umidi.c revision 1.57 1 /* $NetBSD: umidi.c,v 1.57 2012/02/13 01:51:02 mrg Exp $ */
2 /*
3 * Copyright (c) 2001 The NetBSD Foundation, Inc.
4 * All rights reserved.
5 *
6 * This code is derived from software contributed to The NetBSD Foundation
7 * by Takuya SHIOZAKI (tshiozak (at) NetBSD.org) and (full-size transfers, extended
8 * hw_if) Chapman Flack (chap (at) NetBSD.org).
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 #include <sys/cdefs.h>
33 __KERNEL_RCSID(0, "$NetBSD: umidi.c,v 1.57 2012/02/13 01:51:02 mrg Exp $");
34
35 #include <sys/types.h>
36 #include <sys/param.h>
37 #include <sys/systm.h>
38 #include <sys/kernel.h>
39 #include <sys/kmem.h>
40 #include <sys/device.h>
41 #include <sys/ioctl.h>
42 #include <sys/conf.h>
43 #include <sys/file.h>
44 #include <sys/select.h>
45 #include <sys/proc.h>
46 #include <sys/vnode.h>
47 #include <sys/poll.h>
48 #include <sys/intr.h>
49
50 #include <dev/usb/usb.h>
51 #include <dev/usb/usbdi.h>
52 #include <dev/usb/usbdi_util.h>
53
54 #include <dev/usb/usbdevs.h>
55 #include <dev/usb/uaudioreg.h>
56 #include <dev/usb/umidireg.h>
57 #include <dev/usb/umidivar.h>
58 #include <dev/usb/umidi_quirks.h>
59
60 #include <dev/midi_if.h>
61
62 #ifdef UMIDI_DEBUG
63 #define DPRINTF(x) if (umididebug) printf x
64 #define DPRINTFN(n,x) if (umididebug >= (n)) printf x
65 #include <sys/time.h>
66 static struct timeval umidi_tv;
67 int umididebug = 0;
68 #else
69 #define DPRINTF(x)
70 #define DPRINTFN(n,x)
71 #endif
72
73 #define UMIDI_ENDPOINT_SIZE(sc) (sizeof(*(sc)->sc_out_ep) * \
74 (sc->sc_out_num_endpoints + \
75 sc->sc_in_num_endpoints))
76
77
78 static int umidi_open(void *, int,
79 void (*)(void *, int), void (*)(void *), void *);
80 static void umidi_close(void *);
81 static int umidi_channelmsg(void *, int, int, u_char *, int);
82 static int umidi_commonmsg(void *, int, u_char *, int);
83 static int umidi_sysex(void *, u_char *, int);
84 static int umidi_rtmsg(void *, int);
85 static void umidi_getinfo(void *, struct midi_info *);
86 static void umidi_get_locks(void *, kmutex_t **, kmutex_t **);
87
88 static usbd_status alloc_pipe(struct umidi_endpoint *);
89 static void free_pipe(struct umidi_endpoint *);
90
91 static usbd_status alloc_all_endpoints(struct umidi_softc *);
92 static void free_all_endpoints(struct umidi_softc *);
93
94 static usbd_status alloc_all_jacks(struct umidi_softc *);
95 static void free_all_jacks(struct umidi_softc *);
96 static usbd_status bind_jacks_to_mididev(struct umidi_softc *,
97 struct umidi_jack *,
98 struct umidi_jack *,
99 struct umidi_mididev *);
100 static void unbind_jacks_from_mididev(struct umidi_mididev *);
101 static void unbind_all_jacks(struct umidi_softc *);
102 static usbd_status assign_all_jacks_automatically(struct umidi_softc *);
103 static usbd_status open_out_jack(struct umidi_jack *, void *,
104 void (*)(void *));
105 static usbd_status open_in_jack(struct umidi_jack *, void *,
106 void (*)(void *, int));
107 static void close_out_jack(struct umidi_jack *);
108 static void close_in_jack(struct umidi_jack *);
109
110 static usbd_status attach_mididev(struct umidi_softc *, struct umidi_mididev *);
111 static usbd_status detach_mididev(struct umidi_mididev *, int);
112 static void deactivate_mididev(struct umidi_mididev *);
113 static usbd_status alloc_all_mididevs(struct umidi_softc *, int);
114 static void free_all_mididevs(struct umidi_softc *);
115 static usbd_status attach_all_mididevs(struct umidi_softc *);
116 static usbd_status detach_all_mididevs(struct umidi_softc *, int);
117 static void deactivate_all_mididevs(struct umidi_softc *);
118 static void describe_mididev(struct umidi_mididev *);
119
120 #ifdef UMIDI_DEBUG
121 static void dump_sc(struct umidi_softc *);
122 static void dump_ep(struct umidi_endpoint *);
123 static void dump_jack(struct umidi_jack *);
124 #endif
125
126 static usbd_status start_input_transfer(struct umidi_endpoint *);
127 static usbd_status start_output_transfer(struct umidi_endpoint *);
128 static int out_jack_output(struct umidi_jack *, u_char *, int, int);
129 static void in_intr(usbd_xfer_handle, usbd_private_handle, usbd_status);
130 static void out_intr(usbd_xfer_handle, usbd_private_handle, usbd_status);
131 static void out_solicit(void *); /* struct umidi_endpoint* for softintr */
132 static void out_solicit_locked(void *); /* pre-locked version */
133
134
135 const struct midi_hw_if umidi_hw_if = {
136 .open = umidi_open,
137 .close = umidi_close,
138 .output = umidi_rtmsg,
139 .getinfo = umidi_getinfo,
140 .get_locks = umidi_get_locks,
141 };
142
143 struct midi_hw_if_ext umidi_hw_if_ext = {
144 .channel = umidi_channelmsg,
145 .common = umidi_commonmsg,
146 .sysex = umidi_sysex,
147 };
148
149 struct midi_hw_if_ext umidi_hw_if_mm = {
150 .channel = umidi_channelmsg,
151 .common = umidi_commonmsg,
152 .sysex = umidi_sysex,
153 .compress = 1,
154 };
155
156 int umidi_match(device_t, cfdata_t, void *);
157 void umidi_attach(device_t, device_t, void *);
158 void umidi_childdet(device_t, device_t);
159 int umidi_detach(device_t, int);
160 int umidi_activate(device_t, enum devact);
161 extern struct cfdriver umidi_cd;
162 CFATTACH_DECL2_NEW(umidi, sizeof(struct umidi_softc), umidi_match,
163 umidi_attach, umidi_detach, umidi_activate, NULL, umidi_childdet);
164
165 int
166 umidi_match(device_t parent, cfdata_t match, void *aux)
167 {
168 struct usbif_attach_arg *uaa = aux;
169
170 DPRINTFN(1,("umidi_match\n"));
171
172 if (umidi_search_quirk(uaa->vendor, uaa->product, uaa->ifaceno))
173 return UMATCH_IFACECLASS_IFACESUBCLASS;
174
175 if (uaa->class == UICLASS_AUDIO &&
176 uaa->subclass == UISUBCLASS_MIDISTREAM)
177 return UMATCH_IFACECLASS_IFACESUBCLASS;
178
179 return UMATCH_NONE;
180 }
181
182 void
183 umidi_attach(device_t parent, device_t self, void *aux)
184 {
185 usbd_status err;
186 struct umidi_softc *sc = device_private(self);
187 struct usbif_attach_arg *uaa = aux;
188 char *devinfop;
189
190 DPRINTFN(1,("umidi_attach\n"));
191
192 sc->sc_dev = self;
193
194 aprint_naive("\n");
195 aprint_normal("\n");
196
197 devinfop = usbd_devinfo_alloc(uaa->device, 0);
198 aprint_normal_dev(self, "%s\n", devinfop);
199 usbd_devinfo_free(devinfop);
200
201 sc->sc_iface = uaa->iface;
202 sc->sc_udev = uaa->device;
203
204 sc->sc_quirk =
205 umidi_search_quirk(uaa->vendor, uaa->product, uaa->ifaceno);
206 aprint_normal_dev(self, "");
207 umidi_print_quirk(sc->sc_quirk);
208
209 mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_USB);
210 cv_init(&sc->sc_cv, "umidopcl");
211
212 KERNEL_LOCK(1, curlwp);
213 err = alloc_all_endpoints(sc);
214 if (err != USBD_NORMAL_COMPLETION) {
215 aprint_error_dev(self,
216 "alloc_all_endpoints failed. (err=%d)\n", err);
217 goto error;
218 }
219 err = alloc_all_jacks(sc);
220 if (err != USBD_NORMAL_COMPLETION) {
221 free_all_endpoints(sc);
222 aprint_error_dev(self, "alloc_all_jacks failed. (err=%d)\n",
