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umidi.c revision 1.30
      1 /*	$NetBSD: umidi.c,v 1.30 2007/03/13 13:51:56 drochner 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  * 3. All advertising materials mentioning features or use of this software
     19  *    must display the following acknowledgement:
     20  *	  This product includes software developed by the NetBSD
     21  *	  Foundation, Inc. and its contributors.
     22  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23  *    contributors may be used to endorse or promote products derived
     24  *    from this software without specific prior written permission.
     25  *
     26  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36  * POSSIBILITY OF SUCH DAMAGE.
     37  */
     38 
     39 #include <sys/cdefs.h>
     40 __KERNEL_RCSID(0, "$NetBSD: umidi.c,v 1.30 2007/03/13 13:51:56 drochner Exp $");
     41 
     42 #include <sys/types.h>
     43 #include <sys/param.h>
     44 #include <sys/systm.h>
     45 #include <sys/kernel.h>
     46 #include <sys/malloc.h>
     47 #include <sys/device.h>
     48 #include <sys/ioctl.h>
     49 #include <sys/conf.h>
     50 #include <sys/file.h>
     51 #include <sys/select.h>
     52 #include <sys/proc.h>
     53 #include <sys/vnode.h>
     54 #include <sys/poll.h>
     55 #include <sys/lock.h>
     56 
     57 #ifdef __HAVE_GENERIC_SOFT_INTERRUPTS
     58 #include <machine/intr.h>
     59 #endif
     60 
     61 #include <dev/usb/usb.h>
     62 #include <dev/usb/usbdi.h>
     63 #include <dev/usb/usbdi_util.h>
     64 
     65 #include <dev/usb/usbdevs.h>
     66 #include <dev/usb/uaudioreg.h>
     67 #include <dev/usb/umidireg.h>
     68 #include <dev/usb/umidivar.h>
     69 #include <dev/usb/umidi_quirks.h>
     70 
     71 #include <dev/midi_if.h>
     72 
     73 #ifdef UMIDI_DEBUG
     74 #define DPRINTF(x)	if (umididebug) printf x
     75 #define DPRINTFN(n,x)	if (umididebug >= (n)) printf x
     76 #include <sys/time.h>
     77 static struct timeval umidi_tv;
     78 int	umididebug = 0;
     79 #else
     80 #define DPRINTF(x)
     81 #define DPRINTFN(n,x)
     82 #endif
     83 
     84 
     85 static int umidi_open(void *, int,
     86 		      void (*)(void *, int), void (*)(void *), void *);
     87 static void umidi_close(void *);
     88 static int umidi_channelmsg(void *, int, int, u_char *, int);
     89 static int umidi_commonmsg(void *, int, u_char *, int);
     90 static int umidi_sysex(void *, u_char *, int);
     91 static int umidi_rtmsg(void *, int);
     92 static void umidi_getinfo(void *, struct midi_info *);
     93 
     94 static usbd_status alloc_pipe(struct umidi_endpoint *);
     95 static void free_pipe(struct umidi_endpoint *);
     96 
     97 static usbd_status alloc_all_endpoints(struct umidi_softc *);
     98 static void free_all_endpoints(struct umidi_softc *);
     99 
    100 static usbd_status alloc_all_jacks(struct umidi_softc *);
    101 static void free_all_jacks(struct umidi_softc *);
    102 static usbd_status bind_jacks_to_mididev(struct umidi_softc *,
    103 					 struct umidi_jack *,
    104 					 struct umidi_jack *,
    105 					 struct umidi_mididev *);
    106 static void unbind_jacks_from_mididev(struct umidi_mididev *);
    107 static void unbind_all_jacks(struct umidi_softc *);
    108 static usbd_status assign_all_jacks_automatically(struct umidi_softc *);
    109 static usbd_status open_out_jack(struct umidi_jack *, void *,
    110 				 void (*)(void *));
    111 static usbd_status open_in_jack(struct umidi_jack *, void *,
    112 				void (*)(void *, int));
    113 static void close_out_jack(struct umidi_jack *);
    114 static void close_in_jack(struct umidi_jack *);
    115 
    116 static usbd_status attach_mididev(struct umidi_softc *, struct umidi_mididev *);
    117 static usbd_status detach_mididev(struct umidi_mididev *, int);
    118 static usbd_status deactivate_mididev(struct umidi_mididev *);
    119 static usbd_status alloc_all_mididevs(struct umidi_softc *, int);
    120 static void free_all_mididevs(struct umidi_softc *);
    121 static usbd_status attach_all_mididevs(struct umidi_softc *);
    122 static usbd_status detach_all_mididevs(struct umidi_softc *, int);
    123 static usbd_status deactivate_all_mididevs(struct umidi_softc *);
    124 static char *describe_mididev(struct umidi_mididev *);
    125 
    126 #ifdef UMIDI_DEBUG
    127 static void dump_sc(struct umidi_softc *);
    128 static void dump_ep(struct umidi_endpoint *);
    129 static void dump_jack(struct umidi_jack *);
    130 #endif
    131 
    132 static usbd_status start_input_transfer(struct umidi_endpoint *);
    133 static usbd_status start_output_transfer(struct umidi_endpoint *);
    134 static int out_jack_output(struct umidi_jack *, u_char *, int, int);
    135 static void in_intr(usbd_xfer_handle, usbd_private_handle, usbd_status);
    136 static void out_intr(usbd_xfer_handle, usbd_private_handle, usbd_status);
    137 static void out_solicit(void *); /* struct umidi_endpoint* for softintr */
    138 
    139 
    140 const struct midi_hw_if umidi_hw_if = {
    141 	umidi_open,
    142 	umidi_close,
    143 	umidi_rtmsg,
    144 	umidi_getinfo,
    145 	0,		/* ioctl */
    146 };
    147 
    148 struct midi_hw_if_ext umidi_hw_if_ext = {
    149 	.channel = umidi_channelmsg,
    150 	.common  = umidi_commonmsg,
    151 	.sysex   = umidi_sysex,
    152 };
    153 
    154 struct midi_hw_if_ext umidi_hw_if_mm = {
    155 	.channel = umidi_channelmsg,
    156 	.common  = umidi_commonmsg,
    157 	.sysex   = umidi_sysex,
    158 	.compress = 1,
    159 };
    160 
    161 USB_DECLARE_DRIVER(umidi);
    162 
    163 USB_MATCH(umidi)
    164 {
    165 	USB_IFMATCH_START(umidi, uaa);
    166 
    167 	DPRINTFN(1,("umidi_match\n"));
    168 
    169 	if (umidi_search_quirk(uaa->vendor, uaa->product, uaa->ifaceno))
    170 		return UMATCH_IFACECLASS_IFACESUBCLASS;
    171 
    172 	if (uaa->class == UICLASS_AUDIO &&
    173 	    uaa->subclass == UISUBCLASS_MIDISTREAM)
    174 		return UMATCH_IFACECLASS_IFACESUBCLASS;
    175 
    176 	return UMATCH_NONE;
    177 }
    178 
    179 USB_ATTACH(umidi)
    180 {
    181 	usbd_status err;
    182 	USB_IFATTACH_START(umidi, sc, uaa);
    183 	char *devinfop;
    184 
    185 	DPRINTFN(1,("umidi_attach\n"));
    186 
    187 	devinfop = usbd_devinfo_alloc(uaa->device, 0);
    188 	printf("\n%s: %s\n", USBDEVNAME(sc->sc_dev), devinfop);
    189 	usbd_devinfo_free(devinfop);
    190 
    191 	sc->sc_iface = uaa->iface;
    192 	sc->sc_udev = uaa->device;
    193 
    194 	sc->sc_quirk =
    195 	    umidi_search_quirk(uaa->vendor, uaa->product, uaa->ifaceno);
    196 	printf("%s: ", USBDEVNAME(sc->sc_dev));
    197 	umidi_print_quirk(sc->sc_quirk);
    198 
    199 
    200 	err = alloc_all_endpoints(sc);
    201 	if (err!=USBD_NORMAL_COMPLETION) {
    202 		printf("%s: alloc_all_endpoints failed. (err=%d)\n",
    203 		       USBDEVNAME(sc->sc_dev), err);
    204 		goto error;
    205 	}
    206 	err = alloc_all_jacks(sc);
    207 	if (err!=USBD_NORMAL_COMPLETION) {
    208 		free_all_endpoints(sc);
    209 		printf("%s: alloc_all_jacks failed. (err=%d)\n",
    210 		       USBDEVNAME(sc->sc_dev), err);
    211 		goto error;
