midi.c 58.3 KB
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/*
 * usbmidi.c - ALSA USB MIDI driver
 *
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 * Copyright (c) 2002-2009 Clemens Ladisch
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 * All rights reserved.
 *
 * Based on the OSS usb-midi driver by NAGANO Daisuke,
 *          NetBSD's umidi driver by Takuya SHIOZAKI,
 *          the "USB Device Class Definition for MIDI Devices" by Roland
 *
 * Redistribution and use in source and binary forms, with or without
 * modification, are permitted provided that the following conditions
 * are met:
 * 1. Redistributions of source code must retain the above copyright
 *    notice, this list of conditions, and the following disclaimer,
 *    without modification.
 * 2. The name of the author may not be used to endorse or promote products
 *    derived from this software without specific prior written permission.
 *
 * Alternatively, this software may be distributed and/or modified under the
 * terms of the GNU General Public License as published by the Free Software
 * Foundation; either version 2 of the License, or (at your option) any later
 * version.
 *
 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR
 * ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
 * SUCH DAMAGE.
 */

#include <linux/kernel.h>
#include <linux/types.h>
#include <linux/bitops.h>
#include <linux/interrupt.h>
#include <linux/spinlock.h>
#include <linux/string.h>
#include <linux/init.h>
#include <linux/slab.h>
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#include <linux/timer.h>
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#include <linux/usb.h>
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#include <linux/wait.h>
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#include <linux/usb/audio.h>

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#include <sound/core.h>
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#include <sound/control.h>
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#include <sound/rawmidi.h>
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#include <sound/asequencer.h>
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#include "usbaudio.h"
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#include "midi.h"
#include "helper.h"
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/*
 * define this to log all USB packets
 */
/* #define DUMP_PACKETS */

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/*
 * how long to wait after some USB errors, so that khubd can disconnect() us
 * without too many spurious errors
 */
#define ERROR_DELAY_JIFFIES (HZ / 10)

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#define OUTPUT_URBS 7
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#define INPUT_URBS 7

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MODULE_AUTHOR("Clemens Ladisch <clemens@ladisch.de>");
MODULE_DESCRIPTION("USB Audio/MIDI helper module");
MODULE_LICENSE("Dual BSD/GPL");


struct usb_ms_header_descriptor {
	__u8  bLength;
	__u8  bDescriptorType;
	__u8  bDescriptorSubtype;
	__u8  bcdMSC[2];
	__le16 wTotalLength;
} __attribute__ ((packed));

struct usb_ms_endpoint_descriptor {
	__u8  bLength;
	__u8  bDescriptorType;
	__u8  bDescriptorSubtype;
	__u8  bNumEmbMIDIJack;
	__u8  baAssocJackID[0];
} __attribute__ ((packed));

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struct snd_usb_midi_in_endpoint;
struct snd_usb_midi_out_endpoint;
struct snd_usb_midi_endpoint;
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struct usb_protocol_ops {
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	void (*input)(struct snd_usb_midi_in_endpoint*, uint8_t*, int);
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	void (*output)(struct snd_usb_midi_out_endpoint *ep, struct urb *urb);
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	void (*output_packet)(struct urb*, uint8_t, uint8_t, uint8_t, uint8_t);
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	void (*init_out_endpoint)(struct snd_usb_midi_out_endpoint*);
	void (*finish_out_endpoint)(struct snd_usb_midi_out_endpoint*);
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};

struct snd_usb_midi {
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	struct usb_device *dev;
	struct snd_card *card;
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	struct usb_interface *iface;
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	const struct snd_usb_audio_quirk *quirk;
	struct snd_rawmidi *rmidi;
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	struct usb_protocol_ops* usb_protocol_ops;
	struct list_head list;
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	struct timer_list error_timer;
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	spinlock_t disc_lock;
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	struct mutex mutex;
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	u32 usb_id;
	int next_midi_device;
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	struct snd_usb_midi_endpoint {
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		struct snd_usb_midi_out_endpoint *out;
		struct snd_usb_midi_in_endpoint *in;
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	} endpoints[MIDI_MAX_ENDPOINTS];
	unsigned long input_triggered;
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	unsigned int opened;
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	unsigned char disconnected;
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	struct snd_kcontrol *roland_load_ctl;
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};

struct snd_usb_midi_out_endpoint {
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	struct snd_usb_midi* umidi;
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	struct out_urb_context {
		struct urb *urb;
		struct snd_usb_midi_out_endpoint *ep;
	} urbs[OUTPUT_URBS];
	unsigned int active_urbs;
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	unsigned int drain_urbs;
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	int max_transfer;		/* size of urb buffer */
	struct tasklet_struct tasklet;
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	unsigned int next_urb;
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	spinlock_t buffer_lock;

	struct usbmidi_out_port {
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		struct snd_usb_midi_out_endpoint* ep;
		struct snd_rawmidi_substream *substream;
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		int active;
		uint8_t cable;		/* cable number << 4 */
		uint8_t state;
#define STATE_UNKNOWN	0
#define STATE_1PARAM	1
#define STATE_2PARAM_1	2
#define STATE_2PARAM_2	3
#define STATE_SYSEX_0	4
#define STATE_SYSEX_1	5
#define STATE_SYSEX_2	6
		uint8_t data[2];
	} ports[0x10];
	int current_port;
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	wait_queue_head_t drain_wait;
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};

struct snd_usb_midi_in_endpoint {
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	struct snd_usb_midi* umidi;
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	struct urb* urbs[INPUT_URBS];
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	struct usbmidi_in_port {
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		struct snd_rawmidi_substream *substream;
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		u8 running_status_length;
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	} ports[0x10];
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	u8 seen_f5;
	u8 error_resubmit;
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	int current_port;
};

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static void snd_usbmidi_do_output(struct snd_usb_midi_out_endpoint* ep);
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static const uint8_t snd_usbmidi_cin_length[] = {
	0, 0, 2, 3, 3, 1, 2, 3, 3, 3, 3, 3, 2, 2, 3, 1
};

/*
 * Submits the URB, with error handling.
 */
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static int snd_usbmidi_submit_urb(struct urb* urb, gfp_t flags)
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{
	int err = usb_submit_urb(urb, flags);
	if (err < 0 && err != -ENODEV)
		snd_printk(KERN_ERR "usb_submit_urb: %d\n", err);
	return err;
}

/*
 * Error handling for URB completion functions.
 */
static int snd_usbmidi_urb_error(int status)
{
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	switch (status) {
	/* manually unlinked, or device gone */
	case -ENOENT:
	case -ECONNRESET:
	case -ESHUTDOWN:
	case -ENODEV:
		return -ENODEV;
	/* errors that might occur during unplugging */
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	case -EPROTO:
	case -ETIME:
	case -EILSEQ:
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		return -EIO;
	default:
		snd_printk(KERN_ERR "urb status %d\n", status);
		return 0; /* continue */
	}
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}

/*
 * Receives a chunk of MIDI data.
 */
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static void snd_usbmidi_input_data(struct snd_usb_midi_in_endpoint* ep, int portidx,
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				   uint8_t* data, int length)
{
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	struct usbmidi_in_port* port = &ep->ports[portidx];
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	if (!port->substream) {
		snd_printd("unexpected port %d!\n", portidx);
		return;
	}
	if (!test_bit(port->substream->number, &ep->umidi->input_triggered))
		return;
	snd_rawmidi_receive(port->substream, data, length);
}

#ifdef DUMP_PACKETS
static void dump_urb(const char *type, const u8 *data, int length)
{
	snd_printk(KERN_DEBUG "%s packet: [", type);
	for (; length > 0; ++data, --length)
		printk(" %02x", *data);
	printk(" ]\n");
}
#else
#define dump_urb(type, data, length) /* nothing */
#endif

/*
 * Processes the data read from the device.
 */
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static void snd_usbmidi_in_urb_complete(struct urb* urb)
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{
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	struct snd_usb_midi_in_endpoint* ep = urb->context;
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	if (urb->status == 0) {
		dump_urb("received", urb->transfer_buffer, urb->actual_length);
		ep->umidi->usb_protocol_ops->input(ep, urb->transfer_buffer,
						   urb->actual_length);
	} else {
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		int err = snd_usbmidi_urb_error(urb->status);
		if (err < 0) {
			if (err != -ENODEV) {
				ep->error_resubmit = 1;
				mod_timer(&ep->umidi->error_timer,
					  jiffies + ERROR_DELAY_JIFFIES);
			}
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			return;
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		}
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	}

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	urb->dev = ep->umidi->dev;
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	snd_usbmidi_submit_urb(urb, GFP_ATOMIC);
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}

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static void snd_usbmidi_out_urb_complete(struct urb* urb)
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{
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	struct out_urb_context *context = urb->context;
	struct snd_usb_midi_out_endpoint* ep = context->ep;
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	unsigned int urb_index;
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	spin_lock(&ep->buffer_lock);
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	urb_index = context - ep->urbs;
	ep->active_urbs &= ~(1 << urb_index);
	if (unlikely(ep->drain_urbs)) {
		ep->drain_urbs &= ~(1 << urb_index);
		wake_up(&ep->drain_wait);
	}
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	spin_unlock(&ep->buffer_lock);
	if (urb->status < 0) {
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		int err = snd_usbmidi_urb_error(urb->status);
		if (err < 0) {
			if (err != -ENODEV)
				mod_timer(&ep->umidi->error_timer,
					  jiffies + ERROR_DELAY_JIFFIES);
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			return;
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		}
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	}
	snd_usbmidi_do_output(ep);
}

/*
 * This is called when some data should be transferred to the device
 * (from one or more substreams).
 */
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static void snd_usbmidi_do_output(struct snd_usb_midi_out_endpoint* ep)
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{
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	unsigned int urb_index;
	struct urb* urb;
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	unsigned long flags;

	spin_lock_irqsave(&ep->buffer_lock, flags);
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	if (ep->umidi->disconnected) {
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		spin_unlock_irqrestore(&ep->buffer_lock, flags);
		return;
	}

