define SEQ_XDEV(b) ((b)->arr[2])
96 #define SEQ_XCHAN(b) ((b)->arr[3])
97 #define SEQ_XNOTE(b) ((b)->arr[4])
98 #define SEQ_XVEL(b) ((b)->arr[5])
99
100 #define SEQ_TCMD(b) ((b)->arr[1])
101 #define SEQ_TPARM(b) ((b)->arr[4])
102
103 #define SEQ_NOTE_MAX 128
104 #define SEQ_NOTE_XXX 255
105 #define SEQ_VEL_OFF 0
106
107 #define RECALC_TICK(t) ((t)->tick = 60 * 1000000L / ((t)->tempo * (t)->timebase))
108
109 struct sequencer_softc seqdevs[NSEQUENCER];
110
111 void sequencerattach __P((int));
112 void seq_reset __P((struct sequencer_softc *));
113 int seq_do_command __P((struct sequencer_softc *, seq_event_rec *));
114 int seq_do_extcommand __P((struct sequencer_softc *, seq_event_rec *));
115 int seq_do_chnvoice __P((struct sequencer_softc *, seq_event_rec *));
116 int seq_do_chncommon __P((struct sequencer_softc *, seq_event_rec *));
117 int seq_do_timing __P((struct sequencer_softc *, seq_event_rec *));
118 int seq_do_local __P((struct sequencer_softc *, seq_event_rec *));
119 int seq_do_fullsize __P((struct sequencer_softc *, seq_event_rec *,
120 struct uio *));
121 int seq_timer __P((struct sequencer_softc *, int, int, seq_event_rec *));
122 int seq_input_event __P((struct sequencer_softc *, seq_event_rec *));
123 int seq_drain __P((struct sequencer_softc *));
124 void seq_startoutput __P((struct sequencer_softc *));
125 void seq_timeout __P((void *));
126 int seq_to_new __P((seq_event_rec *, struct uio *));
127 static int seq_sleep_timo(int *, char *, int);
128 static int seq_sleep(int *, char *);
129 static void seq_wakeup(int *);
130
131 struct midi_softc;
132 int midiout __P((struct midi_dev *, u_char *, u_int, int));
133 struct midi_dev *midiseq_open __P((int, int));
134 void midiseq_close __P((struct midi_dev *));
135 void midiseq_reset __P((struct midi_dev *));
136 int midiseq_noteon __P((struct midi_dev *, int, int, int));
137 int midiseq_noteoff __P((struct midi_dev *, int, int, int));
138 int midiseq_keypressure __P((struct midi_dev *, int, int, int));
139 int midiseq_pgmchange __P((struct midi_dev *, int, int));
140 int midiseq_ctlchange __P((struct midi_dev *, int, int, int));
141 int midiseq_pitchbend __P((struct midi_dev *, int, int));
142 int midiseq_loadpatch __P((struct midi_dev *, struct sysex_info *,
143 struct uio *));
144 int midiseq_putc __P((struct midi_dev *, int));
145 void midiseq_in __P((struct midi_dev *, u_char *, int));
146
147 void
148 sequencerattach(n)
149 int n;
150 {
151 }
152
153 int
154 sequenceropen(dev, flags, ifmt, p)
155 dev_t dev;
156 int flags, ifmt;
157 struct proc *p;
158 {
159 int unit = SEQUENCERUNIT(dev);
160 struct sequencer_softc *sc;
161 struct midi_dev *md;
162 int nmidi;
163
164 DPRINTF(("sequenceropen\n"));
165
166 if (unit >= NSEQUENCER)
167 return (ENXIO);
168 sc = &seqdevs[unit];
169 if (sc->isopen)
170 return EBUSY;
171 if (SEQ_IS_OLD(unit))
172 sc->mode = SEQ_OLD;
173 else
174 sc->mode = SEQ_NEW;
175 sc->isopen++;
176 sc->flags = flags & (FREAD|FWRITE);
177 sc->rchan = 0;
178 sc->wchan = 0;
179 sc->pbus = 0;
180 sc->async = 0;
181 sc->input_stamp = ~0;
182
183 sc->nmidi = 0;
184 nmidi = midi_unit_count();
185
186 sc->devs = malloc(nmidi * sizeof(struct midi_dev *),
187 M_DEVBUF, M_WAITOK);
188 for (unit = 0; unit < nmidi; unit++) {
189 md = midiseq_open(unit, flags);
190 if (md) {
191 sc->devs[sc->nmidi++] = md;
192 md->seq = sc;
193 }
194 }
195
196 sc->timer.timebase = 100;
197 sc->timer.tempo = 60;
198 RECALC_TICK(&sc->timer);
199 sc->timer.last = 0;
200 microtime(&sc->timer.start);
201
202 SEQ_QINIT(&sc->inq);
203 SEQ_QINIT(&sc->outq);