223 err);
224 goto error;
225 }
226 aprint_normal_dev(self, "out=%d, in=%d\n",
227 sc->sc_out_num_jacks, sc->sc_in_num_jacks);
228
229 err = assign_all_jacks_automatically(sc);
230 if (err != USBD_NORMAL_COMPLETION) {
231 unbind_all_jacks(sc);
232 free_all_jacks(sc);
233 free_all_endpoints(sc);
234 aprint_error_dev(self,
235 "assign_all_jacks_automatically failed. (err=%d)\n", err);
236 goto error;
237 }
238 err = attach_all_mididevs(sc);
239 if (err != USBD_NORMAL_COMPLETION) {
240 free_all_jacks(sc);
241 free_all_endpoints(sc);
242 aprint_error_dev(self,
243 "attach_all_mididevs failed. (err=%d)\n", err);
244 }
245 KERNEL_UNLOCK_ONE(curlwp);
246
247 #ifdef UMIDI_DEBUG
248 dump_sc(sc);
249 #endif
250
251 usbd_add_drv_event(USB_EVENT_DRIVER_ATTACH,
252 sc->sc_udev, sc->sc_dev);
253
254 return;
255 error:
256 aprint_error_dev(self, "disabled.\n");
257 sc->sc_dying = 1;
258 KERNEL_UNLOCK_ONE(curlwp);
259 return;
260 }
261
262 void
263 umidi_childdet(device_t self, device_t child)
264 {
265 int i;
266 struct umidi_softc *sc = device_private(self);
267
268 KASSERT(sc->sc_mididevs != NULL);
269
270 for (i = 0; i < sc->sc_num_mididevs; i++) {
271 if (sc->sc_mididevs[i].mdev == child)
272 break;
273 }
274 KASSERT(i < sc->sc_num_mididevs);
275 sc->sc_mididevs[i].mdev = NULL;
276 }
277
278 int
279 umidi_activate(device_t self, enum devact act)
280 {
281 struct umidi_softc *sc = device_private(self);
282
283 switch (act) {
284 case DVACT_DEACTIVATE:
285 DPRINTFN(1,("umidi_activate (deactivate)\n"));
286 sc->sc_dying = 1;
287 deactivate_all_mididevs(sc);
288 return 0;
289 default:
290 DPRINTFN(1,("umidi_activate (%d)\n", act));
291 return EOPNOTSUPP;
292 }
293 }
294
295 int
296 umidi_detach(device_t self, int flags)
297 {
298 struct umidi_softc *sc = device_private(self);
299
300 DPRINTFN(1,("umidi_detach\n"));
301
302 sc->sc_dying = 1;
303 KERNEL_LOCK(1, curlwp);
304 detach_all_mididevs(sc, flags);
305 free_all_mididevs(sc);
306 free_all_jacks(sc);
307 free_all_endpoints(sc);
308
309 usbd_add_drv_event(USB_EVENT_DRIVER_DETACH, sc->sc_udev,
310 sc->sc_dev);
311 KERNEL_UNLOCK_ONE(curlwp);
312
313 mutex_destroy(&sc->sc_lock);
314 cv_destroy(&sc->sc_cv);
315
316 return 0;
317 }
318
319
320 /*
321 * midi_if stuffs
322 */
323 int
324 umidi_open(void *addr,
325 int flags,
326 void (*iintr)(void *, int),
327 void (*ointr)(void *),
328 void *arg)
329 {
330 struct umidi_mididev *mididev = addr;
331 struct umidi_softc *sc = mididev->sc;
332 usbd_status err;
333
334 DPRINTF(("umidi_open: sc=%p\n", sc));
335
336 if (!sc)
337 return ENXIO;
338 if (mididev->opened)
339 return EBUSY;
340 if (sc->sc_dying)
341 return EIO;
342
343 mididev->opened = 1;
344 mididev->flags = flags;
345 if ((mididev->flags & FWRITE) && mididev->out_jack) {
346 err = open_out_jack(mididev->out_jack, arg, ointr);
347 if ( err != USBD_NORMAL_COMPLETION )
348 goto bad;
349 }
350 if ((mididev->flags & FREAD) && mididev->in_jack) {
351 err = open_in_jack(mididev->in_jack, arg, iintr);
352 if ( err != USBD_NORMAL_COMPLETION
353 && err != USBD_IN_PROGRESS )
354 goto bad;
355 }
356
357 return 0;
358 bad:
359 mididev->opened = 0;
360 DPRINTF(("umidi_open: usbd_status %d\n", err));
361 return USBD_IN_USE == err ? EBUSY : EIO;
362 }
363
364 void
365 umidi_close(void *addr)
366 {
367 struct umidi_mididev *mididev = addr;
368
369 /* XXX SMP */
370 KERNEL_LOCK(1, curlwp);
371 mutex_spin_exit(&mididev->sc->sc_lock);
372
373 if ((mididev->flags & FWRITE) && mididev->out_jack)
374 close_out_jack(mididev->out_jack);
375 if ((mididev->flags & FREAD) && mididev->in_jack)
376 close_in_jack(mididev->in_jack);
377 mididev->opened = 0;
378
379 /* XXX SMP */
380 mutex_spin_enter(&mididev->sc->sc_lock);
381 KERNEL_UNLOCK_ONE(curlwp);
382 }
383
384 int
385 umidi_channelmsg(void *addr, int status, int channel, u_char *msg,
386 int len)
387 {
388 struct umidi_mididev *mididev = addr;
389
390 if (!mididev->out_jack || !mididev->opened)
391 return EIO;
392
393 return out_jack_output(mididev->out_jack, msg, len, (status>>4)&0xf);
394 }
395
396 int
397 umidi_commonmsg(void *addr, int status, u_char *msg, int len)
398 {
399 struct umidi_mididev *mididev = addr;
400 int cin;
401
402 if (!mididev->out_jack || !mididev->opened)
403 return EIO;
404
405 switch ( len ) {
406 case 1: cin = 5; break;
407 case 2: cin = 2; break;
408 case 3: cin = 3; break;
409 default: return EIO; /* or gcc warns of cin uninitialized */
410 }
411
412 return out_jack_output(mididev->out_jack, msg, len, cin);
413 }
414
415 int
416 umidi_sysex(void *addr, u_char *msg, int len)
417 {
418 struct umidi_mididev *mididev = addr;
419 int cin;
420
421 if (!mididev->out_jack || !mididev->opened)
422 return EIO;
423
424 switch ( len ) {
425 case 1: cin = 5; break;
426 case 2: cin = 6; break;
427 case 3: cin = (msg[2] == 0xf7) ? 7 : 4; break;
428 default: return EIO; /* or gcc warns of cin uninitialized */
429 }
430
431 return out_jack_output(mididev->out_jack, msg, len, cin);
432 }
433
434 int
435 umidi_rtmsg(void *addr, int d)
436 {
437 struct umidi_mididev *mididev = addr;
438 u_char msg = d;
439
440 if (!mididev->out_jack || !mididev->opened)
441 return EIO;
442
443 return out_jack_output(mididev->out_jack, &msg, 1, 0xf);
444 }
445
446 void
447 umidi_getinfo(void *addr, struct midi_info *mi)
448 {
449 struct umidi_mididev *mididev = addr;
450 struct umidi_softc *sc = mididev->sc;
451 int mm = UMQ_ISTYPE(sc, UMQ_TYPE_MIDIMAN_GARBLE);
452
453 mi->name = mididev->label;
454 mi->props = MIDI_PROP_OUT_INTR;
455 if (mididev->in_jack)
456 mi->props |= MIDI_PROP_CAN_INPUT;
457 midi_register_hw_if_ext(mm? &umidi_hw_if_mm : &umidi_hw_if_ext);
458 }
459
460 static void
461 umidi_get_locks(void *addr, kmutex_t **thread, kmutex_t **intr)
462 {
463 struct umidi_mididev *mididev = addr;
464 struct umidi_softc *sc = mididev->sc;
465
466 *intr = NULL;
467 *thread = &sc->sc_lock;
468 }
469
470 /*
471 * each endpoint stuffs
472 */
473
474 /* alloc/free pipe */
475 static usbd_status
476 alloc_pipe(struct umidi_endpoint *ep)
477 {
478 struct umidi_softc *sc = ep->sc;
479 usbd_status err;
480 usb_endpoint_descriptor_t *epd;
481
482 epd = usbd_get_endpoint_descriptor(sc->sc_iface, ep->addr);
483 /*
484 * For output, an improvement would be to have a buffer bigger than
485 * wMaxPacketSize by num_jacks-1 additional packet slots; that would
486 * allow out_solicit to fill the buffer to the full packet size in
487 * all cases. But to use usbd_alloc_buffer to get a slightly larger
488 * buffer would not be a good way to do that, because if the addition
489 * would make the buffer exceed USB_MEM_SMALL then a substantially
490 * larger block may be wastefully allocated. Some flavor of double
491 * buffering could serve the same purpose, but would increase the
492 * code complexity, so for now I will live with the current slight
493 * penalty of reducing max transfer size by (num_open-num_scheduled)
494 * packet slots.
