midi.c revision 1.46 1 /* $NetBSD: midi.c,v 1.46 2006/07/02 01:33:55 wiz Exp $ */
2
3 /*
4 * Copyright (c) 1998 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Lennart Augustsson (augustss (at) NetBSD.org) and (MIDI FST and Active
9 * Sense handling) Chapman Flack (chap (at) NetBSD.org).
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 * 3. All advertising materials mentioning features or use of this software
20 * must display the following acknowledgement:
21 * This product includes software developed by the NetBSD
22 * Foundation, Inc. and its contributors.
23 * 4. Neither the name of The NetBSD Foundation nor the names of its
24 * contributors may be used to endorse or promote products derived
25 * from this software without specific prior written permission.
26 *
27 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 * POSSIBILITY OF SUCH DAMAGE.
38 */
39
40 #include <sys/cdefs.h>
41 __KERNEL_RCSID(0, "$NetBSD: midi.c,v 1.46 2006/07/02 01:33:55 wiz Exp $");
42
43 #include "midi.h"
44 #include "sequencer.h"
45
46 #include <sys/param.h>
47 #include <sys/ioctl.h>
48 #include <sys/fcntl.h>
49 #include <sys/vnode.h>
50 #include <sys/select.h>
51 #include <sys/poll.h>
52 #include <sys/malloc.h>
53 #include <sys/proc.h>
54 #include <sys/systm.h>
55 #include <sys/callout.h>
56 #include <sys/syslog.h>
57 #include <sys/kernel.h>
58 #include <sys/signalvar.h>
59 #include <sys/conf.h>
60 #include <sys/audioio.h>
61 #include <sys/midiio.h>
62
63 #include <dev/audio_if.h>
64 #include <dev/midi_if.h>
65 #include <dev/midivar.h>
66
67 #if NMIDI > 0
68
69 #ifdef AUDIO_DEBUG
70 #define DPRINTF(x) if (mididebug) printf x
71 #define DPRINTFN(n,x) if (mididebug >= (n)) printf x
72 int mididebug = 0;
73 /*
74 * 1: detected protocol errors and buffer overflows
75 * 2: probe, attach, detach
76 * 3: open, close
77 * 4: data received except realtime
78 * 5: ioctl
79 * 6: read, write, poll
80 * 7: data transmitted
81 * 8: uiomoves, synchronization
82 * 9: realtime data received
83 */
84 #else
85 #define DPRINTF(x)
86 #define DPRINTFN(n,x)
87 #endif
88
89 static struct simplelock hwif_register_lock = SIMPLELOCK_INITIALIZER;
90 static struct midi_softc *hwif_softc = NULL;
91
92 void midi_in(void *, int);
93 void midi_out(void *);
94 int midi_poll_out(struct midi_softc *);
95 int midi_intr_out(struct midi_softc *);
96 int midi_msg_out(struct midi_softc *,
97 u_char **, u_char **, u_char **, u_char **);
98 int midi_start_output(struct midi_softc *);
99 int midi_sleep_timo(int *, const char *, int, struct simplelock *);
100 int midi_sleep(int *, const char *, struct simplelock *);
101 void midi_wakeup(int *);
102 void midi_initbuf(struct midi_buffer *);
103 void midi_xmt_asense(void *);
104 void midi_rcv_asense(void *);
105
106 int midiprobe(struct device *, struct cfdata *, void *);
107 void midiattach(struct device *, struct device *, void *);
108 int mididetach(struct device *, int);
109 int midiactivate(struct device *, enum devact);
110
111 dev_type_open(midiopen);
112 dev_type_close(midiclose);
113 dev_type_read(midiread);
114 dev_type_write(midiwrite);
115 dev_type_ioctl(midiioctl);
116 dev_type_poll(midipoll);
117 dev_type_kqfilter(midikqfilter);
118
119 const struct cdevsw midi_cdevsw = {
120 midiopen, midiclose, midiread, midiwrite, midiioctl,
121 nostop, notty, midipoll, nommap, midikqfilter,
122 };
123
124 CFATTACH_DECL(midi, sizeof(struct midi_softc),
125 midiprobe, midiattach, mididetach, midiactivate);
126
127 #define MIDI_XMT_ASENSE_PERIOD mstohz(275)
128 #define MIDI_RCV_ASENSE_PERIOD mstohz(300)
129
130 extern struct cfdriver midi_cd;
131
132 int
133 midiprobe(struct device *parent, struct cfdata *match, void *aux)
134 {
135 struct audio_attach_args *sa = aux;
136
137 DPRINTFN(2,("midiprobe: type=%d sa=%p hw=%p\n",
138 sa->type, sa, sa->hwif));
139 return (sa->type == AUDIODEV_TYPE_MIDI);
140 }
141
142 void
143 midiattach(struct device *parent, struct device *self, void *aux)
144 {
145 struct midi_softc *sc = (void *)self;
146 struct audio_attach_args *sa = aux;
147 const struct midi_hw_if *hwp = sa->hwif;
148 void *hdlp = sa->hdl;
149
150 DPRINTFN(2, ("MIDI attach\n"));
151
152 #ifdef DIAGNOSTIC
153 if (hwp == 0 ||
154 hwp->open == 0 ||
155 hwp->close == 0 ||
156 hwp->output == 0 ||
157 hwp->getinfo == 0) {
158 printf("midi: missing method\n");
159 return;
160 }
161 #endif
162
163 sc->hw_if = hwp;
164 sc->hw_hdl = hdlp;
165 midi_attach(sc, parent);
166 }
167
168 int
169 midiactivate(struct device *self, enum devact act)
170 {
171 struct midi_softc *sc = (struct midi_softc *)self;
172
173 switch (act) {
174 case DVACT_ACTIVATE:
175 return (EOPNOTSUPP);
176
177 case DVACT_DEACTIVATE:
178 sc->dying = 1;
179 break;
180 }
181 return (0);
182 }
183
184 int
185 mididetach(struct device *self, int flags)
186 {
187 struct midi_softc *sc = (struct midi_softc *)self;
188 int maj, mn;
189
190 DPRINTFN(2,("midi_detach: sc=%p flags=%d\n", sc, flags));
191
192 sc->dying = 1;
193
194 wakeup(&sc->wchan);
195 wakeup(&sc->rchan);
196
197 /* locate the major number */
198 maj = cdevsw_lookup_major(&midi_cdevsw);
199
200 /* Nuke the vnodes for any open instances (calls close). */
201 mn = device_unit(self);
202 vdevgone(maj, mn, mn, VCHR);
203
204 if ( !(sc->props & MIDI_PROP_NO_OUTPUT) ) {
205 evcnt_detach(&sc->xmt.bytesDiscarded);
206 evcnt_detach(&sc->xmt.incompleteMessages);
207 }
208 if ( sc->props & MIDI_PROP_CAN_INPUT ) {
209 evcnt_detach(&sc->rcv.bytesDiscarded);
210 evcnt_detach(&sc->rcv.incompleteMessages);
211 }
212
213 return (0);
214 }
215
216 void
217 midi_attach(struct midi_softc *sc, struct device *parent)
218 {
219 struct midi_info mi;
220 int s;
221
222 callout_init(&sc->xmt_asense_co);
223 callout_init(&sc->rcv_asense_co);
224 callout_setfunc(&sc->xmt_asense_co, midi_xmt_asense, sc);
225 callout_setfunc(&sc->rcv_asense_co, midi_rcv_asense, sc);
226 simple_lock_init(&sc->out_lock);
227 simple_lock_init(&sc->in_lock);
228 sc->dying = 0;
229 sc->isopen = 0;
230
231 sc->sc_dev = parent;
232
233 s = splaudio();
234 simple_lock(&hwif_register_lock);
235 hwif_softc = sc;
236 sc->hw_if->getinfo(sc->hw_hdl, &mi);
237 hwif_softc = NULL;
238 simple_unlock(&hwif_register_lock);
239 splx(s);
240
241 sc->props = mi.props;
242
243 if ( !(sc->props & MIDI_PROP_NO_OUTPUT) ) {
244 evcnt_attach_dynamic(&sc->xmt.bytesDiscarded,
245 EVCNT_TYPE_MISC, NULL,
246 sc->dev.dv_xname, "xmt bytes discarded");
247 evcnt_attach_dynamic(&sc->xmt.incompleteMessages,
248 EVCNT_TYPE_MISC, NULL,
249 sc->dev.dv_xname, "xmt incomplete msgs");
250 }
251 if ( sc->props & MIDI_PROP_CAN_INPUT ) {
252 evcnt_attach_dynamic(&sc->rcv.bytesDiscarded,
253 EVCNT_TYPE_MISC, NULL,
254 sc->dev.dv_xname, "rcv bytes discarded");
255 evcnt_attach_dynamic(&sc->rcv.incompleteMessages,
256 EVCNT_TYPE_MISC, NULL,
257 sc->dev.dv_xname, "rcv incomplete msgs");
258 }
259
260 printf(": %s%s\n", mi.name,
261 (sc->props & (MIDI_PROP_OUT_INTR|MIDI_PROP_NO_OUTPUT)) ?
