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sequencer.c revision 1.57
      1 /*	$NetBSD: sequencer.c,v 1.57 2013/10/17 21:19:40 christos Exp $	*/
      2 
      3 /*
      4  * Copyright (c) 1998, 2008 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 by Andrew Doran.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  *
     19  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29  * POSSIBILITY OF SUCH DAMAGE.
     30  */
     31 
     32 /*
     33  * Locking:
     34  *
     35  * o sc_lock: provides atomic access to all data structures.  Taken from
     36  *   both process and soft interrupt context.
     37  *
     38  * o sc_dvlock: serializes operations on /dev/sequencer.  Taken from
     39  *   process context.  Dropped while waiting for data in sequencerread()
     40  *   to allow concurrent reads/writes while no data available.
     41  *
     42  * o sc_isopen: we allow only one concurrent open, only to prevent user
     43  *   and/or application error.
     44  *
     45  * o MIDI softc locks.  These can be spinlocks and there can be many of
     46  *   them, because we can open many MIDI devices.  We take these only in two
     47  *   places: when enabling redirection from the MIDI device and when
     48  *   disabling it (open/close).  midiseq_in() is called by the MIDI driver
     49  *   with its own lock held when passing data into this module.  To avoid
     50  *   lock order and context problems, we package the received message as a
     51  *   sequencer_pcqitem_t and put onto a producer-consumer queue.  A soft
     52  *   interrupt is scheduled to dequeue and decode the message later where we
     53  *   can safely acquire the sequencer device's sc_lock.  PCQ is lockless for
     54  *   multiple producer, single consumer settings like this one.
     55  */
     56 
     57 #include <sys/cdefs.h>
     58 __KERNEL_RCSID(0, "$NetBSD: sequencer.c,v 1.57 2013/10/17 21:19:40 christos Exp $");
     59 
     60 #include "sequencer.h"
     61 
     62 #include <sys/param.h>
     63 #include <sys/ioctl.h>
     64 #include <sys/fcntl.h>
     65 #include <sys/vnode.h>
     66 #include <sys/select.h>
     67 #include <sys/poll.h>
     68 #include <sys/kmem.h>
     69 #include <sys/proc.h>
     70 #include <sys/systm.h>
     71 #include <sys/syslog.h>
     72 #include <sys/kernel.h>
     73 #include <sys/signalvar.h>
     74 #include <sys/conf.h>
     75 #include <sys/audioio.h>
     76 #include <sys/midiio.h>
     77 #include <sys/device.h>
     78 #include <sys/intr.h>
     79 #include <sys/atomic.h>
     80 #include <sys/pcq.h>
     81 #include <sys/vnode.h>
     82 #include <sys/kauth.h>
     83 
     84 #include <dev/midi_if.h>
     85 #include <dev/midivar.h>
     86 #include <dev/sequencervar.h>
     87 
     88 #define ADDTIMEVAL(a, b) ( \
     89 	(a)->tv_sec += (b)->tv_sec, \
     90 	(a)->tv_usec += (b)->tv_usec, \
     91 	(a)->tv_usec > 1000000 ? ((a)->tv_sec++, (a)->tv_usec -= 1000000) : 0\
     92 	)
     93 
     94 #define SUBTIMEVAL(a, b) ( \
     95 	(a)->tv_sec -= (b)->tv_sec, \
     96 	(a)->tv_usec -= (b)->tv_usec, \
     97 	(a)->tv_usec < 0 ? ((a)->tv_sec--, (a)->tv_usec += 1000000) : 0\
     98 	)
     99 
    100 #ifdef AUDIO_DEBUG
    101 #define DPRINTF(x)	if (sequencerdebug) printf x
    102 #define DPRINTFN(n,x)	if (sequencerdebug >= (n)) printf x
    103 int	sequencerdebug = 0;
    104 #else
    105 #define DPRINTF(x)
    106 #define DPRINTFN(n,x)
    107 #endif
    108 
    109 #define SEQ_NOTE_MAX 128
    110 #define SEQ_NOTE_XXX 255
    111 
    112 #define RECALC_USPERDIV(t) \
    113 ((t)->usperdiv = 60*1000000L/((t)->tempo_beatpermin*(t)->timebase_divperbeat))
    114 
    115 typedef union sequencer_pcqitem {
    116 	void	*qi_ptr;
    117 	char	qi_msg[4];
    118 } sequencer_pcqitem_t;
    119 
    120 void sequencerattach(int);
    121 static void seq_reset(struct sequencer_softc *);
    122 static int seq_do_command(struct sequencer_softc *, seq_event_t *);
    123 static int seq_do_chnvoice(struct sequencer_softc *, seq_event_t *);
    124 static int seq_do_chncommon(struct sequencer_softc *, seq_event_t *);
    125 static void seq_timer_waitabs(struct sequencer_softc *, uint32_t);
    126 static int seq_do_timing(struct sequencer_softc *, seq_event_t *);
    127 static int seq_do_local(struct sequencer_softc *, seq_event_t *);
    128 static int seq_do_sysex(struct sequencer_softc *, seq_event_t *);
    129 static int seq_do_fullsize(struct sequencer_softc *, seq_event_t *, struct uio *);
    130 static int seq_input_event(struct sequencer_softc *, seq_event_t *);
    131 static int seq_drain(struct sequencer_softc *);
    132 static void seq_startoutput(struct sequencer_softc *);
    133 static void seq_timeout(void *);
    134 static int seq_to_new(seq_event_t *, struct uio *);
    135 static void seq_softintr(void *);
    136 
    137 static int midiseq_out(struct midi_dev *, u_char *, u_int, int);
    138 static struct midi_dev *midiseq_open(int, int);
    139 static void midiseq_close(struct midi_dev *);
    140 static void midiseq_reset(struct midi_dev *);
    141 static int midiseq_noteon(struct midi_dev *, int, int, seq_event_t *);
    142 static int midiseq_noteoff(struct midi_dev *, int, int, seq_event_t *);
    143 static int midiseq_keypressure(struct midi_dev *, int, int, seq_event_t *);
    144 static int midiseq_pgmchange(struct midi_dev *, int, seq_event_t *);
    145 static int midiseq_chnpressure(struct midi_dev *, int, seq_event_t *);
    146 static int midiseq_ctlchange(struct midi_dev *, int, seq_event_t *);
    147 static int midiseq_pitchbend(struct midi_dev *, int, seq_event_t *);
    148 static int midiseq_loadpatch(struct midi_dev *, struct sysex_info *, struct uio *);
    149 void midiseq_in(struct midi_dev *, u_char *, int);
    150 
    151 static dev_type_open(sequenceropen);
    152 static dev_type_close(sequencerclose);
    153 static dev_type_read(sequencerread);
    154 static dev_type_write(sequencerwrite);
    155 static dev_type_ioctl(sequencerioctl);
    156 static dev_type_poll(sequencerpoll);
    157 static dev_type_kqfilter(sequencerkqfilter);
    158 
    159 const struct cdevsw sequencer_cdevsw = {
    160 	sequenceropen, sequencerclose, sequencerread, sequencerwrite,
    161 	sequencerioctl, nostop, notty, sequencerpoll, nommap,
    162 	sequencerkqfilter, D_OTHER | D_MPSAFE
    163 };
    164 static LIST_HEAD(, sequencer_softc) sequencers = LIST_HEAD_INITIALIZER(sequencers);
    165 static kmutex_t sequencer_lock;
    166 
    167 static void
    168 sequencerdestroy(struct sequencer_softc *sc) {
    169 	callout_destroy(&sc->sc_callout);
    170 	softint_disestablish(sc->sih);
    171 	cv_destroy(&sc->rchan);
    172 	cv_destroy(&sc->wchan);
    173 	cv_destroy(&sc->lchan);
    174 	if (sc->pcq)
    175 		pcq_destroy(sc->pcq);
    176 	kmem_free(sc, sizeof(*sc));
    177 }
    178 
    179 static struct sequencer_softc *
    180 sequencercreate(int unit) {
    181 	struct sequencer_softc *sc = kmem_zalloc(sizeof(*sc), KM_SLEEP);
    182 	if (sc == NULL) {
    183 #ifdef DIAGNOSTIC
    184 		printf("%s: out of memory\n", __func__);
    185 #endif
    186 		return NULL;
    187 	}
    188 	sc->sc_unit = unit;
    189 	callout_init(&sc->sc_callout, CALLOUT_MPSAFE);
    190 	sc->sih = softint_establish(SOFTINT_NET | SOFTINT_MPSAFE,
    191 	    seq_softintr, sc);
    192 	mutex_init(&sc->lock, MUTEX_DEFAULT, IPL_NONE);
    193 	cv_init(&sc->rchan, "midiseqr");
    194 	cv_init(&sc->wchan, "midiseqw");
    195 	cv_init(&sc->lchan, "midiseql");
    196 	sc->pcq = pcq_create(SEQ_MAXQ, KM_SLEEP);
    197 	if (sc->pcq == NULL) {
    198 		sequencerdestroy(sc);
    199 		return NULL;
    200 	}
    201 	return sc;
    202 }
    203 
    204 
    205 static struct sequencer_softc *
    206 sequencerget(int unit) {
    207 	struct sequencer_softc *sc;
    208 	if (unit < 0) {
    209 #ifdef DIAGNOSTIC
    210 		panic("%s: unit %d!", __func__, unit);
    211 #endif
    212 		return NULL;
    213 	}
    214 	mutex_enter(&sequencer_lock);
    215 	LIST_FOREACH(sc, &sequencers, sc_link) {
    216 		if (sc->sc_unit == unit) {
    217 			mutex_exit(&sequencer_lock);
    218 			return sc;
    219 		}
    220 	}
    221 	mutex_exit(&sequencer_lock);
    222 	if ((sc = sequencercreate(unit)) == NULL)
    223 		return NULL;
    224 	mutex_enter(&sequencer_lock);
    225 	LIST_INSERT_HEAD(&sequencers, sc, sc_link);
    226 	mutex_exit(&sequencer_lock);
    227 	return sc;
    228 }
    229 
    230 #ifdef notyet
    231 static void
    232 sequencerput(struct sequencer_softc *sc) {
    233 	mutex_enter(&sequencer_lock);
    234 	LIST_REMOVE(sc, sc_link);
    235 	mutex_exit(&sequencer_lock);
    236 	sequencerdestroy(sc);
    237 }
    238 #endif
    239 
    240 void
    241 sequencerattach(int n)
    242 {
    243 	mutex_init(&sequencer_lock, MUTEX_DEFAULT, IPL_NONE);
    244 }
    245 
    246 /*
    247  * Release reference to device acquired with sequencer_enter().
