xref: /linux/sound/usb/midi.c (revision 36ec09e2637c3430acb8ec8fc3c303d9f1a24837)
1 /*
2  * usbmidi.c - ALSA USB MIDI driver
3  *
4  * Copyright (c) 2002-2009 Clemens Ladisch
5  * All rights reserved.
6  *
7  * Based on the OSS usb-midi driver by NAGANO Daisuke,
8  *          NetBSD's umidi driver by Takuya SHIOZAKI,
9  *          the "USB Device Class Definition for MIDI Devices" by Roland
10  *
11  * Redistribution and use in source and binary forms, with or without
12  * modification, are permitted provided that the following conditions
13  * are met:
14  * 1. Redistributions of source code must retain the above copyright
15  *    notice, this list of conditions, and the following disclaimer,
16  *    without modification.
17  * 2. The name of the author may not be used to endorse or promote products
18  *    derived from this software without specific prior written permission.
19  *
20  * Alternatively, this software may be distributed and/or modified under the
21  * terms of the GNU General Public License as published by the Free Software
22  * Foundation; either version 2 of the License, or (at your option) any later
23  * version.
24  *
25  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
26  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
27  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
28  * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR
29  * ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
30  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
31  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
32  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
33  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
34  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
35  * SUCH DAMAGE.
36  */
37 
38 #include <linux/kernel.h>
39 #include <linux/types.h>
40 #include <linux/bitops.h>
41 #include <linux/interrupt.h>
42 #include <linux/spinlock.h>
43 #include <linux/string.h>
44 #include <linux/init.h>
45 #include <linux/slab.h>
46 #include <linux/timer.h>
47 #include <linux/usb.h>
48 #include <linux/wait.h>
49 #include <linux/usb/audio.h>
50 #include <linux/usb/midi.h>
51 #include <linux/module.h>
52 
53 #include <sound/core.h>
54 #include <sound/control.h>
55 #include <sound/rawmidi.h>
56 #include <sound/asequencer.h>
57 #include "usbaudio.h"
58 #include "midi.h"
59 #include "power.h"
60 #include "helper.h"
61 
62 /*
63  * define this to log all USB packets
64  */
65 /* #define DUMP_PACKETS */
66 
67 /*
68  * how long to wait after some USB errors, so that hub_wq can disconnect() us
69  * without too many spurious errors
70  */
71 #define ERROR_DELAY_JIFFIES (HZ / 10)
72 
73 #define OUTPUT_URBS 7
74 #define INPUT_URBS 7
75 
76 
77 MODULE_AUTHOR("Clemens Ladisch <clemens@ladisch.de>");
78 MODULE_DESCRIPTION("USB Audio/MIDI helper module");
79 MODULE_LICENSE("Dual BSD/GPL");
80 
81 struct snd_usb_midi_in_endpoint;
82 struct snd_usb_midi_out_endpoint;
83 struct snd_usb_midi_endpoint;
84 
85 struct usb_protocol_ops {
86 	void (*input)(struct snd_usb_midi_in_endpoint*, uint8_t*, int);
87 	void (*output)(struct snd_usb_midi_out_endpoint *ep, struct urb *urb);
88 	void (*output_packet)(struct urb*, uint8_t, uint8_t, uint8_t, uint8_t);
89 	void (*init_out_endpoint)(struct snd_usb_midi_out_endpoint *);
90 	void (*finish_out_endpoint)(struct snd_usb_midi_out_endpoint *);
91 };
92 
93 struct snd_usb_midi {
94 	struct usb_device *dev;
95 	struct snd_card *card;
96 	struct usb_interface *iface;
97 	const struct snd_usb_audio_quirk *quirk;
98 	struct snd_rawmidi *rmidi;
99 	const struct usb_protocol_ops *usb_protocol_ops;
100 	struct list_head list;
101 	struct timer_list error_timer;
102 	spinlock_t disc_lock;
103 	struct rw_semaphore disc_rwsem;
104 	struct mutex mutex;
105 	u32 usb_id;
106 	int next_midi_device;
107 
108 	struct snd_usb_midi_endpoint {
109 		struct snd_usb_midi_out_endpoint *out;
110 		struct snd_usb_midi_in_endpoint *in;
111 	} endpoints[MIDI_MAX_ENDPOINTS];
112 	unsigned long input_triggered;
113 	unsigned int opened[2];
114 	unsigned char disconnected;
115 	unsigned char input_running;
116 
117 	struct snd_kcontrol *roland_load_ctl;
118 };
119 
120 struct snd_usb_midi_out_endpoint {
121 	struct snd_usb_midi *umidi;
122 	struct out_urb_context {
123 		struct urb *urb;
124 		struct snd_usb_midi_out_endpoint *ep;
125 	} urbs[OUTPUT_URBS];
126 	unsigned int active_urbs;
127 	unsigned int drain_urbs;
128 	int max_transfer;		/* size of urb buffer */
129 	struct work_struct work;
130 	unsigned int next_urb;
131 	spinlock_t buffer_lock;
132 
133 	struct usbmidi_out_port {
134 		struct snd_usb_midi_out_endpoint *ep;
135 		struct snd_rawmidi_substream *substream;
136 		int active;
137 		uint8_t cable;		/* cable number << 4 */
138 		uint8_t state;
139 #define STATE_UNKNOWN	0
140 #define STATE_1PARAM	1
141 #define STATE_2PARAM_1	2
142 #define STATE_2PARAM_2	3
143 #define STATE_SYSEX_0	4
144 #define STATE_SYSEX_1	5
145 #define STATE_SYSEX_2	6
146 		uint8_t data[2];
147 	} ports[0x10];
148 	int current_port;
149 
150 	wait_queue_head_t drain_wait;
151 };
152 
153 struct snd_usb_midi_in_endpoint {
154 	struct snd_usb_midi *umidi;
155 	struct urb *urbs[INPUT_URBS];
156 	struct usbmidi_in_port {
157 		struct snd_rawmidi_substream *substream;
158 		u8 running_status_length;
159 	} ports[0x10];
160 	u8 seen_f5;
161 	bool in_sysex;
162 	u8 last_cin;
163 	u8 error_resubmit;
164 	int current_port;
165 };
166 
167 static void snd_usbmidi_do_output(struct snd_usb_midi_out_endpoint *ep);
168 
169 static const uint8_t snd_usbmidi_cin_length[] = {
170 	0, 0, 2, 3, 3, 1, 2, 3, 3, 3, 3, 3, 2, 2, 3, 1
171 };
172 
173 /*
174  * Submits the URB, with error handling.
175  */
176 static int snd_usbmidi_submit_urb(struct urb *urb, gfp_t flags)
177 {
178 	int err = usb_submit_urb(urb, flags);
179 	if (err < 0 && err != -ENODEV)
180 		dev_err(&urb->dev->dev, "usb_submit_urb: %d\n", err);
181 	return err;
182 }
183 
184 /*
185  * Error handling for URB completion functions.
186  */
187 static int snd_usbmidi_urb_error(const struct urb *urb)
188 {
189 	switch (urb->status) {
190 	/* manually unlinked, or device gone */
191 	case -ENOENT:
192 	case -ECONNRESET:
193 	case -ESHUTDOWN:
194 	case -ENODEV:
195 		return -ENODEV;
196 	/* errors that might occur during unplugging */
197 	case -EPROTO:
198 	case -ETIME:
199 	case -EILSEQ:
200 		return -EIO;
201 	default:
202 		dev_err(&urb->dev->dev, "urb status %d\n", urb->status);
203 		return 0; /* continue */
204 	}
205 }
206 
207 /*
208  * Receives a chunk of MIDI data.
209  */
210 static void snd_usbmidi_input_data(struct snd_usb_midi_in_endpoint *ep,
211 				   int portidx, uint8_t *data, int length)
212 {
213 	struct usbmidi_in_port *port = &ep->ports[portidx];
214 
215 	if (!port->substream) {
216 		dev_dbg(&ep->umidi->dev->dev, "unexpected port %d!\n", portidx);
217 		return;
218 	}
219 	if (!test_bit(port->substream->number, &ep->umidi->input_triggered))
220 		return;
221 	snd_rawmidi_receive(port->substream, data, length);
222 }
223 
224 #ifdef DUMP_PACKETS
225 static void dump_urb(const char *type, const u8 *data, int length)
226 {
227 	pr_debug("%s packet: [", type);
228 	for (; length > 0; ++data, --length)
229 		pr_cont(" %02x", *data);
230 	pr_cont(" ]\n");
231 }
232 #else
233 #define dump_urb(type, data, length) /* nothing */
234 #endif
235 
236 /*
237  * Processes the data read from the device.
238  */
239 static void snd_usbmidi_in_urb_complete(struct urb *urb)
240 {
241 	struct snd_usb_midi_in_endpoint *ep = urb->context;
242 
243 	if (urb->status == 0) {
244 		dump_urb("received", urb->transfer_buffer, urb->actual_length);
245 		ep->umidi->usb_protocol_ops->input(ep, urb->transfer_buffer,
246 						   urb->actual_length);
247 	} else {
248 		int err = snd_usbmidi_urb_error(urb);
249 		if (err < 0) {
250 			if (err != -ENODEV) {
251 				ep->error_resubmit = 1;
252 				mod_timer(&ep->umidi->error_timer,
253 					  jiffies + ERROR_DELAY_JIFFIES);
254 			}
255 			return;
256 		}
257 	}
258 
259 	urb->dev = ep->umidi->dev;
260 	snd_usbmidi_submit_urb(urb, GFP_ATOMIC);
261 }
262 
263 static void snd_usbmidi_out_urb_complete(struct urb *urb)
264 {
265 	struct out_urb_context *context = urb->context;
266 	struct snd_usb_midi_out_endpoint *ep = context->ep;
267 	unsigned int urb_index;
268 
269 	scoped_guard(spinlock_irqsave, &ep->buffer_lock) {
270 		urb_index = context - ep->urbs;
271 		ep->active_urbs &= ~(1 << urb_index);
272 		if (unlikely(ep->drain_urbs)) {
273 			ep->drain_urbs &= ~(1 << urb_index);
274 			wake_up(&ep->drain_wait);
275 		}
276 	}
277 	if (urb->status < 0) {
278 		int err = snd_usbmidi_urb_error(urb);
279 		if (err < 0) {
280 			if (err != -ENODEV)
281 				mod_timer(&ep->umidi->error_timer,
282 					  jiffies + ERROR_DELAY_JIFFIES);
283 			return;
284 		}
285 	}
286 	snd_usbmidi_do_output(ep);
287 }
288 
289 /*
290  * This is called when some data should be transferred to the device
291  * (from one or more substreams).
292  */
293 static void snd_usbmidi_do_output(struct snd_usb_midi_out_endpoint *ep)
294 {
295 	unsigned int urb_index;
296 	struct urb *urb;
297 
298 	guard(spinlock_irqsave)(&ep->buffer_lock);
299 	if (ep->umidi->disconnected)
300 		return;
301 
302 	urb_index = ep->next_urb;
303 	for (;;) {
304 		if (!(ep->active_urbs & (1 << urb_index))) {
305 			urb = ep->urbs[urb_index].urb;
306 			urb->transfer_buffer_length = 0;
307 			ep->umidi->usb_protocol_ops->output(ep, urb);
308 			if (urb->transfer_buffer_length == 0)
309 				break;
310 
311 			dump_urb("sending", urb->transfer_buffer,
312 				 urb->transfer_buffer_length);
313 			urb->dev = ep->umidi->dev;
314 			if (snd_usbmidi_submit_urb(urb, GFP_ATOMIC) < 0)
315 				break;
316 			ep->active_urbs |= 1 << urb_index;
317 		}
318 		if (++urb_index >= OUTPUT_URBS)
319 			urb_index = 0;
320 		if (urb_index == ep->next_urb)
321 			break;
322 	}
323 	ep->next_urb = urb_index;
324 }
325 
326 static void snd_usbmidi_out_work(struct work_struct *work)
327 {
328 	struct snd_usb_midi_out_endpoint *ep =
329 		container_of(work, struct snd_usb_midi_out_endpoint, work);
330 
331 	snd_usbmidi_do_output(ep);
332 }
333 
334 /* called after transfers had been interrupted due to some USB error */
335 static void snd_usbmidi_error_timer(struct timer_list *t)
336 {
337 	struct snd_usb_midi *umidi = timer_container_of(umidi, t, error_timer);
338 	unsigned int i, j;
339 
340 	guard(spinlock)(&umidi->disc_lock);
341 	if (umidi->disconnected) {
342 		return;
343 	}
344 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
345 		struct snd_usb_midi_in_endpoint *in = umidi->endpoints[i].in;
346 		if (in && in->error_resubmit) {
347 			in->error_resubmit = 0;
348 			for (j = 0; j < INPUT_URBS; ++j) {
349 				if (atomic_read(&in->urbs[j]->use_count))
350 					continue;
351 				in->urbs[j]->dev = umidi->dev;
352 				snd_usbmidi_submit_urb(in->urbs[j], GFP_ATOMIC);
353 			}
354 		}
355 		if (umidi->endpoints[i].out)
356 			snd_usbmidi_do_output(umidi->endpoints[i].out);
357 	}
358 }
359 
360 /* helper function to send static data that may not DMA-able */
361 static int send_bulk_static_data(struct snd_usb_midi_out_endpoint *ep,
362 				 const void *data, int len)
363 {
364 	int err = 0;
365 	void *buf = kmemdup(data, len, GFP_KERNEL);
366 	if (!buf)
367 		return -ENOMEM;
368 	dump_urb("sending", buf, len);
369 	if (ep->urbs[0].urb)
370 		err = usb_bulk_msg(ep->umidi->dev, ep->urbs[0].urb->pipe,
371 				   buf, len, NULL, 250);
372 	kfree(buf);
373 	return err;
374 }
375 
376 /*
377  * Standard USB MIDI protocol: see the spec.
378  * Midiman protocol: like the standard protocol, but the control byte is the
379  * fourth byte in each packet, and uses length instead of CIN.