204 sc->lowat = SEQ_MAXQ / 2;
205
206 DPRINTF(("sequenceropen: mode=%d, nmidi=%d\n", sc->mode, sc->nmidi));
207 return 0;
208 }
209
210 static int
211 seq_sleep_timo(chan, label, timo)
212 int *chan;
213 char *label;
214 int timo;
215 {
216 int st;
217
218 if (!label)
219 label = "seq";
220
221 DPRINTFN(5, ("seq_sleep_timo: %p %s %d\n", chan, label, timo));
222 *chan = 1;
223 st = tsleep(chan, PWAIT | PCATCH, label, timo);
224 *chan = 0;
225 #ifdef MIDI_DEBUG
226 if (st != 0)
227 printf("seq_sleep: %d\n", st);
228 #endif
229 return st;
230 }
231
232 static int
233 seq_sleep(chan, label)
234 int *chan;
235 char *label;
236 {
237 return seq_sleep_timo(chan, label, 0);
238 }
239
240 static void
241 seq_wakeup(chan)
242 int *chan;
243 {
244 if (*chan) {
245 DPRINTFN(5, ("seq_wakeup: %p\n", chan));
246 wakeup(chan);
247 *chan = 0;
248 }
249 }
250
251 int
252 seq_drain(sc)
253 struct sequencer_softc *sc;
254 {
255 int error;
256
257 DPRINTFN(3, ("seq_drain: %p, len=%d\n", sc, SEQ_QLEN(&sc->outq)));
258 seq_startoutput(sc);
259 error = 0;
260 while(!SEQ_QEMPTY(&sc->outq) && !error)
261 error = seq_sleep_timo(&sc->wchan, "seq_dr", 30*hz);
262 return error;
263 }
264
265 void
266 seq_timeout(addr)
267 void *addr;
268 {
269 struct sequencer_softc *sc = addr;
270 DPRINTFN(4, ("seq_timeout: %p\n", sc));
271 sc->timeout = 0;
272 seq_startoutput(sc);
273 if (SEQ_QLEN(&sc->outq) < sc->lowat) {
274 seq_wakeup(&sc->wchan);
275 selwakeup(&sc->wsel);
276 if (sc->async)
277 psignal(sc->async, SIGIO);
278 }
279
280 }
281
282 void
283 seq_startoutput(sc)
284 struct sequencer_softc *sc;
285 {
286 struct sequencer_queue *q = &sc->outq;
287 seq_event_rec cmd;
288
289 if (sc->timeout)
290 return;
291 DPRINTFN(4, ("seq_startoutput: %p, len=%d\n", sc, SEQ_QLEN(q)));
292 while(!SEQ_QEMPTY(q) && !sc->timeout) {
293 SEQ_QGET(q, cmd);
294 seq_do_command(sc, &cmd);
295 }
296 }
297
298 int
299 sequencerclose(dev, flags, ifmt, p)
300 dev_t dev;
301 int flags, ifmt;
302 struct proc *p;
303 {
304 struct sequencer_softc *sc = &seqdevs[SEQUENCERUNIT(dev)];
305 int n;
306
307 DPRINTF(("sequencerclose: %p\n", sc));
308
309 seq_drain(sc);
310 seq_reset(sc);
311
312 for (n = 0; n < sc->nmidi; n++)
313 midiseq_close(sc->devs[n]);
314 free(sc->devs, M_DEVBUF);
315 sc->isopen = 0;
316 return (0);
317 }
318
319 int
320 seq_input_event(sc, cmd)
321 struct sequencer_softc *sc;
322 seq_event_rec *cmd;
323 {
324 struct sequencer_queue *q = &sc->inq;
325
326 DPRINTFN(2, ("seq_input_event: %02x %02x %02x %02x %02x %02x %02x %02x\n",
327 cmd->arr[0], cmd->arr[1], cmd->arr[2], cmd->arr[3],
328 cmd->arr[4], cmd->arr[5], cmd->arr[6], cmd->arr[7]));
329 if (SEQ_QFULL(q))
330 return (ENOMEM);
331 SEQ_QPUT(q, *cmd);
332 seq_wakeup(&sc->rchan);
333 selwakeup(&sc->rsel);
334 if (sc->async)
335 psignal(sc->async, SIGIO);
336 return 0;
337 }
338
339 void
340 seq_event_intr(addr, iev)
341 void *addr;
342 seq_event_rec *iev;
343 {
344 struct sequencer_softc *sc = addr;
345 union {
346 u_int32_t l;
347 u_int8_t b[4];
348 } u;
349 u_long t;
350 struct timeval now;
351 seq_event_rec ev;
352
353 microtime(&now);
354 SUBTIMEVAL(&now, &sc->timer.start);
355 t = now.tv_sec * 1000000 + now.tv_usec;
356 t /= sc->timer.tick;
357 if (t != sc->input_stamp) {
358 ev.arr[0] = SEQ_TIMING;
359 ev.arr[1] = TMR_WAIT_ABS;
360 ev.arr[2] = 0;
361 ev.arr[3] = 0;
362 u.l = t;
363 ev.arr[4] = u.b[0];
364 ev.arr[5] = u.b[1];
365 ev.arr[6] = u.b[2];
366 ev.arr[7] = u.b[3];
367 seq_input_event(sc, &ev);
368 sc->input_stamp = t;
369 }
370 seq_input_event(sc, iev);
371 }
372