    248  */
    249 static void
    250 sequencer_exit(struct sequencer_softc *sc)
    251 {
    252 
    253 	sc->dvlock--;
    254 	cv_broadcast(&sc->lchan);
    255 	mutex_exit(&sc->lock);
    256 }
    257 
    258 /*
    259  * Look up sequencer device and acquire locks for device access.
    260  */
    261 static int
    262 sequencer_enter(dev_t dev, struct sequencer_softc **scp)
    263 {
    264 	struct sequencer_softc *sc;
    265 
    266 	/* First, find the device and take sc_lock. */
    267 	if ((sc = sequencerget(SEQUENCERUNIT(dev))) == NULL)
    268 		return ENXIO;
    269 	mutex_enter(&sc->lock);
    270 	while (sc->dvlock) {
    271 		cv_wait(&sc->lchan, &sc->lock);
    272 	}
    273 	sc->dvlock++;
    274 	if (sc->dying) {
    275 		sequencer_exit(sc);
    276 		return EIO;
    277 	}
    278 	*scp = sc;
    279 	return 0;
    280 }
    281 
    282 static int
    283 sequenceropen(dev_t dev, int flags, int ifmt, struct lwp *l)
    284 {
    285 	struct sequencer_softc *sc;
    286 	struct midi_dev *md;
    287 	struct midi_softc *msc;
    288 	int error, unit;
    289 
    290 	DPRINTF(("sequenceropen\n"));
    291 
    292 	if ((error = sequencer_enter(dev, &sc)) != 0)
    293 		return error;
    294 	if (sc->isopen != 0) {
    295 		sequencer_exit(sc);
    296 		return EBUSY;
    297 	}
    298 
    299 	if (SEQ_IS_OLD(SEQUENCERUNIT(dev)))
    300 		sc->mode = SEQ_OLD;
    301 	else
    302 		sc->mode = SEQ_NEW;
    303 	sc->isopen++;
    304 	sc->flags = flags & (FREAD|FWRITE);
    305 	sc->pbus = 0;
    306 	sc->async = 0;
    307 	sc->input_stamp = ~0;
    308 
    309 	sc->nmidi = 0;
    310 	sc->ndevs = midi_unit_count();
    311 	sc->timer.timebase_divperbeat = 100;
    312 	sc->timer.tempo_beatpermin = 60;
    313 	RECALC_USPERDIV(&sc->timer);
    314 	sc->timer.divs_lastevent = sc->timer.divs_lastchange = 0;
    315 	microtime(&sc->timer.reftime);
    316 
    317 	SEQ_QINIT(&sc->inq);
    318 	SEQ_QINIT(&sc->outq);
    319 	sc->lowat = SEQ_MAXQ / 2;
    320 
    321 	if (sc->ndevs > 0) {
    322 		mutex_exit(&sc->lock);
    323 		sc->devs = kmem_alloc(sc->ndevs * sizeof(struct midi_dev *),
    324 		    KM_SLEEP);
    325 		for (unit = 0; unit < sc->ndevs; unit++) {
    326 			md = midiseq_open(unit, flags);
    327 			if (md) {
    328 				sc->devs[sc->nmidi++] = md;
    329 				md->seq = sc;
    330 				md->doingsysex = 0;
    331 			}
    332 		}
    333 		mutex_enter(&sc->lock);
    334 	} else {
    335 		sc->devs = NULL;
    336 	}
    337 
    338 	/* Only now redirect input from MIDI devices. */
    339 	for (unit = 0; unit < sc->nmidi; unit++) {
    340 		msc = sc->devs[unit]->msc;
    341 		mutex_enter(msc->lock);
    342 		msc->seqopen = 1;
    343 		mutex_exit(msc->lock);
    344 	}
    345 
    346 	seq_reset(sc);
    347 	sequencer_exit(sc);
    348 
    349 	DPRINTF(("%s: mode=%d, nmidi=%d\n", __func__, sc->mode, sc->nmidi));
    350 	return 0;
    351 }
    352 
    353 static int
    354 seq_drain(struct sequencer_softc *sc)
    355 {
    356 	int error;
    357 
    358 	KASSERT(mutex_owned(&sc->lock));
    359 
    360 	DPRINTFN(3, ("seq_drain: %p, len=%d\n", sc, SEQ_QLEN(&sc->outq)));
    361 	seq_startoutput(sc);
    362 	error = 0;
    363 	while (!SEQ_QEMPTY(&sc->outq) && !error)
    364 		error = cv_timedwait_sig(&sc->wchan, &sc->lock, 60*hz);
    365 	return (error);
    366 }
    367 
    368 static void
    369 seq_timeout(void *addr)
    370 {
    371 	struct sequencer_softc *sc = addr;
    372 	proc_t *p;
    373 	pid_t pid;
    374 
    375 	DPRINTFN(4, ("seq_timeout: %p\n", sc));
    376 
    377 	mutex_enter(&sc->lock);
    378 	if (sc->timeout == 0) {
    379 		mutex_spin_exit(&sc->lock);
    380 		return;
    381 	}
    382 	sc->timeout = 0;
    383 	seq_startoutput(sc);
    384 	if (SEQ_QLEN(&sc->outq) >= sc->lowat) {
    385 		mutex_exit(&sc->lock);
    386 		return;
    387 	}
    388 	cv_broadcast(&sc->wchan);
    389 	selnotify(&sc->wsel, 0, NOTE_SUBMIT);
    390 	if ((pid = sc->async) != 0) {
    391 		mutex_enter(proc_lock);
    392 		if ((p = proc_find(pid)) != NULL)
    393 			psignal(p, SIGIO);
    394 		mutex_exit(proc_lock);
    395 	}
    396 	mutex_exit(&sc->lock);
    397 }
    398 
    399 static void
    400 seq_startoutput(struct sequencer_softc *sc)
    401 {
    402 	struct sequencer_queue *q = &sc->outq;
    403 	seq_event_t cmd;
    404 
    405 	KASSERT(mutex_owned(&sc->lock));
    406 
    407 	if (sc->timeout)
    408 		return;
    409 	DPRINTFN(4, ("seq_startoutput: %p, len=%d\n", sc, SEQ_QLEN(q)));
    410 	while (!SEQ_QEMPTY(q) && !sc->timeout) {
    411 		SEQ_QGET(q, cmd);
    412 		seq_do_command(sc, &cmd);
    413 	}
    414 }
    415 
    416 static int
    417 sequencerclose(dev_t dev, int flags, int ifmt, struct lwp *l)
    418 {
    419 	struct sequencer_softc *sc;
    420 	struct midi_softc *msc;
    421 	int unit, error;
    422 
    423 	DPRINTF(("sequencerclose: %"PRIx64"\n", dev));
    424 
    425 	if ((error = sequencer_enter(dev, &sc)) != 0)
    426 		return error;
    427 	seq_drain(sc);
    428 	if (sc->timeout) {
    429 		callout_halt(&sc->sc_callout, &sc->lock);
    430 		sc->timeout = 0;
    431 	}
    432 	/* Bin input from MIDI devices. */
    433 	for (unit = 0; unit < sc->nmidi; unit++) {
    434 		msc = sc->devs[unit]->msc;
    435 		mutex_enter(msc->lock);
    436 		msc->seqopen = 0;
    437 		mutex_exit(msc->lock);
    438 	}
    439 	mutex_exit(&sc->lock);
    440 
    441 	for (unit = 0; unit < sc->nmidi; unit++)
    442 		if (sc->devs[unit] != NULL)
    443 			midiseq_close(sc->devs[unit]);
    444 	if (sc->devs != NULL) {
    445 		KASSERT(sc->ndevs > 0);
    446 		kmem_free(sc->devs, sc->ndevs * sizeof(struct midi_dev *));
    447 		sc->devs = NULL;
    448 	}
    449 
    450 	mutex_enter(&sc->lock);
    451 	sc->isopen = 0;
    452 	sequencer_exit(sc);
    453 
    454 	DPRINTF(("sequencerclose: %"PRIx64" done\n", dev));
    455 
    456 	return (0);
    457 }
    458 
    459 static int
    460 seq_input_event(struct sequencer_softc *sc, seq_event_t *cmd)
    461 {