380  */
381 
382 static void snd_usbmidi_standard_input(struct snd_usb_midi_in_endpoint *ep,
383 				       uint8_t *buffer, int buffer_length)
384 {
385 	int i;
386 
387 	for (i = 0; i + 3 < buffer_length; i += 4)
388 		if (buffer[i] != 0) {
389 			int cable = buffer[i] >> 4;
390 			int length = snd_usbmidi_cin_length[buffer[i] & 0x0f];
391 			snd_usbmidi_input_data(ep, cable, &buffer[i + 1],
392 					       length);
393 		}
394 }
395 
396 static void snd_usbmidi_midiman_input(struct snd_usb_midi_in_endpoint *ep,
397 				      uint8_t *buffer, int buffer_length)
398 {
399 	int i;
400 
401 	for (i = 0; i + 3 < buffer_length; i += 4)
402 		if (buffer[i + 3] != 0) {
403 			int port = buffer[i + 3] >> 4;
404 			int length = buffer[i + 3] & 3;
405 			snd_usbmidi_input_data(ep, port, &buffer[i], length);
406 		}
407 }
408 
409 /*
410  * Buggy M-Audio device: running status on input results in a packet that has
411  * the data bytes but not the status byte and that is marked with CIN 4.
412  */
413 static void snd_usbmidi_maudio_broken_running_status_input(
414 					struct snd_usb_midi_in_endpoint *ep,
415 					uint8_t *buffer, int buffer_length)
416 {
417 	int i;
418 
419 	for (i = 0; i + 3 < buffer_length; i += 4)
420 		if (buffer[i] != 0) {
421 			int cable = buffer[i] >> 4;
422 			u8 cin = buffer[i] & 0x0f;
423 			struct usbmidi_in_port *port = &ep->ports[cable];
424 			int length;
425 
426 			length = snd_usbmidi_cin_length[cin];
427 			if (cin == 0xf && buffer[i + 1] >= 0xf8)
428 				; /* realtime msg: no running status change */
429 			else if (cin >= 0x8 && cin <= 0xe)
430 				/* channel msg */
431 				port->running_status_length = length - 1;
432 			else if (cin == 0x4 &&
433 				 port->running_status_length != 0 &&
434 				 buffer[i + 1] < 0x80)
435 				/* CIN 4 that is not a SysEx */
436 				length = port->running_status_length;
437 			else
438 				/*
439 				 * All other msgs cannot begin running status.
440 				 * (A channel msg sent as two or three CIN 0xF
441 				 * packets could in theory, but this device
442 				 * doesn't use this format.)
443 				 */
444 				port->running_status_length = 0;
445 			snd_usbmidi_input_data(ep, cable, &buffer[i + 1],
446 					       length);
447 		}
448 }
449 
450 /*
451  * QinHeng CH345 is buggy: every second packet inside a SysEx has not CIN 4
452  * but the previously seen CIN, but still with three data bytes.
453  */
454 static void ch345_broken_sysex_input(struct snd_usb_midi_in_endpoint *ep,
455 				     uint8_t *buffer, int buffer_length)
456 {
457 	unsigned int i, cin, length;
458 
459 	for (i = 0; i + 3 < buffer_length; i += 4) {
460 		if (buffer[i] == 0 && i > 0)
461 			break;
462 		cin = buffer[i] & 0x0f;
463 		if (ep->in_sysex &&
464 		    cin == ep->last_cin &&
465 		    (buffer[i + 1 + (cin == 0x6)] & 0x80) == 0)
466 			cin = 0x4;
467 #if 0
468 		if (buffer[i + 1] == 0x90) {
469 			/*
470 			 * Either a corrupted running status or a real note-on
471 			 * message; impossible to detect reliably.
472 			 */
473 		}
474 #endif
475 		length = snd_usbmidi_cin_length[cin];
476 		snd_usbmidi_input_data(ep, 0, &buffer[i + 1], length);
477 		ep->in_sysex = cin == 0x4;
478 		if (!ep->in_sysex)
479 			ep->last_cin = cin;
480 	}
481 }
482 
483 /*
484  * CME protocol: like the standard protocol, but SysEx commands are sent as a
485  * single USB packet preceded by a 0x0F byte, as are system realtime
486  * messages and MIDI Active Sensing.
487  * Also, multiple messages can be sent in the same packet.
488  */
489 static void snd_usbmidi_cme_input(struct snd_usb_midi_in_endpoint *ep,
490 				  uint8_t *buffer, int buffer_length)
491 {
492 	int remaining = buffer_length;
493 
494 	/*
495 	 * CME send sysex, song position pointer, system realtime
496 	 * and active sensing using CIN 0x0f, which in the standard
497 	 * is only intended for single byte unparsed data.
498 	 * So we need to interpret these here before sending them on.
499 	 * By default, we assume single byte data, which is true
500 	 * for system realtime (midi clock, start, stop and continue)
501 	 * and active sensing, and handle the other (known) cases
502 	 * separately.
503 	 * In contrast to the standard, CME does not split sysex
504 	 * into multiple 4-byte packets, but lumps everything together
505 	 * into one. In addition, CME can string multiple messages
506 	 * together in the same packet; pressing the Record button
507 	 * on an UF6 sends a sysex message directly followed
508 	 * by a song position pointer in the same packet.
509 	 * For it to have any reasonable meaning, a sysex message
510 	 * needs to be at least 3 bytes in length (0xf0, id, 0xf7),
511 	 * corresponding to a packet size of 4 bytes, and the ones sent
512 	 * by CME devices are 6 or 7 bytes, making the packet fragments
513 	 * 7 or 8 bytes long (six or seven bytes plus preceding CN+CIN byte).
514 	 * For the other types, the packet size is always 4 bytes,
515 	 * as per the standard, with the data size being 3 for SPP
516 	 * and 1 for the others.
517 	 * Thus all packet fragments are at least 4 bytes long, so we can
518 	 * skip anything that is shorter; this also conveniantly skips
519 	 * packets with size 0, which CME devices continuously send when
520 	 * they have nothing better to do.
521 	 * Another quirk is that sometimes multiple messages are sent
522 	 * in the same packet. This has been observed for midi clock
523 	 * and active sensing i.e. 0x0f 0xf8 0x00 0x00 0x0f 0xfe 0x00 0x00,
524 	 * but also multiple note ons/offs, and control change together
525 	 * with MIDI clock. Similarly, some sysex messages are followed by
526 	 * the song position pointer in the same packet, and occasionally
527 	 * additionally by a midi clock or active sensing.
528 	 * We handle this by looping over all data and parsing it along the way.
529 	 */
530 	while (remaining >= 4) {
531 		int source_length = 4; /* default */
532 
533 		if ((buffer[0] & 0x0f) == 0x0f) {
534 			int data_length = 1; /* default */
535 
536 			if (buffer[1] == 0xf0) {
537 				/* Sysex: Find EOX and send on whole message. */
538 				/* To kick off the search, skip the first
539 				 * two bytes (CN+CIN and SYSEX (0xf0).
540 				 */
541 				uint8_t *tmp_buf = buffer + 2;
542 				int tmp_length = remaining - 2;
543 
544 				while (tmp_length > 1 && *tmp_buf != 0xf7) {
545 					tmp_buf++;
546 					tmp_length--;
547 				}
548 				data_length = tmp_buf - buffer;
549 				source_length = data_length + 1;
550 			} else if (buffer[1] == 0xf2) {
551 				/* Three byte song position pointer */
552 				data_length = 3;
553 			}
554 			snd_usbmidi_input_data(ep, buffer[0] >> 4,
555 					       &buffer[1], data_length);
556 		} else {
557 			/* normal channel events */
558 			snd_usbmidi_standard_input(ep, buffer, source_length);
559 		}
560 		buffer += source_length;
561 		remaining -= source_length;
562 	}
563 }
564 
565 /*
566  * Adds one USB MIDI packet to the output buffer.
567  */
568 static void snd_usbmidi_output_standard_packet(struct urb *urb, uint8_t p0,
569 					       uint8_t p1, uint8_t p2,
570 					       uint8_t p3)
571 {
572 
573 	uint8_t *buf =
574 		(uint8_t *)urb->transfer_buffer + urb->transfer_buffer_length;
575 	buf[0] = p0;
576 	buf[1] = p1;
577 	buf[2] = p2;
578 	buf[3] = p3;
579 	urb->transfer_buffer_length += 4;
580 }
581 
582 /*
583  * Adds one Midiman packet to the output buffer.
584  */
585 static void snd_usbmidi_output_midiman_packet(struct urb *urb, uint8_t p0,
586 					      uint8_t p1, uint8_t p2,
587 					      uint8_t p3)
588 {
589 
590 	uint8_t *buf =
591 		(uint8_t *)urb->transfer_buffer + urb->transfer_buffer_length;
592 	buf[0] = p1;
593 	buf[1] = p2;
594 	buf[2] = p3;
595 	buf[3] = (p0 & 0xf0) | snd_usbmidi_cin_length[p0 & 0x0f];
596 	urb->transfer_buffer_length += 4;
597 }
598 
599 /*
600  * Converts MIDI commands to USB MIDI packets.
601  */
602 static void snd_usbmidi_transmit_byte(struct usbmidi_out_port *port,
603 				      uint8_t b, struct urb *urb)
604 {
605 	uint8_t p0 = port->cable;
606 	void (*output_packet)(struct urb*, uint8_t, uint8_t, uint8_t, uint8_t) =
607 		port->ep->umidi->usb_protocol_ops->output_packet;
608 
609 	if (b >= 0xf8) {
610 		output_packet(urb, p0 | 0x0f, b, 0, 0);
611 	} else if (b >= 0xf0) {
612 		switch (b) {
613 		case 0xf0:
614 			port->data[0] = b;
615 			port->state = STATE_SYSEX_1;
616 			break;
617 		case 0xf1:
618 		case 0xf3:
619 			port->data[0] = b;
620 			port->state = STATE_1PARAM;
621 			break;
622 		case 0xf2:
623 			port->data[0] = b;
624 			port->state = STATE_2PARAM_1;
625 			break;
626 		case 0xf4:
627 		case 0xf5:
628 			port->state = STATE_UNKNOWN;
629 			break;
630 		case 0xf6:
631 			output_packet(urb, p0 | 0x05, 0xf6, 0, 0);
632 			port->state = STATE_UNKNOWN;
633 			break;
634 		case 0xf7:
635 			switch (port->state) {
636 			case STATE_SYSEX_0:
637 				output_packet(urb, p0 | 0x05, 0xf7, 0, 0);
638 				break;
639 			case STATE_SYSEX_1:
640 				output_packet(urb, p0 | 0x06, port->data[0],
641 					      0xf7, 0);
642 				break;
643 			case STATE_SYSEX_2:
644 				output_packet(urb, p0 | 0x07, port->data[0],
645 					      port->data[1], 0xf7);
646 				break;
647 			}
648 			port->state = STATE_UNKNOWN;
649 			break;
650 		}
651 	} else if (b >= 0x80) {
652 		port->data[0] = b;
653 		if (b >= 0xc0 && b <= 0xdf)
654 			port->state = STATE_1PARAM;
655 		else
656 			port->state = STATE_2PARAM_1;
657 	} else { /* b < 0x80 */
658 		switch (port->state) {
659 		case STATE_1PARAM:
660 			if (port->data[0] < 0xf0) {
661 				p0 |= port->data[0] >> 4;
662 			} else {
663 				p0 |= 0x02;
664 				port->state = STATE_UNKNOWN;
665 			}
666 			output_packet(urb, p0, port->data[0], b, 0);
667 			break;
668 		case STATE_2PARAM_1:
669 			port->data[1] = b;
670 			port->state = STATE_2PARAM_2;
671 			break;
672 		case STATE_2PARAM_2:
673 			if (port->data[0] < 0xf0) {
674 				p0 |= port->data[0] >> 4;
675 				port->state = STATE_2PARAM_1;
676 			} else {
677 				p0 |= 0x03;
678 				port->state = STATE_UNKNOWN;
679 			}
680 			output_packet(urb, p0, port->data[0], port->data[1], b);
681 			break;
682 		case STATE_SYSEX_0:
683 			port->data[0] = b;
684 			port->state = STATE_SYSEX_1;
685 			break;
686 		case STATE_SYSEX_1:
687 			port->data[1] = b;
688 			port->state = STATE_SYSEX_2;
689 			break;
690 		case STATE_SYSEX_2:
691 			output_packet(urb, p0 | 0x04, port->data[0],
692 				      port->data[1], b);
693 			port->state = STATE_SYSEX_0;
694 			break;
695 		}
696 	}
697 }
698 
699 static void snd_usbmidi_standard_output(struct snd_usb_midi_out_endpoint *ep,
700 					struct urb *urb)
701 {
702 	int port0 = ep->current_port;
703 	int i;
704 
705 	for (i = 0; i < 0x10; ++i) {
706 		int portnum = (port0 + i) & 15;
707 		struct usbmidi_out_port *port = &ep->ports[portnum];
708 
709 		if (!port->active)
710 			continue;
711 		while (urb->transfer_buffer_length + 3 < ep->max_transfer) {
712 			uint8_t b;
713 
714 			if (snd_rawmidi_transmit(port->substream, &b, 1) != 1) {
715 				port->active = 0;
716 				break;
717 			}
718 			snd_usbmidi_transmit_byte(port, b, urb);
719 		}
720 	}
721 	ep->current_port = (port0 + 1) & 15;
722 }
723 
724 static const struct usb_protocol_ops snd_usbmidi_standard_ops = {
725 	.input = snd_usbmidi_standard_input,
726 	.output = snd_usbmidi_standard_output,
727 	.output_packet = snd_usbmidi_output_standard_packet,
728 };
729 
730 static const struct usb_protocol_ops snd_usbmidi_midiman_ops = {
731 	.input = snd_usbmidi_midiman_input,
732 	.output = snd_usbmidi_standard_output,
733 	.output_packet = snd_usbmidi_output_midiman_packet,
734 };
735 
736 static const
737 struct usb_protocol_ops snd_usbmidi_maudio_broken_running_status_ops = {
738 	.input = snd_usbmidi_maudio_broken_running_status_input,
739 	.output = snd_usbmidi_standard_output,
740 	.output_packet = snd_usbmidi_output_standard_packet,
741 };
742 
743 static const struct usb_protocol_ops snd_usbmidi_cme_ops = {
744 	.input = snd_usbmidi_cme_input,
745 	.output = snd_usbmidi_standard_output,
746 	.output_packet = snd_usbmidi_output_standard_packet,
747 };
748 
749 static const struct usb_protocol_ops snd_usbmidi_ch345_broken_sysex_ops = {
750 	.input = ch345_broken_sysex_input,
751 	.output = snd_usbmidi_standard_output,
752 	.output_packet = snd_usbmidi_output_standard_packet,
753 };
754 
755 /*
756  * AKAI MPD16 protocol:
757  *
758  * For control port (endpoint 1):
759  * ==============================
760  * One or more chunks consisting of first byte of (0x10 | msg_len) and then a
761  * SysEx message (msg_len=9 bytes long).
