hda_codec.c 80.0 KB
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/*
 * Universal Interface for Intel High Definition Audio Codec
 *
 * Copyright (c) 2004 Takashi Iwai <tiwai@suse.de>
 *
 *
 *  This driver is free software; you can redistribute it and/or modify
 *  it 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 driver is distributed in the hope that it will be useful,
 *  but WITHOUT ANY WARRANTY; without even the implied warranty of
 *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 *  GNU General Public License for more details.
 *
 *  You should have received a copy of the GNU General Public License
 *  along with this program; if not, write to the Free Software
 *  Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307 USA
 */

#include <linux/init.h>
#include <linux/delay.h>
#include <linux/slab.h>
#include <linux/pci.h>
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#include <linux/mutex.h>
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#include <sound/core.h>
#include "hda_codec.h"
#include <sound/asoundef.h>
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#include <sound/tlv.h>
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#include <sound/initval.h>
#include "hda_local.h"
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#include <sound/hda_hwdep.h>
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#ifdef CONFIG_SND_HDA_POWER_SAVE
/* define this option here to hide as static */
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static int power_save = CONFIG_SND_HDA_POWER_SAVE_DEFAULT;
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module_param(power_save, int, 0644);
MODULE_PARM_DESC(power_save, "Automatic power-saving timeout "
		 "(in second, 0 = disable).");
#endif
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/*
 * vendor / preset table
 */

struct hda_vendor_id {
	unsigned int id;
	const char *name;
};

/* codec vendor labels */
static struct hda_vendor_id hda_vendor_ids[] = {
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	{ 0x1002, "ATI" },
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	{ 0x1057, "Motorola" },
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	{ 0x1095, "Silicon Image" },
	{ 0x10ec, "Realtek" },
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	{ 0x1106, "VIA" },
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	{ 0x111d, "IDT" },
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	{ 0x11c1, "LSI" },
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	{ 0x11d4, "Analog Devices" },
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	{ 0x13f6, "C-Media" },
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	{ 0x14f1, "Conexant" },
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	{ 0x17e8, "Chrontel" },
	{ 0x1854, "LG" },
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	{ 0x434d, "C-Media" },
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	{ 0x8384, "SigmaTel" },
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	{} /* terminator */
};

/* codec presets */
#include "hda_patch.h"


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#ifdef CONFIG_SND_HDA_POWER_SAVE
static void hda_power_work(struct work_struct *work);
static void hda_keep_power_on(struct hda_codec *codec);
#else
static inline void hda_keep_power_on(struct hda_codec *codec) {}
#endif

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/**
 * snd_hda_codec_read - send a command and get the response
 * @codec: the HDA codec
 * @nid: NID to send the command
 * @direct: direct flag
 * @verb: the verb to send
 * @parm: the parameter for the verb
 *
 * Send a single command and read the corresponding response.
 *
 * Returns the obtained response value, or -1 for an error.
 */
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unsigned int snd_hda_codec_read(struct hda_codec *codec, hda_nid_t nid,
				int direct,
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				unsigned int verb, unsigned int parm)
{
	unsigned int res;
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	snd_hda_power_up(codec);
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	mutex_lock(&codec->bus->cmd_mutex);
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	if (!codec->bus->ops.command(codec, nid, direct, verb, parm))
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		res = codec->bus->ops.get_response(codec);
	else
		res = (unsigned int)-1;
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	mutex_unlock(&codec->bus->cmd_mutex);
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	snd_hda_power_down(codec);
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	return res;
}

/**
 * snd_hda_codec_write - send a single command without waiting for response
 * @codec: the HDA codec
 * @nid: NID to send the command
 * @direct: direct flag
 * @verb: the verb to send
 * @parm: the parameter for the verb
 *
 * Send a single command without waiting for response.
 *
 * Returns 0 if successful, or a negative error code.
 */
int snd_hda_codec_write(struct hda_codec *codec, hda_nid_t nid, int direct,
			 unsigned int verb, unsigned int parm)
{
	int err;
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	snd_hda_power_up(codec);
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	mutex_lock(&codec->bus->cmd_mutex);
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	err = codec->bus->ops.command(codec, nid, direct, verb, parm);
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	mutex_unlock(&codec->bus->cmd_mutex);
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	snd_hda_power_down(codec);
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	return err;
}

/**
 * snd_hda_sequence_write - sequence writes
 * @codec: the HDA codec
 * @seq: VERB array to send
 *
 * Send the commands sequentially from the given array.
 * The array must be terminated with NID=0.
 */
void snd_hda_sequence_write(struct hda_codec *codec, const struct hda_verb *seq)
{
	for (; seq->nid; seq++)
		snd_hda_codec_write(codec, seq->nid, 0, seq->verb, seq->param);
}

/**
 * snd_hda_get_sub_nodes - get the range of sub nodes
 * @codec: the HDA codec
 * @nid: NID to parse
 * @start_id: the pointer to store the start NID
 *
 * Parse the NID and store the start NID of its sub-nodes.
 * Returns the number of sub-nodes.
 */
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int snd_hda_get_sub_nodes(struct hda_codec *codec, hda_nid_t nid,
			  hda_nid_t *start_id)
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{
	unsigned int parm;

	parm = snd_hda_param_read(codec, nid, AC_PAR_NODE_COUNT);
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	if (parm == -1)
		return 0;
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	*start_id = (parm >> 16) & 0x7fff;
	return (int)(parm & 0x7fff);
}

/**
 * snd_hda_get_connections - get connection list
 * @codec: the HDA codec
 * @nid: NID to parse
 * @conn_list: connection list array
 * @max_conns: max. number of connections to store
 *
 * Parses the connection list of the given widget and stores the list
 * of NIDs.
 *
 * Returns the number of connections, or a negative error code.
 */
int snd_hda_get_connections(struct hda_codec *codec, hda_nid_t nid,
			    hda_nid_t *conn_list, int max_conns)
{
	unsigned int parm;
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	int i, conn_len, conns;
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	unsigned int shift, num_elems, mask;
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	hda_nid_t prev_nid;
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	snd_assert(conn_list && max_conns > 0, return -EINVAL);

	parm = snd_hda_param_read(codec, nid, AC_PAR_CONNLIST_LEN);
	if (parm & AC_CLIST_LONG) {
		/* long form */
		shift = 16;
		num_elems = 2;
	} else {
		/* short form */
		shift = 8;
		num_elems = 4;
	}
	conn_len = parm & AC_CLIST_LENGTH;
	mask = (1 << (shift-1)) - 1;

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	if (!conn_len)
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		return 0; /* no connection */

	if (conn_len == 1) {
		/* single connection */
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		parm = snd_hda_codec_read(codec, nid, 0,
					  AC_VERB_GET_CONNECT_LIST, 0);
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		conn_list[0] = parm & mask;
		return 1;
	}

	/* multi connection */
	conns = 0;
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	prev_nid = 0;
	for (i = 0; i < conn_len; i++) {
		int range_val;
		hda_nid_t val, n;

		if (i % num_elems == 0)
			parm = snd_hda_codec_read(codec, nid, 0,
						  AC_VERB_GET_CONNECT_LIST, i);
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		range_val = !!(parm & (1 << (shift-1))); /* ranges */
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		val = parm & mask;
		parm >>= shift;
		if (range_val) {
			/* ranges between the previous and this one */
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			if (!prev_nid || prev_nid >= val) {
				snd_printk(KERN_WARNING "hda_codec: "
					   "invalid dep_range_val %x:%x\n",
					   prev_nid, val);
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				continue;
			}
			for (n = prev_nid + 1; n <= val; n++) {
				if (conns >= max_conns) {
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					snd_printk(KERN_ERR
						   "Too many connections\n");
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					return -EINVAL;
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				}
				conn_list[conns++] = n;
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			}
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		} else {
			if (conns >= max_conns) {
				snd_printk(KERN_ERR "Too many connections\n");
				return -EINVAL;
			}
			conn_list[conns++] = val;
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		}
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		prev_nid = val;
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	}
	return conns;
}


/**
 * snd_hda_queue_unsol_event - add an unsolicited event to queue
 * @bus: the BUS
 * @res: unsolicited event (lower 32bit of RIRB entry)
 * @res_ex: codec addr and flags (upper 32bit or RIRB entry)
 *
 * Adds the given event to the queue.  The events are processed in
 * the workqueue asynchronously.  Call this function in the interrupt
 * hanlder when RIRB receives an unsolicited event.
 *
 * Returns 0 if successful, or a negative error code.
 */
int snd_hda_queue_unsol_event(struct hda_bus *bus, u32 res, u32 res_ex)
{
	struct hda_bus_unsolicited *unsol;
	unsigned int wp;

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	unsol = bus->unsol;
	if (!unsol)
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		return 0;

	wp = (unsol->wp + 1) % HDA_UNSOL_QUEUE_SIZE;
	unsol->wp = wp;

	wp <<= 1;
	unsol->queue[wp] = res;
	unsol->queue[wp + 1] = res_ex;

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	schedule_work(&unsol->work);
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	return 0;
}

/*
 * process queueud unsolicited events
 */
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static void process_unsol_events(struct work_struct *work)
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{
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	struct hda_bus_unsolicited *unsol =
		container_of(work, struct hda_bus_unsolicited, work);
	struct hda_bus *bus = unsol->bus;
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	struct hda_codec *codec;
	unsigned int rp, caddr, res;

	while (unsol->rp != unsol->wp) {
		rp = (unsol->rp + 1) % HDA_UNSOL_QUEUE_SIZE;
		unsol->rp = rp;
		rp <<= 1;
		res = unsol->queue[rp];
		caddr = unsol->queue[rp + 1];
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		if (!(caddr & (1 << 4))) /* no unsolicited event? */
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			continue;
		codec = bus->caddr_tbl[caddr & 0x0f];
		if (codec && codec->patch_ops.unsol_event)
			codec->patch_ops.unsol_event(codec, res);
	}
}

/*
 * initialize unsolicited queue
 */
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static int __devinit init_unsol_queue(struct hda_bus *bus)
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{
	struct hda_bus_unsolicited *unsol;

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	if (bus->unsol) /* already initialized */
		return 0;

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	unsol = kzalloc(sizeof(*unsol), GFP_KERNEL);
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	if (!unsol) {
		snd_printk(KERN_ERR "hda_codec: "
			   "can't allocate unsolicited queue\n");
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		return -ENOMEM;
	}
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	INIT_WORK(&unsol->work, process_unsol_events);
	unsol->bus = bus;
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	bus->unsol = unsol;
	return 0;
}

/*
 * destructor
 */
static void snd_hda_codec_free(struct hda_codec *codec);

static int snd_hda_bus_free(struct hda_bus *bus)
{
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	struct hda_codec *codec, *n;
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	if (!bus)
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		return 0;
	if (bus->unsol) {
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		flush_scheduled_work();
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		kfree(bus->unsol);
	}
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	list_for_each_entry_safe(codec, n, &bus->codec_list, list) {
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		snd_hda_codec_free(codec);
	}
	if (bus->ops.private_free)
		bus->ops.private_free(bus);
	kfree(bus);
	return 0;
}

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static int snd_hda_bus_dev_free(struct snd_device *device)
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{
	struct hda_bus *bus = device->device_data;
	return snd_hda_bus_free(bus);
}

/**
 * snd_hda_bus_new - create a HDA bus
 * @card: the card entry
 * @temp: the template for hda_bus information
 * @busp: the pointer to store the created bus instance
 *
 * Returns 0 if successful, or a negative error code.
 */
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int __devinit snd_hda_bus_new(struct snd_card *card,
			      const struct hda_bus_template *temp,
			      struct hda_bus **busp)
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{
	struct hda_bus *bus;
	int err;
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	static struct snd_device_ops dev_ops = {
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		.dev_free = snd_hda_bus_dev_free,
	};

	snd_assert(temp, return -EINVAL);
	snd_assert(temp->ops.command && temp->ops.get_response, return -EINVAL);

	if (busp)
		*busp = NULL;

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	bus = kzalloc(sizeof(*bus), GFP_KERNEL);
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	if (bus == NULL) {
		snd_printk(KERN_ERR "can't allocate struct hda_bus\n");
		return -ENOMEM;
	}

	bus->card = card;
	bus->private_data = temp->private_data;
	bus->pci = temp->pci;
	bus->modelname = temp->modelname;
	bus->ops = temp->ops;

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	mutex_init(&bus->cmd_mutex);
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	INIT_LIST_HEAD(&bus->codec_list);

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	err = snd_device_new(card, SNDRV_DEV_BUS, bus, &dev_ops);
	if (err < 0) {
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		snd_hda_bus_free(bus);
		return err;
	}
	if (busp)
		*busp = bus;
	return 0;
}

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#ifdef CONFIG_SND_HDA_GENERIC
#define is_generic_config(codec) \
	(codec->bus->modelname && !strcmp(codec->bus->modelname, "generic"))
#else
#define is_generic_config(codec)	0
#endif

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/*
 * find a matching codec preset
 */
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static const struct hda_codec_preset __devinit *
find_codec_preset(struct hda_codec *codec)
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{
	const struct hda_codec_preset **tbl, *preset;

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	if (is_generic_config(codec))
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		return NULL; /* use the generic parser */

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	for (tbl = hda_preset_tables; *tbl; tbl++) {
		for (preset = *tbl; preset->id; preset++) {
			u32 mask = preset->mask;
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			if (preset->afg && preset->afg != codec->afg)
				continue;
			if (preset->mfg && preset->mfg != codec->mfg)
				continue;
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			if (!mask)
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				mask = ~0;
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			if (preset->id == (codec->vendor_id & mask) &&
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			    (!preset->rev ||
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			     preset->rev == codec->revision_id))
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				return preset;
		}
	}
	return NULL;
}