262 "" : " (CPU-intensive output)");
263 }
264
265 void midi_register_hw_if_ext(struct midi_hw_if_ext *exthw) {
266 if ( hwif_softc != NULL ) /* ignore calls resulting from non-init */
267 hwif_softc->hw_if_ext = exthw; /* uses of getinfo */
268 }
269
270 int
271 midi_unit_count(void)
272 {
273 int i;
274 for ( i = 0; i < midi_cd.cd_ndevs; ++i )
275 if ( NULL == midi_cd.cd_devs[i] )
276 break;
277 return i;
278 }
279
280 void
281 midi_initbuf(struct midi_buffer *mb)
282 {
283 mb->idx_producerp = mb->idx_consumerp = mb->idx;
284 mb->buf_producerp = mb->buf_consumerp = mb->buf;
285 }
286 #define PACK_MB_IDX(cat,len) (((cat)<<4)|(len))
287 #define MB_IDX_CAT(idx) ((idx)>>4)
288 #define MB_IDX_LEN(idx) ((idx)&0xf)
289
290 int
291 midi_sleep_timo(int *chan, const char *label, int timo, struct simplelock *lk)
292 {
293 int st;
294
295 if (!label)
296 label = "midi";
297
298 DPRINTFN(8, ("midi_sleep_timo: %p %s %d\n", chan, label, timo));
299 *chan = 1;
300 st = ltsleep(chan, PWAIT | PCATCH, label, timo, lk);
301 *chan = 0;
302 #ifdef MIDI_DEBUG
303 if (st != 0)
304 printf("midi_sleep: %d\n", st);
305 #endif
306 return st;
307 }
308
309 int
310 midi_sleep(int *chan, const char *label, struct simplelock *lk)
311 {
312 return midi_sleep_timo(chan, label, 0, lk);
313 }
314
315 void
316 midi_wakeup(int *chan)
317 {
318 if (*chan) {
319 DPRINTFN(8, ("midi_wakeup: %p\n", chan));
320 wakeup(chan);
321 *chan = 0;
322 }
323 }
324
325 /* in midivar.h:
326 #define MIDI_CAT_DATA 0
327 #define MIDI_CAT_STATUS1 1
328 #define MIDI_CAT_STATUS2 2
329 #define MIDI_CAT_COMMON 3
330 */
331 static char const midi_cats[] = "\0\0\0\0\0\0\0\0\2\2\2\2\1\1\2\3";
332 #define MIDI_CAT(d) (midi_cats[((d)>>4)&15])
333 #define FST_RETURN(offp,endp,ret) \
334 return (s->pos=s->msg+(offp)), (s->end=s->msg+(endp)), (ret)
335
336 enum fst_ret { FST_CHN, FST_CHV, FST_COM, FST_SYX, FST_RT, FST_MORE, FST_ERR,
337 FST_HUH, FST_SXP };
338 enum fst_form { FST_CANON, FST_COMPR, FST_VCOMP };
339 static struct {
340 int off;
341 enum fst_ret tag;
342 } const midi_forms[] = {
343 [FST_CANON] = { .off=0, .tag=FST_CHN },
344 [FST_COMPR] = { .off=1, .tag=FST_CHN },
345 [FST_VCOMP] = { .off=0, .tag=FST_CHV }
346 };
347 #define FST_CRETURN(endp) \
348 FST_RETURN(midi_forms[form].off,endp,midi_forms[form].tag)
349
350 /*
351 * A MIDI finite state transducer suitable for receiving or transmitting. It
352 * will accept correct MIDI input that uses, doesn't use, or sometimes uses the
353 * 'running status' compression technique, and transduce it to fully expanded
354 * (form=FST_CANON) or fully compressed (form=FST_COMPR or FST_VCOMP) form.
355 *
356 * Returns FST_MORE if a complete message has not been parsed yet (SysEx
357 * messages are the exception), FST_ERR or FST_HUH if the input does not
358 * conform to the protocol, or FST_CHN (channel messages), FST_COM (System
359 * Common messages), FST_RT (System Real-Time messages), or FST_SYX (System
360 * Exclusive) to broadly categorize the message parsed. s->pos and s->end
361 * locate the parsed message; while (s->pos<s->end) putchar(*(s->pos++));
362 * would output it.
363 *
364 * FST_HUH means the character c wasn't valid in the original state, but the
365 * state has now been reset to START and the caller should try again passing
366 * the same c. FST_ERR means c isn't valid in the start state; the caller
367 * should kiss it goodbye and continue to try successive characters from the
368 * input until something other than FST_ERR or FST_HUH is returned, at which
369 * point things are resynchronized.
370 *
371 * A FST_SYX return means that between pos and end are from 1 to 3
372 * bytes of a system exclusive message. A SysEx message will be delivered in
373 * one or more chunks of that form, where the first begins with 0xf0 and the
374 * last (which is the only one that might have length < 3) ends with 0xf7.
375 *
376 * Messages corrupted by a protocol error are discarded and won't be seen at
377 * all; again SysEx is the exception, as one or more chunks of it may already
378 * have been parsed.
379 *
380 * For FST_CHN messages, s->msg[0] always contains the status byte even if
381 * FST_COMPR form was requested (pos then points to msg[1]). That way, the
382 * caller can always identify the exact message if there is a need to do so.
383 * For all other message types except FST_SYX, the status byte is at *pos
384 * (which may not necessarily be msg[0]!). There is only one SysEx status
385 * byte, so the return value FST_SYX is sufficient to identify it.
386 *
387 * To simplify some use cases, compression can also be requested with
388 * form=FST_VCOMP. In this form a compressible channel message is indicated
389 * by returning a classification of FST_CHV instead of FST_CHN, and pos points
390 * to the status byte rather than being advanced past it. If the caller in this
391 * case saves the bytes from pos to end, it will have saved the entire message,
392 * and can act on the FST_CHV tag to drop the first byte later. In this form,
393 * unlike FST_CANON, hidden note-off (i.e. note-on with velocity 0) may occur.
394 *
395 * Two obscure points in the MIDI protocol complicate things further, both to
396 * do with the EndSysEx code, 0xf7. First, this code is permitted (and
397 * meaningless) outside of a System Exclusive message, anywhere a status byte
398 * could appear. Second, it is allowed to be absent at the end of a System
399 * Exclusive message (!) - any status byte at all (non-realtime) is allowed to
400 * terminate the message. Both require accomodation in the interface to
401 * midi_fst's caller. A stray 0xf7 should be ignored BUT should count as a
402 * message received for purposes of Active Sense timeout; the case is
403 * represented by a return of FST_COM with a length of zero (pos == end). A
404 * status byte other than 0xf7 during a system exclusive message will cause an
405 * FST_SXP (sysex plus) return; the bytes from pos to end are the end of the
406 * system exclusive message, and after handling those the caller should call
407 * midi_fst again with the same input byte.
408 *
409 * midi(4) will never produce either such form of rubbish.