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	urb_index = ep->next_urb;
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	for (;;) {
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		if (!(ep->active_urbs & (1 << urb_index))) {
			urb = ep->urbs[urb_index].urb;
			urb->transfer_buffer_length = 0;
			ep->umidi->usb_protocol_ops->output(ep, urb);
			if (urb->transfer_buffer_length == 0)
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				break;
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			dump_urb("sending", urb->transfer_buffer,
				 urb->transfer_buffer_length);
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			urb->dev = ep->umidi->dev;
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			if (snd_usbmidi_submit_urb(urb, GFP_ATOMIC) < 0)
				break;
			ep->active_urbs |= 1 << urb_index;
		}
		if (++urb_index >= OUTPUT_URBS)
			urb_index = 0;
		if (urb_index == ep->next_urb)
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			break;
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	}
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	ep->next_urb = urb_index;
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	spin_unlock_irqrestore(&ep->buffer_lock, flags);
}

static void snd_usbmidi_out_tasklet(unsigned long data)
{
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	struct snd_usb_midi_out_endpoint* ep = (struct snd_usb_midi_out_endpoint *) data;
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	snd_usbmidi_do_output(ep);
}

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/* called after transfers had been interrupted due to some USB error */
static void snd_usbmidi_error_timer(unsigned long data)
{
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	struct snd_usb_midi *umidi = (struct snd_usb_midi *)data;
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	unsigned int i, j;
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	spin_lock(&umidi->disc_lock);
	if (umidi->disconnected) {
		spin_unlock(&umidi->disc_lock);
		return;
	}
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	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
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		struct snd_usb_midi_in_endpoint *in = umidi->endpoints[i].in;
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		if (in && in->error_resubmit) {
			in->error_resubmit = 0;
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			for (j = 0; j < INPUT_URBS; ++j) {
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				in->urbs[j]->dev = umidi->dev;
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				snd_usbmidi_submit_urb(in->urbs[j], GFP_ATOMIC);
			}
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		}
		if (umidi->endpoints[i].out)
			snd_usbmidi_do_output(umidi->endpoints[i].out);
	}
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	spin_unlock(&umidi->disc_lock);
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}

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/* helper function to send static data that may not DMA-able */
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static int send_bulk_static_data(struct snd_usb_midi_out_endpoint* ep,
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				 const void *data, int len)
{
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	int err = 0;
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	void *buf = kmemdup(data, len, GFP_KERNEL);
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	if (!buf)
		return -ENOMEM;
	dump_urb("sending", buf, len);
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	if (ep->urbs[0].urb)
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		err = usb_bulk_msg(ep->umidi->dev, ep->urbs[0].urb->pipe,
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				   buf, len, NULL, 250);
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	kfree(buf);
	return err;
}

/*
 * Standard USB MIDI protocol: see the spec.
 * Midiman protocol: like the standard protocol, but the control byte is the
 * fourth byte in each packet, and uses length instead of CIN.
 */

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static void snd_usbmidi_standard_input(struct snd_usb_midi_in_endpoint* ep,
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				       uint8_t* buffer, int buffer_length)
{
	int i;

	for (i = 0; i + 3 < buffer_length; i += 4)
		if (buffer[i] != 0) {
			int cable = buffer[i] >> 4;
			int length = snd_usbmidi_cin_length[buffer[i] & 0x0f];
			snd_usbmidi_input_data(ep, cable, &buffer[i + 1], length);
		}
}

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static void snd_usbmidi_midiman_input(struct snd_usb_midi_in_endpoint* ep,
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				      uint8_t* buffer, int buffer_length)
{
	int i;

	for (i = 0; i + 3 < buffer_length; i += 4)
		if (buffer[i + 3] != 0) {
			int port = buffer[i + 3] >> 4;
			int length = buffer[i + 3] & 3;
			snd_usbmidi_input_data(ep, port, &buffer[i], length);
		}
}

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/*
 * Buggy M-Audio device: running status on input results in a packet that has
 * the data bytes but not the status byte and that is marked with CIN 4.
 */
static void snd_usbmidi_maudio_broken_running_status_input(
					struct snd_usb_midi_in_endpoint* ep,
					uint8_t* buffer, int buffer_length)
{
	int i;

	for (i = 0; i + 3 < buffer_length; i += 4)
		if (buffer[i] != 0) {
			int cable = buffer[i] >> 4;
			u8 cin = buffer[i] & 0x0f;
			struct usbmidi_in_port *port = &ep->ports[cable];
			int length;
			
			length = snd_usbmidi_cin_length[cin];
			if (cin == 0xf && buffer[i + 1] >= 0xf8)
				; /* realtime msg: no running status change */
			else if (cin >= 0x8 && cin <= 0xe)
				/* channel msg */
				port->running_status_length = length - 1;
			else if (cin == 0x4 &&
				 port->running_status_length != 0 &&
				 buffer[i + 1] < 0x80)
				/* CIN 4 that is not a SysEx */
				length = port->running_status_length;
			else
				/*
				 * All other msgs cannot begin running status.
				 * (A channel msg sent as two or three CIN 0xF
				 * packets could in theory, but this device
				 * doesn't use this format.)
				 */
				port->running_status_length = 0;
			snd_usbmidi_input_data(ep, cable, &buffer[i + 1], length);
		}
}

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/*
 * CME protocol: like the standard protocol, but SysEx commands are sent as a
 * single USB packet preceded by a 0x0F byte.
 */
static void snd_usbmidi_cme_input(struct snd_usb_midi_in_endpoint *ep,
				  uint8_t *buffer, int buffer_length)
{
	if (buffer_length < 2 || (buffer[0] & 0x0f) != 0x0f)
		snd_usbmidi_standard_input(ep, buffer, buffer_length);
	else
		snd_usbmidi_input_data(ep, buffer[0] >> 4,
				       &buffer[1], buffer_length - 1);
}

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/*
 * Adds one USB MIDI packet to the output buffer.
 */
static void snd_usbmidi_output_standard_packet(struct urb* urb, uint8_t p0,
					       uint8_t p1, uint8_t p2, uint8_t p3)
{

	uint8_t* buf = (uint8_t*)urb->transfer_buffer + urb->transfer_buffer_length;
	buf[0] = p0;
	buf[1] = p1;
	buf[2] = p2;
	buf[3] = p3;
	urb->transfer_buffer_length += 4;
}

/*
 * Adds one Midiman packet to the output buffer.
 */
static void snd_usbmidi_output_midiman_packet(struct urb* urb, uint8_t p0,
					      uint8_t p1, uint8_t p2, uint8_t p3)
{

	uint8_t* buf = (uint8_t*)urb->transfer_buffer + urb->transfer_buffer_length;
	buf[0] = p1;
	buf[1] = p2;
	buf[2] = p3;
	buf[3] = (p0 & 0xf0) | snd_usbmidi_cin_length[p0 & 0x0f];
	urb->transfer_buffer_length += 4;
}

/*
 * Converts MIDI commands to USB MIDI packets.
 */
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static void snd_usbmidi_transmit_byte(struct usbmidi_out_port* port,
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				      uint8_t b, struct urb* urb)
{
	uint8_t p0 = port->cable;
	void (*output_packet)(struct urb*, uint8_t, uint8_t, uint8_t, uint8_t) =
		port->ep->umidi->usb_protocol_ops->output_packet;

	if (b >= 0xf8) {
		output_packet(urb, p0 | 0x0f, b, 0, 0);
	} else if (b >= 0xf0) {
		switch (b) {
		case 0xf0:
			port->data[0] = b;
			port->state = STATE_SYSEX_1;
			break;
		case 0xf1:
		case 0xf3:
			port->data[0] = b;
			port->state = STATE_1PARAM;
			break;
		case 0xf2:
			port->data[0] = b;
			port->state = STATE_2PARAM_1;
			break;
		case 0xf4:
		case 0xf5:
			port->state = STATE_UNKNOWN;
			break;
		case 0xf6:
			output_packet(urb, p0 | 0x05, 0xf6, 0, 0);
			port->state = STATE_UNKNOWN;
			break;
		case 0xf7:
			switch (port->state) {
			case STATE_SYSEX_0:
				output_packet(urb, p0 | 0x05, 0xf7, 0, 0);
				break;
			case STATE_SYSEX_1:
				output_packet(urb, p0 | 0x06, port->data[0], 0xf7, 0);
				break;
			case STATE_SYSEX_2:
				output_packet(urb, p0 | 0x07, port->data[0], port->data[1], 0xf7);
				break;
			}
			port->state = STATE_UNKNOWN;
			break;
		}
	} else if (b >= 0x80) {
		port->data[0] = b;
		if (b >= 0xc0 && b <= 0xdf)
			port->state = STATE_1PARAM;
		else
			port->state = STATE_2PARAM_1;
	} else { /* b < 0x80 */
		switch (port->state) {
		case STATE_1PARAM:
			if (port->data[0] < 0xf0) {
				p0 |= port->data[0] >> 4;
			} else {
				p0 |= 0x02;
				port->state = STATE_UNKNOWN;
			}
			output_packet(urb, p0, port->data[0], b, 0);
			break;
		case STATE_2PARAM_1:
			port->data[1] = b;
			port->state = STATE_2PARAM_2;
			break;
		case STATE_2PARAM_2:
			if (port->data[0] < 0xf0) {
				p0 |= port->data[0] >> 4;
				port->state = STATE_2PARAM_1;
			} else {
				p0 |= 0x03;
				port->state = STATE_UNKNOWN;
			}
			output_packet(urb, p0, port->data[0], port->data[1], b);
			break;
		case STATE_SYSEX_0:
			port->data[0] = b;
			port->state = STATE_SYSEX_1;
			break;
		case STATE_SYSEX_1:
			port->data[1] = b;
			port->state = STATE_SYSEX_2;
			break;
		case STATE_SYSEX_2:
			output_packet(urb, p0 | 0x04, port->data[0], port->data[1], b);
			port->state = STATE_SYSEX_0;
			break;
		}
	}
}

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static void snd_usbmidi_standard_output(struct snd_usb_midi_out_endpoint* ep,
					struct urb *urb)
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{
	int p;