495 */
496 ep->buffer_size = UGETW(epd->wMaxPacketSize);
497 ep->buffer_size -= ep->buffer_size % UMIDI_PACKET_SIZE;
498
499 DPRINTF(("%s: alloc_pipe %p, buffer size %u\n",
500 device_xname(sc->sc_dev), ep, ep->buffer_size));
501 ep->num_scheduled = 0;
502 ep->this_schedule = 0;
503 ep->next_schedule = 0;
504 ep->soliciting = 0;
505 ep->armed = 0;
506 ep->xfer = usbd_alloc_xfer(sc->sc_udev);
507 if (ep->xfer == NULL) {
508 err = USBD_NOMEM;
509 goto quit;
510 }
511 ep->buffer = usbd_alloc_buffer(ep->xfer, ep->buffer_size);
512 if (ep->buffer == NULL) {
513 usbd_free_xfer(ep->xfer);
514 err = USBD_NOMEM;
515 goto quit;
516 }
517 ep->next_slot = ep->buffer;
518 err = usbd_open_pipe(sc->sc_iface, ep->addr, 0, &ep->pipe);
519 if (err)
520 usbd_free_xfer(ep->xfer);
521 ep->solicit_cookie = softint_establish(SOFTINT_CLOCK, out_solicit, ep);
522 quit:
523 return err;
524 }
525
526 static void
527 free_pipe(struct umidi_endpoint *ep)
528 {
529 DPRINTF(("%s: free_pipe %p\n", device_xname(ep->sc->sc_dev), ep));
530 usbd_abort_pipe(ep->pipe);
531 usbd_close_pipe(ep->pipe);
532 usbd_free_xfer(ep->xfer);
533 softint_disestablish(ep->solicit_cookie);
534 }
535
536
537 /* alloc/free the array of endpoint structures */
538
539 static usbd_status alloc_all_endpoints_fixed_ep(struct umidi_softc *);
540 static usbd_status alloc_all_endpoints_yamaha(struct umidi_softc *);
541 static usbd_status alloc_all_endpoints_genuine(struct umidi_softc *);
542
543 static usbd_status
544 alloc_all_endpoints(struct umidi_softc *sc)
545 {
546 usbd_status err;
547 struct umidi_endpoint *ep;
548 int i;
549
550 if (UMQ_ISTYPE(sc, UMQ_TYPE_FIXED_EP)) {
551 err = alloc_all_endpoints_fixed_ep(sc);
552 } else if (UMQ_ISTYPE(sc, UMQ_TYPE_YAMAHA)) {
553 err = alloc_all_endpoints_yamaha(sc);
554 } else {
555 err = alloc_all_endpoints_genuine(sc);
556 }
557 if (err != USBD_NORMAL_COMPLETION)
558 return err;
559
560 ep = sc->sc_endpoints;
561 for (i = sc->sc_out_num_endpoints+sc->sc_in_num_endpoints; i > 0; i--) {
562 err = alloc_pipe(ep++);
563 if (err != USBD_NORMAL_COMPLETION) {
564 for (; ep != sc->sc_endpoints; ep--)
565 free_pipe(ep-1);
566 kmem_free(sc->sc_endpoints, sc->sc_endpoints_len);
567 sc->sc_endpoints = sc->sc_out_ep = sc->sc_in_ep = NULL;
568 break;
569 }
570 }
571 return err;
572 }
573
574 static void
575 free_all_endpoints(struct umidi_softc *sc)
576 {
577 int i;
578
579 for (i=0; i<sc->sc_in_num_endpoints+sc->sc_out_num_endpoints; i++)
580 free_pipe(&sc->sc_endpoints[i]);
581 if (sc->sc_endpoints != NULL)
582 kmem_free(sc->sc_endpoints, sc->sc_endpoints_len);
583 sc->sc_endpoints = sc->sc_out_ep = sc->sc_in_ep = NULL;
584 }
585
586 static usbd_status
587 alloc_all_endpoints_fixed_ep(struct umidi_softc *sc)
588 {
589 usbd_status err;
590 const struct umq_fixed_ep_desc *fp;
591 struct umidi_endpoint *ep;
592 usb_endpoint_descriptor_t *epd;
593 int i;
594
595 fp = umidi_get_quirk_data_from_type(sc->sc_quirk,
596 UMQ_TYPE_FIXED_EP);
597 sc->sc_out_num_jacks = 0;
598 sc->sc_in_num_jacks = 0;
599 sc->sc_out_num_endpoints = fp->num_out_ep;
600 sc->sc_in_num_endpoints = fp->num_in_ep;
601 sc->sc_endpoints_len = UMIDI_ENDPOINT_SIZE(sc);
602 sc->sc_endpoints = kmem_zalloc(sc->sc_endpoints_len, KM_SLEEP);
603 if (!sc->sc_endpoints)
604 return USBD_NOMEM;
605
606 sc->sc_out_ep = sc->sc_out_num_endpoints ? sc->sc_endpoints : NULL;
607 sc->sc_in_ep =
608 sc->sc_in_num_endpoints ?
609 sc->sc_endpoints+sc->sc_out_num_endpoints : NULL;
610
611 ep = &sc->sc_out_ep[0];
612 for (i = 0; i < sc->sc_out_num_endpoints; i++) {
613 epd = usbd_interface2endpoint_descriptor(
614 sc->sc_iface,
615 fp->out_ep[i].ep);
616 if (!epd) {
617 aprint_error_dev(sc->sc_dev,
618 "cannot get endpoint descriptor(out:%d)\n",
619 fp->out_ep[i].ep);
620 err = USBD_INVAL;
621 goto error;
622 }
623 if (UE_GET_XFERTYPE(epd->bmAttributes)!=UE_BULK ||
624 UE_GET_DIR(epd->bEndpointAddress)!=UE_DIR_OUT) {
625 aprint_error_dev(sc->sc_dev, "illegal endpoint(out:%d)\n",
626 fp->out_ep[i].ep);
627 err = USBD_INVAL;
628 goto error;
629 }
630 ep->sc = sc;
631 ep->addr = epd->bEndpointAddress;
632 ep->num_jacks = fp->out_ep[i].num_jacks;
633 sc->sc_out_num_jacks += fp->out_ep[i].num_jacks;
634 ep->num_open = 0;
635 ep++;
636 }
637 ep = &sc->sc_in_ep[0];
638 for (i = 0; i < sc->sc_in_num_endpoints; i++) {
639 epd = usbd_interface2endpoint_descriptor(
640 sc->sc_iface,
641 fp->in_ep[i].ep);
642 if (!epd) {
643 aprint_error_dev(sc->sc_dev,
644 "cannot get endpoint descriptor(in:%d)\n",
645 fp->in_ep[i].ep);
646 err = USBD_INVAL;
647 goto error;
648 }
649 /*
650 * MIDISPORT_2X4 inputs on an interrupt rather than a bulk
651 * endpoint. The existing input logic in this driver seems
652 * to work successfully if we just stop treating an interrupt
653 * endpoint as illegal (or the in_progress status we get on
654 * the initial transfer). It does not seem necessary to
655 * actually use the interrupt flavor of alloc_pipe or make
656 * other serious rearrangements of logic. I like that.