    462 	struct sequencer_queue *q;
    463 
    464 	KASSERT(mutex_owned(&sc->lock));
    465 
    466 	DPRINTFN(2, ("seq_input_event: %02x %02x %02x %02x %02x "
    467 	    "%02x %02x %02x\n", cmd->tag,
    468 	    cmd->unknown.byte[0], cmd->unknown.byte[1],
    469 	    cmd->unknown.byte[2], cmd->unknown.byte[3],
    470 	    cmd->unknown.byte[4], cmd->unknown.byte[5],
    471 	    cmd->unknown.byte[6]));
    472 	q = &sc->inq;
    473 	if (SEQ_QFULL(q))
    474 		return (ENOMEM);
    475 	SEQ_QPUT(q, *cmd);
    476 	cv_broadcast(&sc->rchan);
    477 	selnotify(&sc->rsel, 0, NOTE_SUBMIT);
    478 	if (sc->async != 0) {
    479 		proc_t *p;
    480 
    481 		mutex_enter(proc_lock);
    482 		if ((p = proc_find(sc->async)) != NULL)
    483 			psignal(p, SIGIO);
    484 		mutex_exit(proc_lock);
    485 	}
    486 	return 0;
    487 }
    488 
    489 static void
    490 seq_softintr(void *addr)
    491 {
    492 	struct sequencer_softc *sc;
    493 	struct timeval now;
    494 	seq_event_t ev;
    495 	int status, chan, unit;
    496 	sequencer_pcqitem_t qi;
    497 	u_long t;
    498 
    499 	sc = addr;
    500 
    501 	mutex_enter(&sc->lock);
    502 
    503 	qi.qi_ptr = pcq_get(sc->pcq);
    504 	if (qi.qi_ptr == NULL) {
    505 		mutex_exit(&sc->lock);
    506 		return;
    507 	}
    508 	KASSERT((qi.qi_msg[3] & 0x80) != 0);
    509 	unit = qi.qi_msg[3] & ~0x80;
    510 	status = MIDI_GET_STATUS(qi.qi_msg[0]);
    511 	chan = MIDI_GET_CHAN(qi.qi_msg[0]);
    512 	switch (status) {
    513 	case MIDI_NOTEON: /* midi(4) always canonicalizes hidden note-off */
    514 		ev = SEQ_MK_CHN(NOTEON, .device=unit, .channel=chan,
    515 		    .key=qi.qi_msg[1], .velocity=qi.qi_msg[2]);
    516 		break;
    517 	case MIDI_NOTEOFF:
    518 		ev = SEQ_MK_CHN(NOTEOFF, .device=unit, .channel=chan,
    519 		    .key=qi.qi_msg[1], .velocity=qi.qi_msg[2]);
    520 		break;
    521 	case MIDI_KEY_PRESSURE:
    522 		ev = SEQ_MK_CHN(KEY_PRESSURE, .device=unit, .channel=chan,
    523 		    .key=qi.qi_msg[1], .pressure=qi.qi_msg[2]);
    524 		break;
    525 	case MIDI_CTL_CHANGE: /* XXX not correct for MSB */
    526 		ev = SEQ_MK_CHN(CTL_CHANGE, .device=unit, .channel=chan,
    527 		    .controller=qi.qi_msg[1], .value=qi.qi_msg[2]);
    528 		break;
    529 	case MIDI_PGM_CHANGE:
    530 		ev = SEQ_MK_CHN(PGM_CHANGE, .device=unit, .channel=chan,
    531 		    .program=qi.qi_msg[1]);
    532 		break;
    533 	case MIDI_CHN_PRESSURE:
    534 		ev = SEQ_MK_CHN(CHN_PRESSURE, .device=unit, .channel=chan,
    535 		    .pressure=qi.qi_msg[1]);
    536 		break;
    537 	case MIDI_PITCH_BEND:
    538 		ev = SEQ_MK_CHN(PITCH_BEND, .device=unit, .channel=chan,
    539 		    .value=(qi.qi_msg[1] & 0x7f) | ((qi.qi_msg[2] & 0x7f) << 7));
    540 		break;
    541 	default: /* this is now the point where MIDI_ACKs disappear */
    542 		mutex_exit(&sc->lock);
    543 		return;
    544 	}
    545 	microtime(&now);
    546 	if (!sc->timer.running)
    547 		now = sc->timer.stoptime;
    548 	SUBTIMEVAL(&now, &sc->timer.reftime);
    549 	t = now.tv_sec * 1000000 + now.tv_usec;
    550 	t /= sc->timer.usperdiv;
    551 	t += sc->timer.divs_lastchange;
    552 	if (t != sc->input_stamp) {
    553 		seq_input_event(sc, &SEQ_MK_TIMING(WAIT_ABS, .divisions=t));
    554 		sc->input_stamp = t; /* XXX wha hoppen if timer is reset? */
    555 	}
    556 	seq_input_event(sc, &ev);
    557 	mutex_exit(&sc->lock);
    558 }
    559 
    560 static int
    561 sequencerread(dev_t dev, struct uio *uio, int ioflag)
    562 {
    563 	struct sequencer_softc *sc;
    564 	struct sequencer_queue *q;
    565 	seq_event_t ev;
    566 	int error;
    567 
    568 	DPRINTFN(20, ("sequencerread: %"PRIx64", count=%d, ioflag=%x\n",
    569 	   dev, (int)uio->uio_resid, ioflag));
    570 
    571 	if ((error = sequencer_enter(dev, &sc)) != 0)
    572 		return error;
    573 	q = &sc->inq;
    574 
    575 	if (sc->mode == SEQ_OLD) {
    576 		sequencer_exit(sc);
    577 		DPRINTFN(-1,("sequencerread: old read\n"));
    578 		return EINVAL; /* XXX unimplemented */
    579 	}
    580 	while (SEQ_QEMPTY(q)) {
    581 		if (ioflag & IO_NDELAY) {
    582 			error = EWOULDBLOCK;
    583 			break;
    584 		}
    585 		/* Drop lock to allow concurrent read/write. */
    586 		KASSERT(sc->dvlock != 0);
    587 		sc->dvlock--;
    588 		error = cv_wait_sig(&sc->rchan, &sc->lock);
    589 		while (sc->dvlock != 0) {
    590 			cv_wait(&sc->lchan, &sc->lock);
    591 		}
    592 		sc->dvlock++;
    593 		if (error) {
    594 			break;
    595 		}
    596 	}
    597 	while (uio->uio_resid >= sizeof(ev) && !error && !SEQ_QEMPTY(q)) {
    598 		SEQ_QGET(q, ev);
    599 		mutex_exit(&sc->lock);
    600 		error = uiomove(&ev, sizeof(ev), uio);
    601 		mutex_enter(&sc->lock);
    602 	}
    603 	sequencer_exit(sc);
    604 	return error;
    605 }
    606 
    607 static int
    608 sequencerwrite(dev_t dev, struct uio *uio, int ioflag)
    609 {
    610 	struct sequencer_softc *sc;
    611 	struct sequencer_queue *q;
    612 	int error;
    613 	seq_event_t cmdbuf;
    614 	int size;
    615 
    616 	DPRINTFN(2, ("sequencerwrite: %"PRIx64", count=%d\n", dev,
    617 	    (int)uio->uio_resid));
    618 
    619 	if ((error = sequencer_enter(dev, &sc)) != 0)
    620 		return error;
    621 	q = &sc->outq;
    622 
    623 	size = sc->mode == SEQ_NEW ? sizeof cmdbuf : SEQOLD_CMDSIZE;
    624 	while (uio->uio_resid >= size && error == 0) {
    625 		mutex_exit(&sc->lock);
    626 		error = uiomove(&cmdbuf, size, uio);
    627 		if (error == 0) {
    628 			if (sc->mode == SEQ_OLD && seq_to_new(&cmdbuf, uio)) {
    629 				mutex_enter(&sc->lock);
    630 				continue;
    631 			}
    632 			if (cmdbuf.tag == SEQ_FULLSIZE) {
    633 				/* We do it like OSS does, asynchronously */
    634 				error = seq_do_fullsize(sc, &cmdbuf, uio);
    635 				if (error == 0) {
    636 					mutex_enter(&sc->lock);
    637 					continue;
    638 				}
    639 			}
    640 		}
    641 		mutex_enter(&sc->lock);
    642 		if (error != 0) {
    643 			break;
    644 		}
    645 		while (SEQ_QFULL(q)) {