/*
 * snd_hda_get_codec_name - store the codec name
 */
void snd_hda_get_codec_name(struct hda_codec *codec,
			    char *name, int namelen)
{
	const struct hda_vendor_id *c;
	const char *vendor = NULL;
	u16 vendor_id = codec->vendor_id >> 16;
	char tmp[16];

	for (c = hda_vendor_ids; c->id; c++) {
		if (c->id == vendor_id) {
			vendor = c->name;
			break;
		}
	}
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	if (!vendor) {
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		sprintf(tmp, "Generic %04x", vendor_id);
		vendor = tmp;
	}
	if (codec->preset && codec->preset->name)
		snprintf(name, namelen, "%s %s", vendor, codec->preset->name);
	else
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		snprintf(name, namelen, "%s ID %x", vendor,
			 codec->vendor_id & 0xffff);
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}

/*
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 * look for an AFG and MFG nodes
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 */
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static void __devinit setup_fg_nodes(struct hda_codec *codec)
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{
	int i, total_nodes;
	hda_nid_t nid;

	total_nodes = snd_hda_get_sub_nodes(codec, AC_NODE_ROOT, &nid);
	for (i = 0; i < total_nodes; i++, nid++) {
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		unsigned int func;
		func = snd_hda_param_read(codec, nid, AC_PAR_FUNCTION_TYPE);
		switch (func & 0xff) {
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		case AC_GRP_AUDIO_FUNCTION:
			codec->afg = nid;
			break;
		case AC_GRP_MODEM_FUNCTION:
			codec->mfg = nid;
			break;
		default:
			break;
		}
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	}
}

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/*
 * read widget caps for each widget and store in cache
 */
static int read_widget_caps(struct hda_codec *codec, hda_nid_t fg_node)
{
	int i;
	hda_nid_t nid;

	codec->num_nodes = snd_hda_get_sub_nodes(codec, fg_node,
						 &codec->start_nid);
	codec->wcaps = kmalloc(codec->num_nodes * 4, GFP_KERNEL);
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	if (!codec->wcaps)
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		return -ENOMEM;
	nid = codec->start_nid;
	for (i = 0; i < codec->num_nodes; i++, nid++)
		codec->wcaps[i] = snd_hda_param_read(codec, nid,
						     AC_PAR_AUDIO_WIDGET_CAP);
	return 0;
}


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static void init_hda_cache(struct hda_cache_rec *cache,
			   unsigned int record_size);
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static void free_hda_cache(struct hda_cache_rec *cache);
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/*
 * codec destructor
 */
static void snd_hda_codec_free(struct hda_codec *codec)
{
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	if (!codec)
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		return;
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#ifdef CONFIG_SND_HDA_POWER_SAVE
	cancel_delayed_work(&codec->power_work);
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	flush_scheduled_work();
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#endif
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	list_del(&codec->list);
	codec->bus->caddr_tbl[codec->addr] = NULL;
	if (codec->patch_ops.free)
		codec->patch_ops.free(codec);
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	free_hda_cache(&codec->amp_cache);
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	free_hda_cache(&codec->cmd_cache);
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	kfree(codec->wcaps);
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	kfree(codec);
}

/**
 * snd_hda_codec_new - create a HDA codec
 * @bus: the bus to assign
 * @codec_addr: the codec address
 * @codecp: the pointer to store the generated codec
 *
 * Returns 0 if successful, or a negative error code.
 */
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int __devinit snd_hda_codec_new(struct hda_bus *bus, unsigned int codec_addr,
				struct hda_codec **codecp)
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{
	struct hda_codec *codec;
	char component[13];
	int err;

	snd_assert(bus, return -EINVAL);
	snd_assert(codec_addr <= HDA_MAX_CODEC_ADDRESS, return -EINVAL);

	if (bus->caddr_tbl[codec_addr]) {
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		snd_printk(KERN_ERR "hda_codec: "
			   "address 0x%x is already occupied\n", codec_addr);
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		return -EBUSY;
	}

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	codec = kzalloc(sizeof(*codec), GFP_KERNEL);
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	if (codec == NULL) {
		snd_printk(KERN_ERR "can't allocate struct hda_codec\n");
		return -ENOMEM;
	}

	codec->bus = bus;
	codec->addr = codec_addr;
583
	mutex_init(&codec->spdif_mutex);
584
	init_hda_cache(&codec->amp_cache, sizeof(struct hda_amp_info));
585
	init_hda_cache(&codec->cmd_cache, sizeof(struct hda_cache_head));
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#ifdef CONFIG_SND_HDA_POWER_SAVE
	INIT_DELAYED_WORK(&codec->power_work, hda_power_work);
	/* snd_hda_codec_new() marks the codec as power-up, and leave it as is.
	 * the caller has to power down appropriatley after initialization
	 * phase.
	 */
	hda_keep_power_on(codec);
#endif

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	list_add_tail(&codec->list, &bus->codec_list);
	bus->caddr_tbl[codec_addr] = codec;

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	codec->vendor_id = snd_hda_param_read(codec, AC_NODE_ROOT,
					      AC_PAR_VENDOR_ID);
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	if (codec->vendor_id == -1)
		/* read again, hopefully the access method was corrected
		 * in the last read...
		 */
		codec->vendor_id = snd_hda_param_read(codec, AC_NODE_ROOT,
						      AC_PAR_VENDOR_ID);
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	codec->subsystem_id = snd_hda_param_read(codec, AC_NODE_ROOT,
						 AC_PAR_SUBSYSTEM_ID);
	codec->revision_id = snd_hda_param_read(codec, AC_NODE_ROOT,
						AC_PAR_REV_ID);
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	setup_fg_nodes(codec);
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	if (!codec->afg && !codec->mfg) {
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		snd_printdd("hda_codec: no AFG or MFG node found\n");
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		snd_hda_codec_free(codec);
		return -ENODEV;
	}

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	if (read_widget_caps(codec, codec->afg ? codec->afg : codec->mfg) < 0) {
		snd_printk(KERN_ERR "hda_codec: cannot malloc\n");
		snd_hda_codec_free(codec);
		return -ENOMEM;
	}

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	if (!codec->subsystem_id) {
626
		hda_nid_t nid = codec->afg ? codec->afg : codec->mfg;
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		codec->subsystem_id =
			snd_hda_codec_read(codec, nid, 0,
					   AC_VERB_GET_SUBSYSTEM_ID, 0);
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	}

632
	codec->preset = find_codec_preset(codec);
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	/* audio codec should override the mixer name */
	if (codec->afg || !*bus->card->mixername)
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		snd_hda_get_codec_name(codec, bus->card->mixername,
				       sizeof(bus->card->mixername));

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	if (is_generic_config(codec)) {
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		err = snd_hda_parse_generic_codec(codec);
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		goto patched;
	}
	if (codec->preset && codec->preset->patch) {
		err = codec->preset->patch(codec);
		goto patched;
	}

	/* call the default parser */
	err = snd_hda_parse_generic_codec(codec);
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	if (err < 0)
		printk(KERN_ERR "hda-codec: No codec parser is available\n");
651 652

 patched:
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	if (err < 0) {
		snd_hda_codec_free(codec);
		return err;
	}

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	if (codec->patch_ops.unsol_event)
		init_unsol_queue(bus);

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	snd_hda_codec_proc_new(codec);
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#ifdef CONFIG_SND_HDA_HWDEP
	snd_hda_create_hwdep(codec);
#endif
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	sprintf(component, "HDA:%08x", codec->vendor_id);
	snd_component_add(codec->bus->card, component);

	if (codecp)
		*codecp = codec;
	return 0;
}

/**
 * snd_hda_codec_setup_stream - set up the codec for streaming
 * @codec: the CODEC to set up
 * @nid: the NID to set up
 * @stream_tag: stream tag to pass, it's between 0x1 and 0xf.
 * @channel_id: channel id to pass, zero based.
 * @format: stream format.
 */
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void snd_hda_codec_setup_stream(struct hda_codec *codec, hda_nid_t nid,
				u32 stream_tag,
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				int channel_id, int format)
{
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	if (!nid)
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		return;

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	snd_printdd("hda_codec_setup_stream: "
		    "NID=0x%x, stream=0x%x, channel=%d, format=0x%x\n",
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		    nid, stream_tag, channel_id, format);
	snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_CHANNEL_STREAMID,
			    (stream_tag << 4) | channel_id);
	msleep(1);
	snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_STREAM_FORMAT, format);
}

/*
 * amp access functions
 */

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/* FIXME: more better hash key? */
#define HDA_HASH_KEY(nid,dir,idx) (u32)((nid) + ((idx) << 16) + ((dir) << 24))
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#define INFO_AMP_CAPS	(1<<0)
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#define INFO_AMP_VOL(ch)	(1 << (1 + (ch)))
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/* initialize the hash table */
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static void __devinit init_hda_cache(struct hda_cache_rec *cache,
				     unsigned int record_size)
{
	memset(cache, 0, sizeof(*cache));
	memset(cache->hash, 0xff, sizeof(cache->hash));
	cache->record_size = record_size;
}

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static void free_hda_cache(struct hda_cache_rec *cache)
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{
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	kfree(cache->buffer);
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}

/* query the hash.  allocate an entry if not found. */
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static struct hda_cache_head  *get_alloc_hash(struct hda_cache_rec *cache,
					      u32 key)
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{
725 726 727
	u16 idx = key % (u16)ARRAY_SIZE(cache->hash);
	u16 cur = cache->hash[idx];
	struct hda_cache_head *info;
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	while (cur != 0xffff) {
730 731
		info = (struct hda_cache_head *)(cache->buffer +
						 cur * cache->record_size);
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		if (info->key == key)
			return info;
		cur = info->next;
	}

	/* add a new hash entry */
738
	if (cache->num_entries >= cache->size) {
739
		/* reallocate the array */
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		unsigned int new_size = cache->size + 64;
		void *new_buffer;
		new_buffer = kcalloc(new_size, cache->record_size, GFP_KERNEL);
		if (!new_buffer) {
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			snd_printk(KERN_ERR "hda_codec: "
				   "can't malloc amp_info\n");
746 747
			return NULL;
		}
748 749 750 751
		if (cache->buffer) {
			memcpy(new_buffer, cache->buffer,
			       cache->size * cache->record_size);
			kfree(cache->buffer);
752
		}
753 754
		cache->size = new_size;
		cache->buffer = new_buffer;
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	}
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	cur = cache->num_entries++;
	info = (struct hda_cache_head *)(cache->buffer +
					 cur * cache->record_size);
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	info->key = key;
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	info->val = 0;
	info->next = cache->hash[idx];
	cache->hash[idx] = cur;
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	return info;
}

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/* query and allocate an amp hash entry */
static inline struct hda_amp_info *
get_alloc_amp_hash(struct hda_codec *codec, u32 key)
{
	return (struct hda_amp_info *)get_alloc_hash(&codec->amp_cache, key);
}

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/*
 * query AMP capabilities for the given widget and direction
 */
777
u32 query_amp_caps(struct hda_codec *codec, hda_nid_t nid, int direction)
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{
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	struct hda_amp_info *info;
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	info = get_alloc_amp_hash(codec, HDA_HASH_KEY(nid, direction, 0));
	if (!info)
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		return 0;
784
	if (!(info->head.val & INFO_AMP_CAPS)) {
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		if (!(get_wcaps(codec, nid) & AC_WCAP_AMP_OVRD))
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			nid = codec->afg;
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		info->amp_caps = snd_hda_param_read(codec, nid,
						    direction == HDA_OUTPUT ?
						    AC_PAR_AMP_OUT_CAP :
						    AC_PAR_AMP_IN_CAP);
791
		if (info->amp_caps)
792
			info->head.val |= INFO_AMP_CAPS;
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	}
	return info->amp_caps;
}

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int snd_hda_override_amp_caps(struct hda_codec *codec, hda_nid_t nid, int dir,
			      unsigned int caps)
{
	struct hda_amp_info *info;

	info = get_alloc_amp_hash(codec, HDA_HASH_KEY(nid, dir, 0));
	if (!info)
		return -EINVAL;
	info->amp_caps = caps;
806
	info->head.val |= INFO_AMP_CAPS;
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	return 0;
}

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/*
 * read the current volume to info
812
 * if the cache exists, read the cache value.
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 */
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static unsigned int get_vol_mute(struct hda_codec *codec,
				 struct hda_amp_info *info, hda_nid_t nid,
				 int ch, int direction, int index)
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{
	u32 val, parm;

820
	if (info->head.val & INFO_AMP_VOL(ch))
821
		return info->vol[ch];
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	parm = ch ? AC_AMP_GET_RIGHT : AC_AMP_GET_LEFT;
	parm |= direction == HDA_OUTPUT ? AC_AMP_GET_OUTPUT : AC_AMP_GET_INPUT;
	parm |= index;
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	val = snd_hda_codec_read(codec, nid, 0,
				 AC_VERB_GET_AMP_GAIN_MUTE, parm);
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	info->vol[ch] = val & 0xff;
829
	info->head.val |= INFO_AMP_VOL(ch);
830
	return info->vol[ch];
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}

/*
834
 * write the current volume in info to the h/w and update the cache
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 */
836
static void put_vol_mute(struct hda_codec *codec, struct hda_amp_info *info,
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			 hda_nid_t nid, int ch, int direction, int index,
			 int val)
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{
	u32 parm;

	parm = ch ? AC_AMP_SET_RIGHT : AC_AMP_SET_LEFT;
	parm |= direction == HDA_OUTPUT ? AC_AMP_SET_OUTPUT : AC_AMP_SET_INPUT;
	parm |= index << AC_AMP_SET_INDEX_SHIFT;
	parm |= val;
	snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_AMP_GAIN_MUTE, parm);
847
	info->vol[ch] = val;
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}