657 */
658 switch ( UE_GET_XFERTYPE(epd->bmAttributes) ) {
659 case UE_BULK:
660 case UE_INTERRUPT:
661 if ( UE_DIR_IN == UE_GET_DIR(epd->bEndpointAddress) )
662 break;
663 /*FALLTHROUGH*/
664 default:
665 aprint_error_dev(sc->sc_dev,
666 "illegal endpoint(in:%d)\n", fp->in_ep[i].ep);
667 err = USBD_INVAL;
668 goto error;
669 }
670
671 ep->sc = sc;
672 ep->addr = epd->bEndpointAddress;
673 ep->num_jacks = fp->in_ep[i].num_jacks;
674 sc->sc_in_num_jacks += fp->in_ep[i].num_jacks;
675 ep->num_open = 0;
676 ep++;
677 }
678
679 return USBD_NORMAL_COMPLETION;
680 error:
681 kmem_free(sc->sc_endpoints, UMIDI_ENDPOINT_SIZE(sc));
682 sc->sc_endpoints = NULL;
683 return err;
684 }
685
686 static usbd_status
687 alloc_all_endpoints_yamaha(struct umidi_softc *sc)
688 {
689 /* This driver currently supports max 1in/1out bulk endpoints */
690 usb_descriptor_t *desc;
691 umidi_cs_descriptor_t *udesc;
692 usb_endpoint_descriptor_t *epd;
693 int out_addr, in_addr, i;
694 int dir;
695 size_t remain, descsize;
696
697 sc->sc_out_num_jacks = sc->sc_in_num_jacks = 0;
698 out_addr = in_addr = 0;
699
700 /* detect endpoints */
701 desc = TO_D(usbd_get_interface_descriptor(sc->sc_iface));
702 for (i=(int)TO_IFD(desc)->bNumEndpoints-1; i>=0; i--) {
703 epd = usbd_interface2endpoint_descriptor(sc->sc_iface, i);
704 KASSERT(epd != NULL);
705 if (UE_GET_XFERTYPE(epd->bmAttributes) == UE_BULK) {
706 dir = UE_GET_DIR(epd->bEndpointAddress);
707 if (dir==UE_DIR_OUT && !out_addr)
708 out_addr = epd->bEndpointAddress;
709 else if (dir==UE_DIR_IN && !in_addr)
710 in_addr = epd->bEndpointAddress;
711 }
712 }
713 udesc = (umidi_cs_descriptor_t *)NEXT_D(desc);
714
715 /* count jacks */
716 if (!(udesc->bDescriptorType==UDESC_CS_INTERFACE &&
717 udesc->bDescriptorSubtype==UMIDI_MS_HEADER))
718 return USBD_INVAL;
719 remain = (size_t)UGETW(TO_CSIFD(udesc)->wTotalLength) -
720 (size_t)udesc->bLength;
721 udesc = (umidi_cs_descriptor_t *)NEXT_D(udesc);
722
723 while (remain >= sizeof(usb_descriptor_t)) {
724 descsize = udesc->bLength;
725 if (descsize>remain || descsize==0)
726 break;
727 if (udesc->bDescriptorType == UDESC_CS_INTERFACE &&
728 remain >= UMIDI_JACK_DESCRIPTOR_SIZE) {
729 if (udesc->bDescriptorSubtype == UMIDI_OUT_JACK)
730 sc->sc_out_num_jacks++;
731 else if (udesc->bDescriptorSubtype == UMIDI_IN_JACK)
732 sc->sc_in_num_jacks++;
733 }
734 udesc = (umidi_cs_descriptor_t *)NEXT_D(udesc);
735 remain -= descsize;
736 }
737
738 /* validate some parameters */
739 if (sc->sc_out_num_jacks>UMIDI_MAX_EPJACKS)
740 sc->sc_out_num_jacks = UMIDI_MAX_EPJACKS;
741 if (sc->sc_in_num_jacks>UMIDI_MAX_EPJACKS)
742 sc->sc_in_num_jacks = UMIDI_MAX_EPJACKS;
743 if (sc->sc_out_num_jacks && out_addr) {
744 sc->sc_out_num_endpoints = 1;
745 } else {
746 sc->sc_out_num_endpoints = 0;
747 sc->sc_out_num_jacks = 0;
748 }
749 if (sc->sc_in_num_jacks && in_addr) {
750 sc->sc_in_num_endpoints = 1;
751 } else {
752 sc->sc_in_num_endpoints = 0;
753 sc->sc_in_num_jacks = 0;
754 }
755 sc->sc_endpoints_len = UMIDI_ENDPOINT_SIZE(sc);
756 sc->sc_endpoints = kmem_zalloc(sc->sc_endpoints_len, KM_SLEEP);
757 if (!sc->sc_endpoints)
758 return USBD_NOMEM;
759 if (sc->sc_out_num_endpoints) {
760 sc->sc_out_ep = sc->sc_endpoints;
761 sc->sc_out_ep->sc = sc;
762 sc->sc_out_ep->addr = out_addr;
763 sc->sc_out_ep->num_jacks = sc->sc_out_num_jacks;
764 sc->sc_out_ep->num_open = 0;
765 } else
766 sc->sc_out_ep = NULL;
767
768 if (sc->sc_in_num_endpoints) {
769 sc->sc_in_ep = sc->sc_endpoints+sc->sc_out_num_endpoints;
770 sc->sc_in_ep->sc = sc;
771 sc->sc_in_ep->addr = in_addr;
772 sc->sc_in_ep->num_jacks = sc->sc_in_num_jacks;
773 sc->sc_in_ep->num_open = 0;
774 } else
775 sc->sc_in_ep = NULL;
776
777 return USBD_NORMAL_COMPLETION;
778 }
779
780 static usbd_status
781 alloc_all_endpoints_genuine(struct umidi_softc *sc)
782 {
783 usb_interface_descriptor_t *interface_desc;
784 usb_config_descriptor_t *config_desc;
785 usb_descriptor_t *desc;
786 int num_ep;
787 size_t remain, descsize;
788 struct umidi_endpoint *p, *q, *lowest, *endep, tmpep;
789 int epaddr;
790
791 interface_desc = usbd_get_interface_descriptor(sc->sc_iface);
792 num_ep = interface_desc->bNumEndpoints;
793 sc->sc_endpoints_len = sizeof(struct umidi_endpoint) * num_ep;
794 sc->sc_endpoints = p = kmem_zalloc(sc->sc_endpoints_len, KM_SLEEP);
795 if (!p)
796 return USBD_NOMEM;
797
798 sc->sc_out_num_jacks = sc->sc_in_num_jacks = 0;
799 sc->sc_out_num_endpoints = sc->sc_in_num_endpoints = 0;
800 epaddr = -1;
801
802 /* get the list of endpoints for midi stream */
803 config_desc = usbd_get_config_descriptor(sc->sc_udev);
804 desc = (usb_descriptor_t *) config_desc;
805 remain = (size_t)UGETW(config_desc->wTotalLength);
806 while (remain>=sizeof(usb_descriptor_t)) {
807 descsize = desc->bLength;
808 if (descsize>remain || descsize==0)
809 break;
810 if (desc->bDescriptorType==UDESC_ENDPOINT &&
811 remain>=USB_ENDPOINT_DESCRIPTOR_SIZE &&
812 UE_GET_XFERTYPE(TO_EPD(desc)->bmAttributes) == UE_BULK) {
813 epaddr = TO_EPD(desc)->bEndpointAddress;
814 } else if (desc->bDescriptorType==UDESC_CS_ENDPOINT &&
815 remain>=UMIDI_CS_ENDPOINT_DESCRIPTOR_SIZE &&
816 epaddr!=-1) {
817 if (num_ep>0) {
818 num_ep--;
819 p->sc = sc;
820 p->addr = epaddr;
821 p->num_jacks = TO_CSEPD(desc)->bNumEmbMIDIJack;
822 if (UE_GET_DIR(epaddr)==UE_DIR_OUT) {
823 sc->sc_out_num_endpoints++;
824 sc->sc_out_num_jacks += p->num_jacks;
825 } else {
826 sc->sc_in_num_endpoints++;
827 sc->sc_in_num_jacks += p->num_jacks;
828 }
829 p++;
830 }
831 } else
832 epaddr = -1;
833 desc = NEXT_D(desc);
834 remain-=descsize;
835 }
836
837 /* sort endpoints */
838 num_ep = sc->sc_out_num_endpoints + sc->sc_in_num_endpoints;
839 p = sc->sc_endpoints;
840 endep = p + num_ep;
841 while (p<endep) {
842 lowest = p;
843 for (q=p+1; q<endep; q++) {
844 if ((UE_GET_DIR(lowest->addr)==UE_DIR_IN &&
845 UE_GET_DIR(q->addr)==UE_DIR_OUT) ||
846 ((UE_GET_DIR(lowest->addr)==
847 UE_GET_DIR(q->addr)) &&
848 (UE_GET_ADDR(lowest->addr)>
849 UE_GET_ADDR(q->addr))))
850 lowest = q;
851 }
852 if (lowest != p) {
853 memcpy((void *)&tmpep, (void *)p, sizeof(tmpep));
854 memcpy((void *)p, (void *)lowest, sizeof(tmpep));
855 memcpy((void *)lowest, (void *)&tmpep, sizeof(tmpep));
856 }
857 p->num_open = 0;
858 p++;
859 }
860
861 sc->sc_out_ep = sc->sc_out_num_endpoints ? sc->sc_endpoints : NULL;
862 sc->sc_in_ep =
863 sc->sc_in_num_endpoints ?
864 sc->sc_endpoints+sc->sc_out_num_endpoints : NULL;
865
866 return USBD_NORMAL_COMPLETION;
867 }
868
869
870 /*
871 * jack stuffs
872 */
873
874 static usbd_status
875 alloc_all_jacks(struct umidi_softc *sc)
876 {
877 int i, j;
878 struct umidi_endpoint *ep;
879 struct umidi_jack *jack;
880 const unsigned char *cn_spec;
881
882 if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_SEQ_PER_EP))
883 sc->cblnums_global = 0;
884 else if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_SEQ_GLOBAL))
885 sc->cblnums_global = 1;
886 else {
887 /*
888 * I don't think this default is correct, but it preserves
889 * the prior behavior of the code. That's why I defined two
890 * complementary quirks. Any device for which the default
891 * behavior is wrong can be made to work by giving it an
892 * explicit quirk, and if a pattern ever develops (as I suspect
893 * it will) that a lot of otherwise standard USB MIDI devices
894 * need the CN_SEQ_PER_EP "quirk," then this default can be
895 * changed to 0, and the only devices that will break are those
896 * listing neither quirk, and they'll easily be fixed by giving
897 * them the CN_SEQ_GLOBAL quirk.