762  *
763  * For data port (endpoint 2):
764  * ===========================
765  * One or more chunks consisting of first byte of (0x20 | msg_len) and then a
766  * MIDI message (msg_len bytes long)
767  *
768  * Messages sent: Active Sense, Note On, Poly Pressure, Control Change.
769  */
770 static void snd_usbmidi_akai_input(struct snd_usb_midi_in_endpoint *ep,
771 				   uint8_t *buffer, int buffer_length)
772 {
773 	unsigned int pos = 0;
774 	unsigned int len = (unsigned int)buffer_length;
775 	while (pos < len) {
776 		unsigned int port = (buffer[pos] >> 4) - 1;
777 		unsigned int msg_len = buffer[pos] & 0x0f;
778 		pos++;
779 		if (pos + msg_len <= len && port < 2)
780 			snd_usbmidi_input_data(ep, 0, &buffer[pos], msg_len);
781 		pos += msg_len;
782 	}
783 }
784 
785 #define MAX_AKAI_SYSEX_LEN 9
786 
787 static void snd_usbmidi_akai_output(struct snd_usb_midi_out_endpoint *ep,
788 				    struct urb *urb)
789 {
790 	uint8_t *msg;
791 	int pos, end, count, buf_end;
792 	uint8_t tmp[MAX_AKAI_SYSEX_LEN];
793 	struct snd_rawmidi_substream *substream = ep->ports[0].substream;
794 
795 	if (!ep->ports[0].active)
796 		return;
797 
798 	msg = urb->transfer_buffer + urb->transfer_buffer_length;
799 	buf_end = ep->max_transfer - MAX_AKAI_SYSEX_LEN - 1;
800 	if (buf_end <= 0)
801 		return;
802 
803 	/* only try adding more data when there's space for at least 1 SysEx */
804 	while (urb->transfer_buffer_length < buf_end) {
805 		count = snd_rawmidi_transmit_peek(substream,
806 						  tmp, MAX_AKAI_SYSEX_LEN);
807 		if (!count) {
808 			ep->ports[0].active = 0;
809 			return;
810 		}
811 		/* try to skip non-SysEx data */
812 		for (pos = 0; pos < count && tmp[pos] != 0xF0; pos++)
813 			;
814 
815 		if (pos > 0) {
816 			snd_rawmidi_transmit_ack(substream, pos);
817 			continue;
818 		}
819 
820 		/* look for the start or end marker */
821 		for (end = 1; end < count && tmp[end] < 0xF0; end++)
822 			;
823 
824 		/* next SysEx started before the end of current one */
825 		if (end < count && tmp[end] == 0xF0) {
826 			/* it's incomplete - drop it */
827 			snd_rawmidi_transmit_ack(substream, end);
828 			continue;
829 		}
830 		/* SysEx complete */
831 		if (end < count && tmp[end] == 0xF7) {
832 			/* queue it, ack it, and get the next one */
833 			count = end + 1;
834 			msg[0] = 0x10 | count;
835 			memcpy(&msg[1], tmp, count);
836 			snd_rawmidi_transmit_ack(substream, count);
837 			urb->transfer_buffer_length += count + 1;
838 			msg += count + 1;
839 			continue;
840 		}
841 		/* less than 9 bytes and no end byte - wait for more */
842 		if (count < MAX_AKAI_SYSEX_LEN) {
843 			ep->ports[0].active = 0;
844 			return;
845 		}
846 		/* 9 bytes and no end marker in sight - malformed, skip it */
847 		snd_rawmidi_transmit_ack(substream, count);
848 	}
849 }
850 
851 static const struct usb_protocol_ops snd_usbmidi_akai_ops = {
852 	.input = snd_usbmidi_akai_input,
853 	.output = snd_usbmidi_akai_output,
854 };
855 
856 /*
857  * Novation USB MIDI protocol: number of data bytes is in the first byte
858  * (when receiving) (+1!) or in the second byte (when sending); data begins
859  * at the third byte.
860  */
861 
862 static void snd_usbmidi_novation_input(struct snd_usb_midi_in_endpoint *ep,
863 				       uint8_t *buffer, int buffer_length)
864 {
865 	if (buffer_length < 2 || !buffer[0] || buffer_length < buffer[0] + 1)
866 		return;
867 	snd_usbmidi_input_data(ep, 0, &buffer[2], buffer[0] - 1);
868 }
869 
870 static void snd_usbmidi_novation_output(struct snd_usb_midi_out_endpoint *ep,
871 					struct urb *urb)
872 {
873 	uint8_t *transfer_buffer;
874 	int count;
875 
876 	if (!ep->ports[0].active)
877 		return;
878 	if (ep->max_transfer < 3)
879 		return;
880 	transfer_buffer = urb->transfer_buffer;
881 	count = snd_rawmidi_transmit(ep->ports[0].substream,
882 				     &transfer_buffer[2],
883 				     ep->max_transfer - 2);
884 	if (count < 1) {
885 		ep->ports[0].active = 0;
886 		return;
887 	}
888 	transfer_buffer[0] = 0;
889 	transfer_buffer[1] = count;
890 	urb->transfer_buffer_length = 2 + count;
891 }
892 
893 static const struct usb_protocol_ops snd_usbmidi_novation_ops = {
894 	.input = snd_usbmidi_novation_input,
895 	.output = snd_usbmidi_novation_output,
896 };
897 
898 /*
899  * "raw" protocol: just move raw MIDI bytes from/to the endpoint
900  */
901 
902 static void snd_usbmidi_raw_input(struct snd_usb_midi_in_endpoint *ep,
903 				  uint8_t *buffer, int buffer_length)
904 {
905 	snd_usbmidi_input_data(ep, 0, buffer, buffer_length);
906 }
907 
908 static void snd_usbmidi_raw_output(struct snd_usb_midi_out_endpoint *ep,
909 				   struct urb *urb)
910 {
911 	int count;
912 
913 	if (!ep->ports[0].active)
914 		return;
915 	count = snd_rawmidi_transmit(ep->ports[0].substream,
916 				     urb->transfer_buffer,
917 				     ep->max_transfer);
918 	if (count < 1) {
919 		ep->ports[0].active = 0;
920 		return;
921 	}
922 	urb->transfer_buffer_length = count;
923 }
924 
925 static const struct usb_protocol_ops snd_usbmidi_raw_ops = {
926 	.input = snd_usbmidi_raw_input,
927 	.output = snd_usbmidi_raw_output,
928 };
929 
930 /*
931  * FTDI protocol: raw MIDI bytes, but input packets have two modem status bytes.
932  */
933 
934 static void snd_usbmidi_ftdi_input(struct snd_usb_midi_in_endpoint *ep,
935 				   uint8_t *buffer, int buffer_length)
936 {
937 	if (buffer_length > 2)
938 		snd_usbmidi_input_data(ep, 0, buffer + 2, buffer_length - 2);
939 }
940 
941 static const struct usb_protocol_ops snd_usbmidi_ftdi_ops = {
942 	.input = snd_usbmidi_ftdi_input,
943 	.output = snd_usbmidi_raw_output,
944 };
945 
946 static void snd_usbmidi_us122l_input(struct snd_usb_midi_in_endpoint *ep,
947 				     uint8_t *buffer, int buffer_length)
948 {
949 	if (buffer_length != 9)
950 		return;
951 	buffer_length = 8;
952 	while (buffer_length && buffer[buffer_length - 1] == 0xFD)
953 		buffer_length--;
954 	if (buffer_length)
955 		snd_usbmidi_input_data(ep, 0, buffer, buffer_length);
956 }
957 
958 static void snd_usbmidi_us122l_output(struct snd_usb_midi_out_endpoint *ep,
959 				      struct urb *urb)
960 {
961 	int count;
962 
963 	if (!ep->ports[0].active)
964 		return;
965 	switch (snd_usb_get_speed(ep->umidi->dev)) {
966 	case USB_SPEED_HIGH:
967 	case USB_SPEED_SUPER:
968 	case USB_SPEED_SUPER_PLUS:
969 		count = 1;
970 		break;
971 	default:
972 		count = 2;
973 	}
974 	if (ep->max_transfer < count)
975 		return;
976 	count = snd_rawmidi_transmit(ep->ports[0].substream,
977 				     urb->transfer_buffer,
978 				     count);
979 	if (count < 1) {
980 		ep->ports[0].active = 0;
981 		return;
982 	}
983 
984 	memset(urb->transfer_buffer + count, 0xFD, ep->max_transfer - count);
985 	urb->transfer_buffer_length = ep->max_transfer;
986 }
987 
988 static const struct usb_protocol_ops snd_usbmidi_122l_ops = {
989 	.input = snd_usbmidi_us122l_input,
990 	.output = snd_usbmidi_us122l_output,
991 };
992 
993 /*
994  * Emagic USB MIDI protocol: raw MIDI with "F5 xx" port switching.
995  */
996 
997 static void snd_usbmidi_emagic_init_out(struct snd_usb_midi_out_endpoint *ep)
998 {
999 	static const u8 init_data[] = {
1000 		/* initialization magic: "get version" */
1001 		0xf0,
1002 		0x00, 0x20, 0x31,	/* Emagic */
1003 		0x64,			/* Unitor8 */
1004 		0x0b,			/* version number request */
1005 		0x00,			/* command version */
1006 		0x00,			/* EEPROM, box 0 */
1007 		0xf7
1008 	};
1009 	send_bulk_static_data(ep, init_data, sizeof(init_data));
1010 	/* while we're at it, pour on more magic */
1011 	send_bulk_static_data(ep, init_data, sizeof(init_data));
1012 }
1013 
1014 static void snd_usbmidi_emagic_finish_out(struct snd_usb_midi_out_endpoint *ep)
1015 {
1016 	static const u8 finish_data[] = {
1017 		/* switch to patch mode with last preset */
1018 		0xf0,
1019 		0x00, 0x20, 0x31,	/* Emagic */
1020 		0x64,			/* Unitor8 */
1021 		0x10,			/* patch switch command */
1022 		0x00,			/* command version */
1023 		0x7f,			/* to all boxes */
1024 		0x40,			/* last preset in EEPROM */
1025 		0xf7
1026 	};
1027 	send_bulk_static_data(ep, finish_data, sizeof(finish_data));
1028 }
1029 
1030 static void snd_usbmidi_emagic_input(struct snd_usb_midi_in_endpoint *ep,
1031 				     uint8_t *buffer, int buffer_length)
1032 {
1033 	int i;
1034 
1035 	/* FF indicates end of valid data */
1036 	for (i = 0; i < buffer_length; ++i)
1037 		if (buffer[i] == 0xff) {
1038 			buffer_length = i;
1039 			break;
1040 		}
1041 
1042 	/* handle F5 at end of last buffer */
1043 	if (ep->seen_f5)
1044 		goto switch_port;
1045 
1046 	while (buffer_length > 0) {
1047 		/* determine size of data until next F5 */
1048 		for (i = 0; i < buffer_length; ++i)
1049 			if (buffer[i] == 0xf5)
1050 				break;
1051 		snd_usbmidi_input_data(ep, ep->current_port, buffer, i);
1052 		buffer += i;
1053 		buffer_length -= i;
1054 
1055 		if (buffer_length <= 0)
1056 			break;
1057 		/* assert(buffer[0] == 0xf5); */
1058 		ep->seen_f5 = 1;
1059 		++buffer;
1060 		--buffer_length;
1061 
1062 	switch_port:
1063 		if (buffer_length <= 0)
1064 			break;
1065 		if (buffer[0] < 0x80) {
1066 			ep->current_port = (buffer[0] - 1) & 15;
1067 			++buffer;
1068 			--buffer_length;
1069 		}
1070 		ep->seen_f5 = 0;
1071 	}
1072 }
1073 
1074 static void snd_usbmidi_emagic_output(struct snd_usb_midi_out_endpoint *ep,
1075 				      struct urb *urb)
1076 {
1077 	int port0 = ep->current_port;
1078 	uint8_t *buf = urb->transfer_buffer;
1079 	int buf_free = ep->max_transfer;
1080 	int length, i;
1081 
1082 	for (i = 0; i < 0x10; ++i) {
1083 		/* round-robin, starting at the last current port */
1084 		int portnum = (port0 + i) & 15;
1085 		struct usbmidi_out_port *port = &ep->ports[portnum];
1086 
1087 		if (!port->active)
1088 			continue;
1089 		if (snd_rawmidi_transmit_peek(port->substream, buf, 1) != 1) {
1090 			port->active = 0;
1091 			continue;
1092 		}
1093 
1094 		if (portnum != ep->current_port) {
1095 			if (buf_free < 2)
1096 				break;
1097 			ep->current_port = portnum;
1098 			buf[0] = 0xf5;
1099 			buf[1] = (portnum + 1) & 15;
1100 			buf += 2;
1101 			buf_free -= 2;
1102 		}
1103 
1104 		if (buf_free < 1)
1105 			break;
1106 		length = snd_rawmidi_transmit(port->substream, buf, buf_free);
1107 		if (length > 0) {
1108 			buf += length;
1109 			buf_free -= length;
1110 			if (buf_free < 1)
1111 				break;
1112 		}
1113 	}
1114 	if (buf_free < ep->max_transfer && buf_free > 0) {
1115 		*buf = 0xff;
1116 		--buf_free;
1117 	}
1118 	urb->transfer_buffer_length = ep->max_transfer - buf_free;
1119 }
1120 
1121 static const struct usb_protocol_ops snd_usbmidi_emagic_ops = {
1122 	.input = snd_usbmidi_emagic_input,
1123 	.output = snd_usbmidi_emagic_output,
1124 	.init_out_endpoint = snd_usbmidi_emagic_init_out,
1125 	.finish_out_endpoint = snd_usbmidi_emagic_finish_out,
1126 };
1127 
1128 
1129 static void update_roland_altsetting(struct snd_usb_midi *umidi)
1130 {
1131 	struct usb_interface *intf;
1132 	struct usb_host_interface *hostif;
1133 	struct usb_interface_descriptor *intfd;
1134 	int is_light_load;
1135 
1136 	intf = umidi->iface;
1137 	is_light_load = intf->cur_altsetting != intf->altsetting;
1138 	if (umidi->roland_load_ctl->private_value == is_light_load)
1139 		return;
1140 	hostif = &intf->altsetting[umidi->roland_load_ctl->private_value];
1141 	intfd = get_iface_desc(hostif);
1142 	snd_usbmidi_input_stop(&umidi->list);
1143 	usb_set_interface(umidi->dev, intfd->bInterfaceNumber,
1144 			  intfd->bAlternateSetting);
1145 	snd_usbmidi_input_start(&umidi->list);
1146 }
1147 