    212 	}
    213 	printf("%s: out=%d, in=%d\n",
    214 	       USBDEVNAME(sc->sc_dev),
    215 	       sc->sc_out_num_jacks, sc->sc_in_num_jacks);
    216 
    217 	err = assign_all_jacks_automatically(sc);
    218 	if (err!=USBD_NORMAL_COMPLETION) {
    219 		unbind_all_jacks(sc);
    220 		free_all_jacks(sc);
    221 		free_all_endpoints(sc);
    222 		printf("%s: assign_all_jacks_automatically failed. (err=%d)\n",
    223 		       USBDEVNAME(sc->sc_dev), err);
    224 		goto error;
    225 	}
    226 	err = attach_all_mididevs(sc);
    227 	if (err!=USBD_NORMAL_COMPLETION) {
    228 		free_all_jacks(sc);
    229 		free_all_endpoints(sc);
    230 		printf("%s: attach_all_mididevs failed. (err=%d)\n",
    231 		       USBDEVNAME(sc->sc_dev), err);
    232 	}
    233 
    234 #ifdef UMIDI_DEBUG
    235 	dump_sc(sc);
    236 #endif
    237 
    238 	usbd_add_drv_event(USB_EVENT_DRIVER_ATTACH,
    239 			   sc->sc_udev, USBDEV(sc->sc_dev));
    240 
    241 	USB_ATTACH_SUCCESS_RETURN;
    242 error:
    243 	printf("%s: disabled.\n", USBDEVNAME(sc->sc_dev));
    244 	sc->sc_dying = 1;
    245 	USB_ATTACH_ERROR_RETURN;
    246 }
    247 
    248 int
    249 umidi_activate(device_ptr_t self, enum devact act)
    250 {
    251 	struct umidi_softc *sc = (struct umidi_softc *)self;
    252 
    253 	switch (act) {
    254 	case DVACT_ACTIVATE:
    255 		DPRINTFN(1,("umidi_activate (activate)\n"));
    256 
    257 		return EOPNOTSUPP;
    258 		break;
    259 	case DVACT_DEACTIVATE:
    260 		DPRINTFN(1,("umidi_activate (deactivate)\n"));
    261 		sc->sc_dying = 1;
    262 		deactivate_all_mididevs(sc);
    263 		break;
    264 	}
    265 	return 0;
    266 }
    267 
    268 USB_DETACH(umidi)
    269 {
    270 	USB_DETACH_START(umidi, sc);
    271 
    272 	DPRINTFN(1,("umidi_detach\n"));
    273 
    274 	sc->sc_dying = 1;
    275 	detach_all_mididevs(sc, flags);
    276 	free_all_mididevs(sc);
    277 	free_all_jacks(sc);
    278 	free_all_endpoints(sc);
    279 
    280 	usbd_add_drv_event(USB_EVENT_DRIVER_DETACH, sc->sc_udev,
    281 			   USBDEV(sc->sc_dev));
    282 
    283 	return 0;
    284 }
    285 
    286 
    287 /*
    288  * midi_if stuffs
    289  */
    290 int
    291 umidi_open(void *addr,
    292 	   int flags,
    293 	   void (*iintr)(void *, int),
    294 	   void (*ointr)(void *),
    295 	   void *arg)
    296 {
    297 	struct umidi_mididev *mididev = addr;
    298 	struct umidi_softc *sc = mididev->sc;
    299 	usbd_status err;
    300 
    301 	DPRINTF(("umidi_open: sc=%p\n", sc));
    302 
    303 	if (!sc)
    304 		return ENXIO;
    305 	if (mididev->opened)
    306 		return EBUSY;
    307 	if (sc->sc_dying)
    308 		return EIO;
    309 
    310 	mididev->opened = 1;
    311 	mididev->flags = flags;
    312 	if ((mididev->flags & FWRITE) && mididev->out_jack) {
    313 		err = open_out_jack(mididev->out_jack, arg, ointr);
    314 		if ( err != USBD_NORMAL_COMPLETION )
    315 			goto bad;
    316 	}
    317 	if ((mididev->flags & FREAD) && mididev->in_jack) {
    318 		err = open_in_jack(mididev->in_jack, arg, iintr);
    319 		if ( err != USBD_NORMAL_COMPLETION
    320 		&&   err != USBD_IN_PROGRESS )
    321 			goto bad;
    322 	}
    323 
    324 	return 0;
    325 bad:
    326 	mididev->opened = 0;
    327 	DPRINTF(("umidi_open: usbd_status %d\n", err));
    328 	return USBD_IN_USE == err ? EBUSY : EIO;
    329 }
    330 
    331 void
    332 umidi_close(void *addr)
    333 {
    334 	int s;
    335 	struct umidi_mididev *mididev = addr;
    336 
    337 	s = splusb();
    338 	if ((mididev->flags & FWRITE) && mididev->out_jack)
    339 		close_out_jack(mididev->out_jack);
    340 	if ((mididev->flags & FREAD) && mididev->in_jack)
    341 		close_in_jack(mididev->in_jack);
    342 	mididev->opened = 0;
    343 	splx(s);
    344 }
    345 
    346 int
    347 umidi_channelmsg(void *addr, int status, int channel, u_char *msg,
    348     int len)
    349 {
    350 	struct umidi_mididev *mididev = addr;
    351 
    352 	if (!mididev->out_jack || !mididev->opened)
    353 		return EIO;
    354 
    355 	return out_jack_output(mididev->out_jack, msg, len, (status>>4)&0xf);
    356 }
    357 
    358 int
    359 umidi_commonmsg(void *addr, int status, u_char *msg, int len)
    360 {
    361 	struct umidi_mididev *mididev = addr;
    362 	int cin;
    363 
    364 	if (!mididev->out_jack || !mididev->opened)
    365 		return EIO;
    366 
    367 	switch ( len ) {
    368 	case 1: cin = 5; break;
    369 	case 2: cin = 2; break;
    370 	case 3: cin = 3; break;
    371 	default: return EIO; /* or gcc warns of cin uninitialized */
    372 	}
    373 
    374 	return out_jack_output(mididev->out_jack, msg, len, cin);
    375 }
    376 
    377 int
    378 umidi_sysex(void *addr, u_char *msg, int len)
    379 {
    380 	struct umidi_mididev *mididev = addr;
    381 	int cin;
    382 
    383 	if (!mididev->out_jack || !mididev->opened)
    384 		return EIO;
    385 
    386 	switch ( len ) {
    387 	case 1: cin = 5; break;
    388 	case 2: cin = 6; break;
    389 	case 3: cin = (msg[2] == 0xf7) ? 7 : 4; break;
    390 	default: return EIO; /* or gcc warns of cin uninitialized */
    391 	}
    392 
    393 	return out_jack_output(mididev->out_jack, msg, len, cin);
    394 }
    395 
    396 int
    397 umidi_rtmsg(void *addr, int d)
    398 {
    399 	struct umidi_mididev *mididev = addr;
    400 	u_char msg = d;
    401 
    402 	if (!mididev->out_jack || !mididev->opened)
    403 		return EIO;
    404 
    405 	return out_jack_output(mididev->out_jack, &msg, 1, 0xf);
    406 }
    407 
    408 void
    409 umidi_getinfo(void *addr, struct midi_info *mi)
    410 {
    411 	struct umidi_mididev *mididev = addr;
    412 	struct umidi_softc *sc = mididev->sc;
    413 	int mm = UMQ_ISTYPE(sc, UMQ_TYPE_MIDIMAN_GARBLE);
    414 
    415 	mi->name = mididev->label;
    416 	mi->props = MIDI_PROP_OUT_INTR;
    417 	if (mididev->in_jack)
    418 		mi->props |= MIDI_PROP_CAN_INPUT;
    419 	midi_register_hw_if_ext(mm? &umidi_hw_if_mm : &umidi_hw_if_ext);
    420 }
    421 
    422 
    423 /*
    424  * each endpoint stuffs
    425  */
    426 
    427 /* alloc/free pipe */
    428 static usbd_status
    429 alloc_pipe(struct umidi_endpoint *ep)
    430 {
    431 	struct umidi_softc *sc = ep->sc;
    432 	usbd_status err;
    433 	usb_endpoint_descriptor_t *epd;
    434 
    435 	epd = usbd_get_endpoint_descriptor(sc->sc_iface, ep->addr);
    436 	/*
    437 	 * For output, an improvement would be to have a buffer bigger than
    438 	 * wMaxPacketSize by num_jacks-1 additional packet slots; that would
    439 	 * allow out_solicit to fill the buffer to the full packet size in
    440 	 * all cases. But to use usbd_alloc_buffer to get a slightly larger
    441 	 * buffer would not be a good way to do that, because if the addition
    442 	 * would make the buffer exceed USB_MEM_SMALL then a substantially
    443 	 * larger block may be wastefully allocated. Some flavor of double
    444 	 * buffering could serve the same purpose, but would increase the
    445 	 * code complexity, so for now I will live with the current slight
    446 	 * penalty of reducing max transfer size by (num_open-num_scheduled)
    447 	 * packet slots.