	/* FIXME: lower-numbered ports can starve higher-numbered ports */
	for (p = 0; p < 0x10; ++p) {
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		struct usbmidi_out_port* port = &ep->ports[p];
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		if (!port->active)
			continue;
		while (urb->transfer_buffer_length + 3 < ep->max_transfer) {
			uint8_t b;
			if (snd_rawmidi_transmit(port->substream, &b, 1) != 1) {
				port->active = 0;
				break;
			}
			snd_usbmidi_transmit_byte(port, b, urb);
		}
	}
}

static struct usb_protocol_ops snd_usbmidi_standard_ops = {
	.input = snd_usbmidi_standard_input,
	.output = snd_usbmidi_standard_output,
	.output_packet = snd_usbmidi_output_standard_packet,
};

static struct usb_protocol_ops snd_usbmidi_midiman_ops = {
	.input = snd_usbmidi_midiman_input,
	.output = snd_usbmidi_standard_output, 
	.output_packet = snd_usbmidi_output_midiman_packet,
};

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static struct usb_protocol_ops snd_usbmidi_maudio_broken_running_status_ops = {
	.input = snd_usbmidi_maudio_broken_running_status_input,
	.output = snd_usbmidi_standard_output, 
	.output_packet = snd_usbmidi_output_standard_packet,
};

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static struct usb_protocol_ops snd_usbmidi_cme_ops = {
	.input = snd_usbmidi_cme_input,
	.output = snd_usbmidi_standard_output,
	.output_packet = snd_usbmidi_output_standard_packet,
};

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/*
 * Novation USB MIDI protocol: number of data bytes is in the first byte
 * (when receiving) (+1!) or in the second byte (when sending); data begins
 * at the third byte.
 */

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static void snd_usbmidi_novation_input(struct snd_usb_midi_in_endpoint* ep,
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				       uint8_t* buffer, int buffer_length)
{
	if (buffer_length < 2 || !buffer[0] || buffer_length < buffer[0] + 1)
		return;
	snd_usbmidi_input_data(ep, 0, &buffer[2], buffer[0] - 1);
}

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static void snd_usbmidi_novation_output(struct snd_usb_midi_out_endpoint* ep,
					struct urb *urb)
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{
	uint8_t* transfer_buffer;
	int count;

	if (!ep->ports[0].active)
		return;
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	transfer_buffer = urb->transfer_buffer;
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	count = snd_rawmidi_transmit(ep->ports[0].substream,
				     &transfer_buffer[2],
				     ep->max_transfer - 2);
	if (count < 1) {
		ep->ports[0].active = 0;
		return;
	}
	transfer_buffer[0] = 0;
	transfer_buffer[1] = count;
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	urb->transfer_buffer_length = 2 + count;
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}

static struct usb_protocol_ops snd_usbmidi_novation_ops = {
	.input = snd_usbmidi_novation_input,
	.output = snd_usbmidi_novation_output,
};

/*
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 * "raw" protocol: used by the MOTU FastLane.
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 */

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static void snd_usbmidi_raw_input(struct snd_usb_midi_in_endpoint* ep,
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				  uint8_t* buffer, int buffer_length)
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{
	snd_usbmidi_input_data(ep, 0, buffer, buffer_length);
}

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static void snd_usbmidi_raw_output(struct snd_usb_midi_out_endpoint* ep,
				   struct urb *urb)
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{
	int count;

	if (!ep->ports[0].active)
		return;
	count = snd_rawmidi_transmit(ep->ports[0].substream,
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				     urb->transfer_buffer,
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				     ep->max_transfer);
	if (count < 1) {
		ep->ports[0].active = 0;
		return;
	}
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	urb->transfer_buffer_length = count;
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}

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static struct usb_protocol_ops snd_usbmidi_raw_ops = {
	.input = snd_usbmidi_raw_input,
	.output = snd_usbmidi_raw_output,
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};

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static void snd_usbmidi_us122l_input(struct snd_usb_midi_in_endpoint *ep,
				     uint8_t *buffer, int buffer_length)
{
	if (buffer_length != 9)
		return;
	buffer_length = 8;
	while (buffer_length && buffer[buffer_length - 1] == 0xFD)
		buffer_length--;
	if (buffer_length)
		snd_usbmidi_input_data(ep, 0, buffer, buffer_length);
}

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static void snd_usbmidi_us122l_output(struct snd_usb_midi_out_endpoint *ep,
				      struct urb *urb)
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{
	int count;

	if (!ep->ports[0].active)
		return;
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	count = snd_usb_get_speed(ep->umidi->dev) == USB_SPEED_HIGH ? 1 : 2;
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	count = snd_rawmidi_transmit(ep->ports[0].substream,
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				     urb->transfer_buffer,
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				     count);
	if (count < 1) {
		ep->ports[0].active = 0;
		return;
	}

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	memset(urb->transfer_buffer + count, 0xFD, 9 - count);
	urb->transfer_buffer_length = count;
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}

static struct usb_protocol_ops snd_usbmidi_122l_ops = {
	.input = snd_usbmidi_us122l_input,
	.output = snd_usbmidi_us122l_output,
};

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/*
 * Emagic USB MIDI protocol: raw MIDI with "F5 xx" port switching.
 */

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static void snd_usbmidi_emagic_init_out(struct snd_usb_midi_out_endpoint* ep)
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{
	static const u8 init_data[] = {
		/* initialization magic: "get version" */
		0xf0,
		0x00, 0x20, 0x31,	/* Emagic */
		0x64,			/* Unitor8 */
		0x0b,			/* version number request */
		0x00,			/* command version */
		0x00,			/* EEPROM, box 0 */
		0xf7
	};
	send_bulk_static_data(ep, init_data, sizeof(init_data));
	/* while we're at it, pour on more magic */
	send_bulk_static_data(ep, init_data, sizeof(init_data));
}

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static void snd_usbmidi_emagic_finish_out(struct snd_usb_midi_out_endpoint* ep)
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{
	static const u8 finish_data[] = {
		/* switch to patch mode with last preset */
		0xf0,
		0x00, 0x20, 0x31,	/* Emagic */
		0x64,			/* Unitor8 */
		0x10,			/* patch switch command */
		0x00,			/* command version */
		0x7f,			/* to all boxes */
		0x40,			/* last preset in EEPROM */
		0xf7
	};
	send_bulk_static_data(ep, finish_data, sizeof(finish_data));
}

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static void snd_usbmidi_emagic_input(struct snd_usb_midi_in_endpoint* ep,
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				     uint8_t* buffer, int buffer_length)
{
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	int i;

	/* FF indicates end of valid data */
	for (i = 0; i < buffer_length; ++i)
		if (buffer[i] == 0xff) {
			buffer_length = i;
			break;
		}
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	/* handle F5 at end of last buffer */
	if (ep->seen_f5)
		goto switch_port;

	while (buffer_length > 0) {
		/* determine size of data until next F5 */
		for (i = 0; i < buffer_length; ++i)
			if (buffer[i] == 0xf5)
				break;
		snd_usbmidi_input_data(ep, ep->current_port, buffer, i);
		buffer += i;
		buffer_length -= i;

		if (buffer_length <= 0)
			break;
		/* assert(buffer[0] == 0xf5); */
		ep->seen_f5 = 1;
		++buffer;
		--buffer_length;

	switch_port:
		if (buffer_length <= 0)
			break;
		if (buffer[0] < 0x80) {
			ep->current_port = (buffer[0] - 1) & 15;
			++buffer;
			--buffer_length;
		}
		ep->seen_f5 = 0;
	}
}

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static void snd_usbmidi_emagic_output(struct snd_usb_midi_out_endpoint* ep,
				      struct urb *urb)
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{
	int port0 = ep->current_port;
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	uint8_t* buf = urb->transfer_buffer;
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	int buf_free = ep->max_transfer;
	int length, i;

	for (i = 0; i < 0x10; ++i) {
		/* round-robin, starting at the last current port */
		int portnum = (port0 + i) & 15;
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		struct usbmidi_out_port* port = &ep->ports[portnum];
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		if (!port->active)
			continue;
		if (snd_rawmidi_transmit_peek(port->substream, buf, 1) != 1) {
			port->active = 0;
			continue;
		}

		if (portnum != ep->current_port) {
			if (buf_free < 2)
				break;
			ep->current_port = portnum;
			buf[0] = 0xf5;
			buf[1] = (portnum + 1) & 15;
			buf += 2;
			buf_free -= 2;
		}

		if (buf_free < 1)
			break;
		length = snd_rawmidi_transmit(port->substream, buf, buf_free);
		if (length > 0) {
			buf += length;
			buf_free -= length;
			if (buf_free < 1)
				break;
		}
	}
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	if (buf_free < ep->max_transfer && buf_free > 0) {
		*buf = 0xff;
		--buf_free;
	}
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	urb->transfer_buffer_length = ep->max_transfer - buf_free;
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}

static struct usb_protocol_ops snd_usbmidi_emagic_ops = {
	.input = snd_usbmidi_emagic_input,
	.output = snd_usbmidi_emagic_output,
	.init_out_endpoint = snd_usbmidi_emagic_init_out,
	.finish_out_endpoint = snd_usbmidi_emagic_finish_out,
};