1148 static int substream_open(struct snd_rawmidi_substream *substream, int dir,
1149 			  int open)
1150 {
1151 	struct snd_usb_midi *umidi = substream->rmidi->private_data;
1152 	struct snd_kcontrol *ctl;
1153 
1154 	guard(rwsem_read)(&umidi->disc_rwsem);
1155 	if (umidi->disconnected)
1156 		return open ? -ENODEV : 0;
1157 
1158 	guard(mutex)(&umidi->mutex);
1159 	if (open) {
1160 		if (!umidi->opened[0] && !umidi->opened[1]) {
1161 			if (umidi->roland_load_ctl) {
1162 				ctl = umidi->roland_load_ctl;
1163 				ctl->vd[0].access |=
1164 					SNDRV_CTL_ELEM_ACCESS_INACTIVE;
1165 				snd_ctl_notify(umidi->card,
1166 				       SNDRV_CTL_EVENT_MASK_INFO, &ctl->id);
1167 				update_roland_altsetting(umidi);
1168 			}
1169 		}
1170 		umidi->opened[dir]++;
1171 		if (umidi->opened[1])
1172 			snd_usbmidi_input_start(&umidi->list);
1173 	} else {
1174 		umidi->opened[dir]--;
1175 		if (!umidi->opened[1])
1176 			snd_usbmidi_input_stop(&umidi->list);
1177 		if (!umidi->opened[0] && !umidi->opened[1]) {
1178 			if (umidi->roland_load_ctl) {
1179 				ctl = umidi->roland_load_ctl;
1180 				ctl->vd[0].access &=
1181 					~SNDRV_CTL_ELEM_ACCESS_INACTIVE;
1182 				snd_ctl_notify(umidi->card,
1183 				       SNDRV_CTL_EVENT_MASK_INFO, &ctl->id);
1184 			}
1185 		}
1186 	}
1187 	return 0;
1188 }
1189 
1190 static int snd_usbmidi_output_open(struct snd_rawmidi_substream *substream)
1191 {
1192 	struct snd_usb_midi *umidi = substream->rmidi->private_data;
1193 	struct usbmidi_out_port *port = NULL;
1194 	int i, j;
1195 
1196 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i)
1197 		if (umidi->endpoints[i].out)
1198 			for (j = 0; j < 0x10; ++j)
1199 				if (umidi->endpoints[i].out->ports[j].substream == substream) {
1200 					port = &umidi->endpoints[i].out->ports[j];
1201 					break;
1202 				}
1203 	if (!port)
1204 		return -ENXIO;
1205 
1206 	substream->runtime->private_data = port;
1207 	port->state = STATE_UNKNOWN;
1208 	return substream_open(substream, 0, 1);
1209 }
1210 
1211 static int snd_usbmidi_output_close(struct snd_rawmidi_substream *substream)
1212 {
1213 	struct usbmidi_out_port *port = substream->runtime->private_data;
1214 
1215 	flush_work(&port->ep->work);
1216 	return substream_open(substream, 0, 0);
1217 }
1218 
1219 static void snd_usbmidi_output_trigger(struct snd_rawmidi_substream *substream,
1220 				       int up)
1221 {
1222 	struct usbmidi_out_port *port =
1223 		(struct usbmidi_out_port *)substream->runtime->private_data;
1224 
1225 	port->active = up;
1226 	if (up) {
1227 		if (port->ep->umidi->disconnected) {
1228 			/* gobble up remaining bytes to prevent wait in
1229 			 * snd_rawmidi_drain_output */
1230 			snd_rawmidi_proceed(substream);
1231 			return;
1232 		}
1233 		queue_work(system_highpri_wq, &port->ep->work);
1234 	}
1235 }
1236 
1237 static void snd_usbmidi_output_drain(struct snd_rawmidi_substream *substream)
1238 {
1239 	struct usbmidi_out_port *port = substream->runtime->private_data;
1240 	struct snd_usb_midi_out_endpoint *ep = port->ep;
1241 	unsigned int drain_urbs;
1242 	DEFINE_WAIT(wait);
1243 	long timeout = msecs_to_jiffies(50);
1244 
1245 	if (ep->umidi->disconnected)
1246 		return;
1247 	/*
1248 	 * The substream buffer is empty, but some data might still be in the
1249 	 * currently active URBs, so we have to wait for those to complete.
1250 	 */
1251 	spin_lock_irq(&ep->buffer_lock);
1252 	drain_urbs = ep->active_urbs;
1253 	if (drain_urbs) {
1254 		ep->drain_urbs |= drain_urbs;
1255 		do {
1256 			prepare_to_wait(&ep->drain_wait, &wait,
1257 					TASK_UNINTERRUPTIBLE);
1258 			spin_unlock_irq(&ep->buffer_lock);
1259 			timeout = schedule_timeout(timeout);
1260 			spin_lock_irq(&ep->buffer_lock);
1261 			drain_urbs &= ep->drain_urbs;
1262 		} while (drain_urbs && timeout);
1263 		finish_wait(&ep->drain_wait, &wait);
1264 	}
1265 	port->active = 0;
1266 	spin_unlock_irq(&ep->buffer_lock);
1267 }
1268 
1269 static int snd_usbmidi_input_open(struct snd_rawmidi_substream *substream)
1270 {
1271 	return substream_open(substream, 1, 1);
1272 }
1273 
1274 static int snd_usbmidi_input_close(struct snd_rawmidi_substream *substream)
1275 {
1276 	return substream_open(substream, 1, 0);
1277 }
1278 
1279 static void snd_usbmidi_input_trigger(struct snd_rawmidi_substream *substream,
1280 				      int up)
1281 {
1282 	struct snd_usb_midi *umidi = substream->rmidi->private_data;
1283 
1284 	if (up)
1285 		set_bit(substream->number, &umidi->input_triggered);
1286 	else
1287 		clear_bit(substream->number, &umidi->input_triggered);
1288 }
1289 
1290 static const struct snd_rawmidi_ops snd_usbmidi_output_ops = {
1291 	.open = snd_usbmidi_output_open,
1292 	.close = snd_usbmidi_output_close,
1293 	.trigger = snd_usbmidi_output_trigger,
1294 	.drain = snd_usbmidi_output_drain,
1295 };
1296 
1297 static const struct snd_rawmidi_ops snd_usbmidi_input_ops = {
1298 	.open = snd_usbmidi_input_open,
1299 	.close = snd_usbmidi_input_close,
1300 	.trigger = snd_usbmidi_input_trigger
1301 };
1302 
1303 static void free_urb_and_buffer(struct snd_usb_midi *umidi, struct urb *urb,
1304 				unsigned int buffer_length)
1305 {
1306 	usb_free_coherent(umidi->dev, buffer_length,
1307 			  urb->transfer_buffer, urb->transfer_dma);
1308 	usb_free_urb(urb);
1309 }
1310 
1311 /*
1312  * Frees an input endpoint.
1313  * May be called when ep hasn't been initialized completely.
1314  */
1315 static void snd_usbmidi_in_endpoint_delete(struct snd_usb_midi_in_endpoint *ep)
1316 {
1317 	unsigned int i;
1318 
1319 	for (i = 0; i < INPUT_URBS; ++i)
1320 		if (ep->urbs[i])
1321 			free_urb_and_buffer(ep->umidi, ep->urbs[i],
1322 					    ep->urbs[i]->transfer_buffer_length);
1323 	kfree(ep);
1324 }
1325 
1326 /*
1327  * Creates an input endpoint.
1328  */
1329 static int snd_usbmidi_in_endpoint_create(struct snd_usb_midi *umidi,
1330 					  struct snd_usb_midi_endpoint_info *ep_info,
1331 					  struct snd_usb_midi_endpoint *rep)
1332 {
1333 	struct snd_usb_midi_in_endpoint *ep;
1334 	void *buffer;
1335 	unsigned int pipe;
1336 	int length;
1337 	unsigned int i;
1338 	int err;
1339 
1340 	rep->in = NULL;
1341 	ep = kzalloc_obj(*ep);
1342 	if (!ep)
1343 		return -ENOMEM;
1344 	ep->umidi = umidi;
1345 
1346 	for (i = 0; i < INPUT_URBS; ++i) {
1347 		ep->urbs[i] = usb_alloc_urb(0, GFP_KERNEL);
1348 		if (!ep->urbs[i]) {
1349 			err = -ENOMEM;
1350 			goto error;
1351 		}
1352 	}
1353 	if (ep_info->in_interval)
1354 		pipe = usb_rcvintpipe(umidi->dev, ep_info->in_ep);
1355 	else
1356 		pipe = usb_rcvbulkpipe(umidi->dev, ep_info->in_ep);
1357 	length = usb_maxpacket(umidi->dev, pipe);
1358 	for (i = 0; i < INPUT_URBS; ++i) {
1359 		buffer = usb_alloc_coherent(umidi->dev, length, GFP_KERNEL,
1360 					    &ep->urbs[i]->transfer_dma);
1361 		if (!buffer) {
1362 			err = -ENOMEM;
1363 			goto error;
1364 		}
1365 		if (ep_info->in_interval)
1366 			usb_fill_int_urb(ep->urbs[i], umidi->dev,
1367 					 pipe, buffer, length,
1368 					 snd_usbmidi_in_urb_complete,
1369 					 ep, ep_info->in_interval);
1370 		else
1371 			usb_fill_bulk_urb(ep->urbs[i], umidi->dev,
1372 					  pipe, buffer, length,
1373 					  snd_usbmidi_in_urb_complete, ep);
1374 		ep->urbs[i]->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
1375 		err = usb_urb_ep_type_check(ep->urbs[i]);
1376 		if (err < 0) {
1377 			dev_err(&umidi->dev->dev, "invalid MIDI in EP %x\n",
1378 				ep_info->in_ep);
1379 			goto error;
1380 		}
1381 	}
1382 
1383 	rep->in = ep;
1384 	return 0;
1385 
1386  error:
1387 	snd_usbmidi_in_endpoint_delete(ep);
1388 	return err;
1389 }
1390 
1391 /*
1392  * Frees an output endpoint.
1393  * May be called when ep hasn't been initialized completely.
1394  */
1395 static void snd_usbmidi_out_endpoint_clear(struct snd_usb_midi_out_endpoint *ep)
1396 {
1397 	unsigned int i;
1398 
1399 	for (i = 0; i < OUTPUT_URBS; ++i)
1400 		if (ep->urbs[i].urb) {
1401 			free_urb_and_buffer(ep->umidi, ep->urbs[i].urb,
1402 					    ep->max_transfer);
1403 			ep->urbs[i].urb = NULL;
1404 		}
1405 }
1406 
1407 static void snd_usbmidi_out_endpoint_delete(struct snd_usb_midi_out_endpoint *ep)
1408 {
1409 	snd_usbmidi_out_endpoint_clear(ep);
1410 	kfree(ep);
1411 }
1412 
1413 /*
1414  * Creates an output endpoint, and initializes output ports.
1415  */
1416 static int snd_usbmidi_out_endpoint_create(struct snd_usb_midi *umidi,
1417 					   struct snd_usb_midi_endpoint_info *ep_info,
1418 					   struct snd_usb_midi_endpoint *rep)
1419 {
1420 	struct snd_usb_midi_out_endpoint *ep;
1421 	unsigned int i;
1422 	unsigned int pipe;
1423 	void *buffer;
1424 	int err;
1425 
1426 	rep->out = NULL;
1427 	ep = kzalloc_obj(*ep);
1428 	if (!ep)
1429 		return -ENOMEM;
1430 	ep->umidi = umidi;
1431 
1432 	for (i = 0; i < OUTPUT_URBS; ++i) {
1433 		ep->urbs[i].urb = usb_alloc_urb(0, GFP_KERNEL);
1434 		if (!ep->urbs[i].urb) {
1435 			err = -ENOMEM;
1436 			goto error;
1437 		}
1438 		ep->urbs[i].ep = ep;
1439 	}
1440 	if (ep_info->out_interval)
1441 		pipe = usb_sndintpipe(umidi->dev, ep_info->out_ep);
1442 	else
1443 		pipe = usb_sndbulkpipe(umidi->dev, ep_info->out_ep);
1444 	switch (umidi->usb_id) {
1445 	default:
1446 		ep->max_transfer = usb_maxpacket(umidi->dev, pipe);
1447 		break;
1448 		/*
1449 		 * Various chips declare a packet size larger than 4 bytes, but
1450 		 * do not actually work with larger packets:
1451 		 */
1452 	case USB_ID(0x0a67, 0x5011): /* Medeli DD305 */
1453 	case USB_ID(0x0a92, 0x1020): /* ESI M4U */
1454 	case USB_ID(0x1430, 0x474b): /* RedOctane GH MIDI INTERFACE */
1455 	case USB_ID(0x15ca, 0x0101): /* Textech USB Midi Cable */
1456 	case USB_ID(0x15ca, 0x1806): /* Textech USB Midi Cable */
1457 	case USB_ID(0x1a86, 0x752d): /* QinHeng CH345 "USB2.0-MIDI" */
1458 	case USB_ID(0xfc08, 0x0101): /* Unknown vendor Cable */
1459 		ep->max_transfer = 4;
1460 		break;
1461 		/*
1462 		 * Some devices only work with 9 bytes packet size:
1463 		 */
1464 	case USB_ID(0x0644, 0x800e): /* Tascam US-122L */
1465 	case USB_ID(0x0644, 0x800f): /* Tascam US-144 */
1466 		ep->max_transfer = 9;
1467 		break;
1468 	}
1469 	for (i = 0; i < OUTPUT_URBS; ++i) {
1470 		buffer = usb_alloc_coherent(umidi->dev,
1471 					    ep->max_transfer, GFP_KERNEL,
1472 					    &ep->urbs[i].urb->transfer_dma);
1473 		if (!buffer) {
1474 			err = -ENOMEM;
1475 			goto error;
1476 		}
1477 		if (ep_info->out_interval)
1478 			usb_fill_int_urb(ep->urbs[i].urb, umidi->dev,
1479 					 pipe, buffer, ep->max_transfer,
1480 					 snd_usbmidi_out_urb_complete,
1481 					 &ep->urbs[i], ep_info->out_interval);
1482 		else
1483 			usb_fill_bulk_urb(ep->urbs[i].urb, umidi->dev,
1484 					  pipe, buffer, ep->max_transfer,
1485 					  snd_usbmidi_out_urb_complete,
1486 					  &ep->urbs[i]);
1487 		err = usb_urb_ep_type_check(ep->urbs[i].urb);
1488 		if (err < 0) {
1489 			dev_err(&umidi->dev->dev, "invalid MIDI out EP %x\n",
1490 				ep_info->out_ep);
1491 			goto error;
1492 		}
1493 		ep->urbs[i].urb->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
1494 	}
1495 
1496 	spin_lock_init(&ep->buffer_lock);
1497 	INIT_WORK(&ep->work, snd_usbmidi_out_work);
1498 	init_waitqueue_head(&ep->drain_wait);
1499 
1500 	for (i = 0; i < 0x10; ++i)
1501 		if (ep_info->out_cables & (1 << i)) {
1502 			ep->ports[i].ep = ep;
1503 			ep->ports[i].cable = i << 4;
1504 		}
1505 
1506 	if (umidi->usb_protocol_ops->init_out_endpoint)
1507 		umidi->usb_protocol_ops->init_out_endpoint(ep);
1508 
1509 	rep->out = ep;
1510 	return 0;
1511 
1512  error:
1513 	snd_usbmidi_out_endpoint_delete(ep);
1514 	return err;
1515 }
1516 
1517 /*
1518  * Frees everything.