    448 	 */
    449 	ep->buffer_size = UGETW(epd->wMaxPacketSize);
    450 	ep->buffer_size -= ep->buffer_size % UMIDI_PACKET_SIZE;
    451 
    452 	DPRINTF(("%s: alloc_pipe %p, buffer size %u\n",
    453 	        USBDEVNAME(sc->sc_dev), ep, ep->buffer_size));
    454 	ep->num_scheduled = 0;
    455 	ep->this_schedule = 0;
    456 	ep->next_schedule = 0;
    457 	ep->soliciting = 0;
    458 	ep->armed = 0;
    459 	ep->xfer = usbd_alloc_xfer(sc->sc_udev);
    460 	if (ep->xfer == NULL) {
    461 	    err = USBD_NOMEM;
    462 	    goto quit;
    463 	}
    464 	ep->buffer = usbd_alloc_buffer(ep->xfer, ep->buffer_size);
    465 	if (ep->buffer == NULL) {
    466 	    usbd_free_xfer(ep->xfer);
    467 	    err = USBD_NOMEM;
    468 	    goto quit;
    469 	}
    470 	ep->next_slot = ep->buffer;
    471 	err = usbd_open_pipe(sc->sc_iface, ep->addr, 0, &ep->pipe);
    472 	if (err)
    473 	    usbd_free_xfer(ep->xfer);
    474 #ifdef __HAVE_GENERIC_SOFT_INTERRUPTS
    475 	ep->solicit_cookie = softintr_establish(IPL_SOFTCLOCK,out_solicit,ep);
    476 #endif
    477 quit:
    478 	return err;
    479 }
    480 
    481 static void
    482 free_pipe(struct umidi_endpoint *ep)
    483 {
    484 	DPRINTF(("%s: free_pipe %p\n", USBDEVNAME(ep->sc->sc_dev), ep));
    485 	usbd_abort_pipe(ep->pipe);
    486 	usbd_close_pipe(ep->pipe);
    487 	usbd_free_xfer(ep->xfer);
    488 #ifdef __HAVE_GENERIC_SOFT_INTERRUPTS
    489 	softintr_disestablish(ep->solicit_cookie);
    490 #endif
    491 }
    492 
    493 
    494 /* alloc/free the array of endpoint structures */
    495 
    496 static usbd_status alloc_all_endpoints_fixed_ep(struct umidi_softc *);
    497 static usbd_status alloc_all_endpoints_yamaha(struct umidi_softc *);
    498 static usbd_status alloc_all_endpoints_genuine(struct umidi_softc *);
    499 
    500 static usbd_status
    501 alloc_all_endpoints(struct umidi_softc *sc)
    502 {
    503 	usbd_status err;
    504 	struct umidi_endpoint *ep;
    505 	int i;
    506 
    507 	if (UMQ_ISTYPE(sc, UMQ_TYPE_FIXED_EP)) {
    508 		err = alloc_all_endpoints_fixed_ep(sc);
    509 	} else if (UMQ_ISTYPE(sc, UMQ_TYPE_YAMAHA)) {
    510 		err = alloc_all_endpoints_yamaha(sc);
    511 	} else {
    512 		err = alloc_all_endpoints_genuine(sc);
    513 	}
    514 	if (err!=USBD_NORMAL_COMPLETION)
    515 		return err;
    516 
    517 	ep = sc->sc_endpoints;
    518 	for (i=sc->sc_out_num_endpoints+sc->sc_in_num_endpoints; i>0; i--) {
    519 		err = alloc_pipe(ep++);
    520 		if (err!=USBD_NORMAL_COMPLETION) {
    521 			for (; ep!=sc->sc_endpoints; ep--)
    522 				free_pipe(ep-1);
    523 			free(sc->sc_endpoints, M_USBDEV);
    524 			sc->sc_endpoints = sc->sc_out_ep = sc->sc_in_ep = NULL;
    525 			break;
    526 		}
    527 	}
    528 	return err;
    529 }
    530 
    531 static void
    532 free_all_endpoints(struct umidi_softc *sc)
    533 {
    534 	int i;
    535 	for (i=0; i<sc->sc_in_num_endpoints+sc->sc_out_num_endpoints; i++)
    536 	    free_pipe(&sc->sc_endpoints[i]);
    537 	if (sc->sc_endpoints != NULL)
    538 		free(sc->sc_endpoints, M_USBDEV);
    539 	sc->sc_endpoints = sc->sc_out_ep = sc->sc_in_ep = NULL;
    540 }
    541 
    542 static usbd_status
    543 alloc_all_endpoints_fixed_ep(struct umidi_softc *sc)
    544 {
    545 	usbd_status err;
    546 	struct umq_fixed_ep_desc *fp;
    547 	struct umidi_endpoint *ep;
    548 	usb_endpoint_descriptor_t *epd;
    549 	int i;
    550 
    551 	fp = umidi_get_quirk_data_from_type(sc->sc_quirk,
    552 					    UMQ_TYPE_FIXED_EP);
    553 	sc->sc_out_num_jacks = 0;
    554 	sc->sc_in_num_jacks = 0;
    555 	sc->sc_out_num_endpoints = fp->num_out_ep;
    556 	sc->sc_in_num_endpoints = fp->num_in_ep;
    557 	sc->sc_endpoints = malloc(sizeof(*sc->sc_out_ep)*
    558 				  (sc->sc_out_num_endpoints+
    559 				   sc->sc_in_num_endpoints),
    560 				  M_USBDEV, M_WAITOK);
    561 	if (!sc->sc_endpoints) {
    562 		return USBD_NOMEM;
    563 	}
    564 	sc->sc_out_ep = sc->sc_out_num_endpoints ? sc->sc_endpoints : NULL;
    565 	sc->sc_in_ep =
    566 	    sc->sc_in_num_endpoints ?
    567 		sc->sc_endpoints+sc->sc_out_num_endpoints : NULL;
    568 
    569 	ep = &sc->sc_out_ep[0];
    570 	for (i=0; i<sc->sc_out_num_endpoints; i++) {
    571 		epd = usbd_interface2endpoint_descriptor(
    572 			sc->sc_iface,
    573 			fp->out_ep[i].ep);
    574 		if (!epd) {
    575 			printf("%s: cannot get endpoint descriptor(out:%d)\n",
    576 			       USBDEVNAME(sc->sc_dev), fp->out_ep[i].ep);
    577 			err = USBD_INVAL;
    578 			goto error;
    579 		}
    580 		if (UE_GET_XFERTYPE(epd->bmAttributes)!=UE_BULK ||
    581 		    UE_GET_DIR(epd->bEndpointAddress)!=UE_DIR_OUT) {
    582 			printf("%s: illegal endpoint(out:%d)\n",
    583 			       USBDEVNAME(sc->sc_dev), fp->out_ep[i].ep);
    584 			err = USBD_INVAL;
    585 			goto error;
    586 		}
    587 		ep->sc = sc;
    588 		ep->addr = epd->bEndpointAddress;
    589 		ep->num_jacks = fp->out_ep[i].num_jacks;
    590 		sc->sc_out_num_jacks += fp->out_ep[i].num_jacks;
    591 		ep->num_open = 0;
    592 		memset(ep->jacks, 0, sizeof(ep->jacks));
    593 		ep++;
    594 	}
    595 	ep = &sc->sc_in_ep[0];
    596 	for (i=0; i<sc->sc_in_num_endpoints; i++) {
    597 		epd = usbd_interface2endpoint_descriptor(
    598 			sc->sc_iface,
    599 			fp->in_ep[i].ep);
    600 		if (!epd) {
    601 			printf("%s: cannot get endpoint descriptor(in:%d)\n",
    602 			       USBDEVNAME(sc->sc_dev), fp->in_ep[i].ep);
    603 			err = USBD_INVAL;
    604 			goto error;
    605 		}
    606 		/*
    607 		 * MIDISPORT_2X4 inputs on an interrupt rather than a bulk
    608 		 * endpoint.  The existing input logic in this driver seems
    609 		 * to work successfully if we just stop treating an interrupt
    610 		 * endpoint as illegal (or the in_progress status we get on
    611 		 * the initial transfer).  It does not seem necessary to
    612 		 * actually use the interrupt flavor of alloc_pipe or make
    613 		 * other serious rearrangements of logic.  I like that.