898 */
899 sc->cblnums_global = 1;
900 }
901
902 if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_FIXED))
903 cn_spec = umidi_get_quirk_data_from_type(sc->sc_quirk,
904 UMQ_TYPE_CN_FIXED);
905 else
906 cn_spec = NULL;
907
908 /* allocate/initialize structures */
909 sc->sc_jacks = kmem_zalloc(sizeof(*sc->sc_out_jacks)*(sc->sc_in_num_jacks+
910 sc->sc_out_num_jacks), KM_SLEEP);
911 if (!sc->sc_jacks)
912 return USBD_NOMEM;
913 sc->sc_out_jacks =
914 sc->sc_out_num_jacks ? sc->sc_jacks : NULL;
915 sc->sc_in_jacks =
916 sc->sc_in_num_jacks ? sc->sc_jacks+sc->sc_out_num_jacks : NULL;
917
918 jack = &sc->sc_out_jacks[0];
919 for (i = 0; i < sc->sc_out_num_jacks; i++) {
920 jack->opened = 0;
921 jack->binded = 0;
922 jack->arg = NULL;
923 jack->u.out.intr = NULL;
924 jack->midiman_ppkt = NULL;
925 if (sc->cblnums_global)
926 jack->cable_number = i;
927 jack++;
928 }
929 jack = &sc->sc_in_jacks[0];
930 for (i = 0; i < sc->sc_in_num_jacks; i++) {
931 jack->opened = 0;
932 jack->binded = 0;
933 jack->arg = NULL;
934 jack->u.in.intr = NULL;
935 if (sc->cblnums_global)
936 jack->cable_number = i;
937 jack++;
938 }
939
940 /* assign each jacks to each endpoints */
941 jack = &sc->sc_out_jacks[0];
942 ep = &sc->sc_out_ep[0];
943 for (i = 0; i < sc->sc_out_num_endpoints; i++) {
944 for (j = 0; j < ep->num_jacks; j++) {
945 jack->endpoint = ep;
946 if (cn_spec != NULL)
947 jack->cable_number = *cn_spec++;
948 else if (!sc->cblnums_global)
949 jack->cable_number = j;
950 ep->jacks[jack->cable_number] = jack;
951 jack++;
952 }
953 ep++;
954 }
955 jack = &sc->sc_in_jacks[0];
956 ep = &sc->sc_in_ep[0];
957 for (i = 0; i < sc->sc_in_num_endpoints; i++) {
958 for (j = 0; j < ep->num_jacks; j++) {
959 jack->endpoint = ep;
960 if (cn_spec != NULL)
961 jack->cable_number = *cn_spec++;
962 else if (!sc->cblnums_global)
963 jack->cable_number = j;
964 ep->jacks[jack->cable_number] = jack;
965 jack++;
966 }
967 ep++;
968 }
969
970 return USBD_NORMAL_COMPLETION;
971 }
972
973 static void
974 free_all_jacks(struct umidi_softc *sc)
975 {
976 struct umidi_jack *jacks;
977
978 mutex_enter(&sc->sc_lock);
979 if (sc->sc_out_jacks)
980 jacks = sc->sc_out_jacks;
981 else
982 jacks = sc->sc_in_jacks;
983 sc->sc_jacks = sc->sc_in_jacks = sc->sc_out_jacks = NULL;
984 mutex_exit(&sc->sc_lock);
985
986 if (jacks)
987 kmem_free(jacks, sizeof(*sc->sc_out_jacks)*(sc->sc_in_num_jacks+sc->sc_out_num_jacks));
988 }
989
990 static usbd_status
991 bind_jacks_to_mididev(struct umidi_softc *sc,
992 struct umidi_jack *out_jack,
993 struct umidi_jack *in_jack,
994 struct umidi_mididev *mididev)
995 {
996 if ((out_jack && out_jack->binded) || (in_jack && in_jack->binded))
997 return USBD_IN_USE;
998 if (mididev->out_jack || mididev->in_jack)
999 return USBD_IN_USE;
1000
1001 if (out_jack)
1002 out_jack->binded = 1;
1003 if (in_jack)
1004 in_jack->binded = 1;
1005 mididev->in_jack = in_jack;
1006 mididev->out_jack = out_jack;
1007
1008 return USBD_NORMAL_COMPLETION;
1009 }
1010
1011 static void
1012 unbind_jacks_from_mididev(struct umidi_mididev *mididev)
1013 {
1014
1015 /* XXX SMP */
1016 KERNEL_LOCK(1, curlwp);
1017 mutex_spin_exit(&mididev->sc->sc_lock);
1018
1019 if ((mididev->flags & FWRITE) && mididev->out_jack)
1020 close_out_jack(mididev->out_jack);
1021 if ((mididev->flags & FREAD) && mididev->in_jack)
1022 close_in_jack(mididev->in_jack);
1023
1024 if (mididev->out_jack)
1025 mididev->out_jack->binded = 0;
1026 if (mididev->in_jack)
1027 mididev->in_jack->binded = 0;
1028 mididev->out_jack = mididev->in_jack = NULL;
1029
1030 /* XXX SMP */
1031 mutex_spin_enter(&mididev->sc->sc_lock);
1032 KERNEL_UNLOCK_ONE(curlwp);
1033 }
1034
1035 static void
1036 unbind_all_jacks(struct umidi_softc *sc)
1037 {
1038 int i;
1039
1040 if (sc->sc_mididevs)
1041 for (i = 0; i < sc->sc_num_mididevs; i++)
1042 unbind_jacks_from_mididev(&sc->sc_mididevs[i]);
1043 }
1044
1045 static usbd_status
1046 assign_all_jacks_automatically(struct umidi_softc *sc)
1047 {
1048 usbd_status err;
1049 int i;
1050 struct umidi_jack *out, *in;
1051 const signed char *asg_spec;
1052
1053 err =
1054 alloc_all_mididevs(sc,
1055 max(sc->sc_out_num_jacks, sc->sc_in_num_jacks));
1056 if (err!=USBD_NORMAL_COMPLETION)
1057 return err;
1058
1059 if ( UMQ_ISTYPE(sc, UMQ_TYPE_MD_FIXED))
1060 asg_spec = umidi_get_quirk_data_from_type(sc->sc_quirk,
1061 UMQ_TYPE_MD_FIXED);
1062 else
1063 asg_spec = NULL;
1064
1065 for (i = 0; i < sc->sc_num_mididevs; i++) {
1066 if (asg_spec != NULL) {
1067 if (*asg_spec == -1)
1068 out = NULL;
1069 else
1070 out = &sc->sc_out_jacks[*asg_spec];
1071 ++ asg_spec;
1072 if (*asg_spec == -1)
1073 in = NULL;
1074 else
1075 in = &sc->sc_in_jacks[*asg_spec];
1076 ++ asg_spec;
1077 } else {
1078 out = (i<sc->sc_out_num_jacks) ? &sc->sc_out_jacks[i]
1079 : NULL;
1080 in = (i<sc->sc_in_num_jacks) ? &sc->sc_in_jacks[i]
1081 : NULL;
1082 }
1083 err = bind_jacks_to_mididev(sc, out, in, &sc->sc_mididevs[i]);
1084 if (err!=USBD_NORMAL_COMPLETION) {
1085 free_all_mididevs(sc);
1086 return err;
1087 }
1088 }
1089
1090 return USBD_NORMAL_COMPLETION;
1091 }
1092
1093 static usbd_status
1094 open_out_jack(struct umidi_jack *jack, void *arg, void (*intr)(void *))
1095 {
1096 struct umidi_endpoint *ep = jack->endpoint;
1097 struct umidi_softc *sc = ep->sc;
1098 umidi_packet_bufp end;
1099 int err;
1100
1101 KASSERT(mutex_owned(&sc->sc_lock));
1102
1103 if (jack->opened)
1104 return USBD_IN_USE;
1105
1106 jack->arg = arg;
1107 jack->u.out.intr = intr;
1108 jack->midiman_ppkt = NULL;
1109 end = ep->buffer + ep->buffer_size / sizeof *ep->buffer;
1110 jack->opened = 1;
1111 ep->num_open++;
1112 /*
1113 * out_solicit maintains an invariant that there will always be
1114 * (num_open - num_scheduled) slots free in the buffer. as we have
1115 * just incremented num_open, the buffer may be too full to satisfy
1116 * the invariant until a transfer completes, for which we must wait.