    646 			seq_startoutput(sc);
    647 			if (SEQ_QFULL(q)) {
    648 				if (ioflag & IO_NDELAY) {
    649 					error = EWOULDBLOCK;
    650 					break;
    651 				}
    652 				error = cv_wait_sig(&sc->wchan, &sc->lock);
    653 				if (error) {
    654 					 break;
    655 				}
    656 			}
    657 		}
    658 		if (error == 0) {
    659 			SEQ_QPUT(q, cmdbuf);
    660 		}
    661 	}
    662 	if (error == 0) {
    663 		seq_startoutput(sc);
    664 	} else {
    665 		DPRINTFN(2, ("sequencerwrite: error=%d\n", error));
    666 	}
    667 	sequencer_exit(sc);
    668 	return error;
    669 }
    670 
    671 static int
    672 sequencerioctl(dev_t dev, u_long cmd, void *addr, int flag, struct lwp *l)
    673 {
    674 	struct sequencer_softc *sc;
    675 	struct synth_info *si;
    676 	struct midi_dev *md;
    677 	int devno, error, t;
    678 	struct timeval now;
    679 	u_long tx;
    680 
    681 	DPRINTFN(2, ("sequencerioctl: %"PRIx64" cmd=0x%08lx\n", dev, cmd));
    682 
    683 	if ((error = sequencer_enter(dev, &sc)) != 0)
    684 		return error;
    685 	switch (cmd) {
    686 	case FIONBIO:
    687 		/* All handled in the upper FS layer. */
    688 		break;
    689 
    690 	case FIOASYNC:
    691 		if (*(int *)addr) {
    692 			if (sc->async != 0)
    693 				return EBUSY;
    694 			sc->async = curproc->p_pid;
    695 			DPRINTF(("sequencer_ioctl: FIOASYNC %d\n",
    696 			    sc->async));
    697 		} else {
    698 			sc->async = 0;
    699 		}
    700 		break;
    701 
    702 	case SEQUENCER_RESET:
    703 		seq_reset(sc);
    704 		break;
    705 
    706 	case SEQUENCER_PANIC:
    707 		seq_reset(sc);
    708 		/* Do more?  OSS doesn't */
    709 		break;
    710 
    711 	case SEQUENCER_SYNC:
    712 		if (sc->flags != FREAD)
    713 			seq_drain(sc);
    714 		break;
    715 
    716 	case SEQUENCER_INFO:
    717 		si = (struct synth_info*)addr;
    718 		devno = si->device;
    719 		if (devno < 0 || devno >= sc->nmidi) {
    720 			error = EINVAL;
    721 			break;
    722 		}
    723 		md = sc->devs[devno];
    724 		strncpy(si->name, md->name, sizeof si->name);
    725 		si->synth_type = SYNTH_TYPE_MIDI;
    726 		si->synth_subtype = md->subtype;
    727 		si->nr_voices = md->nr_voices;
    728 		si->instr_bank_size = md->instr_bank_size;
    729 		si->capabilities = md->capabilities;
    730 		break;
    731 
    732 	case SEQUENCER_NRSYNTHS:
    733 		*(int *)addr = sc->nmidi;
    734 		break;
    735 
    736 	case SEQUENCER_NRMIDIS:
    737 		*(int *)addr = sc->nmidi;
    738 		break;
    739 
    740 	case SEQUENCER_OUTOFBAND:
    741 		DPRINTFN(3, ("sequencer_ioctl: OOB=%02x %02x %02x %02x %02x %02x %02x %02x\n",
    742 		    *(u_char *)addr, *((u_char *)addr+1),
    743 		    *((u_char *)addr+2), *((u_char *)addr+3),
    744 		    *((u_char *)addr+4), *((u_char *)addr+5),
    745 		    *((u_char *)addr+6), *((u_char *)addr+7)));
    746 		if ((sc->flags & FWRITE) == 0) {
    747 			error = EBADF;
    748 		} else {
    749 			error = seq_do_command(sc, (seq_event_t *)addr);
    750 		}
    751 		break;
    752 
    753 	case SEQUENCER_TMR_TIMEBASE:
    754 		t = *(int *)addr;
    755 		if (t < 1)
    756 			t = 1;
    757 		if (t > 10000)
    758 			t = 10000;
    759 		*(int *)addr = t;
    760 		sc->timer.timebase_divperbeat = t;
    761 		sc->timer.divs_lastchange = sc->timer.divs_lastevent;
    762 		microtime(&sc->timer.reftime);
    763 		RECALC_USPERDIV(&sc->timer);
    764 		break;
    765 
    766 	case SEQUENCER_TMR_START:
    767 		error = seq_do_timing(sc, &SEQ_MK_TIMING(START));
    768 		break;
    769 
    770 	case SEQUENCER_TMR_STOP:
    771 		error = seq_do_timing(sc, &SEQ_MK_TIMING(STOP));
    772 		break;
    773 
    774 	case SEQUENCER_TMR_CONTINUE:
    775 		error = seq_do_timing(sc, &SEQ_MK_TIMING(CONTINUE));
    776 		break;
    777 
    778 	case SEQUENCER_TMR_TEMPO:
    779 		error = seq_do_timing(sc,
    780 		    &SEQ_MK_TIMING(TEMPO, .bpm=*(int *)addr));
    781 		if (error == 0)
    782 			*(int *)addr = sc->timer.tempo_beatpermin;
    783 		break;
    784 
    785 	case SEQUENCER_TMR_SOURCE:
    786 		*(int *)addr = SEQUENCER_TMR_INTERNAL;
    787 		break;
    788 
    789 	case SEQUENCER_TMR_METRONOME:
    790 		/* noop */
    791 		break;
    792 
    793 	case SEQUENCER_THRESHOLD:
    794 		t = SEQ_MAXQ - *(int *)addr / sizeof (seq_event_rec);
    795 		if (t < 1)
    796 			t = 1;
    797 		if (t > SEQ_MAXQ)
    798 			t = SEQ_MAXQ;
    799 		sc->lowat = t;
    800 		break;
    801 
    802 	case SEQUENCER_CTRLRATE:
    803 		*(int *)addr = (sc->timer.tempo_beatpermin
    804 		    *sc->timer.timebase_divperbeat + 30) / 60;
    805 		break;
    806 
    807 	case SEQUENCER_GETTIME:
    808 		microtime(&now);
    809 		SUBTIMEVAL(&now, &sc->timer.reftime);
    810 		tx = now.tv_sec * 1000000 + now.tv_usec;
    811 		tx /= sc->timer.usperdiv;
    812 		tx += sc->timer.divs_lastchange;
    813 		*(int *)addr = tx;
    814 		break;
    815 
    816 	default:
    817 		DPRINTFN(-1,("sequencer_ioctl: unimpl %08lx\n", cmd));
    818 		error = EINVAL;
    819 		break;
    820 	}
    821 	sequencer_exit(sc);
    822 
    823 	return error;
    824 }
    825 
    826 static int
    827 sequencerpoll(dev_t dev, int events, struct lwp *l)
    828 {
    829 	struct sequencer_softc *sc;
    830 	int revents = 0;
    831 	if ((sc = sequencerget(SEQUENCERUNIT(dev))) == NULL)
    832 		return ENXIO;
    833 
    834 	DPRINTF(("sequencerpoll: %p events=0x%x\n", sc, events));
    835 
    836 	mutex_enter(&sc->lock);
    837 	if (events & (POLLIN | POLLRDNORM))
    838 		if ((sc->flags&FREAD) && !SEQ_QEMPTY(&sc->inq))
    839 			revents |= events & (POLLIN | POLLRDNORM);
    840 
    841 	if (events & (POLLOUT | POLLWRNORM))
    842 		if ((sc->flags&FWRITE) && SEQ_QLEN(&sc->outq) < sc->lowat)
    843 			revents |= events & (POLLOUT | POLLWRNORM);
    844 
    845 	if (revents == 0) {
    846 		if ((sc->flags&FREAD) && (events & (POLLIN | POLLRDNORM)))
    847 			selrecord(l, &sc->rsel);
    848 
    849 		if ((sc->flags&FWRITE) && (events & (POLLOUT | POLLWRNORM)))