/*
851
 * read AMP value.  The volume is between 0 to 0x7f, 0x80 = mute bit.
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 */
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int snd_hda_codec_amp_read(struct hda_codec *codec, hda_nid_t nid, int ch,
			   int direction, int index)
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{
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	struct hda_amp_info *info;
	info = get_alloc_amp_hash(codec, HDA_HASH_KEY(nid, direction, index));
	if (!info)
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		return 0;
860
	return get_vol_mute(codec, info, nid, ch, direction, index);
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}

863 864 865
/*
 * update the AMP value, mask = bit mask to set, val = the value
 */
866 867
int snd_hda_codec_amp_update(struct hda_codec *codec, hda_nid_t nid, int ch,
			     int direction, int idx, int mask, int val)
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{
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	struct hda_amp_info *info;
870

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	info = get_alloc_amp_hash(codec, HDA_HASH_KEY(nid, direction, idx));
	if (!info)
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		return 0;
874 875
	val &= mask;
	val |= get_vol_mute(codec, info, nid, ch, direction, idx) & ~mask;
876
	if (info->vol[ch] == val)
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		return 0;
878
	put_vol_mute(codec, info, nid, ch, direction, idx, val);
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	return 1;
}

882 883 884 885 886 887 888 889 890 891 892 893 894
/*
 * update the AMP stereo with the same mask and value
 */
int snd_hda_codec_amp_stereo(struct hda_codec *codec, hda_nid_t nid,
			     int direction, int idx, int mask, int val)
{
	int ch, ret = 0;
	for (ch = 0; ch < 2; ch++)
		ret |= snd_hda_codec_amp_update(codec, nid, ch, direction,
						idx, mask, val);
	return ret;
}

895
#ifdef SND_HDA_NEEDS_RESUME
896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918
/* resume the all amp commands from the cache */
void snd_hda_codec_resume_amp(struct hda_codec *codec)
{
	struct hda_amp_info *buffer = codec->amp_cache.buffer;
	int i;

	for (i = 0; i < codec->amp_cache.size; i++, buffer++) {
		u32 key = buffer->head.key;
		hda_nid_t nid;
		unsigned int idx, dir, ch;
		if (!key)
			continue;
		nid = key & 0xff;
		idx = (key >> 16) & 0xff;
		dir = (key >> 24) & 0xff;
		for (ch = 0; ch < 2; ch++) {
			if (!(buffer->head.val & INFO_AMP_VOL(ch)))
				continue;
			put_vol_mute(codec, buffer, nid, ch, dir, idx,
				     buffer->vol[ch]);
		}
	}
}
919
#endif /* SND_HDA_NEEDS_RESUME */
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/*
 * AMP control callbacks
 */
/* retrieve parameters from private_value */
#define get_amp_nid(kc)		((kc)->private_value & 0xffff)
#define get_amp_channels(kc)	(((kc)->private_value >> 16) & 0x3)
#define get_amp_direction(kc)	(((kc)->private_value >> 18) & 0x1)
#define get_amp_index(kc)	(((kc)->private_value >> 19) & 0xf)

/* volume */
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int snd_hda_mixer_amp_volume_info(struct snd_kcontrol *kcontrol,
				  struct snd_ctl_elem_info *uinfo)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	u16 nid = get_amp_nid(kcontrol);
	u8 chs = get_amp_channels(kcontrol);
	int dir = get_amp_direction(kcontrol);
	u32 caps;

	caps = query_amp_caps(codec, nid, dir);
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	/* num steps */
	caps = (caps & AC_AMPCAP_NUM_STEPS) >> AC_AMPCAP_NUM_STEPS_SHIFT;
	if (!caps) {
		printk(KERN_WARNING "hda_codec: "
945 946
		       "num_steps = 0 for NID=0x%x (ctl = %s)\n", nid,
		       kcontrol->id.name);
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		return -EINVAL;
	}
	uinfo->type = SNDRV_CTL_ELEM_TYPE_INTEGER;
	uinfo->count = chs == 3 ? 2 : 1;
	uinfo->value.integer.min = 0;
	uinfo->value.integer.max = caps;
	return 0;
}

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int snd_hda_mixer_amp_volume_get(struct snd_kcontrol *kcontrol,
				 struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = get_amp_nid(kcontrol);
	int chs = get_amp_channels(kcontrol);
	int dir = get_amp_direction(kcontrol);
	int idx = get_amp_index(kcontrol);
	long *valp = ucontrol->value.integer.value;

	if (chs & 1)
967 968
		*valp++ = snd_hda_codec_amp_read(codec, nid, 0, dir, idx)
			& HDA_AMP_VOLMASK;
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	if (chs & 2)
970 971
		*valp = snd_hda_codec_amp_read(codec, nid, 1, dir, idx)
			& HDA_AMP_VOLMASK;
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	return 0;
}

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int snd_hda_mixer_amp_volume_put(struct snd_kcontrol *kcontrol,
				 struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = get_amp_nid(kcontrol);
	int chs = get_amp_channels(kcontrol);
	int dir = get_amp_direction(kcontrol);
	int idx = get_amp_index(kcontrol);
	long *valp = ucontrol->value.integer.value;
	int change = 0;

986
	snd_hda_power_up(codec);
987
	if (chs & 1) {
988 989
		change = snd_hda_codec_amp_update(codec, nid, 0, dir, idx,
						  0x7f, *valp);
990 991
		valp++;
	}
992 993
	if (chs & 2)
		change |= snd_hda_codec_amp_update(codec, nid, 1, dir, idx,
994
						   0x7f, *valp);
995
	snd_hda_power_down(codec);
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	return change;
}

999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009
int snd_hda_mixer_amp_tlv(struct snd_kcontrol *kcontrol, int op_flag,
			  unsigned int size, unsigned int __user *_tlv)
{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = get_amp_nid(kcontrol);
	int dir = get_amp_direction(kcontrol);
	u32 caps, val1, val2;

	if (size < 4 * sizeof(unsigned int))
		return -ENOMEM;
	caps = query_amp_caps(codec, nid, dir);
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	val2 = (caps & AC_AMPCAP_STEP_SIZE) >> AC_AMPCAP_STEP_SIZE_SHIFT;
	val2 = (val2 + 1) * 25;
1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024
	val1 = -((caps & AC_AMPCAP_OFFSET) >> AC_AMPCAP_OFFSET_SHIFT);
	val1 = ((int)val1) * ((int)val2);
	if (put_user(SNDRV_CTL_TLVT_DB_SCALE, _tlv))
		return -EFAULT;
	if (put_user(2 * sizeof(unsigned int), _tlv + 1))
		return -EFAULT;
	if (put_user(val1, _tlv + 2))
		return -EFAULT;
	if (put_user(val2, _tlv + 3))
		return -EFAULT;
	return 0;
}

1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044
/*
 * set (static) TLV for virtual master volume; recalculated as max 0dB
 */
void snd_hda_set_vmaster_tlv(struct hda_codec *codec, hda_nid_t nid, int dir,
			     unsigned int *tlv)
{
	u32 caps;
	int nums, step;

	caps = query_amp_caps(codec, nid, dir);
	nums = (caps & AC_AMPCAP_NUM_STEPS) >> AC_AMPCAP_NUM_STEPS_SHIFT;
	step = (caps & AC_AMPCAP_STEP_SIZE) >> AC_AMPCAP_STEP_SIZE_SHIFT;
	step = (step + 1) * 25;
	tlv[0] = SNDRV_CTL_TLVT_DB_SCALE;
	tlv[1] = 2 * sizeof(unsigned int);
	tlv[2] = -nums * step;
	tlv[3] = step;
}

/* find a mixer control element with the given name */
1045 1046 1047
static struct snd_kcontrol *
_snd_hda_find_mixer_ctl(struct hda_codec *codec,
			const char *name, int idx)
1048 1049 1050 1051
{
	struct snd_ctl_elem_id id;
	memset(&id, 0, sizeof(id));
	id.iface = SNDRV_CTL_ELEM_IFACE_MIXER;
1052
	id.index = idx;
1053 1054 1055 1056
	strcpy(id.name, name);
	return snd_ctl_find_id(codec->bus->card, &id);
}

1057 1058 1059 1060 1061 1062
struct snd_kcontrol *snd_hda_find_mixer_ctl(struct hda_codec *codec,
					    const char *name)
{
	return _snd_hda_find_mixer_ctl(codec, name, 0);
}

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/* create a virtual master control and add slaves */
int snd_hda_add_vmaster(struct hda_codec *codec, char *name,
			unsigned int *tlv, const char **slaves)
{
	struct snd_kcontrol *kctl;
	const char **s;
	int err;

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	for (s = slaves; *s && !snd_hda_find_mixer_ctl(codec, *s); s++)
		;
	if (!*s) {
		snd_printdd("No slave found for %s\n", name);
		return 0;
	}
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	kctl = snd_ctl_make_virtual_master(name, tlv);
	if (!kctl)
		return -ENOMEM;
	err = snd_ctl_add(codec->bus->card, kctl);
	if (err < 0)
		return err;
	
	for (s = slaves; *s; s++) {
		struct snd_kcontrol *sctl;

		sctl = snd_hda_find_mixer_ctl(codec, *s);
		if (!sctl) {
			snd_printdd("Cannot find slave %s, skipped\n", *s);
			continue;
		}
		err = snd_ctl_add_slave(kctl, sctl);
		if (err < 0)
			return err;
	}
	return 0;
}

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/* switch */
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int snd_hda_mixer_amp_switch_info(struct snd_kcontrol *kcontrol,
				  struct snd_ctl_elem_info *uinfo)
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{
	int chs = get_amp_channels(kcontrol);

	uinfo->type = SNDRV_CTL_ELEM_TYPE_BOOLEAN;
	uinfo->count = chs == 3 ? 2 : 1;
	uinfo->value.integer.min = 0;
	uinfo->value.integer.max = 1;
	return 0;
}

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int snd_hda_mixer_amp_switch_get(struct snd_kcontrol *kcontrol,
				 struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = get_amp_nid(kcontrol);
	int chs = get_amp_channels(kcontrol);
	int dir = get_amp_direction(kcontrol);
	int idx = get_amp_index(kcontrol);
	long *valp = ucontrol->value.integer.value;

	if (chs & 1)
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		*valp++ = (snd_hda_codec_amp_read(codec, nid, 0, dir, idx) &
1124
			   HDA_AMP_MUTE) ? 0 : 1;
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	if (chs & 2)
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		*valp = (snd_hda_codec_amp_read(codec, nid, 1, dir, idx) &
1127
			 HDA_AMP_MUTE) ? 0 : 1;
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	return 0;
}

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int snd_hda_mixer_amp_switch_put(struct snd_kcontrol *kcontrol,
				 struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = get_amp_nid(kcontrol);
	int chs = get_amp_channels(kcontrol);
	int dir = get_amp_direction(kcontrol);
	int idx = get_amp_index(kcontrol);
	long *valp = ucontrol->value.integer.value;
	int change = 0;

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	snd_hda_power_up(codec);
1143
	if (chs & 1) {
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		change = snd_hda_codec_amp_update(codec, nid, 0, dir, idx,
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						  HDA_AMP_MUTE,
						  *valp ? 0 : HDA_AMP_MUTE);
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		valp++;
	}
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	if (chs & 2)
		change |= snd_hda_codec_amp_update(codec, nid, 1, dir, idx,
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						   HDA_AMP_MUTE,
						   *valp ? 0 : HDA_AMP_MUTE);
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#ifdef CONFIG_SND_HDA_POWER_SAVE
	if (codec->patch_ops.check_power_status)
		codec->patch_ops.check_power_status(codec, nid);
#endif
	snd_hda_power_down(codec);
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	return change;
}

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/*
 * bound volume controls
 *
 * bind multiple volumes (# indices, from 0)
 */

#define AMP_VAL_IDX_SHIFT	19
#define AMP_VAL_IDX_MASK	(0x0f<<19)

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int snd_hda_mixer_bind_switch_get(struct snd_kcontrol *kcontrol,
				  struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	unsigned long pval;
	int err;

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	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	pval = kcontrol->private_value;
	kcontrol->private_value = pval & ~AMP_VAL_IDX_MASK; /* index 0 */
	err = snd_hda_mixer_amp_switch_get(kcontrol, ucontrol);
	kcontrol->private_value = pval;
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	mutex_unlock(&codec->spdif_mutex);
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	return err;
}

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int snd_hda_mixer_bind_switch_put(struct snd_kcontrol *kcontrol,
				  struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	unsigned long pval;
	int i, indices, err = 0, change = 0;

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	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	pval = kcontrol->private_value;
	indices = (pval & AMP_VAL_IDX_MASK) >> AMP_VAL_IDX_SHIFT;
	for (i = 0; i < indices; i++) {
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		kcontrol->private_value = (pval & ~AMP_VAL_IDX_MASK) |
			(i << AMP_VAL_IDX_SHIFT);
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		err = snd_hda_mixer_amp_switch_put(kcontrol, ucontrol);
		if (err < 0)
			break;
		change |= err;
	}
	kcontrol->private_value = pval;
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	mutex_unlock(&codec->spdif_mutex);
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	return err < 0 ? err : change;
}

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/*
 * generic bound volume/swtich controls
 */
int snd_hda_mixer_bind_ctls_info(struct snd_kcontrol *kcontrol,
				 struct snd_ctl_elem_info *uinfo)
{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	struct hda_bind_ctls *c;
	int err;