373 int
374 sequencerread(dev, uio, ioflag)
375 dev_t dev;
376 struct uio *uio;
377 int ioflag;
378 {
379 struct sequencer_softc *sc = &seqdevs[SEQUENCERUNIT(dev)];
380 struct sequencer_queue *q = &sc->inq;
381 seq_event_rec ev;
382 int error, s;
383
384 DPRINTFN(4, ("sequencerread: %p, count=%d, ioflag=%x\n",
385 sc, uio->uio_resid, ioflag));
386
387 if (sc->mode == SEQ_OLD) {
388 return (EINVAL); /* XXX unimplemented */
389 }
390
391 error = 0;
392 while (SEQ_QEMPTY(q)) {
393 if (ioflag & IO_NDELAY)
394 return EWOULDBLOCK;
395 else {
396 error = seq_sleep(&sc->rchan, "seq rd");
397 if (error)
398 return error;
399 }
400 }
401 s = splaudio();
402 while (uio->uio_resid >= sizeof ev && !error && !SEQ_QEMPTY(q)) {
403 SEQ_QGET(q, ev);
404 error = uiomove(&ev, sizeof ev, uio);
405 }
406 splx(s);
407 return error;
408 }
409
410 int
411 sequencerwrite(dev, uio, ioflag)
412 dev_t dev;
413 struct uio *uio;
414 int ioflag;
415 {
416 struct sequencer_softc *sc = &seqdevs[SEQUENCERUNIT(dev)];
417 struct sequencer_queue *q = &sc->outq;
418 int error;
419 seq_event_rec cmdbuf;
420 int size;
421
422 DPRINTFN(2, ("sequencerwrite: %p, count=%d\n", sc, uio->uio_resid));
423
424 error = 0;
425 size = sc->mode == SEQ_NEW ? sizeof cmdbuf : SEQOLD_CMDSIZE;
426 while (uio->uio_resid >= size) {
427 error = uiomove(&cmdbuf, size, uio);
428 if (error)
429 break;
430 if (sc->mode == SEQ_OLD)
431 if (seq_to_new(&cmdbuf, uio))
432 continue;
433 if (SEQ_CMD(&cmdbuf) == SEQ_FULLSIZE) {
434 /* We do it like OSS does, asynchronously */
435 error = seq_do_fullsize(sc, &cmdbuf, uio);
436 if (error)
437 break;
438 continue;
439 }
440 while (SEQ_QFULL(q)) {
441 seq_startoutput(sc);
442 if (SEQ_QFULL(q)) {
443 if (ioflag & IO_NDELAY)
444 return EWOULDBLOCK;
445 error = seq_sleep(&sc->wchan, "seq_wr");
446 if (error)
447 return error;
448 }
449 }
450 SEQ_QPUT(q, cmdbuf);
451 }
452 seq_startoutput(sc);
453
454 #ifdef SEQUENCER_DEBUG
455 if (error)
456 DPRINTFN(2, ("sequencerwrite: error=%d\n", error));
457 #endif
458 return error;
459 }
460
461 int
462 sequencerioctl(dev, cmd, addr, flag, p)
463 dev_t dev;
464 u_long cmd;
465 caddr_t addr;
466 int flag;
467 struct proc *p;
468 {
469 struct sequencer_softc *sc = &seqdevs[SEQUENCERUNIT(dev)];
470 struct synth_info *si;
471 struct midi_dev *md;
472 int devno;
473 int error;
474 int t;
475
476 DPRINTFN(2, ("sequencerioctl: %p cmd=0x%08lx\n", sc, cmd));
477
478 error = 0;
479 switch (cmd) {
480 case FIONBIO:
481 /* All handled in the upper FS layer. */
482 break;
483
484 case FIOASYNC:
485 if (*(int *)addr) {
486 if (sc->async)
487 return EBUSY;
488 sc->async = p;
489 DPRINTF(("sequencer_ioctl: FIOASYNC %p\n", p));
490 } else
491 sc->async = 0;
492 break;
493
494 case SEQUENCER_RESET:
495 seq_reset(sc);
496 break;
497
498 case SEQUENCER_PANIC:
499 seq_reset(sc);
500 /* Do more? OSS doesn't */
501 break;
502
503 case SEQUENCER_SYNC:
504 if (sc->flags == FREAD)
505 return 0;
506 seq_drain(sc);
507 error = 0;
508 break;
509
510 case SEQUENCER_INFO:
511 si = (struct synth_info*)addr;
512 devno = si->device;
513 if (devno < 0 || devno >= sc->nmidi)
514 return EINVAL;
515 md = sc->devs[devno];
516 strncpy(si->name, md->name, sizeof si->name);
517 si->synth_type = SYNTH_TYPE_MIDI;
518 si->synth_subtype = md->subtype;
519 si->nr_voices = md->nr_voices;
520 si->instr_bank_size = md->instr_bank_size;
521 si->capabilities = md->capabilities;
522 break;
523
524 case SEQUENCER_NRSYNTHS:
525 *(int *)addr = sc->nmidi;
526 break;
527
528 case SEQUENCER_NRMIDIS:
529 *(int *)addr = sc->nmidi;
530 break;