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static void update_roland_altsetting(struct snd_usb_midi* umidi)
{
	struct usb_interface *intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor *intfd;
	int is_light_load;

	intf = umidi->iface;
	is_light_load = intf->cur_altsetting != intf->altsetting;
	if (umidi->roland_load_ctl->private_value == is_light_load)
		return;
	hostif = &intf->altsetting[umidi->roland_load_ctl->private_value];
	intfd = get_iface_desc(hostif);
	snd_usbmidi_input_stop(&umidi->list);
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	usb_set_interface(umidi->dev, intfd->bInterfaceNumber,
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			  intfd->bAlternateSetting);
	snd_usbmidi_input_start(&umidi->list);
}

static void substream_open(struct snd_rawmidi_substream *substream, int open)
{
	struct snd_usb_midi* umidi = substream->rmidi->private_data;
	struct snd_kcontrol *ctl;

	mutex_lock(&umidi->mutex);
	if (open) {
		if (umidi->opened++ == 0 && umidi->roland_load_ctl) {
			ctl = umidi->roland_load_ctl;
			ctl->vd[0].access |= SNDRV_CTL_ELEM_ACCESS_INACTIVE;
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			snd_ctl_notify(umidi->card,
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				       SNDRV_CTL_EVENT_MASK_INFO, &ctl->id);
			update_roland_altsetting(umidi);
		}
	} else {
		if (--umidi->opened == 0 && umidi->roland_load_ctl) {
			ctl = umidi->roland_load_ctl;
			ctl->vd[0].access &= ~SNDRV_CTL_ELEM_ACCESS_INACTIVE;
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			snd_ctl_notify(umidi->card,
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				       SNDRV_CTL_EVENT_MASK_INFO, &ctl->id);
		}
	}
	mutex_unlock(&umidi->mutex);
}

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static int snd_usbmidi_output_open(struct snd_rawmidi_substream *substream)
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{
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	struct snd_usb_midi* umidi = substream->rmidi->private_data;
	struct usbmidi_out_port* port = NULL;
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	int i, j;

	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i)
		if (umidi->endpoints[i].out)
			for (j = 0; j < 0x10; ++j)
				if (umidi->endpoints[i].out->ports[j].substream == substream) {
					port = &umidi->endpoints[i].out->ports[j];
					break;
				}
	if (!port) {
		snd_BUG();
		return -ENXIO;
	}
	substream->runtime->private_data = port;
	port->state = STATE_UNKNOWN;
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	substream_open(substream, 1);
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	return 0;
}

959
static int snd_usbmidi_output_close(struct snd_rawmidi_substream *substream)
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{
961
	substream_open(substream, 0);
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	return 0;
}

965
static void snd_usbmidi_output_trigger(struct snd_rawmidi_substream *substream, int up)
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{
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	struct usbmidi_out_port* port = (struct usbmidi_out_port*)substream->runtime->private_data;
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	port->active = up;
	if (up) {
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		if (port->ep->umidi->disconnected) {
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			/* gobble up remaining bytes to prevent wait in
			 * snd_rawmidi_drain_output */
			while (!snd_rawmidi_transmit_empty(substream))
				snd_rawmidi_transmit_ack(substream, 1);
			return;
		}
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		tasklet_schedule(&port->ep->tasklet);
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	}
}

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static void snd_usbmidi_output_drain(struct snd_rawmidi_substream *substream)
{
	struct usbmidi_out_port* port = substream->runtime->private_data;
	struct snd_usb_midi_out_endpoint *ep = port->ep;
	unsigned int drain_urbs;
	DEFINE_WAIT(wait);
	long timeout = msecs_to_jiffies(50);

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	if (ep->umidi->disconnected)
		return;
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	/*
	 * The substream buffer is empty, but some data might still be in the
	 * currently active URBs, so we have to wait for those to complete.
	 */
	spin_lock_irq(&ep->buffer_lock);
	drain_urbs = ep->active_urbs;
	if (drain_urbs) {
		ep->drain_urbs |= drain_urbs;
		do {
			prepare_to_wait(&ep->drain_wait, &wait,
					TASK_UNINTERRUPTIBLE);
			spin_unlock_irq(&ep->buffer_lock);
			timeout = schedule_timeout(timeout);
			spin_lock_irq(&ep->buffer_lock);
			drain_urbs &= ep->drain_urbs;
		} while (drain_urbs && timeout);
		finish_wait(&ep->drain_wait, &wait);
	}
	spin_unlock_irq(&ep->buffer_lock);
}

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static int snd_usbmidi_input_open(struct snd_rawmidi_substream *substream)
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{
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	substream_open(substream, 1);
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	return 0;
}

1019
static int snd_usbmidi_input_close(struct snd_rawmidi_substream *substream)
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{
1021
	substream_open(substream, 0);
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	return 0;
}

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static void snd_usbmidi_input_trigger(struct snd_rawmidi_substream *substream, int up)
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{
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	struct snd_usb_midi* umidi = substream->rmidi->private_data;
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	if (up)
		set_bit(substream->number, &umidi->input_triggered);
	else
		clear_bit(substream->number, &umidi->input_triggered);
}

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static struct snd_rawmidi_ops snd_usbmidi_output_ops = {
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	.open = snd_usbmidi_output_open,
	.close = snd_usbmidi_output_close,
	.trigger = snd_usbmidi_output_trigger,
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	.drain = snd_usbmidi_output_drain,
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};

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static struct snd_rawmidi_ops snd_usbmidi_input_ops = {
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	.open = snd_usbmidi_input_open,
	.close = snd_usbmidi_input_close,
	.trigger = snd_usbmidi_input_trigger
};

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static void free_urb_and_buffer(struct snd_usb_midi *umidi, struct urb *urb,
				unsigned int buffer_length)
{
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	usb_buffer_free(umidi->dev, buffer_length,
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			urb->transfer_buffer, urb->transfer_dma);
	usb_free_urb(urb);
}

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/*
 * Frees an input endpoint.
 * May be called when ep hasn't been initialized completely.
 */
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static void snd_usbmidi_in_endpoint_delete(struct snd_usb_midi_in_endpoint* ep)
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{
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	unsigned int i;

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	for (i = 0; i < INPUT_URBS; ++i)
		if (ep->urbs[i])
			free_urb_and_buffer(ep->umidi, ep->urbs[i],
					    ep->urbs[i]->transfer_buffer_length);
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	kfree(ep);
}

/*
 * Creates an input endpoint.
 */
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static int snd_usbmidi_in_endpoint_create(struct snd_usb_midi* umidi,
					  struct snd_usb_midi_endpoint_info* ep_info,
					  struct snd_usb_midi_endpoint* rep)
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{
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	struct snd_usb_midi_in_endpoint* ep;
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	void* buffer;
	unsigned int pipe;
	int length;
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	unsigned int i;
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	rep->in = NULL;
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	ep = kzalloc(sizeof(*ep), GFP_KERNEL);
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	if (!ep)
		return -ENOMEM;
	ep->umidi = umidi;

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	for (i = 0; i < INPUT_URBS; ++i) {
		ep->urbs[i] = usb_alloc_urb(0, GFP_KERNEL);
		if (!ep->urbs[i]) {
			snd_usbmidi_in_endpoint_delete(ep);
			return -ENOMEM;
		}
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	}
	if (ep_info->in_interval)
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		pipe = usb_rcvintpipe(umidi->dev, ep_info->in_ep);
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	else
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		pipe = usb_rcvbulkpipe(umidi->dev, ep_info->in_ep);
	length = usb_maxpacket(umidi->dev, pipe, 0);
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	for (i = 0; i < INPUT_URBS; ++i) {
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		buffer = usb_buffer_alloc(umidi->dev, length, GFP_KERNEL,
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					  &ep->urbs[i]->transfer_dma);
		if (!buffer) {
			snd_usbmidi_in_endpoint_delete(ep);
			return -ENOMEM;
		}
		if (ep_info->in_interval)
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			usb_fill_int_urb(ep->urbs[i], umidi->dev,
1111 1112 1113 1114
					 pipe, buffer, length,
					 snd_usbmidi_in_urb_complete,
					 ep, ep_info->in_interval);
		else
1115
			usb_fill_bulk_urb(ep->urbs[i], umidi->dev,
1116 1117 1118
					  pipe, buffer, length,
					  snd_usbmidi_in_urb_complete, ep);
		ep->urbs[i]->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
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	}

	rep->in = ep;
	return 0;
}

/*
 * Frees an output endpoint.
 * May be called when ep hasn't been initialized completely.
 */
1129
static void snd_usbmidi_out_endpoint_clear(struct snd_usb_midi_out_endpoint *ep)
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{
1131 1132 1133
	unsigned int i;

	for (i = 0; i < OUTPUT_URBS; ++i)
1134
		if (ep->urbs[i].urb) {
1135 1136
			free_urb_and_buffer(ep->umidi, ep->urbs[i].urb,
					    ep->max_transfer);
1137 1138 1139 1140 1141 1142 1143
			ep->urbs[i].urb = NULL;
		}
}

static void snd_usbmidi_out_endpoint_delete(struct snd_usb_midi_out_endpoint *ep)
{
	snd_usbmidi_out_endpoint_clear(ep);
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	kfree(ep);
}

/*
 * Creates an output endpoint, and initializes output ports.
 */
1150 1151 1152
static int snd_usbmidi_out_endpoint_create(struct snd_usb_midi* umidi,
					   struct snd_usb_midi_endpoint_info* ep_info,
			 		   struct snd_usb_midi_endpoint* rep)
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{
1154
	struct snd_usb_midi_out_endpoint* ep;
1155
	unsigned int i;
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	unsigned int pipe;
	void* buffer;

	rep->out = NULL;
1160
	ep = kzalloc(sizeof(*ep), GFP_KERNEL);
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	if (!ep)
		return -ENOMEM;
	ep->umidi = umidi;