	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	c = (struct hda_bind_ctls *)kcontrol->private_value;
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	kcontrol->private_value = *c->values;
	err = c->ops->info(kcontrol, uinfo);
	kcontrol->private_value = (long)c;
	mutex_unlock(&codec->spdif_mutex);
	return err;
}

int snd_hda_mixer_bind_ctls_get(struct snd_kcontrol *kcontrol,
				struct snd_ctl_elem_value *ucontrol)
{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	struct hda_bind_ctls *c;
	int err;

	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	c = (struct hda_bind_ctls *)kcontrol->private_value;
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	kcontrol->private_value = *c->values;
	err = c->ops->get(kcontrol, ucontrol);
	kcontrol->private_value = (long)c;
	mutex_unlock(&codec->spdif_mutex);
	return err;
}

int snd_hda_mixer_bind_ctls_put(struct snd_kcontrol *kcontrol,
				struct snd_ctl_elem_value *ucontrol)
{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	struct hda_bind_ctls *c;
	unsigned long *vals;
	int err = 0, change = 0;

	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	c = (struct hda_bind_ctls *)kcontrol->private_value;
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	for (vals = c->values; *vals; vals++) {
		kcontrol->private_value = *vals;
		err = c->ops->put(kcontrol, ucontrol);
		if (err < 0)
			break;
		change |= err;
	}
	kcontrol->private_value = (long)c;
	mutex_unlock(&codec->spdif_mutex);
	return err < 0 ? err : change;
}

int snd_hda_mixer_bind_tlv(struct snd_kcontrol *kcontrol, int op_flag,
			   unsigned int size, unsigned int __user *tlv)
{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	struct hda_bind_ctls *c;
	int err;

	mutex_lock(&codec->spdif_mutex); /* reuse spdif_mutex */
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	c = (struct hda_bind_ctls *)kcontrol->private_value;
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	kcontrol->private_value = *c->values;
	err = c->ops->tlv(kcontrol, op_flag, size, tlv);
	kcontrol->private_value = (long)c;
	mutex_unlock(&codec->spdif_mutex);
	return err;
}

struct hda_ctl_ops snd_hda_bind_vol = {
	.info = snd_hda_mixer_amp_volume_info,
	.get = snd_hda_mixer_amp_volume_get,
	.put = snd_hda_mixer_amp_volume_put,
	.tlv = snd_hda_mixer_amp_tlv
};

struct hda_ctl_ops snd_hda_bind_sw = {
	.info = snd_hda_mixer_amp_switch_info,
	.get = snd_hda_mixer_amp_switch_get,
	.put = snd_hda_mixer_amp_switch_put,
	.tlv = snd_hda_mixer_amp_tlv
};

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/*
 * SPDIF out controls
 */

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static int snd_hda_spdif_mask_info(struct snd_kcontrol *kcontrol,
				   struct snd_ctl_elem_info *uinfo)
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{
	uinfo->type = SNDRV_CTL_ELEM_TYPE_IEC958;
	uinfo->count = 1;
	return 0;
}

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static int snd_hda_spdif_cmask_get(struct snd_kcontrol *kcontrol,
				   struct snd_ctl_elem_value *ucontrol)
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{
	ucontrol->value.iec958.status[0] = IEC958_AES0_PROFESSIONAL |
					   IEC958_AES0_NONAUDIO |
					   IEC958_AES0_CON_EMPHASIS_5015 |
					   IEC958_AES0_CON_NOT_COPYRIGHT;
	ucontrol->value.iec958.status[1] = IEC958_AES1_CON_CATEGORY |
					   IEC958_AES1_CON_ORIGINAL;
	return 0;
}

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static int snd_hda_spdif_pmask_get(struct snd_kcontrol *kcontrol,
				   struct snd_ctl_elem_value *ucontrol)
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{
	ucontrol->value.iec958.status[0] = IEC958_AES0_PROFESSIONAL |
					   IEC958_AES0_NONAUDIO |
					   IEC958_AES0_PRO_EMPHASIS_5015;
	return 0;
}

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static int snd_hda_spdif_default_get(struct snd_kcontrol *kcontrol,
				     struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);

	ucontrol->value.iec958.status[0] = codec->spdif_status & 0xff;
	ucontrol->value.iec958.status[1] = (codec->spdif_status >> 8) & 0xff;
	ucontrol->value.iec958.status[2] = (codec->spdif_status >> 16) & 0xff;
	ucontrol->value.iec958.status[3] = (codec->spdif_status >> 24) & 0xff;

	return 0;
}

/* convert from SPDIF status bits to HDA SPDIF bits
 * bit 0 (DigEn) is always set zero (to be filled later)
 */
static unsigned short convert_from_spdif_status(unsigned int sbits)
{
	unsigned short val = 0;

	if (sbits & IEC958_AES0_PROFESSIONAL)
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		val |= AC_DIG1_PROFESSIONAL;
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	if (sbits & IEC958_AES0_NONAUDIO)
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		val |= AC_DIG1_NONAUDIO;
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	if (sbits & IEC958_AES0_PROFESSIONAL) {
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		if ((sbits & IEC958_AES0_PRO_EMPHASIS) ==
		    IEC958_AES0_PRO_EMPHASIS_5015)
			val |= AC_DIG1_EMPHASIS;
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	} else {
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		if ((sbits & IEC958_AES0_CON_EMPHASIS) ==
		    IEC958_AES0_CON_EMPHASIS_5015)
			val |= AC_DIG1_EMPHASIS;
		if (!(sbits & IEC958_AES0_CON_NOT_COPYRIGHT))
			val |= AC_DIG1_COPYRIGHT;
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		if (sbits & (IEC958_AES1_CON_ORIGINAL << 8))
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			val |= AC_DIG1_LEVEL;
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		val |= sbits & (IEC958_AES1_CON_CATEGORY << 8);
	}
	return val;
}

/* convert to SPDIF status bits from HDA SPDIF bits
 */
static unsigned int convert_to_spdif_status(unsigned short val)
{
	unsigned int sbits = 0;

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	if (val & AC_DIG1_NONAUDIO)
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		sbits |= IEC958_AES0_NONAUDIO;
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	if (val & AC_DIG1_PROFESSIONAL)
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		sbits |= IEC958_AES0_PROFESSIONAL;
	if (sbits & IEC958_AES0_PROFESSIONAL) {
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		if (sbits & AC_DIG1_EMPHASIS)
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			sbits |= IEC958_AES0_PRO_EMPHASIS_5015;
	} else {
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		if (val & AC_DIG1_EMPHASIS)
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			sbits |= IEC958_AES0_CON_EMPHASIS_5015;
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		if (!(val & AC_DIG1_COPYRIGHT))
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			sbits |= IEC958_AES0_CON_NOT_COPYRIGHT;
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		if (val & AC_DIG1_LEVEL)
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			sbits |= (IEC958_AES1_CON_ORIGINAL << 8);
		sbits |= val & (0x7f << 8);
	}
	return sbits;
}

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static int snd_hda_spdif_default_put(struct snd_kcontrol *kcontrol,
				     struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = kcontrol->private_value;
	unsigned short val;
	int change;

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	mutex_lock(&codec->spdif_mutex);
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	codec->spdif_status = ucontrol->value.iec958.status[0] |
		((unsigned int)ucontrol->value.iec958.status[1] << 8) |
		((unsigned int)ucontrol->value.iec958.status[2] << 16) |
		((unsigned int)ucontrol->value.iec958.status[3] << 24);
	val = convert_from_spdif_status(codec->spdif_status);
	val |= codec->spdif_ctls & 1;
	change = codec->spdif_ctls != val;
	codec->spdif_ctls = val;

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	if (change) {
		snd_hda_codec_write_cache(codec, nid, 0,
					  AC_VERB_SET_DIGI_CONVERT_1,
					  val & 0xff);
		snd_hda_codec_write_cache(codec, nid, 0,
					  AC_VERB_SET_DIGI_CONVERT_2,
					  val >> 8);
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	}

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	mutex_unlock(&codec->spdif_mutex);
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	return change;
}

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#define snd_hda_spdif_out_switch_info	snd_ctl_boolean_mono_info
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static int snd_hda_spdif_out_switch_get(struct snd_kcontrol *kcontrol,
					struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);

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	ucontrol->value.integer.value[0] = codec->spdif_ctls & AC_DIG1_ENABLE;
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	return 0;
}

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static int snd_hda_spdif_out_switch_put(struct snd_kcontrol *kcontrol,
					struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = kcontrol->private_value;
	unsigned short val;
	int change;

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	mutex_lock(&codec->spdif_mutex);
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	val = codec->spdif_ctls & ~AC_DIG1_ENABLE;
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	if (ucontrol->value.integer.value[0])
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		val |= AC_DIG1_ENABLE;
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	change = codec->spdif_ctls != val;
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	if (change) {
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		codec->spdif_ctls = val;
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		snd_hda_codec_write_cache(codec, nid, 0,
					  AC_VERB_SET_DIGI_CONVERT_1,
					  val & 0xff);
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		/* unmute amp switch (if any) */
		if ((get_wcaps(codec, nid) & AC_WCAP_OUT_AMP) &&
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		    (val & AC_DIG1_ENABLE))
			snd_hda_codec_amp_stereo(codec, nid, HDA_OUTPUT, 0,
						 HDA_AMP_MUTE, 0);
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	}
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	mutex_unlock(&codec->spdif_mutex);
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	return change;
}

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static struct snd_kcontrol_new dig_mixes[] = {
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	{
		.access = SNDRV_CTL_ELEM_ACCESS_READ,
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",PLAYBACK,CON_MASK),
		.info = snd_hda_spdif_mask_info,
		.get = snd_hda_spdif_cmask_get,
	},
	{
		.access = SNDRV_CTL_ELEM_ACCESS_READ,
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",PLAYBACK,PRO_MASK),
		.info = snd_hda_spdif_mask_info,
		.get = snd_hda_spdif_pmask_get,
	},
	{
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",PLAYBACK,DEFAULT),
		.info = snd_hda_spdif_mask_info,
		.get = snd_hda_spdif_default_get,
		.put = snd_hda_spdif_default_put,
	},
	{
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",PLAYBACK,SWITCH),
		.info = snd_hda_spdif_out_switch_info,
		.get = snd_hda_spdif_out_switch_get,
		.put = snd_hda_spdif_out_switch_put,
	},
	{ } /* end */
};

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#define SPDIF_MAX_IDX	4	/* 4 instances should be enough to probe */

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/**
 * snd_hda_create_spdif_out_ctls - create Output SPDIF-related controls
 * @codec: the HDA codec
 * @nid: audio out widget NID
 *
 * Creates controls related with the SPDIF output.
 * Called from each patch supporting the SPDIF out.
 *
 * Returns 0 if successful, or a negative error code.
 */
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int snd_hda_create_spdif_out_ctls(struct hda_codec *codec, hda_nid_t nid)
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{
	int err;
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	struct snd_kcontrol *kctl;
	struct snd_kcontrol_new *dig_mix;
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	int idx;
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	for (idx = 0; idx < SPDIF_MAX_IDX; idx++) {
		if (!_snd_hda_find_mixer_ctl(codec, "IEC958 Playback Switch",
					     idx))
			break;
	}
	if (idx >= SPDIF_MAX_IDX) {
		printk(KERN_ERR "hda_codec: too many IEC958 outputs\n");
		return -EBUSY;
	}
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	for (dig_mix = dig_mixes; dig_mix->name; dig_mix++) {
		kctl = snd_ctl_new1(dig_mix, codec);
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		kctl->id.index = idx;
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		kctl->private_value = nid;
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		err = snd_ctl_add(codec->bus->card, kctl);
		if (err < 0)
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			return err;
	}
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	codec->spdif_ctls =
1534 1535
		snd_hda_codec_read(codec, nid, 0,
				   AC_VERB_GET_DIGI_CONVERT_1, 0);
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	codec->spdif_status = convert_to_spdif_status(codec->spdif_ctls);
	return 0;
}

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/*
 * SPDIF sharing with analog output
 */
static int spdif_share_sw_get(struct snd_kcontrol *kcontrol,
			      struct snd_ctl_elem_value *ucontrol)
{
	struct hda_multi_out *mout = snd_kcontrol_chip(kcontrol);
	ucontrol->value.integer.value[0] = mout->share_spdif;
	return 0;
}

static int spdif_share_sw_put(struct snd_kcontrol *kcontrol,
			      struct snd_ctl_elem_value *ucontrol)
{
	struct hda_multi_out *mout = snd_kcontrol_chip(kcontrol);
	mout->share_spdif = !!ucontrol->value.integer.value[0];
	return 0;
}

static struct snd_kcontrol_new spdif_share_sw = {
	.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
	.name = "IEC958 Default PCM Playback Switch",
	.info = snd_ctl_boolean_mono_info,
	.get = spdif_share_sw_get,
	.put = spdif_share_sw_put,
};

int snd_hda_create_spdif_share_sw(struct hda_codec *codec,
				  struct hda_multi_out *mout)
{
	if (!mout->dig_out_nid)
		return 0;
	/* ATTENTION: here mout is passed as private_data, instead of codec */
	return snd_ctl_add(codec->bus->card,
			   snd_ctl_new1(&spdif_share_sw, mout));
}

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/*
 * SPDIF input
 */

#define snd_hda_spdif_in_switch_info	snd_hda_spdif_out_switch_info

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static int snd_hda_spdif_in_switch_get(struct snd_kcontrol *kcontrol,
				       struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);

	ucontrol->value.integer.value[0] = codec->spdif_in_enable;
	return 0;
}

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static int snd_hda_spdif_in_switch_put(struct snd_kcontrol *kcontrol,
				       struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = kcontrol->private_value;
	unsigned int val = !!ucontrol->value.integer.value[0];
	int change;