    614 		 */
    615 		switch ( UE_GET_XFERTYPE(epd->bmAttributes) ) {
    616 		case UE_BULK:
    617 		case UE_INTERRUPT:
    618 			if ( UE_DIR_IN == UE_GET_DIR(epd->bEndpointAddress) )
    619 				break;
    620 			/*FALLTHROUGH*/
    621 		default:
    622 			printf("%s: illegal endpoint(in:%d)\n",
    623 			       USBDEVNAME(sc->sc_dev), fp->in_ep[i].ep);
    624 			err = USBD_INVAL;
    625 			goto error;
    626 		}
    627 
    628 		ep->sc = sc;
    629 		ep->addr = epd->bEndpointAddress;
    630 		ep->num_jacks = fp->in_ep[i].num_jacks;
    631 		sc->sc_in_num_jacks += fp->in_ep[i].num_jacks;
    632 		ep->num_open = 0;
    633 		memset(ep->jacks, 0, sizeof(ep->jacks));
    634 		ep++;
    635 	}
    636 
    637 	return USBD_NORMAL_COMPLETION;
    638 error:
    639 	free(sc->sc_endpoints, M_USBDEV);
    640 	sc->sc_endpoints = NULL;
    641 	return err;
    642 }
    643 
    644 static usbd_status
    645 alloc_all_endpoints_yamaha(struct umidi_softc *sc)
    646 {
    647 	/* This driver currently supports max 1in/1out bulk endpoints */
    648 	usb_descriptor_t *desc;
    649 	umidi_cs_descriptor_t *udesc;
    650 	usb_endpoint_descriptor_t *epd;
    651 	int out_addr, in_addr, i;
    652 	int dir;
    653 	size_t remain, descsize;
    654 
    655 	sc->sc_out_num_jacks = sc->sc_in_num_jacks = 0;
    656 	out_addr = in_addr = 0;
    657 
    658 	/* detect endpoints */
    659 	desc = TO_D(usbd_get_interface_descriptor(sc->sc_iface));
    660 	for (i=(int)TO_IFD(desc)->bNumEndpoints-1; i>=0; i--) {
    661 		epd = usbd_interface2endpoint_descriptor(sc->sc_iface, i);
    662 		KASSERT(epd != NULL);
    663 		if (UE_GET_XFERTYPE(epd->bmAttributes) == UE_BULK) {
    664 			dir = UE_GET_DIR(epd->bEndpointAddress);
    665 			if (dir==UE_DIR_OUT && !out_addr)
    666 				out_addr = epd->bEndpointAddress;
    667 			else if (dir==UE_DIR_IN && !in_addr)
    668 				in_addr = epd->bEndpointAddress;
    669 		}
    670 	}
    671 	udesc = (umidi_cs_descriptor_t *)NEXT_D(desc);
    672 
    673 	/* count jacks */
    674 	if (!(udesc->bDescriptorType==UDESC_CS_INTERFACE &&
    675 	      udesc->bDescriptorSubtype==UMIDI_MS_HEADER))
    676 		return USBD_INVAL;
    677 	remain = (size_t)UGETW(TO_CSIFD(udesc)->wTotalLength) -
    678 		(size_t)udesc->bLength;
    679 	udesc = (umidi_cs_descriptor_t *)NEXT_D(udesc);
    680 
    681 	while (remain>=sizeof(usb_descriptor_t)) {
    682 		descsize = udesc->bLength;
    683 		if (descsize>remain || descsize==0)
    684 			break;
    685 		if (udesc->bDescriptorType==UDESC_CS_INTERFACE &&
    686 		    remain>=UMIDI_JACK_DESCRIPTOR_SIZE) {
    687 			if (udesc->bDescriptorSubtype==UMIDI_OUT_JACK)
    688 				sc->sc_out_num_jacks++;
    689 			else if (udesc->bDescriptorSubtype==UMIDI_IN_JACK)
    690 				sc->sc_in_num_jacks++;
    691 		}
    692 		udesc = (umidi_cs_descriptor_t *)NEXT_D(udesc);
    693 		remain-=descsize;
    694 	}
    695 
    696 	/* validate some parameters */
    697 	if (sc->sc_out_num_jacks>UMIDI_MAX_EPJACKS)
    698 		sc->sc_out_num_jacks = UMIDI_MAX_EPJACKS;
    699 	if (sc->sc_in_num_jacks>UMIDI_MAX_EPJACKS)
    700 		sc->sc_in_num_jacks = UMIDI_MAX_EPJACKS;
    701 	if (sc->sc_out_num_jacks && out_addr) {
    702 		sc->sc_out_num_endpoints = 1;
    703 	} else {
    704 		sc->sc_out_num_endpoints = 0;
    705 		sc->sc_out_num_jacks = 0;
    706 	}
    707 	if (sc->sc_in_num_jacks && in_addr) {
    708 		sc->sc_in_num_endpoints = 1;
    709 	} else {
    710 		sc->sc_in_num_endpoints = 0;
    711 		sc->sc_in_num_jacks = 0;
    712 	}
    713 	sc->sc_endpoints = malloc(sizeof(struct umidi_endpoint)*
    714 				  (sc->sc_out_num_endpoints+
    715 				   sc->sc_in_num_endpoints),
    716 				  M_USBDEV, M_WAITOK);
    717 	if (!sc->sc_endpoints)
    718 		return USBD_NOMEM;
    719 	if (sc->sc_out_num_endpoints) {
    720 		sc->sc_out_ep = sc->sc_endpoints;
    721 		sc->sc_out_ep->sc = sc;
    722 		sc->sc_out_ep->addr = out_addr;
    723 		sc->sc_out_ep->num_jacks = sc->sc_out_num_jacks;
    724 		sc->sc_out_ep->num_open = 0;
    725 		memset(sc->sc_out_ep->jacks, 0, sizeof(sc->sc_out_ep->jacks));
    726 	} else
    727 		sc->sc_out_ep = NULL;
    728 
    729 	if (sc->sc_in_num_endpoints) {
    730 		sc->sc_in_ep = sc->sc_endpoints+sc->sc_out_num_endpoints;
    731 		sc->sc_in_ep->sc = sc;
    732 		sc->sc_in_ep->addr = in_addr;
    733 		sc->sc_in_ep->num_jacks = sc->sc_in_num_jacks;
    734 		sc->sc_in_ep->num_open = 0;
    735 		memset(sc->sc_in_ep->jacks, 0, sizeof(sc->sc_in_ep->jacks));
    736 	} else
    737 		sc->sc_in_ep = NULL;
    738 
    739 	return USBD_NORMAL_COMPLETION;
    740 }
    741 
    742 static usbd_status
    743 alloc_all_endpoints_genuine(struct umidi_softc *sc)
    744 {
    745 	usb_interface_descriptor_t *interface_desc;
    746 	usb_config_descriptor_t *config_desc;
    747 	usb_descriptor_t *desc;
    748 	int num_ep;
    749 	size_t remain, descsize;
    750 	struct umidi_endpoint *p, *q, *lowest, *endep, tmpep;
    751 	int epaddr;
    752 
    753 	interface_desc = usbd_get_interface_descriptor(sc->sc_iface);
    754 	num_ep = interface_desc->bNumEndpoints;
    755 	sc->sc_endpoints = p = malloc(sizeof(struct umidi_endpoint) * num_ep,
    756 				      M_USBDEV, M_WAITOK);
    757 	if (!p)
    758 		return USBD_NOMEM;
    759 
    760 	sc->sc_out_num_jacks = sc->sc_in_num_jacks = 0;
    761 	sc->sc_out_num_endpoints = sc->sc_in_num_endpoints = 0;
    762 	epaddr = -1;
    763 
    764 	/* get the list of endpoints for midi stream */
    765 	config_desc = usbd_get_config_descriptor(sc->sc_udev);
    766 	desc = (usb_descriptor_t *) config_desc;
    767 	remain = (size_t)UGETW(config_desc->wTotalLength);
    768 	while (remain>=sizeof(usb_descriptor_t)) {
    769 		descsize = desc->bLength;
    770 		if (descsize>remain || descsize==0)
    771 			break;
    772 		if (desc->bDescriptorType==UDESC_ENDPOINT &&
    773 		    remain>=USB_ENDPOINT_DESCRIPTOR_SIZE &&
    774 		    UE_GET_XFERTYPE(TO_EPD(desc)->bmAttributes) == UE_BULK) {
    775 			epaddr = TO_EPD(desc)->bEndpointAddress;
    776 		} else if (desc->bDescriptorType==UDESC_CS_ENDPOINT &&
    777 			   remain>=UMIDI_CS_ENDPOINT_DESCRIPTOR_SIZE &&
    778 			   epaddr!=-1) {
    779 			if (num_ep>0) {
    780 				num_ep--;
    781 				p->sc = sc;
    782 				p->addr = epaddr;
    783 				p->num_jacks = TO_CSEPD(desc)->bNumEmbMIDIJack;
    784 				if (UE_GET_DIR(epaddr)==UE_DIR_OUT) {
    785 					sc->sc_out_num_endpoints++;
    786 					sc->sc_out_num_jacks += p->num_jacks;
    787 				} else {
    788 					sc->sc_in_num_endpoints++;
    789 					sc->sc_in_num_jacks += p->num_jacks;
    790 				}
    791 				p++;
    792 			}
    793 		} else
    794 			epaddr = -1;
    795 		desc = NEXT_D(desc);
    796 		remain-=descsize;
    797 	}
    798 
    799 	/* sort endpoints */
    800 	num_ep = sc->sc_out_num_endpoints + sc->sc_in_num_endpoints;
    801 	p = sc->sc_endpoints;
    802 	endep = p + num_ep;
    803 	while (p<endep) {
    804 		lowest = p;
    805 		for (q=p+1; q<endep; q++) {
    806 			if ((UE_GET_DIR(lowest->addr)==UE_DIR_IN &&
    807 			     UE_GET_DIR(q->addr)==UE_DIR_OUT) ||
    808 			    ((UE_GET_DIR(lowest->addr)==
    809 			      UE_GET_DIR(q->addr)) &&
    810 			     (UE_GET_ADDR(lowest->addr)>
    811 			      UE_GET_ADDR(q->addr))))
    812 				lowest = q;
    813 		}
    814 		if (lowest != p) {
    815 			memcpy((void *)&tmpep, (void *)p, sizeof(tmpep));
    816 			memcpy((void *)p, (void *)lowest, sizeof(tmpep));
    817 			memcpy((void *)lowest, (void *)&tmpep, sizeof(tmpep));
    818 		}
    819 		p->num_open = 0;
    820 		p++;
    821 	}
    822 
    823 	sc->sc_out_ep = sc->sc_out_num_endpoints ? sc->sc_endpoints : NULL;
    824 	sc->sc_in_ep =
    825 	    sc->sc_in_num_endpoints ?
    826 		sc->sc_endpoints+sc->sc_out_num_endpoints : NULL;
    827 
    828 	return USBD_NORMAL_COMPLETION;
    829 }
    830 
    831 
    832 /*
    833  * jack stuffs
    834  */
    835 
    836 static usbd_status
    837 alloc_all_jacks(struct umidi_softc *sc)
    838 {
    839 	int i, j;
    840 	struct umidi_endpoint *ep;
    841 	struct umidi_jack *jack;
    842 	unsigned char *cn_spec;
    843 
    844 	if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_SEQ_PER_EP))
    845 		sc->cblnums_global = 0;
    846 	else if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_SEQ_GLOBAL))
    847 		sc->cblnums_global = 1;
    848 	else {
    849 		/*
    850 		 * I don't think this default is correct, but it preserves
    851 		 * the prior behavior of the code. That's why I defined two
    852 		 * complementary quirks. Any device for which the default
    853 		 * behavior is wrong can be made to work by giving it an
    854 		 * explicit quirk, and if a pattern ever develops (as I suspect
    855 		 * it will) that a lot of otherwise standard USB MIDI devices
    856 		 * need the CN_SEQ_PER_EP "quirk," then this default can be
    857 		 * changed to 0, and the only devices that will break are those
    858 		 * listing neither quirk, and they'll easily be fixed by giving
    859 		 * them the CN_SEQ_GLOBAL quirk.