410 */
411 static enum fst_ret
412 midi_fst(struct midi_state *s, u_char c, enum fst_form form)
413 {
414 int syxpos = 0;
415
416 if ( c >= 0xf8 ) { /* All realtime messages bypass state machine */
417 if ( c == 0xf9 || c == 0xfd ) {
418 DPRINTF( ("midi_fst: s=%p c=0x%02x undefined\n",
419 s, c));
420 s->bytesDiscarded.ev_count++;
421 return FST_ERR;
422 }
423 DPRINTFN(9, ("midi_fst: s=%p System Real-Time data=0x%02x\n",
424 s, c));
425 s->msg[2] = c;
426 FST_RETURN(2,3,FST_RT);
427 }
428
429 DPRINTFN(4, ("midi_fst: s=%p data=0x%02x state=%d\n",
430 s, c, s->state));
431
432 switch ( s->state | MIDI_CAT(c) ) { /* break ==> return FST_MORE */
433
434 case MIDI_IN_START | MIDI_CAT_COMMON:
435 case MIDI_IN_RUN1_1 | MIDI_CAT_COMMON:
436 case MIDI_IN_RUN2_2 | MIDI_CAT_COMMON:
437 case MIDI_IN_RXX2_2 | MIDI_CAT_COMMON:
438 s->msg[0] = c;
439 switch ( c ) {
440 case 0xf0: s->state = MIDI_IN_SYX1_3; break;
441 case 0xf1: s->state = MIDI_IN_COM0_1; break;
442 case 0xf2: s->state = MIDI_IN_COM0_2; break;
443 case 0xf3: s->state = MIDI_IN_COM0_1; break;
444 case 0xf6: s->state = MIDI_IN_START; FST_RETURN(0,1,FST_COM);
445 case 0xf7: s->state = MIDI_IN_START; FST_RETURN(0,0,FST_COM);
446 default: goto protocol_violation;
447 }
448 break;
449
450 case MIDI_IN_RUN1_1 | MIDI_CAT_STATUS1:
451 if ( c == s->msg[0] ) {
452 s->state = MIDI_IN_RNX0_1;
453 break;
454 }
455 /* FALLTHROUGH */
456 case MIDI_IN_RUN2_2 | MIDI_CAT_STATUS1:
457 case MIDI_IN_RXX2_2 | MIDI_CAT_STATUS1:
458 case MIDI_IN_START | MIDI_CAT_STATUS1:
459 s->state = MIDI_IN_RUN0_1;
460 s->msg[0] = c;
461 break;
462
463 case MIDI_IN_RUN2_2 | MIDI_CAT_STATUS2:
464 case MIDI_IN_RXX2_2 | MIDI_CAT_STATUS2:
465 if ( c == s->msg[0] ) {
466 s->state = MIDI_IN_RNX0_2;
467 break;
468 }
469 if ( (c ^ s->msg[0]) == 0x10 && (c & 0xe0) == 0x80 ) {
470 s->state = MIDI_IN_RXX0_2;
471 s->msg[0] = c;
472 break;
473 }
474 /* FALLTHROUGH */
475 case MIDI_IN_RUN1_1 | MIDI_CAT_STATUS2:
476 case MIDI_IN_START | MIDI_CAT_STATUS2:
477 s->state = MIDI_IN_RUN0_2;
478 s->msg[0] = c;
479 break;
480
481 case MIDI_IN_COM0_1 | MIDI_CAT_DATA:
482 s->state = MIDI_IN_START;
483 s->msg[1] = c;
484 FST_RETURN(0,2,FST_COM);
485
486 case MIDI_IN_COM0_2 | MIDI_CAT_DATA:
487 s->state = MIDI_IN_COM1_2;
488 s->msg[1] = c;
489 break;
490
491 case MIDI_IN_COM1_2 | MIDI_CAT_DATA:
492 s->state = MIDI_IN_START;
493 s->msg[2] = c;
494 FST_RETURN(0,3,FST_COM);
495
496 case MIDI_IN_RUN0_1 | MIDI_CAT_DATA:
497 s->state = MIDI_IN_RUN1_1;
498 s->msg[1] = c;
499 FST_RETURN(0,2,FST_CHN);
500
501 case MIDI_IN_RUN1_1 | MIDI_CAT_DATA:
502 case MIDI_IN_RNX0_1 | MIDI_CAT_DATA:
503 s->state = MIDI_IN_RUN1_1;
504 s->msg[1] = c;
505 FST_CRETURN(2);
506
507 case MIDI_IN_RUN0_2 | MIDI_CAT_DATA:
508 s->state = MIDI_IN_RUN1_2;
509 s->msg[1] = c;
510 break;
511
512 case MIDI_IN_RUN1_2 | MIDI_CAT_DATA:
513 if ( FST_CANON == form && 0 == c && (s->msg[0]&0xf0) == 0x90 ) {
514 s->state = MIDI_IN_RXX2_2;
515 s->msg[0] ^= 0x10;
516 s->msg[2] = 64;
517 } else {
518 s->state = MIDI_IN_RUN2_2;
519 s->msg[2] = c;
520 }
521 FST_RETURN(0,3,FST_CHN);
522
523 case MIDI_IN_RUN2_2 | MIDI_CAT_DATA:
524 s->state = MIDI_IN_RNX1_2;
525 s->msg[1] = c;
526 break;
527
528 case MIDI_IN_RXX2_2 | MIDI_CAT_DATA:
529 s->state = MIDI_IN_RXX1_2;
530 s->msg[0] ^= 0x10;
531 s->msg[1] = c;
532 break;
533
534 case MIDI_IN_RNX0_2 | MIDI_CAT_DATA:
535 s->state = MIDI_IN_RNY1_2;
536 s->msg[1] = c;
537 break;
538
539 case MIDI_IN_RXX0_2 | MIDI_CAT_DATA:
540 s->state = MIDI_IN_RXY1_2;
541 s->msg[1] = c;
542 break;
543
544 case MIDI_IN_RNX1_2 | MIDI_CAT_DATA:
545 case MIDI_IN_RNY1_2 | MIDI_CAT_DATA:
546 if ( FST_CANON == form && 0 == c && (s->msg[0]&0xf0) == 0x90 ) {
547 s->state = MIDI_IN_RXX2_2;
548 s->msg[0] ^= 0x10;
549 s->msg[2] = 64;
550 FST_RETURN(0,3,FST_CHN);
551 }
552 s->state = MIDI_IN_RUN2_2;
553 s->msg[2] = c;
554 FST_CRETURN(3);
555
556 case MIDI_IN_RXX1_2 | MIDI_CAT_DATA:
557 case MIDI_IN_RXY1_2 | MIDI_CAT_DATA:
558 if ( ( 0 == c && (s->msg[0]&0xf0) == 0x90)
559 || (64 == c && (s->msg[0]&0xf0) == 0x80
560 && FST_CANON != form) ) {
561 s->state = MIDI_IN_RXX2_2;
562 s->msg[0] ^= 0x10;
563 s->msg[2] = 64 - c;
564 FST_CRETURN(3);
565 }
566 s->state = MIDI_IN_RUN2_2;
567 s->msg[2] = c;
568 FST_RETURN(0,3,FST_CHN);
569
570 case MIDI_IN_SYX1_3 | MIDI_CAT_DATA:
571 s->state = MIDI_IN_SYX2_3;
572 s->msg[1] = c;
573 break;
574
575 case MIDI_IN_SYX2_3 | MIDI_CAT_DATA:
576 s->state = MIDI_IN_SYX0_3;
577 s->msg[2] = c;
578 FST_RETURN(0,3,FST_SYX);
579
580 case MIDI_IN_SYX0_3 | MIDI_CAT_DATA:
581 s->state = MIDI_IN_SYX1_3;
582 s->msg[0] = c;
583 break;
584
585 case MIDI_IN_SYX2_3 | MIDI_CAT_COMMON:
586 case MIDI_IN_SYX2_3 | MIDI_CAT_STATUS1:
587 case MIDI_IN_SYX2_3 | MIDI_CAT_STATUS2:
588 ++ syxpos;
589 /* FALLTHROUGH */
590 case MIDI_IN_SYX1_3 | MIDI_CAT_COMMON:
591 case MIDI_IN_SYX1_3 | MIDI_CAT_STATUS1:
592 case MIDI_IN_SYX1_3 | MIDI_CAT_STATUS2:
593 ++ syxpos;
594 /* FALLTHROUGH */
595 case MIDI_IN_SYX0_3 | MIDI_CAT_COMMON:
596 case MIDI_IN_SYX0_3 | MIDI_CAT_STATUS1:
597 case MIDI_IN_SYX0_3 | MIDI_CAT_STATUS2:
598 s->state = MIDI_IN_START;
599 if ( c == 0xf7 ) {
600 s->msg[syxpos] = c;
601 FST_RETURN(0,1+syxpos,FST_SYX);
602 }
603 s->msg[syxpos] = 0xf7;
604 FST_RETURN(0,1+syxpos,FST_SXP);
605
606 default:
607 protocol_violation:
608 DPRINTF(("midi_fst: unexpected %#02x in state %u\n",
609 c, s->state));
610 switch ( s->state ) {
611 case MIDI_IN_RUN1_1: /* can only get here by seeing an */
612 case MIDI_IN_RUN2_2: /* INVALID System Common message */
613 case MIDI_IN_RXX2_2:
614 s->state = MIDI_IN_START;
615 /* FALLTHROUGH */
616 case MIDI_IN_START:
617 s->bytesDiscarded.ev_count++;
618 return FST_ERR;
619 case MIDI_IN_COM1_2:
620 case MIDI_IN_RUN1_2:
621 case MIDI_IN_RNY1_2:
622 case MIDI_IN_RXY1_2:
623 s->bytesDiscarded.ev_count++;
624 /* FALLTHROUGH */
625 case MIDI_IN_COM0_1:
626 case MIDI_IN_RUN0_1:
627 case MIDI_IN_RNX0_1:
628 case MIDI_IN_COM0_2:
629 case MIDI_IN_RUN0_2:
630 case MIDI_IN_RNX0_2:
631 case MIDI_IN_RXX0_2:
632 case MIDI_IN_RNX1_2:
633 case MIDI_IN_RXX1_2:
634 s->bytesDiscarded.ev_count++;
635 s->incompleteMessages.ev_count++;
636 break;
637 #if defined(AUDIO_DEBUG) || defined(DIAGNOSTIC)
638 default:
639 printf("midi_fst: mishandled %#02x(%u) in state %u?!\n",
640 c, MIDI_CAT(c), s->state);
641 #endif
642 }
643 s->state = MIDI_IN_START;
644 return FST_HUH;
645 }
646 return FST_MORE;
647 }
648
649 void
650 midi_in(void *addr, int data)
651 {
652 struct midi_softc *sc = addr;
653 struct midi_buffer *mb = &sc->inbuf;
654 int i;
655 int count;
656 enum fst_ret got;
657 int s; /* hw may have various spls so impose our own */
658 MIDI_BUF_DECLARE(idx);
659 MIDI_BUF_DECLARE(buf);
660
661 if (!sc->isopen)
662 return;
663
664 if (!(sc->flags & FREAD))
665 return; /* discard data if not reading */
666
667 sxp_again:
668 do
669 got = midi_fst(&sc->rcv, data, FST_CANON);
670 while ( got == FST_HUH );
671
672 switch ( got ) {
673 case FST_MORE:
674 case FST_ERR:
675 return;
676 case FST_CHN:
677 case FST_COM:
678 case FST_RT:
679 #if NSEQUENCER > 0
680 if (sc->seqopen) {
681 extern void midiseq_in(struct midi_dev *,u_char *,int);
682 count = sc->rcv.end - sc->rcv.pos;
683 midiseq_in(sc->seq_md, sc->rcv.pos, count);
684 return;
685 }
686 #endif
687 /*
688 * Pass Active Sense to the sequencer if it's open, but not to
689 * a raw reader. (Really should do something intelligent with
690 * it then, though....)