1600
	mutex_lock(&codec->spdif_mutex);
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	change = codec->spdif_in_enable != val;
1602
	if (change) {
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		codec->spdif_in_enable = val;
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		snd_hda_codec_write_cache(codec, nid, 0,
					  AC_VERB_SET_DIGI_CONVERT_1, val);
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	}
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	mutex_unlock(&codec->spdif_mutex);
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	return change;
}

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static int snd_hda_spdif_in_status_get(struct snd_kcontrol *kcontrol,
				       struct snd_ctl_elem_value *ucontrol)
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{
	struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
	hda_nid_t nid = kcontrol->private_value;
	unsigned short val;
	unsigned int sbits;

1619
	val = snd_hda_codec_read(codec, nid, 0, AC_VERB_GET_DIGI_CONVERT_1, 0);
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	sbits = convert_to_spdif_status(val);
	ucontrol->value.iec958.status[0] = sbits;
	ucontrol->value.iec958.status[1] = sbits >> 8;
	ucontrol->value.iec958.status[2] = sbits >> 16;
	ucontrol->value.iec958.status[3] = sbits >> 24;
	return 0;
}

1628
static struct snd_kcontrol_new dig_in_ctls[] = {
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	{
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",CAPTURE,SWITCH),
		.info = snd_hda_spdif_in_switch_info,
		.get = snd_hda_spdif_in_switch_get,
		.put = snd_hda_spdif_in_switch_put,
	},
	{
		.access = SNDRV_CTL_ELEM_ACCESS_READ,
		.iface = SNDRV_CTL_ELEM_IFACE_MIXER,
		.name = SNDRV_CTL_NAME_IEC958("",CAPTURE,DEFAULT),
		.info = snd_hda_spdif_mask_info,
		.get = snd_hda_spdif_in_status_get,
	},
	{ } /* end */
};

/**
 * snd_hda_create_spdif_in_ctls - create Input SPDIF-related controls
 * @codec: the HDA codec
 * @nid: audio in widget NID
 *
 * Creates controls related with the SPDIF input.
 * Called from each patch supporting the SPDIF in.
 *
 * Returns 0 if successful, or a negative error code.
 */
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int snd_hda_create_spdif_in_ctls(struct hda_codec *codec, hda_nid_t nid)
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{
	int err;
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	struct snd_kcontrol *kctl;
	struct snd_kcontrol_new *dig_mix;
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	int idx;
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	for (idx = 0; idx < SPDIF_MAX_IDX; idx++) {
		if (!_snd_hda_find_mixer_ctl(codec, "IEC958 Capture Switch",
					     idx))
			break;
	}
	if (idx >= SPDIF_MAX_IDX) {
		printk(KERN_ERR "hda_codec: too many IEC958 inputs\n");
		return -EBUSY;
	}
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	for (dig_mix = dig_in_ctls; dig_mix->name; dig_mix++) {
		kctl = snd_ctl_new1(dig_mix, codec);
		kctl->private_value = nid;
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		err = snd_ctl_add(codec->bus->card, kctl);
		if (err < 0)
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			return err;
	}
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	codec->spdif_in_enable =
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		snd_hda_codec_read(codec, nid, 0,
				   AC_VERB_GET_DIGI_CONVERT_1, 0) &
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		AC_DIG1_ENABLE;
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	return 0;
}

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#ifdef SND_HDA_NEEDS_RESUME
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/*
 * command cache
 */
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/* build a 32bit cache key with the widget id and the command parameter */
#define build_cmd_cache_key(nid, verb)	((verb << 8) | nid)
#define get_cmd_cache_nid(key)		((key) & 0xff)
#define get_cmd_cache_cmd(key)		(((key) >> 8) & 0xffff)

/**
 * snd_hda_codec_write_cache - send a single command with caching
 * @codec: the HDA codec
 * @nid: NID to send the command
 * @direct: direct flag
 * @verb: the verb to send
 * @parm: the parameter for the verb
 *
 * Send a single command without waiting for response.
 *
 * Returns 0 if successful, or a negative error code.
 */
int snd_hda_codec_write_cache(struct hda_codec *codec, hda_nid_t nid,
			      int direct, unsigned int verb, unsigned int parm)
{
	int err;
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	snd_hda_power_up(codec);
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	mutex_lock(&codec->bus->cmd_mutex);
	err = codec->bus->ops.command(codec, nid, direct, verb, parm);
	if (!err) {
		struct hda_cache_head *c;
		u32 key = build_cmd_cache_key(nid, verb);
		c = get_alloc_hash(&codec->cmd_cache, key);
		if (c)
			c->val = parm;
	}
	mutex_unlock(&codec->bus->cmd_mutex);
1723
	snd_hda_power_down(codec);
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	return err;
}

/* resume the all commands from the cache */
void snd_hda_codec_resume_cache(struct hda_codec *codec)
{
	struct hda_cache_head *buffer = codec->cmd_cache.buffer;
	int i;

	for (i = 0; i < codec->cmd_cache.size; i++, buffer++) {
		u32 key = buffer->key;
		if (!key)
			continue;
		snd_hda_codec_write(codec, get_cmd_cache_nid(key), 0,
				    get_cmd_cache_cmd(key), buffer->val);
	}
}

/**
 * snd_hda_sequence_write_cache - sequence writes with caching
 * @codec: the HDA codec
 * @seq: VERB array to send
 *
 * Send the commands sequentially from the given array.
 * Thte commands are recorded on cache for power-save and resume.
 * The array must be terminated with NID=0.
 */
void snd_hda_sequence_write_cache(struct hda_codec *codec,
				  const struct hda_verb *seq)
{
	for (; seq->nid; seq++)
		snd_hda_codec_write_cache(codec, seq->nid, 0, seq->verb,
					  seq->param);
}
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#endif /* SND_HDA_NEEDS_RESUME */
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/*
 * set power state of the codec
 */
static void hda_set_power_state(struct hda_codec *codec, hda_nid_t fg,
				unsigned int power_state)
{
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	hda_nid_t nid;
	int i;
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	snd_hda_codec_write(codec, fg, 0, AC_VERB_SET_POWER_STATE,
			    power_state);
1771
	msleep(10); /* partial workaround for "azx_get_response timeout" */
1772

1773 1774
	nid = codec->start_nid;
	for (i = 0; i < codec->num_nodes; i++, nid++) {
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		unsigned int wcaps = get_wcaps(codec, nid);
		if (wcaps & AC_WCAP_POWER) {
			unsigned int wid_type = (wcaps & AC_WCAP_TYPE) >>
				AC_WCAP_TYPE_SHIFT;
			if (wid_type == AC_WID_PIN) {
				unsigned int pincap;
				/*
				 * don't power down the widget if it controls
				 * eapd and EAPD_BTLENABLE is set.
				 */
				pincap = snd_hda_param_read(codec, nid,
							    AC_PAR_PIN_CAP);
				if (pincap & AC_PINCAP_EAPD) {
					int eapd = snd_hda_codec_read(codec,
						nid, 0,
						AC_VERB_GET_EAPD_BTLENABLE, 0);
					eapd &= 0x02;
					if (power_state == AC_PWRST_D3 && eapd)
						continue;
				}
1795
			}
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			snd_hda_codec_write(codec, nid, 0,
					    AC_VERB_SET_POWER_STATE,
					    power_state);
1799
		}
1800 1801
	}

1802 1803 1804
	if (power_state == AC_PWRST_D0) {
		unsigned long end_time;
		int state;
1805
		msleep(10);
1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830
		/* wait until the codec reachs to D0 */
		end_time = jiffies + msecs_to_jiffies(500);
		do {
			state = snd_hda_codec_read(codec, fg, 0,
						   AC_VERB_GET_POWER_STATE, 0);
			if (state == power_state)
				break;
			msleep(1);
		} while (time_after_eq(end_time, jiffies));
	}
}

#ifdef SND_HDA_NEEDS_RESUME
/*
 * call suspend and power-down; used both from PM and power-save
 */
static void hda_call_codec_suspend(struct hda_codec *codec)
{
	if (codec->patch_ops.suspend)
		codec->patch_ops.suspend(codec, PMSG_SUSPEND);
	hda_set_power_state(codec,
			    codec->afg ? codec->afg : codec->mfg,
			    AC_PWRST_D3);
#ifdef CONFIG_SND_HDA_POWER_SAVE
	cancel_delayed_work(&codec->power_work);
1831
	codec->power_on = 0;
1832
	codec->power_transition = 0;
1833
#endif
1834 1835
}

1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846
/*
 * kick up codec; used both from PM and power-save
 */
static void hda_call_codec_resume(struct hda_codec *codec)
{
	hda_set_power_state(codec,
			    codec->afg ? codec->afg : codec->mfg,
			    AC_PWRST_D0);
	if (codec->patch_ops.resume)
		codec->patch_ops.resume(codec);
	else {
1847 1848
		if (codec->patch_ops.init)
			codec->patch_ops.init(codec);
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		snd_hda_codec_resume_amp(codec);
		snd_hda_codec_resume_cache(codec);
	}
}
#endif /* SND_HDA_NEEDS_RESUME */

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/**
 * snd_hda_build_controls - build mixer controls
 * @bus: the BUS
 *
 * Creates mixer controls for each codec included in the bus.
 *
 * Returns 0 if successful, otherwise a negative error code.
 */
1864
int __devinit snd_hda_build_controls(struct hda_bus *bus)
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{
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	struct hda_codec *codec;
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	list_for_each_entry(codec, &bus->codec_list, list) {
1869 1870 1871 1872
		int err = 0;
		/* fake as if already powered-on */
		hda_keep_power_on(codec);
		/* then fire up */
1873 1874 1875
		hda_set_power_state(codec,
				    codec->afg ? codec->afg : codec->mfg,
				    AC_PWRST_D0);
1876 1877 1878 1879 1880 1881
		/* continue to initialize... */
		if (codec->patch_ops.init)
			err = codec->patch_ops.init(codec);
		if (!err && codec->patch_ops.build_controls)
			err = codec->patch_ops.build_controls(codec);
		snd_hda_power_down(codec);
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		if (err < 0)
			return err;
	}
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	return 0;
}

/*
 * stream formats
 */
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struct hda_rate_tbl {
	unsigned int hz;
	unsigned int alsa_bits;
	unsigned int hda_fmt;
};

static struct hda_rate_tbl rate_bits[] = {
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	/* rate in Hz, ALSA rate bitmask, HDA format value */
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	/* autodetected value used in snd_hda_query_supported_pcm */
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	{ 8000, SNDRV_PCM_RATE_8000, 0x0500 }, /* 1/6 x 48 */
	{ 11025, SNDRV_PCM_RATE_11025, 0x4300 }, /* 1/4 x 44 */
	{ 16000, SNDRV_PCM_RATE_16000, 0x0200 }, /* 1/3 x 48 */
	{ 22050, SNDRV_PCM_RATE_22050, 0x4100 }, /* 1/2 x 44 */
	{ 32000, SNDRV_PCM_RATE_32000, 0x0a00 }, /* 2/3 x 48 */
	{ 44100, SNDRV_PCM_RATE_44100, 0x4000 }, /* 44 */
	{ 48000, SNDRV_PCM_RATE_48000, 0x0000 }, /* 48 */
	{ 88200, SNDRV_PCM_RATE_88200, 0x4800 }, /* 2 x 44 */
	{ 96000, SNDRV_PCM_RATE_96000, 0x0800 }, /* 2 x 48 */
	{ 176400, SNDRV_PCM_RATE_176400, 0x5800 },/* 4 x 44 */
	{ 192000, SNDRV_PCM_RATE_192000, 0x1800 }, /* 4 x 48 */
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#define AC_PAR_PCM_RATE_BITS	11
	/* up to bits 10, 384kHZ isn't supported properly */

	/* not autodetected value */
	{ 9600, SNDRV_PCM_RATE_KNOT, 0x0400 }, /* 1/5 x 48 */
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	{ 0 } /* terminator */
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};

/**
 * snd_hda_calc_stream_format - calculate format bitset
 * @rate: the sample rate
 * @channels: the number of channels
 * @format: the PCM format (SNDRV_PCM_FORMAT_XXX)
 * @maxbps: the max. bps
 *
 * Calculate the format bitset from the given rate, channels and th PCM format.
 *
 * Return zero if invalid.
 */
unsigned int snd_hda_calc_stream_format(unsigned int rate,
					unsigned int channels,
					unsigned int format,
					unsigned int maxbps)
{
	int i;
	unsigned int val = 0;

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	for (i = 0; rate_bits[i].hz; i++)
		if (rate_bits[i].hz == rate) {
			val = rate_bits[i].hda_fmt;
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			break;
		}
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	if (!rate_bits[i].hz) {
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		snd_printdd("invalid rate %d\n", rate);
		return 0;
	}

	if (channels == 0 || channels > 8) {
		snd_printdd("invalid channels %d\n", channels);
		return 0;
	}
	val |= channels - 1;

	switch (snd_pcm_format_width(format)) {
	case 8:  val |= 0x00; break;
	case 16: val |= 0x10; break;
	case 20:
	case 24:
	case 32:
		if (maxbps >= 32)
			val |= 0x40;
		else if (maxbps >= 24)
			val |= 0x30;
		else
			val |= 0x20;
		break;
	default:
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		snd_printdd("invalid format width %d\n",
			    snd_pcm_format_width(format));
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		return 0;
	}

	return val;
}

/**
 * snd_hda_query_supported_pcm - query the supported PCM rates and formats
 * @codec: the HDA codec
 * @nid: NID to query
 * @ratesp: the pointer to store the detected rate bitflags
 * @formatsp: the pointer to store the detected formats
 * @bpsp: the pointer to store the detected format widths
 *
 * Queries the supported PCM rates and formats.  The NULL @ratesp, @formatsp
 * or @bsps argument is ignored.
 *
 * Returns 0 if successful, otherwise a negative error code.
 */
int snd_hda_query_supported_pcm(struct hda_codec *codec, hda_nid_t nid,
				u32 *ratesp, u64 *formatsp, unsigned int *bpsp)
{
	int i;
	unsigned int val, streams;

	val = 0;
	if (nid != codec->afg &&
2000
	    (get_wcaps(codec, nid) & AC_WCAP_FORMAT_OVRD)) {
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		val = snd_hda_param_read(codec, nid, AC_PAR_PCM);
		if (val == -1)
			return -EIO;
	}
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	if (!val)
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		val = snd_hda_param_read(codec, codec->afg, AC_PAR_PCM);

	if (ratesp) {
		u32 rates = 0;
2010
		for (i = 0; i < AC_PAR_PCM_RATE_BITS; i++) {
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			if (val & (1 << i))
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				rates |= rate_bits[i].alsa_bits;
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		}
		*ratesp = rates;
	}

	if (formatsp || bpsp) {
		u64 formats = 0;
		unsigned int bps;
		unsigned int wcaps;