531
532 case SEQUENCER_OUTOFBAND:
533 DPRINTFN(3, ("sequencer_ioctl: OOB=%02x %02x %02x %02x %02x %02x %02x %02x\n",
534 *(u_char *)addr, *(u_char *)(addr+1),
535 *(u_char *)(addr+2), *(u_char *)(addr+3),
536 *(u_char *)(addr+4), *(u_char *)(addr+5),
537 *(u_char *)(addr+6), *(u_char *)(addr+7)));
538 error = seq_do_command(sc, (seq_event_rec *)addr);
539 break;
540
541 case SEQUENCER_TMR_TIMEBASE:
542 t = *(int *)addr;
543 if (t < 1)
544 t = 1;
545 if (t > 1000)
546 t = 1000;
547 sc->timer.timebase = t;
548 *(int *)addr = t;
549 RECALC_TICK(&sc->timer);
550 break;
551
552 case SEQUENCER_TMR_START:
553 error = seq_timer(sc, TMR_START, 0, 0);
554 break;
555
556 case SEQUENCER_TMR_STOP:
557 error = seq_timer(sc, TMR_STOP, 0, 0);
558 break;
559
560 case SEQUENCER_TMR_CONTINUE:
561 error = seq_timer(sc, TMR_CONTINUE, 0, 0);
562 break;
563
564 case SEQUENCER_TMR_TEMPO:
565 t = *(int *)addr;
566 if (t < 8)
567 t = 8;
568 if (t > 250)
569 t = 250;
570 sc->timer.tempo = t;
571 *(int *)addr = t;
572 RECALC_TICK(&sc->timer);
573 break;
574
575 case SEQUENCER_TMR_SOURCE:
576 *(int *)addr = SEQUENCER_TMR_INTERNAL;
577 break;
578
579 case SEQUENCER_TMR_METRONOME:
580 /* noop */
581 break;
582
583 case SEQUENCER_THRESHOLD:
584 t = SEQ_MAXQ - *(int *)addr / sizeof (seq_event_rec);
585 if (t < 1)
586 t = 1;
587 if (t > SEQ_MAXQ)
588 t = SEQ_MAXQ;
589 sc->lowat = t;
590 break;
591
592 case SEQUENCER_CTRLRATE:
593 *(int *)addr = (sc->timer.tempo*sc->timer.timebase + 30) / 60;
594 break;
595
596 case SEQUENCER_GETTIME:
597 {
598 struct timeval now;
599 u_long t;
600 microtime(&now);
601 SUBTIMEVAL(&now, &sc->timer.start);
602 t = now.tv_sec * 1000000 + now.tv_usec;
603 t /= sc->timer.tick;
604 *(int *)addr = t;
605 break;
606 }
607
608 default:
609 DPRINTF(("sequencer_ioctl: unimpl %08lx\n", cmd));
610 error = EINVAL;
611 break;
612 }
613 return error;
614 }
615
616 int
617 sequencerpoll(dev, events, p)
618 dev_t dev;
619 int events;
620 struct proc *p;
621 {
622 struct sequencer_softc *sc = &seqdevs[SEQUENCERUNIT(dev)];
623 int revents = 0;
624
625 DPRINTF(("sequencerpoll: %p events=0x%x\n", sc, events));
626
627 if (events & (POLLIN | POLLRDNORM))
628 if (!SEQ_QEMPTY(&sc->inq))
629 revents |= events & (POLLIN | POLLRDNORM);
630
631 if (events & (POLLOUT | POLLWRNORM))
632 if (SEQ_QLEN(&sc->outq) < sc->lowat)
633 revents |= events & (POLLOUT | POLLWRNORM);
634
635 if (revents == 0) {
636 if (events & (POLLIN | POLLRDNORM))
637 selrecord(p, &sc->rsel);
638
639 if (events & (POLLOUT | POLLWRNORM))
640 selrecord(p, &sc->wsel);
641 }
642
643 return revents;
644 }
645
646 void
647 seq_reset(sc)
648 struct sequencer_softc *sc;
649 {
650 int i, chn;
651 struct midi_dev *md;
652
653 for (i = 0; i < sc->nmidi; i++) {
654 md = sc->devs[i];
655 midiseq_reset(md);
656 for (chn = 0; chn < MAXCHAN; chn++) {
657 midiseq_ctlchange(md, chn, MIDI_CTRL_ALLOFF, 0);
658 midiseq_ctlchange(md, chn, MIDI_CTRL_RESET, 0);
659 midiseq_pitchbend(md, chn, MIDI_BEND_NEUTRAL);
660 }
661 }
662 }
663
664 int
665 seq_do_command(sc, b)
666 struct sequencer_softc *sc;
667 seq_event_rec *b;
668 {
669 int dev;
670
671 DPRINTFN(4, ("seq_do_command: %p cmd=0x%02x\n", sc, SEQ_CMD(b)));
672
673 switch(SEQ_CMD(b)) {
674 case SEQ_LOCAL:
675 return seq_do_local(sc, b);
676 case SEQ_TIMING:
677 return seq_do_timing(sc, b);
678 case SEQ_CHN_VOICE:
679 return seq_do_chnvoice(sc, b);
680 case SEQ_CHN_COMMON:
681 return seq_do_chncommon(sc, b);
682 /* COMPAT */
683 case SEQOLD_MIDIPUTC:
684 dev = b->arr[2];
685 if (dev < 0 || dev >= sc->nmidi)
686 return (ENXIO);