691 */
692 if ( got == FST_RT && MIDI_ACK == sc->rcv.pos[0] ) {
693 if ( !sc->rcv_expect_asense ) {
694 sc->rcv_expect_asense = 1;
695 callout_schedule(&sc->rcv_asense_co,
696 MIDI_RCV_ASENSE_PERIOD);
697 }
698 sc->rcv_quiescent = 0;
699 sc->rcv_eof = 0;
700 return;
701 }
702 /* FALLTHROUGH */
703 /*
704 * Ultimately SysEx msgs should be offered to the sequencer also; the
705 * sequencer API addresses them - but maybe our sequencer can't handle
706 * them yet, so offer only to raw reader. (Which means, ultimately,
707 * discard them if the sequencer's open, as it's not doing reads!)
708 * -> When SysEx support is added to the sequencer, be sure to handle
709 * FST_SXP there too.
710 */
711 case FST_SYX:
712 case FST_SXP:
713 count = sc->rcv.end - sc->rcv.pos;
714 MIDI_IN_LOCK(sc,s);
715 sc->rcv_quiescent = 0;
716 sc->rcv_eof = 0;
717 if ( 0 == count ) {
718 MIDI_IN_UNLOCK(sc,s);
719 break;
720 }
721 MIDI_BUF_PRODUCER_INIT(mb,idx);
722 MIDI_BUF_PRODUCER_INIT(mb,buf);
723 if (count > buf_lim - buf_cur
724 || 1 > idx_lim - idx_cur) {
725 sc->rcv.bytesDiscarded.ev_count += count;
726 MIDI_IN_UNLOCK(sc,s);
727 DPRINTF(("midi_in: buffer full, discard data=0x%02x\n",
728 sc->rcv.pos[0]));
729 return;
730 }
731 for (i = 0; i < count; i++) {
732 *buf_cur++ = sc->rcv.pos[i];
733 MIDI_BUF_WRAP(buf);
734 }
735 *idx_cur++ = PACK_MB_IDX(got,count);
736 MIDI_BUF_WRAP(idx);
737 MIDI_BUF_PRODUCER_WBACK(mb,buf);
738 MIDI_BUF_PRODUCER_WBACK(mb,idx);
739 midi_wakeup(&sc->rchan);
740 if (sc->async)
741 psignal(sc->async, SIGIO);
742 MIDI_IN_UNLOCK(sc,s);
743 selnotify(&sc->rsel, 0); /* filter will spin if locked */
744 break;
745 default: /* don't #ifdef this away, gcc will say FST_HUH not handled */
746 printf("midi_in: midi_fst returned %d?!\n", got);
747 }
748 if ( FST_SXP == got )
749 goto sxp_again;
750 }
751
752 void
753 midi_out(void *addr)
754 {
755 struct midi_softc *sc = addr;
756
757 if (!sc->isopen)
758 return;
759 DPRINTFN(8, ("midi_out: %p\n", sc));
760 midi_intr_out(sc);
761 }
762
763 int
764 midiopen(dev_t dev, int flags, int ifmt, struct lwp *l)
765 {
766 struct midi_softc *sc;
767 const struct midi_hw_if *hw;
768 int error;
769
770 sc = device_lookup(&midi_cd, MIDIUNIT(dev));
771 if (sc == NULL)
772 return (ENXIO);
773 if (sc->dying)
774 return (EIO);
775
776 DPRINTFN(3,("midiopen %p\n", sc));
777
778 hw = sc->hw_if;
779 if (!hw)
780 return ENXIO;
781 if (sc->isopen)
782 return EBUSY;
783
784 /* put both state machines into known states */
785 sc->rcv.state = MIDI_IN_START;
786 sc->rcv.pos = sc->rcv.msg;
787 sc->rcv.end = sc->rcv.msg;
788 sc->xmt.state = MIDI_IN_START;
789 sc->xmt.pos = sc->xmt.msg;
790 sc->xmt.end = sc->xmt.msg;
791
792 /* copy error counters so an ioctl (TBA) can give since-open stats */
793 sc->rcv.atOpen.bytesDiscarded = sc->rcv.bytesDiscarded.ev_count;
794 sc->rcv.atQuery.bytesDiscarded = sc->rcv.bytesDiscarded.ev_count;
795
796 sc->xmt.atOpen.bytesDiscarded = sc->xmt.bytesDiscarded.ev_count;
797 sc->xmt.atQuery.bytesDiscarded = sc->xmt.bytesDiscarded.ev_count;
798
799 /* and the buffers */
800 midi_initbuf(&sc->outbuf);
801 midi_initbuf(&sc->inbuf);
802
803 /* and the receive flags */
804 sc->rcv_expect_asense = 0;
805 sc->rcv_quiescent = 0;
806 sc->rcv_eof = 0;
807
808 error = hw->open(sc->hw_hdl, flags, midi_in, midi_out, sc);
809 if (error)
810 return error;
811 sc->isopen++;
812 sc->flags = flags;
813 sc->rchan = 0;
814 sc->wchan = 0;
815 sc->pbus = 0;
816 sc->async = 0;
817
818 #ifdef MIDI_SAVE
819 if (midicnt != 0) {
820 midisave.cnt = midicnt;
821 midicnt = 0;
822 }
823 #endif
824
825 return 0;
826 }
827
828 int
829 midiclose(dev_t dev, int flags, int ifmt, struct lwp *l)
830 {
831 int unit = MIDIUNIT(dev);
832 struct midi_softc *sc = midi_cd.cd_devs[unit];
833 const struct midi_hw_if *hw = sc->hw_if;
834 int s, error;
835
836 DPRINTFN(3,("midiclose %p\n", sc));
837
838 /* midi_start_output(sc); anything buffered => pbus already set! */
839 error = 0;
840 MIDI_OUT_LOCK(sc,s);
841 while (sc->pbus) {
842 DPRINTFN(8,("midiclose sleep ...\n"));
843 error =
844 midi_sleep_timo(&sc->wchan, "mid_dr", 30*hz, &sc->out_lock);
845 }
846 sc->isopen = 0;
847 MIDI_OUT_UNLOCK(sc,s);
848 callout_stop(&sc->xmt_asense_co); /* xxx fix this - sleep? */
849 callout_stop(&sc->rcv_asense_co);
850 hw->close(sc->hw_hdl);
851 #if NSEQUENCER > 0
852 sc->seqopen = 0;
853 sc->seq_md = 0;
854 #endif
855 return 0;
856 }
857
858 int
859 midiread(dev_t dev, struct uio *uio, int ioflag)
860 {
861 int unit = MIDIUNIT(dev);
862 struct midi_softc *sc = midi_cd.cd_devs[unit];
863 struct midi_buffer *mb = &sc->inbuf;
864 int error;
865 int s;
866 MIDI_BUF_DECLARE(idx);
867 MIDI_BUF_DECLARE(buf);
868 int appetite;
869 int first = 1;
870
871 DPRINTFN(6,("midiread: %p, count=%lu\n", sc,
872 (unsigned long)uio->uio_resid));
873
874 if (sc->dying)
875 return EIO;
876 if ( !(sc->props & MIDI_PROP_CAN_INPUT) )
877 return ENXIO;
878
879 MIDI_IN_LOCK(sc,s);
880 MIDI_BUF_CONSUMER_INIT(mb,idx);
881 MIDI_BUF_CONSUMER_INIT(mb,buf);
882 MIDI_IN_UNLOCK(sc,s);
883
884 error = 0;
885 for ( ;; ) {
886 /*
887 * If the used portion of idx wraps around the end, just take
888 * the first part on this iteration, and we'll get the rest on
889 * the next.