    860 		 */
    861 		sc->cblnums_global = 1;
    862 	}
    863 
    864 	if (UMQ_ISTYPE(sc, UMQ_TYPE_CN_FIXED))
    865 		cn_spec = umidi_get_quirk_data_from_type(sc->sc_quirk,
    866 					    		 UMQ_TYPE_CN_FIXED);
    867 	else
    868 		cn_spec = NULL;
    869 
    870 	/* allocate/initialize structures */
    871 	sc->sc_jacks =
    872 	    malloc(sizeof(*sc->sc_out_jacks)*(sc->sc_in_num_jacks+
    873 					      sc->sc_out_num_jacks),
    874 		   M_USBDEV, M_WAITOK);
    875 	if (!sc->sc_jacks)
    876 		return USBD_NOMEM;
    877 	sc->sc_out_jacks =
    878 	    sc->sc_out_num_jacks ? sc->sc_jacks : NULL;
    879 	sc->sc_in_jacks =
    880 	    sc->sc_in_num_jacks ? sc->sc_jacks+sc->sc_out_num_jacks : NULL;
    881 
    882 	jack = &sc->sc_out_jacks[0];
    883 	for (i=0; i<sc->sc_out_num_jacks; i++) {
    884 		jack->opened = 0;
    885 		jack->binded = 0;
    886 		jack->arg = NULL;
    887 		jack->u.out.intr = NULL;
    888 		jack->midiman_ppkt = NULL;
    889 		if ( sc->cblnums_global )
    890 			jack->cable_number = i;
    891 		jack++;
    892 	}
    893 	jack = &sc->sc_in_jacks[0];
    894 	for (i=0; i<sc->sc_in_num_jacks; i++) {
    895 		jack->opened = 0;
    896 		jack->binded = 0;
    897 		jack->arg = NULL;
    898 		jack->u.in.intr = NULL;
    899 		if ( sc->cblnums_global )
    900 			jack->cable_number = i;
    901 		jack++;
    902 	}
    903 
    904 	/* assign each jacks to each endpoints */
    905 	jack = &sc->sc_out_jacks[0];
    906 	ep = &sc->sc_out_ep[0];
    907 	for (i=0; i<sc->sc_out_num_endpoints; i++) {
    908 		for (j=0; j<ep->num_jacks; j++) {
    909 			jack->endpoint = ep;
    910 			if ( cn_spec != NULL )
    911 				jack->cable_number = *cn_spec++;
    912 			else if ( !sc->cblnums_global )
    913 				jack->cable_number = j;
    914 			ep->jacks[jack->cable_number] = jack;
    915 			jack++;
    916 		}
    917 		ep++;
    918 	}
    919 	jack = &sc->sc_in_jacks[0];
    920 	ep = &sc->sc_in_ep[0];
    921 	for (i=0; i<sc->sc_in_num_endpoints; i++) {
    922 		for (j=0; j<ep->num_jacks; j++) {
    923 			jack->endpoint = ep;
    924 			if ( cn_spec != NULL )
    925 				jack->cable_number = *cn_spec++;
    926 			else if ( !sc->cblnums_global )
    927 				jack->cable_number = j;
    928 			ep->jacks[jack->cable_number] = jack;
    929 			jack++;
    930 		}
    931 		ep++;
    932 	}
    933 
    934 	return USBD_NORMAL_COMPLETION;
    935 }
    936 
    937 static void
    938 free_all_jacks(struct umidi_softc *sc)
    939 {
    940 	int s;
    941 
    942 	s = splaudio();
    943 	if (sc->sc_out_jacks) {
    944 		free(sc->sc_jacks, M_USBDEV);
    945 		sc->sc_jacks = sc->sc_in_jacks = sc->sc_out_jacks = NULL;
    946 	}
    947 	splx(s);
    948 }
    949 
    950 static usbd_status
    951 bind_jacks_to_mididev(struct umidi_softc *sc,
    952 		      struct umidi_jack *out_jack,
    953 		      struct umidi_jack *in_jack,
    954 		      struct umidi_mididev *mididev)
    955 {
    956 	if ((out_jack && out_jack->binded) || (in_jack && in_jack->binded))
    957 		return USBD_IN_USE;
    958 	if (mididev->out_jack || mididev->in_jack)
    959 		return USBD_IN_USE;
    960 
    961 	if (out_jack)
    962 		out_jack->binded = 1;
    963 	if (in_jack)
    964 		in_jack->binded = 1;
    965 	mididev->in_jack = in_jack;
    966 	mididev->out_jack = out_jack;
    967 
    968 	return USBD_NORMAL_COMPLETION;
    969 }
    970 
    971 static void
    972 unbind_jacks_from_mididev(struct umidi_mididev *mididev)
    973 {
    974 	if ((mididev->flags & FWRITE) && mididev->out_jack)
    975 		close_out_jack(mididev->out_jack);
    976 	if ((mididev->flags & FREAD) && mididev->in_jack)
    977 		close_in_jack(mididev->in_jack);
    978 
    979 	if (mididev->out_jack)
    980 		mididev->out_jack->binded = 0;
    981 	if (mididev->in_jack)
    982 		mididev->in_jack->binded = 0;
    983 	mididev->out_jack = mididev->in_jack = NULL;
    984 }
    985 
    986 static void
    987 unbind_all_jacks(struct umidi_softc *sc)
    988 {
    989 	int i;
    990 
    991 	if (sc->sc_mididevs)
    992 		for (i=0; i<sc->sc_num_mididevs; i++) {
    993 			unbind_jacks_from_mididev(&sc->sc_mididevs[i]);
    994 		}
    995 }
    996 
    997 static usbd_status
    998 assign_all_jacks_automatically(struct umidi_softc *sc)
    999 {
   1000 	usbd_status err;
   1001 	int i;
   1002 	struct umidi_jack *out, *in;
   1003 	signed char *asg_spec;
   1004 
   1005 	err =
   1006 	    alloc_all_mididevs(sc,
   1007 			       max(sc->sc_out_num_jacks, sc->sc_in_num_jacks));
   1008 	if (err!=USBD_NORMAL_COMPLETION)
   1009 		return err;
   1010 
   1011 	if ( UMQ_ISTYPE(sc, UMQ_TYPE_MD_FIXED))
   1012 		asg_spec = umidi_get_quirk_data_from_type(sc->sc_quirk,
   1013 					    		  UMQ_TYPE_MD_FIXED);
   1014 	else
   1015 		asg_spec = NULL;
   1016 
   1017 	for (i=0; i<sc->sc_num_mididevs; i++) {
   1018 		if ( asg_spec != NULL ) {
   1019 			if ( *asg_spec == -1 )
   1020 				out = NULL;
   1021 			else
   1022 				out = &sc->sc_out_jacks[*asg_spec];
   1023 			++ asg_spec;
   1024 			if ( *asg_spec == -1 )
   1025 				in = NULL;
   1026 			else
   1027 				in = &sc->sc_in_jacks[*asg_spec];
   1028 			++ asg_spec;
   1029 		} else {
   1030 			out = (i<sc->sc_out_num_jacks) ? &sc->sc_out_jacks[i]
   1031 			                               : NULL;
   1032 			in = (i<sc->sc_in_num_jacks) ? &sc->sc_in_jacks[i]
   1033 						     : NULL;
   1034 		}
   1035 		err = bind_jacks_to_mididev(sc, out, in, &sc->sc_mididevs[i]);
   1036 		if (err!=USBD_NORMAL_COMPLETION) {
   1037 			free_all_mididevs(sc);
   1038 			return err;
   1039 		}
   1040 	}
   1041 
   1042 	return USBD_NORMAL_COMPLETION;
   1043 }
   1044 
   1045 static usbd_status
   1046 open_out_jack(struct umidi_jack *jack, void *arg, void (*intr)(void *))
   1047 {
   1048 	struct umidi_endpoint *ep = jack->endpoint;
   1049 	umidi_packet_bufp end;
   1050 	int s;
   1051 	int err;
   1052 
   1053 	if (jack->opened)
   1054 		return USBD_IN_USE;
   1055 
   1056 	jack->arg = arg;
   1057 	jack->u.out.intr = intr;
   1058 	jack->midiman_ppkt = NULL;
   1059 	end = ep->buffer + ep->buffer_size / sizeof *ep->buffer;
   1060 	s = splusb();
   1061 	jack->opened = 1;
   1062 	ep->num_open++;
   1063 	/*
   1064 	 * out_solicit maintains an invariant that there will always be
   1065 	 * (num_open - num_scheduled) slots free in the buffer. as we have
   1066 	 * just incremented num_open, the buffer may be too full to satisfy
   1067 	 * the invariant until a transfer completes, for which we must wait.