687 return midiseq_putc(sc->devs[dev], b->arr[1]);
688 default:
689 DPRINTF(("seq_do_command: unimpl command %02x\n", SEQ_CMD(b)));
690 return (EINVAL);
691 }
692 }
693
694 int
695 seq_do_chnvoice(sc, b)
696 struct sequencer_softc *sc;
697 seq_event_rec *b;
698 {
699 int cmd, dev, chan, note, parm, voice;
700 int error;
701 struct midi_dev *md;
702
703 dev = SEQ_EDEV(b);
704 if (dev < 0 || dev >= sc->nmidi)
705 return ENXIO;
706 md = sc->devs[dev];
707 cmd = SEQ_ECMD(b);
708 chan = SEQ_ECHAN(b);
709 note = SEQ_ENOTE(b);
710 parm = SEQ_EPARM(b);
711 DPRINTFN(2,("seq_do_chnvoice: cmd=%02x dev=%d chan=%d note=%d parm=%d\n",
712 cmd, dev, chan, note, parm));
713 voice = chan;
714 if (cmd == MIDI_NOTEON && parm == 0) {
715 cmd = MIDI_NOTEOFF;
716 parm = MIDI_HALF_VEL;
717 }
718 switch(cmd) {
719 case MIDI_NOTEON:
720 DPRINTFN(5, ("seq_do_chnvoice: noteon %p %d %d %d\n",
721 md, voice, note, parm));
722 error = midiseq_noteon(md, voice, note, parm);
723 break;
724 case MIDI_NOTEOFF:
725 error = midiseq_noteoff(md, voice, note, parm);
726 break;
727 case MIDI_KEY_PRESSURE:
728 error = midiseq_keypressure(md, voice, note, parm);
729 break;
730 default:
731 DPRINTF(("seq_do_chnvoice: unimpl command %02x\n", cmd));
732 error = EINVAL;
733 break;
734 }
735 return error;
736 }
737
738 int
739 seq_do_chncommon(sc, b)
740 struct sequencer_softc *sc;
741 seq_event_rec *b;
742 {
743 int cmd, dev, chan, p1, w14;
744 int error;
745 struct midi_dev *md;
746 union {
747 int16_t s;
748 u_int8_t b[2];
749 } u;
750
751 dev = SEQ_EDEV(b);
752 if (dev < 0 || dev >= sc->nmidi)
753 return ENXIO;
754 md = sc->devs[dev];
755 cmd = SEQ_ECMD(b);
756 chan = SEQ_ECHAN(b);
757 p1 = SEQ_EP1(b);
758 u.b[0] = b->arr[6];
759 u.b[1] = b->arr[7];
760 w14 = u.s;
761 DPRINTFN(2,("seq_do_chncommon: %02x\n", cmd));
762
763 error = 0;
764 switch(cmd) {
765 case MIDI_PGM_CHANGE:
766 md->chan_info[chan].pgm_num = p1;
767 error = midiseq_pgmchange(md, chan, p1);
768 break;
769 case MIDI_CTL_CHANGE:
770 if (chan > 15 || p1 > 127)
771 return 0; /* EINVAL */
772 md->chan_info[chan].controllers[p1] = w14 & 0x7f;
773 if (p1 < 32)
774 md->chan_info[chan].controllers[p1 + 32] = 0;
775 error = midiseq_ctlchange(md, chan, p1, w14);
776 break;
777 case MIDI_PITCH_BEND:
778 md->chan_info[chan].bender_value = w14;
779 error = midiseq_pitchbend(md, chan, w14);
780 break;
781 default:
782 DPRINTF(("seq_do_chncommon: unimpl command %02x\n", cmd));
783 error = EINVAL;
784 break;
785 }
786 return (error);
787 }
788
789 int
790 seq_do_timing(sc, b)
791 struct sequencer_softc *sc;
792 seq_event_rec *b;
793 {
794 union {
795 int32_t i;
796 u_int8_t b[4];
797 } u;
798 u.b[0] = b->arr[4];
799 u.b[1] = b->arr[5];
800 u.b[2] = b->arr[6];
801 u.b[3] = b->arr[7];
802 return seq_timer(sc, SEQ_TCMD(b), u.i, b);
803 }
804
805 int
806 seq_do_local(sc, b)
807 struct sequencer_softc *sc;
808 seq_event_rec *b;
809 {
810 return (EINVAL);
811 }
812
813 int
814 seq_timer(sc, cmd, parm, b)
815 struct sequencer_softc *sc;
816 int cmd, parm;
817 seq_event_rec *b;
818 {
819 struct syn_timer *t = &sc->timer;
820 struct timeval when;
821 int ticks;
822 int error;
823 long long usec;
824
825 DPRINTFN(2,("seq_timer: %02x %d\n", cmd, parm));
826
827 error = 0;
828 switch(cmd) {
829 case TMR_WAIT_REL:
830 parm += t->last;
831 /* fall into */
832 case TMR_WAIT_ABS:
833 t->last = parm;
834 usec = (long long)parm * (long long)t->tick; /* convert to usec */
835 when.tv_sec = usec / 1000000;
836 when.tv_usec = usec % 1000000;
837 DPRINTFN(4, ("seq_timer: parm=%d, sleep when=%ld.%06ld", parm,