890 */
891 if ( idx_lim > idx_end )
892 idx_lim = idx_end;
893 /*
894 * Count bytes through the last complete message that will
895 * fit in the requested read.
896 */
897 for (appetite = uio->uio_resid; idx_cur < idx_lim; ++idx_cur) {
898 if ( appetite < MB_IDX_LEN(*idx_cur) )
899 break;
900 appetite -= MB_IDX_LEN(*idx_cur);
901 }
902 appetite = uio->uio_resid - appetite;
903 /*
904 * Only if the read is too small to hold even the first
905 * complete message will we return a partial one (updating idx
906 * to reflect the remaining length of the message).
907 */
908 if ( appetite == 0 && idx_cur < idx_lim ) {
909 if ( !first )
910 goto unlocked_exit; /* idx_cur not advanced */
911 appetite = uio->uio_resid;
912 *idx_cur = PACK_MB_IDX(MB_IDX_CAT(*idx_cur),
913 MB_IDX_LEN(*idx_cur) - appetite);
914 }
915 KASSERT(buf_cur + appetite <= buf_lim);
916
917 /* move the bytes */
918 if ( appetite > 0 ) {
919 first = 0; /* we know we won't return empty-handed */
920 /* do two uiomoves if data wrap around end of buf */
921 if ( buf_cur + appetite > buf_end ) {
922 DPRINTFN(8,
923 ("midiread: uiomove cc=%d (prewrap)\n",
924 buf_end - buf_cur));
925 error = uiomove(buf_cur, buf_end-buf_cur, uio);
926 if ( error )
927 goto unlocked_exit;
928 appetite -= buf_end - buf_cur;
929 buf_cur = mb->buf;
930 }
931 DPRINTFN(8, ("midiread: uiomove cc=%d\n", appetite));
932 error = uiomove(buf_cur, appetite, uio);
933 if ( error )
934 goto unlocked_exit;
935 buf_cur += appetite;
936 }
937
938 MIDI_BUF_WRAP(idx);
939 MIDI_BUF_WRAP(buf);
940
941 MIDI_IN_LOCK(sc,s);
942 MIDI_BUF_CONSUMER_WBACK(mb,idx);
943 MIDI_BUF_CONSUMER_WBACK(mb,buf);
944 if ( 0 == uio->uio_resid ) /* if read satisfied, we're done */
945 break;
946 MIDI_BUF_CONSUMER_REFRESH(mb,idx);
947 if ( idx_cur == idx_lim ) { /* need to wait for data? */
948 if ( !first || sc->rcv_eof ) /* never block reader if */
949 break; /* any data already in hand */
950 if (ioflag & IO_NDELAY) {
951 error = EWOULDBLOCK;
952 break;
953 }
954 error = midi_sleep(&sc->rchan, "mid rd", &sc->in_lock);
955 if ( error )
956 break;
957 MIDI_BUF_CONSUMER_REFRESH(mb,idx); /* what'd we get? */
958 }
959 MIDI_BUF_CONSUMER_REFRESH(mb,buf);
960 MIDI_IN_UNLOCK(sc,s);
961 if ( sc->dying )
962 return EIO;
963 }
964 MIDI_IN_UNLOCK(sc,s);
965
966 unlocked_exit:
967 return error;
968 }
969
970 void
971 midi_rcv_asense(void *arg)
972 {
973 struct midi_softc *sc = arg;
974 int s;
975
976 if ( sc->dying || !sc->isopen )
977 return;
978
979 if ( sc->rcv_quiescent ) {
980 MIDI_IN_LOCK(sc,s);
981 sc->rcv_eof = 1;
982 sc->rcv_quiescent = 0;
983 sc->rcv_expect_asense = 0;
984 midi_wakeup(&sc->rchan);
985 if (sc->async)
986 psignal(sc->async, SIGIO);
987 MIDI_IN_UNLOCK(sc,s);
988 selnotify(&sc->rsel, 0); /* filter will spin if locked */
989 return;
990 }
991
992 sc->rcv_quiescent = 1;
993 callout_schedule(&sc->rcv_asense_co, MIDI_RCV_ASENSE_PERIOD);
994 }
995
996 void
997 midi_xmt_asense(void *arg)
998 {
999 struct midi_softc *sc = arg;
1000 int s;
1001 int error;
1002 int armed;
1003
1004 if ( sc->dying || !sc->isopen )
1005 return;
1006
1007 MIDI_OUT_LOCK(sc,s);
1008 if ( sc->pbus || sc->dying || !sc->isopen ) {
1009 MIDI_OUT_UNLOCK(sc,s);
1010 return;
1011 }
1012 sc->pbus = 1;
1013 DPRINTFN(8,("midi_xmt_asense: %p\n", sc));
1014
1015 if ( sc->props & MIDI_PROP_OUT_INTR ) {
1016 error = sc->hw_if->output(sc->hw_hdl, MIDI_ACK);
1017 armed = (error == 0);
1018 } else { /* polled output, do with interrupts unmasked */
1019 MIDI_OUT_UNLOCK(sc,s);
1020 /* running from softclock, so top half won't sneak in here */
1021 error = sc->hw_if->output(sc->hw_hdl, MIDI_ACK);
1022 MIDI_OUT_LOCK(sc,s);
1023 armed = 0;
1024 }
1025
1026 if ( !armed ) {
1027 sc->pbus = 0;
1028 callout_schedule(&sc->xmt_asense_co, MIDI_XMT_ASENSE_PERIOD);
1029 }
1030
1031 MIDI_OUT_UNLOCK(sc,s);
1032 }
1033
1034 /*
1035 * The way this function was hacked up to plug into poll_out and intr_out
1036 * after they were written won't win it any beauty contests, but it'll work
1037 * (code in haste, refactor at leisure). This may be called with the lock
1038 * (by intr_out) or without the lock (by poll_out) so it only does what could
1039 * be safe either way.
1040 */
1041 int midi_msg_out(struct midi_softc *sc,
1042 u_char **idx, u_char **idxl, u_char **buf, u_char **bufl) {
1043 MIDI_BUF_DECLARE(idx);
1044 MIDI_BUF_DECLARE(buf);
1045 MIDI_BUF_EXTENT_INIT(&sc->outbuf,idx);
1046 MIDI_BUF_EXTENT_INIT(&sc->outbuf,buf);
1047 int length;
1048 int error;
1049 u_char contig[3];
1050 u_char *cp;
1051 u_char *ep;
1052
1053 idx_cur = *idx;
1054 idx_lim = *idxl;
1055 buf_cur = *buf;
1056 buf_lim = *bufl;
1057
1058 length = MB_IDX_LEN(*idx_cur);
1059
1060 for ( cp = contig, ep = cp + length; cp < ep; ) {
1061 *cp++ = *buf_cur++;
1062 MIDI_BUF_WRAP(buf);
1063 }
1064 cp = contig;
1065
1066 switch ( MB_IDX_CAT(*idx_cur) ) {
1067 case FST_CHV: /* chnmsg to be compressed (for device that wants it) */
1068 ++ cp;
1069 -- length;
1070 /* FALLTHROUGH */
1071 case FST_CHN:
1072 error = sc->hw_if_ext->channel(sc->hw_hdl,
1073 MIDI_GET_STATUS(contig[0]),
1074 MIDI_GET_CHAN(contig[0]),
1075 cp, length);
1076 break;
1077 case FST_COM:
1078 error = sc->hw_if_ext->common(sc->hw_hdl,
1079 MIDI_GET_STATUS(contig[0]),
1080 cp, length);
1081 break;
1082 case FST_SYX:
1083 case FST_SXP:
1084 error = sc->hw_if_ext->sysex(sc->hw_hdl,
1085 cp, length);
1086 break;
1087 case FST_RT:
1088 error = sc->hw_if->output(sc->hw_hdl, *cp);
1089 break;
1090 default:
1091 error = EIO;
1092 }
1093
1094 if ( !error ) {
1095 ++ idx_cur;
1096 MIDI_BUF_WRAP(idx);
1097 *idx = idx_cur;
1098 *idxl = idx_lim;
1099 *buf = buf_cur;
1100 *bufl = buf_lim;
1101 }
1102
1103 return error;
1104 }
1105
1106 /*
1107 * midi_poll_out is intended for the midi hw (the vast majority of MIDI UARTs
1108 * on sound cards, apparently) that _do not have transmit-ready interrupts_.