   1068 	 */
   1069 	while ( end - ep->next_slot < ep->num_open - ep->num_scheduled ) {
   1070 		err = tsleep(ep, PWAIT|PCATCH, "umi op", mstohz(10));
   1071 		if ( err ) {
   1072 			ep->num_open--;
   1073 			jack->opened = 0;
   1074 			splx(s);
   1075 			return USBD_IOERROR;
   1076 		}
   1077 	}
   1078 	splx(s);
   1079 
   1080 	return USBD_NORMAL_COMPLETION;
   1081 }
   1082 
   1083 static usbd_status
   1084 open_in_jack(struct umidi_jack *jack, void *arg, void (*intr)(void *, int))
   1085 {
   1086 	usbd_status err = USBD_NORMAL_COMPLETION;
   1087 	struct umidi_endpoint *ep = jack->endpoint;
   1088 
   1089 	if (jack->opened)
   1090 		return USBD_IN_USE;
   1091 
   1092 	jack->arg = arg;
   1093 	jack->u.in.intr = intr;
   1094 	jack->opened = 1;
   1095 	if (ep->num_open++==0 && UE_GET_DIR(ep->addr)==UE_DIR_IN) {
   1096 		err = start_input_transfer(ep);
   1097 		if (err != USBD_NORMAL_COMPLETION &&
   1098 		    err != USBD_IN_PROGRESS) {
   1099 			ep->num_open--;
   1100 		}
   1101 	}
   1102 
   1103 	return err;
   1104 }
   1105 
   1106 static void
   1107 close_out_jack(struct umidi_jack *jack)
   1108 {
   1109 	struct umidi_endpoint *ep;
   1110 	int s;
   1111 	u_int16_t mask;
   1112 	int err;
   1113 
   1114 	if (jack->opened) {
   1115 		ep = jack->endpoint;
   1116 		mask = 1 << (jack->cable_number);
   1117 		s = splusb();
   1118 		while ( mask & (ep->this_schedule | ep->next_schedule) ) {
   1119 			err = tsleep(ep, PWAIT|PCATCH, "umi dr", mstohz(10));
   1120 			if ( err )
   1121 				break;
   1122 		}
   1123 		jack->opened = 0;
   1124 		jack->endpoint->num_open--;
   1125 		ep->this_schedule &= ~mask;
   1126 		ep->next_schedule &= ~mask;
   1127 		splx(s);
   1128 	}
   1129 }
   1130 
   1131 static void
   1132 close_in_jack(struct umidi_jack *jack)
   1133 {
   1134 	if (jack->opened) {
   1135 		jack->opened = 0;
   1136 		if (--jack->endpoint->num_open == 0) {
   1137 		    usbd_abort_pipe(jack->endpoint->pipe);
   1138 		}
   1139 	}
   1140 }
   1141 
   1142 static usbd_status
   1143 attach_mididev(struct umidi_softc *sc, struct umidi_mididev *mididev)
   1144 {
   1145 	if (mididev->sc)
   1146 		return USBD_IN_USE;
   1147 
   1148 	mididev->sc = sc;
   1149 
   1150 	mididev->label = describe_mididev(mididev);
   1151 
   1152 	mididev->mdev = midi_attach_mi(&umidi_hw_if, mididev, &sc->sc_dev);
   1153 
   1154 	return USBD_NORMAL_COMPLETION;
   1155 }
   1156 
   1157 static usbd_status
   1158 detach_mididev(struct umidi_mididev *mididev, int flags)
   1159 {
   1160 	if (!mididev->sc)
   1161 		return USBD_NO_ADDR;
   1162 
   1163 	if (mididev->opened) {
   1164 		umidi_close(mididev);
   1165 	}
   1166 	unbind_jacks_from_mididev(mididev);
   1167 
   1168 	if (mididev->mdev)
   1169 		config_detach(mididev->mdev, flags);
   1170 
   1171 	if (NULL != mididev->label) {
   1172 		free(mididev->label, M_USBDEV);
   1173 		mididev->label = NULL;
   1174 	}
   1175 
   1176 	mididev->sc = NULL;
   1177 
   1178 	return USBD_NORMAL_COMPLETION;
   1179 }
   1180 
   1181 static usbd_status
   1182 deactivate_mididev(struct umidi_mididev *mididev)
   1183 {
   1184 	if (mididev->out_jack)
   1185 		mididev->out_jack->binded = 0;
   1186 	if (mididev->in_jack)
   1187 		mididev->in_jack->binded = 0;
   1188 	config_deactivate(mididev->mdev);
   1189 
   1190 	return USBD_NORMAL_COMPLETION;
   1191 }
   1192 
   1193 static usbd_status
   1194 alloc_all_mididevs(struct umidi_softc *sc, int nmidi)
   1195 {
   1196 	sc->sc_num_mididevs = nmidi;
   1197 	sc->sc_mididevs = malloc(sizeof(*sc->sc_mididevs)*nmidi,
   1198 				 M_USBDEV, M_WAITOK|M_ZERO);
   1199 	if (!sc->sc_mididevs)
   1200 		return USBD_NOMEM;
   1201 
   1202 	return USBD_NORMAL_COMPLETION;
   1203 }
   1204 
   1205 static void
   1206 free_all_mididevs(struct umidi_softc *sc)
   1207 {
   1208 	sc->sc_num_mididevs = 0;
   1209 	if (sc->sc_mididevs)
   1210 		free(sc->sc_mididevs, M_USBDEV);
   1211 }
   1212 
   1213 static usbd_status
   1214 attach_all_mididevs(struct umidi_softc *sc)
   1215 {
   1216 	usbd_status err;
   1217 	int i;
   1218 
   1219 	if (sc->sc_mididevs)
   1220 		for (i=0; i<sc->sc_num_mididevs; i++) {
   1221 			err = attach_mididev(sc, &sc->sc_mididevs[i]);
   1222 			if (err!=USBD_NORMAL_COMPLETION)
   1223 				return err;
   1224 		}
   1225 
   1226 	return USBD_NORMAL_COMPLETION;
   1227 }
   1228 
   1229 static usbd_status
   1230 detach_all_mididevs(struct umidi_softc *sc, int flags)
   1231 {
   1232 	usbd_status err;
   1233 	int i;
   1234 
   1235 	if (sc->sc_mididevs)
   1236 		for (i=0; i<sc->sc_num_mididevs; i++) {
   1237 			err = detach_mididev(&sc->sc_mididevs[i], flags);
   1238 			if (err!=USBD_NORMAL_COMPLETION)
   1239 				return err;
   1240 		}
   1241 
   1242 	return USBD_NORMAL_COMPLETION;
   1243 }
   1244 
   1245 static usbd_status
   1246 deactivate_all_mididevs(struct umidi_softc *sc)
   1247 {
   1248 	usbd_status err;
   1249 	int i;
   1250 
   1251 	if (sc->sc_mididevs)
   1252 		for (i=0; i<sc->sc_num_mididevs; i++) {
   1253 			err = deactivate_mididev(&sc->sc_mididevs[i]);
   1254 			if (err!=USBD_NORMAL_COMPLETION)
   1255 				return err;
   1256 		}
   1257 
   1258 	return USBD_NORMAL_COMPLETION;
   1259 }
   1260 
   1261 /*
   1262  * TODO: the 0-based cable numbers will often not match the labeling of the
   1263  * equipment. Ideally:
   1264  *  For class-compliant devices: get the iJack string from the jack descriptor.
   1265  *  Otherwise:
   1266  *  - support a DISPLAY_BASE_CN quirk (add the value to each internal cable
   1267  *    number for display)
   1268  *  - support an array quirk explictly giving a char * for each jack.
   1269  * For now, you get 0-based cable numbers. If there are multiple endpoints and
   1270  * the CNs are not globally unique, each is shown with its associated endpoint
   1271  * address in hex also. That should not be necessary when using iJack values
   1272  * or a quirk array.