1519  */
1520 static void snd_usbmidi_free(struct snd_usb_midi *umidi)
1521 {
1522 	int i;
1523 
1524 	if (!umidi->disconnected)
1525 		snd_usbmidi_disconnect(&umidi->list);
1526 
1527 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1528 		struct snd_usb_midi_endpoint *ep = &umidi->endpoints[i];
1529 		kfree(ep->out);
1530 	}
1531 	mutex_destroy(&umidi->mutex);
1532 	kfree(umidi);
1533 }
1534 
1535 /*
1536  * Unlinks all URBs (must be done before the usb_device is deleted).
1537  */
1538 void snd_usbmidi_disconnect(struct list_head *p)
1539 {
1540 	struct snd_usb_midi *umidi;
1541 	unsigned int i, j;
1542 
1543 	umidi = list_entry(p, struct snd_usb_midi, list);
1544 	/*
1545 	 * an URB's completion handler may start the timer and
1546 	 * a timer may submit an URB. To reliably break the cycle
1547 	 * a flag under lock must be used
1548 	 */
1549 	scoped_guard(rwsem_write, &umidi->disc_rwsem) {
1550 		guard(spinlock_irq)(&umidi->disc_lock);
1551 		umidi->disconnected = 1;
1552 	}
1553 
1554 	timer_shutdown_sync(&umidi->error_timer);
1555 
1556 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1557 		struct snd_usb_midi_endpoint *ep = &umidi->endpoints[i];
1558 		if (ep->out)
1559 			cancel_work_sync(&ep->out->work);
1560 		if (ep->out) {
1561 			for (j = 0; j < OUTPUT_URBS; ++j)
1562 				usb_kill_urb(ep->out->urbs[j].urb);
1563 			if (umidi->usb_protocol_ops->finish_out_endpoint)
1564 				umidi->usb_protocol_ops->finish_out_endpoint(ep->out);
1565 			ep->out->active_urbs = 0;
1566 			if (ep->out->drain_urbs) {
1567 				ep->out->drain_urbs = 0;
1568 				wake_up(&ep->out->drain_wait);
1569 			}
1570 		}
1571 		if (ep->in)
1572 			for (j = 0; j < INPUT_URBS; ++j)
1573 				usb_kill_urb(ep->in->urbs[j]);
1574 		/* free endpoints here; later call can result in Oops */
1575 		if (ep->out)
1576 			snd_usbmidi_out_endpoint_clear(ep->out);
1577 		if (ep->in) {
1578 			snd_usbmidi_in_endpoint_delete(ep->in);
1579 			ep->in = NULL;
1580 		}
1581 	}
1582 }
1583 EXPORT_SYMBOL(snd_usbmidi_disconnect);
1584 
1585 static void snd_usbmidi_rawmidi_free(struct snd_rawmidi *rmidi)
1586 {
1587 	struct snd_usb_midi *umidi = rmidi->private_data;
1588 	snd_usbmidi_free(umidi);
1589 }
1590 
1591 static struct snd_rawmidi_substream *snd_usbmidi_find_substream(struct snd_usb_midi *umidi,
1592 								int stream,
1593 								int number)
1594 {
1595 	struct snd_rawmidi_substream *substream;
1596 
1597 	list_for_each_entry(substream, &umidi->rmidi->streams[stream].substreams,
1598 			    list) {
1599 		if (substream->number == number)
1600 			return substream;
1601 	}
1602 	return NULL;
1603 }
1604 
1605 /*
1606  * This list specifies names for ports that do not fit into the standard
1607  * "(product) MIDI (n)" schema because they aren't external MIDI ports,
1608  * such as internal control or synthesizer ports.
1609  */
1610 static struct port_info {
1611 	u32 id;
1612 	short int port;
1613 	short int voices;
1614 	const char *name;
1615 	unsigned int seq_flags;
1616 } snd_usbmidi_port_info[] = {
1617 #define PORT_INFO(vendor, product, num, name_, voices_, flags) \
1618 	{ .id = USB_ID(vendor, product), \
1619 	  .port = num, .voices = voices_, \
1620 	  .name = name_, .seq_flags = flags }
1621 #define EXTERNAL_PORT(vendor, product, num, name) \
1622 	PORT_INFO(vendor, product, num, name, 0, \
1623 		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
1624 		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
1625 		  SNDRV_SEQ_PORT_TYPE_PORT)
1626 #define CONTROL_PORT(vendor, product, num, name) \
1627 	PORT_INFO(vendor, product, num, name, 0, \
1628 		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
1629 		  SNDRV_SEQ_PORT_TYPE_HARDWARE)
1630 #define GM_SYNTH_PORT(vendor, product, num, name, voices) \
1631 	PORT_INFO(vendor, product, num, name, voices, \
1632 		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
1633 		  SNDRV_SEQ_PORT_TYPE_MIDI_GM | \
1634 		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
1635 		  SNDRV_SEQ_PORT_TYPE_SYNTHESIZER)
1636 #define ROLAND_SYNTH_PORT(vendor, product, num, name, voices) \
1637 	PORT_INFO(vendor, product, num, name, voices, \
1638 		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
1639 		  SNDRV_SEQ_PORT_TYPE_MIDI_GM | \
1640 		  SNDRV_SEQ_PORT_TYPE_MIDI_GM2 | \
1641 		  SNDRV_SEQ_PORT_TYPE_MIDI_GS | \
1642 		  SNDRV_SEQ_PORT_TYPE_MIDI_XG | \
1643 		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
1644 		  SNDRV_SEQ_PORT_TYPE_SYNTHESIZER)
1645 #define SOUNDCANVAS_PORT(vendor, product, num, name, voices) \
1646 	PORT_INFO(vendor, product, num, name, voices, \
1647 		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
1648 		  SNDRV_SEQ_PORT_TYPE_MIDI_GM | \
1649 		  SNDRV_SEQ_PORT_TYPE_MIDI_GM2 | \
1650 		  SNDRV_SEQ_PORT_TYPE_MIDI_GS | \
1651 		  SNDRV_SEQ_PORT_TYPE_MIDI_XG | \
1652 		  SNDRV_SEQ_PORT_TYPE_MIDI_MT32 | \
1653 		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
1654 		  SNDRV_SEQ_PORT_TYPE_SYNTHESIZER)
1655 	/* Yamaha MOTIF XF */
1656 	GM_SYNTH_PORT(0x0499, 0x105c, 0, "%s Tone Generator", 128),
1657 	CONTROL_PORT(0x0499, 0x105c, 1, "%s Remote Control"),
1658 	EXTERNAL_PORT(0x0499, 0x105c, 2, "%s Thru"),
1659 	CONTROL_PORT(0x0499, 0x105c, 3, "%s Editor"),
1660 	/* Roland UA-100 */
1661 	CONTROL_PORT(0x0582, 0x0000, 2, "%s Control"),
1662 	/* Roland SC-8850 */
1663 	SOUNDCANVAS_PORT(0x0582, 0x0003, 0, "%s Part A", 128),
1664 	SOUNDCANVAS_PORT(0x0582, 0x0003, 1, "%s Part B", 128),
1665 	SOUNDCANVAS_PORT(0x0582, 0x0003, 2, "%s Part C", 128),
1666 	SOUNDCANVAS_PORT(0x0582, 0x0003, 3, "%s Part D", 128),
1667 	EXTERNAL_PORT(0x0582, 0x0003, 4, "%s MIDI 1"),
1668 	EXTERNAL_PORT(0x0582, 0x0003, 5, "%s MIDI 2"),
1669 	/* Roland U-8 */
1670 	EXTERNAL_PORT(0x0582, 0x0004, 0, "%s MIDI"),
1671 	CONTROL_PORT(0x0582, 0x0004, 1, "%s Control"),
1672 	/* Roland SC-8820 */
1673 	SOUNDCANVAS_PORT(0x0582, 0x0007, 0, "%s Part A", 64),
1674 	SOUNDCANVAS_PORT(0x0582, 0x0007, 1, "%s Part B", 64),
1675 	EXTERNAL_PORT(0x0582, 0x0007, 2, "%s MIDI"),
1676 	/* Roland SK-500 */
1677 	SOUNDCANVAS_PORT(0x0582, 0x000b, 0, "%s Part A", 64),
1678 	SOUNDCANVAS_PORT(0x0582, 0x000b, 1, "%s Part B", 64),
1679 	EXTERNAL_PORT(0x0582, 0x000b, 2, "%s MIDI"),
1680 	/* Roland SC-D70 */
1681 	SOUNDCANVAS_PORT(0x0582, 0x000c, 0, "%s Part A", 64),
1682 	SOUNDCANVAS_PORT(0x0582, 0x000c, 1, "%s Part B", 64),
1683 	EXTERNAL_PORT(0x0582, 0x000c, 2, "%s MIDI"),
1684 	/* Edirol UM-880 */
1685 	CONTROL_PORT(0x0582, 0x0014, 8, "%s Control"),
1686 	/* Edirol SD-90 */
1687 	ROLAND_SYNTH_PORT(0x0582, 0x0016, 0, "%s Part A", 128),
1688 	ROLAND_SYNTH_PORT(0x0582, 0x0016, 1, "%s Part B", 128),
1689 	EXTERNAL_PORT(0x0582, 0x0016, 2, "%s MIDI 1"),
1690 	EXTERNAL_PORT(0x0582, 0x0016, 3, "%s MIDI 2"),
1691 	/* Edirol UM-550 */
1692 	CONTROL_PORT(0x0582, 0x0023, 5, "%s Control"),
1693 	/* Edirol SD-20 */
1694 	ROLAND_SYNTH_PORT(0x0582, 0x0027, 0, "%s Part A", 64),
1695 	ROLAND_SYNTH_PORT(0x0582, 0x0027, 1, "%s Part B", 64),
1696 	EXTERNAL_PORT(0x0582, 0x0027, 2, "%s MIDI"),
1697 	/* Edirol SD-80 */
1698 	ROLAND_SYNTH_PORT(0x0582, 0x0029, 0, "%s Part A", 128),
1699 	ROLAND_SYNTH_PORT(0x0582, 0x0029, 1, "%s Part B", 128),
1700 	EXTERNAL_PORT(0x0582, 0x0029, 2, "%s MIDI 1"),
1701 	EXTERNAL_PORT(0x0582, 0x0029, 3, "%s MIDI 2"),
1702 	/* Edirol UA-700 */
1703 	EXTERNAL_PORT(0x0582, 0x002b, 0, "%s MIDI"),
1704 	CONTROL_PORT(0x0582, 0x002b, 1, "%s Control"),
1705 	/* Roland VariOS */
1706 	EXTERNAL_PORT(0x0582, 0x002f, 0, "%s MIDI"),
1707 	EXTERNAL_PORT(0x0582, 0x002f, 1, "%s External MIDI"),
1708 	EXTERNAL_PORT(0x0582, 0x002f, 2, "%s Sync"),
1709 	/* Edirol PCR */
1710 	EXTERNAL_PORT(0x0582, 0x0033, 0, "%s MIDI"),
1711 	EXTERNAL_PORT(0x0582, 0x0033, 1, "%s 1"),
1712 	EXTERNAL_PORT(0x0582, 0x0033, 2, "%s 2"),
1713 	/* BOSS GS-10 */
1714 	EXTERNAL_PORT(0x0582, 0x003b, 0, "%s MIDI"),
1715 	CONTROL_PORT(0x0582, 0x003b, 1, "%s Control"),
1716 	/* Edirol UA-1000 */
1717 	EXTERNAL_PORT(0x0582, 0x0044, 0, "%s MIDI"),
1718 	CONTROL_PORT(0x0582, 0x0044, 1, "%s Control"),
1719 	/* Edirol UR-80 */
1720 	EXTERNAL_PORT(0x0582, 0x0048, 0, "%s MIDI"),
1721 	EXTERNAL_PORT(0x0582, 0x0048, 1, "%s 1"),
1722 	EXTERNAL_PORT(0x0582, 0x0048, 2, "%s 2"),
1723 	/* Edirol PCR-A */
1724 	EXTERNAL_PORT(0x0582, 0x004d, 0, "%s MIDI"),
1725 	EXTERNAL_PORT(0x0582, 0x004d, 1, "%s 1"),
1726 	EXTERNAL_PORT(0x0582, 0x004d, 2, "%s 2"),
1727 	/* BOSS GT-PRO */
1728 	CONTROL_PORT(0x0582, 0x0089, 0, "%s Control"),
1729 	/* Edirol UM-3EX */
1730 	CONTROL_PORT(0x0582, 0x009a, 3, "%s Control"),
1731 	/* Roland VG-99 */
1732 	CONTROL_PORT(0x0582, 0x00b2, 0, "%s Control"),
1733 	EXTERNAL_PORT(0x0582, 0x00b2, 1, "%s MIDI"),
1734 	/* Cakewalk Sonar V-Studio 100 */
1735 	EXTERNAL_PORT(0x0582, 0x00eb, 0, "%s MIDI"),
1736 	CONTROL_PORT(0x0582, 0x00eb, 1, "%s Control"),
1737 	/* Roland VB-99 */
1738 	CONTROL_PORT(0x0582, 0x0102, 0, "%s Control"),
1739 	EXTERNAL_PORT(0x0582, 0x0102, 1, "%s MIDI"),
1740 	/* Roland A-PRO */
1741 	EXTERNAL_PORT(0x0582, 0x010f, 0, "%s MIDI"),
1742 	CONTROL_PORT(0x0582, 0x010f, 1, "%s 1"),
1743 	CONTROL_PORT(0x0582, 0x010f, 2, "%s 2"),
1744 	/* Roland SD-50 */
1745 	ROLAND_SYNTH_PORT(0x0582, 0x0114, 0, "%s Synth", 128),
1746 	EXTERNAL_PORT(0x0582, 0x0114, 1, "%s MIDI"),
1747 	CONTROL_PORT(0x0582, 0x0114, 2, "%s Control"),
1748 	/* Roland OCTA-CAPTURE */
1749 	EXTERNAL_PORT(0x0582, 0x0120, 0, "%s MIDI"),
1750 	CONTROL_PORT(0x0582, 0x0120, 1, "%s Control"),
1751 	EXTERNAL_PORT(0x0582, 0x0121, 0, "%s MIDI"),
1752 	CONTROL_PORT(0x0582, 0x0121, 1, "%s Control"),
1753 	/* Roland SPD-SX */
1754 	CONTROL_PORT(0x0582, 0x0145, 0, "%s Control"),
1755 	EXTERNAL_PORT(0x0582, 0x0145, 1, "%s MIDI"),
1756 	/* Roland A-Series */
1757 	CONTROL_PORT(0x0582, 0x0156, 0, "%s Keyboard"),