1109 * Every call to hw_if->output for one of these may busy-wait to output the
1110 * byte; at the standard midi data rate that'll be 320us per byte. The
1111 * technique of writing only MIDI_MAX_WRITE bytes in a row and then waiting
1112 * for MIDI_WAIT does not reduce the total time spent busy-waiting, and it
1113 * adds arbitrary delays in transmission (and, since MIDI_WAIT is roughly the
1114 * same as the time to send MIDI_MAX_WRITE bytes, it effectively halves the
1115 * data rate). Here, a somewhat bolder approach is taken. Since midi traffic
1116 * is bursty but time-sensitive--most of the time there will be none at all,
1117 * but when there is it should go out ASAP--the strategy is to just get it
1118 * over with, and empty the buffer in one go. The effect this can have on
1119 * the rest of the system will be limited by the size of the buffer and the
1120 * sparseness of the traffic. But some precautions are in order. Interrupts
1121 * should all be unmasked when this is called, and midiwrite should not fill
1122 * the buffer more than once (when MIDI_PROP_CAN_INTR is false) without a
1123 * yield() so some other process can get scheduled. If the write is nonblocking,
1124 * midiwrite should return a short count rather than yield.
1125 *
1126 * Someday when there is fine-grained MP support, this should be reworked to
1127 * run in a callout so the writing process really could proceed concurrently.
1128 * But obviously where performance is a concern, interrupt-driven hardware
1129 * such as USB midi or (apparently) clcs will always be preferable. And it
1130 * seems (kern/32651) that many of the devices currently working in poll mode
1131 * may really have tx interrupt capability and want only implementation; that
1132 * ought to happen.
1133 */
1134 int
1135 midi_poll_out(struct midi_softc *sc)
1136 {
1137 struct midi_buffer *mb = &sc->outbuf;
1138 int error;
1139 int msglen;
1140 int s;
1141 MIDI_BUF_DECLARE(idx);
1142 MIDI_BUF_DECLARE(buf);
1143
1144 error = 0;
1145
1146 MIDI_OUT_LOCK(sc,s);
1147 MIDI_BUF_CONSUMER_INIT(mb,idx);
1148 MIDI_BUF_CONSUMER_INIT(mb,buf);
1149 MIDI_OUT_UNLOCK(sc,s);
1150
1151 for ( ;; ) {
1152 while ( idx_cur != idx_lim ) {
1153 if ( sc->hw_if_ext ) {
1154 error = midi_msg_out(sc, &idx_cur, &idx_lim,
1155 &buf_cur, &buf_lim);
1156 if ( error )
1157 goto ioerror;
1158 continue;
1159 }
1160 /* or, lacking hw_if_ext ... */
1161 msglen = MB_IDX_LEN(*idx_cur);
1162 DPRINTFN(7,("midi_poll_out: %p <- %#02x\n",
1163 sc->hw_hdl, *buf_cur));
1164 error = sc->hw_if->output(sc->hw_hdl, *buf_cur);
1165 if ( error )
1166 goto ioerror;
1167 ++ buf_cur;
1168 MIDI_BUF_WRAP(buf);
1169 -- msglen;
1170 if ( msglen )
1171 *idx_cur = PACK_MB_IDX(MB_IDX_CAT(*idx_cur),
1172 msglen);
1173 else {
1174 ++ idx_cur;
1175 MIDI_BUF_WRAP(idx);
1176 }
1177 }
1178 KASSERT(buf_cur == buf_lim);
1179 MIDI_OUT_LOCK(sc,s);
1180 MIDI_BUF_CONSUMER_WBACK(mb,idx);
1181 MIDI_BUF_CONSUMER_WBACK(mb,buf);
1182 MIDI_BUF_CONSUMER_REFRESH(mb,idx); /* any more to transmit? */
1183 MIDI_BUF_CONSUMER_REFRESH(mb,buf);
1184 if ( idx_lim == idx_cur )
1185 break; /* still holding lock */
1186 MIDI_OUT_UNLOCK(sc,s);
1187 }
1188 goto disarm; /* lock held */
1189
1190 ioerror:
1191 #if defined(AUDIO_DEBUG) || defined(DIAGNOSTIC)
1192 printf("%s: midi_poll_output error %d\n",
1193 sc->dev.dv_xname, error);
1194 #endif
1195 MIDI_OUT_LOCK(sc,s);
1196 MIDI_BUF_CONSUMER_WBACK(mb,idx);
1197 MIDI_BUF_CONSUMER_WBACK(mb,buf);
1198
1199 disarm:
1200 sc->pbus = 0;
1201 callout_schedule(&sc->xmt_asense_co, MIDI_XMT_ASENSE_PERIOD);
1202 MIDI_OUT_UNLOCK(sc,s);
1203 return error;
1204 }
1205
1206 /*
1207 * The interrupt flavor acquires spl and lock once and releases at the end,
1208 * as it expects to write only one byte or message. The interface convention
1209 * is that if hw_if->output returns 0, it has initiated transmission and the
1210 * completion interrupt WILL be forthcoming; if it has not returned 0, NO
1211 * interrupt will be forthcoming, and if it returns EINPROGRESS it wants
1212 * another byte right away.
1213 */
1214 int
1215 midi_intr_out(struct midi_softc *sc)
1216 {
1217 struct midi_buffer *mb = &sc->outbuf;
1218 int error;
1219 int msglen;
1220 int s;
1221 MIDI_BUF_DECLARE(idx);
1222 MIDI_BUF_DECLARE(buf);
1223 int armed = 0;
1224
1225 error = 0;
1226
1227 MIDI_OUT_LOCK(sc,s);
1228 MIDI_BUF_CONSUMER_INIT(mb,idx);
1229 MIDI_BUF_CONSUMER_INIT(mb,buf);
1230
1231 while ( idx_cur != idx_lim ) {
1232 if ( sc->hw_if_ext ) {
1233 error = midi_msg_out(sc, &idx_cur, &idx_lim,
1234 &buf_cur, &buf_lim);
1235 if ( !error ) /* no EINPROGRESS from extended hw_if */
1236 armed = 1;
1237 break;
1238 }
1239 /* or, lacking hw_if_ext ... */
1240 msglen = MB_IDX_LEN(*idx_cur);
1241 error = sc->hw_if->output(sc->hw_hdl, *buf_cur);
1242 if ( error && error != EINPROGRESS )
1243 break;
1244 ++ buf_cur;
1245 MIDI_BUF_WRAP(buf);
1246 -- msglen;
1247 if ( msglen )
1248 *idx_cur = PACK_MB_IDX(MB_IDX_CAT(*idx_cur),msglen);
1249 else {
1250 ++ idx_cur;
1251 MIDI_BUF_WRAP(idx);
1252 }
1253 if ( !error ) {
1254 armed = 1;
1255 break;
1256 }
1257 }
1258 MIDI_BUF_CONSUMER_WBACK(mb,idx);
1259 MIDI_BUF_CONSUMER_WBACK(mb,buf);
1260 if ( !armed ) {
1261 sc->pbus = 0;
1262 callout_schedule(&sc->xmt_asense_co, MIDI_XMT_ASENSE_PERIOD);
1263 }
1264 midi_wakeup(&sc->wchan);
1265 if ( sc->async )
1266 psignal(sc->async, SIGIO);
1267 MIDI_OUT_UNLOCK(sc,s);
1268 selnotify(&sc->wsel, 0); /* filter will spin if locked */
1269
1270 #if defined(AUDIO_DEBUG) || defined(DIAGNOSTIC)
1271 if ( error )
1272 printf("%s: midi_intr_output error %d\n",
1273 sc->dev.dv_xname, error);
1274 #endif
1275 return error;
1276 }
1277
1278 int
1279 midi_start_output(struct midi_softc *sc)
1280 {
1281 if (sc->dying)
1282 return EIO;
1283
1284 if ( sc->props & MIDI_PROP_OUT_INTR )
1285 return midi_intr_out(sc);
1286 return midi_poll_out(sc);
1287 }
1288
1289 static int
1290 real_writebytes(struct midi_softc *sc, u_char *ibuf, int cc)
1291 {
1292 u_char *iend = ibuf + cc;
1293 struct midi_buffer *mb = &sc->outbuf;
1294 int arming = 0;
1295 int count;
1296 int s;
1297 int got;
1298 enum fst_form form;
1299 MIDI_BUF_DECLARE(idx);
1300 MIDI_BUF_DECLARE(buf);
1301
1302 /*
1303 * If the hardware uses the extended hw_if, pass it canonicalized
1304 * messages (or compressed ones if it specifically requests, using
1305 * VCOMP form so the bottom half can still pass the op and chan along);
1306 * if it does not, send it compressed messages (using COMPR form as
1307 * there is no need to preserve the status for the bottom half).