1117 */
1118 while (end - ep->next_slot < ep->num_open - ep->num_scheduled) {
1119 err = cv_timedwait_sig(&sc->sc_cv, &sc->sc_lock,
1120 mstohz(10));
1121 if (err) {
1122 ep->num_open--;
1123 jack->opened = 0;
1124 return USBD_IOERROR;
1125 }
1126 }
1127
1128 return USBD_NORMAL_COMPLETION;
1129 }
1130
1131 static usbd_status
1132 open_in_jack(struct umidi_jack *jack, void *arg, void (*intr)(void *, int))
1133 {
1134 usbd_status err = USBD_NORMAL_COMPLETION;
1135 struct umidi_endpoint *ep = jack->endpoint;
1136
1137 KASSERT(mutex_owned(&ep->sc->sc_lock));
1138
1139 if (jack->opened)
1140 return USBD_IN_USE;
1141
1142 jack->arg = arg;
1143 jack->u.in.intr = intr;
1144 jack->opened = 1;
1145 if (ep->num_open++ == 0 && UE_GET_DIR(ep->addr)==UE_DIR_IN) {
1146 KERNEL_LOCK(1, curlwp);
1147 err = start_input_transfer(ep);
1148 KERNEL_UNLOCK_ONE(curlwp);
1149 if (err != USBD_NORMAL_COMPLETION &&
1150 err != USBD_IN_PROGRESS) {
1151 ep->num_open--;
1152 }
1153 }
1154
1155 return err;
1156 }
1157
1158 static void
1159 close_out_jack(struct umidi_jack *jack)
1160 {
1161 struct umidi_endpoint *ep;
1162 struct umidi_softc *sc;
1163 u_int16_t mask;
1164 int err;
1165
1166
1167 if (jack->opened) {
1168 ep = jack->endpoint;
1169 sc = ep->sc;
1170 KASSERT(mutex_owned(&sc->sc_lock));
1171 mask = 1 << (jack->cable_number);
1172 while (mask & (ep->this_schedule | ep->next_schedule)) {
1173 err = cv_timedwait_sig(&sc->sc_cv, &sc->sc_lock,
1174 mstohz(10));
1175 if (err)
1176 break;
1177 }
1178 jack->opened = 0;
1179 jack->endpoint->num_open--;
1180 ep->this_schedule &= ~mask;
1181 ep->next_schedule &= ~mask;
1182 }
1183 }
1184
1185 static void
1186 close_in_jack(struct umidi_jack *jack)
1187 {
1188 if (jack->opened) {
1189 jack->opened = 0;
1190 if (--jack->endpoint->num_open == 0) {
1191 usbd_abort_pipe(jack->endpoint->pipe);
1192 }
1193 }
1194 }
1195
1196 static usbd_status
1197 attach_mididev(struct umidi_softc *sc, struct umidi_mididev *mididev)
1198 {
1199 if (mididev->sc)
1200 return USBD_IN_USE;
1201
1202 mididev->sc = sc;
1203
1204 describe_mididev(mididev);
1205
1206 mididev->mdev = midi_attach_mi(&umidi_hw_if, mididev, sc->sc_dev);
1207
1208 return USBD_NORMAL_COMPLETION;
1209 }
1210
1211 static usbd_status
1212 detach_mididev(struct umidi_mididev *mididev, int flags)
1213 {
1214 if (!mididev->sc)
1215 return USBD_NO_ADDR;
1216
1217 if (mididev->opened) {
1218 umidi_close(mididev);
1219 }
1220 unbind_jacks_from_mididev(mididev);
1221
1222 if (mididev->mdev != NULL)
1223 config_detach(mididev->mdev, flags);
1224
1225 if (NULL != mididev->label) {
1226 kmem_free(mididev->label, mididev->label_len);
1227 mididev->label = NULL;
1228 }
1229
1230 mididev->sc = NULL;
1231
1232 return USBD_NORMAL_COMPLETION;
1233 }
1234
1235 static void
1236 deactivate_mididev(struct umidi_mididev *mididev)
1237 {
1238 if (mididev->out_jack)
1239 mididev->out_jack->binded = 0;
1240 if (mididev->in_jack)
1241 mididev->in_jack->binded = 0;
1242 }
1243
1244 static usbd_status
1245 alloc_all_mididevs(struct umidi_softc *sc, int nmidi)
1246 {
1247 sc->sc_num_mididevs = nmidi;
1248 sc->sc_mididevs = kmem_zalloc(sizeof(*sc->sc_mididevs)*nmidi, KM_SLEEP);
1249 if (!sc->sc_mididevs)
1250 return USBD_NOMEM;
1251
1252 return USBD_NORMAL_COMPLETION;
1253 }
1254
1255 static void
1256 free_all_mididevs(struct umidi_softc *sc)
1257 {
1258 if (sc->sc_mididevs)
1259 kmem_free(sc->sc_mididevs,
1260 sizeof(*sc->sc_mididevs)*sc->sc_num_mididevs);
1261 sc->sc_num_mididevs = 0;
1262 }
1263
1264 static usbd_status
1265 attach_all_mididevs(struct umidi_softc *sc)
1266 {
1267 usbd_status err;
1268 int i;
1269
1270 if (sc->sc_mididevs)
1271 for (i = 0; i < sc->sc_num_mididevs; i++) {
1272 err = attach_mididev(sc, &sc->sc_mididevs[i]);
1273 if (err != USBD_NORMAL_COMPLETION)
1274 return err;
1275 }
1276
1277 return USBD_NORMAL_COMPLETION;
1278 }
1279
1280 static usbd_status
1281 detach_all_mididevs(struct umidi_softc *sc, int flags)
1282 {
1283 usbd_status err;
1284 int i;
1285
1286 if (sc->sc_mididevs)
1287 for (i = 0; i < sc->sc_num_mididevs; i++) {
1288 err = detach_mididev(&sc->sc_mididevs[i], flags);
1289 if (err != USBD_NORMAL_COMPLETION)
1290 return err;
1291 }
1292
1293 return USBD_NORMAL_COMPLETION;
1294 }
1295
1296 static void
1297 deactivate_all_mididevs(struct umidi_softc *sc)
1298 {
1299 int i;
1300
1301 if (sc->sc_mididevs) {
1302 for (i = 0; i < sc->sc_num_mididevs; i++)
1303 deactivate_mididev(&sc->sc_mididevs[i]);
1304 }
1305 }
1306
1307 /*
1308 * TODO: the 0-based cable numbers will often not match the labeling of the
1309 * equipment. Ideally:
1310 * For class-compliant devices: get the iJack string from the jack descriptor.
1311 * Otherwise:
1312 * - support a DISPLAY_BASE_CN quirk (add the value to each internal cable
1313 * number for display)
1314 * - support an array quirk explictly giving a char * for each jack.
1315 * For now, you get 0-based cable numbers. If there are multiple endpoints and
1316 * the CNs are not globally unique, each is shown with its associated endpoint
1317 * address in hex also. That should not be necessary when using iJack values
1318 * or a quirk array.