1758 	EXTERNAL_PORT(0x0582, 0x0156, 1, "%s MIDI"),
1759 	/* Roland INTEGRA-7 */
1760 	ROLAND_SYNTH_PORT(0x0582, 0x015b, 0, "%s Synth", 128),
1761 	CONTROL_PORT(0x0582, 0x015b, 1, "%s Control"),
1762 	/* M-Audio MidiSport 8x8 */
1763 	CONTROL_PORT(0x0763, 0x1031, 8, "%s Control"),
1764 	CONTROL_PORT(0x0763, 0x1033, 8, "%s Control"),
1765 	/* MOTU Fastlane */
1766 	EXTERNAL_PORT(0x07fd, 0x0001, 0, "%s MIDI A"),
1767 	EXTERNAL_PORT(0x07fd, 0x0001, 1, "%s MIDI B"),
1768 	/* Emagic Unitor8/AMT8/MT4 */
1769 	EXTERNAL_PORT(0x086a, 0x0001, 8, "%s Broadcast"),
1770 	EXTERNAL_PORT(0x086a, 0x0002, 8, "%s Broadcast"),
1771 	EXTERNAL_PORT(0x086a, 0x0003, 4, "%s Broadcast"),
1772 	/* Akai MPD16 */
1773 	CONTROL_PORT(0x09e8, 0x0062, 0, "%s Control"),
1774 	PORT_INFO(0x09e8, 0x0062, 1, "%s MIDI", 0,
1775 		SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC |
1776 		SNDRV_SEQ_PORT_TYPE_HARDWARE),
1777 	/* Access Music Virus TI */
1778 	EXTERNAL_PORT(0x133e, 0x0815, 0, "%s MIDI"),
1779 	PORT_INFO(0x133e, 0x0815, 1, "%s Synth", 0,
1780 		SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC |
1781 		SNDRV_SEQ_PORT_TYPE_HARDWARE |
1782 		SNDRV_SEQ_PORT_TYPE_SYNTHESIZER),
1783 };
1784 
1785 static struct port_info *find_port_info(struct snd_usb_midi *umidi, int number)
1786 {
1787 	int i;
1788 
1789 	for (i = 0; i < ARRAY_SIZE(snd_usbmidi_port_info); ++i) {
1790 		if (snd_usbmidi_port_info[i].id == umidi->usb_id &&
1791 		    snd_usbmidi_port_info[i].port == number)
1792 			return &snd_usbmidi_port_info[i];
1793 	}
1794 	return NULL;
1795 }
1796 
1797 static void snd_usbmidi_get_port_info(struct snd_rawmidi *rmidi, int number,
1798 				      struct snd_seq_port_info *seq_port_info)
1799 {
1800 	struct snd_usb_midi *umidi = rmidi->private_data;
1801 	struct port_info *port_info;
1802 
1803 	/* TODO: read port flags from descriptors */
1804 	port_info = find_port_info(umidi, number);
1805 	if (port_info) {
1806 		seq_port_info->type = port_info->seq_flags;
1807 		seq_port_info->midi_voices = port_info->voices;
1808 	}
1809 }
1810 
1811 /* return iJack for the corresponding jackID */
1812 static int find_usb_ijack(struct usb_host_interface *hostif, uint8_t jack_id)
1813 {
1814 	unsigned char *extra = hostif->extra;
1815 	int extralen = hostif->extralen;
1816 	struct usb_descriptor_header *h;
1817 	struct usb_midi_out_jack_descriptor *outjd;
1818 	struct usb_midi_in_jack_descriptor *injd;
1819 	size_t sz;
1820 
1821 	while (extralen > 4) {
1822 		h = (struct usb_descriptor_header *)extra;
1823 		if (h->bDescriptorType != USB_DT_CS_INTERFACE)
1824 			goto next;
1825 
1826 		outjd = (struct usb_midi_out_jack_descriptor *)h;
1827 		if (h->bLength >= sizeof(*outjd) &&
1828 		    outjd->bDescriptorSubtype == UAC_MIDI_OUT_JACK &&
1829 		    outjd->bJackID == jack_id) {
1830 			sz = USB_DT_MIDI_OUT_SIZE(outjd->bNrInputPins);
1831 			if (outjd->bLength < sz)
1832 				goto next;
1833 			return *(extra + sz - 1);
1834 		}
1835 
1836 		injd = (struct usb_midi_in_jack_descriptor *)h;
1837 		if (injd->bLength >= sizeof(*injd) &&
1838 		    injd->bDescriptorSubtype == UAC_MIDI_IN_JACK &&
1839 		    injd->bJackID == jack_id)
1840 			return injd->iJack;
1841 
1842 next:
1843 		if (!extra[0])
1844 			break;
1845 		extralen -= extra[0];
1846 		extra += extra[0];
1847 	}
1848 	return 0;
1849 }
1850 
1851 static void snd_usbmidi_init_substream(struct snd_usb_midi *umidi,
1852 				       int stream, int number, int jack_id,
1853 				       struct snd_rawmidi_substream **rsubstream)
1854 {
1855 	struct port_info *port_info;
1856 	const char *name_format;
1857 	struct usb_interface *intf;
1858 	struct usb_host_interface *hostif;
1859 	uint8_t jack_name_buf[32];
1860 	uint8_t *default_jack_name = "MIDI";
1861 	uint8_t *jack_name = default_jack_name;
1862 	uint8_t iJack;
1863 	int res;
1864 
1865 	struct snd_rawmidi_substream *substream =
1866 		snd_usbmidi_find_substream(umidi, stream, number);
1867 	if (!substream) {
1868 		dev_err(&umidi->dev->dev, "substream %d:%d not found\n", stream,
1869 			number);
1870 		return;
1871 	}
1872 
1873 	intf = umidi->iface;
1874 	if (intf && jack_id >= 0) {
1875 		hostif = intf->cur_altsetting;
1876 		iJack = find_usb_ijack(hostif, jack_id);
1877 		if (iJack != 0) {
1878 			res = usb_string(umidi->dev, iJack, jack_name_buf,
1879 			  ARRAY_SIZE(jack_name_buf));
1880 			if (res)
1881 				jack_name = jack_name_buf;
1882 		}
1883 	}
1884 
1885 	port_info = find_port_info(umidi, number);
1886 	if (port_info || jack_name == default_jack_name ||
1887 	    strncmp(umidi->card->shortname, jack_name, strlen(umidi->card->shortname)) != 0) {
1888 		name_format = port_info ? port_info->name :
1889 			(jack_name != default_jack_name  ? "%s %s" : "%s %s %d");
1890 		snprintf(substream->name, sizeof(substream->name),
1891 			 name_format, umidi->card->shortname, jack_name, number + 1);
1892 	} else {
1893 		/* The manufacturer included the iProduct name in the jack
1894 		 * name, do not use both
1895 		 */
1896 		strscpy(substream->name, jack_name);
1897 	}
1898 
1899 	*rsubstream = substream;
1900 }
1901 
1902 /*
1903  * Creates the endpoints and their ports.
1904  */
1905 static int snd_usbmidi_create_endpoints(struct snd_usb_midi *umidi,
1906 					struct snd_usb_midi_endpoint_info *endpoints)
1907 {
1908 	int i, j, err;
1909 	int out_ports = 0, in_ports = 0;
1910 
1911 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1912 		if (endpoints[i].out_cables) {
1913 			err = snd_usbmidi_out_endpoint_create(umidi,
1914 							      &endpoints[i],
1915 							      &umidi->endpoints[i]);
1916 			if (err < 0)
1917 				return err;
1918 		}
1919 		if (endpoints[i].in_cables) {
1920 			err = snd_usbmidi_in_endpoint_create(umidi,
1921 							     &endpoints[i],
1922 							     &umidi->endpoints[i]);
1923 			if (err < 0)
1924 				return err;
1925 		}
1926 
1927 		for (j = 0; j < 0x10; ++j) {
1928 			if (endpoints[i].out_cables & (1 << j)) {
1929 				snd_usbmidi_init_substream(umidi,
1930 							   SNDRV_RAWMIDI_STREAM_OUTPUT,
1931 							   out_ports,
1932 							   endpoints[i].assoc_out_jacks[j],
1933 							   &umidi->endpoints[i].out->ports[j].substream);
1934 				++out_ports;
1935 			}
1936 			if (endpoints[i].in_cables & (1 << j)) {
1937 				snd_usbmidi_init_substream(umidi,
1938 							   SNDRV_RAWMIDI_STREAM_INPUT,
1939 							   in_ports,
1940 							   endpoints[i].assoc_in_jacks[j],
1941 							   &umidi->endpoints[i].in->ports[j].substream);
1942 				++in_ports;
1943 			}
1944 		}
1945 	}
1946 	dev_dbg(&umidi->dev->dev, "created %d output and %d input ports\n",
1947 		    out_ports, in_ports);
1948 	return 0;
1949 }
1950 
1951 static struct usb_ms_endpoint_descriptor *find_usb_ms_endpoint_descriptor(
1952 					struct usb_host_endpoint *hostep)
1953 {
1954 	unsigned char *extra = hostep->extra;
1955 	int extralen = hostep->extralen;
1956 
1957 	while (extralen > 3) {
1958 		struct usb_ms_endpoint_descriptor *ms_ep =
1959 				(struct usb_ms_endpoint_descriptor *)extra;
1960 		int length = ms_ep->bLength;
1961 
1962 		if (!length || length > extralen)
1963 			break;
1964 
1965 		if (length > 3 &&
1966 		    ms_ep->bDescriptorType == USB_DT_CS_ENDPOINT &&
1967 		    ms_ep->bDescriptorSubtype == UAC_MS_GENERAL)
1968 			return ms_ep;
1969 		extralen -= length;
1970 		extra += length;
1971 	}
1972 	return NULL;
1973 }
1974 
1975 /*
1976  * Returns MIDIStreaming device capabilities.
1977  */
1978 static int snd_usbmidi_get_ms_info(struct snd_usb_midi *umidi,
1979 				   struct snd_usb_midi_endpoint_info *endpoints)
1980 {
1981 	struct usb_interface *intf;
1982 	struct usb_host_interface *hostif;
1983 	struct usb_interface_descriptor *intfd;
1984 	struct usb_ms_header_descriptor *ms_header;
1985 	struct usb_host_endpoint *hostep;
1986 	struct usb_endpoint_descriptor *ep;
1987 	struct usb_ms_endpoint_descriptor *ms_ep;
1988 	int i, j, epidx;
1989 
1990 	intf = umidi->iface;
1991 	if (!intf)
1992 		return -ENXIO;
1993 	hostif = &intf->altsetting[0];
1994 	intfd = get_iface_desc(hostif);
1995 	ms_header = (struct usb_ms_header_descriptor *)hostif->extra;
1996 	if (hostif->extralen >= 7 &&
1997 	    ms_header->bLength >= 7 &&
1998 	    ms_header->bDescriptorType == USB_DT_CS_INTERFACE &&
1999 	    ms_header->bDescriptorSubtype == UAC_HEADER)
2000 		dev_dbg(&umidi->dev->dev, "MIDIStreaming version %02x.%02x\n",
2001 			    ((uint8_t *)&ms_header->bcdMSC)[1], ((uint8_t *)&ms_header->bcdMSC)[0]);
2002 	else
2003 		dev_warn(&umidi->dev->dev,
2004 			 "MIDIStreaming interface descriptor not found\n");
2005 
2006 	epidx = 0;
2007 	for (i = 0; i < intfd->bNumEndpoints; ++i) {
2008 		hostep = &hostif->endpoint[i];
2009 		ep = get_ep_desc(hostep);
2010 		if (!usb_endpoint_xfer_bulk(ep) && !usb_endpoint_xfer_int(ep))
2011 			continue;
2012 		ms_ep = find_usb_ms_endpoint_descriptor(hostep);
2013 		if (!ms_ep)
2014 			continue;
2015 		if (ms_ep->bLength <= sizeof(*ms_ep))
2016 			continue;
2017 		if (ms_ep->bNumEmbMIDIJack > 0x10)
2018 			continue;
2019 		if (ms_ep->bLength < sizeof(*ms_ep) + ms_ep->bNumEmbMIDIJack)
2020 			continue;
2021 		if (usb_endpoint_dir_out(ep)) {
2022 			if (endpoints[epidx].out_ep) {
2023 				if (++epidx >= MIDI_MAX_ENDPOINTS) {
2024 					dev_warn(&umidi->dev->dev,
2025 						 "too many endpoints\n");
2026 					break;
2027 				}
2028 			}
2029 			endpoints[epidx].out_ep = usb_endpoint_num(ep);
2030 			if (usb_endpoint_xfer_int(ep))
2031 				endpoints[epidx].out_interval = ep->bInterval;
2032 			else if (snd_usb_get_speed(umidi->dev) == USB_SPEED_LOW)
2033 				/*
2034 				 * Low speed bulk transfers don't exist, so
2035 				 * force interrupt transfers for devices like
2036 				 * ESI MIDI Mate that try to use them anyway.