    850 			selrecord(l, &sc->wsel);
    851 	}
    852 	mutex_exit(&sc->lock);
    853 
    854 	return revents;
    855 }
    856 
    857 static void
    858 filt_sequencerrdetach(struct knote *kn)
    859 {
    860 	struct sequencer_softc *sc = kn->kn_hook;
    861 
    862 	mutex_enter(&sc->lock);
    863 	SLIST_REMOVE(&sc->rsel.sel_klist, kn, knote, kn_selnext);
    864 	mutex_exit(&sc->lock);
    865 }
    866 
    867 static int
    868 filt_sequencerread(struct knote *kn, long hint)
    869 {
    870 	struct sequencer_softc *sc = kn->kn_hook;
    871 	int rv;
    872 
    873 	if (hint != NOTE_SUBMIT) {
    874 		mutex_enter(&sc->lock);
    875 	}
    876 	if (SEQ_QEMPTY(&sc->inq)) {
    877 		rv = 0;
    878 	} else {
    879 		kn->kn_data = sizeof(seq_event_rec);
    880 		rv = 1;
    881 	}
    882 	if (hint != NOTE_SUBMIT) {
    883 		mutex_exit(&sc->lock);
    884 	}
    885 	return rv;
    886 }
    887 
    888 static const struct filterops sequencerread_filtops =
    889 	{ 1, NULL, filt_sequencerrdetach, filt_sequencerread };
    890 
    891 static void
    892 filt_sequencerwdetach(struct knote *kn)
    893 {
    894 	struct sequencer_softc *sc = kn->kn_hook;
    895 
    896 	mutex_enter(&sc->lock);
    897 	SLIST_REMOVE(&sc->wsel.sel_klist, kn, knote, kn_selnext);
    898 	mutex_exit(&sc->lock);
    899 }
    900 
    901 static int
    902 filt_sequencerwrite(struct knote *kn, long hint)
    903 {
    904 	struct sequencer_softc *sc = kn->kn_hook;
    905 	int rv;
    906 
    907 	if (hint != NOTE_SUBMIT) {
    908 		mutex_enter(&sc->lock);
    909 	}
    910 	if (SEQ_QLEN(&sc->outq) >= sc->lowat) {
    911 		rv = 0;
    912 	} else {
    913 		kn->kn_data = sizeof(seq_event_rec);
    914 		rv = 1;
    915 	}
    916 	if (hint != NOTE_SUBMIT) {
    917 		mutex_exit(&sc->lock);
    918 	}
    919 	return rv;
    920 }
    921 
    922 static const struct filterops sequencerwrite_filtops =
    923 	{ 1, NULL, filt_sequencerwdetach, filt_sequencerwrite };
    924 
    925 static int
    926 sequencerkqfilter(dev_t dev, struct knote *kn)
    927 {
    928 	struct sequencer_softc *sc;
    929 	struct klist *klist;
    930 	if ((sc = sequencerget(SEQUENCERUNIT(dev))) == NULL)
    931 		return ENXIO;
    932 
    933 	switch (kn->kn_filter) {
    934 	case EVFILT_READ:
    935 		klist = &sc->rsel.sel_klist;
    936 		kn->kn_fop = &sequencerread_filtops;
    937 		break;
    938 
    939 	case EVFILT_WRITE:
    940 		klist = &sc->wsel.sel_klist;
    941 		kn->kn_fop = &sequencerwrite_filtops;
    942 		break;
    943 
    944 	default:
    945 		return (EINVAL);
    946 	}
    947 
    948 	kn->kn_hook = sc;
    949 
    950 	mutex_enter(&sc->lock);
    951 	SLIST_INSERT_HEAD(klist, kn, kn_selnext);
    952 	mutex_exit(&sc->lock);
    953 
    954 	return (0);
    955 }
    956 
    957 static void
    958 seq_reset(struct sequencer_softc *sc)
    959 {
    960 	int i, chn;
    961 	struct midi_dev *md;
    962 
    963 	KASSERT(mutex_owned(&sc->lock));
    964 
    965 	if ( !(sc->flags & FWRITE) )
    966 	        return;
    967 	for (i = 0; i < sc->nmidi; i++) {
    968 		md = sc->devs[i];
    969 		midiseq_reset(md);
    970 		for (chn = 0; chn < MAXCHAN; chn++) {
    971 			midiseq_ctlchange(md, chn, &SEQ_MK_CHN(CTL_CHANGE,
    972 			    .controller=MIDI_CTRL_NOTES_OFF));
    973 			midiseq_ctlchange(md, chn, &SEQ_MK_CHN(CTL_CHANGE,
    974 			    .controller=MIDI_CTRL_RESET));
    975 			midiseq_pitchbend(md, chn, &SEQ_MK_CHN(PITCH_BEND,
    976 			    .value=MIDI_BEND_NEUTRAL));
    977 		}
    978 	}
    979 }
    980 
    981 static int
    982 seq_do_command(struct sequencer_softc *sc, seq_event_t *b)
    983 {
    984 	int dev;
    985 
    986 	KASSERT(mutex_owned(&sc->lock));
    987 
    988 	DPRINTFN(4, ("seq_do_command: %p cmd=0x%02x\n", sc, b->timing.op));
    989 
    990 	switch(b->tag) {
    991 	case SEQ_LOCAL:
    992 		return seq_do_local(sc, b);
    993 	case SEQ_TIMING:
    994 		return seq_do_timing(sc, b);
    995 	case SEQ_CHN_VOICE:
    996 		return seq_do_chnvoice(sc, b);
    997 	case SEQ_CHN_COMMON:
    998 		return seq_do_chncommon(sc, b);
    999 	case SEQ_SYSEX:
   1000 		return seq_do_sysex(sc, b);
   1001 	/* COMPAT */
   1002 	case SEQOLD_MIDIPUTC:
   1003 		dev = b->putc.device;
   1004 		if (dev < 0 || dev >= sc->nmidi)
   1005 			return (ENXIO);
   1006 		return midiseq_out(sc->devs[dev], &b->putc.byte, 1, 0);
   1007 	default:
   1008 		DPRINTFN(-1,("seq_do_command: unimpl command %02x\n", b->tag));
   1009 		return (EINVAL);
   1010 	}
   1011 }
   1012 
   1013 static int
   1014 seq_do_chnvoice(struct sequencer_softc *sc, seq_event_t *b)
   1015 {
   1016 	int dev;
   1017 	int error;
   1018 	struct midi_dev *md;
   1019 
   1020 	KASSERT(mutex_owned(&sc->lock));
   1021 
   1022 	dev = b->voice.device;
   1023 	if (dev < 0 || dev >= sc->nmidi ||
   1024 	    b->voice.channel > 15 ||
   1025 	    b->voice.key >= SEQ_NOTE_MAX)
   1026 		return ENXIO;
   1027 	md = sc->devs[dev];
   1028 	switch(b->voice.op) {
   1029 	case MIDI_NOTEON: /* no need to special-case hidden noteoff here */
   1030 		error = midiseq_noteon(md, b->voice.channel, b->voice.key, b);
   1031 		break;
   1032 	case MIDI_NOTEOFF:
   1033 		error = midiseq_noteoff(md, b->voice.channel, b->voice.key, b);
   1034 		break;
   1035 	case MIDI_KEY_PRESSURE:
   1036 		error = midiseq_keypressure(md,
   1037 		    b->voice.channel, b->voice.key, b);
   1038 		break;
   1039 	default:
   1040 		DPRINTFN(-1,("seq_do_chnvoice: unimpl command %02x\n",
   1041 			b->voice.op));
   1042 		error = EINVAL;
   1043 		break;
   1044 	}
   1045 	return error;
   1046 }
   1047 
   1048 static int
   1049 seq_do_chncommon(struct sequencer_softc *sc, seq_event_t *b)
   1050 {
   1051 	int dev;
   1052 	int error;
   1053 	struct midi_dev *md;
   1054 
   1055 	KASSERT(mutex_owned(&sc->lock));
   1056 
   1057 	dev = b->common.device;
   1058 	if (dev < 0 || dev >= sc->nmidi ||
   1059 	    b->common.channel > 15)
   1060 		return ENXIO;
   1061 	md = sc->devs[dev];
   1062 	DPRINTFN(2,("seq_do_chncommon: %02x\n", b->common.op));