   1273  */
   1274 static char *
   1275 describe_mididev(struct umidi_mididev *md)
   1276 {
   1277 	char in_label[16];
   1278 	char out_label[16];
   1279 	char *unit_label;
   1280 	char *final_label;
   1281 	struct umidi_softc *sc;
   1282 	int show_ep_in;
   1283 	int show_ep_out;
   1284 	size_t len;
   1285 
   1286 	sc = md->sc;
   1287 	show_ep_in  = sc-> sc_in_num_endpoints > 1 && !sc->cblnums_global;
   1288 	show_ep_out = sc->sc_out_num_endpoints > 1 && !sc->cblnums_global;
   1289 
   1290 	if ( NULL != md->in_jack )
   1291 		snprintf(in_label, sizeof in_label,
   1292 		    show_ep_in ? "<%d(%x) " : "<%d ",
   1293 		    md->in_jack->cable_number,
   1294 		    md->in_jack->endpoint->addr);
   1295 	else
   1296 		in_label[0] = '\0';
   1297 
   1298 	if ( NULL != md->out_jack )
   1299 		snprintf(out_label, sizeof out_label,
   1300 		    show_ep_out ? ">%d(%x) " : ">%d ",
   1301 		    md->out_jack->cable_number,
   1302 		    md->out_jack->endpoint->addr);
   1303 	else
   1304 		in_label[0] = '\0';
   1305 
   1306 	unit_label = USBDEVNAME(sc->sc_dev);
   1307 
   1308 	len = strlen(in_label) + strlen(out_label) + strlen(unit_label) + 4;
   1309 
   1310 	final_label = malloc(len, M_USBDEV, M_WAITOK);
   1311 
   1312 	snprintf(final_label, len, "%s%son %s",
   1313 	    in_label, out_label, unit_label);
   1314 
   1315 	return final_label;
   1316 }
   1317 
   1318 #ifdef UMIDI_DEBUG
   1319 static void
   1320 dump_sc(struct umidi_softc *sc)
   1321 {
   1322 	int i;
   1323 
   1324 	DPRINTFN(10, ("%s: dump_sc\n", USBDEVNAME(sc->sc_dev)));
   1325 	for (i=0; i<sc->sc_out_num_endpoints; i++) {
   1326 		DPRINTFN(10, ("\tout_ep(%p):\n", &sc->sc_out_ep[i]));
   1327 		dump_ep(&sc->sc_out_ep[i]);
   1328 	}
   1329 	for (i=0; i<sc->sc_in_num_endpoints; i++) {
   1330 		DPRINTFN(10, ("\tin_ep(%p):\n", &sc->sc_in_ep[i]));
   1331 		dump_ep(&sc->sc_in_ep[i]);
   1332 	}
   1333 }
   1334 
   1335 static void
   1336 dump_ep(struct umidi_endpoint *ep)
   1337 {
   1338 	int i;
   1339 	for (i=0; i<UMIDI_MAX_EPJACKS; i++) {
   1340 		if (NULL==ep->jacks[i])
   1341 			continue;
   1342 		DPRINTFN(10, ("\t\tjack[%d]:%p:\n", i, ep->jacks[i]));
   1343 		dump_jack(ep->jacks[i]);
   1344 	}
   1345 }
   1346 static void
   1347 dump_jack(struct umidi_jack *jack)
   1348 {
   1349 	DPRINTFN(10, ("\t\t\tep=%p\n",
   1350 		      jack->endpoint));
   1351 }
   1352 
   1353 #endif /* UMIDI_DEBUG */
   1354 
   1355 
   1356 
   1357 /*
   1358  * MUX MIDI PACKET
   1359  */
   1360 
   1361 static const int packet_length[16] = {
   1362 	/*0*/	-1,
   1363 	/*1*/	-1,
   1364 	/*2*/	2,
   1365 	/*3*/	3,
   1366 	/*4*/	3,
   1367 	/*5*/	1,
   1368 	/*6*/	2,
   1369 	/*7*/	3,
   1370 	/*8*/	3,
   1371 	/*9*/	3,
   1372 	/*A*/	3,
   1373 	/*B*/	3,
   1374 	/*C*/	2,
   1375 	/*D*/	2,
   1376 	/*E*/	3,
   1377 	/*F*/	1,
   1378 };
   1379 
   1380 #define	GET_CN(p)		(((unsigned char)(p)>>4)&0x0F)
   1381 #define GET_CIN(p)		((unsigned char)(p)&0x0F)
   1382 #define MIX_CN_CIN(cn, cin) \
   1383 	((unsigned char)((((unsigned char)(cn)&0x0F)<<4)| \
   1384 			  ((unsigned char)(cin)&0x0F)))
   1385 
   1386 static usbd_status
   1387 start_input_transfer(struct umidi_endpoint *ep)
   1388 {
   1389 	usbd_setup_xfer(ep->xfer, ep->pipe,
   1390 			(usbd_private_handle)ep,
   1391 			ep->buffer, ep->buffer_size,
   1392 			USBD_SHORT_XFER_OK | USBD_NO_COPY,
   1393                         USBD_NO_TIMEOUT, in_intr);
   1394 	return usbd_transfer(ep->xfer);
   1395 }
   1396 
   1397 static usbd_status
   1398 start_output_transfer(struct umidi_endpoint *ep)
   1399 {
   1400 	usbd_status rv;
   1401 	u_int32_t length;
   1402 	int i;
   1403 
   1404 	length = (ep->next_slot - ep->buffer) * sizeof *ep->buffer;
   1405 	DPRINTFN(200,("umidi out transfer: start %p end %p length %u\n",
   1406 	    ep->buffer, ep->next_slot, length));
   1407 	usbd_setup_xfer(ep->xfer, ep->pipe,
   1408 			(usbd_private_handle)ep,
   1409 			ep->buffer, length,
   1410 			USBD_NO_COPY, USBD_NO_TIMEOUT, out_intr);
   1411 	rv = usbd_transfer(ep->xfer);
   1412 
   1413 	/*
   1414 	 * Once the transfer is scheduled, no more adding to partial
   1415 	 * packets within it.
   1416 	 */
   1417 	if (UMQ_ISTYPE(ep->sc, UMQ_TYPE_MIDIMAN_GARBLE)) {
   1418 		for (i=0; i<UMIDI_MAX_EPJACKS; ++i)
   1419 			if (NULL != ep->jacks[i])
   1420 				ep->jacks[i]->midiman_ppkt = NULL;
   1421 	}
   1422 
   1423 	return rv;
   1424 }
   1425 
   1426 #ifdef UMIDI_DEBUG
   1427 #define DPR_PACKET(dir, sc, p)						\
   1428 if ((unsigned char)(p)[1]!=0xFE)				\
   1429 	DPRINTFN(500,							\
   1430 		 ("%s: umidi packet(" #dir "): %02X %02X %02X %02X\n",	\
   1431 		  USBDEVNAME(sc->sc_dev),				\
   1432 		  (unsigned char)(p)[0],			\
   1433 		  (unsigned char)(p)[1],			\
   1434 		  (unsigned char)(p)[2],			\
   1435 		  (unsigned char)(p)[3]));
   1436 #else
   1437 #define DPR_PACKET(dir, sc, p)
   1438 #endif
   1439 
   1440 /*
   1441  * A 4-byte Midiman packet superficially resembles a 4-byte USB MIDI packet
   1442  * with the cable number and length in the last byte instead of the first,
   1443  * but there the resemblance ends. Where a USB MIDI packet is a semantic
   1444  * unit, a Midiman packet is just a wrapper for 1 to 3 bytes of raw MIDI
   1445  * with a cable nybble and a length nybble (which, unlike the CIN of a
   1446  * real USB MIDI packet, has no semantics at all besides the length).
   1447  * A packet received from a Midiman may contain part of a MIDI message,
   1448  * more than one MIDI message, or parts of more than one MIDI message. A
   1449  * three-byte MIDI message may arrive in three packets of data length 1, and
   1450  * running status may be used. Happily, the midi(4) driver above us will put
   1451  * it all back together, so the only cost is in USB bandwidth. The device
   1452  * has an easier time with what it receives from us: we'll pack messages in
   1453  * and across packets, but filling the packets whenever possible and,
   1454  * as midi(4) hands us a complete message at a time, we'll never send one
   1455  * in a dribble of short packets.
   1456  */
   1457 
   1458 static int
   1459 out_jack_output(struct umidi_jack *out_jack, u_char *src, int len, int cin)
   1460 {
   1461 	struct umidi_endpoint *ep = out_jack->endpoint;
   1462 	struct umidi_softc *sc = ep->sc;
   1463 	unsigned char *packet;
   1464 	int s;
   1465 	int plen;
   1466 	int poff;
   1467 
   1468 	if (sc->sc_dying)
   1469 		return EIO;
   1470 
   1471 	if (!out_jack->opened)
   1472 		return ENODEV; /* XXX as it was, is this the right errno? */
   1473 
   1474 #ifdef UMIDI_DEBUG
   1475 	if ( umididebug >= 100 )
   1476 		microtime(&umidi_tv);
   1477 #endif
   1478 	DPRINTFN(100, ("umidi out: %lu.%06lus ep=%p cn=%d len=%d cin=%#x\n",
   1479 	    umidi_tv.tv_sec%100, umidi_tv.tv_usec,
   1480 	    ep, out_jack->cable_number, len, cin));
   1481 
   1482 	s = splusb();
   1483 	packet = *ep->next_slot++;
   1484 	KASSERT(ep->buffer_size >=
   1485 	    (ep->next_slot - ep->buffer) * sizeof *ep->buffer);
   1486 	memset(packet, 0, UMIDI_PACKET_SIZE);
   1487 	if (UMQ_ISTYPE(sc, UMQ_TYPE_MIDIMAN_GARBLE)) {
   1488 		if (NULL != out_jack->midiman_ppkt) { /* fill out a prev pkt */
   1489 			poff = 0x0f & (out_jack->midiman_ppkt[3]);
   1490 			plen = 3 - poff;
   1491 			if (plen > len)
   1492 				plen = len;
   1493 			memcpy(out_jack->midiman_ppkt+poff, src, plen);
   1494 			src += plen;
   1495 			len -= plen;
   1496 			plen += poff;
   1497 			out_jack->midiman_ppkt[3] =
   1498 			    MIX_CN_CIN(out_jack->cable_number, plen);
   1499 			DPR_PACKET(out+, sc, out_jack->midiman_ppkt);
   1500 			if (3 == plen)
   1501 				out_jack->midiman_ppkt = NULL; /* no more */
   1502 		}
   1503 		if (0 == len)
   1504 			ep->next_slot--; /* won't be needed, nevermind */
   1505 		else {
   1506 			memcpy(packet, src, len);
   1507 			packet[3] = MIX_CN_CIN(out_jack->cable_number, len);
   1508 			DPR_PACKET(out, sc, packet);
   1509 			if (len < 3)
   1510 				out_jack->midiman_ppkt = packet;
   1511 		}
   1512 	} else { /* the nice simple USB class-compliant case */
   1513 		packet[0] = MIX_CN_CIN(out_jack->cable_number, cin);
   1514 		memcpy(packet+1, src, len);
   1515 		DPR_PACKET(out, sc, packet);
   1516 	}
   1517 	ep->next_schedule |= 1<<(out_jack->cable_number);
   1518 	++ ep->num_scheduled;
   1519 	if ( !ep->armed  &&  !ep->soliciting ) {
   1520 #ifdef __HAVE_GENERIC_SOFT_INTERRUPTS
   1521 		/*
   1522 		 * It would be bad to call out_solicit directly here (the
   1523 		 * caller need not be reentrant) but a soft interrupt allows
   1524 		 * solicit to run immediately the caller exits its critical
   1525 		 * section, and if the caller has more to write we can get it
   1526 		 * before starting the USB transfer, and send a longer one.