2037 				 */
2038 				endpoints[epidx].out_interval = 1;
2039 			endpoints[epidx].out_cables =
2040 				(1 << ms_ep->bNumEmbMIDIJack) - 1;
2041 			for (j = 0; j < ms_ep->bNumEmbMIDIJack; ++j)
2042 				endpoints[epidx].assoc_out_jacks[j] = ms_ep->baAssocJackID[j];
2043 			for (; j < ARRAY_SIZE(endpoints[epidx].assoc_out_jacks); ++j)
2044 				endpoints[epidx].assoc_out_jacks[j] = -1;
2045 			dev_dbg(&umidi->dev->dev, "EP %02X: %d jack(s)\n",
2046 				ep->bEndpointAddress, ms_ep->bNumEmbMIDIJack);
2047 		} else {
2048 			if (endpoints[epidx].in_ep) {
2049 				if (++epidx >= MIDI_MAX_ENDPOINTS) {
2050 					dev_warn(&umidi->dev->dev,
2051 						 "too many endpoints\n");
2052 					break;
2053 				}
2054 			}
2055 			endpoints[epidx].in_ep = usb_endpoint_num(ep);
2056 			if (usb_endpoint_xfer_int(ep))
2057 				endpoints[epidx].in_interval = ep->bInterval;
2058 			else if (snd_usb_get_speed(umidi->dev) == USB_SPEED_LOW)
2059 				endpoints[epidx].in_interval = 1;
2060 			endpoints[epidx].in_cables =
2061 				(1 << ms_ep->bNumEmbMIDIJack) - 1;
2062 			for (j = 0; j < ms_ep->bNumEmbMIDIJack; ++j)
2063 				endpoints[epidx].assoc_in_jacks[j] = ms_ep->baAssocJackID[j];
2064 			for (; j < ARRAY_SIZE(endpoints[epidx].assoc_in_jacks); ++j)
2065 				endpoints[epidx].assoc_in_jacks[j] = -1;
2066 			dev_dbg(&umidi->dev->dev, "EP %02X: %d jack(s)\n",
2067 				ep->bEndpointAddress, ms_ep->bNumEmbMIDIJack);
2068 		}
2069 	}
2070 	return 0;
2071 }
2072 
2073 static int roland_load_info(struct snd_kcontrol *kcontrol,
2074 			    struct snd_ctl_elem_info *info)
2075 {
2076 	static const char *const names[] = { "High Load", "Light Load" };
2077 
2078 	return snd_ctl_enum_info(info, 1, 2, names);
2079 }
2080 
2081 static int roland_load_get(struct snd_kcontrol *kcontrol,
2082 			   struct snd_ctl_elem_value *value)
2083 {
2084 	value->value.enumerated.item[0] = kcontrol->private_value;
2085 	return 0;
2086 }
2087 
2088 static int roland_load_put(struct snd_kcontrol *kcontrol,
2089 			   struct snd_ctl_elem_value *value)
2090 {
2091 	struct snd_usb_midi *umidi = snd_kcontrol_chip(kcontrol);
2092 	int changed;
2093 
2094 	if (value->value.enumerated.item[0] > 1)
2095 		return -EINVAL;
2096 	guard(mutex)(&umidi->mutex);
2097 	changed = value->value.enumerated.item[0] != kcontrol->private_value;
2098 	if (changed)
2099 		kcontrol->private_value = value->value.enumerated.item[0];
2100 	return changed;
2101 }
2102 
2103 static const struct snd_kcontrol_new roland_load_ctl = {
2104 	.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
2105 	.name = "MIDI Input Mode",
2106 	.info = roland_load_info,
2107 	.get = roland_load_get,
2108 	.put = roland_load_put,
2109 	.private_value = 1,
2110 };
2111 
2112 /*
2113  * On Roland devices, use the second alternate setting to be able to use
2114  * the interrupt input endpoint.
2115  */
2116 static void snd_usbmidi_switch_roland_altsetting(struct snd_usb_midi *umidi)
2117 {
2118 	struct usb_interface *intf;
2119 	struct usb_host_interface *hostif;
2120 	struct usb_interface_descriptor *intfd;
2121 
2122 	intf = umidi->iface;
2123 	if (!intf || intf->num_altsetting != 2)
2124 		return;
2125 
2126 	hostif = &intf->altsetting[1];
2127 	intfd = get_iface_desc(hostif);
2128        /* If either or both of the endpoints support interrupt transfer,
2129         * then use the alternate setting
2130         */
2131 	if (intfd->bNumEndpoints != 2 ||
2132 	    !((get_endpoint(hostif, 0)->bmAttributes &
2133 	       USB_ENDPOINT_XFERTYPE_MASK) == USB_ENDPOINT_XFER_INT ||
2134 	      (get_endpoint(hostif, 1)->bmAttributes &
2135 	       USB_ENDPOINT_XFERTYPE_MASK) == USB_ENDPOINT_XFER_INT))
2136 		return;
2137 
2138 	dev_dbg(&umidi->dev->dev, "switching to altsetting %d with int ep\n",
2139 		    intfd->bAlternateSetting);
2140 	usb_set_interface(umidi->dev, intfd->bInterfaceNumber,
2141 			  intfd->bAlternateSetting);
2142 
2143 	umidi->roland_load_ctl = snd_ctl_new1(&roland_load_ctl, umidi);
2144 	if (snd_ctl_add(umidi->card, umidi->roland_load_ctl) < 0)
2145 		umidi->roland_load_ctl = NULL;
2146 }
2147 
2148 /*
2149  * Try to find any usable endpoints in the interface.
2150  */
2151 static int snd_usbmidi_detect_endpoints(struct snd_usb_midi *umidi,
2152 					struct snd_usb_midi_endpoint_info *endpoint,
2153 					int max_endpoints)
2154 {
2155 	struct usb_interface *intf;
2156 	struct usb_host_interface *hostif;
2157 	struct usb_interface_descriptor *intfd;
2158 	struct usb_endpoint_descriptor *epd;
2159 	int i, out_eps = 0, in_eps = 0;
2160 
2161 	if (USB_ID_VENDOR(umidi->usb_id) == 0x0582)
2162 		snd_usbmidi_switch_roland_altsetting(umidi);
2163 
2164 	if (endpoint[0].out_ep || endpoint[0].in_ep)
2165 		return 0;
2166 
2167 	intf = umidi->iface;
2168 	if (!intf || intf->num_altsetting < 1)
2169 		return -ENOENT;
2170 	hostif = intf->cur_altsetting;
2171 	intfd = get_iface_desc(hostif);
2172 
2173 	for (i = 0; i < intfd->bNumEndpoints; ++i) {
2174 		epd = get_endpoint(hostif, i);
2175 		if (!usb_endpoint_xfer_bulk(epd) &&
2176 		    !usb_endpoint_xfer_int(epd))
2177 			continue;
2178 		if (out_eps < max_endpoints &&
2179 		    usb_endpoint_dir_out(epd)) {
2180 			endpoint[out_eps].out_ep = usb_endpoint_num(epd);
2181 			if (usb_endpoint_xfer_int(epd))
2182 				endpoint[out_eps].out_interval = epd->bInterval;
2183 			++out_eps;
2184 		}
2185 		if (in_eps < max_endpoints &&
2186 		    usb_endpoint_dir_in(epd)) {
2187 			endpoint[in_eps].in_ep = usb_endpoint_num(epd);
2188 			if (usb_endpoint_xfer_int(epd))
2189 				endpoint[in_eps].in_interval = epd->bInterval;
2190 			++in_eps;
2191 		}
2192 	}
2193 	return (out_eps || in_eps) ? 0 : -ENOENT;
2194 }
2195 
2196 /*
2197  * Detects the endpoints for one-port-per-endpoint protocols.
2198  */
2199 static int snd_usbmidi_detect_per_port_endpoints(struct snd_usb_midi *umidi,
2200 						 struct snd_usb_midi_endpoint_info *endpoints)
2201 {
2202 	int err, i;
2203 
2204 	err = snd_usbmidi_detect_endpoints(umidi, endpoints, MIDI_MAX_ENDPOINTS);
2205 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
2206 		if (endpoints[i].out_ep)
2207 			endpoints[i].out_cables = 0x0001;
2208 		if (endpoints[i].in_ep)
2209 			endpoints[i].in_cables = 0x0001;
2210 	}
2211 	return err;
2212 }
2213 
2214 /*
2215  * Detects the endpoints and ports of Yamaha devices.
2216  */
2217 static int snd_usbmidi_detect_yamaha(struct snd_usb_midi *umidi,
2218 				     struct snd_usb_midi_endpoint_info *endpoint)
2219 {
2220 	struct usb_interface *intf;
2221 	struct usb_host_interface *hostif;
2222 	struct usb_interface_descriptor *intfd;
2223 	uint8_t *cs_desc;
2224 
2225 	intf = umidi->iface;
2226 	if (!intf)
2227 		return -ENOENT;
2228 	hostif = intf->altsetting;
2229 	intfd = get_iface_desc(hostif);
2230 	if (intfd->bNumEndpoints < 1)
2231 		return -ENOENT;
2232 
2233 	/*
2234 	 * For each port there is one MIDI_IN/OUT_JACK descriptor, not
2235 	 * necessarily with any useful contents.  So simply count 'em.
2236 	 */
2237 	for (cs_desc = hostif->extra;
2238 	     cs_desc < hostif->extra + hostif->extralen && cs_desc[0] >= 2;
2239 	     cs_desc += cs_desc[0]) {
2240 		if (cs_desc[1] == USB_DT_CS_INTERFACE) {
2241 			if (cs_desc[2] == UAC_MIDI_IN_JACK)
2242 				endpoint->in_cables =
2243 					(endpoint->in_cables << 1) | 1;
2244 			else if (cs_desc[2] == UAC_MIDI_OUT_JACK)
2245 				endpoint->out_cables =
2246 					(endpoint->out_cables << 1) | 1;
2247 		}
2248 	}
2249 	if (!endpoint->in_cables && !endpoint->out_cables)
2250 		return -ENOENT;
2251 
2252 	return snd_usbmidi_detect_endpoints(umidi, endpoint, 1);
2253 }
2254 
2255 /*
2256  * Detects the endpoints and ports of Roland devices.
2257  */
2258 static int snd_usbmidi_detect_roland(struct snd_usb_midi *umidi,
2259 				     struct snd_usb_midi_endpoint_info *endpoint)
2260 {
2261 	struct usb_interface *intf;
2262 	struct usb_host_interface *hostif;
2263 	u8 *cs_desc;
2264 
2265 	intf = umidi->iface;
2266 	if (!intf)
2267 		return -ENOENT;
2268 	hostif = intf->altsetting;
2269 	/*
2270 	 * Some devices have a descriptor <06 24 F1 02 <inputs> <outputs>>,
2271 	 * some have standard class descriptors, or both kinds, or neither.
2272 	 */
2273 	for (cs_desc = hostif->extra;
2274 	     cs_desc < hostif->extra + hostif->extralen && cs_desc[0] >= 2;
2275 	     cs_desc += cs_desc[0]) {
2276 		if (cs_desc[0] >= 6 &&
2277 		    cs_desc[1] == USB_DT_CS_INTERFACE &&
2278 		    cs_desc[2] == 0xf1 &&
2279 		    cs_desc[3] == 0x02) {
2280 			if (cs_desc[4] > 0x10 || cs_desc[5] > 0x10)
2281 				continue;
2282 			endpoint->in_cables  = (1 << cs_desc[4]) - 1;
2283 			endpoint->out_cables = (1 << cs_desc[5]) - 1;
2284 			return snd_usbmidi_detect_endpoints(umidi, endpoint, 1);
2285 		} else if (cs_desc[0] >= 7 &&
2286 			   cs_desc[1] == USB_DT_CS_INTERFACE &&
2287 			   cs_desc[2] == UAC_HEADER) {
2288 			return snd_usbmidi_get_ms_info(umidi, endpoint);
2289 		}
2290 	}
2291 
2292 	return -ENODEV;
2293 }
2294 
2295 /*
2296  * Creates the endpoints and their ports for Midiman devices.
2297  */
2298 static int snd_usbmidi_create_endpoints_midiman(struct snd_usb_midi *umidi,
2299 						struct snd_usb_midi_endpoint_info *endpoint)
2300 {
2301 	struct snd_usb_midi_endpoint_info ep_info;
2302 	struct usb_interface *intf;
2303 	struct usb_host_interface *hostif;
2304 	struct usb_interface_descriptor *intfd;
2305 	struct usb_endpoint_descriptor *epd;
2306 	int cable, err;
2307 
2308 	intf = umidi->iface;
2309 	if (!intf)
2310 		return -ENOENT;
2311 	hostif = intf->altsetting;
2312 	intfd = get_iface_desc(hostif);
2313 	/*
2314 	 * The various MidiSport devices have more or less random endpoint
2315 	 * numbers, so we have to identify the endpoints by their index in
2316 	 * the descriptor array, like the driver for that other OS does.
2317 	 *
2318 	 * There is one interrupt input endpoint for all input ports, one
2319 	 * bulk output endpoint for even-numbered ports, and one for odd-
2320 	 * numbered ports.  Both bulk output endpoints have corresponding
2321 	 * input bulk endpoints (at indices 1 and 3) which aren't used.