838 when.tv_sec, when.tv_usec));
839 ADDTIMEVAL(&when, &t->start); /* abstime for end */
840 ticks = hzto(&when);
841 DPRINTFN(4, (" when+start=%ld.%06ld, tick=%d\n",
842 when.tv_sec, when.tv_usec, ticks));
843 if (ticks > 0) {
844 #ifdef DIAGNOSTIC
845 if (ticks > 20 * hz) {
846 /* Waiting more than 20s */
847 printf("seq_timer: funny ticks=%d, usec=%lld, parm=%d, tick=%ld\n",
848 ticks, usec, parm, t->tick);
849 }
850 #endif
851 sc->timeout = 1;
852 timeout(seq_timeout, sc, ticks);
853 }
854 #ifdef SEQUENCER_DEBUG
855 else if (tick < 0)
856 DPRINTF(("seq_timer: ticks = %d\n", ticks));
857 #endif
858 break;
859 case TMR_START:
860 microtime(&t->start);
861 t->running = 1;
862 break;
863 case TMR_STOP:
864 microtime(&t->stop);
865 t->running = 0;
866 break;
867 case TMR_CONTINUE:
868 microtime(&when);
869 SUBTIMEVAL(&when, &t->stop);
870 ADDTIMEVAL(&t->start, &when);
871 t->running = 1;
872 break;
873 case TMR_TEMPO:
874 /* parm is ticks per minute / timebase */
875 if (parm < 8)
876 parm = 8;
877 if (parm > 360)
878 parm = 360;
879 t->tempo = parm;
880 RECALC_TICK(t);
881 break;
882 case TMR_ECHO:
883 error = seq_input_event(sc, b);
884 break;
885 case TMR_RESET:
886 t->last = 0;
887 microtime(&t->start);
888 break;
889 default:
890 DPRINTF(("seq_timer: unknown %02x\n", cmd));
891 error = EINVAL;
892 break;
893 }
894 return (error);
895 }
896
897 int
898 seq_do_fullsize(sc, b, uio)
899 struct sequencer_softc *sc;
900 seq_event_rec *b;
901 struct uio *uio;
902 {
903 struct sysex_info sysex;
904 u_int dev;
905
906 #ifdef DIAGNOSTIC
907 if (sizeof(seq_event_rec) != SEQ_SYSEX_HDRSIZE) {
908 printf("seq_do_fullsize: sysex size ??\n");
909 return EINVAL;
910 }
911 #endif
912 memcpy(&sysex, b, sizeof sysex);
913 dev = sysex.device_no;
914 DPRINTFN(2, ("seq_do_fullsize: fmt=%04x, dev=%d, len=%d\n",
915 sysex.key, dev, sysex.len));
916 return (midiseq_loadpatch(sc->devs[dev], &sysex, uio));
917 }
918
919 /* Convert an old sequencer event to a new one. */
920 int
921 seq_to_new(ev, uio)
922 seq_event_rec *ev;
923 struct uio *uio;
924 {
925 int cmd, chan, note, parm;
926 u_int32_t delay;
927 int error;
928
929 cmd = SEQ_CMD(ev);
930 chan = ev->arr[1];
931 note = ev->arr[2];
932 parm = ev->arr[3];
933 DPRINTFN(3, ("seq_to_new: 0x%02x %d %d %d\n", cmd, chan, note, parm));
934
935 if (cmd >= 0x80) {
936 /* Fill the event record */
937 if (uio->uio_resid >= sizeof *ev - SEQOLD_CMDSIZE) {
938 error = uiomove(&ev->arr[SEQOLD_CMDSIZE],
939 sizeof *ev - SEQOLD_CMDSIZE, uio);
940 if (error)
941 return error;
942 } else
943 return EINVAL;
944 }
945
946 switch(cmd) {
947 case SEQOLD_NOTEOFF:
948 note = 255;
949 SEQ_ECMD(ev) = MIDI_NOTEOFF;
950 goto onoff;
951 case SEQOLD_NOTEON:
952 SEQ_ECMD(ev) = MIDI_NOTEON;
953 onoff:
954 SEQ_CMD(ev) = SEQ_CHN_VOICE;
955 SEQ_EDEV(ev) = 0;
956 SEQ_ECHAN(ev) = chan;
957 SEQ_ENOTE(ev) = note;
958 SEQ_EPARM(ev) = parm;
959 break;
960 case SEQOLD_WAIT:
961 delay = *(u_int32_t *)ev->arr >> 8;
962 SEQ_CMD(ev) = SEQ_TIMING;
963 SEQ_TCMD(ev) = TMR_WAIT_REL;
964 *(u_int32_t *)&ev->arr[4] = delay;
965 break;
966 case SEQOLD_SYNCTIMER:
967 SEQ_CMD(ev) = SEQ_TIMING;
968 SEQ_TCMD(ev) = TMR_RESET;
969 break;
970 case SEQOLD_PGMCHANGE:
971 SEQ_ECMD(ev) = MIDI_PGM_CHANGE;
972 SEQ_CMD(ev) = SEQ_CHN_COMMON;
973 SEQ_EDEV(ev) = 0;
974 SEQ_ECHAN(ev) = chan;
975 SEQ_EP1(ev) = note;
976 break;
977 case SEQOLD_MIDIPUTC:
978 break; /* interpret in normal mode */
979 case SEQOLD_ECHO:
980 case SEQOLD_PRIVATE:
981 case SEQOLD_EXTENDED:
982 default:
983 DPRINTF(("seq_to_new: not impl 0x%02x\n", cmd));