2022
		wcaps = get_wcaps(codec, nid);
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		streams = snd_hda_param_read(codec, nid, AC_PAR_STREAM);
		if (streams == -1)
			return -EIO;
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		if (!streams) {
			streams = snd_hda_param_read(codec, codec->afg,
						     AC_PAR_STREAM);
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			if (streams == -1)
				return -EIO;
		}

		bps = 0;
		if (streams & AC_SUPFMT_PCM) {
			if (val & AC_SUPPCM_BITS_8) {
				formats |= SNDRV_PCM_FMTBIT_U8;
				bps = 8;
			}
			if (val & AC_SUPPCM_BITS_16) {
				formats |= SNDRV_PCM_FMTBIT_S16_LE;
				bps = 16;
			}
			if (wcaps & AC_WCAP_DIGITAL) {
				if (val & AC_SUPPCM_BITS_32)
					formats |= SNDRV_PCM_FMTBIT_IEC958_SUBFRAME_LE;
				if (val & (AC_SUPPCM_BITS_20|AC_SUPPCM_BITS_24))
					formats |= SNDRV_PCM_FMTBIT_S32_LE;
				if (val & AC_SUPPCM_BITS_24)
					bps = 24;
				else if (val & AC_SUPPCM_BITS_20)
					bps = 20;
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			} else if (val & (AC_SUPPCM_BITS_20|AC_SUPPCM_BITS_24|
					  AC_SUPPCM_BITS_32)) {
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				formats |= SNDRV_PCM_FMTBIT_S32_LE;
				if (val & AC_SUPPCM_BITS_32)
					bps = 32;
				else if (val & AC_SUPPCM_BITS_24)
					bps = 24;
2059 2060
				else if (val & AC_SUPPCM_BITS_20)
					bps = 20;
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			}
		}
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		else if (streams == AC_SUPFMT_FLOAT32) {
			/* should be exclusive */
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			formats |= SNDRV_PCM_FMTBIT_FLOAT_LE;
			bps = 32;
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		} else if (streams == AC_SUPFMT_AC3) {
			/* should be exclusive */
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			/* temporary hack: we have still no proper support
			 * for the direct AC3 stream...
			 */
			formats |= SNDRV_PCM_FMTBIT_U8;
			bps = 8;
		}
		if (formatsp)
			*formatsp = formats;
		if (bpsp)
			*bpsp = bps;
	}

	return 0;
}

/**
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 * snd_hda_is_supported_format - check whether the given node supports
 * the format val
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 *
 * Returns 1 if supported, 0 if not.
 */
int snd_hda_is_supported_format(struct hda_codec *codec, hda_nid_t nid,
				unsigned int format)
{
	int i;
	unsigned int val = 0, rate, stream;

	if (nid != codec->afg &&
2097
	    (get_wcaps(codec, nid) & AC_WCAP_FORMAT_OVRD)) {
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		val = snd_hda_param_read(codec, nid, AC_PAR_PCM);
		if (val == -1)
			return 0;
	}
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	if (!val) {
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		val = snd_hda_param_read(codec, codec->afg, AC_PAR_PCM);
		if (val == -1)
			return 0;
	}

	rate = format & 0xff00;
2109
	for (i = 0; i < AC_PAR_PCM_RATE_BITS; i++)
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		if (rate_bits[i].hda_fmt == rate) {
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			if (val & (1 << i))
				break;
			return 0;
		}
2115
	if (i >= AC_PAR_PCM_RATE_BITS)
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		return 0;

	stream = snd_hda_param_read(codec, nid, AC_PAR_STREAM);
	if (stream == -1)
		return 0;
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	if (!stream && nid != codec->afg)
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		stream = snd_hda_param_read(codec, codec->afg, AC_PAR_STREAM);
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	if (!stream || stream == -1)
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		return 0;

	if (stream & AC_SUPFMT_PCM) {
		switch (format & 0xf0) {
		case 0x00:
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			if (!(val & AC_SUPPCM_BITS_8))
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				return 0;
			break;
		case 0x10:
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			if (!(val & AC_SUPPCM_BITS_16))
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				return 0;
			break;
		case 0x20:
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			if (!(val & AC_SUPPCM_BITS_20))
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				return 0;
			break;
		case 0x30:
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			if (!(val & AC_SUPPCM_BITS_24))
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				return 0;
			break;
		case 0x40:
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			if (!(val & AC_SUPPCM_BITS_32))
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				return 0;
			break;
		default:
			return 0;
		}
	} else {
		/* FIXME: check for float32 and AC3? */
	}

	return 1;
}

/*
 * PCM stuff
 */
static int hda_pcm_default_open_close(struct hda_pcm_stream *hinfo,
				      struct hda_codec *codec,
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				      struct snd_pcm_substream *substream)
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{
	return 0;
}

static int hda_pcm_default_prepare(struct hda_pcm_stream *hinfo,
				   struct hda_codec *codec,
				   unsigned int stream_tag,
				   unsigned int format,
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				   struct snd_pcm_substream *substream)
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{
	snd_hda_codec_setup_stream(codec, hinfo->nid, stream_tag, 0, format);
	return 0;
}

static int hda_pcm_default_cleanup(struct hda_pcm_stream *hinfo,
				   struct hda_codec *codec,
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				   struct snd_pcm_substream *substream)
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{
	snd_hda_codec_setup_stream(codec, hinfo->nid, 0, 0, 0);
	return 0;
}

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static int __devinit set_pcm_default_values(struct hda_codec *codec,
					    struct hda_pcm_stream *info)
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{
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	/* query support PCM information from the given NID */
	if (info->nid && (!info->rates || !info->formats)) {
		snd_hda_query_supported_pcm(codec, info->nid,
				info->rates ? NULL : &info->rates,
				info->formats ? NULL : &info->formats,
				info->maxbps ? NULL : &info->maxbps);
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	}
	if (info->ops.open == NULL)
		info->ops.open = hda_pcm_default_open_close;
	if (info->ops.close == NULL)
		info->ops.close = hda_pcm_default_open_close;
	if (info->ops.prepare == NULL) {
		snd_assert(info->nid, return -EINVAL);
		info->ops.prepare = hda_pcm_default_prepare;
	}
	if (info->ops.cleanup == NULL) {
		snd_assert(info->nid, return -EINVAL);
		info->ops.cleanup = hda_pcm_default_cleanup;
	}
	return 0;
}

/**
 * snd_hda_build_pcms - build PCM information
 * @bus: the BUS
 *
 * Create PCM information for each codec included in the bus.
 *
 * The build_pcms codec patch is requested to set up codec->num_pcms and
 * codec->pcm_info properly.  The array is referred by the top-level driver
 * to create its PCM instances.
 * The allocated codec->pcm_info should be released in codec->patch_ops.free
 * callback.
 *
 * At least, substreams, channels_min and channels_max must be filled for
 * each stream.  substreams = 0 indicates that the stream doesn't exist.
 * When rates and/or formats are zero, the supported values are queried
 * from the given nid.  The nid is used also by the default ops.prepare
 * and ops.cleanup callbacks.
 *
 * The driver needs to call ops.open in its open callback.  Similarly,
 * ops.close is supposed to be called in the close callback.
 * ops.prepare should be called in the prepare or hw_params callback
 * with the proper parameters for set up.
 * ops.cleanup should be called in hw_free for clean up of streams.
 *
 * This function returns 0 if successfull, or a negative error code.
 */
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int __devinit snd_hda_build_pcms(struct hda_bus *bus)
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{
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	struct hda_codec *codec;
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	list_for_each_entry(codec, &bus->codec_list, list) {
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		unsigned int pcm, s;
		int err;
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		if (!codec->patch_ops.build_pcms)
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			continue;
		err = codec->patch_ops.build_pcms(codec);
		if (err < 0)
			return err;
		for (pcm = 0; pcm < codec->num_pcms; pcm++) {
			for (s = 0; s < 2; s++) {
				struct hda_pcm_stream *info;
				info = &codec->pcm_info[pcm].stream[s];
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				if (!info->substreams)
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					continue;
				err = set_pcm_default_values(codec, info);
				if (err < 0)
					return err;
			}
		}
	}
	return 0;
}

/**
 * snd_hda_check_board_config - compare the current codec with the config table
 * @codec: the HDA codec
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 * @num_configs: number of config enums
 * @models: array of model name strings
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 * @tbl: configuration table, terminated by null entries
 *
 * Compares the modelname or PCI subsystem id of the current codec with the
 * given configuration table.  If a matching entry is found, returns its
 * config value (supposed to be 0 or positive).
 *
 * If no entries are matching, the function returns a negative value.
 */
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int snd_hda_check_board_config(struct hda_codec *codec,
			       int num_configs, const char **models,
			       const struct snd_pci_quirk *tbl)
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{
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	if (codec->bus->modelname && models) {
		int i;
		for (i = 0; i < num_configs; i++) {
			if (models[i] &&
			    !strcmp(codec->bus->modelname, models[i])) {
				snd_printd(KERN_INFO "hda_codec: model '%s' is "
					   "selected\n", models[i]);
				return i;
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			}
		}
	}

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	if (!codec->bus->pci || !tbl)
		return -1;

	tbl = snd_pci_quirk_lookup(codec->bus->pci, tbl);
	if (!tbl)
		return -1;
	if (tbl->value >= 0 && tbl->value < num_configs) {
#ifdef CONFIG_SND_DEBUG_DETECT
		char tmp[10];
		const char *model = NULL;
		if (models)
			model = models[tbl->value];
		if (!model) {
			sprintf(tmp, "#%d", tbl->value);
			model = tmp;
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		}
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		snd_printdd(KERN_INFO "hda_codec: model '%s' is selected "
			    "for config %x:%x (%s)\n",
			    model, tbl->subvendor, tbl->subdevice,
			    (tbl->name ? tbl->name : "Unknown device"));
#endif
		return tbl->value;
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	}
	return -1;
}

/**
 * snd_hda_add_new_ctls - create controls from the array
 * @codec: the HDA codec
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 * @knew: the array of struct snd_kcontrol_new
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 *
 * This helper function creates and add new controls in the given array.
 * The array must be terminated with an empty entry as terminator.
 *
 * Returns 0 if successful, or a negative error code.
 */
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int snd_hda_add_new_ctls(struct hda_codec *codec, struct snd_kcontrol_new *knew)
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{
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 	int err;
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	for (; knew->name; knew++) {
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		struct snd_kcontrol *kctl;
		kctl = snd_ctl_new1(knew, codec);
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		if (!kctl)
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			return -ENOMEM;
		err = snd_ctl_add(codec->bus->card, kctl);
		if (err < 0) {
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			if (!codec->addr)
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				return err;
			kctl = snd_ctl_new1(knew, codec);
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			if (!kctl)
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				return -ENOMEM;
			kctl->id.device = codec->addr;
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			err = snd_ctl_add(codec->bus->card, kctl);
			if (err < 0)
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				return err;
		}
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	}
	return 0;
}

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#ifdef CONFIG_SND_HDA_POWER_SAVE
static void hda_set_power_state(struct hda_codec *codec, hda_nid_t fg,
				unsigned int power_state);

static void hda_power_work(struct work_struct *work)
{
	struct hda_codec *codec =
		container_of(work, struct hda_codec, power_work.work);