1165 1166 1167 1168 1169 1170 1171
	for (i = 0; i < OUTPUT_URBS; ++i) {
		ep->urbs[i].urb = usb_alloc_urb(0, GFP_KERNEL);
		if (!ep->urbs[i].urb) {
			snd_usbmidi_out_endpoint_delete(ep);
			return -ENOMEM;
		}
		ep->urbs[i].ep = ep;
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	}
1173
	if (ep_info->out_interval)
1174
		pipe = usb_sndintpipe(umidi->dev, ep_info->out_ep);
1175
	else
1176
		pipe = usb_sndbulkpipe(umidi->dev, ep_info->out_ep);
1177 1178
	switch (umidi->usb_id) {
	default:
1179
		ep->max_transfer = usb_maxpacket(umidi->dev, pipe, 1);
1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192
		break;
		/*
		 * Various chips declare a packet size larger than 4 bytes, but
		 * do not actually work with larger packets:
		 */
	case USB_ID(0x0a92, 0x1020): /* ESI M4U */
	case USB_ID(0x1430, 0x474b): /* RedOctane GH MIDI INTERFACE */
	case USB_ID(0x15ca, 0x0101): /* Textech USB Midi Cable */
	case USB_ID(0x15ca, 0x1806): /* Textech USB Midi Cable */
	case USB_ID(0x1a86, 0x752d): /* QinHeng CH345 "USB2.0-MIDI" */
		ep->max_transfer = 4;
		break;
	}
1193
	for (i = 0; i < OUTPUT_URBS; ++i) {
1194
		buffer = usb_buffer_alloc(umidi->dev,
1195 1196 1197 1198 1199 1200 1201
					  ep->max_transfer, GFP_KERNEL,
					  &ep->urbs[i].urb->transfer_dma);
		if (!buffer) {
			snd_usbmidi_out_endpoint_delete(ep);
			return -ENOMEM;
		}
		if (ep_info->out_interval)
1202
			usb_fill_int_urb(ep->urbs[i].urb, umidi->dev,
1203 1204 1205 1206
					 pipe, buffer, ep->max_transfer,
					 snd_usbmidi_out_urb_complete,
					 &ep->urbs[i], ep_info->out_interval);
		else
1207
			usb_fill_bulk_urb(ep->urbs[i].urb, umidi->dev,
1208 1209 1210 1211
					  pipe, buffer, ep->max_transfer,
					  snd_usbmidi_out_urb_complete,
					  &ep->urbs[i]);
		ep->urbs[i].urb->transfer_flags = URB_NO_TRANSFER_DMA_MAP;
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	}

	spin_lock_init(&ep->buffer_lock);
	tasklet_init(&ep->tasklet, snd_usbmidi_out_tasklet, (unsigned long)ep);
1216
	init_waitqueue_head(&ep->drain_wait);
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	for (i = 0; i < 0x10; ++i)
		if (ep_info->out_cables & (1 << i)) {
			ep->ports[i].ep = ep;
			ep->ports[i].cable = i << 4;
		}

	if (umidi->usb_protocol_ops->init_out_endpoint)
		umidi->usb_protocol_ops->init_out_endpoint(ep);

	rep->out = ep;
	return 0;
}

/*
 * Frees everything.
 */
1234
static void snd_usbmidi_free(struct snd_usb_midi* umidi)
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{
	int i;

	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1239
		struct snd_usb_midi_endpoint* ep = &umidi->endpoints[i];
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		if (ep->out)
			snd_usbmidi_out_endpoint_delete(ep->out);
		if (ep->in)
			snd_usbmidi_in_endpoint_delete(ep->in);
	}
1245
	mutex_destroy(&umidi->mutex);
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	kfree(umidi);
}

/*
 * Unlinks all URBs (must be done before the usb_device is deleted).
 */
1252
void snd_usbmidi_disconnect(struct list_head* p)
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{
1254
	struct snd_usb_midi* umidi;
1255
	unsigned int i, j;
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1257
	umidi = list_entry(p, struct snd_usb_midi, list);
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	/*
	 * an URB's completion handler may start the timer and
	 * a timer may submit an URB. To reliably break the cycle
	 * a flag under lock must be used
	 */
	spin_lock_irq(&umidi->disc_lock);
	umidi->disconnected = 1;
	spin_unlock_irq(&umidi->disc_lock);
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	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1267
		struct snd_usb_midi_endpoint* ep = &umidi->endpoints[i];
1268 1269
		if (ep->out)
			tasklet_kill(&ep->out->tasklet);
1270 1271 1272
		if (ep->out) {
			for (j = 0; j < OUTPUT_URBS; ++j)
				usb_kill_urb(ep->out->urbs[j].urb);
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			if (umidi->usb_protocol_ops->finish_out_endpoint)
				umidi->usb_protocol_ops->finish_out_endpoint(ep->out);
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			ep->out->active_urbs = 0;
			if (ep->out->drain_urbs) {
				ep->out->drain_urbs = 0;
				wake_up(&ep->out->drain_wait);
			}
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		}
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		if (ep->in)
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			for (j = 0; j < INPUT_URBS; ++j)
				usb_kill_urb(ep->in->urbs[j]);
1284
		/* free endpoints here; later call can result in Oops */
1285 1286
		if (ep->out)
			snd_usbmidi_out_endpoint_clear(ep->out);
1287 1288 1289 1290
		if (ep->in) {
			snd_usbmidi_in_endpoint_delete(ep->in);
			ep->in = NULL;
		}
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	}
1292
	del_timer_sync(&umidi->error_timer);
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}

1295
static void snd_usbmidi_rawmidi_free(struct snd_rawmidi *rmidi)
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{
1297
	struct snd_usb_midi* umidi = rmidi->private_data;
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	snd_usbmidi_free(umidi);
}

1301
static struct snd_rawmidi_substream *snd_usbmidi_find_substream(struct snd_usb_midi* umidi,
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							   int stream, int number)
{
	struct list_head* list;

	list_for_each(list, &umidi->rmidi->streams[stream].substreams) {
1307
		struct snd_rawmidi_substream *substream = list_entry(list, struct snd_rawmidi_substream, list);
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		if (substream->number == number)
			return substream;
	}
	return NULL;
}

/*
 * This list specifies names for ports that do not fit into the standard
 * "(product) MIDI (n)" schema because they aren't external MIDI ports,
 * such as internal control or synthesizer ports.
 */
1319
static struct port_info {
1320
	u32 id;
1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357
	short int port;
	short int voices;
	const char *name;
	unsigned int seq_flags;
} snd_usbmidi_port_info[] = {
#define PORT_INFO(vendor, product, num, name_, voices_, flags) \
	{ .id = USB_ID(vendor, product), \
	  .port = num, .voices = voices_, \
	  .name = name_, .seq_flags = flags }
#define EXTERNAL_PORT(vendor, product, num, name) \
	PORT_INFO(vendor, product, num, name, 0, \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
		  SNDRV_SEQ_PORT_TYPE_PORT)
#define CONTROL_PORT(vendor, product, num, name) \
	PORT_INFO(vendor, product, num, name, 0, \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
		  SNDRV_SEQ_PORT_TYPE_HARDWARE)
#define ROLAND_SYNTH_PORT(vendor, product, num, name, voices) \
	PORT_INFO(vendor, product, num, name, voices, \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GM | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GM2 | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GS | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_XG | \
		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
		  SNDRV_SEQ_PORT_TYPE_SYNTHESIZER)
#define SOUNDCANVAS_PORT(vendor, product, num, name, voices) \
	PORT_INFO(vendor, product, num, name, voices, \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GM | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GM2 | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_GS | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_XG | \
		  SNDRV_SEQ_PORT_TYPE_MIDI_MT32 | \
		  SNDRV_SEQ_PORT_TYPE_HARDWARE | \
		  SNDRV_SEQ_PORT_TYPE_SYNTHESIZER)
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	/* Roland UA-100 */
1359
	CONTROL_PORT(0x0582, 0x0000, 2, "%s Control"),
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	/* Roland SC-8850 */
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	SOUNDCANVAS_PORT(0x0582, 0x0003, 0, "%s Part A", 128),
	SOUNDCANVAS_PORT(0x0582, 0x0003, 1, "%s Part B", 128),
	SOUNDCANVAS_PORT(0x0582, 0x0003, 2, "%s Part C", 128),
	SOUNDCANVAS_PORT(0x0582, 0x0003, 3, "%s Part D", 128),
	EXTERNAL_PORT(0x0582, 0x0003, 4, "%s MIDI 1"),
	EXTERNAL_PORT(0x0582, 0x0003, 5, "%s MIDI 2"),
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	/* Roland U-8 */
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	EXTERNAL_PORT(0x0582, 0x0004, 0, "%s MIDI"),
	CONTROL_PORT(0x0582, 0x0004, 1, "%s Control"),
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	/* Roland SC-8820 */
1371 1372 1373
	SOUNDCANVAS_PORT(0x0582, 0x0007, 0, "%s Part A", 64),
	SOUNDCANVAS_PORT(0x0582, 0x0007, 1, "%s Part B", 64),
	EXTERNAL_PORT(0x0582, 0x0007, 2, "%s MIDI"),
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	/* Roland SK-500 */
1375 1376 1377
	SOUNDCANVAS_PORT(0x0582, 0x000b, 0, "%s Part A", 64),
	SOUNDCANVAS_PORT(0x0582, 0x000b, 1, "%s Part B", 64),
	EXTERNAL_PORT(0x0582, 0x000b, 2, "%s MIDI"),
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	/* Roland SC-D70 */
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	SOUNDCANVAS_PORT(0x0582, 0x000c, 0, "%s Part A", 64),
	SOUNDCANVAS_PORT(0x0582, 0x000c, 1, "%s Part B", 64),
	EXTERNAL_PORT(0x0582, 0x000c, 2, "%s MIDI"),
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	/* Edirol UM-880 */
1383
	CONTROL_PORT(0x0582, 0x0014, 8, "%s Control"),
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	/* Edirol SD-90 */
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	ROLAND_SYNTH_PORT(0x0582, 0x0016, 0, "%s Part A", 128),
	ROLAND_SYNTH_PORT(0x0582, 0x0016, 1, "%s Part B", 128),
	EXTERNAL_PORT(0x0582, 0x0016, 2, "%s MIDI 1"),
	EXTERNAL_PORT(0x0582, 0x0016, 3, "%s MIDI 2"),
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	/* Edirol UM-550 */
1390
	CONTROL_PORT(0x0582, 0x0023, 5, "%s Control"),
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	/* Edirol SD-20 */
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	ROLAND_SYNTH_PORT(0x0582, 0x0027, 0, "%s Part A", 64),
	ROLAND_SYNTH_PORT(0x0582, 0x0027, 1, "%s Part B", 64),
	EXTERNAL_PORT(0x0582, 0x0027, 2, "%s MIDI"),
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	/* Edirol SD-80 */
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	ROLAND_SYNTH_PORT(0x0582, 0x0029, 0, "%s Part A", 128),
	ROLAND_SYNTH_PORT(0x0582, 0x0029, 1, "%s Part B", 128),
	EXTERNAL_PORT(0x0582, 0x0029, 2, "%s MIDI 1"),
	EXTERNAL_PORT(0x0582, 0x0029, 3, "%s MIDI 2"),
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	/* Edirol UA-700 */
1401 1402
	EXTERNAL_PORT(0x0582, 0x002b, 0, "%s MIDI"),
	CONTROL_PORT(0x0582, 0x002b, 1, "%s Control"),
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	/* Roland VariOS */
1404 1405 1406
	EXTERNAL_PORT(0x0582, 0x002f, 0, "%s MIDI"),
	EXTERNAL_PORT(0x0582, 0x002f, 1, "%s External MIDI"),
	EXTERNAL_PORT(0x0582, 0x002f, 2, "%s Sync"),
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	/* Edirol PCR */
1408 1409 1410
	EXTERNAL_PORT(0x0582, 0x0033, 0, "%s MIDI"),
	EXTERNAL_PORT(0x0582, 0x0033, 1, "%s 1"),
	EXTERNAL_PORT(0x0582, 0x0033, 2, "%s 2"),
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	/* BOSS GS-10 */
1412 1413
	EXTERNAL_PORT(0x0582, 0x003b, 0, "%s MIDI"),
	CONTROL_PORT(0x0582, 0x003b, 1, "%s Control"),
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	/* Edirol UA-1000 */
1415 1416
	EXTERNAL_PORT(0x0582, 0x0044, 0, "%s MIDI"),
	CONTROL_PORT(0x0582, 0x0044, 1, "%s Control"),
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	/* Edirol UR-80 */
1418 1419 1420
	EXTERNAL_PORT(0x0582, 0x0048, 0, "%s MIDI"),
	EXTERNAL_PORT(0x0582, 0x0048, 1, "%s 1"),
	EXTERNAL_PORT(0x0582, 0x0048, 2, "%s 2"),
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	/* Edirol PCR-A */
1422 1423 1424
	EXTERNAL_PORT(0x0582, 0x004d, 0, "%s MIDI"),
	EXTERNAL_PORT(0x0582, 0x004d, 1, "%s 1"),
	EXTERNAL_PORT(0x0582, 0x004d, 2, "%s 2"),
1425
	/* Edirol UM-3EX */
1426
	CONTROL_PORT(0x0582, 0x009a, 3, "%s Control"),
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	/* M-Audio MidiSport 8x8 */
1428 1429
	CONTROL_PORT(0x0763, 0x1031, 8, "%s Control"),
	CONTROL_PORT(0x0763, 0x1033, 8, "%s Control"),
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	/* MOTU Fastlane */
1431 1432
	EXTERNAL_PORT(0x07fd, 0x0001, 0, "%s MIDI A"),
	EXTERNAL_PORT(0x07fd, 0x0001, 1, "%s MIDI B"),
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	/* Emagic Unitor8/AMT8/MT4 */
1434 1435 1436
	EXTERNAL_PORT(0x086a, 0x0001, 8, "%s Broadcast"),
	EXTERNAL_PORT(0x086a, 0x0002, 8, "%s Broadcast"),
	EXTERNAL_PORT(0x086a, 0x0003, 4, "%s Broadcast"),
1437 1438 1439 1440 1441 1442
	/* Access Music Virus TI */
	EXTERNAL_PORT(0x133e, 0x0815, 0, "%s MIDI"),
	PORT_INFO(0x133e, 0x0815, 1, "%s Synth", 0,
		SNDRV_SEQ_PORT_TYPE_MIDI_GENERIC |
		SNDRV_SEQ_PORT_TYPE_HARDWARE |
		SNDRV_SEQ_PORT_TYPE_SYNTHESIZER),
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};