984 return EINVAL;
985 /* In case new events show up */
986 case SEQ_TIMING:
987 case SEQ_CHN_VOICE:
988 case SEQ_CHN_COMMON:
989 case SEQ_FULLSIZE:
990 break;
991 }
992 return 0;
993 }
994
995 /**********************************************/
996
997 void
998 midiseq_in(md, msg, len)
999 struct midi_dev *md;
1000 u_char *msg;
1001 int len;
1002 {
1003 int unit = md->unit;
1004 seq_event_rec ev;
1005 int status, chan;
1006
1007 DPRINTFN(2, ("midiseq_in: %p %02x %02x %02x\n",
1008 md, msg[0], msg[1], msg[2]));
1009
1010 status = MIDI_GET_STATUS(msg[0]);
1011 chan = MIDI_GET_CHAN(msg[0]);
1012 switch (status) {
1013 case MIDI_NOTEON:
1014 if (msg[2] == 0) {
1015 status = MIDI_NOTEOFF;
1016 msg[2] = MIDI_HALF_VEL;
1017 }
1018 /* fall into */
1019 case MIDI_NOTEOFF:
1020 case MIDI_KEY_PRESSURE:
1021 SEQ_MK_CHN_VOICE(&ev, unit, status, chan, msg[1], msg[2]);
1022 break;
1023 case MIDI_CTL_CHANGE:
1024 SEQ_MK_CHN_COMMON(&ev, unit, status, chan, msg[1], 0, msg[2]);
1025 break;
1026 case MIDI_PGM_CHANGE:
1027 case MIDI_CHN_PRESSURE:
1028 SEQ_MK_CHN_COMMON(&ev, unit, status, chan, msg[1], 0, 0);
1029 break;
1030 case MIDI_PITCH_BEND:
1031 SEQ_MK_CHN_COMMON(&ev, unit, status, chan, 0, 0,
1032 (msg[1] & 0x7f) | ((msg[2] & 0x7f) << 7));
1033 break;
1034 default:
1035 return;
1036 }
1037 seq_event_intr(md->seq, &ev);
1038 }
1039
1040 struct midi_dev *
1041 midiseq_open(unit, flags)
1042 int unit;
1043 int flags;
1044 {
1045 extern struct cfdriver midi_cd;
1046 int error;
1047 struct midi_dev *md;
1048 struct midi_softc *sc;
1049 struct midi_info mi;
1050
1051 DPRINTFN(2, ("midiseq_open: %d %d\n", unit, flags));
1052 error = midiopen(makedev(0, unit), flags, 0, 0);
1053 if (error)
1054 return (0);
1055 sc = midi_cd.cd_devs[unit];
1056 sc->seqopen = 1;
1057 md = malloc(sizeof *md, M_DEVBUF, M_WAITOK);
1058 memset(md, 0, sizeof *md);
1059 md->msc = sc;
1060 midi_getinfo(makedev(0, unit), &mi);
1061 md->unit = unit;
1062 md->name = mi.name;
1063 md->subtype = 0;
1064 md->nr_voices = 128; /* XXX */
1065 md->instr_bank_size = 128; /* XXX */
1066 if (mi.props & MIDI_PROP_CAN_INPUT)
1067 md->capabilities |= SYNTH_CAP_INPUT;
1068 return (md);
1069 }
1070
1071 void
1072 midiseq_close(md)
1073 struct midi_dev *md;
1074 {
1075 DPRINTFN(2, ("midiseq_close: %d\n", md->unit));
1076 midiclose(makedev(0, md->unit), 0, 0, 0);
1077 free(md, M_DEVBUF);
1078 }
1079
1080 void
1081 midiseq_reset(md)
1082 struct midi_dev *md;
1083 {
1084 DPRINTFN(3, ("midiseq_reset: %d\n", md->unit));
1085 }
1086
1087 int
1088 midiout(md, buf, cc, chk)
1089 struct midi_dev *md;
1090 u_char *buf;
1091 u_int cc;
1092 int chk;
1093 {
1094 struct uio uio;
1095 struct iovec iovec;
1096
1097 DPRINTFN(5, ("midiout: m=%p, unit=%d, buf[0]=0x%02x, cc=%d\n",
1098 md->msc, md->unit, buf[0], cc));
1099 #if 1
1100 /* The MIDI "status" byte does not have to be repeated. */
1101 if (chk && md->last_cmd == buf[0])
1102 buf++, cc--;
1103 else
1104 #endif
1105 md->last_cmd = buf[0];
1106 iovec.iov_base = (char *)buf;
1107 iovec.iov_len = cc;
1108 uio.uio_iov = &iovec;
1109 uio.uio_iovcnt = 1;
1110 uio.uio_offset = 0;
1111 uio.uio_resid = cc;
1112 uio.uio_segflg = UIO_SYSSPACE;
1113 uio.uio_rw = UIO_WRITE;
1114 uio.uio_procp = 0; /* process not needed for UIO_SYSSPACE */
1115 return midiwrite(makedev(0, md->unit), &uio, 0);
1116 }
1117
1118 int
1119 midiseq_noteon(md, chan, note, vel)
1120 struct midi_dev *md;
1121 int chan, note, vel;
1122 {
1123 u_char buf[3];
1124
1125 DPRINTFN(6, ("midiseq_noteon 0x%02x %d %d\n",
1126 MIDI_NOTEON | chan, note, vel));