   1063 
   1064 	error = 0;
   1065 	switch(b->common.op) {
   1066 	case MIDI_PGM_CHANGE:
   1067 		error = midiseq_pgmchange(md, b->common.channel, b);
   1068 		break;
   1069 	case MIDI_CTL_CHANGE:
   1070 		error = midiseq_ctlchange(md, b->common.channel, b);
   1071 		break;
   1072 	case MIDI_PITCH_BEND:
   1073 		error = midiseq_pitchbend(md, b->common.channel, b);
   1074 		break;
   1075 	case MIDI_CHN_PRESSURE:
   1076 		error = midiseq_chnpressure(md, b->common.channel, b);
   1077 		break;
   1078 	default:
   1079 		DPRINTFN(-1,("seq_do_chncommon: unimpl command %02x\n",
   1080 			b->common.op));
   1081 		error = EINVAL;
   1082 		break;
   1083 	}
   1084 	return error;
   1085 }
   1086 
   1087 static int
   1088 seq_do_local(struct sequencer_softc *sc, seq_event_t *b)
   1089 {
   1090 
   1091 	KASSERT(mutex_owned(&sc->lock));
   1092 
   1093 	return (EINVAL);
   1094 }
   1095 
   1096 static int
   1097 seq_do_sysex(struct sequencer_softc *sc, seq_event_t *b)
   1098 {
   1099 	int dev, i;
   1100 	struct midi_dev *md;
   1101 	uint8_t *bf = b->sysex.buffer;
   1102 
   1103 	KASSERT(mutex_owned(&sc->lock));
   1104 
   1105 	dev = b->sysex.device;
   1106 	if (dev < 0 || dev >= sc->nmidi)
   1107 		return (ENXIO);
   1108 	DPRINTF(("seq_do_sysex: dev=%d\n", dev));
   1109 	md = sc->devs[dev];
   1110 
   1111 	if (!md->doingsysex) {
   1112 		midiseq_out(md, (uint8_t[]){MIDI_SYSEX_START}, 1, 0);
   1113 		md->doingsysex = 1;
   1114 	}
   1115 
   1116 	for (i = 0; i < 6 && bf[i] != 0xff; i++)
   1117 		;
   1118 	midiseq_out(md, bf, i, 0);
   1119 	if (i < 6 || (i > 0 && bf[i-1] == MIDI_SYSEX_END))
   1120 		md->doingsysex = 0;
   1121 	return 0;
   1122 }
   1123 
   1124 static void
   1125 seq_timer_waitabs(struct sequencer_softc *sc, uint32_t divs)
   1126 {
   1127 	struct timeval when;
   1128 	long long usec;
   1129 	struct syn_timer *t;
   1130 	int ticks;
   1131 
   1132 	KASSERT(mutex_owned(&sc->lock));
   1133 
   1134 	t = &sc->timer;
   1135 	t->divs_lastevent = divs;
   1136 	divs -= t->divs_lastchange;
   1137 	usec = (long long)divs * (long long)t->usperdiv; /* convert to usec */
   1138 	when.tv_sec = usec / 1000000;
   1139 	when.tv_usec = usec % 1000000;
   1140 	DPRINTFN(4, ("seq_timer_waitabs: adjdivs=%d, sleep when=%"PRId64".%06"PRId64,
   1141 	             divs, when.tv_sec, (uint64_t)when.tv_usec));
   1142 	ADDTIMEVAL(&when, &t->reftime); /* abstime for end */
   1143 	ticks = tvhzto(&when);
   1144 	DPRINTFN(4, (" when+start=%"PRId64".%06"PRId64", tick=%d\n",
   1145 		     when.tv_sec, (uint64_t)when.tv_usec, ticks));
   1146 	if (ticks > 0) {
   1147 #ifdef DIAGNOSTIC
   1148 		if (ticks > 20 * hz) {
   1149 			/* Waiting more than 20s */
   1150 			printf("seq_timer_waitabs: funny ticks=%d, "
   1151 			       "usec=%lld\n", ticks, usec);
   1152 		}
   1153 #endif
   1154 		sc->timeout = 1;
   1155 		callout_reset(&sc->sc_callout, ticks,
   1156 		    seq_timeout, sc);
   1157 	}
   1158 #ifdef SEQUENCER_DEBUG
   1159 	else if (tick < 0)
   1160 		DPRINTF(("seq_timer_waitabs: ticks = %d\n", ticks));
   1161 #endif
   1162 }
   1163 
   1164 static int
   1165 seq_do_timing(struct sequencer_softc *sc, seq_event_t *b)
   1166 {
   1167 	struct syn_timer *t = &sc->timer;
   1168 	struct timeval when;
   1169 	int error;
   1170 
   1171 	KASSERT(mutex_owned(&sc->lock));
   1172 
   1173 	error = 0;
   1174 	switch(b->timing.op) {
   1175 	case TMR_WAIT_REL:
   1176 		seq_timer_waitabs(sc,
   1177 		    b->t_WAIT_REL.divisions + t->divs_lastevent);
   1178 		break;
   1179 	case TMR_WAIT_ABS:
   1180 		seq_timer_waitabs(sc, b->t_WAIT_ABS.divisions);
   1181 		break;
   1182 	case TMR_START:
   1183 		microtime(&t->reftime);
   1184 		t->divs_lastevent = t->divs_lastchange = 0;
   1185 		t->running = 1;
   1186 		break;
   1187 	case TMR_STOP:
   1188 		microtime(&t->stoptime);
   1189 		t->running = 0;
   1190 		break;
   1191 	case TMR_CONTINUE:
   1192 		if (t->running)
   1193 			break;
   1194 		microtime(&when);
   1195 		SUBTIMEVAL(&when, &t->stoptime);
   1196 		ADDTIMEVAL(&t->reftime, &when);
   1197 		t->running = 1;
   1198 		break;
   1199 	case TMR_TEMPO:
   1200 		/* bpm is unambiguously MIDI clocks per minute / 24 */
   1201 		/* (24 MIDI clocks are usually but not always a quarter note) */
   1202 		if (b->t_TEMPO.bpm < 8) /* where are these limits specified? */
   1203 			t->tempo_beatpermin = 8;
   1204 		else if (b->t_TEMPO.bpm > 360) /* ? */
   1205 			t->tempo_beatpermin = 360;
   1206 		else
   1207 			t->tempo_beatpermin = b->t_TEMPO.bpm;
   1208 		t->divs_lastchange = t->divs_lastevent;
   1209 		microtime(&t->reftime);
   1210 		RECALC_USPERDIV(t);
   1211 		break;
   1212 	case TMR_ECHO:
   1213 		error = seq_input_event(sc, b);
   1214 		break;
   1215 	case TMR_RESET:
   1216 		t->divs_lastevent = t->divs_lastchange = 0;
   1217 		microtime(&t->reftime);
   1218 		break;
   1219 	case TMR_SPP:
   1220 	case TMR_TIMESIG:
   1221 		DPRINTF(("seq_do_timing: unimplemented %02x\n", b->timing.op));
   1222 		error = EINVAL; /* not quite accurate... */
   1223 		break;
   1224 	default:
   1225 		DPRINTF(("seq_timer: unknown %02x\n", b->timing.op));
   1226 		error = EINVAL;
   1227 		break;
   1228 	}
   1229 	return (error);
   1230 }
   1231 
   1232 static int
   1233 seq_do_fullsize(struct sequencer_softc *sc, seq_event_t *b, struct uio *uio)
   1234 {
   1235 	struct sysex_info sysex;
   1236 	u_int dev;
   1237 
   1238 #ifdef DIAGNOSTIC
   1239 	if (sizeof(seq_event_rec) != SEQ_SYSEX_HDRSIZE) {
   1240 		printf("seq_do_fullsize: sysex size ??\n");
   1241 		return EINVAL;
   1242 	}
   1243 #endif
   1244 	memcpy(&sysex, b, sizeof sysex);
   1245 	dev = sysex.device_no;
   1246 	if (/* dev < 0 || */ dev >= sc->nmidi)
   1247 		return (ENXIO);
   1248 	DPRINTFN(2, ("seq_do_fullsize: fmt=%04x, dev=%d, len=%d\n",
   1249 		     sysex.key, dev, sysex.len));
   1250 	return (midiseq_loadpatch(sc->devs[dev], &sysex, uio));
   1251 }
   1252 
   1253 /*
   1254  * Convert an old sequencer event to a new one.