1445 1446 1447 1448 1449
static struct port_info *find_port_info(struct snd_usb_midi* umidi, int number)
{
	int i;

	for (i = 0; i < ARRAY_SIZE(snd_usbmidi_port_info); ++i) {
1450
		if (snd_usbmidi_port_info[i].id == umidi->usb_id &&
1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470
		    snd_usbmidi_port_info[i].port == number)
			return &snd_usbmidi_port_info[i];
	}
	return NULL;
}

static void snd_usbmidi_get_port_info(struct snd_rawmidi *rmidi, int number,
				      struct snd_seq_port_info *seq_port_info)
{
	struct snd_usb_midi *umidi = rmidi->private_data;
	struct port_info *port_info;

	/* TODO: read port flags from descriptors */
	port_info = find_port_info(umidi, number);
	if (port_info) {
		seq_port_info->type = port_info->seq_flags;
		seq_port_info->midi_voices = port_info->voices;
	}
}

1471
static void snd_usbmidi_init_substream(struct snd_usb_midi* umidi,
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				       int stream, int number,
1473
				       struct snd_rawmidi_substream ** rsubstream)
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{
1475
	struct port_info *port_info;
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	const char *name_format;

1478
	struct snd_rawmidi_substream *substream = snd_usbmidi_find_substream(umidi, stream, number);
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	if (!substream) {
		snd_printd(KERN_ERR "substream %d:%d not found\n", stream, number);
		return;
	}

	/* TODO: read port name from jack descriptor */
1485 1486
	port_info = find_port_info(umidi, number);
	name_format = port_info ? port_info->name : "%s MIDI %d";
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	snprintf(substream->name, sizeof(substream->name),
1488
		 name_format, umidi->card->shortname, number + 1);
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	*rsubstream = substream;
}

/*
 * Creates the endpoints and their ports.
 */
1496 1497
static int snd_usbmidi_create_endpoints(struct snd_usb_midi* umidi,
					struct snd_usb_midi_endpoint_info* endpoints)
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{
	int i, j, err;
	int out_ports = 0, in_ports = 0;

	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
		if (endpoints[i].out_cables) {
			err = snd_usbmidi_out_endpoint_create(umidi, &endpoints[i],
							      &umidi->endpoints[i]);
			if (err < 0)
				return err;
		}
		if (endpoints[i].in_cables) {
			err = snd_usbmidi_in_endpoint_create(umidi, &endpoints[i],
							     &umidi->endpoints[i]);
			if (err < 0)
				return err;
		}

		for (j = 0; j < 0x10; ++j) {
			if (endpoints[i].out_cables & (1 << j)) {
				snd_usbmidi_init_substream(umidi, SNDRV_RAWMIDI_STREAM_OUTPUT, out_ports,
							   &umidi->endpoints[i].out->ports[j].substream);
				++out_ports;
			}
			if (endpoints[i].in_cables & (1 << j)) {
				snd_usbmidi_init_substream(umidi, SNDRV_RAWMIDI_STREAM_INPUT, in_ports,
							   &umidi->endpoints[i].in->ports[j].substream);
				++in_ports;
			}
		}
	}
	snd_printdd(KERN_INFO "created %d output and %d input ports\n",
		    out_ports, in_ports);
	return 0;
}

/*
 * Returns MIDIStreaming device capabilities.
 */
1537 1538
static int snd_usbmidi_get_ms_info(struct snd_usb_midi* umidi,
			   	   struct snd_usb_midi_endpoint_info* endpoints)
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{
	struct usb_interface* intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor* intfd;
	struct usb_ms_header_descriptor* ms_header;
	struct usb_host_endpoint *hostep;
	struct usb_endpoint_descriptor* ep;
	struct usb_ms_endpoint_descriptor* ms_ep;
	int i, epidx;

	intf = umidi->iface;
	if (!intf)
		return -ENXIO;
	hostif = &intf->altsetting[0];
	intfd = get_iface_desc(hostif);
	ms_header = (struct usb_ms_header_descriptor*)hostif->extra;
	if (hostif->extralen >= 7 &&
	    ms_header->bLength >= 7 &&
	    ms_header->bDescriptorType == USB_DT_CS_INTERFACE &&
1558
	    ms_header->bDescriptorSubtype == UAC_HEADER)
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		snd_printdd(KERN_INFO "MIDIStreaming version %02x.%02x\n",
			    ms_header->bcdMSC[1], ms_header->bcdMSC[0]);
	else
		snd_printk(KERN_WARNING "MIDIStreaming interface descriptor not found\n");

	epidx = 0;
	for (i = 0; i < intfd->bNumEndpoints; ++i) {
		hostep = &hostif->endpoint[i];
		ep = get_ep_desc(hostep);
1568
		if (!usb_endpoint_xfer_bulk(ep) && !usb_endpoint_xfer_int(ep))
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			continue;
		ms_ep = (struct usb_ms_endpoint_descriptor*)hostep->extra;
		if (hostep->extralen < 4 ||
		    ms_ep->bLength < 4 ||
		    ms_ep->bDescriptorType != USB_DT_CS_ENDPOINT ||
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		    ms_ep->bDescriptorSubtype != UAC_MS_GENERAL)
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			continue;
1576
		if (usb_endpoint_dir_out(ep)) {
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			if (endpoints[epidx].out_ep) {
				if (++epidx >= MIDI_MAX_ENDPOINTS) {
					snd_printk(KERN_WARNING "too many endpoints\n");
					break;
				}
			}
1583 1584
			endpoints[epidx].out_ep = usb_endpoint_num(ep);
			if (usb_endpoint_xfer_int(ep))
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				endpoints[epidx].out_interval = ep->bInterval;
1586
			else if (snd_usb_get_speed(umidi->dev) == USB_SPEED_LOW)
1587 1588 1589 1590 1591 1592
				/*
				 * Low speed bulk transfers don't exist, so
				 * force interrupt transfers for devices like
				 * ESI MIDI Mate that try to use them anyway.
				 */
				endpoints[epidx].out_interval = 1;
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			endpoints[epidx].out_cables = (1 << ms_ep->bNumEmbMIDIJack) - 1;
			snd_printdd(KERN_INFO "EP %02X: %d jack(s)\n",
				    ep->bEndpointAddress, ms_ep->bNumEmbMIDIJack);
		} else {
			if (endpoints[epidx].in_ep) {
				if (++epidx >= MIDI_MAX_ENDPOINTS) {
					snd_printk(KERN_WARNING "too many endpoints\n");
					break;
				}
			}
1603 1604
			endpoints[epidx].in_ep = usb_endpoint_num(ep);
			if (usb_endpoint_xfer_int(ep))
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				endpoints[epidx].in_interval = ep->bInterval;
1606
			else if (snd_usb_get_speed(umidi->dev) == USB_SPEED_LOW)
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				endpoints[epidx].in_interval = 1;
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			endpoints[epidx].in_cables = (1 << ms_ep->bNumEmbMIDIJack) - 1;
			snd_printdd(KERN_INFO "EP %02X: %d jack(s)\n",
				    ep->bEndpointAddress, ms_ep->bNumEmbMIDIJack);
		}
	}
	return 0;
}