2363 2364
	if (!codec->power_on || codec->power_count) {
		codec->power_transition = 0;
2365
		return;
2366
	}
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	hda_call_codec_suspend(codec);
	if (codec->bus->ops.pm_notify)
		codec->bus->ops.pm_notify(codec);
}

static void hda_keep_power_on(struct hda_codec *codec)
{
	codec->power_count++;
	codec->power_on = 1;
}

void snd_hda_power_up(struct hda_codec *codec)
{
	codec->power_count++;
2382
	if (codec->power_on || codec->power_transition)
2383 2384 2385 2386 2387 2388 2389
		return;

	codec->power_on = 1;
	if (codec->bus->ops.pm_notify)
		codec->bus->ops.pm_notify(codec);
	hda_call_codec_resume(codec);
	cancel_delayed_work(&codec->power_work);
2390
	codec->power_transition = 0;
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}

void snd_hda_power_down(struct hda_codec *codec)
{
	--codec->power_count;
2396
	if (!codec->power_on || codec->power_count || codec->power_transition)
2397
		return;
2398 2399
	if (power_save) {
		codec->power_transition = 1; /* avoid reentrance */
2400 2401
		schedule_delayed_work(&codec->power_work,
				      msecs_to_jiffies(power_save * 1000));
2402
	}
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}

int snd_hda_check_amp_list_power(struct hda_codec *codec,
				 struct hda_loopback_check *check,
				 hda_nid_t nid)
{
	struct hda_amp_list *p;
	int ch, v;

	if (!check->amplist)
		return 0;
	for (p = check->amplist; p->nid; p++) {
		if (p->nid == nid)
			break;
	}
	if (!p->nid)
		return 0; /* nothing changed */

	for (p = check->amplist; p->nid; p++) {
		for (ch = 0; ch < 2; ch++) {
			v = snd_hda_codec_amp_read(codec, p->nid, ch, p->dir,
						   p->idx);
			if (!(v & HDA_AMP_MUTE) && v > 0) {
				if (!check->power_on) {
					check->power_on = 1;
					snd_hda_power_up(codec);
				}
				return 1;
			}
		}
	}
	if (check->power_on) {
		check->power_on = 0;
		snd_hda_power_down(codec);
	}
	return 0;
}
#endif
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2442
/*
2443 2444
 * Channel mode helper
 */
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int snd_hda_ch_mode_info(struct hda_codec *codec,
			 struct snd_ctl_elem_info *uinfo,
			 const struct hda_channel_mode *chmode,
			 int num_chmodes)
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{
	uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
	uinfo->count = 1;
	uinfo->value.enumerated.items = num_chmodes;
	if (uinfo->value.enumerated.item >= num_chmodes)
		uinfo->value.enumerated.item = num_chmodes - 1;
	sprintf(uinfo->value.enumerated.name, "%dch",
		chmode[uinfo->value.enumerated.item].channels);
	return 0;
}

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int snd_hda_ch_mode_get(struct hda_codec *codec,
			struct snd_ctl_elem_value *ucontrol,
			const struct hda_channel_mode *chmode,
			int num_chmodes,
2464 2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476
			int max_channels)
{
	int i;

	for (i = 0; i < num_chmodes; i++) {
		if (max_channels == chmode[i].channels) {
			ucontrol->value.enumerated.item[0] = i;
			break;
		}
	}
	return 0;
}

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int snd_hda_ch_mode_put(struct hda_codec *codec,
			struct snd_ctl_elem_value *ucontrol,
			const struct hda_channel_mode *chmode,
			int num_chmodes,
2481 2482 2483 2484 2485
			int *max_channelsp)
{
	unsigned int mode;

	mode = ucontrol->value.enumerated.item[0];
2486 2487
	if (mode >= num_chmodes)
		return -EINVAL;
2488
	if (*max_channelsp == chmode[mode].channels)
2489 2490 2491 2492
		return 0;
	/* change the current channel setting */
	*max_channelsp = chmode[mode].channels;
	if (chmode[mode].sequence)
2493
		snd_hda_sequence_write_cache(codec, chmode[mode].sequence);
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	return 1;
}

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/*
 * input MUX helper
 */
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int snd_hda_input_mux_info(const struct hda_input_mux *imux,
			   struct snd_ctl_elem_info *uinfo)
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{
	unsigned int index;

	uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
	uinfo->count = 1;
	uinfo->value.enumerated.items = imux->num_items;
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	if (!imux->num_items)
		return 0;
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	index = uinfo->value.enumerated.item;
	if (index >= imux->num_items)
		index = imux->num_items - 1;
	strcpy(uinfo->value.enumerated.name, imux->items[index].label);
	return 0;
}

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int snd_hda_input_mux_put(struct hda_codec *codec,
			  const struct hda_input_mux *imux,
			  struct snd_ctl_elem_value *ucontrol,
			  hda_nid_t nid,
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			  unsigned int *cur_val)
{
	unsigned int idx;

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	if (!imux->num_items)
		return 0;
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	idx = ucontrol->value.enumerated.item[0];
	if (idx >= imux->num_items)
		idx = imux->num_items - 1;
2530
	if (*cur_val == idx)
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		return 0;
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	snd_hda_codec_write_cache(codec, nid, 0, AC_VERB_SET_CONNECT_SEL,
				  imux->items[idx].index);
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	*cur_val = idx;
	return 1;
}


/*
 * Multi-channel / digital-out PCM helper functions
 */

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/* setup SPDIF output stream */
static void setup_dig_out_stream(struct hda_codec *codec, hda_nid_t nid,
				 unsigned int stream_tag, unsigned int format)
{
	/* turn off SPDIF once; otherwise the IEC958 bits won't be updated */
	if (codec->spdif_ctls & AC_DIG1_ENABLE)
		snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_DIGI_CONVERT_1,
				    codec->spdif_ctls & ~AC_DIG1_ENABLE & 0xff);
	snd_hda_codec_setup_stream(codec, nid, stream_tag, 0, format);
	/* turn on again (if needed) */
	if (codec->spdif_ctls & AC_DIG1_ENABLE)
		snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_DIGI_CONVERT_1,
				    codec->spdif_ctls & 0xff);
}

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/*
 * open the digital out in the exclusive mode
 */
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int snd_hda_multi_out_dig_open(struct hda_codec *codec,
			       struct hda_multi_out *mout)
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{
2564
	mutex_lock(&codec->spdif_mutex);
2565 2566 2567
	if (mout->dig_out_used == HDA_DIG_ANALOG_DUP)
		/* already opened as analog dup; reset it once */
		snd_hda_codec_setup_stream(codec, mout->dig_out_nid, 0, 0, 0);
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	mout->dig_out_used = HDA_DIG_EXCLUSIVE;
2569
	mutex_unlock(&codec->spdif_mutex);
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	return 0;
}

2573 2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584
int snd_hda_multi_out_dig_prepare(struct hda_codec *codec,
				  struct hda_multi_out *mout,
				  unsigned int stream_tag,
				  unsigned int format,
				  struct snd_pcm_substream *substream)
{
	mutex_lock(&codec->spdif_mutex);
	setup_dig_out_stream(codec, mout->dig_out_nid, stream_tag, format);
	mutex_unlock(&codec->spdif_mutex);
	return 0;
}

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/*
 * release the digital out
 */
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int snd_hda_multi_out_dig_close(struct hda_codec *codec,
				struct hda_multi_out *mout)
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{
2591
	mutex_lock(&codec->spdif_mutex);
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2592
	mout->dig_out_used = 0;
2593
	mutex_unlock(&codec->spdif_mutex);
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2594 2595 2596 2597 2598 2599
	return 0;
}

/*
 * set up more restrictions for analog out
 */
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int snd_hda_multi_out_analog_open(struct hda_codec *codec,
				  struct hda_multi_out *mout,
2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617 2618 2619 2620 2621 2622 2623 2624 2625 2626 2627 2628 2629 2630 2631
				  struct snd_pcm_substream *substream,
				  struct hda_pcm_stream *hinfo)
{
	struct snd_pcm_runtime *runtime = substream->runtime;
	runtime->hw.channels_max = mout->max_channels;
	if (mout->dig_out_nid) {
		if (!mout->analog_rates) {
			mout->analog_rates = hinfo->rates;
			mout->analog_formats = hinfo->formats;
			mout->analog_maxbps = hinfo->maxbps;
		} else {
			runtime->hw.rates = mout->analog_rates;
			runtime->hw.formats = mout->analog_formats;
			hinfo->maxbps = mout->analog_maxbps;
		}
		if (!mout->spdif_rates) {
			snd_hda_query_supported_pcm(codec, mout->dig_out_nid,
						    &mout->spdif_rates,
						    &mout->spdif_formats,
						    &mout->spdif_maxbps);
		}
		mutex_lock(&codec->spdif_mutex);
		if (mout->share_spdif) {
			runtime->hw.rates &= mout->spdif_rates;
			runtime->hw.formats &= mout->spdif_formats;
			if (mout->spdif_maxbps < hinfo->maxbps)
				hinfo->maxbps = mout->spdif_maxbps;
		}
	}
	mutex_unlock(&codec->spdif_mutex);
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	return snd_pcm_hw_constraint_step(substream->runtime, 0,
					  SNDRV_PCM_HW_PARAM_CHANNELS, 2);
}

/*
 * set up the i/o for analog out
 * when the digital out is available, copy the front out to digital out, too.
 */
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int snd_hda_multi_out_analog_prepare(struct hda_codec *codec,
				     struct hda_multi_out *mout,
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2642 2643
				     unsigned int stream_tag,
				     unsigned int format,
2644
				     struct snd_pcm_substream *substream)
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{
	hda_nid_t *nids = mout->dac_nids;
	int chs = substream->runtime->channels;
	int i;

2650
	mutex_lock(&codec->spdif_mutex);
2651 2652
	if (mout->dig_out_nid && mout->share_spdif &&
	    mout->dig_out_used != HDA_DIG_EXCLUSIVE) {
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		if (chs == 2 &&
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		    snd_hda_is_supported_format(codec, mout->dig_out_nid,
						format) &&
		    !(codec->spdif_status & IEC958_AES0_NONAUDIO)) {
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			mout->dig_out_used = HDA_DIG_ANALOG_DUP;
2658 2659
			setup_dig_out_stream(codec, mout->dig_out_nid,
					     stream_tag, format);
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2660 2661
		} else {
			mout->dig_out_used = 0;
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			snd_hda_codec_setup_stream(codec, mout->dig_out_nid,
						   0, 0, 0);
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2664 2665
		}
	}
2666
	mutex_unlock(&codec->spdif_mutex);
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2667 2668

	/* front */
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2669 2670
	snd_hda_codec_setup_stream(codec, nids[HDA_FRONT], stream_tag,
				   0, format);
2671 2672
	if (!mout->no_share_stream &&
	    mout->hp_nid && mout->hp_nid != nids[HDA_FRONT])
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		/* headphone out will just decode front left/right (stereo) */
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2674 2675
		snd_hda_codec_setup_stream(codec, mout->hp_nid, stream_tag,
					   0, format);
2676 2677
	/* extra outputs copied from front */
	for (i = 0; i < ARRAY_SIZE(mout->extra_out_nid); i++)
2678
		if (!mout->no_share_stream && mout->extra_out_nid[i])
2679 2680 2681 2682
			snd_hda_codec_setup_stream(codec,
						   mout->extra_out_nid[i],
						   stream_tag, 0, format);

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	/* surrounds */
	for (i = 1; i < mout->num_dacs; i++) {
2685
		if (chs >= (i + 1) * 2) /* independent out */
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			snd_hda_codec_setup_stream(codec, nids[i], stream_tag,
						   i * 2, format);
2688
		else if (!mout->no_share_stream) /* copy front */
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			snd_hda_codec_setup_stream(codec, nids[i], stream_tag,
						   0, format);
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2691 2692 2693 2694 2695 2696 2697
	}
	return 0;
}

/*
 * clean up the setting for analog out
 */
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int snd_hda_multi_out_analog_cleanup(struct hda_codec *codec,
				     struct hda_multi_out *mout)
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{
	hda_nid_t *nids = mout->dac_nids;
	int i;

	for (i = 0; i < mout->num_dacs; i++)
		snd_hda_codec_setup_stream(codec, nids[i], 0, 0, 0);
	if (mout->hp_nid)
		snd_hda_codec_setup_stream(codec, mout->hp_nid, 0, 0, 0);
2708 2709 2710 2711 2712
	for (i = 0; i < ARRAY_SIZE(mout->extra_out_nid); i++)
		if (mout->extra_out_nid[i])
			snd_hda_codec_setup_stream(codec,
						   mout->extra_out_nid[i],
						   0, 0, 0);
2713
	mutex_lock(&codec->spdif_mutex);
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	if (mout->dig_out_nid && mout->dig_out_used == HDA_DIG_ANALOG_DUP) {
		snd_hda_codec_setup_stream(codec, mout->dig_out_nid, 0, 0, 0);
		mout->dig_out_used = 0;
	}
2718
	mutex_unlock(&codec->spdif_mutex);
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2719 2720 2721
	return 0;
}

2722 2723 2724
/*
 * Helper for automatic ping configuration
 */
2725

2726
static int is_in_nid_list(hda_nid_t nid, hda_nid_t *list)
2727 2728 2729 2730 2731 2732 2733
{
	for (; *list; list++)
		if (*list == nid)
			return 1;
	return 0;
}

2734 2735 2736 2737 2738 2739 2740 2741 2742 2743 2744 2745 2746 2747 2748 2749 2750 2751 2752 2753 2754 2755 2756 2757 2758 2759

/*
 * Sort an associated group of pins according to their sequence numbers.
 */
static void sort_pins_by_sequence(hda_nid_t * pins, short * sequences,
				  int num_pins)
{
	int i, j;
	short seq;
	hda_nid_t nid;
	
	for (i = 0; i < num_pins; i++) {
		for (j = i + 1; j < num_pins; j++) {
			if (sequences[i] > sequences[j]) {
				seq = sequences[i];
				sequences[i] = sequences[j];
				sequences[j] = seq;
				nid = pins[i];
				pins[i] = pins[j];
				pins[j] = nid;
			}
		}
	}
}


2760 2761 2762 2763 2764 2765 2766 2767
/*
 * Parse all pin widgets and store the useful pin nids to cfg
 *
 * The number of line-outs or any primary output is stored in line_outs,
 * and the corresponding output pins are assigned to line_out_pins[],
 * in the order of front, rear, CLFE, side, ...
 *
 * If more extra outputs (speaker and headphone) are found, the pins are
2768
 * assisnged to hp_pins[] and speaker_pins[], respectively.  If no line-out jack
2769 2770 2771 2772 2773 2774 2775 2776
 * is detected, one of speaker of HP pins is assigned as the primary
 * output, i.e. to line_out_pins[0].  So, line_outs is always positive
 * if any analog output exists.
 * 
 * The analog input pins are assigned to input_pins array.
 * The digital input/output pins are assigned to dig_in_pin and dig_out_pin,
 * respectively.
 */
2777 2778 2779
int snd_hda_parse_pin_def_config(struct hda_codec *codec,
				 struct auto_pin_cfg *cfg,
				 hda_nid_t *ignore_nids)
2780
{
2781
	hda_nid_t nid, end_nid;
2782 2783 2784
	short seq, assoc_line_out, assoc_speaker;
	short sequences_line_out[ARRAY_SIZE(cfg->line_out_pins)];
	short sequences_speaker[ARRAY_SIZE(cfg->speaker_pins)];
2785
	short sequences_hp[ARRAY_SIZE(cfg->hp_pins)];
2786 2787 2788

	memset(cfg, 0, sizeof(*cfg));