   1527 		 */
   1528 		ep->soliciting = 1;
   1529 		softintr_schedule(ep->solicit_cookie);
   1530 #else
   1531 		/*
   1532 		 * This alternative is a little less desirable, because if the
   1533 		 * writer has several messages to go at once, the first will go
   1534 		 * in a USB frame all to itself, and the rest in a full-size
   1535 		 * transfer one frame later (solicited on the first frame's
   1536 		 * completion interrupt). But it's simple.
   1537 		 */
   1538 		ep->armed = (USBD_IN_PROGRESS == start_output_transfer(ep));
   1539 #endif
   1540 	}
   1541 	splx(s);
   1542 
   1543 	return 0;
   1544 }
   1545 
   1546 static void
   1547 in_intr(usbd_xfer_handle xfer, usbd_private_handle priv,
   1548     usbd_status status)
   1549 {
   1550 	int cn, len, i;
   1551 	struct umidi_endpoint *ep = (struct umidi_endpoint *)priv;
   1552 	struct umidi_jack *jack;
   1553 	unsigned char *packet;
   1554 	umidi_packet_bufp slot;
   1555 	umidi_packet_bufp end;
   1556 	unsigned char *data;
   1557 	u_int32_t count;
   1558 
   1559 	if (ep->sc->sc_dying || !ep->num_open)
   1560 		return;
   1561 
   1562 	usbd_get_xfer_status(xfer, NULL, NULL, &count, NULL);
   1563         if ( 0 == count % UMIDI_PACKET_SIZE ) {
   1564 		DPRINTFN(200,("%s: input endpoint %p transfer length %u\n",
   1565 			     USBDEVNAME(ep->sc->sc_dev), ep, count));
   1566         } else {
   1567                 DPRINTF(("%s: input endpoint %p odd transfer length %u\n",
   1568                         USBDEVNAME(ep->sc->sc_dev), ep, count));
   1569         }
   1570 
   1571 	slot = ep->buffer;
   1572 	end = slot + count / sizeof *slot;
   1573 
   1574 	for ( packet = *slot; slot < end; packet = *++slot ) {
   1575 
   1576 		if ( UMQ_ISTYPE(ep->sc, UMQ_TYPE_MIDIMAN_GARBLE) ) {
   1577 			cn = (0xf0&(packet[3]))>>4;
   1578 			len = 0x0f&(packet[3]);
   1579 			data = packet;
   1580 		} else {
   1581 			cn = GET_CN(packet[0]);
   1582 			len = packet_length[GET_CIN(packet[0])];
   1583 			data = packet + 1;
   1584 		}
   1585 		/* 0 <= cn <= 15 by inspection of above code */
   1586 		if (!(jack = ep->jacks[cn]) || cn != jack->cable_number) {
   1587 			DPRINTF(("%s: stray input endpoint %p cable %d len %d: "
   1588 			         "%02X %02X %02X (try CN_SEQ quirk?)\n",
   1589 				 USBDEVNAME(ep->sc->sc_dev), ep, cn, len,
   1590 				 (unsigned)data[0],
   1591 				 (unsigned)data[1],
   1592 				 (unsigned)data[2]));
   1593 			return;
   1594 		}
   1595 
   1596 		if (!jack->binded || !jack->opened)
   1597 			continue;
   1598 
   1599 		DPRINTFN(500,("%s: input endpoint %p cable %d len %d: "
   1600 		             "%02X %02X %02X\n",
   1601 			     USBDEVNAME(ep->sc->sc_dev), ep, cn, len,
   1602 			     (unsigned)data[0],
   1603 			     (unsigned)data[1],
   1604 			     (unsigned)data[2]));
   1605 
   1606 		if (jack->u.in.intr) {
   1607 			for (i=0; i<len; i++) {
   1608 				(*jack->u.in.intr)(jack->arg, data[i]);
   1609 			}
   1610 		}
   1611 
   1612 	}
   1613 
   1614 	(void)start_input_transfer(ep);
   1615 }
   1616 
   1617 static void
   1618 out_intr(usbd_xfer_handle xfer, usbd_private_handle priv,
   1619     usbd_status status)
   1620 {
   1621 	struct umidi_endpoint *ep = (struct umidi_endpoint *)priv;
   1622 	struct umidi_softc *sc = ep->sc;
   1623 	u_int32_t count;
   1624 
   1625 	if (sc->sc_dying)
   1626 		return;
   1627 
   1628 #ifdef UMIDI_DEBUG
   1629 	if ( umididebug >= 200 )
   1630 		microtime(&umidi_tv);
   1631 #endif
   1632 	usbd_get_xfer_status(xfer, NULL, NULL, &count, NULL);
   1633         if ( 0 == count % UMIDI_PACKET_SIZE ) {
   1634 		DPRINTFN(200,("%s: %lu.%06lus out ep %p xfer length %u\n",
   1635 			     USBDEVNAME(ep->sc->sc_dev),
   1636 			     umidi_tv.tv_sec%100, umidi_tv.tv_usec, ep, count));
   1637         } else {
   1638                 DPRINTF(("%s: output endpoint %p odd transfer length %u\n",
   1639                         USBDEVNAME(ep->sc->sc_dev), ep, count));
   1640         }
   1641 	count /= UMIDI_PACKET_SIZE;
   1642 
   1643 	/*
   1644 	 * If while the transfer was pending we buffered any new messages,
   1645 	 * move them to the start of the buffer.
   1646 	 */
   1647 	ep->next_slot -= count;
   1648 	if ( ep->buffer < ep->next_slot ) {
   1649 		memcpy(ep->buffer, ep->buffer + count,
   1650 		       (char *)ep->next_slot - (char *)ep->buffer);
   1651 	}
   1652 	wakeup(ep);
   1653 	/*
   1654 	 * Do not want anyone else to see armed <- 0 before soliciting <- 1.
   1655 	 * Running at splusb so the following should happen to be safe.
   1656 	 */
   1657 	ep->armed = 0;
   1658 	if ( !ep->soliciting ) {
   1659 		ep->soliciting = 1;
   1660 		out_solicit(ep);
   1661 	}
   1662 }
   1663 
   1664 /*
   1665  * A jack on which we have received a packet must be called back on its
   1666  * out.intr handler before it will send us another; it is considered
   1667  * 'scheduled'. It is nice and predictable - as long as it is scheduled,
   1668  * we need no extra buffer space for it.
   1669  *
   1670  * In contrast, a jack that is open but not scheduled may supply us a packet
   1671  * at any time, driven by the top half, and we must be able to accept it, no
   1672  * excuses. So we must ensure that at any point in time there are at least
   1673  * (num_open - num_scheduled) slots free.
   1674  *
   1675  * As long as there are more slots free than that minimum, we can loop calling
   1676  * scheduled jacks back on their "interrupt" handlers, soliciting more
   1677  * packets, starting the USB transfer only when the buffer space is down to
   1678  * the minimum or no jack has any more to send.
   1679  */
   1680 static void
   1681 out_solicit(void *arg)
   1682 {
   1683 	struct umidi_endpoint *ep = arg;
   1684 	int s;
   1685 	umidi_packet_bufp end;
   1686 	u_int16_t which;
   1687 	struct umidi_jack *jack;
   1688 
   1689 	end = ep->buffer + ep->buffer_size / sizeof *ep->buffer;
   1690 
   1691 	for ( ;; ) {
   1692 		s = splusb();
   1693 		if ( end - ep->next_slot <= ep->num_open - ep->num_scheduled )
   1694 			break; /* at splusb */
   1695 		if ( ep->this_schedule == 0 ) {
   1696 			if ( ep->next_schedule == 0 )
   1697 				break; /* at splusb */
   1698 			ep->this_schedule = ep->next_schedule;
   1699 			ep->next_schedule = 0;
   1700 		}
   1701 		/*
   1702 		 * At least one jack is scheduled. Find and mask off the least
   1703 		 * set bit in this_schedule and decrement num_scheduled.
   1704 		 * Convert mask to bit index to find the corresponding jack,
   1705 		 * and call its intr handler. If it has a message, it will call
   1706 		 * back one of the output methods, which will set its bit in
   1707 		 * next_schedule (not copied into this_schedule until the
   1708 		 * latter is empty). In this way we round-robin the jacks that
   1709 		 * have messages to send, until the buffer is as full as we
   1710 		 * dare, and then start a transfer.
   1711 		 */
   1712 		which = ep->this_schedule;
   1713 		which &= (~which)+1; /* now mask of least set bit */
   1714 		ep->this_schedule &= ~which;
   1715 		-- ep->num_scheduled;
   1716 		splx(s);
   1717 
   1718 		-- which; /* now 1s below mask - count 1s to get index */
   1719 		which -= ((which >> 1) & 0x5555);/* SWAR credit aggregate.org */
   1720 		which = (((which >> 2) & 0x3333) + (which & 0x3333));
   1721 		which = (((which >> 4) + which) & 0x0f0f);
   1722 		which +=  (which >> 8);
   1723 		which &= 0x1f; /* the bit index a/k/a jack number */
   1724 
   1725 		jack = ep->jacks[which];
   1726 		if (jack->u.out.intr)
   1727 			(*jack->u.out.intr)(jack->arg);
   1728 	}
   1729 	/* splusb at loop exit */
   1730 	if ( !ep->armed  &&  ep->next_slot > ep->buffer )
   1731 		ep->armed = (USBD_IN_PROGRESS == start_output_transfer(ep));
   1732 	ep->soliciting = 0;
   1733 	splx(s);
   1734 }
   1735