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static int roland_load_info(struct snd_kcontrol *kcontrol,
			    struct snd_ctl_elem_info *info)
{
	static const char *const names[] = { "High Load", "Light Load" };

	info->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
	info->count = 1;
	info->value.enumerated.items = 2;
	if (info->value.enumerated.item > 1)
		info->value.enumerated.item = 1;
	strcpy(info->value.enumerated.name, names[info->value.enumerated.item]);
	return 0;
}

static int roland_load_get(struct snd_kcontrol *kcontrol,
			   struct snd_ctl_elem_value *value)
{
	value->value.enumerated.item[0] = kcontrol->private_value;
	return 0;
}

static int roland_load_put(struct snd_kcontrol *kcontrol,
			   struct snd_ctl_elem_value *value)
{
	struct snd_usb_midi* umidi = kcontrol->private_data;
	int changed;

	if (value->value.enumerated.item[0] > 1)
		return -EINVAL;
	mutex_lock(&umidi->mutex);
	changed = value->value.enumerated.item[0] != kcontrol->private_value;
	if (changed)
		kcontrol->private_value = value->value.enumerated.item[0];
	mutex_unlock(&umidi->mutex);
	return changed;
}

static struct snd_kcontrol_new roland_load_ctl = {
	.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
	.name = "MIDI Input Mode",
	.info = roland_load_info,
	.get = roland_load_get,
	.put = roland_load_put,
	.private_value = 1,
};

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/*
 * On Roland devices, use the second alternate setting to be able to use
 * the interrupt input endpoint.
 */
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static void snd_usbmidi_switch_roland_altsetting(struct snd_usb_midi* umidi)
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{
	struct usb_interface* intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor* intfd;

	intf = umidi->iface;
	if (!intf || intf->num_altsetting != 2)
		return;

	hostif = &intf->altsetting[1];
	intfd = get_iface_desc(hostif);
	if (intfd->bNumEndpoints != 2 ||
	    (get_endpoint(hostif, 0)->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK) != USB_ENDPOINT_XFER_BULK ||
	    (get_endpoint(hostif, 1)->bmAttributes & USB_ENDPOINT_XFERTYPE_MASK) != USB_ENDPOINT_XFER_INT)
		return;

	snd_printdd(KERN_INFO "switching to altsetting %d with int ep\n",
		    intfd->bAlternateSetting);
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	usb_set_interface(umidi->dev, intfd->bInterfaceNumber,
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			  intfd->bAlternateSetting);
1687 1688

	umidi->roland_load_ctl = snd_ctl_new1(&roland_load_ctl, umidi);
1689
	if (snd_ctl_add(umidi->card, umidi->roland_load_ctl) < 0)
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		umidi->roland_load_ctl = NULL;
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}

/*
 * Try to find any usable endpoints in the interface.
 */
1696 1697
static int snd_usbmidi_detect_endpoints(struct snd_usb_midi* umidi,
					struct snd_usb_midi_endpoint_info* endpoint,
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					int max_endpoints)
{
	struct usb_interface* intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor* intfd;
	struct usb_endpoint_descriptor* epd;
	int i, out_eps = 0, in_eps = 0;

1706
	if (USB_ID_VENDOR(umidi->usb_id) == 0x0582)
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		snd_usbmidi_switch_roland_altsetting(umidi);

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	if (endpoint[0].out_ep || endpoint[0].in_ep)
		return 0;	

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	intf = umidi->iface;
	if (!intf || intf->num_altsetting < 1)
		return -ENOENT;
	hostif = intf->cur_altsetting;
	intfd = get_iface_desc(hostif);

	for (i = 0; i < intfd->bNumEndpoints; ++i) {
		epd = get_endpoint(hostif, i);
1720 1721
		if (!usb_endpoint_xfer_bulk(epd) &&
		    !usb_endpoint_xfer_int(epd))
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			continue;
		if (out_eps < max_endpoints &&
1724 1725 1726
		    usb_endpoint_dir_out(epd)) {
			endpoint[out_eps].out_ep = usb_endpoint_num(epd);
			if (usb_endpoint_xfer_int(epd))
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				endpoint[out_eps].out_interval = epd->bInterval;
			++out_eps;
		}
		if (in_eps < max_endpoints &&
1731 1732 1733
		    usb_endpoint_dir_in(epd)) {
			endpoint[in_eps].in_ep = usb_endpoint_num(epd);
			if (usb_endpoint_xfer_int(epd))
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				endpoint[in_eps].in_interval = epd->bInterval;
			++in_eps;
		}
	}
	return (out_eps || in_eps) ? 0 : -ENOENT;
}

/*
 * Detects the endpoints for one-port-per-endpoint protocols.
 */
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static int snd_usbmidi_detect_per_port_endpoints(struct snd_usb_midi* umidi,
						 struct snd_usb_midi_endpoint_info* endpoints)
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{
	int err, i;
	
	err = snd_usbmidi_detect_endpoints(umidi, endpoints, MIDI_MAX_ENDPOINTS);
	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
		if (endpoints[i].out_ep)
			endpoints[i].out_cables = 0x0001;
		if (endpoints[i].in_ep)
			endpoints[i].in_cables = 0x0001;
	}
	return err;
}

/*
 * Detects the endpoints and ports of Yamaha devices.
 */
1762 1763
static int snd_usbmidi_detect_yamaha(struct snd_usb_midi* umidi,
				     struct snd_usb_midi_endpoint_info* endpoint)
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{
	struct usb_interface* intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor* intfd;
	uint8_t* cs_desc;

	intf = umidi->iface;
	if (!intf)
		return -ENOENT;
	hostif = intf->altsetting;
	intfd = get_iface_desc(hostif);
	if (intfd->bNumEndpoints < 1)
		return -ENOENT;

	/*
	 * For each port there is one MIDI_IN/OUT_JACK descriptor, not
	 * necessarily with any useful contents.  So simply count 'em.
	 */
	for (cs_desc = hostif->extra;
	     cs_desc < hostif->extra + hostif->extralen && cs_desc[0] >= 2;
	     cs_desc += cs_desc[0]) {
1785
		if (cs_desc[1] == USB_DT_CS_INTERFACE) {
1786
			if (cs_desc[2] == UAC_MIDI_IN_JACK)
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				endpoint->in_cables = (endpoint->in_cables << 1) | 1;
1788
			else if (cs_desc[2] == UAC_MIDI_OUT_JACK)
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				endpoint->out_cables = (endpoint->out_cables << 1) | 1;
		}
	}
	if (!endpoint->in_cables && !endpoint->out_cables)
		return -ENOENT;

	return snd_usbmidi_detect_endpoints(umidi, endpoint, 1);
}

/*
 * Creates the endpoints and their ports for Midiman devices.
 */
1801 1802
static int snd_usbmidi_create_endpoints_midiman(struct snd_usb_midi* umidi,
						struct snd_usb_midi_endpoint_info* endpoint)
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{
1804
	struct snd_usb_midi_endpoint_info ep_info;
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	struct usb_interface* intf;
	struct usb_host_interface *hostif;
	struct usb_interface_descriptor* intfd;
	struct usb_endpoint_descriptor* epd;
	int cable, err;

	intf = umidi->iface;
	if (!intf)
		return -ENOENT;
	hostif = intf->altsetting;
	intfd = get_iface_desc(hostif);
	/*
	 * The various MidiSport devices have more or less random endpoint
	 * numbers, so we have to identify the endpoints by their index in
	 * the descriptor array, like the driver for that other OS does.
	 *
	 * There is one interrupt input endpoint for all input ports, one
	 * bulk output endpoint for even-numbered ports, and one for odd-
	 * numbered ports.  Both bulk output endpoints have corresponding
	 * input bulk endpoints (at indices 1 and 3) which aren't used.
	 */
	if (intfd->bNumEndpoints < (endpoint->out_cables > 0x0001 ? 5 : 3)) {
		snd_printdd(KERN_ERR "not enough endpoints\n");
		return -ENOENT;
	}

	epd = get_endpoint(hostif, 0);
1832
	if (!usb_endpoint_dir_in(epd) || !usb_endpoint_xfer_int(epd)) {
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		snd_printdd(KERN_ERR "endpoint[0] isn't interrupt\n");
		return -ENXIO;
	}
	epd = get_endpoint(hostif, 2);
1837
	if (!usb_endpoint_dir_out(epd) || !usb_endpoint_xfer_bulk(epd)) {
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		snd_printdd(KERN_ERR "endpoint[2] isn't bulk output\n");
		return -ENXIO;
	}
	if (endpoint->out_cables > 0x0001) {
		epd = get_endpoint(hostif, 4);
1843 1844
		if (!usb_endpoint_dir_out(epd) ||
		    !usb_endpoint_xfer_bulk(epd)) {
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			snd_printdd(KERN_ERR "endpoint[4] isn't bulk output\n");
			return -ENXIO;
		}
	}

	ep_info.out_ep = get_endpoint(hostif, 2)->bEndpointAddress & USB_ENDPOINT_NUMBER_MASK;
1851
	ep_info.out_interval = 0;
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	ep_info.out_cables = endpoint->out_cables & 0x5555;
	err = snd_usbmidi_out_endpoint_create(umidi, &ep_info, &umidi->endpoints[0]);
	if (err < 0)
		return err;

	ep_info.in_ep = get_endpoint(hostif, 0)->bEndpointAddress & USB_ENDPOINT_NUMBER_MASK;
	ep_info.in_interval = get_endpoint(hostif, 0)->bInterval;
	ep_info.in_cables = endpoint->in_cables;
	err = snd_usbmidi_in_endpoint_create(umidi, &ep_info, &umidi->endpoints[0]);
	if (err < 0)
		return err;

	if (endpoint->out_cables > 0x0001) {
		ep_info.out_ep = get_endpoint(hostif, 4)->bEndpointAddress & USB_ENDPOINT_NUMBER_MASK;
		ep_info.out_cables = endpoint->out_cables & 0xaaaa;
		err = snd_usbmidi_out_endpoint_create(umidi, &ep_info, &umidi->endpoints[1]);
		if (err < 0)
			return err;
	}

	for (cable = 0; cable < 0x10; ++cable) {
		if (endpoint->out_cables & (1 << cable))
			snd_usbmidi_init_substream(umidi, SNDRV_RAWMIDI_STREAM_OUTPUT, cable,
						   &umidi->endpoints[cable & 1].out->ports[cable].substream);
		if (endpoint->in_cables & (1 << cable))
			snd_usbmidi_init_substream(umidi, SNDRV_RAWMIDI_STREAM_INPUT, cable,
						   &umidi->endpoints[0].in->ports[cable].substream);
	}
	return 0;
}