1319 */
1320 void
1321 describe_mididev(struct umidi_mididev *md)
1322 {
1323 char in_label[16];
1324 char out_label[16];
1325 const char *unit_label;
1326 char *final_label;
1327 struct umidi_softc *sc;
1328 int show_ep_in;
1329 int show_ep_out;
1330 size_t len;
1331
1332 sc = md->sc;
1333 show_ep_in = sc-> sc_in_num_endpoints > 1 && !sc->cblnums_global;
1334 show_ep_out = sc->sc_out_num_endpoints > 1 && !sc->cblnums_global;
1335
1336 if ( NULL == md->in_jack )
1337 in_label[0] = '\0';
1338 else if ( show_ep_in )
1339 snprintf(in_label, sizeof in_label, "<%d(%x) ",
1340 md->in_jack->cable_number, md->in_jack->endpoint->addr);
1341 else
1342 snprintf(in_label, sizeof in_label, "<%d ",
1343 md->in_jack->cable_number);
1344
1345 if ( NULL == md->out_jack )
1346 out_label[0] = '\0';
1347 else if ( show_ep_out )
1348 snprintf(out_label, sizeof out_label, ">%d(%x) ",
1349 md->out_jack->cable_number, md->out_jack->endpoint->addr);
1350 else
1351 snprintf(out_label, sizeof out_label, ">%d ",
1352 md->out_jack->cable_number);
1353
1354 unit_label = device_xname(sc->sc_dev);
1355
1356 len = strlen(in_label) + strlen(out_label) + strlen(unit_label) + 4;
1357
1358 final_label = kmem_alloc(len, KM_SLEEP);
1359
1360 snprintf(final_label, len, "%s%son %s",
1361 in_label, out_label, unit_label);
1362
1363 md->label = final_label;
1364 md->label_len = len;
1365 }
1366
1367 #ifdef UMIDI_DEBUG
1368 static void
1369 dump_sc(struct umidi_softc *sc)
1370 {
1371 int i;
1372
1373 DPRINTFN(10, ("%s: dump_sc\n", device_xname(sc->sc_dev)));
1374 for (i=0; i<sc->sc_out_num_endpoints; i++) {
1375 DPRINTFN(10, ("\tout_ep(%p):\n", &sc->sc_out_ep[i]));
1376 dump_ep(&sc->sc_out_ep[i]);
1377 }
1378 for (i=0; i<sc->sc_in_num_endpoints; i++) {
1379 DPRINTFN(10, ("\tin_ep(%p):\n", &sc->sc_in_ep[i]));
1380 dump_ep(&sc->sc_in_ep[i]);
1381 }
1382 }
1383
1384 static void
1385 dump_ep(struct umidi_endpoint *ep)
1386 {
1387 int i;
1388 for (i=0; i<UMIDI_MAX_EPJACKS; i++) {
1389 if (NULL==ep->jacks[i])
1390 continue;
1391 DPRINTFN(10, ("\t\tjack[%d]:%p:\n", i, ep->jacks[i]));
1392 dump_jack(ep->jacks[i]);
1393 }
1394 }
1395 static void
1396 dump_jack(struct umidi_jack *jack)
1397 {
1398 DPRINTFN(10, ("\t\t\tep=%p\n",
1399 jack->endpoint));
1400 }
1401
1402 #endif /* UMIDI_DEBUG */
1403
1404
1405
1406 /*
1407 * MUX MIDI PACKET
1408 */
1409
1410 static const int packet_length[16] = {
1411 /*0*/ -1,
1412 /*1*/ -1,
1413 /*2*/ 2,
1414 /*3*/ 3,
1415 /*4*/ 3,
1416 /*5*/ 1,
1417 /*6*/ 2,
1418 /*7*/ 3,
1419 /*8*/ 3,
1420 /*9*/ 3,
1421 /*A*/ 3,
1422 /*B*/ 3,
1423 /*C*/ 2,
1424 /*D*/ 2,
1425 /*E*/ 3,
1426 /*F*/ 1,
1427 };
1428
1429 #define GET_CN(p) (((unsigned char)(p)>>4)&0x0F)
1430 #define GET_CIN(p) ((unsigned char)(p)&0x0F)
1431 #define MIX_CN_CIN(cn, cin) \
1432 ((unsigned char)((((unsigned char)(cn)&0x0F)<<4)| \
1433 ((unsigned char)(cin)&0x0F)))
1434
1435 static usbd_status
1436 start_input_transfer(struct umidi_endpoint *ep)
1437 {
1438 usbd_setup_xfer(ep->xfer, ep->pipe,
1439 (usbd_private_handle)ep,
1440 ep->buffer, ep->buffer_size,
1441 USBD_SHORT_XFER_OK | USBD_NO_COPY,
1442 USBD_NO_TIMEOUT, in_intr);
1443 return usbd_transfer(ep->xfer);
1444 }
1445
1446 static usbd_status
1447 start_output_transfer(struct umidi_endpoint *ep)
1448 {
1449 usbd_status rv;
1450 u_int32_t length;
1451 int i;
1452
1453 length = (ep->next_slot - ep->buffer) * sizeof *ep->buffer;
1454 DPRINTFN(200,("umidi out transfer: start %p end %p length %u\n",
1455 ep->buffer, ep->next_slot, length));
1456 KERNEL_LOCK(1, curlwp);
1457 usbd_setup_xfer(ep->xfer, ep->pipe,
1458 (usbd_private_handle)ep,
1459 ep->buffer, length,
1460 USBD_NO_COPY, USBD_NO_TIMEOUT, out_intr);
1461 rv = usbd_transfer(ep->xfer);
1462 KERNEL_UNLOCK_ONE(curlwp);
1463
1464 /*
1465 * Once the transfer is scheduled, no more adding to partial
1466 * packets within it.
1467 */
1468 if (UMQ_ISTYPE(ep->sc, UMQ_TYPE_MIDIMAN_GARBLE)) {
1469 for (i=0; i<UMIDI_MAX_EPJACKS; ++i)
1470 if (NULL != ep->jacks[i])
1471 ep->jacks[i]->midiman_ppkt = NULL;
1472 }
1473
1474 return rv;
1475 }
1476
1477 #ifdef UMIDI_DEBUG
1478 #define DPR_PACKET(dir, sc, p) \
1479 if ((unsigned char)(p)[1]!=0xFE) \
1480 DPRINTFN(500, \
1481 ("%s: umidi packet(" #dir "): %02X %02X %02X %02X\n", \
1482 device_xname(sc->sc_dev), \
1483 (unsigned char)(p)[0], \
1484 (unsigned char)(p)[1], \
1485 (unsigned char)(p)[2], \
1486 (unsigned char)(p)[3]));
1487 #else
1488 #define DPR_PACKET(dir, sc, p)
1489 #endif
1490
1491 /*
1492 * A 4-byte Midiman packet superficially resembles a 4-byte USB MIDI packet
1493 * with the cable number and length in the last byte instead of the first,
1494 * but there the resemblance ends. Where a USB MIDI packet is a semantic
1495 * unit, a Midiman packet is just a wrapper for 1 to 3 bytes of raw MIDI
1496 * with a cable nybble and a length nybble (which, unlike the CIN of a
1497 * real USB MIDI packet, has no semantics at all besides the length).
1498 * A packet received from a Midiman may contain part of a MIDI message,
1499 * more than one MIDI message, or parts of more than one MIDI message. A
1500 * three-byte MIDI message may arrive in three packets of data length 1, and
1501 * running status may be used. Happily, the midi(4) driver above us will put
1502 * it all back together, so the only cost is in USB bandwidth. The device
1503 * has an easier time with what it receives from us: we'll pack messages in
1504 * and across packets, but filling the packets whenever possible and,
1505 * as midi(4) hands us a complete message at a time, we'll never send one
1506 * in a dribble of short packets.
1507 */
1508
1509 static int
1510 out_jack_output(struct umidi_jack *out_jack, u_char *src, int len, int cin)
1511 {
1512 struct umidi_endpoint *ep = out_jack->endpoint;
1513 struct umidi_softc *sc = ep->sc;
1514 unsigned char *packet;
1515 int plen;
1516 int poff;
1517
1518 if (sc->sc_dying)
1519 return EIO;
1520
1521 if (!out_jack->opened)
1522 return ENODEV; /* XXX as it was, is this the right errno? */
1523
1524 #ifdef UMIDI_DEBUG
1525 if ( umididebug >= 100 )
1526 microtime(&umidi_tv);
1527 #endif
1528 DPRINTFN(100, ("umidi out: %"PRIu64".%06"PRIu64"s ep=%p cn=%d len=%d cin=%#x\n",
1529 umidi_tv.tv_sec%100, (uint64_t)umidi_tv.tv_usec,
1530 ep, out_jack->cable_number, len, cin));
1531
1532 packet = *ep->next_slot++;
1533 KASSERT(ep->buffer_size >=
1534 (ep->next_slot - ep->buffer) * sizeof *ep->buffer);
1535 memset(packet, 0, UMIDI_PACKET_SIZE);
1536 if (UMQ_ISTYPE(sc, UMQ_TYPE_MIDIMAN_GARBLE)) {
1537 if (NULL != out_jack->midiman_ppkt) { /* fill out a prev pkt */
1538 poff = 0x0f & (out_jack->midiman_ppkt[3]);
1539 plen = 3 - poff;
1540 if (plen > len)
1541 plen = len;
1542 memcpy(out_jack->midiman_ppkt+poff, src, plen);
1543 src += plen;
1544 len -= plen;
1545 plen += poff;
1546 out_jack->midiman_ppkt[3] =
1547 MIX_CN_CIN(out_jack->cable_number, plen);
1548 DPR_PACKET(out+, sc, out_jack->midiman_ppkt);
1549 if (3 == plen)
1550 out_jack->midiman_ppkt = NULL; /* no more */
1551 }
1552 if (0 == len)
1553 ep->next_slot--; /* won't be needed, nevermind */
1554 else {
1555 memcpy(packet, src, len);
1556 packet[3] = MIX_CN_CIN(out_jack->cable_number, len);
1557 DPR_PACKET(out, sc, packet);
1558 if (len < 3)
1559 out_jack->midiman_ppkt = packet;
1560 }
1561 } else { /* the nice simple USB class-compliant case */
1562 packet[0] = MIX_CN_CIN(out_jack->cable_number, cin);
1563 memcpy(packet+1, src, len);
1564 DPR_PACKET(out, sc, packet);
1565 }
1566 ep->next_schedule |= 1<<(out_jack->cable_number);
1567 ++ ep->num_scheduled;
1568 if ( !ep->armed && !ep->soliciting ) {
1569 /*
1570 * It would be bad to call out_solicit directly here (the
1571 * caller need not be reentrant) but a soft interrupt allows
1572 * solicit to run immediately the caller exits its critical
1573 * section, and if the caller has more to write we can get it
1574 * before starting the USB transfer, and send a longer one.