   1255  * NOTE: on entry, *ev may contain valid data only in the first 4 bytes.
   1256  * That may be true even on exit (!) in the case of SEQOLD_MIDIPUTC; the
   1257  * caller will only look at the first bytes in that case anyway. Ugly? Sure.
   1258  */
   1259 static int
   1260 seq_to_new(seq_event_t *ev, struct uio *uio)
   1261 {
   1262 	int cmd, chan, note, parm;
   1263 	uint32_t tmp_delay;
   1264 	int error;
   1265 	uint8_t *bfp;
   1266 
   1267 	cmd = ev->tag;
   1268 	bfp = ev->unknown.byte;
   1269 	chan = *bfp++;
   1270 	note = *bfp++;
   1271 	parm = *bfp++;
   1272 	DPRINTFN(3, ("seq_to_new: 0x%02x %d %d %d\n", cmd, chan, note, parm));
   1273 
   1274 	if (cmd >= 0x80) {
   1275 		/* Fill the event record */
   1276 		if (uio->uio_resid >= sizeof *ev - SEQOLD_CMDSIZE) {
   1277 			error = uiomove(bfp, sizeof *ev - SEQOLD_CMDSIZE, uio);
   1278 			if (error)
   1279 				return error;
   1280 		} else
   1281 			return EINVAL;
   1282 	}
   1283 
   1284 	switch(cmd) {
   1285 	case SEQOLD_NOTEOFF:
   1286 		/*
   1287 		 * What's with the SEQ_NOTE_XXX?  In OSS this seems to have
   1288 		 * been undocumented magic for messing with the overall volume
   1289 		 * of a 'voice', equated precariously with 'channel' and
   1290 		 * pretty much unimplementable except by directly frobbing a
   1291 		 * synth chip. For us, who treat everything as interfaced over
   1292 		 * MIDI, this will just be unceremoniously discarded as
   1293 		 * invalid in midiseq_noteoff, making the whole event an
   1294 		 * elaborate no-op, and that doesn't seem to be any different
   1295 		 * from what happens on linux with a MIDI-interfaced device,
   1296 		 * by the way. The moral is ... use the new /dev/music API, ok?
   1297 		 */
   1298 		*ev = SEQ_MK_CHN(NOTEOFF, .device=0, .channel=chan,
   1299 		    .key=SEQ_NOTE_XXX, .velocity=parm);
   1300 		break;
   1301 	case SEQOLD_NOTEON:
   1302 		*ev = SEQ_MK_CHN(NOTEON,
   1303 		    .device=0, .channel=chan, .key=note, .velocity=parm);
   1304 		break;
   1305 	case SEQOLD_WAIT:
   1306 		/*
   1307 		 * This event cannot even /exist/ on non-littleendian machines,
   1308 		 * and so help me, that's exactly the way OSS defined it.
   1309 		 * Also, the OSS programmer's guide states (p. 74, v1.11)
   1310 		 * that seqold time units are system clock ticks, unlike
   1311 		 * the new 'divisions' which are determined by timebase. In
   1312 		 * that case we would need to do scaling here - but no such
   1313 		 * behavior is visible in linux either--which also treats this
   1314 		 * value, surprisingly, as an absolute, not relative, time.
   1315 		 * My guess is that this event has gone unused so long that
   1316 		 * nobody could agree we got it wrong no matter what we do.
   1317 		 */
   1318 		tmp_delay = *(uint32_t *)ev >> 8;
   1319 		*ev = SEQ_MK_TIMING(WAIT_ABS, .divisions=tmp_delay);
   1320 		break;
   1321 	case SEQOLD_SYNCTIMER:
   1322 		/*
   1323 		 * The TMR_RESET event is not defined in any OSS materials
   1324 		 * I can find; it may have been invented here just to provide
   1325 		 * an accurate _to_new translation of this event.
   1326 		 */
   1327 		*ev = SEQ_MK_TIMING(RESET);
   1328 		break;
   1329 	case SEQOLD_PGMCHANGE:
   1330 		*ev = SEQ_MK_CHN(PGM_CHANGE,
   1331 		    .device=0, .channel=chan, .program=note);
   1332 		break;
   1333 	case SEQOLD_MIDIPUTC:
   1334 		break;		/* interpret in normal mode */
   1335 	case SEQOLD_ECHO:
   1336 	case SEQOLD_PRIVATE:
   1337 	case SEQOLD_EXTENDED:
   1338 	default:
   1339 		DPRINTF(("seq_to_new: not impl 0x%02x\n", cmd));
   1340 		return EINVAL;
   1341 	/* In case new-style events show up */
   1342 	case SEQ_TIMING:
   1343 	case SEQ_CHN_VOICE:
   1344 	case SEQ_CHN_COMMON:
   1345 	case SEQ_FULLSIZE:
   1346 		break;
   1347 	}
   1348 	return 0;
   1349 }
   1350 
   1351 /**********************************************/
   1352 
   1353 void
   1354 midiseq_in(struct midi_dev *md, u_char *msg, int len)
   1355 {
   1356 	struct sequencer_softc *sc;
   1357 	sequencer_pcqitem_t qi;
   1358 
   1359 	DPRINTFN(2, ("midiseq_in: %p %02x %02x %02x\n",
   1360 		     md, msg[0], msg[1], msg[2]));
   1361 
   1362 	sc = md->seq;
   1363 
   1364 	qi.qi_msg[0] = msg[0];
   1365 	qi.qi_msg[1] = msg[1];
   1366 	qi.qi_msg[2] = msg[2];
   1367 	qi.qi_msg[3] = md->unit | 0x80;	/* ensure non-zero value of qi_ptr */
   1368 	pcq_put(sc->pcq, qi.qi_ptr);
   1369 	softint_schedule(sc->sih);
   1370 }
   1371 
   1372 static struct midi_dev *
   1373 midiseq_open(int unit, int flags)
   1374 {
   1375 	extern struct cfdriver midi_cd;
   1376 	int error;
   1377 	struct midi_dev *md;
   1378 	struct midi_softc *sc;
   1379 	struct midi_info mi;
   1380 	int major;
   1381 	dev_t dev;
   1382 	vnode_t *vp;
   1383 	int oflags;
   1384 
   1385 	major = devsw_name2chr("midi", NULL, 0);
   1386 	dev = makedev(major, unit);
   1387 
   1388 	DPRINTFN(2, ("midiseq_open: %d %d\n", unit, flags));
   1389 
   1390 	error = cdevvp(dev, &vp);
   1391 	if (error)
   1392 		return NULL;
   1393 	vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
   1394 	error = VOP_OPEN(vp, flags, kauth_cred_get());
   1395 	VOP_UNLOCK(vp);
   1396 	if (error) {
   1397 		vrele(vp);
   1398 		return NULL;
   1399 	}
   1400 
   1401 	/* Only after we have acquired reference via VOP_OPEN(). */
   1402 	midi_getinfo(dev, &mi);
   1403 	oflags = flags;
   1404 	if ((mi.props & MIDI_PROP_CAN_INPUT) == 0)
   1405 	        flags &= ~FREAD;
   1406 	if ((flags & (FREAD|FWRITE)) == 0) {
   1407 		VOP_CLOSE(vp, oflags, kauth_cred_get());
   1408 		vrele(vp);
   1409 	        return NULL;
   1410 	}
   1411 
   1412 	sc = device_lookup_private(&midi_cd, unit);
   1413 	md = kmem_zalloc(sizeof(*md), KM_SLEEP);
   1414 	md->msc = sc;
   1415 	md->unit = unit;
   1416 	md->name = mi.name;
   1417 	md->subtype = 0;
   1418 	md->nr_voices = 128;	/* XXX */
   1419 	md->instr_bank_size = 128; /* XXX */
   1420 	md->vp = vp;
   1421 	if (mi.props & MIDI_PROP_CAN_INPUT)
   1422 		md->capabilities |= SYNTH_CAP_INPUT;
   1423 	sc->seq_md = md;
   1424 	return (md);
   1425 }
   1426 
   1427 static void
   1428 midiseq_close(struct midi_dev *md)
   1429 {
   1430 	DPRINTFN(2, ("midiseq_close: %d\n", md->unit));
   1431 	(void)vn_close(md->vp, 0, kauth_cred_get());
   1432 	kmem_free(md, sizeof(*md));
   1433 }
   1434 
   1435 static void
   1436 midiseq_reset(struct midi_dev *md)
   1437 {
   1438 	/* XXX send GM reset? */
   1439 	DPRINTFN(3, ("midiseq_reset: %d\n", md->unit));
   1440 }
   1441 
   1442 static int
   1443 midiseq_out(struct midi_dev *md, u_char *bf, u_int cc, int chk)
   1444 {
   1445 	DPRINTFN(5, ("midiseq_out: m=%p, unit=%d, bf[0]=0x%02x, cc=%d\n",
   1446 		     md->msc, md->unit, bf[0], cc));
   1447 
   1448 	/* midi(4) does running status compression where appropriate. */
   1449 	return midi_writebytes(md->unit, bf, cc);
   1450 }
   1451 
   1452 /*
   1453  * If the writing process hands us a hidden note-off in a note-on event,
   1454  * we will simply write it that way; no need to special case it here,
   1455  * as midi(4) will always canonicalize or compress as appropriate anyway.