1127 if (chan < 0 || chan > 15 ||
1128 note < 0 || note > 127)
1129 return EINVAL;
1130 if (vel < 0) vel = 0;
1131 if (vel > 127) vel = 127;
1132 buf[0] = MIDI_NOTEON | chan;
1133 buf[1] = note;
1134 buf[2] = vel;
1135 return midiout(md, buf, 3, 1);
1136 }
1137
1138 int
1139 midiseq_noteoff(md, chan, note, vel)
1140 struct midi_dev *md;
1141 int chan, note, vel;
1142 {
1143 u_char buf[3];
1144
1145 if (chan < 0 || chan > 15 ||
1146 note < 0 || note > 127)
1147 return EINVAL;
1148 if (vel < 0) vel = 0;
1149 if (vel > 127) vel = 127;
1150 buf[0] = MIDI_NOTEOFF | chan;
1151 buf[1] = note;
1152 buf[2] = vel;
1153 return midiout(md, buf, 3, 1);
1154 }
1155
1156 int
1157 midiseq_keypressure(md, chan, note, vel)
1158 struct midi_dev *md;
1159 int chan, note, vel;
1160 {
1161 u_char buf[3];
1162
1163 if (chan < 0 || chan > 15 ||
1164 note < 0 || note > 127)
1165 return EINVAL;
1166 if (vel < 0) vel = 0;
1167 if (vel > 127) vel = 127;
1168 buf[0] = MIDI_KEY_PRESSURE | chan;
1169 buf[1] = note;
1170 buf[2] = vel;
1171 return midiout(md, buf, 3, 1);
1172 }
1173
1174 int
1175 midiseq_pgmchange(md, chan, parm)
1176 struct midi_dev *md;
1177 int chan, parm;
1178 {
1179 u_char buf[2];
1180
1181 if (chan < 0 || chan > 15 ||
1182 parm < 0 || parm > 127)
1183 return EINVAL;
1184 buf[0] = MIDI_PGM_CHANGE | chan;
1185 buf[1] = parm;
1186 return midiout(md, buf, 2, 1);
1187 }
1188
1189 int
1190 midiseq_ctlchange(md, chan, parm, w14)
1191 struct midi_dev *md;
1192 int chan, parm, w14;
1193 {
1194 u_char buf[3];
1195
1196 if (chan < 0 || chan > 15 ||
1197 parm < 0 || parm > 127)
1198 return EINVAL;
1199 buf[0] = MIDI_CTL_CHANGE | chan;
1200 buf[1] = parm;
1201 buf[2] = w14 & 0x7f;
1202 return midiout(md, buf, 3, 1);
1203 }
1204
1205 int
1206 midiseq_pitchbend(md, chan, parm)
1207 struct midi_dev *md;
1208 int chan, parm;
1209 {
1210 u_char buf[3];
1211
1212 if (chan < 0 || chan > 15)
1213 return EINVAL;
1214 buf[0] = MIDI_PITCH_BEND | chan;
1215 buf[1] = parm & 0x7f;
1216 buf[2] = (parm >> 7) & 0x7f;
1217 return midiout(md, buf, 3, 1);
1218 }
1219
1220 int
1221 midiseq_loadpatch(md, sysex, uio)
1222 struct midi_dev *md;
1223 struct sysex_info *sysex;
1224 struct uio *uio;
1225 {
1226 u_char c, buf[128];
1227 int i, cc, error;
1228
1229 if (sysex->key != SEQ_SYSEX_PATCH)
1230 return EINVAL;
1231 if (uio->uio_resid < sysex->len)
1232 /* adjust length, should be an error */
1233 sysex->len = uio->uio_resid;
1234
1235 DPRINTFN(2, ("midiseq_loadpatch: len=%d\n", sysex->len));
1236 if (sysex->len == 0)
1237 return EINVAL;
1238 error = uiomove(&c, 1, uio);
1239 if (error)
1240 return error;
1241 if (c != MIDI_SYSEX_START) /* must start like this */
1242 return EINVAL;
1243 error = midiout(md, &c, 1, 0);
1244 if (error)
1245 return error;
1246 --sysex->len;
1247 while (sysex->len > 0) {
1248 cc = sysex->len;
1249 if (cc > sizeof buf)
1250 cc = sizeof buf;
1251 error = uiomove(buf, cc, uio);
1252 if (error)
1253 break;
1254 for(i = 0; i < cc && !MIDI_IS_STATUS(buf[i]); i++)
1255 ;
1256 error = midiout(md, buf, i, 0);
1257 if (error)
1258 break;
1259 sysex->len -= i;
1260 if (i != cc)
1261 break;
1262 }
1263 /* Any leftover data in uio is rubbish;
1264 * the SYSEX should be one write ending in SYSXE_END.
1265 */
1266 uio->uio_resid = 0;
1267 c = MIDI_SYSEX_END;
1268 return midiout(md, &c, 1, 0);
1269 }
1270
1271 int
1272 midiseq_putc(md, data)
1273 struct midi_dev *md;
1274 int data;
1275 {
1276 u_char c = data;
1277 DPRINTFN(4,("midiseq_putc: 0x%02x\n", data));
1278 return midiout(md, &c, 1, 0);
1279 }
1280
1281
1282 #endif
1283