1308 */
1309 if ( NULL == sc->hw_if_ext )
1310 form = FST_COMPR;
1311 else if ( sc->hw_if_ext->compress )
1312 form = FST_VCOMP;
1313 else
1314 form = FST_CANON;
1315
1316 MIDI_OUT_LOCK(sc,s);
1317 MIDI_BUF_PRODUCER_INIT(mb,idx);
1318 MIDI_BUF_PRODUCER_INIT(mb,buf);
1319 MIDI_OUT_UNLOCK(sc,s);
1320
1321 if (sc->dying)
1322 return EIO;
1323
1324 while ( ibuf < iend ) {
1325 got = midi_fst(&sc->xmt, *ibuf, form);
1326 ++ ibuf;
1327 switch ( got ) {
1328 case FST_MORE:
1329 continue;
1330 case FST_ERR:
1331 case FST_HUH:
1332 return EPROTO;
1333 case FST_CHN:
1334 case FST_CHV: /* only occurs in VCOMP form */
1335 case FST_COM:
1336 case FST_RT:
1337 case FST_SYX:
1338 case FST_SXP:
1339 break; /* go add to buffer */
1340 #if defined(AUDIO_DEBUG) || defined(DIAGNOSTIC)
1341 default:
1342 printf("midi_wr: midi_fst returned %d?!\n", got);
1343 #endif
1344 }
1345 count = sc->xmt.end - sc->xmt.pos;
1346 if ( 0 == count ) /* can happen with stray 0xf7; see midi_fst */
1347 continue;
1348 /*
1349 * return EWOULDBLOCK if the data passed will not fit in
1350 * the buffer; the caller should have taken steps to avoid that.
1351 * If got==FST_SXP we lose the new status byte, but we're losing
1352 * anyway, so c'est la vie.
1353 */
1354 if ( idx_cur == idx_lim || count > buf_lim - buf_cur ) {
1355 MIDI_OUT_LOCK(sc,s);
1356 MIDI_BUF_PRODUCER_REFRESH(mb,idx); /* get the most */
1357 MIDI_BUF_PRODUCER_REFRESH(mb,buf); /* current facts */
1358 MIDI_OUT_UNLOCK(sc,s);
1359 if ( idx_cur == idx_lim || count > buf_lim - buf_cur )
1360 return EWOULDBLOCK; /* caller's problem */
1361 }
1362 *idx_cur++ = PACK_MB_IDX(got,count);
1363 MIDI_BUF_WRAP(idx);
1364 while ( count ) {
1365 *buf_cur++ = *(sc->xmt.pos)++;
1366 MIDI_BUF_WRAP(buf);
1367 -- count;
1368 }
1369 if ( FST_SXP == got )
1370 -- ibuf; /* again with same status byte */
1371 }
1372 MIDI_OUT_LOCK(sc,s);
1373 MIDI_BUF_PRODUCER_WBACK(mb,buf);
1374 MIDI_BUF_PRODUCER_WBACK(mb,idx);
1375 /*
1376 * If the output transfer is not already busy, and there is a message
1377 * buffered, mark it busy, stop the Active Sense callout (what if we're
1378 * too late and it's expired already? No big deal, an extra Active Sense
1379 * never hurt anybody) and start the output transfer once we're out of
1380 * the critical section (pbus==1 will stop anyone else doing the same).
1381 */
1382 MIDI_BUF_CONSUMER_INIT(mb,idx); /* check what consumer's got to read */
1383 if ( !sc->pbus && idx_cur < idx_lim ) {
1384 sc->pbus = 1;
1385 callout_stop(&sc->xmt_asense_co);
1386 arming = 1;
1387 }
1388 MIDI_OUT_UNLOCK(sc,s);
1389 return arming ? midi_start_output(sc) : 0;
1390 }
1391
1392 int
1393 midiwrite(dev_t dev, struct uio *uio, int ioflag)
1394 {
1395 int unit = MIDIUNIT(dev);
1396 struct midi_softc *sc = midi_cd.cd_devs[unit];
1397 struct midi_buffer *mb = &sc->outbuf;
1398 int error;
1399 u_char inp[256];
1400 int s;
1401 MIDI_BUF_DECLARE(idx);
1402 MIDI_BUF_DECLARE(buf);
1403 size_t idxspace;
1404 size_t bufspace;
1405 size_t xfrcount;
1406 int pollout = 0;
1407
1408 DPRINTFN(6, ("midiwrite: %p, unit=%d, count=%lu\n", sc, unit,
1409 (unsigned long)uio->uio_resid));
1410
1411 if (sc->dying)
1412 return EIO;
1413
1414 error = 0;
1415 while (uio->uio_resid > 0 && !error) {
1416
1417 /*
1418 * block if necessary for the minimum buffer space to guarantee
1419 * we can write something.
1420 */
1421 MIDI_OUT_LOCK(sc,s);
1422 MIDI_BUF_PRODUCER_INIT(mb,idx); /* init can't go above loop; */
1423 MIDI_BUF_PRODUCER_INIT(mb,buf); /* real_writebytes moves cur */
1424 for ( ;; ) {
1425 idxspace = MIDI_BUF_PRODUCER_REFRESH(mb,idx) - idx_cur;
1426 bufspace = MIDI_BUF_PRODUCER_REFRESH(mb,buf) - buf_cur;
1427 if ( idxspace >= 1 && bufspace >= 3 && !pollout )
1428 break;
1429 DPRINTFN(8,("midi_write: sleep idx=%d buf=%d\n",
1430 idxspace, bufspace));
1431 if (ioflag & IO_NDELAY) {
1432 error = EWOULDBLOCK;
1433 /*
1434 * If some amount has already been transferred,
1435 * the common syscall code will automagically
1436 * convert this to success with a short count.
1437 */
1438 goto locked_exit;
1439 }
1440 if ( pollout ) {
1441 preempt(0); /* see midi_poll_output */
1442 pollout = 0;
1443 } else
1444 error = midi_sleep(&sc->wchan, "mid wr",
1445 &sc->out_lock);
1446 if (error)
1447 /*
1448 * Similarly, the common code will handle
1449 * EINTR and ERESTART properly here, changing to
1450 * a short count if something transferred.
1451 */
1452 goto locked_exit;
1453 }
1454 MIDI_OUT_UNLOCK(sc,s);
1455
1456 /*
1457 * The number of bytes we can safely extract from the uio
1458 * depends on the available idx and buf space. Worst case,
1459 * every byte is a message so 1 idx is required per byte.
1460 * Worst case, the first byte completes a 3-byte msg in prior
1461 * state, and every subsequent byte is a Program Change or
1462 * Channel Pressure msg with running status and expands to 2
1463 * bytes, so the buf space reqd is 3+2(n-1) or 2n+1. So limit
1464 * the transfer to the min of idxspace and (bufspace-1)>>1.
1465 */
1466 xfrcount = (bufspace - 1) >> 1;
1467 if ( xfrcount > idxspace )
1468 xfrcount = idxspace;
1469 if ( xfrcount > sizeof inp )
1470 xfrcount = sizeof inp;
1471 if ( xfrcount > uio->uio_resid )
1472 xfrcount = uio->uio_resid;
1473
1474 error = uiomove(inp, xfrcount, uio);
1475 #ifdef MIDI_DEBUG
1476 if (error)
1477 printf("midi_write:(1) uiomove failed %d; "
1478 "xfrcount=%d inp=%p\n",
1479 error, xfrcount, inp);
1480 #endif
1481 if ( error )
1482 break;
1483
1484 /*
1485 * The number of bytes we extracted being calculated to
1486 * definitely fit in the buffer even with canonicalization,
1487 * there is no excuse for real_writebytes to return EWOULDBLOCK.
1488 */
1489 error = real_writebytes(sc, inp, xfrcount);
1490 KASSERT(error != EWOULDBLOCK);
1491
1492 if ( error )
1493 break;
1494 /*
1495 * If this is a polling device and we just sent a buffer, let's
1496 * not send another without giving some other process a chance.
1497 */
1498 if ( ! (sc->props & MIDI_PROP_OUT_INTR) )
1499 pollout = 1;
1500 DPRINTFN(8,("midiwrite: uio_resid now %u, props=%d\n",
1501 uio->uio_resid, sc->props));
1502 }
1503 return error;
1504
1505 locked_exit:
1506 MIDI_OUT_UNLOCK(sc,s);
1507 return error;
1508 }
1509
1510 /*
1511 * This write routine is only called from sequencer code and expects
1512 * a write that is smaller than the MIDI buffer.