   1456  */
   1457 static int
   1458 midiseq_noteon(struct midi_dev *md, int chan, int key, seq_event_t *ev)
   1459 {
   1460 	return midiseq_out(md, (uint8_t[]){
   1461 	    MIDI_NOTEON | chan, key, ev->c_NOTEON.velocity & 0x7f}, 3, 1);
   1462 }
   1463 
   1464 static int
   1465 midiseq_noteoff(struct midi_dev *md, int chan, int key, seq_event_t *ev)
   1466 {
   1467 	return midiseq_out(md, (uint8_t[]){
   1468 	    MIDI_NOTEOFF | chan, key, ev->c_NOTEOFF.velocity & 0x7f}, 3, 1);
   1469 }
   1470 
   1471 static int
   1472 midiseq_keypressure(struct midi_dev *md, int chan, int key, seq_event_t *ev)
   1473 {
   1474 	return midiseq_out(md, (uint8_t[]){
   1475 	    MIDI_KEY_PRESSURE | chan, key,
   1476 	    ev->c_KEY_PRESSURE.pressure & 0x7f}, 3, 1);
   1477 }
   1478 
   1479 static int
   1480 midiseq_pgmchange(struct midi_dev *md, int chan, seq_event_t *ev)
   1481 {
   1482 	if (ev->c_PGM_CHANGE.program > 127)
   1483 		return EINVAL;
   1484 	return midiseq_out(md, (uint8_t[]){
   1485 	    MIDI_PGM_CHANGE | chan, ev->c_PGM_CHANGE.program}, 2, 1);
   1486 }
   1487 
   1488 static int
   1489 midiseq_chnpressure(struct midi_dev *md, int chan, seq_event_t *ev)
   1490 {
   1491 	if (ev->c_CHN_PRESSURE.pressure > 127)
   1492 		return EINVAL;
   1493 	return midiseq_out(md, (uint8_t[]){
   1494 	    MIDI_CHN_PRESSURE | chan, ev->c_CHN_PRESSURE.pressure}, 2, 1);
   1495 }
   1496 
   1497 static int
   1498 midiseq_ctlchange(struct midi_dev *md, int chan, seq_event_t *ev)
   1499 {
   1500 	if (ev->c_CTL_CHANGE.controller > 127)
   1501 		return EINVAL;
   1502 	return midiseq_out( md, (uint8_t[]){
   1503 	    MIDI_CTL_CHANGE | chan, ev->c_CTL_CHANGE.controller,
   1504 	    ev->c_CTL_CHANGE.value & 0x7f /* XXX this is SO wrong */
   1505 	    }, 3, 1);
   1506 }
   1507 
   1508 static int
   1509 midiseq_pitchbend(struct midi_dev *md, int chan, seq_event_t *ev)
   1510 {
   1511 	return midiseq_out(md, (uint8_t[]){
   1512 	    MIDI_PITCH_BEND | chan,
   1513 	    ev->c_PITCH_BEND.value & 0x7f,
   1514 	    (ev->c_PITCH_BEND.value >> 7) & 0x7f}, 3, 1);
   1515 }
   1516 
   1517 static int
   1518 midiseq_loadpatch(struct midi_dev *md,
   1519                   struct sysex_info *sysex, struct uio *uio)
   1520 {
   1521 	struct sequencer_softc *sc;
   1522 	u_char c, bf[128];
   1523 	int i, cc, error;
   1524 
   1525 	if (sysex->key != SEQ_SYSEX_PATCH) {
   1526 		DPRINTFN(-1,("midiseq_loadpatch: bad patch key 0x%04x\n",
   1527 			     sysex->key));
   1528 		return (EINVAL);
   1529 	}
   1530 	if (uio->uio_resid < sysex->len)
   1531 		/* adjust length, should be an error */
   1532 		sysex->len = uio->uio_resid;
   1533 
   1534 	DPRINTFN(2, ("midiseq_loadpatch: len=%d\n", sysex->len));
   1535 	if (sysex->len == 0)
   1536 		return EINVAL;
   1537 	error = uiomove(&c, 1, uio);
   1538 	if (error)
   1539 		return error;
   1540 	if (c != MIDI_SYSEX_START)		/* must start like this */
   1541 		return EINVAL;
   1542 	sc = md->seq;
   1543 	mutex_enter(&sc->lock);
   1544 	error = midiseq_out(md, &c, 1, 0);
   1545 	mutex_exit(&sc->lock);
   1546 	if (error)
   1547 		return error;
   1548 	--sysex->len;
   1549 	while (sysex->len > 0) {
   1550 		cc = sysex->len;
   1551 		if (cc > sizeof bf)
   1552 			cc = sizeof bf;
   1553 		error = uiomove(bf, cc, uio);
   1554 		if (error)
   1555 			break;
   1556 		for(i = 0; i < cc && !MIDI_IS_STATUS(bf[i]); i++)
   1557 			;
   1558 		/*
   1559 		 * XXX midi(4)'s buffer might not accommodate this, and the
   1560 		 * function will not block us (though in this case we have
   1561 		 * a process and could in principle block).
   1562 		 */
   1563 		mutex_enter(&sc->lock);
   1564 		error = midiseq_out(md, bf, i, 0);
   1565 		mutex_exit(&sc->lock);
   1566 		if (error)
   1567 			break;
   1568 		sysex->len -= i;
   1569 		if (i != cc)
   1570 			break;
   1571 	}
   1572 	/*
   1573 	 * Any leftover data in uio is rubbish;
   1574 	 * the SYSEX should be one write ending in SYSEX_END.
   1575 	 */
   1576 	uio->uio_resid = 0;
   1577 	c = MIDI_SYSEX_END;
   1578 	mutex_enter(&sc->lock);
   1579 	error = midiseq_out(md, &c, 1, 0);
   1580 	mutex_exit(&sc->lock);
   1581 	return error;
   1582 }
   1583 
   1584 #include "midi.h"
   1585 #if NMIDI == 0
   1586 static dev_type_open(midiopen);
   1587 static dev_type_close(midiclose);
   1588 
   1589 const struct cdevsw midi_cdevsw = {
   1590 	midiopen, midiclose, noread, nowrite, noioctl,
   1591 	nostop, notty, nopoll, nommap, nokqfilter, D_OTHER | D_MPSAFE
   1592 };
   1593 
   1594 /*
   1595  * If someone has a sequencer, but no midi devices there will
   1596  * be unresolved references, so we provide little stubs.
   1597  */
   1598 
   1599 int
   1600 midi_unit_count(void)
   1601 {
   1602 	return (0);
   1603 }
   1604 
   1605 static int
   1606 midiopen(dev_t dev, int flags, int ifmt, struct lwp *l)
   1607 {
   1608 	return (ENXIO);
   1609 }
   1610 
   1611 struct cfdriver midi_cd;
   1612 
   1613 void
   1614 midi_getinfo(dev_t dev, struct midi_info *mi)
   1615 {
   1616         mi->name = "Dummy MIDI device";
   1617 	mi->props = 0;
   1618 }
   1619 
   1620 static int
   1621 midiclose(dev_t dev, int flags, int ifmt, struct lwp *l)
   1622 {
   1623 	return (ENXIO);
   1624 }
   1625 
   1626 int
   1627 midi_writebytes(int unit, u_char *bf, int cc)
   1628 {
   1629 	return (ENXIO);
   1630 }
   1631 #endif /* NMIDI == 0 */
   1632