1575 */
1576 ep->soliciting = 1;
1577 softint_schedule(ep->solicit_cookie);
1578 }
1579
1580 return 0;
1581 }
1582
1583 static void
1584 in_intr(usbd_xfer_handle xfer, usbd_private_handle priv,
1585 usbd_status status)
1586 {
1587 int cn, len, i;
1588 struct umidi_endpoint *ep = (struct umidi_endpoint *)priv;
1589 struct umidi_softc *sc = ep->sc;
1590 struct umidi_jack *jack;
1591 unsigned char *packet;
1592 umidi_packet_bufp slot;
1593 umidi_packet_bufp end;
1594 unsigned char *data;
1595 u_int32_t count;
1596
1597 if (ep->sc->sc_dying || !ep->num_open)
1598 return;
1599
1600 mutex_enter(&sc->sc_lock);
1601 usbd_get_xfer_status(xfer, NULL, NULL, &count, NULL);
1602 if (0 == count % UMIDI_PACKET_SIZE) {
1603 DPRINTFN(200,("%s: input endpoint %p transfer length %u\n",
1604 device_xname(ep->sc->sc_dev), ep, count));
1605 } else {
1606 DPRINTF(("%s: input endpoint %p odd transfer length %u\n",
1607 device_xname(ep->sc->sc_dev), ep, count));
1608 }
1609
1610 slot = ep->buffer;
1611 end = slot + count / sizeof *slot;
1612
1613 for (packet = *slot; slot < end; packet = *++slot) {
1614
1615 if (UMQ_ISTYPE(ep->sc, UMQ_TYPE_MIDIMAN_GARBLE)) {
1616 cn = (0xf0&(packet[3]))>>4;
1617 len = 0x0f&(packet[3]);
1618 data = packet;
1619 } else {
1620 cn = GET_CN(packet[0]);
1621 len = packet_length[GET_CIN(packet[0])];
1622 data = packet + 1;
1623 }
1624 /* 0 <= cn <= 15 by inspection of above code */
1625 if (!(jack = ep->jacks[cn]) || cn != jack->cable_number) {
1626 DPRINTF(("%s: stray input endpoint %p cable %d len %d: "
1627 "%02X %02X %02X (try CN_SEQ quirk?)\n",
1628 device_xname(ep->sc->sc_dev), ep, cn, len,
1629 (unsigned)data[0],
1630 (unsigned)data[1],
1631 (unsigned)data[2]));
1632 mutex_exit(&sc->sc_lock);
1633 return;
1634 }
1635
1636 if (!jack->binded || !jack->opened)
1637 continue;
1638
1639 DPRINTFN(500,("%s: input endpoint %p cable %d len %d: "
1640 "%02X %02X %02X\n",
1641 device_xname(ep->sc->sc_dev), ep, cn, len,
1642 (unsigned)data[0],
1643 (unsigned)data[1],
1644 (unsigned)data[2]));
1645
1646 if (jack->u.in.intr) {
1647 for (i = 0; i < len; i++) {
1648 (*jack->u.in.intr)(jack->arg, data[i]);
1649 }
1650 }
1651
1652 }
1653
1654 (void)start_input_transfer(ep);
1655 mutex_exit(&sc->sc_lock);
1656 }
1657
1658 static void
1659 out_intr(usbd_xfer_handle xfer, usbd_private_handle priv,
1660 usbd_status status)
1661 {
1662 struct umidi_endpoint *ep = (struct umidi_endpoint *)priv;
1663 struct umidi_softc *sc = ep->sc;
1664 u_int32_t count;
1665
1666 if (sc->sc_dying)
1667 return;
1668
1669 mutex_enter(&sc->sc_lock);
1670 #ifdef UMIDI_DEBUG
1671 if ( umididebug >= 200 )
1672 microtime(&umidi_tv);
1673 #endif
1674 usbd_get_xfer_status(xfer, NULL, NULL, &count, NULL);
1675 if ( 0 == count % UMIDI_PACKET_SIZE ) {
1676 DPRINTFN(200,("%s: %"PRIu64".%06"PRIu64"s out ep %p xfer length %u\n",
1677 device_xname(ep->sc->sc_dev),
1678 umidi_tv.tv_sec%100, (uint64_t)umidi_tv.tv_usec, ep, count));
1679 } else {
1680 DPRINTF(("%s: output endpoint %p odd transfer length %u\n",
1681 device_xname(ep->sc->sc_dev), ep, count));
1682 }
1683 count /= UMIDI_PACKET_SIZE;
1684
1685 /*
1686 * If while the transfer was pending we buffered any new messages,
1687 * move them to the start of the buffer.
1688 */
1689 ep->next_slot -= count;
1690 if (ep->buffer < ep->next_slot) {
1691 memcpy(ep->buffer, ep->buffer + count,
1692 (char *)ep->next_slot - (char *)ep->buffer);
1693 }
1694 cv_broadcast(&sc->sc_cv);
1695 /*
1696 * Do not want anyone else to see armed <- 0 before soliciting <- 1.
1697 * Running at IPL_USB so the following should happen to be safe.
1698 */
1699 ep->armed = 0;
1700 if (!ep->soliciting) {
1701 ep->soliciting = 1;
1702 out_solicit_locked(ep);
1703 }
1704 mutex_exit(&sc->sc_lock);
1705 }
1706
1707 /*
1708 * A jack on which we have received a packet must be called back on its
1709 * out.intr handler before it will send us another; it is considered
1710 * 'scheduled'. It is nice and predictable - as long as it is scheduled,
1711 * we need no extra buffer space for it.
1712 *
1713 * In contrast, a jack that is open but not scheduled may supply us a packet
1714 * at any time, driven by the top half, and we must be able to accept it, no
1715 * excuses. So we must ensure that at any point in time there are at least
1716 * (num_open - num_scheduled) slots free.
1717 *
1718 * As long as there are more slots free than that minimum, we can loop calling
1719 * scheduled jacks back on their "interrupt" handlers, soliciting more
1720 * packets, starting the USB transfer only when the buffer space is down to
1721 * the minimum or no jack has any more to send.
1722 */
1723
1724 static void
1725 out_solicit_locked(void *arg)
1726 {
1727 struct umidi_endpoint *ep = arg;
1728 umidi_packet_bufp end;
1729 u_int16_t which;
1730 struct umidi_jack *jack;
1731
1732 KASSERT(mutex_owned(&ep->sc->sc_lock));
1733
1734 end = ep->buffer + ep->buffer_size / sizeof *ep->buffer;
1735
1736 for ( ;; ) {
1737 if (end - ep->next_slot <= ep->num_open - ep->num_scheduled)
1738 break; /* at IPL_USB */
1739 if (ep->this_schedule == 0) {
1740 if (ep->next_schedule == 0)
1741 break; /* at IPL_USB */
1742 ep->this_schedule = ep->next_schedule;
1743 ep->next_schedule = 0;
1744 }
1745 /*
1746 * At least one jack is scheduled. Find and mask off the least
1747 * set bit in this_schedule and decrement num_scheduled.
1748 * Convert mask to bit index to find the corresponding jack,
1749 * and call its intr handler. If it has a message, it will call
1750 * back one of the output methods, which will set its bit in
1751 * next_schedule (not copied into this_schedule until the
1752 * latter is empty). In this way we round-robin the jacks that
1753 * have messages to send, until the buffer is as full as we
1754 * dare, and then start a transfer.
1755 */
1756 which = ep->this_schedule;
1757 which &= (~which)+1; /* now mask of least set bit */
1758 ep->this_schedule &= ~which;
1759 --ep->num_scheduled;
1760
1761 --which; /* now 1s below mask - count 1s to get index */
1762 which -= ((which >> 1) & 0x5555);/* SWAR credit aggregate.org */
1763 which = (((which >> 2) & 0x3333) + (which & 0x3333));
1764 which = (((which >> 4) + which) & 0x0f0f);
1765 which += (which >> 8);
1766 which &= 0x1f; /* the bit index a/k/a jack number */
1767
1768 jack = ep->jacks[which];
1769 if (jack->u.out.intr)
1770 (*jack->u.out.intr)(jack->arg);
1771 }
1772 /* intr lock held at loop exit */
1773 if (!ep->armed && ep->next_slot > ep->buffer)
1774 ep->armed = (USBD_IN_PROGRESS == start_output_transfer(ep));
1775 ep->soliciting = 0;
1776 }
1777
1778 /* Entry point for the softintr. */
1779 static void
1780 out_solicit(void *arg)
1781 {
1782 struct umidi_endpoint *ep = arg;
1783 struct umidi_softc *sc = ep->sc;
1784
1785 mutex_enter(&sc->sc_lock);
1786 out_solicit_locked(arg);
1787 mutex_exit(&sc->sc_lock);
1788 }
1789