2322 	 */
2323 	if (intfd->bNumEndpoints < (endpoint->out_cables > 0x0001 ? 5 : 3)) {
2324 		dev_dbg(&umidi->dev->dev, "not enough endpoints\n");
2325 		return -ENOENT;
2326 	}
2327 
2328 	epd = get_endpoint(hostif, 0);
2329 	if (!usb_endpoint_dir_in(epd) || !usb_endpoint_xfer_int(epd)) {
2330 		dev_dbg(&umidi->dev->dev, "endpoint[0] isn't interrupt\n");
2331 		return -ENXIO;
2332 	}
2333 	epd = get_endpoint(hostif, 2);
2334 	if (!usb_endpoint_dir_out(epd) || !usb_endpoint_xfer_bulk(epd)) {
2335 		dev_dbg(&umidi->dev->dev, "endpoint[2] isn't bulk output\n");
2336 		return -ENXIO;
2337 	}
2338 	if (endpoint->out_cables > 0x0001) {
2339 		epd = get_endpoint(hostif, 4);
2340 		if (!usb_endpoint_dir_out(epd) ||
2341 		    !usb_endpoint_xfer_bulk(epd)) {
2342 			dev_dbg(&umidi->dev->dev,
2343 				"endpoint[4] isn't bulk output\n");
2344 			return -ENXIO;
2345 		}
2346 	}
2347 
2348 	ep_info.out_ep = get_endpoint(hostif, 2)->bEndpointAddress &
2349 		USB_ENDPOINT_NUMBER_MASK;
2350 	ep_info.out_interval = 0;
2351 	ep_info.out_cables = endpoint->out_cables & 0x5555;
2352 	err = snd_usbmidi_out_endpoint_create(umidi, &ep_info,
2353 					      &umidi->endpoints[0]);
2354 	if (err < 0)
2355 		return err;
2356 
2357 	ep_info.in_ep = get_endpoint(hostif, 0)->bEndpointAddress &
2358 		USB_ENDPOINT_NUMBER_MASK;
2359 	ep_info.in_interval = get_endpoint(hostif, 0)->bInterval;
2360 	ep_info.in_cables = endpoint->in_cables;
2361 	err = snd_usbmidi_in_endpoint_create(umidi, &ep_info,
2362 					     &umidi->endpoints[0]);
2363 	if (err < 0)
2364 		return err;
2365 
2366 	if (endpoint->out_cables > 0x0001) {
2367 		ep_info.out_ep = get_endpoint(hostif, 4)->bEndpointAddress &
2368 			USB_ENDPOINT_NUMBER_MASK;
2369 		ep_info.out_cables = endpoint->out_cables & 0xaaaa;
2370 		err = snd_usbmidi_out_endpoint_create(umidi, &ep_info,
2371 						      &umidi->endpoints[1]);
2372 		if (err < 0)
2373 			return err;
2374 	}
2375 
2376 	for (cable = 0; cable < 0x10; ++cable) {
2377 		if (endpoint->out_cables & (1 << cable))
2378 			snd_usbmidi_init_substream(umidi,
2379 						   SNDRV_RAWMIDI_STREAM_OUTPUT,
2380 						   cable,
2381 						   -1 /* prevent trying to find jack */,
2382 						   &umidi->endpoints[cable & 1].out->ports[cable].substream);
2383 		if (endpoint->in_cables & (1 << cable))
2384 			snd_usbmidi_init_substream(umidi,
2385 						   SNDRV_RAWMIDI_STREAM_INPUT,
2386 						   cable,
2387 						   -1 /* prevent trying to find jack */,
2388 						   &umidi->endpoints[0].in->ports[cable].substream);
2389 	}
2390 	return 0;
2391 }
2392 
2393 static const struct snd_rawmidi_global_ops snd_usbmidi_ops = {
2394 	.get_port_info = snd_usbmidi_get_port_info,
2395 };
2396 
2397 static int snd_usbmidi_create_rawmidi(struct snd_usb_midi *umidi,
2398 				      int out_ports, int in_ports)
2399 {
2400 	struct snd_rawmidi *rmidi;
2401 	int err;
2402 
2403 	err = snd_rawmidi_new(umidi->card, "USB MIDI",
2404 			      umidi->next_midi_device++,
2405 			      out_ports, in_ports, &rmidi);
2406 	if (err < 0)
2407 		return err;
2408 	strscpy(rmidi->name, umidi->card->shortname);
2409 	rmidi->info_flags = SNDRV_RAWMIDI_INFO_OUTPUT |
2410 			    SNDRV_RAWMIDI_INFO_INPUT |
2411 			    SNDRV_RAWMIDI_INFO_DUPLEX;
2412 	rmidi->ops = &snd_usbmidi_ops;
2413 	rmidi->private_data = umidi;
2414 	rmidi->private_free = snd_usbmidi_rawmidi_free;
2415 	snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_OUTPUT,
2416 			    &snd_usbmidi_output_ops);
2417 	snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_INPUT,
2418 			    &snd_usbmidi_input_ops);
2419 
2420 	umidi->rmidi = rmidi;
2421 	return 0;
2422 }
2423 
2424 /*
2425  * Temporarily stop input.
2426  */
2427 void snd_usbmidi_input_stop(struct list_head *p)
2428 {
2429 	struct snd_usb_midi *umidi;
2430 	unsigned int i, j;
2431 
2432 	umidi = list_entry(p, struct snd_usb_midi, list);
2433 	if (!umidi->input_running)
2434 		return;
2435 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
2436 		struct snd_usb_midi_endpoint *ep = &umidi->endpoints[i];
2437 		if (ep->in)
2438 			for (j = 0; j < INPUT_URBS; ++j)
2439 				usb_kill_urb(ep->in->urbs[j]);
2440 	}
2441 	umidi->input_running = 0;
2442 }
2443 EXPORT_SYMBOL(snd_usbmidi_input_stop);
2444 
2445 static void snd_usbmidi_input_start_ep(struct snd_usb_midi *umidi,
2446 				       struct snd_usb_midi_in_endpoint *ep)
2447 {
2448 	unsigned int i;
2449 
2450 	if (!ep)
2451 		return;
2452 	for (i = 0; i < INPUT_URBS; ++i) {
2453 		struct urb *urb = ep->urbs[i];
2454 		scoped_guard(spinlock_irqsave, &umidi->disc_lock) {
2455 			if (!atomic_read(&urb->use_count)) {
2456 				urb->dev = ep->umidi->dev;
2457 				snd_usbmidi_submit_urb(urb, GFP_ATOMIC);
2458 			}
2459 		}
2460 	}
2461 }
2462 
2463 /*
2464  * Resume input after a call to snd_usbmidi_input_stop().
2465  */
2466 void snd_usbmidi_input_start(struct list_head *p)
2467 {
2468 	struct snd_usb_midi *umidi;
2469 	int i;
2470 
2471 	umidi = list_entry(p, struct snd_usb_midi, list);
2472 	if (umidi->input_running || !umidi->opened[1])
2473 		return;
2474 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i)
2475 		snd_usbmidi_input_start_ep(umidi, umidi->endpoints[i].in);
2476 	umidi->input_running = 1;
2477 }
2478 EXPORT_SYMBOL(snd_usbmidi_input_start);
2479 
2480 /*
2481  * Prepare for suspend. Typically called from the USB suspend callback.
2482  */
2483 void snd_usbmidi_suspend(struct list_head *p)
2484 {
2485 	struct snd_usb_midi *umidi;
2486 
2487 	umidi = list_entry(p, struct snd_usb_midi, list);
2488 	guard(mutex)(&umidi->mutex);
2489 	snd_usbmidi_input_stop(p);
2490 }
2491 EXPORT_SYMBOL(snd_usbmidi_suspend);
2492 
2493 /*
2494  * Resume. Typically called from the USB resume callback.
2495  */
2496 void snd_usbmidi_resume(struct list_head *p)
2497 {
2498 	struct snd_usb_midi *umidi;
2499 
2500 	umidi = list_entry(p, struct snd_usb_midi, list);
2501 	guard(mutex)(&umidi->mutex);
2502 	snd_usbmidi_input_start(p);
2503 }
2504 EXPORT_SYMBOL(snd_usbmidi_resume);
2505 
2506 /*
2507  * Creates and registers everything needed for a MIDI streaming interface.
2508  */
2509 int __snd_usbmidi_create(struct snd_card *card,
2510 			 struct usb_interface *iface,
2511 			 struct list_head *midi_list,
2512 			 const struct snd_usb_audio_quirk *quirk,
2513 			 unsigned int usb_id,
2514 			 unsigned int *num_rawmidis)
2515 {
2516 	struct snd_usb_midi *umidi;
2517 	struct snd_usb_midi_endpoint_info endpoints[MIDI_MAX_ENDPOINTS];
2518 	int out_ports, in_ports;
2519 	int i, err;
2520 
2521 	umidi = kzalloc_obj(*umidi);
2522 	if (!umidi)
2523 		return -ENOMEM;
2524 	umidi->dev = interface_to_usbdev(iface);
2525 	umidi->card = card;
2526 	umidi->iface = iface;
2527 	umidi->quirk = quirk;
2528 	umidi->usb_protocol_ops = &snd_usbmidi_standard_ops;
2529 	if (num_rawmidis)
2530 		umidi->next_midi_device = *num_rawmidis;
2531 	spin_lock_init(&umidi->disc_lock);
2532 	init_rwsem(&umidi->disc_rwsem);
2533 	mutex_init(&umidi->mutex);
2534 	if (!usb_id)
2535 		usb_id = USB_ID(le16_to_cpu(umidi->dev->descriptor.idVendor),
2536 			       le16_to_cpu(umidi->dev->descriptor.idProduct));
2537 	umidi->usb_id = usb_id;
2538 	timer_setup(&umidi->error_timer, snd_usbmidi_error_timer, 0);
2539 
2540 	/* detect the endpoint(s) to use */
2541 	memset(endpoints, 0, sizeof(endpoints));
2542 	switch (quirk ? quirk->type : QUIRK_MIDI_STANDARD_INTERFACE) {
2543 	case QUIRK_MIDI_STANDARD_INTERFACE:
2544 		err = snd_usbmidi_get_ms_info(umidi, endpoints);
2545 		if (umidi->usb_id == USB_ID(0x0763, 0x0150)) /* M-Audio Uno */
2546 			umidi->usb_protocol_ops =
2547 				&snd_usbmidi_maudio_broken_running_status_ops;
2548 		break;
2549 	case QUIRK_MIDI_US122L:
2550 		umidi->usb_protocol_ops = &snd_usbmidi_122l_ops;
2551 		fallthrough;
2552 	case QUIRK_MIDI_FIXED_ENDPOINT:
2553 		memcpy(&endpoints[0], quirk->data,
2554 		       sizeof(struct snd_usb_midi_endpoint_info));
2555 		err = snd_usbmidi_detect_endpoints(umidi, &endpoints[0], 1);
2556 		break;
2557 	case QUIRK_MIDI_YAMAHA:
2558 		err = snd_usbmidi_detect_yamaha(umidi, &endpoints[0]);
2559 		break;
2560 	case QUIRK_MIDI_ROLAND:
2561 		err = snd_usbmidi_detect_roland(umidi, &endpoints[0]);
2562 		break;
2563 	case QUIRK_MIDI_MIDIMAN:
2564 		umidi->usb_protocol_ops = &snd_usbmidi_midiman_ops;
2565 		memcpy(&endpoints[0], quirk->data,
2566 		       sizeof(struct snd_usb_midi_endpoint_info));
2567 		err = 0;
2568 		break;
2569 	case QUIRK_MIDI_NOVATION:
2570 		umidi->usb_protocol_ops = &snd_usbmidi_novation_ops;
2571 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2572 		break;
2573 	case QUIRK_MIDI_RAW_BYTES:
2574 		umidi->usb_protocol_ops = &snd_usbmidi_raw_ops;
2575 		/*
2576 		 * Interface 1 contains isochronous endpoints, but with the same
2577 		 * numbers as in interface 0.  Since it is interface 1 that the
2578 		 * USB core has most recently seen, these descriptors are now
2579 		 * associated with the endpoint numbers.  This will foul up our
2580 		 * attempts to submit bulk/interrupt URBs to the endpoints in
2581 		 * interface 0, so we have to make sure that the USB core looks
2582 		 * again at interface 0 by calling usb_set_interface() on it.
2583 		 */
2584 		if (umidi->usb_id == USB_ID(0x07fd, 0x0001)) /* MOTU Fastlane */
2585 			usb_set_interface(umidi->dev, 0, 0);
2586 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2587 		break;
2588 	case QUIRK_MIDI_EMAGIC:
2589 		umidi->usb_protocol_ops = &snd_usbmidi_emagic_ops;
2590 		memcpy(&endpoints[0], quirk->data,
2591 		       sizeof(struct snd_usb_midi_endpoint_info));
2592 		err = snd_usbmidi_detect_endpoints(umidi, &endpoints[0], 1);
2593 		break;
2594 	case QUIRK_MIDI_CME:
2595 		umidi->usb_protocol_ops = &snd_usbmidi_cme_ops;
2596 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2597 		break;
2598 	case QUIRK_MIDI_AKAI:
2599 		umidi->usb_protocol_ops = &snd_usbmidi_akai_ops;
2600 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2601 		/* endpoint 1 is input-only */
2602 		endpoints[1].out_cables = 0;
2603 		break;
2604 	case QUIRK_MIDI_FTDI:
2605 		umidi->usb_protocol_ops = &snd_usbmidi_ftdi_ops;
2606 
2607 		/* set baud rate to 31250 (48 MHz / 16 / 96) */
2608 		err = usb_control_msg(umidi->dev, usb_sndctrlpipe(umidi->dev, 0),
2609 				      3, 0x40, 0x60, 0, NULL, 0, 1000);
2610 		if (err < 0)
2611 			break;
2612 
2613 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2614 		break;
2615 	case QUIRK_MIDI_CH345:
2616 		umidi->usb_protocol_ops = &snd_usbmidi_ch345_broken_sysex_ops;
2617 		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
2618 		break;
2619 	default:
2620 		dev_err(&umidi->dev->dev, "invalid quirk type %d\n",
2621 			quirk->type);
2622 		err = -ENXIO;
2623 		break;
2624 	}
2625 	if (err < 0)
2626 		goto free_midi;
2627 
2628 	/* create rawmidi device */
2629 	out_ports = 0;
2630 	in_ports = 0;
2631 	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
2632 		out_ports += hweight16(endpoints[i].out_cables);
2633 		in_ports += hweight16(endpoints[i].in_cables);
2634 	}
2635 	err = snd_usbmidi_create_rawmidi(umidi, out_ports, in_ports);
2636 	if (err < 0)
2637 		goto free_midi;
2638 
2639 	/* create endpoint/port structures */
2640 	if (quirk && quirk->type == QUIRK_MIDI_MIDIMAN)
2641 		err = snd_usbmidi_create_endpoints_midiman(umidi, &endpoints[0]);
2642 	else
2643 		err = snd_usbmidi_create_endpoints(umidi, endpoints);
2644 	if (err < 0)
2645 		goto exit;
2646 
2647 	usb_autopm_get_interface_no_resume(umidi->iface);
2648 
2649 	list_add_tail(&umidi->list, midi_list);
2650 	if (num_rawmidis)
2651 		*num_rawmidis = umidi->next_midi_device;
2652 	return 0;
2653 
2654 free_midi:
2655 	kfree(umidi);
2656 exit:
2657 	return err;
2658 }
2659 EXPORT_SYMBOL(__snd_usbmidi_create);
2660