1883 1884 1885 1886
static struct snd_rawmidi_global_ops snd_usbmidi_ops = {
	.get_port_info = snd_usbmidi_get_port_info,
};

1887
static int snd_usbmidi_create_rawmidi(struct snd_usb_midi* umidi,
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				      int out_ports, int in_ports)
{
1890
	struct snd_rawmidi *rmidi;
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	int err;

1893 1894
	err = snd_rawmidi_new(umidi->card, "USB MIDI",
			      umidi->next_midi_device++,
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			      out_ports, in_ports, &rmidi);
	if (err < 0)
		return err;
1898
	strcpy(rmidi->name, umidi->card->shortname);
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	rmidi->info_flags = SNDRV_RAWMIDI_INFO_OUTPUT |
			    SNDRV_RAWMIDI_INFO_INPUT |
			    SNDRV_RAWMIDI_INFO_DUPLEX;
1902
	rmidi->ops = &snd_usbmidi_ops;
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	rmidi->private_data = umidi;
	rmidi->private_free = snd_usbmidi_rawmidi_free;
	snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_OUTPUT, &snd_usbmidi_output_ops);
	snd_rawmidi_set_ops(rmidi, SNDRV_RAWMIDI_STREAM_INPUT, &snd_usbmidi_input_ops);

	umidi->rmidi = rmidi;
	return 0;
}

/*
 * Temporarily stop input.
 */
void snd_usbmidi_input_stop(struct list_head* p)
{
1917
	struct snd_usb_midi* umidi;
1918
	unsigned int i, j;
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1920
	umidi = list_entry(p, struct snd_usb_midi, list);
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	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
1922
		struct snd_usb_midi_endpoint* ep = &umidi->endpoints[i];
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		if (ep->in)
1924 1925
			for (j = 0; j < INPUT_URBS; ++j)
				usb_kill_urb(ep->in->urbs[j]);
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	}
}

1929
static void snd_usbmidi_input_start_ep(struct snd_usb_midi_in_endpoint* ep)
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{
1931 1932 1933 1934 1935 1936
	unsigned int i;

	if (!ep)
		return;
	for (i = 0; i < INPUT_URBS; ++i) {
		struct urb* urb = ep->urbs[i];
1937
		urb->dev = ep->umidi->dev;
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		snd_usbmidi_submit_urb(urb, GFP_KERNEL);
	}
}

/*
 * Resume input after a call to snd_usbmidi_input_stop().
 */
void snd_usbmidi_input_start(struct list_head* p)
{
1947
	struct snd_usb_midi* umidi;
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	int i;

1950
	umidi = list_entry(p, struct snd_usb_midi, list);
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	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i)
		snd_usbmidi_input_start_ep(umidi->endpoints[i].in);
}

/*
 * Creates and registers everything needed for a MIDI streaming interface.
 */
1958 1959 1960 1961
int snd_usbmidi_create(struct snd_card *card,
		       struct usb_interface* iface,
		       struct list_head *midi_list,
		       const struct snd_usb_audio_quirk* quirk)
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{
1963 1964
	struct snd_usb_midi* umidi;
	struct snd_usb_midi_endpoint_info endpoints[MIDI_MAX_ENDPOINTS];
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	int out_ports, in_ports;
	int i, err;

1968
	umidi = kzalloc(sizeof(*umidi), GFP_KERNEL);
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	if (!umidi)
		return -ENOMEM;
1971 1972
	umidi->dev = interface_to_usbdev(iface);
	umidi->card = card;
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	umidi->iface = iface;
	umidi->quirk = quirk;
	umidi->usb_protocol_ops = &snd_usbmidi_standard_ops;
1976
	init_timer(&umidi->error_timer);
1977
	spin_lock_init(&umidi->disc_lock);
1978
	mutex_init(&umidi->mutex);
1979 1980
	umidi->usb_id = USB_ID(le16_to_cpu(umidi->dev->descriptor.idVendor),
			       le16_to_cpu(umidi->dev->descriptor.idProduct));
1981 1982
	umidi->error_timer.function = snd_usbmidi_error_timer;
	umidi->error_timer.data = (unsigned long)umidi;
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	/* detect the endpoint(s) to use */
	memset(endpoints, 0, sizeof(endpoints));
1986 1987
	switch (quirk ? quirk->type : QUIRK_MIDI_STANDARD_INTERFACE) {
	case QUIRK_MIDI_STANDARD_INTERFACE:
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		err = snd_usbmidi_get_ms_info(umidi, endpoints);
1989
		if (umidi->usb_id == USB_ID(0x0763, 0x0150)) /* M-Audio Uno */
1990 1991
			umidi->usb_protocol_ops =
				&snd_usbmidi_maudio_broken_running_status_ops;
1992
		break;
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	case QUIRK_MIDI_US122L:
		umidi->usb_protocol_ops = &snd_usbmidi_122l_ops;
		/* fall through */
1996 1997
	case QUIRK_MIDI_FIXED_ENDPOINT:
		memcpy(&endpoints[0], quirk->data,
1998
		       sizeof(struct snd_usb_midi_endpoint_info));
1999 2000 2001 2002 2003 2004 2005 2006
		err = snd_usbmidi_detect_endpoints(umidi, &endpoints[0], 1);
		break;
	case QUIRK_MIDI_YAMAHA:
		err = snd_usbmidi_detect_yamaha(umidi, &endpoints[0]);
		break;
	case QUIRK_MIDI_MIDIMAN:
		umidi->usb_protocol_ops = &snd_usbmidi_midiman_ops;
		memcpy(&endpoints[0], quirk->data,
2007
		       sizeof(struct snd_usb_midi_endpoint_info));
2008 2009 2010 2011 2012 2013
		err = 0;
		break;
	case QUIRK_MIDI_NOVATION:
		umidi->usb_protocol_ops = &snd_usbmidi_novation_ops;
		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
		break;
2014
	case QUIRK_MIDI_FASTLANE:
2015
		umidi->usb_protocol_ops = &snd_usbmidi_raw_ops;
2016 2017 2018 2019 2020 2021 2022 2023 2024
		/*
		 * Interface 1 contains isochronous endpoints, but with the same
		 * numbers as in interface 0.  Since it is interface 1 that the
		 * USB core has most recently seen, these descriptors are now
		 * associated with the endpoint numbers.  This will foul up our
		 * attempts to submit bulk/interrupt URBs to the endpoints in
		 * interface 0, so we have to make sure that the USB core looks
		 * again at interface 0 by calling usb_set_interface() on it.
		 */
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		usb_set_interface(umidi->dev, 0, 0);
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		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
		break;
	case QUIRK_MIDI_EMAGIC:
		umidi->usb_protocol_ops = &snd_usbmidi_emagic_ops;
		memcpy(&endpoints[0], quirk->data,
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		       sizeof(struct snd_usb_midi_endpoint_info));
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		err = snd_usbmidi_detect_endpoints(umidi, &endpoints[0], 1);
		break;
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	case QUIRK_MIDI_CME:
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		umidi->usb_protocol_ops = &snd_usbmidi_cme_ops;
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		err = snd_usbmidi_detect_per_port_endpoints(umidi, endpoints);
		break;
	default:
		snd_printd(KERN_ERR "invalid quirk type %d\n", quirk->type);
		err = -ENXIO;
		break;
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	}
	if (err < 0) {
		kfree(umidi);
		return err;
	}

	/* create rawmidi device */
	out_ports = 0;
	in_ports = 0;
	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i) {
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		out_ports += hweight16(endpoints[i].out_cables);
		in_ports += hweight16(endpoints[i].in_cables);
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	}
	err = snd_usbmidi_create_rawmidi(umidi, out_ports, in_ports);
	if (err < 0) {
		kfree(umidi);
		return err;
	}

	/* create endpoint/port structures */
	if (quirk && quirk->type == QUIRK_MIDI_MIDIMAN)
		err = snd_usbmidi_create_endpoints_midiman(umidi, &endpoints[0]);
	else
		err = snd_usbmidi_create_endpoints(umidi, endpoints);
	if (err < 0) {
		snd_usbmidi_free(umidi);
		return err;
	}

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	list_add_tail(&umidi->list, midi_list);
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	for (i = 0; i < MIDI_MAX_ENDPOINTS; ++i)
		snd_usbmidi_input_start_ep(umidi->endpoints[i].in);
	return 0;
}

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EXPORT_SYMBOL(snd_usbmidi_create);
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EXPORT_SYMBOL(snd_usbmidi_input_stop);
EXPORT_SYMBOL(snd_usbmidi_input_start);
EXPORT_SYMBOL(snd_usbmidi_disconnect);