1513 */
1514 int
1515 midi_writebytes(int unit, u_char *bf, int cc)
1516 {
1517 struct midi_softc *sc = midi_cd.cd_devs[unit];
1518
1519 DPRINTFN(7, ("midi_writebytes: %p, unit=%d, cc=%d %#02x %#02x %#02x\n",
1520 sc, unit, cc, bf[0], bf[1], bf[2]));
1521 return real_writebytes(sc, bf, cc);
1522 }
1523
1524 int
1525 midiioctl(dev_t dev, u_long cmd, caddr_t addr, int flag, struct lwp *l)
1526 {
1527 int unit = MIDIUNIT(dev);
1528 struct midi_softc *sc = midi_cd.cd_devs[unit];
1529 const struct midi_hw_if *hw = sc->hw_if;
1530 int error;
1531 int s;
1532 MIDI_BUF_DECLARE(buf);
1533
1534 DPRINTFN(5,("midiioctl: %p cmd=0x%08lx\n", sc, cmd));
1535
1536 if (sc->dying)
1537 return EIO;
1538
1539 error = 0;
1540 switch (cmd) {
1541 case FIONBIO:
1542 /* All handled in the upper FS layer. */
1543 break;
1544
1545 case FIONREAD:
1546 /*
1547 * This code relies on the current implementation of midi_in
1548 * always updating buf and idx together in a critical section,
1549 * so buf always ends at a message boundary. Document this
1550 * ioctl as always returning a value such that the last message
1551 * included is complete (SysEx the only exception), and then
1552 * make sure the implementation doesn't regress. NB that
1553 * means if this ioctl returns n and the proc then issues a
1554 * read of n, n bytes will be read, but if the proc issues a
1555 * read of m < n, fewer than m bytes may be read to ensure the
1556 * read ends at a message boundary.
1557 */
1558 MIDI_IN_LOCK(sc,s);
1559 MIDI_BUF_CONSUMER_INIT(&sc->inbuf,buf);
1560 MIDI_IN_UNLOCK(sc,s);
1561 *(int *)addr = buf_lim - buf_cur;
1562 break;
1563
1564 case FIOASYNC:
1565 if (*(int *)addr) {
1566 if (sc->async)
1567 return EBUSY;
1568 sc->async = l->l_proc;
1569 DPRINTFN(5,("midi_ioctl: FIOASYNC %p\n", l->l_proc));
1570 } else
1571 sc->async = 0;
1572 break;
1573
1574 #if 0
1575 case MIDI_PRETIME:
1576 /* XXX OSS
1577 * This should set up a read timeout, but that's
1578 * why we have poll(), so there's nothing yet. */
1579 error = EINVAL;
1580 break;
1581 #endif
1582
1583 #ifdef MIDI_SAVE
1584 case MIDI_GETSAVE:
1585 error = copyout(&midisave, *(void **)addr, sizeof midisave);
1586 break;
1587 #endif
1588
1589 default:
1590 if (hw->ioctl)
1591 error = hw->ioctl(sc->hw_hdl, cmd, addr, flag, l);
1592 else
1593 error = EINVAL;
1594 break;
1595 }
1596 return error;
1597 }
1598
1599 int
1600 midipoll(dev_t dev, int events, struct lwp *l)
1601 {
1602 int unit = MIDIUNIT(dev);
1603 struct midi_softc *sc = midi_cd.cd_devs[unit];
1604 int revents = 0;
1605 int s;
1606 MIDI_BUF_DECLARE(idx);
1607 MIDI_BUF_DECLARE(buf);
1608
1609 DPRINTFN(6,("midipoll: %p events=0x%x\n", sc, events));
1610
1611 if (sc->dying)
1612 return POLLHUP;
1613
1614 s = splaudio();
1615
1616 if ((sc->flags&FREAD) && (events & (POLLIN | POLLRDNORM))) {
1617 simple_lock(&sc->in_lock);
1618 MIDI_BUF_CONSUMER_INIT(&sc->inbuf,idx);
1619 if (idx_cur < idx_lim)
1620 revents |= events & (POLLIN | POLLRDNORM);
1621 else
1622 selrecord(l, &sc->rsel);
1623 simple_unlock(&sc->in_lock);
1624 }
1625
1626 if ((sc->flags&FWRITE) && (events & (POLLOUT | POLLWRNORM))) {
1627 simple_lock(&sc->out_lock);
1628 MIDI_BUF_PRODUCER_INIT(&sc->outbuf,idx);
1629 MIDI_BUF_PRODUCER_INIT(&sc->outbuf,buf);
1630 if ( idx_lim - idx_cur >= 1 && buf_lim - buf_cur >= 3 )
1631 revents |= events & (POLLOUT | POLLWRNORM);
1632 else
1633 selrecord(l, &sc->wsel);
1634 simple_unlock(&sc->out_lock);
1635 }
1636
1637 splx(s);
1638 return revents;
1639 }
1640
1641 static void
1642 filt_midirdetach(struct knote *kn)
1643 {
1644 struct midi_softc *sc = kn->kn_hook;
1645 int s;
1646
1647 s = splaudio();
1648 SLIST_REMOVE(&sc->rsel.sel_klist, kn, knote, kn_selnext);
1649 splx(s);
1650 }
1651
1652 static int
1653 filt_midiread(struct knote *kn, long hint)
1654 {
1655 struct midi_softc *sc = kn->kn_hook;
1656 int s;
1657 MIDI_BUF_DECLARE(buf);
1658
1659 /* XXXLUKEM (thorpej): please make sure this is correct. */
1660
1661 MIDI_IN_LOCK(sc,s);
1662 MIDI_BUF_CONSUMER_INIT(&sc->inbuf,buf);
1663 kn->kn_data = buf_lim - buf_cur;
1664 MIDI_IN_UNLOCK(sc,s);
1665 return (kn->kn_data > 0);
1666 }
1667
1668 static const struct filterops midiread_filtops =
1669 { 1, NULL, filt_midirdetach, filt_midiread };
1670
1671 static void
1672 filt_midiwdetach(struct knote *kn)
1673 {
1674 struct midi_softc *sc = kn->kn_hook;
1675 int s;
1676
1677 s = splaudio();
1678 SLIST_REMOVE(&sc->wsel.sel_klist, kn, knote, kn_selnext);
1679 splx(s);
1680 }
1681
1682 static int
1683 filt_midiwrite(struct knote *kn, long hint)
1684 {
1685 struct midi_softc *sc = kn->kn_hook;
1686 int s;
1687 MIDI_BUF_DECLARE(idx);
1688 MIDI_BUF_DECLARE(buf);
1689
1690 /* XXXLUKEM (thorpej): please make sure this is correct. */
1691
1692 MIDI_OUT_LOCK(sc,s);
1693 MIDI_BUF_PRODUCER_INIT(&sc->outbuf,idx);
1694 MIDI_BUF_PRODUCER_INIT(&sc->outbuf,buf);
1695 kn->kn_data = ((buf_lim - buf_cur)-1)>>1;
1696 if ( kn->kn_data > idx_lim - idx_cur )
1697 kn->kn_data = idx_lim - idx_cur;
1698 MIDI_OUT_UNLOCK(sc,s);
1699 return (kn->kn_data > 0);
1700 }
1701
1702 static const struct filterops midiwrite_filtops =
1703 { 1, NULL, filt_midiwdetach, filt_midiwrite };
1704
1705 int
1706 midikqfilter(dev_t dev, struct knote *kn)
1707 {
1708 int unit = MIDIUNIT(dev);
1709 struct midi_softc *sc = midi_cd.cd_devs[unit];
1710 struct klist *klist;
1711 int s;
1712
1713 switch (kn->kn_filter) {
1714 case EVFILT_READ:
1715 klist = &sc->rsel.sel_klist;
1716 kn->kn_fop = &midiread_filtops;
1717 break;
1718
1719 case EVFILT_WRITE:
1720 klist = &sc->wsel.sel_klist;
1721 kn->kn_fop = &midiwrite_filtops;
1722 break;
1723
1724 default:
1725 return (1);
1726 }
1727
1728 kn->kn_hook = sc;
1729
1730 s = splaudio();
1731 SLIST_INSERT_HEAD(klist, kn, kn_selnext);
1732 splx(s);
1733
1734 return (0);
1735 }
1736
1737 void
1738 midi_getinfo(dev_t dev, struct midi_info *mi)
1739 {
1740 struct midi_softc *sc;
1741
1742 sc = device_lookup(&midi_cd, MIDIUNIT(dev));
1743 if (sc == NULL)
1744 return;
1745 if (sc->dying)
1746 return;
1747
1748 sc->hw_if->getinfo(sc->hw_hdl, mi);
1749 }
1750
1751 #elif NMIDIBUS > 0 /* but NMIDI == 0 */
1752
1753 void midi_register_hw_if_ext(struct midi_hw_if_ext *exthw) { /* stub */
1754 }
1755
1756 #endif /* NMIDI > 0 */
1757
1758 #if NMIDI > 0 || NMIDIBUS > 0
1759
1760 int audioprint(void *, const char *);
1761
1762 struct device *
1763 midi_attach_mi(const struct midi_hw_if *mhwp, void *hdlp, struct device *dev)
1764 {
1765 struct audio_attach_args arg;
1766
1767 #ifdef DIAGNOSTIC
1768 if (mhwp == NULL) {
1769 aprint_error("midi_attach_mi: NULL\n");
1770 return (0);
1771 }
1772 #endif
1773 arg.type = AUDIODEV_TYPE_MIDI;
1774 arg.hwif = mhwp;
1775 arg.hdl = hdlp;
1776 return (config_found(dev, &arg, audioprint));
1777 }
1778
1779 #endif /* NMIDI > 0 || NMIDIBUS > 0 */
1780