2789 2790
	memset(sequences_line_out, 0, sizeof(sequences_line_out));
	memset(sequences_speaker, 0, sizeof(sequences_speaker));
2791
	memset(sequences_hp, 0, sizeof(sequences_hp));
2792
	assoc_line_out = assoc_speaker = 0;
2793

2794 2795
	end_nid = codec->start_nid + codec->num_nodes;
	for (nid = codec->start_nid; nid < end_nid; nid++) {
2796
		unsigned int wid_caps = get_wcaps(codec, nid);
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		unsigned int wid_type =
			(wid_caps & AC_WCAP_TYPE) >> AC_WCAP_TYPE_SHIFT;
2799 2800 2801 2802 2803 2804
		unsigned int def_conf;
		short assoc, loc;

		/* read all default configuration for pin complex */
		if (wid_type != AC_WID_PIN)
			continue;
2805 2806 2807 2808
		/* ignore the given nids (e.g. pc-beep returns error) */
		if (ignore_nids && is_in_nid_list(nid, ignore_nids))
			continue;

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2809 2810
		def_conf = snd_hda_codec_read(codec, nid, 0,
					      AC_VERB_GET_CONFIG_DEFAULT, 0);
2811 2812 2813 2814 2815 2816 2817
		if (get_defcfg_connect(def_conf) == AC_JACK_PORT_NONE)
			continue;
		loc = get_defcfg_location(def_conf);
		switch (get_defcfg_device(def_conf)) {
		case AC_JACK_LINE_OUT:
			seq = get_defcfg_sequence(def_conf);
			assoc = get_defcfg_association(def_conf);
2818 2819 2820 2821

			if (!(wid_caps & AC_WCAP_STEREO))
				if (!cfg->mono_out_pin)
					cfg->mono_out_pin = nid;
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2822
			if (!assoc)
2823
				continue;
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2824
			if (!assoc_line_out)
2825 2826 2827 2828 2829 2830
				assoc_line_out = assoc;
			else if (assoc_line_out != assoc)
				continue;
			if (cfg->line_outs >= ARRAY_SIZE(cfg->line_out_pins))
				continue;
			cfg->line_out_pins[cfg->line_outs] = nid;
2831
			sequences_line_out[cfg->line_outs] = seq;
2832 2833
			cfg->line_outs++;
			break;
2834
		case AC_JACK_SPEAKER:
2835 2836 2837 2838 2839 2840 2841 2842
			seq = get_defcfg_sequence(def_conf);
			assoc = get_defcfg_association(def_conf);
			if (! assoc)
				continue;
			if (! assoc_speaker)
				assoc_speaker = assoc;
			else if (assoc_speaker != assoc)
				continue;
2843 2844 2845
			if (cfg->speaker_outs >= ARRAY_SIZE(cfg->speaker_pins))
				continue;
			cfg->speaker_pins[cfg->speaker_outs] = nid;
2846
			sequences_speaker[cfg->speaker_outs] = seq;
2847
			cfg->speaker_outs++;
2848
			break;
2849
		case AC_JACK_HP_OUT:
2850 2851
			seq = get_defcfg_sequence(def_conf);
			assoc = get_defcfg_association(def_conf);
2852 2853 2854
			if (cfg->hp_outs >= ARRAY_SIZE(cfg->hp_pins))
				continue;
			cfg->hp_pins[cfg->hp_outs] = nid;
2855
			sequences_hp[cfg->hp_outs] = (assoc << 4) | seq;
2856
			cfg->hp_outs++;
2857
			break;
2858 2859 2860 2861 2862 2863 2864 2865 2866 2867 2868 2869 2870
		case AC_JACK_MIC_IN: {
			int preferred, alt;
			if (loc == AC_JACK_LOC_FRONT) {
				preferred = AUTO_PIN_FRONT_MIC;
				alt = AUTO_PIN_MIC;
			} else {
				preferred = AUTO_PIN_MIC;
				alt = AUTO_PIN_FRONT_MIC;
			}
			if (!cfg->input_pins[preferred])
				cfg->input_pins[preferred] = nid;
			else if (!cfg->input_pins[alt])
				cfg->input_pins[alt] = nid;
2871
			break;
2872
		}
2873 2874 2875 2876 2877 2878 2879 2880 2881 2882 2883 2884 2885 2886 2887 2888 2889 2890 2891 2892 2893
		case AC_JACK_LINE_IN:
			if (loc == AC_JACK_LOC_FRONT)
				cfg->input_pins[AUTO_PIN_FRONT_LINE] = nid;
			else
				cfg->input_pins[AUTO_PIN_LINE] = nid;
			break;
		case AC_JACK_CD:
			cfg->input_pins[AUTO_PIN_CD] = nid;
			break;
		case AC_JACK_AUX:
			cfg->input_pins[AUTO_PIN_AUX] = nid;
			break;
		case AC_JACK_SPDIF_OUT:
			cfg->dig_out_pin = nid;
			break;
		case AC_JACK_SPDIF_IN:
			cfg->dig_in_pin = nid;
			break;
		}
	}

2894 2895 2896 2897 2898 2899 2900 2901 2902 2903 2904 2905 2906 2907 2908 2909 2910 2911 2912 2913 2914 2915 2916 2917
	/* FIX-UP:
	 * If no line-out is defined but multiple HPs are found,
	 * some of them might be the real line-outs.
	 */
	if (!cfg->line_outs && cfg->hp_outs > 1) {
		int i = 0;
		while (i < cfg->hp_outs) {
			/* The real HPs should have the sequence 0x0f */
			if ((sequences_hp[i] & 0x0f) == 0x0f) {
				i++;
				continue;
			}
			/* Move it to the line-out table */
			cfg->line_out_pins[cfg->line_outs] = cfg->hp_pins[i];
			sequences_line_out[cfg->line_outs] = sequences_hp[i];
			cfg->line_outs++;
			cfg->hp_outs--;
			memmove(cfg->hp_pins + i, cfg->hp_pins + i + 1,
				sizeof(cfg->hp_pins[0]) * (cfg->hp_outs - i));
			memmove(sequences_hp + i - 1, sequences_hp + i,
				sizeof(sequences_hp[0]) * (cfg->hp_outs - i));
		}
	}

2918
	/* sort by sequence */
2919 2920 2921 2922
	sort_pins_by_sequence(cfg->line_out_pins, sequences_line_out,
			      cfg->line_outs);
	sort_pins_by_sequence(cfg->speaker_pins, sequences_speaker,
			      cfg->speaker_outs);
2923 2924
	sort_pins_by_sequence(cfg->hp_pins, sequences_hp,
			      cfg->hp_outs);
2925
	
2926 2927 2928 2929 2930 2931 2932 2933 2934 2935 2936 2937 2938 2939 2940
	/* if we have only one mic, make it AUTO_PIN_MIC */
	if (!cfg->input_pins[AUTO_PIN_MIC] &&
	    cfg->input_pins[AUTO_PIN_FRONT_MIC]) {
		cfg->input_pins[AUTO_PIN_MIC] =
			cfg->input_pins[AUTO_PIN_FRONT_MIC];
		cfg->input_pins[AUTO_PIN_FRONT_MIC] = 0;
	}
	/* ditto for line-in */
	if (!cfg->input_pins[AUTO_PIN_LINE] &&
	    cfg->input_pins[AUTO_PIN_FRONT_LINE]) {
		cfg->input_pins[AUTO_PIN_LINE] =
			cfg->input_pins[AUTO_PIN_FRONT_LINE];
		cfg->input_pins[AUTO_PIN_FRONT_LINE] = 0;
	}

2941 2942 2943 2944 2945 2946 2947 2948 2949 2950 2951 2952 2953 2954 2955 2956 2957 2958 2959 2960 2961
	/*
	 * FIX-UP: if no line-outs are detected, try to use speaker or HP pin
	 * as a primary output
	 */
	if (!cfg->line_outs) {
		if (cfg->speaker_outs) {
			cfg->line_outs = cfg->speaker_outs;
			memcpy(cfg->line_out_pins, cfg->speaker_pins,
			       sizeof(cfg->speaker_pins));
			cfg->speaker_outs = 0;
			memset(cfg->speaker_pins, 0, sizeof(cfg->speaker_pins));
			cfg->line_out_type = AUTO_PIN_SPEAKER_OUT;
		} else if (cfg->hp_outs) {
			cfg->line_outs = cfg->hp_outs;
			memcpy(cfg->line_out_pins, cfg->hp_pins,
			       sizeof(cfg->hp_pins));
			cfg->hp_outs = 0;
			memset(cfg->hp_pins, 0, sizeof(cfg->hp_pins));
			cfg->line_out_type = AUTO_PIN_HP_OUT;
		}
	}
2962

2963 2964 2965 2966 2967
	/* Reorder the surround channels
	 * ALSA sequence is front/surr/clfe/side
	 * HDA sequence is:
	 *    4-ch: front/surr  =>  OK as it is
	 *    6-ch: front/clfe/surr
2968
	 *    8-ch: front/clfe/rear/side|fc
2969 2970 2971 2972 2973
	 */
	switch (cfg->line_outs) {
	case 3:
	case 4:
		nid = cfg->line_out_pins[1];
2974
		cfg->line_out_pins[1] = cfg->line_out_pins[2];
2975 2976
		cfg->line_out_pins[2] = nid;
		break;
2977 2978
	}

2979 2980 2981 2982 2983 2984 2985 2986 2987 2988 2989
	/*
	 * debug prints of the parsed results
	 */
	snd_printd("autoconfig: line_outs=%d (0x%x/0x%x/0x%x/0x%x/0x%x)\n",
		   cfg->line_outs, cfg->line_out_pins[0], cfg->line_out_pins[1],
		   cfg->line_out_pins[2], cfg->line_out_pins[3],
		   cfg->line_out_pins[4]);
	snd_printd("   speaker_outs=%d (0x%x/0x%x/0x%x/0x%x/0x%x)\n",
		   cfg->speaker_outs, cfg->speaker_pins[0],
		   cfg->speaker_pins[1], cfg->speaker_pins[2],
		   cfg->speaker_pins[3], cfg->speaker_pins[4]);
2990 2991 2992 2993
	snd_printd("   hp_outs=%d (0x%x/0x%x/0x%x/0x%x/0x%x)\n",
		   cfg->hp_outs, cfg->hp_pins[0],
		   cfg->hp_pins[1], cfg->hp_pins[2],
		   cfg->hp_pins[3], cfg->hp_pins[4]);
2994
	snd_printd("   mono: mono_out=0x%x\n", cfg->mono_out_pin);
2995 2996 2997 2998 2999 3000 3001 3002 3003
	snd_printd("   inputs: mic=0x%x, fmic=0x%x, line=0x%x, fline=0x%x,"
		   " cd=0x%x, aux=0x%x\n",
		   cfg->input_pins[AUTO_PIN_MIC],
		   cfg->input_pins[AUTO_PIN_FRONT_MIC],
		   cfg->input_pins[AUTO_PIN_LINE],
		   cfg->input_pins[AUTO_PIN_FRONT_LINE],
		   cfg->input_pins[AUTO_PIN_CD],
		   cfg->input_pins[AUTO_PIN_AUX]);

3004 3005 3006
	return 0;
}

3007 3008 3009 3010 3011 3012
/* labels for input pins */
const char *auto_pin_cfg_labels[AUTO_PIN_LAST] = {
	"Mic", "Front Mic", "Line", "Front Line", "CD", "Aux"
};


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#ifdef CONFIG_PM
/*
 * power management
 */

/**
 * snd_hda_suspend - suspend the codecs
 * @bus: the HDA bus
 * @state: suspsend state
 *
 * Returns 0 if successful.
 */
int snd_hda_suspend(struct hda_bus *bus, pm_message_t state)
{
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3027
	struct hda_codec *codec;
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3028

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3029
	list_for_each_entry(codec, &bus->codec_list, list) {
3030 3031 3032 3033
#ifdef CONFIG_SND_HDA_POWER_SAVE
		if (!codec->power_on)
			continue;
#endif
3034
		hda_call_codec_suspend(codec);
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3035 3036 3037 3038 3039 3040 3041 3042 3043 3044
	}
	return 0;
}

/**
 * snd_hda_resume - resume the codecs
 * @bus: the HDA bus
 * @state: resume state
 *
 * Returns 0 if successful.
3045 3046 3047
 *
 * This fucntion is defined only when POWER_SAVE isn't set.
 * In the power-save mode, the codec is resumed dynamically.
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3048 3049 3050
 */
int snd_hda_resume(struct hda_bus *bus)
{
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3051
	struct hda_codec *codec;
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	list_for_each_entry(codec, &bus->codec_list, list) {
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		if (snd_hda_codec_needs_resume(codec))
			hda_call_codec_resume(codec);
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	}
	return 0;
}
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#ifdef CONFIG_SND_HDA_POWER_SAVE
int snd_hda_codecs_inuse(struct hda_bus *bus)
{
	struct hda_codec *codec;
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	list_for_each_entry(codec, &bus->codec_list, list) {
		if (snd_hda_codec_needs_resume(codec))
			return 1;
	}
	return 0;
}
#endif
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#endif